This study presents a new Parkinson’s disease diagnosis technique based on wavelets extracted features and machine learning paradigms. The present-day diagnosis techniques suffer from low diagnosis accuracy and also require the patient to go to a medical facility, where the diagnosis is done by a specialist. In this work, we propose an automatic diagnosis method where by, all the patient has to do is to type some keys on their keyboard, and the algorithm will calculate the latency time, flight time and hold time of each key pressed, to make a diagnosis of Parkinson’s disease. We use several wavelets to extract some features that are classified into Parkinson’s disease or non-Parkinson’s disease. The results are very encouraging and we obtain a classification accuracy of up to 100% in some of the cases, using a ten-fold cross-validation technique. Wavelets are a tool that can be used to complement and improve the detection of Parkinson’s disease. These results will permit the amelioration of some state-of-the-art methods which use a similar technique to detect Parkinson’s disease.
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Institute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, MoscowInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Obukhov Y.V.
Gabova A.V.
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Institute of Higher Nervous Activity and Neurophysiology, Russian Academy of Sciences, ul. Butlerova 5a, MoscowInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Gabova A.V.
Zaljalova Z.A.
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Kazan Federal University, ul. Kremlevskaya 18, KazanInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Zaljalova Z.A.
Illarioshkin S.N.
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Neurology Research Center, Russian Academy of Sciences, Volokolamskoe sh. 80, MoscowInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Illarioshkin S.N.
Karabanov A.V.
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Neurology Research Center, Russian Academy of Sciences, Volokolamskoe sh. 80, MoscowInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Karabanov A.V.
Korolev M.S.
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Institute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, MoscowInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Korolev M.S.
Kuznetsova G.D.
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Institute of Higher Nervous Activity and Neurophysiology, Russian Academy of Sciences, ul. Butlerova 5a, MoscowInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Kuznetsova G.D.
Morozov A.A.
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Institute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, MoscowInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Morozov A.A.
Nigmatullina R.R.
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Kazan Federal University, ul. Kremlevskaya 18, KazanInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Nigmatullina R.R.
Obukhov K.Y.
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Moscow Institute of Physics and Technology, per. Institutskii 9, DolgoprudnyiInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow
Obukhov K.Y.
Sushkova O.S.
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Institute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, MoscowInstitute of Radio Engineering and Electronics, Russian Academy of Sciences, ul. Mokhovaya 11, Moscow