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논문 기본 정보

자료유형
학술저널
저자정보
GEONHO HWANG (SEOUL NATIONAL UNIVERSITY) CHANG HOON SONG (SEOUL NATIONAL UNIVERSITY) TAE KYUNG LEE (SEOUL NATIONAL UNIVERSITY) HOJUN NA (SEOUL NATIONAL UNIVERSITY) MYUNGJOO KANG (SEOUL NATIONAL UNIVERSITY)
저널정보
한국산업응용수학회 JOURNAL OF THE KOREAN SOCIETY FOR INDUSTRIAL AND APPLIED MATHEMATICS Journal of the Korean Society for Industrial and Applied Mathematics Vol.27 No.1
발행연도
2023.3
수록면
56 - 74 (19page)

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초록· 키워드

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In order to obtain practical and high-quality satellite images containing highfrequency components, a large aperture optical system is required, which has a limitation in that it greatly increases the payload weight. As an attempt to overcome the problem, many multi-aperture optical systems have been proposed, but in many cases, these optical systems do not include high-frequency components in all directions, and making such an high-quality image is an ill-posed problem. In this paper, we use deep learning to overcome the limitation. A deep learning model receives low-quality images as input, estimates the Point Spread Function, PSF, and combines them to output a single high-quality image.We model images obtained from three rectangular apertures arranged in a regular polygon shape. We also propose the Modulation Transfer Function Loss, MTF Loss, which can capture the high-frequency components of the images. We present qualitative and quantitative results obtained through experiments.

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ABSTRACT
1. INTRODUCTION
2. RELATED WORKS
3. BACKGROUNDS
4. METHODS
5. EXPERIMENTS
6. CONCLUSION
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