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A Graph-Based Approach for Aspect Extraction from Online Customer Reviews

机译:基于图形的基于图形的方法从线顾客评论

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摘要

E-commerce websites have become main market players in the 21st century due to advancement in the internet technology. Apart from buying products online, customers are also providing reviews on the products purchased by them. These reviews help new customers to buy various products according to their needs, liking, and preferences. However, millions of reviews are added by the customer on a daily basis. To extract meaningful information manually from these huge amounts of reviews is a tough task. So, it is required to develop an automatic analytics tool for the review sentences. Aspect extraction is one of the vital tasks in the process of meaningful information extraction from the products having various entities. In this work, a novel product aspect extraction approach has been proposed which utilize a graph-based technique with the integration of statistical and semantic information. The analysis of experimental results shows that the proposed approach is efficient and effective in comparison to the state of art methods.
机译:由于互联网技术的进步,电子商务网站已成为21世纪的主要市场参与者。除了在线购买产品外,客户还提供对他们购买的产品的评论。这些评论可帮助新客户根据他们的需求,喜欢和喜好购买各种产品。但是,客户每天按客户添加数百万条评论。从这些大量评论中手动提取有意义的信息是一项艰巨的任务。因此,需要为审查句子开发自动分析工具。方面提取是从具有各种实体的产品的有意义信息提取过程中的重要任务之一。在这项工作中,已经提出了一种新颖的产品方面提取方法,其利用基于图的技术与统计和语义信息的集成。实验结果的分析表明,与现有技术相比,该方法是有效且有效的。

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