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Vehicle Detection Method for Intelligent Vehicle at Night Time Based on Video and Laser Information

机译:基于视频和激光信息的智能夜间车辆检测方法

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摘要

Front vehicle detection technology is one of the hot spots in the advanced driver assistance system research field. This paper puts forward a method for front vehicles detection based on video-and-laser-information at night. First of all, video images and laser data are pre-processed with the region growing and threshold area expunction algorithm. Then, the features of front vehicles are extracted by use of a Gabor filter based on the uncertainty principle, and the distances to front vehicles are obtained through laser point cloud. Finally, front vehicles are automatically classified during identification with the improved sequential minimal optimization algorithm, which was based on the support vector machine (SVM) algorithm. According to the experiment results, the method proposed by this text is effective and it is reliable to identify vehicles in front of intelligent vehicles at night.
机译:前置车辆检测技术是高级驾驶员辅助系统研究领域的热点之一。提出了一种基于夜间视频和激光信息的前车检测方法。首先,利用区域增长和阈值面积求和算法对视频图像和激光数据进行预处理。然后,基于不确定性原理,利用Gabor滤波器提取前车的特征,并通过激光点云获得到前车的距离。最后,基于改进的顺序最小优化算法(基于支持向量机(SVM)算法)在识别过程中对前排车辆进行自动分类。根据实验结果,本文提出的方法是有效的,在夜间识别智能车辆前方的车辆是可靠的。

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