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Keegan Go

4 papers

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papers

Publications (4)

cs.RO2023

Efficient Online Learning of Contact Force Models for Connector Insertion

Kevin Tracy, Zachary Manchester, Ajinkya Jain +4

Contact-rich manipulation tasks with stiff frictional elements like connector insertion are difficult to model with rigid-body simulators. In this work, we propose a new approach f…

cs.RO2024

GenCHiP: Generating Robot Policy Code for High-Precision and Contact-Rich Manipulation Tasks

Kaylee Burns, Ajinkya Jain, Keegan Go +4

Large Language Models (LLMs) have been successful at generating robot policy code, but so far these results have been limited to high-level tasks that do not require precise moveme…

cs.RO2025

RoboBallet: Planning for Multi-Robot Reaching with Graph Neural Networks and Reinforcement Learning

Matthew Lai, Keegan Go, Zhibin Li +4

Modern robotic manufacturing requires collision-free coordination of multiple robots to complete numerous tasks in shared, obstacle-rich workspaces. Although individual tasks may b…

cs.RO2025

Open X-Embodiment: Robotic Learning Datasets and RT-X Models

Embodiment Collaboration, Abby O'Neill, Abdul Rehman +291

Large, high-capacity models trained on diverse datasets have shown remarkable successes on efficiently tackling downstream applications. In domains from NLP to Computer Vision, thi…

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