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Automatic detection of neurological disordered voices using mel cepstral coefficients and neural networks

机译:使用梅尔倒谱系数和神经网络自动检测神经系统混乱的声音

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Acoustical voice analyses and measurement methods might provide useful biomarkers for the diagnosis of neurological disordered voices. This paper presents a method for automatic detection of neurological disordered voices like Parkinson's disease, cerebellar demyelination and stroke using the Mel-frequency cepstral coefficient (MFCC) features. The features extracted were given to a multilayer neural network and trained to classify whether the voice was neurological disordered or normal subject. There are no risks involved in capturing and analysis of voice signals as it is noninvasive by nature and in carefully controlled circumstances, it can provide a large amount of meaningful data. The data collected in the present work consist of 137 sustained vowel phonations (/ah/), among them 73 phonations are from patients suffering from different neurological diseases and 64 phonations from controlled subjects including both male and female subjects. Thirteen MFCC features are used as input to the optimally designed artificial neural network (ANN) for classification. 112 phonations were used to train the network and 25 phonations for testing. The best classification accuracy achieved was 92%.
机译:声音语音分析和测量方法可能为诊断神经系统混乱的声音提供有用的生物标记。本文提出了一种利用梅尔频率倒谱系数(MFCC)功能自动检测神经系统异常声音(如帕金森氏病,小脑脱髓鞘和中风)的方法。将提取的特征提供给多层神经网络,并对其进行训练以对语音是神经系统疾病还是正常对象进行分类。语音信号的捕获和分析没有风险,因为它本质上是非侵入性的,并且在精心控制的情况下,它可以提供大量有意义的数据。当前工作中收集的数据包括137个持续元音发声(/ ah /),其中73种发声来自患有不同神经系统疾病的患者,64种发声来自受控对象,包括男性和女性。十三种MFCC功能被用作优化设计的人工神经网络(ANN)进行分类的输入。 112个语音用于训练网络,而25个语音用于测试。达到的最佳分类精度为92%。

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