DocumentCode
1690080
Title
Acceleration of relational index structures based on statistics
Author
Kriegel, Hans-Peter ; Kunath, Peter ; Pfeifle, Martin ; Renz, Matthias
Author_Institution
Inst. for Comput. Sci., Munich Univ., Germany
fYear
2003
Firstpage
258
Lastpage
261
Abstract
Relational index structures, as for instance the Relational Interval Tree, the Relational RTree, or the Linear Quadtree, support efficient processing of queries on top of existing object-relational database systems. Furthermore, there exist effective and efficient models to estimate the selectivity and the I/O cost in order to guide the cost-based optimizer whether and how to include these index structures into the execution plan. By design, the models immediately fit to common extensible indexing/optimization frameworks, and their implementations exploit the built-in statistics facilities of the database server. In this paper, we show how these statistics can also be used for accelerating the access methods themselves by reducing the number of generated join partners. The different join partners are grouped together according to a cost-based grouping algorithm. Our first experiments on an Oracle9i database yield a speed-up of up to 1,000% for the Relational Interval Tree, the Relational R-Tree and for the Linear Quadtree.
Keywords
database indexing; object-oriented databases; query processing; relational databases; Linear Quadtree; Relational Interval Tree; Relational R-Tree; cost-based grouping algorithm; database indexing; database server; group algorithm; object-relational database; optimization framework; query processing; relational index structure; Acceleration; Costs; Database systems; Image databases; Indexes; Indexing; Navigation; Relational databases; Spatial databases; Statistics;
fLanguage
English
Publisher
ieee
Conference_Titel
Scientific and Statistical Database Management, 2003. 15th International Conference on
ISSN
1099-3371
Print_ISBN
0-7695-1964-4
Type
conf
DOI
10.1109/SSDM.2003.1214992
Filename
1214992
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