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Outlier and target detection in aerial hyperspectral imagery : a comparison of traditional and percentage occupancy hit or miss transform techniques

机译:航空高光谱图像中的离群值和目标检测:传统命中或命中或未命中转换技术的比较

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摘要

The use of aerial hyperspectral imagery for the purpose of remote sensing is a rapidly growing research area. Currently, targets are generally detected by looking for distinct spectral features of the objects under surveillance. For example, a camouflaged vehicle, deliberately designed to blend into background trees and grass in the visible spectrum, can be revealed using spectral features in the near-infrared spectrum. This work aims to develop improved target detection methods, using a two-stage approach, firstly by development of a physics-based atmospheric correction algorithm to convert radiance into reflectance hyperspectral image data and secondly by use of improved outlier detection techniques. In this paper the use of the Percentage Occupancy Hit or Miss Transform is explored to provide an automated method for target detection in aerial hyperspectral imagery.
机译:将航空高光谱图像用于遥感的目的是一个快速发展的研究领域。当前,通常通过寻找被监视物体的独特光谱特征来检测目标。例如,可以使用近红外光谱中的光谱特征来揭示伪装的车辆,该车辆被故意设计为在可见光谱中混入背景树木和草丛中。这项工作旨在通过两阶段方法来开发改进的目标检测方法,首先是通过开发基于物理学的大气校正算法将辐射转换为反射率高光谱图像数据,其次是使用改进的离群值检测技术。在本文中,探索了利用百分比命中率或未命中率变换为空中高光谱图像中的目标检测提供一种自动方法。

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