Skill-Cover für Statistical Analysis

Statistical Analysis

Select tests, diagnose assumptions, calculate effect sizes and power, and produce a standardized results report.

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Introduction

Statistical Analysis selects methods from the research question, variable types, sample structure, and distribution. It can cover t-tests, ANOVA, chi-square tests, correlation, regression, and common Bayesian analyses. The workflow includes data inspection, assumption diagnostics, estimation or testing, effect sizes, confidence intervals, power, standardized reporting, and explicit limits on causal interpretation.

Use Cases

Use it for controlled experiments, surveys, group comparisons, variable relationships, predictive models, and result review. It can choose a test from the study design or check whether independence, normality, equal variance, multiple comparisons, and sample size were handled properly.

Template

Provide the research question, hypotheses, data, variable definitions, sampling, groups, and design. State missing-data rules, alpha level, and prior analyses. Add frequentist or Bayesian preference, target effect size, power needs, figures, reporting style, and interpretation boundaries.

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