2

I am currently working on a binary file format where the data is represented as an array of floats and the data is always supposed to be written with the little endian representation. So, currently I do something as follows:

float * swapped_array = new float[length_of_array];

for (int i = 0; i < length_of_array; ++i) {
    swapped_array[i] = swap_float(input_array[i]);
}

Here the swap_float swaps the four bytes of the floating point value. Now, I was wondering if there is a way to do this in a cross platform way without iterating using this for loop and making it more computationally efficient.

2

Looks to me you can swap the bytes by using some pointer arithmetic:

byte mem;
byte* first = (byte*) floatpointer;
mem = *first;
*first = *(first+0x03);
*(first+0x03) = mem;
first++;
mem = *first;
*first = *(first+0x01);
*(first+0x01) = mem;
  • Should I not take the size of float on the given platform into account somehow... I think this assumes that the float is 4 bytes? – Luca Dec 15 '14 at 19:50
  • Well it is possible, will do a small rewrite. – Willem Van Onsem Dec 15 '14 at 19:52
  • Yeah, I will get it sorted. Thanks. – Luca Dec 15 '14 at 19:54

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