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I am new to Haskell. I am trying to write a program which given a list as an input replicates each element of list k times, where k = position of element in list.

e.g. replic[5,6,7] gives [[5],[6,6],[7,7,7]].

Another condition is solution has to use map function.

Till now code I have written is :

replic [] = [] 
replic (x:xs) =  map (replicate 2 ) [x] ++ replic xs 

This replicates every element twice as replicate has input parameter 2.

What I need is replicate function should be given input as 1 ,2 ,3 in consecutive calls. So I need a counter. How can I use the counter there or do anything else that will give me position of element?

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3 Answers

up vote 6 down vote accepted

Expanding on Satvik, the notation

[1..]

gives you an infinite list of numbers counting up.

The function zip associates allows you to merge two lists into a list of tuples

zip :: [a] -> [b] -> [(a,b)]

for example

> zip [1..] [5,6,7] 
[(1,5),(2,6),(3,7)]

this code associates each value in the list with its position in the list

now

replicate :: Int -> a -> [a]

repeats a value an arbitrary number of times. Given these two components, we can design a simple function

replic xs = map (\(a,b) -> replicate a b) (zip [1..] xs)

which I would write pointfree as

replic :: [a] -> [[a]]
replic = map (uncurry replicate) . zip [1..]

this does exactly what you want

> replic [5,6,7]
[[5],[6,6],[7,7,7]]
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8  
Or, replic = zipWith replicate [1..] –  hammar Oct 31 '12 at 5:12
    
Thanks a lot @PhilipJF. –  Amol Patil Oct 31 '12 at 5:36
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There are many ways of doing this

Here is a solution similar to what you tried to do. zipping the list with list [1..] gives you the counter you wanted.

replic = repl . zip [1..]

repl [] = []
repl ((x,y):xs)  = (replicate x y) : (repl xs)

Another solution using just map

replic = map f . zip [1..]
    where
        f (c,l) = replicate c l

If you don't like idea of using zip you can also use mapAccumL

import Data.List

replic = snd . mapAccumL f 1
    where
        f a v = (a+1,replicate a v)
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@AmolPatil See the improved solution –  Satvik Oct 31 '12 at 5:07
    
Thanks a lot @satvik –  Amol Patil Oct 31 '12 at 5:36
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Usually you would write:

replic = zipWith replicate [1..]

Now you can write your own zipWith yourself using map:

zipWith' f xs ys = map (uncurry f) $ zip xs ys

Note that you don't necessarily need an index, e.g.

import Data.List

replic xs = reverse $ transpose (tail $ inits $ reverse xs)

You can do something like this with map when using explicit recursion:

replic = f . map return where
  f [] = []
  f (x:xs) = x : f (map (\(x:xs) -> x:x:xs) xs)
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