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Noisy image enhancements using deep learning techniques

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dc.contributor.author Daurenbekov, Kuanysh
dc.contributor.author Aitimova, Ulzada
dc.contributor.author Dauitbayeva, Aigul
dc.contributor.author Sankibayev, Arman
dc.contributor.author Tulegenova, Elmira
dc.contributor.author Yerzhan, Assel
dc.contributor.author Yerzhanova, Akbota
dc.contributor.author Mukhamedrakhimova, Galiya
dc.date.accessioned 2024-12-11T12:06:12Z
dc.date.available 2024-12-11T12:06:12Z
dc.date.issued 2024
dc.identifier.issn 2088-8708
dc.identifier.other DOI: 10.11591/ijece.v14i1.pp811-818
dc.identifier.uri http://rep.enu.kz/handle/enu/20110
dc.description.abstract This article explores the application of deep learning techniques to improve the accuracy of feature enhancements in noisy images. A multitasking convolutional neural network (CNN) learning model architecture has been proposed that is trained on a large set of annotated images. Various techniques have been used to process noisy images, including the use of data augmentation, the application of filters, and the use of image reconstruction techniques. As a result of the experiments, it was shown that the proposed model using deep learning methods significantly improves the accuracy of object recognition in noisy images. Compared to single-tasking models, the multi-tasking model showed the superiority of this approach in performing multiple tasks simultaneously and saving training time. This study confirms the effectiveness of using multitasking models using deep learning for object recognition in noisy images. The results obtained can be applied in various fields, including computer vision, robotics, automatic driving, and others, where accurate object recognition in noisy images is a critical component. 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 Deep learning ru
dc.subject Image processing ru
dc.subject Machine learning ru
dc.subject Multitasking learning model ru
dc.subject Noisy image ru
dc.title Noisy image enhancements using deep learning techniques ru
dc.type Article ru


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