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How would I go about applying each element in a list to each argument in a function? Kind of like Map, except with a variable number of arguments.

So for example, if I have a function action[x1_,x2_,x3_]:=..., and I have a list {1,2,3}, how would I create a function to call action with action[1,2,3]?

I would like this function be able to handle me changing action to action[x1_,x2], and anything else, also, with the list now being {1,2}, and to call action now with action[1,2].

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3 Answers 3

up vote 8 down vote accepted

Based on "Kind of like Map, except with a variable number of arguments." I think you might be looking for Apply to level 1. This is done with:

Apply[function, array, {1}]

or the shorthand:

function @@@ array

Here is what it does:

array = {{1, 2, 3}, {a, b, c}, {Pi, Sin, Tan}};

action @@@ array
   {action[1, 2, 3], action[a, b, c], action[Pi, Sin, Tan]}  

The terminology I used above could be misleading, and limits the power of Apply. The expression to which you apply action does not need to be a rectangular array. It does not even need to be a List: {...} or have its elements be lists. Here is an example incorporating these possibilities:

args = {1, 2} | f[a, b, c] | {Pi};

action @@@ args
   action[1, 2] | action[a, b, c] | action[Pi] 
  • args is not a List but a set of Alternatives
  • the number of arguments passed to action varies
  • one of the elements of args has head f

Observe that:

  • action replaces the head of each element of args, whatever it may be.
  • The head of args is preserved in the output, in this case Alternatives (short form: a | b | c)
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what is the difference between your solution and Sasha's? I mean, I see @@@ in yours and only @@ in his. How can they both be the same? –  user564376 Apr 21 '11 at 22:33
    
@d'o-o'b they are not the same, but they are for the same function: Apply. f @@ {1,2,3} gives f[1,2,3] in effect replacing List with f at "Level 0" (the top level of {1,2,3}). By contrast, f @@@ {{1}, {2}, {3}} gives {f[1], f[2], f[3]}, replacing List with f for each element of the list, or "Level 1." This can also be done for deeper levels of an expression using Apply[f, expression, levelspec] but there is no shorthand (like @@ or @@@) for this. See the help on Level for details of levelspec. –  Mr.Wizard Apr 21 '11 at 22:39
    
@Wizard: thanks! –  user564376 Apr 21 '11 at 22:41
Apply[action, {1,2,3}]

This also can be entered as action @@ {1,2,3}.

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Why not just use action[lst_?ListQ]?

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Is this the question you meant to answer? –  Mr.Wizard Apr 22 '11 at 5:29

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