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Having the follow code -

    enum FileOpenFlags {
    flagREAD = 1, flagWRITE = 2,
    flagCREATE = 4, flagEND = 8,
    flagAPPEND = flagWRITE | flagEND,
    };
    cout << flagAPPEND << endl;

gives 10 . can you explain me what the | did ?

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Yes, I can. But I won't as you should have read a C(++) tutorial instead of bugging me with this. –  user529758 Aug 28 '12 at 18:15
    
Those flag prefixes can be easily avoided with scoped enums in C++11. –  chris Aug 28 '12 at 18:15
1  
@H2CO3 all my google searches gave results about another meaning of "pipe" , sorry about bugging you . –  URL87 Aug 28 '12 at 18:33
    
That's because it's not a pipe. It's an inclusive or operator. –  Pete Becker Aug 28 '12 at 20:04
    
@PeteBecker, but some will know it as a pipe character. I can easily see where the confusion comes from, and I'm glad to have a place on StackOverflow for Google to find it. –  Mark Ransom Aug 30 '12 at 14:09

4 Answers 4

up vote 5 down vote accepted

It did a bitwise or of the two values.

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flagWRITE's (2) binary representation is 0010

flagEND's (8) binary representation is 1000

0010 OR 1000 gives you 1010 which equals 10

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It's called Bitwise OR........

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It's a bitwise "OR" operator. So the bit value of 2 and 8 respectively get OR'd bitwise.

So:

   1000 (flagEND = 8) 
OR 0010 (flagWRITE = 2)
-----------
 = 1010 (flagAppend = 10)
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