============================================================ | | | Crystallography & NMR System (CNS) | | CNSsolve | | | ============================================================ Version: 1.2 Status: Developmental version ============================================================ Written by: A.T.Brunger, P.D.Adams, G.M.Clore, W.L.DeLano, P.Gros, R.W.Grosse-Kunstleve, J.-S.Jiang, J.Kuszewski, M.Nilges, N.S.Pannu, R.J.Read, L.M.Rice, T.Simonson, G.L.Warren. Copyright (c) 1997-1999 Yale University ============================================================ Running on machine: hostname unknown (x86_64/Linux,64-bit) Program started by: gliu Program started at: 14:05:20 on 13-Sep-2010 ============================================================ FFT3C: Using FFTPACK4.1 CNSsolve> CNSsolve>{+ directory: general +} CNSsolve>{+ description: Generate structure file for protein, dna/rna, water, CNSsolve> ligands and/or carbohydrate +} CNSsolve>{+ comment: CNSsolve> If required generate hydrogens. Any atoms with unknown CNSsolve> coordinates can be automatically generated +} CNSsolve>{+ authors: Paul Adams and Axel Brunger +} CNSsolve>{+ copyright: Yale University +} CNSsolve> CNSsolve>{- Guidelines for using this file: CNSsolve> - all strings must be quoted by double-quotes CNSsolve> - logical variables (true/false) are not quoted CNSsolve> - do not remove any evaluate statements from the file -} CNSsolve> CNSsolve>{- Special patches will have to be entered manually at the relevant points CNSsolve> in the file - see comments throughout the file -} CNSsolve> CNSsolve>{- begin block parameter definition -} define( DEFINE> DEFINE>{============================== important =================================} DEFINE> DEFINE>{* Coordinates for molecules of the same type (eg. all protein, all DEFINE> nucleic acid etc) can be input in the same coordinate file if the DEFINE> different chains are separated by a TER card or each chain has DEFINE> a different segid or chainid. *} DEFINE> DEFINE>{* A break in a chain can be detected automatically or should be delimited DEFINE> by a BREAK card. In this case no patch (head, tail or link) will be DEFINE> applied between the residues that bound the chain break. *} DEFINE> DEFINE>{* If a segid is present in the coordinate file it will be read unless DEFINE> segid renaming is used below. If renaming is used then all chains in a DEFINE> coordinate file will be given the same segid. *} DEFINE> DEFINE>{* If a PDB chain identifier is present in the coordinate file then this DEFINE> can be used for the segid *} DEFINE> DEFINE>{* NB. All input PDB files must finish with an END statement *} DEFINE> DEFINE>{============================ protein files ================================} DEFINE> DEFINE>{* Multiple coordinate files of the same type can be defined by duplicating DEFINE> all of the entries below and incrementing the file number *} DEFINE> DEFINE>{* protein coordinate file *} DEFINE>{===>} prot_coordinate_infile_1="template_hr44.pdb"; DEFINE> DEFINE>{* rename segid *} DEFINE>{+ choice: true false +} DEFINE>{===>} prot_rename_1=false; DEFINE> DEFINE>{* new segid *} DEFINE>{===>} prot_segid_1=""; DEFINE> DEFINE>{* convert chainid to segid if chainid is non-blank *} DEFINE>{+ choice: true false +} DEFINE>{===>} prot_convert_1=false; DEFINE> DEFINE>{* separate chains by segid - a new segid starts a new chain *} DEFINE>{+ choice: true false +} DEFINE>{===>} prot_separate_1=true; DEFINE> DEFINE>{========================= nucleic acid files ==============================} DEFINE> DEFINE>{* Multiple coordinate files of the same type can be defined by duplicating DEFINE> all of the entries below and incrementing the file number *} DEFINE> DEFINE>{* nucleic acid coordinate file *} DEFINE>{===>} nucl_coordinate_infile_1=""; DEFINE> DEFINE>{* rename segid *} DEFINE>{+ choice: true false +} DEFINE>{===>} nucl_rename_1=false; DEFINE> DEFINE>{* new segid *} DEFINE>{===>} nucl_segid_1=""; DEFINE> DEFINE>{* convert chainid to segid if chainid is non-blank *} DEFINE>{+ choice: true false +} DEFINE>{===>} nucl_convert_1=false; DEFINE> DEFINE>{* separate chains by segid - a new segid starts a new chain *} DEFINE>{+ choice: true false +} DEFINE>{===>} nucl_separate_1=true; DEFINE> DEFINE>{============================= water files =================================} DEFINE> DEFINE>{* Multiple coordinate files of the same type can be defined by duplicating DEFINE> all of the entries below and incrementing the file number *} DEFINE> DEFINE>{* water coordinate file *} DEFINE>{===>} water_coordinate_infile_1=""; DEFINE> DEFINE>{* rename segid *} {+ choice: true false +} DEFINE>{===>} water_rename_1=false; DEFINE> DEFINE>{* new segid *} DEFINE>{===>} water_segid_1=""; DEFINE> DEFINE>{* convert chainid to segid if chainid is non-blank *} {+ choice: true false +} DEFINE>{===>} water_convert_1=false; DEFINE> DEFINE>{========================= carbohydrate files ==============================} DEFINE> DEFINE>{* Multiple coordinate files of the same type can be defined by duplicating DEFINE> all of the entries below and incrementing the file number *} DEFINE> DEFINE>{* carbohydrate coordinate file *} DEFINE>{===>} carbo_coordinate_infile_1=""; DEFINE> DEFINE>{* rename segid *} {+ choice: true false +} DEFINE>{===>} carbo_rename_1=false; DEFINE> DEFINE>{* new segid *} DEFINE>{===>} carbo_segid_1=""; DEFINE> DEFINE>{* convert chainid to segid if chainid is non-blank *} {+ choice: true false +} DEFINE>{===>} carbo_convert_1=false; DEFINE> DEFINE>{======================== prosthetic group files ===========================} DEFINE> DEFINE>{* Multiple coordinate files of the same type can be defined by duplicating DEFINE> all of the entries below and incrementing the file number *} DEFINE> DEFINE>{* prosthetic group coordinate file *} DEFINE>{===>} prost_coordinate_infile_1=""; DEFINE> DEFINE>{* rename segid *} {+ choice: true false +} DEFINE>{===>} prost_rename_1=false; DEFINE> DEFINE>{* new segid *} DEFINE>{===>} prost_segid_1=""; DEFINE> DEFINE>{* convert chainid to segid if chainid is non-blank *} {+ choice: true false +} DEFINE>{===>} prost_convert_1=false; DEFINE> DEFINE>{============================ ligand files =================================} DEFINE> DEFINE>{* Multiple coordinate files of the same type can be defined by duplicating DEFINE> all of the entries below and incrementing the file number *} DEFINE> DEFINE>{* ligand coordinate file *} DEFINE>{===>} lig_coordinate_infile_1=""; DEFINE> DEFINE>{* rename segid *} {+ choice: true false +} DEFINE>{===>} lig_rename_1=false; DEFINE> DEFINE>{* new segid *} DEFINE>{===>} lig_segid_1=""; DEFINE> DEFINE>{* convert chainid to segid if chainid is non-blank *} {+ choice: true false +} DEFINE>{===>} lig_convert_1=false; DEFINE> DEFINE>{============================== ions files =================================} DEFINE> DEFINE>{* Multiple coordinate files of the same type can be defined by duplicating DEFINE> all of the entries below and incrementing the file number *} DEFINE> DEFINE>{* ion coordinate file *} DEFINE>{===>} ion_coordinate_infile_1=""; DEFINE> DEFINE>{* rename segid *} {+ choice: true false +} DEFINE>{===>} ion_rename_1=false; DEFINE> DEFINE>{* new segid *} DEFINE>{===>} ion_segid_1=""; DEFINE> DEFINE>{* convert chainid to segid if chainid is non-blank *} {+ choice: true false +} DEFINE>{===>} ion_convert_1=false; DEFINE> DEFINE>{============================ renaming atoms ===============================} DEFINE> DEFINE>{* some atoms may need to be renamed in the topology database to conform DEFINE> to what is present in the coordinate file *} DEFINE> DEFINE>{* delta carbon in isoleucine is named CD in CNS DEFINE> what is it currently called in the coordinate file? *} DEFINE>{* this will not be changed if left blank *} DEFINE>{===>} ile_CD_becomes="CD1"; DEFINE> DEFINE>{* terminal oxygens are named OT1 and OT2 in CNS DEFINE> what are they currently called in the coordinate file? *} DEFINE>{* these will not be changed if left blank *} DEFINE>{===>} OT1_becomes=""; DEFINE>{===>} OT2_becomes=""; DEFINE> DEFINE>{======================= automatic mainchain breaks ========================} DEFINE> DEFINE>{* automatically detect mainchain breaks in proteins based on distance *} DEFINE>{* the peptide link at break points will be removed *} DEFINE>{+ choice: true false +} DEFINE>{===>} auto_break=true; DEFINE> DEFINE>{* cutoff distance in Angstroms for identification of breaks *} DEFINE>{* the default of 2.5A should be reasonable for most cases. If the input DEFINE> structure has bad geometry it may be necessary to increase this distance *} DEFINE>{===>} break_cutoff=2.5; DEFINE> DEFINE>{* file containing patches to delete peptide links *} DEFINE>{===>} prot_break_infile="CNS_TOPPAR:protein_break.top"; DEFINE> DEFINE>{======================= automatic disulphide bonds ========================} DEFINE> DEFINE>{* automatically detect disulphide bonds based on distance *} DEFINE>{+ choice: true false +} DEFINE>{===>} auto_ss=false; DEFINE> DEFINE>{* cutoff distance in Angstroms for identification of disulphides *} DEFINE>{* the default of 3.0A should be reasonable for most cases. If the input DEFINE> structure has bad geometry it may be necessary to increase this distance *} DEFINE>{===>} disulphide_dist=3.0; DEFINE> DEFINE>{========================= manual disulphide bonds =========================} DEFINE> ! we will do it my way (RT), look below for disu DEFINE> DEFINE>{========================= RNA to DNA conversion ==========================} DEFINE> DEFINE>{* All nucleic acid residues initially have ribose sugars (rather than DEFINE> deoxyribose). A patch must be applied to convert the ribose to deoxyribose DEFINE> for DNA residues. Select those residues which need to have the patch DEFINE> applied to make them DNA. *} DEFINE>{* Make sure that the atom selection is specific for the nucleic acid DEFINE> residues *} DEFINE>{===>} dna_sele=(none); DEFINE> DEFINE>{=========================== carbohydrate links ===========================} DEFINE> DEFINE>{* Select pairs of residues that are linked *} DEFINE>{* First entry is the name of the patch residue. *} DEFINE>{* Second and third entries are the resid and segid for the atoms DEFINE> referenced by "-" in the patch. *} DEFINE>{* Fourth and fifth entries are the resid and segid for the atoms DEFINE> referenced by "+" in the patch *} DEFINE>{+ table: rows=6 numbered DEFINE> cols=6 "use" "patch name" "segid -" "resid -" "segid +" "resid +" +} DEFINE> DEFINE>{+ choice: true false +} DEFINE>{===>} carbo_use_1=false; DEFINE>{===>} carbo_patch_1="B1N"; DEFINE>{===>} carbo_i_segid_1="BBBB"; carbo_i_resid_1=401; DEFINE>{===>} carbo_j_segid_1="AAAA"; carbo_j_resid_1=56; DEFINE> DEFINE>{+ choice: true false +} DEFINE>{===>} carbo_use_2=false; DEFINE>{===>} carbo_patch_2="B1N"; DEFINE>{===>} carbo_i_segid_2="BBBB"; carbo_i_resid_2=402; DEFINE>{===>} carbo_j_segid_2="AAAA"; carbo_j_resid_2=182; DEFINE> DEFINE>{+ choice: true false +} DEFINE>{===>} carbo_use_3=false; DEFINE>{===>} carbo_patch_3=""; DEFINE>{===>} carbo_i_segid_3=""; carbo_i_resid_3=0; DEFINE>{===>} carbo_j_segid_3=""; carbo_j_resid_3=0; DEFINE> DEFINE>{+ choice: true false +} DEFINE>{===>} carbo_use_4=false; DEFINE>{===>} carbo_patch_4=""; DEFINE>{===>} carbo_i_segid_4=""; carbo_i_resid_4=0; DEFINE>{===>} carbo_j_segid_4=""; carbo_j_resid_4=0; DEFINE> DEFINE>{+ choice: true false +} DEFINE>{===>} carbo_use_5=false; DEFINE>{===>} carbo_patch_5=""; DEFINE>{===>} carbo_i_segid_5=""; carbo_i_resid_5=0; DEFINE>{===>} carbo_j_segid_5=""; carbo_j_resid_5=0; DEFINE> DEFINE>{+ choice: true false +} DEFINE>{===>} carbo_use_6=false; DEFINE>{===>} carbo_patch_6=""; DEFINE>{===>} carbo_i_segid_6=""; carbo_i_resid_6=0; DEFINE>{===>} carbo_j_segid_6=""; carbo_j_resid_6=0; DEFINE> DEFINE>{========================= generate parameters =============================} DEFINE> DEFINE>{* hydrogen flag - determines whether hydrogens will be output *} DEFINE>{* must be true for NMR, atomic resolution X-ray crystallography DEFINE> or modelling. Set to false for most X-ray crystallographic DEFINE> applications at resolution > 1A *} DEFINE>{+ choice: true false +} DEFINE>{===>} hydrogen_flag=true; DEFINE> DEFINE>{* which hydrogens to build *} {+ choice: "all" "unknown" +} DEFINE>{===>} hydrogen_build="all"; DEFINE> DEFINE>{* selection of atoms other than hydrogens for which coordinates DEFINE> will be generated *} DEFINE>{* to generate coordinates for all unknown atoms use: (not(known)) *} DEFINE>{===>} atom_build=(not(known)); DEFINE> DEFINE>{* selection of atoms to be deleted *} {* to delete no atoms use: (none) *} DEFINE>{===>} atom_delete=(none); DEFINE> DEFINE>{* set bfactor flag *} {+ choice: true false +} DEFINE>{===>} set_bfactor=false; DEFINE> DEFINE>{* set bfactor value *} DEFINE>{===>} bfactor=15.0; DEFINE> DEFINE>{* set occupancy flag *} {+ choice: true false +} DEFINE>{===>} set_occupancy=false; DEFINE> DEFINE>{* set occupancy value *} DEFINE>{===>} occupancy=1.0; DEFINE> DEFINE>{============================= output files ================================} DEFINE> DEFINE>{* output structure file *} DEFINE>{===>} structure_outfile="cnsPDB/sa_cns_12.mtf"; DEFINE> DEFINE>{* output coordinate file *} DEFINE>{===>} coordinate_outfile="cnsPDB/sa_cns_12.pdb"; DEFINE> DEFINE>{* format output coordinates for use in o *} DEFINE>{* if false then the default CNS output coordinate format will be used *} DEFINE>{+ choice: true false +} DEFINE>{===>} pdb_o_format=true; DEFINE> DEFINE>{================== protein topology and parameter files ===================} DEFINE> DEFINE>{* protein topology file *} DEFINE>{===>} prot_topology_infile="TOPOWAT:topallhdg5.3.pro"; DEFINE> DEFINE>{* protein linkage file *} DEFINE>{===>} prot_link_infile="CNS_TOPPAR:protein.link"; DEFINE> DEFINE>{* protein parameter file *} DEFINE>{===>} prot_parameter_infile="TOPOWAT:parallhdg5.3.pro"; DEFINE> DEFINE>{================ nucleic acid topology and parameter files =================} DEFINE> DEFINE>{* nucleic acid topology file *} DEFINE>{===>} nucl_topology_infile="CNS_TOPPAR:dna-rna.top"; DEFINE> DEFINE>{* nucleic acid linkage file *} DEFINE>{* use CNS_TOPPAR:dna-rna-pho.link for 5'-phosphate *} DEFINE>{===>} nucl_link_infile="CNS_TOPPAR:dna-rna.link"; DEFINE> DEFINE>{* nucleic acid parameter file *} DEFINE>{===>} nucl_parameter_infile="CNS_TOPPAR:dna-rna_rep.param"; DEFINE> DEFINE>{=================== water topology and parameter files ====================} DEFINE> DEFINE>{* water topology file *} DEFINE>{===>} water_topology_infile="CNS_TOPPAR:water.top"; DEFINE> DEFINE>{* water parameter file *} DEFINE>{===>} water_parameter_infile="CNS_TOPPAR:water_rep.param"; DEFINE> DEFINE>{================= carbohydrate topology and parameter files ===============} DEFINE> DEFINE>{* carbohydrate topology file *} DEFINE>{===>} carbo_topology_infile="CNS_TOPPAR:carbohydrate.top"; DEFINE> DEFINE>{* carbohydrate parameter file *} DEFINE>{===>} carbo_parameter_infile="CNS_TOPPAR:carbohydrate.param"; DEFINE> DEFINE>{============= prosthetic group topology and parameter files ===============} DEFINE> DEFINE>{* prosthetic group topology file *} DEFINE>{===>} prost_topology_infile=""; DEFINE> DEFINE>{* prosthetic group parameter file *} DEFINE>{===>} prost_parameter_infile=""; DEFINE> DEFINE>{=================== ligand topology and parameter files ===================} DEFINE> DEFINE>{* ligand topology file *} DEFINE>{===>} lig_topology_infile=""; DEFINE> DEFINE>{* ligand parameter file *} DEFINE>{===>} lig_parameter_infile=""; DEFINE> DEFINE>{===================== ion topology and parameter files ====================} DEFINE> DEFINE>{* ion topology file *} DEFINE>{===>} ion_topology_infile="CNS_TOPPAR:ion.top"; DEFINE> DEFINE>{* ion parameter file *} DEFINE>{===>} ion_parameter_infile="CNS_TOPPAR:ion.param"; DEFINE> DEFINE>{===========================================================================} DEFINE>{ things below this line do not need to be changed unless } DEFINE>{ you need to apply patches - at the appropriate places marked } DEFINE>{===========================================================================} DEFINE> DEFINE> ) {- end block parameter definition -} CNSsolve> CNSsolve> ! checkversion has been commented as 1.1 is like 1.2 (RT) CNSsolve> ! checkversion 1.1 CNSsolve> CNSsolve> evaluate ($log_level=quiet) Assuming literal string "QUIET" EVALUATE: symbol $LOG_LEVEL set to "QUIET" (string) CNSsolve> CNSsolve> topology RTFRDR> if ( &BLANK%prot_topology_infile = false ) then NEXTCD: condition evaluated as true RTFRDR> @@&prot_topology_infile ASSFIL: file /farm/software/WaterRefinement_cns/topallhdg5.3.pro opened. RTFRDR>remark file topallhdg.pro version 5.3 date 23-Sept-02 RTFRDR>remark for file parallhdg.pro version 5.3 date 13-Feb-02 or later RTFRDR>remark Geometric energy function parameters for distance geometry and RTFRDR>remark simulated annealing. RTFRDR>remark Author: Michael Nilges, EMBL Heidelberg; Institut Pasteur, Paris RTFRDR>remark This file contains modifications from M. Williams, UCL London RTFRDR>remark Last modification 16-Sept-02 RTFRDR> RTFRDR>set echo off message off end RTFRDR> end if RTFRDR> if ( &BLANK%nucl_topology_infile = false ) then RTFRDR> @@&nucl_topology_infile RTFRDR>remarks file toppar/dna-rna.top RTFRDR>remarks dna/rna topology for crystallographic structure determination RTFRDR> RTFRDR>! removed references to CA, CF, CS, MG, NH3, OS (ATB 12/30/94) RTFRDR>! removed TIP3 water model (ATB 12/30/94) RTFRDR>! mapped NA->NNA, CH3E->CC3E (ATB 12/30/94) RTFRDR> RTFRDR>! RTFRDR>!Please cite the following reference when using these parameters: RTFRDR>!G. Parkinson, J. Vojtechovsky, L. Clowney, A.T. Brunger, H.M. Berman, RTFRDR>! New Parameters for the Refinement of Nucleic Acid Containing Structures, RTFRDR>! Acta Cryst. D, 52, 57-64 (1996). RTFRDR>! RTFRDR>! Oct. 8, 1996 - Modified by Alexey Bochkarev (McMaster University) RTFRDR>! to process properly 5PHO (5'-terminus with phosphate) patch. RTFRDR>! Geometry and charges of -O5'-PO3 group were taken from RTFRDR>! Saenger W. 1984. Principles of Nucleic Acid Structure RTFRDR>! All modifications are placed between: RTFRDR>!***AB*** RTFRDR>!....included fragment RTFRDR>!***AB end*** RTFRDR>! New atomic types were introduced to describe RTFRDR>! -O5'-PO3 group: O5H (O5') O1PH (O1P) O2PH (O2P) RTFRDR>! in addition to existing OH (O5T) RTFRDR> RTFRDR>set echo=false end Program version= 1.2 File version= 1.2 RTFRDR> RTFRDR> end if RTFRDR> if ( &BLANK%water_topology_infile = false ) then RTFRDR> @@&water_topology_infile RTFRDR>remarks file toppar/water.top RTFRDR>remarks water topology for crystallographic structure determination RTFRDR>remarks based on Jorgensen Tip3p water model RTFRDR> RTFRDR>set echo=false end Program version= 1.2 File version= 1.2 RTFRDR> end if RTFRDR> if ( &BLANK%carbo_topology_infile = false ) then RTFRDR> @@&carbo_topology_infile RTFRDR>REMARKS toppar/carbohydrate.top {pyranose sugar toplogoy for crystallographic RTFRDR>remarks structure determination} RTFRDR>REMARKS FOR USE WITH CARBOHYDRATE.PARAM AND protein_rep.param PROTEIN PARAMETERS RTFRDR>REMARKS ========================================================== RTFRDR>REMARKS Bill Weis 10-July-1988 RTFRDR>REMARKS Also see CARBOHYDRATE.PARAM for parameters. RTFRDR>REMARKS Charges taken from John Brady's glucose topology file for ring, RTFRDR>REMARKS others from protein parameter file. RTFRDR>REMARKS Idealized values for impropers at ring carbons to allow simple RTFRDR>REMARKS construction of various anomers/epimers. RTFRDR>REMARKS Any other hexose or link can be easily constructed by analogy to these. RTFRDR> RTFRDR>REMARKS Additions 6-March-1992 Bill Weis for use with PARAM2.CHO RTFRDR>REMARKS New atom types CCA, CCE, OA for the C1 & O1 positions to account RTFRDR>REMARKS for different bond and angle values due to the anomeric effect. RTFRDR>REMARKS More accurate equilibrium values for bond angle around this oxygen RTFRDR>REMARKS in glycosidic linkages. CCE for equatorial O1, CCA for RTFRDR>REMAKRS axial O1. For free sugar, keep OH1 as O1 atomtype; changed to OA RTFRDR>REMARKS for linkages. RTFRDR>REMARKS References: G.A. Jeffrey (1990) Acta Cryst B46, 89-103; RTFRDR>REMARKS K. Hirotsu & A.Shimada, (1974) Bull. Chem. Soc. Japan, 47, 1872-1879. RTFRDR> RTFRDR>REMARKS Additional CC6 atomtype for exocyclic carbon 5/11/92 RTFRDR> RTFRDR>set echo=false end Program version= 1.2 File version= 1.2 RTFRDR> RTFRDR> end if RTFRDR> if ( &BLANK%prost_topology_infile = false ) then RTFRDR> @@&prost_topology_infile RTFRDR> end if RTFRDR> if ( &BLANK%lig_topology_infile = false ) then RTFRDR> @@&lig_topology_infile RTFRDR> end if RTFRDR> if ( &BLANK%ion_topology_infile = false ) then RTFRDR> @@&ion_topology_infile RTFRDR>remarks file toppar/ion.top RTFRDR>remarks topology and masses for common ions RTFRDR>remarks Dingle atom ion residues are given the name of the element. RTFRDR>remarks By default the atom will be uncharged (eg. the residue MG will RTFRDR>remarks contain the atom called MG with zero charge). RTFRDR>remarks To use the charged species the charge state is appended to RTFRDR>remarks the atom name (eg to use MG2+ the residue name is MG2, and the RTFRDR>remarks atom name is MG+2 and has charge +2.0). RTFRDR>remarks NOTE: not all ionic species are represented RTFRDR>remarks PDA 02/09/99 RTFRDR> RTFRDR>set echo=false end Program version= 1.2 File version= 1.2 RTFRDR> end if RTFRDR> end CNSsolve> CNSsolve> topology RTFRDR> if ( &BLANK%prot_break_infile = false ) then RTFRDR> @@&prot_break_infile RTFRDR>remarks file toppar/protein_break.top RTFRDR>remarks patches to remove peptide linkages RTFRDR> RTFRDR>! Paul Adams 28th June 1999 RTFRDR>! Yale University RTFRDR> RTFRDR>set echo=false end Program version= 1.2 File version= 1.2 RTFRDR> RTFRDR> end if RTFRDR> end CNSsolve> CNSsolve> parameter PARRDR> if ( &BLANK%prot_parameter_infile = false ) then PARRDR> @@&prot_parameter_infile PARRDR>remark file protein-allhdg-ucl.param version UCL date 07-JUL-01 PARRDR>remark for file protein-allhdg-ucl.top version UCL date 14-MAR-00 PARRDR>remark for file protein-allhdg-dih-ucl.top version UCL date 07-JUL-01 PARRDR>remark Geometric energy function parameters for distance geometry and PARRDR>remark simulated annealing. PARRDR>remark Original author: Michael Nilges, EMBL Heidelberg PARRDR>remark Modifications: Mark A. Williams, UCL London PARRDR> PARRDR>set echo off message off end %NEXTCD-ERR: Symbol not found: if ($par_nonbonded ^^^^^^^^^^^^^^ %NEXTCD-ERR: Symbol not found: elseif ($par_nonbonded ^^^^^^^^^^^^^^ %NEXTCD-ERR: Symbol not found: elseif ($par_nonbonded ^^^^^^^^^^^^^^ %NEXTCD-ERR: Symbol not found: elseif ($par_nonbonded ^^^^^^^^^^^^^^ %NEXTCD-ERR: Symbol not found: elseif ($par_nonbonded ^^^^^^^^^^^^^^ Program version= 1.2 File version= 1.2 PARRDR> end if PARRDR> if ( &BLANK%water_parameter_infile = false ) then NEXTCD: condition evaluated as true PARRDR> @@&water_parameter_infile ASSFIL: file /farm/software/cns_solve_1.2/libraries/toppar/water_rep.param opened. PARRDR>remarks