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Image Filtering Algorithms for Tunnel Lining Surface Cracks Based on Adaptive Median-Gaussian

机译:基于自适应中高斯的隧道衬砌表面裂缝图像滤波算法

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摘要

An adaptive median-Gaussian filtering algorithm is proposed to solve the problem of poor noise filtering effect and easy to destroy the details of crack edge in the process of the crack detection of the tunnel lining by traditional filtering algorithm. Firstly, the Gaussian noise and salt and pepper noise in the image are detected by comparing the gray value of the window target pixel with the weighted average gray value of the window, and then the difference between the gray value of the point pixel and the weighted average gray value of the window is used to detect the noise twice by setting a suitable threshold. Finally, the detected Gaussian and salt and pepper noise are filtered by Gaussian filtering and adaptive median filtering, respectively. The experimental results show that compared with the traditional filtering algorithm, the mean square error (MSE) of the proposed algorithm is the smallest, and the peak signal-to-noise ratio (PSNR) is the largest, and it has better performance in filtering noise and protecting the details of crack edge.
机译:提出了一种自适应中值-高斯滤波算法,解决了传统滤波算法在隧道衬砌裂缝检测中噪声滤波效果差,容易破坏裂缝边缘细节的问题。首先,通过将窗口目标像素的灰度值与窗口的加权平均灰度值进行比较,然后将点像素的灰度值与加权后的差值进行比较,来检测图像中的高斯噪声,盐和胡椒噪声窗口的平均灰度值用于通过设置适当的阈值两次检测噪声。最后,分别通过高斯滤波和自适应中值滤波对检测到的高斯噪声和椒盐噪声进行滤波。实验结果表明,与传统滤波算法相比,该算法的均方误差(MSE)最小,峰值信噪比(PSNR)最大,滤波性能更好。噪音和保护裂纹边缘的细节。

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