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Most Influential AAAI 2010 Paper · 2026-03 edition

Toward An Architecture For Never-Ending Language Learning

Andrew Carlson, Justin Betteridge, Bryan Kisiel, Burr Settles, Estevam R. Hruschka, Tom M. Mitchell

Venue
AAAI Conference on Artificial Intelligence (AAAI) 2010
Recognition
Most Influential AAAI 2010 Paper (Rank No. 1)
Edition
2026-03
Impact factor
9
Certificate ID
95bdec41a103b3da

Abstract

We consider here the problem of building a never-ending language learner; that is, an intelligent computer agent that runs forever and that each day must (1) extract, or read, information from the web to populate a growing structured knowledge base, and (2) learn to perform this task better than on the previous day. In particular, we propose an approach and a set of design principles for such an agent, describe a partial implementation of such a system that has already learned to extract a knowledge base containing over 242,000 beliefs with an estimated precision of 74% after running for 67 days, and discuss lessons learned from this preliminary attempt to build a never-ending learning agent.

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