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An enhanced mixed norm error criterion adaptive filtering algorithm for sparse channel estimation

机译:一种增强的稀疏信道估计的混合规范误差标准自适应滤波算法

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Mixed norm error (MNE) criterion has been successfully used to develop adaptive filtering algorithms. Recently, adaptive filter algorithms based on MNE has an excellent performance for system identification, including channel estimation. In this paper, an enhanced sparse mixed l2 and lp norm error criterion algorithm is proposed by the use of a soft parameter function to modify the basic cost function of l2 and lp algorithm to generate a desired zero attractor. The proposed sparse MNE algorithm can well explore the essential sparsity in multi-path wireless channel because of the designed zero attractor. The proposed sparse MNE algorithm is analyzed and mathematically derived in detail. Simulation examples are presented to verify its behavior via a sparse wireless multi-path channel. Additionally, we will also investigate the parameter affects on the proposed algorithm. The obtained results confirm that the excellent behavior of the proposed sparse MNE algorithm is achieved in terms of both convergence and steady-state error in comparison with the LMS/F, L2LP and their corresponding sparse algorithms.
机译:混合标准错误(MNE)标准已成功用于开发自适应滤波算法。最近,基于MNE的自适应滤波器算法具有出色的系统识别性能,包括信道估计。在本文中,通过使用软参数功能提出了一种增强的稀疏混合L 2 和L p 符号误差标准算法来修改L <的基本成本函数sub> 2 和l p 算法生成所需的零吸引子。由于设计的零吸引子,所提出的稀疏MNE算法可以很好地探索多路径无线信道中的基本稀疏性。分析了所提出的稀疏MNE算法和数学上详细衍生。提出了仿真示例以通过稀疏无线多路径通道验证其行为。此外,我们还将研究参数对所提出的算法影响的参数。获得的结果证实,与LMS / F,L2LP及其相应的稀疏算法相比,在收敛和稳态误差方面实现了所提出的稀疏MNE算法的优异行为。

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