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纹理分析窗大小的高斯-马尔可夫随机场模型估计方法
引用本文:盛文,徐晨曦,杨江平.纹理分析窗大小的高斯-马尔可夫随机场模型估计方法[J].红外与激光工程,2000,29(6):51-54.
作者姓名:盛文  徐晨曦  杨江平
作者单位:空军雷达学院二系装备维修教研室,武汉,430010
摘    要:在纹理分析中,窗口大小的选择对所提取特征的有效性及计算速度等有很大影响。文中利用高斯-马尔可夫随机场(GMRF)模型对纹理进行描述,采用最小平方误差估计获取纹理图像的随机场参数,并证明了这种估计的一致性。针对估计式在某些情况下可能无解,对该式作了改进,使其在实际应用中总能有解。利用估计的一致性,提出了一种系统估计纹理分析窗口大小的方法,实验表明了这种方法的有效性。

关 键 词:纹理分析  马尔可夫随机场  模型估计  图像分析
修稿时间:2000-03-17

GMRF model based window size estimation approach for texture analysis
Sheng Wen,Xu Chenxi,Yang Jiangping.GMRF model based window size estimation approach for texture analysis[J].Infrared and Laser Engineering,2000,29(6):51-54.
Authors:Sheng Wen  Xu Chenxi  Yang Jiangping
Abstract:In texture analysis, the selection of window size has great influence on effectiveness of extracted feature and computing speed. In this paper, Gauss\|Markov random field model is employed to describe textures, the least square error approach is employed to estimate the field parameters, and the non\|bias feature of the estimation is proved. As there may be no solution according to this expression, an improvement is presented. Based on the non\|bias feature of parameter estimation, a window size estimation approach for texture primitives is presented, and experiment shows the effectiveness of our approach.
Keywords:Texture analysis  Markov random field  Feature extraction
本文献已被 CNKI 维普 万方数据 等数据库收录!
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