arXiv:2412.17133eess.AS2024-12被引 2

通过时域波形概率分布构建防欺骗语音验证新方法

Tandem spoofing-robust automatic speaker verification based on time-domain embeddings

  • 用时域波形幅度概率分布生成语音嵌入表示
  • 男女分开展示,男性误识率8.67%,女性10.12%
  • 融合传统系统提升泛化能力,适合安全语音验证场景

针对逻辑访问攻击,本文提出一种基于时域波形幅度概率质量函数(PMF)的新型语音验证防欺骗方法。该方法构建真实与伪造语音的时域嵌入,利用训练集内分组生成特征,并强调性别分离对性能的提升作用。设计的对抗措施(CM)系统结合时域嵌入与性别识别,实现94%和179%的男女错配率;男、女系统分别达到8.67%和10.12%的等错误率(EER)。在ASVspoof2019数据集上,该方法与传统系统融合后显著提升泛化能力,且通过联合检测成本函数验证其有效性。研究还分析了时域嵌入与传统抗欺骗模块融合的增益机制。

原文摘要 · Abstract (English)

Spoofing-robust automatic speaker verification (SASV) systems are a crucial technology for the protection against spoofed speech. In this study, we focus on logical access attacks and introduce a novel approach to SASV tasks. A novel representation of genuine and spoofed speech is employed, based on the probability mass function (PMF) of waveform amplitudes in the time domain. This methodology generates novel time embeddings derived from the PMF of selected groups within the training set. This paper highlights the role of gender segregation and its positive impact on performance. We propose a countermeasure (CM) system that employs time-domain embeddings derived from the PMF of spoofed and genuine speech, as well as gender recognition based on male and female time-based embeddings. The method exhibits notable gender recognition capabilities, with mismatch rates of 0.94% and 1.79% for males and females, respectively. The male and female CM systems achieve an equal error rate (EER) of 8.67% and 10.12%, respectively. By integrating this approach with traditional speaker verification systems, we demonstrate improved generalization ability and tandem detection cost function evaluation using the ASVspoof2019 challenge database. Furthermore, we investigate the impact of fusing the time embedding approach with traditional CM and illustrate how this fusion enhances generalization in SASV architectures.

语音验证防欺骗时域特征性别分离

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