增强多波段红外图像的分类性能

L. Hoff, A. Chen, X. Yu, E. M. Winter
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引用次数: 8

摘要

利用红外数据进行目标分类可以通过使用多个光谱波段而不是单一波段来增强。以前,算法已经开发并显示提供多波段的检测增强。然而,并不是高光谱红外传感器产生的所有波段都是有用的。本文提出的性能度量对于确定使用哪些频带以及需要多少频带才能实现可靠的分类是有用的。将这些性能指标应用于空间调制傅里叶反变换光谱仪(SMIFTS)高光谱红外传感器采集的数据,以说明增加光谱带数的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced classification performance from multiband infrared imagery
Target classification using infrared data can be enhanced by using multiple spectral bands rather than a single band. Previously, algorithms have been developed and shown to provide detection enhancement with multiple bands. However, not all the bands produced by a hyperspectral infrared sensor are useful. This paper presents measures of performance that are useful for determining which bands to use and how many bands may be required to achieve reliable classification. These performance measures are applied to data collected by the spatially modulated inverse Fourier transform spectrometer (SMIFTS) hyperspectral infrared sensor to illustrate the advantages of increasing the number of spectral bands.
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