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Analysis and Classification of Voice Pathologies using Glottal Signal Parameters with Recurrent Neural Networks and SVM

机译:具有经常性神经网络和SVM的光学信号参数的语音病理分析与分类

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The classification of voice diseases has many applications in health, in diseases treatment, and in the design of new medical equipment for helping doctors in diagnosing pathologies related to the voice. This work uses the parameters of the glottal signal to help the identification of two types of voice disorders related to the pathologies of the vocal folds: nodule and unilateral paralysis. The parameters of the glottal signal are obtained through a known inverse filtering method and they are used as inputs to an Artificial Neural Network, RNN, LSTM, a Support Vector Machine and also to a Hidden Markov Model, to obtain the classification, and to compare the results, of the voice signals into three different groups: speakers with nodule in the vocal folds; speakers with unilateral paralysis of the vocal folds; and speakers with normal voices, that is, without nodule or unilateral paralysis present in the vocal folds. The database is composed of 248 voice recordings (signals of vowels production) containing samples corresponding to the three groups mentioned. In this study a larger database was used for the classification when compared with similar studies, and its classification rate is superior to other studies, reaching 99.2%.
机译:语音疾病的分类在疾病治疗中具有许多健康的应用,以及用于帮助医生在诊断与声音相关的病理中的医生设计的新医疗设备。这项工作采用了光泽信号的参数来帮助鉴定与声带折叠病理有关的两种语音障碍:结节和单侧瘫痪。通过已知的逆滤波方法获得光学信号的参数,并且它们被用作人工神经网络,RNN,LSTM,支持向量机等的输入,也可以获得隐藏的马尔可夫模型,以获得分类,并比较结果,语音信号分为三个不同的群体:声音折叠中的扬声器;具有单侧瘫痪的演讲者的声带;和常规声音的扬声器,即没有结节或在声带中存在单侧瘫痪。数据库由248个录音(元音生产信号)组成,其中包含对应于提到的三组的样品。在本研究中,与类似研究相比,较大的数据库用于分类,其分类率优于其他研究,达到99.2%。

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