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Here is two functions which request the same arguments and return the same boolean type value. Such as:

 (defn Foo1 [x] (< x 3))
 (defn Foo2 [x] (> x -10))

But I am confused when I define the function below:

 (def Foo3 (or Foo1 Foo2))

Can you guys tell me how it works. Thank you very much!

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(def Foo3 (some-fn Foo1 Foo2)) will also give you what you're looking for. –  Alex Mar 29 '13 at 17:59

2 Answers 2

up vote 1 down vote accepted

(defn f [a] a) is just shortcut for (def f (fn [a] a))

If your second argument to the def binding is a function, then first argument is function also.

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In my example.When I call Foo3 with an agrument which I want to get two return from Foo1 and Foo2 respectively.But in fact,Foo3 just skip Foo2 and return the value which is from Foo1 –  Fionser Mar 29 '13 at 12:37
    
Just because or evaluates first paremeter to true, and then not needed to calculate next one, because whole result is true. –  mishadoff Mar 29 '13 at 12:45
    
It seems not that case. I have try even Foo1 return false, the second function Foo2 is not called.And Foo3 will return whatever Foo1 has returned. –  Fionser Mar 29 '13 at 12:50
    
I see, you missed parameters to your helper functions. The problem that (or Foo1 Foo2) do not call functions at all. Function itself evaluates to true so your result is always true. Working example: (def Foo3 #(or (Foo1 %) (Foo2 %))) –  mishadoff Mar 29 '13 at 12:57
    
''(def Foo3 #(or (Foo1 %) (Foo2 %)))'' works –  Fionser Mar 29 '13 at 13:16

Assuming you are trying to combine the conditions, you probably want:

(defn foo3 [x] (or (foo1 x) (foo2 x)))

That is, you are defining a new function foo3 whose result is the result of or-ing the results of calling foo1 and foo2 with the same parameter x.

P.S. It's conventional to name functions in lowercase in Clojure.

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Thank you.That is what I want, but I want to know how my problem comes from. –  Fionser Mar 29 '13 at 12:43

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