mirror of https://github.com/explosion/spaCy.git
146 lines
4.1 KiB
Python
146 lines
4.1 KiB
Python
import warnings
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from unittest import TestCase
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import pytest
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import srsly
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from numpy import zeros
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from spacy.kb.kb_in_memory import InMemoryLookupKB, Writer
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from spacy.vectors import Vectors
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from spacy.language import Language
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from spacy.pipeline import TrainablePipe
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from spacy.vocab import Vocab
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from ..util import make_tempdir
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def nlp():
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return Language()
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def vectors():
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data = zeros((3, 1), dtype="f")
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keys = ["cat", "dog", "rat"]
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return Vectors(data=data, keys=keys)
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def custom_pipe():
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# create dummy pipe partially implementing interface -- only want to test to_disk
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class SerializableDummy:
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def __init__(self, **cfg):
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if cfg:
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self.cfg = cfg
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else:
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self.cfg = None
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super(SerializableDummy, self).__init__()
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def to_bytes(self, exclude=tuple(), disable=None, **kwargs):
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return srsly.msgpack_dumps({"dummy": srsly.json_dumps(None)})
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def from_bytes(self, bytes_data, exclude):
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return self
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def to_disk(self, path, exclude=tuple(), **kwargs):
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pass
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def from_disk(self, path, exclude=tuple(), **kwargs):
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return self
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class MyPipe(TrainablePipe):
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def __init__(self, vocab, model=True, **cfg):
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if cfg:
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self.cfg = cfg
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else:
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self.cfg = None
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self.model = SerializableDummy()
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self.vocab = vocab
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return MyPipe(Vocab())
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def tagger():
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nlp = Language()
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tagger = nlp.add_pipe("tagger")
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# need to add model for two reasons:
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# 1. no model leads to error in serialization,
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# 2. the affected line is the one for model serialization
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tagger.add_label("A")
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nlp.initialize()
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return tagger
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def entity_linker():
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nlp = Language()
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def create_kb(vocab):
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kb = InMemoryLookupKB(vocab, entity_vector_length=1)
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kb.add_entity("test", 0.0, zeros((1,), dtype="f"))
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return kb
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entity_linker = nlp.add_pipe("entity_linker")
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entity_linker.set_kb(create_kb)
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# need to add model for two reasons:
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# 1. no model leads to error in serialization,
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# 2. the affected line is the one for model serialization
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nlp.initialize()
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return entity_linker
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objects_to_test = (
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[nlp(), vectors(), custom_pipe(), tagger(), entity_linker()],
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["nlp", "vectors", "custom_pipe", "tagger", "entity_linker"],
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)
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def write_obj_and_catch_warnings(obj):
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with make_tempdir() as d:
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with warnings.catch_warnings(record=True) as warnings_list:
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warnings.filterwarnings("always", category=ResourceWarning)
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obj.to_disk(d)
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# in python3.5 it seems that deprecation warnings are not filtered by filterwarnings
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return list(filter(lambda x: isinstance(x, ResourceWarning), warnings_list))
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@pytest.mark.parametrize("obj", objects_to_test[0], ids=objects_to_test[1])
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def test_to_disk_resource_warning(obj):
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warnings_list = write_obj_and_catch_warnings(obj)
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assert len(warnings_list) == 0
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def test_writer_with_path_py35():
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writer = None
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with make_tempdir() as d:
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path = d / "test"
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try:
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writer = Writer(path)
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except Exception as e:
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pytest.fail(str(e))
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finally:
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if writer:
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writer.close()
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def test_save_and_load_knowledge_base():
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nlp = Language()
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kb = InMemoryLookupKB(nlp.vocab, entity_vector_length=1)
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with make_tempdir() as d:
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path = d / "kb"
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try:
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kb.to_disk(path)
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except Exception as e:
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pytest.fail(str(e))
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try:
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kb_loaded = InMemoryLookupKB(nlp.vocab, entity_vector_length=1)
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kb_loaded.from_disk(path)
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except Exception as e:
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pytest.fail(str(e))
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class TestToDiskResourceWarningUnittest(TestCase):
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def test_resource_warning(self):
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scenarios = zip(*objects_to_test)
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for scenario in scenarios:
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with self.subTest(msg=scenario[1]):
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warnings_list = write_obj_and_catch_warnings(scenario[0])
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self.assertEqual(len(warnings_list), 0)
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