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首页> 外文期刊>Intelligent Transportation Systems, IEEE Transactions on >Multi-Vehicle Tracking Using Microscopic Traffic Models
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Multi-Vehicle Tracking Using Microscopic Traffic Models

机译:使用微观交通模型的多车跟踪

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摘要

In this paper, the multi-vehicle tracking problem is revisited, with greater consideration being given to the interactions between vehicles. Traditionally, algorithms for tracking multiple vehicles in the multi-lane case assume that vehicles move independently of one another and that longitudinal and lateral vehicle dynamics are mutually independent. However, due to traffic volume, limited lane resources, and traffic heterogeneity, vehicles have to interact with neighboring vehicles for the purposes of maintaining a safe distance from the leading vehicle or improving their navigability by passing slower vehicles. To address the limitations in the literature, this paper proposes a novel multi-vehicle tracking algorithm that integrates the microscopic traffic models (MTM) for modeling interaction behaviors among vehicles in a 2-D road coordinate system. Due to the dependence between the longitudinal and later motions, their corresponding estimates are updated sequentially in a recursive manner. An adaptive deferred decision logic is proposed to improve the accuracy of lateral state estimates and thus improve overall performance. Simulation results show that the proposed MTM-based tracking algorithm can achieve better performance than a conventional multi-lane vehicle tracking algorithm with extension to multi-vehicle tracking, which does not consider interactions among vehicles but updates the longitudinal and lateral motion estimates independently.
机译:在本文中,多车辆跟踪问题被重新审视,更多地考虑了车辆之间的相互作用。传统上,用于在多车道情况下跟踪多辆车辆的算法假定车辆彼此独立移动,并且纵向和横向车辆动力学相互独立。但是,由于交通量,有限的车道资源和交通异质性,车辆必须与相邻车辆进行交互,以保持与领先车辆的安全距离或通过使较慢的车辆通过来改善其通行性。为了解决文献中的局限性,本文提出了一种新颖的多车辆跟踪算法,该算法集成了微观交通模型(MTM),用于对二维道路坐标系中车辆之间的交互行为进行建模。由于纵向运动和后续运动之间的依赖性,它们相应的估计以递归方式顺序更新。提出了一种自适应延迟决策逻辑,以提高横向状态估计的准确性,从而提高整体性能。仿真结果表明,所提出的基于MTM的跟踪算法比传统的多车道车辆跟踪算法具有更好的性能,该算法扩展到多车跟踪,该算法不考虑车辆之间的相互作用,而是独立更新纵向和横向运动估计。

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