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Most Influential SIGMOD 1990 Paper · 2026-03 edition

Practical Selectivity Estimation Through Adaptive Sampling

Richard J. Lipton; Jeffrey F. Naughton; Donovan A. Schneider

Venue
ACM SIGMOD Conference (SIGMOD) 1990
Recognition
Most Influential SIGMOD 1990 Paper (Rank No. 6)
Edition
2026-03
Impact factor
6
Certificate ID
d7d5f06f7a35eac1

Abstract

Recently we have proposed an adaptive, random sampling algorithm for general query size estimation. In earlier work we analyzed the asymptotic efficiency and accuracy of the algorithm, in this paper we investigate its practicality as applied to selects and joins. First, we extend our previous analysis to provide significantly improved bounds on the amount of sampling necessary for a given level of accuracy. Next, we provide “sanity bounds” to deal with queries for which the underlying data is extremely skewed or the query result is very small. Finally, we report on the performance of the estimation algorithm as implemented in a host language on a commercial relational system. The results are encouraging, even with this loose coupling between the estimation algorithm and the DBMS.

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