面向asvspoof2019挑战赛的SHNU抗欺骗系统

Zhimin Feng, Qiqi Tong, Yanhua Long, Shuang Wei, Chunxia Yang, Qiaozheng Zhang
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引用次数: 1

摘要

本文针对asvspoof2019挑战,对SHNU抗欺骗系统进行了实验分析。本次挑战的重点是针对三种主要攻击类型的对策,即源于先进技术的TTS、VC和重放欺骗攻击。根据攻击类型,将挑战分为两个独立的子挑战:逻辑访问(logical access)和物理访问(physical access)。报告了不同的反欺骗技术在这两个子挑战上的结果。此外,还对2015年和2017年ASVspoof这两个之前的挑战进行了相同的对策评估。跨数据库实验表明,很难将从ASVspoof 2019 LA和PA数据库训练的分类器推广到之前的挑战。抗欺骗技术对不同的、新的和未知的条件的泛化能力仍然是非常具有挑战性的。此外,还对不同声学特征的有效性进行了研究和报道。最后,我们研究了对单个系统的线性和融合的分数级融合方法,以获得更好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SHNU Anti-spoofing Systems for ASVspoof 2019 Challenge
This paper presents an experimental analysis of SHNU anti-spoofing systems for the ASVspoof 2019 challenge. This challenge focused on countermeasures for three major attack types, namely those stemming from the advanced technology of TTS, VC and replay spoofing attacks. According to the type of attacks, the challenge was divided into two independent sub-challenges, the logical access (LA) and physical access (PA). Results of different anti-spoofing technologies on both sub-challenges were reported. Furthermore, the same countermeasures were also evaluated on two previous challenges, the ASVspoof 2015 and 2017. Experiments on cross-databases showed that, it appeared hard to generalize the classifiers trained from ASVspoof 2019 LA and PA databases to the previous challenges. The generalization ability of anti-spoofing technologies to different, new and unknown conditions was still very challenging. In addition, the effectiveness of different acoustic features were also examined and reported. Finally, we investigated the linear and an interfusing score-level fusion methods to individual systems to achieve better performance.
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