file toppar/water.param PARRDR>remarks water parameters for structure determination PARRDR>remarks PARRDR> PARRDR>set echo=false end Program version= 1.2 File version= 1.2 EVALUATE: symbol $VDW_RADIUS_O set to 2.90000 (real) EVALUATE: symbol $VDW_RADIUS_HH set to 1.60000 (real) EVALUATE: symbol $VDW_RADIUS_O set to 2.58361 (real) EVALUATE: symbol $VDW_RADIUS_HH set to 1.42544 (real) EVALUATE: symbol $VDW_RADIUS14_O set to 2.31634 (real) EVALUATE: symbol $VDW_RADIUS14_HH set to 1.15817 (real) EVALUATE: symbol $VDW_EPS set to 0.100000 (real) PARRDR> PARRDR> end if PARRDR> if ( &BLANK%carbo_parameter_infile = false ) then NEXTCD: condition evaluated as true PARRDR> @@&carbo_parameter_infile ASSFIL: file /farm/software/cns_solve_1.2/libraries/toppar/carbohydrate.param opened. PARRDR>remarks file toppar/carbohydrate.param PARRDR>REMARKS Parameter file for pyranose sugars for crystallographic PARRDR>remarks structure determination. PARRDR>remarks PARRDR> PARRDR>REMARKS Bill Weis 10-July-1988 PARRDR>REMARKS Additions for atom type combinations not covered in PARAM19X.PRO. PARRDR>REMARKS Needed additions are for ether oxygen and aliphatic carbon in all-atom PARRDR>REMARKS representation used for sugars (type CC). Ditto for type HA. PARRDR>REMARKS Values from J. Brady glucose parameters unless noted. PARRDR>REMARKS These should be sufficient for refinement. PARRDR> PARRDR>REMARKS Additions 6-March-1992 Bill Weis PARRDR>REMARKS New atom types CCA, CCE, OA for the C1 & O1 positions to account PARRDR>REMARKS for different bond and angle values due to the anomeric effect. PARRDR>REMARKS More accurate equilibrium values for bond angle around this oxygen PARRDR>REMARKS in glycosidic linkages. CCE for equatorial O1, CCA for PARRDR>REMAKRS axial O1. For free sugar, keep OH1 as O1 atomtype; changed to OA PARRDR>REMARKS for linkages. PARRDR>REMARKS References: G.A. Jeffrey (1990) Acta Cryst B46, 89-103; PARRDR>REMARKS K. Hirotsu & A.Shimada, (1974) Bull. Chem. Soc. Japan, 47, 1872-1879. PARRDR> PARRDR>REMARKS This set has been modified to be roughly consistent with PARRDR>REMARKS the csd-derived protein parameters of Engh and Huber. PARRDR>REMARKS New atom type CC6 for exocyclic 6 carbon PARRDR>REMARKS Bill Weis 5/11/92 PARRDR> PARRDR>set echo=false end Program version= 1.2 File version= 1.2 PARRDR> PARRDR> end if PARRDR> if ( &BLANK%prost_parameter_infile = false ) then NEXTCD: condition evaluated as false PARRDR> @@&prost_parameter_infile PARRDR> end if PARRDR> if ( &BLANK%lig_parameter_infile = false ) then NEXTCD: condition evaluated as false PARRDR> @@&lig_parameter_infile PARRDR> end if PARRDR> if ( &BLANK%ion_parameter_infile = false ) then NEXTCD: condition evaluated as true PARRDR> @@&ion_parameter_infile ASSFIL: file /farm/software/cns_solve_1.2/libraries/toppar/ion.param opened. PARRDR>remarks file toppar/ion.param PARRDR>remarks nonbonded parameters for common ions PARRDR>remarks new parameters derived from literature for single atom species PARRDR>remarks PDA 02/09/99 PARRDR> PARRDR>set echo=off end Program version= 1.2 File version= 1.2 PARRDR> end if PARRDR> end CNSsolve> CNSsolve> do (refy=0) (all) SELRPN: 0 atoms have been selected out of 0 CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop prot NEXTCD: condition evaluated as true CNSsolve> if ( &exist_prot_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%prot_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as true CNSsolve> do (refx=0) (all) SELRPN: 0 atoms have been selected out of 0 CNSsolve> segment SEGMENT> chain CHAIN> if ( &prot_convert_$counter = true ) then NEXTCD: condition evaluated as false CHAIN> convert=true CHAIN> end if CHAIN> if ( &prot_separate_$counter = true ) then NEXTCD: condition evaluated as true CHAIN> separate=true CHAIN> end if CHAIN> @@&prot_link_infile ASSFIL: file /farm/software/cns_solve_1.2/libraries/toppar/protein.link opened. CHAIN>remarks file toppar/protein.link CHAIN>remarks CHAIN>remarks this is a macro to define standard protein peptide bonds CHAIN>remarks and termini to generate a protein sequence. CHAIN> CHAIN>set echo=false end Program version= 1.2 File version= 1.2 CHAIN> coordinates @@&prot_coordinate_infile_$counter SEGMNT: sequence read from coordinate file ASSFIL: file /farm/data/gliu/projects/HR4495E/cns/calc15/template_hr44.pdb opened. COOR>ATOM 1 N MET A 1 18.028 -25.789 -5.573 1.00 13.04 MAPIC: Atom numbers being modified %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -C +N +CA +CB not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C +N not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. %PATCH-ERR: to be deleted dihedral -CB -CA -C -O not found in molecular structure. MAPIC: Atom numbers being modified SEGMNT: 126 residues were inserted into segment " " CHAIN> end SEGMENT> end Status of internal molecular topology database: -> NATOM= 1980(MAXA= 200000) NBOND= 1999(MAXB= 200000) -> NTHETA= 3620(MAXT= 400000) NGRP= 128(MAXGRP= 200000) -> NPHI= 3098(MAXP= 400000) NIMPHI= 1021(MAXIMP= 200000) -> NNB= 852(MAXNB= 200000) CNSsolve> if ( &BLANK%ile_CD_becomes = false ) then NEXTCD: condition evaluated as true CNSsolve> do (name=&ile_CD_becomes) (resname ILE and name CD) SELRPN: 0 atoms have been selected out of 1980 CNSsolve> end if CNSsolve> if ( &BLANK%OT1_becomes = false ) then NEXTCD: condition evaluated as false CNSsolve> do (name=&OT1_becomes) (name OT1) CNSsolve> end if CNSsolve> if ( &BLANK%OT2_becomes = false ) then NEXTCD: condition evaluated as false CNSsolve> do (name=&OT2_becomes) (name OT2) CNSsolve> end if CNSsolve> if ( &prot_rename_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop prot CNSsolve> while ( $done = false ) loop prot NEXTCD: condition evaluated as true CNSsolve> if ( &exist_prot_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%prot_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &prot_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> if ( &prot_separate_$counter = true ) then CNSsolve> separate=true CNSsolve> end if CNSsolve> @@&prot_link_infile CNSsolve> coordinates @@&prot_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &BLANK%ile_CD_becomes = false ) then CNSsolve> do (name=&ile_CD_becomes) (resname ILE and name CD) CNSsolve> end if CNSsolve> if ( &BLANK%OT1_becomes = false ) then CNSsolve> do (name=&OT1_becomes) (name OT1) CNSsolve> end if CNSsolve> if ( &BLANK%OT2_becomes = false ) then CNSsolve> do (name=&OT2_becomes) (name OT2) CNSsolve> end if CNSsolve> if ( &prot_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop prot CNSsolve> while ( $done = false ) loop prot NEXTCD: condition evaluated as false CNSsolve> if ( &exist_prot_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%prot_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &prot_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> if ( &prot_separate_$counter = true ) then CNSsolve> separate=true CNSsolve> end if CNSsolve> @@&prot_link_infile CNSsolve> coordinates @@&prot_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &BLANK%ile_CD_becomes = false ) then CNSsolve> do (name=&ile_CD_becomes) (resname ILE and name CD) CNSsolve> end if CNSsolve> if ( &BLANK%OT1_becomes = false ) then CNSsolve> do (name=&OT1_becomes) (name OT1) CNSsolve> end if CNSsolve> if ( &BLANK%OT2_becomes = false ) then CNSsolve> do (name=&OT2_becomes) (name OT2) CNSsolve> end if CNSsolve> if ( &prot_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop prot CNSsolve> CNSsolve> {* any special protein patches can be applied here *} {* doing it my way (RT) *} CNSsolve>{===>} CNSsolve> CNSsolve> evaluate ($HaveCis = "no") {* --- Apply possible CIS peptide patches --- *} EVALUATE: symbol $HAVECIS set to "no" (string) CNSsolve> if ( $HaveCis = "yes" ) then NEXTCD: condition evaluated as false CNSsolve> !CISpep info CNSsolve> end if CNSsolve> CNSsolve> evaluate ($HaveHisd = "no") {* --- Apply possible HISD peptide patches --- *} EVALUATE: symbol $HAVEHISD set to "no" (string) CNSsolve> if ( $HaveHisd = "yes" ) then NEXTCD: condition evaluated as false CNSsolve> !HISDpep info CNSsolve> end if CNSsolve> CNSsolve> evaluate ($HaveHise = "no") {* --- Apply possible HISE peptide patches --- *} EVALUATE: symbol $HAVEHISE set to "no" (string) CNSsolve> if ( $HaveHise = "yes" ) then NEXTCD: condition evaluated as false CNSsolve> !HISEpep info CNSsolve> end if CNSsolve> CNSsolve> evaluate ($HaveDisu = "no") {* --- Getting ready for S-S bridges --- *} EVALUATE: symbol $HAVEDISU set to "no" (string) CNSsolve> if ( $HaveDisu = "yes" ) then NEXTCD: condition evaluated as false CNSsolve> !SSBridge info CNSsolve> end if CNSsolve> CNSsolve>{<===} CNSsolve> CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop prot NEXTCD: condition evaluated as true CNSsolve> if ( &exist_prot_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%prot_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as true CNSsolve> coor COOR> if ( &prot_convert_$counter = true ) then NEXTCD: condition evaluated as false COOR> convert=true COOR> end if COOR> @@&prot_coordinate_infile_$counter ASSFIL: file /farm/data/gliu/projects/HR4495E/cns/calc15/template_hr44.pdb opened. COOR>ATOM 1 N MET A 1 18.028 -25.789 -5.573 1.00 13.04 COOR>ATOM 2 H MET A 1 18.293 -26.681 -5.264 1.00 13.30 %READC-ERR: atom 1 MET H not found in molecular structure %READC-ERR: atom 1 MET HB3 not found in molecular structure %READC-ERR: atom 1 MET HG3 not found in molecular structure %READC-ERR: atom 2 GLY H not found in molecular structure %READC-ERR: atom 2 GLY HA3 not found in molecular structure %READC-ERR: atom 3 HIS H not found in molecular structure %READC-ERR: atom 3 HIS HB3 not found in molecular structure %READC-ERR: atom 4 HIS H not found in molecular structure %READC-ERR: atom 4 HIS HB3 not found in molecular structure %READC-ERR: atom 5 HIS H not found in molecular structure %READC-ERR: atom 5 HIS HB3 not found in molecular structure %READC-ERR: atom 6 HIS H not found in molecular structure %READC-ERR: atom 6 HIS HB3 not found in molecular structure %READC-ERR: atom 7 HIS H not found in molecular structure %READC-ERR: atom 7 HIS HB3 not found in molecular structure %READC-ERR: atom 8 HIS H not found in molecular structure %READC-ERR: atom 8 HIS HB3 not found in molecular structure %READC-ERR: atom 9 SER H not found in molecular structure %READC-ERR: atom 9 SER HB3 not found in molecular structure %READC-ERR: atom 10 HIS H not found in molecular structure %READC-ERR: atom 10 HIS HB3 not found in molecular structure %READC-ERR: atom 11 MET H not found in molecular structure %READC-ERR: atom 11 MET HB3 not found in molecular structure %READC-ERR: atom 11 MET HG3 not found in molecular structure %READC-ERR: atom 12 ASN H not found in molecular structure %READC-ERR: atom 12 ASN HB3 not found in molecular structure %READC-ERR: atom 13 SER H not found in molecular structure %READC-ERR: atom 13 SER HB3 not found in molecular structure %READC-ERR: atom 14 ALA H not found in molecular structure %READC-ERR: atom 15 GLU H not found in molecular structure %READC-ERR: atom 15 GLU HB3 not found in molecular structure %READC-ERR: atom 15 GLU HG3 not found in molecular structure %READC-ERR: atom 16 GLN H not found in molecular structure %READC-ERR: atom 16 GLN HB3 not found in molecular structure %READC-ERR: atom 16 GLN HG3 not found in molecular structure %READC-ERR: atom 17 THR H not found in molecular structure %READC-ERR: atom 18 VAL H not found in molecular structure %READC-ERR: atom 19 THR H not found in molecular structure %READC-ERR: atom 20 TRP H not found in molecular structure %READC-ERR: atom 20 TRP HB3 not found in molecular structure %READC-ERR: atom 21 LEU H not found in molecular structure %READC-ERR: atom 21 LEU HB3 not found in molecular structure %READC-ERR: atom 22 ILE H not found in molecular structure %READC-ERR: atom 22 ILE HG13 not found in molecular structure %READC-ERR: atom 23 THR H not found in molecular structure %READC-ERR: atom 24 LEU H not found in molecular structure %READC-ERR: atom 24 LEU HB3 not found in molecular structure %READC-ERR: atom 25 GLY H not found in molecular structure %READC-ERR: atom 25 GLY HA3 not found in molecular structure %READC-ERR: atom 26 VAL H not found in molecular structure %READC-ERR: atom 27 LEU H not found in molecular structure %READC-ERR: atom 27 LEU HB3 not found in molecular structure %READC-ERR: atom 28 GLU H not found in molecular structure %READC-ERR: atom 28 GLU HB3 not found in molecular structure %READC-ERR: atom 28 GLU HG3 not found in molecular structure %READC-ERR: atom 29 SER H not found in molecular structure %READC-ERR: atom 29 SER HB3 not found in molecular structure %READC-ERR: atom 30 PRO HB3 not found in molecular structure %READC-ERR: atom 30 PRO HG3 not found in molecular structure %READC-ERR: atom 30 PRO HD3 not found in molecular structure %READC-ERR: atom 31 LYS H not found in molecular structure %READC-ERR: atom 31 LYS HB3 not found in molecular structure %READC-ERR: atom 31 LYS HG3 not found in molecular structure %READC-ERR: atom 31 LYS HD3 not found in molecular structure %READC-ERR: atom 31 LYS HE3 not found in molecular structure %READC-ERR: atom 32 LYS H not found in molecular structure %READC-ERR: atom 32 LYS HB3 not found in molecular structure %READC-ERR: atom 32 LYS HG3 not found in molecular structure %READC-ERR: atom 32 LYS HD3 not found in molecular structure %READC-ERR: atom 32 LYS HE3 not found in molecular structure %READC-ERR: atom 33 THR H not found in molecular structure %READC-ERR: atom 34 ILE H not found in molecular structure %READC-ERR: atom 34 ILE HG13 not found in molecular structure %READC-ERR: atom 35 SER H not found in molecular structure %READC-ERR: atom 35 SER HB3 not found in molecular structure %READC-ERR: atom 36 ASP H not found in molecular structure %READC-ERR: atom 36 ASP HB3 not found in molecular structure %READC-ERR: atom 37 PRO HB3 not found in molecular structure %READC-ERR: atom 37 PRO HG3 not found in molecular structure %READC-ERR: atom 37 PRO HD3 not found in molecular structure %READC-ERR: atom 38 GLU H not found in molecular structure %READC-ERR: atom 38 GLU HB3 not found in molecular structure %READC-ERR: atom 38 GLU HG3 not found in molecular structure %READC-ERR: atom 39 GLY H not found in molecular structure %READC-ERR: atom 39 GLY HA3 not found in molecular structure %READC-ERR: atom 40 PHE H not found in molecular structure %READC-ERR: atom 40 PHE HB3 not found in molecular structure %READC-ERR: atom 41 LEU H not found in molecular structure %READC-ERR: atom 41 LEU HB3 not found in molecular structure %READC-ERR: atom 42 GLN H not found in molecular structure %READC-ERR: atom 42 GLN HB3 not found in molecular structure %READC-ERR: atom 42 GLN HG3 not found in molecular structure %READC-ERR: atom 43 ALA H not found in molecular structure %READC-ERR: atom 44 SER H not found in molecular structure %READC-ERR: atom 44 SER HB3 not found in molecular structure %READC-ERR: atom 45 LEU H not found in molecular structure %READC-ERR: atom 45 LEU HB3 not found in molecular structure %READC-ERR: atom 46 LYS H not found in molecular structure %READC-ERR: atom 46 LYS HB3 not found in molecular structure %READC-ERR: atom 46 LYS HG3 not found in molecular structure %READC-ERR: atom 46 LYS HD3 not found in molecular structure %READC-ERR: atom 46 LYS HE3 not found in molecular structure %READC-ERR: atom 47 ASP H not found in molecular structure %READC-ERR: atom 47 ASP HB3 not found in molecular structure %READC-ERR: atom 48 GLY H not found in molecular structure %READC-ERR: atom 48 GLY HA3 not found in molecular structure %READC-ERR: atom 49 VAL H not found in molecular structure %READC-ERR: atom 50 VAL H not found in molecular structure %READC-ERR: atom 51 LEU H not found in molecular structure %READC-ERR: atom 51 LEU HB3 not found in molecular structure %READC-ERR: atom 52 CYS H not found in molecular structure %READC-ERR: atom 52 CYS HB3 not found in molecular structure %READC-ERR: atom 53 ARG H not found in molecular structure %READC-ERR: atom 53 ARG HB3 not found in molecular structure %READC-ERR: atom 53 ARG HG3 not found in molecular structure %READC-ERR: atom 53 ARG HD3 not found in molecular structure %READC-ERR: atom 54 LEU H not found in molecular structure %READC-ERR: atom 54 LEU HB3 not found in molecular structure %READC-ERR: atom 55 LEU H not found in molecular structure %READC-ERR: atom 55 LEU HB3 not found in molecular structure %READC-ERR: atom 56 GLU H not found in molecular structure %READC-ERR: atom 56 GLU HB3 not found in molecular structure %READC-ERR: atom 56 GLU HG3 not found in molecular structure %READC-ERR: atom 57 ARG H not found in molecular structure %READC-ERR: atom 57 ARG HB3 not found in molecular structure %READC-ERR: atom 57 ARG HG3 not found in molecular structure %READC-ERR: atom 57 ARG HD3 not found in molecular structure %READC-ERR: atom 58 LEU H not found in molecular structure %READC-ERR: atom 58 LEU HB3 not found in molecular structure %READC-ERR: atom 59 LEU H not found in molecular structure %READC-ERR: atom 59 LEU HB3 not found in molecular structure %READC-ERR: atom 60 PRO HB3 not found in molecular structure %READC-ERR: atom 60 PRO HG3 not found in molecular structure %READC-ERR: atom 60 PRO HD3 not found in molecular structure %READC-ERR: atom 61 GLY H not found in molecular structure %READC-ERR: atom 61 GLY HA3 not found in molecular structure %READC-ERR: atom 62 THR H not found in molecular structure %READC-ERR: atom 63 ILE H not found in molecular structure %READC-ERR: atom 63 ILE HG13 not found in molecular structure %READC-ERR: atom 64 GLU H not found in molecular structure %READC-ERR: atom 64 GLU HB3 not found in molecular structure %READC-ERR: atom 64 GLU HG3 not found in molecular structure %READC-ERR: atom 65 LYS H not found in molecular structure %READC-ERR: atom 65 LYS HB3 not found in molecular structure %READC-ERR: atom 65 LYS HG3 not found in molecular structure %READC-ERR: atom 65 LYS HD3 not found in molecular structure %READC-ERR: atom 65 LYS HE3 not found in molecular structure %READC-ERR: atom 66 VAL H not found in molecular structure %READC-ERR: atom 67 TYR H not found in molecular structure %READC-ERR: atom 67 TYR HB3 not found in molecular structure %READC-ERR: atom 68 PRO HB3 not found in molecular structure %READC-ERR: atom 68 PRO HG3 not found in molecular structure %READC-ERR: atom 68 PRO HD3 not found in molecular structure %READC-ERR: atom 69 GLU H not found in molecular structure %READC-ERR: atom 69 GLU HB3 not found in molecular structure %READC-ERR: atom 69 GLU HG3 not found in molecular structure %READC-ERR: atom 70 PRO HB3 not found in molecular structure %READC-ERR: atom 70 PRO HG3 not found in molecular structure %READC-ERR: atom 70 PRO HD3 not found in molecular structure %READC-ERR: atom 71 ARG H not found in molecular structure %READC-ERR: atom 71 ARG HB3 not found in molecular structure %READC-ERR: atom 71 ARG HG3 not found in molecular structure %READC-ERR: atom 71 ARG HD3 not found in molecular structure %READC-ERR: atom 72 SER H not found in molecular structure %READC-ERR: atom 72 SER HB3 not found in molecular structure %READC-ERR: atom 73 GLU H not found in molecular structure %READC-ERR: atom 73 GLU HB3 not found in molecular structure %READC-ERR: atom 73 GLU HG3 not found in molecular structure %READC-ERR: atom 74 SER H not found in molecular structure %READC-ERR: atom 74 SER HB3 not found in molecular structure %READC-ERR: atom 75 GLU H not found in molecular structure %READC-ERR: atom 75 GLU HB3 not found in molecular structure %READC-ERR: atom 75 GLU HG3 not found in molecular structure %READC-ERR: atom 76 CYS H not found in molecular structure %READC-ERR: atom 76 CYS HB3 not found in molecular structure %READC-ERR: atom 77 LEU H not found in molecular structure %READC-ERR: atom 77 LEU HB3 not found in molecular structure %READC-ERR: atom 78 SER H not found in molecular structure %READC-ERR: atom 78 SER HB3 not found in molecular structure %READC-ERR: atom 79 ASN H not found in molecular structure %READC-ERR: atom 79 ASN HB3 not found in molecular structure %READC-ERR: atom 80 ILE H not found in molecular structure %READC-ERR: atom 80 ILE HG13 not found in molecular structure %READC-ERR: atom 81 ARG H not found in molecular structure %READC-ERR: atom 81 ARG HB3 not found in molecular structure %READC-ERR: atom 81 ARG HG3 not found in molecular structure %READC-ERR: atom 81 ARG HD3 not found in molecular structure %READC-ERR: atom 82 GLU H not found in molecular structure %READC-ERR: atom 82 GLU HB3 not found in molecular structure %READC-ERR: atom 82 GLU HG3 not found in molecular structure %READC-ERR: atom 83 PHE H not found in molecular structure %READC-ERR: atom 83 PHE HB3 not found in molecular structure %READC-ERR: atom 84 LEU H not found in molecular structure %READC-ERR: atom 84 LEU HB3 not found in molecular structure %READC-ERR: atom 85 ARG H not found in molecular structure %READC-ERR: atom 85 ARG HB3 not found in molecular structure %READC-ERR: atom 85 ARG HG3 not found in molecular structure %READC-ERR: atom 85 ARG HD3 not found in molecular structure %READC-ERR: atom 86 GLY H not found in molecular structure %READC-ERR: atom 86 GLY HA3 not found in molecular structure %READC-ERR: atom 87 CYS H not found in molecular structure %READC-ERR: atom 87 CYS HB3 not found in molecular structure %READC-ERR: atom 88 GLY H not found in molecular structure %READC-ERR: atom 88 GLY HA3 not found in molecular structure %READC-ERR: atom 89 ALA H not found in molecular structure %READC-ERR: atom 90 SER H not found in molecular structure %READC-ERR: atom 90 SER HB3 not found in molecular structure %READC-ERR: atom 91 LEU H not found in molecular structure %READC-ERR: atom 91 LEU HB3 not found in molecular structure %READC-ERR: atom 92 ARG H not found in molecular structure %READC-ERR: atom 92 ARG HB3 not found in molecular structure %READC-ERR: atom 92 ARG HG3 not found in molecular structure %READC-ERR: atom 92 ARG HD3 not found in molecular structure %READC-ERR: atom 93 LEU H not found in molecular structure %READC-ERR: atom 93 LEU HB3 not found in molecular structure %READC-ERR: atom 94 GLU H not found in molecular structure %READC-ERR: atom 94 GLU HB3 not found in molecular structure %READC-ERR: atom 94 GLU HG3 not found in molecular structure %READC-ERR: atom 95 THR H not found in molecular structure %READC-ERR: atom 96 PHE H not found in molecular structure %READC-ERR: atom 96 PHE HB3 not found in molecular structure %READC-ERR: atom 97 ASP H not found in molecular structure %READC-ERR: atom 97 ASP HB3 not found in molecular structure %READC-ERR: atom 98 ALA H not found in molecular structure %READC-ERR: atom 99 ASN H not found in molecular structure %READC-ERR: atom 99 ASN HB3 not found in molecular structure %READC-ERR: atom 100 ASP H not found in molecular structure %READC-ERR: atom 100 ASP HB3 not found in molecular structure %READC-ERR: atom 101 LEU H not found in molecular structure %READC-ERR: atom 101 LEU HB3 not found in molecular structure %READC-ERR: atom 102 TYR H not found in molecular structure %READC-ERR: atom 