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Pashto spoken digits recognition using spectral and prosodic based feature extraction

机译:使用基于谱和韵律特征提取的普什图语语音数字识别

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Automatic spoken digit recognition is one of the important areas in speech recognition. Local language spoken digits recognition is the next stage in this technological advancement. This paper presents a new approach for Pashto digits recognition using spectral and prosodic based feature extraction. Very little or almost no work has been done in Pashto spoken digit recognition. Thats why no standard Pashto digit corpus was available online. A database of 150 native speakers from 0 (sefor) to 9 (naha) including 75 males and 75 females is developed. Creation of corpus is one of the main contributions of this work. To the best of authors knowledge support vector machine (SVM) is used for the first time in Pashto digits classification and compared with K-nearest neighbor (KNN) classifier. Out of 150, 110 speakers feature set are used for training purposes and the remaining 40 speakers feature set are used for testing. The results obtained from the proposed method are very satisfactory and achieved 91.5% over all accuracy.
机译:自动语音数字识别是语音识别中的重要领域之一。本地语言语音数字识别是该技术进步的下一阶段。本文提出了一种新的基于谱和韵律特征提取的普什图数字识别方法。普什图语语音数字识别工作很少或几乎没有完成。这就是为什么在线没有标准普什图语语料库的原因。建立了一个数据库,该数据库包含0位(sefor)至9位(naha)的150位母语为母语的人,其中包括75位男性和75位女性。语料库的创建是这项工作的主要贡献之一。据作者介绍,知识支持向量机(SVM)首次用于普什图语数字分类,并与K近邻(KNN)分类器进行了比较。在150种扬声器中,有110种扬声器功能集用于培训,其余40种扬声器功能集用于测试。从所提出的方法获得的结果非常令人满意,并且在所有精度上均达到了91.5%。

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