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Study on Semantic Contrast Evaluation Based on Vector and Raster Data Patch Generalization

机译:基于向量和光栅数据补丁概括的语义对比评价研究

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We used buffer superposition, Delaunay triangulation skeleton line, and other methods to achieve the aggregation and amalgamation of the vector data, adopted the method of combining mathematical morphology and cellular automata to achieve the patch generalization of the raster data, and selected the two evaluation elements (namely, semantic consistency and semantic completeness) from the semantic perspective to conduct the contrast evaluation study on the generalization results from the two levels, respectively, namely, land type and map. The study results show that: (1) before and after the generalization, it is easier for the vector data to guarantee the area balance of the patch; the raster data’s aggregation of the small patch is more obvious. (2) Analyzing from the scale of the land type, most of the land use types of the two kinds of generalization result’s semantic consistency is above 0.6; the semantic completeness of all types of land use in raster data is relatively low. (3) Analyzing from the scale of map, the semantic consistency of the generalization results for the two kinds of data is close to 1, while, in the aspect of semantic completeness, the land type deletion situation of the raster data generalization result is more serious.
机译:我们使用了缓冲叠加,Delaunay三角测量骨架线和其他方法来实现矢量数据的聚集和融合,采用了组合数学形态和蜂窝自动机的方法来实现栅格数据的补丁泛化,并选择两个评估元素(即,语义一致性和语义完整性)从语义视角来,分别对两级的普遍化结果进行对比评价研究,即土地类型和地图。研究结果表明:(1)在泛化之前和之后,矢量数据更容易保证贴片的区域平衡;栅格数据的小补丁的聚合更为明显。 (2)从土地类型的规模分析,大部分土地使用类型的两种泛化结果的语义一致性高于0.6;栅格数据中所有类型的土地使用的语义完整性相对较低。 (3)从地图的规模分析,两种数据的泛化结果的语义一致性接近1,而在语义完整性的方面,栅格数据泛化结果的土地类型删除情况更多严肃的。

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