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Optimal code rate for wireless sensor networks using IR-UWB and non-coherent detection

机译:使用IR-UWB和非相干检测的无线传感器网络的最佳码率

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In this paper, a cross-layer design approach has been used to evaluate the effect of forward error correction (FEC) on energy consumption of non-coherent energy detector receiver using impulse radio ultra-wideband in the context of wireless sensor networks. The proposed method captures relevant characteristics of the physical and medium access control (MAC) layers, while taking into account bit error probability (BEP) requirement of the application. A two-stage semi-analytical optimization model and code rate selection algorithm has been developed to find out the optimal code rate from the energy efficiency perspective. Firstly, a signal-to-noise ratio (SNR) gap analysis is used to select the code rates, which can provide the same target BEP as uncoded transmission, with lower received SNR. Secondly, an energy consumption model is used to explore which one of the selected code rates provide the highest energy saving, when compared to the uncoded case. In this work, the proposed algorithm has been executed for Reed-Solomon codes using Nakagami-m fading channel model and taking into account the channel access success probability of the Slotted Aloha MAC for different offered traffic loads. The results clearly illustrate the potential energy savings that can be achieved by using FEC and selecting the optimum code rate. The developed model is useful in the selection of code rate for particular communication distances and offered traffic load values.
机译:在本文中,跨层设计方法已用于评估前向纠错(FEC)对在无线传感器网络环境中使用脉冲无线电超宽带的非相干能量检测器接收器的能耗的影响。所提出的方法在考虑到应用程序的误码率(BEP)要求的同时,捕获了物理和媒体访问控制(MAC)层的相关特征。开发了一种两阶段的半解析优化模型和码率选择算法,以从能源效率的角度找出最佳码率。首先,使用信噪比(SNR)间隙分析来选择编码率,从而可以提供与未编码传输相同的目标BEP,并且接收到的SNR较低。其次,与未编码的情况相比,使用能耗模型来探索所选编码率中的哪一个可提供最高的节能效果。在这项工作中,使用Nakagami-m衰落信道模型并考虑了时隙Aloha MAC对于不同提供的业务负载的信道访问成功概率,针对里德-所罗门码执行了所提出的算法。结果清楚地说明了通过使用FEC并选择最佳编码率可以实现的潜在节能效果。所开发的模型可用于选择特定通信距离和所提供流量负载值的码率。

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