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This is a question from Microsoft Test:

 main()
    {
        int a[2][3]= { (1,2,3),(4,5,6)};
        int (*ptr)[3] = &a[0];
        printf("%d %d\n", (*ptr)[1],(*ptr)[2]);
        ptr+=1;
        printf("%d %d\n", (*ptr)[1],(*ptr)[2]);

    }

Options given are:
1. segmentation fault
2. compiler error
3. bus error
4. run time error

I ran this code and I didn't get any of this. I got the following answer:
6 0
0 0

Can please help me understand what's happening?

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2  
main is missing a return type. This should cause a compile error unless you are using a very old or very liberal compiler. –  Charles Bailey Sep 25 '12 at 5:32
    
thanx :D i didn't pay attention to it –  Vaibhav Agarwal Sep 25 '12 at 5:36

2 Answers 2

The main issue is this line:

    int a[2][3]= { (1,2,3),(4,5,6)};

It is using parentheses instead of braces. The result of (1,2,3) is just 3, and the result of (4,5,6) is just 6. So this is equivalent to:

    int a[2][3]= { 3,6 };

Which in turn is equivalent to

    int a[2][3] = { {3,6,0}, {0,0,0} };

This line makes ptr point to a[0]:

    int (*ptr)[3] = &a[0];

This line

    printf("%d %d\n", (*ptr)[1],(*ptr)[2]);

is then equivalent to

    printf("%d %d\n", (*&a[0])[1],(*&a[0])[2]);

which can be simplified to

    printf("%d %d\n", (a[0])[1],(a[0])[2]);

or just

    printf("%d %d\n", a[0][1],a[0][2]);

This line

    ptr+=1;

makes ptr point to the next element of a, so it is equivalent to

    ptr=&a[1];

so the next line simplifies to

    printf("%d %d\n", a[1][1],a[1][2]);

The program effectively prints a[0][1], a[0][2], a[1][1] and a[1][2], so that's why you get 6,0,0,0.

Charles Baley points out that main() is missing the return type. This may be what they are getting at. The compiler would normally at least give a warning about that.

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1  
A C89 compiler like MS Visual C isn't obliged to complain about the lack of return type on main(). –  Jonathan Leffler Sep 25 '12 at 5:36
    
thanx :D and as charles pointed out i missed return statement. But, can you tell me what (*ptr)[3] = &a[0] is doing specifically? –  Vaibhav Agarwal Sep 25 '12 at 5:38
    
It (int (*ptr)[3] = &a[0];) defines ptr as a pointer to an array of 3 integers and initializes it with a pointer to the first array of 3 integers in a. –  Jonathan Leffler Sep 25 '12 at 5:39
    
So what if I had an array suppose {{1,2,3,4},{5,6,7,8}} and I had (*ptr)[3] = &a[0]? What are the arrays the (ptr) and (ptr+1) point to? –  Vaibhav Agarwal Sep 25 '12 at 5:45
    
@VaibhavAgarwal: If you didn't change the type of the array, then the extra values would be ignored. If you did change the type of a to int a[2][4], then the type of ptr would be incompatible. –  Vaughn Cato Sep 25 '12 at 5:48

Are you sure you copied the text correctly?

(1,2,3) is an expression with two sequence (',') operators; its value is 3. Likewise, the value of (4,5,6) is 6 ... which is the 6 that is being printed, at a[0][1] (since ptr points to a[0] and you print (*ptr)[1]); the 0 is a[0][2], which has default initialization of 0. Then you increment ptr, pointing it to a[1], so you print a[1][1] and a[1][2], which also have default initialization of 0.

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