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An Intelligent Approach to Review Filtering and Review Quality Improvement

机译:一种审阅筛选和审阅质量改进的智能方法

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摘要

This paper presents a new approach to review filtering in order to bring a more transparent solution to generate more trust between the user base and review-based sites. Instead of removing reviews based on authenticity, users decide on the level of filtering that is provided on the reviews. Each review is given a score and this scoring system is based on three categories: location based check-in (LBS), receipt authenticity, and sentiment analysis on the actual review. Once all three categories are factored, an algorithm will be used to return a score on the review. This score determines the supposed authenticity (confidence that the review is a legitimate review) of the review and this score is what will be used as the filtering mechanism for the user.
机译:本文提出了一种新的审阅筛选方法,以带来更透明的解决方案,从而在用户群和基于审阅的站点之间产生更多的信任。用户无需根据真实性删除评论,而是可以决定评论上提供的过滤级别。每个评论都会得到一个分数,并且该评分系统基于三个类别:基于位置的签到(LBS),收据真实性和对实际评论的情感分析。将所有三个类别都考虑在内后,将使用一种算法来返回评论的得分。该分数确定该评论的假定真实性(该评论为合法评论的可信度),并且该分数将用作用户的过滤机制。

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