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  • Bingöl Üniversitesi Teknik Bilimler Dergisi
  • Cilt: 6 Sayı: 2
  • Performance Comparison in R-CNN and Dalle-3 Based Image Processing

Performance Comparison in R-CNN and Dalle-3 Based Image Processing

Authors : Mehmet Akif Özdal
Pages : 1-26
View : 62 | Download : 98
Publication Date : 2025-12-23
Article Type : Research Paper
Abstract :Image processing involves the manipulation and analysis of digital images. Artificial intelligence encompasses technologies that mimic human intelligence. The integration of these two fields provides improvements in terms of efficiency and accuracy in applications such as automatic image recognition, object detection and classification. In this context, Faster R-CNN deep learning model and Dalle-3 artificial intelligence program were analyzed with descriptive statistics method using Python. In this process, object recognition and tracking abilities in the fields of art and design, educational technologies and security systems were evaluated in terms of creativity and limited to the Faster R-CNN deep learning model and Dalle-3 artificial intelligence by adopting comparative analysis and logical reasoning techniques from qualitative research methods. The findings show that deep learning and object detection technologies have significant potential to solve complex image processing problems and enhance creative problem solving capacities. The results reveal that these technologies have strategic advantages and the ability to provide creative solutions even under challenging visual factors, and provide recommendations for future use and development.
Keywords : Görüntü İşleme, Derin Öğrenme, Nesne Takibi, Yapay Zeka, R-CNN

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