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Pearson 상관관계에 대한 통계적 검정력 분석×피어슨 적률 상관계수×
분야통계학통계학
계열Hypothesis testHypothesis test
기원 연도19881895
창시자Jacob CohenKarl Pearson
유형Sample size / power determinationParametric correlation
원전Cohen, J. (1988). Statistical Power Analysis for the Behavioral Sciences (2nd ed.). Lawrence Erlbaum Associates. ISBN: 978-0805802832Cohen, J. (1988). Statistical Power Analysis for the Behavioral Sciences (2nd ed.). Lawrence Erlbaum Associates. DOI ↗
별칭Korelasyon Güç Analizi, power analysis for r, sample size for correlationpearson r, product-moment correlation, bivariate correlation, Pearson Korelasyon Analizi
관련44
요약Correlation power analysis is a pre-study calculation that determines how many participants are needed — or how much statistical power an existing sample provides — for a Pearson correlation test. Formalised by Jacob Cohen in his landmark 1988 text, it uses the expected correlation coefficient r directly as the effect size, so researchers can plan studies that are neither underpowered nor wastefully large.The Pearson product-moment correlation coefficient (r) is a parametric measure of the direction and strength of the linear association between two continuous variables. Introduced by Karl Pearson in 1895, it remains the most widely used bivariate correlation statistic in the social, health, and natural sciences. The coefficient ranges from −1 (perfect negative linear relationship) to +1 (perfect positive), with 0 indicating no linear association.
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