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Titel:

Automated imaging-based abdominal organ segmentation and quality control in 20,000 participants of the UK Biobank and German National Cohort Studies.

Dokumenttyp:
Article; Journal Article
Autor(en):
Kart, Turkay; Fischer, Marc; Winzeck, Stefan; Glocker, Ben; Bai, Wenjia; Bülow, Robin; Emmel, Carina; Friedrich, Lena; Kauczor, Hans-Ulrich; Keil, Thomas; Kröncke, Thomas; Mayer, Philipp; Niendorf, Thoralf; Peters, Annette; Pischon, Tobias; Schaarschmidt, Benedikt M; Schmidt, Börge; Schulze, Matthias B; Umutle, Lale; Völzke, Henry; Küstner, Thomas; Bamberg, Fabian; Schölkopf, Bernhard; Rueckert, Daniel; Gatidis, Sergios
Abstract:
Large epidemiological studies such as the UK Biobank (UKBB) or German National Cohort (NAKO) provide unprecedented health-related data of the general population aiming to better understand determinants of health and disease. As part of these studies, Magnetic Resonance Imaging (MRI) is performed in a subset of participants allowing for phenotypical and functional characterization of different organ systems. Due to the large amount of imaging data, automated image analysis is required, which can...     »
Zeitschriftentitel:
Sci Rep
Jahr:
2022
Band / Volume:
12
Heft / Issue:
1
Volltext / DOI:
doi:10.1038/s41598-022-23632-9
PubMed:
http://view.ncbi.nlm.nih.gov/pubmed/36333523
Print-ISSN:
2045-2322
TUM Einrichtung:
1379; 165; 656; Institut für KI und Informatik in der Medizin
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