资源可用性对机会计算影响的表征

MCC '12 Pub Date : 2012-08-17 DOI:10.1145/2342509.2342517
Alan Ferrari, D. Puccinelli, S. Giordano
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引用次数: 7

摘要

有了机会计算,设备不再局限于使用自己的服务和资源,而是可以访问其他设备提供的服务和资源。机会计算的性能很大程度上受到网络资源拓扑的影响:什么资源/服务可用,以及何时何地可以利用它们。本文对资源可用性对机会计算性能的影响进行了初步研究。具体地说,我们提出了一个称为预期资源可用性(ERA)的度量,它试图捕获服务和资源拓扑的影响。ERA为机会计算方案对给定网络的适用性提供了一个代理:如果ERA较低,任何机会方案都可能由于缺乏资源和/或它们之间的连接而失败。另一方面,如果ERA高,则可以预期成功。为了更好地理解ERA的性质,我们解决了机会计算中的服务分配问题,该问题在寻找最优解时存在组合爆炸问题。我们还提出了一些初步的模拟结果,证实了ERA作为衡量在给定网络中是否可以实现机会计算的度量的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of the impact of resource availability on opportunistic computing
With opportunistic computing, devices are no longer restricted to using their own services and resources, but can access services and resources made available by other devices. The performance of opportunistic computing is greatly affected by the resource topology in the network: what resources/services are available, as well as when and where they can be tapped. This paper presents a preliminary investigation of the impact of the resource availability on the performance of opportunistic computing. Specifically, we propose a metric called Expected Resource Availability, ERA, that attempts to capture the impact of the topology of services and resources. The ERA offers a proxy for the applicability of opportunistic computing schemes to a given network: if the ERA is low, any opportunistic scheme can be expected to fail due to a sheer lack of resources and/or connectivity among them. On the other hand, if the ERA is high, success can be expected. To gain perspective on the properties of the ERA, we tackle the problem of service allocation in opportunistic computing, which suffers to combinatorial explosion when looking for the optimal solution. We also present some preliminary simulation results that confirm the validity of the ERA as a metric to gauge whether opportunistic computing can be achieved in a given network.
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