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#!/usr/bin/env python
# -*- coding: UTF-8 no BOM -*-
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import os , sys , string , math , random
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import numpy as np
import damask
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from optparse import OptionParser , OptionGroup
from scipy import spatial
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scriptName = os . path . splitext ( os . path . basename ( __file__ ) ) [ 0 ]
scriptID = ' ' . join ( [ scriptName , damask . version ] )
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# ------------------------------------------ aux functions ---------------------------------
def kdtree_search ( cloud , queryPoints ) :
'''
find distances to nearest neighbor among cloud ( N , d ) for each of the queryPoints ( n , d )
'''
n = queryPoints . shape [ 0 ]
distances = np . zeros ( n , dtype = float )
tree = spatial . cKDTree ( cloud )
for i in xrange ( n ) :
distances [ i ] , index = tree . query ( queryPoints [ i ] )
return distances
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# --------------------------------------------------------------------
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# MAIN
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# --------------------------------------------------------------------
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parser = OptionParser ( option_class = damask . extendableOption , usage = ' % prog [options] ' , description = """
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Distribute given number of points randomly within the three - dimensional cube [ 0.0 , 0.0 , 0.0 ] - - [ 1.0 , 1.0 , 1.0 ] .
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Reports positions with random crystal orientations in seeds file format to STDOUT .
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""" , version = scriptID)
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parser . add_option ( ' -N ' , dest = ' N ' ,
type = ' int ' , metavar = ' int ' ,
help = ' number of seed points to distribute [ %d efault] ' )
parser . add_option ( ' -g ' , ' --grid ' ,
dest = ' grid ' ,
type = ' int ' , nargs = 3 , metavar = ' int int int ' ,
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help = ' min a,b,c grid of hexahedral box %d efault ' )
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parser . add_option ( ' -m ' , ' --microstructure ' ,
dest = ' microstructure ' ,
type = ' int ' , metavar = ' int ' ,
help = ' first microstructure index [ %d efault] ' )
parser . add_option ( ' -r ' , ' --rnd ' ,
dest = ' randomSeed ' , type = ' int ' , metavar = ' int ' ,
help = ' seed of random number generator [ %d efault] ' )
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group = OptionGroup ( parser , " Laguerre Tessellation Options " ,
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" Parameters determining shape of weight distribution of seed points "
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)
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group . add_option ( ' -w ' , ' --weights ' ,
action = ' store_true ' ,
dest = ' weights ' ,
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help = ' assign random weigts to seed points for Laguerre tessellation [ %d efault] ' )
group . add_option ( ' --max ' ,
dest = ' max ' ,
type = ' float ' , metavar = ' float ' ,
help = ' max of uniform distribution for weights [ %d efault] ' )
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group . add_option ( ' --mean ' ,
dest = ' mean ' ,
type = ' float ' , metavar = ' float ' ,
help = ' mean of normal distribution for weights [ %d efault] ' )
group . add_option ( ' --sigma ' ,
dest = ' sigma ' ,
type = ' float ' , metavar = ' float ' ,
help = ' standard deviation of normal distribution for weights [ %d efault] ' )
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parser . add_option_group ( group )
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group = OptionGroup ( parser , " Selective Seeding Options " ,
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" More uniform distribution of seed points using Mitchell \' s Best Candidate Algorithm "
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)
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group . add_option ( ' -s ' , ' --selective ' ,
action = ' store_true ' ,
dest = ' selective ' ,
help = ' selective picking of seed points from random seed points [ %d efault] ' )
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group . add_option ( ' -f ' , ' --force ' ,
action = ' store_true ' ,
dest = ' force ' ,
help = ' try selective picking despite large seed point number [ %d efault] ' )
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group . add_option ( ' --distance ' ,
dest = ' distance ' ,
type = ' float ' , metavar = ' float ' ,
help = ' minimum distance to the next neighbor [ %d efault] ' )
group . add_option ( ' --numCandidates ' ,
dest = ' numCandidates ' ,
type = ' int ' , metavar = ' int ' ,
help = ' size of point group to select best distance from [ %d efault] ' )
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parser . add_option_group ( group )
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parser . set_defaults ( randomSeed = None ,
grid = ( 16 , 16 , 16 ) ,
N = 20 ,
weights = False ,
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max = 0.0 ,
mean = 0.2 ,
sigma = 0.05 ,
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microstructure = 1 ,
selective = False ,
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force = False ,
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distance = 0.2 ,
numCandidates = 10 ,
)
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( options , filenames ) = parser . parse_args ( )
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options . grid = np . array ( options . grid )
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gridSize = options . grid . prod ( )
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if options . randomSeed == None : options . randomSeed = int ( os . urandom ( 4 ) . encode ( ' hex ' ) , 16 )
np . random . seed ( options . randomSeed ) # init random generators
random . seed ( options . randomSeed )
