You can at least get rid of the
for (i in 1:200){
y[i]<-rbinom(1,1,0.8)
x1[i]<-ifelse(y[i]==1,rnorm(1,mean=20, sd=2),rnorm(1,mean=16, sd=2.2))
....
loop with the following
y <- rbinom(200, 1, 0.8)
y.1 <- y == 1 # get logical vector of y == 1
x1 <- numeric(200) # allocate the vector
x1[y.1] <- rnorm(sum(y.1), 20, 2)
x1[!y.1] <- rnorm(sum(!y.1), 16, 2.2)
I don't know what else you are doing in the loops, but you should be
thinking "vectorized" when using R and avoid 'for' loops since
they
are not the most efficient way of going things, especially if you are
going to be them hunreds of times.
On Thu, Jun 26, 2008 at 4:23 AM, sigalit mangut-leiba <smangut at
gmail.com> wrote:> Hi,
> I'm trying to do a double for loop like this:
> for (k in 1:1000){
> for (i in 1:200){
> y[i]<-rbinom(1,1,0.8)
> x1[i]<-ifelse(y[i]==1,rnorm(1,mean=20, sd=2),rnorm(1,mean=16, sd=2.2))
> ....
> }
> for (j in 1:300){
> ....
> }
> }
> Does anyone know a good reference about double loops?
> Thank you,
> Sigalit
>
> [[alternative HTML version deleted]]
>
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--
Jim Holtman
Cincinnati, OH
+1 513 646 9390
What is the problem you are trying to solve?