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RoboHub🤖
@XRoboHub
World’s largest AI × robotics channel. Direct access to 200+ robotics companies. Original, tech-grounded reporting. 500K+ followers. 📬 xrobohub@gmail.com
加入 July 2012
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More robotics teams are getting behind the same idea: let robots learn straight from people. Sunday’s ACT-1 learned long-horizon household tasks from human demonstrations. X Square’s TwinDEX used a few hundred robot-free episodes to train a policy that powered a 24-step chemistry experiment. Now @RewardAI_’s OM-1 learns manipulation from human demonstrations alone. The same policy runs across industrial arms and humanoids, handling contact-rich tasks that require coordination, force control and recovery when things go wrong. Reward says OM-1 can pick up a new task from less than 30 minutes of human demonstration data.
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Introducing OM-1, our first robot foundation model, zero-shot generalizing to any robot: table-top arms, industrial arms and humanoids. - learned directly from human manipulation data - no teleop/robot data - close to human-level dexterity and efficiency - multi-robot collab
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