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What is the difference between this:

TestClass t;

And this:

TestClass t = TestClass();

I expected that the second might call the constructor twice and then operator=, but instead it calls the constructor exactly once, just like the first.

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4 Answers 4

up vote 8 down vote accepted
TestClass t;

calls the default constructor.

TestClass t = TestClass();

is a copy initialization. It will call the default constructor for TestClass() and then the copy constructor (theoretically, copying is subject to copy elision). No assignment takes place here.

There's also the notion of direct initialization:

TestClass t(TestClass());

If you want to use the assignment operator:

TestClass t;
TestClass s;
t = s;
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I'm wondering, could the second also call the move constructor in C++11? –  delnan Aug 7 '12 at 20:39
5  
The call to the copy-constructor might be optimized away (and usually is). –  Björn Pollex Aug 7 '12 at 20:39
    
I too thought the same. But please check my example ideone.com/T3Usi . –  Mahesh Aug 7 '12 at 20:40
    
@Mahesh copying is subject to elision. –  Luchian Grigore Aug 7 '12 at 20:42
2  
@Mahesh - that's just RVO in action –  Flexo Aug 7 '12 at 20:42
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The first case is quite simple - constructs an instance using the default constructor.

The second class is Constructing an anonymous object and then calling the copy constructor. Notice that here the = is not assignment, it's similar to (but not identical) writing:

TestClass t(TestClass());

We can verify that this needs the copy constructor to be available by making it unavailable, e.g.:

#include <iostream>

struct TestClass {
  TestClass() { std::cout << "Ctor" << std::endl; }
  TestClass(const TestClass&)  = delete;
};

int main() {
  TestClass t = TestClass();
}

Which fails to compile because of the deleted copy constructor. (In C++03 you can use private: instead).

What's actually happening most likely though is that your compiler is doing Return value optimisation, whereby it's allowed to ommit the call to the copy constructor entirely provided a suitable one exists and would be accessible.

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Actually, copy and direct initialization are not the same. stackoverflow.com/questions/11222076/… –  Luchian Grigore Aug 7 '12 at 20:42
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In the first one, you are calling the default constructor implicitly. And in the second one you're calling it explicitly.

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Would TestClass t(0) and TestClass t = TestClass(0) be any different? –  Andrew Aug 7 '12 at 20:48
    
well, it's not different. But it's up to the compiler to decide. It will either do it like the first declaration or it would create a temporary object that is later on copied to "t". If it does it that way (by creating a temp object) the class destructor will be called after the temporary object created is removed. But one way or another you'll get the same result. –  DJK Aug 7 '12 at 20:57
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The latter one could call copy constructor and thus requires one to be public.

Edit: I certainly drew far too big conclusions from the type name you used. The sentence above only applies for class-types (i.e. not POD). For POD types, the former leaves the variable uninitialized, while the latter initializes it with so-called "default" value.

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