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Sampling for Conditional Inference on Contingency Tables
Authors:Robert D. Eisinger  Yuguo Chen
Affiliation:Department of Statistics, University of Illinois at Urbana-Champaign, Champaign, Illinois
Abstract:We propose new sequential importance sampling methods for sampling contingency tables with given margins. The proposal for each method is based on asymptotic approximations to the number of tables with fixed margins. These methods generate tables that are very close to the uniform distribution. The tables, along with their importance weights, can be used to approximate the null distribution of test statistics and calculate the total number of tables. We apply the methods to a number of examples and demonstrate an improvement over other methods in a variety of real problems. Supplementary materials are available online.
Keywords:Counting problem  Monte Carlo method  Sequential importance sampling
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