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Road Segment Interpolation for Incomplete Road Data

机译:不完整道路数据的路段插值

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Road data is fundamental information for location-based services. We trust that the road data is complete to represent an actual road network when we develop the location-based services. However, road data may be incomplete due to update delays, and thus location-based services may not provide useful results. Several algorithms have been proposed to automatically update road data. In this paper, we study interpolation of missing road segments by using vehicle trajectory data. We can find missing road segments from the trajectories because vehicles may pass through road segments that are not included in road data. However, trajectories are inherently noisy due to GPS errors. Hence, we cannot easily interpolate appropriate road segments. We propose an algorithm based on map matching and clustering techniques for achieving accurate and comprehensive interpolation. Our algorithm first detects trajectories that are probably on missing road segments. It then clusters the trajectories by DBSCAN and integrates the trajectories for interpolating the road data. Through the experiments using real incomplete road data and trajectory data, we verify that our algorithm effectively interpolates the missing road segments.
机译:道路数据是基于位置的服务的基本信息。我们相信,在开发基于位置的服务时,道路数据是完整的,可以代表实际的道路网络。但是,由于更新延迟,道路数据可能不完整,因此基于位置的服务可能无法提供有用的结果。已经提出了几种算法来自动更新道路数据。在本文中,我们通过使用车辆轨迹数据研究缺失路段的插值。我们可以从轨迹中找到缺失的路段,因为车辆可能会经过未包含在道路数据中的路段。但是,由于GPS错误,轨迹固有地是嘈杂的。因此,我们无法轻松地对适当的路段进行插值。我们提出了一种基于地图匹配和聚类技术的算法,可以实现准确而全面的插值。我们的算法首先检测可能在缺失路段上的轨迹。然后,它通过DBSCAN对轨迹进行聚类,并对轨迹进行积分以对道路数据进行插值。通过使用真实的不完整道路数据和轨迹数据进行的实验,我们验证了我们的算法有效地对缺失的路段进行了插值。

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