102 TYR HB3 not found in molecular structure %READC-ERR: atom 103 GLN H not found in molecular structure %READC-ERR: atom 103 GLN HB3 not found in molecular structure %READC-ERR: atom 103 GLN HG3 not found in molecular structure %READC-ERR: atom 104 GLY H not found in molecular structure %READC-ERR: atom 104 GLY HA3 not found in molecular structure %READC-ERR: atom 105 GLN H not found in molecular structure %READC-ERR: atom 105 GLN HB3 not found in molecular structure %READC-ERR: atom 105 GLN HG3 not found in molecular structure %READC-ERR: atom 106 ASN H not found in molecular structure %READC-ERR: atom 106 ASN HB3 not found in molecular structure %READC-ERR: atom 107 PHE H not found in molecular structure %READC-ERR: atom 107 PHE HB3 not found in molecular structure %READC-ERR: atom 108 ASN H not found in molecular structure %READC-ERR: atom 108 ASN HB3 not found in molecular structure %READC-ERR: atom 109 LYS H not found in molecular structure %READC-ERR: atom 109 LYS HB3 not found in molecular structure %READC-ERR: atom 109 LYS HG3 not found in molecular structure %READC-ERR: atom 109 LYS HD3 not found in molecular structure %READC-ERR: atom 109 LYS HE3 not found in molecular structure %READC-ERR: atom 110 VAL H not found in molecular structure %READC-ERR: atom 111 LEU H not found in molecular structure %READC-ERR: atom 111 LEU HB3 not found in molecular structure %READC-ERR: atom 112 SER H not found in molecular structure %READC-ERR: atom 112 SER HB3 not found in molecular structure %READC-ERR: atom 113 SER H not found in molecular structure %READC-ERR: atom 113 SER HB3 not found in molecular structure %READC-ERR: atom 114 LEU H not found in molecular structure %READC-ERR: atom 114 LEU HB3 not found in molecular structure %READC-ERR: atom 115 VAL H not found in molecular structure %READC-ERR: atom 116 THR H not found in molecular structure %READC-ERR: atom 117 LEU H not found in molecular structure %READC-ERR: atom 117 LEU HB3 not found in molecular structure %READC-ERR: atom 118 ASN H not found in molecular structure %READC-ERR: atom 118 ASN HB3 not found in molecular structure %READC-ERR: atom 119 LYS H not found in molecular structure %READC-ERR: atom 119 LYS HB3 not found in molecular structure %READC-ERR: atom 119 LYS HG3 not found in molecular structure %READC-ERR: atom 119 LYS HD3 not found in molecular structure %READC-ERR: atom 119 LYS HE3 not found in molecular structure %READC-ERR: atom 120 VAL H not found in molecular structure %READC-ERR: atom 121 THR H not found in molecular structure %READC-ERR: atom 122 ALA H not found in molecular structure %READC-ERR: atom 123 ASP H not found in molecular structure %READC-ERR: atom 123 ASP HB3 not found in molecular structure %READC-ERR: atom 124 ILE H not found in molecular structure %READC-ERR: atom 124 ILE HG13 not found in molecular structure %READC-ERR: atom 125 GLY H not found in molecular structure %READC-ERR: atom 125 GLY HA3 not found in molecular structure %READC-ERR: atom 126 LEU H not found in molecular structure %READC-ERR: atom 126 LEU HB3 not found in molecular structure %READC-ERR: atom 126 LEU O not found in molecular structure CNSsolve> set echo=off end SELRPN: 2 atoms have been selected out of 1980 SHOW: sum over selected elements = 2.000000 NEXTCD: condition evaluated as false CNSsolve> if ( &prot_rename_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> do (segid=capitalize(&prot_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop prot CNSsolve> while ( $done = false ) loop prot NEXTCD: condition evaluated as true CNSsolve> if ( &exist_prot_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%prot_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &prot_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&prot_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &prot_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&prot_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop prot CNSsolve> while ( $done = false ) loop prot NEXTCD: condition evaluated as false CNSsolve> if ( &exist_prot_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%prot_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &prot_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&prot_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &prot_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&prot_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop prot CNSsolve> CNSsolve> if ( $log_level = verbose ) then NEXTCD: condition evaluated as false CNSsolve> set message=normal echo=on end CNSsolve> else CNSsolve> set message=off echo=off end ( MET 1 C ) ( MET 1 C ) 1 ( MET 1 C ) MET SHOW: sum over selected elements = 1.000000 ( GLY 2 N ) 20.000 ( GLY 2 N ) ( GLY 2 N ) 2 ( GLY 2 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 2 C ) ( GLY 2 C ) 2 ( GLY 2 C ) GLY SHOW: sum over selected elements = 1.000000 ( HIS 3 N ) 27.000 ( HIS 3 N ) ( HIS 3 N ) 3 ( HIS 3 N ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 3 C ) ( HIS 3 C ) 3 ( HIS 3 C ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 4 N ) 45.000 ( HIS 4 N ) ( HIS 4 N ) 4 ( HIS 4 N ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 4 C ) ( HIS 4 C ) 4 ( HIS 4 C ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 5 N ) 63.000 ( HIS 5 N ) ( HIS 5 N ) 5 ( HIS 5 N ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 5 C ) ( HIS 5 C ) 5 ( HIS 5 C ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 6 N ) 81.000 ( HIS 6 N ) ( HIS 6 N ) 6 ( HIS 6 N ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 6 C ) ( HIS 6 C ) 6 ( HIS 6 C ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 7 N ) 99.000 ( HIS 7 N ) ( HIS 7 N ) 7 ( HIS 7 N ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 7 C ) ( HIS 7 C ) 7 ( HIS 7 C ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 8 N ) 117.00 ( HIS 8 N ) ( HIS 8 N ) 8 ( HIS 8 N ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 8 C ) ( HIS 8 C ) 8 ( HIS 8 C ) HIS SHOW: sum over selected elements = 1.000000 ( SER 9 N ) 135.00 ( SER 9 N ) ( SER 9 N ) 9 ( SER 9 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 9 C ) ( SER 9 C ) 9 ( SER 9 C ) SER SHOW: sum over selected elements = 1.000000 ( HIS 10 N ) 146.00 ( HIS 10 N ) ( HIS 10 N ) 10 ( HIS 10 N ) HIS SHOW: sum over selected elements = 1.000000 ( HIS 10 C ) ( HIS 10 C ) 10 ( HIS 10 C ) HIS SHOW: sum over selected elements = 1.000000 ( MET 11 N ) 164.00 ( MET 11 N ) ( MET 11 N ) 11 ( MET 11 N ) MET SHOW: sum over selected elements = 1.000000 ( MET 11 C ) ( MET 11 C ) 11 ( MET 11 C ) MET SHOW: sum over selected elements = 1.000000 ( ASN 12 N ) 181.00 ( ASN 12 N ) ( ASN 12 N ) 12 ( ASN 12 N ) ASN SHOW: sum over selected elements = 1.000000 ( ASN 12 C ) ( ASN 12 C ) 12 ( ASN 12 C ) ASN SHOW: sum over selected elements = 1.000000 ( SER 13 N ) 195.00 ( SER 13 N ) ( SER 13 N ) 13 ( SER 13 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 13 C ) ( SER 13 C ) 13 ( SER 13 C ) SER SHOW: sum over selected elements = 1.000000 ( ALA 14 N ) 206.00 ( ALA 14 N ) ( ALA 14 N ) 14 ( ALA 14 N ) ALA SHOW: sum over selected elements = 1.000000 ( ALA 14 C ) ( ALA 14 C ) 14 ( ALA 14 C ) ALA SHOW: sum over selected elements = 1.000000 ( GLU 15 N ) 216.00 ( GLU 15 N ) ( GLU 15 N ) 15 ( GLU 15 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 15 C ) ( GLU 15 C ) 15 ( GLU 15 C ) GLU SHOW: sum over selected elements = 1.000000 ( GLN 16 N ) 231.00 ( GLN 16 N ) ( GLN 16 N ) 16 ( GLN 16 N ) GLN SHOW: sum over selected elements = 1.000000 ( GLN 16 C ) ( GLN 16 C ) 16 ( GLN 16 C ) GLN SHOW: sum over selected elements = 1.000000 ( THR 17 N ) 248.00 ( THR 17 N ) ( THR 17 N ) 17 ( THR 17 N ) THR SHOW: sum over selected elements = 1.000000 ( THR 17 C ) ( THR 17 C ) 17 ( THR 17 C ) THR SHOW: sum over selected elements = 1.000000 ( VAL 18 N ) 262.00 ( VAL 18 N ) ( VAL 18 N ) 18 ( VAL 18 N ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 18 C ) ( VAL 18 C ) 18 ( VAL 18 C ) VAL SHOW: sum over selected elements = 1.000000 ( THR 19 N ) 278.00 ( THR 19 N ) ( THR 19 N ) 19 ( THR 19 N ) THR SHOW: sum over selected elements = 1.000000 ( THR 19 C ) ( THR 19 C ) 19 ( THR 19 C ) THR SHOW: sum over selected elements = 1.000000 ( TRP 20 N ) 292.00 ( TRP 20 N ) ( TRP 20 N ) 20 ( TRP 20 N ) TRP SHOW: sum over selected elements = 1.000000 ( TRP 20 C ) ( TRP 20 C ) 20 ( TRP 20 C ) TRP SHOW: sum over selected elements = 1.000000 ( LEU 21 N ) 316.00 ( LEU 21 N ) ( LEU 21 N ) 21 ( LEU 21 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 21 C ) ( LEU 21 C ) 21 ( LEU 21 C ) LEU SHOW: sum over selected elements = 1.000000 ( ILE 22 N ) 335.00 ( ILE 22 N ) ( ILE 22 N ) 22 ( ILE 22 N ) ILE SHOW: sum over selected elements = 1.000000 ( ILE 22 C ) ( ILE 22 C ) 22 ( ILE 22 C ) ILE SHOW: sum over selected elements = 1.000000 ( THR 23 N ) 354.00 ( THR 23 N ) ( THR 23 N ) 23 ( THR 23 N ) THR SHOW: sum over selected elements = 1.000000 ( THR 23 C ) ( THR 23 C ) 23 ( THR 23 C ) THR SHOW: sum over selected elements = 1.000000 ( LEU 24 N ) 368.00 ( LEU 24 N ) ( LEU 24 N ) 24 ( LEU 24 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 24 C ) ( LEU 24 C ) 24 ( LEU 24 C ) LEU SHOW: sum over selected elements = 1.000000 ( GLY 25 N ) 387.00 ( GLY 25 N ) ( GLY 25 N ) 25 ( GLY 25 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 25 C ) ( GLY 25 C ) 25 ( GLY 25 C ) GLY SHOW: sum over selected elements = 1.000000 ( VAL 26 N ) 394.00 ( VAL 26 N ) ( VAL 26 N ) 26 ( VAL 26 N ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 26 C ) ( VAL 26 C ) 26 ( VAL 26 C ) VAL SHOW: sum over selected elements = 1.000000 ( LEU 27 N ) 410.00 ( LEU 27 N ) ( LEU 27 N ) 27 ( LEU 27 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 27 C ) ( LEU 27 C ) 27 ( LEU 27 C ) LEU SHOW: sum over selected elements = 1.000000 ( GLU 28 N ) 429.00 ( GLU 28 N ) ( GLU 28 N ) 28 ( GLU 28 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 28 C ) ( GLU 28 C ) 28 ( GLU 28 C ) GLU SHOW: sum over selected elements = 1.000000 ( SER 29 N ) 444.00 ( SER 29 N ) ( SER 29 N ) 29 ( SER 29 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 29 C ) ( SER 29 C ) 29 ( SER 29 C ) SER SHOW: sum over selected elements = 1.000000 ( PRO 30 N ) 455.00 ( PRO 30 N ) ( PRO 30 N ) 30 ( PRO 30 N ) PRO SHOW: sum over selected elements = 1.000000 ( PRO 30 C ) ( PRO 30 C ) 30 ( PRO 30 C ) PRO SHOW: sum over selected elements = 1.000000 ( LYS 31 N ) 469.00 ( LYS 31 N ) ( LYS 31 N ) 31 ( LYS 31 N ) LYS SHOW: sum over selected elements = 1.000000 ( LYS 31 C ) ( LYS 31 C ) 31 ( LYS 31 C ) LYS SHOW: sum over selected elements = 1.000000 ( LYS 32 N ) 491.00 ( LYS 32 N ) ( LYS 32 N ) 32 ( LYS 32 N ) LYS SHOW: sum over selected elements = 1.000000 ( LYS 32 C ) ( LYS 32 C ) 32 ( LYS 32 C ) LYS SHOW: sum over selected elements = 1.000000 ( THR 33 N ) 513.00 ( THR 33 N ) ( THR 33 N ) 33 ( THR 33 N ) THR SHOW: sum over selected elements = 1.000000 ( THR 33 C ) ( THR 33 C ) 33 ( THR 33 C ) THR SHOW: sum over selected elements = 1.000000 ( ILE 34 N ) 527.00 ( ILE 34 N ) ( ILE 34 N ) 34 ( ILE 34 N ) ILE SHOW: sum over selected elements = 1.000000 ( ILE 34 C ) ( ILE 34 C ) 34 ( ILE 34 C ) ILE SHOW: sum over selected elements = 1.000000 ( SER 35 N ) 546.00 ( SER 35 N ) ( SER 35 N ) 35 ( SER 35 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 35 C ) ( SER 35 C ) 35 ( SER 35 C ) SER SHOW: sum over selected elements = 1.000000 ( ASP 36 N ) 557.00 ( ASP 36 N ) ( ASP 36 N ) 36 ( ASP 36 N ) ASP SHOW: sum over selected elements = 1.000000 ( ASP 36 C ) ( ASP 36 C ) 36 ( ASP 36 C ) ASP SHOW: sum over selected elements = 1.000000 ( PRO 37 N ) 569.00 ( PRO 37 N ) ( PRO 37 N ) 37 ( PRO 37 N ) PRO SHOW: sum over selected elements = 1.000000 ( PRO 37 C ) ( PRO 37 C ) 37 ( PRO 37 C ) PRO SHOW: sum over selected elements = 1.000000 ( GLU 38 N ) 583.00 ( GLU 38 N ) ( GLU 38 N ) 38 ( GLU 38 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 38 C ) ( GLU 38 C ) 38 ( GLU 38 C ) GLU SHOW: sum over selected elements = 1.000000 ( GLY 39 N ) 598.00 ( GLY 39 N ) ( GLY 39 N ) 39 ( GLY 39 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 39 C ) ( GLY 39 C ) 39 ( GLY 39 C ) GLY SHOW: sum over selected elements = 1.000000 ( PHE 40 N ) 605.00 ( PHE 40 N ) ( PHE 40 N ) 40 ( PHE 40 N ) PHE SHOW: sum over selected elements = 1.000000 ( PHE 40 C ) ( PHE 40 C ) 40 ( PHE 40 C ) PHE SHOW: sum over selected elements = 1.000000 ( LEU 41 N ) 625.00 ( LEU 41 N ) ( LEU 41 N ) 41 ( LEU 41 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 41 C ) ( LEU 41 C ) 41 ( LEU 41 C ) LEU SHOW: sum over selected elements = 1.000000 ( GLN 42 N ) 644.00 ( GLN 42 N ) ( GLN 42 N ) 42 ( GLN 42 N ) GLN SHOW: sum over selected elements = 1.000000 ( GLN 42 C ) ( GLN 42 C ) 42 ( GLN 42 C ) GLN SHOW: sum over selected elements = 1.000000 ( ALA 43 N ) 661.00 ( ALA 43 N ) ( ALA 43 N ) 43 ( ALA 43 N ) ALA SHOW: sum over selected elements = 1.000000 ( ALA 43 C ) ( ALA 43 C ) 43 ( ALA 43 C ) ALA SHOW: sum over selected elements = 1.000000 ( SER 44 N ) 671.00 ( SER 44 N ) ( SER 44 N ) 44 ( SER 44 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 44 C ) ( SER 44 C ) 44 ( SER 44 C ) SER SHOW: sum over selected elements = 1.000000 ( LEU 45 N ) 682.00 ( LEU 45 N ) ( LEU 45 N ) 45 ( LEU 45 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 45 C ) ( LEU 45 C ) 45 ( LEU 45 C ) LEU SHOW: sum over selected elements = 1.000000 ( LYS 46 N ) 701.00 ( LYS 46 N ) ( LYS 46 N ) 46 ( LYS 46 N ) LYS SHOW: sum over selected elements = 1.000000 ( LYS 46 C ) ( LYS 46 C ) 46 ( LYS 46 C ) LYS SHOW: sum over selected elements = 1.000000 ( ASP 47 N ) 723.00 ( ASP 47 N ) ( ASP 47 N ) 47 ( ASP 47 N ) ASP SHOW: sum over selected elements = 1.000000 ( ASP 47 C ) ( ASP 47 C ) 47 ( ASP 47 C ) ASP SHOW: sum over selected elements = 1.000000 ( GLY 48 N ) 735.00 ( GLY 48 N ) ( GLY 48 N ) 48 ( GLY 48 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 48 C ) ( GLY 48 C ) 48 ( GLY 48 C ) GLY SHOW: sum over selected elements = 1.000000 ( VAL 49 N ) 742.00 ( VAL 49 N ) ( VAL 49 N ) 49 ( VAL 49 N ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 49 C ) ( VAL 49 C ) 49 ( VAL 49 C ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 50 N ) 758.00 ( VAL 50 N ) ( VAL 50 N ) 50 ( VAL 50 N ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 50 C ) ( VAL 50 C ) 50 ( VAL 50 C ) VAL SHOW: sum over selected elements = 1.000000 ( LEU 51 N ) 774.00 ( LEU 51 N ) ( LEU 51 N ) 51 ( LEU 51 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 51 C ) ( LEU 51 C ) 51 ( LEU 51 C ) LEU SHOW: sum over selected elements = 1.000000 ( CYS 52 N ) 793.00 ( CYS 52 N ) ( CYS 52 N ) 52 ( CYS 52 N ) CYS SHOW: sum over selected elements = 1.000000 ( CYS 52 C ) ( CYS 52 C ) 52 ( CYS 52 C ) CYS SHOW: sum over selected elements = 1.000000 ( ARG 53 N ) 804.00 ( ARG 53 N ) ( ARG 53 N ) 53 ( ARG 53 N ) ARG SHOW: sum over selected elements = 1.000000 ( ARG 53 C ) ( ARG 53 C ) 53 ( ARG 53 C ) ARG SHOW: sum over selected elements = 1.000000 ( LEU 54 N ) 828.00 ( LEU 54 N ) ( LEU 54 N ) 54 ( LEU 54 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 54 C ) ( LEU 54 C ) 54 ( LEU 54 C ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 55 N ) 847.00 ( LEU 55 N ) ( LEU 55 N ) 55 ( LEU 55 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 55 C ) ( LEU 55 C ) 55 ( LEU 55 C ) LEU SHOW: sum over selected elements = 1.000000 ( GLU 56 N ) 866.00 ( GLU 56 N ) ( GLU 56 N ) 56 ( GLU 56 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 56 C ) ( GLU 56 C ) 56 ( GLU 56 C ) GLU SHOW: sum over selected elements = 1.000000 ( ARG 57 N ) 881.00 ( ARG 57 N ) ( ARG 57 N ) 57 ( ARG 57 N ) ARG SHOW: sum over selected elements = 1.000000 ( ARG 57 C ) ( ARG 57 C ) 57 ( ARG 57 C ) ARG SHOW: sum over selected elements = 1.000000 ( LEU 58 N ) 905.00 ( LEU 58 N ) ( LEU 58 N ) 58 ( LEU 58 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 58 C ) ( LEU 58 C ) 58 ( LEU 58 C ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 59 N ) 924.00 ( LEU 59 N ) ( LEU 59 N ) 59 ( LEU 59 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 59 C ) ( LEU 59 C ) 59 ( LEU 59 C ) LEU SHOW: sum over selected elements = 1.000000 ( PRO 60 N ) 943.00 ( PRO 60 N ) ( PRO 60 N ) 60 ( PRO 60 N ) PRO SHOW: sum over selected elements = 1.000000 ( PRO 60 C ) ( PRO 60 C ) 60 ( PRO 60 C ) PRO SHOW: sum over selected elements = 1.000000 ( GLY 61 N ) 957.00 ( GLY 61 N ) ( GLY 61 N ) 61 ( GLY 61 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 61 C ) ( GLY 61 C ) 61 ( GLY 61 C ) GLY SHOW: sum over selected elements = 1.000000 ( THR 62 N ) 964.00 ( THR 62 N ) ( THR 62 N ) 62 ( THR 62 N ) THR SHOW: sum over selected elements = 1.000000 ( THR 62 C ) ( THR 62 C ) 62 ( THR 62 C ) THR SHOW: sum over selected elements = 1.000000 ( ILE 63 N ) 978.00 ( ILE 63 N ) ( ILE 63 N ) 63 ( ILE 63 N ) ILE SHOW: sum over selected elements = 1.000000 ( ILE 63 C ) ( ILE 63 C ) 63 ( ILE 63 C ) ILE SHOW: sum over selected elements = 1.000000 ( GLU 64 N ) 997.00 ( GLU 64 N ) ( GLU 64 N ) 64 ( GLU 64 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 64 C ) ( GLU 64 C ) 64 ( GLU 64 C ) GLU SHOW: sum over selected elements = 1.000000 ( LYS 65 N ) 1012.0 ( LYS 65 N ) ( LYS 65 N ) 65 ( LYS 65 N ) LYS SHOW: sum over selected elements = 1.000000 ( LYS 65 C ) ( LYS 65 C ) 65 ( LYS 65 C ) LYS SHOW: sum over selected elements = 1.000000 ( VAL 66 N ) 1034.0 ( VAL 66 N ) ( VAL 66 N ) 66 ( VAL 66 N ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 66 C ) ( VAL 66 C ) 66 ( VAL 66 C ) VAL SHOW: sum over selected elements = 1.000000 ( TYR 67 N ) 1050.0 ( TYR 67 N ) ( TYR 67 N ) 67 ( TYR 67 N ) TYR SHOW: sum over selected elements = 1.000000 ( TYR 67 C ) ( TYR 67 C ) 67 ( TYR 67 C ) TYR SHOW: sum over selected elements = 1.000000 ( PRO 68 N ) 1071.0 ( PRO 68 N ) ( PRO 68 N ) 68 ( PRO 68 N ) PRO SHOW: sum over selected elements = 1.000000 ( PRO 68 C ) ( PRO 68 C ) 68 ( PRO 68 C ) PRO SHOW: sum over selected elements = 1.000000 ( GLU 69 N ) 1085.0 ( GLU 69 N ) ( GLU 69 N ) 69 ( GLU 69 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 69 C ) ( GLU 69 C ) 69 ( GLU 69 C ) GLU SHOW: sum over selected elements = 1.000000 ( PRO 70 N ) 1100.0 ( PRO 70 N ) ( PRO 70 N ) 70 ( PRO 70 N ) PRO SHOW: sum over selected elements = 1.000000 ( PRO 70 C ) ( PRO 70 C ) 70 ( PRO 70 C ) PRO SHOW: sum over selected elements = 1.000000 ( ARG 71 N ) 1114.0 ( ARG 71 N ) ( ARG 71 N ) 71 ( ARG 71 N ) ARG SHOW: sum over selected elements = 1.000000 ( ARG 71 C ) ( ARG 71 C ) 71 ( ARG 71 C ) ARG SHOW: sum over selected elements = 1.000000 ( SER 72 N ) 1138.0 ( SER 72 N ) ( SER 72 N ) 72 ( SER 72 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 72 C ) ( SER 72 C ) 72 ( SER 72 C ) SER SHOW: sum over selected elements = 1.000000 ( GLU 73 N ) 1149.0 ( GLU 73 N ) ( GLU 73 N ) 73 ( GLU 73 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 73 C ) ( GLU 73 C ) 73 ( GLU 73 C ) GLU SHOW: sum over selected elements = 1.000000 ( SER 74 N ) 1164.0 ( SER 74 N ) ( SER 74 N ) 74 ( SER 74 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 74 C ) ( SER 74 C ) 74 ( SER 74 C ) SER SHOW: sum over selected elements = 1.000000 ( GLU 75 N ) 1175.0 ( GLU 75 N ) ( GLU 75 N ) 75 ( GLU 75 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 75 C ) ( GLU 75 C ) 75 ( GLU 75 C ) GLU SHOW: sum over selected elements = 1.000000 ( CYS 76 N ) 1190.0 ( CYS 76 N ) ( CYS 76 N ) 76 ( CYS 76 N ) CYS SHOW: sum over selected elements = 1.000000 ( CYS 76 C ) ( CYS 76 C ) 76 ( CYS 76 C ) CYS SHOW: sum over selected elements = 1.000000 ( LEU 77 N ) 1201.0 ( LEU 77 N ) ( LEU 77 N ) 77 ( LEU 77 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 77 C ) ( LEU 77 C ) 77 ( LEU 77 C ) LEU SHOW: sum over selected elements = 1.000000 ( SER 78 N ) 1220.0 ( SER 78 N ) ( SER 78 N ) 78 ( SER 78 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 78 C ) ( SER 78 C ) 78 ( SER 78 C ) SER SHOW: sum over selected elements = 1.000000 ( ASN 79 N ) 1231.0 ( ASN 79 N ) ( ASN 79 N ) 79 ( ASN 79 N ) ASN SHOW: sum over selected elements = 1.000000 ( ASN 79 C ) ( ASN 79 C ) 79 ( ASN 79 C ) ASN SHOW: sum over selected elements = 1.000000 ( ILE 80 N ) 1245.0 ( ILE 80 N ) ( ILE 80 N ) 80 ( ILE 80 N ) ILE SHOW: sum over selected elements = 1.000000 ( ILE 80 C ) ( ILE 80 C ) 80 ( ILE 80 C ) ILE SHOW: sum over selected elements = 1.000000 ( ARG 81 N ) 1264.0 ( ARG 81 N ) ( ARG 81 N ) 81 ( ARG 81 N ) ARG SHOW: sum over selected elements = 1.000000 ( ARG 81 C ) ( ARG 81 C ) 81 ( ARG 81 C ) ARG SHOW: sum over selected elements = 1.000000 ( GLU 82 N ) 1288.0 ( GLU 82 N ) ( GLU 82 N ) 82 ( GLU 82 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 82 C ) ( GLU 82 C ) 82 ( GLU 82 C ) GLU SHOW: sum over selected elements = 1.000000 ( PHE 83 N ) 1303.0 ( PHE 83 N ) ( PHE 83 N ) 83 ( PHE 83 N ) PHE SHOW: sum over selected elements = 1.000000 ( PHE 83 C ) ( PHE 83 C ) 83 ( PHE 83 C ) PHE SHOW: sum over selected elements = 1.000000 ( LEU 84 N ) 1323.0 ( LEU 84 N ) ( LEU 84 N ) 84 ( LEU 84 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 84 C ) ( LEU 84 C ) 84 ( LEU 84 C ) LEU SHOW: sum over selected elements = 1.000000 ( ARG 85 N ) 1342.0 ( ARG 85 N ) ( ARG 85 N ) 85 ( ARG 85 N ) ARG SHOW: sum over selected elements = 1.000000 ( ARG 85 C ) ( ARG 85 C ) 85 ( ARG 85 C ) ARG SHOW: sum over selected elements = 1.000000 ( GLY 86 N ) 1366.0 ( GLY 86 N ) ( GLY 86 N ) 86 ( GLY 86 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 86 C ) ( GLY 86 C ) 86 ( GLY 86 C ) GLY SHOW: sum over selected elements = 1.000000 ( CYS 87 N ) 1373.0 ( CYS 87 N ) ( CYS 87 N ) 87 ( CYS 87 N ) CYS SHOW: sum over selected elements = 1.000000 ( CYS 87 C ) ( CYS 87 C ) 87 ( CYS 87 C ) CYS SHOW: sum over selected elements = 1.000000 ( GLY 88 N ) 1384.0 ( GLY 88 N ) ( GLY 88 N ) 88 ( GLY 88 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 88 C ) ( GLY 88 C ) 88 ( GLY 88 C ) GLY SHOW: sum over selected elements = 1.000000 ( ALA 89 N ) 1391.0 ( ALA 89 N ) ( ALA 89 N ) 89 ( ALA 89 N ) ALA SHOW: sum over selected elements = 1.000000 ( ALA 89 C ) ( ALA 89 C ) 89 ( ALA 89 C ) ALA SHOW: sum over selected elements = 1.000000 ( SER 90 N ) 1401.0 ( SER 90 N ) ( SER 90 N ) 90 ( SER 90 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 90 C ) ( SER 90 C ) 90 ( SER 90 C ) SER SHOW: sum over selected elements = 1.000000 ( LEU 91 N ) 1412.0 ( LEU 91 N ) ( LEU 91 N ) 91 ( LEU 91 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 91 C ) ( LEU 91 C ) 91 ( LEU 91 C ) LEU SHOW: sum over selected elements = 1.000000 ( ARG 92 N ) 1431.0 ( ARG 92 N ) ( ARG 92 N ) 92 ( ARG 92 N ) ARG SHOW: sum over selected elements = 1.000000 ( ARG 92 C ) ( ARG 92 C ) 92 ( ARG 92 C ) ARG SHOW: sum over selected elements = 1.000000 ( LEU 93 N ) 1455.0 ( LEU 93 N ) ( LEU 93 N ) 93 ( LEU 93 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 93 C ) ( LEU 93 C ) 93 ( LEU 93 C ) LEU SHOW: sum over selected elements = 1.000000 ( GLU 94 N ) 1474.0 ( GLU 94 N ) ( GLU 94 N ) 94 ( GLU 94 N ) GLU SHOW: sum over selected elements = 1.000000 ( GLU 94 C ) ( GLU 94 C ) 94 ( GLU 94 C ) GLU SHOW: sum over selected elements = 1.000000 ( THR 95 N ) 1489.0 ( THR 95 N ) ( THR 95 N ) 95 ( THR 95 N ) THR SHOW: sum over selected elements = 1.000000 ( THR 95 C ) ( THR 95 