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Variable Step-Size Transform Domain ILMS and DLMS algorithms with system identification over adaptive networks

机译:自适应网络上具有系统识别功能的可变步长变换域ILMS和DLMS算法

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This paper presents a powerful performance and convergence speed of Variable Step-Size Transform Domain Incremental/Diffusion Least Mean Square (VSS-TD-I/D-LMS). It modifies and extends several already existing algorithms of VSS-LMS and VSS-TD-LMS to wireless sensor adaptive networks. The effect of transform domain along with power normalization plays a rule in reduce eigenvalue spread of input autocorrelation and whitening the highly correlated process. In ILMS, each node sensor is allowed to share its estimate with a direct neighbor while in DLMS each node update its estimate a long with a group of neighbors. Simulation results are shown that the performance improvement of cooperative fashion has substantial and favorable convergence speed. Simulation results are shown the performance improvement of cooperative fashion in convergence speed.
机译:本文提出了可变步长变换域增量/扩散最小均方(VSS-TD-I / D-LMS)的强大性能和收敛速度。它修改并将VSS-LMS和VSS-TD-LMS的几种现有算法扩展到无线传感器自适应网络。变换域和功率归一化的作用在减少输入自相关的特征值散布和白化高度相关的过程中起着一定的作用。在ILMS中,允许每个节点传感器与直接邻居共享其估计,而在DLMS中,每个节点与一组邻居更新其估计很长。仿真结果表明,协同方式的性能提高具有明显且良好的收敛速度。仿真结果表明了协作方式在收敛速度上的性能改进。

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