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De-AntiFake: Rethinking the Protective Perturbations Against Voice Cloning Attacks

About

The rapid advancement of speech generation models has heightened privacy and security concerns related to voice cloning (VC). Recent studies have investigated disrupting unauthorized voice cloning by introducing adversarial perturbations. However, determined attackers can mitigate these protective perturbations and successfully execute VC. In this study, we conduct the first systematic evaluation of these protective perturbations against VC under realistic threat models that include perturbation purification. Our findings reveal that while existing purification methods can neutralize a considerable portion of the protective perturbations, they still lead to distortions in the feature space of VC models, which degrades the performance of VC. From this perspective, we propose a novel two-stage purification method: (1) Purify the perturbed speech; (2) Refine it using phoneme guidance to align it with the clean speech distribution. Experimental results demonstrate that our method outperforms state-of-the-art purification methods in disrupting VC defenses. Our study reveals the limitations of adversarial perturbation-based VC defenses and underscores the urgent need for more robust solutions to mitigate the security and privacy risks posed by VC. The code and audio samples are available at https://de-antifake.github.io.

Wei Fan, Kejiang Chen, Chang Liu, Weiming Zhang, Nenghai Yu• 2025

Related benchmarks

TaskDatasetResultRank
Speaker VerificationLibriSpeech (test)--
25
Speaker VerificationEvaluation Dataset--
21
Authentication RestorationAntiFake Protected TTS Speech (test)
x-vector Score86.61
18
Authentication RestorationSafeSpeech Protected TTS Speech (test)
X-Vector Score0.5875
18
Authentication RestorationPOP Protected TTS Speech (test)
xvec Score38.91
18
Authentication RestorationGAN-ADV Protected TTS Speech (test)
x-vector Score39.82
18
Authentication RestorationAttack-VC Protected TTS Speech (test)
xvec32.52
18
Perceptual Speech Quality AssessmentDiffHierVC
MOS3.47
7
Perceptual Speech Quality AssessmentHierSpeechpp
MOS3.81
7
Perceptual Speech Quality AssessmentTortoise-TTS
MOS3.44
7
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