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void setCurrentTransformations(const NodeTransformations& theSet){
    m_currentTransformations=theSet;
}

I want to confirm that I am understanding this exactly because theSet is going out of scope just after this function gets called.

This is going to actually copy theSet into m_currentTransformations, right? In other words, it is safe, regardless of the scope of theSet in the caller.

It's the fact that if this was a pointer instead of a reference, I know it would not be safe. But I assume here that it is perfectly fine, and m_currentTransformations will copy theSet so that it will not matter what happens to the original value that theSet references, right?

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This has nothing to do with safety. It's far more fundamentally about correctness. –  Kerrek SB Apr 24 '13 at 18:26
2  
@KerrekSB that is a rather cryptic comment you made there. care to elaborate? –  OpenLearner Apr 24 '13 at 18:30

1 Answer 1

up vote 4 down vote accepted

This is going to actually copy theSet into m_currentTransformations, right?

Absolutely, this is going to make a copy. However, it is going to do so using the assignment operator of the NodeTransformations class, so you may need to be careful of how it is defined. If you define a copy constructor, you usually need an assignment operator and a destructor, too (that is commonly known as the rule of three).

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"Need" is a little strong. I have several classes that need copy constructors and assignment but don't need destructors. –  Ryan Witmer Apr 24 '13 at 18:49
    
@RyanWitmer You're right, there are exceptions to the rule of three, so I should have said "usually need" instead of just "need". Thanks! –  dasblinkenlight Apr 24 '13 at 18:59

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