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When I use new[] to create an array of my classes:

int count = 10;
A *arr = new A[count];

I see that it calls a default constructor of A count times. As a result arr has count initialized objects of type A. But if I use the same thing to construct an int array:

int *arr2 = new int[count];

it is not initialized. All values are something like -842150451 though default constructor of int assignes its value to 0.

Why is there so different behavior? Does a default constructor not called only for built-in types?

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up vote 27 down vote accepted

See the accepted answer to a very similar question. When you use new[] each element is initialized by the default constructor except when the type is a built-in type. Built-in types are left unitialized by default.

To have built-in type array default-initialized use

new int[size]();
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8  
Wow, I didn't actually know you could add the braces to default initialize built-in types. I've been working with C++ for years. That's either exciting or very sad! – aardvarkk Apr 25 '14 at 14:09

Built-in types don't have a default constructor even taught they can in some cases receive a default value.

But in your case, new just allocates enough space in memory to store count int objects, ie. it allocates sizeof<int>*count.

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1  
they have, but it must be invoked: ` int i();` – rubber boots Aug 26 '10 at 14:08
    
This is not a real constructor, but a way to initialize them... – Cedric H. Aug 26 '10 at 14:14
2  
@rubber boots: int i (); does not initialize a varaible named i. It declares a function i returning an int. You may have meant int i = int(); – James Curran Aug 26 '10 at 14:33
1  
@James: In C++0x you can finally say what you mean: int x{}; :) – fredoverflow Aug 26 '10 at 14:39
1  
@James, oops - wtf did I write? Thanks for clearing this up. Wrong deduction from int *i = new int();. @Cerdic, Sorry for Posting BS. – rubber boots Aug 26 '10 at 19:38

int is not a class, it's a built in data type, therefore no constructor is called for it.

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