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Cascaded adaptive canceller using loaded SMI

机译:使用已加载的SMI的级联自适应抵消器

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摘要

A fast-converging, highly parallel/pipeline cascaded canceler which uses the 2-input loaded sample matrix inversion (SMI) algorithm as the fundamental building block is developed which has convergence performance almost identical to one of the standards of a fast-converging adaptive canceler, the fast maximum likelihood (FML) canceler. Furthermore, the new algorithm, denoted as the cascaded loaded SMI (CLSMI), does not require the numerically intensive singular value decomposition (SVD) of the input data matrix as does the FML algorithm. For both the FML and CLSMI developments it is assumed that the unknown interference covariance matrix has the structure of an identity matrix plus an unknown positive semi-definite Hermitian (PSDH) matrix. The identity matrix component is associated with the known covariance matrix of the system noise and the unknown PSDH matrix is associated with the external noise environment. For narrowband (NB) jamming scenarios with J jammers it was shown via simulation that the CLSMI and FML converge on the average -3 dB below the optimum in about U independent sample vectors per sensor input. Both the CLSMI and FML converge much faster than the standard canceler technique, the SMI algorithm
机译:开发了一种快速收敛,高度并行/管道级联抵消器,该抵消器使用2输入负载样本矩阵求逆(SMI)算法作为基本构件,其收敛性能几乎与快速收敛自适应抵消器的标准之一相同。 ,快速最大似然(FML)抵消器。此外,表示为级联加载SMI(CLSMI)的新算法不像FML算法那样要求输入数据矩阵的数字密集型奇异值分解(SVD)。对于FML和CLSMI的发展,都假定未知干扰协方差矩阵具有恒等矩阵加未知正半定Hermitian(PSDH)矩阵的结构。单位矩阵成分与系统噪声的已知协方差矩阵关联,未知PSDH矩阵与外部噪声环境关联。对于通过J干扰器进行的窄带(NB)干扰情况,通过仿真显示,每个传感器输入的大约U个独立样本矢量中,CLSMI和FML收敛于平均平均值以下-3 dB。 CLSMI和FML的融合速度都比标准的抵消技术SMI算法快得多

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