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Dokumenttyp:
Konferenzbeitrag
Autor(en):
Chatelain, P.; Pauly, O.; Peter, L.; Ahmadi, A.; Plate, A.; Bötzel, K.; Navab, N.
Titel:
Learning from Multiple Experts with Random Forests: Application to the Segmentation of the Midbrain in 3D Ultrasound
Abstract:
In the field of computer aided medical image analysis, it is often difficult to obtain reliable ground truth for evaluating algorithms or supervising statistical learning procedures. In this paper we present a new method for training a classification forest from images labeled by variably performing experts, while simultaneously evaluating the performance of each expert. Our approach builds upon state-of-the-art randomized classification forest techniques for medical image segmentation and r...     »
Stichworte:
MICCAI,CAMP
Kongress- / Buchtitel:
Miccai 2013
Jahr:
2013
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