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I want to guarantee that pointer I passed to function cannot be deleted inside this function (I mean compiler would generate an error on processing such function). The following is the original situation.

void foo(Bar *bar) { delete bar; }

Now I unsuccessfully tried some ways.

void foo(Bar *bar) { delete bar; }
void foo(const Bar * const bar) { delete bar; } { delete bar; }
template <typename T> void foo(const T &t) { delete t; } // calling foo(bar);

I want to know is there some way prohibit deleting pointer And if it isn't possible why it was made?

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marked as duplicate by paulsm4, Walter, SingerOfTheFall, Eric Brown, fedorqui Sep 13 '13 at 8:58

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.

4  
Since it's tagged C++, I can't resist... void foo(Bar& bar)? –  Chad Sep 12 '13 at 16:46
    
Why would you resist? It's the right answer. –  Carl Norum Sep 12 '13 at 16:49
1  
@Chad (Tongue in cheek) delete &bar ;););) –  dasblinkenlight Sep 12 '13 at 16:50
1  
delete is not an instance method. –  Carl Norum Sep 12 '13 at 16:52
2  
If you do not want you pointer deleted, don't pass by pointer. To make things 100% safe for your pointed-to object, pass by value. –  dasblinkenlight Sep 12 '13 at 16:56

2 Answers 2

It is not possible. You can try to delete everything. The compiler can not complain, but at runtime you can get undefined behaviour. Look at the following code:

int const i=4;
int const* pi = &i;
delete pi;

which compiles but results in a runtime error. As you can see you can even delete a pointer to a const object located at the stack. The standad allows it (Herb Sutter worte about it, but I don't find a link), because destructors needs to clean up const (RAII) objects when leaving a scope. In any case a function is able to get the address of a parameter and call delete on it. Even if you work with a private destructor and friend functions which are able to destroy these objects you can not prevent these functions from beeing called. I think your only choice is to trust the called function.

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1) If you are declaring the function, you prevent the pointer from being deleted by not deleting it.

2) If you want to convey the function will not delete it, pass the object by reference instead of by pointer: void foo(Bar& bar);

3) If you really want bonus points, use a smart pointer class instead of raw pointers (e.g. shared_ptr, unique_ptr, etc.)

Corollary to 3) If you don't want anyone else deleting the object (i.e. you want a factory object to do the memory management), create the destructor as private and then any functions that call delete on the object would cause a compiler error.

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I'm not sure who is down-voting a correct answer (and not commenting to boot), but shame on you. –  Zac Howland Sep 12 '13 at 19:26

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