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ACL
2015

A Knowledge-Intensive Model for Prepositional Phrase Attachment

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A Knowledge-Intensive Model for Prepositional Phrase Attachment
Prepositional phrases (PPs) express crucial information that knowledge base construction methods need to extract. However, PPs are a major source of syntactic ambiguity and still pose problems in parsing. We present a method for resolving ambiguities arising from PPs, making extensive use of semantic knowledge from various resources. As training data, we use both labeled and unlabeled data, utilizing an expectation maximization algorithm for parameter estimation. Experiments show that our method yields improvements over existing methods including a state of the art dependency parser.
Ndapandula Nakashole, Tom M. Mitchell
Added 13 Apr 2016
Updated 13 Apr 2016
Type Journal
Year 2015
Where ACL
Authors Ndapandula Nakashole, Tom M. Mitchell
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