A formal model for user preference

S. Jung, Jeong-Hee Hong, Taek-Soo Kim
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引用次数: 28

Abstract

Personalization and recommendation systems require a formalized model for user preference. We present the formal model of preference including positive preference and negative preference. For rare events, we apply the probability of random occurrence in order to reduce noise effects caused by data sparseness. Pareto distribution is adopted for the random occurrence probability. We also present the method for combining information of joint feature variables in different sizes by dynamic weighting using random occurrence probability.
用户偏好的正式模型
个性化和推荐系统需要一个形式化的用户偏好模型。我们提出了偏好的形式模型,包括积极偏好和消极偏好。对于罕见事件,我们采用随机发生的概率,以减少由于数据稀疏性引起的噪声影响。随机发生概率采用帕累托分布。提出了利用随机发生概率动态加权组合不同大小的联合特征变量信息的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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