Optimization of Bloch-Siegert B1 Mapping Sequence for Maximum Signal to Noise

Fuente: arXiv
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Main Authors: Khalighi, M. Mehdi, Kelley, Doug, Su, Jason H., Rutt, Brian K., Kerr, Adam B.
Format: Preprint
Published: 2024
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author Khalighi, M. Mehdi
Kelley, Doug
Su, Jason H.
Rutt, Brian K.
Kerr, Adam B.
author_facet Khalighi, M. Mehdi
Kelley, Doug
Su, Jason H.
Rutt, Brian K.
Kerr, Adam B.
contents Adiabatic Bloch-Siegert B1+ mapping method addresses the long TE and high RF power deposition problems of conventional Bloch-Siegert B1+ mapping by introducing short frequency-swept ABS pulses with maximum sensitivity. Here, it is shown how maximum signal to noise ratio can be achieved in adiabatic Bloch-Siegert B1+ mapping. Signal to noise ratio of B1+ maps is maximized by optimizing the adiabatic pulse parameters such as width, amplitude and shape of the Bloch-Siegert pulse within a specified scan time and under approved SAR guidelines. Equations for optimized Bloch-Siegert pulse parameters are derived, which are dependent on the base pulse sequence used for B1+ mapping as well as tissue properties and transmit coil configuration. It is shown that by this optimization it is more efficient to increase TR rather than using the averaging method to increase signal to noise ratio.
format Preprint
id arxiv_https___arxiv_org_abs_2411_15709
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Optimization of Bloch-Siegert B1 Mapping Sequence for Maximum Signal to Noise
Khalighi, M. Mehdi
Kelley, Doug
Su, Jason H.
Rutt, Brian K.
Kerr, Adam B.
Quantitative Methods
Adiabatic Bloch-Siegert B1+ mapping method addresses the long TE and high RF power deposition problems of conventional Bloch-Siegert B1+ mapping by introducing short frequency-swept ABS pulses with maximum sensitivity. Here, it is shown how maximum signal to noise ratio can be achieved in adiabatic Bloch-Siegert B1+ mapping. Signal to noise ratio of B1+ maps is maximized by optimizing the adiabatic pulse parameters such as width, amplitude and shape of the Bloch-Siegert pulse within a specified scan time and under approved SAR guidelines. Equations for optimized Bloch-Siegert pulse parameters are derived, which are dependent on the base pulse sequence used for B1+ mapping as well as tissue properties and transmit coil configuration. It is shown that by this optimization it is more efficient to increase TR rather than using the averaging method to increase signal to noise ratio.
title Optimization of Bloch-Siegert B1 Mapping Sequence for Maximum Signal to Noise
topic Quantitative Methods
url https://arxiv.org/abs/2411.15709