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A dual speech/speaker recognition using GMM in speaker identification and a HMM in keyword speech recognition

机译:使用说话人识别中的GMM和关键字语音识别中的HMM的双重语音/说话人识别

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In this paper, a speaker recognition voice based on GMM system is presented. We test the system using several databases recorded in several sessions in order to repair the huge effects that the speech variability with time has in the recognition rate system. Several experiments have been made in order to achieve the best configuration in the system set up, and in the selection of the amount and distribution of training speech. This is an important point to take into account in a real world system in which users train the system once and the models generated in the training process are not updated for strategic reasons. The dualities provide and additional security requirements in the applications in which this security level is necessary. In this sense the system provides in a real implementation approach an error around 5%, that is a very interesting rate in a real environment.
机译:本文提出了一种基于GMM系统的说话人识别语音。我们使用在多个会话中记录的几个数据库对系统进行测试,以修复语音随时间变化对识别率系统产生的巨大影响。为了在系统设置中以及在训练语音的数量和分布的选择上获得最佳配置,已经进行了一些实验。这是在现实世界系统中要考虑的重要点,在该系统中,用户对系统进行了一次训练,并且由于战略原因而没有更新训练过程中生成的模型。对偶性在需要此安全级别的应用程序中提供了附加的安全要求。从这个意义上说,系统在实际的实现方法中提供了大约5%的误差,这在实际环境中是非常有趣的比率。

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