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I'm a little puzzled about the role of defn. If fn only produced anonymous functions, I could understand the need for a construct that combines the functionality of def and fn, but fn can also create named functions. At least in the repl, I don't see how that usage differs from defn.

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2 Answers

up vote 5 down vote accepted

When you provide a name symbol to fn, it's only bound within the function definition to the function object itself. This is to allow anonymous functions to call themselves (Clojure - special forms).

So to create a function with fn bound to a global accessible name, you have to use

(def somename 
    (fn ...body...

and defn is just a shortcut for this.

(defn somename 
    ...body...

In response to your comment, from a fresh repl:

Give me some Clojure:
> (fn foo [] (+ 1 3))
#<sandbox31764$eval31779$foo__31780 sandbox31764$eval31779$foo__31780@12eae8eb>
> (foo)
java.lang.RuntimeException: Unable to resolve symbol: foo in this context
> (defn foo [] (+ 1 3))
#'sandbox31764/foo
> (foo)
4
>  

As you can see, I can't call the foo function created with fn, because it's not bound to a Var.

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Same question as below: If the fn name symbol is internally bound, why can I call it from the repl? –  planarian Jul 25 '13 at 15:17
2  
Maybe there's already a Var with that name? Have you tried resetting your repl? I can't reproduce the behaviour you describe. –  sloth Jul 25 '13 at 15:19
    
@Planarian Please post the code you enter in a fresh REPL so that you get the behavior you describe. –  juan.facorro Jul 25 '13 at 15:23
    
You're right. I cleared my session, reloaded the function, and got an error (as you predicted). I didn't intentionally define a var, so it's a bit of a mystery.... –  planarian Jul 25 '13 at 15:26
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The main difference is that defn creates a global name, wheres fn only creates a lexical one. The global name is also a var, since it's ultimately created with def. The name you can give to an anonymous function is not a var and is only within scope of that function. This is mostly so the function can be recursive.

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But if the scope of the name created by fn is internal to the function, why can I call it from the repl? –  planarian Jul 25 '13 at 15:08
1  
You can't. (fn bingo [] (println "bingo")) –  lgrapenthin Jul 25 '13 at 15:57
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