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For Project Euler Question #1, the shortest one-liner in GHCI is:

sum [3,6..9999] + sum [5,10..9999] - sum [15,30..9999]

I found this after I solved the problem is a much bloody way. However, since I am new to Haskell, I decide to see if I could take this and put it together as a set of function returning similar answer to any value of x (step value, i.e. '3' or '5' above] and y (length of the list).

I have the first function done here:

sumList :: (Enum a, Num a) => a -> a -> a
sumList a b = sum[a,a+a..b]

Next I was trying to take this function and do something such as sumListTotals [3,5] 1000 for example from the question. This would all sumList for each item in the list then one subtract the duplicate numbers (i.e. [15,30..1000] using the example.

I am not looking for someone to actually solve it but to help me in pointing me in the proper direction.

I was attempting to use the map function something like below:

sumListTotals list = map f list
    where f = sumlist a b

But, I am unsure how to pull out the stuff from the list or if I do something like sumListTotals ([3,5],1000) or am I completely on the wrong track here?

Update per @user5402:

module Project1 where

import Data.List (union)

sumListTotals :: (Enum a, Eq a, Num a) => a -> a -> a -> a
sumListTotals a b c = sum $ union [a,(*2)a..c] [b,(*2)b..c]
share|improve this question
For an algorithmic solution, have a look at Data.List.union –  user5402 Apr 25 '13 at 2:04
Um...that's a cool function. =) .. I'll post something soon since I finally have some free time. –  flamusdiu Apr 26 '13 at 21:25
I think using union is a more clean/clearer solution then using the where clause. Though, I am not sure how to read the type sig of the function. I cheated and used ghci with :t to generate the sig. :P –  flamusdiu Apr 26 '13 at 21:52
You'll understand the Enum ..., Eq ... and Num ... notation once you get around to type classes. Alternatively for the type signature of sumListTotals you could have just used Int -> Int -> Int -> Int. It's not as general, but it's also easier to figure out. –  user5402 Apr 27 '13 at 4:47
I knew about the "a" could be also "Int" =) –  flamusdiu Apr 29 '13 at 1:06

1 Answer 1

up vote 1 down vote accepted

You're on the right track:

sumListTotals a b c = sum [a,a+a..c] + sum [b,b+b..c] - sum[m,m+m..c]
  where m = ...???...

I'll leave you to figure out the definition of m since that's really a number theory problem and not a Haskell programming problem.

Clearly for a = 3, b = 5 m should be 15. But what should m be for a = 3, b = 3?

share|improve this answer
I completely didn't realize you could the where clause like this. :P –  flamusdiu Apr 26 '13 at 21:26
I am going to accept this answer since this will work but for those looking at this solution: user5402's comment about using Data.List.union works much better in this solution. –  flamusdiu Apr 26 '13 at 21:57
Note that union takes quadratic time in the length of one of its arguments and so is not the most efficient way to implement this idea. Since both lists are sorted and don't contain duplicates, you just have to merge them which only takes linear time. You might try writing merge :: [Int] -> [Int] -> [Int] where you assume the input lists are already sorted. –  user5402 Apr 27 '13 at 4:55

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