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A photogrammetric approach to fusing natural colour and thermal infrared UAS imagery in 3D point cloud generation

机译:3D点云生成中融合自然颜色和热红外UAS图像的摄影测量方法

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摘要

The inclusion of thermal infrared (TIR) data in point clouds derived from unmanned aircraft system (UAS) imagery can benefit a variety of applications in which surface temperature and 3D geometry are both important discriminants of feature type and condition. Low resolution and narrow fields of view (FOV) of current consumer-grade TIR cameras on UAS, combined with the lack of sharpness and texture in many image regions, may cause failure or poor results from structure from motion (SfM) photogrammetric software, which has gained widespread use for generating point clouds from UAS imagery. This paper proposes a photogrammetric approach for generating 3D multispectral point clouds utilizing coacquired TIR-RGB images. A 3D point cloud is first generated from the RGB imagery using standard SfM procedures. Then the TIR attributes are assigned to points, where the image coordinates of the points in TIR images are estimated using transformation parameters obtained from co-registration procedures. To obtain RGB-to-TIR transformation parameters, this study tests 3D and 2D co-registration approaches. The latter produces better results due to the challenge of calibrating the TIR camera as required for the 3D approach. This proposed approach is advantageous for generating TIR point clouds without loss of photogrammetric precision compared with solely TIR-based SfM, as the 3D accuracy, point density, and reliability are greatly enhanced.
机译:包含来自无人机系统(UAS)图像的点云中的热红外(TIR)数据可以使表面温度和3D几何形状有益于特征类型和条件的重要判别。在UAS上的当前消费者级TIR摄像机的低分辨率和窄视野(FOV),结合许多图像区域中缺乏锐度和质地,可能导致来自运动(SFM)摄影测量软件的结构失败或差的结果,这从UA图像产生了广泛使用的是生成点云。本文提出了一种利用CoAcquired TiR-RGB图像生成3D多光谱点云的摄影测量方法。首先使用标准SFM程序从RGB图像生成3D点云。然后将TIR属性分配给点,其中使用从共登记过程中获得的变换参数估计TIR图像中点的图像坐标。为了获得RGB到TIR转换参数,本研究测试了3D和2D共登记方法。由于校准了3D方法所需的挑战,后者由于校准TIR摄像机而产生更好的结果。该提出的方法是有利于产生TIR点云而不损失摄影测量精度,与仅基于TIR的SFM相比,作为3D精度,点密度和可靠性大大提高。

著录项

  • 来源
    《International journal of remote sensing》 |2020年第2期|211-237|共27页
  • 作者单位

    Oregon State Univ Sch Civil & Construct Engn 101 Kearney Hall 1491 SW Campus Way Corvallis OR 97331 USA;

    NOAA Natl Geodet Survey Silver Spring MD USA;

    Oregon State Univ Sch Civil & Construct Engn 101 Kearney Hall 1491 SW Campus Way Corvallis OR 97331 USA;

    Oregon State Univ Sch Civil & Construct Engn 101 Kearney Hall 1491 SW Campus Way Corvallis OR 97331 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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