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Titel:

DeepMesh: Mesh-Based Cardiac Motion Tracking Using Deep Learning.

Dokumenttyp:
Journal Article
Autor(en):
Meng, Qingjie; Bai, Wenjia; O'Regan, Declan P; Rueckert, Daniel
Abstract:
3D motion estimation from cine cardiac magnetic resonance (CMR) images is important for the assessment of cardiac function and the diagnosis of cardiovascular diseases. Current state-of-the art methods focus on estimating dense pixel-/voxel-wise motion fields in image space, which ignores the fact that motion estimation is only relevant and useful within the anatomical objects of interest, e.g., the heart. In this work, we model the heart as a 3D mesh consisting of epi- and endocardial surfaces....     »
Zeitschriftentitel:
IEEE Trans Med Imaging
Jahr:
2024
Band / Volume:
43
Heft / Issue:
4
Seitenangaben Beitrag:
1489-1500
Volltext / DOI:
doi:10.1109/TMI.2023.3340118
PubMed:
http://view.ncbi.nlm.nih.gov/pubmed/38064325
Print-ISSN:
0278-0062
TUM Einrichtung:
Institut für KI und Informatik in der Medizin (Prof. Rückert)
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