Particle Swarm Optimization for Gray-Scale Image Noise Cancellation

Te‐Jen Su, Tzu-Hsiang Lin, Jiawei Liu · 2008

In this paper, the control of analog cellular neural network systems via particle swarm optimization (PSO) approach is presented. A novel method for designing templates of a cellular neural network for gray-scale image noise cancellation is discussed. Based on the PSO method, this approach is used to design the templates of a cellular neural network and diminish the noise interference in polluted images. Finally, the demonstrated examples are presented to illustrate the effectiveness of the proposed PSO -CNN methodology.

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