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Nonlinear estimation of subpixel proportion via kernel least square regression

机译:基于核最小二乘回归的亚像素比例非线性估计

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摘要

Spectral mixture analysis is an efficient approach to spectral decomposition of hyperspectral remotely sensed imagery, using land cover proportions which can be estimated from pixel values through model inversion. In this paper, a kernel least square regression algorithm has been developed for nonlinear approximation of subpixel proportions. This procedure includes two steps. The first step is to select the feature vectors by defining a global criterion to characterize the image data structure in the feature space and the second step is the projection of pixels onto the feature vectors and the application of classical linear regressive algorithm. Experiments using simulated data, synthetic data and Enhanced Thematic Mapper (ETM)+ data have been carried out, and the results demonstrate that the proposed method can improve proportion estimation. By using the simulated and synthetic data, over 85% of the total pixels in the image are found to lie between the 10% difference lines, and the root mean square error (RMSE) is less than 0.09. Using the real data, the proposed method can also perform satisfactorily with an average RMSE of about 0.12. This algorithm was also compared with other widely used kernel based algorithms, i.e. support vector regression and radial basis function neutral network and the results show that the proposed algorithm outperforms other algorithms about 5% in subpixel proportion estimation.
机译:光谱混合分析是一种高光谱遥感影像光谱分解的有效方法,它使用的土地覆盖比例可以通过模型反演从像素值估算得出。在本文中,开发了一种核最小二乘回归算法,用于子像素比例的非线性逼近。此过程包括两个步骤。第一步是通过定义一个全局准则来选择特征向量,以表征特征空间中的图像数据结构,第二步是将像素投影到特征向量上,并应用经典线性回归算法。利用模拟数据,合成数据和增强主题映射器(ETM)+数据进行了实验,结果表明该方法可以改善比例估计。通过使用模拟和合成数据,发现图像中总像素的85%以上位于10%的差异线之间,并且均方根误差(RMSE)小于0.09。使用实际数据,提出的方法还可以令人满意地执行,平均RMSE约为0.12。还将该算法与其他广泛使用的基于核的算法(即支持向量回归和径向基函数中立网络)进行了比较,结果表明,该算法在子像素比例估计方面优于其他算法约5%。

著录项

  • 来源
    《International journal of remote sensing》 |2007年第18期|4157-4172|共16页
  • 作者

    L. ZHANG; B. WU; B. HUANG; P. LI;

  • 作者单位

    The State Key Laboratory of Information Engineering in Surveying, Mapping, and Remote Sensing, Wuhan University, Peoples Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 遥感技术;
  • 关键词

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