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I'm trying to write a recursive fun in an Erlang shell, but I keep getting an unbound variable exception:

1> Foo = fun(X) -> Foo(X) end.
* 1: variable 'Foo' is unbound

This probably goes without saying, but I'm not trying to create an infinite loop! This is just a simple example of the error I'm getting.

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1  
"Funs with Names": erlang.org/eeps/eep-0037.html, which was merged into Erlang in late 2012. –  Roger Lipscombe Dec 19 '13 at 21:37

4 Answers 4

up vote 35 down vote accepted

You can do it with a little argument trick:

1> Foo = fun(F, X) -> F(F, X) end.
#Fun<erl_eval.12.113037538>
2> Foo(Foo, a).
<...infinite loop!>

The trick here is to send in the function as an argument to itself to allow recursion.

Alternative way to make it in one shoot:

1> Foo = fun(X) -> Fun = fun(F,Y) -> F(F,Y) end, Fun(Fun,X) end.
#Fun<erl_eval.6.13229925>
2> Foo(a).

For example:

1> Foo = fun(Max) ->
1>     Fun = fun(F, X) when X > Max -> [];
1>              (F, X) -> [X | F(F, X+1)]
1>           end,
1>     Fun(Fun, 0)
1> end.
#Fun<erl_eval.6.13229925>
2> Foo(10).
[0,1,2,3,4,5,6,7,8,9,10]
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2  
I have no experience with Erlang, but it would seem to me that the two arguments a and Foo should be reversed... –  Patrick Huizinga May 15 '09 at 8:43
    
Thanks! It's fixed now! –  Adam Lindberg May 15 '09 at 9:07
1  
Does this answer portend the Y-combinator, as mentioned in another answer here? –  allyourcode May 17 '09 at 5:47
    
Well, you could see it as a self-contained ("poor man's") Y-combinator perhaps... –  Adam Lindberg Sep 3 '09 at 19:14

Alternatively, you can use the Y combinator. Y Combinator in Erlang explains.

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Learning about the Y-combinator has been on my list of things to learn for a long time. Thanks for pointing out the opportune moment :). For people who know Scheme, I thought the following page was useful: dangermouse.brynmawr.edu/cs245/ycomb_jim.html –  allyourcode May 17 '09 at 5:46
    
Tim, I think this answer could have been better had you briefly mentioned what the Y-combinator is about. I probably would have accepted this answer had you done that. –  allyourcode May 17 '09 at 5:50
    
The link in the answer didn't work for me, but I found part 1 and part 2 of this walk-through on implementing the y combinator in erlang extremely helpful. I'm still wrapping my head around it, but it's a nice step-by-step just like the one for Scheme above. –  laindir Jun 20 at 19:17

You can also use the "Funs with names" variant:

Foo = fun F(X) -> F(X) end.

In this way it is easier to understand that F is the function itself within the definition. Also, Foo and F can be the same variable.

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Obviously, Foo gets assigned only after the fun is defined, so it may not be accessed from within it.

I don't think that Erlang allows to call the anonymous function from itself. Just make it a named one.

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