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RECTANGLE-BASED APPROACHES FOR REPRESENTING FLOOD DATA IN SPATIAL INDICES

机译:基于矩形的空间索引中洪水数据的表示方法

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摘要

Appropriate representation of flood data in indices is crucial for efficient future querying. A common approach is to use minimum bounding rectangles to build R-tree indices rather than storing real complex objects; however, the results may be imprecise. Herein, to improve the performance of this approach, we discuss methods for producing corresponding rectangles. The first method involves generating a set of small fixed-sized squares, and the second one attempts to initially obtain a large rectangle. The third approach recursively partitions the space into four quadrants until the given size constraint is satisfied. Experimental results based on the real flood data of two representative cities demonstrate that the quadruple partitioning method can best approximate the original area using fewer cells and is thus the recommended approach.
机译:索引中洪水数据的适当表示对于有效的将来查询至关重要。一种常见的方法是使用最小边界矩形来构建R树索引,而不是存储实际的复杂对象。但是,结果可能不准确。在此,为了提高这种方法的性能,我们讨论了产生相应矩形的方法。第一种方法涉及生成一组小的固定大小的正方形,第二种方法尝试最初获取一个大的矩形。第三种方法将空间递归划分为四个象限,直到满足给定的大小约束。基于两个有代表性城市的真实洪水数据的实验结果表明,四元分割方法可以使用较少的像元来最好地近似原始区域,因此是推荐的方法。

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