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arXiv — cs.AI preprintsInternational5 October 2026

WAM-OPD: Joint Video-Action Supervision for World Action Model Post-Training with On-Policy Distillation

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arXiv:2608.22364v2 Announce Type: replace Abstract: World Action Models (WAMs) generate both future video and robot actions, offering two connected outputs for post-training supervision. How can a pretrained WAM learn from a stronger Teacher on the histories it encounters during execution? We present WAM-OPD, which collects Student rollout histories and queries a Teacher for paired video and action targets. The Student learns from both targets while retaining its one-step video and action generation at deployment. Across 12 RoboTwin 2.0 tasks, WAM-OPD improves average success from 33.8% to 65.
— arXiv — cs.AI preprints

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