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Commonsense properties from query logs and question answering forums

  • Julien Romero
  • , Jeff Z. Pan
  • , Simon Razniewski
  • , Archit Sakhadeo
  • , Koninika Pal
  • , Gerhard Weikum
  • University of Aberdeen
  • Max-Planck-Institut fur Informatik

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Résumé

Commonsense knowledge about object properties, human behavior and general concepts is crucial for robust AI applications. However, automatic acquisition of this knowledge is challenging because of sparseness and bias in online sources. This paper presents Quasimodo, a methodology and tool suite for distilling commonsense properties from non-standard web sources. We devise novel ways of tapping into search-engine query logs and QA forums, and combining the resulting candidate assertions with statistical cues from encyclopedias, books and image tags in a corroboration step. Unlike prior work on commonsense knowledge bases, Quasimodo focuses on salient properties that are typically associated with certain objects or concepts. Extensive evaluations, including extrinsic use-case studies, show that Quasimodo provides better coverage than state-of-the-art baselines with comparable quality.

langue originaleAnglais
titreCIKM 2019 - Proceedings of the 28th ACM International Conference on Information and Knowledge Management
EditeurAssociation for Computing Machinery
Pages1411-1420
Nombre de pages10
ISBN (Electronique)9781450369763
Les DOIs
étatPublié - 3 nov. 2019
Evénement28th ACM International Conference on Information and Knowledge Management, CIKM 2019 - Beijing, Chine
Durée: 3 nov. 20197 nov. 2019

Série de publications

NomInternational Conference on Information and Knowledge Management, Proceedings

Une conférence

Une conférence28th ACM International Conference on Information and Knowledge Management, CIKM 2019
Pays/TerritoireChine
La villeBeijing
période3/11/197/11/19

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