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Is there a way to compare whether two function objects are the same?

m <- mean
m == mean ## don't work

## this seems not to be the correct way:
functionBody(mean)==functionBody(m)

EDIT: Some more details. I have a function with two arguments (a matrix and a user-defined function which is applied columnwise, e.g. mean, median, ...). If the function is mean I want to use colMean instead (to save some running time).

foo <- function(m, fun) {
  #if (fun==mean) {
  #  return(colMeans(m));
  #} else {
    return(apply(m, 2, fun));
  #}
}
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1  
What is your definition of "equal functions"? If you mean observably equivalent then your question is undecidable! –  Basile Starynkevitch Mar 9 '12 at 17:27
2  
You might find this question helpful. –  joran Mar 9 '12 at 17:46
    
@BasileStarynkevitch please see my edit. –  sgibb Mar 10 '12 at 9:56

3 Answers 3

up vote 10 down vote accepted

You can use identical:

identical(m,mean)
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3  
Counter-example: m <- function (y, ...) { UseMethod("mean") } ; m(c(1,2,3)) ; identical(mean, m) # [1] FALSE –  BondedDust Mar 9 '12 at 18:42
1  
@DWin: Obviously, this method checks only whether the two variables point to the same function, not whether the code used is the same. If the OP needed the latter, he/she wouldn't have written "this seems not to be the correct way" over the body check IMO... –  digEmAll Mar 9 '12 at 20:10
    
@DWin: however, IMO equality for functions can be obtained only checking whether they refer to the same; otherwise, yes you can cope a couple of cases, but basically, as correctly pointed out in Basile's comment, the problem is undecidable... –  digEmAll Mar 9 '12 at 20:15
    
I thought that function(x) (mean(x)} would be considered to be the "same" as function(y){mean(y)}. I assumed that a wizard (obviously not me) would come by and show us all how to use substitute using the formals(fn) as arguments on body(fn) to make that comparison. I do understand that this would not compare the equality of inputs and outputs, which would be Basile's more correct same-ness criterion. –  BondedDust Mar 9 '12 at 20:16
    
@DWin: yep, probably something can be done for that case. But it doesn't change too much because a number (infinite) of other cases (e.g. function(x){a=0;mean(x)+a}) wouldn't be recognized. –  digEmAll Mar 9 '12 at 20:42

I use isTRUE(all.equal(function1,function2)), but this suffers from similar drawbacks to the other methods.

Interestingly though, all.equal gives a nice summary of how the two operands differ (try all.equal(function1,function2).

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You can convert the functions to strings, and compare those strings.

equal_functions <- function(f,g)
  all( 
    capture.output(print(f)) ==
    capture.output(print(g))
  )
equal_functions(function(x) x, function(x) x) # TRUE

But functions that differ for non-essential reasons will be seen as different.

equal_functions(function(x) x, function(u) u) # FALSE
equal_functions(
  function(x) x, 
  function(x) 
    x
) # FALSE
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