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一种交通监控场景下的多车道检测方法
引用本文:王镇波,余志,赵建华,李熙莹,罗东华.一种交通监控场景下的多车道检测方法[J].计算机工程与应用,2012,48(12):14-18,23.
作者姓名:王镇波  余志  赵建华  李熙莹  罗东华
作者单位:1. 中山大学工学院智能交通研究中心,广州510275;广东省智能交通系统重点实验室,广州510275
2. 广东省智能交通系统重点实验室,广州510275;广东省公安厅交通管理局,广州510440
3. 广州市方纬交通科技有限公司,广州,510275
基金项目:国家自然科学基金(No.5178362)
摘    要:为自动有效地获取交通监控场景中的多车道信息,提出一种利用骨架化边缘的多车道检测算法,以克服视频处理对固定场景和明确的先验车道位置信息的依赖。算法主要针对静态的交通背景图处理,采用背景提取、滤波和数字形态学预处理等,由Hough变换确定车道位置的骨架线;由行车方向约束车道线角度,利用车道线几何成像特性检测出准车道线,获取车道线和车道区域。实验表明,对不同的交通场景和不同光照条件,该方法能有效检测多车道,鲁棒性强,具有较高的工程应用价值。

关 键 词:交通监控视频  多车道检测  车道线提取  骨架化

Method for multi-lanes detection in traffic surveillance video
WANG Zhenbo , YU Zhi , ZHAO Jianhua , LI Xiying , LUO Donghua.Method for multi-lanes detection in traffic surveillance video[J].Computer Engineering and Applications,2012,48(12):14-18,23.
Authors:WANG Zhenbo  YU Zhi  ZHAO Jianhua  LI Xiying  LUO Donghua
Affiliation:1.Research Centre of Intelligent Transportation System, Sun Yat-sen University, Guangzhou 510275, China 2.Guangdong Provincial Key Laboratory of Intelligent Transportation System, Guangzhou 510275, China 3.Traffic Management Bureau of the Guangdong Provincial Public Security Department, Guangzhou 510440, China 4.Guangzhou Fundway Traffic Technology Company, Guangzhou 510275, China
Abstract:A multi-lanes detection method is proposed by extracting the edge of the background image automatical- ly for intelligent applications of traffic surveillance video processing, which requires stationary scene and lanes in- formation in advance. It focuses on static image processing: after background extraction from traffic video, filters and mathematical morphology are used for pretreatment. Hough transformation locates the lanes by gaining its skull from the edge of the background. With geometrical restriction, improper lines are excluded from lanes, and road ar- ea is confirmed. Several scence tests have been done to insure the method is effective. The proposed method turns out to be practically valuable, and has the robustness to detect multi-lanes from different scenes of traffic surveil- lance video under variant illumination conditions.
Keywords:traffic surveillance video  multi-lanes detection  lane snatch  skull
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