On Energy Efficient Communications over Rayleigh Fading Channel with Delivery Rate and Delay Constraints in Wireless Sensor Networks

Xiaohui Lin, Yu-Kwong Kwok
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Abstract

There is a plethora of recent research on high performance wireless communications using a cross-layer approach in that adaptive modulation and coding (AMC) schemes at wireless physical layer are used for combating time varying channel fading and enhance link throughput. However, in a wireless sensor network, transmitting packets over deep fading channel can incur excessive energy consumption due to the usage of stronger forwarding error code (FEC) or more robust modulation mode. To avoid such energy inefficient transmission, a straightforward approach is to temporarily buffer packets when the channel is in deep fading, until the channel quality recovers. Unfortunately, packet buffering may lead to communication latency and buffer overflow, which, in turn, can result in severe degradation in communication performance. Specifically, to improve the buffering approach, we need to address two challenging issues: (1) how long should we buffer the packets?, and (2) how to choose the optimum channel transmission threshold above which to transmit the buffered packets? In this paper, by using discrete-time queuing model, we analyze the effects of Rayleigh fading over AMC- based communications in a wireless sensor network. We then analytically derive the packet delivery rate and average delay. Guided by these numerical results, we can determine the most energy-efficient operation modes under different transmission environments. Extensive simulation results on NS-2 have validated the analytical results, and indicates that under these modes, we can achieve as much as 40% reduction in energy dissipation.
无线传感器网络中具有传输速率和延迟约束的瑞利衰落信道节能通信研究
近年来对跨层高性能无线通信进行了大量的研究,在无线物理层采用自适应调制和编码(AMC)方案来对抗时变信道衰落和提高链路吞吐量。然而,在无线传感器网络中,由于使用更强的转发错误码(FEC)或更鲁棒的调制模式,在深度衰落信道上传输数据包会导致过多的能量消耗。为了避免这种能量低效的传输,一种简单的方法是在信道深度衰落时临时缓冲数据包,直到信道质量恢复。不幸的是,数据包缓冲可能会导致通信延迟和缓冲区溢出,从而导致通信性能的严重下降。具体来说,为了改进缓冲方法,我们需要解决两个具有挑战性的问题:(1)我们应该缓冲数据包多长时间?(2)如何选择传输缓冲数据包的最佳通道传输阈值?本文利用离散时间排队模型,分析了瑞利衰落对无线传感器网络中基于AMC的通信的影响。然后,我们解析地推导出包的传输速率和平均延迟。在这些数值结果的指导下,我们可以确定在不同的传输环境下最节能的运行模式。在NS-2上的大量仿真结果验证了分析结果,并表明在这些模式下,我们可以实现高达40%的能耗降低。
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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