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Accurate Recommendation Based on Opinion Mining

机译:基于意见采矿的准确建议

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Current recommender systems are mainly based on customers' personal information and online behavior. We find that those systems lack efficiency and accuracy. At the same time, we observe the large amount of review data with exponential growth. Based on this observation, we propose a recommender system based on opinion mining. With text mining method we extract the opinion related information from the massive reviews. We analyse the linguistic information and design a two-layer selection algorithm to find the most suitable products for customers. The experiment shows our method has great accuracy, fleasibility, and reliablity.
机译:当前的推荐系统主要基于客户的个人信息和在线行为。 我们发现这些系统缺乏效率和准确性。 与此同时,我们观察具有指数增长的大量审查数据。 基于这一观察,我们提出了一种基于意见采矿的推荐系统。 通过文本挖掘方法,我们从大规模评论中提取意见相关信息。 我们分析语言信息并设计双层选择算法,为客户找到最合适的产品。 实验表明我们的方法具有很大的准确性,可燃性和重新认真。

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