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I was debugging a program when I came across the following code I had erroneously typed similar to the following:

//Original (wrong)
std::string first("Hello");
std::string second = first + second;

//Instead of this (correct)
std::string first("Hello");
std::string second = first + something_else;

Obviously I wasn't trying to do this (I can't think why anyone would want to do this), but it got me thinking. It doesn't look like the original should work, and I would assume it is undefined. Indeed, this was the source of my problem.

To make the problem more general, consider the following:

SomeType a;
SomeType b = a + b;

Is the behavior undefined simply because b is not yet initialized (see this answer)?

If the behavior is undefined, then my real question is, why?

Is this only undefined for certain standard containers, like std::string, or is this undefined in a more general sense (STL classes, user-defined classes, PODs, fundamental types)?

What part of the standard applies to this?

Assume this is c++11, if necessary.

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possible duplicate of Construct object with itself as reference? –  Bo Persson Apr 28 '12 at 0:43
    
@Bo Persson - I feel that is a very related question (and useful in helping to answer this), but not quite a duplicate. It is asking why this is syntactically allowed, I'm asking in what cases it is UB. Thanks for the reference, though. It helped me understand it in a different way. –  Kaiged May 1 '12 at 15:04

3 Answers 3

up vote 6 down vote accepted

The C++11 standard has this to say about the scope of a newly declared name:

3.3.2 Point of declaration [basic.scope.pdecl]

The point of declaration for a name is immediately after its complete declarator (Clause 8) and before its initializer (if any), except as noted below. [ Example:

int x = 12;
{ int x = x; }

Here the second x is initialized with its own (indeterminate) value. — end example ]

There is similar wording in prior C++ standards.

Off the top of my head, one rationale I can think of is that the name could be used in an initializer expression that takes the address of the object.

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Another rationale is that you can use the name for type deduction, e.g. FunkyComponent c = objectManager.get_component(objectID, c); - although I'm now wondering whether that's actually defined or not. –  Stuart Golodetz Apr 28 '12 at 0:31
    
@StuartGolodetz: It would be much better to pass the address, if type deduction is the goal. But if you just want to avoid typing the typename twice, then auto c = objectManager.get_component<FunkyComponent>(objectID); would be better. –  Ben Voigt Apr 28 '12 at 0:34
    
@BenVoigt: Yes, very true about auto in C++11 :) This was a trick I found myself using a while back (specifically here: github.com/sgolodetz/hesperus2/blob/master/source/engine/core/…) - I guess it's no longer appropriate. That said, why would it be better to pass the address out of interest? –  Stuart Golodetz Apr 28 '12 at 1:28
    
@StuartGolodetz: So you don't make a copy of an uninitialized object. –  Ben Voigt Apr 28 '12 at 3:25
    
@BenVoigt: Ah ok I see what you mean. I was using a const reference parameter when I did this, which also avoids the copy. –  Stuart Golodetz Apr 28 '12 at 8:02

Reading an uninitialized variable can lead to undefined behavior.

The standard says this:

Initializers [dcl.init]

.......

If no initializer is specified for an object, the object is default-initialized; if no initialization is performed, an object with automatic or dynamic storage duration has indeterminate value.

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It does seem self-evident to me in the case of fundamental types, but perhaps I don't understand when it comes to classes, constructors, etc. At what point is the constructor for b called? Is it called when attempting to use the + operator, or after? Or is it just irrelevant because it is undefined? –  Kaiged Apr 28 '12 at 0:13
2  
The initialization occurs after first + second is evaluated and therefore second is not initialized. –  David Heffernan Apr 28 '12 at 0:19
    
Then with that, it is evident. –  Kaiged Apr 28 '12 at 0:24
    
indeterminate value isn't the same as UB, though. –  Ben Voigt Apr 28 '12 at 0:27
    
@BenVoigt I thought that reading an indeterminate value results in UB. If it doesn't, what is the correct terminology. –  David Heffernan Apr 28 '12 at 0:29

The why is simple: Because the syntax is sugar. What looks like simple assignment is, infact, copy construction; the right hand of the expression is evaluated and passed to the copy constructor of the left hand.

SomeType b = a + b;

is actually

SomeType b(a + b /*wat?*/);

Part of the motivation behind this is RVO. Consider instead the case of

SomeType a, b;
SomeType c = a + b;

c can actually be forwarded as the temp object that a.operator+(b) uses to construct the return value.

SomeType SomeType::operator+(const SomeType& rhs) const
{
    SomeType temp(*this); // RVO will employ `c` here instead of a 4th object.
    ...
    return temp; // yeah, let's not and say we did.
}

Note that you can take your own address:

inptr_t i = (intptr_t)&i;
void* ptr = &ptr;

http://ideone.com/GUJyio

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