DocumentCode
1936224
Title
A Robust Feature-Based Method for Mosaic of the Curved Human Color Retinal Images
Author
Li Jupeng ; Chen Houjin ; Yao Chang ; Zhang Xinyuan
Author_Institution
Sch. of Electron. & Inf. Eng., Beijing Jiaotong Univ., Beijing
Volume
1
fYear
2008
fDate
27-30 May 2008
Firstpage
845
Lastpage
849
Abstract
Accurate registration is essential for montage synthesis, change detection, and design of computer-aided instrumentation. This paper describes a robust local feature-based for automatic mosaic of the curved human color retinal images. The kernel of this method is the m space scale invariant feature transform (mSIFT). The mSIFT algorithm is designed to overcome the SIFT´s drawback that detects less features in the flat regions. Using the mSIFT algorithm, second-nearest-neighbor strategy, inlier identification, bilinear warping and multi-blending techniques, pairs of the curved color retinal images can be mosaicked to create panoramic images. Experiments show that the proposed method works well with the rejection error in 0.2 pixels, even for these cases where the retinal images without enough discernable structures, in contrast to the state-of-the-art algorithms.
Keywords
eye; image colour analysis; image registration; image segmentation; medical image processing; bilinear warping; change detection; computer-aided instrumentation; curved human color retinal images; image mosaic; image registration; inlier identification; m space scale invariant feature transform; montage synthesis; multiblending techniques; robust feature-based method; second-nearest-neighbor strategy; Bifurcation; Biomedical engineering; Biomedical informatics; Cameras; Diseases; Humans; Pathology; Retina; Robustness; Surface treatment; Image Mosaic; Local Feature; Retinal Image; mSIFT;
fLanguage
English
Publisher
ieee
Conference_Titel
BioMedical Engineering and Informatics, 2008. BMEI 2008. International Conference on
Conference_Location
Sanya
Print_ISBN
978-0-7695-3118-2
Type
conf
DOI
10.1109/BMEI.2008.76
Filename
4548790
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