DocumentCode :
4772
Title :
Robust L_{2}E Estimation of Transformation for Non-Rigid Registration
Author :
Jiayi Ma ; Weichao Qiu ; Ji Zhao ; Yong Ma ; Yuille, Alan L. ; Zhuowen Tu
Author_Institution :
Electron. Inf. Sch., Wuhan Univ., Wuhan, China
Volume :
63
Issue :
5
fYear :
2015
fDate :
1-Mar-15
Firstpage :
1115
Lastpage :
1129
Abstract :
We introduce a new transformation estimation algorithm using the L2E estimator and apply it to non-rigid registration for building robust sparse and dense correspondences. In the sparse point case, our method iteratively recovers the point correspondence and estimates the transformation between two point sets. Feature descriptors such as shape context are used to establish rough correspondence. We then estimate the transformation using our robust algorithm. This enables us to deal with the noise and outliers which arise in the correspondence step. The transformation is specified in a functional space, more specifically a reproducing kernel Hilbert space. In the dense point case for nonrigid image registration, our approach consists of matching both sparsely and densely sampled SIFT features, and it has particular advantages in handling significant scale changes and rotations. The experimental results show that our approach greatly outperforms state-of-the-art methods, particularly when the data contains severe outliers.
Keywords :
Hilbert spaces; estimation theory; feature extraction; image matching; image registration; dense correspondences; densely sampled SIFT features; feature descriptors; functional space; image matching; kernel Hilbert space; nonrigid image registration; robust L2E estimation; robust sparse; shape context; sparse point case; sparsely sampled SIFT features; state-of-the-art methods; transformation estimation; Estimation; Feature extraction; Image registration; Kernel; Robustness; Shape; Signal processing algorithms; $L_{2}E$ estimator; Dense correspondence; non-rigid; outlier; registration; regularization;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2014.2388434
Filename :
7001713
Link To Document :
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