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Rear-View Vehicle Detection Based on MSER and Spatial Combination Feature Description

机译:基于MSER和空间组合特征描述的后视车辆检测

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With the rapid development of smart city and intelligent transportation systems(ITS), traffic surveillance plays an important role on traffic and city safety. However, due to the variation of the illumination conditions and complex urban scenarios, camera-based vehicle detection becomes an emerging and challenging problem. In this paper, an effective and robust framework of rear-view vehicle detection for complex urban surveillance is proposed. Firstly, original image is decomposed into red-green-blue(RGB) color space with multi-channel enhancement technique. The region of interested (ROI) are then located by the unique color and texture utilizing maximally stable extremal region(MSER) algorithm. Furthermore, with special and relatively fixed spatial relationship of rear-lamp and license plate, a novel spatial combination feature (SCF) description is proposed. By utilizing the state-of-art support vector machine(SVM) on the proposed SCFs, the vehicle detection problem is recast into a supervised learning classification problem. The proposed method is fully evaluated and tested under different illumination conditions and real complex urban scenarios. Experimental results demonstrate the effectiveness and the robustness for the proposed detection framework.
机译:随着智能城市和智能交通系统的快速发展,交通监控在交通和城市安全中起着重要的作用。但是,由于照明条件的变化和复杂的城市场景,基于摄像头的车辆检测成为一个新兴且具有挑战性的问题。本文提出了一种有效,鲁棒的后视车辆检测框架,用于复杂的城市监视。首先,利用多通道增强技术将原始图像分解为红绿蓝(RGB)颜色空间。然后,利用最大稳定的极值区域(MSER)算法,通过唯一的颜色和纹理来定位感兴趣的区域(ROI)。此外,针对后灯与车牌之间的特殊且相对固定的空间关系,提出了一种新颖的空间组合特征(SCF)描述。通过在提出的SCF上利用最新的支持向量机(SVM),将车辆检测问题重铸为有监督的学习分类问题。在不同的光照条件和实际复杂的城市场景下,对所提出的方法进行了全面评估和测试。实验结果证明了所提出的检测框架的有效性和鲁棒性。

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