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Expanding End-to-End Question Answering on Differentiable Knowledge Graphs with Intersection

13 Sep 2021EMNLP 2021 11arXiv:2109.05808archive 2025-07-28

Priyanka Sen, Amir Saffari, Armin Oliya

End-to-end question answering using a differentiable knowledge graph is a promising technique that requires only weak supervision, produces interpretable results, and is fully differentiable. Previous implementations of this technique (Cohen et al., 2020) have focused on single-entity questions using a relation following operation. In this paper, we propose a model that explicitly handles multiple-entity questions by implementing a new intersection operation, which identifies the shared elements between two sets of entities. We find that introducing intersection improves performance over a baseline model on two datasets, WebQuestionsSP (69.6% to 73.3% Hits@1) and ComplexWebQuestions (39.8% to 48.7% Hits@1), and in particular, improves performance on questions with multiple entities by over 14% on WebQuestionsSP and by 19% on ComplexWebQuestions.

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sid-sundrani/differentiable-kb-qa mentioned on GitHubpytorch report

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2ran · our draft was wrong
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GRUCell sid-sundrani/differentiable-kb-qa/kgqa/models/models_nhop.py community (archive-listed) ran no licence file found · pointer only · ffb88ab54dda0980 · report
calculate_BCE sid-sundrani/differentiable-kb-qa/kgqa/models/models_nhop.py community (archive-listed) ran · our draft was wrong no licence file found · pointer only · d993de144cba9873 · report
get_hit_k1 sid-sundrani/differentiable-kb-qa/kgqa/models/models_nhop.py community (archive-listed) ran · our draft was wrong fingerprinted no licence file found · pointer only · 171ff39d43fafc36 · report
GNNLightning2 sid-sundrani/differentiable-kb-qa/kgqa/models/models_nhop.py community (archive-listed) unverified no licence file found · pointer only · 14c5390b1cff34eb · report

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Knowledge GraphsQuestion Answering

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