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Speech Recognition System Based on Integrating Feature and HMM

机译:基于集成特征和HMM的语音识别系统

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Automatic speech processing systems are employed more and more often in real environments. However, they are confronted with high ambient noise levels and their performance degrades drastically. An robust and practical speech recognition system using integrating feature and Hidden Markov Model(HMM) was proposed aiming at improving speech recognition rate in noise environmental conditions. It integrated different speech features into the system, based on global optimization, a new Genetic Algorithm(GA) for training HMM was proposed. The system is comprised of three main sections, a pre-processing section, a feature extracting section and a HMM processing section. Six chinese vowels were taken as the experimental data. Recognition experiments show that the method is effective and high speed and accuracy for speech recognition.
机译:在真实环境中越来越多地使用自动语音处理系统。但是,它们面临着很高的环境噪声水平,其性能急剧下降。提出了一种结合特征和隐马尔可夫模型(HMM)的鲁棒实用语音识别系统,旨在提高噪声环境下的语音识别率。该算法将不同的语音特征集成到系统中,基于全局优化,提出了一种新的遗传算法来训练HMM。该系统由三个主要部分组成:预处理部分,特征提取部分和HMM处理部分。以六个汉语元音为实验数据。识别实验表明,该方法是有效的,具有较高的识别速度和准确性。

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