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I have an int array and I need to find the number of elements in it. I know it has something to do with sizeof but I'm not sure how to use it exactly.

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5  
Take a look at this. stackoverflow.com/questions/4081100/… –  twain249 Apr 24 '12 at 1:34
    
If you're on MSVC, you have _countof –  Mahmoud Al-Qudsi Apr 24 '12 at 1:42
    
While everyone has the solution, I want to point out that it is very likely that there is no way to find the size of a dynamic array unless you have recorded the size because sizeof(a) of the pointer a is the size of the pointer int *a = new int[10] in this case finding sizeof(*a) is 4 byte. So it's important to keep your array size checking. –  CppLearner Apr 24 '12 at 2:07

5 Answers 5

If you have your array in scope you can use sizeof to determine its size in bytes and use the division to calculate the number of elements:

#define NUM_OF_ELEMS 10
int arr[NUM_OF_ELEMS];
size_t NumberOfElements = sizeof(arr)/sizeof(arr[0]);

If you receive an array as a function argument or allocate an array in heap you can not determine its size using the sizeof. You'll have to store/pass the size information somehow to be able to use it:

void DoSomethingWithArray(int* arr, int NumOfElems)
{
    for(int i = 0; i < NumOfElems; ++i) {
        arr[i] = /*...*/
    }
}
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int a[20];
int length;
length = sizeof(a) / sizeof(int);

and you can use another way to make your code not be hard-coded to int

Say if you have an array array

you just need to:

int len = sizeof(array) / sizeof(array[0]);
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I personally think that sizeof(a) / sizeof(*a) looks cleaner.

I also prefer to define it as a macro:

#define NUM(a) (sizeof(a) / sizeof(*a))

Then you can use it in for-loops, thusly:

for (i = 0; i < NUM(a); i++)
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1  
You could do this, but it would result in calculating the size every time it does the test in the for loop, so once every iteration. And so it would be doing division every single time thru the loop. It would be more efficient to assign the result of NUM(a) to an instance variable right above the loop, and use that value in the loop. –  Gavin Mar 4 at 16:42
template <typename Type, int N>
inline int getElementCount(Type (&array)[N])
{
    (void)array; // (required to avoid a spurious warning in MS compilers)
    (void)sizeof(0[array]); // This line should cause an error if you pass an object with a user-defined subscript operator
    return N;
}
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I used following code as suggested above to evaluate number of elements in my 2-dimensional array:

#include <stdio.h>
#include <string.h>

void main(void)
{
    char strs[3][20] =
    {
        {"January"},
        {"February"},
        {""}
    };

    int arraysize = sizeof(strs)/sizeof(strs[0]);

    for (int i = 0; i < arraysize; i++)
    {
        printf("Month %d is: %s\n", i, strs[i]);
    }

}

It works nicely. As far as I know you can't mix up different data types in C arrays and also you should have the same size of all array elements (if I am right), therefore you can take advantage of that with this little trick:

  1. count number of bytes with sizeof() function from whole 2d array (in this case 3*20 = 60 bytes)
  2. count number of bytes with sizeof() function from first array element strs[0] (in this case 20 bytes)
  3. divide whole size with size of one element what will give you number of elements

This snipped should be portable for 2d arrays in C however in other programming languages it could not work because you can use different data types within array with different sizes (like in JAVA).

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