Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to figure out Haskell's json library. However, I'm running into a bit of an issue in ghci:

Prelude> import Text.JSON
Prelude Text.JSON> decode "[1,2,3]"

<interactive>:1:0:
    Ambiguous type variable `a' in the constraint:
      `JSON a' arising from a use of `decode' at <interactive>:1:0-15
    Probable fix: add a type signature that fixes these type variable(s)

I think this has something to do with the a in the type signature:

decode :: JSON a => String -> Result a

Can someone show me:

  1. How to decode a string?
  2. What's going with the type system here?
share|improve this question
    
Shouldn't you be decoding a string such as ({"key":[1,2,3]}) instead of a flat out array? –  meder Dec 24 '10 at 1:02
    
@meder - There's no reason why I would have to, but an object would (should?) work just as well. It's just something I chose because it was easy. –  Jason Baker Dec 24 '10 at 1:11
add comment

3 Answers

up vote 7 down vote accepted

You need to specify which type you want to get back, like this:

decode "[1,2,3]" :: Result [Integer]
-- Ok [1,2,3]

If that line was part of a larger program where you would go on and use the result of decode the type could just be inferred, but since ghci doesn't know which type you need, it can't infer it.

It's the same reason why read "[1,2,3]" doesn't work without a type annotation or more context.

share|improve this answer
1  
The only problem is that JSON is dynamically typed, which means I might not know the type ahead of time. The json library comes with a JSValue type that you can use instead: decode "[1,2,3]" :: Result [JSValue] gives Ok [JSRational False (1 % 1),JSRational False (2 % 1),JSRational False (3 % 1)]. Other than that, this is the correct approach as far as I can tell. –  Jason Baker Dec 24 '10 at 2:55
2  
...or even better than that: decode "[1,2,3]" :: Result JSValue gives Ok (JSArray [JSRational False (1 % 1),JSRational False (2 % 1),JSRational False (3 % 1)]). –  Jason Baker Dec 24 '10 at 3:02
2  
You've hit on the crux of the matter. Haskell is not dynamically typed, so if you want a way to represent unknown types, you need some wrapper datatype that can capture all of them. JSValue seems to serve that purpose here. –  Dan Dec 24 '10 at 18:55
add comment

The decode function is defined as follows:

decode :: JSON a => String -> Result a

In a real program, the type inference engine can usually figure out what type to expect from decode. For example:

userAge :: String -> Int
userAge input = case decode input of
                  Result a -> a
                  _ -> error $ "Couldn't parse " ++ input

In this case, the type of userAge causes the typechecker to infer that decode's return value, in this particular case, is Result Int.

However, when you use decode in GHCi, you must specify the type of the value, e.g.:

decode "6" :: Result Int
=> Ok 6
share|improve this answer
add comment

A quick glance at the docs seems to suggest that the purpose of this function is to allow you to read JSON into any Haskell data structure of a supported type, so

decode "[1, 2, 3]" :: Result [Int]

ought to work

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.