annotate deep/stacked_dae/v_guillaume/sgd_optimization.py @ 437:479f2f518fc9

added Training with More Classes than Necessary
author Guillaume Sicard <guitch21@gmail.com>
date Mon, 03 May 2010 06:17:54 -0400
parents 0ca069550abd
children
rev   line source
436
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1 #!/usr/bin/python
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2 # -*- coding: utf-8 -*-
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3 # coding: utf-8
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4
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5 # Generic SdA optimization loop, adapted from the deeplearning.net tutorial
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6
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7 import numpy
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8 import theano
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9 import time
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10 import datetime
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11 import theano.tensor as T
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12 import sys
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13 #import pickle
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14 import cPickle
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15
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16 from jobman import DD
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17 import jobman, jobman.sql
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18 from copy import copy
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19
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20 from stacked_dae import SdA
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21
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22 from ift6266.utils.seriestables import *
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23
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24 #For test purpose only
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25 buffersize=1000
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26
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27 default_series = { \
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28 'reconstruction_error' : DummySeries(),
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29 'training_error' : DummySeries(),
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30 'validation_error' : DummySeries(),
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31 'test_error' : DummySeries(),
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32 'params' : DummySeries()
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33 }
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34
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35 def itermax(iter, max):
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36 for i,it in enumerate(iter):
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37 if i >= max:
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38 break
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39 yield it
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40
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41 class SdaSgdOptimizer:
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42 def __init__(self, dataset_name, dataset, hyperparameters, n_ins, n_outs,
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43 examples_per_epoch, series=default_series, max_minibatches=None):
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44 self.dataset_name = dataset_name
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45 self.dataset = dataset
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46 self.hp = hyperparameters
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47 self.n_ins = n_ins
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48 self.n_outs = n_outs
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49 self.parameters_pre=[]
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50
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51 if (self.dataset_name == "upper"):
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52 self.class_offset = 10
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53 elif (self.dataset_name == "lower"):
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54 self.class_offset = 36
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55 else:
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56 self.class_offset = 0
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57
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58
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59 self.max_minibatches = max_minibatches
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60 print "SdaSgdOptimizer, max_minibatches =", max_minibatches
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61
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62 self.ex_per_epoch = examples_per_epoch
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63 self.mb_per_epoch = examples_per_epoch / self.hp.minibatch_size
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64
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65 self.series = series
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66
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67 self.rng = numpy.random.RandomState(1234)
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68
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69 self.init_classifier()
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70
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71 sys.stdout.flush()
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72
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73 def init_classifier(self):
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74 print "Constructing classifier"
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75
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76 # we don't want to save arrays in DD objects, so
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77 # we recreate those arrays here
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78 nhl = self.hp.num_hidden_layers
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79 layers_sizes = [self.hp.hidden_layers_sizes] * nhl
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80 corruption_levels = [self.hp.corruption_levels] * nhl
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81
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82 # construct the stacked denoising autoencoder class
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83 self.classifier = SdA( \
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84 batch_size = self.hp.minibatch_size, \
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85 n_ins= self.n_ins, \
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86 hidden_layers_sizes = layers_sizes, \
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87 n_outs = self.n_outs, \
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88 corruption_levels = corruption_levels,\
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89 rng = self.rng,\
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90 pretrain_lr = self.hp.pretraining_lr, \
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91 finetune_lr = self.hp.finetuning_lr)
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92
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93 #theano.printing.pydotprint(self.classifier.pretrain_functions[0], "function.graph")
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94
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95 sys.stdout.flush()
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96
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97 def train(self):
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98 self.pretrain(self.dataset)
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99 self.finetune(self.dataset)
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100
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101 def pretrain(self,dataset,decrease=0):
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102 print "STARTING PRETRAINING, time = ", datetime.datetime.now()
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103 sys.stdout.flush()
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104
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105 un_fichier=int(819200.0/self.hp.minibatch_size) #Number of batches in a P07 file
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106
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107 start_time = time.clock()
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108
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109 ######## This is hardcoaded. THe 0.95 parameter is hardcoaded and can be changed at will ###
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110 #Set the decreasing rate of the learning rate. We want the final learning rate to
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111 #be 5% of the original learning rate. The decreasing factor is linear
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112 decreasing = (decrease*self.hp.pretraining_lr)/float(self.hp.pretraining_epochs_per_layer*800000/self.hp.minibatch_size)
