3

I was wondering, in the following code :

{
    int i = 42;
    goto end;
}
end:

What is the status of the symbol i when we reach end: (what would we see in a debugger) ? Does it still exist, even if we're out of the scope ? Is there a standard behavior or is it compiler-dependent ?

For the sake of the example, let's assume that the code is compiled using gcc with debug symbols.

Subsidiarily, is the behavior the same in C++ ?

Thank you.

4
  • 3
    What stops you from executing this code? You could even compile it with different optimization flags or different gcc versions..
    – aisbaa
    Aug 2, 2016 at 9:49
  • 6
    If you left scope - all local are destroyed. And it doesn't matter in what way scope was left.
    – Sergio
    Aug 2, 2016 at 9:54
  • @aisbaa How would executing this code help to answer the question?
    – CompuChip
    Aug 2, 2016 at 10:58
  • 1
    @CompuChip it would answer "(what would we see in a debugger)" part, assuming execution is under debugger.
    – aisbaa
    Aug 2, 2016 at 11:10

2 Answers 2

8

A variable that has been declared in a block will "live" only in that block (it does not matter if you used goto or not).

This behavior is the same in c++

2
  • So I assume that in C++, RAII would apply and destroyers would be called, right ?
    – Senua
    Aug 2, 2016 at 12:12
  • 1
    Yes , except on primitive types though Aug 2, 2016 at 14:09
3

The status is... invisible (out of scope).

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