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基于颜色和空间特征的图像检索
引用本文:张志安,骆斌.基于颜色和空间特征的图像检索[J].桂林工学院学报,2007,27(3):422-426.
作者姓名:张志安  骆斌
作者单位:西安文理学院,现代教育技术中心,西安,710002
基金项目:全国教育科学“十一五”规划2006年度教育部重点课题(DCA060097)
摘    要:提出一种新的基于颜色和空间特征的图像检索算法.首先,将检索图像转换为HSV颜色空间并进行量化,提取环形颜色空间信息熵作为颜色空间分布特征.其次,计算每个像素点的多邻域量化颜色值的一、二阶中心矩,利用各阶统计矩的信息熵来表征图像颜色的局部空间特征.最后,对特征向量进行高斯归一化,采用特征向量的L1-norm距离计算彩色图像的相似度并进行图像检索.结果表明,该方法比CDE和Geostat算法具有较好的检索效果.

关 键 词:图像检索  颜色特征  邻域统计矩
文章编号:1006-544X(2007)03-0422-05
修稿时间:2007-01-08

Image Retrieval Based on Color-Spatial Feature
ZHANG Zhi-an,LUO Bin.Image Retrieval Based on Color-Spatial Feature[J].Journal of Guilin University of Technology,2007,27(3):422-426.
Authors:ZHANG Zhi-an  LUO Bin
Abstract:A new kind of color image retrieval algorithm based on color and spatial features is presented.At first,the color image is changed into quantized HSV color model,and the spatial-color information entropy can be obtained based on the annular color histogram.Secondly,the entropies of neighbor statistic moment are calculated.The spatial-color moments and the entropies of neighbor statistic moment are used as the character vector of color images.The Gaussian model is used to normalize the different sub-characters distance to the character vector.The similarity of the querying image and other images are computed by the L1-norm distance.Experiments indicate that this method has better performance than CDE and geostat.
Keywords:image retrieval  color feature  neighbor statistic moment
本文献已被 CNKI 维普 万方数据 等数据库收录!
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