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What is the difference between a double ** and a double (*)[2].

If I understand well, a double ** is a pointer to a pointer of double, so it could be a 2D array of any size whereas double (*)[2] is a pointer to an array of double[2].

So if it is right, how can it be passed successfully to a function.

For instance in :

void pcmTocomplex(short *data, double *outm[2])

if I pass a double (*)[2] as a parameter, I have the following warning :

warning: passing argument 2 of ‘pcmTocomplex’ from incompatible pointer type
note: expected ‘double **’ but argument is of type ‘double (*)[2]’

What is the right way to pass a double (*)[2] to a function ?

EDIT : calling code

fftw_complex        *in;             /* typedef on double[2] */
in = (fftw_complex *) fftw_malloc(sizeof(fftw_complex) * 1024);

pcmTocomplex(data, in);
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show us the calling code –  Karoly Horvath Mar 9 '12 at 11:15
1  
double *[2] is not the same as double (*)[2]. –  Charles Bailey Mar 9 '12 at 11:22
    
Read section 6 of the comp.lang.c FAQ. –  Keith Thompson Mar 9 '12 at 11:25
    
possible duplicate of How do I use arrays in C++? –  FredOverflow Mar 9 '12 at 11:25
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3 Answers

up vote 1 down vote accepted
void pcmTocomplex(short *data, double *outm[2])

This second parameter , you seen in this function prototype imply array of double pointers and not actually what you want.

void pcmTocomplex(short *data, double (*outm)[2])

This how it should look like if you want , what you expect.

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double *outm[2] is not the same as double (*outm)[2]. The first is an array of pointers (and is equivalent to double ** in this context); the second is a pointer to an array.

If in doubt, use cdecl.

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You need to change second parameter type to this:

void pcmTocomplex(short *data, double (*outm)[2])

Note the second parameter is changed to double (*outm)[2].

Also note that in your code, double *outm[2] in the parameter is exactly same as double **outm.

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