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Design, Generation, and Validation of Extreme Scale Power-Law Graphs

机译:超尺度幂律图的设计,生成和验证

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Massive power-law graphs drive many fields: metagenomics, brain mapping, Internet-of-things, cybersecurity, and sparse machine learning. The development of novel algorithms and systems to process these data requires the design, generation, and validation of enormous graphs with exactly known properties. Such graphs accelerate the proper testing of new algorithms and systems and are a prerequisite for success on real applications. Many random graph generators currently exist that require realizing a graph in order to know its exact properties: number of vertices, number of edges, degree distribution, and number of triangles. Designing graphs using these random graph generators is a time-consuming trial-and-error process. This paper presents a novel approach that uses Kronecker products to allow the exact computation of graph properties prior to graph generation. In addition, when a real graph is desired, it can be generated quickly in memory on a parallel computer with no-interprocessor communication. To test this approach, graphs with 1012 edges are generated on a 40,000+ core supercomputer in 1 second and exactly agree with those predicted by the theory. In addition, to demonstrate the extensibility of this approach, decetta-scale graphs with up to 10^30 edges are simulated in a few minutes on a laptop.
机译:大规模幂律图驱动许多领域:宏基因组学,大脑映射,物联网,网络安全和稀疏机器学习。开发用于处理这些数据的新颖算法和系统需要设计,生成和验证具有确切已知属性的巨大图形。这样的图形加速了对新算法和系统的正确测试,并且是在实际应用中成功的前提。当前存在许多随机图生成器,这些生成器需要实现图才能知道其确切属性:顶点数,边数,度分布和三角形数。使用这些随机图生成器设计图是一个耗时的反复试验过程。本文提出了一种新颖的方法,该方法使用Kronecker产品来允许在图形生成之前精确计算图形属性。此外,当需要实图时,可以在没有处理器间通信的并行计算机上的内存中快速生成实图。为了测试这种方法,在40,000+核心超级计算机上在1秒内生成了具有1012个边的图形,这些图形与该理论所预测的图形完全吻合。另外,为了证明这种方法的可扩展性,在笔记本电脑上在几分钟内模拟了多达10 ^ 30条边的分贝比例图。

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