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Map segmentation for geospatial data mining through generalized higher-order Voronoi diagrams with sequential scan algorithms

机译:通过具有顺序扫描算法的广义高阶Voronoi图进行地理空间数据挖掘的地图分割

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摘要

Segmentation is one popular method for geospatial data mining. We propose efficient and effective sequential-scan algorithms for higher-order Voronoi diagram districting. We extend the distance transform algorithm to include complex primitives (point, line, and area), Minkowski metrics, different weights and obstacles for higher-order Voronoi diagrams. The algorithm implementation is explained along with efficiencies and error. Finally, a case study based on trade area modeling is described to demonstrate the advantages of our proposed algorithms.
机译:分割是一种用于地理空间数据挖掘的流行方法。我们为高阶Voronoi图分区提出了高效有效的顺序扫描算法。我们扩展了距离变换算法,以包括复杂的图元(点,线和面),Minkowski度量,不同的权重和高阶Voronoi图的障碍。解释了算法的实现以及效率和错误。最后,描述了基于贸易区域建模的案例研究,以证明我们提出的算法的优势。

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