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A Novel Approach to Increase the Robustness of Speaker Independent Arabic Speech Recognition

机译:一种提高扬声器独立阿拉伯语语音识别鲁棒性的新方法

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This paper- presents a two-tier approach through sequential application of intensity contours and formant tracks for accurate Arabic phoneme identification. The recognition system developed is based on data sets of 40 speakers for each Arabic phonetic sound. As a first step towards recognition of phonemes, the sound is sampled and then preprocessed to get formant frequencies and intensity contours. In order to automate the intensity and formant based feature extraction, a generalized regression neural network has been implemented, trained and validated on 21 input features.
机译:本文通过连续应用强度轮廓和用于准确的阿拉伯语音素识别的形成方法,提出了双层方法。 识别系统开发的是每个阿拉伯语音声音的40个扬声器的数据集。 作为迈向识别音素的第一步,对声音进行采样,然后预处理以获得格式频率和强度轮廓。 为了自动化基于强度和基于格式的特征提取,在21个输入特征上实现了广义回归神经网络,训练和验证。

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