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Friedman 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 ​

Each column is a condition measured on the same participants. Select at least three columns in condition order. Only cases complete on all conditions are used. Post-hoc comparisons use paired Wilcoxon tests with multiplicity adjustment.

Variables ​

ControlInput
Analysis variablesSelect variables

Analysis settings ​

ParameterChoicesDefault
Perform post hoc pairwise comparisonsSet as neededDisabled
Multiple-comparison adjustmentHolm, Bonferroniholm

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 ​