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作 者:徐哲炜 许瑞霖 刘琼[1] XU Zhewei;XU Ruilin;LIU Qiong(School of Software Engineering,South China University of Technology,Guangzhou510006,Guangdong,China)
出 处:《华南理工大学学报(自然科学版)》2019年第2期68-76,共9页Journal of South China University of Technology(Natural Science Edition)
基 金:广东省科技计划项目(2017A020219008;2017B090901047);广州市科技计划项目(201607010069)~~
摘 要:现有的感兴趣区域(RoI)提取方法很难兼顾较高召回率和较少的RoI数量.为了降低计算开销和RoI数量,提高召回率,文中提出了适合车载热成像行人检测的RoI提取方法:首先,根据行人边缘特征存在的方向差异性判断图像中可能的行人竖直边缘,增强其幅值;接着,级联行人尺寸约束和自适应局部双阈值分割方法过滤滑窗产生的边界框,滤除大量的非行人边界框;然后,根据行人的轮廓特征,采用T型模板对过滤后的边界框进行得分评估,在保留可能的行人腿部信息的同时去除边界框内部的无关边缘;最后,利用行人的强尺寸约束重新排序RoI,以便在提取固定数量的RoI时能提高召回率.在热成像行人检测数据集SCUT DataSet上进行对比实验,结果表明:当每幅图像提取400个RoI时,文中方法的召回率达92%,比EdgeBox方法的召回率提高21%,计算时间减少了10%.Current methods of extracting regions of interest are difficult to balance the high recall rate and the number of RoIs.To reduce the amount of computation and RoI,and increase recall rate,a RoIs extraction method suitable for robust vehicle thermal imaging pedestrian detection was proposed.First,the vertical edges of possible pedestrians in the image were judged according to the directional differences of pedestrian edge features,and their amplitude was enhanced.Then,the boundary boxes generated by sliding windows were filtered by cascade human dimension constraint and adaptive local double threshold segmentation method,and a large number of non-human boundary boxes were removed.Next,according to the outline characteristics of pedestrian,the filtered bounding boxes'score were evaluated by using a T-shaped template,and the unrelated edges inside the bounding boxes were removed while preserving possible pedestrians'leg information.Finally,the RoIs were reordered with the strong size constraint of pedestrians,so that the recall rate could be improved when a fixed amount of RoI was extracted.A contrast experiment was conducted on a thermal imaging pedestrian detection dataset called SCUT DataSet.The results show that when 400 RoIs are extracted from each image,the recall rate of our method reaches 92%;compared with the EdgeBox method,the recall rate increases by 21%,and the calculation time decreases by 10%.
关 键 词:车载热成像 行人检测 感兴趣区域提取 局部双阈值分割 行人安全 边缘检测
分 类 号:TP391.41[自动化与计算机技术—计算机应用技术]
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