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Zoe McCarthy

5 accepted papers

2019

Quasi-Direct Drive for Low-Cost Compliant Robotic Manipulation

ICRA 2019poster

Robots must cost less and be force-controlled to enable widespread, safe deployment in unconstrained human environments. We propose Quasi-Direct Drive actuation as a capable paradigm for robotic force-controlled manipulation in human environments at low-cost. Our prototype - Blue - is a human scale…

Cited by 115SourcecodeScholar
2018

Deep Imitation Learning for Complex Manipulation Tasks from Virtual Reality Teleoperation

ICRA 2018poster

Imitation learning is a powerful paradigm for robot skill acquisition. However, obtaining demonstrations suitable for learning a policy that maps from raw pixels to actions can be challenging. In this paper we describe how consumer-grade Virtual Reality headsets and hand tracking hardware can be use…

Cited by 895SourceScholar
2016

Energy-Bounded Caging: Formal Definition and 2-D Energy Lower Bound Algorithm Based on Weighted Alpha Shapes

RA-L 2016

Caging grasps are valuable as they can be robust to bounded variations in object shape and pose, do not depend on friction, and enable transport of an object without full immobilization. Complete caging of an object is useful but may not be necessary in cases where forces such as gravity are present

Cited by 47SourcecodeScholar
2016

Learning deep neural network policies with continuous memory states

ICRA 2016

Policy learning for partially observed control tasks requires policies that can remember salient information from past observations. In this paper, we present a method for learning policies with internal memory for high-dimensional, continuous systems, such as robotic manipulators. Our approach cons

Cited by 95SourceScholar