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I am trying to write a function to compute the inner product of 2 lists, i.e. if the lists are [1,2,3] and [4,5,6] then the inner product would be (1 x 4) + (2 x 5) + (3 x 6) = 4 + 10 + 18 = 32.

So I thought to use zipWith to obtain the products, and then foldl to sum them with addition. So zipWith should produce [4, 10, 18] and then the foldl should sum it to 32.

So I have written:

innerprod [] [] = 0
innerprod x y = foldl (+) 0 (zipWith (*) x y)

Everything compiles but when I run in ghci:

Prelude ListFuncs> innerprod [1,2,3] [4,5,6]

<interactive>:3:1:
     No instance for (Num
                       ([c0] -> (a0 -> b0 -> a0) -> a0 -> [b0] -> a0))
      arising from a use of `innerprod'
     Possible fix:
      add an instance declaration for
      (Num ([c0] -> (a0 -> b0 -> a0) -> a0 -> [b0] -> a0))
     In the expression: innerprod [1, 2, 3] [4, 5, 6]
     In an equation for `it': it = innerprod [1, 2, 3] [4, 5, 6]

I tried making the code like this due to the error message, but it returns a different error at compile time:

innerprod :: Num [Int] => (Int -> Int -> Int) -> Int -> [Int] -> Int
innerprod [] [] = 0
innerprod x y = foldl + 0 (zipWith (*) x y)

Does anyone know what is wrong? I would have though the signature would be innerprod :: [Int] -> [Int] -> Int since it takes 2 int lists and returns an int. But that does not work either. Thank you for your time. Please let me know if I should not have asked this question here.

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closed as off-topic by user2407038, amalloy, Rüdiger Hanke, David Miani, Ganesh Sittampalam Jun 13 at 6:40

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "This question was caused by a problem that can no longer be reproduced or a simple typographical error. While similar questions may be on-topic here, this one was resolved in a manner unlikely to help future readers. This can often be avoided by identifying and closely inspecting the shortest program necessary to reproduce the problem before posting." – user2407038, amalloy, Rüdiger Hanke, David Miani, Ganesh Sittampalam
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Your first function is correct (works as expected). I cannot reproduce the error. Your second function requires parenthesis around the (+). –  user2407038 Jun 11 at 23:18
1  
BTW, foldl is evil. Always use either its strict equivalent foldl' (you need to import Data.List), or (if you want a lazy fold) foldr. Also note, your base case innerprod [] [] is unnecessary, because both zipWith and foldl' can correctly deal with empty lists. –  leftaroundabout Jun 11 at 23:19
    
@leftaroundabout Thank you for your answer I don't believe the problem was my leaving the parentheses out! –  finsbury Jun 11 at 23:32
    
@user2407038 I am embarassed to say the issue was due to my not parenthesizing foldl correctly! –  finsbury Jun 11 at 23:35
    
Use sum instead of rolling your own summation. Also, the empty lists are not a special case. So innerProd x y = sum $ zipWith (*) x y. –  augustss Jun 12 at 8:26

1 Answer 1

up vote 9 down vote accepted

Num [Int] => (Int -> Int -> Int) -> Int -> [Int] -> Int is a complete bogus signature. It means this: "provided any list of integers can be treated as a single number [??!], I give you a specialised version of a fold". That's no way like what you want an inner product to work, namely Vector -> Vector -> Scalar; in this case Num a => [a] -> [a] -> a. Indeed, with that signature your original definition works flawlessly:

innerProd :: Num a => [a] -> [a] -> a
innerProd x y = foldl' (+) 0 (zipWith (*) x y)

ListFuncs*> innerProd [1,2,3][4,5,6]
32

I think you have not actually tried this one. What you have written was without the parens around +.

               foldl + 0 (zipWith (*) x y)

Now, that is quite another beast. It means, you add the foldl-function to what you get by applying the 0 function to the zip of the lists... another obvious-bogus thing. Remember that infix operators bind different from normal function application, you need to pack them in parens to pass them as a function argument.

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