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I'm trying to read up a bit on Clojure, but I hit a brick wall with the following basic example:

(defn make-adder [x]
  (let [y x]
    (fn [z] (+ y z))))
(def add2 (make-adder 2))
(add2 4)
-> 6

What I don't understand is how is add2 passing the number 4 to the make-adder function, and how does that function turn assigns that number to z.

Thanks in advance!

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2 Answers 2

up vote 6 down vote accepted

make-adder returns a function that takes one parameter (z), the parameter passed in to make-adder is used to assign a value to y. add2 is set equal to the result of evaluating make-adder with a parameter of 2. So add2 is set equal to the function returned from make-adder, which (since y has been assigned to the parameter from make-adder) looks like

(fn [z] (+ 2 z))

So (add2 4) calls this function which evaluates to 6. Does that help?

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Perfect! Yes it helps! Thanks a lot! –  Deleteman May 23 '12 at 13:17
1  
I don't think the let is even needed it just complicates the code –  Kevin May 23 '12 at 13:30
    
@Kevin: right, the let isn't useful here. –  Nathan Hughes May 23 '12 at 13:32
    
About let bindings @Kevin I agree with you that if you're not doing something with the let binding, it does complicate the code. I used them to print out values. I don't need to that as much now, but let bindings do help while learning, and if you need to keep data around in a main loop. –  octopusgrabbus May 23 '12 at 14:15
    
I just mean in this particular case it was innecessary and confused more than helped. Obviously let is generally useful and has its place. –  Kevin May 23 '12 at 17:56
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To me, it seems you are working on an interesting problem.

Your example make-adder function (rewritten without let bindings)

(defn make-adder [x]
  "Returns a function that returns the sum of x and yet to be supplied z."
  (fn [z] (+ z x))))

returns a function that sums x and z, where make-adder has to have already been called with a value. I believe your example is implementing the Clojure partial function, which is pretty cool.

Here is your make-adder function rewritten to sum its two parameters, and not return a function (so we can use partial in add2),

(defn make-adder
  "Returns sum of x and y." 
  [x y] 
  (+ x y))

and here is add2 rewritten using partial with 2 as the x parameter:

(def add2 (partial make-adder 2))

If I call (add2 2) the answer is 4, (add2 3), the answer is 5 and so on.

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Thanks for the extra explanation. I'm quite new to clojure yet, and thus I'm not familiar with the partial concept. Wich is why it's a bit hard for me to completely understand your example. –  Deleteman May 23 '12 at 15:48
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