Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/114606
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Title: Asynchronous voice anonymization using adversarial perturbation on speaker embedding
Authors: Wang, R
Chen, L
Lee, KA 
Ling, ZH
Issue Date: 2024
Source: Proceedings of the Annual Conference of the International Speech Communication Association, INTERSPEECH, 2024, p. 4443-4447
Abstract: Voice anonymization has been developed as a technique for preserving privacy by replacing the speaker's voice in a speech signal with that of a pseudo-speaker, thereby obscuring the original voice attributes from machine recognition and human perception. In this paper, we focus on altering the voice attributes against machine recognition while retaining human perception. We referred to this as the asynchronous voice anonymization. To this end, a speech generation framework incorporating a speaker disentanglement mechanism is employed to generate the anonymized speech. The speaker attributes are altered through adversarial perturbation applied on the speaker embedding, while human perception is preserved by controlling the intensity of perturbation. Experiments conducted on the LibriSpeech dataset showed that the speaker attributes were obscured with their human perception preserved for 60.71% of the processed utterances. Audio samples can be found in .
Keywords: Adversarial perturbation on speaker embedding
Asynchronous anonymization
Human perception preservation
Voice privacy
Publisher: International Speech Communication Association
DOI: 10.21437/Interspeech.2024-1888
Description: Interspeech 2024, 1-5 September 2024, Kos, Greece
Rights: The following publication Wang, R., Chen, L., Lee, K.A., Ling, Z.-H. (2024) Asynchronous Voice Anonymization Using Adversarial Perturbation On Speaker Embedding. Proc. Interspeech 2024, 4443-4447 is available at https://doi.org/10.21437/Interspeech.2024-1888.
Appears in Collections:Conference Paper

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