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Title:

Ultrasound-Guided Robotic Navigation with Deep Reinforcement Learning

Document type:
Zeitschriftenaufsatz
Author(s):
Hase, H.; Azampour, MF.; Tirindelli, M.; Paschali, M.; Simson, W.; Fatemizadeh, E.; Navab, N.
Abstract:
s paper we introduce the first reinforcement learning (RL) based robotic navigation method which utilizes ultrasound (US) images as an input. Our approach combines state-of-the-art RL techniques, specifically deep Q-networks (DQN) with memory buffers and a binary classifier for deciding when to terminate the task. Our method is trained and evaluated on an in-house collected data-set of 34 volunteers and when compared to pure RL and supervised learning (SL) techniques, it performs substantially...     »
Keywords:
CAMP,IROS,Robotics,Ultrasound,Reinforcement Learning
Journal title:
arXiv preprint arXiv:2003.13321
Year:
2020
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