Cross-genre Document Retrieval: Matching between Conversational and Formal Writings

July 14, 2017 ยท Declared Dead ยท ๐Ÿ› Proceedings of the First Workshop on Building Linguistically Generalizable NLP Systems

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Authors Tomasz Jurczyk, Jinho D. Choi arXiv ID 1707.04538 Category cs.CL: Computation & Language Citations 3 Venue Proceedings of the First Workshop on Building Linguistically Generalizable NLP Systems Last Checked 4 months ago
Abstract
This paper challenges a cross-genre document retrieval task, where the queries are in formal writing and the target documents are in conversational writing. In this task, a query, is a sentence extracted from either a summary or a plot of an episode in a TV show, and the target document consists of transcripts from the corresponding episode. To establish a strong baseline, we employ the current state-of-the-art search engine to perform document retrieval on the dataset collected for this work. We then introduce a structure reranking approach to improve the initial ranking by utilizing syntactic and semantic structures generated by NLP tools. Our evaluation shows an improvement of more than 4% when the structure reranking is applied, which is very promising.
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