Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have a LinkedList with a Node that have a field:

void* _data;

Now, I want to delete this data, but i cant know if the data will be a primitive or an object that was dynamically allocated.

so, if a write:

~Node() {
  delete _node;

and the data is an object that was dynamically allocated, will it call the destructor of the object or will i have a memory leak?

So how can I make this work?

share|improve this question
Why don't you use templates? – user142019 Sep 18 '11 at 8:26
@WTP: The real Q is why not just use std::list? unless the OP wants to do this for academic purposes. – Alok Save Sep 18 '11 at 8:35
I'm coming from java, I'm doing it to improve my C++ skills before an interview. – SnapDragon Sep 18 '11 at 13:42

4 Answers 4

Don't do that!

Calling delete on a void pointer is an Undefined Behavior.[Reference Below]
Undefined Behavior means that anything can happen, the program might crash sometimes or might work sometimes but you cannot predict its behavior at all times, which is a very bad way of programing.

As you rightly concluded with void* there is no way that the delete operator can figure out which class destructor it needs to call, Eventually, leading to a Undefined Behavior.

So how can i make this work?
As I see Your intention of having an void* pointer is for having a generic Link list implementation. C++ already provides a templated generic link list std::list for this purpose, You can use it as there is no point in re-inventing the wheel and it is most likely that the standard link list implementation will be better than any custom implemented version of a generic link list.

If you would still want to have your own version of the link list. You should implement a generic template link list class just what std::list does.

Have a look at Template Programming.

As per C++03 Standard section 5.3.5/3:

In the first alternative (delete object), if the static type of the operand is different from its dynamic type, the static type shall be a base class of the operand’s dynamic type and the static type shall have a virtual destructor or the behavior is undefined. In the second alternative (delete array) if the dynamic type of the object to be deleted differs from its static type, the behavior is undefined(FootNote 73).

Foot Note 73)

This implies that an object cannot be deleted using a pointer of type void* because there are no objects of type void

share|improve this answer

If you need this behavior, use a template. You code, as written, has no way to know what destructor to call.

share|improve this answer

When _node has type void*, delete _node is always incorrect because the type of the operand used with delete must always be a pointer to the dynamic type of the object constructed, or to a type that is a base class of that type, providing that the base class type has a virtual destructor. Clearly, void* cannot fulfil either part of that requirement.

If you are using a void* you need to find someway of casting back to the original type before calling delete. An altenrative approach would be to use something like a std::shared_ptr<void> which can be used in a way where an appropriate deleter is stored at construction (or reset) time and will automatically be called with the node is destroyed.

share|improve this answer

Deleting a void pointer is dangerous. Compilers may warn or reject your code. The C++ standard says you shouldn't be doing so.

In practice, if the compiler does accept your code, it only frees the memory without calling the destructor.

share|improve this answer
"Deleting a void pointer is dangerous." That's like saying "shooting your own head off is dangerous." :)` It's wrong. – sbi Sep 18 '11 at 9:38

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.