Fundus image enhancement through direct diffusion bridges직접 확산 모델을 이용한 안저 사진 품질 향상

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We propose FD3, a fundus image enhancement method based on direct diffusion bridges, which can cope with a wide range of complex degradations, including haze, blur, noise, and shadow. We first propose a synthetic forward model through a human feedback loop with board-certified ophthalmologists for maximal quality improvement of low-quality in-vivo images. Using the proposed forward model, we train a robust and flexible diffusion-based image enhancement network that is highly effective as a stand-alone method, unlike previous diffusion model-based approaches which act only as a refiner on top of pre-trained models. Through extensive experiments, we show that FD3 establishes the new state-of-the-art not only on synthetic degradations but also on in vivo studies with low-quality fundus photos taken from patients with cataracts or small pupils.
Advisors
예종철researcher
Description
한국과학기술원 :김재철AI대학원,
Publisher
한국과학기술원
Issue Date
2024
Identifier
325007
Language
eng
Description

학위논문(석사) - 한국과학기술원 : 김재철AI대학원, 2024.2,[iii, 28 p. :]

Keywords

확산 모델▼a안저 사진 품질 향상▼a직접 확산 모델; Diffusion model▼aFundus image enhancement▼aDirect diffusion bridge

URI
http://hdl.handle.net/10203/321351
Link
http://library.kaist.ac.kr/search/detail/view.do?bibCtrlNo=1096056&flag=dissertation
Appears in Collection
AI-Theses_Master(석사논문)
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