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Im writing a Haskell function called myElems

that takes two lists of values and returns true if all the values in the first list are in the second list. E.g., myElems "db" "abcd" should return true whereas myElems [1,2] [0,1,3,4] should return false.

myElem function is like this

myElem n [] = False
myElem n (x:xs) = if n == x then True else myElem n xs

this function works just fine but when I try to apply it to myElems function which has this form

myElems xs [] = False
myElems [] ys = False
myElems (x:xs) (y:ys) = if myElem y xs /= myElem x ys then False else myElems (tail xs) (tail ys)

it doesn't work at all.

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Why the downvotes? –  drozzy Feb 12 '13 at 3:49
3  
It's a trivial homework problem, and while the OP posted his attempt to solve it, he clearly didn't spend any time thinking about why it didn't work. Check out his second line: myElems [] ys = False. He would have caught the blatant logic error if he'd put thought into it; before even getting to the nonsense in the third line. –  Quuxplusone Feb 12 '13 at 4:20

2 Answers 2

up vote 2 down vote accepted

You mean

myElems [] ys = True
myElems (x:xs) ys = if myElem x ys then myElems xs ys else False
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This works! Thank you for your help –  user2020331 Feb 12 '13 at 4:09
2  
@Quuxplusone - your diagnosis was correct, but then you give the "Don't bother to think, SO users will be glad to do your homework" medicine? Instead of, for example, asking: if myElem [] xs is False, what is the element in the first list that is not in the second list? –  Ingo Feb 12 '13 at 9:38

I know it's not the exact answer, but how about what Learn You Haskell book recommends:

import qualified Data.Set as Set  
Set.fromList [2,3,4] `Set.isSubsetOf` Set.fromList [1,2,3,4,5]
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