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烟囱羽流中痕量蒸汽浓度路径长度估算的误差分析

Error analysis for estimation of trace vapor concentration pathlength in stack plumes.

作者信息

Gallagher Neal B, Wise Barry M, Sheen David M

机构信息

Eigenvector Research, Inc., P.O. Box 561, Manson, Washington 98831, USA.

出版信息

Appl Spectrosc. 2003 Jun;57(6):614-21. doi: 10.1366/000370203322005283.

Abstract

Near-infrared hyperspectral imaging is finding utility in remote sensing applications such as detection and quantification of chemical vapor effluents in stack plumes. Optimizing the sensing system or quantification algorithms is difficult because reference images are rarely well characterized. The present work uses a radiance model for a down-looking scene and a detailed noise model for dispersive and Fourier transform spectrometers to generate well-characterized synthetic data. These data were used with a classical least-squares-based estimator in an error analysis to obtain estimates of different sources of concentration-pathlength quantification error in the remote sensing problem. Contributions to the overall quantification error were the sum of individual error terms related to estimating the background, atmospheric corrections, plume temperature, and instrument signal-to-noise ratio. It was found that the quantification error depended strongly on errors in the background estimate and second-most on instrument signal-to-noise ratio. Decreases in net analyte signal (e.g., due to low analyte absorbance or increasing the number of analytes in the plume) led to increases in the quantification error as expected. These observations have implications on instrument design and strategies for quantification. The outlined approach could be used to estimate detection limits or perform variable selection for given sensing problems.

摘要

近红外高光谱成像在遥感应用中发挥着作用,例如检测和量化烟囱羽流中的化学蒸汽排放物。由于参考图像很少有良好的特征描述,因此优化传感系统或量化算法很困难。目前的工作使用了一个用于俯视场景的辐射模型和一个用于色散和傅里叶变换光谱仪的详细噪声模型来生成具有良好特征的合成数据。这些数据在误差分析中与基于经典最小二乘法的估计器一起使用,以获得遥感问题中浓度-路径长度量化误差不同来源的估计值。对总体量化误差的贡献是与估计背景、大气校正、羽流温度和仪器信噪比相关的各个误差项的总和。结果发现,量化误差在很大程度上取决于背景估计中的误差,其次取决于仪器信噪比。正如预期的那样,净分析物信号的降低(例如,由于分析物吸光度低或羽流中分析物数量增加)导致量化误差增加。这些观察结果对仪器设计和量化策略具有启示意义。所概述的方法可用于估计检测限或对给定的传感问题进行变量选择。

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