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Titel:

Semi-supervised Label Generation for 3D Multi-modal MRI Bone Tumor Segmentation.

Dokumenttyp:
Journal Article
Autor(en):
Curto-Vilalta, Anna; Schlossmacher, Benjamin; Valle, Christina; Gersing, Alexandra; Neumann, Jan; von Eisenhart-Rothe, Ruediger; Rueckert, Daniel; Hinterwimmer, Florian
Abstract:
Medical image segmentation is challenging due to the need for expert annotations and the variability of these manually created labels. Previous methods tackling label variability focus on 2D segmentation and single modalities, but reliable 3D multi-modal approaches are necessary for clinical applications such as in oncology. In this paper, we propose a framework for generating reliable and unbiased labels with minimal radiologist input for supervised 3D segmentation, reducing radiologists' effor...     »
Zeitschriftentitel:
J Imaging Inform Med
Jahr:
2025
Volltext / DOI:
doi:10.1007/s10278-025-01448-z
PubMed:
http://view.ncbi.nlm.nih.gov/pubmed/39979760
Print-ISSN:
2948-2925
TUM Einrichtung:
Institut für Diagnostische und Interventionelle Radiologie (Prof. Makowski)
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