mirror of https://github.com/abinit/abinit.git
357 lines
14 KiB
Plaintext
357 lines
14 KiB
Plaintext
******************************************************************************************
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Welcome to MULTIBINIT,
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a software platform designed for the construction and use of second-principles models
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for lattice, spin and electron degrees of freedom.
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.Version 10.1.4.5 of MULTIBINIT
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.(MPI version, prepared for a x86_64_linux_gnu13.2 computer)
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.Copyright (C) 1998-2025 ABINIT group .
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MULTIBINIT comes with ABSOLUTELY NO WARRANTY.
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It is free software, and you are welcome to redistribute it
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under certain conditions (GNU General Public License,
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see ~abinit/COPYING or http://www.gnu.org/copyleft/gpl.txt).
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MULTIBINIT is a software project of the University of Liege
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(PHYTHEMA & NANOMAT groups), in collaboration with other partners.
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-----------------------------------------------------------------------------------------
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MULTIBINIT - LATTICE MODELS
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Project initiated and coordinated by Philippe GHOSEZ and his group at ULiege
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(Philippe.Ghosez@uliege.be).
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Main contributors: Alexandre MARTIN, Jordan BIEDER, Michael Marcus SCHMITT,
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Louis BASTOGNE, Xu HE, Alireza SASANI, Huazhang ZHANG, Subhadeep BANDYOPADHYAY,
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Philippe GHOSEZ.
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Technical support: Xu HE (X.He@uliege.be)
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*****************************************************************************************
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.Starting date : Fri 13 Sep 2024.
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- ( at 19h31 )
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- The starting date is more than 2 years after the initial release
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- of this version of ABINIT, namely Jul 2022.
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- Note that the use beyond 3 years after the release will not be supported.
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- Action: please, switch to a more recent version of ABINIT.
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- nproc = 4
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================================================================================
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Read the information in the reference structure in
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-/home/buildbot/ABINIT3/eos_gnu_13.2_mpich/trunk_merge-10.0/tests/paral/Input/t81_ddb.in
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to initialize the multibinit input
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================================================================================
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-outvars_multibinit: echo values of input variables ----------------------
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Flags :
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ifcflag 1
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prt_model 2
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strcpli -1
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Fit the coefficients :
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fit_coeff 1
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fit_generateCoeff 1
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fit_initializeDat 0
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fit_cutoff 5.60000000E+00
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fit_option 0
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fit_iatom 0
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fit_ncoeff 6
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fit_grid 1 1 1
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ts_option 0
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fit_rangePower 3 3
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fit_dispterms 1
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fit_anhaStrain 0
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fit_SPCoupling 1
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fit_SPC_maxS 1
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Miscellaneous information :
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asr 2
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Interatomic Force Constants Inputs :
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dipdip 0
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dipdip_prt 1
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ifcana 0
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ifcout 2000000
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natifc 5
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atifc 1 2 3 4 5
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Description of grid 1 :
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brav 1
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ngqpt 1 1 1
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nqshft 1
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q1shft
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0.00000000E+00 0.00000000E+00 0.00000000E+00
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First list of wavevector (reduced coord.) :
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nph1l 1
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qph1l
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0.00000000E+00 0.00000000E+00 0.00000000E+00 0.000E+00
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================================================================================
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Read the DDB information of the reference system and perform some checks
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==== Info on the Cryst% object ====
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Real(R)+Recip(G) space primitive vectors, cartesian coordinates (Bohr,Bohr^-1):
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R(1)= 7.4265196 0.0000000 0.0000000 G(1)= 0.1346526 0.0000000 0.0000000
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R(2)= 0.0000000 7.4265196 0.0000000 G(2)= 0.0000000 0.1346526 0.0000000
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R(3)= 0.0000000 0.0000000 7.4265196 G(3)= 0.0000000 0.0000000 0.1346526
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Unit cell volume ucvol= 4.0959627E+02 bohr^3
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Angles (23,13,12)= 9.00000000E+01 9.00000000E+01 9.00000000E+01 degrees
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Time-reversal symmetry is present
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Reduced atomic positions [iatom, xred, symbol]:
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1) 0.0000000 0.0000000 0.0000000 Sr
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2) 0.5000000 0.5000000 0.5000000 Ru
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3) 0.0000000 0.5000000 0.5000000 O
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4) 0.5000000 0.0000000 0.5000000 O
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5) 0.5000000 0.5000000 0.0000000 O
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DDB file with 5 blocks has been read.
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================================================================================
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Extraction of the energy of the structure (unit: Hartree)
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Energy = -1.735221724034E+02
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================================================================================
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Extraction of the stress tensor (unit: GPa) and forces (unit: Ha/bohr)
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--- !WARNING:
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The stress tensor of the reference structure is not specify
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The stress tensor will be set to zero
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---
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================================================================================
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Extraction of the clamped elastic tensor (unit:10^2GPa)
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3.1281435 1.0182533 1.0182548 -0.0000004 -0.0000033 -0.0000014
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1.0182569 3.1281493 1.0182548 -0.0000007 -0.0000003 -0.0000014
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1.0182569 1.0182533 3.1281273 -0.0000007 -0.0000033 0.0000003
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0.0000000 0.0000000 -0.0000000 0.6540901 0.0000000 0.0000000
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0.0000000 0.0000000 -0.0000000 0.0000000 0.6540918 0.0000000
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0.0000000 -0.0000000 -0.0000000 0.0000000 0.0000000 0.6540936
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================================================================================
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Calculation of acoustic sum rule
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================================================================================
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Calculation of the interatomic forces from DDB
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Homogeneous q point set in the B.Z.
