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Can I cast a pointer to a double as type char *, then use that pointer to break the double into bytes?

Here's example code:

double data;
double *dblPoint = &data;
unsigned char *bytePoint = (unsigned char *)dblPoint;
unsigned char byteArray[sizeof (double)];
unsigned int i;

for(i = 0; i < sizeof(double); i++) {
    byteArray[i] = *(bytePoint + i);
}

byteArray is then transmitted via UART to another computer and reconstructed (bytesReceived contains the incoming data):

unsigned char bytesReceived[sizeof (double)];

double reconstData;
double *newDblPoint;
unsigned int i;

newDblPoint = bytesReceived;
reconstData = *dblPoint;

So, after all that, would data == reconstData?

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3 Answers 3

up vote 1 down vote accepted

Your first example can be simplified to:

double data;
unsigned char bytesReceived[sizeof double];
memcpy ( bytesReceived, &data, sizeof data);

Your second example is not valid: the buffer

unsigned char bytesReceived[sizeof double];

Is not necessarily aligned on a "double" boundary, so that the cast

newDblPoint = bytesReceived;
reconstData = *dblPoint;

will attempt to dereference an unaligned pointer.

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How would I go about making sure it is properly aligned? –  llakais Nov 23 '11 at 23:41
    
The cleanest way is using an union. But you don't need the pointer-casting; memcpy is good enough. –  wildplasser Nov 23 '11 at 23:47

Yes, you can basically do that. One issue to watch out for is that if the two machines don't have the same endianness, then you will need to reverse the byte ordering on one side.

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See 6.2.6.1/4 in the C99 Standard.

Basically, it says copying any object to an array of unsigned char is legal and gets its object representation.

If the object representation of doubles is the same between the 2 machines, you'll get the same value on the 2nd machine as the one you started off with on the 1st.

I'd use memcpy rather than the loop

memcpy(byteArray, &data, sizeof data);
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