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113
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114 ## Pre-train layer-wise
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115 for i in xrange(self.classifier.n_layers):
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116 # go through pretraining epochs
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117
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118 #To reset the learning rate to his original value
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119 learning_rate=self.hp.pretraining_lr
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120 for epoch in xrange(self.hp.pretraining_epochs_per_layer):
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121 # go through the training set
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122 batch_index=0
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123 count=0
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124 num_files=0
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125 for x,y in dataset.train(self.hp.minibatch_size):
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126 y = y - self.class_offset
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127 c = self.classifier.pretrain_functions[i](x,learning_rate)
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128 count +=1
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129
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130 self.series["reconstruction_error"].append((epoch, batch_index), c)
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131 batch_index+=1
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132
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133 #If we need to decrease the learning rate for the pretrain
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134 if decrease != 0:
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135 learning_rate -= decreasing
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136
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137 # useful when doing tests
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138 if self.max_minibatches and batch_index >= self.max_minibatches:
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139 break
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140
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141 #When we pass through the data only once (the case with P07)
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142 #There is approximately 800*1024=819200 examples per file (1k per example and files are 800M)
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143 if self.hp.pretraining_epochs_per_layer == 1 and count%un_fichier == 0:
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144 print 'Pre-training layer %i, epoch %d, cost '%(i,num_files),c
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145 num_files+=1
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146 sys.stdout.flush()
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147 self.series['params'].append((num_files,), self.classifier.all_params)
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148
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149 #When NIST is used
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150 if self.hp.pretraining_epochs_per_layer > 1:
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151 print 'Pre-training layer %i, epoch %d, cost '%(i,epoch),c
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152 sys.stdout.flush()
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153
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154 self.series['params'].append((epoch,), self.classifier.all_params)
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155
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156 end_time = time.clock()
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157
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158 print ('Pretraining took %f minutes' %((end_time-start_time)/60.))
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159 self.hp.update({'pretraining_time': end_time-start_time})
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160
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161 sys.stdout.flush()
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162
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163 #To be able to load them later for tests on finetune
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164 self.parameters_pre=[copy(x.value) for x in self.classifier.params]
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165 f = open('params_pretrain.txt', 'w')
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166 cPickle.dump(self.parameters_pre,f,protocol=-1)
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167 f.close()
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168
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169
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170 def finetune(self,dataset,dataset_test,num_finetune,ind_test,special=0,decrease=0):
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171
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172 if special != 0 and special != 1:
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173 sys.exit('Bad value for variable special. Must be in {0,1}')
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174 print "STARTING FINETUNING, time = ", datetime.datetime.now()
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175
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176 minibatch_size = self.hp.minibatch_size
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177 if ind_test == 0 or ind_test == 20:
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178 nom_test = "NIST"
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179 nom_train="P07"
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180 else:
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181 nom_test = "P07"
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182 nom_train = "NIST"
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183
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184
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185 # create a function to compute the mistakes that are made by the model
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186 # on the validation set, or testing set
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187 test_model = \
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188 theano.function(
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189 [self.classifier.x,self.classifier.y], self.classifier.errors)
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190 # givens = {
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191 # self.classifier.x: ensemble_x,
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192 # self.classifier.y: ensemble_y]})
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193
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194 validate_model = \
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195 theano.function(
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196 [self.classifier.x,self.classifier.y], self.classifier.errors)
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197 # givens = {
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198 # self.classifier.x: ,
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199 # self.classifier.y: ]})
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200
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201
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202 # early-stopping parameters
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203 patience = 10000 # look as this many examples regardless
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204 patience_increase = 2. # wait this much longer when a new best is
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205 # found
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206 improvement_threshold = 0.995 # a relative improvement of this much is
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207 # considered significant
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208 validation_frequency = min(self.mb_per_epoch, patience/2)
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209 # go through this many
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210 # minibatche before checking the network
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211 # on the validation set; in this case we
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212 # check every epoch
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213 if self.max_minibatches and validation_frequency > self.max_minibatches:
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214 validation_frequency = self.max_minibatches / 2
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215
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216 best_params = None
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217 best_validation_loss = float('inf')
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218 test_score = 0.
