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I have the following functions (wrote in Visual C++ 2005)

int &getInt_1()
{
    int a = 5;
    int &p = a;
    int p1 = p; // Line 1
    return p1;
}

int &getInt_2()
{
    int a = 5;
    int &p = a;
    return p;
}

As I have known so far, both the above functions return address of local variable. If I am right, then I have some questions as follows:

  1. What are the differences between above functions? Why getInt_1() gets warning from the compiler ("returning address of local variable") while getInt_2() does not?

  2. What does Line 1 mean? After Line 1, does p1 become a reference to a as well?

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Undefined behavior ... unnoticed by compiler. –  iammilind May 2 '12 at 8:34

3 Answers 3

up vote 3 down vote accepted
  1. getInt_1 returns a reference to p1. getInt_2 returns a reference to a. Both are the same undefined behavior, don't do it. VC should give a warning on both.
  2. No, you just copy the value.
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1) Both are undefined behavior, because of what you pointed out. It's probably an oversight in MSVS.

2) No, p1 does not become a reference itself. That line is equivalent to int p1 = a;

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@Pubby are you sure? I remember the standard saying just returning a reference to a temporary is UB. –  Luchian Grigore May 2 '12 at 8:35
    
Nevermind, GMan says it is UB! –  Pubby May 2 '12 at 8:36

In the first case, it's easy for the compiler to show that you're returning a reference to a local variable; in the second case it's harder, because it just has an arbitrary reference that happens to refer to a local variable. That's probably why you get the warning in the first case but not the second.

And no, in the first case p1 is just a normal int, not an int&.

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