新的高效多线程匹配算法

F. Manne, M. Halappanavar
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引用次数: 45

摘要

匹配是一个重要的组合问题,在社区检测、稀疏线性代数和网络对齐等领域有着广泛的应用。由于计算最优匹配可能非常耗时,因此提出了几种快速近似算法,包括顺序和并行算法。给出最佳解的算法的共同点是它们本质上是顺序的,而更适合并行计算的算法给出的解质量较低。针对加权匹配问题,提出了一种新的简单的1/2逼近算法。该算法在几乎所有输入上都比任何其他建议的顺序1/2近似算法快,并且在并行化时也比以前的多线程算法具有更好的可伸缩性。我们进一步将其扩展到一个通用的可扩展多线程算法,该算法计算与最佳顺序确定性算法相当的权重匹配。通过在不同的多线程体系结构上进行大量实验,证明了所建议算法的性能。
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New Effective Multithreaded Matching Algorithms
Matching is an important combinatorial problem with a number of applications in areas such as community detection, sparse linear algebra, and network alignment. Since computing optimal matchings can be very time consuming, several fast approximation algorithms, both sequential and parallel, have been suggested. Common to the algorithms giving the best solutions is that they tend to be sequential by nature, while algorithms more suitable for parallel computation give solutions of lower quality. We present a new simple 1/2-approximation algorithm for the weighted matching problem. This algorithm is both faster than any other suggested sequential 1/2-approximation algorithm on almost all inputs and when parallelized also scales better than previous multithreaded algorithms. We further extend this to a general scalable multithreaded algorithm that computes matchings of weight comparable with the best sequential deterministic algorithms. The performance of the suggested algorithms is documented through extensive experiments on different multithreaded architectures.
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