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I want a newline-separated representation instead of the usual comma separated one, for may new data tyepe:

newtype SimpleRecord = SimpleRecord ([Char], [Char], Integer)
    deriving (Show)

I tried to write this istance of Show class :

instance  Show [SimpleRecord] where
        show [(SimpleRecord (n, i, c))] = show (SimpleRecord (n, i, c))++['\n']
        show (l:ls) = (show l)++['\n']++(show ls)

GHC heavily insults me.

Can someone try to explain me what can I do?

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3  
The class Show has a method showList so you can customize this. It's how Strings aka [Char] get shown differently. Note - you can't derive Show for SimpleRecord, you have to do it yourself and define showList at the same time. –  stephen tetley Sep 11 '12 at 22:05
1  
You could write a function that's not called show and use it. –  AndrewC Sep 12 '12 at 0:26
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3 Answers

up vote 1 down vote accepted

First, the Show class is supposed to be for producing Haskell source code, which the Read class can then read back in. It isn't supposed to be for producing human-readable, "pretty" output.

Having just said that, almost everyone misuses it for the latter, and it can be helpful for debugging purposes.

So, your options are:

  1. Write some function not called show which does what you want. (As per AndrewC's comment.)

  2. Use the showList method.

If you write deriving Show, this tells the compiler to write all the Show methods for you. If you want to write them yourself, you need to take away the deriving bit first. Then you can write your instance, which is going to look something like

instance Show SimpleRecord where
  show (SimpleRecord (x, y, z)) = ...

  showList rs = unlines (map show rs)

As an aside, if you didn't already know this, you can write

mapM_ print records

at the GHCi prompt to print out any list of printable things with one element per line.


As a final asside, why

newtype SimpleRecord = SimpleRecord ([Char], [Char], Integer)

rather than

data SimpleRecord = SimpleRecord [Char] [Char] Integer
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No (again) - Show is not supposed to be for producing Haskell output. It is for converting Haskell values to Strings. Please read the relevant chapter in the Haskell report. Of course, there are advantages if you have an correspondence between Show and Read instances but there is no obligation for this. –  stephen tetley Sep 12 '12 at 16:59
    
@stephentetley from the section about derived Show instances: "The result of show is a syntactically correct Haskell expression ...". Although there is no obligation that custom Show instances behave this way, it is intentionally the default. haskell.org/onlinereport/haskell2010/… –  Dan Burton Sep 12 '12 at 17:31
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Your question is quite ambiguos. If I interpret correctly you are trying to change the default Show instance for [SimpleRecord].

As GHC has already defined the instance Show [a] when Show a is defined. You get following error (after including FlexibleInstances extension) when you try to again define instance for Show [SimpleRecord].

Matching instances:
      instance Show a => Show [a] -- Defined in `GHC.Show'
      instance Show [SimpleRecord] -- Defined at show.hs:5:11

So you need to use OverlappingInstances language extension to allow overloading it. It states GHC to match the most specific instance.

You might also want to include FlexibleInstances extension, which allows to mention arbitrary nested types in instance declaration..

{-# LANGUAGE FlexibleInstances #-}
{-# LANGUAGE OverlappingInstances #-}
newtype SimpleRecord = SimpleRecord ([Char], [Char], Integer)
    deriving (Show)

instance  Show [SimpleRecord] where
    show [SimpleRecord (n, i, c)] = show (SimpleRecord (n, i, c))++"\n"
    show (l:ls) = show l ++ "\n" ++ show ls

You get get more information about these language extensions at GHC Docs

Just a comment on design of your type, It is better to define your type as

data SimpleRecord = SimpleRecord String String Integer 

You get more flexibility here in terms of partial constructor application etc.

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This would be true for most classes. But Show contains a horrible hack for exactly this situation. You can provide a different implementation of showList for your type to customize how lists for your type are handled. –  Carl Sep 12 '12 at 0:38
    
Is it also worth pointing out that that show instance has a non-exaustive pattern match? –  Phyx Sep 12 '12 at 12:30
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I might have been missing something, but it wasn't clear why you were newtyping (String,String,Integer) rather than what you were concerned to show nicely, namely lists of them. Then you would evade the universal Show instance for lists:

newtype SimpleRecords = SimpleRecords [(String, String, Integer)]

instance Show SimpleRecords where
  show (SimpleRecords []) = ""
  show (SimpleRecords ((n, i, c): xs)) = 
       show (n, i, c) ++ "\n" ++ show (SimpleRecords xs)

 -- Prelude Main> let a = words "We hold these truths to be self-evident"
 -- Prelude Main> let b = words "All the best people are using Clorox"
 -- Prelude Main> let c = zip3 a b [1::Integer ..]
 -- Prelude Main> SimpleRecords c
 -- ("We","All",1)
 -- ("hold","the",2)
 -- ("these","best",3)
 -- ("truths","people",4)
 -- ("to","are",5)
 -- ("be","using",6)
 -- ("self-evident","Clorox",7)
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