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Estimating link-dependent Origin-Destination matrices from sample trajectories and traffic counts

机译:估计来自样本轨迹和流量计数的链路依赖的原点 - 目的地矩阵

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In transport networks, Origin-Destination matrices (ODM) are classically estimated from road traffic counts whereas recent technologies grant also access to sample car trajectories. One example is the deployment in cities of Bluetooth scanners that measure the trajectories of Bluetooth equipped cars. Exploiting such sample trajectory information, the classical ODM estimation problem is here extended into a link-dependent ODM (LODM) one. This much larger size estimation problem is formulated here in a variational form as an inverse problem. We develop a convex optimization resolution algorithm that incorporates network constraints. We study the result of the proposed algorithm on simulated network traffic.
机译:在运输网络中,原始目的地矩阵(ODM)从道路交通计数经典估计,而最近的技术授予也可以访问样品轨迹。一个示例是在蓝牙扫描仪的城市部署,测量适用于蓝牙的汽车轨迹。利用此类样本轨迹信息,古典ODM估计问题在此扩展到依赖于链接的ODM(LODM)之一。这种尺寸大的尺寸估计问题在这里以变分形式在此作为逆问题。我们开发了一种凸形优化分辨率算法,包括网络约束。我们研究了模拟网络流量算法的结果。

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