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Most Influential AAAI 2011 Paper · 2026-03 edition

Learning To Interpret Natural Language Navigation Instructions From Observations

David L. Chen; Raymond J. Mooney

Venue
AAAI Conference on Artificial Intelligence (AAAI) 2011
Recognition
Most Influential AAAI 2011 Paper (Rank No. 3)
Edition
2026-03
Impact factor
7
Certificate ID
76a72f9069742ba0

Abstract

The ability to understand natural-language instructions is critical to building intelligent agents that interact with humans. We present a system that learns to transform natural-language navigation instructions into executable formal plans. Given no prior linguistic knowledge, the system learns by simply observing how humans follow navigation instructions. The system is evaluated in three complex virtual indoor environments with numerous objects and landmarks. A previously collected realistic corpus of complex English navigation instructions for these environments is used for training and testing data. By using a learned lexicon to refine inferred plans and a supervised learner to induce a semantic parser, the system is able to automatically learnto correctly interpret a reasonable fraction of the complex instructions in this corpus.

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