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Update parquet files
Browse files- .gitattributes +0 -51
- README.md +0 -45
- data/validation-00000-of-00001-03104c9e50a9a62b.parquet → allenai--multixscience_dense_mean/parquet-test.parquet +2 -2
- data/test-00000-of-00001-83a4d4bf9519da4f.parquet → allenai--multixscience_dense_mean/parquet-train.parquet +2 -2
- data/train-00000-of-00001-e44d667e6289fffe.parquet → allenai--multixscience_dense_mean/parquet-validation.parquet +2 -2
- dataset_infos.json +0 -1
.gitattributes
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README.md
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---
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annotations_creators:
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- found
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language_creators:
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- found
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language:
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- en
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license:
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- unknown
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multilinguality:
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- monolingual
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size_categories:
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- 10K<n<100K
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source_datasets:
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- original
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task_categories:
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- summarization
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paperswithcode_id: multi-xscience
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pretty_name: Multi-XScience
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---
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This is a copy of the [Multi-XScience](https://huggingface.co/datasets/multi_x_science_sum) dataset, except the input source documents of its `train`, `validation` and `test` splits have been replaced by a __dense__ retriever. The retrieval pipeline used:
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- __query__: The `related_work` field of each example
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- __corpus__: The union of all documents in the `train`, `validation` and `test` splits
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- __retriever__: [`facebook/contriever-msmarco`](https://huggingface.co/facebook/contriever-msmarco) via [PyTerrier](https://pyterrier.readthedocs.io/en/latest/) with default settings
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- __top-k strategy__: `"max"`, i.e. the number of documents retrieved, `k`, is set as the maximum number of documents seen across examples in this dataset, in this case `k==4`
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Retrieval results on the `train` set:
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| Recall@100 | Rprec | Precision@k | Recall@k |
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| ----------- | ----------- | ----------- | ----------- |
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| 0.5270 | 0.2005 | 0.1551 | 0.2357 |
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Retrieval results on the `validation` set:
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| Recall@100 | Rprec | Precision@k | Recall@k |
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| ----------- | ----------- | ----------- | ----------- |
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| 0.5310 | 0.2026 | 0.1603 | 0.2432 |
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Retrieval results on the `test` set:
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| Recall@100 | Rprec | Precision@k | Recall@k |
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| ----------- | ----------- | ----------- | ----------- |
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| 0.5229 | 0.2081 | 0.1612 | 0.2440 |
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data/validation-00000-of-00001-03104c9e50a9a62b.parquet → allenai--multixscience_dense_mean/parquet-test.parquet
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data/test-00000-of-00001-83a4d4bf9519da4f.parquet → allenai--multixscience_dense_mean/parquet-train.parquet
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data/train-00000-of-00001-e44d667e6289fffe.parquet → allenai--multixscience_dense_mean/parquet-validation.parquet
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dataset_infos.json
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{"allenai--multixscience_dense_mean": {"description": "\nMulti-XScience, a large-scale multi-document summarization dataset created from scientific articles. Multi-XScience introduces a challenging multi-document summarization task: writing the related-work section of a paper based on its abstract and the articles it references.\n", "citation": "\n@article{lu2020multi,\n title={Multi-XScience: A Large-scale Dataset for Extreme Multi-document Summarization of Scientific Articles},\n author={Lu, Yao and Dong, Yue and Charlin, Laurent},\n journal={arXiv preprint arXiv:2010.14235},\n year={2020}\n}\n", "homepage": "https://github.com/yaolu/Multi-XScience", "license": "", "features": {"aid": {"dtype": "string", "id": null, "_type": "Value"}, "mid": {"dtype": "string", "id": null, "_type": "Value"}, "abstract": {"dtype": "string", "id": null, "_type": "Value"}, "related_work": {"dtype": "string", "id": null, "_type": "Value"}, "ref_abstract": {"feature": {"cite_N": {"dtype": "string", "id": null, "_type": "Value"}, "mid": {"dtype": "string", "id": null, "_type": "Value"}, "abstract": {"dtype": "string", "id": null, "_type": "Value"}}, "length": -1, "id": null, "_type": "Sequence"}}, "post_processed": null, "supervised_keys": null, "task_templates": null, "builder_name": "multi_x_science_sum", "config_name": "default", "version": {"version_str": "1.1.0", "description": null, "major": 1, "minor": 1, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 213328056, "num_examples": 30369, "dataset_name": "multixscience_dense_mean"}, "test": {"name": "test", "num_bytes": 35544761, "num_examples": 5093, "dataset_name": "multixscience_dense_mean"}, "validation": {"name": "validation", "num_bytes": 35557101, "num_examples": 5066, "dataset_name": "multixscience_dense_mean"}}, "download_checksums": null, "download_size": 124302309, "post_processing_size": null, "dataset_size": 284429918, "size_in_bytes": 408732227}}
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