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Automatic Arabic recognition system based on support vector machines (SVMs)

机译:基于支持向量机(SVM)的自动阿拉伯语识别系统

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Automatic Speech Recognition (ASR) for Arabic word has been developed in this work. The system has the ability to recognize word that is uttered by the speaker. In this paper, an approach using support vector machines (SVMs) for identifying Arabic word based on the speaker speech is proposed. The proposed SVMs-based Automatic Speech Recognition system is tested experimentally using words uttered by 20 native Arabic speakers. The Mel Frequency Cepstral Coefficient (MFCC) is adopted as a feature and later used as an input to the SVM-based identifier. The performance of the proposed technique has been investigated, especially for multiclass classification and it is found to produce good accuracy within short duration training time.
机译:这项工作已开发出阿拉伯语单词的自动语音识别(ASR)。该系统具有识别说话者说出的单词的能力。本文提出了一种基于支持者语音的支持向量机(SVM)识别阿拉伯语单词的方法。所提出的基于SVM的自动语音识别系统是使用20位以阿拉伯语为母语的用户说出的单词进行实验测试的。梅尔频率倒谱系数(MFCC)被用作一种功能,后来被用作基于SVM的标识符的输入。已经研究了所提出的技术的性能,特别是对于多类分类的性能,并且发现在短时训练时间内可以产生良好的准确性。

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