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Delete _eventnarrative.py

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  1. _eventnarrative.py +0 -77
_eventnarrative.py DELETED
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- #!/usr/bin/env python3
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-
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- """
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- The script used to load the dataset from the original source.
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- """
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-
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- import os
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- from collections import defaultdict
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-
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- import json
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- import datasets
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-
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- _CITATION = """\
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- @inproceedings{colas2021eventnarrative,
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- title={EventNarrative: A Large-scale Event-centric Dataset for Knowledge Graph-to-Text Generation},
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- author={Colas, Anthony and Sadeghian, Ali and Wang, Yue and Wang, Daisy Zhe},
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- booktitle={Thirty-fifth Conference on Neural Information Processing Systems Datasets and Benchmarks Track (Round 1)},
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- year={2021}
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- }
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- """
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-
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- _DESCRIPTION = """\
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- EventNarrative is a knowledge graph-to-text dataset from publicly available open-world knowledge graphs, focusing on event-centric data.
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- EventNarrative consists of approximately 230,000 graphs and their corresponding natural language text, 6 times larger than the current largest parallel dataset.
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- It makes use of a rich ontology and all of the KGs entities are linked to the text."""
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-
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- _URL = "https://www.kaggle.com/datasets/acolas1/eventnarration"
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- _LICENSE = "CC BY 4.0"
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-
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- class EventNarrative(datasets.GeneratorBasedBuilder):
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- VERSION = datasets.Version("1.0.0")
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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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- "Event_Name": datasets.Value("string"),
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- "entity_ref_dict": datasets.Value("large_string"),
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- "keep_triples": datasets.Value("large_string"),
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- "narration": datasets.Value("large_string"),
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- "types": datasets.Value("string"),
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- "wikipediaLabel": datasets.Value("string"),
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- }),
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- supervised_keys=None,
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- homepage=_URL,
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- citation=_CITATION,
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- license=_LICENSE,
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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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- return [
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- datasets.SplitGenerator(name=datasets.Split.TRAIN, gen_kwargs={"split" : "train"}),
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- datasets.SplitGenerator(name=datasets.Split.VALIDATION, gen_kwargs={"split" : "dev"}),
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- datasets.SplitGenerator(name=datasets.Split.TEST, gen_kwargs={"split" : "test"}),
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- ]
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-
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- def _generate_examples(self, split):
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- """Yields examples."""
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- id_ = 0
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-
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- with open(f"{split}_data.json") as f:
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- j = json.load(f)
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-
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- for example in j:
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- e = { key : str(value) for key, value in example.items()}
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- id_ += 1
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- yield id_, e
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-
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-
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-
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- if __name__ == '__main__':
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- dataset = datasets.load_dataset(__file__)
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-
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- import pdb; pdb.set_trace() # breakpoint ffb6df83 //
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-
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- # dataset.push_to_hub("kasnerz/eventnarrative")