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A normal-distribution based rating aggregation method for generating product reputations

机译:基于正态分布的评级聚合方法,用于生成产品信誉

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摘要

With the extensive use of rating systems in the web, and their significance in decision making process by users, the need for more accurate aggregation methods has emerged. The Naïve aggregation method, using the simple mean, is not adequate anymore in providing accurate reputation scores for items [6 ], hence, several researches where conducted in order to provide more accurate alternative aggregation methods. Most of the current reputation models do not consider the distribution of ratings across the different possible ratings values. In this paper, we propose a novel reputation model, which generates more accurate reputation scores for items by deploying the normal distribution over ratings. Experiments show promising results for our proposed model over state-of-the-art ones on sparse and dense datasets.
机译:随着网络中评级系统的广泛使用及其在用户决策过程中的重要性,对更准确的汇总方法的需求已经出现。使用简单均值的幼稚聚合方法已不足以为项目提供准确的信誉评分[6],因此,进行了一些研究以提供更准确的替代聚合方法。当前大多数信誉模型都没有考虑不同可能等级值之间等级的分布。在本文中,我们提出了一种新颖的信誉模型,该模型可以通过在评级上部署正态分布来为商品生成更准确的信誉分数。实验表明,在稀疏和密集数据集上,我们提出的模型优于最新模型的结果。

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