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> m1 = lm(happy_o ~ 1 + drugcond + emocond, | |
data = h_dat) # Model 1 with main effects only | |
> m2 = lm(happy_o ~ 1 + drugcond + emocond + | |
drugcond:emocond, data = h_dat) # Model with main effects and interaction | |
> summary(m2) # Summary of model 2 (with same p-value as original ANOVA for the interaction) | |
Call: | |
lm(formula = happy_o ~ 1 + drugcond + emocond + drugcond:emocond, | |
data = h_dat) | |
Residuals: | |
Min 1Q Median 3Q Max | |
-2.66667 -0.80208 0.04545 0.35714 3.04545 | |
Coefficients: | |
Estimate Std. Error t value Pr(>|t|) | |
(Intercept) 1.9545 0.2318 8.434 6.23e-12 *** | |
drugcond -0.3117 0.3716 -0.839 0.40480 | |
emocond 0.9830 0.3572 2.752 0.00772 ** | |
drugcond:emocond 1.0409 0.5392 1.930 0.05806 . | |
--- | |
Signif. codes: 0 ‘***’ 0.001 ‘**’ 0.01 ‘*’ 0.05 ‘.’ 0.1 ‘ ’ 1 | |
Residual standard error: 1.087 on 63 degrees of freedom | |
(49 observations deleted due to missingness) | |
Multiple R-squared: 0.3513, Adjusted R-squared: 0.3204 | |
F-statistic: 11.37 on 3 and 63 DF, p-value: 4.693e-06 | |
> anova(m1, m2) # A comparison of model 1 and model 2 to calculate the F statistic, which is the same as the original ANOVA | |
Analysis of Variance Table | |
Model 1: happy_o ~ 1 + drugcond + emocond | |
Model 2: happy_o ~ 1 + drugcond + emocond + drugcond:emocond | |
Res.Df RSS Df Sum of Sq F Pr(>F) | |
1 64 78.843 | |
2 63 74.440 1 4.4031 3.7264 0.05806 . | |
--- | |
Signif. codes: 0 ‘***’ 0.001 ‘**’ 0.01 ‘*’ 0.05 ‘.’ 0.1 ‘ ’ 1 |
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