The one thing missing from an ANOVA analysis in R is that it doesn't automatically display the critical value. Everything else is given. I can tell that my F-value is way higher than it should be, but I want to know the margin at where the cut-off is. There's this online calculator that yields the critical value for F statistics based on the degrees of freedom, but I want R to do this.

How do I do it?


                          Df  Sum Sq   Mean Sq F value    Pr(>F)    
data$SIZE    4 0.1193 0.027926  22.056 4.55e-16 ***
Residuals               1372 1.994 0.001352            
>F(variance.mod1)    #??
>F(4,1372 )          #Something like this?
up vote 4 down vote accepted

Try this:

mylm <- lm(wt~mpg, data = mtcars)
myanova <- anova(mylm)
cbind(myanova, 'CriticalValue' = qf(1-.05, myanova[1,1], myanova[2,1]))

          Df    Sum Sq    Mean Sq  F value       Pr(>F) CriticalValue
mpg        1 22.343135 22.3431348 91.37533 1.293959e-10      4.170877
Residuals 30  7.335613  0.2445204       NA           NA      4.170877

The qf function is your friend in this case.

alpha = .05
qf(1-alpha, myanova[1,1], myanova[2,1])

[1] 4.170877
  • Wait, why do I have two inputs for qf? What does each field mean? And what is cbind doing in this case? – Tom May 25 '16 at 20:11
  • @Tom You should look at ?qf for a good explanation. The cbind just binds the columns from the anova table to the result from the qf function. It was my way of appending the results to the ANOVA table. – bouncyball May 25 '16 at 20:36

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