1

I have been scratching my head trying to figure this out. How do I use foldr1 (or any other fold for that matter) in order to get the sum of tuples in a list.

Example:

list = [(1,2), (3,4)]
sum = 10

I've tried foldr1 (\x y -> fst(x) + snd(x) + y) [(1,2),(3,4)] but it doesn't work and I suspect that it has to do with the the types being created while executing the fold not being tuples.

When I run the command described above I get this:

foldr1 (\x y -> fst(x) + snd(x) + y) [(1,2),(3,4)]

• Occurs check: cannot construct the infinite type: a ~ (a, a)
    • In the second argument of ‘(+)’, namely ‘y’
      In the expression: fst (x) + snd (x) + y
      In the first argument of ‘foldr1’, namely
        ‘(\ x y -> fst (x) + snd (x) + y)’
    • Relevant bindings include
        y :: (a, a) (bound at <interactive>:30:12)
        x :: (a, a) (bound at <interactive>:30:10)
        it :: (a, a) (bound at <interactive>:30:1)

What am I doing wrong? Is the fold function not meant for this (I've solved this using sum and map together and it got the right answer)?

4
  • you can not use foldr1, since the first item is a 2-tuple, so then y would be a 2-tuple as well. Feb 10 at 14:25
  • Compare the types of foldr and foldr1: the former takes a function of type a -> b -> b, the latter of type a -> a -> a.
    – chepner
    Feb 10 at 14:33
  • One piece of advice: write type signatures. I know it can be hard when you're starting out, but you'll have to learn it at some point and it can make error messages much easier to understand. In this case if you wrote your summation function under the type [(Int, Int)] -> Int then you wouldn't get that confusing "infinite type" error message.
    – Noughtmare
    Feb 10 at 14:36
  • nit: In Haskell we usually don't use parentheses with function calls: fst(x) + snd(x) + yfst x + snd x + y
    – cafce25
    Feb 10 at 15:37

2 Answers 2

5

you can not use foldr1, since the first item is a 2-tuple, so then y would be a 2-tuple as well.

You can use foldr instead:

foldr (\x y -> fst(x) + snd(x) + y) 0 [(1,2),(3,4)]

or simpler:

foldr (\(x1, x2) y -> x1 + x2 + y) 0 [(1,2),(3,4)]
3

foldr1 :: (a -> a -> a) -> [a] -> a is meant for when the result of the fold is the same type as the elements of the list. Since your result is a number and the list elements are tuples it isn't the right function here. foldr is probably the correct one:

foldr (\x y -> fst(x) + snd(x) + y) 0 [(1,2),(3,4)]

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