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dc.contributor.authorТолок, Ігор-
dc.contributor.authorLienkov, S.-
dc.contributor.authorShvorov, S.-
dc.contributor.authorSieliukov, O.-
dc.contributor.authorLytvynenkо, N.-
dc.contributor.authorDavydenko, T.-
dc.date.accessioned2024-10-17T06:48:07Z-
dc.date.available2024-10-17T06:48:07Z-
dc.date.issued2022-11-
dc.identifier.citation4th International Workshop on Modern Machine Learning Technologies and Data Scienceuk_UA
dc.identifier.urihttp://repositsc.nuczu.edu.ua/handle/123456789/20832-
dc.description.abstractThe technologies of artificial intelligence (AI) are aimed at creating a "thinking machine", that is, a computer system with human-like intelligence. One of the current directions of intellectualization is the use of neural networks with the implementation of their deep learning. The paper analyzes modern approaches to learning neural networks and investigates the possibility of using genetic algorithms to solve the problems of deep learning of neural networks. The purpose of the paper is to develop the scientific and methodological foundations of learning neural networks using genetic algorithms. To achieve the goal, the following tasks were solved: the justification of the approach to learning neural networks using genetic algorithms was carried out and the task of optimizing the learning of neural networks using agenetic algorithm was solved using the example of forecasting the time series of the environmental temperature by the method of shortest descent. A biotechnical complex exposed to external disturbances (external temperature) was chosen as the object on that relevantresearch was conducted.uk_UA
dc.language.isoenuk_UA
dc.publisherCEUR Workshop Proceedingsuk_UA
dc.subjectGenetic algorithmuk_UA
dc.subjectgenesuk_UA
dc.subjectchromosomesuk_UA
dc.subjectoptimal solutionuk_UA
dc.subjectdeep learninguk_UA
dc.subjectsearch domainuk_UA
dc.subjectevolution timeuk_UA
dc.titleDeep Learning of Neural Networks Using Genetic Algorithmsuk_UA
dc.typeArticleuk_UA
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