Hunyuan-Game: Industrial-grade Intelligent Game Creation Model
Ruihuang Li, Caijin Zhou, Shoujian Zheng, Jianxiang Lu, Jiabin Huang, Comi Chen, Junshu Tang, Guangzheng Xu, Jiale Tao, Hongmei Wang, Donghao Li, Wenqing Yu, Senbo Wang, Zhimin Li, Yetshuan Shi, Haoyu Yang, Yukun Wang, Wenxun Dai, Jiaqi Li, Linqing Wang, Qixun Wang, Zhiyong Xu

TL;DR
Hunyuan-Game introduces a comprehensive AI-driven platform for high-quality, customizable game content creation, significantly enhancing efficiency and artistic fidelity in game development through advanced image and video generation models.
Contribution
The paper presents a novel, industrial-grade AI system with specialized models for game image and video generation, integrating domain knowledge for high-fidelity, customizable content.
Findings
Developed multiple tailored image generation models for game scenarios.
Created five core video generation models addressing key game development challenges.
Achieved high aesthetic quality and domain-specific understanding in generated content.
Abstract
Intelligent game creation represents a transformative advancement in game development, utilizing generative artificial intelligence to dynamically generate and enhance game content. Despite notable progress in generative models, the comprehensive synthesis of high-quality game assets, including both images and videos, remains a challenging frontier. To create high-fidelity game content that simultaneously aligns with player preferences and significantly boosts designer efficiency, we present Hunyuan-Game, an innovative project designed to revolutionize intelligent game production. Hunyuan-Game encompasses two primary branches: image generation and video generation. The image generation component is built upon a vast dataset comprising billions of game images, leading to the development of a group of customized image generation models tailored for game scenarios: (1) General…
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Taxonomy
TopicsArtificial Intelligence in Games · Data Mining Algorithms and Applications
