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Grace Zhang

5 accepted papers

2025

QMP: Q-switch Mixture of Policies for Multi-Task Behavior Sharing

ICLR 2025poster

Multi-task reinforcement learning (MTRL) aims to learn several tasks simultaneously for better sample efficiency than learning them separately. Traditional methods achieve this by sharing parameters or relabeling data between tasks. In this work, we introduce a new framework for sharing behavioral…

2024

CushSense: Soft, Stretchable, and Comfortable Tactile-Sensing Skin for Physical Human-Robot Interaction

ICRA 2024poster

Whole-arm tactile feedback is crucial for robots to ensure safe physical interaction with their surroundings. This paper introduces CushSense, a fabric-based soft and stretchable tactile-sensing skin designed for physical human-robot interaction (pHRI) tasks such as robotic caregiving. Using stretch…

Cited by 7SourceScholar
2021

Policy Transfer across Visual and Dynamics Domain Gaps via Iterative Grounding

RSS 2021poster

The ability to transfer a policy from one environment to another is a promising avenue for efficient robot learning in realistic settings where task supervision is not available. This can allow us to take advantage of environments well suited for training; such as simulators or laboratories; to lear…

2019

MCP: Learning Composable Hierarchical Control with Multiplicative Compositional Policies

NeurIPS 2019poster

Humans are able to perform a myriad of sophisticated tasks by drawing upon skills acquired through prior experience. For autonomous agents to have this capability, they must be able to extract reusable skills from past experience that can be recombined in new ways for subsequent tasks. Furthermore,…