C ) 95 ( THR 95 C ) THR SHOW: sum over selected elements = 1.000000 ( PHE 96 N ) 1503.0 ( PHE 96 N ) ( PHE 96 N ) 96 ( PHE 96 N ) PHE SHOW: sum over selected elements = 1.000000 ( PHE 96 C ) ( PHE 96 C ) 96 ( PHE 96 C ) PHE SHOW: sum over selected elements = 1.000000 ( ASP 97 N ) 1523.0 ( ASP 97 N ) ( ASP 97 N ) 97 ( ASP 97 N ) ASP SHOW: sum over selected elements = 1.000000 ( ASP 97 C ) ( ASP 97 C ) 97 ( ASP 97 C ) ASP SHOW: sum over selected elements = 1.000000 ( ALA 98 N ) 1535.0 ( ALA 98 N ) ( ALA 98 N ) 98 ( ALA 98 N ) ALA SHOW: sum over selected elements = 1.000000 ( ALA 98 C ) ( ALA 98 C ) 98 ( ALA 98 C ) ALA SHOW: sum over selected elements = 1.000000 ( ASN 99 N ) 1545.0 ( ASN 99 N ) ( ASN 99 N ) 99 ( ASN 99 N ) ASN SHOW: sum over selected elements = 1.000000 ( ASN 99 C ) ( ASN 99 C ) 99 ( ASN 99 C ) ASN SHOW: sum over selected elements = 1.000000 ( ASP 100 N ) 1559.0 ( ASP 100 N ) ( ASP 100 N ) 100 ( ASP 100 N ) ASP SHOW: sum over selected elements = 1.000000 ( ASP 100 C ) ( ASP 100 C ) 100 ( ASP 100 C ) ASP SHOW: sum over selected elements = 1.000000 ( LEU 101 N ) 1571.0 ( LEU 101 N ) ( LEU 101 N ) 101 ( LEU 101 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 101 C ) ( LEU 101 C ) 101 ( LEU 101 C ) LEU SHOW: sum over selected elements = 1.000000 ( TYR 102 N ) 1590.0 ( TYR 102 N ) ( TYR 102 N ) 102 ( TYR 102 N ) TYR SHOW: sum over selected elements = 1.000000 ( TYR 102 C ) ( TYR 102 C ) 102 ( TYR 102 C ) TYR SHOW: sum over selected elements = 1.000000 ( GLN 103 N ) 1611.0 ( GLN 103 N ) ( GLN 103 N ) 103 ( GLN 103 N ) GLN SHOW: sum over selected elements = 1.000000 ( GLN 103 C ) ( GLN 103 C ) 103 ( GLN 103 C ) GLN SHOW: sum over selected elements = 1.000000 ( GLY 104 N ) 1628.0 ( GLY 104 N ) ( GLY 104 N ) 104 ( GLY 104 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 104 C ) ( GLY 104 C ) 104 ( GLY 104 C ) GLY SHOW: sum over selected elements = 1.000000 ( GLN 105 N ) 1635.0 ( GLN 105 N ) ( GLN 105 N ) 105 ( GLN 105 N ) GLN SHOW: sum over selected elements = 1.000000 ( GLN 105 C ) ( GLN 105 C ) 105 ( GLN 105 C ) GLN SHOW: sum over selected elements = 1.000000 ( ASN 106 N ) 1652.0 ( ASN 106 N ) ( ASN 106 N ) 106 ( ASN 106 N ) ASN SHOW: sum over selected elements = 1.000000 ( ASN 106 C ) ( ASN 106 C ) 106 ( ASN 106 C ) ASN SHOW: sum over selected elements = 1.000000 ( PHE 107 N ) 1666.0 ( PHE 107 N ) ( PHE 107 N ) 107 ( PHE 107 N ) PHE SHOW: sum over selected elements = 1.000000 ( PHE 107 C ) ( PHE 107 C ) 107 ( PHE 107 C ) PHE SHOW: sum over selected elements = 1.000000 ( ASN 108 N ) 1686.0 ( ASN 108 N ) ( ASN 108 N ) 108 ( ASN 108 N ) ASN SHOW: sum over selected elements = 1.000000 ( ASN 108 C ) ( ASN 108 C ) 108 ( ASN 108 C ) ASN SHOW: sum over selected elements = 1.000000 ( LYS 109 N ) 1700.0 ( LYS 109 N ) ( LYS 109 N ) 109 ( LYS 109 N ) LYS SHOW: sum over selected elements = 1.000000 ( LYS 109 C ) ( LYS 109 C ) 109 ( LYS 109 C ) LYS SHOW: sum over selected elements = 1.000000 ( VAL 110 N ) 1722.0 ( VAL 110 N ) ( VAL 110 N ) 110 ( VAL 110 N ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 110 C ) ( VAL 110 C ) 110 ( VAL 110 C ) VAL SHOW: sum over selected elements = 1.000000 ( LEU 111 N ) 1738.0 ( LEU 111 N ) ( LEU 111 N ) 111 ( LEU 111 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 111 C ) ( LEU 111 C ) 111 ( LEU 111 C ) LEU SHOW: sum over selected elements = 1.000000 ( SER 112 N ) 1757.0 ( SER 112 N ) ( SER 112 N ) 112 ( SER 112 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 112 C ) ( SER 112 C ) 112 ( SER 112 C ) SER SHOW: sum over selected elements = 1.000000 ( SER 113 N ) 1768.0 ( SER 113 N ) ( SER 113 N ) 113 ( SER 113 N ) SER SHOW: sum over selected elements = 1.000000 ( SER 113 C ) ( SER 113 C ) 113 ( SER 113 C ) SER SHOW: sum over selected elements = 1.000000 ( LEU 114 N ) 1779.0 ( LEU 114 N ) ( LEU 114 N ) 114 ( LEU 114 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 114 C ) ( LEU 114 C ) 114 ( LEU 114 C ) LEU SHOW: sum over selected elements = 1.000000 ( VAL 115 N ) 1798.0 ( VAL 115 N ) ( VAL 115 N ) 115 ( VAL 115 N ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 115 C ) ( VAL 115 C ) 115 ( VAL 115 C ) VAL SHOW: sum over selected elements = 1.000000 ( THR 116 N ) 1814.0 ( THR 116 N ) ( THR 116 N ) 116 ( THR 116 N ) THR SHOW: sum over selected elements = 1.000000 ( THR 116 C ) ( THR 116 C ) 116 ( THR 116 C ) THR SHOW: sum over selected elements = 1.000000 ( LEU 117 N ) 1828.0 ( LEU 117 N ) ( LEU 117 N ) 117 ( LEU 117 N ) LEU SHOW: sum over selected elements = 1.000000 ( LEU 117 C ) ( LEU 117 C ) 117 ( LEU 117 C ) LEU SHOW: sum over selected elements = 1.000000 ( ASN 118 N ) 1847.0 ( ASN 118 N ) ( ASN 118 N ) 118 ( ASN 118 N ) ASN SHOW: sum over selected elements = 1.000000 ( ASN 118 C ) ( ASN 118 C ) 118 ( ASN 118 C ) ASN SHOW: sum over selected elements = 1.000000 ( LYS 119 N ) 1861.0 ( LYS 119 N ) ( LYS 119 N ) 119 ( LYS 119 N ) LYS SHOW: sum over selected elements = 1.000000 ( LYS 119 C ) ( LYS 119 C ) 119 ( LYS 119 C ) LYS SHOW: sum over selected elements = 1.000000 ( VAL 120 N ) 1883.0 ( VAL 120 N ) ( VAL 120 N ) 120 ( VAL 120 N ) VAL SHOW: sum over selected elements = 1.000000 ( VAL 120 C ) ( VAL 120 C ) 120 ( VAL 120 C ) VAL SHOW: sum over selected elements = 1.000000 ( THR 121 N ) 1899.0 ( THR 121 N ) ( THR 121 N ) 121 ( THR 121 N ) THR SHOW: sum over selected elements = 1.000000 ( THR 121 C ) ( THR 121 C ) 121 ( THR 121 C ) THR SHOW: sum over selected elements = 1.000000 ( ALA 122 N ) 1913.0 ( ALA 122 N ) ( ALA 122 N ) 122 ( ALA 122 N ) ALA SHOW: sum over selected elements = 1.000000 ( ALA 122 C ) ( ALA 122 C ) 122 ( ALA 122 C ) ALA SHOW: sum over selected elements = 1.000000 ( ASP 123 N ) 1923.0 ( ASP 123 N ) ( ASP 123 N ) 123 ( ASP 123 N ) ASP SHOW: sum over selected elements = 1.000000 ( ASP 123 C ) ( ASP 123 C ) 123 ( ASP 123 C ) ASP SHOW: sum over selected elements = 1.000000 ( ILE 124 N ) 1935.0 ( ILE 124 N ) ( ILE 124 N ) 124 ( ILE 124 N ) ILE SHOW: sum over selected elements = 1.000000 ( ILE 124 C ) ( ILE 124 C ) 124 ( ILE 124 C ) ILE SHOW: sum over selected elements = 1.000000 ( GLY 125 N ) 1954.0 ( GLY 125 N ) ( GLY 125 N ) 125 ( GLY 125 N ) GLY SHOW: sum over selected elements = 1.000000 ( GLY 125 C ) ( GLY 125 C ) 125 ( GLY 125 C ) GLY SHOW: sum over selected elements = 1.000000 ( LEU 126 N ) 1961.0 ( LEU 126 N ) ( LEU 126 N ) 126 ( LEU 126 N ) LEU SHOW: sum over selected elements = 1.000000 CNSsolve> CNSsolve> do (refy=0) (all) SELRPN: 1980 atoms have been selected out of 1980 CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop nucl NEXTCD: condition evaluated as true CNSsolve> if ( &exist_nucl_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%nucl_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &nucl_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> if ( &nucl_separate_$counter = true ) then CNSsolve> separate=true CNSsolve> end if CNSsolve> @@&nucl_link_infile CNSsolve> coordinates @@&nucl_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &nucl_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop nucl CNSsolve> while ( $done = false ) loop nucl NEXTCD: condition evaluated as true CNSsolve> if ( &exist_nucl_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%nucl_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &nucl_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> if ( &nucl_separate_$counter = true ) then CNSsolve> separate=true CNSsolve> end if CNSsolve> @@&nucl_link_infile CNSsolve> coordinates @@&nucl_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &nucl_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop nucl CNSsolve> while ( $done = false ) loop nucl NEXTCD: condition evaluated as false CNSsolve> if ( &exist_nucl_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%nucl_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &nucl_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> if ( &nucl_separate_$counter = true ) then CNSsolve> separate=true CNSsolve> end if CNSsolve> @@&nucl_link_infile CNSsolve> coordinates @@&nucl_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &nucl_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop nucl CNSsolve> CNSsolve> {* any special nucleic acid patches can be applied here *} CNSsolve>{===>} CNSsolve> CNSsolve>{<===} CNSsolve> CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop nucl NEXTCD: condition evaluated as true CNSsolve> if ( &exist_nucl_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%nucl_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> coor CNSsolve> if ( &nucl_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&nucl_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &nucl_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&nucl_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop nucl CNSsolve> while ( $done = false ) loop nucl NEXTCD: condition evaluated as true CNSsolve> if ( &exist_nucl_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%nucl_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &nucl_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&nucl_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &nucl_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&nucl_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop nucl CNSsolve> while ( $done = false ) loop nucl NEXTCD: condition evaluated as false CNSsolve> if ( &exist_nucl_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%nucl_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &nucl_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&nucl_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &nucl_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&nucl_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop nucl CNSsolve> CNSsolve> {- patching of RNA to DNA -} CNSsolve> evaluate ($counter=0) EVALUATE: symbol $COUNTER set to 0.00000 (real) CNSsolve> for $id in id ( tag and (&dna_sele) ) loop dna SELRPN: 0 atoms have been selected out of 1980 CNSsolve> evaluate ($counter=$counter+1) CNSsolve> show (segid) (id $id) CNSsolve> evaluate ($dna.segid.$counter=$result) CNSsolve> show (resid) (id $id) CNSsolve> evaluate ($dna.resid.$counter=$result) CNSsolve> end loop dna CNSsolve> evaluate ($dna.num=$counter) EVALUATE: symbol $DNA.NUM set to 0.00000 (real) CNSsolve> CNSsolve> evaluate ($counter=0) EVALUATE: symbol $COUNTER set to 0.00000 (real) CNSsolve> while ($counter < $dna.num) loop dnap NEXTCD: condition evaluated as false CNSsolve> evaluate ($counter=$counter+1) CNSsolve> patch deox reference=nil=(segid $dna.segid.$counter and CNSsolve> resid $dna.resid.$counter) end CNSsolve> end loop dnap CNSsolve> CNSsolve> do (refy=0) (all) SELRPN: 1980 atoms have been selected out of 1980 CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop water NEXTCD: condition evaluated as true CNSsolve> if ( &exist_water_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%water_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &water_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&water_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &water_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop water CNSsolve> while ( $done = false ) loop water NEXTCD: condition evaluated as true CNSsolve> if ( &exist_water_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%water_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &water_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&water_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &water_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop water CNSsolve> while ( $done = false ) loop water NEXTCD: condition evaluated as false CNSsolve> if ( &exist_water_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%water_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &water_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&water_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &water_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop water CNSsolve> CNSsolve> {* any special water patches can be applied here *} CNSsolve>{===>} CNSsolve> CNSsolve>{<===} CNSsolve> CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop water NEXTCD: condition evaluated as true CNSsolve> if ( &exist_water_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%water_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> coor CNSsolve> if ( &water_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&water_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &water_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&water_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop water CNSsolve> while ( $done = false ) loop water NEXTCD: condition evaluated as true CNSsolve> if ( &exist_water_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%water_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &water_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&water_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &water_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&water_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop water CNSsolve> while ( $done = false ) loop water NEXTCD: condition evaluated as false CNSsolve> if ( &exist_water_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%water_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &water_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&water_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &water_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&water_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop water CNSsolve> CNSsolve> do (refy=0) (all) SELRPN: 1980 atoms have been selected out of 1980 CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop carbo NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%carbo_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &carbo_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&carbo_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &carbo_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop carbo CNSsolve> while ( $done = false ) loop carbo NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%carbo_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &carbo_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&carbo_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &carbo_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop carbo CNSsolve> while ( $done = false ) loop carbo NEXTCD: condition evaluated as false CNSsolve> if ( &exist_carbo_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%carbo_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &carbo_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&carbo_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &carbo_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop carbo CNSsolve> CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop carbo NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%carbo_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> coor CNSsolve> if ( &carbo_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&carbo_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &carbo_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&carbo_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop carbo CNSsolve> while ( $done = false ) loop carbo NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%carbo_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &carbo_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&carbo_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &carbo_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&carbo_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop carbo CNSsolve> while ( $done = false ) loop carbo NEXTCD: condition evaluated as false CNSsolve> if ( &exist_carbo_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%carbo_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &carbo_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&carbo_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &carbo_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&carbo_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop carbo CNSsolve> CNSsolve> evaluate ($carc=1) EVALUATE: symbol $CARC set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop cabr NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_use_$carc = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &carbo_use_$carc = true ) then NEXTCD: condition evaluated as false CNSsolve> evaluate ($segidtmp1=capitalize(&carbo_i_segid_$carc)) CNSsolve> evaluate ($segidtmp2=capitalize(&carbo_j_segid_$carc)) CNSsolve> patch &carbo_patch_$carc CNSsolve> reference=-=(segid $QUOTE%segidtmp1 and CNSsolve> resid &carbo_i_resid_$carc) CNSsolve> reference=+=(segid $QUOTE%segidtmp2 and CNSsolve> resid &carbo_j_resid_$carc) CNSsolve> end CNSsolve> end if CNSsolve> evaluate ($carc=$carc+1) EVALUATE: symbol $CARC set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop cabr CNSsolve> while ( $done = false ) loop cabr NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_use_$carc = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &carbo_use_$carc = true ) then NEXTCD: condition evaluated as false CNSsolve> evaluate ($segidtmp1=capitalize(&carbo_i_segid_$carc)) CNSsolve> evaluate ($segidtmp2=capitalize(&carbo_j_segid_$carc)) CNSsolve> patch &carbo_patch_$carc CNSsolve> reference=-=(segid $QUOTE%segidtmp1 and CNSsolve> resid &carbo_i_resid_$carc) CNSsolve> reference=+=(segid $QUOTE%segidtmp2 and CNSsolve> resid &carbo_j_resid_$carc) CNSsolve> end CNSsolve> end if CNSsolve> evaluate ($carc=$carc+1) EVALUATE: symbol $CARC set to 3.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop cabr CNSsolve> while ( $done = false ) loop cabr NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_use_$carc = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &carbo_use_$carc = true ) then NEXTCD: condition evaluated as false CNSsolve> evaluate ($segidtmp1=capitalize(&carbo_i_segid_$carc)) CNSsolve> evaluate ($segidtmp2=capitalize(&carbo_j_segid_$carc)) CNSsolve> patch &carbo_patch_$carc CNSsolve> reference=-=(segid $QUOTE%segidtmp1 and CNSsolve> resid &carbo_i_resid_$carc) CNSsolve> reference=+=(segid $QUOTE%segidtmp2 and CNSsolve> resid &carbo_j_resid_$carc) CNSsolve> end CNSsolve> end if CNSsolve> evaluate ($carc=$carc+1) EVALUATE: symbol $CARC set to 4.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop cabr CNSsolve> while ( $done = false ) loop cabr NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_use_$carc = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &carbo_use_$carc = true ) then NEXTCD: condition evaluated as false CNSsolve> evaluate ($segidtmp1=capitalize(&carbo_i_segid_$carc)) CNSsolve> evaluate ($segidtmp2=capitalize(&carbo_j_segid_$carc)) CNSsolve> patch &carbo_patch_$carc CNSsolve> reference=-=(segid $QUOTE%segidtmp1 and CNSsolve> resid &carbo_i_resid_$carc) CNSsolve> reference=+=(segid $QUOTE%segidtmp2 and CNSsolve> resid &carbo_j_resid_$carc) CNSsolve> end CNSsolve> end if CNSsolve> evaluate ($carc=$carc+1) EVALUATE: symbol $CARC set to 5.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop cabr CNSsolve> while ( $done = false ) loop cabr NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_use_$carc = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &carbo_use_$carc = true ) then NEXTCD: condition evaluated as false CNSsolve> evaluate ($segidtmp1=capitalize(&carbo_i_segid_$carc)) CNSsolve> evaluate ($segidtmp2=capitalize(&carbo_j_segid_$carc)) CNSsolve> patch &carbo_patch_$carc CNSsolve> reference=-=(segid $QUOTE%segidtmp1 and CNSsolve> resid &carbo_i_resid_$carc) CNSsolve> reference=+=(segid $QUOTE%segidtmp2 and CNSsolve> resid &carbo_j_resid_$carc) CNSsolve> end CNSsolve> end if CNSsolve> evaluate ($carc=$carc+1) EVALUATE: symbol $CARC set to 6.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop cabr CNSsolve> while ( $done = false ) loop cabr NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_use_$carc = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &carbo_use_$carc = true ) then NEXTCD: condition evaluated as false CNSsolve> evaluate ($segidtmp1=capitalize(&carbo_i_segid_$carc)) CNSsolve> evaluate ($segidtmp2=capitalize(&carbo_j_segid_$carc)) CNSsolve> patch &carbo_patch_$carc CNSsolve> reference=-=(segid $QUOTE%segidtmp1 and CNSsolve> resid &carbo_i_resid_$carc) CNSsolve> reference=+=(segid $QUOTE%segidtmp2 and CNSsolve> resid &carbo_j_resid_$carc) CNSsolve> end CNSsolve> end if CNSsolve> evaluate ($carc=$carc+1) EVALUATE: symbol $CARC set to 7.