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Generating Road Networks for Old Downtown Areas Based on Crowd-Sourced Vehicle Trajectories

机译:基于人群资源轨迹的旧市中心地区生成道路网络

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摘要

With the popularity of portable positioning devices, crowd-sourced trajectory data have attracted widespread attention, and led to many research breakthroughs in the field of road network extraction. However, it is still a challenging task to detect the road networks of old downtown areas with complex network layouts from high noise, low frequency, and uneven distribution trajectories. Therefore, this paper focuses on the old downtown area and provides a novel intersection-first approach to generate road networks based on low quality, crowd-sourced vehicle trajectories. For intersection detection, virtual representative points with distance constraints are detected, and the clustering by fast search and find of density peaks (CFDP) algorithm is introduced to overcome low frequency features of trajectories, and improve the positioning accuracy of intersections. For link extraction, an identification strategy based on the Delaunay triangulation network is developed to quickly filter out false links between large-scale intersections. In order to alleviate the curse of sparse and uneven data distribution, an adaptive link-fitting scheme, considering feature differences, is further designed to derive link centerlines. The experiment results show that the method proposed in this paper preforms remarkably better in both intersection detection and road network generation for old downtown areas.
机译:随着便携式定位装置的普及,人群源轨迹数据引起了广泛的关注,并导致了道路网络提取领域的许多研究突破。然而,检测具有高噪声,低频和不均匀分布轨迹的复杂网络布局的旧市中心区域的道路网络仍然是一个具有挑战性的任务。因此,本文侧重于旧市中心区域,并提供了一种新的交叉路口方法,可以基于低质量,人群源轨迹产生道路网络。对于交叉点检测,检测具有距离约束的虚拟代表点,并且引入了快速搜索和查找密度峰值(CFDP)算法的聚类以克服轨迹的低频特征,并提高交叉点的定位精度。对于链路提取,开发了基于Delaunay三角测量网络的识别策略,以便在大规模交叉口之间快速过滤出错误的链路。为了减轻稀疏和不均匀数据分布的诅咒,考虑特征差异,自适应链接拟合方案进一步设计成导出链接中心线。实验结果表明,本文提出的该方法在旧市场地区的交叉路口检测和道路网络生成中均可更好地预成型。

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