基于异构信息网络的带解释的语义推荐系统

Jiawei Hu, Zhiqiang Zhang, Jian Liu, C. Shi, Philip S. Yu, Bai Wang
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引用次数: 6

摘要

近年来,为了缓解信息过载,对推荐系统进行了大量的研究。人们提出了许多推荐技术,并在许多应用中取得了巨大的成功。然而,推荐结果的解释是一个重要但很少被解决的问题。本文采用异构信息网络对推荐系统中的对象和关系进行组织,使推荐系统集成了更多的信息,包含了丰富的语义。然后采用基于语义元路径的个性化推荐模型,设计了一个带解释的推荐系统RecExp。RecExp系统有两个独特的功能。(1)语义推荐。RecExp通过设置元路径,提供不同的推荐模型,以满足用户的需求。(2)解释性建议。在混合推荐模型下,RecExp为推荐结果提供解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
RecExp: A Semantic Recommender System with Explanation Based on Heterogeneous Information Network
In recent years, there is a surge of research on recommender system to alleviate the information overload. Many recommendation techniques have been proposed and they have achieved great successes in many applications. However, the explanation of recommendation results is an important but seldom addressed problem. In this paper, we organize the objects and relations in a recommender system with a heterogeneous information network, which integrates more informations and contains rich semantics. Then we employ a semantic meta path based personalized recommendation model and design a recommender system with explanation, called RecExp. The RecExp system has two unique features. (1) Semantic recommendation. RecExp provides different recommendation models to comply with users' requirements through setting of meta paths. (2) Interpretive recommendation. Under a hybrid recommendation model, RecExp provides the explanations for the recommendation results.
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