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Delete inspec_ke_tagged.py

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  1. inspec_ke_tagged.py +0 -121
inspec_ke_tagged.py DELETED
@@ -1,121 +0,0 @@
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- # Lint as: python3
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- """Keyphrase extraction as sequence labeling using contextualized embeddings"""
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-
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- import datasets
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-
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-
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- logger = datasets.logging.get_logger(__name__)
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-
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-
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- _CITATION = """\
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- @article{sahrawat2020keyphrase,
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- title={Keyphrase extraction as sequence labeling using contextualized embeddings},
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- author={Sahrawat, Dhruva and Mahata, Debanjan and Zhang, Haimin and Kulkarni, Mayank and Sharma, Agniv and Gosangi, Rakesh and Stent, Amanda and Kumar, Yaman and Shah, Rajiv Ratn and Zimmermann, Roger},
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- journal={Advances in Information Retrieval},
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- volume={12036},
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- pages={328},
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- year={2020},
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- publisher={Nature Publishing Group}
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- }
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- """
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-
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- _DESCRIPTION = """\
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- This dataset is one of the datasets used in the paper entitled, Keyphrase Extraction from Scholarly Articles as Sequence
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- Labeling using Contextualized Embeddings https://arxiv.org/abs/1910.08840. The dataset consists of the Inspec corpus
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- which has been tagged using the BIO tagging scheme. The dataset should be used for training and evaluating keyphrase
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- extraction models when modeled as a sequence tagging task
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- """
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-
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- _URL = "https://huggingface.co/datasets/midas/inspec_ke_tagged/blob/main/"
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- _TRAINING_FILE = "train.txt"
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- _DEV_FILE = "valid.txt"
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- _TEST_FILE = "test.txt"
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-
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-
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- class InspecKETaggedConfig(datasets.BuilderConfig):
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- """BuilderConfig for InspecKETagged"""
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-
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- def __init__(self, **kwargs):
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- """BuilderConfig for InspecKETagged.
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-
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- Args:
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- **kwargs: keyword arguments forwarded to super.
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- """
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- super(InspecKETaggedConfig, self).__init__(**kwargs)
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-
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-
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- class InspecKETagged(datasets.GeneratorBasedBuilder):
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- """InspecKETagged dataset."""
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-
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- BUILDER_CONFIGS = [
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- InspecKETaggedConfig(name="inspec_ke_tagged", version=datasets.Version("1.0.0"), description="InspecKETagged "
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- "dataset"),
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- ]
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-
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- def _info(self):
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- return datasets.DatasetInfo(
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- description=_DESCRIPTION,
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- features=datasets.Features(
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- {
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- "id": datasets.Value("string"),
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- "tokens": datasets.Sequence(datasets.Value("string")),
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- "ke_tags": datasets.Sequence(
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- datasets.features.ClassLabel(
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- names=[
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- "O",
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- "B-KEY",
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- "I-KEY",
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- ]
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- )
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- ),
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- }
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- ),
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- supervised_keys=None,
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- homepage="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7148038/",
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- citation=_CITATION,
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- )
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-
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- def _split_generators(self, dl_manager):
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- """Returns SplitGenerators."""
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- urls_to_download = {
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- "train": f"{_URL}{_TRAINING_FILE}",
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- "dev": f"{_URL}{_DEV_FILE}",
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- "test": f"{_URL}{_TEST_FILE}",
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- }
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- downloaded_files = dl_manager.download_and_extract(urls_to_download)
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-
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- return [
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- datasets.SplitGenerator(name=datasets.Split.TRAIN, gen_kwargs={"filepath": downloaded_files["train"]}),
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- datasets.SplitGenerator(name=datasets.Split.VALIDATION, gen_kwargs={"filepath": downloaded_files["dev"]}),
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- datasets.SplitGenerator(name=datasets.Split.TEST, gen_kwargs={"filepath": downloaded_files["test"]}),
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- ]
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-
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- def _generate_examples(self, filepath):
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- logger.info("⏳ Generating examples from = %s", filepath)
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- with open(filepath, encoding="utf-8") as f:
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- guid = 0
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- tokens = []
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- ke_tags = []
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- for line in f:
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- if line == "" or line == "\n":
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- if tokens:
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- yield guid, {
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- "id": str(guid),
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- "tokens": tokens,
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- "ke_tags": ke_tags,
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- }
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- guid += 1
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- tokens = []
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- ke_tags = []
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- else:
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- # the tokens are space separated
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- splits = line.split()
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- print(splits)
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- tokens.append(splits[0])
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- ke_tags.append(splits[1].rstrip())
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- # last example
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- yield guid, {
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- "id": str(guid),
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- "tokens": tokens,
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- "ke_tags": ke_tags,
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- }