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Edge Detection Method Based on Neural Networks for COMS MI Images KCI 등재 SCOPUS

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  • URLhttps://db.koreascholar.com/Article/Detail/319482
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한국우주과학회 (The Korean Space Science Society)
초록

Communication, Ocean And Meteorological Satellite (COMS) Meteorological Imager (MI) images are processed for radiometric and geometric correction from raw image data. When intermediate image data are matched and compared with reference landmark images in the geometrical correction process, various techniques for edge detection can be applied. It is essential to have a precise and correct edged image in this process, since its matching with the reference is directly related to the accuracy of the ground station output images. An edge detection method based on neural networks is applied for the ground processing of MI images for obtaining sharp edges in the correct positions. The simulation results are analyzed and characterized by comparing them with the results of conventional methods, such as Sobel and Canny filters.

저자
  • Jin-Ho Lee(Korea Aerospace Research Institute) Corresponding Author
  • Eun-Bin Park(Korea Aerospace Research Institute)
  • Sun-Hee Woo(Korea Aerospace Research Institute)