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So using GHCI, these statements are equivalent which makes sense to me because the list expression in end0 is syntactic sugar for the list expression in end1:

let end0 [x,y,z] = z

let end1 (x:y:z:[]) = z

But taking the parens out of the pattern of end1 gives me an "Parse error in pattern" error. So why is that? Do the parens have special meaning in a pattern match or is it a precedence issue like I normally think of when I use parens with operators?

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4  
Note: That's not specific to GHCi. –  delnan Dec 13 '10 at 20:31
    
Ah, should I remove the GHCI tag and make it Haskell only? I guess to me its still related because I normally use these constructs in GHCI. –  spade78 Dec 13 '10 at 20:33
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You do not normally do pattern-matching outside of GHCi? Because this is true of any match that involves a constructor. –  Chuck Dec 13 '10 at 21:23
    
No, its just I thought about this question when I was in GHCi so originally I thought my problems were GHCI specific, until corrected by the first comment. –  spade78 Dec 14 '10 at 0:45

2 Answers 2

up vote 6 down vote accepted

It has to do with precedence.

A function takes precedence over :, so GHC would infer that you are defining the function for x only. That's why you have to pack it all inside parens.

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Function application takes precedence over everything –  luqui Dec 13 '10 at 21:29
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Well, except record update... people generally pretend that isn't true though. –  luqui Dec 13 '10 at 21:30
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From The Gentle Introduction To Haskell: "Function application has higher precedence than any infix operator". cs.auckland.ac.nz/references/haskell/haskell-intro-html/… –  Raphael Montanaro Dec 13 '10 at 22:08

Because without the parens, it's parsed as let (end1 x):y:z:[] = z.

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