Background. The 3D T1W turbo field echo sequence is a standard imaging method for acquiring high-contrast images of the brain. However, the contrast-to-noise ratio (CNR) can be affected by the turbo factor, which could affect the delineation and segmentation of various structures in the brain and may consequently lead to misdiagnosis. This study is aimed at evaluating the effect of the turbo factor on image quality and volumetric measurement reproducibility in brain magnetic resonance imaging (MRI). Methods. Brain images of five healthy volunteers with no history of neurological diseases were acquired on a 1.5 T MRI scanner with varying turbo factors of 50, 100, 150, 200, and 225. The images were processed and analyzed with FreeSurfer. The ...
Introduction: The received bandwidth parameter is a parameter affecting the value of Signal to Noise...
Introduction: Regional and global brain volumes are of great interest in many different research pro...
International audienceObjective Automated brain volumetric analysis based on high-resolution T1-weig...
Turbo factor is the number of rephasing 180? pulses that will fill the space in each TR used in the ...
Turbo Faktor is the number of 180? pulses that will fill the line in K-Space on each TR. The use of ...
To compare a turbo-FLAIR sequence with Proton Density (PD) and T2- weighted Turbo Spin-Echo (TSE) se...
BACKGROUND AND PURPOSE: Hyperecho-turbo spin-echo (hyperTSE) sequences were developed to reduce the ...
Purpose: Diffuse axonal injury (DAI) is a common type of primary neuronal injury in patients with se...
Purpose To optimize the spatial response function (SRF) while maintaining optimal signal to noise ra...
Background: TSE factor is parameters that affect Signal to Noise Ratio (SNR) and Contrast to Noise R...
PurposeAlthough three-dimensional (3D) turbo spin echo (TSE) with variable flip angles has proven to...
OBJECTIVE The aim of this study was to compare quantitative and semiquantitative parameters (sign...
Purpose Relaxation times, transmit homogeneity, signal-to-noise ratio (SNR) and parallel imaging g-f...
Purpose To compare image quality between a 2D T1w turbo spin echo (TSE) sequence and a Compressed S...
The thickness of the human cerebral cortex, which provides valuable information in the studies of no...
Introduction: The received bandwidth parameter is a parameter affecting the value of Signal to Noise...
Introduction: Regional and global brain volumes are of great interest in many different research pro...
International audienceObjective Automated brain volumetric analysis based on high-resolution T1-weig...
Turbo factor is the number of rephasing 180? pulses that will fill the space in each TR used in the ...
Turbo Faktor is the number of 180? pulses that will fill the line in K-Space on each TR. The use of ...
To compare a turbo-FLAIR sequence with Proton Density (PD) and T2- weighted Turbo Spin-Echo (TSE) se...
BACKGROUND AND PURPOSE: Hyperecho-turbo spin-echo (hyperTSE) sequences were developed to reduce the ...
Purpose: Diffuse axonal injury (DAI) is a common type of primary neuronal injury in patients with se...
Purpose To optimize the spatial response function (SRF) while maintaining optimal signal to noise ra...
Background: TSE factor is parameters that affect Signal to Noise Ratio (SNR) and Contrast to Noise R...
PurposeAlthough three-dimensional (3D) turbo spin echo (TSE) with variable flip angles has proven to...
OBJECTIVE The aim of this study was to compare quantitative and semiquantitative parameters (sign...
Purpose Relaxation times, transmit homogeneity, signal-to-noise ratio (SNR) and parallel imaging g-f...
Purpose To compare image quality between a 2D T1w turbo spin echo (TSE) sequence and a Compressed S...
The thickness of the human cerebral cortex, which provides valuable information in the studies of no...
Introduction: The received bandwidth parameter is a parameter affecting the value of Signal to Noise...
Introduction: Regional and global brain volumes are of great interest in many different research pro...
International audienceObjective Automated brain volumetric analysis based on high-resolution T1-weig...