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Write a function that returns the running sum of list. e.g. running [1,2,3,5] is [1,3,6,11]. I write this function below which just can return the final sum of all the values among the list.So how can i separate them one by one?

sumlist' xx=aux xx 0
    where aux [] a=a
          aux (x:xs) a=aux xs (a+x)
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up vote 8 down vote accepted

You can adjust your function to produce a list by simply prepending a+x to the result on each step and using the empty list as the base case:

sumlist' xx = aux xx 0
    where aux [] a = []
          aux (x:xs) a = (a+x) : aux xs (a+x)

However it is more idiomatic Haskell to express this kind of thing as a fold or scan.

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I think you want a combination of scanl1 and (+), so something like

scanl1 (+) *your list here*

scanl1 will apply the given function across a list, and report each intermediate value into the returned list.

Like, to write it out in pseudo code,

scanl1 (+) [1,2,3]

would output a list like:

[1, 1 + 2, 1 + 2 + 3]

or in other words,

[1, 3, 6]

Learn You A Haskell has a lot of great examples and descriptions of scans, folds, and much more of Haskell's goodies.

Hope this helps.

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While scanl1 is clearly the "canonical" solution, it is still instructive to see how you could do it with foldl:

sumList xs = tail.reverse $ foldl acc [0] xs where 
  acc (y:ys) x = (x+y):y:ys

Or pointfree:

sumList = tail.reverse.foldl acc [0] where 
  acc (y:ys) x = (x+y):y:ys

Here is an ugly brute force approach:

sumList xs = reverse $ acc $ reverse xs where
  acc [] = []
  acc (x:xs) = (x + sum xs) : acc xs

There is a cute (but not very performant) solution using inits:

sumList xs = tail $ map sum $ inits xs

Again pointfree:

sumList = tail.map sum.inits
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@sepp2k: How do you get the sum of the elements coming left if you start at the right side of the list? – Landei Jan 19 '11 at 8:21
    
@Lamdei: Sorry, I wasn't thinking right. However not being lazy is still a good reason not to use foldl (or your brute force approach). – sepp2k Jan 19 '11 at 9:03
1  
Why reverse? sumList = (`snd` []) . foldl (\\(a, k) x -> (a+x, k . (a+x:))) (0, id) works just fine in the forward direction. – ephemient Jan 19 '11 at 16:36
1  
@ephemient: That's cool, I didn't think of that, but probably too complicated for a beginner. – Landei Jan 19 '11 at 21:15

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