A survey of infrared and visual image fusion methods

图像融合 计算机科学 保险丝(电气) 冗余(工程) 人工智能 计算机视觉 夜视 图像质量 融合 领域(数学) 图像(数学) 数学 物理 语言学 哲学 量子力学 纯数学 操作系统
作者
Xin Jin,Qian Jiang,Shaowen Yao,Dongming Zhou,Rencan Nie,Jinjin Hai,Kangjian He
出处
期刊:Infrared Physics & Technology [Elsevier]
卷期号:85: 478-501 被引量:241
标识
DOI:10.1016/j.infrared.2017.07.010
摘要

Abstract Infrared (IR) and visual (VI) image fusion is designed to fuse multiple source images into a comprehensive image to boost imaging quality and reduce redundancy information, which is widely used in various imaging equipment to improve the visual ability of human and robot. The accurate, reliable and complementary descriptions of the scene in fused images make these techniques be widely used in various fields. In recent years, a large number of fusion methods for IR and VI images have been proposed due to the ever-growing demands and the progress of image representation methods; however, there has not been published an integrated survey paper about this field in last several years. Therefore, we make a survey to report the algorithmic developments of IR and VI image fusion. In this paper, we first characterize the IR and VI image fusion based applications to represent an overview of the research status. Then we present a synthesize survey of the state of the art. Thirdly, the frequently-used image fusion quality measures are introduced. Fourthly, we perform some experiments of typical methods and make corresponding analysis. At last, we summarize the corresponding tendencies and challenges in IR and VI image fusion. This survey concludes that although various IR and VI image fusion methods have been proposed, there still exist further improvements or potential research directions in different applications of IR and VI image fusion.

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