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Distributed Estimation Over an Adaptive Incremental Network Based on the Affine Projection Algorithm

机译:基于仿射投影算法的自适应增量网络分布式估计

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We study the problem of distributed estimation based on the affine projection algorithm (APA), which is developed from Newton's method for minimizing a cost function. The proposed solution is formulated to ameliorate the limited convergence properties of least-mean-square (LMS) type distributed adaptive filters with colored inputs. The analysis of transient and steady-state performances at each individual node within the network is developed by using a weighted spatial-temporal energy conservation relation and confirmed by computer simulations. The simulation results also verify that the proposed algorithm provides not only a faster convergence rate but also an improved steady-state performance as compared to an LMS-based scheme. In addition, the new approach attains an acceptable misadjustment performance with lower computational and memory cost, provided the number of regressor vectors and filter length parameters are appropriately chosen, as compared to a distributed recursive-least-squares (RLS) based method.
机译:我们研究了基于仿射投影算法(APA)的分布式估计问题,该算法是从牛顿方法中最小化成本函数而开发的。提出的解决方案旨在改善有色输入的最小均方(LMS)型分布式自适应滤波器的有限收敛性。通过使用加权的时空能量守恒关系,对网络内每个节点的暂态和稳态性能进行分析,并通过计算机仿真进行了验证。仿真结果还证明,与基于LMS的方案相比,该算法不仅提供了更快的收敛速度,而且还提供了更高的稳态性能。此外,与基于分布式递归最小二乘(RLS)的方法相比,只要适当选择回归矢量和滤波器长度参数的数量,新方法就可以以较低的计算和存储成本获得可接受的失调性能。

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