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recently I have come across these two ways of creating an object in a specific place in memory:
1.

void* mem = malloc(sizeof(T));
T* obj = new(mem) T();


2.

T* obj = (T*)malloc(sizeof(T));
*obj = T();

The second way is a bit shorter...are there other differences? Regards Mateusz

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Even shorter is the correct one T* ptr = new T();. Please use that, and skip malloc. –  Bo Persson Mar 12 '11 at 8:53

2 Answers 2

up vote 6 down vote accepted

The second way is wrong, the first is right.

You're invoking the assignment operator on a T instance containg garbage data. The assignment operator expects the instance to have been initialized correctly - It could e.g. delete member variables before assigning, which would cause all sorts of funny crashes. See e.g:

struct Foo {
  std::string * Data;
  Foo() : Data(0) {}
  Foo(Foo const & R)  { Data = new std::string(*R.Data); }
  ~Foo() { delete Data; }
  Foo & operator=(Foo const & R) {
    delete Data;
    Data = new std::string(*R.Data);
    return *this;
  }

};

The first way will ensure Foo::Foo() is called - thus properly initializing Data. The second way will lead to a delete Data; where Data points to some random location in memory.

EDIT:

You can test this the following way:

void* mem = malloc(sizeof(Foo));
memset(mem, 0xCC, sizeof(Foo)); // malloc doesn't guarantee 0-init
Foo* obj = new(mem) Foo();

And:

Foo * obj = (Foo*)malloc(sizeof(Foo));
memset(obj, 0xCC, sizeof(Foo)); // malloc doesn't guarantee 0-init
*obj = Foo(); // Crash
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why garbage data? The *obj = T(); notation actually runs the constructor of T so it should be properly initialized I guess? –  Mateusz Mar 11 '11 at 22:37
1  
@Mateusz: No it doesn't. T foo = T(); runs the copy ctor. T foo; foo = T(); uses operator=. –  Erik Mar 11 '11 at 22:39
    
so I understand that the situation is as follows: firstly, The T object is created on the stack, then it is copied to *obj with "=" operator and deleted afterwards, so all resourced dynamically allocated in constructor are deleted in destructor and not valid in *obj, right ? –  Mateusz Mar 11 '11 at 22:46
1  
in *obj = T(); a temporary T is created on stack, and operator= is called. If operator= needs to do cleanup as part of handling the assignment it will do so on uninitialized data - which is demonstrated in an edit to my answer. –  Erik Mar 11 '11 at 22:53
*obj = T();

This statement constructs a T object on the stack, and then does an assignment to *obj. It's wrought with unintended consequences.

On the other hand,

T* obj = new (mem) T();

This statement initializes a designated memory buffer, mem, by executing T() constructor method, as intended.

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what consequences you mean? Actually, it doesnt even call the copy constructor of T - i did an experiment with copy constructor writing to std output and it didnt run on assigment –  Mateusz Mar 11 '11 at 22:36
    
@Mateusz: it's assignment operator, not copy constructor. –  ybungalobill Mar 11 '11 at 22:41
    
So in the first case the object is created directly in "mem", and in the second case it's first created on the stack, then assigned to *obj, then the old one created on the stack is deleted ? –  Mateusz Mar 11 '11 at 22:52
    
@Mateusz: Yes. Now imagine if T has a pointer member variable that gets deleted on destruction, the same ivar in obj will be invalid! –  Santa Mar 11 '11 at 23:28
    
OK! now I get it. Thanks, Santa! –  Mateusz Mar 12 '11 at 4:57

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