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Given this code snippet:

someFunction x = print x `seq` 1

main = do print (someFunction "test")

why doesn't the print x print test when the code is executed?

$./seq_test 
1

If I replace it with error I can check that the left operand of seq is indeed evaluated.

How could I achieve my expected output:

test
1

modifying only someFunction?

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2  
Evaluating an IO action is not the same as executing it. There isn't really any way to make someFunction do what you want, because if you want to use print in it, it has to be in the IO monad and you won't be able to print its result (without modifying main). –  fjh Dec 2 '13 at 9:31
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2 Answers

up vote 9 down vote accepted

Evaluating an IO action does nothing whatsoever. That's right!

If you like, values of IO type are merely "instruction lists". So all you do with that seq is force the program to be sure1 of what should be done if the action was actually used. And using an action has nothing to do with evaluation, it means monadically binding it to the main call. But since, as you say, someFunction is a function with a non-monadic signature, that can't happen here.

What you can do... but don't, is

import Foreign

someFunction x = unsafePerformIO (print x) `seq` 1

this actually couples evaluation to IO execution. Which normally is a really bad idea in Haskell, since evaluation can happen at completely unforseeable order, possibly a different number of times than you think (because the compiler assumes referential transparency), and other mayhem scenarios.

The correct solution is to change the signature to be monadic:

someFunction :: Int -> IO Int
someFunction x = do
     print x
     return 1

main = do
     y <- someFunction "test"
     print y

1And as it happens, the program is as sure as possible anyway, even without seq. Any more details can only be obtained by executing the action.

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So you are saying that if a library requires a function with a certain non-monadic signature, there is absolutely no way in Haskell to safely add any output during its execution and continue using the library? –  Bakuriu Dec 2 '13 at 12:17
1  
Yup, that's right and intentional. Like it or hate it. (Again, there is Debug.Trace, for debugging – but for anything else but debugging this is indeed just as unsafe as any other way to achieve output inside a pure function.) — Seriously, if you write idiomatic Haskell you'll feel much less need for such ad-hoc logging than in other languages. –  leftaroundabout Dec 2 '13 at 12:28
    
I'd agree if libraries had a good documentation about their monadic features. E.g. Alex and Happy do not provide a good documentation, and I even heard by some users that some of the documentation is actually wrong (which is worse than no-documentation). If I have a requirement about this kind of output I'll then have to resume the do-random-change-and-guess-the-implementation approach in order to use them. If you happen to know how to use them, please answer my other question. –  Bakuriu Dec 2 '13 at 12:34
1  
If you are adding the print statements to get a better understanding of how some complicated code is executing, then that's like debugging. You can use Debug.Trace to get output at random places, and when you understand the code, you remove those calls again. –  augustss Dec 2 '13 at 13:24
1  
If output during parsing is a requirement (it sounds like a strange requirement; you should be able to interleave parsing and printing) then your function has to have IO type. –  augustss Dec 3 '13 at 0:39
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seq evaluated expressions to weak head normal form, which is simply the outermost constructor (or lambda application). The expression print x is already in WHNF, so seq doesn't do anything.

You can get the result you're looking for with the function Debug.Trace.trace.

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2  
The expression print x is certainly not already in WHNF. –  kosmikus Dec 2 '13 at 9:36
    
It doesn't matter if it's in WHNF for the IO purpose. — trace is a good suggestion – though, as the module name tells, really just for debugging purposes. –  leftaroundabout Dec 2 '13 at 9:52
    
@leftaroundabout I know it doesn't matter for the result. But these are tricky issues, and it's better to be precise. –  kosmikus Dec 2 '13 at 10:02
    
@kosmikus I think an IO action is a function value wrapped in a newtype constructor - i.e., clearly WHNF –  Ingo Dec 2 '13 at 11:05
3  
@Ingo My remark was about "The expression print x is already in WHNF, so seq doesn't do anything." Which is wrong, because print x is not in WHNF, even though it can certainly evaluated to WHNF, and will be by seq. That's all. Can we end this discussion now? –  kosmikus Dec 2 '13 at 11:27
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