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基于多维彩色向量空间的火焰图像模糊聚类分割算法
引用本文:闫晓玲,王黎明,卜乐平. 基于多维彩色向量空间的火焰图像模糊聚类分割算法[J]. 数据采集与处理, 2012, 27(3): 368-373
作者姓名:闫晓玲  王黎明  卜乐平
作者单位:海军工程大学电气与信息学院,武汉,430033
摘    要:针对火灾探测过程中早期火焰的分割技术研究,提出了一种基于多维彩色向量空间的火焰图像模糊聚类分割算法,该算法以运动目标序列图像之间变化的区域作为聚类模板,提取该聚类模板的RGB多维彩色特征向量,然后将图像的像素与聚类模板通过模糊聚类的方式进行分割。这种分割算法计算简单,时间开销较小,可以较好地获取火焰图像的边缘形态特征,并且能够明显消除不同光线下分割误差,实现快速无监督自动分割。

关 键 词:模糊聚类  特征向量  聚类模板  自动分割

Fuzzy Clustering Segmentation Algorithm of Flame Image Based on Multi-Dimensional Color Vector Space
Yan Xiaoling , Wang Liming , Bu Leping. Fuzzy Clustering Segmentation Algorithm of Flame Image Based on Multi-Dimensional Color Vector Space[J]. Journal of Data Acquisition & Processing, 2012, 27(3): 368-373
Authors:Yan Xiaoling    Wang Liming    Bu Leping
Affiliation:(Electric and Informational College,Naval Engineering University,Wuhan,430033,China)
Abstract:A fuzzy clustering segmentation algorithm is proposed based on multi-dimensional color vector space.The algorithm uses the moving object image sequence variation region as a clustering template.When template is ready,its RGB eigenvectors are extracted and then the segmentation can be continued by using the clustering template.The arithmetic can be easily operated with a little time cost.A better picture of morphological characteristics of the flame edge can be obtained by this algorithm.The segmentation error under different light can be eliminated,and fast unsupervised automatic segmentation can be completed.
Keywords:fuzzy clustering  eigenvector  clustering template  automatic segmentation
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