4.5 Article

Flower Pollination Heuristics for Nonlinear Active Noise Control Systems

期刊

CMC-COMPUTERS MATERIALS & CONTINUA
卷 67, 期 1, 页码 815-834

出版社

TECH SCIENCE PRESS
DOI: 10.32604/cmc.2021.014674

关键词

Active noise control; computational heuristics; volterra filtering; flower pollination algorithm

资金

  1. National Natural Science Foundation of China [51977153, 51977161, 51577046]
  2. State Key Program of National Natural Science Foundation of China [51637004]
  3. National Key Research and Development Plan important scientific instruments and equipment development [2016YFF010220, 41402040301]

向作者/读者索取更多资源

A novel flower pollination algorithm design is presented for model identification problems in nonlinear active noise control systems, demonstrating reliable, accurate, stable and robust performance through comparative study on statistical observations.
In this paper, a novel design of the flower pollination algorithm is presented for model identification problems in nonlinear active noise control systems. The recently introduced flower pollination based heuristics is implemented to minimize the mean squared error based merit/cost function representing the scenarios of active noise control system with linear/nonlinear and primary/secondary paths based on the sinusoidal signal, random and complex random signals as noise interferences. The flower pollination heuristics based active noise controllers are formulated through exploitation of nonlinear filtering with Volterra series. The comparative study on statistical observations in terms of accuracy, convergence and complexity measures demonstrates that the proposed meta-heuristic of flower pollination algorithm is reliable, accurate, stable as well as robust for active noise control system. The accuracy of the proposed nature inspired computing of flower pollination is in good agreement with the state of the art counterpart solvers based on variants of genetic algorithms, particle swarm optimization, backtracking search optimization algorithm, fireworks optimization algorithm along with their memetic combination with local search methodologies. Moreover, the central tendency and variation based statistical indices further validate the consistency and reliability of the proposed scheme mimic the mathematical model for the process of flower pollination systems.

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