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Multi-branch Semantic GAN for Infrared Image Generation from Optical Image

机译:用于从光学图像生成红外图像的多分支语义GAN

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摘要

Infrared remote sensing images capture the information of ground objects by their thermal radiation differences. However, the facility required for infrared imaging is not only priced high but also demands strict testing conditions. Thus it becomes an important topic to seek a way to convert easily-obtained optical remote sensing images into infrared remote sensing images. The conventional approaches cannot generate satisfactory infrared images due to the challenge of this task and many unknown parameters to be determined. In this paper, we proposed a novel multi-branch semantic GAN (MBS-GAN) for infrared image generation from the optical image. In the proposed model, we draw on the idea from Ensemble Learning and propose to use more than one generator to synthesize the infrared images with different semantic information. Specially, we integrate scene classification into image transformation to train models with scene information, which assists learned generation models to capture more semantic characteristics. The generated images are evaluated by PSNR, SSIM and cosine similarity. The experimental results prove that this proposed method is able to generate images retaining the infrared radiation characteristics of ground objects and performs well in converting optical images to infrared images.
机译:红外遥感图像通过其热辐射差异捕获地面物体的信息。但是,红外成像所需的设备不仅价格昂贵,而且要求严格的测试条件。因此,寻求一种将容易获得的光学遥感图像转换成红外遥感图像的方法成为重要的课题。由于此任务的挑战以及许多待确定的未知参数,常规方法无法生成令人满意的红外图像。在本文中,我们提出了一种新颖的多分支语义GAN(MBS-GAN),用于从光学图像生成红外图像。在提出的模型中,我们借鉴了Ensemble Learning的想法,并建议使用不止一个生成器来合成具有不同语义信息的红外图像。特别地,我们将场景分类集成到图像转换中,以使用场景信息训练模型,这有助于学习的生成模型捕获更多的语义特征。通过PSNR,SSIM和余弦相似度评估生成的图像。实验结果证明,该方法能够生成保留地面物体红外辐射特征的图像,并且在将光学图像转换为红外图像方面表现良好。

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