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I need to merge three 2D arrays into a 3D one.

I'm using unique_ptr to reference the 2D arrays.

Im quite new to smart pointers and C++ in general, so chances are it's an obvious mistake.

int imgsize = 15;
std::unique_ptr<float[]> redptr(new float[imgsize]);
std::unique_ptr<float[]> greenptr(new float[imgsize]);
std::unique_ptr<float[]> blueptr (new float[imgsize]);

redptr = redChannel._data;
greenptr = greenChannel._data;
blueptr = blueChannel._data;

float * colourArr[3] = {redptr,greenptr,blueptr};
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2  
I see no multidimensional array whatsoever in this code snippet. (also, std::vector) –  R. Martinho Fernandes Mar 26 '13 at 15:12
    
What are you trying to do? –  Etienne de Martel Mar 26 '13 at 15:14

1 Answer 1

up vote 2 down vote accepted

The idea behind a std::unqiue_ptr is that the std::unique_ptr has sole ownership of the pointed to object. Structuring the code as posted contradicts this premise, as another variable now has a pointer to the object owned by the std::unique_ptr. The posted code is dangerous as it is a potential source of dangling pointers (once the std::unique_ptr goes out of scope the pointed to object will be destructed but the elements of colourArr would still point to the, now destructed, objects).

Instead of using std::unique_ptr and explicitly dynamically allocating memory suggest using a std::vector<std::vector<float>> instead. This will manage the memory and provide array style access via operator[]:

// Construct a vector contain 3 elements,
// where each element is a vector containing 'imgsize' floats.
std::vector<std::vector<float>> colourArr(3, std::vector<float>(imgsize));
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Having a pointer to the object owned by the unique pointer is common and doing so safely is quite within the grasp of most programmers. –  Puppy Mar 26 '13 at 15:13
    
thanks for enlighting me on this - seems logical now –  mish Mar 26 '13 at 15:17
    
@hmjd : Having an object's address in no way implies ownership of said object... –  ildjarn Mar 26 '13 at 21:21
    
@ildjarn, updated and I agree with your comment. Thanks. –  hmjd Mar 26 '13 at 22:59

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