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Scene Restoring for Narrative Machine Reading Comprehension

机译:场景恢复叙述机阅读理解

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This paper focuses on machine reading comprehension for narrative passages. Narrative passages usually describe a chain of events. When reading this kind of passage, humans tend to restore a scene according to the text with their prior knowledge, which helps them understand the passage comprehensively. Inspired by this behavior of humans, we propose a method to let the machine imagine a scene during reading narrative for better comprehension. Specifically, we build a scene graph by utilizing Atomic as the external knowledge and propose a novel Graph Dimensional-Iteration Network (GDIN) to encode the graph. We conduct experiments on the ROCStories, a dataset of Story Cloze Test (SCT), and Cos-mosQA, a dataset of multiple choice. Our method achieves state-of-the-art.
机译:本文重点介绍了对叙事段落的机器阅读理解。叙述段通常描述一系列事件。在阅读这种段落时,人类倾向于根据其先前知识根据文本恢复场景,这有助于他们全面了解该段落。受到这种人类的这种行为的启发,我们提出了一种方法来让机器在阅读叙述期间想象一个场景以更好地理解。具体而言,我们通过利用原子作为外部知识来构建场景图,并提出一种新颖的曲线尺寸迭代网络(GDIN)来对图进行编码。我们对狂欢节进行实验,故事的数据集(SCT)和COS-MOSQA,一个多种选择的数据集。我们的方法实现了最先进的。

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