QoI-aware tradeoff between communication and computation in wireless ad-hoc networks

Sepideh Nazemi, K. Leung, A. Swami
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引用次数: 11

Abstract

Data aggregation techniques exploit spatial and temporal correlations among data and aggregate data into a smaller volume as a means to optimize usage of limited network resources including energy. There is a trade-off among the Quality of Information (QoI) requirement and energy consumption for computation and communication. We formulate the energy-efficient data aggregation problem as a non-linear optimization problem to optimize the trade-off and control the degree of information reduction at each node subject to given QoI requirement. Using the theory of duality optimization, we prove that under a set of reasonable cost assumptions, the optimal solution can be obtained despite non-convexity of the problem. Moreover, we propose a distributed, iterative algorithm that will converge to the optimal solution. Extensive numerical results are presented to confirm the validity of the proposed solution approach.
无线自组织网络中通信与计算之间的qos感知权衡
数据聚合技术利用数据之间的空间和时间相关性,将数据聚合到较小的体积中,作为优化使用有限网络资源(包括能源)的一种手段。在信息质量(qi)要求和计算和通信的能耗之间存在权衡。我们将节能数据聚合问题表述为一个非线性优化问题,在给定的qos要求下,优化权衡并控制各节点的信息缩减程度。利用对偶优化理论,证明了在一组合理的代价假设下,即使问题具有非凸性,也能得到最优解。此外,我们提出了一种分布式迭代算法,该算法将收敛到最优解。大量的数值结果证实了所提出的求解方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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