The Physics of spectral invariants

M. Mõttus
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引用次数: 2

Abstract

To make full use of the increased possibilities of imaging spectroscopy (compared with the traditional multispectral instruments) for remote sensing of vegetation canopies, physically-based models should be used. The problem of retrieving the large number of model parameters from remotely sensed reflectance data is an ill-posed and under-determined one. The physically-based spectral invariants approach may, in some cases, seem a lucrative alternative. However, the various formulations presented in literature are sometimes difficult to compare qualitatively or quantitatively. To develop a robust spectral-invariant based algorithm for vegetation remote sensing, empirical, mathematical and physical understanding of the problem has to be reached. We present connections between the photon recollision probability and the largest eigenvalue of the radiative transfer equation. Based on simple mathematical principles, the basic requirements set by the remote sensing process to a successful spectral invariant theory are presented.
谱不变量的物理学
为了充分利用成像光谱(与传统的多光谱仪器相比)遥感植被冠层的可能性增加,应该使用基于物理的模型。从遥感反射率数据中提取大量模型参数是一个不适定和欠定的问题。在某些情况下,基于物理的谱不变量方法似乎是一个有利可图的选择。然而,文献中提出的各种公式有时难以进行定性或定量比较。为了开发一种鲁棒的基于光谱不变性的植被遥感算法,必须达到对该问题的经验、数学和物理理解。我们提出了光子重聚概率与辐射传递方程的最大特征值之间的联系。基于简单的数学原理,提出了遥感过程对光谱不变性理论的基本要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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