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A Study of Models and a Priori Threshold Updating in Speake Verification

机译:语音验证中模型和先验阈值更新的研究

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This article explores a method for spealler verifica- tion to appropriately set the threshold value used to judge the identities of individual speakers and also considers methods to update speaker models and the robustness of the speaker models so as to make the models more robust with respect to utterance variations, using a small amount of data for updating that was recently uttered. The speaker model is represented by the hidden Markov model (HMM). In the model updating, the parameters of the speaker HMM are estimated from the data for updating and the current pa- rameter values. For setting the threshold, the new threshold value for each speaker is set with the initial value as a value that is passed to an FA rate higher than the equal error rate (a value for which the false rejection rate and the false acceptance rate are equal), which is calculated from the data for updating and which steadily approaches the value that was passed to the equal error rate in concert with updating of the speaker HMM. The results of evaluating this method using text-dependent and text-prompted speaker verifica- tion experiments with twenty speakers shows that the aver- age error rate fell by roughly 40 for the text-independent type and by roughly 80 for the text-prompted type as compared to when the model and threshold value are not updated.
机译:本文探讨了一种用spealler进行验证的方法,以适当地设置用于判断单个说话者身份的阈值,并考虑更新说话者模型和说话者模型的鲁棒性的方法,以使这些模型相对于话语变化,使用少量最近更新过的数据进行更新。说话人模型由隐马尔可夫模型(HMM)表示。在模型更新中,扬声器HMM的参数是根据要更新的数据和当前参数值估算的。为了设置阈值,将每个扬声器的新阈值设置为初始值,该值作为传递给FA率的值,FA率高于相等错误率(错误拒绝率和错误接受率相等的值)。 ),它是根据更新数据计算得出的,并且随着扬声器HMM的更新而稳定地接近传递给相等错误率的值。使用文本相关的和提示文本的说话人验证实验(对二十个说话者进行验证)评估该方法的结果表明,与文本无关的类型的平均错误率下降了约40,对于文本提示的类型的平均错误率下降了约80与未更新模型和阈值时相比。

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