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop cabr CNSsolve> while ( $done = false ) loop cabr NEXTCD: condition evaluated as true CNSsolve> if ( &exist_carbo_use_$carc = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &carbo_use_$carc = true ) then CNSsolve> evaluate ($segidtmp1=capitalize(&carbo_i_segid_$carc)) CNSsolve> evaluate ($segidtmp2=capitalize(&carbo_j_segid_$carc)) CNSsolve> patch &carbo_patch_$carc CNSsolve> reference=-=(segid $QUOTE%segidtmp1 and CNSsolve> resid &carbo_i_resid_$carc) CNSsolve> reference=+=(segid $QUOTE%segidtmp2 and CNSsolve> resid &carbo_j_resid_$carc) CNSsolve> end CNSsolve> end if CNSsolve> evaluate ($carc=$carc+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop cabr CNSsolve> while ( $done = false ) loop cabr NEXTCD: condition evaluated as false CNSsolve> if ( &exist_carbo_use_$carc = true ) then CNSsolve> if ( &carbo_use_$carc = true ) then CNSsolve> evaluate ($segidtmp1=capitalize(&carbo_i_segid_$carc)) CNSsolve> evaluate ($segidtmp2=capitalize(&carbo_j_segid_$carc)) CNSsolve> patch &carbo_patch_$carc CNSsolve> reference=-=(segid $QUOTE%segidtmp1 and CNSsolve> resid &carbo_i_resid_$carc) CNSsolve> reference=+=(segid $QUOTE%segidtmp2 and CNSsolve> resid &carbo_j_resid_$carc) CNSsolve> end CNSsolve> end if CNSsolve> evaluate ($carc=$carc+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop cabr CNSsolve> CNSsolve> {* any special carbohydrate patches can be applied here *} CNSsolve>{===>} CNSsolve> CNSsolve>{<===} CNSsolve> CNSsolve> do (refy=0) (all) SELRPN: 1980 atoms have been selected out of 1980 CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop prost NEXTCD: condition evaluated as true CNSsolve> if ( &exist_prost_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%prost_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &prost_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&prost_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &prost_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop prost CNSsolve> while ( $done = false ) loop prost NEXTCD: condition evaluated as true CNSsolve> if ( &exist_prost_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%prost_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &prost_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&prost_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &prost_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop prost CNSsolve> while ( $done = false ) loop prost NEXTCD: condition evaluated as false CNSsolve> if ( &exist_prost_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%prost_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &prost_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&prost_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &prost_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop prost CNSsolve> CNSsolve> {* any special prosthetic group patches can be applied here *} CNSsolve>{===>} CNSsolve> CNSsolve>{<===} CNSsolve> CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop prost NEXTCD: condition evaluated as true CNSsolve> if ( &exist_prost_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%prost_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> coor CNSsolve> if ( &prost_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&prost_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &prost_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&prost_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop prost CNSsolve> while ( $done = false ) loop prost NEXTCD: condition evaluated as true CNSsolve> if ( &exist_prost_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%prost_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &prost_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&prost_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &prost_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&prost_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop prost CNSsolve> while ( $done = false ) loop prost NEXTCD: condition evaluated as false CNSsolve> if ( &exist_prost_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%prost_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &prost_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&prost_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &prost_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&prost_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop prost CNSsolve> CNSsolve> do (refy=0) (all) SELRPN: 1980 atoms have been selected out of 1980 CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop liga NEXTCD: condition evaluated as true CNSsolve> if ( &exist_lig_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%lig_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &lig_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&lig_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &lig_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop liga CNSsolve> while ( $done = false ) loop liga NEXTCD: condition evaluated as true CNSsolve> if ( &exist_lig_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%lig_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &lig_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&lig_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &lig_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop liga CNSsolve> while ( $done = false ) loop liga NEXTCD: condition evaluated as false CNSsolve> if ( &exist_lig_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%lig_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &lig_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&lig_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &lig_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop liga CNSsolve> CNSsolve> {* any special ligand patches can be applied here *} CNSsolve>{===>} CNSsolve> CNSsolve>{<===} CNSsolve> CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop liga NEXTCD: condition evaluated as true CNSsolve> if ( &exist_lig_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%lig_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> coor CNSsolve> if ( &lig_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&lig_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &lig_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&lig_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop liga CNSsolve> while ( $done = false ) loop liga NEXTCD: condition evaluated as true CNSsolve> if ( &exist_lig_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%lig_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &lig_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&lig_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &lig_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&lig_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop liga CNSsolve> while ( $done = false ) loop liga NEXTCD: condition evaluated as false CNSsolve> if ( &exist_lig_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%lig_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &lig_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&lig_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &lig_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&lig_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop liga CNSsolve> CNSsolve> do (refy=0) (all) SELRPN: 1980 atoms have been selected out of 1980 CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop ion NEXTCD: condition evaluated as true CNSsolve> if ( &exist_ion_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%ion_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &ion_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&ion_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &ion_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop ion CNSsolve> while ( $done = false ) loop ion NEXTCD: condition evaluated as true CNSsolve> if ( &exist_ion_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%ion_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &ion_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&ion_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &ion_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop ion CNSsolve> while ( $done = false ) loop ion NEXTCD: condition evaluated as false CNSsolve> if ( &exist_ion_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%ion_coordinate_infile_$counter = false ) then CNSsolve> do (refx=0) (all) CNSsolve> segment CNSsolve> chain CNSsolve> if ( &ion_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> coordinates @@&ion_coordinate_infile_$counter CNSsolve> end CNSsolve> end CNSsolve> if ( &ion_rename_$counter = true ) then CNSsolve> do (refy=$counter) (attr refx=9999) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop ion CNSsolve> CNSsolve> {* any special ion patches can be applied here *} CNSsolve>{===>} CNSsolve> CNSsolve>{<===} CNSsolve> CNSsolve> evaluate ($counter=1) EVALUATE: symbol $COUNTER set to 1.00000 (real) CNSsolve> evaluate ($done=false) EVALUATE: symbol $DONE set to FALSE (logical) CNSsolve> while ( $done = false ) loop ion NEXTCD: condition evaluated as true CNSsolve> if ( &exist_ion_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as true CNSsolve> if ( &BLANK%ion_coordinate_infile_$counter = false ) then NEXTCD: condition evaluated as false CNSsolve> coor CNSsolve> if ( &ion_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&ion_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &ion_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&ion_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) EVALUATE: symbol $COUNTER set to 2.00000 (real) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop ion CNSsolve> while ( $done = false ) loop ion NEXTCD: condition evaluated as true CNSsolve> if ( &exist_ion_coordinate_infile_$counter = true ) then NEXTCD: condition evaluated as false CNSsolve> if ( &BLANK%ion_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &ion_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&ion_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &ion_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&ion_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) EVALUATE: symbol $DONE set to TRUE (logical) CNSsolve> end if CNSsolve> end loop ion CNSsolve> while ( $done = false ) loop ion NEXTCD: condition evaluated as false CNSsolve> if ( &exist_ion_coordinate_infile_$counter = true ) then CNSsolve> if ( &BLANK%ion_coordinate_infile_$counter = false ) then CNSsolve> coor CNSsolve> if ( &ion_convert_$counter = true ) then CNSsolve> convert=true CNSsolve> end if CNSsolve> @@&ion_coordinate_infile_$counter CNSsolve> set echo=off end CNSsolve> show sum(1) ( not(hydrogen) and not(known) ) CNSsolve> if ( $select = 0 ) then CNSsolve> display %INFO: There are no coordinates missing for non-hydrogen atoms CNSsolve> end if CNSsolve> set echo=on end CNSsolve> if ( &ion_rename_$counter = true ) then CNSsolve> do (segid=capitalize(&ion_segid_$counter)) (attr refy=$counter) CNSsolve> end if CNSsolve> end if CNSsolve> evaluate ($counter=$counter+1) CNSsolve> else CNSsolve> evaluate ($done=true) CNSsolve> end if CNSsolve> end loop ion CNSsolve> CNSsolve> {* any final patches can be applied here *} CNSsolve>{===>} CNSsolve> CNSsolve>{<===} CNSsolve> CNSsolve> if (&hydrogen_flag=false) then NEXTCD: condition evaluated as false CNSsolve> delete selection=( hydrogen ) end CNSsolve> end if CNSsolve> CNSsolve> delete selection=( &atom_delete ) end SELRPN: 0 atoms have been selected out of 1980 SCRATC-warning: STORe selections erased. Status of internal molecular topology database: -> NATOM= 1980(MAXA= 200000) NBOND= 1999(MAXB= 200000) -> NTHETA= 3620(MAXT= 400000) NGRP= 128(MAXGRP= 200000) -> NPHI= 3098(MAXP= 400000) NIMPHI= 1021(MAXIMP= 200000) -> NNB= 852(MAXNB= 200000) CNSsolve> CNSsolve> identity (store1) (none) SELRPN: 0 atoms have been selected out of 1980 CNSsolve> CNSsolve> identity (store1) (&atom_build) SELRPN: 293 atoms have been selected out of 1980 CNSsolve> if ( &hydrogen_build = "all" ) then NEXTCD: condition evaluated as true CNSsolve> identity (store1) (store1 or hydrogen) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> elseif ( &hydrogen_build = "unknown" ) then CNSsolve> identity (store1) (store1 or (not(known) and hydrogen)) CNSsolve> end if CNSsolve> CNSsolve> show sum(1) (store1) SELRPN: 995 atoms have been selected out of 1980 SHOW: sum over selected elements = 995.000000 CNSsolve> evaluate ($tobuild=$result) EVALUATE: symbol $TOBUILD set to 995.000 (real) CNSsolve> CNSsolve> if ( $tobuild > 0 ) then NEXTCD: condition evaluated as true CNSsolve> CNSsolve> fix selection=(not(store1)) end SELRPN: 985 atoms have been selected out of 1980 CNSsolve> CNSsolve> show sum(1) (store1) SELRPN: 995 atoms have been selected out of 1980 SHOW: sum over selected elements = 995.000000 CNSsolve> evaluate ($moving=$result) EVALUATE: symbol $MOVING set to 995.000 (real) CNSsolve> CNSsolve> if ( $moving > 0 ) then NEXTCD: condition evaluated as true CNSsolve> for $id in id (tag and byres(store1)) loop avco SELRPN: 126 atoms have been selected out of 1980 FOR ID LOOP: symbol ID set to 1.00000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 19.960929 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 19.9609 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = -24.559214 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -24.5592 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = -7.586429 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to -7.58643 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 20.0000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 15.181000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.1810 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -26.291600 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -26.2916 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -9.424400 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to -9.42440 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 27.0000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 10.144200 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 10.1442 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -26.990933 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -26.9909 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -10.652867 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to -10.6529 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 45.0000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 11.766867 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 11.7669 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -25.209333 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -25.2093 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -5.247067 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to -5.24707 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 63.0000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 7.136267 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 7.13627 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -23.575000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -23.5750 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -3.308200 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to -3.30820 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 81.0000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 10.344400 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 10.3444 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -19.514467 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -19.5145 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 0.060600 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 0.606000E-01 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 99.0000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 9.073267 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 9.07327 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -25.271133 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -25.2711 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 1.766600 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 1.76660 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 117.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 12.323467 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 12.3235 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -24.282933 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -24.2829 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 5.287467 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 5.28747 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 135.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 10.225111 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 10.2251 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -19.395667 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -19.3957 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 5.888333 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 5.88833 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 146.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 11.985667 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 11.9857 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -20.985400 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -20.9854 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 10.250333 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 10.2503 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 164.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 13.502214 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 13.5022 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = -15.019214 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -15.0192 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 11.308143 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 11.3081 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 181.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 16.251833 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 16.2518 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -18.029417 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -18.0294 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 16.205833 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 16.2058 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 195.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 11.789222 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 11.7892 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -20.294000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -20.2940 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 16.852778 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 16.8528 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 206.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 14.970000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 14.9700 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -20.870889 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -20.8709 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 20.234000 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 20.2340 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 216.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 15.104833 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.1048 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -15.914333 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -15.9143 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 20.243417 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 20.2434 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 231.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 9.237786 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 9.23779 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = -17.837857 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -17.8379 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 20.110429 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 20.1104 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 248.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 10.981385 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 10.9814 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -21.501923 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -21.5019 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 22.815385 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 22.8154 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 262.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 14.369600 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 14.3696 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -19.157067 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -19.1571 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 25.807667 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 25.8077 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 278.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 10.744385 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 10.7444 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -15.310000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -15.3100 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 26.475077 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 26.4751 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 292.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 22 atoms have been selected out of 1980 SHOW: average of selected elements = 6.005545 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 6.00555 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 22 atoms have been selected out of 1980 SHOW: average of selected elements = -20.907909 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -20.9079 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 22 atoms have been selected out of 1980 SHOW: average of selected elements = 25.485136 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 25.4851 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 10 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 10 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 10 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 316.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 9.772294 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 9.77229 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -22.547588 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -22.5476 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 28.387471 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 28.3875 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 335.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 11.447059 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 11.4471 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -17.019000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -17.0190 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 31.083941 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 31.0839 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 354.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 6.173385 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 6.17338 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -15.778308 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -15.7783 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 29.942231 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 29.9422 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 368.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 4.298294 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 4.29829 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -20.155471 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -20.1555 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 30.280882 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 30.2809 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 387.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 6.969400 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 6.96940 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -19.940200 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -19.9402 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 35.058000 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 35.0580 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 394.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 7.518600 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 7.51860 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -23.413867 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -23.4139 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 33.318533 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 33.3185 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 410.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 13.148882 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 13.1489 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -22.578235 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -22.5782 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 32.081765 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 32.0818 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 429.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 15.576250 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.5762 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -20.204750 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -20.2048 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 35.386500 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 35.3865 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 444.