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Is it standard-conforming to use expressions like

int i = 1;
+-+-+i;

and how the sign of i variable is determined?

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Why dont you check it yourself? –  LeeNeverGup Oct 18 '12 at 17:53
    
@LeeNeverGup what do you mean by checking? –  Luchian Grigore Oct 18 '12 at 17:54
    
Compiler might even optimize out that line: +-+-+i; –  Blue Moon Oct 18 '12 at 17:54
    
@LeeNeverGup: As C++ has a bad habit of reminding us, just because you can doesn't mean it's legal. However, in this case, yes. The sign would be determined the way you'd expect. –  Wug Oct 18 '12 at 17:57
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As far as the language standard is concerned, yes, it's conforming. For the coding standard, the answer should be "Hell, no!". –  Daniel Fischer Oct 18 '12 at 18:17

3 Answers 3

Yes it is. Unary + and - associate right-to-left, so the expression is parsed as

+(-(+(-(+i))));

Which results in 1.

Note that these can be overloaded, so for a user-defined type the answer may differ.

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Turns out it doesn't matter what order they're parsed in because unary negation and positivization are associative for integral types. –  Wug Oct 18 '12 at 17:55
    
@Wug in this case, no. It will probably even be optmized out completely. –  Luchian Grigore Oct 18 '12 at 17:56
2  
What if they were left-associative? Would it be ((((+-)+)-)+)i? That's nonsense; i'd not call them right-associative, or in any way associative at all. –  anatolyg Oct 18 '12 at 17:57
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@anatolyg what if the world was flat? They are right-associative whether you like it or not. –  Luchian Grigore Oct 18 '12 at 17:58
    
Left/right associativity is a property you can assign to binary operators. It makes no sense for unary ones. –  avakar Oct 18 '12 at 18:11

Your operators has no side effect, +i do nothing with int itself and you do not use the temporary generated value but remove + that do nothing and you have -(-i) witch is equal to i itself.(removing + in the code will convert the operator, I mean remove it in computation because it has no effect)

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If you remove the +, you're left with --i, which is a whole different story. –  Luchian Grigore Oct 18 '12 at 17:57
    
@LuchianGrigore Please read again my answer I already addressed this in end of my answer –  BigBoss Oct 18 '12 at 18:00
    
You mean "removing + in the code will convert the operator, I mean remove it in computation because it has no effect"? Yeah... I don't understand that, but if this is what you meant, then ok... –  Luchian Grigore Oct 18 '12 at 18:02

i isn't modified (C: without intervening sequence points|C++: in an unsequenced manner) so it's legal. You're just creating a new temporary with each operator.

The unary + doesn't even do anything, so all you have is two negations which just give 1 for that expression. The variable i itself is never changed.

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