DocumentCode :
3558644
Title :
Registration and statistical analysis of PET images using the wavelet transform
Author :
Unser, Michael ; Thevenaz, Philippe ; Lee, Chulhee ; Ruttimann, Urs E.
Author_Institution :
Dept. of Biomed. Eng., Nat. Inst. of Health, Bethesda, MD, USA
Volume :
14
Issue :
5
fYear :
1995
Firstpage :
603
Lastpage :
611
Abstract :
We have described a general procedure for the processing and analysis of PET data. We have used the multiresolution framework of the wavelet transform to derive new solutions for the two main processing steps. The first task was to align the various brain images using a general affine deformation model. Our registration procedure uses a continuous polynomial spline image model and takes advantage of the multiresolution structure of the underlying function spaces. This method implements a nonlinear least squares optimization technique with a coarse-to-fine iteration strategy that substantially improves the overall performance of the algorithm. The second task was to analyze the series of registered images and to detect the between group differences in metabolic brain activity. We chose to take advantage of the orthogonality and localization properties of the wavelet transform. Our approach was to apply this transform to the group-difference image and identify the wavelet channels that are globally significantly different from noise
Keywords :
approximation theory; brain; image registration; image resolution; iterative methods; least squares approximations; medical image processing; polynomials; positron emission tomography; splines (mathematics); statistical analysis; wavelet transforms; PET images; brain images; coarse-to-fine iteration strategy; continuous polynomial spline image model; function spaces; general affine deformation model; group-difference image; image registration; localization properties; metabolic brain activity; multiresolution framework; noise; nonlinear least squares optimization technique; orthogonality; statistical analysis; wavelet channels; wavelet transform; Brain modeling; Continuous wavelet transforms; Data analysis; Deformable models; Image resolution; Polynomials; Positron emission tomography; Spline; Statistical analysis; Wavelet transforms;
fLanguage :
English
Journal_Title :
Engineering in Medicine and Biology Magazine, IEEE
Publisher :
ieee
ISSN :
0739-5175
Type :
jour
DOI :
10.1109/51.464777
Filename :
464777
Link To Document :
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