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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Real-time vehicle detection using histograms of oriented gradients and AdaBoost classification
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Real-time vehicle detection using histograms of oriented gradients and AdaBoost classification

机译:使用定向梯度直方图和AdaBoost分类进行实时车辆检测

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摘要

Vehicle detection is a major part of a driver assistant system. However, a complex environment and diverse types of vehicles make real-time detection of vehicles a very challenging task. This paper proposes a real-time vehicle detection system of two steps: hypothesis generation and hypothesis verification. In the first step, potential vehicles are detected using shadows under vehicles. In the second step, hypotheses generated in the first step are classified as vehicles and non-vehicles. The novel aspect of this research is in constructing two types of histogram orientation gradients descriptors to extract vehicle features, and then combining them for their final features. The AdaBoost classifier is trained by the combined histogram orientation gradients features. The Treatment Group of images vehicle dataset is adopted for the classifier training. The experiment results show that the proposed system performs well in accuracy and robustness and can meet real-time requirements. (C) 2016 Elsevier GmbH. All rights reserved.
机译:车辆检测是驾驶员辅助系统的主要部分。但是,复杂的环境和多种类型的车辆使车辆的实时检测成为一项非常艰巨的任务。本文提出了一个实时的车辆检测系统,该系统分为两个步骤:假设生成和假设验证。第一步,使用车辆下方的阴影来检测潜在的车辆。在第二步中,第一步中生成的假设被分类为车辆和非车辆。这项研究的新颖之处在于构造两种直方图方向梯度描述符以提取车辆特征,然后将它们组合为最终特征。 AdaBoost分类器通过组合的直方图方向梯度功能进行训练。分类器训练采用图像车辆数据集的处理组。实验结果表明,所提出的系统在精度和鲁棒性方面表现良好,可以满足实时性要求。 (C)2016 Elsevier GmbH。版权所有。

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