基于DNN取证水印的非法3D内容分发跟踪系统

Jaehyoung Park, Jihye Kim, Jiyou Seo, Sangpil Kim, Jong-Hyouk Lee
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引用次数: 1

摘要

随着虚拟世界产业的发展和构建虚拟世界生态系统所需的3D内容市场的扩大,能够创建可用3D内容的人工智能技术正在发展。另一方面,基于人工智能创作的3D内容目前没有著作权的法律定义,著作权的适用范围也比较模糊。针对3D内容可能出现版权纠纷和侵权的现状,本文提出了一种基于深度神经网络(Deep Neural Network, DNN)取证水印的非法3D内容分发跟踪系统,以防止3D内容的非法复制和分发。本文介绍了非法3D内容分发跟踪系统的设计结果,该系统具有详细的体系结构、组件和消息流。
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Illegal 3D Content Distribution Tracking System based on DNN Forensic Watermarking
With the development of the metaverse industry and the expansion of the 3D content market required to build the metaverse ecosystem, artificial intelligence technology that can create usable 3D content is developing. On the other hand, there is currently no legal definition of copyright for 3D content created based on artificial intelligence, and the scope of copyright application is ambiguous. In the current situation where copyright disputes and infringements on 3D contents are expected, this paper proposes a Deep Neural Network (DNN) forensic watermarking-based illegal 3D content distribution tracking system to protect illegal copying and distribution of 3D content. In this paper, we present our design result for the illegal 3D content distribution tracking system with detailed architecture, components, and message flows.
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