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20192024
most citedSE(3)-Equivariant Relational Rearrangement with Neural Descriptor Fields

7 citations · 27 across the 10 of their papers we have counts for

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11 papers · 1 filter

cs.RO2024

Robot Learning with Super-Linear Scaling

Marcel Torne, Arhan Jain, Jiayi Yuan +5

Scaling robot learning requires data collection pipelines that scale favorably with human effort. In this work, we propose Crowdsourcing and Amortizing Human Effort for Real-to-Sim…

cs.RO2024★ 1 cited

Diffusion Policy Policy Optimization

Allen Z. Ren, Justin Lidard, Lars L. Ankile +6

We introduce Diffusion Policy Policy Optimization, DPPO, an algorithmic framework including best practices for fine-tuning diffusion-based policies (e.g. Diffusion Policy) in conti…

cs.RO2024

From Imitation to Refinement -- Residual RL for Precise Assembly

Lars Ankile, Anthony Simeonov, Idan Shenfeld +2

Recent advances in Behavior Cloning (BC) have made it easy to teach robots new tasks. However, we find that the ease of teaching comes at the cost of unreliable performance that sa…

cs.RO2024

JUICER: Data-Efficient Imitation Learning for Robotic Assembly

Lars Ankile, Anthony Simeonov, Idan Shenfeld +1

While learning from demonstrations is powerful for acquiring visuomotor policies, high-performance imitation without large demonstration datasets remains challenging for tasks requ…

cs.RO2024★ 5 cited

Reconciling Reality through Simulation: A Real-to-Sim-to-Real Approach for Robust Manipulation

Marcel Torne, Anthony Simeonov, Zechu Li +4

Imitation learning methods need significant human supervision to learn policies robust to changes in object poses, physical disturbances, and visual distractors. Reinforcement lear…

cs.RO2023★ 3 cited

Lifelong Robot Learning with Human Assisted Language Planners

Meenal Parakh, Alisha Fong, Anthony Simeonov +3

Large Language Models (LLMs) have been shown to act like planners that can decompose high-level instructions into a sequence of executable instructions. However, current LLM-based…