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Opinion Digger: An Unsupervised Opinion Miner from Unstructured Product Reviews

机译:Opinion Digger:非结构化产品评论中的无监督Opinion Miner

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Mining customer reviews (opinion mining) has emerged as an interesting new research direction. Most of the reviewing websites such as Epinions.com provide some additional information on top of the review text and overall rating, including a set of predefined aspects and their ratings, and a rating guideline which shows the intended interpretation of the numerical ratings. However, the existing methods have ignored this additional information. We claim that using this information, which is freely available, along with the review text can effectively improve the accuracy of opinion mining. We propose an unsupervised method, called Opinion Digger, which extracts important aspects of a product and determines the overall consumer's satisfaction for each, by estimating a rating in the range from 1 to 5. We demonstrate the improved effectiveness of our methods on a real life dataset that we crawled from Epin-ions.com.
机译:挖掘客户评论(观点挖掘)已成为一种有趣的新研究方向。大多数评论网站(例如Epinions.com)都在评论文本和总体评分之上提供了一些其他信息,包括一组预定义的方面及其评分,以及一个评分指南,其中显示了数字评分的预期解释。但是,现有方法已忽略了此附加信息。我们声称,使用此信息(可免费获得)以及评论文本可以有效地提高观点挖掘的准确性。我们提出了一种称为Opinion Digger的无监督方法,该方法可提取产品的重要方面并通过估计1到5的等级来确定每个消费者的总体满意度。我们证明了我们的方法在现实生活中的有效性提高我们从Epin-ions.com抓取的数据集。

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