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Hammerstein Spline Adaptive Filtering based on Normalised Least Mean Square Algorithm

Author(s)
Prongnuch, Sethakarn
Sitjongsataporn, Suchada
Wiangtong, Theerayod
Date Issued
December 1, 2019
Type
Conference Paper
DOI
10.1109/ISPACS48206.2019.8986401
Abstract
This paper proposes a normalised least mean square algorithm based on Hammerstein spline adaptive filtering. A nonlinear Hammerstein adaptive filters consists of memory-less function modified during learning and the spline control point is automatically controlled by gradient-based method. Simulation results demonstrate that the proposed algorithm exhibits more robust performance compared with the conventional spline adaptive filtering algorithms.
Citation
Proceedings 2019 International Symposium on Intelligent Signal Processing and Communication Systems Ispacs 2019, 2019
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