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219 start_time = time.clock()
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220
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221 done_looping = False
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222 epoch = 0
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223
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224 total_mb_index = 0
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225 minibatch_index = 0
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226 parameters_finetune=[]
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227
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228 if ind_test == 21:
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229 learning_rate = self.hp.finetuning_lr / 10.0
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230 else:
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231 learning_rate = self.hp.finetuning_lr #The initial finetune lr
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232
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233
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234 while (epoch < num_finetune) and (not done_looping):
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235 epoch = epoch + 1
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236
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237 for x,y in dataset.train(minibatch_size,bufsize=buffersize):
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238 minibatch_index += 1
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239
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240 y = y - self.class_offset
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241
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242 if special == 0:
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243 cost_ij = self.classifier.finetune(x,y,learning_rate)
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244 elif special == 1:
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245 cost_ij = self.classifier.finetune2(x,y)
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246 total_mb_index += 1
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247
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248 self.series["training_error"].append((epoch, minibatch_index), cost_ij)
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249
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250 if (total_mb_index+1) % validation_frequency == 0:
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251 #minibatch_index += 1
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252 #The validation set is always NIST (we want the model to be good on NIST)
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253 if ind_test == 0 | ind_test == 20:
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254 iter=dataset_test.valid(minibatch_size,bufsize=buffersize)
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255 else:
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256 iter = dataset.valid(minibatch_size,bufsize=buffersize)
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257 if self.max_minibatches:
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258 iter = itermax(iter, self.max_minibatches)
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259 validation_losses = [validate_model(x,y - self.class_offset) for x,y in iter]
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260 this_validation_loss = numpy.mean(validation_losses)
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261
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262 self.series["validation_error"].\
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263 append((epoch, minibatch_index), this_validation_loss*100.)
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264
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265 print('epoch %i, minibatch %i, validation error on NIST : %f %%' % \
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266 (epoch, minibatch_index+1, \
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267 this_validation_loss*100.))
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268
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269
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270 # if we got the best validation score until now
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271 if this_validation_loss < best_validation_loss:
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272
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273 #improve patience if loss improvement is good enough
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274 if this_validation_loss < best_validation_loss * \
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275 improvement_threshold :
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276 patience = max(patience, total_mb_index * patience_increase)
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277
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278 # save best validation score, iteration number and parameters
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279 best_validation_loss = this_validation_loss
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280 best_iter = total_mb_index
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281 parameters_finetune=[copy(x.value) for x in self.classifier.params]
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282
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283 # test it on the test set
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284 iter = dataset.test(minibatch_size,bufsize=buffersize)
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285 if self.max_minibatches:
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286 iter = itermax(iter, self.max_minibatches)
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287 test_losses = [test_model(x,y - self.class_offset) for x,y in iter]
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288 test_score = numpy.mean(test_losses)
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289
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290 #test it on the second test set
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291 iter2 = dataset_test.test(minibatch_size,bufsize=buffersize)
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292 if self.max_minibatches:
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293 iter2 = itermax(iter2, self.max_minibatches)
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294 test_losses2 = [test_model(x,y - self.class_offset) for x,y in iter2]
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295 test_score2 = numpy.mean(test_losses2)
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296
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297 self.series["test_error"].\
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298 append((epoch, minibatch_index), test_score*100.)
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299
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300 print((' epoch %i, minibatch %i, test error on dataset %s (train data) of best '
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301 'model %f %%') %
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302 (epoch, minibatch_index+1,nom_train,
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303 test_score*100.))
