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SAR图像分割的Bootstrap广义多分辨似然比检验方法
引用本文:句彦伟,田铮,徐海霞.SAR图像分割的Bootstrap广义多分辨似然比检验方法[J].宇航学报,2006,27(4):664-669.
作者姓名:句彦伟  田铮  徐海霞
作者单位:1. 西北工业大学理学院应用数学系,西安,710072
2. 西北工业大学理学院应用数学系,西安,710072;中科院自动化所,模式识别国家重点实验室,北京,100080
3. 西北工业大学计算机学院,西安,710072
基金项目:国家自然科学基金;航空基础科学基金
摘    要:提出广义多分辨似然比(generalized multiresolution likelihood ratio,简称GMLR)的概念,给出其Bayes准则下的假设检验和判别准则。GMLR能融合待判别信号的多个特征量,增大不同信号的区分度,所以能更精确地对信号进行判别分析。在SAR(synthetic aperture radar)图像分割的应用背景中,首先用弃除图像冗余信息,减小计算量的Bootstrap样本得到GMLR的原假设和备择假设参数的极大似然估计,然后检测GMLR的分割阈值,最后对森林和草地组成的模拟图像和真实SAR图像分割,证明该方法是SAR图像分割的一个有效途径。

关 键 词:广义多分辨似然比  Bayesian准则  Bootstrap方法
文章编号:1000-1328(2006)04-0664-06
收稿时间:01 19 2006 12:00AM
修稿时间:2006-01-192006-04-04

Generalized Multiresolution Likelihood Ratio Test for SAR Imagery Segmentation with Bootstrap Sampling
JU Yan-wei,TIAN Zheng,XU Hai-xia.Generalized Multiresolution Likelihood Ratio Test for SAR Imagery Segmentation with Bootstrap Sampling[J].Journal of Astronautics,2006,27(4):664-669.
Authors:JU Yan-wei  TIAN Zheng  XU Hai-xia
Abstract:A generalized multiresolution likelihood ratio(GMLR) is defined and Bayes test of GMLR is given for making a decision.The GMLR can fuse different characters of signal so that the distinction of different signals is increased for recognition.Because:(i) the choice of independence pixel sample which would allows an estimation of the statistical parameters of the image in the best conditions of independence;(ii) the reduction of redundancy of information connected to the choice of a small representative sample,allows a gain in a factor n/N~2(n is the number of bootstrap sample,and the N~2 is the pix number of the image) in times of calculation.So in the application of SAR imagery segmentation, the bootstrap sampling is employed to estimate the parameters of null hypothesis and alternative hypothesis in the GMLR.Simulative and experimental results demonstrate that our method performs fairly well.
Keywords:Generalized multiresolution likelihood ratio  Bayes criterion  Bootstrap sampling
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