首页> 外文期刊>Applied optics >Closure and uncertainty assessment for ocean color reflectance using measured volume scattering functions and reflective tube absorption coefficients with novel correction for scattering
【24h】

Closure and uncertainty assessment for ocean color reflectance using measured volume scattering functions and reflective tube absorption coefficients with novel correction for scattering

机译:使用测量的体积散射功能和具有新校正的测量散射功能和反射管吸收系数的海洋颜色反射率的关闭和不确定度评估

获取原文
获取原文并翻译 | 示例
           

摘要

Optical closure is assessed between measured and simulated remote-sensing reflectance (Rrs) using Hydrolight radiative transfer code for five data sets that included a broad range of both Case I and Case II water types. Modelinput inherent optical properties (IOPs) were the absorption coefficient determined with aWET Labs ac9 and the volume scattering function (VSF) determined with a custom in situ device called MASCOT. Optimal matchups were observed using measured phase functions and reflective tube absorption measurements corrected using a scattering error independently derived from VSF measurements. Absolute bias (d) for simulations compared to measured Rrs was 20% for the entire data set, and 17% if a relatively shallow station with optical patchiness was removed from the analysis. Approximately half of this d is estimated to come from uncertainty in radiometric measurements of Rrs, with the other half arising from combined uncertainties in IOPs, radiative transfer modeling, and related assumptions. For exercises where such d can be tolerated, IOPs have the potential to aid in ocean color validation. Overall, d was roughly consistent with the sum of uncertainties derived from associated measurements, although larger deviations were observed in several cases. Applying Fournier-Forand phase functions derived from particulate backscattering ratios according to Mobley et al. [Appl. Opt. 41, 1035 (2002)] resulted in overall d that was almost as good (23%) as simulations using measured phase functions. Possibilities for improving closure assessments in future studies are discussed. (C) 2016 Optical Society of America
机译:使用水解辐射传输代码进行测量和模拟遥感反射率(RRS)之间的光学闭合,用于包括广泛的案例I和壳体II水类型的五种数据集。 ModelInput固有光学属性(IOPS)是用AWET实验室ac9确定的吸收系数和用称为吉祥物的定制确定的习惯散射函数(VSF)。使用测量的相位函数和反射管吸收测量来观察最佳匹配,并使用独立地从VSF测量衍生的散射误差进行校正。与测量的RR相比,模拟的绝对偏差(d)为整个数据集比为20%,如果从分析中取出具有光学斑块的相对较浅的站,则为17%。估计该D的大约一半是从RRS的辐射测量中的不确定性,另一半从IOPS,辐射转移建模和相关假设中产生的组合。对于可以容忍这种D的练习,IOPS有可能帮助海洋颜色验证。总体而言,D大致与来自相关测量的不确定性之和,尽管在几种情况下观察到更大的偏差。根据Mobley等人施加从微粒后散射比衍生的四分之一的逆相函数。 [苹果。选择。 41,1035(2002)]导致使用测量相位功能的模拟几乎与模拟一样好(23%)。讨论了改善未来研究中的闭环评估的可能性。 (c)2016年美国光学学会

著录项

  • 来源
    《Applied optics》 |2017年第1期|共17页
  • 作者单位

    GTF LLC 30-77 31st St 1 Astoria NY 11102 USA;

    Florida Atlantic Univ Harbor Branch Oceanog Inst 5600 US 1 N Ft Pierce FL 34946 USA;

    Univ Victoria Ocean Networks Canada Innovat Ctr 2300 McKenzie Ave Victoria BC V8W 2Y2 Canada;

    Univ Miami Dept Phys Miami FL 33146 USA;

    Dalhousie Dept Marine Sci Halifax NS Canada;

    Ctr Marine Res &

    Explorat La Spezia Italy;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
  • 关键词

获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号