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Análisis Robusto del Tamaño del Efecto×Estadísticas Descriptivas Robustas×
CampoEstadísticaEstadística
FamiliaHypothesis testHypothesis test
Año de origen2005 (formalized)1960s–1970s
Autor originalAlgina, Keselman & Penfield; WilcoxJohn W. Tukey, Peter J. Huber, Frank Hampel
TipoRobust effect size estimationResistant summary measures
Fuente seminalAlgina, J., Keselman, H. J., & Penfield, R. D. (2005). An alternative to Cohen's standardized mean difference effect size: A robust parameter and confidence interval in the two independent groups case. Psychological Methods, 10(3), 317–328. DOI ↗Tukey, J. W. (1977). Exploratory Data Analysis. Addison-Wesley. ISBN: 978-0201076165
Aliasrobust Cohen's d, trimmed-mean effect size, outlier-resistant effect size, robust standardized mean differenceresistant statistics, outlier-resistant summary statistics, robust summary measures, robust location and scale estimation
Relacionados55
ResumenRobust effect size analysis quantifies the magnitude of a difference or association using estimators that are resistant to outliers and violations of normality. Rather than relying on classical statistics such as Cohen's d based on sample means and standard deviations, robust variants use trimmed means and Winsorized standard deviations to produce effect size estimates that accurately reflect the typical effect rather than being inflated by extreme values.Robust descriptive statistics summarize the location, spread, and shape of a dataset using measures that remain meaningful even when a fraction of the data contains outliers or severe departures from normality. Core tools include the median, trimmed mean, interquartile range (IQR), and median absolute deviation (MAD), all of which are resistant to contamination that would distort the classic mean and standard deviation.
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ScholarGateComparar métodos: Robust Effect Size Analysis · Robust Descriptive Statistics. Recuperado el 2026-06-15 de https://scholargate.app/es/compare