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A hybrid array minimizing the effects of the random weight vector errors in the LMS array and the Applebaum array

机译:混合阵列可最大程度地减少LMS阵列和Applebaum阵列中随机权重矢量误差的影响

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摘要

A hybrid adaptive array that combines the least mean square-error (LMS) array and the Applebaum array is presented. The array minimizes the effect of the random errors in the weight vectors of the LMS and Applebaum arrays. These weight vectors containing random errors are scaled and combined to yield a novel weight vector. The mean square error (MSE) is used as a measure of performance to derive optimal weighting factors. An algorithm is devised to adjust the weighting factors automatically by an iterative procedure based on the complex LMS algorithm to achieve the optimum weighting factors. It is shown that the hybrid array performs better than the Applebaum array or the LMS array. In addition, it is less sensitive to the random weight vector errors.
机译:提出了一种混合自适应阵列,该阵列结合了最小均方误差(LMS)阵列和Applebaum阵列。该阵列将LMS和Applebaum阵列的权向量中的随机误差的影响降至最低。这些包含随机误差的权重向量被缩放并组合以产生新的权重向量。均方误差(MSE)用作衡量最佳加权因子的性能指标。设计了一种算法,通过基于复杂LMS算法的迭代过程自动调整加权因子,以实现最佳加权因子。结果表明,混合阵列的性能优于Applebaum阵列或LMS阵列。另外,它对随机权重矢量误差不太敏感。

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