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A spatial data partitioning and merging method for parallel vector spatial analysis

机译:并行向量空间分析的空间数据划分与合并方法

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Based on the principle of the proximity of spatial elements and the equilibrium of spatial data's size, this paper presents a data partitioning and merging method based on spatial filling curve and collection of spatial features. In the data reducing section, this method takes the principle of dynamic tree merging and reduces the times of data serialization and deserialization. The experiment shows that such methods can cut down the time of every process' computing and merging, improve the load balancing degree, and make a great improvement to the efficiency of parallel algorithm and expandability.
机译:基于空间元素的邻近性和空间数据大小平衡的原理,提出了一种基于空间填充曲线和空间特征集合的数据划分与合并方法。在数据精简部分,此方法采用动态树合并的原理,并减少了数据序列化和反序列化的时间。实验表明,这种方法可以减少每个进程的计算和合并时间,提高负载均衡度,并大大提高了并行算法的效率和可扩展性。

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