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Seeing the world through text: Evaluating image descriptions for commonsense reasoning in machine reading comprehension

机译:通过文本观察世界:评估机器阅读理解中的致辞原理的图像描述

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Despite recent achievements in natural language understanding, reasoning over commonsense knowledge still represents a big challenge to AI systems. As the name suggests, common sense is related to perception and as such, humans derive it from experience rather than from literary education. Recent works in the NLP and the computer vision field have made the effort of making such knowledge explicit using written language and visual inputs, respectively. Our premise is that the latter source fits better with the characteristics of commonsense acquisition. In this work, we explore to what extent the descriptions of real-world scenes are sufficient to learn common sense about different daily situations, drawing upon visual information to answer script knowledge questions.
机译:尽管最近的自然语言理解成果,但常识知识的推理仍然对AI系统来说仍然是一个很大的挑战。 顾名思义,常识与感知有关,因此,人类从经验中获得而不是文学教育。 NLP最近的作品和计算机视觉领域的努力分别使用书面语言和视觉输入进行了解显式。 我们的前提是后者源更好地符合致料的特点。 在这项工作中,我们探讨了对现实世界场景的描述足以了解对不同日常情况的常识,以应答脚本知识问题的常识。

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