Journal Article DZNE-2025-00566

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Rapid prospective motion correction using free induction decay and stationary field probe navigators at 7T.

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2025
Wiley-Liss New York, NY [u.a.]

Magnetic resonance in medicine 94(1), 105 - 118 () [10.1002/mrm.30441]

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Abstract: MR-based FID navigators (FIDnavs) do not require gradient pulses and are attractive for prospective motion correction (PMC) due to short acquisition times and high sampling rates. However, accuracy and precision are limited and depend on a separate calibration measurement. Besides FIDnavs, stationary NMR field probes are also capable of measuring local, motion-induced field changes. In this work, a linear model is calibrated between field probe data and motion parameters analog to FIDnav calibration and both tracking methods are compared and combined for PMC.FIDnavs and field probe navigators were implemented in a fast 3D-EPI sequence and calibrated by a linear model to realignment motion parameters of the 3D-EPI time series. A workflow was established to correct head motion prospectively by FIDnavs, field probe navigators or a combination of both. Large motions were instructed to test the accuracy and the impact on image quality in 1 mm 3 $$ 1\kern0.1667em {\mathrm{mm}}^3 $$ EPI data.In a group of five subjects, FIDnavs demonstrated approximately doubled accuracy and precision in comparison with field probe navigators for large motions, especially nodding motions were tracked less accurately by field probes. A combination of both methods could not improve the accuracy consistently. Motion artifacts in high-resolution data were reduced similarly by both PMC methods, although artifacts remained due to susceptibility-induced B0 changes.Stationary field probe navigators can be calibrated equivalently as FIDnavs and enable rapid PMC of large and fast motions. Although they reveal decreased accuracy, their contrast-independence facilitates the potential insertion into many sequences.

Keyword(s): Humans (MeSH) ; Motion (MeSH) ; Algorithms (MeSH) ; Imaging, Three-Dimensional: methods (MeSH) ; Calibration (MeSH) ; Echo-Planar Imaging: methods (MeSH) ; Brain: diagnostic imaging (MeSH) ; Image Processing, Computer-Assisted: methods (MeSH) ; Head: diagnostic imaging (MeSH) ; Phantoms, Imaging (MeSH) ; Reproducibility of Results (MeSH) ; Male (MeSH) ; Artifacts (MeSH) ; Adult (MeSH) ; Female (MeSH) ; Magnetic Resonance Imaging: methods (MeSH) ; 3D‐EPI ; FID navigators ; NMR field probes ; prospective motion correction

Classification:

Contributing Institute(s):
  1. MR Physics (AG Stöcker)
Research Program(s):
  1. 354 - Disease Prevention and Healthy Aging (POF4-354) (POF4-354)

Appears in the scientific report 2025
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Medline ; Creative Commons Attribution CC BY 4.0 ; OpenAccess ; BIOSIS Previews ; Biological Abstracts ; Clarivate Analytics Master Journal List ; Current Contents - Clinical Medicine ; Current Contents - Life Sciences ; DEAL Wiley ; Essential Science Indicators ; NationallizenzNationallizenz ; SCOPUS ; Science Citation Index Expanded ; Web of Science Core Collection
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 Record created 2025-04-28, last modified 2026-03-10


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