Neural network modeling of diagonal stride technique of highly qualified skiers with hearing impairments

dc.contributor.authorImasYevgeniy
dc.contributor.authorKhmelnitska Irene
dc.contributor.authorKhurtyk Dmytro
dc.contributor.authorKorobeynikov Georgiy
dc.contributor.authorSpivak Maryna
dc.contributor.authorKovtun Viktoriya
dc.date.accessioned2019-11-27T08:17:07Z
dc.date.available2019-11-27T08:17:07Z
dc.date.issued2018-07
dc.descriptionNeural network modeling of diagonal stride technique of highly qualified skiers with hearing impairments / Yevgeniy Imas, Irene Khmelnitska, Dmytro Khurtyk, Georgiy Korobeynikov, Maryna Spivak, Viktoriya Kovtun // Journal of Physical Education and Sport (JPES). - 2018. - № 2(181). - P. 1217-1222.uk_UA
dc.description.abstractAbstract: Correct rational sport technique is based on models that are developed according to the kinematic characteristics of motion. According to the literature review, the questions addressed by the model are essential for studying the improvement of sport technique but the lack of those models for deaf athletes is a problem particularly in crosscountry skiing. So the purpose of this research is to develop a model of the kinematic structure of classical diagonal stride technique of highly qualified cross-country skiers with hearing impairments on the basis of computer neural networks. Participants: 9 high skilled skiers with hearing impairments of the Ukrainian National Deaflympic team on skiing. Results: The modeling kinematic indicators of the diagonal stride technique of highly qualified skiers with hearing impairments have been identified. Seven neural networks of multilayer perceptron type have been developed as a simulation of the velocity of the skier’s general center of mass in the movement cycle. On a basis of the best model, the errors in the diagonal stride technique of highly qualified skiers with hearing impairments were corrected. Conclusions: the neural network modeling in the process of technical performance improving of highly skilled skiers with hearing impairments is proved. Neural network modeling has allowed increasing the resultant velocity of skier’s general center of mass in the cycle of motion due to accounting skier’s individual biomechanical characteristics.uk_UA
dc.identifier.issn2247 - 806X
dc.identifier.udkhttp://reposit.uni-sport.edu.ua/handle/787878787/2031
dc.language.isoenuk_UA
dc.publisherJournal of Physical Education and Sportuk_UA
dc.subjectskieruk_UA
dc.subjecthearing impairmentuk_UA
dc.subjecttechniqueuk_UA
dc.subjectmodelinguk_UA
dc.subjectneural networkuk_UA
dc.titleNeural network modeling of diagonal stride technique of highly qualified skiers with hearing impairmentsuk_UA
dc.title.alternativeНейромережеве моделювання діагональної крокової техніки висококваліфікованих лижників з порушеннями слухуuk_UA
dc.typeArticleuk_UA

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