首页> 外文会议>IEEE International Conference on Acoustics, Speech and Signal Processing >CONSENSUS-BASED DISTRIBUTED PARTICLE FILTERING ALGORITHMS FOR COOPERATIVE BLIND EQUALIZATION IN RECEIVER NETWORKS
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CONSENSUS-BASED DISTRIBUTED PARTICLE FILTERING ALGORITHMS FOR COOPERATIVE BLIND EQUALIZATION IN RECEIVER NETWORKS

机译:基于共识的分布式粒子滤波算法,用于接收网络中的协作盲均衡

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摘要

We describe in this paper novel consensus-based distributed particle filtering algorithms which are applied to cooperative blind equalization of frequency-selective channels in a network with one transmitter and multiple receivers. The proposed algorithms employ parallel consensus averaging iterations to evaluate the product of some node-dependent quantities across the receiver network, thus eliminating the need for message broadcasts beyond each receiver's local neighborhood. Additionally, parallel minimum consensus iterations are used to assess the convergence of the quantized consensus averages and ensure accordingly the coherence of particle sets across the different network nodes. We verify via computer simulations that the consensus-based schemes exhibit a small performance gap compared to both centralized and communication-intensive broadcast solutions.
机译:我们在本文中描述了基于共识的基于共识的分布式粒子滤波算法,其应用于具有一个发射机和多个接收器的网络中的频率选择性信道的协同盲均衡。 所提出的算法采用并行共识平均迭代来评估在接收器网络上的一些节点相关数量的乘积,从而消除了超出每个接收器的本地邻域的消息广播的需求。 此外,并行最小共识迭代用于评估量化共识平均值的收敛,并确保粒子集中在不同网络节点上的相干性。 我们通过计算机模拟验证,与集中式和通信密集型广播解决方案相比,基于协商的方案表现出小的性能差距。

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