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cs.RO2025

ObjectVLA: End-to-End Open-World Object Manipulation Without Demonstration

Minjie Zhu, Yichen Zhu, Jinming Li +6

Imitation learning has proven to be highly effective in teaching robots dexterous manipulation skills. However, it typically relies on large amounts of human demonstration data, wh…

cs.RO2025

DexVLA: Vision-Language Model with Plug-In Diffusion Expert for General Robot Control

Junjie Wen, Yichen Zhu, Jinming Li +3

Enabling robots to perform diverse tasks across varied environments is a central challenge in robot learning. While vision-language-action (VLA) models have shown promise for gener…

cs.RO2024

CoA-VLA: Improving Vision-Language-Action Models via Visual-Textual Chain-of-Affordance

Jinming Li, Yichen Zhu, Zhibin Tang +8

Robot foundation models, particularly Vision-Language-Action (VLA) models, have garnered significant attention for their ability to enhance robot policy learning, greatly improving…

cs.RO2024

Diffusion-VLA: Generalizable and Interpretable Robot Foundation Model via Self-Generated Reasoning

Junjie Wen, Minjie Zhu, Yichen Zhu +8

In this paper, we present DiffusionVLA, a novel framework that seamlessly combines the autoregression model with the diffusion model for learning visuomotor policy. Central to our…

cs.RO2024

Discrete Policy: Learning Disentangled Action Space for Multi-Task Robotic Manipulation

Kun Wu, Yichen Zhu, Jinming Li +4

Learning visuomotor policy for multi-task robotic manipulation has been a long-standing challenge for the robotics community. The difficulty lies in the diversity of action space:…

cs.RO2024

Scaling Diffusion Policy in Transformer to 1 Billion Parameters for Robotic Manipulation

Minjie Zhu, Yichen Zhu, Jinming Li +8

Diffusion Policy is a powerful technique tool for learning end-to-end visuomotor robot control. It is expected that Diffusion Policy possesses scalability, a key attribute for deep…