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int* array1 = new[ 10 ]( );

What is the correct way to copy this array? The following is my attempt.

int* array2 = array1;

With that said, is the following the correct way to add a value to a full array1?

int val = 2;
int* array2 = new[ 11 ]( );

for ( int i = 0; i < 10; i++ ) {
    array2[ i ] = array1[ i ];
}

array2[ 10 ] = val;
delete [ ]array1;

One more question, how do I get the amount of spaces that are filled in an array?

int* array1 = new[ 2 ];
array1[ 0 ] = 1;
// the resulting array would look like this { 1 };

I want to get the number of initialized elements, so instead of returning 2 for the number of elements the allocated array can hold, I want to get how many elements actually have a value. I want to do this so I can replace the 10 in my previous code with the size of array1.

Thank you!

EDIT: I need to stick with c style arrays because of my instructor.

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  • 2
    Why new[ 10 ]( ) instead of new int[10] ? ...
    – LihO
    Commented Jan 28, 2014 at 20:54
  • 2
    new[ 10 ]( ) is a syntax error. Does not even run. new int[10] is correct. Declares an array of int whose size is 10. (Not necessarily 0) Commented Jan 28, 2014 at 20:57
  • 2
    @Paranaix it does make a difference, it's just not the right syntax. The () at the end does value initialization. Commented Jan 28, 2014 at 20:59
  • 4
    @LoganMurphy see comment above. Also, note that values/pointers have nothing to do with heap/stack. You can have pointers to stack memory just fine. Allocation and lifetime have nothing to do with how you address that memory. Also note that stack/heap are implementation details. The proper C++ nomenclature would be automatic storage, dynamic storage and static storage. Commented Jan 28, 2014 at 21:00
  • 2
    Any particular reason why you're not just using a std::vector?
    – Homer6
    Commented Jan 28, 2014 at 21:00

2 Answers 2

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int* array2 = array1;

assigns one pointer to another, i.e. it copies an address stored in array1 and makes array2 to point to this address as well.

If you want to make a deep copy while still using pointers you could use memcpy:

int* array2 = new int[10];
memcpy(array2, array1, 10 * sizeof(int));

which is ghastly C-style approach that you should avoid always when it is possible.


The only reasonable solution that I can think of is using std::array or std::vector instead of
C-style arrays. std::vector unlike an array is an object that has its own assignment operator (as well as copy constructor) that copies it for you the way you would expect it:

std::vector<int> vec1(10, 0);  // 10 numbers initialized to 0
std::vector<int> vec2 = vec1;  // note this actually calls copy constructor
std::vector<int> vec3(vec1);   // the same as previous line
vec3 = vec1;                   // assignment that makes a deep copy for you

You can start with an empty std::vector and keep pushing new elements to it using its push_back method and retrieve its size at any time calling vec.size(). Additionally: you are not responsible for cleaning up the memory where its elements were stored - if you use it as I pointed out in the above code, these are objects with automatic storage duration that clean up the memory for you when they go out of scope.

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  • Further: vector keeps track of its size (actually used elements), and can be resized. Pretty much everything the OP is trying to do, vector already does.
    – Ben Voigt
    Commented Jan 28, 2014 at 21:03
  • +1 std::vector should be preferred in this case. Please read amazon.com/The-Programming-Language-4th-Edition/dp/0321563840 for a more complete rationale outlining the c+11 standard library and RAII.
    – Homer6
    Commented Jan 28, 2014 at 21:03
1

Your first attempt doesn't copy the contents of the array, it simply creates a new pointer that points to the beginning of the array.

Your method of adding a value looks correct.

The array itself does not remember which members you have assigned values to. If you want to keep track of how many elements are "filled", you'll have to do that yourself. You could wrap the array in, say, a template class, and perhaps call it myVector.

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