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Hyperspectral image classification using spectral histograms and semi-supervised learning.

机译:使用光谱直方图和半监督学习对高光谱图像进行分类。

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摘要

Different classification methods have been applied to hyperspectral images during the last decade. Many of these methods have so far used pixel spectral signatures. Methods that include spatial information in the analysis achieve a better classification accuracy than those that only account for spectral signature of pixels. In this research, an algorithm that extracts regional texture information by computing spectral difference histograms over window extents in hyperspectral images was developed. The spectral angle distance was used as the spectral metric and different window sizes were explored for compute the histogram. The histograms were used in a semi-supervised learning framework that uses both labeled and unlabeled samples for training the Support Vector Machine classifier. Algorithm validation and comparisons are done with real and synthetic hyperspectral images. The method performs well with high spatial resolution images. The algorithm performs well under different Gaussian noise levels.
机译:在过去的十年中,已将不同的分类方法应用于高光谱图像。迄今为止,这些方法中有许多已经使用了像素光谱特征。与仅考虑像素光谱特征的方法相比,在分析中包含空间信息的方法可获得更好的分类精度。在这项研究中,开发了一种算法,该算法通过计算高光谱图像窗口范围内的光谱差异直方图来提取区域纹理信息。光谱角距离用作光谱度量,并探索了不同的窗口大小以计算直方图。直方图用于半监督学习框架,该框架使用标记和未标记的样本来训练支持向量机分类器。使用真实和合成的高光谱图像进行算法验证和比较。该方法在高空间分辨率图像上表现良好。该算法在不同的高斯噪声水平下表现良好。

著录项

  • 作者

    Cruz Rivera, Sol Marie.;

  • 作者单位

    University of Puerto Rico, Mayaguez (Puerto Rico).;

  • 授予单位 University of Puerto Rico, Mayaguez (Puerto Rico).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 M.S.
  • 年度 2009
  • 页码 101 p.
  • 总页数 101
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:38:22

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