A game theory distributed approach for energy optimization in WSNs

A. Abrardo, Lapo Balucanti, A. Mecocci
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引用次数: 16

Abstract

One of the major sources of energy waste in wireless sensor networks (WSNs) is idle listening, that is, the cost of actively listening for potential packets. This article focuses on reducing idle-listening time via a dynamic duty-cycling technique which aims at optimizing the sleep interval between consecutive wake-ups. We considered a receiver-initiated MAC method for WSNs in which the sender waits for a beacon signal from the receiver before starting to transmit. Since each sender receives beacon signals from several nodes, the data are routed on multiple paths in a data collection network. In this context, we propose an optimization framework for minimizing the energy waste of the most power-hungry node of the network. To this aim, we first derive an analytic model that predicts nodes' energy consumption. Then, we use the model to derive a distributed optimization technique. Simulation results via NS-2 simulator are included to illustrate the accuracy of the model, and numerical results assess the validity of the proposed scheme.
基于博弈论的分布式无线传感器网络能量优化方法
无线传感器网络(WSNs)中能源浪费的主要来源之一是空闲侦听,即主动侦听潜在数据包的成本。本文的重点是通过动态占空循环技术来减少空闲收听时间,该技术旨在优化连续唤醒之间的睡眠间隔。我们考虑了一种用于wsn的接收方发起的MAC方法,在这种方法中,发送方在开始发送之前等待来自接收方的信标信号。由于每个发送方接收来自多个节点的信标信号,因此数据在数据采集网络中的多条路径上路由。在这种情况下,我们提出了一个优化框架,以最大限度地减少网络中最耗电节点的能源浪费。为此,我们首先推导了一个预测节点能耗的解析模型。然后,利用该模型推导出分布式优化技术。通过NS-2仿真结果验证了模型的准确性,数值结果验证了所提方案的有效性。
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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