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An Overview of Natural Language State Representation for Reinforcement Learning

2020-07-19ICML Workshop LaReL 2020Unverified0· sign in to hype

Brielen Madureira, David Schlangen

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Abstract

A suitable state representation is a fundamental part of the learning process in Reinforcement Learning. In various tasks, the state can either be described by natural language or be natural language itself. This survey outlines the strategies used in the literature to build natural language state representations. We appeal for more linguistically interpretable and grounded representations, careful justification of design decisions and evaluation of the effectiveness of different approaches.

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