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On the Stochastic Modeling of the NLMS Algorithm Operating with Bilinear forms

机译:用双线形式运行的NLMS算法的随机建模

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This paper deals with the stochastic modeling of the normalized least-mean-square algorithm for bilinear forms (NLMS-BF), which is defined from the temporal and spatial impulse responses of a multiple-input single-output (MISO) spatiotemporal system. Specifically, considering a system identification problem with stationary plant and Gaussian input data, model expressions are derived describing the mean weight behavior of the temporal, spatial, and spatiotemporal adaptive filters, the learning curve, as well as some correlation-like matrices required. Simulation results are shown confirming that the model predicts satisfactorily the algorithm behavior for both transient and steady-state phases.
机译:本文涉及双线性形式(NLMS-BF)标准化最小均方算法的随机建模,其由多输入单输出(MISO)时空系统的时间和空间脉冲响应定义。 具体地,考虑到静止工厂和高斯输入数据的系统识别问题,衍生模型表达式描述时间,空间和时空自适应滤波器,学习曲线以及所需的一些相关性矩阵的平均重量行为。 显示仿真结果证实,该模型预测瞬态和稳态阶段的算法行为令人满意。

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