Real-time Image Processing by Cellular Neural Network Using Reaction-Diffusion Model

Pham Hong Long, P. T. Cat
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引用次数: 7

Abstract

In this paper we propose two architectures of Cellular Neural Network (CNN) for edge detection and segmentation of noisy image based on FitzHugh-Nagumo reaction-diffusion equation. These networks give better results compare to other methods and are capable to real-time applications due to parallel processing nature of the CNN. The mathematical description and nonlinear phenomena analysis of the FitzHugh-Nagumo reaction-diffusion equation are given to show its operating principle in edge detection and segmentation. The method to define the templates of these CNNs is presented and we also give some Matlab simulations to demonstrate the effectiveness of the proposed method
基于反应扩散模型的细胞神经网络实时图像处理
本文提出了基于FitzHugh-Nagumo反应扩散方程的两种细胞神经网络(CNN)结构,用于噪声图像的边缘检测和分割。与其他方法相比,这些网络给出了更好的结果,并且由于CNN的并行处理特性,能够实现实时应用。通过对FitzHugh-Nagumo反应扩散方程的数学描述和非线性现象分析,说明了FitzHugh-Nagumo反应扩散方程在边缘检测和分割中的工作原理。给出了定义这些cnn模板的方法,并通过Matlab仿真验证了该方法的有效性
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