Research on Multimodal Image Fusion Target Detection Algorithm Based on Generative Adversarial Network
In this paper, we propose a target detection algorithm based on adversarial discriminative domain adaptation for infrared and visible image fusion using unsupervised learning methods to reduce the differences between multimodal image information. Firstly, this paper improves the fusion model based o...
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| Published in | Wireless communications and mobile computing Vol. 2022; no. 1 |
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| Main Authors | , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
Oxford
Hindawi
2022
John Wiley & Sons, Inc |
| Subjects | |
| Online Access | Get full text |
| ISSN | 1530-8669 1530-8677 1530-8677 |
| DOI | 10.1155/2022/1740909 |
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| Abstract | In this paper, we propose a target detection algorithm based on adversarial discriminative domain adaptation for infrared and visible image fusion using unsupervised learning methods to reduce the differences between multimodal image information. Firstly, this paper improves the fusion model based on generative adversarial network and uses the fusion algorithm based on the dual discriminator generative adversarial network to generate high-quality IR-visible fused images and then blends the IR and visible images into a ternary dataset and combines the triple angular loss function to do migration learning. Finally, the fused images are used as the input images of faster RCNN object detection algorithm for detection, and a new nonmaximum suppression algorithm is used to improve the faster RCNN target detection algorithm, which further improves the target detection accuracy. Experiments prove that the method can achieve mutual complementation of multimodal feature information and make up for the lack of information in single-modal scenes, and the algorithm achieves good detection results for information from both modalities (infrared and visible light). |
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| AbstractList | In this paper, we propose a target detection algorithm based on adversarial discriminative domain adaptation for infrared and visible image fusion using unsupervised learning methods to reduce the differences between multimodal image information. Firstly, this paper improves the fusion model based on generative adversarial network and uses the fusion algorithm based on the dual discriminator generative adversarial network to generate high-quality IR-visible fused images and then blends the IR and visible images into a ternary dataset and combines the triple angular loss function to do migration learning. Finally, the fused images are used as the input images of faster RCNN object detection algorithm for detection, and a new nonmaximum suppression algorithm is used to improve the faster RCNN target detection algorithm, which further improves the target detection accuracy. Experiments prove that the method can achieve mutual complementation of multimodal feature information and make up for the lack of information in single-modal scenes, and the algorithm achieves good detection results for information from both modalities (infrared and visible light). |
| Author | Yang, Haibo Sun, Jilong Wang, Chao Zhu, Yuancai Zhai, Jingxuan Wu, Zhaoli Wu, Xuehan Yang, Zhiwei |
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| Cites_doi | 10.1007/978-3-319-48680-2_5 10.1109/tcsvt.2017.2719122 10.1109/CVPR.2016.465 10.1016/j.patcog.2018.08.005 10.21629/JSEE.2018.05.07 10.1109/tip.2016.2614135 10.1109/tip.2019.2959253 10.1080/19475705.2016.1238852 10.1109/tii.2016.2542043 10.1109/tip.2021.3049959 10.1155/2021/1549772 10.1109/tip.2017.2682981 10.1109/CVPR.2017.75 10.1016/j.inffus.2018.11.017 10.1109/tsmc.1977.4309681 10.1109/tip.2017.2711277 |
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| Copyright | Copyright © 2022 Zhaoli Wu et al. Copyright © 2022 Zhaoli Wu et al. This work is licensed under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. |
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| SubjectTerms | Accuracy Algorithms Classification Computer vision Deep learning Generative adversarial networks Image processing Image quality Infrared imagery Light Neural networks Object recognition Semantics Target detection Unsupervised learning |
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| Title | Research on Multimodal Image Fusion Target Detection Algorithm Based on Generative Adversarial Network |
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