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Usage of Annotation Tags in the Problem of Mining Similar Users

机译:注释标签在挖掘相似用户问题中的使用

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This paper presents a novel method of measuring user similarity in Location-Based Services (LBS) via relationships between users and annotation tags of locations they attended. Collecting all check-in data together, matrix factorization methods are applied in order to find semantic similarity between tags. Next, an idea of User Attendance Graph (UAG) is proposed to represent user check-in history and describe importance of each tag together with transitions between them. Further, Semantic Behavior Similarity (SBS) algorithm is proposed to measure likeness between UAG. This approach was evaluated with a real dataset collected from Whrrl using nDCG measure. Results show ~90% efficiency of proposed method for finding LBS users with similar behavior, and it can be used in different applications, e.g. Friend recommender systems.
机译:本文提出了一种新的方法,可以通过用户与他们所参与的位置的注释标签之间的关系来测量基于位置的服务(LBS)中的用户相似性。一起收集所有签入数据,应用矩阵分解方法以查找标签之间的语义相似性。接下来,提出了一种用户出勤图(UAG)的思想,以表示用户签入历史记录,并描述每个标签的重要性以及它们之间的过渡。此外,提出了语义行为相似度(SBS)算法来度量UAG之间的相似度。使用nDCG度量,使用从Whrrl收集的真实数据集对这种方法进行了评估。结果表明,该方法找到行为相似的LBS用户的效率约为90%,并且可以用于不同的应用中,例如朋友推荐系统。

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