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I've been converting some Java code to C# and ran into a little pickle. All the documentation on MSDN suggests that all bitwise operations return the type that is being operated on. See: and but what ever I do my intellisense keeps telling me that you "Cannot implicitly convert type 'long' to 'int'." The following line is the one with the issue and to me, all the literals in there look like they evaluate to int's and all the operated types are either int's or uint's. What am I missing? I don't even declare any long variables in my file and all the variables below are of type int. The casting to uint is to preserve the unsigned bit-shift operator of java (>>>)

int t1 = ((s13 << 96 - 66) | ((uint)s12 >> 66 - 64)) ^ ((s13 << 96 - 93) | ((uint)s12 >> 93 - 64));
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1 Answer 1

up vote 3 down vote accepted

When uint is operated with int the result is long. naturally.

int t1 = (int)((((uint)s13 << 96 - 66) | ((uint)s12 >> 66 - 64)) ^ (((uint)s13 << 96 - 93) | ((uint)s12 >> 93 - 64)));

Note: c# compiler is smart and can deal with constants. so (uint)s | 1 is uint because it can determine that statically.

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Exactly which part of the expression causes the promotion to long? –  user166390 Oct 27 '12 at 3:41
This part does: ((s13 << 96 - 66) | ((uint)s12 >> 66 - 64)) –  Michael Sallmen Oct 27 '12 at 3:41
So then int | uint -> long? (It's more subtle than that though, it seems. Using int literals changes the behavior.) –  user166390 Oct 27 '12 at 3:43
uint | 1 -> uint. So confusing C# compiler! –  user166390 Oct 27 '12 at 3:45
Coming back to this the behaviour is actually expected an not confusing. When you have a positive int literal that is too large for an int but would fit in a uint, it will automatically take that literal and make it a uint. However if you add a int and a uint, to maintain the signed nature of the int, the compiler takes the next largest signed type, which is a long. This way it maintains the signed-ness of the int, and knows that it can fit the uint! –  jduncanator Apr 4 '13 at 1:59

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