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Given a list like:

let list = [1,2,3,4,5,6,7,8,9,10]

I am trying to come up with a way to detect if 7,8,9 exists in the list in sequential order and simply printout 'success' if it does and 'fail' otherwise.

I am trying to accomplish this using zip for the index. Can someone advise if I am on the right track or if there is a better way to accomplish this?

zip [0..] list

And then something like:

[if (snd x)== 
             7 && let index = (fst x) 
               && (snd x)==8 && (fst x)==(index+1) 
               && (snd x)==9 && (fst x)==(index+2) 
               then "success" 
               else "fail" | x <- list]

Many thanks in advance!

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4 Answers 4

up vote 8 down vote accepted

When trying to figure out a list algorithm it's usually best to start by thinking about the special case in the list head. In this case, how would you test that the list begins with [7,8,9]?

beginsWith789 :: [Int] -> Bool
beginsWith789 (7:8:9:_) = True
beginsWith789 _         = False

I.e. we can just pattern match to the first three elements. Now to generalize this, if we don't find the subsequence in the list head, we recursively check the tail of the list

contains789 :: [Int] -> Bool
contains789 (7:8:9:_) = True
contains789 (_:xs)    = contains789 xs
contains789 _         = False

Now if we want to further generalize this to find any subsequence, we can use the isPrefixOf function from Data.List:

import Data.List (isPrefixOf)

contains :: Eq a => [a] -> [a] -> Bool
contains sub lst | sub `isPrefixOf` lst = True
contains (_:xs)  = contains sub xs
contains _       = False

We can tidy this up by using any and tails to check if any successively shorter tail of the list begins with the given subsequence:

import Data.List (isPrefixOf, tails)

contains :: Eq a => [a] -> [a] -> Bool
contains sub = any (sub `isPrefixOf`) . tails

Or, we can simply use the standard library function isInfixOf. ;)

> import Data.List
> [7,8,9] `isInfixOf` [1,2,3,4,5,6,7,8,9]
True
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I would recommend the isInfixOf function from Data.List. Finding the sequence is as easy as

let hasSequence = [7,8,9] `isInfixOf` list
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2  
As always, Hoogle is great for finding these kinds of utility functions when you aren't sure if they exist. In this case we want a function that takes two lists and returns whether one is a sublist of the other. That type signature would be [a] -> [a] -> Bool, and indeed when we enter that in Hoogle, isInfixOf is at the top of the results. –  Jeff Burka Feb 11 '13 at 15:15

How about this?

elemIndex (7,8,9) $ zip3 list (tail list) (tail (tail list))

elemIndex is from Data.List.

If you don't care about what index it's at, you can use this

elem (7,8,9) $ zip3 list (tail list) (tail (tail list))
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I'm not sure if you also wanted to count the cases where some elements appear in the given order, but with some other elements between them. Seems like the other answers only count the cases where [7, 8, 9] is a sublist of the original. If you want let's say [7,8,9] be found in [7,0,8,0,9,0], you could use

appears :: (Eq a) => [a] -> [a] -> Bool
appears [] _ = True
appears _ [] = False
appears ns@(n : ns') (h : hs')
    | n == h    = appears ns' hs'
    | otherwise = appears ns hs'

Now

appears [7,8,9] [7,0,8,0,9] --> True
appears [7,8,9] [1..10]     -->  True
appears [3,8,9] [1..10]     -->  True
appears [10,8,9] [1..10]    -->  False
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