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In the process of writing an interpreter in Haskell for a separate, simple programming language - I find myself butting my head against a wall as I learn typing in Haskell.

I have two custom data types

data Expr
    = Var Var
    | NumE Int
    | NilE
    | ConsE Expr Expr
    | Plus Expr Expr
    | Minus Expr Expr
    | Times Expr Expr
    | Div Expr Expr
    | Equal Expr Expr
    | Less Expr Expr
    | Greater Expr Expr
    | Not Expr
    | Isnum Expr
    | And Expr Expr
    | Or Expr Expr
    | Head Expr
    | Tail Expr
    | Call String
    deriving (Show, Read)

data Val = Num Int | Nil | Cons Val Val
    deriving (Eq, Show, Read)

and I'm starting to write the cases for interpreting these options, with the function interpret_expr

interpret_expr :: Vars -> Expr -> Val
interpret_expr vars@(Vars a b c d) (NumE integer) = integer

but this COMPLAINS that it couldn't match expected type 'Val' with actual type 'Int' in the expression 'integer'. But say I change it to something silly like

interpret_expr :: Vars -> Expr -> Val
interpret_expr vars@(Vars a b c d) (NumE 'a') = 'a'

it then complains at 'a' that it can't match expected type 'Int' with actual type 'Char'. NOW IT WANTS AN INT?????? I really don't know what to say, I really thought it would be as simple as providing NumE with a variable it could figure is an integer. What am I doing wrong?

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1  
What is the Val type? You don't show that definition. –  Scott Olson Apr 9 '13 at 2:39
    
Just added it in now –  nebffa Apr 9 '13 at 2:41
2  
In your first interpret_expr, you said it should return a Val, but you are trying to return an Int. You forgot to apply your constructor Num : Int -> Val. –  luqui Apr 9 '13 at 2:45

2 Answers 2

up vote 5 down vote accepted

In the first case you are returning an Int from a function you declared to return a Val. From your definition of Val it looks like you probably want to return Num integer here.

In the second case the problem is in the pattern matching. (NumE 'a') is an error because NumE is defined as NumE Int, so it must be followed by an Int, not a Char.

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Ok this is the right answer. Adding a "Num" specifier like so interpret_expr vars@(Vars a b c d) (NumE integer) = Num integer, clears the error. I am getting confused by the Haskell error messages, telling me there is a problem at (NumE integer), rather than a probelm at (= integer) –  nebffa Apr 9 '13 at 2:44
2  
Haskell's error messages are confusing at first sadly. You do get used to them pretty quick. –  jozefg Apr 9 '13 at 2:45
9  
@nebffa yeah it's because of the way type inference works. All it knows is that the return type of interpret_expr and the type of integer should be the same but they aren't, but it doesn't know which one is wrong. –  luqui Apr 9 '13 at 2:46
2  
@nebffa, yeah -- not always two though. It's good at pointing to the right spot often, but not always. Look at the other uses of the identifier it is pointing to, also. –  luqui Apr 9 '13 at 4:01
2  
@nebffa: It might help to think of it as a "round peg in a square hole" error. GHC doesn't know which (if either) is the right shape, it just knows they don't fit together. In the first case you're putting an Int-shaped peg in a Val-shaped hole as the value of the expression; in the second case your pattern match says you want a Char-shaped peg in an Int-shaped hole as the argument. The "actual" type is the peg (expression), the "expected" type is the hole (context the expression is used in). –  C. A. McCann Apr 9 '13 at 13:44

The piece of code

interpret_expr :: Vars -> Expr -> Val
interpret_expr vars@(Vars a b c d) (NumE 'a') = 'a'

is equivalent to

interpret_expr :: Vars -> Expr -> Val
interpret_expr vars@(Vars a b c d) (NumE x) | x == 'a' = 'a'

What is the type of x?

  • According to NumE :: Int -> Expr, x should be of type Int.
  • According to (==) :: Eq a => a -> a -> Bool, x should have the same type as 'a', which is Char.

Since something can't be both Int and Char, you get a type error.

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