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Variable step-size sign natural gradient algorithm for sequential blind source separation

机译:用于连续盲源分离的可变步长符号自然梯度算法

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摘要

A novel variable step-size sign natural gradient algorithm (VS-S-NGA) for online blind separation of independent sources is presented. A sign operator for the adaptation of the separation model is obtained from the derivation of a generalized dynamic separation model. A variable step size is also derived to better match the dynamics of the input signals and unmixing matrix. The proposed sign algorithm is appealing in practice due to its computational simplicity. Experimental results verify the superior convergence performance over conventional NGA in both stationary and nonstationary environments.
机译:提出了一种新颖的可变步长符号自然梯度算法(VS-S-NGA),用于独立来源的在线盲分离。从通用动态分离模型的推导中获得用于分离模型适应的符号运算符。还得出可变步长,以更好地匹配输入信号和解混矩阵的动态。所提出的符号算法由于其计算简单而在实践中具有吸引力。实验结果证明了在固定和非固定环境下,优于常规NGA的收敛性能。

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