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Mann–Whitney U test ​

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Purpose ​

Compare samples using ranks for ordinal outcomes or when a conventional mean model is unsuitable.

Data and assumptions ​

Rank tests still require an appropriate design and independence assumptions. Some tests admit a median-difference interpretation only under additional distribution-shape assumptions.

Configure this method ​

Use two independent groups. The U test concerns ranked distributions; shape differences may also produce significance, so a median-shift interpretation is not automatic.

Variables ​

ControlInput
Analysis variablesSelect variables
Group VariableSelect one variable

Analysis settings ​

ParameterChoicesDefault
Alternative hypothesisTwo-tailed, Greater Than, Less Thantwo-sided

Analysis parameters remain visible in the main configuration area. Advanced formatting contains only the table title and numeric decimals. Methods that calculate intervals also show the significance level; 0.05 corresponds to 95% intervals.

Read the results ​

Report group medians and quartiles, the test statistic and p-value. Interpret adjusted post-hoc results separately from the overall test.

Workflow and exports ​

  1. Upload the dataset and choose the method from the sidebar or search.
  2. Select the variables above, set the design-specific options, then run the analysis.
  3. Inspect the paper-style result. Reconfigure from the result area, or open raw output for diagnostics and sample details.
  4. Rename and keep result tabs as needed. Export Word, Excel, CSV or TXT; batch export can include the selected AI interpretation. Word retains figures. AI text should be checked against the estimates.

Algorithm and references ​