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Automatically Evaluating Text Coherence Using Discourse Relations

机译:使用话语关系自动评估文本连贯性

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We present a novel model to represent and assess the discourse coherence of text. Our model assumes that coherent text implicitly favors certain types of discourse relation transitions. We implement this model and apply it towards the text ordering ranking task, which aims to discern an original text from a permuted ordering of its sentences. The experimental results demonstrate that our model is able to significantly outperform the state-of-the-art coherence model by Barzilay and Lap-ata (2005), reducing the error rate of the previous approach by an average of 29% over three data sets against human upper bounds. We further show that our model is synergistic with the previous approach, demonstrating an error reduction of 73% when the features from both models are combined for the task.
机译:我们提出了一种小型模型来代表和评估文本的话语一致性。我们的模型假设连贯文本隐含地有利于某些类型的话语关系转换。我们实现此模型并将其应用于文本订购排名任务,该任务旨在从其句子的置换排序中辨别原始文本。实验结果表明,我们的模型能够通过Barzilay和Lap-ATA(2005)来显着优于最先进的一致性模型,并将前一个方法的误差率降低到三个数据集中平均29%对抗人类上限。我们进一步表明,我们的模型与先前的方法是协同的,当两种型号的功能组合为任务时,展示了73%的错误。

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