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Add hidden layers for tagger
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620df0414f
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@ -119,7 +119,7 @@ class TokenVectorEncoder(object):
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assert tokvecs.shape[0] == len(doc)
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doc.tensor = tokvecs
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def update(self, docs, golds, state=None, drop=0., sgd=None):
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def update(self, docs, golds, state=None, drop=0., sgd=None, losses=None):
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"""Update the model.
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docs (iterable): A batch of `Doc` objects.
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@ -199,7 +199,7 @@ class NeuralTagger(object):
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vocab.morphology.assign_tag_id(&doc.c[j], tag_id)
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idx += 1
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def update(self, docs_tokvecs, golds, drop=0., sgd=None):
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def update(self, docs_tokvecs, golds, drop=0., sgd=None, losses=None):
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docs, tokvecs = docs_tokvecs
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if self.model.nI is None:
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@ -248,7 +248,8 @@ class NeuralTagger(object):
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vocab.morphology.lemmatizer)
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token_vector_width = pipeline[0].model.nO
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self.model = with_flatten(
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Softmax(self.vocab.morphology.n_tags, token_vector_width))
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chain(Maxout(token_vector_width, token_vector_width),
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Softmax(self.vocab.morphology.n_tags, token_vector_width)))
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def use_params(self, params):
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with self.model.use_params(params):
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@ -274,7 +275,8 @@ class NeuralLabeller(NeuralTagger):
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self.labels[dep] = len(self.labels)
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token_vector_width = pipeline[0].model.nO
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self.model = with_flatten(
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Softmax(len(self.labels), token_vector_width))
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chain(Maxout(token_vector_width, token_vector_width),
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Softmax(len(self.labels), token_vector_width)))
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def get_loss(self, docs, golds, scores):
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scores = self.model.ops.flatten(scores)
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