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So I wanted to do a simple string reverse function in Haskell

swapReverse :: String => String  
swapReverse [x] = [x]
swapReverse [x,y] = [y,x]
swapReverse (x:xs:l) =         -- pattern match fails here 
  let last = [l]
      middle = xs
      first = [x]
  in  last ++ swapReverse middle ++ first

So is there a way to define a pattern structure in haskell that has first and last element, and all the elements in the middle ?

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2  
Beware of the type declaration :) You probably meant swapReverse :: String -> String, or maybe something more general like swapReverse :: [a] -> [a]. –  Riccardo Mar 21 '12 at 22:06
    
BTW, finding the last element of a linked list is O(N). You almost never actually want to do that. –  hugomg Mar 21 '12 at 22:06
    
The type signature must be String -> String, BTW –  Landei Mar 22 '12 at 9:53

4 Answers 4

up vote 6 down vote accepted

No, you cannot. Why? Because pattern matches match values and their subparts, but the "middle" of a list isn't a subpart of the list. The list [1, 2, 3, 4] is 1:(2:(3:(4:[]))), in terms of its structure. So you want to match first to 1 and last to 4, which are both subparts of the list, and thus not disqualified. But the middle that you want would be 2:(3:[]), which is not a subpart of the list, and thus, cannot be a match.

Note that we can't write a pattern to match the first and the last elements of a list simultaneously, either. A pattern has a depth that's fixed at compilation time.

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Pattern matching works on constructors, : is the only list constructor so you can not match on the middle of the list. You need to construct the new list backwards (obviously :) ) which can be done by taking the head and appending that to the reverse of the rest of the list.

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1  
I just want to remark that the third pattern, (x:xs:l) can actually match, but not what you expect. It will match x with the first element, xs with the second, and l with the rest of the list. –  Riccardo Mar 21 '12 at 22:04

Try this code:

last1 (x:xs:l) = (x,xs,l)

l doesn't get you the last element in a list, it get's you the rest of the list besides the first two variables, which are assigned the first two elements in a list.

When you write a pattern match for a list, the first variable is assigned the first element, and so on, until the program get's to the last variable, where everything that is left is assigned to it. There is nothing special about adding an s after an x, a variable named y would do the same thing.

If you want to get the last element of a list, you need to create a pattern similar to (x:xs), and use recursion on xs and apply that pattern until you get down to one list element, which is the last element. However, I would recommend reading Adam Bergmark's answer for a better way to reverse a list that does not involve finding the first and last elements of a list.

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A working version:

swapReverse :: String -> String  
swapReverse (x:xs) = [last xs] ++ swapReverse (init xs) ++ [x]
swapReverse xs = xs

Note that this implementation is performance-wise a disaster. Implementations using a fold and/or accumulators are much more efficient.

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