arXiv:2410.00132cs.CV2024-10

用部分联网车数据同时估算车辆位置与速度,提升交通管理精度。

CVVLSNet: Vehicle Location and Speed Estimation Using Partial Connected Vehicle Trajectory Data

  • 基于道路单元占用表示,融合时空交互信息
  • 在不同联网率下均显著优于现有方法
  • 适合低联网率场景的交通状态估计

实时估算车辆位置与速度对交通管理与控制应用至关重要,如自适应信号控制。随着通信技术发展,联网车(CVs)可与周边车辆或基础设施共享交通信息。但在连接初期,仅有部分车辆为联网车,非联网车(NCs)的位置与速度无法获取,需通过估算获得完整交通信息。本文提出一种基于联网车的车辆位置与速度估计网络(CVVLSNet),仅使用部分联网车轨迹数据,即可同步估计车辆位置与速度。首先提出道路单元占用(RCO)方法,用于表征动态车辆状态信息;通过简单融合RCO表示,实现时空交互建模。随后,以编码-速率变换器(CRATE)网络为骨干,构建CVVLSNet进行估计,并在损失函数中引入物理车辆尺寸约束。大量实验表明,该方法在不同联网率、信号配时及流量-容量比条件下均显著优于现有方法。

原文摘要 · Abstract (English)

Real-time estimation of vehicle locations and speeds is crucial for developing many beneficial transportation applications in traffic management and control, e.g., adaptive signal control. Recent advances in communication technologies facilitate the emergence of connected vehicles (CVs), which can share traffic information with nearby CVs or infrastructures. At the early stage of connectivity, only a portion of vehicles are CVs. The locations and speeds for those non-CVs (NCs) are not accessible and must be estimated to obtain the full traffic information. To address the above problem, this paper proposes a novel CV-based Vehicle Location and Speed estimation network, CVVLSNet, to simultaneously estimate the vehicle locations and speeds exclusively using partial CV trajectory data. A road cell occupancy (RCO) method is first proposed to represent the variable vehicle state information. Spatiotemporal interactions can be integrated by simply fusing the RCO representations. Then, CVVLSNet, taking the Coding-RAte TransformEr (CRATE) network as a backbone, is introduced to estimate the vehicle locations and speeds. Moreover, physical vehicle size constraints are also considered in loss functions. Extensive experiments indicate that the proposed method significantly outperformed the existing method under various CV penetration rates, signal timings, and volume-to-capacity ratios.

交通估计联网车时空建模

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