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Dokumenttyp:
Konferenzbeitrag
Autor(en):
Wang, L.; Belagiannis, V.; Marr, C.; Theis, F.; Yang, G. Z.; Navab, N.
Titel:
Anatomic-Landmark Detection Using Graphical Context Modelling
Abstract:
Anatomical landmarks in images play an important role in medical practice. This paper presents a graphical model that fully automatically detects such landmarks. The model includes a unary potential using a random forest classifier based on local appearance and binary and ternary potentials encoding geometrical context among different landmarks. The weightings of different potentials are learned in a maximum likelihood manner. The final detection result is formulated as the maximum-a-posteriori...     »
Stichworte:
ISBI,CAMP
Kongress- / Buchtitel:
Isbi 2015
Jahr:
2015
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