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The following C++ is invalid because reference variables require initializers:

int& a; // illegal
if (isfive) {
  a = 5;
} else {
  a = 4;
}

However, MSVC seems to think this is okay:

int& a = isfive ? 5 : 4;

This implies to me that MSVC is actually treating the conditional operator like a single expression and not expanding it into an if-else statement.

Is it always valid C++ to initialize a reference using the conditional operator?

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I'm curious what happens if you try to compare it on an assembly level... – beta0x64 Feb 8 '12 at 19:31
3  
How can you compare on an assemly level code that compiles and code that doesn't? – Michael Krelin - hacker Feb 8 '12 at 19:32
1  
@MichaelKrelin: Unfortunately in Visual C++ this illegal code is accepted. (The second form). – Ben Voigt Feb 8 '12 at 19:33
3  
@MichaelKrelin: So what we really have is code that doesn't compile and more code that doesn't compile, and I agree it's really hard to compare the assembly :) – Ben Voigt Feb 8 '12 at 19:37
1  
@krynr, you mean the second? References temporary, I think. I wonder how short-lived... I actually don't think the OP meant two constants, anyway, he was probably talking about conditionals and came up with unfortunate example. – Michael Krelin - hacker Feb 8 '12 at 19:37
up vote 5 down vote accepted

MSVC has a non-standard "extension". What it means is that it allows broken code. There's a good reason this is prohibited.

Note also that

int& a = 5;

is not legal in Standard C++ either.

In general, though, it is legal to initialize a const reference with any expression which can be converted to the right type (including use of the conditional operator). And it is legal to initialize a non-const reference with an lvalue of the right type, which the conditional operator yields under certain conditions.

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Well what do you know, asking this question solved a problem I didn't even know I had. Thanks! – Kai Feb 8 '12 at 19:43

The conditional operator is an expression, not a statement. It is perfectly fine to initialise a reference like that. It's a little like initialising a reference by calling a function.

Note that your reference needs to be const if you bind it to temporaries (a rule which MSVC++ stupidly ignores).

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It is prefectly fine to initialise a reference like that only if we ignore the fact that you cannot bind a non-const reference to an rvalue... (i.e. const int& r = isfive? 4 : 5; is fine, but int& r = isfive? 4 : 5; is not) – David Rodríguez - dribeas Feb 8 '12 at 19:34
    
@DavidRodríguez-dribeas yeah, I added a note about that a while ago. – Seth Carnegie Feb 8 '12 at 19:35

The ternary operator does not expand to an if-else construct (not according to the language, the implementation might generate equivalent binaries, but at the language level they are different). So the following code is valid:

int four = 4, five = 5;
int& r = condition? four : five;

The original example in the question depends on a Microsoft extension that (incorrectly) allows binding a non-const reference to an rvalue expression.

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The code you posted does not compile with VC++ 2010:

Error 1 error C2440: 'initializing' : cannot convert from 'int' to 'int &'

Changing the line to:

const int& a = isfive ? 5 : 4; 

makes it compile.

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I assume you are using the /Za (disable language extensions) option? – Ben Voigt Feb 8 '12 at 19:35
    
@BenVoigt: Nope. It seems that the issue is fixed: technet.microsoft.com/en-us/query/szywdw8k – Nemanja Trifunovic Feb 8 '12 at 20:48
    
I wonder what that's doing on TechNet instead of MSDN. There are still some related bugs, but glad to see the most typical case is fixed. – Ben Voigt Feb 8 '12 at 21:33

it is not OK

int& a = isfive ? 5 : 4;

unless you declare the reference "a" as a const.

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It is operator, part of the expression, not a statement. And you can't leave reference uninitialized even for a short while ;-)

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