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ProbeSim: Scalable Single-Source and Top-k SimRank Computations on Dynamic Graphs

机译:ProbeSim:动态图上的可伸缩单源和Top-k SimRank计算

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Single-source and top-k SimRank queries are two important types of similarity search in graphs with numerous applications in web mining, social network analysis, spam detection, etc. A plethora of techniques have been proposed for these two types of queries, but very few can efficiently support similarity search over large dynamic graphs, due to either significant preprocessing time or large space overheads. This paper presents ProbeSim. an index-free algorithm for single-source and top-k SimRank queries that provides a non-trivial theoretical guarantee in the absolute error of query results. ProbeSim estimates SimRank similarities without precomputing any indexing structures, and thus can naturally support real-lime SimRank queries on dynamic graphs. Besides the theoretical guarantee. ProbeSim also offers satisfying practical efficiency and effectiveness due to non-trivial optimizations. We conduct extensive experiments on a number of benchmark datasets, which demonstrate that our solutions outperform the existing methods in terms of efficiency and effectiveness. Notably, our experiments include the first empirical study that evaluates the effectiveness of SimRank algorithms on graphs with billion edges, using the idea of pooling.
机译:单源和top-k SimRank查询是图形中的两种重要搜索类型,在Web挖掘,社交网络分析,垃圾邮件检测等方面具有大量应用。针对这两种类型的查询已提出了许多技术,由于大量的预处理时间或大量的空间开销,很少有人能有效地支持大型动态图上的相似性搜索。本文介绍了ProbeSim。一种用于单源和top-k SimRank查询的无索引算法,该算法为查询结果的绝对错误提供了重要的理论保证。 ProbeSim无需预先计算任何索引结构即可估算SimRank相似度,因此自然可以支持动态图上的实时SimRank查询。除了理论上的保证。由于非平凡的优化,ProbeSim还提供了令人满意的实用效率和有效性。我们对许多基准数据集进行了广泛的实验,这些实验证明了我们的解决方案在效率和有效性方面优于现有方法。值得注意的是,我们的实验包括第一项实证研究,该研究使用池化的思想评估了SimRank算法在具有十亿条边的图形上的有效性。

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