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I have tried this in multiple ways: if-then-else, guards, case statements but I never manage to get it compiled. I think from the code it is quite clear what I want to do. Why is this not possible and what must I do to get it straight?

appendMsg :: String -> (String, Integer) -> Map.Map (String, Integer) [String] -> Map.Map (String, Integer) [String]
appendMsg  a (b,c) m = do
      let Just le1 = length . concat <$> Map.lookup (b,c) m
          le2 = le1 + length a
      if le2 < 1400 then (let m2 = Map.adjust (x ++ [a]) (b, c) m) else (print (le1, le2))
      return (m2)

The error message I get here is parse error on input `)'. If I change the brackets I get parse error on input `else'. If I say in the else path (let m2 = m) then I get again the bracket error.

What I try to achieve is, if le2 <= 1400 then m2 should be created by using

f x = x ++ [a]
m2 = Map.adjust f (b, c) m

if le2 > 1400 then an other function should be called that takes the same arguments than appendMsg and appendMsg should simply return nothing.

An additional problem is that as soon as this is set right according to all recommendations below:

if le2 < 1400 then let m2 = Map.adjust (++ [a]) (b, c) m in return (m2) else return ()

I get an error saying

 No instance for (Monad (Map.Map (String, Integer)))
      arising from a use of `return'

That is by the way the same error I eventually got when I used guards. The problem is that there is little I can do in the remaining code with this strange type. Can I convert this type then in any way back to (Map.Map (String, Integer) [String]) or avoid it altogether?

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Generally it's considered a good idea to include what error message you're getting. –  Amber Feb 13 '12 at 22:55
3  
What's m2 equal to if le2 >= 1400? –  rampion Feb 13 '12 at 22:56
3  
What do you return if the else path is followed? –  Clark Gaebel Feb 13 '12 at 22:57
1  
Both branches of your if-then-else statement must have the same type. The then branch of your statement doesn't actually have a type at all, since you have a let-binding without any followup statements, and the else branch is actually of type IO (), which doesn't work in your function. –  Kevin Ballard Feb 13 '12 at 23:01
2  
If Haskell is reporting an 'arse error', I'd say it was being cheeky (sorry, British joke). –  halfer Feb 13 '12 at 23:03

2 Answers 2

up vote 2 down vote accepted

You are using do, whose result must be a Monad instance, but your function's type indicates that it returns a Map which is not an instance of Monad. If you really want to return Nothing when le2 >= 1400, then you will have to return Just ... when le2 < 1400, and your function could look like this:

import qualified Data.Map as Map
import Control.Monad

appendMsg :: String -> (String, Integer) ->
             Map.Map (String, Integer) [String] ->
             Maybe (Map.Map (String, Integer) [String])
appendMsg  a k m = do
      v <- Map.lookup k m
      let l = length . concat $ v 
          l' = l + length a
      guard $ l' < 1400
      return $ Map.insert k (v ++ a) m

Note that this function will return Nothing if it can't find the key in the Map to begin with...

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The $ here would abbreviate () ? –  J Fritsch Feb 14 '12 at 0:17
    
$ is a lower-precedence form of function application. f a $ g b is equivalent to f a (g b). It's mostly for eliminating parens, but is also useful when you want to treat function application as a function (like map ($ a) fs which applies each function in fs to the argument a, and returns the results as a list). –  pat Feb 14 '12 at 0:39
    
Can the problem with the Monad instance really be the 'do'? Can this not be related to the use of 'guard' and MonadPlus? –  J Fritsch Feb 14 '12 at 9:40
    
Sort of. You can do x = do 3, and it works, even though 3 is not an instance of Monad. However, if you have two 'statements' in the do, they will be connected by >>= (or >>) which will require them both to be the same Monad instance. –  pat Feb 14 '12 at 16:48

let must either be followed by in or be directly inside a do block. let must not be the last statement in a do block. These rules are a consequence of the fact that it makes no sense to create a variable that goes out of scope immediately without any chance of being used.

In your code you create a variable called m2 inside the then branch of the if, but you never use it. You do (try to) use it outside the if, but outside the if m2 doesn't exist. You can't use a variable that's been created inside an if outside of that if. What should the value of m2 be when the if condition was false?

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In case le2 <= 1400 I want to create the local variable m2. –  J Fritsch Feb 13 '12 at 23:04
2  
@JFritsch: Your code is always returning m2. What are you expecting to happen if le2 > 1400? –  Kevin Ballard Feb 13 '12 at 23:06
    
@KevinBallard In this case I want to call an other function that flushes my queue. The print is dummy code only. –  J Fritsch Feb 13 '12 at 23:08
1  
@JFritsch The point is that the variable only exists inside the then-branch. If you put the return inside the then-branch (and do something well-typed in the else-branch), it'll work. –  sepp2k Feb 13 '12 at 23:11
    
@sepp2k Understand now. But how could I achieve what I need to do: if le2 <= 1400 create m2 and return that? –  J Fritsch Feb 13 '12 at 23:12

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