期刊文献+

基于目标分解与支持向量机的极化SAR图像分类研究(英文) 被引量:3

A Study on Classification of Polarimetric SAR Image by Target Decomposition and Support Vector Machines
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摘要 为了有效地对极化SAR图像进行分类,基于目标分解和支持向量机,提出了一种极化SAR图像非监督分类法。该方法首先利用目标分解理论获得极化熵和平均散射角,并在熵-平均散射角平面对图像进行初分类,以确定类中心;然后利用Wishart分布定义的距离函数寻找训练样本,同时选择一定的极化参数组成特征矢量,并利用训练样本和特征矢量训练支持向量机;最后用训练好的分类器对极化SAR图像进行分类。通过对ESAR图像进行分类,比较了多种参数组合的分类结果,并与Wishart方法进行了比较,结果表明,该方法特征选择非常灵活,不仅结果类内离散度更小,且不需要太多的迭代次数。 This paper presents a new method for unsupervised classification of terrain types using polarimetric synthetic aperture radar data. This unsupervised classification combines the target decomposition theory and the support vector machines. The initial cluster centers are firstly determined by target decomposition advanced by Cloude and Pottier. Then the pixels near to the cluster centers are selected to train the support vector machines using Wishart distribution. The classified results are then used to define training sets for the next iteration if necessary. Finally, by the optimal separating hyperplanes and the kernel method this method obtains extraordinary classification results and neednot much iteration. And the effects of feature vectors consisted of several polarimetric parameters are discussed in detail.
出处 《中国图象图形学报》 CSCD 北大核心 2008年第8期1511-1516,共6页 Journal of Image and Graphics
关键词 合成孔径雷达 极化 图像分类 支持向量机 synthetic aperture radar, radar polarimetry, image classification, support vector machine
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参考文献6

  • 1Cloude S R, Pottier E. An entropy based classification scheme for land applications of polarimetric SAR [ J ]. IEEE Transactions on Geoscience and Remote Sensing, 1997, 35( 1 ) , 68 - 78.
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同被引文献33

  • 1曾勇虎,王雪松,肖顺平,庄钊文.基于时频联合域极化滤波的高分辨极化雷达信号检测[J].电子学报,2005,33(3):524-526. 被引量:12
  • 2伍裕江,聂在平.移动终端应用极化分集时的性能评估*[J].电波科学学报,2005,20(4):491-494. 被引量:8
  • 3吴知航,章文勋,刘震国,沈薇.一种新型宽频带高增益的变极化微带反射阵天线[J].电波科学学报,2006,21(6):820-824. 被引量:13
  • 4吴永辉,计科峰,郁文贤.基于H-α和改进C-均值的全极化SAR图像非监督分类[J].电子与信息学报,2007,29(1):30-34. 被引量:10
  • 5Cloude S R,Pottier E. An Entropy based Classification Sch- eme for Land Applications of Polarimetrie SAR[J]. IEEE Transactions on Geoscience and Remote Sensing, 1997, 35 (1) :68-78.
  • 6Cloude S R,Pottier E. Application of the H-A alpha Polari- metric Decomposition Theorem for Land Classification[C]// Proceedings of SPIE,1997,3120132-143. DOI10. 1117/12. 278958.
  • 7Cloude S R, Pottier E. A Review of Target Decomposition Theorems in Radar Polarimetry[J]. IEEE Transactions on Geoscience and Remote Sensing, 1996,34 (2) : 498-518.
  • 8Lee J S, Grunes M R, Pottier E, et al. Unsupervised Terrain Classification Preserving Polarimetric Scattering Characteris tics[J]. IEEE Transactions on Geoscience and Remote Sens- ing, 2004,42(4) : 722-731.
  • 9Lee J S,Grunes M R,Ainsworth T L,et al. Unsupervised Cl- assification Using Polarimetrie Decomposition and the Com- plex Wishart Classffier[J]. IEEE Transactions on Geoscience and Remote Sensing, 1999,37(5) : 2249-2258.
  • 10Ferro-Famil L,Pottier E, Lee J. S. Unsupervised Classification of Multi-Frequency and Fully Polarimetric SAR Images based on the H-A-Alpha Wishart Classifier[J]. IEEE Transactions on Geoscience and Remote Sensing, 2001,39 (11) : 2332-2342.

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