← Search

J. Chase Kew

5 accepted papers

2024

Learning to Learn Faster from Human Feedback with Language Model Predictive Control

RSS 2024poster

Large language models (LLMs) have been shown to exhibit a wide range of capabilities, such as writing robot code from language commands -- enabling non-experts to direct robot behaviors, modify them based on feedback, or compose them to perform new tasks. However, these capabilities (driven by in-co…

2024

The Design of the Barkour Benchmark for Robot Agility

IROS 2024poster

In this paper, we describe the design of the Barkour benchmark for measuring robot agility in navigating complex environments. Despite the growing interest in developing agile robot locomotion skills, the field lacks systematic benchmarks to measure the performance of robotic control systems and har…

Cited by 1SourceScholar
2023

Learning and Adapting Agile Locomotion Skills by Transferring Experience

RSS 2023poster

Legged robots have enormous potential in their range of capabilities, from navigating unstructured terrains to high-speed running. However, these capabilities bring with them difficult control problems, and designing controllers for highly agile dynamic motions remains a substantial challenge for ro…

2022

Legged Robots that Keep on Learning: Fine-Tuning Locomotion Policies in the Real World

ICRA 2022poster

Legged robots are physically capable of traversing a wide range of challenging environments, but designing controllers that are sufficiently robust to handle this diversity has been a long-standing challenge in robotics. Reinforcement learning presents an appealing approach for automating the contro…

Cited by 136SourceScholar
2020

Model-based Reinforcement Learning for Decentralized Multiagent Rendezvous

CoRL 2020

Collaboration requires agents to align their goals on the fly. Underlying the human ability to align goals with other agents is their ability to predict the intentions of others and actively update their own plans. We propose hierarchical predictive planning (HPP), a model-based reinforcement learni

Cited by 0SourcePDFScholar