Upload indocoref.py with huggingface_hub
Browse files- indocoref.py +23 -23
indocoref.py
CHANGED
@@ -9,24 +9,24 @@ except:
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import datasets
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from
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TextPreprocess
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from
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from
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from
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_CITATION = """\
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@inproceedings{artari-etal-2021-multi,
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}
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"""
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@@ -62,28 +62,28 @@ _URLS = {
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_SUPPORTED_TASKS = [Tasks.COREFERENCE_RESOLUTION]
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# Does not seem to have versioning
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_SOURCE_VERSION = "1.0.0"
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class Indocoref(datasets.GeneratorBasedBuilder):
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"""A collection of 210 curated articles from Wikipedia Bahasa Indonesia with Coreference Annotations"""
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SOURCE_VERSION = datasets.Version(_SOURCE_VERSION)
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BUILDER_CONFIGS = [
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name="indocoref_source",
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version=SOURCE_VERSION,
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description="Indocoref source schema",
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schema="source",
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subset_id="indocoref",
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),
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name="
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version=
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description="Indocoref Nusantara schema",
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schema="
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subset_id="indocoref",
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),
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]
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@@ -121,7 +121,7 @@ class Indocoref(datasets.GeneratorBasedBuilder):
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],
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}
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)
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elif self.config.schema == "
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features = schemas.kb_features
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return datasets.DatasetInfo(
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@@ -209,7 +209,7 @@ class Indocoref(datasets.GeneratorBasedBuilder):
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}
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yield index, row
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elif self.config.schema == "
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for index, example in enumerate(data):
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passage, mentions = example["passage"], example["mentions"]
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# Annotated text does not have any line breaks but the original passage does
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import datasets
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from seacrowd.sea_datasets.indocoref.utils.text_preprocess import \
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TextPreprocess
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from seacrowd.utils import schemas
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from seacrowd.utils.configs import SEACrowdConfig
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from seacrowd.utils.constants import Tasks
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_CITATION = """\
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@inproceedings{artari-etal-2021-multi,
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title = {{A Multi-Pass Sieve Coreference Resolution for Indonesian}},
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author = {Artari, Valentina Kania Prameswara and Mahendra, Rahmad and Jiwanggi, Meganingrum Arista and Anggraito, Adityo and Budi, Indra},
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year = 2021,
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month = {Sep},
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booktitle = {Proceedings of the International Conference on Recent Advances in Natural Language Processing (RANLP 2021)},
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publisher = {INCOMA Ltd.},
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address = {Held Online},
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pages = {79--85},
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url = {https://aclanthology.org/2021.ranlp-1.10},
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abstract = {Coreference resolution is an NLP task to find out whether the set of referring expressions belong to the same concept in discourse. A multi-pass sieve is a deterministic coreference model that implements several layers of sieves, where each sieve takes a pair of correlated mentions from a collection of non-coherent mentions. The multi-pass sieve is based on the principle of high precision, followed by increased recall in each sieve. In this work, we examine the portability of the multi-pass sieve coreference resolution model to the Indonesian language. We conduct the experiment on 201 Wikipedia documents and the multi-pass sieve system yields 72.74{\%} of MUC F-measure and 52.18{\%} of BCUBED F-measure.}
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}
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"""
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_SUPPORTED_TASKS = [Tasks.COREFERENCE_RESOLUTION]
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# Does not seem to have versioning
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_SOURCE_VERSION = "1.0.0"
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_SEACROWD_VERSION = "2024.06.20"
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class Indocoref(datasets.GeneratorBasedBuilder):
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"""A collection of 210 curated articles from Wikipedia Bahasa Indonesia with Coreference Annotations"""
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SOURCE_VERSION = datasets.Version(_SOURCE_VERSION)
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SEACROWD_VERSION = datasets.Version(_SEACROWD_VERSION)
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BUILDER_CONFIGS = [
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SEACrowdConfig(
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name="indocoref_source",
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version=SOURCE_VERSION,
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description="Indocoref source schema",
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schema="source",
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subset_id="indocoref",
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),
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SEACrowdConfig(
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name="indocoref_seacrowd_kb",
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version=SEACROWD_VERSION,
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description="Indocoref Nusantara schema",
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schema="seacrowd_kb",
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subset_id="indocoref",
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),
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]
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],
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}
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)
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elif self.config.schema == "seacrowd_kb":
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features = schemas.kb_features
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return datasets.DatasetInfo(
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}
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yield index, row
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elif self.config.schema == "seacrowd_kb":
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for index, example in enumerate(data):
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passage, mentions = example["passage"], example["mentions"]
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# Annotated text does not have any line breaks but the original passage does
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