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 want to write a Haskell function which has two where clauses but I get this error from the compiler:

Syntax error in input (unexpected symbol "changeNew")

changeItem oPos nPos (x:xs) 
                        | oPos < nPos = changeOld
                        | oPos > nPos = changeNew
                        | otherwise = x : changeItem (oPos-1) (nPos-1) xs
                        where changeOld
                            | oPos == 0 = (xs !! nPos) : changeItem x (nPos-1) xs
                            | nPos == 0 = oPos : xs
                            | otherwise = x : changeItem (oPos-1) (nPos-1) xs
                        changeNew
                            | oPos == 0 = nPos : xs
                            | nPos == 0 = (xs !! oPos) : changeItem (oPos-1) x xs
                            | otherwise = x : changeItem (oPos-1) (nPos-1) xs

What is wrong with the code? Why can't I declare two where clauses?

share|improve this question
    
Try converting your tabs to spaces in your code (your editor should have support for this if it's a decent editor). Tabs in Haskell often lead to problems like this. You have to have changeNew line up with changeOld, which is a lot easier with spaces. –  bheklilr Jan 14 at 20:40
1  
Others have given you the answer. I thought I'd give you a suggestion: don't indent the guards for changeItem so far. The code is falling off the edge of the world. –  dfeuer Jan 14 at 20:43

2 Answers 2

up vote 10 down vote accepted

The names being defined in the where clause need to line up on the left-hand side, like this

changeItem oPos nPos (x:xs) 
                        | oPos < nPos = changeOld
                        | oPos > nPos = changeNew
                        | otherwise = x : changeItem (oPos-1) (nPos-1) xs
                        where 
                          changeOld
                            | oPos == 0 = (xs !! nPos) : changeItem x (nPos-1) xs
                            | nPos == 0 = oPos : xs
                            | otherwise = x : changeItem (oPos-1) (nPos-1) xs
                          changeNew
                            | oPos == 0 = nPos : xs
                            | nPos == 0 = (xs !! oPos) : changeItem (oPos-1) x xs
                            | otherwise = x : changeItem (oPos-1) (nPos-1) xs

Although a more "usual" Haskell style would move everything to the left, to prevent your code marching off into the bottom right hand corner.

changeItem oPos nPos (x:xs) 
  | oPos < nPos = changeOld
  | oPos > nPos = changeNew
  | otherwise = x : changeItem (oPos-1) (nPos-1) xs
 where 
  changeOld
    | oPos == 0 = (xs !! nPos) : changeItem x (nPos-1) xs
    | nPos == 0 = oPos : xs
    | otherwise = x : changeItem (oPos-1) (nPos-1) xs
  changeNew
    | oPos == 0 = nPos : xs
    | nPos == 0 = (xs !! oPos) : changeItem (oPos-1) x xs
    | otherwise = x : changeItem (oPos-1) (nPos-1) xs
share|improve this answer

Your indentation is wrong. changeNew needs to line up with changeOld rather than with where.

share|improve this answer

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.