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Impulse Noise Removal Using Adaptive Radial Basis Function Interpolation

机译:基于自适应径向基函数插值的脉冲噪声去除

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摘要

A novel adaptive radial basis function interpolation-based impulse noise removal algorithm is introduced in this manuscript. This approach consists of two stages: noisy pixel detection and correction. In former step, the noise-affected pixels in an image are detected, and in the latter step, the noisy pixels are restored by adaptive radial basis function-based interpolation scheme. The radial basis function interpolation scheme is used to estimate the unknown noisy pixel value from the noise-free known neighboring pixel values. For both noisy pixel detection and correction, a center sliding window is considered at each pixel location. The proposed approach is experimented on some benchmark data sets, and its performance is evaluated using five performance evaluation measures: PSNR, MSSIM, IEF, correlation factor, and NSER on different test images by comparing it against sixteen different state-of-the-art techniques. It is found that the proposed approach gives better results than the sixteen different state-of-the-art techniques.
机译:本文介绍了一种新颖的基于自适应径向基函数插值的脉冲噪声去除算法。该方法包括两个阶段:噪声像素检测和校正。在前一步中,检测图像中受噪声影响的像素,然后在后一步中,通过基于自适应径向基函数的插值方案恢复噪声像素。径向基函数插值方案用于从无噪声的已知相邻像素值中估计未知噪声像素值。对于有噪声的像素检测和校正,在每个像素位置都考虑一个中心滑动窗口。在一些基准数据集上对提出的方法进行了实验,并通过将其与16种不同的最新技术进行比较,使用五种性能评估方法(PSNR,MSSIM,IEF,相关因子和NSER)在不同的测试图像上评估了其性能。技术。发现所提出的方法比十六种不同的最新技术能提供更好的结果。

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