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Self-Supervised and Controlled Multi-Document Opinion Summarization

Abstract

International audienceWe address the problem of unsupervised abstractive summarization of collections of user generated reviews through self-supervision and control. We propose a self-supervised setup that considers an individual document as a target summary for a set of similar documents. This setting makes training simpler than previous approaches by relying only on standard log-likelihood loss and mainstream models. We address the problem of hallucinations through the use of control codes, to steer the generation towards more coherent and relevant summaries

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Hal - Université Grenoble Alpes

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Last time updated on 19/06/2021

This paper was published in Hal - Université Grenoble Alpes.

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