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 am defining a Octave type:

data Octave = 1 | 2 | 3 deriving (Show, Read, Ord, Enum)

since '1' is not valid for data constructor identifiers, I have to do it like so(prefix is O not 0):

data Octave = O1 | O2 | O3 deriving (Show, Eq, Read, Ord, Enum)

Now, if I show Octave O1 it shows "O1" which is not what I exactly want.

I want the result to be "1".

I know we can customise our show behaviour via this:

instance Show Blabla where
show (Blabla ints chars list num) =
"integers = " ++ show ints ++ "\n"

but the problem is that I am using enumeration type which means it doesn't have a value except its identifier name 'O1'. How can I access that in Haskell?

Another question:

How can I read it back

read "O1" :: Octave works, but I want read "1" :: Octave

instance Read Octave where read "1" = O1 read "2" = O2 read "3" = O3

this doesn't work, "read' is not a (visible) method of classRead'".

share|improve this question

5 Answers 5

up vote 2 down vote accepted

You can always use existing instances for Int, like so:

data Octave = O1 | O2 | O3 deriving (Enum,Bounded)

instance Show Octave where
   show = show . (+1) . fromEnum

instance Read Octave where
   readsPrec pr = map (\ (int,str) -> ((toEnum (int-1)),str) . readsPrec pr

This correctly renders O1..O3 as 1..3 and reads them back. The only pitfall is when trying to read a different integer, like 4:

*** Exception: toEnum{Octave}: tag (3) is outside of enumerations'range (0,2)

This could be fixed by writing more code and checking for valid values in readsPred.

share|improve this answer

Here's a different approach:

data Octave_ = O1 | O2 | O3 deriving (Show, Eq, Read, Ord, Enum)
newtype Octave = O { unO :: Octave_ }  deriving (Eq, Ord, Enum)

instance Show Octave where
    show = tail . show . unO

Depending on what you are doing this could be good or bad.

share|improve this answer

Taking advantage of Octave's Enum instance and using the Show and Read instances for Int we can implement showing and reading like this:

data Octave = O1 | O2 | O3 deriving (Eq, Ord, Enum)

instance Show Octave where
    show o = show (fromEnum o + 1)

instance Read Octave where
    readsPrec prec = map (\(n,s) -> (toEnum (n - 1), s)) . readsPrec prec

I.e. fromEnum and toEnum convert between octaves and ints so that O1 <-> 0 and O2 <-> 1, so we have to adjust by one in both reading and writing.

share|improve this answer

It looks like you want to access the identifier name. you could use something like template haskell to do it but this is a terrible idea.

Actually, the fist bad idea is probably to rely on show. Show class is traditionally use to "serialize" data, while Read class will de-serialize them. If you want to pretty print the output, you'd better write your own Octave -> String function. To do so, you could rely on the result of show (and truncate the result). However, the most efficient solution might be to encode it directly, as proposed by amalloy.

share|improve this answer
    
Thx, how about reading it back. I am really bothered by this. I am told to implement a function which must follow the function declaration. And it passes me Strings!!! –  luckykevin Sep 4 '13 at 6:50
1  
The fact the GHCi uses show to display results is a good enough reason to make ADTs instance of Show even if there is no way to serialize/deserialize them, IMHO. –  John F. Miller Sep 4 '13 at 7:09
    
It's also quite easy to add a "prettyPrint ." in front of your ghc line (or to do "prettyPrint it" afterwards). –  Nicolas Sep 4 '13 at 8:47

Seems like all you need is this, right?

instance Show Octave where
  show O1 = "1"
  show O2 = "2"
  show O3 = "3"

Define show with three clauses, and let the pattern matcher figure it out.

share|improve this answer
    
Any better ways? –  luckykevin Sep 4 '13 at 6:33
    
Better than "functions perfectly, trivially easy to write"? –  amalloy Sep 4 '13 at 6:34
    
What if Octave has 8 values? –  luckykevin Sep 4 '13 at 6:36
4  
If there are eight values of Octave, you'll have to pattern-match all eight of them every time you care about its value, because you've made them into an enum with no other information attached. If this bothers you, you probably shouldn't be defining it as an enum. –  amalloy Sep 4 '13 at 6:39
    
No reflection in Haskell? Another question: How can I read it back? I have updated my question. –  luckykevin Sep 4 '13 at 6:42

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.