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Titel:

Self-Supervised Motion-Corrected Image Reconstruction Network for 4D Magnetic Resonance Imaging of the Body Trunk

Dokumenttyp:
Article
Autor(en):
Kuestner, Thomas; Pan, Jiazhen; Gilliam, Christopher; Qi, Haikun; Cruz, Gastao; Hammernik, Kerstin; Blu, Thierry; Rueckert, Daniel; Botnar, Rene; Prieto, Claudia; Gatidis, Sergios
Abstract:
Respiratory motion can cause artifacts in magnetic resonance imaging of the body trunk if patients cannot hold their breath or triggered acquisitions are not practical. Retrospective correction strategies usually cope with motion by fast imaging sequences under free-movement conditions followed by motion binning based on motion traces. These acquisitions yield sub-Nyquist sampled and motion-resolved k-space data. Motion states are linked to each other by non-rigid deformation fields. Usually, mo...     »
Zeitschriftentitel:
APSIPA Trans. Signal Inf. Proc.
Jahr:
2022
Band / Volume:
11
Heft / Issue:
1
Volltext / DOI:
doi:10.1561/116.00000039
Print-ISSN:
2048-7703
TUM Einrichtung:
Institut für KI und Informatik in der Medizin (Prof. Rückert)
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