Voice-Indistinguishability: Protecting Voiceprint in Privacy-Preserving Speech Data Release

April 16, 2020 Β· Declared Dead Β· πŸ› IEEE International Conference on Multimedia and Expo

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Authors Yaowei Han, Sheng Li, Yang Cao, Qiang Ma, Masatoshi Yoshikawa arXiv ID 2004.07442 Category cs.CR: Cryptography & Security Cross-listed cs.SD, eess.AS Citations 52 Venue IEEE International Conference on Multimedia and Expo Last Checked 5 months ago
Abstract
With the development of smart devices, such as the Amazon Echo and Apple's HomePod, speech data have become a new dimension of big data. However, privacy and security concerns may hinder the collection and sharing of real-world speech data, which contain the speaker's identifiable information, i.e., voiceprint, which is considered a type of biometric identifier. Current studies on voiceprint privacy protection do not provide either a meaningful privacy-utility trade-off or a formal and rigorous definition of privacy. In this study, we design a novel and rigorous privacy metric for voiceprint privacy, which is referred to as voice-indistinguishability, by extending differential privacy. We also propose mechanisms and frameworks for privacy-preserving speech data release satisfying voice-indistinguishability. Experiments on public datasets verify the effectiveness and efficiency of the proposed methods.
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