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A Faster Parallel Algorithm and Efficient Multithreaded Implementations for Evaluating Betweenness Centrality on Massive Datasets

机译:更快的并行算法和高效的多线程实现,用于评估大规模数据集之间的度量

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We present a new lock-free parallel algorithm for computing betweenness centrality of massive complex networks that achieves better spatial locality compared with previous approaches. Betweenness centrality is a key kernel in analyzing the importance of vertices (or edges) in applications ranging from social networks, to power grids, to the influence of jazz musicians, and is also incorporated into the DARPA HPCS SSCA#2, a benchmark extensively used to evaluate the performance of emerging high-performance computing architectures for graph analytics. We design an optimized implementation of betweenness centrality for the massively multithreaded Cray XMT system with the Thread-storm processor. For a small-world network of 268 million vertices and 2.147 billion edges, the 16-processor XMT system achieves a TEPS rate (an algorithmic performance count for the number of edges traversed per second) of 160 million per second, which corresponds to more than a 2× performance improvement over the previous parallel implementation. We demonstrate the applicability of our implementation to analyze massive real-world datasets by computing approximate betweenness centrality for the large IMDb movie-actor network.
机译:我们提出了一种新的锁定并行算法,用于计算大规模复杂网络的度量,与先前的方法相比,实现了更好的空间局部。之间的中心性是一个关键内核,用于分析从社交网络的应用程序中的顶点(或边缘)的重要性,以将电网电网到Jazz音乐家的影响,也被纳入DARPA HPCS SSCA#2,是广泛使用的基准评估新兴高性能计算架构对图形分析的性能。我们设计了具有线程风暴处理器的大型多线程Cray XMT系统的优化实现。对于26800万个顶点的小世界网络和2147亿边缘,16处理器XMT系统实现了TEPS速率(每秒遍历的边缘数量的算法性能计数),每秒1.6亿,这对应于更多在前一个并行实现上的2倍性能改进。我们展示了我们实施的适用性来通过计算大型IMDB电影演员网络的近似性中心地位来分析大规模的现实数据集。

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