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Malafide: a novel adversarial convolutive noise attack against deepfake and spoofing detection systems

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arxiv 2306.07655 v1 pith:VPWSXQOL submitted 2023-06-13 eess.AS cs.CRcs.LG

classification eess.AScs.CRcs.LG
keywords malafideadversarialattackspoofingattacksblack-boxevenfilter
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We present Malafide, a universal adversarial attack against automatic speaker verification (ASV) spoofing countermeasures (CMs). By introducing convolutional noise using an optimised linear time-invariant filter, Malafide attacks can be used to compromise CM reliability while preserving other speech attributes such as quality and the speaker's voice. In contrast to other adversarial attacks proposed recently, Malafide filters are optimised independently of the input utterance and duration, are tuned instead to the underlying spoofing attack, and require the optimisation of only a small number of filter coefficients. Even so, they degrade CM performance estimates by an order of magnitude, even in black-box settings, and can also be configured to overcome integrated CM and ASV subsystems. Integrated solutions that use self-supervised learning CMs, however, are more robust, under both black-box and white-box settings.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. SpeechFake: A Large-Scale Multilingual Speech Deepfake Dataset Incorporating Cutting-Edge Generation Methods

    cs.SD 2025-07 conditional novelty 6.0 of 10

    SpeechFake is a large-scale multilingual deepfake speech dataset with baseline experiments showing improved generalization to unseen generation methods.

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