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Range cube: efficient cube computation by exploiting data correlation
Ying Feng   Agrawal, D.   El Abbadi, A.   Metwally, A.  
Dept. of Comput. Sci., California Univ., Santa Barbara, CA, USA;

This paper appears in: Data Engineering, 2004. Proceedings. 20th International Conference on
Publication Date: 30 March-2 April 2004
On page(s): 658- 669
ISSN: 1063-6382
ISBN: 0-7695-2065-0
INSPEC Accession Number: 8107442
Digital Object Identifier: 10.1109/ICDE.2004.1320035
Current Version Published: 2004-08-09

Abstract
Data cube computation and representation are prohibitively expensive in terms of time and space. Prior work has focused on either reducing the computation time or condensing the representation of a data cube. We introduce range cubing as an efficient way to compute and compress the data cube without any loss of precision. A new data structure, range trie, is used to compress and identify correlation in attribute values, and compress the input dataset to effectively reduce the computational cost. The range cubing algorithm generates a compressed cube, called range cube, which partitions all cells into disjoint ranges. Each range represents a subset of cells with the same aggregation value, as a tuple which has the same number of dimensions as the input data tuples. The range cube preserves the roll-up/drill-down semantics of a data cube. Compared to H-cubing, experiments on real dataset show a running time of less than one thirtieth, still generating a range cube of less than one ninth of the space of the full cube, when both algorithms run in their preferred dimension orders. On synthetic data, range cubing demonstrates much better scalability, as well as higher adaptiveness to both data sparsity and skew.

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