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In-orbit imaging and radiometric performance prediction for flight model Geostationary Ocean Color Imager

机译:飞行模型对地静止海洋彩色成像仪的在轨成像和辐射性能预测

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摘要

The Geostationary Ocean Colour Imager (GOCI) is a visible band ocean colour instrument onboard the Communication, Ocean, and Meteorological Satellite (COMS) scheduled to be in operation from early 2010. The instrument is designed to monitor ocean water environments around the Korean peninsula in high spatial and temporal resolutions. We report a new imaging and radiometric performance prediction model specifically designed for GOCI. The model incorporates the Sun as light source, about 4000km x 4000km section of the Earth surrounding the Korean peninsula and the GOCI optical system into a single ray tracing environment in real scale. Specially, the target Earth section is constructed using high resolution coastal line data, and consists of land and ocean surfaces with reflectivity data representing their constituents including vegetation and chlorophyll concentration. The GOCI instrument in the IRT model is constructed as an optical system with realistic surface characteristics including wave front error, reflectivity, absorption, transmission and scattering properties. We then used Monte Carlo based ray tracing computation along the whole optical path starting from the Sun to the final detector plane, for simultaneous imaging and radiometric performance verification for a fixed solar zenith angle. This was then followed by simulation of red-tide evolution detection and their radiance estimation, in accordance with the in-orbit operation sequence. The simulation results prove that the GOCI flight model is capable of detecting both image and radiance originated from the key ocean phenomena including red tide. The model details and computational process are discussed with implications to other earth observation instruments.
机译:地球静止海洋彩色成像仪(GOCI)是计划于2010年初投入运行的通信,海洋和气象卫星(COMS)上的可见波段海洋彩色仪器。该仪器旨在监测朝鲜半岛周围的海洋水环境。高时空分辨率。我们报告了专门为GOCI设计的新的成像和辐射性能预测模型。该模型将太阳作为光源,将朝鲜半岛周围约4000 km x 4000 km的地球截面和GOCI光学系统整合到单个真实的光线跟踪环境中。特别是,目标地球部分是使用高分辨率海岸线数据构建的,由陆地和海洋表面组成,反射率数据代表其组成,包括植被和叶绿素浓度。 IRT模型中的GOCI仪器构造为具有现实表面特征的光学系统,包括波前误差,反射率,吸收,透射和散射特性。然后,我们使用了从太阳到最终探测器平面的整个光路中基于蒙特卡洛的光线跟踪计算,以针对固定的太阳天顶角进行同时成像和辐射性能验证。然后,根据在轨操作序列,对赤潮演变探测及其辐射度估计进行仿真。仿真结果表明,GOCI飞行模型能够同时检测出来自包括赤潮在内的关键海洋现象的图像和辐射率。讨论了模型的详细信息和计算过程,并对其他地球观测仪器产生了影响。

著录项

  • 来源
    《Earth observing systems XIV》|2009年|P.74520F.1-74520F.12|共12页
  • 会议地点 San Diego CA(US)
  • 作者单位

    Dept. of Astronomy, Yonsei University, Seoul, 120-749, Rep. of Korea Institute of Space Science and Technology, Yonsei University, Seoul, 120-749, Rep. of Korea;

    Dept. of Astronomy, Yonsei University, Seoul, 120-749, Rep. of Korea Institute of Space Science and Technology, Yonsei University, Seoul, 120-749, Rep. of Korea;

    Dept. of Astronomy, Yonsei University, Seoul, 120-749, Rep. of Korea Institute of Space Science and Technology, Yonsei University, Seoul, 120-749, Rep. of Korea;

    Korea Aerospace Research Institute, Daejeon, 305-333, Rep. of Korea;

    Korea Ocean Research Development Institute, Ansan, 425-600, Rep. of Korea;

    IA Technology, Seongnam, 463-500, Rep. of Korea;

    Dept. of Astronomy, Yonsei University, Seoul, 120-749, Rep. of Korea Institute of Space Science and Technology, Yonsei Unive;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 远动化系统;
  • 关键词

    integrated ray tracing; ocean remote sensing; end-to-end simulation; red tide detection;

    机译:集成光线追踪;海洋遥感;端到端仿真;赤潮探测;

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