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FDR Control for Pairwise Comparisons of Normal Means Based on Goodness of Fit Test

FDR Control for Pairwise Comparisons of Normal Means Based on Goodness of Fit Test
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摘要 This study is undertaken to apply a bootstrap method of controlling the false discovery rate (FDR) when performing pairwise comparisons of normal means. Due to the dependency of test statistics in pairwise comparisons, many conventional multiple testing procedures can't be employed directly. Some modified pro- cedures that control FDR with dependent test statistics are too conservative. In the paper, by bootstrap and goodness-of-fit methods, we produce independent p-values for pairwise comparisons. Based on these indepen- dent p-values, plenty of procedures can be used, and two typical FDR controlling procedures are applied here. An example is provided to illustrate the proposed approach. Extensive simulations show the satisfactory FDR control and power performance of our approach. In addition, the proposed approach can be easily extended to more than two normal, or non-normal, balance or unbalance cases. This study is undertaken to apply a bootstrap method of controlling the false discovery rate (FDR) when performing pairwise comparisons of normal means. Due to the dependency of test statistics in pairwise comparisons, many conventional multiple testing procedures can't be employed directly. Some modified pro- cedures that control FDR with dependent test statistics are too conservative. In the paper, by bootstrap and goodness-of-fit methods, we produce independent p-values for pairwise comparisons. Based on these indepen- dent p-values, plenty of procedures can be used, and two typical FDR controlling procedures are applied here. An example is provided to illustrate the proposed approach. Extensive simulations show the satisfactory FDR control and power performance of our approach. In addition, the proposed approach can be easily extended to more than two normal, or non-normal, balance or unbalance cases.
出处 《Acta Mathematicae Applicatae Sinica》 SCIE CSCD 2016年第3期701-712,共12页 应用数学学报(英文版)
基金 Supported by the National Natural Science Foundation of China(No.11471030,11471035,71201160)
关键词 multiple testing false discovery rate goodness-of-fit test pairwise comparisons P-VALUE RESAMPLING multiple testing false discovery rate goodness-of-fit test pairwise comparisons p-value resampling
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参考文献12

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