Efficient input-selective affine projection sign algorithm with enhanced convergence performance

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초록

This study introduces an enhanced affine projection sign algorithm that incorporates an input vector selection mechanism to achieve faster convergence. The proposed scheme selectively determines the contribution of each input vector based on a dual-threshold strategy derived from M-estimation and mean square deviation analysis. An efficient recursive formulation is further adopted to reduce computational effort without sacrificing accuracy. Simulation results demonstrate that the proposed approach achieves faster convergence and improved robustness compared to existing methods under impulsive noise environments.

키워드

Affine projection sign algorithm; Mean-square deviation; M-estimate; Input vector selection; Impulsive noise; ADAPTIVE FILTER; NOISE
제목
Efficient input-selective affine projection sign algorithm with enhanced convergence performance
저자
Park, Bum Yong; Yoo, Jinwoo; Lee, Won Il; Shin, Jaewook
DOI
10.1016/j.sigpro.2026.110599
발행일
2026-08
유형
Article
저널명
Signal Processing
권
245