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I am studying for an exam I have next week and am having troubles understanding Dynamic memory allocation. I have a question given which I dont know how to answer;

line 4: int *arr = new int[3];

Write a function that includes the line 4 above and returns the size of the memory location occupied by variable arr. Use the signature:

int size_of_variable_star_arr() ;

I assume I should be using both a main.cpp and a function.cpp - the main file should contain the array variables, while the function file should contain the array that returns it.

Not entire sure what to do here though in order to return the size of the memory location.

 //Main.cpp
 #include <iostream>
using namespace std;

int main(){
//int *arr = new int[3];

arr[0] = 1;
arr[1] = 2; 
arr[2] = 3;
arr[3] = 4;

cout << "Array: ";
}


 //function.cpp
 #include <iostream>
 using namespace std;

 int size_of_variable_star_arr(){
 int *arr = new int[3];
   for(int i = 0; i < 4; i++){
       cout << arr[i] << " ";
  }
  return 0;
}
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  • Err that's a very weird assignment, are you sure that you're being asked to write a function that dynamically allocates an array of some hard coded size and returns that size? If so, it's easy enough, just... bizarre int foo( int*& bar ) { const int size = 3; bar = new int[size]; return size; }
    – George
    Jul 11, 2018 at 5:47
  • @George Yes the question I provided is the exact question. I kind of understand what you've provided...however it asks me to follow the signature so I couldn't create the foo function with a pointer could I? Jul 11, 2018 at 5:50
  • If your signature is the one mentioned, you should delete[] the array before returning, since the allocated memory will have no more pointer pointing to it, and except through a global variable, you will not be able to communicate the pointer to the caller. And the allocation will be lost. And by default, there is no GC in C++. Jul 11, 2018 at 5:53
  • 1
    the size, in bytes, is 3 * sizeof(int) Jul 11, 2018 at 5:53
  • You should make use of the sizeof() function. It is built-in without any header. Eg. int size = size of(*arr); will give the size of the int datatype. Jul 11, 2018 at 5:53

1 Answer 1

1

This is a really strange question, but here's the answer anyway:

int size_of_variable_star_arr() {
    int *arr = new int[3];
    delete [] arr;
    return sizeof(arr);
}

Notes:

  • I added delete [] to undo the (unnecessary) new
  • It returns the size of variable arr, as stated in the question. Not the size of the memory block which arr points to.
6
  • I didn't know the sizeof method existed, thankyou for enlightening me on how it can be used. This subject is run by people who barely speak english so that must be why these questions are strange. Thanks a lot for the help! Jul 11, 2018 at 5:59
  • Let me fix that for you: This subject is run by people who barely know C++ :-)
    – paxdiablo
    Jul 11, 2018 at 6:00
  • @AlexanderMoshos: If that's the case, then maybe they ask for the size of the memory block, which arr points to (that would be a little bit more logical to ask). In that case, the solution will be different, so if you need the solution for this case, please ask a new question.
    – geza
    Jul 11, 2018 at 6:01
  • @geza Regardless of which question they were referring to, I think the main concept here is understanding the delete and sizeof methods, which I seem to know well enough thanks to you :) Thankyou for the help all! Jul 11, 2018 at 6:05
  • @AlexanderMoshos: no problem :) Just to be absolutely sure that you understand sizeof, sizeof(arr) returns the size of the pointer itself, not the size of the memory block it points to. So, no matter how big array you allocate at new int[...], it will return the same value: the size of a pointer, which is typically 4 on a 32-bit, and 8 on a 64-bit compilation.
    – geza
    Jul 11, 2018 at 6:14

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