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sizeof array of structs in C?
sizeof an array passed as function argument

Just trying to write a basic sum() function.

int sum(int arr[]) {
    int total = 0 , i = 0 , l = sizeof arr;

    for(i=0;i<l;i++) {
        total += arr[i];
    }

    return total;
}

l always equates to 4 (I know to eventually divide it by sizeof int)

Running Dev-C++ with default compiler options in Windows 7.

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marked as duplicate by rid, ouah, Jens Gustedt, Perception, Graviton Apr 23 '12 at 2:34

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2  
arr is a pointer, not an array. The syntax you use in the function declaration is just eye-candy for int sum(int *arr). You might like to read section 6 of the comp.lang.c FAQ. –  pmg Apr 22 '12 at 15:18
    
compile on/for a 64 bit machine you should see 8 as you are looking at the size of the pointer not the size of the array. –  dwelch Apr 22 '12 at 15:21
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1 Answer 1

As function arguments, arrays decay to pointers to the element type, so sizeof arr is sizeof(elem*).

You have to pass the number of elements as an extra argument, there is no way to determine that from the pointer to the array's first element (which is what is actually passed in that situation).

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If the question contains '4', post 'sizeof(pointer)' <g> –  Martin James Apr 22 '12 at 15:14
    
How do I point to the array itself instead of the first element? Passing the length as a second argument is not a weakness a programmer should have to adapt to. –  Dissident Rage Apr 22 '12 at 23:10
1  
If you have int arr[5];, then &arr gives you a pointer to an array of five int, int (*)[5]. The address is, however, the same as &arr[0], the address of the array's first element. What type of pointer you want depends on the situation. For summing the array elements, unless you want to have a different function for every size (int sum_5(int (*)[5]);, int sum_6(int (*)[6]);, you have to pass an int* and the number of elements. That's how C works. –  Daniel Fischer Apr 23 '12 at 8:31
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