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A two-stage Multi-Criteria Optimization method for service placement in decentralized edge micro-clouds

机译:分散边缘微云中服务放置的两级多标准优化方法

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摘要

Community networks are becoming increasingly popular due to the growing demand for network connectivity in both rural and urban areas. Community networks are owned and managed at the edge by volunteers. Their irregular topology, the heterogeneity of resources and their unreliable behavior claim for advanced optimization methods to place services in the network. In particular, an efficient service placement method is key for the performance of these systems. This work presents the Multi-Criteria Optimal Placement method, a novel and fast two-stage multi-objective method to place services in decentralized community network edge micro-clouds. A comprehensive set of computational experiments is carried out using real traces of Guifi.net, which is the largest production community network worldwide. According to the results, the proposed method outperforms both the random placement method used currently in Guifi.net and the Bandwidth-aware Service Placement method, which provides the best known solutions in the literature, by a mean gap in bandwidth gain of about 53% and 10%, respectively, while it also reduces the number of resources used.
机译:由于农村和城市地区的网络连接需求不断增长,社区网络变得越来越受欢迎。社区网络由志愿者在边缘拥有和管理。它们的不规则拓扑,资源的异构性及其不可靠的行为索赔,用于在网络中放置服务的高级优化方法。特别地,有效的服务放置方法是这些系统性能的关键。这项工作提出了多标准的最佳放置方法,一种新颖和快速的两阶段多目标方法,可以在分散的社区网络边缘微云中放置服务。使用Guifi.net的实际迹线进行了一套全面的计算实验,这是全球最大的生产社区网络。根据结果​​,所提出的方法优于当前使用的随机放置方法和带宽感知服务放置方法,它在文献中提供了最佳已知的解决方案,在带宽增益中的平均间隙约为53%分别为10%,而它也降低了所用的资源数量。

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