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DreamX-World: A General-Purpose Interactive World Model

DreamX Team

Page Tech Report License


DreamX-World is a general-purpose world model for interactive world simulation. It generates diverse, high-fidelity worlds that users can explore, control, and transform with event prompts.

The model is trained with a scalable data engine on Unreal Engine data, gameplay footage, and real-world videos, combined with camera estimation and strict data filtering to learn realistic dynamics and interactions. It follows a progressive training pipeline: learning fine-grained action control first, then open-ended event response, and finally using Reinforcement Learning to improve action following, interaction consistency, and visual fidelity.

🎬 Video Demo

🌍 Navigate and Explore Realistic Worlds

DreamX-World enables high-fidelity, controllable exploration across diverse realistic environments, including indoor, urban, natural, and architectural scenes.

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🌈 Dive into Dream Worlds

Beyond realistic scenes, DreamX-World also generates fantasy, game-like, sci-fi, and stylized worlds.

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🎮 Generate in Third-Person View

DreamX-World supports both first-person interaction and coherent third-person generation. It keeps camera-follow behavior stable while preserving controllable agent motion and scene consistency.

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⚡ Promptable World Events

DreamX-World supports prompt-driven world events that dynamically change the environment, including flexible and compositional event generation with consistent temporal evolution.

  • Single Event: A single event prompt triggers a specific world-changing interaction.
  • Compositional Events: Multiple events compose together to create complex, multi-step world transformations.

Single Event

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Compositional Events

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📜 License

This project is licensed under Apache 2.0. See LICENSE for details.

✨ Acknowledgement

We thank the Wan Team for open-sourcing their code and models.

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