Obtaining quantitative, 3D spatially-resolved T2 distributions (T2 maps) from magnetic resonance data is of importance in both medical and porous media applications. Due to the long acquisition time, there is considerable interest in accelerating the experiments by applying undersampling schemes during the acquisition and developing reconstruction techniques for obtaining the 3D T2 maps from the undersampled data. A multi-echo spin echo pulse sequence is used in this work to acquire the undersampled data according to two different sampling patterns: a conventional coherent sampling pattern where the same set of lines in k-space is sampled for all equally-spaced echoes in the echo train, and a proposed incoherent sampling pattern where an in...
The mapping of the spin-spin relaxation time T2 in pixel-by-pixel was suggested as a quantitative di...
Magnetic Resonance Imaging techniques such as Turbo Spin Echo (TSE) are routinely used in the clinic...
To realize Quantitative MRI (QMRI) with clinically acceptable scan time, acceleration factors achiev...
A model-based reconstruction technique for accelerated T2 mapping with improved accuracy is proposed...
The work presented in this dissertation involves the development of parametric magnetic resonance im...
Quantitative MRI (qMRI) provides accurate and direct information of biological or pathological chara...
Abstract—A model-based reconstruction technique for accel-erated T2 mapping with improved accuracy i...
Purpose High-resolution isotropic T-2 mapping of the human brain with multi-echo spin-echo (MESE) ac...
High-resolution isotropic T <sub>2</sub> mapping of the human brain with multi-echo spin...
Magnetic Resonance Imaging (MRI) is a medical imaging modality routinely used in the clinic to obtai...
In this thesis, signal sampling and processing techniques are developed for magnetic resonance appli...
Purpose: Magnetic resonance imaging protocols for the assessment of quantitative information suffer ...
Purpose: Multi-echo spin-echo sequence is commonly used for T2 mapping. The estimated values using c...
In magnetic resonance imaging (MRI), samples of the object's spectrum are measured in the spatial fr...
Purpose: To design a pulse sequence for efficient 3D T2-weighted imaging and T2 mapping. Methods: A ...
The mapping of the spin-spin relaxation time T2 in pixel-by-pixel was suggested as a quantitative di...
Magnetic Resonance Imaging techniques such as Turbo Spin Echo (TSE) are routinely used in the clinic...
To realize Quantitative MRI (QMRI) with clinically acceptable scan time, acceleration factors achiev...
A model-based reconstruction technique for accelerated T2 mapping with improved accuracy is proposed...
The work presented in this dissertation involves the development of parametric magnetic resonance im...
Quantitative MRI (qMRI) provides accurate and direct information of biological or pathological chara...
Abstract—A model-based reconstruction technique for accel-erated T2 mapping with improved accuracy i...
Purpose High-resolution isotropic T-2 mapping of the human brain with multi-echo spin-echo (MESE) ac...
High-resolution isotropic T <sub>2</sub> mapping of the human brain with multi-echo spin...
Magnetic Resonance Imaging (MRI) is a medical imaging modality routinely used in the clinic to obtai...
In this thesis, signal sampling and processing techniques are developed for magnetic resonance appli...
Purpose: Magnetic resonance imaging protocols for the assessment of quantitative information suffer ...
Purpose: Multi-echo spin-echo sequence is commonly used for T2 mapping. The estimated values using c...
In magnetic resonance imaging (MRI), samples of the object's spectrum are measured in the spatial fr...
Purpose: To design a pulse sequence for efficient 3D T2-weighted imaging and T2 mapping. Methods: A ...
The mapping of the spin-spin relaxation time T2 in pixel-by-pixel was suggested as a quantitative di...
Magnetic Resonance Imaging techniques such as Turbo Spin Echo (TSE) are routinely used in the clinic...
To realize Quantitative MRI (QMRI) with clinically acceptable scan time, acceleration factors achiev...