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Bayesian descriptive statistics×Effektstärkenanalyse×
FachgebietStatistikStatistik
FamilieHypothesis testHypothesis test
Entstehungsjahr1763/18121969 (first edition); 1988 (definitive second edition)
UrheberThomas Bayes / Pierre-Simon LaplaceJacob Cohen
TypBayesian parameter estimationStandardized magnitude estimation
Wegweisende QuelleGelman, A., Carlin, J. B., Stern, H. S., Dunson, D. B., Vehtari, A., & Rubin, D. B. (2013). Bayesian Data Analysis (3rd ed.). CRC Press. ISBN: 978-1439840955Cohen, J. (1988). Statistical Power Analysis for the Behavioral Sciences (2nd ed.). Lawrence Erlbaum Associates. ISBN: 978-0805802832
AliasnamenBayesian summaries, posterior descriptives, Bayesian parameter estimation, credible-interval summarieseffect magnitude estimation, standardized effect measure, practical significance analysis, ES analysis
Verwandt54
ZusammenfassungBayesian descriptive statistics summarizes data by combining observed information with prior knowledge through Bayes' theorem, yielding posterior distributions over parameters such as the mean and variance. Instead of point estimates and p-values, results are expressed as posterior means, medians, and credible intervals that carry a direct probability interpretation.Effect size analysis quantifies the practical magnitude of a statistical result independently of sample size. Rather than asking only whether a difference or relationship is statistically significant, it asks how large it is, using standardized indices such as Cohen's d, eta-squared, omega-squared, or Pearson's r that allow direct comparison across studies and populations.
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ScholarGateMethoden vergleichen: Bayesian descriptive statistics · Effect size analysis. Abgerufen am 2026-06-15 von https://scholargate.app/de/compare