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My problem is this, I have an object that I will push into a vector right after I initialize it. The vector will be used long after the current method goes out of scope.

The code looks like this:

DataObject *ptrDataObj = new DataObject();
Parent::DataVector.push_back(ptrDataObj);
:
:
// end of method

This implementation will lead to a memory leak for sure. However, if I use RAII instead of a pointer, the DataObject will have gone out of scope by the time DataVector will use it. The only alternative I see may involve a copy of some sort.

I've been immersed in C# for many years now and am trying to reacquaint myself in the native world again.

Please advise..

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3  
You don't have a memory leak here. You do have a memory leak if you later remove the pointer from your DataVector but forget to delete it. So don't forget to delete it at that point. – nos Aug 25 '12 at 21:51
    
You can have an vector of unique_ptr or shared_ptr – NoSenseEtAl Aug 26 '12 at 0:59

Why is your vector storing objects by a pointer instead of by value?

Make your vector be one of:

  • std::vector<DataObject>
  • std::vector<std::shared_ptr<DataObject> >.

Also, if you're using C++11, you can use emplace_back to avoid a copy.

std::vector<DataObject> vec;
vec.emplace_back(constructor_arg1, constructor_arg2);
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This is a simplistic translation, the vector will actually store objects that contain a pointer to the data object I just initialized. Wrapper wrapObj(ptrDataObj); Parent::DataVector.push_back(w); This is really what I meant to illustrate. – C-Trouble Aug 25 '12 at 21:56
    
The comment doesn't make it any more obvious to me what the limitation you're seeing is. I think you'll need to edit the question and add some additional context. (I.E, what is Parent::DataVector). – Bill Lynch Aug 25 '12 at 22:00

However, if I use RAII instead of a pointer, the DataObject will have gone out of scope by the time DataVector will use it.

Not if you use it appropriately. If you use a reference-counting smart pointer, the object will live at least as long as the vector, and will be properly disposed of.

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