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I can't seem to Google it - doesn't appear to like the syntax in the search string. Thank you for the help.

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7 answers within a minute ;) -- anyway it's worth mentioning that x |= y is not exactly the same as x = x | y, in that side effects etc. distinguish the two in certain cases, but the concept is still there. –  Servy Mar 7 '12 at 22:03
    
Basically a duplicate of stackoverflow.com/questions/9021049/operator-for-a-boolean-in-c/… –  Chris Shain Mar 7 '12 at 22:03
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@ChrisShain it's a bit different because C# and C++ have different semantics for the expansion of a |= IIRC. –  JaredPar Mar 7 '12 at 22:04
    
@JaredPar true, I always forget the limiting of side-effects diff. –  Chris Shain Mar 7 '12 at 22:05
    
I also think you can override it in C++, but not in C#, if memory serves. –  Servy Mar 7 '12 at 22:06
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8 Answers 8

up vote 12 down vote accepted

This is a bit wise assignment. It's roughly shorthand for the following

x |= y;
x = x | y;

Note: It's not truly the above because the C# spec guarantees the side effects of x only occur once. So if x is a complex expression there is a bit of fun code generated by the compiler to ensure that the side effects only happen once.

Method().x |= y;
Method().x = Method().x | y;  // Not equivalent

var temp = Method();
temp.x = temp.x | y;  // Pretty close
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if the left side is a property, the getter is also only ever called once, which is the same principle (since a property basically is a get method). –  Servy Mar 7 '12 at 22:05
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@Servy even more fun to consider: (await x).SomeMethod().y |= z; Or my personal favorite (await x)[await y].z += await a; –  JaredPar Mar 7 '12 at 22:06
    
@JarredPar That's where I draw the line and slap the developer that writes such a line. As funny as it is, it deserves to be on more than one line. –  Servy Mar 7 '12 at 22:09
    
@JarredPar wow, your edit is far more scary; the first one I could at least wrap my head around. +1 for the lols. Is that an addition += or an event subscribing +=? –  Servy Mar 7 '12 at 22:10
    
@Servy unfortunately as a compiler developer I can't stop the guy who writes that kind of code. You have to make sure the terrible code functions correctly –  JaredPar Mar 7 '12 at 22:10
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The expression a |= b is equivalent to the assignment a = a | b, where | is the bitwise OR operator.*

* Not entirely, but close enough for most purposes.

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It's not exactly equivalent because the C# compiler guarantees the side effects of a only happen once in the |= case –  JaredPar Mar 7 '12 at 22:16
    
@JaredPar: Okay :) But if you take a and b as expressions and not code, then yes, it is true. –  minitech Mar 7 '12 at 22:18
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It's like +=, but with the binary OR

int x = 5;
x |= 6;  // x is now 7: 5 | 6

You can also do others like &=, /=, *=, etc. Pretty much any binary (two argument) operator

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In C and other languages following C syntax conventions, such as C++, Perl, Java and C#, (a | b) denotes a bitwise or; whilst a double vertical bar (a || b) denotes a (short-circuited) logical or.

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Can you give an example with psuedo-code explanation? –  Khan Mar 7 '12 at 22:00
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this is not a bitwise or but a bitwise or with assignment back to the left hand side storage location –  Rune FS Mar 7 '12 at 22:03
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a |= b is semantically the same as a = a | b

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|= is a bitwise OR assignment operator. Check out the msdn documentation here http://msdn.microsoft.com/en-us/library/h5f1zzaw(v=vs.100).aspx

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+1 for the link, -1 for a description that is misleading. | is a bitwise OR operator, |= is a bitwise OR operator combined with an assignment. –  Hounshell Mar 7 '12 at 22:02
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you gonna find the answer here on msdn

x |= y

is the same as

x = x | y
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