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Most Influential SIGMOD 1992 Paper · 2026-03 edition

Sequential Sampling Procedures For Query Size Estimation

Peter J. Haas; Arun N. Swami

Venue
ACM SIGMOD Conference (SIGMOD) 1992
Recognition
Most Influential SIGMOD 1992 Paper (Rank No. 8)
Edition
2026-03
Impact factor
6
Certificate ID
ff8cd11a78f9195d

Abstract

We provide a procedure, based on random sampling, for estimation of the size of a query result. The procedure is sequential in that sampling terminates after a random number of steps according to a stopping rule that depends upon the observations obtained so far. Enough observations are obtained so that, with a pre-specified probability, the estimate differs from the true size of the query result by no more than a prespecified amount. Unlike previous sequential estimation procedures for queries, our procedure is asymptotically efficient and requires no <i>ad hoc</i> pilot sample or a <i>a priori</i> assumptions about data characteristics. In addition to establishing the asymptotic properties of the estimation procedure, we provide techniques for reducing undercoverage at small sample sizes and show that the sampling cost of the procedure can be reduced through stratified sampling techniques.

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