CRCVAug 10, 2025

Fading the Digital Ink: A Universal Black-Box Attack Framework for 3DGS Watermarking Systems

arXiv:2508.07263v12 citationsh-index: 10
Originality Incremental advance
AI Analysis

This work reveals critical vulnerabilities in existing 3DGS copyright protection schemes, calling for more robust systems, but it is incremental as it builds on known attack methods applied to a new domain.

The paper tackles the problem of robustness in 3D Gaussian Splatting (3DGS) watermarking systems by introducing GMEA, a universal black-box attack framework that effectively removes both 1D and 2D watermarks while maintaining high visual fidelity.

With the rise of 3D Gaussian Splatting (3DGS), a variety of digital watermarking techniques, embedding either 1D bitstreams or 2D images, are used for copyright protection. However, the robustness of these watermarking techniques against potential attacks remains underexplored. This paper introduces the first universal black-box attack framework, the Group-based Multi-objective Evolutionary Attack (GMEA), designed to challenge these watermarking systems. We formulate the attack as a large-scale multi-objective optimization problem, balancing watermark removal with visual quality. In a black-box setting, we introduce an indirect objective function that blinds the watermark detector by minimizing the standard deviation of features extracted by a convolutional network, thus rendering the feature maps uninformative. To manage the vast search space of 3DGS models, we employ a group-based optimization strategy to partition the model into multiple, independent sub-optimization problems. Experiments demonstrate that our framework effectively removes both 1D and 2D watermarks from mainstream 3DGS watermarking methods while maintaining high visual fidelity. This work reveals critical vulnerabilities in existing 3DGS copyright protection schemes and calls for the development of more robust watermarking systems.

Foundations

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