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JCAM: The Joined Clustered Access Method

机译:JCAM:加入的群集访​​问方法

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摘要

Spatial data management has been an active area of intensive research for more than two decades. In order to support objects in a database system, several issues should be taken into consideration including indexing and efficient query processing. Several indexing techniques have been proposed in the literature. Most of the existing indexing mechanisms are designed for spatial selection but may not be efficient for join operations. In this paper, a new structure is proposed to handle join operations between spatial data sets, called the Joined Clustered Access Method (JCAM). JCAM is pre-joined index dedicated for answering spatial join queries designed to enhance the response time of spatial join queries by decreasing the number of disk accesses. JCAM is a secondary index used to represent relationships between data sets as a colored-graph. Experiments show that JCAM outperforms the RTJ algorithm which is based on R-tree but requires more construction time.
机译:空间数据管理一直是超过二十年的密集研究领域。为了支持数据库系统中的对象,应考虑到包括索引和高效查询处理的若干问题。在文献中提出了几种分度技术。大多数现有的索引机制都是为空间选择而设计的,但对于加入操作可能不是有效的。在本文中,提出了一种新的结构来处理空间数据集之间的连接操作,称为加入的群集访​​问方法(JCAM)。 JCAM是专用于应答空间连接查询的预加入索引,旨在通过减少磁盘访问的数量来增强空间连接查询的响应时间。 JCAM是用于表示数据集之间的关系作为彩色图形的辅助索引。实验表明,JCAM优于基于R树的RTJ算法,但需要更多的施工时间。

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