基于光谱时间分析的高光谱数据特征提取用于植物目标检测

A. Mathur, L. Bruce, J. Madsen
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引用次数: 3

摘要

本文研究了利用高光谱-多时相特征对水葫芦和芦苇两种水生杂草进行鉴别的方法。高光谱,多时间数据是三维数据,可以组织成一个“光谱-时间图”,其中x轴是时间,y轴是波长,z轴是反射率。作者提出了一种基于贪婪搜索的算法来提取相关特征,以解决手头的分类问题。
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Feature extraction via spectro-temporal analysis of hyperspectral data for vegetative target detection
In this paper, the authors investigate the use of hyperspectral-multitemporal features for discriminating between two aquatic weed species, Waterhyacinth and Bulrush. Hyperspectral, multitemporal data is three- dimensional data that can be organized into a "spectro- temporal map" where the x-axis is time, y-axis is wavelength, and z-axis is reflectance. The authors present an algorithm based on a greedy search approach to extract pertinent features to solve the classification problem at hand.
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