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Why is [Char] an instance of Ord, but not of Enum?

Prelude> let succ_a = "a" ++ [minBound::Char]
Prelude> "a" < succ_a
True
Prelude> succ_a < "a "
True
Prelude> succ_a < succ_a ++ [minBound::Char]
True

I think there's no String between "a" and succ_a - so why not succ "a" == succ_a?

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Actually, I can think of many strings between "a" and "aa". There's "a_", and "a__", "a____", and "a______ " ... ad infinitum. ("_" is supposed to be a space, btw) –  Ord Apr 27 '12 at 18:27
    
Point taken. But see the edit - "a" ++ [minBound::Char] - which is "a\NULL" - is > "a" and < any of these examples –  gcbenison Apr 27 '12 at 18:37
7  
The Enum instance you're proposing isn't useful. Enumerating starting at a given value would just produce a stream of ever-longer strings of \NULL characters, and no Enum instance can be proposed which is useful for the same reason the real numbers are not recursively enumerable. –  Daniel Wagner Apr 27 '12 at 18:45
    
Note that the annotation ::Char is unnecessary here, it'll be inferred. A more interesting question would be why lists aren't an instance of Bounded, but the answer is probably "no-one has ever needed that instance". –  Ben Millwood Apr 27 '12 at 21:51

3 Answers 3

up vote 14 down vote accepted

Since strings are lists in Haskell, you might as well ask why lists aren't in Enum, since you wouldn't be able to write an instance for just strings without extensions. But that doesn't matter. The problem is that enumeration in lexicographical order isn't very useful, since you just keep appending the smallest character at the end indefinitely.

Using the alphabet a..z for simplicity, lexicographical order just gives us repetitions of the first letter.

"", "a", "aa", "aaa", "aaaa", "aaaaa" ...

The more useful order for enumerating strings is by length. This way, we first get the empty string, then all the strings of length 1, then all of length 2, etc.

"", "a", "b", ... "z", "aa", "ba", ... "za", "ab", ... "zz", "aaa", "baa" ...

This is essentially the same as enumerating integers, with the digits reversed, so when you get to "zz" you carry and get "aaa", just like how you get from 99 to 100.

However, this would be inconsistent with the Ord instance for lists which uses the lexicographical ordering.

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Disclaimer: I don't know much about Haskell.

However, it seems from http://www.haskell.org/ghc/docs/latest/html/libraries/base/Prelude.html#t:Enum that an Enum has to support toEnum and fromEnum to convert from the enum type to Int and back again. How would this work for strings? If succ_a = "a" ++ [minBound::Char], then any Int maps onto a string "a" with some number of minBound::Char's appended to it (or more realistically, any Int n maps onto a list of size n which contains only minBound::Char). So, "b" would not map onto any Int.

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First, you're wrong about "a" and "aa":

Prelude> "a" < "aA" && "aA" < "aa"
True

What's the next string after "foo"? Is it "fop"? Is it "fooa?" Is it "foo\0"?

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17  
It's "bar", obviously. –  Daniel Fischer Apr 27 '12 at 18:24
    
Actually I think it's "foo" ++ [minBound::Char]. –  gcbenison Apr 27 '12 at 18:29

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