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i have

Tree<std:string> tree;

now

new Tree<std:string>;

leads to a pointer, how can i change address of tree to that of pointer generated by new?

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2  
Are you asking how to change the address of an existing object? If yes, think about what that means :-). – Alok Singhal Jan 31 '10 at 8:35
    
actually i want to assign it to some variable like java. tree=some operatio(new Tree) so that tree can be used like a normal variable without those tiring * and -> everywher – none Jan 31 '10 at 8:52
    
ITs already done. The second line is not required. The first line declares and initializes (using the default constructor) the variable tree. – Loki Astari Jan 31 '10 at 9:35
1  
You can't have a "normal variable" in C++, if your idea of a normal variable is a Java reference. Sorry. – Steve Jessop Jan 31 '10 at 14:01
up vote 5 down vote accepted

Making C++ code look like Java is a bad idea, the two languages are very different.

That said, in C++ operator new returns a pointer to the allocated object.

Tree<std::string> * tree = new Tree<std::string>;
tree->do_something();

You can also bind a reference to your object.

Tree<std::string> & tree2 = *tree;
tree.do_something();

I urge you not to do that. Writing -> instead of . is not that difficult.

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I think you're a little confused here. In C++ when you declare an object, the constructor is called automatically, you don't need to new it. After doing:

Tree<std:string> tree;

You can access tree already, and its constructor has been called.

It is already a constructed object. If you want to have a pointer, and construct an object in the heap, and no the stack, you need to do,

Tree<std:string> *tree;
tree  = new Tree<std:string>;

And then use *tree to access tree. You can see how it works if you add a printf statement to the constructor.

share|improve this answer
    
actually i want to assign it to some variable like java. tree=some operatio(new Tree) so that tree can be used like a normal variable without those tiring * and -> everywhere – none Jan 31 '10 at 8:51
    
i need to new it to keep it on heap, i want a java like behaviour. – none Jan 31 '10 at 8:56
    
No can do, sorry. Why do you need it on the heap? – SurDin Jan 31 '10 at 9:05
    
because there are many of them to be generated, i am parsing a number of xml files. – none Jan 31 '10 at 9:12
    
You won't get "java like behavior" by placing them on the heap. And there is no need to put them on the heap. Each Tree should internally place what it needs on the heap, so that the size of the Tree object itself is only a handful of bytes, and can be safely placed on the stack. Alternatively, put them in a std::vector or similar. Don't use pointers. You don't need them, and you're just making things difficult for yourself. – jalf Jan 31 '10 at 15:13

You can't. Creating an object using Tree<std:string> tree; creates tree at some specific place in memory and you can't change that.

Perhaps what you want is to make tree be a pointer Tree<std:string> *tree = 0;. When you do that, tree is no longer an object but a pointer. You can then make it point to an object by assigning the return from new tree = new Tree<std::string>;

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I'd also recommend to read Alok's comment and think a bit about it.

Here you have examples of alternative approaches of transition from automatic storage to dynamic storage. It uses std::vector as equivalent to your Tree class, but it can be any type you like.

#include <algorithm>
#include <iostream>
#include <iterator>
#include <string>
#include <vector>
using namespace std;

int main()
{
   vector<string> v(3);
   v[0] = "abc";
   v[1] = "def";
   v[2] = "ghi";

   // option #1 - make a copy
   {
      vector<string>* pv = new vector<string>(v);
      std::copy(pv->begin(), pv->end(), std::ostream_iterator<string>(cout, ", "));
      delete pv;
   }
   cout << endl;

   // option #2 - move content from original vector to new'ed one
   {
      vector<string>* pv = new vector<string>();
      pv->swap(v);
      std::copy(pv->begin(), pv->end(), std::ostream_iterator<string>(cout, ", "));
      delete pv;
   }
}
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