Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I am amidst C++ multidimensional array pointer hell. I have a function that takes two pointers to two multi-dimensional arrays. The function transforms the input array into the output array.

void transpose(float * in, float * out) throw() {
  size_t numvars = dataset.getVariables().size()
  size_t numsegs = dataset.getSegments().size();

I am having trouble dynamically allocating the the buffer for the output array. I thought the following would work because arrays decayed to pointers automatically:

size_t numvars = dataset.getVariables().size()
size_t numsegs = dataset.getSegments().size();
float tData[numvars][numsegs];
transpose(data, tData);

But I get the error:

no known conversion for argument 2 from ‘float [(((sizetype)(((ssizetype)numvars) + -1)) + 1)][(((sizetype)(((ssizetype)numsegs) + -1)) + 1)]’ to ‘float*’

So why does this fail? And what's the correct/best way to dynamically allocate size for a 2-dimensional array so the transpose function can do its thing?

share|improve this question
Don't use pointers. Use proper data structures and pass them by (const) reference. – Kerrek SB Mar 9 '14 at 22:28
tData is not a float* is it? Hence the error message. Contrary to what you state, transpose does not take pointers to two multidimensional arrays. – Ben van Gompel Mar 9 '14 at 22:35
I thought it would be since arrays decay to pointers. Is that ONLY true for single dimension arrays and NOT for multi dimension arrays? – Joseph Malicke Mar 9 '14 at 22:36
An n-dimensional array decays into a pointer to (n-1)-dimensional array. It only "forgets" its first dimension. – Brian Mar 9 '14 at 22:40
@Brian Bi - that's true for arrays with fixed dimension. float tData[numvars][numsegs] is a compiler extension and I do not see what data type tData would decay to. int (*)[numsegs] is not a type. – M.M Mar 10 '14 at 0:29

1 Answer 1

up vote 2 down vote accepted
void transpose(float * in, float * out)
float tData[numvars][numsegs];
transpose(data, tData);

tData is of type float[numvars][numsegs] which can decay only to float (*)[numsegs].
If out expects an address of first element in this 2D array, then you could simply do:

transpose(data, &tData[0][0]);


void foo(float* pF){}

int main()
    float f, arr[10], arr2d[5][7];

    foo(&f);            // perfectly straightforward
    foo(arr);           // float[10] decays to float*
    foo(arr2d[0]);      // float[7] decays to float*

    foo(&arr2d[0][0]);  // perfectly straightforward
    foo(arr2d);         // float[5][7] decays to float (*) [7] ~> float* ???
                        // ERROR: can't convert decayed float (*) [7] to float *

Also note that float tData[numvars][numsegs]; doesn't "dynamically allocate" an array. It is a variable-length array with automatic storage duration (a.k.a. VLA).

However, instead of C-style approach based on pointers, you might consider using std::vector :

typedef std::vector<std::vector<float> > FloatMatrix;

void transpose(const FloatMatrix& in, FloatMatrix& out);
FloatMatrix data;
FloatMatrix fm = FloatMatrix(numvars, std::vector<float>(numsegs));
transpose(data, fm);
share|improve this answer
The transpose function knows the size that tData is supposed to be. I added the code in an edit to show you that. Yeah, transpose is not really a safe function. I get that. Still looking for an answer to my question though. – Joseph Malicke Mar 9 '14 at 22:31
@jakeliquorblues: Fair enough. I've edited my answer. – LihO Mar 9 '14 at 22:34
So data[numvars] implicitly converts to char * (or &data[0]) but data[numvars][numsegs] does not implicitly convert to anything? – Joseph Malicke Mar 9 '14 at 22:38
@jakeliquorblues: See another edit. – LihO Mar 9 '14 at 22:48
"It is a variable-length array with automatic storage duration (a.k.a. VLA)." - C++ does not have VLAs, they are a C99 thing. OP must be using a compiler extension (and as such, any behaviour involving this array is also part of the compiler extension). AFAIK, in C99 tData doesn't decay, and tData[x] decays to float *. – M.M Mar 10 '14 at 0:27

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.