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A hybrid method of the sequential Monte Carlo and the Edgeworth expansion for computation of very small p -values in permutation tests
Author(s) -
Yang James J,
Trucco Elisa M,
Buu Anne
Publication year - 2019
Publication title -
statistical methods in medical research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.952
H-Index - 85
eISSN - 1477-0334
pISSN - 0962-2802
DOI - 10.1177/0962280218791918
Subject(s) - studentized range , permutation (music) , monte carlo method , statistic , test statistic , computer science , edgeworth series , statistical hypothesis testing , computation , resampling , multiple comparisons problem , parametric statistics , algorithm , statistics , mathematics , standard error , physics , acoustics
Permutation tests are very useful when parametric assumptions are violated or distributions of test statistics are mathematically intractable. The major advantage of permutation tests is that the procedure is so general that it is applicable to most test statistics. The computational expense is, however, impractical in high-dimensional settings such as genomewide association studies. This study provides a comprehensive review of existing methods that can compute very small p -values efficiently. A common issue with existing methods is that they can only be applied to a specific test statistic. To fill in the knowledge gap, we propose a hybrid method of the sequential Monte Carlo and the Edgeworth expansion approximation for a studentized statistic, which is applicable to a variety of test statistics. The simulation results show that the proposed method performs better than competing methods. Furthermore, applications of the proposed method are demonstrated by statistical analysis on the genomewide association studies data from the Study of Addiction: Genetics and Environment (SAGE).

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