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Grid q points : 1
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1) 0.00000000E+00 0.00000000E+00 0.00000000E+00
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The interatomic forces have been obtained
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================================================================================
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Calculation of dynamical matrix for each ph1l points
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Phonon at Gamma, with non-analyticity in the
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direction (cartesian coordinates) 0.00000 0.00000 0.00000
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Phonon energies in Hartree :
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0.000000E+00 0.000000E+00 0.000000E+00 4.398082E-04 4.398082E-04
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4.398082E-04 5.833102E-04 5.833102E-04 5.833102E-04 8.700324E-04
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8.700324E-04 8.700324E-04 2.744572E-03 2.744572E-03 2.744572E-03
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Phonon frequencies in cm-1 :
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- 0.000000E+00 0.000000E+00 0.000000E+00 9.652673E+01 9.652673E+01
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- 9.652673E+01 1.280218E+02 1.280218E+02 1.280218E+02 1.909500E+02
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- 1.909500E+02 1.909500E+02 6.023639E+02 6.023639E+02 6.023639E+02
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================================================================================
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Calculation of the internal-strain tensor
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Force-response internal strain tensor(Unit:Hartree/bohr)
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Atom dir strainxx strainyy strainzz strainyz strainxz strainxy
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1 x 0.0000000 -0.0000000 -0.0000000 0.0000000 -0.0000000 -0.0000000
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1 y 0.0000000 -0.0000000 -0.0000000 -0.0000000 0.0000000 0.0000000
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1 z 0.0000000 -0.0000000 -0.0000000 -0.0000000 0.0000000 0.0000000
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2 x -0.0000000 -0.0000000 -0.0000000 -0.0000000 0.0000000 0.0000000
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2 y 0.0000000 0.0000000 0.0000000 0.0000000 -0.0000000 -0.0000000
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2 z 0.0000000 0.0000000 0.0000000 0.0000000 -0.0000000 -0.0000000
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3 x 0.0000000 0.0000000 0.0000000 0.0000000 -0.0000000 -0.0000000
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3 y -0.0000000 0.0000000 0.0000000 0.0000000 0.0000000 0.0000000
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3 z -0.0000000 0.0000000 0.0000000 0.0000000 0.0000000 0.0000000
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4 x 0.0000000 0.0000000 0.0000000 -0.0000000 0.0000000 -0.0000000
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4 y -0.0000000 -0.0000000 -0.0000000 -0.0000000 -0.0000000 0.0000000
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4 z 0.0000000 -0.0000000 -0.0000000 -0.0000000 0.0000000 -0.0000000
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5 x 0.0000000 0.0000000 0.0000000 -0.0000000 -0.0000000 -0.0000000
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5 y 0.0000000 0.0000000 -0.0000000 -0.0000000 -0.0000000 0.0000000
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5 z -0.0000000 -0.0000000 -0.0000000 -0.0000000 0.0000000 -0.0000000
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Bound for ifc SR:
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x=[ -1 1], y=[ -1 1] and z=[ -1 1]
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================================================================================
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Impose acoustic sum rule on total ifc
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================================================================================
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================================================================================
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There is no file for the coefficients from polynomial fitting
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================================================================================
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-Reading the training-set file :
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-/home/buildbot/ABINIT3/eos_gnu_13.2_mpich/trunk_merge-10.0/tests/paral/Input/t81_HIST
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================================================================================
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Starting Fit Iterations
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-----------------------
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Select in total fit_ncoeff = 6 coefficients
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In 1 iterations
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Over 3 irreducible atoms
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Selecting 2 coefficients per atom in each iteration
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--------------------------------------------------------------------------------
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Start Iteration ( 1/ 1)
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--------------------------------------------------------------------------------
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Starting Fit process
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--------------------------------------------------------------------------------
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The coefficients for the fit around atom 1: Sr, will be generated
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284 coefficients generated
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Goal function values at the begining of the fit process (eV^2/A^2):
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Energy : 4.0372994902680415E-05
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Forces+Stresses : 7.4805078532507677E-03
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Forces : 7.3678370383277398E-03
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Stresses : 1.1267081492302754E-04
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N Selecting MSDE MSDFS MSDF MSDS
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Coefficient (eV^2/A^2) (eV^2/A^2) (eV^2/A^2) (eV^2/A^2)
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1 101 3.6539816213E-05 7.1737339567E-03 7.0615782438E-03 1.1215571290E-04
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2 171 3.5781888938E-05 7.0936342089E-03 6.9812431484E-03 1.1239106055E-04
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Fitted coefficients at the end of the fit process:
