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As we know, we can use int (*p)[10] to define a pointer which points to an int[10] array, so if we have p=0 and sizeof(int)==4, p+1 will be 0+10*4 = 40, this works because the compiler knows what p is when compiling.

And then what if we do it like this:

int main()
{
    int sz = 10;
    int (*p)[sz];
}

in other words, nobody would know the sz until the program runs there. I supposed this should not be working, but it does work..

So my question is, how it works? I mean, is there any place that store a value's type in c at runtime? If not, how this could work? Of this is just compiler-related?

I am using gcc version 4.4.5 (Ubuntu/Linaro 4.4.4-14ubuntu5), and you can test it with the following code.

#include <stdlib.h>
#include <stdio.h>
#include <string.h>

int main()
{
    int COL ;
    int ROW ;
    scanf("%d %d", &COL, &ROW);
    int (*p)[COL];
    int *mem = (int*)malloc(sizeof(int)*COL*ROW);
    memset(mem,0,sizeof(int)*COL*ROW);
    p = (int (*)[10])mem;

    printf("0x%p\n", p);
    printf("COL=%d\n", p+1, (((int)(p+1))-((int)p))/sizeof(int));

    mem[2*COL+0] = 1;
    printf("%d\n", p[2][0]);
    mem[2*COL+5] = 2;
    printf("%d\n", p[2][5]);
    mem[6*COL+7] = 3;
    printf("%d\n", p[6][7]);

    p[1][2] = 4;
    printf("%d\n", mem[1*COL+2]);

    free(p);

    return 0;
}

I hope I am not asking a stupid question nor making stupid mistake...

share|improve this question
    
i get a warning for that: source.cpp:10:17: error: ISO C++ forbids variable length array 'p' [-Wvla] –  Minion91 Sep 28 '12 at 9:07
    
@Minion91, yes it should be like that, but gcc says nothing and the program works.. –  Marcus Sep 28 '12 at 9:09
    
C allows variable length arrays(VLA) since c99 standard. So it also does allow pointer to arrays of variable lentghs.On the other hand C++ doesn't allow VLAs. C++ provides std::vector & std::array to acheive the same functionality. –  Alok Save Sep 28 '12 at 9:10
    
sizeof is a compile time operator except when operating on variable length arrays, the C standard requires sizeof to determine the size of an VLA at runtime. –  Alok Save Sep 28 '12 at 9:13
1  
The compiler will generate code to perform multiplication by sz instead of multiplying by 10. That's pretty much it. –  Alexey Frunze Sep 28 '12 at 9:27

1 Answer 1

up vote 2 down vote accepted

Pointer arithmetic on variable length array types is well defined per 6.5.6:10, which has example code very similar to yours. Per 6.5.3.4:2, when sizeof is applied to a variable length array, the operand is evaluated at runtime to determine the size, so variable length array pointer arithmetic proceeds likewise.

Variable length arrays (6.7.6.2:4) have been part of the standard since the second edition (ISO/IEC 9899:1999 as amended); they are however an optional feature that conformant implementations do not have to support (6.10.8.3).

share|improve this answer
    
how to evaluate it? is there something say p is a int(*)[sz], and find sz to evaluate p..? –  Marcus Sep 28 '12 at 9:12
    
@Marcus the implementation finds the initial declaration of p i.e. int (*p)[sz], and evaluates sz. –  ecatmur Sep 28 '12 at 9:16
    
so the when the compiler see p+1, it will generate something like offset = sizeof(int)*sz; retrun p+offset? –  Marcus Sep 28 '12 at 9:20
    
@Marcus exactly. –  ecatmur Sep 28 '12 at 9:20
    
thanks, and that's quite straightforward... I should have figured out. –  Marcus Sep 28 '12 at 9:24

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