Paper
28 September 2016 Quality improvement of diagnosis of the electromyography data based on statistical characteristics of the measured signals
Karina G. Selivanova, Oleg G. Avrunin, Sergii M. Zlepko, Sergii O. Romanyuk, Natalia I. Zabolotna, Andrzej Kotyra, Paweł Komada, Saule Smailova
Author Affiliations +
Proceedings Volume 10031, Photonics Applications in Astronomy, Communications, Industry, and High-Energy Physics Experiments 2016; 100312R (2016) https://doi.org/10.1117/12.2248953
Event: Photonics Applications in Astronomy, Communications, Industry, and High-Energy Physics Experiments 2016, 2016, Wilga, Poland
Abstract
Research and systematization of motor disorders, taking into account the clinical and neurophysiologic phenomena, are important and actual problem of neurology. The article describes a technique for decomposing surface electromyography (EMG), using Principal Component Analysis. The decomposition is achieved by a set of algorithms that uses a specially developed for analyze EMG. The accuracy was verified by calculation of Mahalanobis distance and Probability error.
© (2016) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Karina G. Selivanova, Oleg G. Avrunin, Sergii M. Zlepko, Sergii O. Romanyuk, Natalia I. Zabolotna, Andrzej Kotyra, Paweł Komada, and Saule Smailova "Quality improvement of diagnosis of the electromyography data based on statistical characteristics of the measured signals", Proc. SPIE 10031, Photonics Applications in Astronomy, Communications, Industry, and High-Energy Physics Experiments 2016, 100312R (28 September 2016); https://doi.org/10.1117/12.2248953
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Cited by 1 scholarly publication.
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KEYWORDS
Electromyography

Principal component analysis

Mahalanobis distance

Signal processing

Action potentials

Algorithm development

Error analysis

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