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Traffic Data Collection Under Mixed Traffic Conditions Using Video Image Processing

机译:使用视频图像处理混合交通状况下的交通数据

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摘要

Traffic data collection under mixed traffic conditions is one of the major problems faced by researchers as well as traffic regulatory authorities. Study and analysis of traffic behavior is critically dependent on the availability of observed traffic data. For mixed traffic observed in developing countries, no suitable tool is available for this purpose. Keeping in view these necessities and problems in data collection, a novel offline image processing-based data collection system, suitable for mixed traffic conditions, is developed. Its underlying ability to detect, track, and classify vehicles makes it useful in collecting traffic data under varying traffic conditions. This system can automatically analyze traffic videos and provide macroscopic traffic characteristics such as classified vehicle flows, average vehicle speeds and average occupancies, and microscopic characteristics such as individual vehicle trajectories, lateral, and longitudinal spacing. It is observed that this new system is working well even under congested mixed traffic conditions.
机译:混合交通条件下的交通数据收集是研究人员和交通管理部门面临的主要问题之一。交通行为的研究和分析主要取决于所观察到的交通数据的可用性。对于在发展中国家观察到的混合流量,没有合适的工具可用于此目的。考虑到数据收集中的这些必要性和问题,开发了一种适用于混合交通状况的新颖的基于离线图像处理的数据收集系统。它具有检测,跟踪和分类车辆的基本能力,使其在变化的交通条件下收集交通数据很有用。该系统可以自动分析交通视频,并提供宏观交通特征,例如分类的车辆流量,平均车速和平均占用率,以及微观特征,例如单个车辆的轨迹,横向和纵向间距。可以观察到,即使在拥挤的混合交通条件下,该新系统也能很好地运行。

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