Anatomically Guided Motion Correction for Placental IVIM Parameter Estimation with Accelerated Sampling Method

Fuente: arXiv
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Main Authors: Ngremmadji, Mbaimou Auxence, Odille, Freddy, Bertholdt, Charline, Beaumont, Marine, Morel, Olivier, Chen, Bailiang
Format: Preprint
Published: 2025
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author Ngremmadji, Mbaimou Auxence
Odille, Freddy
Bertholdt, Charline
Beaumont, Marine
Morel, Olivier
Chen, Bailiang
author_facet Ngremmadji, Mbaimou Auxence
Odille, Freddy
Bertholdt, Charline
Beaumont, Marine
Morel, Olivier
Chen, Bailiang
contents Intravoxel incoherent motion (IVIM) is a diffusion-weighted magnetic resonance imaging (MRI) method that may be applied to the placenta to help diagnose abnormal pregnancies. IVIM requires prolonged scan times, followed by a model-based estimation procedure. Maternal or fetal motion during the scan affects the accuracy of this estimation. In this work, we proposed to address this challenging motion correction and data fitting problem by using additional anatomical information that is routinely collected at the beginning of the examination. Super-resolution reconstruction (SRR) was applied to these anatomical data, to provide a patient-specific, 3D isotropic, anatomic reference. Our first contribution is a novel framework with a two-step motion correction that uses both IVIM and the SRR anatomic data, accounting for both intra- and inter-scan, non-rigid motion. Our second contribution is an automation and acceleration of the IVIM data fitting, using a state-of-the-art Bayesian-type algorithm, modified with a preconditioned Crank-Nicholson (pCN) sampling strategy. The accuracy of the IVIM parameter fitting was improved by the proposed motion correction strategy, as assessed by the mean absolute fitting error in the region of interest, which was 4.14 before and 3.02 after correction (arbitrary units of signal intensity). The novel sampling strategy accelerated parameter estimation by 39% in average, with the same accuracy as that of the conventional Bayesian approach. In conclusion, the proposed method may be applied to obtain fast and reliable IVIM parameter estimates in challenging scenarios such as prenatal MRI.
format Preprint
id arxiv_https___arxiv_org_abs_2503_17468
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Anatomically Guided Motion Correction for Placental IVIM Parameter Estimation with Accelerated Sampling Method
Ngremmadji, Mbaimou Auxence
Odille, Freddy
Bertholdt, Charline
Beaumont, Marine
Morel, Olivier
Chen, Bailiang
Image and Video Processing
Signal Processing
Intravoxel incoherent motion (IVIM) is a diffusion-weighted magnetic resonance imaging (MRI) method that may be applied to the placenta to help diagnose abnormal pregnancies. IVIM requires prolonged scan times, followed by a model-based estimation procedure. Maternal or fetal motion during the scan affects the accuracy of this estimation. In this work, we proposed to address this challenging motion correction and data fitting problem by using additional anatomical information that is routinely collected at the beginning of the examination. Super-resolution reconstruction (SRR) was applied to these anatomical data, to provide a patient-specific, 3D isotropic, anatomic reference. Our first contribution is a novel framework with a two-step motion correction that uses both IVIM and the SRR anatomic data, accounting for both intra- and inter-scan, non-rigid motion. Our second contribution is an automation and acceleration of the IVIM data fitting, using a state-of-the-art Bayesian-type algorithm, modified with a preconditioned Crank-Nicholson (pCN) sampling strategy. The accuracy of the IVIM parameter fitting was improved by the proposed motion correction strategy, as assessed by the mean absolute fitting error in the region of interest, which was 4.14 before and 3.02 after correction (arbitrary units of signal intensity). The novel sampling strategy accelerated parameter estimation by 39% in average, with the same accuracy as that of the conventional Bayesian approach. In conclusion, the proposed method may be applied to obtain fast and reliable IVIM parameter estimates in challenging scenarios such as prenatal MRI.
title Anatomically Guided Motion Correction for Placental IVIM Parameter Estimation with Accelerated Sampling Method
topic Image and Video Processing
Signal Processing
url https://arxiv.org/abs/2503.17468