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A two factor transformation for speaker verification through ?1comparison

机译:通过讲话者验证的两个因素转换? 1 比较

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In a speaker verification task, speech is used as a unique biometrie identifier of an individual. A speaker presents his credentials along with a voice sample. The system matches the voice sample to its own model for the speaker to accept or reject him. This has many pitfalls. First, speech by itself, is not a sufficiently "strong" biometric, and false acceptance is a problem. Second, the user must provide the system with voice samples. This puts the speaker's privacy at risk. The system may infer personal information about the user, such as gender, age, ethnicity, health, etc. Finally, if a malicious entity pilfers the speaker's models from the system, the loss is permanent. The speaker cannot change their voice to re-enroll. In this paper, we present a two-factor transformation that addresses all the above issues. It combines a personal password with speech features in order to increase the performance of a verification system. At the same time it is guaranteed not to not reveal any information about the speech or the password to the system. Finally, it is cancelable; if a model is compromised, the user can re-enroll without risk. In particular, we study a transformation that preserves the ?1distance between features as long as this is smaller than some threshold and the user uses the correct password. Experimental results confirm the theory of the proposal in term of improvement in the system's accuracy, finding conditions to get zero error. Security consequences and feasibility of its implementation are discussed.
机译:在说话者确认任务,语音被用作个体的独特biometrie标识符。一位发言者介绍了他的实力与声音样品一起。该系统的语音样本,以自己的模式为扬声器接受或拒绝他匹配。这有很多陷阱。首先,通过本身的讲话,是不是足够“强势”生物识别和错误接受是一个问题。其次,用户必须提供的语音样本的系统。这使得演讲者的隐私处于危险之中。该系统可以推断用户的个人信息,如性别,年龄,种族,健康,等等。最后,如果恶意实体pilfers从系统中扬声器的机型,损失是永久性的。扬声器不能自己的声音改变重新注册。在本文中,我们提出了一个双重转型是解决所有上述问题。它结合了语音特征的个人密码,以提高验证系统的性能。同时它保证不会没有透露有关讲话或密码系统的任何信息。最后,取消;如果模型被攻破,用户可以重新注册,没有风险。特别是,我们研究它保留了一个转型?<子的xmlns:MML = “http://www.w3.org/1998/Math/MathML” 的xmlns:的xlink = “http://www.w3.org/1999/xlink”> 1 特征之间的距离,只要这是比某个阈值小,并且用户使用正确的密码。实验结果证实了在该系统的精度提高任期的建议的理论,发现条件得到零误差。安全后果及其实施的可行性进行了讨论。

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