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DeepEclipse: How to Break White-Box DNN-Watermarking Schemes
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Deep Learning (DL) models have become crucial in digital transformation, thus raising concerns about their intellectual property rights. Different watermarking techniques have been developed to protect Deep Neural Networks (DNNs) from IP infringement, creating a competitive field for DNN watermarking and removal methods. The predominant watermarking schemes use white-box techniques, which involve modifying weights by adding a unique signature to specific DNN layers. On the other hand, existing attacks on white-box watermarking usually require knowledge of the specific deployed watermarking scheme or access to the underlying data for further training and fine-tuning. We propose DeepEclipse, a novel and unified framework designed to remove white-box watermarks. We present obfuscation techniques that significantly differ from the existing white-box watermarking removal schemes. DeepEclipse can evade watermark detection without prior knowledge of the underlying watermarking scheme, additional data, or training and fine-tuning. Our evaluation reveals that DeepEclipse excels in breaking multiple white-box watermarking schemes, reducing watermark detection to random guessing while maintaining a similar model accuracy as the original one. Our framework showcases a promising solution to address the ongoing DNN watermark protection and removal challenges.
Forward citations
Cited by 2 Pith papers
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SEAL: Entangled White-box Watermarks on Low-Rank Adaptation
SEAL embeds a secret matrix between LoRA's low-rank factors, then decomposes and hides it in the released weights, but its ownership verification can be gamed by claiming the identity matrix as the passport.
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Your Semantic-Independent Watermark is Fragile: A Semantic Perturbation Attack against EaaS Watermark
SPA identifies and removes backdoor-watermarked embeddings from EaaS responses by exploiting the constant watermark vector added to triggered text, bypassing verification.
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