Adjusted R Square

Adjusted R Square is a statistical measure that evaluates how well a regression model explains variation in an outcome while accounting for model complexity. Unlike ordinary R Square, it penalizes the addition of unnecessary predictors, using the sample size and number of explanatory variables to adjust the proportion of explained variance. Its value can therefore decrease when a new variable contributes little useful information, even if R Square increases. In statistics, researchers use Adjusted R Square to compare regression models with different numbers of predictors, reduce overfitting, and identify models that balance explanatory power with parsimony.

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JoVE Core - Social Psychology

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