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首页> 外文期刊>Circuits, systems, and signal processing >FPGA Implementation of MRMN with Step-Size Sealer Adaptive Filter for Impulsive Noise Reduction
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FPGA Implementation of MRMN with Step-Size Sealer Adaptive Filter for Impulsive Noise Reduction

机译:用于跨级封口机自适应滤波器的MRMN的FPGA实现,用于脉冲降噪

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摘要

Noise reduction is an essential part of the signal processing for error-free analysis and critical measurements of the signal. Various robust mixed norm (RMN)-based adaptive algorithms have been reported to remove Gaussian and impulsive noise together. In this paper, a modified robust mixed norm (MRMN) with step-size scaler-based adaptive filter has been proposed to suppress the impulsive and Gaussian noise in system identification application. Further, an attempt has been made to develop an algorithm that simultaneously improves the rate of convergence and reduce the steady-state error (SSE). The proposed adaptive algorithm on an average decreases 13.2% SSE at the same initial rate of convergence, and at the same SSE, the rate of convergence is increased by 43.8% as compared to the existing mixed norm-based adaptive algorithms. Moreover, the hardware architecture of the proposed algorithm has been implemented using VHDL on various FPGA platforms. The proposed hardware implementation of the weight update block leads to high-speed realization of the adaptive filter with little increases in hardware resources. The architecture offers a maximum clock frequency of 66.53 MHz when implemented on Virtex 5 FPGA.
机译:降噪是用于无差错分析和信号的临界测量的信号处理的重要部分。已经报道了各种稳健的混合标准(RMN)基于自适应算法,以使高斯和冲动的噪声一起去除。在本文中,已经提出了一种改进的鲁棒混合规范(MRMN),其基于梯级缩放的自适应滤波器抑制了系统识别应用中的脉冲和高斯噪声。此外,已经尝试开发一种同时提高收敛速率并降低稳态误差(SSE)的算法。拟议的自适应算法平均降低了13.2%的SSE,在相同的初始收敛速率下,在同一SSE,与现有的混合规范的自适应算法相比,收敛速度增加了43.8%。此外,已经在各种FPGA平台上使用VHDL来实现所提出的算法的硬件架构。拟议的重量更新块的硬件实现导致自适应滤波器的高速实现,硬件资源很少增加。在Virtex 5 FPGA上实现时,架构提供了66.53 MHz的最大时钟频率。

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