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Obstacle recognition in front of vehicle based on geometry information and corrected laser intensity

机译:基于几何信息和校正后的激光强度的车辆前方障碍物识别

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摘要

Accurate identification and classification of obstacles in front of vehicle is an important part of intelligent vehicle safety driving. To solve the difficulties in distinguishing geometry similar obstacles and blocked obstacles, a real-time algorithm to accurately identify vehicles and pedestrians in a single frame was presented using laser intensity correction model and obstacle characteristic information. To complete the identification of obstacles, there are two classifications; the first classification according to the diagonal lengths of obstacles’ minimum enclosing rectangle, and then the second classification according to the mean and variance of intensity. As for different overlap criterion, result shows that the classification performance of our methods is better than other methods available.
机译:准确识别和分类车辆前方的障碍物是智能车辆安全驾驶的重要组成部分。为了解决区分几何相似障碍物和障碍物障碍的困难,提出了一种利用激光强度校正模型和障碍物特征信息在单个帧中准确识别车辆和行人的实时算法。为了完成障碍物的识别,有两种分类方法:第一类是根据障碍物最小包围矩形的对角线长度,第二类是根据强度的均值和方差。对于不同的重叠准则,结果表明我们的方法的分类性能优于其他可用方法。

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