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Salt and Pepper Noise Removal by Combining Genetic Algorithms - Neural Networks and Statistical Methods

机译:通过组合遗传算法 - 神经网络和统计方法,盐和辣椒噪声去除

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This paper presents an innovative method for salt and pepper noise removal, by combining neural networks, evolutive and statistical methods. The neural network used to detect the pixels affected by noise is Pulse Coupled Neural Network, whose parameters have been optimized using a Genetic Algorithm. The pixels that are affected by noise are corrected using a Gaussian Kernel. This algorithm proves to be a very efficient method of removing salt and pepper noise from images without compromising the quality of the unaffected pixels. The method has been tested on images from the Mars rover. These tests show how the image retains fine details of the scene even if the noise levels are high.
机译:本文通过组合神经网络,演化和统计方法,提出了一种盐和辣椒噪声去除的创新方法。用于检测受噪声影响的像素的神经网络是脉冲耦合神经网络,其参数使用遗传算法进行了优化。使用高斯内核校正受噪声影响的像素。该算法证明是一种非常有效的方法,即从图像中除去盐和辣椒噪声,而不会影响未受影响像素的质量。该方法已经在火星流动站的图像上进行了测试。这些测试表明,即使噪声水平高,图像如何保留场景的细节。

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