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Evaluation of sensor, environment and operational factors impacting the use of multiple sensor constellations for long term resource monitoring.

机译:评估传感器,环境和操作因素,这些因素会影响使用多个传感器群进行长期资源监视。

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摘要

Moderate resolution remote sensing data offers the potential to monitor the long and short term trends in the condition of the Earth's resources at finer spatial scales and over longer time periods. While improved calibration (radiometric and geometric), free access (Landsat, Sentinel, CBERS), and higher level products in reflectance units have made it easier for the science community to derive the biophysical parameters from these remotely sensed data, a number of issues still affect the analysis of multi-temporal datasets. These are primarily due to sources that are inherent in the process of imaging from single or multiple sensors. Some of these undesired or uncompensated sources of variation include variation in the view angles, illumination angles, atmospheric effects, and sensor effects such as Relative Spectral Response (RSR) variation between different sensors. The complex interaction of these sources of variation would make their study extremely difficult if not impossible with real data, and therefore, a simulated analysis approach is used in this study.;A synthetic forest canopy is produced using the Digital Imaging and Remote Sensing Image Generation (DIRSIG) model and its measured BRDFs are modeled using the RossLi canopy BRDF model. The simulated BRDF matches the real data to within 2% of the reflectance in the red and the NIR spectral bands studied. The BRDF modeling process is extended to model and characterize the defoliation of a forest, which is used in factor sensitivity studies to estimate the effect of each factor for varying environment and sensor conditions. Finally, a factorial experiment is designed to understand the significance of the sources of variation, and regression based analysis are performed to understand the relative importance of the factors. The design of experiment and the sensitivity analysis conclude that the atmospheric attenuation and variations due to the illumination angles are the dominant sources impacting the at-sensor radiance.
机译:中等分辨率的遥感数据提供了在更精细的空间尺度和更长的时间范围内监视地球资源状况的长期和短期趋势的潜力。虽然改进了校准(辐射和几何),免费使用(Landsat,Sentinel,CBERS)以及反射单位中更高级别的产品,科学界更容易从这些遥感数据中得出生物物理参数,但仍有许多问题影响多时间数据集的分析。这些主要归因于来自单个或多个传感器的成像过程中固有的源。这些不希望的或未补偿的变化源中的一些包括视角,照明角度,大气效应和传感器效应的变化,例如不同传感器之间的相对光谱响应(RSR)变化。这些变化源的复杂相互作用将使他们的研究变得非常困难,即使不是不可能,也无法使用真实数据进行研究,因此,本研究使用了模拟分析方法。;使用数字成像和遥感图像生成技术来制作人工林冠层(DIRSIG)模型及其测得的BRDF使用RossLi冠层BRDF模型进行建模。模拟的BRDF将实际数据匹配到所研究的红色和NIR光谱带的反射率的2%以内。 BRDF建模过程已扩展到对森林的落叶进行建模和特征化,然后在因子敏感性研究中使用它来估算每个因子对变化的环境和传感器条件的影响。最后,设计析因实验以了解变异源的重要性,并进行基于回归的分析以了解因素的相对重要性。实验设计和灵敏度分析得出的结论是,由于照明角度引起的大气衰减和变化是影响传感器辐射的主要来源。

著录项

  • 作者

    Rengarajan, Rajagopalan.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Remote sensing.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 306 p.
  • 总页数 306
  • 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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