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Determination of traffic intensity from camera images using image processing and pattern recognition techniques

机译:使用图像处理和模式识别技术从摄像机图像确定交通强度

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The goal of this project was to detect the intensity of traffic on a road at different times of the day during daytime. Although the work presented utilized images from a section of a highway, the results of this project are intended for making decisions on the type of intervention necessary on any given road at different times for traffic control, such as installation of traffic signals, duration of red, green and yellow lights at intersections, and assignment of traffic control officers near school zones or other relevant locations. In this project, directional patterns are used to detect and count the number of cars in traffic images over a fixed area of the road to determine local traffic intensity. Directional patterns are chosen because they are simple and common to almost all moving vehicles. Perspective vision effects specific to each camera orientation has to be considered, as they affect the size and direction of patterns to be recognized In this work, a simple and fast algorithm has been developed based on horizontal directional pattern matching and perspective vision adjustment. The results of the algorithm under various conditions are presented and compared in this paper. Using the developed algorithm, the traffic intensity can accurately be determined on clear days with average sized cars. The accuracy is reduced on rainy days when the camera lens contains raindrops, when there are very long vehicles, such as trucks or tankers, in the view, and when there is very low light around dusk or dawn.
机译:该项目的目标是在白天的不同时间检测道路上的交通强度。尽管所展示的作品使用的是高速公路的一部分图像,但该项目的结果旨在决定在任何时间对任何给定道路进行必要的干预类型以进行交通控制,例如安装交通信号灯,红色持续时间,路口的绿灯和黄灯,以及在学校区域或其他相关位置附近分配交通管制人员。在该项目中,使用方向图来检测和计数道路固定区域内交通图像中的汽车数量,以确定当地的交通强度。选择方向图是因为它们对几乎所有行驶中的车辆都是简单且通用的。必须考虑特定于每个相机方向的透视视觉效果,因为它们会影响要识别的图案的大小和方向。在这项工作中,基于水平方向图案匹配和透视视觉调整,已经开发了一种简单快速的算法。提出并比较了各种条件下算法的结果。使用开发的算法,可以在晴天使用平均大小的汽车准确确定交通强度。在雨天中,当相机镜头中有雨滴时,在视图中有很长的车辆(例如卡车或油轮),以及在黄昏或黎明附近光线很暗时,准确性会降低。

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