Vehicle detection and counting using haar feature-based classifier

Shaif Choudhury, Soummyo Priyo Chattopadhyay, Tapan Kumar Hazra
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引用次数: 52

Abstract

In this paper we would describe a vehicle detection technique that can be used for traffic surveillance systems. An intelligent traffic surveillance system, equipped with electronic devices, works by communicating with moving vehicles about traffic conditions, monitor rules and regulations and avoid collision between cars. Therefore the first step in this process is the detection of cars. The system uses Haar like features for vehicle detection, which is generally used for face detection. Haar feature-based cascade classifiers are an effective object detection method first proposed by Viola and Jones. It's a machine learning based technique which uses a set of positive and negative images for training purpose. Results show this method is quite fast and effective in detecting cars in real time CCTV footages.
基于haar特征分类器的车辆检测与计数
在本文中,我们将描述一种可用于交通监控系统的车辆检测技术。智能交通监控系统配备了电子设备,通过与移动车辆沟通交通状况,监控规则和法规,避免车辆之间的碰撞。因此,这个过程的第一步是检测汽车。该系统使用Haar类特征进行车辆检测,通常用于人脸检测。基于Haar特征的级联分类器是Viola和Jones首先提出的一种有效的目标检测方法。这是一种基于机器学习的技术,它使用一组积极和消极的图像来进行训练。结果表明,该方法能够快速有效地检测出闭路电视实时视频中的车辆。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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