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I have the demonstrator code below that fails to compile with the error:

Occurs check: cannot construct the infinite type: p0 = Maybe p0
    Expected type: PSQ.PSQ (t1, t2, (t0, [a0])) (Maybe p0)
      Actual type: PSQ.PSQ (t1, t2, (t0, [a0])) p0
    In the third argument of `PSQ.insert', namely `q'
    In the expression: PSQ.insert test' time q

If I make the code from AppendMsg part of main it compiles. If a try to make it a separate function it fails with the strange maybe related error. I am not quite sure where the maybe type comes from. I have tried to resolve it with e.g. let time = Just (PSQ.lookup test time) but no joy. I have tried it without Data.Label/lenses but also no joy. Even a very simple function to insert the additional message gives the same error.

What could be wrong here?

import Data.Time
import Data.Time.Clock.POSIX
import qualified Data.PSQueue as PSQ
import Data.Maybe
import Data.Label
import Control.Category
import Prelude hiding ((.))

test = ("192.168.1.1", 3455, (1234566, msgs))
msgs = ["aaa", "bbbb", "ccccc"]

second2 = lens (\(a,b) -> b)   (\b (a,_) -> (a,b))
third3  = lens (\(a,b,c) -> c) (\c (a,b,_) -> (a,b,c))
messages = second2 . third3

append x = modify messages (x :)

newRq = do
      time <- getPOSIXTime
      let q = PSQ.singleton test time
      return q

appendMsg a q = do
      let time = PSQ.lookup test q
      let test' = append a test
      let q' = PSQ.insert test' time q
      let q = PSQ.delete test q' 
      return q

--insertNewRec a q = do 
--     time <- getPOSIXTime
--     let q' = PSQ.insert a time q
--     return q

main :: IO()
main = do
     q <- newRq
     let q' = appendMsg "first" q
     print (q')

Have revised appendMsg according to all comments/answers (see below). It now compiles but execution ends with <<loop>> :-(.

appendMsg :: String -> PSQ.PSQ (String, Integer, (Integer, [String])) POSIXTime -> PSQ.
PSQ (String, Integer, (Integer, [String])) POSIXTime 
appendMsg a q = q
      where 
       Just time = PSQ.lookup test q
       test2 = append a test
       q' = PSQ.insert test2 time q
       q = PSQ.delete test q' 
share|improve this question
1  
Why is appendMsg using do-notation? It's a pure function. –  ehird Jan 2 '12 at 23:01
    
@ehird does the notation matter/change anything? If I change it I get a parse error in the line let test ' = append a test no matter how I refactor it. I already suspect(ed) it has somehow to do with that line or the insertion ... ... –  J Fritsch Jan 2 '12 at 23:10
2  
Outside of do-notation, you should use one single let...in expression, or a where clause; consult your favourite Haskell tutorial for the exact syntax :) Yes, it does change things: it forces appendMsg to have a monadic result type, which is probably not what you want. –  ehird Jan 2 '12 at 23:24
    
Could you explain in english what you're trying to do? The loop is probably due to q' = PSQ.insert test2 time q; q = PSQ.delete test q', where you define q in terms of q' and vice versa. –  aleator Jan 3 '12 at 6:05
    
I've added an explanation (and solution) of the <<loop>> to my answer. Missed your edit yesterday, sorry. –  Daniel Fischer Jan 3 '12 at 11:46

2 Answers 2

up vote 5 down vote accepted

Apart from the dubious monadic type of appendMsg, instead of

let time = Just (PSQ.lookup test time)

(btw. I suppose the second 'time' is a typo and was actually a 'q'), you should have tried

let Just time = PSQ.lookup test q

And I strongly recommend giving type signatures for your functions, that way GHC can give you much more helpful error messages since that way type errors are reported where they are made, and not where they cause type checking to fail.

Edit: The reason for the <<loop>> in the revised code

appendMsg :: String -> PSQ.PSQ (String, Integer, (Integer, [String])) POSIXTime
          -> PSQ.PSQ (String, Integer, (Integer, [String])) POSIXTime 
appendMsg a q = q
  where 
   Just time = PSQ.lookup test q
   test2 = append a test
   q' = PSQ.insert test2 time q
   q = PSQ.delete test q'

is the circular dependency of q and q' in the where clause. The bindings in a where clause (or a let) are recursive and can be arbitrarily ordered, so the qs in that all refer to the one bound in the last line, not the parameter - whoops. In the original code you had multiple lets, so the bindings were not (mutually) recursive and a binding let x = ... shadowed any previous binding of the identifier x.

To break the <<loop>>, the easy and recommended fixes are

  • appendMsg a q = q'' and in the last line of the where clause q'' = PSQ.delete test q'
  • appendMsg a q = PSQ.delete test q' and remove the last line of the where clause

You can also build a let-tower

appendMsg a q =
    let Just time = ... in
    let test2 = ... in
    let q' = ... in
    let q = ... in q

but I don't recommend that.

share|improve this answer

PSQ.lookup has a Maybe a return type because the key you pass it might not actually be in your PSQ. You want code that handles the possible error (unless you'd rather crash, or are sure it will never happen). Slightly modifying Daniel Fischer's answer..

let time = case PSQ.lookup test q of
             Just x -> x
             Nothing -> (...)

Where (...) can be a default value or perhaps error "I am a helpful error message" or something.

share|improve this answer
    
Thanks, not 100% yet :D. What would be wrong in this: appendMsg :: String -> PSQ.PSQ (String, Integer, (Integer, [String])) t4 -> PSQ.PSQ (St ring, Integer, (Integer, [String])) t4 appendMsg a q = q. I get no instance for (Ord t4) ? –  J Fritsch Jan 3 '12 at 0:18
3  
lookup :: (Ord k, Ord p) => k -> PSQ k p -> Maybe p so you can't call this function unless you know k and p are both instances of Ord. Your type signature promises to work no matter what type t4 is, including types that are not instances of Ord. You can fix that by adding a class constraint: appendMsg :: (Ord t4) => (...). –  redxaxder Jan 3 '12 at 0:31

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