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This is a textcat classifier that pools the vectors generated by a tok2vec implementation and then applies a classifier to the pooled representation. Three reductions are supported for pooling: first, max, and mean. When multiple reductions are enabled, the reductions are concatenated before providing them to the classification layer. This model is a generalization of the TextCatCNN model, which only supports mean reductions and is a bit of a misnomer, because it can also be used with transformers. This change also reimplements TextCatCNN.v2 using the new TextCatReduce.v1 layer. |
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.. | ||
__init__.py | ||
test_analysis.py | ||
test_annotates_on_update.py | ||
test_attributeruler.py | ||
test_edit_tree_lemmatizer.py | ||
test_entity_linker.py | ||
test_entity_ruler.py | ||
test_functions.py | ||
test_initialize.py | ||
test_lemmatizer.py | ||
test_models.py | ||
test_morphologizer.py | ||
test_pipe_factories.py | ||
test_pipe_methods.py | ||
test_sentencizer.py | ||
test_senter.py | ||
test_span_finder.py | ||
test_span_ruler.py | ||
test_spancat.py | ||
test_tagger.py | ||
test_textcat.py | ||
test_tok2vec.py |