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 15.247444 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.2474 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -16.178000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -16.1780 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 32.928667 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 32.9287 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 455.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 18.562182 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 18.5622 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = -15.806273 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -15.8063 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 31.072364 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 31.0724 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 469.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 22.971235 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 22.9712 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -14.889647 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -14.8896 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 35.509941 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 35.5099 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 491.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 24.379471 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 24.3795 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -12.311471 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -12.3115 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 29.371529 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 29.3715 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 513.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 20.715769 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 20.7158 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -11.134231 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -11.1342 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 25.688308 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 25.6883 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 527.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 20.546765 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 20.5468 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -16.881412 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -16.8814 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 25.654647 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 25.6546 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 546.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 23.747111 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 23.7471 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -15.449889 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -15.4499 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 21.495111 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 21.4951 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 557.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 23.052000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 23.0520 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = -19.853500 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -19.8535 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 20.897600 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 20.8976 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 569.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 18.789273 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 18.7893 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = -19.518273 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -19.5183 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 21.519636 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 21.5196 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 583.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 19.481000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 19.4810 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -22.950917 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -22.9509 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 18.630000 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 18.6300 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 598.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 21.315200 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 21.3152 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -24.948000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -24.9480 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 22.905800 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 22.9058 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 605.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = 19.444611 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 19.4446 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = -21.916722 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -21.9167 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = 27.608167 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.6082 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 625.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 15.548824 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.5488 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -23.821235 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -23.8212 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 24.216824 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 24.2168 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 644.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 19.253500 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 19.2535 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = -29.761429 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -29.7614 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 24.056500 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 24.0565 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 661.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 20.465667 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 20.4657 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -27.957000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -27.9570 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 27.776222 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.7762 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 671.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 16.520889 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 16.5209 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -26.922556 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -26.9226 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 29.793222 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 29.7932 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 682.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 14.025824 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 14.0258 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -28.932471 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -28.9325 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 26.106588 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 26.1066 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 701.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 20.210706 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 20.2107 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -33.554824 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -33.5548 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 28.828765 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 28.8288 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 723.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 16.379800 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 16.3798 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = -32.429900 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -32.4299 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 32.111100 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 32.1111 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 735.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 12.133200 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 12.1332 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -32.279000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -32.2790 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 30.873800 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 30.8738 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 742.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 12.050733 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 12.0507 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -31.326800 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -31.3268 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 35.225267 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 35.2253 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 758.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 11.009200 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 11.0092 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -27.128533 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -27.1285 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 32.119333 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 32.1193 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 774.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 9.646118 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 9.64612 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -30.663059 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -30.6631 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 27.893294 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.8933 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 793.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 6.223333 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 6.22333 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -32.018333 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -32.0183 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 31.977222 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 31.9772 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 804.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 7.301950 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 7.30195 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = -28.082400 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -28.0824 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 36.387700 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 36.3877 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 828.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 5.279059 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 5.27906 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -25.842941 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -25.8429 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 28.489706 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 28.4897 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 847.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 1.367235 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 1.36724 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -30.623765 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -30.6238 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 28.687000 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 28.6870 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 866.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 0.382167 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 0.382167 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -29.026667 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -29.0267 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 33.671750 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 33.6718 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 881.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 1.286100 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 1.28610 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = -22.297050 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -22.2970 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 33.222650 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 33.2227 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 905.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -0.514647 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -0.514647 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -24.273235 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -24.2732 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 27.738059 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.7381 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 924.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -3.396529 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -3.39653 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -29.112353 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -29.1124 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 27.928235 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.9282 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 943.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = -4.301000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -4.30100 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = -28.017273 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -28.0173 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 33.219455 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 33.2195 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 957.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -4.230000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -4.23000 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -32.595000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -32.5950 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 34.227600 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 34.2276 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 964.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -2.317308 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -2.31731 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -34.053231 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -34.0532 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 30.697077 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 30.6971 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 978.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 1.850000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 1.85000 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -34.434941 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -34.4349 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 33.431706 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 33.4317 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 997.000 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -0.368750 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -0.368750 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -39.304083 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -39.3041 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 36.529333 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 36.5293 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1012.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 5.372765 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 5.37276 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -39.453706 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -39.4537 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 38.788176 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 38.7882 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1034.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 7.233200 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 7.23320 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -35.078400 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -35.0784 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 36.635133 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 36.6351 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1050.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 19 atoms have been selected out of 1980 SHOW: average of selected elements = 10.228158 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 10.2282 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 19 atoms have been selected out of 1980 SHOW: average of selected elements = -39.348737 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -39.3487 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 19 atoms have been selected out of 1980 SHOW: average of selected elements = 36.723789 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 36.7238 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1071.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 11.434545 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 11.4345 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = -33.796818 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -33.7968 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 39.596364 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 39.5964 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1085.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 14.481250 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 14.4812 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -35.769750 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -35.7698 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 41.847833 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 41.8478 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1100.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 16.413364 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 16.4134 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = -37.012636 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -37.0126 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 11 atoms have been selected out of 1980 SHOW: average of selected elements = 37.440273 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 37.4403 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1114.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 20.471650 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 20.4717 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = -39.479050 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -39.4791 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 41.606300 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 41.6063 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1138.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 18.822000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 18.8220 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -42.913000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -42.9130 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 36.169333 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 36.1693 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1149.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 19.548833 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 19.5488 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -42.505500 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -42.5055 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 30.827917 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 30.8279 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1164.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 15.010222 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.0102 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -44.511556 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -44.5116 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 31.996111 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 31.9961 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1175.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 13.561000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 13.5610 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -41.247500 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -41.2475 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 35.625083 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 35.6251 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1190.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 16.431778 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 16.4318 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -38.295000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -38.2950 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 32.271222 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 32.2712 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1201.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 15.304647 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.3046 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -40.532706 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -40.5327 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 27.860118 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.8601 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1220.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 10.710000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 10.7100 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -40.614222 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -40.6142 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 31.159889 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 31.1599 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1231.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 11.120000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 11.1200 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -36.016417 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -36.0164 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 32.361583 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 32.3616 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1245.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 11.737294 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 11.7373 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -35.766176 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -35.7662 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 26.609882 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 26.6099 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1264.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 9.125050 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 9.12505 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = -42.102150 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -42.1022 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 27.382700 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.3827 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1288.