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vector<string> vec(10, string(10, 'a'));

My question is about the string(10, 'a'):

  • Does it returns an anonymous variable?
  • When the initialization statement over, the variable would be cleared?
  • It would be copied to the vector?
  • Have any differences from c++11 (at this point)?
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    @DavidSchwartz "anonymous variable" is an abuse of terminology (and arguably an oxymoron). You mean anonymous/temporary object, period. – user395760 Nov 3 '14 at 9:53
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    @DavidSchwartz People are also free to call cars "horseless carriages", but it's still obscure terminology that hints at limited knowledge or confusion, so correcting it is perfectly reasonable. Programming is engineering and engineering lingo is distinct from day-to-day speech, for good reasons. Deviating from it is rarely useful, especially when it's unintentional as in this case. – user395760 Nov 3 '14 at 9:59
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    @DavidSchwartz One could say that, but that's not the vocabulary usually used with C++ (and so is likely to lead to confusion). In the usual C++ vocabulary, there is no such thing as an "anonymous variable". There are, however, temporaries (rvalues). (More general, the definition of a variable is the association of a name and an object. So "anonymous variable" is an oxymoron.) – James Kanze Nov 3 '14 at 10:00
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    @JamesKanze I honestly don't believe you. Are you really saying that a C++ programmer wouldn't understand "anonymous variable" to mean something that would be a variable but for the fact that it's anonymous? It was totally obvious to me, and my professional experience is almost entirely as a C++ programmer. Am I just much smarter than you guys? I don't think so. To be blunt, I believe you are intentionally misunderstanding a perfectly clear point for entirely pedantic purposes. – David Schwartz Nov 3 '14 at 10:04
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    @DavidSchwartz The ordinary "computer" sense of "variable" is an association between a name and an object (or an entity which contains data). The fact that something is named is what makes it a variable. Having said that: your analogy with toy car vs. car is valid, and I don't think anyone would have trouble understanding "anonymous variable". It's far enough from the usual vocabulary, however, that it's worth pointing out the "misuse" of the term to the OP. – James Kanze Nov 3 '14 at 10:14
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Does it returns an anonymous variable?

No. It returns a temporary object, which is not a variable by-definition (§3.1/6 [basic]):

A variable is introduced by the declaration of a reference other than a non-static data member or of an object. The variable’s name denotes the reference or object.

Source: C++11 working draft n3337

When the initialization statement over, the variable would be cleared?

No, it wouldn't. It has no name and at that point it's already destroyed anyway.

It would be copied to the vector?

Yes, the temporary object would be copied into the vector, and then destroyed. This happens in principle; in practice, the compiler is allowed to optimize away the creation, copying and destruction of the temporary object as long as doing so doesn't affect observable behavior.

Have any differences from c++11 (at this point)?

I can't tell for sure, but I can't recall any specific difference between C++98, C++03 and C++11 in this matter.

  • It may be worth pointing out that in his case, the temporary will be copied 10 times into the vector. – James Kanze Nov 3 '14 at 10:15
  • the temporary object exist in the stack? or heap? – pezy Nov 3 '14 at 10:29
  • @pezy That's an operating system detail. – user3920237 Nov 3 '14 at 10:31
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    @pezy: The short answer is no, the long answer would start with "perhaps..." but not fit in a comment. As remyabel points out, the OS is really in charge and C++ just tells you how long the object lives, not where. ( "heap" => "until delete", "stack" => "until function returns", "global" => until program exits, "temporary" => until end of statement) – MSalters Nov 3 '14 at 13:29
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    @pezy no, that's not right. The temporary object may be constructed anywhere the compiler/OS wishes. It is often stack-allocated. It might not always be. And anyway, "the stack" and "the heap" are platform-specific implementation details, and there's no point in discussing them unless we are talking about a specific implementation. The more precise, platform-agnostic wording (which is to be preferred for use in general discussion) is "automatic" and "dynamic" allocation (and storage duration), respectively. – The Paramagnetic Croissant Nov 3 '14 at 13:32

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