DocumentCode :
2363013
Title :
Learning an atlas from unlabeled point-sets
Author :
Chui, Haili ; Rangarajan, Anand
Author_Institution :
Med. Imaging Group, R2 Tech., Los Altos, CA, USA
fYear :
2001
fDate :
2001
Firstpage :
179
Lastpage :
186
Abstract :
One of the key challenges in deformable shape modeling is the problem of estimating a meaningful average or mean shape from a set of unlabeled shapes. We present a new joint clustering and matching algorithm that is capable of computing such a mean shape from multiple shape samples which are represented by unlabeled point-sets. An iterative bootstrap process is used wherein multiple shape sample point-sets are non-rigidly deformed to the emerging mean shape, with subsequent estimation of the mean shape based on these non-rigid alignments. The process is entirely symmetric with no bias toward any of the original shape sample point-sets. We believe that this method can be especially useful for creating atlases of various shapes present in medical images. We have applied the method to create a mean shape from nine hand-segmented 2D corpus callosum data sets
Keywords :
brain; covariance analysis; covariance matrices; image matching; image segmentation; iterative methods; medical image processing; pattern clustering; 2D corpus callosum data; atlas learning; automated segmentation tools; brain images; cost function; covariance matrix; deformable shape modeling; feature extraction; independent component analysis; intrinsic curve parameterization; iterative bootstrap process; joint clustering and matching algorithm; mean shape; meaningful average shape; medical images; multiple shape samples; statistical shape analysis; unlabeled point-sets; Active shape model; Biomedical imaging; Clustering algorithms; Covariance matrix; Deformable models; Image segmentation; Independent component analysis; Iterative algorithms; Shape measurement; Statistical analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mathematical Methods in Biomedical Image Analysis, 2001. MMBIA 2001. IEEE Workshop on
Conference_Location :
Kauai, HI
Print_ISBN :
0-7695-1336-0
Type :
conf
DOI :
10.1109/MMBIA.2001.991732
Filename :
991732
Link To Document :
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