25 May 2021 Effective method for fusing infrared and visible images
Yu Fu, Xiao-Jun Wu, Josef Kittler
Author Affiliations +
Abstract

Recently, deep learning has become a rapidly developing tool in the field of image fusion. An innovative image fusion method for fusing infrared images and visible-light images is proposed. The backbone network is an autoencoder. Different from previous autoencoders, the information extraction capability of the encoder is enhanced, and the ability to select the most effective channels in the decoder is optimized. First, the features of the source image are extracted during the encoding process. Then, a new effective fusion strategy is designed to fuse these features. Finally, the fused image is reconstructed by the decoder. Compared with the existing fusion methods, the proposed algorithm achieves state-of-the-art performance in both objective evaluation and visual quality.

© 2021 SPIE and IS&T 1017-9909/2021/$28.00© 2021 SPIE and IS&T
Yu Fu, Xiao-Jun Wu, and Josef Kittler "Effective method for fusing infrared and visible images," Journal of Electronic Imaging 30(3), 033013 (25 May 2021). https://doi.org/10.1117/1.JEI.30.3.033013
Received: 24 February 2021; Accepted: 5 May 2021; Published: 25 May 2021
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CITATIONS
Cited by 4 scholarly publications.
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KEYWORDS
Image fusion

Infrared imaging

Infrared radiation

Visible radiation

Computer programming

Convolution

Feature extraction

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