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how to check if an element is contained within a sequence? I expected some Seq.contains, but i could not find it. Thanks

EDIT: Or, for an easier task, how to make the diff between two sequences? Like, getting all the elements within a list that doesn not belong to another (or that do)?

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For your second question, see here: stackoverflow.com/questions/1158114/f-seq-diff –  Benjol Jul 23 '09 at 6:25

4 Answers 4

Little bit simpler:

let contains x = Seq.exists ((=) x)
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What is that (=) syntax called please? –  ByteBlast Sep 11 at 19:24
1  
It's just an operator, but wrapped in a brackets behaves like a normal function. Operators consist of special characters (like '=') that are not recognized as function name. For example: let z = x + y // is the same like let z = (+) x y –  The_Ghost Sep 15 at 19:32

Seq.exists

let testseq = seq [ 1; 2; 3; 4 ]
let equalsTwo n = (n = 2)
let containsTwo = Seq.exists equalsTwo testseq
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Set is your friend here:

let a = set [0;1;2;3]
let b = set [2;3;4;5]
let c = a - b
let d = b - a
let e = Set.intersect a b
let f = a + b
> 
val c : Set<int> = seq [0; 1]
val d : Set<int> = seq [4; 5]
val e : Set<int> = seq [2; 3]
val f : Set<int> = seq [0; 1; 2; 3; ...]

Danny

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(Another question, another answer.)

This works, but I don't think that it's the most idomatic way to do it - (you'll need to wait until the US wakes up to find out):

let s1 = seq [ 1; 2; 3; 4 ]
let s2 = seq [ 3; 4; 5; 6 ]

seq {
    for a in s1 do
        if not (Seq.exists (fun n -> n = a) s2) then
            yield a
        }
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What you have is an O(nm) algorithm, where n is the length of the first list and m is the length of the second. When n and m are approximately equal to one another, you might as well consider this an O(n^2) algorithm. I think there are much more efficient ways to compute the intersection of a set than this. –  Juliet Jul 21 '09 at 13:19

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