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I have a list of 2D arrays:

float a[][9] = { ... }
float b[][9] = { ... }
float c[][9] = { ... }

I want to have another array of pointers that point to each of the 2D arrays, like this:

what_should_be_here?? arr[] = { a, b, c }

How to achieve this?

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I would rework the design. Otherwise I would write something and see what the compiler says it expects –  Karthik T Jan 25 '13 at 5:25
    
@KarthikT so what's the better design? –  Mifeng Jan 25 '13 at 5:30
    
It depends on the situation. Typically I find that most multidimentional arrays can be more cleanly translated to 1D struct arrays. –  Karthik T Jan 25 '13 at 5:44

1 Answer 1

up vote 5 down vote accepted

Use typedef to simplify declaration. Each of the element of arr is float (*)[9]. Say this type is SomeType. Then {a,b,c} means you need an array of three elements of type SomeType.

SomeType arr[] = {a,b,c};

Now the question is, what is SomeType? So here you go:

typedef float (*SomeType)[9]; //SomeType is a typedef of `float (*)[9]`

SomeType arr[] = {a,b,c}; //this will compile fine now!

As I said, use typedef to simplify declaration!

I would choose a better name for SomeType:

typedef float (*PointerToArrayOf9Float)[9];

PointerToArrayOf9Float arr[] = {a,b,c}; 

That is a longer name, but then it makes the code readable!

Note that without typedef, your code will look like this:

float (*arr[])[9] = {a,b,c};

which is UGLY. That is why I will repeat:

Use typedef to simplify declaration!

Hope that helps.

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thanks! it works and thanks again for the explanation. –  Mifeng Jan 25 '13 at 5:37

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