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9-qubit quantum support vector machine to identify Parkinson's disease based upon speech indicators.

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parkinsons-QSVM

9-qubit quantum support vector machine to identify Parkinson's disease based upon speech indicators

The dataset can be found here: https://archive.ics.uci.edu/ml/datasets/Parkinsons

Data Set Information:

The data used in this study were gathered from 188 patients with PD (107 men and 81 women) with ages ranging from 33 to 87 (65.1±10.9) at the Department of Neurology in Cerrahpaşa Faculty of Medicine, Istanbul University. The control group consists of 64 healthy individuals (23 men and 41 women) with ages varying between 41 and 82 (61.1±8.9). During the data collection process, the microphone is set to 44.1 KHz and following the physician’s examination, the sustained phonation of the vowel /a/ was collected from each subject with three repetitions.

Attribute Information:

Various speech signal processing algorithms including Time Frequency Features, Mel Frequency Cepstral Coefficients (MFCCs), Wavelet Transform based Features, Vocal Fold Features and TWQT features have been applied to the speech recordings of Parkinson's Disease (PD) patients to extract clinically useful information for PD assessment.

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9-qubit quantum support vector machine to identify Parkinson's disease based upon speech indicators.

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