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A zero-attracting quaternion-valued least mean square algorithm for sparse system identification

机译:一种零吸引的四元值值最低均方算法,用于稀疏系统识别

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摘要

Recently, quaternion-valued signal processing has received more and more attention. In this paper, the quaternion-valued sparse system identification problem is studied for the first time and a zero-attracting quaternion-valued least mean square (LMS) algorithm is derived by considering the l norm of the quaternion-valued adaptive weight vector. By incorporating the sparsity information of the system into the update process, a faster convergence speed is achieved, as verified by simulation results.
机译:最近,四元值的信号处理越来越受到关注。在本文中,首次研究了四元增值的稀疏系统识别问题,并且通过考虑了四元数值的自适应重量向量的L标准来导出零吸引的四元数值最低平均方形(LMS)算法。通过将系统的稀疏信息结合到更新过程中,通过模拟结果验证,实现了更快的收敛速度。

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