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Title:

Synomaly noise and multi-stage diffusion: A novel approach for unsupervised anomaly detection in medical images.

Document type:
Journal Article
Author(s):
Bi, Yuan; Huang, Lucie; Clarenbach, Ricarda; Ghotbi, Reza; Karlas, Angelos; Navab, Nassir; Jiang, Zhongliang
Abstract:
Anomaly detection in medical imaging plays a crucial role in identifying pathological regions across various imaging modalities, such as brain MRI, liver CT, and carotid ultrasound (US). However, training fully supervised segmentation models is often hindered by the scarcity of expert annotations and the complexity of diverse anatomical structures. To address these issues, we propose a novel unsupervised anomaly detection framework based on a diffusion model that incorporates a synthetic anomaly...     »
Journal title abbreviation:
Med Image Anal
Year:
2025
Journal volume:
105
Fulltext / DOI:
doi:10.1016/j.media.2025.103737
Pubmed ID:
http://view.ncbi.nlm.nih.gov/pubmed/40749277
Print-ISSN:
1361-8415
TUM Institution:
Klinik und Poliklinik für Vaskuläre und Endovaskuläre Chirurgie (Prof. Eckstein)
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