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Updated: Jul 1, 2026

Noninvasive In Vivo Small Animal MRI and MRS: Basic Experimental Procedures
Published on: October 20, 2009
Motion correction for PET data using subspace-based real-time MR imaging in simultaneous PET/MR
Thibault Marin1,2,3, Yanis Djebra1,2,4,3, Paul K Han1,2
1Gordon Center for Medical Imaging, Department of Radiology, Massachusetts General Hospital, Boston MA, 02114, United States of America.
Abstract:
Image quality of positron emission tomography (PET) reconstructions is degraded by subject motion occurring during the acquisition. Magnetic resonance (MR)-based motion correction approaches have been studied for PET/MR scanners and have been successful at capturing regular motion patterns, when used in conjunction with surrogate signals (e.g. navigators) to detect motion. However, handling irregular respiratory motion and bulk motion remains challenging. In this work, we propose an MR-based motion correction method relying on subspace-based real-time MR imaging to estimate motion fields used to correct PET reconstructions. We take advantage of the low-rank characteristics of dynamic MR images to reconstruct high-resolution MR images at high frame rates from highly undersampled k-space data. Reconstructed dynamic MR images are used to determine motion phases for PET reconstruction and estimate phase-to-phase nonrigid motion fields able to capture complex motion patterns such as irregular respiratory and bulk motion. MR-derived binning and motion fields are used for PET reconstruction to generate motion-corrected PET images. The proposed method was evaluated on in vivo data with irregular motion patterns. MR reconstructions accurately captured motion, outperforming state-of-the-art dynamic MR reconstruction techniques. Evaluation of PET reconstructions demonstrated the benefits of the proposed method in terms of motion artifacts reduction, improving the contrast-to-noise ratio by up to a factor 3 and achieveing a target-to-background ratio up to 90% superior compared to standard/uncorrected methods. The proposed method can improve the image quality of motion-corrected PET reconstructions in clinical applications.
Insights
This study introduces a new magnetic resonance (MR)-based method for correcting patient motion during positron emission tomography (PET) scans. The technique significantly reduces motion artifacts, enhancing image quality for better clinical diagnoses.
Area of Science:
- Medical Imaging
- Physics
- Computer Science
Background:
- Patient motion during positron emission tomography (PET) scans degrades image quality.
- Current magnetic resonance (MR)-based motion correction methods struggle with irregular and bulk motion patterns.
Purpose of the Study:
- To develop and evaluate an MR-based motion correction method for PET imaging using real-time MR imaging.
- To improve the accuracy and quality of PET reconstructions in the presence of complex patient motion.
Main Methods:
- Utilized subspace-based real-time MR imaging to reconstruct high-resolution dynamic MR images from undersampled k-space data.
- Estimated phase-to-phase nonrigid motion fields from dynamic MR images to capture complex motion patterns.
- Applied MR-derived motion fields for PET reconstruction to generate motion-corrected images.
Main Results:
- The proposed MR reconstruction accurately captured irregular motion, outperforming existing dynamic MR techniques.
- PET reconstructions showed significant reduction in motion artifacts, with contrast-to-noise ratio improved by up to 3x.
- Achieved up to 90% superior target-to-background ratio compared to uncorrected methods.
Conclusions:
- The developed MR-based motion correction method effectively addresses challenges posed by irregular and bulk motion in PET/MR imaging.
- This technique has the potential to significantly improve image quality and diagnostic accuracy in clinical PET applications.

