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Nonlinear glottal flow features in Parkinson's disease detection

机译:帕金森病检测中的非线性引光流特征

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As a methodology for automatic detection of Parkinson's disease (PD), it is proposed the estimation of the different glottal flow features considering nonlinear behavior of the vocal folds. This paper evaluates the discrimination capability of set with eight different Nonlinear Dynamic (NLD) features. The experiment presented considering the five Spanish vowels uttered by 50 People with PD (PPD) and 50 Healthy Controls (HC). According to the results, it is possible to achieve accuracy rates of up to 75.3% when only the vowel |e| is considered.
机译:作为自动检测帕金森病(Pd)的方法,提出了考虑声带折叠非线性行为的不同引擎流特征的估计。本文评估了八种不同非线性动态(NLD)功能集的辨别能力。考虑到50人用Pd(PPD)和50个健康对照(HC)发出的五种西班牙元音的实验。根据结果​​,当只有元音时,可以实现高达75.3%的精度率被认为。

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