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Anisotropic Mesh Adaptation for Image Representation

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Triangular meshes have gained much interest in image representation and have been widely used in image processing. This paper introduces a framework of anisotropic mesh adaptation (AMA) methods to image representation and proposes a GPRAMA method that is based on AMA and greedy-point removal (GPR) scheme. Different than many other methods that triangulate sample points to form the mesh, the AMA methods start directly with a triangular mesh and then adapt the mesh based on a user-defined metric tensor to represent the image. The AMA methods have clear mathematical framework and provides flexibility for both image representation and image reconstruction. A mesh patching technique is developed for the implementation of the GPRAMA method, which leads to an improved version of the popular GPRFS-ED method. The GPRAMA method can achieve better quality than the GPRFS-ED method but with lower computational cost.

Xianping Li• 2014

Related benchmarks

TaskDatasetResultRank
Image ReconstructionPeppers
PSNR (dB)34.88
186
Image RepresentationLena
CPU Time (s)0.4
42
Image RepresentationPeppers
CPU Time (s)0.38
42
Image ReconstructionLena
PSNR33.31
38
Image Mesh RepresentationLena
PSNR35.39
24
Mesh Quality Evaluationlighthouse
PSNR (dB)29.22
15
Mesh Quality Evaluationroof image
PSNR (dB)30.41
15
Mesh Quality Evaluationsaturn
PSNR (dB)49.77
15
Image RepresentationGolden Gate bridge
PSNR34.3
10
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