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A Robust Text Dependent Speaker Identification Using Neural Responses from the Model of the Auditory System

机译:基于听觉系统模型的神经响应的鲁棒文本相关说话人识别

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Speaker recognition is considered as a behavioral biometric to identify speaker's identity based on their voice features. In this study, a new speaker identification system is proposed based on the neural responses of human auditory system. For this, a very well-developed physiological based computational model of auditory periphery is used to simulate the neural responses for a given speech. The output, in the form of synapse responses, is then analyzed for the feature extraction. Neurograms are constructed for a range of characteristic frequencies from the output responses. Features are then calculated from the neurogram to train the system. The same extracted features for a given speaker are then used to identify the speaker in the testing phase. To test the reliability of the proposed system, the model has been tested both in quiet and noisy conditions. The results show that, neural response-based speaker identification system can substitute the existing technology and thus improve the performance for application of remote authentication and security system.
机译:说话者识别被认为是一种根据说话者的语音特征来识别说话者身份的行为生物特征。在这项研究中,基于人类听觉系统的神经反应,提出了一种新的说话人识别系统。为此,使用非常完善的基于生理的听觉外围计算模型来模拟给定语音的神经反应。然后分析突触响应形式的输出,以进行特征提取。从输出响应中为一系列特征频率构建神经图。然后根据神经图计算特征,以训练系统。然后,在测试阶段使用给定说话者的相同提取特征来识别说话者。为了测试所提出系统的可靠性,该模型已经在安静和嘈杂的条件下进行了测试。结果表明,基于神经反应的说话人识别系统可以替代现有技术,从而提高了远程认证和安全系统的应用性能。

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