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I am trying to find out if one bitmask has at least one of the same bits set as in another bitmask. I couldn't seem to find a bitwise operator that does this, so I came up with this code that works, though I can't say I really like it.

[Flags]
enum TestFlags { a = 1, b = 2, c = 4, d = 8 }

static void Main(string[] args)
{
    TestFlags
        bm1 = TestFlags.a | TestFlags.d,
        bm2 = TestFlags.b | TestFlags.c | TestFlags.d;

    var SetFlags = Enum.GetValues(typeof(TestFlags))
        .Cast<TestFlags>()
        .Where(v => bm1.HasFlag(v));

    foreach (var e in SetFlags.Where(f => bm2.HasFlag(f)))
    {
        Console.WriteLine(e.ToString());
    }
}

Is there any more elegant way to perform this check?

share|improve this question
up vote 1 down vote accepted

Sure, just use the bitwise-AND operator (&):

var bm3 = bm1 & bm2; // TestFlags.d

This will return a new value which has a flag set for every bit that was set in both bm1 and bm2.

And if you want to see if any bits are set in this new value, you can just compare it to 0:

Console.WriteLine(bm3 != 0); // True
share|improve this answer
    
This solution was so simple that I am ashamed of myself. Maybe if I had a better understanding of the mechanics behind bitwise operations, I would have known the answer. – oscilatingcretin Aug 1 '14 at 19:58

Use the and operator and compare the result to zero, for example:

(bm1 & bm2) != 0

If it's true, then they have at least 1 bit in common.

share|improve this answer
    
Does that work if they both have the most significant bit set? – harold Aug 1 '14 at 20:58
    
@harold Nice catch, I've changed my answer to != instead of >. That should do the trick :-) – Cobra_Fast Aug 1 '14 at 22:02

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