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Suppose that I have the following c function:

int MyFunction( const float arr[] )
{
    // define a variable to hold the number of items in 'arr'
    int numItems = ...;

    // do something here, then return...

    return 1

}

How can I get into numItems the number of items that are in the array arr?

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1  
I remember that I used to make size as another argument for such kind of functions.. –  mihsathe Jul 28 '11 at 16:56
3  
possible duplicate of Number of elements in static array and dynamic array –  sth Jul 28 '11 at 17:07

7 Answers 7

up vote 11 down vote accepted

Unfortunately you can't get it. In C, the following 2 are equivalent declarations.

int MyFunction( const float arr[] );
int MyFunction( const float* arr );

You must pass the size on your own.

int MyFunction( const float* arr, int nSize );

In case of char pointers designating strings the length of the char array is determined by delimiter '\0'.

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1  
Great answer. Which function definition is preferred: the first one (using arr[]) or the second one (using *arr[])? –  user3262424 Jul 28 '11 at 17:08
    
@user3262424: You mistyped in your comment - be careful! :) I think choosing between float arr[] and float* to pass an array is a matter of taste –  Armen Tsirunyan Jul 28 '11 at 17:10
    
Thank you Armen. Sorry for the typo. –  user3262424 Jul 28 '11 at 20:27

Either you pass the number of elements in another argument or you have some convention on a delimiting element in the array.

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I initially suggested this:

 int numItems = sizeof(arr)/sizeof(float);

But it will not work since arr is not defined in the current context and it's being interpreted as a simple pointer. So in this case, you will have to give the number of elements as parameter. The suggested statement would otherwise work in the following context:

int MyFunction()
{
     float arr[10];
     int numItems = sizeof(arr)/sizeof(float);
     return numItems;// returns 10
}
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2  
arr is a function argument. It's just a pointer, not an array — won't work. ideone.com/sQqWP –  sidyll Jul 28 '11 at 16:59
2  
This is incorrect. arr is not of type float [] when it is a function parameter. Instead it is float *. –  Susam Pal Jul 28 '11 at 17:04
    
@Susam: May that's what I said? –  sidyll Jul 28 '11 at 17:05
2  
@sidyll Yes, we are saying the same things here. +1-ed you. –  Susam Pal Jul 28 '11 at 17:08
1  
@sidyll @ Susam Pal I +1'ed you both, you were right :) –  Ioan Paul Pirau Jul 28 '11 at 17:14

You can't. The number will have to be passed to MyFunction separately. So add a second argument to MyFunction which should contain the size.

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As I said in the comment, passing it as another argument seems to be only solution. Otherwise you can have a globally defined convention.

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This is not possible unless you have some predetermined format of the array. Because potentially you can have any number of float. And with the const float arr[] you only pass the array's base address to the function of type float [] which cannot be modified. So you can do arr[n] for any n .

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better than

int numItems = sizeof(arr)/sizeof(float);

is

int numItems = sizeof(arr)/sizeof(*arr);
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