Mercurial > pylearn
annotate test_mlp.py @ 259:621faba17c60
created 'dummytests', tests that checks consistency of new weird datasets, where we can't compare with actual values in a matrix, for instance. Useful as a first debugging when creating a dataset
author | Thierry Bertin-Mahieux <bertinmt@iro.umontreal.ca> |
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date | Tue, 03 Jun 2008 16:41:55 -0400 |
parents | ebbb0e749565 |
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rev | line source |
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121 | 1 |
2 from mlp import * | |
133 | 3 import dataset |
186
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4 import nnet_ops |
121 | 5 |
183
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6 |
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7 from functools import partial |
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8 def separator(debugger, i, node, *ths): |
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9 print "===================" |
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10 |
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11 def what(debugger, i, node, *ths): |
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12 print "#%i" % i, node |
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13 |
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14 def parents(debugger, i, node, *ths): |
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15 print [input.step for input in node.inputs] |
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16 |
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17 def input_shapes(debugger, i, node, *ths): |
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18 print "input shapes: ", |
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19 for r in node.inputs: |
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20 if hasattr(r.value, 'shape'): |
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21 print r.value.shape, |
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22 else: |
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23 print "no_shape", |
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24 print |
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25 |
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26 def input_types(debugger, i, node, *ths): |
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27 print "input types: ", |
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28 for r in node.inputs: |
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29 print r.type, |
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30 print |
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31 |
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32 def output_shapes(debugger, i, node, *ths): |
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33 print "output shapes:", |
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34 for r in node.outputs: |
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35 if hasattr(r.value, 'shape'): |
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36 print r.value.shape, |
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37 else: |
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38 print "no_shape", |
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39 print |
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40 |
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41 def output_types(debugger, i, node, *ths): |
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42 print "output types:", |
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43 for r in node.outputs: |
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44 print r.type, |
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45 print |
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46 |
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47 |
121 | 48 def test0(): |
183
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49 linker = 'c|py' |
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50 #linker = partial(theano.gof.DebugLinker, linkers = [theano.gof.OpWiseCLinker], |
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51 # debug_pre = [separator, what, parents, input_types, input_shapes], |
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52 # debug_post = [output_shapes, output_types], |
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53 # compare_fn = lambda x, y: numpy.all(x == y)) |
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54 |
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55 nnet = OneHiddenLayerNNetClassifier(10,2,.001,1000, linker = linker) |
133 | 56 training_set = dataset.ArrayDataSet(numpy.array([[0, 0, 0], |
57 [0, 1, 1], | |
58 [1, 0, 1], | |
59 [1, 1, 1]]), | |
60 {'input':slice(2),'target':2}) | |
61 fprop=nnet(training_set) | |
121 | 62 |
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63 output_ds = fprop(training_set) |
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64 |
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65 for fieldname in output_ds.fieldNames(): |
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66 print fieldname+"=",output_ds[fieldname] |
121 | 67 |
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68 def test1(): |
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69 nnet = ManualNNet(2, 10,3,.1,1000) |
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70 training_set = dataset.ArrayDataSet(numpy.array([[0, 0, 0], |
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71 [0, 1, 1], |
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72 [1, 0, 1], |
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73 [1, 1, 1]]), |
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74 {'input':slice(2),'target':2}) |
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75 fprop=nnet(training_set) |
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76 |
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77 output_ds = fprop(training_set) |
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78 |
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79 for fieldname in output_ds.fieldNames(): |
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80 print fieldname+"=",output_ds[fieldname] |
121 | 81 |
186
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82 def test2(): |
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83 training_set = dataset.ArrayDataSet(numpy.array([[0, 0, 0], |
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84 [0, 1, 1], |
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85 [1, 0, 1], |
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86 [1, 1, 1]]), |
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87 {'input':slice(2),'target':2}) |
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88 nin, nhid=2, 10 |
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89 def sigm_layer(input): |
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90 W1 = t.matrix('W1') |
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91 b1 = t.vector('b1') |
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92 return (nnet_ops.sigmoid(b1 + t.dot(input, W1)), |
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93 [W1, b1], |
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94 [(numpy.random.rand(nin, nhid) -0.5) * 0.001, numpy.zeros(nhid)]) |
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95 nnet = ManualNNet(nin, nhid, 3, .1, 1000, hidden_layer=sigm_layer) |
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96 fprop=nnet(training_set) |
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97 |
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98 output_ds = fprop(training_set) |
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99 |
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100 for fieldname in output_ds.fieldNames(): |
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101 print fieldname+"=",output_ds[fieldname] |
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102 |
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103 def test_interface_0(): |
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104 learner = ManualNNet(2, 10, 3, .1, 1000) |
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105 |
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106 model = learner(training_set) |
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107 |
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108 model2 = learner(training_set) # trains model a second time |
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109 |
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110 learner.update(additional_data) # modifies nnet and model by side-effect |
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111 |
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112 |
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113 def test_interface2_1(): |
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114 learn_algo = ManualNNet(2, 10, 3, .1, 1000) |
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115 |
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116 prior = learn_algo() |
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117 |
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118 model1 = learn_algo(training_set1) |
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119 |
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120 model2 = learn_algo(training_set2) |
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121 |
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122 model2.update(additional_data) |
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123 |
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124 n_match = 0 |
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125 for o1, o2 in zip(model1.use(test_data), model2.use(test_data)): |
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126 n_match += (o1 == o2) |
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127 |
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128 print n_match |
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129 |
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130 test1() |
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131 test2() |
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James Bergstra <bergstrj@iro.umontreal.ca>
parents:
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