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统计假设检验方法在全极化SAR变化检测中的应用
引用本文:郝洪美,张永红,石海燕,黄金波.统计假设检验方法在全极化SAR变化检测中的应用[J].遥感学报,2012,16(3):520-532.
作者姓名:郝洪美  张永红  石海燕  黄金波
作者单位:中国测绘科学研究院, 北京 100830; 辽宁工程技术大学, 辽宁 阜新 123000; 吉林省第一测绘院, 吉林 四平 136001;中国测绘科学研究院, 北京 100830;吉林省第一测绘院, 吉林 四平 136001;吉林省第一测绘院, 吉林 四平 136001
基金项目:国家自然科学基金(编号:40971225)
摘    要:本文以全极化SAR数据为研究对象。由于全极化数据相干矩阵T3或协方差矩阵C3服从复wishart分布,所以首先在此分布的基础上利用统计假设检验方法构建似然比参数,用以表征地表地物的变化程度,然后利用基于广义高斯分布模型的EM迭代算法(GGM-EM)对变化信息进行初提取,最后充分考虑上下文信息,利用概率松弛迭代算法对初检测信息进行优化。该方法不仅全自动提取变化信息,而且经过非相干平均、初始分类、分类结果优化3次降斑去噪处理,因此检测精度较高。通过与传统对数比值法的比较,证明该方法的有效性。

关 键 词:全极化SAR  变化检测  似然比  最小错误率贝叶斯准则  概率松弛迭代算法
收稿时间:2010/10/28 0:00:00
修稿时间:2011/10/31 0:00:00

Application of test statistic method in fully polarimtric SAR change detection
HAO Hongmei,ZHANG Yonghong,SHI Haiyan and HUANG Jinbo.Application of test statistic method in fully polarimtric SAR change detection[J].Journal of Remote Sensing,2012,16(3):520-532.
Authors:HAO Hongmei  ZHANG Yonghong  SHI Haiyan and HUANG Jinbo
Institution:Chinese Academy of Surveying and Mapping, Beijing 100830, China; Liaoning Technical University, Fuxin 123000, China; First Surveying and Mapping Institute of Jilin Province, Siping 136001, China;Chinese Academy of Surveying and Mapping, Beijing 100830, China;First Surveying and Mapping Institute of Jilin Province, Siping 136001, China;First Surveying and Mapping Institute of Jilin Province, Siping 136001, China
Abstract:This paper takes fully polarimetric SAR data as study object to analyze the change detection technology. As the coherency matrix C3 or covariance matrix T3 of fully polarimetric SAR data follows a complex Wishart distribution. First, the likelihood-ratio parameter is built by a test statistic based on Wishart distribution to represent change features. Then the initial change information is extracted by the expectation maximization (EM) iterative algorithm based on a general Gaussian distribution. Finally, the change information is generated by optimizing the initial change information using probability relaxation iteration algorithm considering the context information. The method can extract change information automatically as well as produce change result of almost speckle noise free by integrating a series of filtering operations, including incoherent average, initial classifi cation, optimizing classifi cation. The validity of the method is demonstrated by comparison with traditional logarithm ratio method.
Keywords:fully polarimetric SAR  change detection  likelihood-ratio  minimum error rate Bayesian criterion  probability relaxation iteration algorithm
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