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Fire detection using deep learning methods

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dc.contributor.author Bayegizova, Aigulim
dc.contributor.author Abdikerimova, Gulzira
dc.contributor.author Kaliyeva, Samal
dc.contributor.author Shaikhanova, Aigul
dc.contributor.author Shangytbayeva, Gulmira
dc.contributor.author Sugurova, Laura
dc.contributor.author Sugur, Zharkynay
dc.contributor.author Saimanova, Zagira
dc.date.accessioned 2024-12-10T09:41:31Z
dc.date.available 2024-12-10T09:41:31Z
dc.date.issued 2024
dc.identifier.issn 2088-8708
dc.identifier.other DOI: 10.11591/ijece.v14i1.pp547-555
dc.identifier.uri http://rep.enu.kz/handle/enu/20037
dc.description.abstract Fire detection is an important task in the field of safety and emergency prevention. In recent years, deep learning methods have shown high efficiency in solving various computer vision problems, including detecting objects in images. In this paper, monitoring wildfires was considered, which allows you to quickly respond to them and prevent their spread using deep learning methods. For the experiment, images from the satellite and images from the FireWatch sensor were taken as initial data. In this work, the deep learning algorithms you only look once (YOLO), convolutional neural network (CNN), and fast recurrent neural network (FastRNN) were considered, which makes it possible to determine the accuracy of a natural fire. As a result of the experiments, an automated fire recognition algorithm using YOLOv4 deep learning methods was created. It is expected that the results of the study will show that deep learning methods can be successfully applied to detect fire in images. This may lead to the development of automated monitoring systems capable of quickly and reliably detecting fire situations, which will help improve safety and reduce the risk of fires. ru
dc.language.iso en ru
dc.publisher International Journal of Electrical and Computer Engineering ru
dc.relation.ispartofseries Vol. 14, No. 1;
dc.subject Classification ru
dc.subject Clustering ru
dc.subject Deep learning ru
dc.subject Machine learning ru
dc.subject Natural fire ru
dc.title Fire detection using deep learning methods ru
dc.type Article ru


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