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In C++,

Aside from dynamic memory allocation, is there a functional difference between the following two lines of code:

Time t (12, 0, 0); //t is a Time object

Time* t = new Time(12, 0, 0);//t is a pointer to a dynamically allocated Time object

I am assuming of course that a Time(int, int, int) ctor has been defined. I also realize that in the second case t will need to be deleted as it was allocated on the heap. Is there any other difference?

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4  
It doesn't really count as an answer, but aside the answers already given you may be interested to know that you can override operator new/delete if you want to write your own memory management (for better performance). –  user180326 Sep 9 '10 at 6:04

8 Answers 8

The line:

Time t (12, 0, 0);

... allocates a variable of type Time in local scope, generally on the stack, which will be destroyed when its scope ends.

By contrast:

Time* t = new Time(12, 0, 0);

... allocates a block of memory by calling either ::operator new() or Time::operator new(), and subsequently calls Time::Time() with this set to an address within that memory block (and also returned as the result of new), which is then stored in t. As you know, this is generally done on the heap (by default) and requires that you delete it later in the program, while the pointer in t is generally stored on the stack.

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5  
+1 for possible overload of operator new() –  anthony-arnold Sep 9 '10 at 6:43
3  
+1: Would also say that stack allocation should be faster than heap allocation. –  Binary Worrier Sep 9 '10 at 8:17
1  
@Sev: Generally close to the beginning. For POD classes, it'll be at or very near the beginning, and for classes with virtual members and/or inheritance, the pointer will generally be farther inside the block, to make room for the vtable and inherited members, if any. –  greyfade Sep 9 '10 at 17:46
1  
@greyfade: In the second line of code where t is a pointer to Time, I realize that t points to an object of type Time which is allocated on the heap, but is t itself allocated on the stack or the heap? –  Calpis Feb 8 '13 at 19:07
1  
@Calpis: t is an "automatic variable" declared in local scope. So yes, it is typically allocated on the stack. But it's usually not relevant to the discussion, since it merely points to the Time object. –  greyfade Feb 8 '13 at 19:13

One more obvious difference is when accessing the variables and methods of t.

Time t (12, 0, 0);
t.GetTime();

Time* t = new Time(12, 0, 0);
t->GetTime();
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I think you already understand all the differences. Assuming that you are well aware about the syntax difference of accessing a member of t through a pointer and through a variable (well, pointer is also a variable but I guess you understand what I mean). And assuming also that you know the difference of call by value and call by reference when passing t to a function. And I think you also understand what will happen if you assign t to another variable and make change through that other variable. The result will be different depending on whether t is pointer or not.

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As far as the constructor is concerned, the two forms are functionally identical: they'll just cause the constructor to be called on a newly allocated object instance. You already seem to have a good grasp on the differences in terms of allocation modes and object lifetimes.

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There is no functional difference to the object between allocating it on the stack and allocating it on the heap. Both will invoke the object's constructor.

Incidentally I recommend you use boost's shared_ptr or scoped_ptr which is also functionally equivalent when allocating on the heap (with the additional usefulness of scoped_ptr constraining you from copying non-copyable pointers):

scoped_ptr<Time> t(new Time(12, 0, 0));
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No.. There is no other difference..

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There is no other difference to what you know already.

Assuming your code is using the service of default operator new.

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void foo (Time t)
{
  t = Time(12, 0, 0);
}

void bar (Time* t)
{
  t = new Time(12, 0, 0);
}


int main(int argc, char *argv[])
{
  Time t;
  foo(t);//t is not (12,0,0),its value depends on your defined type Time's default constructor. 

  bar(&t);//t is (12,0,0)
  return 0;
}
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