Classification of remote sensing data with deep learning
2020
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Advisor: Doç. Dr. Murat Uysal
Abstract (EN)
In this research, Deep Learning networks were proposed for the problem of automatic classification of urban objects from images obtained through remote sensing platforms, and the proposed networks were compared among themselves on issues such as accuracy, time use and network complexity. Today, proven architectures have been used in semantic segmentation such as UNet, SegNet and PSPNet with the thought that Deep Learning architectures developed for semantic segmentation will be effective in automatic classification of urban objects in remote sensed images. The images used for classification are Vaihingen and Potsdam data made available by the International Society for Photogrammetry and Remote Sensing (ISPRS). The free cloud system, Google Colab, has been used in the training and testing part of the Vaihingen dataset, and a great alternative has been offered to reduce costs in the training of such networks. A workstation was used during the training and testing phase of the Potsdam dataset. All the codes in the study were written using the Python software language. When the results obtained from the study are examined; SegNet performed more successfully in both data sets. Results similar to SegNet were obtained from UNet. However, PSPNet appears to be more rude than the other two architectures.
Author
Dr. Mustafa Emre Döş
How to Cite
Mustafa Emre Döş (Master Thesis). Classification of remote sensing data with deep learning, 2020, Afyon Kocatepe University.
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