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Optimal parameters selected for automatic recognition of spoken Amazigh digits and letters using Hidden Markov Model Toolkit

机译:选择用于自动识别使用隐藏的Markov模型工具包的自动识别语音识别的最佳参数

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摘要

In this paper, we present our Amazigh automatic speech recognition system. Its realization is constructed with context-independent phonetic Hidden Markov Models. Many choices are made on this system, such as the number of states of the models, the type of emission probability densities associated with the states, and the representation of the signal by cepstral coefficients. The results of recognition of our system place it at a level of height performance comparable to that achieved by Markovian automatic speech recognition systems. Our system is designed to recognize 43 distinct isolated Amazigh words (33 letters and 10 digits). The recognition rate is then calculated for each digit and letter. The overall accuracy and word recognition rate for the whole database achieved 91.31% after extensive testing and change of the recognition parameters. The results obtained in this work are improved in association with our previous work concerning Amazigh spoken digits and letters automatic speech recognition, using Hidden Markov Model Toolkit.
机译:在本文中,我们介绍了我们的Amazigh自动语音识别系统。它的实现是用上下文相关的语音隐马尔可夫模型构建。在该系统上进行了许多选择,例如模型的状态数量,与状态相关的发射概率密度的类型,以及通过谱系数的信号的表示。识别我们的系统的结果将其置于高度性能水平,与Markovian自动语音识别系统实现的相当。我们的系统旨在识别43个不同的孤立的Amazigh字(33个字母和10位数)。然后计算每个数字和字母的识别率。在广泛的测试和识别参数的变化之后,整个数据库的整体准确性和单词识别率实现了91.31%。在本工作中获得的结果与我们以前的工作有关的有关Amazigh口语数字和字母自动语音识别的相关结果,使用隐藏的Markov模型工具包。

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