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I have a list [a,b,c,d,e] and an initial value u (obviously a,b,c,d,e represent values). I want to apply a function to e and u, let's say f(e,u). I then want to apply the function f(d, f(e, u)) and then f(c, f(d, f(e, u))) etc. I have looked at "iterate", but I cannot work out how to apply iterate to each element in a list.

My list:

a = take 101 (0 : concat [[(1%1),(2*k%1),(1%1)] | k <- [1..40]])

How would I go about implementing this in Haskell?

Thanks, Sam.

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Could you clarify your question a bit? I think map or fold might help here... –  C-Otto Jan 24 '13 at 22:27
    
I will sit down tomorrow night and attempt to clarify my question for future readers. Unfortunately I had trouble wording it when I wrote it. –  Sam Jan 24 '13 at 22:47
1  
Computing e are we? :-) –  luqui Jan 25 '13 at 21:37
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4 Answers

up vote 3 down vote accepted

The function you describe is called a "fold", in this case a "right fold" because it is applied from right to left. It is implemented in the Prelude as the foldr function.

For instance, if we take the function (++) that concatenates two strings, and apply it to an initial element and list of strings:

Prelude> foldr (++) "u" ["a", "b", "c", "d", "e"]
"abcdeu"
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foldr doesn't work from right to left, it's *r*ight-associative fold –  Matvey Aksenov Jan 24 '13 at 22:28
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Thanks, this is exactly what I was looking for! Haskell's functionality continues to amaze me. –  Sam Jan 24 '13 at 22:48
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You want foldr :: (a -> b -> b) -> b -> [a] -> b. Which is the general fold of the list data structure. Think of it as replacing all the (:) and [] constructors in the list by the two supplied arguments.

For example, if we were to sum the numbers of the list [1, 2, 3], constructed as 1 : (2 : (3 : [])), we could find a replacement of the (:) and [], like + and 0, i.e. 1 + (2 + (3 + 0)). We could thus implement sum :: Num a => [a] -> a as foldr (+) 0.

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Good job, you've discovered foldr on your own! (I hope that doesn't sound mocking or anything, it's not meant that way; most people find folds unnatural and have to think really hard to understand it!)

The way I would suggest you handle these situations is to try writing the function you want on your own, and figuring out the type, and then searching for that type in Hoogle to see if there already exists such a function.

In this case, you could try writing your function this way. We'll call it foo:

-- If we see an empty list the result should be u
foo u f [] = u
-- If we're given a a non-empty list we recurse down the list to get a partial 
-- result, then "add on" to it:
foo u f (x:xs) = f x (foo u f xs)

Once you define this function, you can load it into ghci and use its :t command to find its type:

*Main> :load "../src/scratch.hs"
[1 of 1] Compiling Main             ( ../src/scratch.hs, interpreted )
Ok, modules loaded: Main.
*Main> :t foo
foo :: t1 -> (t -> t1 -> t1) -> [t] -> t1

Now we can search Hoogle for the type t1 -> (t -> t1 -> t1) -> [t] -> t1. The top result is foldr, which has the type (a -> b -> b) -> b -> [a] -> b—the same as foo but with the variables renamed and the argument order flipped. The search result also tells us that the function is in the Prelude module—the module that's loaded by default by Haskell. You can click on the result to find its definition in the documentation, which describes it with this equation:

foldr f z [x1, x2, ..., xn] == x1 `f` (x2 `f` ... (xn `f` z)...)

They're using the f function as an infix operator, which I hope doesn't confuse you, but just in case we can rewrite this to:

foldr f z [x1, x2, ..., xn] == f x1 (f x2 ... (f xn z) ...)

Which is exactly the behavior you want.


Why did I make such a big deal out of foldr above? Because foldr is actually the most fundamental function for taking lists apart. Look at the type this way:

foldr :: (a -> b -> b)  -- ^ What to do with a list node
      -> b              -- ^ What to do with the empty list
      -> [a]            -- ^ A list
      -> b              -- ^ The final result of "taking the list apart."

It turns out that a lot of list functions can be written easily in terms of foldr:

map f = foldr step []
    where step x rest = (f x):rest

-- | Append two lists
xs (++) ys = foldr (:) ys xs

-- | Filter a list, keeping only elements that satisfy the predicate.
filter pred = foldr step []
    where step x rest | pred x    = x:rest
                      | otherwise = rest

-- | Find the first element of a list that satisfies the predicate.
find pred = foldr step Nothing
    where step x r | pred x    = Just x
                   | otherwise = r
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Right fold looks good.

foo :: (a -> b -> b) -> b -> [a] -> b
foo f u xs = foldr (\x acc -> f x acc) u xs

I find that when learning a language one often can have the question "Is there an easier way to do this?" The answer is almost always yes.

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\x acc -> f x acc is the same as simply f. (I can understand why you would expand for demonstrative purposes, though) –  luqui Jan 25 '13 at 6:25
    
The same reason I put in xs :) –  fosskers Jan 25 '13 at 9:32
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