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Does a const reference prolong the life of a temporary?

My compiler doesn't complain about assigning temporary to const reference:

string foo() {
  return string("123");
};

int main() {
  const string& val = foo();
  printf("%s\n", val.c_str());
  return 0;
}

Why? I thought that string returned from foo is temporary and val can point to object which lifetime has finished. Does C++ standard allow this and prolongs the lifetime of returned object?

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marked as duplicate by Björn Pollex, Nawaz, RedX, Sergey K., Viktor Latypov Jul 19 '12 at 12:05

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
Yes, the temporary's lifetime is prolonged as long as it's a const reference. –  chris Jul 19 '12 at 11:56

2 Answers 2

up vote 16 down vote accepted

This is a C++ feature. The code is valid and does exactly what it appears to do.

Normally, a temporary object lasts only until the end of the full expression in which it appears. However, C++ deliberately specifies that binding a temporary object to a reference to const on the stack lengthens the lifetime of the temporary to the lifetime of the reference itself, and thus avoids what would otherwise be a common dangling-reference error. In the example above, the temporary returned by f() lives until the closing curly brace.

P.S: This only applies to stack-based references. It doesn’t work for references that are members of objects.

Full text: http://herbsutter.com/2008/01/01/gotw-88-a-candidate-for-the-most-important-const/

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Also, please notice that through no copy is done on the string here, a copy constructor for string must exists and be accessible. –  xryl669 Nov 25 '13 at 16:53

The following article answers your question.

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