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首页> 外文期刊>Geoscience and Remote Sensing, IEEE Transactions on >Retrieval of Leaf Biochemical Parameters Using PROSPECT Inversion: A New Approach for Alleviating Ill-Posed Problems
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Retrieval of Leaf Biochemical Parameters Using PROSPECT Inversion: A New Approach for Alleviating Ill-Posed Problems

机译:使用PROSPECT反演检索叶片生化参数:缓解病态问题的新方法

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摘要

Retrieval of leaf biochemical parameters from reflectance measurements using model inversion generally faces “ill-posed” problems, which dramatically decreases the estimation accuracy of an inverse model. While the standard approach for model inversion retrieves various parameters simultaneously, usually only based on one merit function, the new approach proposed in this paper assigns a specific merit function for each retrieved parameter. Each merit function is specified in terms of the wavelength domains that the given parameter was found to be specifically sensitive to in an earlier sensitivity analysis. The approach has been validated with both in situ measured data sets and an artificial data set of 10 000 spectra simulated by the PROSPECT model. Results indicate that the new approach greatly improves the performance of inversion models, with root-mean-square error (rmse) values for chlorophyll content (Chl), equivalent water thickness (EWT), and leaf mass per area (LMA), based on the simulated data, of 7.12 $muhbox{g/cm}^{2}$, 0.0012 $hbox{g/cm}^{2}$ , and 0.0019 $hbox{g/cm}^{2}$, respectively, compared with 11.36 $muhbox{g/cm}^{2}$, 0.0032 $hbox{g/cm}^{2}$, and 0.0040 $hbox{g/cm}^{2}$ when using the standard approach. As for field-measured data sets, the proposed approach also greatly outperformed the standard approach, with respective rmse values of 8.11 $muhbox{g/cm}^{2}$, 0.0012 $ hbox{g/cm}^{2}$, and -n-n0.0008 $hbox{g/cm}^{2}$ for Chl, EWT, and LMA when all data are pooled, compared with 11.84 $mu hbox{g/cm}^{2}$, 0.0020 $hbox{g/cm}^{2}$, and 0.0027 $hbox{g/cm}^{2}$ when using the standard approach. Hence, the proposed approach for model inversion can largely alleviate the “ill-posed” problem, and it could be widely applied for retrieving leaf biochemical parameters.
机译:使用模型反演从反射率测量中检索叶片生化参数通常会遇到“不适定”问题,这大大降低了反模型的估计精度。尽管模型反演的标准方法通常仅基于一个优点函数同时检索各种参数,但本文提出的新方法为每个检索到的参数分配了特定的优点函数。根据在较早的灵敏度分析中发现给定参数对特定参数特别敏感的波长域来指定每个优值函数。该方法已通过现场测量数据集和由PROSPECT模型模拟的10 000个光谱的人工数据集进行了验证。结果表明,该新方法极大地改善了反演模型的性能,其叶绿素含量(Chl),等效水厚(EWT)和每单位面积叶片质量(LMA)的均方根误差(rmse)值模拟数据,为7.12 $ muhbox {g / cm} ^ {2} $ ,0.0012 $ hbox {g / cm} ^ {2} $ 和0.0019 $ hbox {g / cm} ^ {2} $ 分别与11.36 $ muhbox {g / cm} ^ { 2} $ ,0.0032 $ hbox {g / cm} ^ {2} $ ,和使用标准方法时的0.0040 $ hbox {g / cm} ^ {2} $ 。对于现场测量的数据集,所建议的方法也大大优于标准方法,其均方根值为8.11 $ muhbox {g / cm} ^ {2 } $ ,0.0012 $ hbox {g / cm} ^ {2} $ ,和-n-n0.0008当Chl,EWT和LMA时, $ hbox {g / cm} ^ {2} $ 汇总所有数据,然后与11.84 $ mu hbox {g / cm} ^ {2} $ 进行比较,将0.0020 $ hbox {g / cm} ^ {2} $ 和0.0027 使用标准方法时,$ hbox {g / cm} ^ {2} $ 。因此,所提出的模型反演方法可以在很大程度上缓解“不适定”问题,并且可以广泛地用于检索叶片生化参数。

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