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A supervised learning method combine with dimensionality reduction in Vietnamese text summarization

机译:越南文摘要中的一种有监督的学习方法与降维相结合

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摘要

The World Wide Web has brought us a vast amount of online information. When we search with a keyword, data feedback from many different websites and the user cannot read all the information. So that, text summarization has become a hot topic, it has attracted experts in data mining and natural language processing field. For Vietnamese, some methods of text summarization based on that have been proposed for English also bring some significant results. However, still remain some difficult problems to treat with the Vietnamese language processing, typical in this is the Vietnamese text segmentation tool and text summarization corpus. In this paper, we present a Vietnamese text summarization method based on sentence extraction approach using neural network for learning combine reducing dimensional features to overcome the cost when building term sets and reduce the computational complexity. The experimental results show that our method is really effective in reducing computational complexity, and is better than some methods that have been proposed previous.
机译:万维网为我们带来了大量的在线信息。当我们使用关键字搜索时,来自许多不同网站的数据反馈和用户无法阅读所有信息。因此,文本摘要已成为一个热门话题,吸引了数据挖掘和自然语言处理领域的专家。对于越南人而言,针对英语提出的一些基于文本的摘要方法也带来了一些重要的成果。但是,越南语处理仍然存在一些棘手的问题,其中典型的是越南语文本分割工具和文本摘要语料库。在本文中,我们提出了一种基于句子提取方法的越南文本摘要方法,该方法使用神经网络进行学习,结合降维特征来克服构建术语集时的成本,并降低了计算复杂性。实验结果表明,我们的方法在降低计算复杂度方面确实有效,并且比以前提出的某些方法要好。

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