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Integrating Multi-source POIs and Road networks based on Geometric Data

机译:基于几何数据的多源POI和道路网络集成

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With the popularity of mobile positioning devices, large numbers of multi-source Points of Interest (POI) and road data are increasingly collected resulting in a crucial problem when integrating these heterogeneous data. The paper thus proposes a geometric-based approach for integrating multi-source urban POI and road networks. The proposed method firstly extracts the linear features from POI data according to a DBSCAN-based linear clustering algorithm and then generates a graph structure, named POI Connectivity Graph (PCGraph). The matching nodes between PCGraph and road network are then selected by the probabilistic relaxation framework and then refined by the vector median filter to align POI data and road networks geometrically. The experiment shows that the linear extraction algorithm efficiently identifies the inexplicit structural patterns of POI data and the probabilistic relaxation matching approach correctly finds the corresponding points to efficiently accomplish the position adjustment of POI and road data.
机译:随着移动定位设备的普及,越来越多地收集大量的多源兴趣点(POI)和道路数据,从而在集成这些异构数据时产生了关键问题。因此,本文提出了一种基于几何的方法来集成多源城市POI和道路网络。该方法首先根据基于DBSCAN的线性聚类算法从POI数据中提取线性特征,然后生成一个名为POI Connectivity Graph(PCGraph)的图结构。然后,通过概率松弛框架选择PCGraph与道路网络之间的匹配节点,然后通过矢量中值滤波器进行精炼,以将POI数据和道路网络进行几何对齐。实验表明,线性提取算法可以有效地识别出POI数据的模糊结构模式,概率松弛匹配方法可以正确地找到对应的点,从而有效地完成POI和道路数据的位置调整。

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