Personality-dependent Neural Text Summarization

P. Costa, Ivandré Paraboni
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引用次数: 1

Abstract

In Natural Language Generation systems, personalization strategies - i.e, the use of information about a target author to generate text that (more) closely resembles human-produced language - have long been applied to improve results. The present work addresses one such strategy - namely, the use of Big Five personality information about the target author - applied to the case of abstractive text summarization using neural sequence-to-sequence models. Initial results suggest that having access to personality information does lead to more accurate (or human-like) text summaries, and paves the way for more robust systems of this kind.
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人格依赖神经文本摘要
在自然语言生成系统中,个性化策略——即使用目标作者的信息来生成(更)接近于人类产生的语言的文本——长期以来一直被应用于改善结果。目前的工作解决了一种这样的策略,即使用目标作者的大五人格信息,应用于使用神经序列到序列模型的抽象文本摘要的情况。初步结果表明,获得个性信息确实会产生更准确(或更像人类)的文本摘要,并为这类更强大的系统铺平道路。
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