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I am writing a function where in one or more of the arguments are vectors generated by a loop within the function.
For ex:

 myfunc<-function(rep, n, arm1, arm2)
   {
   for(i in 1:rep)
    {
     x<-rnorm(n,0,4)
     y<-rnorm(n,0,5)
     res[i]<-t.test(arm1,arm2)
    }
   return(res)
   }

Now I would like to call the function as

     myfunc(rep = 10, n=10, arm1 = x, arm2 = x) or
     myfunc(rep = 10, n=10, arm1=x,arm2 = y)

The idea is compare different arms.

Hope I have stated my problem clearly.

Your help is highly appreciated.

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3  
Your arm1 and arm2 arguments don't seem to be used in your function. Why don't you delete them and use t.test(x,y) ? –  juba Mar 14 '13 at 11:13
1  
what is arm1/arm2? Why do you claim they are generated in the loop when they are not? Are arm1/2 supposed to play a role in generating x and y? Please clarify. –  ndoogan Mar 14 '13 at 12:00

1 Answer 1

up vote 1 down vote accepted

Let's see if I got it...

You want run rep tests, each with two vetors of n normal random variates. And you want to be able to change the arguments... Frankly, this is not the best way to program.. BUT, I will try to help you.

First things first: you can't assign to an arbitrary position of the result res before creating the variable. So I'll add res <- list() to your code. Also t.test returns more information, so it must be appended to a list object, with double square brackets.

Now, for the arguments, you must make R understand that arm are symbol arguments, to be evaluated inside the function's environment. So you must capture it's expression using substitute and pass it to eval function:

myfunc<-function(rep, n, arm1, arm2)  
{  
res <- list() ###  
for(i in 1:rep)  
{  
    x<-rnorm(n,0,4)  
    y<-rnorm(n,0,5)  
    res[[i]]<-t.test(eval(substitute(arm1)),eval(substitute(arm2))) ###  
}  
return(res)  
}

Try it...

A better way to do this is as follows:

newfunc <- function(rep, n, sd1, sd2)  
{  
lapply(1:rep, function(.) t.test(rnorm(n,0,sd1), rnorm(n,0,sd2)))  
}  

Now sd1 and sd2 are the standard deviations parameters.

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Thank you, it worked. Also thanks for the more elegant coding.. –  user2169430 Mar 14 '13 at 15:00

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