Title :
Diffeomorphic Brain Registration Under Exhaustive Sulcal Constraints
Author :
Auzias, Guillaume ; Colliot, Olivier ; Glaunés, Joan Alexis ; Perrot, Matthieu ; Mangin, Jean-François ; Trouvé, Alain ; Baillet, Sylvain
fDate :
6/1/2011 12:00:00 AM
Abstract :
The alignment and normalization of individual brain structures is a prerequisite for group-level analyses of structural and functional neuroimaging data. The techniques currently available are either based on volume and/or surface attributes, with limited insight regarding the consistent alignment of anatomical landmarks across individuals. This article details a global, geometric approach that performs the alignment of the exhaustive sulcal imprints (cortical folding patterns) across individuals. This DIffeomorphic Sulcal-based COrtical (DISCO) technique proceeds to the automatic extraction, identification and simplification of sulcal features from T1-weighted Magnetic Resonance Image (MRI) series. These features are then used as control measures for fully-3-D diffeomorphic deformations. Quantitative and qualitative evaluations show that DISCO correctly aligns the sulcal folds and gray and white matter volumes across individuals. The comparison with a recent, iconic diffeomorphic approach (DARTEL) highlights how the absence of explicit cortical landmarks may lead to the misalignment of cortical sulci. We also feature DISCO in the automatic design of an empirical sulcal template from group data. We also demonstrate how DISCO can efficiently be combined with an image-based deformation (DARTEL) to further improve the consistency and accuracy of alignment performances. Finally, we illustrate how the optimized alignment of cortical folds across subjects improves sensitivity in the detection of functional activations in a group-level analysis of neuroimaging data.
Keywords :
biomedical MRI; brain; computational geometry; feature extraction; image registration; medical image processing; 3D diffeomorphic deformations; DARTEL comparison; DISCO technique; T1 weighted MRI series; anatomical landmark alignment; automatic sulcal feature extraction; automatic sulcal feature identification; automatic sulcal feature simplification; brain structure alignment; brain structure normalization; cortical folding patterns; diffeomorphic brain registration; diffeomorphic sulcal based cortical technique; exhaustive sulcal constraints; functional neuroimaging data; global geometric approach; gray matter volume; image based deformation; magnetic resonance image series; structural neuroimaging data; sulcal folds; surface attributes; volume attributes; white matter volume; Brain; Kernel; Labeling; Neuroimaging; Shape; Three dimensional displays; Transforms; Computational neuroanatomy; diffeomorphic transformation; functional magnetic resonance imaging (FMRI); functional neuroimaging; magnetic resonance image (MRI); sulcus and folds; volume and surface registration; Algorithms; Cerebral Cortex; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Magnetic Resonance Imaging; Pattern Recognition, Automated; Reproducibility of Results; Sensitivity and Specificity; Subtraction Technique;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2011.2108665