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植被生化组分的遥感反演方法研究
引用本文:颜春燕,刘强,牛铮,王长耀.植被生化组分的遥感反演方法研究[J].遥感学报,2004,8(4):300-308.
作者姓名:颜春燕  刘强  牛铮  王长耀
作者单位:中国科学科院遥感应用研究所,遥感信息科学国家重点实验室,北京,100101
基金项目:中国科学院知识创新工程重大项目——中国陆地和近海生态系统碳收支研究 (KZCX1 SW 0 1),国家重点基础研究发展规划项 目 (G2 0 0 0 0 7790 0 ),国家自然科学基金资助项目 ( 4 0 2 710 86)资助
摘    要:从反演物理模型提取植被生化组分含量的角度 ,分别在叶片和冠层水平探讨了反演生化参量的方法。在叶片水平 ,利用实验室测量光谱数据 ,较为准确地提取了水分和叶绿素含量 ,通过比较真实光谱数据与利用模型和真实参数模拟的光谱数据 ,得出如下结论 :模型能否准确描述某个参数的作用是能否真正准确反演该参数的关键。在模拟的冠层水平 ,基于多阶段反演思想 ,采用了分步反演策略 ,最终较为准确地反演了生化参数。

关 键 词:生化组分  反演
文章编号:1007-4619(2004)04-0300-09
收稿时间:2003/4/17 0:00:00
修稿时间:2003年4月17日

Inversion of Vegetation Biochemicals by Remote Sensing
YAN Chun-yan,LIU Qiang,NIU Zheng and WANG Chang-yao.Inversion of Vegetation Biochemicals by Remote Sensing[J].Journal of Remote Sensing,2004,8(4):300-308.
Authors:YAN Chun-yan  LIU Qiang  NIU Zheng and WANG Chang-yao
Institution:LARSIS,Institute of Remote Sensing Applications,Chinese Academy of Sciences,Beijing 100101,China;LARSIS,Institute of Remote Sensing Applications,Chinese Academy of Sciences,Beijing 100101,China;LARSIS,Institute of Remote Sensing Applications,Chinese Academy of Sciences,Beijing 100101,China;LARSIS,Institute of Remote Sensing Applications,Chinese Academy of Sciences,Beijing 100101,China
Abstract:The knowledge of foliar biochemical concentration provides us a deep understanding of many esosystem functions, such as photosynthesis, nutrient cycling, and so on. Generally speaking, two ways of biochemical concentration estimation by remote sensing, namely statistical regression and physical model inversion, have been studied in parallel. There are many limitations in statistical regression method. So, direct inversion of physical model is desired. From the view of inverting physical models to retrieve biochemical concentration, inversion methods were analyzed at leaf and canopy level respectively. At leaf level, using laboratory measured spectra and PROSPECT model, water and chlorophyll concentration were inverted quite accurately. Through comparing true spectra with reconstructed spectra using true inputs, results were got as that accurate inversion of some parametes are based on the model which should describe the effect of this parameter accurately. At simulated canopy level, preliminary inversion of biochemical content directly from canopy spectra showed poor accuracy especially for chlorophyll. Based on the idea of multi stage inversion, following inversion was decomposed into 2 parts: first from canopy spectra to leaf spectra, then from leaf spectra to biochemical content. By this step by step inversion strategy, biochemical concentration was inverted accurately ultimately.It should be noted that in this paper the canopy spectra was simulated by model, further testifying with real spectra is needed which we will take into consideation in near future. Also other inversion algorithms than iterative optimization will be tested.
Keywords:biochemical  inversion
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