1
import Prelude hiding (Either (..))

data Tree a = Empty | Node a (Tree a) (Tree a)

instance Show a => Show (Tree a) where
  show t = show ST t

data ShowableTree a = ST Int (Tree a)

instance Show a => Show (ShowableTree a) where
  let
    indent 0 = ""
    indent n = "\t" ++ (indent n-1)
  in
    show (ST depth Empty) = (indent depth) ++ "()"
    show (ST depth (Node n l r)) =
      let
        stl = ST (depth+1) l
        str = ST (depth+1) r
      in
        (indent depth) ++ "(\n" ++ (indent depth) ++ (show n) ++ "\n" ++ (show stl) ++ "\n" ++ (show str) ++ "\n" ++ (indent depth) ++ ")\n"

This spits out errors:

[m@green09 ~]$ ghci labn.hs
GHCi, version 7.6.3: http://www.haskell.org/ghc/  :? for help
Loading package ghc-prim ... linking ... done.
Loading package integer-gmp ... linking ... done.
Loading package base ... linking ... done.
[1 of 1] Compiling Main             ( labn.hs, interpreted )

labn.hs:14:3:
    parse error (possibly incorrect indentation or mismatched brackets)
Failed, modules loaded: none.

Let's try where perhaps?

instance Show a => Show (ShowableTree a)
  where
    show (ST depth Empty) = (indent depth) ++ "()"
    show (ST depth (Node n l r)) =
      let
        stl = ST (depth+1) l
        str = ST (depth+1) r
      in
        (indent depth) ++ "(\n" ++ (indent depth) ++ (show n) ++ "\n" ++ (show stl) ++ "\n" ++ (show str) ++ "\n" ++ (indent depth) ++ ")\n"
    where
      indent 0 = ""
      indent n = "\t" ++ (indent n-1)

Still no success:

[m@green09 ~]$ ghci labn.hs
GHCi, version 7.6.3: http://www.haskell.org/ghc/  :? for help
Loading package ghc-prim ... linking ... done.
Loading package integer-gmp ... linking ... done.
Loading package base ... linking ... done.
[1 of 1] Compiling Main             ( labn.hs, interpreted )

labn.hs:19:5: parse error on input `where'
Failed, modules loaded: none.

One clear solution is to pollute the global scope by moving the definition of indent to the global scope.

Barring this, however, is it possible to somehow define indent within ShowableTree?

6

The body of an instance declaration is not an arbitrary expression; it's a list of function definitions. let can only be used where an expression is expected, and where has to be associated with a single equation. However, it's simple enough to define show with a single equation that would allow you to use either.

-- using where
instance Show a => Show (ShowableTree a) where
    show (ST depth t) = case t of
                         Empty -> indent depth ++ "()"
                         Node n l r -> let stl = ST (depth + 1) l
                                           str = ST (depth + 1) r
                                       in  indent depth ++ "(\n" ++ indent depth ++ show n ++ "\n" ++ show stl ++ "\n" ++ show str ++ "\n" ++ indent depth ++ ")\n"
        where indent = flip replicate '\t'

-- using let
instance Show a => Show (ShowableTree a) where
    show (ST depth t) = let indent = flip replicate '\t'
                        in case t of
                             Empty -> indent depth ++ "()"
                             Node n l r -> let stl = ST (depth + 1) l
                                               str = ST (depth + 1) r
                                           in  indent depth ++ "(\n" ++ indent depth ++ show n ++ "\n" ++ show stl ++ "\n" ++ show str ++ "\n" ++ indent depth ++ ")\n"

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