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I am trying to create a backward list using Haskell's recursive types

data RevList a = Snoc a (RevList a) | Lin
    deriving Show 

mkrevlst [] = Lin
mkrevlst (x:xs) = mkrevlst xs Snoc x 

When I do > mkrevlst [1,2,3] ,the output I am expecting is : ((Lin Snoc 3) Snoc 2) Snoc 1

When I run this I get an error. I am new to Haskell & I am not able to make out where is mistake is. Where am I going wrong?

Thank you.

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2  
Please state what exact error you get. "I get an error" is not a description of an error. –  n.m. Jun 21 '11 at 5:29
    
It would be more idiomatic to define Revlist like this data RevList a = Snoc (RevList a) a | Lin. The original definition is a Cons list (i.e. a normal list without syntactic sugar) that relies on a "smart constructor" mrevlist to make it notionally a Snoc list. –  stephen tetley Jun 21 '11 at 7:29
    
@n.m , the error I am getting is a type error. @stephen tetley, yes you are right, it should be data RevList a = Snoc (RevList a) a | Lin , but I am still trying to figure out how to write the function to display the list properly. –  RBK Jun 21 '11 at 15:58

3 Answers 3

up vote 3 down vote accepted

I'm not sure what this line was supposed to be, but it doesn't make sense as is:

mkrevlst (x:xs) = mkrevlst xs Snoc x 

The expression mkrevlist xs presumably has type RevList a, since the base case above returns Lin. Applying this to two more arguments will indeed result in a type error.

It looks like you're expecting Snoc to be used infix, is that correct? In Haskell, identifiers made of alphanumeric characters are prefix, unless surrounded by backticks, e.g. mkrevlist xs `Snoc` x. Identifiers made of symbols are infix, unless surrounded in parentheses, and infix data constructors specifically must start with a colon. So you could also define your data type like this:

data RevList a = a :| (RevList a) | Lin
    deriving Show 

Also, note that even if you do use Snoc infix, the order of its arguments are still backwards from how you're using it in mkrevlist.

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When I modified it to this: data RevList a = Lin | RevList a :| a deriving Show mkrevlst [] = Lin mkrevlst (x:xs) = mkrevlst xs :| xs I am getting the output as ((Lin :| []) :| [3]) :| [2,3] This is close to what I wanted to get. But what is this symbol :| which you have mentioned? If I replace that symbol with the word Snoc, it doesn't work. –  RBK Jun 21 '11 at 16:04
    
@BharatKrishna: It's a data constructor, just like Snoc. The only difference is that :| is operator style so it can be written infix directly, and appears that way in the default Show instance. If you want to use Snoc infix, surround it with backticks like in my answer, but it won't appear that way in the output of show. –  C. A. McCann Jun 21 '11 at 16:17
    
thanks! I was really confused between the infix & prefix representations. I was trying to use Snoc as infix without backricks and then really got confused in writing the function to populate the list. Now it is working. –  RBK Jun 21 '11 at 20:56
    
@BharatKrishna: Fair enough! This is a case where the most helpful thing can be to simply read the formal specification for the language syntax. But as a quick guide: alphanumeric is prefix, symbols are infix; identifiers beginning with an uppercase letter or : are types/constructors/classes/etc., identifiers beginning with a lowercase letter or any other symbol are terms/type variables/etc. –  C. A. McCann Jun 21 '11 at 21:13

A list of things is either empty or a thing followed by a list of things. This is exactly what you have as your definition of RevList. It is isomorphic to a normal list, not reversed at all. A real reversed list is defined symmetrically to a normal list.

A list of thing is either empty or a thing followed by a list of things.

Symmetrically,

A reversed-list of things is either empty or a reversed-list of things followed by a thing.

Rewrite this in Haskell, using an infix data constructor as in camccann's answer, and you will get what you expect.

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Try out this:

mkrevlst [] = Lin
mkrevlst (x:xs) = Snoc x (mkrevlst xs)

Snoc constructor need 2 parameters where as you were passing only one i.e x It will solve the error but it wont solve your problem of creating a output like:

((Lin Snoc 3) Snoc 2) Snoc 1

For this you need to modify your data structure

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