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Detecting Humans in 2D Thermal Images by Generating 3D Models

机译:通过生成3D模型在2D热图像中检测人

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摘要

There are two significant challenges to standard approaches to detect humans through computer vision. First, scenarios when the poses and postures of the humans are completely unpredictable. Second, situations when there are many occlusions, i.e., only parts of the body are visible. Here a novel approach to perception is presented where a complete 3D scene model is learned on the fly to represent a 2D snapshot. In doing so, an evolutionary algorithm generates pieces of 3D code that are rendered and the resulting images are compared to the current camera picture via an image similarity function. Based on the feedback of this fitness function, a crude but very fast online evolution generates an approximate 3D model of the environment where non-human objects are represented by boxes. The key point is that 3D models of humans are available as code sniplets to the EA, which can use them to represent human shapes or portions of them if they are in the image. Results from experiments with real world data from a search and rescue application using a thermal camera are presented.
机译:通过计算机视觉检测人类的标准方法面临两个重大挑战。首先,人类的姿势和姿势完全不可预测的场景。其次,存在许多阻塞的情况,即仅身体的一部分可见。这里介绍了一种新颖的感知方法,其中可以动态学习完整的3D场景模型来表示2D快照。在这种情况下,进化算法会生成渲染的3D代码,并将生成的图像通过图像相似度函数与当前相机图片进行比较。基于此适应度函数的反馈,粗略而又非常快速的在线演变会生成以盒子代表非人类物体的环境的近似3D模型。关键点是,人体的3D模型可以作为EA的代码段使用,如果它们在图像中,则可以使用它们来代表人体形状或其中的一部分。展示了使用热像仪从搜索和救援应用程序中获得的真实世界数据的实验结果。

著录项

  • 来源
    《》|2007年|P.293-307|共15页
  • 会议地点 Osnabruck(DE)
  • 作者

    Stefan Markov; Andreas Birk;

  • 作者单位

    School of Engineering and Science Jacobs University Bremen Campus Ring 1, D-28759 Bremen, Germany;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 人工智能理论;
  • 关键词

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