How Does sizeof(Array) work

Question

How does c find at run time the size of array? where is the information about array size or bounds of array stored?

Answer 1

sizeof(array) is implemented entirely by the C compiler. By the time the program gets linked, what looks like a sizeof() call to you has been converted into a constant.

Example: when you compile this C code:

#include <stdlib.h>
#include <stdio.h>
int main(int argc, char** argv) {
    int a[33];
    printf("%d\n", sizeof(a));
}

you get

    .file   "sz.c"
    .section        .rodata
.LC0:
    .string "%d\n"
    .text
.globl main
    .type   main, @function
main:
    leal    4(%esp), %ecx
    andl    $-16, %esp
    pushl   -4(%ecx)
    pushl   %ebp
    movl    %esp, %ebp
    pushl   %ecx
    subl    $164, %esp
    movl    $132, 4(%esp)
    movl    $.LC0, (%esp)
    call    printf
    addl    $164, %esp
    popl    %ecx
    popl    %ebp
    leal    -4(%ecx), %esp
    ret
    .size   main, .-main
    .ident  "GCC: (GNU) 4.1.2 (Gentoo 4.1.2 p1.1)"
    .section        .note.GNU-stack,"",@progbits

The $132 in the middle is the size of the array, 132 = 4 * 33. Notice that there's no call sizeof instruction - unlike printf , which is a real function.

Answer 2

sizeof is pure compile time in C++ and C prior to C99. Starting with C99 there are variable length arrays:

// returns n + 3
int f(int n) {
    char v[n + 3];

    // not purely a compile time construct anymore
    return sizeof v;
}

That will evaluate the sizeof operand, because n is not yet known at compile time. That only applies to variable length arrays: Other operands or types still make sizeof compute at compile time. In particular, arrays with dimensions known at compile time are still handled like in C++ and C89. As a consequence, the value returned by sizeof is not a compile time constant (constant expression) anymore. You can't use it where such a value is required - for example when initializing static variables, unless a compiler specific extension allows it (the C Standard allows an implementation to have extensions to what it treats as constant).

Answer 3

sizeof() will only work for a fixed size array (which can be static, stack based or in a struct).

If you apply it to an array created with malloc (or new in C++) you will always get the size of a pointer.

And yes, this is based on compile time information.

Answer 4

sizeof gives the size of the variable, not the size of the object that you're pointing to (if there is one.) sizeof(arrayVar) will return the array size in bytes if and only if arrayVar is declared in scope as an array and not a pointer.

For example:

char myArray[10];
char* myPtr = myArray;

printf("%d\n", sizeof(myArray)) // prints 10 
printf("%d\n", sizeof(myPtr)); // prints 4 (on a 32-bit machine)

Answer 5

sizeof(Array) is looked up at compile time, not at run time. The information is not stored.

Are you perhaps interested in implementing bounds checking? If so, there are a number of different ways to go about that.