An Evolutionary Framework for Microstructure-Sensitive Generalized Diffusion Gradient Waveforms

Raphaël Truffet*, Jonathan Rafael-Patino, Gabriel Girard, Marco Pizzolato, Christian Barillot, Jean Philippe Thiran, Emmanuel Caruyer

*Corresponding author af dette arbejde
2 Citationer (Scopus)

Abstract

In diffusion-weighted MRI, general gradient waveforms became of interest for their sensitivity to microstructure features of the brain white matter. However, the design of such waveforms remains an open problem. In this work, we propose a framework for generalized gradient waveform design with optimized sensitivity to selected microstructure features. In particular, we present a rotation-invariant method based on a genetic algorithm to maximize the sensitivity of the signal to the intra-axonal volume fraction. The sensitivity is evaluated by computing a score based on the Fisher information matrix from Monte-Carlo simulations, which offer greater flexibility and realism than conventional analytical models. As proof of concept, we show that the optimized waveforms have higher scores than the conventional pulsed-field gradients experiments. Finally, the proposed framework can be generalized to optimize the waveforms for to any microstructure feature of interest.

OriginalsprogEngelsk
TitelMedical Image Computing and Computer Assisted Intervention – MICCAI 2020 - 23rd International Conference, Proceedings
RedaktørerAnne L. Martel, Purang Abolmaesumi, Danail Stoyanov, Diana Mateus, Maria A. Zuluaga, S. Kevin Zhou, Daniel Racoceanu, Leo Joskowicz
Antal sider10
ForlagSpringer Science and Business Media Deutschland GmbH
Publikationsdato29 sep. 2020
Sider94-103
ISBN (Trykt)9783030597122
DOI
StatusUdgivet - 29 sep. 2020
Begivenhed23rd International Conference on Medical Image Computing and Computer-Assisted Intervention, MICCAI 2020 - Lima, Peru
Varighed: 4 okt. 20208 okt. 2020

Konference

Konference23rd International Conference on Medical Image Computing and Computer-Assisted Intervention, MICCAI 2020
Land/OmrådePeru
ByLima
Periode04/10/202008/10/2020
NavnLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Vol/bind12262 LNCS
ISSN0302-9743

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