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A Robust Complex α-Sigmoid Affine Projection Algorithm Under Non-Gaussian Noise.
Yaowei Guo1, Bin Guo1, Guobing Qian1
1College of Electronic and Information Engineering, Southwest University, Chongqing 400715, China.
Sensors (Basel, Switzerland)
|February 13, 2026
Summary
This study introduces a novel complex-valued adaptive filtering algorithm using the α-Sigmoid cost function (α-CSAP). The α-CSAP algorithm enhances performance in noisy environments by suppressing interference and reducing complexity.
Area of Science:
- Signal Processing
- Adaptive Filtering
- Computational Intelligence
Background:
- Traditional adaptive filtering algorithms suffer performance degradation with correlated signals and non-Gaussian noise.
- Impulsive noise and matrix inversion increase computational complexity in existing methods.
Purpose of the Study:
- To propose a robust complex-valued adaptive filtering algorithm for challenging signal environments.
- To reduce computational complexity while maintaining high performance in adaptive systems.
Main Methods:
- Development of a complex-valued affine projection algorithm incorporating an α-Sigmoid cost function (α-CSAP).
- Implicit variable step-size updates via a normalization factor to suppress impulsive noise.
- Theoretical derivation of the steady-state mean square deviation (MSD).
Main Results:
- The α-CSAP algorithm effectively suppresses impulsive noise interference.
- The proposed method avoids matrix inversion, leading to reduced computational complexity.
- Demonstrated superior performance in system identification and beamforming compared to traditional algorithms.
Conclusions:
- The α-CSAP algorithm offers improved robustness and efficiency for complex adaptive filtering.
- This novel approach addresses key limitations of existing adaptive filtering techniques in practical scenarios.
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