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101 => -4.4327826448E-02 (Sr_x-O1_x)^1(Sr_y-O1_y[0 -1 0])^1(Sr_y-O3_y[-1 -1 0])^1
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171 => -1.5201595294E-02 (Sr_y-O1_y)^2(Sr_x-O2_x[-1 0 -1])^1
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Goal function values at the end of the fit process (eV^2/A^2):
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Energy : 3.5781888938353268E-05
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Forces+Stresses : 7.0936342089015607E-03
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Forces : 6.9812431483529669E-03
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Stresses : 1.1239106054859269E-04
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--------------------------------------------------------------------------------
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Starting Fit process
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--------------------------------------------------------------------------------
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The coefficients present in the effective potential will be used for the fit
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The coefficients for the fit around atom 2: Ru, will be generated
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60 coefficients generated
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Goal function values at the begining of the fit process (eV^2/A^2):
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Energy : 4.0372994902680415E-05
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Forces+Stresses : 7.4805078532507677E-03
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Forces : 7.3678370383277398E-03
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Stresses : 1.1267081492302754E-04
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N Selecting MSDE MSDFS MSDF MSDS
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Coefficient (eV^2/A^2) (eV^2/A^2) (eV^2/A^2) (eV^2/A^2)
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3 10 2.6136693942E-05 6.2292079095E-03 6.1165315838E-03 1.1267632575E-04
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4 9 2.4682517226E-05 6.0193720010E-03 5.9065263782E-03 1.1284562285E-04
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Fitted coefficients at the end of the fit process:
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1 => -4.4614935853E-02 (Sr_x-O1_x)^1(Sr_y-O1_y[0 -1 0])^1(Sr_y-O3_y[-1 -1 0])^1
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2 => -1.1721157619E-02 (Sr_y-O1_y)^2(Sr_x-O2_x[-1 0 -1])^1
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10 => -1.2609313029E-01 (Ru_x-O1_x)^1(Ru_y-O2_y)^1(Ru_y-O1_y[1 0 0])^1
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9 => 8.0818747419E-02 (Ru_x-O1_x)^1(Ru_y-O2_y)^1(Ru_y-O1_y)^1
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Goal function values at the end of the fit process (eV^2/A^2):
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Energy : 2.4682517225956643E-05
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Forces+Stresses : 6.0193720010110179E-03
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Forces : 5.9065263781563453E-03
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Stresses : 1.1284562285467289E-04
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--------------------------------------------------------------------------------
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Starting Fit process
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--------------------------------------------------------------------------------
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The coefficients present in the effective potential will be used for the fit
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The coefficients for the fit around atom 3: O1, will be generated
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639 coefficients generated
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Goal function values at the begining of the fit process (eV^2/A^2):
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Energy : 4.0372994902680415E-05
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Forces+Stresses : 7.4805078532507677E-03
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Forces : 7.3678370383277398E-03
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Stresses : 1.1267081492302754E-04
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N Selecting MSDE MSDFS MSDF MSDS
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Coefficient (eV^2/A^2) (eV^2/A^2) (eV^2/A^2) (eV^2/A^2)
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5 29 1.9883441054E-05 5.3923186870E-03 5.2797231212E-03 1.1259556580E-04
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6 144 1.3594815614E-05 4.8795087695E-03 4.7673550808E-03 1.1215368867E-04
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Fitted coefficients at the end of the fit process:
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1 => -4.6180590616E-02 (Sr_x-O1_x)^1(Sr_y-O1_y[0 -1 0])^1(Sr_y-O3_y[-1 -1 0])^1
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2 => -8.0659628443E-03 (Sr_y-O1_y)^2(Sr_x-O2_x[-1 0 -1])^1
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3 => -1.5331526078E-01 (Ru_x-O1_x)^1(Ru_y-O2_y)^1(Ru_y-O1_y[1 0 0])^1
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4 => 9.1023906095E-02 (Ru_x-O1_x)^1(Ru_y-O2_y)^1(Ru_y-O1_y)^1
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29 => 1.4292922066E-01 (O1_x-Ru_x)^1(O1_y-Ru_y[-1 0 0])^1(O1_x-O2_x[-1 1 0])^1
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144 => 7.9592927971E-02 (O1_y-Ru_y)^1(O1_x-Sr_x)^1(O1_z-Sr_z[0 1 1])^1
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Goal function values at the end of the fit process (eV^2/A^2):
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Energy : 1.3594815613709580E-05
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Forces+Stresses : 4.8795087694940625E-03
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Forces : 4.7673550808230514E-03
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Stresses : 1.1215368867101115E-04
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================================================================================
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Generation of the xml file for the model in t81_MPI4_sys.xml
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Generation of the xml file for the fitted polynomial in t81_MPI4_coeffs.xml
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================================================================================
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-
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- Proc. 0 individual time (sec): cpu= 1.2 wall= 1.4
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================================================================================
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+Total cpu time 5.029 and wall time 5.490 sec
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multibinit : the run completed succesfully.
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