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It is important to determine the stable keypoints and select transformation models for image registration and mosaic. In this paper a method is presented for retinal image mosaic. Central to the new method is to detect the PCA-SIFT (Principal Components Analysis-Scale Invariant Feature Transform) feature and estimate the quadratic transformation model which is employed to simulate the anatomy of human eyes. The transformations models are estimated by matching PCA-SIFT landmarks. The hierachical notion is used to map the Inter-Image. The random sample consensus (RANSAC) is used to estimate the affine transformation model and remove exterior point. The quadratic is estimated by M-estimator. And the weighted mean is used to Stitch retinal images. The proposed approach can effectively realize the retinal image mosaic. ©2009 IEEE.
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Year: 2009
Language: English
Cited Count:
SCOPUS Cited Count: 13
ESI Highly Cited Papers on the List: 0 Unfold All
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30 Days PV: 1
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