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A Novel Product Features Categorize Method based on Twice-Clustering

机译:基于两次聚类的新产品特征分类方法

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Recently, the number of freely available online reviews is increasing in a high speed. More and more aspect-based opinion mining technique has been employed to find out customers' opinions. In this paper, we only focus on categorize product features that the customers have commented on. An unsupervised twice-clustering based product features categorization method is proposed. Opinion words in context of product features are chosen to represent the inter relationship among product features instead of full context information. The cluster result of active product features is used as constraints to improve the whole categorization quality. Our experimental results show that opinion words in context and their group information are very important features in measuring the semantic similarity of their associated product features. The twice-clustering strategy achieves better performance than single-clustering method.
机译:最近,自由上行在线评论的数量正在增加高速增加。越来越多的基于方面的意见采矿技术已经受雇以找出客户的意见。在本文中,我们只关注客户已评论的产品功能。提出了一种无监督的两次基于聚类的产品特征分类方法。选择产品特征背景下的观点词来表示产品特征之间的关系而不是完整的上下文信息。活动产品功能的集群结果用作提高整个分类质量的约束。我们的实验结果表明,上下文和他们的小组信息中的观点词是测量其相关产品特征的语义相似性的非常重要的功能。两次聚类策略比单聚类方法实现更好的性能。

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