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一种基于聚类的深空红外多目标快速检测算法
引用本文:叶有时, 唐林波, 赵保军. 一种基于聚类的深空红外多目标快速检测算法[J]. 电子与信息学报, 2011, 33(1): 77-84. doi: 10.3724/SP.J.1146.2010.00175
作者姓名:叶有时  唐林波  赵保军
作者单位:北京理工大学电子工程系 北京 100081
基金项目:国家863计划项目(2008AA8012320B)资助课题
摘    要:该文提出一种基于行扫描点线目标聚类合并的快速实时多目标检测算法。该方法首先对原始图像进行自适应阈值分割,然后采用外接矩补形,点线目标提取和聚类合并对二值图像单帧目标进行全视场检测并编号标记,精度达到像素级,避免了帧差法,投影法等传统检测算法带来的漏检。最后应用五点二次滤波预测目标位置,并构造代价函数进行关联匹配完成目标确认,有效解决了检测中目标分裂,交叉,因重合而暂时消失等问题,提高了系统检测能力。在基于SOPC的硬件平台进行验证,实验结果表明该算法能够准确实时地检测深空目标。

关 键 词:深空多目标检测   外接矩补形   聚类合并   片上可编程系统
收稿时间:2010-03-01
修稿时间:2010-06-28

A Fast Deep-space Infrared Multi-target Detection Algorithm Based on Clustering
Ye You-Shi, Tang Lin-Bo, Zhao Bao-Jun. A Fast Deep-space Infrared Multi-target Detection Algorithm Based on Clustering[J]. Journal of Electronics & Information Technology, 2011, 33(1): 77-84. doi: 10.3724/SP.J.1146.2010.00175
Authors:Ye You-shi  Tang Lin-bo  Zhao Bao-jun
Affiliation:Department of Electronic Engineering, Beijing Institute of Technology, Beijing 100081, China
Abstract:This paper presents a fast real-time multi-target detection algorithm based on line target clustering. Adaptive threshold is applied to image segmentation; And then enclosing rectangle prosthetics, line target extraction and clustering merger are utilized for the binary image to implement full-field pixel-level targets detection and conduct ID tag. So undetected problems caused by the traditional detection algorithm can be avoid; Finally, a five points square predictor and cost function are constructed for trajectory matching, by which the problems of multi-target division, cross, temporarily lost due to overlap and so on are effectively resolved. The experiments are carried on SOPC hardware platform and the results show that the proposed algorithm can perform real-time detection accurately for the deep-space objects.
Keywords:Deep-space multi-target detection  Enclosing rectangle prosthetics  Clustering merger  SOPC (System On Programmable Chip)
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