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Bottom-up and Layerwise Domain Adaptation for Pedestrian Detection in Thermal Images

机译:热图像中的人行语检测的自下而上和层域适应

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Pedestrian detection is a canonical problem for safety and security applications, and it remains a challenging problem due to the highly variable lighting conditions in which pedestrians must be detected. This article investigates several domain adaptation approaches to adapt RGB-trained detectors to the thermal domain. Building on our earlier work on domain adaptation for privacy-preserving pedestrian detection, we conducted an extensive experimental evaluation comparing top-down and bottom-up domain adaptation and also propose two new bottom-up domain adaptation strategies. For top-down domain adaptation, we leverage a detector pre-trained on RGB imagery and efficiently adapt it to perform pedestrian detection in the thermal domain. Our bottom-up domain adaptation approaches include two steps: first, training an adapter segment corresponding to initial layers of the RGB-trained detector adapts to the new input distribution; then, we reconnect the adapter segment to the original RGB-trained detector for final adaptation with a top-down loss. To the best of our knowledge, our bottom-up domain adaptation approaches outperform the best-performing single-modality pedestrian detection results on KAIST and outperform the state of the art on FLIR.
机译:行人检测是安全和安全应用的规范问题,由于必须检测到行人的高度可变照明条件,它仍然是一个具有挑战性的问题。本文调查了几个域适应方法,以使RGB训练的探测器适应热域。在我们早期的域改性方面的域改进,我们进行了广泛的实验评估,比较了自上而下和自下而上的域适应,并提出了两个新的自下而上域适应策略。对于自上而下的域适配,我们利用在RGB图像上预先培训的探测器,并有效地适应热域中的行人检测。我们的自下而上的域适应方法包括两个步骤:首先,训练对应于RGB训练探测器的初始层的适配器段适应新的输入分布;然后,我们将适配器段重新连接到原始的RGB培训的检测器,以进行全面损耗的最终适应。据我们所知,我们的自下而上的域适应方法越优于Kaist上最好的单片式行人检测结果,并在FLIR上优于现有技术。

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