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RoboJEPA: Scaling Robotic Latent World Models

Researchers submitted RoboJEPA, an 8B-parameter latent world model built on the Joint Embedding Predictive Architecture (JEPA) and trained on a dataset spanning 12 robotic embodiments, to arXiv on 7 Oct 2026. The team reports that RoboJEPA's imagination error follows a second-order power law in compute, that downstream robotic planning performance improves predictably with compute, and that the model can be deployed zero-shot as a robotic agent planning toward a single goal image for long-horizon tasks on real hardware. The authors call it the first work to establish scaling laws for multi-embodiment robotic world models trained on real robot data and the largest JEPA predictor model trained to date, and they released all model checkpoints plus training and robot deployment code.

read2 min views1 publishedOct 8, 2026
RoboJEPA: Scaling Robotic Latent World Models
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  [Submitted on 7 Oct 2026]


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Abstract:Latent world models have shown a remarkable ability to predict future states and to plan in the real world. In practice, however, we lack a principled way to estimate how their capabilities scale with model size, data, and compute, an open problem that slows progress in the field. In this work we present RoboJEPA, a world model based on the Joint Embedding Predictive Architecture (JEPA) and trained on a large-scale dataset spanning 12 robotic embodiments. We show that RoboJEPA's imagination error, the error of its latent rollouts, follows a second-order power law in compute, allowing us to predict model quality well beyond the scale at which the law is fit. We further show that downstream robotic planning performance improves predictably with compute, and that imagination error is strongly correlated with it, making it a reliable proxy for real-robot evaluation. Finally, we demonstrate that latent world models can be deployed zero-shot as robotic agents, planning toward a single goal image to solve tasks requiring long-horizon planning on real hardware. We release all model checkpoints together with our training and robot deployment code. To our knowledge, this is the first work to establish scaling laws for multi-embodiment robotic world models trained on real robot data, and RoboJEPA, at 8B parameters, is the largest JEPA predictor model trained to date.

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