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Neural Discourse Structure for Text Categorization

Published 7 Feb 2017 in cs.CL and cs.LG | (1702.01829v2)

Abstract: We show that discourse structure, as defined by Rhetorical Structure Theory and provided by an existing discourse parser, benefits text categorization. Our approach uses a recursive neural network and a newly proposed attention mechanism to compute a representation of the text that focuses on salient content, from the perspective of both RST and the task. Experiments consider variants of the approach and illustrate its strengths and weaknesses.

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