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首页> 外文期刊>IEEE Transactions on Parallel and Distributed Systems >Efficient Operator Placement for Distributed Data Stream Processing Applications
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Efficient Operator Placement for Distributed Data Stream Processing Applications

机译:分布式数据流处理应用程序的高效操作员放置

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摘要

In the last few years, a large number of real-time analytics applications rely on the Data Stream Processing (DSP) so to extract, in a timely manner, valuable information from distributed sources. Moreover, to efficiently handle the increasing amount of data, recent trends exploit the emerging presence of edge/Fog computing resources so to decentralize the execution of DSP applications. Since determining the Optimal DSP Placement (for short, ODP) is an NP-hard problem, we need efficient heuristics that can identify a good application placement on the computing infrastructure in a feasible amount of time, even for large problem instances. In this paper, we present several DSP placement heuristics that consider the heterogeneity of computing and network resources; we divide them in two main groups: model-based and model-free. The former employ different strategies for efficiently solving the ODP model. The latter implement, for the problem at hand, some of the well-known meta-heuristics, namely greedy first-fit, local search, and tabu search. By leveraging on ODP, we conduct a thorough experimental evaluation, aimed to assess the heuristics' efficiency and efficacy under different configurations of infrastructure size, application topology, and optimization objectives.
机译:在过去的几年中,大量的实时分析应用程序都依赖于数据流处理(DSP),以便及时地从分布式源中提取有价值的信息。此外,为了有效处理不断增长的数据量,近来的趋势利用了边缘/雾计算资源的出现,从而分散了DSP应用程序的执行。由于确定最佳DSP布局(简称ODP)是一个NP难题,因此,我们需要高效的启发式方法,即使在大型问题实例中,也可以在可行的时间内确定计算基础架构上良好的应用程序布局。在本文中,我们提出了几种考虑了计算和网络资源异质性的DSP布局启发法。我们将它们分为两个主要类别:基于模型的模型和不基于模型的模型。前者采用不同的策略来有效地解决ODP模型。后者针对眼前的问题实施了一些众所周知的元启发式算法,即贪婪的首次拟合,局部搜索和禁忌搜索。通过利用ODP,我们进行了全面的实验评估,旨在评估在不同基础结构大小,应用程序拓扑和优化目标配置下的启发式方法的效率和效力。

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