Fiber tracking based on diffusion weighted Magnetic Resonance Imaging (dMRI) allows for noninvasive reconstruction of fiber bundles in the human brain. In this chapter, we discuss sources of error and uncertainty in this technique, and review strategies that afford a more reliable interpretation of the results. This includes methods for computing and rendering probabilistic tractograms, which estimate precision in the face of measurement noise and artifacts. However, we also address aspects that have received less attention so far, such as model selection, partial voluming, and the impact of parameters, both in preprocessing and in fiber tracking itself. We conclude by giving impulses for future research
Diffusion-weighted (DW) magnetic resonance imaging allows the quantification of water diffusion with...
A powerful, non-invasive technique for estimating and visualizing white matter tracts in the human b...
Diffusion Tensor Imaging (DTI) and fiber tracking provide unique insight into the 3D structure of fi...
Fiber tracking based on diffusion weighted Magnetic Resonance Imaging (dMRI) allows for noninvasive ...
Fiber tracking based on diffusion weighted Magnetic Resonance Imaging (dMRI) allows for noninvasive ...
Fiber tracking based on diffusion weighted Magnetic Resonance Imaging (dMRI) allows for noninvasive ...
Diffusion tensor imaging (DTI) is an imaging technique based on magnetic resonance that describes, i...
Due to its unique sensitivity to tissue microstructure, one of the primary applications of diffusion...
Tractography is a non-invasive process for reconstruction, modelling and visualization of neural fib...
The ability of fiber tractography to delineate non-invasively the white matter fiber pathways of the...
This thesis presents the design and validation of a method for digitally reconstructing white matte...
This paper deals with the development of a new fiber tracking algorithm to be used with high resolut...
Purpose: Diffusion tensor imaging (DTI) enables in vivo reconstruction of white matter (WM) pathways...
Fiber tracking is a relatively recent methodology, made possible by access to new highly advanced MR...
Fiber tracking (FT) and quantification algorithms are approximations of reality due to limited spati...
Diffusion-weighted (DW) magnetic resonance imaging allows the quantification of water diffusion with...
A powerful, non-invasive technique for estimating and visualizing white matter tracts in the human b...
Diffusion Tensor Imaging (DTI) and fiber tracking provide unique insight into the 3D structure of fi...
Fiber tracking based on diffusion weighted Magnetic Resonance Imaging (dMRI) allows for noninvasive ...
Fiber tracking based on diffusion weighted Magnetic Resonance Imaging (dMRI) allows for noninvasive ...
Fiber tracking based on diffusion weighted Magnetic Resonance Imaging (dMRI) allows for noninvasive ...
Diffusion tensor imaging (DTI) is an imaging technique based on magnetic resonance that describes, i...
Due to its unique sensitivity to tissue microstructure, one of the primary applications of diffusion...
Tractography is a non-invasive process for reconstruction, modelling and visualization of neural fib...
The ability of fiber tractography to delineate non-invasively the white matter fiber pathways of the...
This thesis presents the design and validation of a method for digitally reconstructing white matte...
This paper deals with the development of a new fiber tracking algorithm to be used with high resolut...
Purpose: Diffusion tensor imaging (DTI) enables in vivo reconstruction of white matter (WM) pathways...
Fiber tracking is a relatively recent methodology, made possible by access to new highly advanced MR...
Fiber tracking (FT) and quantification algorithms are approximations of reality due to limited spati...
Diffusion-weighted (DW) magnetic resonance imaging allows the quantification of water diffusion with...
A powerful, non-invasive technique for estimating and visualizing white matter tracts in the human b...
Diffusion Tensor Imaging (DTI) and fiber tracking provide unique insight into the 3D structure of fi...