scholarly journals Content-Based Guided Image Filtering, Weighted Semi-Global Optimization, and Efficient Disparity Refinement for Fast and Accurate Disparity Estimation

2016 ◽  
Vol 18 (2) ◽  
pp. 155-170 ◽  
Author(s):  
Georgios A. Kordelas ◽  
Dimitrios S. Alexiadis ◽  
Petros Daras ◽  
Ebroul Izquierdo
2018 ◽  
Vol 65 (2) ◽  
pp. 606-617 ◽  
Author(s):  
Charan Kumar Vala ◽  
Koushik Immadisetty ◽  
Amit Acharyya ◽  
Charles Leech ◽  
Vibishna Balagopal ◽  
...  

2021 ◽  
Vol 0 (0) ◽  
Author(s):  
Tianyi Wang ◽  
Chengxiang Wang ◽  
Kequan Zhao ◽  
Wei Yu ◽  
Min Huang

Abstract Limited-angle computed tomography (CT) reconstruction problem arises in some practical applications due to restrictions in the scanning environment or CT imaging device. Some artifacts will be presented in image reconstructed by conventional analytical algorithms. Although some regularization strategies have been proposed to suppress the artifacts, such as total variation (TV) minimization, there is still distortion in some edge portions of image. Guided image filtering (GIF) has the advantage of smoothing the image as well as preserving the edge. To further improve the image quality and protect the edge of image, we propose a coupling method, that combines ℓ 0 {\ell_{0}} gradient minimization and GIF. An intermediate result obtained by ℓ 0 {\ell_{0}} gradient minimization is regarded as a guidance image of GIF, then GIF is used to filter the result reconstructed by simultaneous algebraic reconstruction technique (SART) with nonnegative constraint. It should be stressed that the guidance image is dynamically updated as the iteration process, which can transfer the edge to the filtered image. Some simulation and real data experiments are used to evaluate the proposed method. Experimental results show that our method owns some advantages in suppressing the artifacts of limited angle CT and in preserving the edge of image.


2018 ◽  
Vol 38 (2) ◽  
pp. 0204004
Author(s):  
赵东 Zhao Dong ◽  
周慧鑫 Zhou Huixin ◽  
秦翰林 Qin Hanlin ◽  
钱琨 Qian Kun ◽  
荣生辉 Rong Shenghui ◽  
...  

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