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304
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305 print((' epoch %i, minibatch %i, test error on dataset %s of best '
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306 'model %f %%') %
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307 (epoch, minibatch_index+1,nom_test,
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308 test_score2*100.))
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309
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310 if patience <= total_mb_index:
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311 done_looping = True
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312 break #to exit the FOR loop
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313
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314 sys.stdout.flush()
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315
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316 # useful when doing tests
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317 if self.max_minibatches and minibatch_index >= self.max_minibatches:
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318 break
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319
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320 if decrease == 1:
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321 if (ind_test == 21 & epoch % 100 == 0) | ind_test == 20 | (ind_test == 1 & epoch % 100 == 0) :
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322 learning_rate /= 2 #divide the learning rate by 2 for each new epoch of P07 (or 100 of NIST)
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323
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324 self.series['params'].append((epoch,), self.classifier.all_params)
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325
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326 if done_looping == True: #To exit completly the fine-tuning
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327 break #to exit the WHILE loop
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328
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329 end_time = time.clock()
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330 self.hp.update({'finetuning_time':end_time-start_time,\
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331 'best_validation_error':best_validation_loss,\
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332 'test_score':test_score,
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333 'num_finetuning_epochs':epoch})
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334
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335 print(('\nOptimization complete with best validation score of %f %%,'
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336 'with test performance %f %% on dataset %s ') %
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337 (best_validation_loss * 100., test_score*100.,nom_train))
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338 print(('The test score on the %s dataset is %f')%(nom_test,test_score2*100.))
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339
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340 print ('The finetuning ran for %f minutes' % ((end_time-start_time)/60.))
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341
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342 sys.stdout.flush()
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343
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344 #Save a copy of the parameters in a file to be able to get them in the future
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345
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346 if special == 1: #To keep a track of the value of the parameters
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347 f = open('params_finetune_stanford.txt', 'w')
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348 cPickle.dump(parameters_finetune,f,protocol=-1)
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349 f.close()
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350
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351 elif ind_test == 0 | ind_test == 20: #To keep a track of the value of the parameters
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352 f = open('params_finetune_P07.txt', 'w')
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353 cPickle.dump(parameters_finetune,f,protocol=-1)
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354 f.close()
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355
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356
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357 elif ind_test== 1: #For the run with 2 finetunes. It will be faster.
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358 f = open('params_finetune_NIST.txt', 'w')
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359 cPickle.dump(parameters_finetune,f,protocol=-1)
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360 f.close()
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361
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362 elif ind_test== 21: #To keep a track of the value of the parameters
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363 f = open('params_finetune_P07_then_NIST.txt', 'w')
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364 cPickle.dump(parameters_finetune,f,protocol=-1)
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365 f.close()
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366
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367
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368 #Set parameters like they where right after pre-train or finetune
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369 def reload_parameters(self,which):
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370
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371 #self.parameters_pre=pickle.load('params_pretrain.txt')
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372 f = open(which)
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373 self.parameters_pre=cPickle.load(f)
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374 f.close()
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375 for idx,x in enumerate(self.parameters_pre):
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376 if x.dtype=='float64':
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377 self.classifier.params[idx].value=theano._asarray(copy(x),dtype=theano.config.floatX)
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378 else:
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379 self.classifier.params[idx].value=copy(x)
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380
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381 def training_error(self,dataset):
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382 # create a function to compute the mistakes that are made by the model
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383 # on the validation set, or testing set
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384 test_model = \
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385 theano.function(
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386 [self.classifier.x,self.classifier.y], self.classifier.errors)
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387
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388 iter2 = dataset.train(self.hp.minibatch_size,bufsize=buffersize)
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parents:
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389 train_losses2 = [test_model(x,y - self.class_offset) for x,y in iter2]
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390 train_score2 = numpy.mean(train_losses2)
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parents:
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391 print "Training error is: " + str(train_score2)
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392
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parents:
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393
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parents:
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394
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parents:
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395