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I've got this class and a two dimensional array of it's objects:

class Foo
{
public:
    Foo(int x)
    {
        value = x;
    }
    int value;
};

Foo foo1(1), foo2(2), foo3(3), foo4(4);
Foo* fooArray1[4][2] = { {&foo1, &foo2}, {&foo2, &foo3}, {&foo3, &foo4}, {&foo4, &foo1} };

Now I want to reference to the second dimension of this array. Somehow:

Foo* fooArray3[2] = fooArray1[2];

But my compiler keeps telling me:

Unallowed Assignment »Foo* (*)[2]« to »Foo* [2]«

The only version i got to work was:

Foo** fooArray2 = fooArray1[3];

But with this version I have to access fooArray2 with the star operator, what I don't want to:

cout << "fooArray2[0]: " << (*fooArray2)[0].value << " fooArray2[1]: " << (*fooArray2)[1].value << endl;
share|improve this question
    
you have it the wrong way around. it should be (*fooArray2[1]).value or using the arrow operator. The order you use causes undefined behavior. – Johannes Schaub - litb Mar 6 '13 at 10:18
2  
(*fooArray2)[0].value is just illogical, you want (*(fooArray2[0])).value or equivalent: fooArray2[0]->value. – Antoine Mar 6 '13 at 10:24
    
Thank you! fooArray2[0]->value is nice! – Reini Mar 6 '13 at 10:26
up vote 0 down vote accepted

I think what you want is this:

Foo* (&fooArray3)[2] = fooArray1[3];
std::cout << fooArray3[0]->value; // Prints 4

If you're using C++11, however, life is much more pleasant:

auto& fooArray3 = fooArray1[3];
std::cout << fooArray3[0]->value; // Prints 4

EDIT: As requested:

Foo* (*fooArray3)[2];
⋮
fooArray3 = &fooArray1[3];
std::cout << (*fooArray3[0])->value;
share|improve this answer
    
Currently I can't use C++11. Could you give another example where you initialize fooArray3 with (0/NULL) and assign it in a seperate statement? Thank You! – Reini Mar 6 '13 at 10:40
    
Thanks for the Edit. But This will use * at the cout. This was I don't wanted to. So I think I'm going to use the Foo** version with -> as suggested by Antoine – Reini Mar 6 '13 at 10:54

It seems that you want pointer to an array. 2nd dimension of fooArray1 constitutes 2 elements. There is a special syntax for that as below:

Foo *(*fooArray3)[2] = &fooArray1[2];  // compiles

Above syntax means: fooArray3 is a pointer to a pointer to array of 2 Foo elements.

However I believe you may not want this much complex syntax. You should change your design where you can hold the data with simple data types or std containers.

share|improve this answer
    
Yeah, this compiles. Thanks! But could you make an example how to access elements of fooArray3 with cout? (Btw: Foo is a more complex class in the Program I'm maintaining) – Reini Mar 6 '13 at 10:30

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