LPUWF-LDM: Enhanced Latent Diffusion Model for Precise Late-phase UWF-FA Generation on Limited Dataset
Zhaojie Fang, Xiao Yu, Guanyu Zhou, Ke Zhuang, Yifei Chen, Ruiquan Ge,, Changmiao Wang, Gangyong Jia, Qing Wu, Juan Ye, Maimaiti Nuliqiman, Peifang, Xu, Ahmed Elazab

TL;DR
This paper presents LPUWF-LDM, a novel latent diffusion model that generates high-quality late-phase UWF-FA images from limited datasets, improving detail accuracy and realism in medical imaging.
Contribution
The study introduces a new latent diffusion framework with specialized modules for focusing on lesion areas, enhancing detail, and working effectively with limited data.
Findings
Achieves state-of-the-art results in late-phase UWF-FA generation.
Effectively reconstructs fine details and lesion regions.
Outperforms existing methods with limited datasets.
Abstract
Ultra-Wide-Field Fluorescein Angiography (UWF-FA) enables precise identification of ocular diseases using sodium fluorescein, which can be potentially harmful. Existing research has developed methods to generate UWF-FA from Ultra-Wide-Field Scanning Laser Ophthalmoscopy (UWF-SLO) to reduce the adverse reactions associated with injections. However, these methods have been less effective in producing high-quality late-phase UWF-FA, particularly in lesion areas and fine details. Two primary challenges hinder the generation of high-quality late-phase UWF-FA: the scarcity of paired UWF-SLO and early/late-phase UWF-FA datasets, and the need for realistic generation at lesion sites and potential blood leakage regions. This study introduces an improved latent diffusion model framework to generate high-quality late-phase UWF-FA from limited paired UWF images. To address the challenges as…
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Taxonomy
TopicsSpeech Recognition and Synthesis
MethodsDiffusion · Latent Diffusion Model · Focus
