计算机应用 ›› 2012, Vol. 32 ›› Issue (06): 1544-1547.DOI: 10.3724/SP.J.1087.2012.01544

• 图形图像技术 • 上一篇    下一篇

基于证据理论的小波域多特征医学图像融合

姚丽莎1,赵海峰2,罗斌2,朱珍元1   

  1. 1. 安徽新华学院 信息工程学院,合肥 230088
    2. 安徽大学 计算机科学与技术学院,合肥230039
  • 收稿日期:2011-12-13 修回日期:2012-01-21 发布日期:2012-06-04 出版日期:2012-06-01
  • 通讯作者: 姚丽莎
  • 作者简介:姚丽莎(1986-),女,安徽黄山人,助教,硕士研究生,主要研究方向:图像处理、模式识别;〓赵海峰(1972-),男,安徽合肥人,副教授,博士,主要研究方向:图像处理、模式识别;〓罗斌(1963-),男,安徽合肥人,教授,博士,主要研究方向:图像处理、图谱理论;〓朱珍元(1985-),女,湖北黄冈人,助教,硕士研究生,主要研究方向:数据挖掘。
  • 基金资助:
    国家自然科学基金;安徽省教育厅自然科学研究项目

Medical image fusion with multi-feature based on evidential theory in wavelet domain

YAO Li-sha1,ZHAO Hai-feng2,LUO Bin2,ZHU Zhen-yuan1   

  1. 1. Faculty of Information Engineering, Anhui Xinhua University, Hefei Anhui 230088, China
    2. School of Computer Science and Technology, Anhui University, Hefei Anhui 230039, China
  • Received:2011-12-13 Revised:2012-01-21 Online:2012-06-04 Published:2012-06-01
  • Contact: YAO Li-sha

摘要: 针对多源医学图像融合过程中融合权值选择的不确定性,根据DS证据理论,采用证据理论中的基本概率分配函数来描述判决结果的不确定性。利用图像的区域方差、区域能量、区域信息熵三个特征,然后对特征进行归一化,将各个特征值作为基本概率分配的依据,在小波域内对高频分量采用基于DS证据理论的多特征融合规则进行图像融合。利用拉普拉斯能量,在小波域内对低频分量采用拉普拉斯能量自适应融合规则。实验结果表示:所提算法综合了多个特征的优势,降低了融合过程中的不确定性,较大程度地保留了图像信息。

关键词: DS证据理论, 拉普拉斯能量, 小波域, 多特征, 图像融合

Abstract: To address the uncertainty of weights selection in Multi-source medical image fusion process,the basic probability assignment function of the evidence is used to express decision result’s uncertainty based on Dempster-Shafer (DS) evidential theory.The detection image’s three features,which are regional variance, regional energy, regional information entropy,are used and normalized,then the basic probability assignment can be got according to the features.Image fusion rules with multi-feature based on DS evidence theory is used for high frequency components in wavelet domain. Energy of Laplace adaptive fusion rules is used for low frequency component in wavelet domain according to energy of Laplace. Experiments show that the proposed algorithm is superior to other fusion algorithms.It combines the advantages of multi-feature,reduces the uncertainty during the image fusion process and retains the details of the image in large extent.

Key words: DS evidential theory, energy of Laplace, wavelet domain, multi-feature, image fusion

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