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Preference-based user rating correction process for interactive recommendation systems

机译:交互式推荐系统的基于首选项的用户评分更正过程

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摘要

In most of the recommendation systems, user rating is an important user activity that reflects their opinions. Once the users return their ratings about items the systems have suggested, the user ratings can be used to adjust the recommendation process.However, while rating the items users can make some mistakes (e.g., natural noises). As the recommendation systems receive more incorrect ratings, the performance of such systems may decrease. In this paper, we focus on an interactive recommendation system which can help users to correct their own ratings. Thereby, we propose a method to determine whether the ratings from users are consistent to their own preferences (represented as a set of dominant attribute values) or not and eventually to correct these ratings to improve recommendation. The proposed interactive recommendation system has been particularly applied to two user rating datasets (e.g., MovieLens and Netflix) and it has shown better recommendation performance (i.e., lower error ratings).
机译:在大多数推荐系统中,用户评分是反映其意见的重要用户活动。一旦用户返回了系统建议的项目评分,用户评分就可以用于调整推荐流程,但是在对项目进行评分时,用户可能会犯一些错误(例如自然噪音)。随着推荐系统收到更多不正确的评分,此类系统的性能可能会下降。在本文中,我们专注于交互式推荐系统,该系统可以帮助用户纠正自己的评分。因此,我们提出了一种方法来确定用户的评分是否与他们自己的偏好一致(表示为一组主导属性值),并最终纠正这些评分以提高推荐率。所提出的交互式推荐系统已特别应用于两个用户评级数据集(例如MovieLens和Netflix),并且显示出更好的推荐性能(即较低的错误评级)。

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