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Meta-Analysis & Forest Plot In Minutes

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Running meta-analysis & forest plot analysis...

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Sample Output

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What's in the report?

Standard-library analysis: pool effect sizes across studies. Map one row per study — a study label, the effect estimate, and either its standard error or its 95% confidence interval — and get the forest plot, the fixed-effect (inverse-variance) and random-effects (DerSimonian-Laird) pooled estimates side by side, the heterogeneity diagnostics that decide which of the two means anything (Cochran's Q, I-squared, tau-squared, plus a prediction interval for the next study), optional subgroup pooling with a between-subgroup Q test, and a funnel plot with Egger's regression for small-study effects — reported with an explicit statement of how little power that test has at your study count.

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Forest Plot

Interactive scatter visualization

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Pooled Estimates

Interactive table visualization

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Heterogeneity

Interactive table visualization

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Subgroup Pooling

Interactive table visualization

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Funnel Plot

Interactive scatter visualization

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Small-Study Effects

Interactive table visualization

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Methods & Disclosure

Interactive table visualization

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AI Insights

Plain-English interpretation — what the numbers mean, what's significant, and what to do next.

The Question This Answers

Pool the effect sizes reported by a set of studies into one estimate with a confidence interval

Questions?

See our FAQ for details on pricing, data privacy, and how the analysis works. Every report includes a Methodology section showing the statistical test, assumptions checked, and diagnostics run.

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