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A novel speaker identification system using feed forward neural networks

机译:一种使用前馈神经网络的新型说话人识别系统

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This paper proposes a novel speaker identification system which uses Mel Frequency Cepstral Coefficients (MFCC) and Feed Forward Neural Networks (FFNN) for feature extraction and speaker classification respectively. Fuzzy C Mean Clustering (FCM) method is also used against the extracted features from the speech, which facilitates in grouping large amount of data. The efficiency of the system is enhanced furthermore by identifying the gender of the speaker, before the actual speaker identification process, using another FFNN. As a result, the system shows better performance in terms of computational cost and real time identification.
机译:本文提出了一种新颖的说话人识别系统,该系统使用梅尔频率倒谱系数(MFCC)和前馈神经网络(FFNN)分别进行特征提取和说话人分类。还针对从语音中提取的特征使用了模糊C均值聚类(FCM)方法,这有助于对大量数据进行分组。通过在实际说话人识别过程之前使用另一个FFNN识别说话人的性别,进一步提高了系统的效率。结果,该系统在计算成本和实时识别方面显示出更好的性能。

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