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  4. You Are What You Say: Exploiting Linguistic Content for VoicePrivacy Attacks
 
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2025
Conference Paper
Title

You Are What You Say: Exploiting Linguistic Content for VoicePrivacy Attacks

Abstract
Speaker anonymization systems hide the identity of speakers while preserving other information such as linguistic content and emotions. To evaluate their privacy benefits, attacks in the form of automatic speaker verification (ASV) systems are employed. In this study, we assess the impact of intra-speaker linguistic content similarity in the attacker training and evaluation datasets, by adapting BERT, a language model, as an ASV system. On the VoicePrivacy Attacker Challenge datasets, our method achieves a mean equal error rate (EER) of 35%, with certain speakers attaining EERs as low as 2%, based solely on the textual content of their utterances. Our explainability study reveals that the system decisions are linked to semantically similar keywords within utterances, stemming from how LibriSpeech is curated. Our study suggests reworking the VoicePrivacy datasets to ensure a fair and unbiased evaluation and challenge the reliance on global EER for privacy evaluations.
Author(s)
Gaznepoglu, Ünal Ege
International Audio Laboratories Erlangen
Leschanowsky, Anna Katharina  orcid-logo
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Aloradi, Ahmad
Friedrich-Alexander-Universität Erlangen-Nürnberg
Singh, Prachi
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Tenbrinck, Daniel
Friedrich-Alexander-Universität Erlangen-Nürnberg
Habets, Emanuël Anco Peter
International Audio Laboratories Erlangen
Peters, Nils
Trinity College Dublin
Mainwork
Interspeech 2025  
Conference
International Speech Communication Association (INTERSPEECH Annual Conference) 2025  
DOI
10.21437/Interspeech.2025-681
Language
English
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Keyword(s)
  • automated speaker verification

  • explainable AI

  • language models

  • speaker anonymization

  • voice privacy

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