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Scalable near-repeat and event chain calculations over heterogeneous computer architecture and systems

机译:异构计算机体系结构和系统上的可伸缩的近重复和事件链计算

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AbstractAs a case of space–time interaction, near-repeat calculation indicates that when an event takes place at a certain location, its immediate geographical surroundings would face an increased risk of experiencing subsequent events within a fairly short period of time. This paper presents an exploratory study that extends the investigation of the near-repeat phenomena to a series of space–time interaction, namely event chain calculation. Existing near-repeat tools can only deal with a limited amount of data due to computation constraints, let alone the event chain analysis. By deploying the modern accelerator technology and hybrid computer systems, this study demonstrates that large-scale near-repeat calculation or event chain analysis can be partially resolved through high-performance computing solutions to advance such a challenging statistical problem in both spatial analysis and crime geography.
机译:摘要以时空相互作用为例,近重复计算表明,某个事件在某个位置发生时,其紧邻的地理环境将在相当短的时间内面临发生后续事件的风险增加。本文提出了一项探索性研究,将对近重复现象的研究扩展到一系列时空相互作用,即事件链计算。由于计算限制,现有的近重复工具只能处理数量有限的数据,更不用说事件链分析了。通过部署现代加速器技术和混合计算机系统,这项研究表明,可以通过高性能计算解决方案部分解决大规模近距离重复计算或事件链分析的问题,从而解决空间分析和犯罪地理学等具有挑战性的统计问题。

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