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Research on distributed Hilbert R tree spatial index based on BIRCH clustering

机译:基于BIRCH聚类的分布式Hilbert R树空间索引研究。

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Spatial index is the foundation of spatial database, while efficiency improvement of traditional serial spatial index has nearly reached its limit, it is therefore necessary to develop parallel spatial index approaches to break the bottleneck in accessing the root node in serial mode. This paper proposes a parallel spatial index called Hilbert R tree index, which can be carried on multicore CPU and computer cluster for parallel spatial queries and data retrieval. This new index method utilizes BIRCH clustering algorithm for spatial classification and data partition before distributed data deployment, considering geographic data characteristics; and creates spatial index in parallel environment by using of Hilbert filling curve. The test results demonstrate that parallel Hilbert R tree index based on BIRCH clustering algorithm can not only maintain internal spatial relations and the attributes of geographic dataset, but also has efficient performance in partitioning and retrieving spatial data.
机译:空间索引是空间数据库的基础,而传统串行空间索引的效率提升已接近其极限,因此有必要开发并行空间索引方法以突破串行模式访问根节点的瓶颈。本文提出了一种称为Hilbert R树索引的并行空间索引,该索引可以在多核CPU和计算机集群上承载,以进行并行空间查询和数据检索。这种新的索引方法利用BIRCH聚类算法对分布式数据进行空间分类和数据分配,然后再考虑地理数据的特征;并利用希尔伯特(Hilbert)填充曲线在平行环境中创建空间索引。测试结果表明,基于BIRCH聚类算法的并行希尔伯特R树索引不仅可以维护内部空间关系和地理数据集的属性,而且在空间数据的分割和检索方面具有高效的性能。

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