Title of article :
Improving Image Inpainting based on Structure and Texture Information Using Quadtree
Author/Authors :
Peyvandi, K Computer and Electrical Engineering Department - Semnan University, Semnan, Iran , Yaghmaee, F Computer and Electrical Engineering Department - Semnan University, Semnan, Iran
Pages :
9
From page :
940
To page :
948
Abstract :
In this paper, we present a novel and efficient algorithm for image inpainting based on the structure and texture components. In our method, after decomposing the image into its texture and structure components using Principal Component Analysis (PCA), these components are inpainted separately using the proposed algorithm. Finally, the inpainted image is simply acquired by adding the two inpainted images. For structure inpainting we used quadtree concept to identify the importance of each pixel located on the boundary of the target region. Subsequently, we detect the correct path for filling so that this path demonstrates an orientation for the better structure inpainting. It is noteworthy that structure inpainting is more important because human vision is sensitive to the coherence of structure. For texture inpainting, we use Euclidean distance in the texture component for patch selection. Also, the geometric feature is considered by Local Steering Kernel (LSK) in the original image to assist chooing a better patch candidate. The experimental results of our algorithm demonstrate the effectiveness of the proposed method.
Keywords :
Image Inpainting , Image Decomposition , Principal Component Analysis , Quad Tree , Local Steering Kernel , Structure , Texture
Journal title :
International Journal of Engineering
Serial Year :
2020
Record number :
2703603
Link To Document :
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