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A note on the Wilcoxon-Mann-Whitney test and tied observations
Markus Neuhäuser1,2, Graeme D Ruxton3
1Department of Mathematics and Technology, RheinAhrCampus, Koblenz University of Applied Sciences, Remagen, Germany.
Omitting tied data before the Wilcoxon-Mann-Whitney test is not recommended. Exact tests using all data, including ties, offer better error control and statistical power for robust analysis.
Area of Science:
- Statistics
- Biostatistics
- Nonparametric statistics
Background:
- Recent recommendations suggest omitting tied observations before the two-sample Wilcoxon-Mann-Whitney test.
- This practice may impact the validity and power of statistical tests.
Purpose of the Study:
- To evaluate the impact of omitting tied observations on the two-sample Wilcoxon-Mann-Whitney test.
- To advocate for the use of exact tests that incorporate all data, including tied values.
Main Methods:
- A simulation study was conducted to compare statistical test performance.
- Analysis focused on type I error rates and statistical power.
- Comparison between tests with and without tied observations.
Main Results:
- Exact tests including tied observations maintain the type I error rate.
- Including ties results in better exploitation of the significance level and increased power.
- Omitting ties can distort sample distribution and violate test assumptions.
Conclusions:
- The recommendation to omit tied values before the two-sample Wilcoxon-Mann-Whitney test is not supported.
- Exact permutation tests that include all data are preferable for accurate and powerful nonparametric analysis.
Related Concept Videos
Wilcoxon Rank-Sum Test
Wilcoxon Signed-Ranks Test for Matched Pairs
Wilcoxon Signed-Ranks Test for Median of Single Population
Friedman Two-way Analysis of Variance by Ranks
Kruskal-Wallis Test
Test for Homogeneity

