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On Bulk Loading TPR-Tree
Berkeley, California January 19-January 22
DOI Bookmark: http://doi.ieeecomputersociety.org/10.1109/MDM.2004.12630492004 IEEE International Conference on ...
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Bin Lin, University of California at Santa Barbara
Jianwen Su, University of California at Santa Barbara
TPR-tree is a practical index structure for moving object databases. Due to the uniform distribution assumption, TPR-tree?s bulk loading algorithm (TPR) is relatively inefficient in dealing with non-uniform datasets. In this paper we present a histogram-based bottom up algorithm (HBU) along with a modi.ed top-down greedy split algorithm (TGS) for TPR-tree. HBU uses histograms to refine tree structures for different distributions. Empirical studies show that HBU outperforms both TPR and TGS for all kinds of non-uniform datasets, is relatively stable over varying degree of skewness and better for large datasets and large query windows.
Citation:
Bin Lin, Jianwen Su, "On Bulk Loading TPR-Tree," mdm, pp.114, 2004 IEEE International Conference on Mobile Data Management (MDM'04), 2004
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