Investigation of Dynamic Time Warping and Neural Network for Arabic phonemes recognition based Malay speakers

Ali Abd Almisreb, A. F. Abidin, N. Tahir
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引用次数: 2

Abstract

Speech recognition techniques for Arabic language are still in its infant stage and gain much attention recently. This is due to Arabic as the language of the Holy book of Muslims; hence it has attracted attention of native speakers and other Muslims who are non-native Arabic speakers as they need to use Arabic language while performing worships. Therefore, this research investigated Arabic phonemes recognition specifically for Malay speakers. The proposed methods are evaluated and examined utilizing a corpus which contains Arabic phoneme tokens with Mel Frequency Cepstral Coefficients (MFCC) as feature extraction. Next, recognition process is attained using Dynamic Time Warping (DTW) and Pattern Recognition Neural Network (PRNN) for verifying the similarity between the Arabic phonemes. In this study, three methods are used to evaluate the recognition stage. Firstly, DTW and PRNN are evaluated solely followed by combination of both. Results attained showed that the overall recognition rate of this method is 89.92% for DTW individually, 94% for PRNN solely whilst for fusion of DTW and PRNN the recognition rate attained is 98.28% and thus proven that fusion of DTW and PRNN can be utilised for recognition of Arabic phonemes.
基于马来语的阿拉伯语音位识别的动态时间翘曲和神经网络研究
阿拉伯语语音识别技术目前还处于起步阶段,受到了广泛的关注。这是因为阿拉伯语是穆斯林圣书的语言;因此,它引起了母语为阿拉伯语的人和其他非母语为阿拉伯语的穆斯林的注意,因为他们在进行礼拜时需要使用阿拉伯语。因此,本研究专门针对马来语使用者的阿拉伯语音素识别进行了调查。利用一个包含阿拉伯音素标记的语料库对所提出的方法进行了评估和检验,该语料库具有Mel频率频谱系数(MFCC)作为特征提取。其次,使用动态时间翘曲(DTW)和模式识别神经网络(PRNN)验证阿拉伯文音素之间的相似性,从而实现识别过程。在本研究中,使用了三种方法来评估识别阶段。首先对DTW和PRNN进行单独评价,然后将两者结合起来进行评价。结果表明,该方法对DTW单独的识别率为89.92%,对PRNN单独的识别率为94%,对DTW和PRNN的融合识别率为98.28%,证明了DTW和PRNN的融合可以用于阿拉伯语音素的识别。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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