-6
foo(foo &afoo): va(foo,va++){
}

What is the security issue or problem of this code snippet.

14
  • 13
    This question is unanswerable. Feb 1 '11 at 23:02
  • Context? Is that a copy constructor?
    – etarion
    Feb 1 '11 at 23:03
  • 10
    The problem with this code is that you don't understand it. Feb 1 '11 at 23:08
  • 3
    -1 if foo is a class name it won't compile, since you can't pass a type as actual argument. if foo isn't a class name it won't compile, due to the colon. so it's not the real code, and i voted to close. Feb 1 '11 at 23:35
  • 2
    @David: Aside from the fact that the code in the OP is ill-formed, in a comment to an answer below I provided an interpretation that does not yield undefined behavior. The question is unanswerable because the OP has expended no effort to try to make it answerable. Feb 1 '11 at 23:36
1

This with g++ compiles, and I don't think there's any UB

struct Va
{
    Va(struct Foo&, int) {}
};

int operator++(const Va&, int) { return 42; }

struct Foo
{
    Va va;
    Foo(Foo &afoo) : va(afoo,va++) {}
};

to be specific operator++ is not doing anything with the not-yet-initialized va data member. It's more or less like passing *this (as reference) or this (as pointer) to a base class or a function in the initialization list... it's correctly reported by some compilers as a dangerous operation but it's legal if the referenced object is not accessed (and it's actually sometimes useful if you only need the address).

3
  • 1
    the constructor definition here is just a guess at what the original code was. in the OP's code the first argument in the initializer is the class name. Feb 1 '11 at 23:38
  • Yes... I already pointed that out in a comment. I assumed the author wanted to write va(afoo,va++) and not va(foo,va++). The original IMO could only work using preprocessor tricks, but then clearly if we allow the preprocessor there's nothing for sure wrong in that code.
    – 6502
    Feb 1 '11 at 23:42
  • 1
    Good idea defining operator++ as a non-member. Feb 1 '11 at 23:43
0

It is UB because it changes the value of va twice in a single command. But isn't: foo(foo &afoo): va(afoo,va++) {}?

8
  • 6
    va++ may do nothing to the value. We don't know the structure/implementation of va, so how could we know how operator ++ is defined?
    – RageD
    Feb 1 '11 at 23:06
  • 3
    @RageD: It doesn't matter. va is uninitialised at this point, so any attempt to operate on it is undefined. Feb 1 '11 at 23:09
  • 2
    @RageD: It is still UB, since operator++ would be called on a not-yet-constructed object va Feb 1 '11 at 23:11
  • 2
    Actually, va could be a function-like macro too: assuming there is a member variable m_, we could have #define va(x, y) m_(). That would not exhibit undefined behavior. Asking what is wrong with an ill-formed, two-line partial code snippet is almost always pointless. Feb 1 '11 at 23:22
  • 1
    -1 the code can't compile and therefore can't have UB. Feb 1 '11 at 23:36

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