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I have problem with BST in Haskell. I guess I've problem with defining the "key" variable in Node(Uzel) to be Ord. But I absolutely don't have any idea more.

I though, if I once defined the "key" argument for the Tree type as Ord, it is valid and every use in code will get this information too.

Following code is not complete, but there is the thing I'm talking about:

data (Ord key) => Tree key value = List key value |Uzel (Tree key value) key value (Tree key value) | Null deriving (Show)

prazdny :: Ord key => Tree key value
prazdny = Null

najdi :: (Ord key,Ord k) => k -> Tree key value -> Maybe a
najdi k Null = Nothing
najdi k (Uzel levy klic hodnota pravy) = if k < klic
                then najdi k levy
                else najdi k pravy

When trying to compile i get this:

bvs.hs:9:49:
Could not deduce (key ~ k)
from the context (Ord key, Ord k)
  bound by the type signature for
             najdi :: (Ord key, Ord k) => k -> Tree key value -> Maybe a
  at bvs.hs:(8,1)-(11,58)
  `key' is a rigid type variable bound by
        the type signature for
          najdi :: (Ord key, Ord k) => k -> Tree key value -> Maybe a
        at bvs.hs:8:1
  `k' is a rigid type variable bound by
      the type signature for
        najdi :: (Ord key, Ord k) => k -> Tree key value -> Maybe a
      at bvs.hs:8:1
In the second argument of `(<)', namely `klic'
In the expression: k < klic
In the expression: if k < klic then najdi k levy else najdi k pravy

Lot of thanks for any idea!!

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3  
You can't compare variable k of type k with variable klic of type key. Try najdi :: Ord key => key -> Tree key value -> Maybe value as the type (and remember to return a value sometime). –  pigworker May 17 '12 at 22:06
    
Indeed, the error message says that key and k have to be the same type (key ~ k) and GHC is unable to prove that. –  Vitus May 17 '12 at 22:10
1  
The question would be clearer to a larger crowd if you'd use English names in your code. –  yairchu May 17 '12 at 22:17
    
A side note, there's no need to have a separate List key value leaf. Having just Null will do nicely. Oh, and please do use English in your code, 99% of folks will have hard time understanding what List is doing here. –  n.m. May 17 '12 at 22:20
    
Thank for all - special thanks for Pigworker - IJW :). –  Jan Drozen May 17 '12 at 22:45

2 Answers 2

The problem is that k and key must be the same type in order to compare them, but you declare them to possibly be different, so the compiler complains. If you make them the same type it will type check.

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comment out this line and it'll compile:

--najdi :: (Ord key,Ord k) => k -> Tree key value -> Maybe a
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