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Distributed Blind Adaptive Algorithms Based on Constant Modulus for Wireless Sensor Networks

机译:基于常数模的无线传感器网络分布式盲自适应算法

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In this paper, we propose and study the distributed blind adaptive algorithms for wireless sensor network applications. Specifically, we derive a distributed forms of the blind least mean square (LMS) and recursive least square (RLS) algorithms based on the constant modulus (CM) criterion. We assume that the inter-sensor communication is single-hop with Hamiltonian cycle to save the power and communication resources. The distributed blind adaptive algorithm runs in the network with the collaboration of nodes in time and space to estimate the parameters of an unknown system or a physical phenomenon. Simulation results demonstrate the effectiveness of the proposed algorithms, and show their superior performance over the corresponding non-cooperative adaptive algorithms.
机译:在本文中,我们提出并研究了用于无线传感器网络应用的分布式盲自适应算法。具体来说,我们基于常数模量(CM)准则推导了分布形式的盲最小均方(LMS)和递归最小二乘(RLS)算法。我们假设传感器间的通信是哈密顿周期的单跳,以节省功耗和通信资源。分布式盲自适应算法与节点在时间和空间上的协作在网络中运行,以估计未知系统或物理现象的参数。仿真结果证明了所提算法的有效性,并显示了其优于相应的非合作自适应算法的性能。

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