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Summarizing Product Aspects from Massive Online Review with Word Representation

机译:总结产品方面从大规模在线审查与单词表示

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For the task of information retrieval from massive online reviews, people may be faced to some challenges in feature extraction, and then aspects summarization from these features. In this paper, by combining two methods of word vector representing and k-means clustering, an unsupervised method for product aspects summarizing is proposed. The experimental results with real data set verify the validity of the proposed method. Moreover, in comparison with the common LDA like methods, the proposed method shows better performance on both aspect mining and aspect features clustering.
机译:对于来自大规模在线评论的信息检索任务,人们可能会面临特色提取中的一些挑战,然后从这些特征摘要。本文通过组合两种单词载体的方法和K-means聚类,提出了一种未经监测的产品方面概述方法。实验结果与真实数据集验证了所提出的方法的有效性。此外,与与方法相同的LDA相比,所提出的方法在两个方面挖掘和方面具有群集方面表现出更好的性能。

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