Modelling an equivalent b-value in diffusion-weighted steady-state free precession
Benjamin C. Tendler, Sean Foxley, Michiel Cottaar, Saad Jbabdi and, Karla Miller

TL;DR
This paper introduces a framework to define an effective b-value in diffusion-weighted steady-state free precession (DW-SSFP) imaging, enabling the probing of non-Gaussian diffusion properties through flip angle manipulation and modeling.
Contribution
The authors develop a novel theoretical model and experimental validation for estimating an effective b-value in DW-SSFP, accounting for non-Gaussian diffusion effects.
Findings
Monte-Carlo simulations show excellent agreement with DW-SE ADC estimates.
Experimental data demonstrate ADC variation with flip angle in post-mortem brain.
The framework allows non-Gaussian diffusion characterization using DW-SSFP.
Abstract
Purpose: Diffusion-weighted steady-state free precession (DW-SSFP) is shown to provide a means to probe non-Gaussian diffusion through manipulation of the flip angle. A framework is presented to define an effective b-value in DW-SSFP. Theory: The DW-SSFP signal is a summation of coherence pathways with different b-values. The relative contribution of each pathway is dictated by the flip angle. This leads to an apparent diffusion coefficient (ADC) estimate that depends on the flip angle in non-Gaussian diffusion regimes. By acquiring DW-SSFP data at multiple flip angles and modelling the variation in ADC for a given form of non-Gaussianity, the ADC can be estimated at a well-defined effective b-value. Methods: A gamma distribution is used to model non-Gaussian diffusion, embedded in the Buxton signal model for DW-SSFP. Monte-Carlo simulations of non-Gaussian diffusion in DW-SSFP and…
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Taxonomy
TopicsAdvanced Neuroimaging Techniques and Applications · NMR spectroscopy and applications · Advanced MRI Techniques and Applications
