Retinex-inspired Unrolling with Cooperative Prior Architecture Search for Low-light Image Enhancement

计算机科学 颜色恒定性 人工智能 构造(python库) 建筑 图像(数学) 任务(项目管理) 深度学习 计算机视觉 工程类 艺术 视觉艺术 程序设计语言 系统工程
作者
Risheng Liu,Long Ma,Jiaao Zhang,Xin Fan,Zhongxuan Luo
标识
DOI:10.1109/cvpr46437.2021.01042
摘要

Low-light image enhancement plays very important roles in low-level vision areas. Recent works have built a great deal of deep learning models to address this task. However, these approaches mostly rely on significant architecture engineering and suffer from high computational burden. In this paper, we propose a new method, named Retinex-inspired Unrolling with Architecture Search (RUAS), to construct lightweight yet effective enhancement network for low-light images in real-world scenario. Specifically, building upon Retinex rule, RUAS first establishes models to characterize the intrinsic underexposed structure of low-light images and unroll their optimization processes to construct our holistic propagation structure. Then by designing a cooperative reference-free learning strategy to discover low-light prior architectures from a compact search space, RUAS is able to obtain a top-performing image enhancement network, which is with fast speed and requires few computational resources. Extensive experiments verify the superiority of our RUAS framework against recently proposed state-of-the-art methods. The project page is available at http://dutmedia.org/RUAS/.
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