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So in my program I have a function which passes into it a 2D array and I want to set another 2D array equal to that 2D array. I am coding this in C++ and can't quite get the syntax right. Right now I have the following:

void MyFunction(float **two_d_array){
    float newArray[4][4];
    //Set new array equal to two_d_array
}

two_d_array will also always be 4x4 so the dimensions themselves aren't an issue.

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What is the problem? Do you have an error? If yes, what is the error message? Or should we guess? – user93353 Jun 1 '13 at 6:11

I hope you are not passing a two-dimensional array as a double pointer to your function.

Anyways, you can just write

for (int i = 0; i < 4; i++)
    for (int j = 0; j < 4; j++)
        newArray[i][j] = two_d_array[i][j];

If you have another two-dimensional array (and not an array of pointers), then simply use memcpy():

void foo(float arr[][4])
{
    float newArray[4][4];
    memcpy(newArray, arr, sizeof(newArray));
}
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Thank you for the help. But what is wrong with passing it as a double pointer? The syntax for accessing elements will be the same, no? – user1855952 Jun 1 '13 at 6:14
    
@user1855952 The syntax will, just the semantics won't. Arrays are not pointers, pointers are not arrays, and two-dimensional arrays don't decay into double pointers but into a pointer to an array with the size of the second dimension. – user529758 Jun 1 '13 at 6:15
    
Okay, I see. thanks! – user1855952 Jun 1 '13 at 6:21
    
As we're in C++ I's suggest passing array by reference to avoid losing the extent information. typedef double d4x4[4][4]; void foo(d4x4& arr). Can save your life preventing to pass in a double[1][4]. – Balog Pal Jun 1 '13 at 8:35
1  
@BalogPal As we're in C++, you can entirely avoid arrays at all and just use an std::vector<std::vector<float> > instead. – user529758 Jun 1 '13 at 8:58

Yes, you must assign the second dimenson, and the first dimension passing by a integer parameter, it will look like this: void foo(float arr[][4], int dim);

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When you define a two dimentional array as

float a[4][4]

Its type is float [4][4].

if you want to pass float** to the function you can create your with float**

float** f = (float**) malloc(sizeof(float *)*4);
    for(int i=0;i<4;i++){
      f[i] = (float*) malloc(sizeof(float)*4);
    }
//initialize
MyFunction(f);

And Myfunction will be similar

void MyFunction(float **two_d_array){
    float newArray[4][4];
    for(int i=0;i<4;i++){
        float* one_d = & two_d_array[i][0];
        for(int j=0;j<4;j++){
            newArray[i][j] = one_d[j];
        }   
    }

}
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