A Hierarchical Model for Data-to-Text Generation

December 20, 2019 ยท Declared Dead ยท ๐Ÿ› European Conference on Information Retrieval

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Authors Clรฉment Rebuffel, Laure Soulier, Geoffrey Scoutheeten, Patrick Gallinari arXiv ID 1912.10011 Category cs.CL: Computation & Language Cross-listed cs.IR, cs.LG Citations 66 Venue European Conference on Information Retrieval Last Checked 4 months ago
Abstract
Transcribing structured data into natural language descriptions has emerged as a challenging task, referred to as "data-to-text". These structures generally regroup multiple elements, as well as their attributes. Most attempts rely on translation encoder-decoder methods which linearize elements into a sequence. This however loses most of the structure contained in the data. In this work, we propose to overpass this limitation with a hierarchical model that encodes the data-structure at the element-level and the structure level. Evaluations on RotoWire show the effectiveness of our model w.r.t. qualitative and quantitative metrics.
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