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A recommender model based on trust value and time decay: Improve the quality of product rating score in E-commerce platforms

机译:基于信任值和时间衰减的推荐模型:提高电子商务平台中产品评分的质量

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Most of the existing products rating score algorithms do not take fake accounts and time decay of users' ratings into account when creating the list of recommendations. The trust values and the time decay of users' ratings to an item may improve the quality of product rating score in e-commerce platforms, especially when it is thought that nowadays the majority of customers read the reviews before making a purchase. In this paper, we first introduce the concept trust value of users by explaining its mathematical definition and redefine the product rating score based on users' trust relationship. Then we calculate the product rating score based on time decay by making the concept time decay clear. After that we execute both algorithms together in order to show their both effects on the quality of product rating score. Finally, we present experimentally effectiveness of three approaches on a large real dataset.
机译:在创建推荐列表时,大多数现有的产品评分分数算法都不会考虑虚假帐户,并且不会考虑用户评分的时间衰减。用户对某项商品的信任度值和时间衰减可能会改善电子商务平台中产品评分的质量,尤其是当人们认为当今大多数客户在购买商品之前先阅读评论时。在本文中,我们首先通过解释其概念定义来介绍用户的概念信任值,然后根据用户的信任关系重新定义产品评分。然后,我们通过明确概念时间衰减来基于时间衰减来计算产品等级分数。此后,我们一起执行这两种算法,以显示它们对产品评级得分质量的两种影响。最后,我们在大型真实数据集中展示了三种方法的实验有效性。

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