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Dokumenttyp:
Zeitschriftenaufsatz
Autor(en):
Stauder, R.; Kayis, E.; Navab, N.
Titel:
Learning-based Surgical Workflow Detection from Intra-Operative Signals
Abstract:
A modern operating room (OR) provides a plethora of advanced medical devices. In order to better facilitate the information offered by them, they need to automatically react to the intra-operative context. To this end, the progress of the surgical workflow must be detected and interpreted, so that the current status can be given in machine-readable form. In this work, Random Forests (RF) and Hidden Markov Models (HMM) are compared and combined to detect the surgical workflow phase of a laparosco...     »
Stichworte:
CAMP,SurgicalWorkflow,ComputerAidedSurgery
Zeitschriftentitel:
arXiv preprint arXiv:1706.00587
Jahr:
2017
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