Median filtering method and device
A median and median technology, applied in the field of median filtering methods and devices, can solve the problems of easy loss of image details, diffuse image edges and noise, etc., so as to maintain and optimize image edges, denoising capabilities and edge retention capabilities. , the effect of good image edges
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Embodiment 1
[0071] In the embodiment of the present invention, the value of T in formula 10 is 0, which is equivalent to that the weighted summation result is equal to the median value of the pixel values of the first category corresponding to the median value of the weight value of the second category.
[0072] The embodiment of the present invention is the application of the present invention in depth map filtering enhancement, and the resolution of the input image is 121×166. The filtering process uses a fixed 9×9 window neighborhood. When the value of ε is 5, the similarity value of the second type of pixel value is calculated by formula 1. When the value of λ is 0.05, the pixel distance attenuation factor is calculated by formula 4. Use Formula 5 to calculate the second-type weight of each pixel in the neighborhood. When α is 0.5, use Formula 6 to calculate the median value of the second-type weight. When T is 0, use Formula 7 to calculate the weight For the summation value, when t...
Embodiment 2
[0075] The embodiment of the present invention is an application example of the present invention on one-dimensional digital baseband signal filtering, and the sampling length of the input image is 200. The filtering process uses a 1×9 fixed window neighborhood. When the value of ε is 0.02, the similarity value of the second type of pixel value is calculated by formula 1. When the value of λ is 0, the pixel distance attenuation factor is calculated by formula 4. Formula 5 calculates the second-type weight of each pixel in the neighborhood. When α is 0.5, use formula 6 to calculate the median value of the second-type weight. When T is 0.2, use formula 7 to calculate the weighted value and value, when the value of σ is 0.1, formula 8 is used to calculate the first type weight value of each pixel in the neighborhood, and formula 9 is used to calculate the first type pixel value filter output.
[0076] In the embodiment of the present invention, such as figure 2 As shown, the id...
Embodiment 3
[0078] The embodiment of the present invention is an application example of the present invention in image fusion, and the input image is a 512×512 resolution, 3-channel RGB color image. The filtering process adopts a fixed 17×17 window neighborhood. When the value of ε is 0.03, the similarity value of the second type of pixel value is calculated by formula 1. When the value of λ is 0, the pixel distance attenuation factor is calculated by formula 4. Use Formula 5 to calculate the second-type weight of each pixel in the neighborhood. When α is 0.5, use Formula 6 to calculate the median value of the second-type weight. When T is 0, use Formula 7 to calculate the weight For the summation value, when the value of σ is 0.1, formula 8 is used to calculate the first-type weight value of each pixel in the neighborhood, and formula 9 is used to calculate the first-type pixel value filter output. The three channels of the image are filtered separately.
[0079]The ideal output image i...
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