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Why isn't the size of an array sent as a parameter the same as within main?

#include <stdio.h>

void PrintSize(int p_someArray[10]);

int main () {
    int myArray[10];
    printf("%d\n", sizeof(myArray)); /* As expected, 40 */
    PrintSize(myArray);/* Prints 4, not 40 */
}

void PrintSize(int p_someArray[10]){
    printf("%d\n", sizeof(p_someArray));
}
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11 Answers 11

up vote 52 down vote accepted

No, array-type is implicitly converted into pointer type when you pass it in to a function.

So,

void PrintSize(int p_someArray[10]){
printf("%zu\n", sizeof(p_someArray));
}

and

void PrintSize(int *p_someArray){
printf("%zu\n", sizeof(p_someArray));
}

are equivalent. So what you get is the value of sizeof(int*)

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Ok but is there a way to print the size within the function? –  Chris_45 Dec 29 '09 at 15:31
    
In C++ you can pass the array by reference to the function but you cannot do that in C. –  Prasoon Saurav Dec 29 '09 at 15:32
7  
You'd need to pass the size of the array as a separate parameter. Then the size of the array would be sizeof(*p_someArray) * length –  Aric TenEyck Dec 29 '09 at 15:38
9  
Minor nit: sizeof operator returns an object of type size_t, so you should print it with %zu (C99), or cast it to int if you use %d like above in your printf calls. –  Alok Singhal Dec 29 '09 at 15:41
4  
Alok's statement is correct. Using incorrect format specifier in printf(..) is UB. –  Prasoon Saurav Dec 29 '09 at 15:55

It's a pointer, that's why it's a common implementation to pass the size of the array as a second parameter to the function

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As others have stated, arrays decay to pointers to their first element when used as function parameters. It's also worth noting that sizeof does not evaluate the expression and does not require parentheses when used with an expression, so your parameter isn't actually being used at all, so you may as well write the sizeof with the type rather than the value.

#include <stdio.h>

void PrintSize1 ( int someArray[][10] );
void PrintSize2 ( int someArray[10] );

int main ()
{
    int myArray[10];
    printf ( "%d\n", sizeof myArray ); /* as expected 40 */
    printf ( "%d\n", sizeof ( int[10] ) ); /* requires parens */
    PrintSize1 ( 0 ); /* prints 40, does not evaluate 0[0] */
    PrintSize2 ( 0 ); /* prints 40, someArray unused */
}

void PrintSize1 ( int someArray[][10] )
{
    printf ( "%d\n", sizeof someArray[0] );
}

void PrintSize2 ( int someArray[10] )
{
    printf ( "%d\n", sizeof ( int[10] ) );
}
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So, you will need to pass the lenght of the array as a second parameter. When you are writing code, in which you both declare an array of constant size, and later pass that array to a function, it is a pain to have the array-length constant show up several places in your code...

K&R to the rescue:

#define N_ELEMENTS(array) (sizeof(array)/sizeof((array)[0])) 

So now you can do e.g:

int a[10];
...
myfunction(a, N_ELEMENTS(a));
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Because arrays decay into pointers when they are passed as parameters. This is how C works, although you can pass "arrays" in C++ by reference and overcome this issue. Note that you can pass arrays of different sizes to this function:

 // 10 is superfluous here! You can pass an array of different size!
void PrintSize(int p_someArray[10]);
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In the C language, there is no method to determine the size of an unknown array, so the quantity needs to be passed as well as a pointer to the first element.

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1  
In general, you should always pass the size (number of elements) of an array along with an array to a function, unless you have some other means of determining its size (e.g., a null character terminator at the end of char[] string arrays). –  David R Tribble Dec 29 '09 at 16:48

You can't pass arrays to functions.

If you really wanted to print the size, you could pass a pointer to an array, but it won't be generic at all as you need to define the array size for the function as well.

#include <stdio.h>

void PrintSize(int (*p_anArray)[10]);

int main(void) {
    int myArray[10];
    printf("%d\n", sizeof(myArray)); /* as expected 40 */
    PrintSize(&myArray);/* prints 40 */
}

void PrintSize(int (*p_anArray)[10]){
    printf("%d\n", (int) sizeof(*p_anArray));
}
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In c++ you can pass an array by reference for this very purpose :

void foo(int (&array)[10])
{
    std::cout << sizeof(array) << "\n";
}
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Arrays are only loosely sized. For the most part, an array is a pointer to memory. The size in your declaration only tells the compiler how much memory to allocate for the array - it's not associated with the type, so sizeof() has nothing to go on.

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1  
Sorry, this answer is misleading. Neither are arrays "loosely sized", nor are they "pointers to memory". Arrays have a very exact size, and the places where an array name stands for a pointer to its first element is precisely specified by the C standard. –  Jens May 15 '11 at 11:50

The behavior is by design.

Same syntax in function parameter declaration means completely different thing than in local variable definition.

The reason is described in other answers.

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The behavior you found is actually a big wart in the C language. Whenever you declare a function that takes an array parameter, the compiler ignores you and changes the parameter to a pointer. So these declarations all behave like the first one:

void func(int *a)
void func(int a[])
void func(int a
typedef int array_plz[5];
void func(array_plz a)

a will be a pointer to int in all four cases. If you pass an array to func, it will immediately decay into a pointer to its first element. (On a 64-bit system, a 64-bit pointer is twice as large as a 32-bit int, so your sizeof ratio returns 2.)

The only purpose of this rule is to maintain backwards compatibility with historical compilers that did not support passing aggregate values as function arguments.

This does not mean that it’s impossible to pass an array to a function. You can get around this wart by embedding the array into a struct (this is basically the purpose of C++11’s std::array):

struct array_rly {
int a[5];
};
void func(struct array_rly a)
{
printf("%zd\n", sizeof(a.a)/sizeof(a.a[0]));  /* prints 5 */
}

or by passing a pointer to the array:

void func(const int (*a)[5])
{
printf("%zd\n", sizeof(*a)/sizeof((*a)[0]));  /* prints 5 */
}

In case the array size isn’t a compile-time constant, you can use the pointer-to-array technique with C99 variable-length arrays:

void func(int n, const int (*a)[n])
{
printf("%zd\n", sizeof(*a)/sizeof((*a)[0]));  /* prints n */
}
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