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首页> 外文期刊>ISPRS International Journal of Geo-Information >An Improved Hybrid Method for Enhanced Road Feature Selection in Map Generalization
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An Improved Hybrid Method for Enhanced Road Feature Selection in Map Generalization

机译:地图综合中增强道路特征选择的一种改进混合方法

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摘要

Road selection is a critical component of road network generalization that directly affects its accuracy. However, most conventional selection methods are based solely on either a linear or an areal representation mode, often resulting in low selection accuracy and biased structural selection. In this paper we propose an improved hybrid method combining the linear and areal representation modes to increase the accuracy of road selection. The proposed method offers two primary advantages. First, it improves the stroke generation algorithm in a linear representation mode by using an ordinary least square (OLS) model to consider overall information for the roads to be connected. Second, by taking advantage of the areal representation mode, the proposed method partitions road networks and calculates road density based on weighted Voronoi diagrams. Roads were selected using stroke importance and a density threshold. Finally, experiments were conducted comparing the proposed technique with conventional single representation methods. Results demonstrate the increased stroke generation accuracy and improved road selection achieved by this method.
机译:道路选择是道路网络综合的重要组成部分,直接影响其准确性。但是,大多数常规选择方法仅基于线性或区域表示模式,通常会导致选择精度低和结构选择有偏差。在本文中,我们提出了一种改进的混合方法,将线性和面表示模式相结合,以提高选路的准确性。所提出的方法具有两个主要优点。首先,它通过使用普通最小二乘(OLS)模型来考虑要连接道路的整体信息,从而改进了线性表示模式中的笔划生成算法。其次,利用区域表示模式,该方法对道路网络进行了划分,并基于加权Voronoi图计算了道路密度。使用笔划重要性和密度阈值选择道路。最后,进行了实验,将所提出的技术与传统的单一表示方法进行了比较。结果表明,通过此方法可以提高笔划生成的准确性,并改善道路选择。

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