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Vision-Based People Detection System for Heavy Machine Applications

机译:重型机器应用中基于视觉的人员检测系统

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摘要

This paper presents a vision-based people detection system for improving safety in heavy machines. We propose a perception system composed of a monocular fisheye camera and a LiDAR. Fisheye cameras have the advantage of a wide field-of-view, but the strong distortions that they create must be handled at the detection stage. Since people detection in fisheye images has not been well studied, we focus on investigating and quantifying the impact that strong radial distortions have on the appearance of people, and we propose approaches for handling this specificity, adapted from state-of-the-art people detection approaches. These adaptive approaches nevertheless have the drawback of high computational cost and complexity. Consequently, we also present a framework for harnessing the LiDAR modality in order to enhance the detection algorithm for different camera positions. A sequential LiDAR-based fusion architecture is used, which addresses directly the problem of reducing false detections and computational cost in an exclusively vision-based system. A heavy machine dataset was built, and different experiments were carried out to evaluate the performance of the system. The results are promising, in terms of both processing speed and performance.
机译:本文提出了一种基于视觉的人员检测系统,可提高重型机器的安全性。我们提出了一种由单眼鱼眼镜头和激光雷达组成的感知系统。鱼眼镜头具有视野开阔的优点,但是它们产生的强烈畸变必须在检测阶段进行处理。由于鱼眼图像中的人检测技术尚未得到很好的研究,因此我们专注于调查和量化强烈的径向畸变对人的外观的影响,并根据最新的人,提出了处理这种特异性的方法检测方法。然而,这些自适应方法具有高计算成本和复杂性的缺点。因此,我们还提出了一种利用LiDAR模式的框架,以增强针对不同相机位置的检测算法。使用了基于LiDAR的顺序融合架构,该架构直接解决了在基于视觉的系统中减少错误检测和计算成本的问题。建立了重型机器数据集,并进行了不同的实验以评估系统的性能。就处理速度和性能而言,结果是有希望的。

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