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Analytical Modeling and Performance Assessment of Micropulse Photon-counting Lidar System.

机译:微脉冲光子计数激光雷达系统的分析建模和性能评估。

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摘要

The melting of polar ice sheets and evidence of global warming continue to remain prominent research interests among scientists. To better understand global volumetric change of ice sheets, NASA intends to launch Ice, Cloud and land Elevation Satellite-2 (ICESat-2) in 2017. ICESat-2 employs a high frequency photon-counting laser altimeter, which will provide significantly greater spatial sampling. However, the combined effects of sub-beam complex surfaces, as well as system effects on returning photon distribution have not been systematically studied. To better understand the effects of various system attributes and to help improve the theory behind lidar sensing of complex surfaces, an analytical model using a first principles 3-D Monte Carlo approach is developed to predict system performance.;Based on the latest ICESat-2 design, this analytical model simulates photons which propagate from the laser transmitter to the scene, and reflected to the detector model. A radiometric model is also applied in the synthetic scene. Such an approach allows the study of surface elevation retrieval accuracy for landscapes, as well as surface reflectivities. It was found that ICESat-2 will have a higher precision on a smoother surface, and a surface with smaller diffuse albedo will on average result in smaller bias.;Furthermore, an adaptive density-based algorithm is developed to detect the surface returns without any geometrical knowledge. This proposed approach is implemented using the aforementioned simulated data set, as well as airborne laser altimeter measurement. Qualitative and quantitative results are presented to show that smaller laser footprint, smoother surface, and lower noise rate will improve accuracy of ground height estimation. Meanwhile, reasonable detection accuracy can also be achieved in estimating both ground and canopy returns for data generated using Digital Imaging and Remote Sensing Image Generation (DIRSIG) model. This proposed approach was found to be generally applicable for surface and canopy finding from photon-counting laser altimeter data.
机译:极地冰盖的融化和全球变暖的证据继续是科学家们的主要研究兴趣。为了更好地了解全球冰盖的体积变化,NASA计划在2017年发射冰,云和陆地高空卫星2(ICESat-2)。ICESat-2采用了高频光子计数激光高度计,这将提供更大的空间采样。但是,尚未系统研究子光束复杂表面的组合效应以及系统对返回光子分布的效应。为了更好地理解各种系统属性的影响并帮助改进复杂表面的激光雷达感测背后的理论,开发了使用第一原理3-D蒙特卡洛方法的分析模型来预测系统性能。;基于最新的ICESat-2在设计中,此分析模型模拟了从激光发射器传播到场景并反射到探测器模型的光子。辐射模型也应用于合成场景。这种方法可以研究景观的表面高程检索精度以及表面反射率。结果表明,ICESat-2在较光滑的表面上具有较高的精度,而平均反射率较小的表面将导致较小的偏差。此外,开发了一种基于密度的自适应算法来检测表面回波而无需任何操作几何知识。使用上述模拟数据集以及机载激光测高仪测量,可以实现该提议的方法。定性和定量结果表明,较小的激光足迹,更平滑的表面和较低的噪声率将提高地面高度估计的准确性。同时,在估计使用数字成像和遥感图像生成(DIRSIG)模型生成的数据的地面和树冠回波时,也可以获得合理的检测精度。从光子计数激光高度计数据中发现,该提议的方法通常适用于表面和树冠查找。

著录项

  • 作者

    Zhang, Jiashu.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Computer engineering.;Remote sensing.;Optics.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 110 p.
  • 总页数 110
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

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