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I want to feed the members of a lazy seq produced by map as individual arguments to another function. Is there a function that splices a (lazy) seq?

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up vote 6 down vote accepted

Use apply.

(defn f [a b c d e]
  (str "a = " a " b = " b " c = " c " d = " d " e = " e))

(println (apply f (range 5)))

;; prints: a = 0 b = 1 c = 2 d = 3 e = 4

As you can see, function f takes 5 arguments and (range 5) returns a lazy seq of 5 arguments.

Just make sure the size of the seq is the same as the amount of arguments expected by the function, or you will get an exception at runtime.

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1  
So simple after all. I'm trying to apply (pun intended) my neurons into digesting functional-style programming but keep finding myself thinking dirty ol' procedural tricks. Thank you. – kliron Jun 29 '11 at 18:32
    
By the way, in case you want to mention this at a party, the term for what Leonel showed you is "destructuring". – user100464 Jun 29 '11 at 18:48
1  
I thought destructuring had to do with slicing a data structure and creating bindings for its various fields inside a scope, not just assigning names to arguments. – kliron Jun 29 '11 at 19:18
    
Oh sorry you're right. When I read the example, I thought of something else. – user100464 Jun 29 '11 at 21:47
    
+1 for the nice example. Also worth noting that apply will force evaluation of the entire lazy seq in the context of the original question. – mikera Jun 30 '11 at 9:00

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