基于改进基本顺序聚类的背景重构算法

M. Xiao, Lei Zhang
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引用次数: 8

摘要

基于背景出现频率较大的假设,提出了一种基于改进基本序列聚类的背景重构算法。首先,基于改进的基本序列聚类方法对一段时间内的像素强度进行分类;其次,对分类类进行归并。最后,选择出现频率高于阈值的像素强度类作为背景像素强度值,使背景模型能够很好地代表场景。仿真结果表明,与基于基本顺序聚类的背景重构方法相比,该方法在最终聚类形成后才对数据进行分配,同时完全避免了近类,大大降低了数据输入顺序的影响。背景模型能很好地反映场景。
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A Background Reconstruction Algorithm Based on Modified Basic Sequential Clustering
Based on the assumption that background appears with large appearance frequency, a new background reconstruction algorithm based on modified basic sequential clustering is proposed in this paper. First, pixel intensity in period of time are classified based on modified basic sequential clustering. Second, merging procedure is run to classified classes. Finally, pixel intensity classes, whose appearance frequencies are higher than a threshold, are selected as the background pixel intensity value, so the background model can represent the scene well. Compared with the background reconstruction method based on basic sequential clustering, the simulation results show that an assignment for the data is reached after the final cluster formation, at the same time those near classes are avoided at all and the effect of input order of data has been reduced greatly. And the background model can represent the scene well.
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