DocumentCode :
2184100
Title :
Automatic fiber tractography from DTI and its validation
Author :
Vemuri, B.C. ; Chen, Y. ; Rao, M. ; Wang, Z. ; McGraw, T. ; Mareci, T. ; Blackband, S.J. ; Reier, P.
Author_Institution :
Dept. of CISE, Florida Univ., Gainesville, FL, USA
fYear :
2002
fDate :
2002
Firstpage :
501
Lastpage :
504
Abstract :
To understand evolving pathology in the central nervous system (CNS) and develop effective treatments, it is essential to correlate the nerve fiber connectivity with the visualization of function. Such information is fundamental in CNS processes since anatomical connections determine where information is passed and processed Diffusion tensor imaging (DTI) can provide the fundamental information required for viewing structural connectivity. However robust and accurate acquisition and processing algorithms are needed to accurately map the nerve connectivity. In this paper we present a novel, algorithm for automatic fiber tract mapping in the CNS specifically, a rat spinal cord as well as validate the mapped fibers using ex-vivo fluoro images of the excised rat. The novelty of our work lies in the fiber tract mapping as well as the validation experiment. The automatic fiber tract mapping problem will be solved in two phases, namely a data smoothing phase and a fiber tract mapping phase. In the former smoothing is achieved via a new weighted TV-norm minimization which strives to smooth while retaining all relevant detail. For the fiber tract mapping, a smooth 3D vector field indicating the dominant anisotropic direction at each spatial location is computed from the smoothed data. Fiber tracts are then determined as the smooth integral curves of this vector field in a variational framework Examples are presented for DTI data sets from a normal and injured rat spinal cords respectively.
Keywords :
biodiffusion; biomedical MRI; brain; medical image processing; neurophysiology; smoothing methods; variational techniques; vectors; CNS; DTI; MR measurement; anatomical connections; automatic fiber tract mapping; automatic fiber tractography; brain; central nervous system; data smoothing phase; diffusion tensor imaging; dominant anisotropic direction; evolving pathology; ex-vivo fluoro images; excised rat; fiber tract mapping phase; function visualization; injured rat spinal cord; nerve fiber connectivity; normal rat spinal cord; smooth 3D vector field; smooth integral curves; spatial location; structural connectivity; variational framework; vector field; water translational self-diffusion; weighted TV-norm minimization; white matter fibers; Biochemistry; Diffusion tensor imaging; Mathematics; Neuroscience; Nonlinear equations; Organisms; Robustness; Smoothing methods; Tensile stress; Visualization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Imaging, 2002. Proceedings. 2002 IEEE International Symposium on
Print_ISBN :
0-7803-7584-X
Type :
conf
DOI :
10.1109/ISBI.2002.1029304
Filename :
1029304
Link To Document :
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