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Is the code below bad practice or undefined behavior? Essentially i am calling a const func to modify a member which is not marked as mutable. Link to demo

Credits to Mehrdad for inspiring this question (his question Does this code subvert the C++ type system?) and david for minor demo improvements.

#include <iostream>
using namespace std;

struct BreakConst
{
    int v;
    int *p;
    BreakConst() { v = 0; p = &v; } 
    void break_stuff() const { ++*p; }
};
void f(const BreakConst& bc) {
    bc.break_stuff();
}

Original Version that most answers are based on:

Answered by David Rodríguez, jpalecek, Mehrdad
Yes: This is "Undefined behavior"

int main()
{
    const BreakConst bc;
    cout << bc.v << endl;   // 0
    bc.break_stuff();       // O:)
    cout << bc.v << endl;   // 1

    return 0;
}

New Alternative Question:

Answered by Mehrdad
No: This is not "Undefined behavior"

int main()
{
    BreakConst bc;
    cout << bc.v << endl;   // 0
    f(bc);                  // O:)
    cout << bc.v << endl;   // 1

    return 0;
}

Result:

0
1
share|improve this question
4  
I'd argue that invoking undefined behavior is bad practice... :) –  cHao Jun 18 '12 at 21:40
    
Might be useful to add something to the question to make it different from mine 15 hours ago... otherwise it's just a dupe with 3 lines less code. :\ –  Mehrdad Jun 18 '12 at 21:41
    
@Mehrdad well you didnt exactly ask if its UB. The answer here don't exactly agree with eachother. -edit- i edited it to give you credit –  acidzombie24 Jun 18 '12 at 21:43
    
@acidzombie24: Wasn't worried about the name, though thanks :) I was worried about getting split/duplicate discussions. If you're merely asking whether it's UB, then does my answer answer your question? Or is there something that it's missing? (Feel free to downvote it if it doesn't -- but mention why. I'm just trying to clarify this, that's all.) –  Mehrdad Jun 18 '12 at 21:48
2  
@acidzombie24: wait, that's not fair, that edit completely changed the correct answer! –  Mooing Duck Jun 18 '12 at 22:22

3 Answers 3

up vote 3 down vote accepted

In this case, I'd say it's undefined behaviour. bc is a const object, so are all its subobjects (less mutables)1, therefore bc.v should be, too and modifying a const object, however achieved, is UB2.

[1] C++03 3.9.3/3:

Each non-static, non-mutable, non-reference data member of a const-qualified class object is const- qualified...

[2] C++03 7.1.5.1/4:

Except that any class member declared mutable (7.1.1) can be modified, any attempt to modify a const object during its lifetime (3.8) results in undefined behavior.

EDIT responding to the edit of the question: No, the modified version of the code does not cause undefined behavior. It may be bad practice, but actually may be useful at times. You can eg. use it to implement iterators to your classes via const-iterators (DRY):

class const_iterator
{
public:
  const T& dereference() const; // complicated
};

class iterator : public const_iterator
{
public:
  T& dereference() const { return const_cast<T&>(const_iterator::dereference()); }
};

Of course that relies on the fact that iterators can only be made from mutable containers, that the const and non-const versions do not differ (no COW and such) etc., but that is fairly common.

share|improve this answer
    
The pointer wasn't to a const object when it was assigned, so to me that's the loophole that is being exploited. –  Mark Ransom Jun 18 '12 at 21:37
1  
@MarkRansom: The pointer was to a const object, taken during a time window where the object does not look const. But the compiler could move that object from the stack to a different page in memory and after construction mark the page as read-only. –  David Rodríguez - dribeas Jun 18 '12 at 21:41
1  
@DavidRodríguez-dribeas It can't move things so arbitrarily. To be sure, it's hard to imagine an implementation that would "misbehave." But yes, it's UB due to abuse of the constructor's const suspension privilege. –  Potatoswatter Jun 18 '12 at 21:44
    
@Potatoswatter: What rule in the language would be violated if the object was moved? None AFAIK, which means that whether it is probable or improbable that the compiler would do this, the fact is that it is allowed. –  David Rodríguez - dribeas Jun 18 '12 at 21:47
1  
@DavidRodríguez-dribeas, I missed the fact that the object itself was declared const in main - it doesn't help that the question was modified to remove that qualification. I don't think the object can be moved because it would invalidate any pointers created in the constructor (as in this example), but the memory it resides in could theoretically be flipped to read-only after construction. I'm not aware of any hardware where that would be practical. –  Mark Ransom Jun 18 '12 at 22:18

In your particular case it is undefined behavior as the object is const, not just the reference. It would be bad practice (and dangerously close to Undefined Behavior) in the following case:

void f( const BreakConst& b ) {
   bc.break_stuff();
}
int main() {
   BreakConst b;
   f( b );
}

The difference is that in this case the actual object is not const, even if the reference at the level of f is. The dangerously close to Undefined Behavior comes from the fact that the member function casting away const-ness cannot possibly know whether the object on which it has been called is const or not, so you have lost all control.

share|improve this answer
    
I think maybe if its done through a function it may be ok (ie using a global var to nonconst version) but since this is a pointer/alias i think the rules have been broken. I hope someone can comment/answer –  acidzombie24 Jun 18 '12 at 22:18
    
Answer has been altered, making your answer still correct, but very odd. –  Mooing Duck Jun 18 '12 at 22:24
    
@MooingDuck: Do you mean the question has been altered? –  Loki Astari Jun 18 '12 at 22:34
    
@LokiAstari: Yes, that's exactly what I meant :( –  Mooing Duck Jun 18 '12 at 22:36

After your edit:

No, it's not undefined. You're allowed to modify a mutable object through a const reference; it's completely allowed and legal.


Before your edit:

Yes, it must be undefined, because the standard (I'm looking at the draft here) clearly says:

§7.1.6.1.4

Except that any class member declared mutable (§77.1.1) can be modified, any attempt to modify a const object during its lifetime (§3.8) results in undefined behavior.

So yes -- since the member isn't mutable, modifying it is obviously undefined behavior.

I don't know why the rule is that way, whether this is intentional, whether it is indeed a loophole, whether it's also violating another rule, how you're supposed to tell just by looking at it, etc... but regarding the question of whether it's UB: yes, it's undefined according to the standard.

share|improve this answer
    
Check out my edit (or david's answer). To answer your whats the difference question. My question is more specific. All the answers here are about UB vs not UB. While your question had a lot talking about the rules of const. Thats why i felt that a different phrasing would help. I hope it didnt bother you too much. Also +1 –  acidzombie24 Jun 18 '12 at 22:02
1  
The question changed, and now it is no longer undefined. –  Mooing Duck Jun 18 '12 at 22:25
    
@MooingDuck: you're right o.O... why'd that happen?! –  Mehrdad Jun 18 '12 at 22:28

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