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# --- loop over output files -------------------------------------------------------------------------
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if filenames == [ ] : filenames = [ None ]
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for name in filenames :
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try :
table = damask . ASCIItable ( outname = name ,
buffered = False )
except :
continue
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damask . util . report ( scriptName , name )
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# --- sanity checks -------------------------------------------------------------------------
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remarks = [ ]
errors = [ ]
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if gridSize == 0 : errors . append ( ' zero grid dimension for %s . ' % ( ' , ' . join ( [ [ ' a ' , ' b ' , ' c ' ] [ x ] for x in np . where ( options . grid == 0 ) [ 0 ] ] ) ) )
if options . N > gridSize / 10. : errors . append ( ' seed count exceeds 0.1 of grid points. ' )
if options . selective and 4. / 3. * math . pi * ( options . distance / 2. ) * * 3 * options . N > 0.5 :
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( remarks if options . force else errors ) . append ( ' maximum recommended seed point count for given distance is {} . {} ' . format ( int ( 3. / 8. / math . pi / ( options . distance / 2. ) * * 3 ) , ' .. ' * options . force ) )
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if remarks != [ ] : damask . util . croak ( remarks )
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if errors != [ ] :
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damask . util . croak ( errors )
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sys . exit ( )
# --- do work ------------------------------------------------------------------------------------
grainEuler = np . random . rand ( 3 , options . N ) # create random Euler triplets
grainEuler [ 0 , : ] * = 360.0 # phi_1 is uniformly distributed
grainEuler [ 1 , : ] = np . degrees ( np . arccos ( 2 * grainEuler [ 1 , : ] - 1 ) ) # cos(Phi) is uniformly distributed
grainEuler [ 2 , : ] * = 360.0 # phi_2 is uniformly distributed
if not options . selective :
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seeds = np . zeros ( ( 3 , options . N ) , dtype = ' d ' ) # seed positions array
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gridpoints = random . sample ( range ( gridSize ) , options . N ) # create random permutation of all grid positions and choose first N
seeds [ 0 , : ] = ( np . mod ( gridpoints , options . grid [ 0 ] ) \
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+ np . random . random ( options . N ) ) / options . grid [ 0 ]
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seeds [ 1 , : ] = ( np . mod ( gridpoints / / options . grid [ 0 ] , options . grid [ 1 ] ) \
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+ np . random . random ( options . N ) ) / options . grid [ 1 ]
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seeds [ 2 , : ] = ( np . mod ( gridpoints / / ( options . grid [ 1 ] * options . grid [ 0 ] ) , options . grid [ 2 ] ) \
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+ np . random . random ( options . N ) ) / options . grid [ 2 ]
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else :
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seeds = np . zeros ( ( options . N , 3 ) , dtype = float ) # seed positions array
seeds [ 0 ] = np . random . random ( 3 ) * options . grid / max ( options . grid )
i = 1 # start out with one given point
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if i % ( options . N / 100. ) < 1 : damask . util . croak ( ' . ' , False )
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while i < options . N :
candidates = np . random . random ( options . numCandidates * 3 ) . reshape ( options . numCandidates , 3 )
distances = kdtree_search ( seeds [ : i ] , candidates )
best = distances . argmax ( )
if distances [ best ] > options . distance : # require minimum separation
seeds [ i ] = candidates [ best ] # take candidate with maximum separation to existing point cloud
i + = 1
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if i % ( options . N / 100. ) < 1 : damask . util . croak ( ' . ' , False )
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damask . util . croak ( ' ' )
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seeds = seeds . T # prepare shape for stacking
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if options . weights :
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if options . max > 0.0 :
weights = [ np . random . uniform ( low = 0 , high = options . max , size = options . N ) ]
else :
weights = [ np . random . normal ( loc = options . mean , scale = options . sigma , size = options . N ) ]
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else :
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weights = [ ]
seeds = np . transpose ( np . vstack ( tuple ( [ seeds ,
grainEuler ,
np . arange ( options . microstructure ,
options . microstructure + options . N ) ,
] + weights
) ) )
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# ------------------------------------------ assemble header ---------------------------------------
table . info_clear ( )
table . info_append ( [
scriptID + ' ' + ' ' . join ( sys . argv [ 1 : ] ) ,
" grid \t a {grid[0]} \t b {grid[1]} \t c {grid[2]} " . format ( grid = options . grid ) ,
" microstructures \t {} " . format ( options . N ) ,
" randomSeed \t {} " . format ( options . randomSeed ) ,
] )
table . labels_clear ( )
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table . labels_append ( [ ' {dim} _ {label} ' . format ( dim = 1 + k , label = ' pos ' ) for k in xrange ( 3 ) ] +
[ ' {dim} _ {label} ' . format ( dim = 1 + k , label = ' eulerangles ' ) for k in xrange ( 3 ) ] +
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[ ' microstructure ' ] +
( [ ' weight ' ] if options . weights else [ ] ) )
table . head_write ( )
table . output_flush ( )
# --- write seeds information ------------------------------------------------------------
table . data = seeds
table . data_writeArray ( )
# --- output finalization --------------------------------------------------------------------------
table . close ( ) # close ASCII table