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Policy Gradient as a Proxy for Dynamic Oracles in Constituency Parsing

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Abstract

Dynamic oracles provide strong supervision for training constituency parsers with exploration, but must be custom defined for a given parser's transition system. We explore using a policy gradient method as a parser-agnostic alternative. In addition to directly optimizing for a tree-level metric such as F1, policy gradient has the potential to reduce exposure bias by allowing exploration during training; moreover, it does not require a dynamic oracle for supervision. On four constituency parsers in three languages, the method substantially outperforms static oracle likelihood training in almost all settings. For parsers where a dynamic oracle is available (including a novel oracle which we define for the transition system of Dyer et al. (

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Publication details

DOI
10.18653/v1/p18-2075
OpenAlex
W2963227939
Document type
conference-paper
Language
EN
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