Array size at run time without dynamic allocation is allowed?

syaz picture syaz · Apr 10, 2009 · Viewed 53.9k times · Source

I've been using C++ for a few years, and today I saw some code, but how can this be perfectly legal?

int main(int argc, char **argv)
{
    size_t size;
    cin >> size;
    int array[size];
    for(size_t i = 0; i < size; i++)
    {
        array[i] = i;
        cout << i << endl;
    }

    return 0;
}

Compiled under GCC.

How can the size be determined at run-time without new or malloc?

Just to double check, I've googled some and all similar codes to mine are claimed to give storage size error.

Even Deitel's C++ How To Program p. 261 states under Common Programming Error 4.5:

Only constants can be used to declare the size of automatic and static arrays.

Enlight me.

Answer

mmx picture mmx · Apr 10, 2009

This is valid in C99.

C99 standard supports variable sized arrays on the stack. Probably your compiler has chosen to support this construct too.

Note that this is different from malloc and new. gcc allocates the array on the stack, just like it does with int array[100] by just adjusting the stack pointer. No heap allocation is done. It's pretty much like _alloca.