交通监控系统中基于视觉的车辆/行人检测

S. Suryakala, K. Muthumeenakshi, S. Gladwin
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引用次数: 8

摘要

车辆检测与计数在智能交通系统中起着重要的作用,它可以持续地提供交通信息。这一检测过程可能面临许多挑战,如不同的气候条件和光照变化。行人检测是汽车制造商的一个主要问题,他们的自动化系统必须能够检测到车辆周围的行人。随着遮挡水平的增加,性能下降。本文分别采用Haar级联分类器和背景分离方法对车辆和行人进行检测。Haar级联分类器是一种有效的目标检测方法,由Viola-Jones首先提出。背景分离方法采用K-NN算法对行人进行识别。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Vision based Vehicle/Pedestrian Detection in Traffic Surveillance System
Vehicle detection and counting plays a major role in Intelligent Transportation Systems, which continuously provides the traffic information. This detection process may face many challenges like different climatic conditions and illumination changes. Detection of Pedestrians is a main concern of car manufacturers to have an automated system which must be able to detect the pedestrian in the surrounding of vehicles. There is a performance degradation with increase in occlusion level. This paper presents the Vehicle and Pedestrian Detection by Haar Cascade Classifier and Background Separation method respectively. Haar Cascade classifier is an efficient method for object detection, first proposed by Viola-Jones. Background Separation method uses K-NN algorithm to identify the pedestrians.
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