从可见光到FIR的可靠伪标签域自适应

Juki Tanimoto, Haruya Kyutoku, Keisuke Doman, Y. Mekada
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引用次数: 0

摘要

使用可见光相机的深度学习目标检测模型容易受到天气和光照条件的影响,而使用远红外相机的深度学习目标检测模型受此类条件的影响较小。本文提出了一种利用可见光相机伪标签的域自适应方法,用于远红外图像的精确目标检测。我们的方法将可见光域检测结果投影到远红外图像上,并将其作为伪标签用于训练远红外检测模型。我们通过实验证实了我们方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Domain Adaptation from Visible-Light to FIR with Reliable Pseudo Labels
Deep learning object detection models using visible-light cameras are easily affected by weather and lighting conditions, whereas those using far-infrared cameras are less affected by such conditions. This paper proposes a domain adaptation method using pseudo labels from a visible-light camera toward an accurate object detection from far-infrared images. Our method projects visible light-domain detection results onto far-infrared images, and uses them as pseudo labels for training a far-infrared detection model. We confirmed the effectiveness of our method through experiments.
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