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I am compiling using g++. This is valid but I want to convert to the C++ operators new() and delete() because this is considered best practice.

  int *scratch = (int *)malloc(size * sizeof(int));
  free(scratch);

What is the equivalent using new and delete? This is my guess.

 int **scratch = new int*[size];
 delete[] scratch;

This is for an array of pointers.

The double star is a reference. It is a pointer to a pointer.

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4  
A reference and a pointer to a pointer are very different things. –  TBohne Oct 27 '11 at 21:37
    
Your link is broken. A pointer is close to a reference. So a pointer to a pointer is close (conceptually) to a reference to a pointer. But either way they're used differently, with different limitations, and different syntax. –  TBohne Oct 27 '11 at 21:47
    
Your first sentence contradicts your code: It is indeed true that ::operator new() is the C++ analogue of malloc(), and the former is in fact almost universally implemented by the latter. However, what you're using in the code is the new **expression**`, which is a different animal entirely (as it has something to do with constructors). –  Kerrek SB Oct 27 '11 at 21:49
    
Maybe conceptually (although that concept would be a really mysterious one), but it is definitely not equivalent to your malloc example. C'mon you already know how pointers work, they're not any different in C++. And I don't know what reference you are talking about, but I never heard somebody call a pointer to pointer a reference, at least not in C++, where the word reference has an entirely different meaning, anyway. –  Christian Rau Oct 27 '11 at 21:50
    
Search for reference here... cslibrary.stanford.edu/103/LinkedListBasics.pdf - this is not broken..a reference is a pointer to a pointer....but syntactically they are different –  user656925 Oct 27 '11 at 21:54

5 Answers 5

up vote 4 down vote accepted

You probably want to do:

std::vector<int> scratch(size);

But for the record, what you tried should be:

int* scratch = new int[size];
delete[] scratch;

Note that if size is known at compile-time, you also simply do:

int scratch[size];

Edit

For an array of pointers to int, the desired syntax is:

int** scratch = new int*[size];
delete[] scratch;

Note that the the pointers inside the array are not refering to allocated memory and that you must allocate every pointed int before being able to use them.

That is, you may do:

int a = 3;
int b = 5;

scratch[0] = &a;
scratch[1] = &b;
scratch[2] = &a;
scratch[3] = new int(5); // Well, I don't see why anyone would like to do that but if you do, don't forget to also call delete on the pointer when you are done with it.

Anyway, unless you have some particular constraints, the most C++ way of doing things is probably still a std::vector<int*> as dealing with pointers of pointers becomes a bit unmaintainable after some levels of indirection.

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what about for an array of pointers? –  user656925 Oct 27 '11 at 21:37
    
@ChrisAaker See my last edit :) –  ereOn Oct 27 '11 at 21:40
    
@ChrisAaker Your malloc example doesn't use an array of pointers either. If that is what you want your new example was indeed correct and your malloc example was broken. –  Christian Rau Oct 27 '11 at 21:40
    
O.K. I see any chance you would add info. on how to do pointer to pointers...using malloc...as another EDIT on you answer...Thanks! –  user656925 Oct 27 '11 at 21:45
    
@ChrisAaker You are welcome. –  ereOn Oct 27 '11 at 21:49

int *scratch = new int[size]; delete[] scratch;

or

std::vector<int> scratch(size);

or for an array of pointers

std::vector<std::auto_ptr<int> > scratch; 
for(int i = 0; i < size; i++) {     
    scratch.push_back(std::auto_ptr(new int)) 
}
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sorry what if I need an array of pointers –  user656925 Oct 27 '11 at 21:36
    
You don't want an array of pointers in your question. You probably don't want an array of pointers in general. –  totowtwo Oct 27 '11 at 21:46
int **scratch = new int*[size];

How did you come up with this? What about the simple

int *scratch = new int[size];

The delete was used correctly, though.

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You are close. It's:

int *scratch = new int[size];
delete [] scratch;
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How do you distinguish between an array of pointers and an array of ints? –  user656925 Oct 27 '11 at 21:38

The equivalent is:

int *scratch = new int[size];
delete[] scratch;

In short, for arrays (T*)malloc(size * sizeof(T)) translates as new T[size] and free(ptr) into delete[] ptr.

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And for an array of pointers? –  user656925 Oct 27 '11 at 21:37

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