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Document type:
Journal Article
Author(s):
Lagogiannis, Ioannis; Meissen, Felix; Kaissis, Georgios; Rueckert, Daniel
Title:
Unsupervised Pathology Detection: A Deep Dive Into the State of the Art.
Abstract:
Deep unsupervised approaches are gathering increased attention for applications such as pathology detection and segmentation in medical images since they promise to alleviate the need for large labeled datasets and are more generalizable than their supervised counterparts in detecting any kind of rare pathology. As the Unsupervised Anomaly Detection (UAD) literature continuously grows and new paradigms emerge, it is vital to continuously evaluate and benchmark new methods in a common framework,...     »
Journal title abbreviation:
IEEE Trans Med Imaging
Year:
2024
Journal volume:
43
Journal issue:
1
Pages contribution:
241-252
Fulltext / DOI:
doi:10.1109/TMI.2023.3298093
Pubmed ID:
http://view.ncbi.nlm.nih.gov/pubmed/37506004
Print-ISSN:
0278-0062
TUM Institution:
Institut für KI und Informatik in der Medizin (Prof. Rückert)
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