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How can I calculate the mean and standard deviation of each of the coefficients over the N=1000 MLR model fits using R? Here's my function:

simfun <- function(a=56.25102409,b=1.78977412,c=0.08664925,n=18,x1.sd=18.87671,x2.sd=18.87671,e.sd=18.87671) {
   X1 <- rnorm(n, mean=0, sd=x1.sd)
   X2 <- rnorm(n, mean=0, sd=x2.sd) 
   e <-  rnorm(n, mean=0, sd=e.sd)
   Z <- a+b*X1+c*X2+e 

statfun <- function(samples) {

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1 Answer 1

res <- .Last.value

> apply(res,2,mean)
(Intercept)          X1          X2 
 57.9515278   1.6696702   0.1116194 
> apply(res,2,sd)
(Intercept)          X1          X2 
  2.5550134   0.3177064   0.2789701 
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