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 5.228333 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 5.22833 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -38.309333 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -38.3093 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 30.239417 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 30.2394 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1303.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = 5.741389 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 5.74139 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = -32.144944 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -32.1449 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = 26.354222 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 26.3542 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1323.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 6.848118 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 6.84812 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -36.162529 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -36.1625 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 23.333824 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.3338 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1342.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 1.901650 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 1.90165 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = -40.838800 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -40.8388 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 27.790450 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.7904 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1366.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -0.074000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -0.740000E-01 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -35.380800 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -35.3808 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 25.988200 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 25.9882 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1373.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 0.993556 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 0.993556 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -32.482333 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -32.4823 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 23.623222 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.6232 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1384.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -0.537800 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -0.537800 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -35.946000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -35.9460 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 21.303800 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 21.3038 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1391.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -3.066111 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -3.06611 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -37.124000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -37.1240 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 23.880333 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.8803 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1401.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -5.702889 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -5.70289 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -33.603222 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -33.6032 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 23.940778 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.9408 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1412.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -3.127647 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -3.12765 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -29.897941 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -29.8979 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 21.525235 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 21.5252 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1431.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = -5.290400 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -5.29040 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = -36.267500 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -36.2675 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 20 atoms have been selected out of 1980 SHOW: average of selected elements = 17.859950 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 17.8600 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1455.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 1.090471 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 1.09047 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -31.240471 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -31.2405 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 19.072647 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 19.0726 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1474.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 3.028500 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 3.02850 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -32.631833 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -32.6318 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 15.046500 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 15.0465 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1489.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 5.063154 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 5.06315 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -35.457154 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -35.4572 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 19.076615 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 19.0766 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1503.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = 10.195167 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 10.1952 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = -34.520111 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -34.5201 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = 20.253778 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 20.2538 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1523.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 12.036800 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 12.0368 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = -39.409100 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -39.4091 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 19.713600 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 19.7136 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1535.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 12.959556 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 12.9596 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -38.249889 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -38.2499 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 23.921778 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.9218 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1545.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 15.765333 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.7653 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -40.691833 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -40.6918 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 21.873417 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 21.8734 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1559.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 16.159200 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 16.1592 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = -36.871400 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -36.8714 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 18.661200 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 18.6612 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1571.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 15.491529 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 15.4915 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -33.100059 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -33.1001 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 23.559647 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.5596 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1590.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 19 atoms have been selected out of 1980 SHOW: average of selected elements = 19.208684 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 19.2087 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 19 atoms have been selected out of 1980 SHOW: average of selected elements = -37.432895 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -37.4329 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 19 atoms have been selected out of 1980 SHOW: average of selected elements = 27.184000 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 27.1840 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1611.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 21.749357 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 21.7494 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = -38.159643 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -38.1596 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 22.878286 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 22.8783 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1628.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 20.579400 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 20.5794 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -33.642800 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -33.6428 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 20.131600 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 20.1316 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1635.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 20.950286 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 20.9503 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = -37.171429 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -37.1714 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 14 atoms have been selected out of 1980 SHOW: average of selected elements = 17.458857 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 17.4589 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 8 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1652.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 17.127083 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 17.1271 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -34.391917 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -34.3919 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 14.913250 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 14.9132 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1666.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = 16.746111 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 16.7461 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = -28.034000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -28.0340 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 18 atoms have been selected out of 1980 SHOW: average of selected elements = 19.036889 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 19.0369 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1686.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 14.219333 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 14.2193 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -30.228250 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -30.2283 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 13.793917 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 13.7939 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1700.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 12.360176 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 12.3602 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -34.421647 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -34.4216 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 15.588000 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 15.5880 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1722.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 12.955800 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 12.9558 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -30.626267 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -30.6263 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 20.445067 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 20.4451 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1738.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 12.884353 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 12.8844 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -25.164059 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -25.1641 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 18.214471 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 18.2145 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1757.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 8.874222 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 8.87422 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -27.729889 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -27.7299 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 15.699222 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 15.6992 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1768.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 7.192111 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 7.19211 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -29.867000 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -29.8670 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 19.487444 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 19.4874 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1779.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 9.007000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 9.00700 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -26.769471 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -26.7695 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 22.700118 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 22.7001 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1798.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 7.303000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 7.30300 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -23.272400 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -23.2724 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 17.971800 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 17.9718 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1814.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 3.117077 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 3.11708 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -26.683462 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -26.6835 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 17.268385 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 17.2684 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1828.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 2.457941 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 2.45794 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -26.904882 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -26.9049 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 23.315882 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.3159 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1847.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 2.680000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 2.68000 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = -21.225083 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -21.2251 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 12 atoms have been selected out of 1980 SHOW: average of selected elements = 22.029667 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 22.0297 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 6 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1861.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 1.590706 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to 1.59071 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -21.600588 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -21.6006 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 16.135529 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 16.1355 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1883.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -1.518333 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -1.51833 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = -25.807133 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -25.8071 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 15 atoms have been selected out of 1980 SHOW: average of selected elements = 18.997333 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 18.9973 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 9 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1899.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -2.131385 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -2.13138 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = -23.525615 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -23.5256 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 13 atoms have been selected out of 1980 SHOW: average of selected elements = 23.018077 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.0181 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 7 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1913.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -2.375000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -2.37500 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = -19.182778 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -19.1828 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 9 atoms have been selected out of 1980 SHOW: average of selected elements = 20.553444 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 20.5534 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 5 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1923.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = -6.298200 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -6.29820 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = -20.377800 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -20.3778 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 10 atoms have been selected out of 1980 SHOW: average of selected elements = 18.061700 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 18.0617 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 4 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1935.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -7.213588 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -7.21359 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = -22.379294 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -22.3793 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 17 atoms have been selected out of 1980 SHOW: average of selected elements = 23.155353 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.1554 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 11 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1954.