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Blind Channel Estimation and Equalization in Wireless Sensor Networks Based on Correlations Among Sensors

机译:基于传感器之间相关性的无线传感器网络盲信道估计和均衡

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In densely deployed wireless sensor networks, signals of adjacent sensors can be highly cross-correlated. This paper proposes to utilize such a property to develop efficient and robust blind channel identification and equalization algorithms. Blind equalization can be performed with complexity as low as O(N), where N is the length of equalizers. Transmissions can be more power and bandwidth efficient in multipath propagation environment, which is especially important for wideband sensor networks such as those for acoustic location or video surveillance. The cross-correlation property of sensor signals and the finite sample effect are analyzed quantitatively to guide the design of low duty-cycle sensor networks. Simulations demonstrate the superior performance of the proposed method.
机译:在密集部署的无线传感器网络中,相邻传感器的信号可能高度互相关。本文提出利用这种性质来开发有效且鲁棒的盲信道识别和均衡算法。可以以低至O(N)的复杂度执行盲均衡,其中N是均衡器的长度。在多径传播环境中,传输可以提高功率和带宽效率,这对于宽带传感器网络(例如用于声学定位或视频监视的传感器网络)尤其重要。定量分析传感器信号的互相关特性和有限采样效应,以指导低占空比传感器网络的设计。仿真表明了该方法的优越性能。

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