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Using transit or municipal vehicles as moving observer platforms for large scale collection of traffic and transportation system information

机译:使用过境或市政车辆作为移动观察平台,用于大规模收集交通和运输系统信息

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The availability of traffic flow data on urban roads, as presently collected, is limited due to the sparse number of sensors over the spatially extensive network. We describe a prototype implementation of a sensor and data analysis system that could be deployed on transit or municipal vehicles to collect traffic flow data. It consists of a data collection vehicle with positioning sensors (GPS, IMU, and OEM vehicle state sensors) as well as multiple ranging sensors to monitor the ambient traffic (vertical LiDAR). Our premise is that some data on a given link is better than the current situation where most links go unobserved. The system is capable of detecting vehicles over multiple lanes, providing velocity and shape-based vehicle classification for each vehicle. We also present the results of several validation experiments, comparing the detection system against concurrent ground truth data.
机译:由于空间广泛的网络上的传感器数量稀疏,所属的城市道路上的交通流数据的可用性受到限制。我们描述了传感器和数据分析系统的原型实现,可以部署在运输或市政车辆上以收集流量数据。它由具有定位传感器(GPS,IMU和OEM车辆状态传感器)的数据收集车辆以及多个测距传感器来监控环境流量(垂直LIDAR)。我们的前提是给定链接的一些数据比当前的情况更好,大多数链接不观察到。该系统能够检测多个通道上的车辆,为每个车辆提供基于速度和基于形状的车辆分类。我们还介绍了几个验证实验的结果,比较了检测系统对并发地面真理数据。

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