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I'm a beginner of C++. Now I got a little puzzled with the code below. I know there should be a delete operator with which I'm not concerned in somewhere. I just wondering , wow , it worked. Where is the argument "size" coming from?

#include<iostream>
#include<string>

class Base {
public:
    Base() { }
    void *operator new( unsigned int size, std::string str ) {
    std::cout << "Logging an allocation of ";
    std::cout << size;
    std::cout << " bytes for new object '";
    std::cout << str;
    std::cout << "'";
    std::cout << std::endl;
    return malloc( size );
    }
private:
    int var1;
    double var2;
};

int main(int argc, char** argv){
    Base* b = new ("Base instance 1") Base;
}

Here is the result:

Logging an allocation of 16 bytes for new object 'Base instance 1'

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2  
You are looking at some fairly advanced C++ features. As a beginner you should maybe focus on more basic stuff. –  user763305 Aug 24 '11 at 11:14
    
Beware, size of an object and the allocated number of bytes might be different due to alignment, padding and other overheads! Especially true for arrays. Don't assume the object is placed at the address you returned in your operator new, cause it might not be! –  Frigo Aug 24 '11 at 11:26
    
Actually from the standard 5.3.4/12: "new T results in a call of operator new(sizeof(T))". If you want any special alignment you'll have to provide it yourself and the object will be placed at the address returned from new. –  Andreas Brinck Aug 24 '11 at 11:37
    
I'm not sure about objects, but for arrays, there is definitely some overhead. That is why my custom lengthof function failed - the allocated size isn't a multiple of the size of the type, and the address of the array and the allocated memory differ. –  Frigo Aug 24 '11 at 14:08
    
@Frigo Can you post an example, either as a question here on SO or somewhere else (codepad.org etc)? –  Andreas Brinck Aug 24 '11 at 14:19

2 Answers 2

It is provided by the compiler at compile time. When the compiler sees:

new ("Base instance 1") Base;

it will add a call to:

Base::operator new(sizeof(Base), "Base instance 1");

EDIT: The compiler will of course also add a call to Base::Base()

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You are awesome.Thank you! Amazing.I changed the code and got an error:first formal parameter to 'operator new' must be 'size_t'.Now I know a little more about new.Thanks again. –  Mike Aug 24 '11 at 11:18

on 32 bit arch int is 4 bytes, double is 8, but the double is going to be aligned to 8 byte boundary so size = 4 + 4(empty space) + 8 = 16

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the question was not how the size of the type came to existence, but about the size parameter to new, and where it will be filled from –  PlasmaHH Aug 24 '11 at 11:32

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