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allenai/ms2_sparse_oracle

This is a copy of the MS^2 dataset, except the input source documents of its validation split have been replaced by a sparse retriever. The retrieval pipeline used: query: The background field of each example corpus: The union of all documents in the train, validation and test splits. A document is the concatenation of the title and abstract. retriever: BM25 via PyTerrier with default settings top-k strategy: "oracle", i.e. the number of documents retrieved, k, is set as the original number… See the full description on the dataset page: https://huggingface.co/datasets/allenai/ms2_sparse_oracle.

sourceHugging Faceapache-2.0updated 4y agoView on Hugging Face
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This is a copy of the MS^2 dataset, except the input source documents of its validation split have been replaced by a _sparse_ retriever. The retrieval pipeline used:

  • —_query_: The background field of each example
  • —_corpus_: The union of all documents in the train, validation and test splits. A document is the concatenation of the title and abstract.
  • —_retriever_: BM25 via PyTerrier with default settings
  • —_top-k strategy_: "oracle", i.e. the number of documents retrieved, k, is set as the original number of input documents for each example

Retrieval results on the train set:

Recall@100RprecPrecision@kRecall@k
0.43330.21630.21630.2163

Retrieval results on the validation set:

Recall@100RprecPrecision@kRecall@k
0.37800.18270.18270.1827

Retrieval results on the test set:

Recall@100RprecPrecision@kRecall@k
0.39280.18980.18980.1898