Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to write functions and put result to string.

I want function:

read' :: FilePath -> String

I use:

:t readFile
readFile :: FilePath -> IO String

I make:

read' :: IO ()
read' = do
     str <- readFile "/home/shk/workspace/src/test.txt" 
     putStrLn str

I want to ask str is string or not?

We know that:

:t putStrLn
putStrLn :: String -> IO ()

Then why i can't:

read' :: String
read' = do
     str <- readFile "/home/shk/workspace/lxmpp/src/test.txt" 
     str

I get error that:

 Couldn't match expected type `[t0]' with actual type `IO String'
    In the return type of a call of `readFile'
    In a stmt of a 'do' expression:
        str <- readFile "/home/shk/workspace/lxmpp/src/test.txt"
    In the expression:
      do { str <- readFile "/home/shk/workspace/src/test.txt";
           str }

Thank you.

share|improve this question
4  
The readFile in the do-notation implies you are in the IO monad, and the IO monad cannot be escaped ! –  is7s Jul 8 '11 at 18:29
    
@is7s unless you use unsafePerformIO! –  alternative Jul 8 '11 at 18:32
10  
The first rule of unsafePerformIO is you don't tell anyone about unsafePerformIO! –  Thomas M. DuBuisson Jul 8 '11 at 19:24
    
@Thomas Uh oh, likes like Real World Haskell broke that rule –  alternative Jul 8 '11 at 19:44
1  
@Thomas Unless he understands generalized prepohistozygomorphisms –  FUZxxl Jul 8 '11 at 19:45

4 Answers 4

up vote 6 down vote accepted

I think no one has answered this, very important question, yet:

I want to ask str is string or not?

I will try to.

The type of the variable str is String, yes. However, the scope of this variable is very limited. I think desugaring the do-notation is necessary for understanding:

read' = readFile "/home/shk/workspace/src/test.txt" >>= (\str -> putStrLn str)

I think here it becomes more clear why str is not good enough. It is an argument of the function you pass to >>=. Its value only becomes available when someone calls your function, which happens only when the IO action containing it is being executed.

Also, the type of read' :: IO () is determined not so much by the putStrLn str, but rather by the return type of the operator >>=. Have a look at it (specialized to the IO monad):

(>>=) :: IO a -> (a -> IO b) -> IO b

You can see that the result is always an IO b action, so trying to change any of arguments won't help.

You can read some monad tutorial if you want to understand why the type is the way it is. The intuition behind it is: you can't perform an action without performing an action.

And on the practical side of the question, to use the value returned by some action, instead of trying to do use (extractValue inputAction), which does not make sense because extractValue is not possible, try inputAction >>= use if your use does involve I/O, or fmap use inputAction if it does not.

share|improve this answer

Just to quibble a bit more, while the other answers are perfectly correct, I want to emphasize something: Something with the type IO String isn't just a string that the type system won't let you get at directly. It's a computation that performs I/O to get a string for you. Applying readFile to a file path doesn't return a String value any more than putting a steak next to a meat grinder magically turns them into a hamburger.

When you have some code like this:

foo = do let getStr = readFile "input.txt"
         s1 <- getStr
         s2 <- getStr
         -- etc.

That doesn't mean you're "taking the string out of getStr twice". It means you're performing the computation twice and can easily get different results between the two.

share|improve this answer
    
The great thing about magic hamburgers is that you can eat them without worrying about side-effects! –  pat Jul 9 '11 at 19:14

You should use return str in read' if you want it to return str instead of (). You can't strip IO from the type of read', since it's not a pure function. To get a better grip on how input/output in Haskell works I recommend you to read a tutorial.

share|improve this answer
3  
While this is correct, note that there is no point in binding with <- just to immediately return it. You can just write read' = readFile "/path/to/test.txt". This is the second monad law. –  hammar Jul 8 '11 at 18:42

As a more detailed reason why: It allows impurity.

You absolutely can not perform IO during a pure operation, or it would completely break referential transparency. Technically you can use unsafePerformIO but it would break referential transparency in this case - you should only use that if you can guarantee that the result is always the same.

share|improve this answer
1  
Is the guarantee of result being the same enough to claim purity? I mean, can unsafePerformIO (putStrLn "hello!") be called pure? –  Rotsor Jul 8 '11 at 19:56
1  
@Rotsor: Don't forget that it has to be thread-safe as well. Guaranteeing purity manually is difficult! –  C. A. McCann Jul 8 '11 at 20:04
    
@camccann I'm not sure how to interpret your comment. Are you extending the notion of purity the monadic user defined, or suggesting the practical difficulties of achieving it? If not extended, it can be achieved by, say, safePerformIO = unsafePerformIO :: IO () -> (), right? Which is bad... Or not? –  Rotsor Jul 8 '11 at 21:21
    
@Rotsor: Ah, sorry for lack of clarity. I was answering your questions with "no, that's not enough" and adding an additional requirement for something to be pure, namely that even if all it uses is ST-style contained impurity, it must also be independent of possible concurrent access to resources. Ensuring purity in the presence of unsafePerformIO is very, very difficult indeed. –  C. A. McCann Jul 8 '11 at 21:35
    
@Rotsor I would consider the printing to the screen as being a result of the function. But yes, thats generally a sign that its not pure ^_^. Basically, you shouldn't care whether or not the previous value calculated is used. –  alternative Jul 8 '11 at 21:55

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.