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Person Recognition Based on Micro-Doppler and Thermal Infrared Camera Fusion for Firefighting

机译:基于微多普勒和红外热像仪融合的消防人员识别

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This paper examines the recognition of real persons, mirrored persons and other objects using thermal infrared (TIR) images and radar micro-Doppler (μ-D). Mirrored persons lead to confusion of firefighters, when only a TIR camera is used. However, mirrored persons exhibit the μ-D of the mirroring objects, hence radar can resolve this ambiguity. In this paper, multiple sensor fusion architectures are investigated for this classification task. The first approach uses an attention stage, where bounding boxes of candidates for real/mirrored persons are determined in TIR images. These bounding boxes are associated to the radar targets and subsequently classified. A joint classification of the radar μ-D and TIR image at measurement level is compared to a separate classification with subsequent combination (object level). Furthermore, a classification of the complete scene is proposed, omitting the TIR attention stage and data association. Experiments with real measurements are used for an evaluation of the presented approaches.
机译:本文研究了使用热红外(TIR)图像和雷达微多普勒(μ-D)对真实人物,镜像人物和其他物体的识别。当仅使用TIR摄像机时,镜像人员会引起消防员的困惑。但是,被镜像的人表现出镜像对象的μ-D,因此雷达可以解决这种歧义。在本文中,针对此分类任务研究了多种传感器融合架构。第一种方法使用关注阶段,其中在TIR图像中确定真实/镜像人的候选对象的边界框。这些边界框与雷达目标关联,然后进行分类。将雷达μ-D和TIR图像在测量级别的联合分类与具有后续组合(对象级别)的单独分类进行比较。此外,提出了完整场景的分类,省略了TIR注意阶段和数据关联。实际测量的实验用于评估所提出的方法。

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