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Dynamic Origin-Destination Estimation without Historical Origin-Destination Matrices for Microscopic Simulation Platform in Urban Network

机译:城市网络微观仿真平台中无历史原点矩阵的动态原点估计

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As the input of dynamic traffic assignment (DTA) model, dynamic origin-destination (OD) matrix is crucial for intelligent transportation applications. This paper presents a solution scheme for Dynamic OD estimation without historical OD matrices by using traffic flow data of loop detectors. Through a bi-1evel optimization structure, OD matrices of different time intervals are estimated sequentially. A ridge regression method is applied to obtain the initial OD matrix in this paper. A constrained nonlinear programming method is proposed to calibrate the assignment matrix for accurately mapping the demand to the traffic flows. With assignment matrix, a modified simultaneous perturbation stochastic approximation (SPSA) algorithm, called Restart-SPSA, is proposed to estimate OD matrix in each time interval. The capability of the proposed solution scheme is validated in an urban network of Singapore using the microscopic traffic simulator VISSIM. The simulation results show that calibration of assignment matrix and Restart-SPSA can improve the performance significantly compared with the method using uncalibrated assignment matrix and original SPSA.
机译:作为动态交通分配(DTA)模型的输入,动态始发地(OD)矩阵对于智能交通应用至关重要。通过使用环路检测器的流量数据,提出了一种无需历史OD矩阵的动态OD估计的解决方案。通过双向优化结构,依次估计了不同时间间隔的OD矩阵。本文采用岭回归方法获得初始OD矩阵。提出了一种约束非线性规划方法来校准分配矩阵,以将需求准确地映射到交通流。在分配矩阵的基础上,提出了一种改进的同时扰动随机逼近(SPSA)算法,称为Restart-SPSA,用于估计每个时间间隔的OD矩阵。拟议的解决方案的功能已在新加坡的城市网络中使用微观交通模拟器VISSIM进行了验证。仿真结果表明,与未校准分配矩阵和原始SPSA相比,分配矩阵和Restart-SPSA的校准可以显着提高性能。

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