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Quick question, what is wrong with this?

(get) :: [a] -> Int -> a   -- <- line 21
(x:xs) get 0 = x
(x:xs) get (n+1) = xs get n

ghci gives this error when I try to load the file that contains that code.

Prelude> :load ch6.hs 
[1 of 1] Compiling Main             ( ch6.hs, interpreted )

ch6.hs:21:0: Invalid type signature
Failed, modules loaded: none.

I'm trying to make get an infix operator.

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2 Answers 2

up vote 11 down vote accepted

You shouldn't have parentheses around get, to start with. The syntax for the whole definition looks a bit off, though. I'm guessing you wanted something like this:

get :: [a] -> Int -> a
get (x:xs) 0 = x
get (x:xs) (n+1) = xs `get` n

Note the backticks around get in order to use it infix, which is necessary here because the rules for an alphanumeric identifier are different from operators: Operators are made of symbols, are are infix by default, and to write them without arguments or use them prefix, you put them in parentheses. Alphanumeric identifiers are prefix by default, and surrounding them with backticks lets you use them infix.

You can use the backticks on the left-hand side as well, if you want, but that looks a bit odd to my eye:

(x:xs) `get` 0 = x
(x:xs) `get` (n+1) = xs `get` n

Incidentally, the pattern syntax n+1 is deprecated, so you probably shouldn't use that. Instead, do this:

(x:xs) `get` n = xs `get` (n - 1)
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I'm working off prelude. Check the source for &&. –  Kevin Dec 30 '11 at 5:31
2  
@Kevin: That's how it works for operators, i.e. identifiers made of symbols. The syntax is different for alphanumeric identifiers. –  C. A. McCann Dec 30 '11 at 5:35
2  
Not only deprecated: it doesn't work in stock GHC any more (and is not in Haskell 2010). –  ehird Dec 30 '11 at 5:39
1  
@ehird: "It doesn't work anymore" is simply the point at which an aggressive deprecation metastasizes. :] –  C. A. McCann Dec 30 '11 at 5:43
1  
@ehird Already updated in HEAD, seems it was forgotten to merge the change into the 7.2 branch. –  Daniel Fischer Dec 30 '11 at 15:28

Just because you put it in parenthesis doesn't make it an infix function. Infix functions can only be made via symbols or backticks. See the Haskell report for specifics.

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