7

Say I have the following function:

foo <- function(x, y = min(m)) {
    m <- 1:10
    x + y
}

When I run foo(1), the returned value is 2, as expected. However, I cannot run foo(1, y = max(m)) and receive 11, since lazy evaluation only works for default arguments. How can I supply an argument but have it evaluate lazily?

  • "lazy evaluation only works for default arguments", are you sure about that? IIUC lazy evaluation happens with all function arguments. The reason your example doesn't work is because m is not in the caller's scope. – Joe Cheng Jan 3 '12 at 17:50
6

The simple answer is that you can't and shouldn't try to. That breaks scope and could wreak havoc if it were allowed. There are a few options that you can think about the problem differently.

first pass y as a function

foo<-function(x,y=min){
m<-1:10
x+y(m)
}

if a simple function does not work you can move m to an argument with a default.

foo<-function(x,y=min(m),m=1:10){
x+y(m)
}

Since this is a toy example I would assume that this would be too trivial. If you insist on breaking scope then you can pass it as an expression that is evaluated explicitly.

foo<-function(x,y=expression(min(m))){
m<-1:10
x+eval(y)
}

Then there is the option of returning a function from another function. And that might work for you as well, depending on your purpose.

bar<-function(f)function(x,y=f(m)){
m<-1:10
x+y
}
foo.min<-bar(min)
foo.min(1)  #2
foo.max<-bar(max)
foo.max(1)  #10

But now we are starting to get into the ridiculous.

1

My solution was to just change the default argument:

R> formals(foo)$y <- call("max", as.name("m"))
R> foo(1)
[1] 11
0

You can use a substitute, eval combintation.

foo <- function(x, y = min(m)) {
  y <- substitute(y)
  m <- 1:10
  x + eval(y)
}

foo(1)
## [1] 2
foo(1, y = max(m))
## [1] 11

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