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If i have two constants:

type A = Int  
type B = Int  

and then apply the function:

Number :: String −> (Int −> Bool) −> IO Int
Number n = do
    num <- fmap getNumber getLine
    if num >0 || num <= A || num <= B then num else putStrln "Invalid Number!"

is this correct ?

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This is actually quite far from even being syntactically correct. It's impossible to understand as is: could you please write a minimal example and try to compile it, presenting all compiler errors? I don't think the IO monad is causing issues here. –  J. Abrahamson Nov 24 '13 at 17:47
2  
1. type A = Int doesn't represent a constant. It is just a renaming of the type Int. If you want to write a constant, just define a top level function like so _A = 3.14. 2. Where is getNumber defined? What does it do? 3. Number is not a valid function name. 4. num has type Num a => a and putStrLn ".." has type IO (). They can't be in the then/else branches of the same if statement. –  user2407038 Nov 24 '13 at 17:53
1  
If it were correct then you'd be able to compile it. As your question stands, the obvious and correct answer is simply "no". Perhaps you should ask a series of more specific questions that speak to any confusions you have. From what I can tell, those questions could include "what is a type alias?" and "What is the syntactic form of function definitions?". –  Thomas M. DuBuisson Nov 24 '13 at 18:58

1 Answer 1

up vote 1 down vote accepted

First line num <- fmap getNumber getLine is correct (if getNumber = read), but second line is not

if num >0 || num <= A || num <= B then num else putStrln "Invalid Number!"

Let's look at second part of if expression:

num :: Int, but putStrln "Invalid Number!" :: IO ()

But they MUST have the same type!

If we rewrite then return num, these means type return num :: IO Int, but still putStrln "Invalid Number!" :: IO ()

First part of if it is not correct at all: A and B are types, not data constructors

we could write (num > (x :: A) ), this means same as num > (x :: Int), like these:

num > 0 || num <= (3 :: A) || num <= (42 :: B)

Updated

Sure, name of function couldn't be Number with capital letter. All function are start with lowercase letter.

P.S. n in your example is an unused variable

Valid functions looks like:

numA = 3
numB = 42

number = do
    num <- fmap read getLine
    if num > 0 || num <= numA || num <= numB 
      then return (Just num)
      else putStrln "Invalid Number!" >> return Nothing
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So basically how would i rewrite my function ? –  user2878641 Nov 24 '13 at 18:33
    
@dcarou I add valid functions –  wit Nov 24 '13 at 19:31
1  
if numA and numB change randomly , and i would not know their values, is their any way of doing it ? –  user2878641 Nov 25 '13 at 11:43
    
Basically what i mean is: instead of having "if num >0 || num <=numA.." if i have "if num > 0 || num <= (x :: numA) || num <= (y :: numB)", is this correct ? and now the value of numA and numB may change during the program and it will still work ? –  user2878641 Nov 25 '13 at 17:47
    
@dcarou No. But all functions are pure, so you can't write "numA=3;numA=5" - it is an error. But you could write number numA numB = do ... - in this case numA and numB are the parameters –  wit Nov 25 '13 at 22:24

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