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Passenger-focused Scheduled Transportation Systems: from Increased Observability to Shared Mobility

机译:以乘客为中心的预定运输系统:从提高可观察性到共享出行

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摘要

Recently, automation, shared use, and electrification are proposed and viewed as the "three revolutions" in the future transportation sector to significantly relieve traffic congestion, reduce pollutant emissions, and increase transportation system sustainability. Motivated by the three revolutions, this research targets on the passenger-focused scheduled transportation systems, where (1) the public transit systems provide high-quality ridesharing schedules/services and (2) the upcoming optimal activity planning systems offer the best vehicle routing and assignment for household daily scheduled activities.;The high quality of system observability is the fundamental guarantee for accurately predicting and controlling the system. The rich information from the emerging heterogeneous data sources is making it possible. This research proposes a modeling framework to systemically account for the multi-source sensor information in urban transit systems to quantify the estimated state uncertainty. A system of linear equations and inequalities is proposed to generate the information space. Also, the observation errors are further considered by a least square model. Then, a number of projection functions are introduced to match the relation between the unique information space and different system states, and its corresponding state estimate uncertainties are further quantified by calculating its maximum state range.;In addition to optimizing daily operations, the continuing advances in information technology provide precious individual travel behavior data and trip information for operational planning in transit systems. This research also proposes a new alternative modeling framework to systemically account for boundedly rational decision rules of travelers in a dynamic transit service network with tight capacity constraints. An agent-based single-level integer linear formulation is proposed and can be effectively by the Lagrangian decomposition.;The recently emerging trend of self-driving vehicles and information sharing technologies starts creating a revolutionary paradigm shift for traveler mobility applications. By considering a deterministic traveler decision making framework, this research addresses the challenges of how to optimally schedule household members' daily scheduled activities under the complex household-level activity constraints by proposing a set of integer linear programming models. Meanwhile, in the microscopic car-following level, the trajectory optimization of autonomous vehicles is also studied by proposing a binary integer programming model.
机译:最近,提出了自动化,共享使用和电气化的建议,并将其视为未来交通运输部门的“三大革命”,以显着缓解交通拥堵,减少污染物排放并提高运输系统的可持续性。受三大革命的推动,本研究针对以乘客为中心的预定交通系统,其中(1)公共交通系统提供高质量的拼车时间表/服务,(2)即将到来的最佳活动计划系统提供最佳的车辆路线选择和家庭日常调度活动的分配。;高质量的系统可观察性是准确预测和控制系统的基本保证。来自新兴的异构数据源的丰富信息正在使之成为可能。这项研究提出了一个建模框架,以系统地处理城市交通系统中的多源传感器信息,以量化估计的状态不确定性。提出了一个线性方程组和不等式系统来生成信息空间。另外,最小二乘模型进一步考虑了观察误差。然后,引入了许多投影函数来匹配唯一信息空间和不同系统状态之间的关系,并通过计算其最大状态范围来进一步量化其相应的状态估计不确定性。信息技术领域的公司提供宝贵的个人旅行行为数据和旅行信息,用于公交系统的运营计划。这项研究还提出了一个新的替代建模框架,以系统地解决具有严格容量限制的动态中转服务网络中旅行者有限理性的决策规则。提出了一种基于智能体的单级整数线性公式,该公式可以通过拉格朗日分解有效地解决。;自动驾驶汽车和信息共享技术的最新趋势开始为旅行者出行应用领域带来革命性的范式转变。通过考虑确定性的旅行者决策框架,本研究通过提出一组整数线性规划模型,解决了如何在复杂的家庭层面的活动约束下优化安排家庭成员日常活动的挑战。同时,在微观汽车跟踪层面,通过提出二进制整数规划模型,研究了自动驾驶汽车的轨迹优化问题。

著录项

  • 作者

    Liu, Jiangtao.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Civil engineering.;Transportation.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 196 p.
  • 总页数 196
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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