DocumentCode
1131168
Title
Functional MRI activity characterization using response time shift estimates from curve evolution
Author
Desai, Mukund ; Mangoubi, Rami ; Shah, Jayant ; Karl, William ; Pien, Homer ; Worth, Andrew ; Kennedy, David
Author_Institution
C. S. Draper Lab., Cambridge, MA, USA
Volume
21
Issue
11
fYear
2002
Firstpage
1402
Lastpage
1412
Abstract
Characterizing the response of the brain to a stimulus based on functional magnetic resonance imaging data is a major challenge due to the fact that the response time delay of the brain may be different from one stimulus phase to the next and from pixel to pixel. To enhance detectability, this work introduces the use of a curve evolution approach that provides separate estimates of the response time shifts at each phase of the stimulus on a pixel-by-pixel basis. The approach relies on a parsimonious but simple model that is nonlinear in the time shifts of the response relative to the stimulus and linear in the gains. To effectively use the response time shift estimates in a subspace detection framework, we implement a robust hypothesis test based on a Laplacian noise model. The algorithm provides a pixel-by-pixel functional characterization of the brain´s response. The results based on experimental data show that response time shift estimates, when properly implemented, enhance detectability without sacrificing robustness.
Keywords
biomedical MRI; brain; matched filters; medical image processing; Laplacian noise model; brain response time delay; curve evolution approach; functional MRI activity characterization; magnetic resonance imaging; medical diagnostic imaging; pixel-by-pixel functional characterization; response time shifts; robust hypothesis test; subspace detection framework; Delay effects; Delay estimation; Hospitals; Humans; Magnetic noise; Magnetic resonance imaging; Noise robustness; Phase estimation; Pixel; Testing; Adult; Algorithms; Brain; Brain Mapping; Evoked Potentials; Evoked Potentials, Visual; Humans; Image Enhancement; Magnetic Resonance Imaging; Male; Models, Neurological; Neurons; Quality Control; Reaction Time; Reproducibility of Results; Sensitivity and Specificity; Stochastic Processes;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/TMI.2002.806419
Filename
1175089
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