Om UC Berkeley / Stanford (Octo Model Team)
Grunnlagt 2023 · Berkeley & Stanford, California, USA
The Octo project is a collaboration of academic labs led by Sergey Levine (UC Berkeley BAIR) and Chelsea Finn (Stanford IRIS), with contributions from CMU, Google DeepMind, and Toyota Research Institute. Octo was first released in May 2024 alongside the Open-X-Embodiment dataset effort, with the goal of producing a generalist, fully open-source robot policy that any researcher can fine-tune on a new robot in hours. Octo introduced the recipe of a transformer policy with a diffusion action head trained on 800k cross-embodiment demonstrations, and it has become a de-facto baseline in academic VLA / generalist-policy research. The team released both Octo-Small (27M) and Octo-Base (93M) under Apache-2.0, alongside code, checkpoints and a fine-tuning toolkit.
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