SDAICRLGASFeb 6, 2025

XAttnMark: Learning Robust Audio Watermarking with Cross-Attention

arXiv:2502.04230v29 citationsh-index: 13ICML
Originality Incremental advance
AI Analysis

This addresses copyright infringement and misinformation from deepfake audio, offering an incremental improvement over existing neural watermarking methods.

The paper tackles the problem of robust audio watermarking for copyright protection and data provenance by introducing XAttnMark, which achieves state-of-the-art performance in both detection and attribution with superior robustness against audio transformations.

The rapid proliferation of generative audio synthesis and editing technologies has raised significant concerns about copyright infringement, data provenance, and the spread of misinformation through deepfake audio. Watermarking offers a proactive solution by embedding imperceptible, identifiable, and traceable marks into audio content. While recent neural network-based watermarking methods like WavMark and AudioSeal have improved robustness and quality, they struggle to achieve both robust detection and accurate attribution simultaneously. This paper introduces Cross-Attention Robust Audio Watermark (XAttnMark), which bridges this gap by leveraging partial parameter sharing between the generator and the detector, a cross-attention mechanism for efficient message retrieval, and a temporal conditioning module for improved message distribution. Additionally, we propose a psychoacoustic-aligned temporal-frequency masking loss that captures fine-grained auditory masking effects, enhancing watermark imperceptibility. Our approach achieves state-of-the-art performance in both detection and attribution, demonstrating superior robustness against a wide range of audio transformations, including challenging generative editing with strong editing strength. The project webpage is available at https://liuyixin-louis.github.io/xattnmark/.

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