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遥感学报  2006 

Studying on Multi-stage Robust Estimation of BRDF Model Parameters
BRDF模型参数分阶段鲁棒性反演方法

Keywords: BRDF model,multi-stage inversion,robust estimation
BRDF模型
,分阶段反演,鲁棒性估计

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Abstract:

As any physically-based BRDF models were established on some assumptions,there always exist some differences between the simulated data and the measured data.When using the model to invert the ground parameters,the accuracy will be decreased if we use all measured data without distinguishing them.A merit function is usually used as the fitness of the modeled value and that of measured.The least-squares(LS) criterion,traditionally selected as the merit function,lacks the robustness when there are some stochastic errors in the measured data,though it can deal with the normal distribution errors.The least median of squares(LMS) method has the potential to find the abnormal data which belong to the stochastic errors.So we can improve the accuracy of the inversion through kicking away the abnormal data relative to the model with LMS.Using LMS and LS as the merit function separately,in this paper we take the multi-stage inversion of the SAIL model as an example to inverse the ground parameter.It has demonstrated that,toward the measured data which have some errors or can't be simulated by the model,this approach is robust to estimate the parameters.

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