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -7.222000 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -7.22200 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = -17.353600 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -17.3536 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 5 atoms have been selected out of 1980 SHOW: average of selected elements = 23.366600 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 23.3666 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 3 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco FOR ID LOOP: symbol ID set to 1961.00 (real) CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) SELRPN: 16 atoms have been selected out of 1980 SHOW: average of selected elements = -2.998437 CNSsolve> evaluate ($ave_x=$result) EVALUATE: symbol $AVE_X set to -2.99844 (real) CNSsolve> show ave(y) (byres(id $id) and known) SELRPN: 16 atoms have been selected out of 1980 SHOW: average of selected elements = -18.306313 CNSsolve> evaluate ($ave_y=$result) EVALUATE: symbol $AVE_Y set to -18.3063 (real) CNSsolve> show ave(z) (byres(id $id) and known) SELRPN: 16 atoms have been selected out of 1980 SHOW: average of selected elements = 25.052125 CNSsolve> evaluate ($ave_z=$result) EVALUATE: symbol $AVE_Z set to 25.0521 (real) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (y=$ave_y) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> do (z=$ave_z) (byres(id $id) and store1) SELRPN: 13 atoms have been selected out of 1980 CNSsolve> CNSsolve> end loop avco CNSsolve> for $id in id (tag and byres(store1)) loop avco CNSsolve> CNSsolve> show ave(x) (byres(id $id) and known) CNSsolve> evaluate ($ave_x=$result) CNSsolve> show ave(y) (byres(id $id) and known) CNSsolve> evaluate ($ave_y=$result) CNSsolve> show ave(z) (byres(id $id) and known) CNSsolve> evaluate ($ave_z=$result) CNSsolve> CNSsolve> do (x=$ave_x) (byres(id $id) and store1) CNSsolve> do (y=$ave_y) (byres(id $id) and store1) CNSsolve> do (z=$ave_z) (byres(id $id) and store1) CNSsolve> CNSsolve> end loop avco CNSsolve> CNSsolve> do (x=x+random(2.0)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (y=y+random(2.0)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (z=z+random(2.0)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> {- start parameter for the side chain building -} CNSsolve> parameter PARRDR> nbonds NBDSET> rcon=20. nbxmod=-2 repel=0.9 wmin=0.1 tolerance=1. NBDSET> rexp=2 irexp=2 inhibit=0.25 NBDSET> end PARRDR> end CNSsolve> CNSsolve> {- Friction coefficient, in 1/ps. -} CNSsolve> do (fbeta=100) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> evaluate ($bath=300.0) EVALUATE: symbol $BATH set to 300.000 (real) CNSsolve> evaluate ($nstep=500) EVALUATE: symbol $NSTEP set to 500.000 (real) CNSsolve> evaluate ($timestep=0.0005) EVALUATE: symbol $TIMESTEP set to 0.500000E-03 (real) CNSsolve> CNSsolve> do (refy=mass) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> do (mass=20) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> igroup interaction SELRPN> (store1) (store1 or known) SELRPN: 995 atoms have been selected out of 1980 SELRPN: 1980 atoms have been selected out of 1980 IGROup> end CNSsolve> CNSsolve> {- turn on initial energy terms -} CNSsolve> flags exclude * include bond angle vdw end CNSsolve> CNSsolve> minimize powell nstep=50 nprint=10 end POWELL: number of degrees of freedom= 2985 NBONDS: generating intra-molecular exclusion list with mode=-2 MAKINB: mode -2 found 995 exclusions and 0 interactions(1-4) %atoms " -27 -LEU -HA " and " -27 -LEU -HD21" only 0.09 A apart %atoms " -30 -PRO -HB1 " and " -30 -PRO -HD2 " only 0.05 A apart %atoms " -40 -PHE -HN " and " -40 -PHE -HB2 " only 0.04 A apart %atoms " -41 -LEU -HD11" and " -41 -LEU -HD23" only 0.06 A apart %atoms " -60 -PRO -HB1 " and " -60 -PRO -HD2 " only 0.08 A apart %atoms " -65 -LYS -HG2 " and " -65 -LYS -HE2 " only 0.07 A apart %atoms " -102 -TYR -HA " and " -102 -TYR -HE1 " only 0.06 A apart %atoms " -109 -LYS -HG2 " and " -109 -LYS -HE1 " only 0.07 A apart NBONDS: found 82296 intra-atom interactions NBONDS: found 8 nonbonded violations NBONDS: found 80819 intra-atom interactions NBONDS: found 75281 intra-atom interactions NBONDS: found 77527 intra-atom interactions NBONDS: found 74699 intra-atom interactions NBONDS: found 75270 intra-atom interactions --------------- cycle= 10 ------ stepsize= 0.0004 ----------------------- | Etotal =0.11E+07 grad(E)=847.153 E(BOND)=263628.442 E(ANGL)=292388.115 | | E(VDW )=526691.418 | ------------------------------------------------------------------------------- NBONDS: found 75475 intra-atom interactions NBONDS: found 75538 intra-atom interactions NBONDS: found 75672 intra-atom interactions NBONDS: found 75966 intra-atom interactions --------------- cycle= 20 ------ stepsize= 0.0004 ----------------------- | Etotal =463612.664 grad(E)=506.959 E(BOND)=109576.880 E(ANGL)=68614.083 | | E(VDW )=285421.700 | ------------------------------------------------------------------------------- NBONDS: found 75980 intra-atom interactions NBONDS: found 75989 intra-atom interactions NBONDS: found 76077 intra-atom interactions --------------- cycle= 30 ------ stepsize= 0.0004 ----------------------- | Etotal =415080.471 grad(E)=487.968 E(BOND)=109192.756 E(ANGL)=50768.886 | | E(VDW )=255118.829 | ------------------------------------------------------------------------------- NBONDS: found 76123 intra-atom interactions --------------- cycle= 40 ------ stepsize= 0.0004 ----------------------- | Etotal =409989.552 grad(E)=487.773 E(BOND)=109694.984 E(ANGL)=49561.754 | | E(VDW )=250732.814 | ------------------------------------------------------------------------------- NBONDS: found 76113 intra-atom interactions --------------- cycle= 50 ------ stepsize= 0.0005 ----------------------- | Etotal =408990.407 grad(E)=486.776 E(BOND)=109861.430 E(ANGL)=49292.870 | | E(VDW )=249836.107 | ------------------------------------------------------------------------------- POWELL: STEP number limit. Normal termination POWELL: Current coordinates set to last minimum CNSsolve> CNSsolve> do (vx=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (vy=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (vz=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> flags exclude vdw include impr end CNSsolve> CNSsolve> dynamics cartesian Cartesian Dynamics> nstep=50 Cartesian Dynamics> timestep=$timestep Cartesian Dynamics> tcoupling=true temperature=$bath DCART: temperature coupling (TCOUpling) enabled Cartesian Dynamics> nprint=$nstep Cartesian Dynamics> cmremove=false Cartesian Dynamics> end -------------------------- Cartesian dynamics start --------------------------- | E(kin)+E(total)=678254.622 E(kin)=908.766 temperature=306.406 | | Etotal =677345.856 grad(E)=647.003 E(BOND)=109861.430 E(ANGL)=49292.870 | | E(IMPR)=518191.556 | ------------------------------------------------------------------------------- -------------------- final step= 50 at 0.02500 ps --------------------- | E(kin)+E(total)=402302.457 E(kin)=67421.937 temperature=22732.504 | | Etotal =334880.519 grad(E)=368.858 E(BOND)=49825.230 E(ANGL)=119219.217 | | E(IMPR)=165836.072 | ------------------------------------------------------------------------------- CENMAS: Information about center of free masses position [A] : 9.85891 -28.16640 24.27557 velocity [A/ps] : 0.82517 0.37499 2.46289 ang. mom. [amu A/ps] : 2154.42652 -81356.67642-554574.94117 kin. ener. [Kcal/mol] : 163.78880 CNSsolve> CNSsolve> flags include vdw end CNSsolve> CNSsolve> minimize powell nstep=50 nprint=10 end POWELL: number of degrees of freedom= 2985 NBONDS: found 76416 intra-atom interactions NBONDS: found 75282 intra-atom interactions NBONDS: found 75586 intra-atom interactions NBONDS: found 75397 intra-atom interactions --------------- cycle= 10 ------ stepsize= -0.0002 ----------------------- | Etotal =581460.098 grad(E)=540.895 E(BOND)=136752.242 E(ANGL)=72698.943 | | E(IMPR)=180201.237 E(VDW )=191807.676 | ------------------------------------------------------------------------------- NBONDS: found 75795 intra-atom interactions NBONDS: found 75703 intra-atom interactions --------------- cycle= 20 ------ stepsize= 0.0000 ----------------------- | Etotal =493997.793 grad(E)=458.729 E(BOND)=98296.006 E(ANGL)=34944.197 | | E(IMPR)=159112.338 E(VDW )=201645.253 | ------------------------------------------------------------------------------- NBONDS: found 75697 intra-atom interactions NBONDS: found 75706 intra-atom interactions NBONDS: found 75660 intra-atom interactions --------------- cycle= 30 ------ stepsize= 0.0003 ----------------------- | Etotal =486026.517 grad(E)=456.674 E(BOND)=98757.384 E(ANGL)=32605.822 | | E(IMPR)=154315.315 E(VDW )=200347.996 | ------------------------------------------------------------------------------- NBONDS: found 75665 intra-atom interactions --------------- cycle= 40 ------ stepsize= 0.0001 ----------------------- | Etotal =480684.383 grad(E)=457.143 E(BOND)=97973.501 E(ANGL)=31415.256 | | E(IMPR)=151022.963 E(VDW )=200272.663 | ------------------------------------------------------------------------------- NBONDS: found 75679 intra-atom interactions NBONDS: found 75696 intra-atom interactions NBONDS: found 75701 intra-atom interactions --------------- cycle= 50 ------ stepsize= 0.0002 ----------------------- | Etotal =477006.364 grad(E)=457.338 E(BOND)=98233.795 E(ANGL)=30818.079 | | E(IMPR)=148385.526 E(VDW )=199568.964 | ------------------------------------------------------------------------------- POWELL: STEP number limit. Normal termination POWELL: Current coordinates set to last minimum CNSsolve> CNSsolve> do (vx=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (vy=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (vz=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> dynamics cartesian Cartesian Dynamics> nstep=50 Cartesian Dynamics> timestep=$timestep Cartesian Dynamics> tcoupling=true temperature=$bath DCART: temperature coupling (TCOUpling) enabled Cartesian Dynamics> nprint=$nstep Cartesian Dynamics> cmremove=false Cartesian Dynamics> end -------------------------- Cartesian dynamics start --------------------------- | E(kin)+E(total)=477916.765 E(kin)=910.401 temperature=306.958 | | Etotal =477006.364 grad(E)=457.338 E(BOND)=98233.795 E(ANGL)=30818.079 | | E(IMPR)=148385.526 E(VDW )=199568.964 | ------------------------------------------------------------------------------- NBONDS: found 75725 intra-atom interactions NBONDS: found 75720 intra-atom interactions -------------------- final step= 50 at 0.02500 ps --------------------- | E(kin)+E(total)=476051.315 E(kin)=1726.530 temperature=582.130 | | Etotal =474324.785 grad(E)=458.322 E(BOND)=98084.338 E(ANGL)=29870.731 | | E(IMPR)=147061.798 E(VDW )=199307.918 | ------------------------------------------------------------------------------- CENMAS: Information about center of free masses position [A] : 9.87586 -28.14187 24.27574 velocity [A/ps] : -0.11505 -0.08981 0.15150 ang. mom. [amu A/ps] : -4157.35148 -38196.88106 -5619.62360 kin. ener. [Kcal/mol] : 1.05238 CNSsolve> CNSsolve> parameter PARRDR> nbonds NBDSET> rcon=2. nbxmod=-3 repel=0.75 NBDSET> end PARRDR> end CNSsolve> CNSsolve> minimize powell nstep=100 nprint=25 end POWELL: number of degrees of freedom= 2985 NBONDS: generating intra-molecular exclusion list with mode=-3 MAKINB: mode -3 found 3256 exclusions and 0 interactions(1-4) NBONDS: found 73446 intra-atom interactions NBONDS: found 74785 intra-atom interactions NBONDS: found 74763 intra-atom interactions NBONDS: found 74684 intra-atom interactions NBONDS: found 74828 intra-atom interactions NBONDS: found 74843 intra-atom interactions --------------- cycle= 25 ------ stepsize= 0.0000 ----------------------- | Etotal =104209.005 grad(E)=156.788 E(BOND)=11543.092 E(ANGL)=36895.331 | | E(IMPR)=55400.271 E(VDW )=370.312 | ------------------------------------------------------------------------------- NBONDS: found 74826 intra-atom interactions NBONDS: found 74759 intra-atom interactions NBONDS: found 74785 intra-atom interactions NBONDS: found 74748 intra-atom interactions NBONDS: found 74772 intra-atom interactions --------------- cycle= 50 ------ stepsize= 0.0005 ----------------------- | Etotal =52235.616 grad(E)=54.510 E(BOND)=1871.095 E(ANGL)=18517.217 | | E(IMPR)=31737.744 E(VDW )=109.559 | ------------------------------------------------------------------------------- NBONDS: found 74736 intra-atom interactions NBONDS: found 74720 intra-atom interactions NBONDS: found 74767 intra-atom interactions NBONDS: found 74796 intra-atom interactions NBONDS: found 74811 intra-atom interactions --------------- cycle= 75 ------ stepsize= 0.0006 ----------------------- | Etotal =12515.799 grad(E)=49.489 E(BOND)=699.483 E(ANGL)=6604.830 | | E(IMPR)=5150.545 E(VDW )=60.941 | ------------------------------------------------------------------------------- NBONDS: found 74770 intra-atom interactions NBONDS: found 74758 intra-atom interactions NBONDS: found 74762 intra-atom interactions NBONDS: found 74770 intra-atom interactions --------------- cycle= 100 ------ stepsize= 0.0002 ----------------------- | Etotal =418.733 grad(E)=22.976 E(BOND)=89.816 E(ANGL)=322.977 | | E(IMPR)=2.446 E(VDW )=3.493 | ------------------------------------------------------------------------------- POWELL: STEP number limit. Normal termination POWELL: Current coordinates set to last minimum CNSsolve> CNSsolve> do (vx=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (vy=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (vz=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> dynamics cartesian Cartesian Dynamics> nstep=$nstep Cartesian Dynamics> timestep=$timestep Cartesian Dynamics> tcoupling=true temperature=$bath DCART: temperature coupling (TCOUpling) enabled Cartesian Dynamics> nprint=$nstep Cartesian Dynamics> cmremove=false Cartesian Dynamics> end -------------------------- Cartesian dynamics start --------------------------- | E(kin)+E(total)=1317.166 E(kin)=898.433 temperature=302.923 | | Etotal =418.733 grad(E)=22.976 E(BOND)=89.816 E(ANGL)=322.977 | | E(IMPR)=2.446 E(VDW )=3.493 | ------------------------------------------------------------------------------- NBONDS: found 74791 intra-atom interactions NBONDS: found 74748 intra-atom interactions NBONDS: found 74781 intra-atom interactions NBONDS: found 74792 intra-atom interactions -------------------- final step= 500 at 0.25000 ps --------------------- | E(kin)+E(total)=1733.109 E(kin)=916.005 temperature=308.847 | | Etotal =817.104 grad(E)=34.354 E(BOND)=167.492 E(ANGL)=586.113 | | E(IMPR)=46.774 E(VDW )=16.726 | ------------------------------------------------------------------------------- CENMAS: Information about center of free masses position [A] : 9.86151 -28.14039 24.28070 velocity [A/ps] : 0.09264 -0.04713 -0.09013 ang. mom. [amu A/ps] : -22440.02186 -26277.74004 -31979.79721 kin. ener. [Kcal/mol] : 0.45012 CNSsolve> CNSsolve> {- turn on all energy terms -} CNSsolve> flags include dihe ? end EFLAGS: the following energy flags are set EFLAGS: BOND ANGL DIHE IMPR VDW CNSsolve> CNSsolve> {- set repel to ~vdw radii -} CNSsolve> parameter PARRDR> nbonds NBDSET> repel=0.89 NBDSET> end PARRDR> end CNSsolve> CNSsolve> minimize powell nstep=500 nprint=50 end POWELL: number of degrees of freedom= 2985 NBONDS: generating intra-molecular exclusion list with mode=-3 MAKINB: mode -3 found 3256 exclusions and 0 interactions(1-4) NBONDS: found 74802 intra-atom interactions NBONDS: found 74682 intra-atom interactions --------------- cycle= 50 ------ stepsize= 0.0000 ----------------------- | Etotal =2626.958 grad(E)=14.470 E(BOND)=20.780 E(ANGL)=133.790 | | E(DIHE)=38.455 E(IMPR)=16.402 E(VDW )=2417.532 | ------------------------------------------------------------------------------- NBONDS: found 74681 intra-atom interactions --------------- cycle= 100 ------ stepsize= -0.0003 ----------------------- | Etotal =2533.877 grad(E)=14.460 E(BOND)=19.593 E(ANGL)=131.140 | | E(DIHE)=26.915 E(IMPR)=20.283 E(VDW )=2335.946 | ------------------------------------------------------------------------------- --------------- cycle= 150 ------ stepsize= 0.0006 ----------------------- | Etotal =2514.229 grad(E)=14.335 E(BOND)=19.406 E(ANGL)=129.386 | | E(DIHE)=25.432 E(IMPR)=18.476 E(VDW )=2321.529 | ------------------------------------------------------------------------------- --------------- cycle= 200 ------ stepsize= -0.0003 ----------------------- | Etotal =2511.425 grad(E)=14.333 E(BOND)=19.228 E(ANGL)=128.899 | | E(DIHE)=25.172 E(IMPR)=19.051 E(VDW )=2319.075 | ------------------------------------------------------------------------------- --------------- cycle= 250 ------ stepsize= 0.0000 ----------------------- | Etotal =2511.154 grad(E)=14.325 E(BOND)=19.229 E(ANGL)=128.890 | | E(DIHE)=25.241 E(IMPR)=18.866 E(VDW )=2318.927 | ------------------------------------------------------------------------------- --------------- cycle= 300 ------ stepsize= 0.0004 ----------------------- | Etotal =2511.144 grad(E)=14.331 E(BOND)=19.212 E(ANGL)=129.022 | | E(DIHE)=25.373 E(IMPR)=18.924 E(VDW )=2318.613 | ------------------------------------------------------------------------------- --------------- cycle= 350 ------ stepsize= 0.0001 ----------------------- | Etotal =2511.138 grad(E)=14.330 E(BOND)=19.222 E(ANGL)=129.035 | | E(DIHE)=25.423 E(IMPR)=18.901 E(VDW )=2318.558 | ------------------------------------------------------------------------------- --------------- cycle= 400 ------ stepsize= -0.0002 ----------------------- | Etotal =2511.138 grad(E)=14.329 E(BOND)=19.224 E(ANGL)=129.022 | | E(DIHE)=25.416 E(IMPR)=18.900 E(VDW )=2318.576 | ------------------------------------------------------------------------------- --------------- cycle= 450 ------ stepsize= -0.0002 ----------------------- | Etotal =2511.138 grad(E)=14.329 E(BOND)=19.222 E(ANGL)=129.023 | | E(DIHE)=25.410 E(IMPR)=18.902 E(VDW )=2318.581 | ------------------------------------------------------------------------------- --------------- cycle= 500 ------ stepsize= 0.0001 ----------------------- | Etotal =2511.138 grad(E)=14.329 E(BOND)=19.223 E(ANGL)=129.022 | | E(DIHE)=25.408 E(IMPR)=18.902 E(VDW )=2318.583 | ------------------------------------------------------------------------------- POWELL: STEP number limit. Normal termination POWELL: Current coordinates set to last minimum CNSsolve> CNSsolve> flags exclude * include bond angl impr dihe vdw end CNSsolve> CNSsolve> {- return masses to something sensible -} CNSsolve> do (mass=refy) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> do (vx=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (vy=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> do (vz=maxwell($bath)) (store1) SELRPN: 995 atoms have been selected out of 1980 CNSsolve> CNSsolve> dynamics cartesian Cartesian Dynamics> nstep=$nstep Cartesian Dynamics> timestep=$timestep Cartesian Dynamics> tcoupling=true temperature=$bath DCART: temperature coupling (TCOUpling) enabled Cartesian Dynamics> nprint=$nstep Cartesian Dynamics> cmremove=false Cartesian Dynamics> end -------------------------- Cartesian dynamics start --------------------------- | E(kin)+E(total)=3421.696 E(kin)=910.558 temperature=307.011 | | Etotal =2511.138 grad(E)=14.329 E(BOND)=19.223 E(ANGL)=129.022 | | E(DIHE)=25.408 E(IMPR)=18.902 E(VDW )=2318.583 | ------------------------------------------------------------------------------- NBONDS: found 74629 intra-atom interactions NBONDS: found 74646 intra-atom interactions NBONDS: found 74626 intra-atom interactions NBONDS: found 74553 intra-atom interactions NBONDS: found 74614 intra-atom interactions NBONDS: found 74672 intra-atom interactions NBONDS: found 74628 intra-atom interactions NBONDS: found 74620 intra-atom interactions NBONDS: found 74694 intra-atom interactions NBONDS: found 74665 intra-atom interactions NBONDS: found 74657 intra-atom interactions -------------------- final step= 500 at 0.25000 ps --------------------- | E(kin)+E(total)=4288.915 E(kin)=894.620 temperature=301.637 | | Etotal =3394.295 grad(E)=37.288 E(BOND)=264.966 E(ANGL)=580.650 | | E(DIHE)=33.301 E(IMPR)=127.896 E(VDW )=2387.482 | ------------------------------------------------------------------------------- CENMAS: Information about center of free masses position [A] : 9.44166 -27.75454 24.32027 velocity [A/ps] : -0.06018 0.04614 0.17464 ang. mom. [amu A/ps] : 405.56707 9176.58492 -1233.23127 kin. ener. [Kcal/mol] : 0.04475 CNSsolve> CNSsolve> {- some final minimisation -} CNSsolve> minimize powell POWELL> nstep=500 POWELL> drop=40.0 POWELL> nprint=50 POWELL> end POWELL: number of degrees of freedom= 2985 --------------- cycle= 50 ------ stepsize= -0.0002 ----------------------- | Etotal =2514.548 grad(E)=14.388 E(BOND)=18.171 E(ANGL)=129.304 | | E(DIHE)=28.499 E(IMPR)=19.196 E(VDW )=2319.378 | ------------------------------------------------------------------------------- --------------- cycle= 100 ------ stepsize= 0.0005 ----------------------- | Etotal =2509.900 grad(E)=14.403 E(BOND)=18.178 E(ANGL)=129.948 | | E(DIHE)=27.463 E(IMPR)=18.982 E(VDW )=2315.328 | ------------------------------------------------------------------------------- --------------- cycle= 150 ------ stepsize= 0.0001 ----------------------- | Etotal =2509.127 grad(E)=14.396 E(BOND)=18.106 E(ANGL)=129.810 | | E(DIHE)=27.687 E(IMPR)=18.971 E(VDW )=2314.552 | ------------------------------------------------------------------------------- --------------- cycle= 200 ------ stepsize= -0.0001 ----------------------- | Etotal =2509.112 grad(E)=14.396 E(BOND)=18.099 E(ANGL)=129.824 | | E(DIHE)=27.711 E(IMPR)=18.980 E(VDW )=2314.498 | ------------------------------------------------------------------------------- --------------- cycle= 250 ------ stepsize= 0.0004 ----------------------- | Etotal =2509.095 grad(E)=14.400 E(BOND)=18.099 E(ANGL)=130.040 | | E(DIHE)=28.057 E(IMPR)=18.958 E(VDW )=2313.941 | ------------------------------------------------------------------------------- --------------- cycle= 300 ------ stepsize= 0.0004 ----------------------- | Etotal =2509.087 grad(E)=14.403 E(BOND)=18.105 E(ANGL)=130.130 | | E(DIHE)=28.099 E(IMPR)=18.955 E(VDW )=2313.799 | ------------------------------------------------------------------------------- --------------- cycle= 350 ------ stepsize= 0.0003 ----------------------- | Etotal =2509.082 grad(E)=14.402 E(BOND)=18.102 E(ANGL)=130.108 | | E(DIHE)=28.104 E(IMPR)=18.960 E(VDW )=2313.809 | ------------------------------------------------------------------------------- --------------- cycle= 400 ------ stepsize= 0.0002 ----------------------- | Etotal =2509.079 grad(E)=14.401 E(BOND)=18.101 E(ANGL)=130.060 | | E(DIHE)=28.017 E(IMPR)=18.962 E(VDW )=2313.938 | ------------------------------------------------------------------------------- --------------- cycle= 450 ------ stepsize= -0.0002 ----------------------- | Etotal =2509.078 grad(E)=14.401 E(BOND)=18.101 E(ANGL)=130.066 | | E(DIHE)=28.015 E(IMPR)=18.962 E(VDW )=2313.935 | ------------------------------------------------------------------------------- --------------- cycle= 500 ------ stepsize= 0.0001 ----------------------- | Etotal =2509.077 grad(E)=14.401 E(BOND)=18.101 E(ANGL)=130.085 | | E(DIHE)=28.053 E(IMPR)=18.961 E(VDW )=2313.878 | ------------------------------------------------------------------------------- POWELL: STEP number limit. Normal termination POWELL: Current coordinates set to last minimum CNSsolve> CNSsolve> print thres=0.02 bonds (atom-i |atom-j ) dist. equil. delta energy const. ( 20 CH2 | 20 HH2 ) 1.058 1.080 -0.022 0.482 1000.000 ( 68 CD | 68 HD1 ) 1.059 1.080 -0.021 0.451 1000.000 Number of violations greater 0.020: 2 RMS deviation= 0.004 CNSsolve> print thres=5. angles (atom-i |atom-j |atom-k ) angle equil. delta energy const. Number of violations greater 5.000: 0 RMS deviation= 0.615 CNSsolve> CNSsolve> end if CNSsolve> CNSsolve> fix selection=( none ) end SELRPN: 0 atoms have been selected out of 1980 CNSsolve> CNSsolve> end if CNSsolve> CNSsolve> set echo=false end SELRPN: 0 atoms have been selected out of 1980 SHOW: zero atoms selected NEXTCD: condition evaluated as true SELRPN: 0 atoms have been selected out of 1980 CNSsolve> CNSsolve> if (&set_bfactor=true) then NEXTCD: condition evaluated as false CNSsolve> do (b=&bfactor) ( all ) CNSsolve> else CNSsolve> show ave(b) (known and not(store1)) SELRPN: 985 atoms have been selected out of 1980 SHOW: average of selected elements = 37.190203 CNSsolve> do (b=$result) (store1 and (attr b < 0.01)) SELRPN: 293 atoms have been selected out of 1980 CNSsolve> end if CNSsolve> CNSsolve> if (&set_occupancy=true) then NEXTCD: condition evaluated as false CNSsolve> do (q=&occupancy) ( all ) CNSsolve> end if CNSsolve> CNSsolve> set echo=false end SELRPN: 995 atoms have been selected out of 1980 SHOW: sum over selected elements = 995.000000 NEXTCD: condition evaluated as false CNSsolve> CNSsolve> set remarks=reset end CNSsolve> set remarks=accumulate end CNSsolve> CNSsolve> buffer message BUFFER> to=remarks BUFFER> dump BUFFER> end CNSsolve> CNSsolve> !write structure output=&structure_outfile end CNSsolve> CNSsolve> if ( &pdb_o_format = true ) then NEXTCD: condition evaluated as true CNSsolve> write coordinates format=PDBO output=&coordinate_outfile end ASSFIL: file /farm/data/gliu/projects/HR4495E/cns/calc15/cnsPDB/sa_cns_12.pdb opened. CNSsolve> else CNSsolve> write coordinates output=&coordinate_outfile end CNSsolve> end if CNSsolve> CNSsolve> stop HEAP: maximum use = 3477424 current use = 0 bytes HEAP: maximum overhead = 1552 current overhead = 128 bytes ============================================================ Maximum dynamic memory allocation: 3477424 bytes Maximum dynamic memory overhead: 1552 bytes Program started at: 14:05:20 on 13-Sep-2010 Program stopped at: 14:05:25 on 13-Sep-2010 CPU time used: 5.3662 seconds ============================================================