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I have written a program in clojure but some of the functions have no arguments. What would be the advantages of coding such functions as a "def" instead of a "defn" with no arguments?

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1  
Do you mean (def x (fn [] (something))), or (def x (something))? They're completely different, and the accepted answer is only correct for the second interpretation. –  Charles Duffy Sep 29 at 0:13
    
I guess the second interpration, but good point! –  Zubair Sep 29 at 7:02

4 Answers 4

up vote 28 down vote accepted

defs are evaluated only once whereas defns (with or without arguments) are evaluated (executed) every time they are called. So if your functions always return the same value, you can change them to defs but not otherwise.

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Ah, I did not know this, you saved me from some serious bugs! So if there is a def which accesses a reference it will never be recalculated? What about if the file is reloaded? –  Zubair Dec 16 '10 at 17:29
    
def is reevaluated when the file is reloaded. –  Abhinav Sarkar Dec 16 '10 at 17:58
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It seems wrong to me to say that defn forms are reevaluated. As pointed out in other answers, defn resolves to def at macro expanding time, and they indeed are all evaluated only once at file load time. –  skuro Oct 12 '11 at 9:13
    
@skuro -- I'm confused by this answer. Is it wrong? –  Matt Fenwick Nov 3 '11 at 21:00
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@MattFenwick skuro's point is that defns are evaluated only once, just like every def - in this case, it defines a function. However, the body of the function defined may be evaluated any number of times. I don't think it's a useful distinction, but he's not saying anything false. –  amalloy Dec 12 '11 at 2:06

(defn name ...) is just a macro that turns into (def name (fn ...) anyway, not matter how many parameters it has. So it's just a shortcut. See (doc defn) for details.

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user=> (def t0 (System/currentTimeMillis))
user=> (defn t1 [] (System/currentTimeMillis))
user=> (t1)
1318408717941
user=> t0
1318408644243
user=> t0
1318408644243
user=> (t1)
1318408719361
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10  
thanks. this code example was worth more than a 1000 word description. –  user693960 Aug 24 '12 at 17:10
4  
So that no one misses this crucial point: As Roman Bataev's comment implies, (def t2 (fn [] (System/currentTimeMillis))) will make t2 behave like t1. –  Mars Dec 11 '13 at 19:10

The def special form creates a Var object identified by a symbol given as its first argument. Identification is created by associating the given symbol with a Var in a map called namespace.

The Var holds a reference to some value, which could be expressed (among others):

  • as a normal form, which always evaluates to its own value:
    (def x 1) x ; => 1 ; x holds a reference to a number 1

  • as a function form, which at first is evaluated to its resulting value:
    (def x (+ 2 2)) x ; => 4 ; x holds a reference to a number 4

  • as a Java method form, which at first is evaluated to its resulting value:
    (def x (System/currentTimeMillis)) x ; => 1417811438904 ; x holds a reference to a number 1417811438904 x ; => 1417811438904 ; still the same number!

  • as a lambda form (anonymous function), which at first is evaluated to a function object:
    (def x (fn [] (System/currentTimeMillis))) x ; => #<user$x user$x@4c2b1826> (x) ; function form, function evaluated ; => 1417811438904 (x) ; function form, function evaluated ; => 1417812565866

There is a simple rule for all of the above. In case of def special form an S-expression given as its second argument is recursively evaluated before binding is created, so the resulting Var is bound to the result of this evaluation.

Even fn is evaluated before, but its resulting value is a function object that holds a code. This code will be executed (and evaluated) each time the function is called. That's why there are different results.

The defn macro is just like def but internally it creates an anonymous function and then binds a Var object to it. Its second argument becomes a body of this function and it's not evaluated in a "regular" way. One could also say it is evaluated but as a lambda form – the result of the evaluation is a function object, not the result of some instant calculation.

So writing:
(defn fun [] 1)

Is synonymous to:
(def fun (fn [] 1))

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