日本フィジカルAI新聞

世界のフィジカルAIを、日本語で。

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ワールドモデルarXiv:2607.06401v1

ワールドモデルの定義とロードマップ

A Definition and Roadmap for World Models

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AIの各分野で使われる「ワールドモデル」の定義を明確化し、技術的側面と開発段階のロードマップを提案する視点論文。

著者: Xinyuan Chen, Haoyu Guo, Shi Guo, Bingqi Jiang, Chunhua Shen, Xing Shen, Tianfan Xue, Yufei Xue, Mulin Yu, Weinan Zhang, Bin Zhao, Bowen Zhou, Ming Zhou

分類: cs.AI

原文アブストラクト

World models -- internal simulators that learn the structure and dynamics of an environment -- have become one of the most actively debated concepts in AI. From model-based reinforcement learning and video generation to embodied robotics and ultimately, physical AI, researchers across AI subfields are building systems that they call "world models", yet there is no consensus on what a world model fundamentally is, what it should predict, or how it should be built. This perspective article provides a scientific definition of world models, discussions of their key technical aspects, and a staged roadmap for developing effective world models.

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