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I am sorry that I am not good to speak english.

Let's see code below.

main = getChar

first, main will be evaluated, and it's value is "getChar", but compiler don't know "getChar" value, so compiler will evaluate "getChar" to calculate "getChar" value, and so , getChar will be executed.

Actually when i tested the code above. "getChar is executed.

Let's see code below.

main = return (getChar, getChar)

First, main evaluated, it's value is return (undefined, undefined) -> IO (undefined, undefined), so prelude will evaluate IO (undefined, undefined) to print the value. so one of two getChar will be evaluated.

but, when i tested the code above, none of two getChar was not evaluated . I don't understand why none of two getChar is evaluated.

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1  
By the way, where did you get the information that the result of main should get printed? This is not so. It just gets discarded anyway. –  Ingo May 13 '12 at 8:26
2  
return X does not perform effects of X. For example, main = return getChar will do nothing. –  sdcvvc May 13 '12 at 15:40
    
Can anyone here provide an applicative-style version of that code that does what the OP wants? –  missingno May 14 '12 at 18:04
1  
@missingno: (,) <$> getChar <*> getChar –  sdcvvc May 14 '12 at 18:48
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2 Answers

You must actually execute your monadic actions then return the results of their execution.

func = do
    a <- getChar
    b <- getChar
    return  (a,b)

What you are currently doing is like the C statement:

void main(char &a, char &b)
{
    a = getchar;
    b = getchar;
}

as opposed to what you really want:

void main(char &a, char &b)
{
    a = getchar();
    b = getchar();
}
share|improve this answer
    
Thank you , Thomas. I know that i should use "do notation" to execute monadic value sequentially. –  user1286894 May 13 '12 at 0:52
    
In that case I do not understand what your issue is. If you could provide the type signature or behavior you desire vs what you are observing then that would help. –  Thomas M. DuBuisson May 13 '12 at 1:44
    
I want to know why none of two getChar is not evaluated. –  user1286894 May 13 '12 at 1:55
1  
ok, thomas, sorry for my poor english. In the "main = getChar", getChar is evaluated and executed. why? I think that ">>=" operator is for "specifying order of evaluation - not for executing" –  user1286894 May 13 '12 at 2:23
1  
@user1286894: What you give to main is a description of IO action. If you write main = getChar, you tell main to get one char. What happens if you write return (getChar, getChar)? return can be thought of as an action that does nothing and produces the value you specified. And here comes the problem: you're saying "do nothing and give me back (getChar, getChar)", which is then ignored (main has type IO ()). >>= is meant for composing two actions together, it could mean something like "once you execute the first action, take its result and pass it to second action". –  Vitus May 13 '12 at 11:41
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"I want to know why none of two getChar is not evaluated"

First, in english, like in logic or math or haskell, (not (not p)) == p, hence your question is:

I want to know why both of the two getChars are evaluated.

Confusing, because I bet none of them is evaluated.

Your main function computes a value of IO a, and the value inside the IO with type a will then be evaluated. In your case, a is (IO Char, IO Char). Because Haskell is a non strict language, evaluating a tuple just means construct the tuple. This does not include evaluation of the tuple components. For example:

fst (42, 7 `quot` 0 :: Int)

will not abort with division by zero error. Hence we have:

(getChar, getChar) 

is a tuple with 2 unevaluated values. But even if the values are evaluated, we have 2 values of type IO Char. Such a value can be seen as an action that, when executed in the IO monad, returns a Char.

Hence, not only are your tuple components not evaluated, they are not executed in the IO monad either.

To achieve this you could pass the tuple with the two actions to another action:

executeBoth (a,b) = do
    ra <- a
    rb <- b
    return (ra, rb)

Now, go, check the type of executeBoth and you'll probably see the point.

share|improve this answer
    
thanks a ton. sorry for my mistake. I modified that. It means "none of them is evaluated". –  user1286894 May 13 '12 at 10:15
    
reading your answers, so now I know that "main = (undefined, undefined)" will be not evaluated. –  user1286894 May 13 '12 at 10:18
    
but, I have a question. When haskell compiles "main = getChar", I think haskell evaluate it to "main = undefined" , so "getChar" will not be evaluated. but when i test the code, it was evaluated. can you explain that ? –  user1286894 May 13 '12 at 10:23
    
@user1286894 - The (IO a) result of main will both be evaluated and executed. When you write return (getChar, getChar), the result is IO (IO Char, IO Char). The outer IO action is executed and yields a tuple. The components of the tuple are neither evaluated nor executed. –  Ingo May 13 '12 at 12:12
    
Thanks a ton. I can understand. –  user1286894 May 13 '12 at 12:24
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