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基于并行Tabu搜索和空间信息约束的遥感影像模糊聚类

Fuzzy C-Means Clustering of Remote Sensing Imagery Using Parallel Tabu Search and Spatial Relation Constrained

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【作者】 刘小利朱国宾李清泉贾治革

【Author】 LIU Xiaoli1ZHU Guobin2LI Qingquan1JIA Zhige3(1State Key Laboratory of Information Engineering in Surveying,Mapping and Remote Sensing, Wuhan University,129 Luoyu Road,Wuhan 430079,China)(2International School of Software,Wuhan University,129 Luoyu Road,Wuhan 430079,China)(3Institute of Seismology,China Earthquake Administration,40 Hongshance Road,Wuhan 430071,China)

【机构】 武汉大学测绘遥感信息工程国家重点实验室武汉大学国际软件学院中国地震局地震研究所

【摘要】 在传统模糊C-均值聚类的基础上,引入了描述空间邻近关系的空间隶属度;采用Tabu搜索策略,抑制了模糊聚类的局部收敛性和对聚类中心初值的敏感性;提出了并行算法,有效地降低了影像分割的通信复杂度,提高了算法的搜索速度,实现了线性加速比。实验结果表明,改进算法有效地提高了聚类抗噪性能,减少了聚类迭代次数。

【Abstract】 Based on the classical FCM clustering,the spatial fuzzy membership about a pixel and regions is defined and constrained into the classical partition matrix.Tabu search was introduced to overcome the locality and the sensitiveness of the initial condition of FCM clustering.A FCM algorithm based on Tabu search is parallelized to reduce the communication complexity of image segmentation and to improve the overall performance of the scheme,which achieves a satisfied linear speedup.The experimental results show the efficiency of the proposed algorithm in decreasing clustering iterations and increasing classified precision.

【基金】 国家973计划资助项目(2006CB705500);国家自然科学基金资助项目(40871201);中国地震局地震研究所所长基金资助项目(IS200756040)
  • 【文献出处】 武汉大学学报(信息科学版) ,Geomatics and Information Science of Wuhan University , 编辑部邮箱 ,2009年05期
  • 【分类号】P237
  • 【被引频次】3
  • 【下载频次】196
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