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I have a function

f :: Int -> Int -> Int

and I have a list of arbitrary length but for the sake of the example:

[x1,x2,x3]

I need to apply f to the list such that the resulting list looks like this:

[f x1 x1 + f x1 x2 + f x1 x3 , f x2 x1 + f x2 x2 + f x2 x3 , f x3 x1 + f x3 x2 + f x3 x3]

I know that

map f [x1,x2,x3] will give [f x1, f x2, f x3]

but this doesn't seem like much help here. What's the best way to do it?

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Perhaps you're looking for folds? –  larsmans Mar 30 '13 at 10:44
1  
appSum = (sum.) . join . liftM2 –  is7s Mar 30 '13 at 11:37

3 Answers 3

up vote 4 down vote accepted

You could use a list comprehension, to illustrate try the following expression under ghci,

fun f xs = map sum [[ f x y | y <- xs] |  x <- xs]
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2  
foldl1 (+) == sum –  Scott Olson Mar 30 '13 at 10:55
    
please keep in mind that I do not know the length of the list. 3 is just the example –  MinaHany Mar 30 '13 at 10:55
    
should be ok, it was to illustrate –  zurgl Mar 30 '13 at 10:58
    
Mixing map/filter with list comprehensions makes them both seem more complicated imo. fun f xs = [sum [f x y | y <- xs] | x <-xs] seems clearer. –  dave4420 Mar 30 '13 at 11:29
    
map by definition map a function over a list and a list comprehension is just a list then It's not so complicated to associate them together. It start to be tricky when we have nested lc into lc. Here we have two level of imbrication starting at three I agree to say that using list comprehension is not a good choice and a fix is needed. Even if I don't find list comprehension really syntactically elegant and a solution as you provided imo is more elegant but hardest to catch at a first glance –  zurgl Mar 30 '13 at 12:41

A solution without list comprehensions:

Use map twice.

map (\x -> sum $ map (f x) xs) xs
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You can use applicative functors to do it this way :

import Control.Applicative
let l = ["a", "b", "c"]
(++) <$> l <*> l

That will return ["aa","ab","ac","ba","bb","bc","ca","cb","cc"].

To explain a little bit further, (++) <$> l will map the function (++) on every element of l, thus returning [("a"++), ("b"++), ("c"++)]. Then, using <*> will apply all of these functions to all of the elements of l.

See the documentation about applicative functors for more details. http://www.haskell.org/ghc/docs/latest/html/libraries/base/Control-Applicative.html

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1  
That doesn't solve the problem, though. –  J. Abrahamson Mar 30 '13 at 17:54

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