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OPF: Open Preference and Feature recommender system

机译:OPF:开放首选项和功能推荐系统

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This paper presents an open recommender system to ease the entering barriers due to lack of sufficient background knowledge for small or new service providers. The proposed Open Preference and Feature recommender (OPF) uses user preference and item feature as the basis of recommendations, since the generality of preference and feature and therefore meets the needs of an open recommender system. In OPF, the group preference of similar tasted users and positive correlative features of items are taken into considerations to improve accuracy of recommendations. Since OPF uses a general preference of user for a class of items, it significantly reduces the space complexity to O(M+N). Simulations reveal that for even basing on general class preference, OPF obtains a low mean absolute error as 0.98 with coverage of 98.335.
机译:本文提出了一个开放的推荐系统,以缓解由于小型或新服务提供商缺乏足够的背景知识而导致的进入壁垒。提议的开放式偏好和功能推荐器(OPF)使用用户的偏好和项目功能作为建议的基础,因为偏好和功能的通用性,因此可以满足开放式推荐器系统的需求。在OPF中,考虑了相似口味用户的组偏好和项目的正相关特征,以提高建议的准确性。由于OPF对一类项目使用用户的一般偏好,因此可以将空间复杂度大大降低到O(M + N)。仿真表明,即使基于一般类别的偏好,OPF的平均绝对误差也很低,为0.98,覆盖率为98.335。

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