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Automatic Summarization for Chinese Text Based on Sub Topic Partition and Sentence Features

机译:基于子主题分区和句子功能的中文文本自动摘要

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摘要

With the explosion of electronic information on web, there is the increasing requirement to obtain the information needed accurately and efficiently. In this article, a method of automatic summarization based on sub topic partition and sentence features is proposed, in which the sentence weight is computed based on LexRank algorithm combining with the score of its own features in every sub topic, such as its length, position, cue words and structure. In addition, we reduce redundancy of candidate sentence collection. With evaluation on six different genres of data sets, our method could get more comprehensive and high-quality summarization with less redundancy than the original LexRank algorithm.
机译:随着电子信息的爆炸,存在越来越多的要求,以准确和有效地获得所需的信息。在本文中,提出了一种基于子主题分区和句子特征的自动摘要方法,其中基于与每个子主题中的每个子主题中的其自身特征的分数组合的句子权重,例如其长度,位置,提示词和结构。此外,我们减少了候选句子收集的冗余。通过评估六种不同类型的数据集,我们的方法可以更加全面,高质量的摘要,而不是冗余的冗余,而不是原始LexRank算法。

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