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Flow Reconstruction for Data-Driven Traffic Animation

机译:数据驱动交通动画的流程重构

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摘要

‘Virtualized traffic’ reconstructs and displays continuous traffic flows from discrete spatio-temporal traffic sensor data or procedurally generated control input to enhance a sense of immersion in a dynamic virtual environment. In this paper, we introduce a fast technique to reconstruct traffic flows from in-road sensor measurements or procedurally generated data for interactive 3D visual applications. Our algorithm estimates the full state of the traffic flow from sparse sensor measurements (or procedural input) using a statistical inference method and a continuum traffic model. This estimated state then drives an agent-based traffic simulator to produce a 3D animation of vehicle traffic that statistically matches the original traffic conditions. Unlike existing traffic simulation and animation techniques, our method produces a full 3D rendering of individual vehicles as part of continuous traffic flows given discrete spatio-temporal sensor measurements. Instead of using a color map to indicate traffic conditions, users could visualize and fly over the reconstructed traffic in real time over a large digital cityscape.
机译:“虚拟流量”可从离散的时空流量传感器数据或程序生成的控制输入中重建并显示连续的流量,以增强沉浸在动态虚拟环境中的感觉。在本文中,我们介绍了一种快速技术,可从道路传感器的测量结果或程序生成的数据中重建交通流量,以用于交互式3D视觉应用。我们的算法使用统计推断方法和连续交通模型,根据稀疏传感器的测量(或程序输入)估算交通流量的完整状态。然后,此估计状态将驱动基于代理的交通模拟器,以生成车辆交通的3D动画,该动画在统计上与原始交通状况相匹配。与现有的交通模拟和动画技术不同,我们的方法在离散的时空传感器测量下,将单个车辆的完整3D渲染作为连续交通流的一部分。用户无需使用彩色地图来指示交通状况,而是可以在大型数字城市景观上实时可视化并飞越重建的交通。

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