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A Low-Complexity Vision-Based System for Real-Time Traffic Monitoring

机译:一种基于低复杂度视觉的实时交通监控系统

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摘要

In this paper a novel, efficient, and fast-performing vision-based system for traffic flow monitoring is presented. Using standard traffic surveillance cameras and effectively applying simple techniques, the proposed method can produce accurate results on vehicle counting in different challenging situations, such as low-resolution videos, rainy scenes, and situations of stop-and-go traffic. Due to the simplicity of the proposed algorithm, the system is able to manage multiple video streams simultaneously in real time. The method follows a robust adaptive background segmentation strategy based on the Approximated Median Filter technique, which detects pixels corresponding to moving objects. Experimental results show that the proposed method can achieve sufficient accuracy and reliability while showing high performance rates, outperforming other state-of-the-art methods. Tests have proved that the system is able to work with up to 50 standard-resolution cameras at the same time in a standard computer, producing satisfactory results.
机译:本文提出了一种新颖,高效,快速的基于视觉的交通流监控系统。使用标准的交通监控摄像头并有效地应用简单的技术,该方法可以在不同的挑战性情况下(例如低分辨率视频,下雨天和停走交通情况)对车辆计数产生准确的结果。由于所提出算法的简单性,该系统能够实时同时管理多个视频流。该方法遵循基于近似中值滤波技术的鲁棒自适应背景分割策略,该策略检测与移动对象相对应的像素。实验结果表明,所提出的方法可以在显示出高性能的同时达到足够的精度和可靠性,优于其他最新方法。测试证明,该系统能够在一台标准计算机上同时使用多达50台标准分辨率的相机,从而产生令人满意的结果。

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