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Pattern recognition with applications to pre-diagnosis of pathologies in the vocal tract

机译:模式识别与应用程序在声道中的病理预诊断

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For the detection of laryngeal pathologies, in general medical examinations, for example laryngoscopy and stroboscopy, are adopted. Besides being considered invasive and uncomfortable procedures, they are made only by medical request when the diseases are already on advanced levels. In order to perform a computational pre-diagnosis of such conditions, this paper presents a non-invasive technique in which three classifiers are tested and compared: Euclidian distance, RBF Neural Network with the Gaussian kernel, and RBF Neural Network with the modified Gaussian kernel. Based on a database of normal and pathological voices, tests that demonstrate the effectiveness of the proposed technique, which can be implemented in real-time, were performed.
机译:为了检测喉部病理学,在一般的体检中,采用例如喉镜检查和频闪。除了被认为是侵入性和不舒服的程序,当疾病已经在先进水平时,它们只能通过医疗要求制作。为了进行计算的这种条件的计算预诊断,本文介绍了一种非侵入性技术,其中测试了三个分类器和比较:欧几里德距离,带有高斯内核的RBF神经网络,以及具有修改的高斯内核的RBF神经网络。基于正常和病理声音的数据库,进行了证明所提出的技术的有效性的测试,可以实时实现。

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