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基于分割区域及特征相似度的玉米田遥感图像分类方法
引用本文:王肖霞,杨风暴,梁若飞,冯裴裴. 基于分割区域及特征相似度的玉米田遥感图像分类方法[J]. 图学学报, 2016, 37(3): 428. DOI: 10.11996/JG.j.2095-302X.2016030428
作者姓名:王肖霞  杨风暴  梁若飞  冯裴裴
摘    要:针对遥感图像中玉米田目标光谱复杂,同物异谱现象严重导致分类结果差的问题,提出一种基于分割区域及特征相似度的玉米田遥感图像分类方法。首先利用主成分分析法(PCA)对多光谱和高分辨全色融合图像进行第一主成分提取,以获得包含丰富图像信息的单色图像I;对I 进行分水岭分割,得到一幅过分割目标区域图;构建由纹理、亮度及轮廓特征相似度组成的特征组;最后基于随机森林原理,利用构建的特征组对玉米目标进行提取。用高分一号卫星数据进行实验,并与支持向量机方法(SVM)、神经网络算法和最大似然算法进行了比较分析,实验表明,该方法的分类精度优于其他算法。

关 键 词:同物异谱  分割区域  特征相似度  

A Corn Field of Remote Sensing Image Classification Method Based onSegmentation-Derived Regions and Feature Likeness
Wang Xiaoxia,Yang Fengbao,Liang Ruofei,Feng Peipei. A Corn Field of Remote Sensing Image Classification Method Based onSegmentation-Derived Regions and Feature Likeness[J]. Journal of Graphics, 2016, 37(3): 428. DOI: 10.11996/JG.j.2095-302X.2016030428
Authors:Wang Xiaoxia  Yang Fengbao  Liang Ruofei  Feng Peipei
Abstract:Corn field remote sensing images have a mass of endmember spectral variability andcomplexity, that results in the bad classification of planting area. A corn field of remote sensing imageclassification method based on segmentation-derived regions and feature likeness is proposed. First,principal component analysis (PCA) is used to extract the first principal component from the fusionimage which is fused by the panchromatic and multi-spectral image, to acquire the monochromaticimage I which contains rich information. Then, do a Watershed segmentation to I, we can get a graph ofa split target area. Then build characteristic group which is composed of texture, brightness and contourfeature likeness. At last Based on the principle of random forests, extract the corn target using thecharacteristic group. With the testing using GF-1 satellite remote sensing data and the results comparisonanalysis of the support vector machine (SVM), neural network algorithm and maximum likelihoodalgorithm, it shows that the classification accuracy of this method is superior to other algorithms.
Keywords:endmember spectral  segmentation-derived regions  feature likeness  
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