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Distributed linear prediction in the presence of noise and multipath

机译:在存在噪声和多径的存在下分布式线性预测

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We are considering problem of estimating autoregressive signal coefficients over a network of agents. Noise and/or multipath are disturbing reception of the signals in network nodes. The autoregressive signals have different powers and delays at different nodes. Least-mean-square algorithms are used in nodes for the estimation as well as the cooperation strategy based on the adapt-then-combine diffusion. Several combining algorithms are used to implement cooperation and their convergence rates and steady-state levels are compared using mean-square weight deviations. Conditions to get benefits from the cooperations are discussed. Possibilities for performance improvements are supported by numerical experiments.
机译:我们考虑估算代理网络的自回归信号系数的问题。噪声和/或多径正在扰乱网络节点中信号的接收。自回归信号在不同节点上具有不同的功率和延迟。基于适应的组合扩散的估计的节点以及合作策略中使用最小均方算法。使用均衡均衡偏差比较了几种组合算法来实现合作,并且它们使用均衡率和稳态水平进行比较。讨论了从合作中获益的条件。数值实验支持性能改进的可能性。

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