2

I get the wrong result from my code.

I want to check if the elements from the first argument list appears in the second argument list, and I used the code from this quiestion Check, if list is a sublist of another list but i don't get the desired result.

del :: Eq t => [t] -> [t] -> Bool
del [] [] = True 
del _ []  = False 
del [] _  = True
del (x:xs) (y:ys)
    | x == y    = del xs ys
    | otherwise = del (x:xs) ys
del [2,3] [3,3,1]  -- should return False, which it does, but 
del "cbbbc" "bca"  -- should return True, but instead it returns False

and I don't understand why?

  • 1
    May I congratulate you for an excellently written question, well done! – Micha Wiedenmann Nov 8 '19 at 16:32
3

"cbbbc" is not a sublist of "bca", meaning the list "cbbbc" doesn't appear inside "bca", like, for instance, "ca" does. Your problem is a different one. Here's a working code, in O(n) time complexity:

del :: Eq a => [a] -> [a] -> Bool
del xs ys = all (`elem` ys) xs

It means: return True if (and only if), for every x in xs, x is element of ys.

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2

You are removing y too soon; just because x /= y doesn't mean x == z won't be true for some other value z in ys. This is much easier to implement (with elem) if you don't need to remove y at all. If you do, you'll have to do a little more work to remove the correct element from ys when you do find a match. (For instance, should del [1, 1] [1] return True, or False because 1 doesn't appear twice in the second list?)

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  • Directly translated i'm trying to "check if each element that occurs in the first list, also occurs in the second list", the way i understand it del [1,1] [1] should return True. – Amalie Mampenda Lerøy Jobarteh Nov 8 '19 at 14:41
  • Ok, then elem (or your own implementation of it) is the way to go. The other answer provides one possible solution. – chepner Nov 8 '19 at 14:44

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