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A new minimum-consensus distributed particle filter for blind equalization in receiver networks

机译:一种新的最小共识分布式粒子滤波器,用于接收机网络中的盲均衡

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We describe in this paper a novel distributed particle filtering algorithm that performs blind equalization of frequency-selective channels in a setup with a single transmitter and multiple receivers. The algorithm employs parallel minimum consensus iterations to determine some a posteriori probability functions, providing equal approximations on all network nodes in a finite, deterministic, network-dependent number of steps. We verify via computer simulations that the new algorithm exhibits a bit error rate (BER) performance similar to that of the centralized particle-filter estimator with communication requirements milder than that of previous approaches, as the new method drops the need to evaluate quantities via average consensus.
机译:我们在本文中描述了一种新颖的分布式粒子滤波算法,该算法在具有单个发送器和多个接收器的设置中执行频率选择通道的盲均衡。该算法采用并行的最小共识迭代来确定一些后验概率函数,以有限的,确定的,与网络相关的步骤数在所有网络节点上提供相等的近似值。我们通过计算机仿真验证了该新算法表现出的比特误码率(BER)性能与集中式粒子滤波器估计器相似,并且通信要求比以前的方法要轻,因为该新方法降低了通过平均值来评估数量的需求共识。

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