Papers › Knowledge Guided Text Retrieval and Reading for Open Domain Question Answering

Knowledge Guided Text Retrieval and Reading for Open Domain Question Answering

10 Nov 2019arXiv:1911.03868archive 2025-07-28

Sewon Min, Danqi Chen, Luke Zettlemoyer, Hannaneh Hajishirzi

We introduce an approach for open-domain question answering (QA) that retrieves and reads a passage graph, where vertices are passages of text and edges represent relationships that are derived from an external knowledge base or co-occurrence in the same article. Our goals are to boost coverage by using knowledge-guided retrieval to find more relevant passages than text-matching methods, and to improve accuracy by allowing for better knowledge-guided fusion of information across related passages. Our graph retrieval method expands a set of seed keyword-retrieved passages by traversing the graph structure of the knowledge base. Our reader extends a BERT-based architecture and updates passage representations by propagating information from related passages and their relations, instead of reading each passage in isolation. Experiments on three open-domain QA datasets, WebQuestions, Natural Questions and TriviaQA, show improved performance over non-graph baselines by 2-11% absolute. Our approach also matches or exceeds the state-of-the-art in every case, without using an expensive end-to-end training regime.

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huggingface/transformers mentioned in paperpytorch report
facebookresearch/DPR mentioned on GitHubpytorch report
hongyuntw/DPR mentioned on GitHubpytorch report
hongyuntw/DPR_BESS mentioned on GitHubpytorchNOASSERTION report
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load_passages hongyuntw/DPR/dense_retriever.py community (archive-listed) ran · our draft was wrong licence not identified · pointer only · e60834120b9256f9 · report
normalize_answer shmsw25/GraphRetriever/WikiData.py community (archive-listed) ran · our draft was wrong fingerprinted no licence file found · pointer only · dae7ab386661a4f4 · report
attentions_to_json Heidelberg-NLP/discourse-aware-semantic-self-attention/docqa/commands/evaluate_qanet_semantic_flat.py community (archive-listed) unverified Apache-2.0 (permissive) · 54a1759eb619f749 · report
create_argparse_namespace Heidelberg-NLP/discourse-aware-semantic-self-attention/docqa/commands/evaluate_qanet_semantic_flat.py community (archive-listed) unverified Apache-2.0 (permissive) · 9cecf482ef0508aa · report
dot_product_scores identical code first harvested elsewhere ran · our draft was wrong fingerprinted licence of this copy not recorded · 928414780ee23e45 · report
cosine_scores identical code first harvested elsewhere ran · our draft was wrong fingerprinted licence of this copy not recorded · 4c7d079ed8d8dd58 · report

Tasks

Natural QuestionsOpen-Domain Question AnsweringQuestion AnsweringReading ComprehensionRetrievalText MatchingText RetrievalTriviaQA

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