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Diffusion policy: Visuomotor policy learning via action diffusion

372
Citations
September 1, 2025
Published Date

Research Abstract & Technology Focus

This paper introduces Diffusion Policy, a new way of generating robot behavior by representing a robot’s visuomotor policy as a conditional denoising diffusion process. We benchmark Diffusion Policy across 15 different tasks from 4 different robot manipulation benchmarks and find that it consistently outperforms existing state-of-the-art robot learning methods with an average improvement of 46.9%. Diffusion Policy learns the gradient of the action-distribution score function and iteratively optimizes with respect to this gradient field during inference via a series of stochastic Langevin dynamics steps. We find that the diffusion formulation yields powerful advantages when used for robot policies, including gracefully handling multimodal action distributions, being suitable for high-dimensional action spaces, and exhibiting impressive training stability. To fully unlock the potential of diffusion models for visuomotor policy learning on physical robots, this paper presents a set of key technical contributions including the incorporation of receding horizon control, visual conditioning, and the time-series diffusion transformer. We hope this work will help motivate a new generation of policy learning techniques that are able to leverage the powerful generative modeling capabilities of diffusion models. Code, data, and training details are available (diffusion-policy.cs.columbia.edu).
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What is the core focus of the research titled 'Diffusion policy: Visuomotor policy learning via action diffusion'?

This literature focuses on: This paper introduces Diffusion Policy, a new way of generating robot behavior by representing a robot’s visuomotor policy as a conditional denoising diffusion process. We benchmark Diffusion Policy across 15 different tasks from 4 different robot...

What other academic literature is closely related to 'Diffusion policy: Visuomotor policy learning via action diffusion'?

Yes, highly correlated activity was mapped. An entry titled 'Diffusion policy: Visuomotor policy learning via action diffusion' discusses this: This paper introduces Diffusion Policy, a new way of generating robot behavior by representing a robot’s visuomotor policy as a conditional denoisi...

Are there commercial applications of 'Diffusion policy: Visuomotor policy learning via action diffusion' in market news publications?

Yes, highly correlated activity was mapped. An entry titled 'Diffusion-models' discusses this: Diffusion models are advancing significantly in drug discovery, specifically for the "controlled generation of 3D molecules" with desired propertie...

Are there commercial applications of 'Diffusion policy: Visuomotor policy learning via action diffusion' in GitHub?

Yes, highly correlated activity was mapped. An entry titled 'Safety policy for constraining meta-agent modifications' discusses this: Good observation on cumulative drift. Static per-action policies catch individual violations but miss trajectory-level shifts — the "boiling frog" ...

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