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Human Detection with a Multi-sensors Stereovision System

机译:用多传感器立体系统进行人体检测

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In this paper, we propose a human detection process using Far-Infrared (FIR) and daylight cameras mounted on a stereovision setup. Although daylight or FIR cameras have long been used to detect pedestrians, they nonetheless suffer from known limitations. In this paper, we present how both can collaborate inside a stereovision setup to reduce the false positive rate inherent to their individual use. Our detection method is based on two distinctive steps. First, human positions are detected in both FIR and daylight images using a cascade of boosted classifiers. Then, both results are fused based on the geometric information of the sterovision system. In this paper, we present how human positions are localized in images, and how the decisions taken by each camera are fused together. In order to gauge performances, a quantitative evaluation based on an annotated dataset is presented.
机译:在本文中,我们使用远红外线(FIR)和安装在立体宽度设置上的日光相机提出了人类检测过程。虽然日光或杉木摄像机长期以来一直被用来检测行人,但他们仍然存在已知的局限性。在本文中,我们介绍了如何在立体声设置内协作,以降低个人使用所固有的错误阳性率。我们的检测方法基于两个独特的步骤。首先,使用级联的升压分类器在两个冷杉和日光图像中检测到人的位置。然后,这两个结果都基于ETSOvision系统的几何信息融合。在本文中,我们展示了人类的位置如何在图像中本地化,以及每个相机如何融合在一起的决定。为了表现表现,提出了基于注释数据集的定量评估。

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