Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Whats the best way to write a deserialize function to convert a byte array into a 32 bit unsigned integer?

    typedef unsigned long  uint32;

    uint32 deserialize_uint32(unsigned char *buffer)
    {
        uint32 value = 0;

        value |= buffer[0] << 24;
        value |= buffer[1] << 16;
        value |= buffer[2] << 8;
        value |= buffer[3];
        return value;

    }

    unsigned char* deserialize_uint32B(unsigned char *buffer, uint32* value)
    {
        *value = 0;

        *value |= buffer[0] << 24;
        *value |= buffer[1] << 16;
        *value |= buffer[2] << 8;
        *value |= buffer[3];
        return buffer + 4;
    }

thanks! or if there's even a better way please let me know.. thanks !

share|improve this question
2  
Since it is just a byte array, it seems a simple value = *(uint32*)buffer; would work. –  Mark Wilkins May 26 '11 at 21:42
3  
This seemingly clever code invokes undefined behavior if buffer doesn't point to a properly aligned address. –  Roland Illig May 26 '11 at 21:50
1  
You should use uint32_t (from stdint.h) in case unsigned long isn't 32 bits; you should also add a compile-time assertion that CHAR_BIT == 8, just to be on the safe side. –  David X May 26 '11 at 22:07
2  
Moreover, such a cast yields the wrong value if the data is not in the same endian as your host. –  nos May 26 '11 at 22:09

4 Answers 4

I prefer your first variant over the second. Or you might exploit parallel processing by having four local variables that take the individual bytes shifted by the correct amount. Then, in the final line you return b0shifted | b1shifted | b2shifted | b3shifted.

Anyway, it all depends on your compiler. Your second variant contains more load/store operations, so the first variant has fewer abstract operations.

Concerning readability, understandability and clarity, your first variant is great. It also works on whatever weird platform you are using (endianess, alignment), provided that CHAR_BIT == 8.

share|improve this answer
1  
It also works if CHAR_BIT > 8, as long as the precondition that the input unsigned char values are between 0 and 255 inclusive is maintained. –  caf May 27 '11 at 1:38
    
Good point, thanks for reminding me. –  Roland Illig May 27 '11 at 5:53

You can write:

#include <arpa/inet.h>

uint32_t deserialize_uint32(unsigned char *buffer) {
    uint32_t res = *((uint32_t *) buffer);
    return ntohl(res);
}

unsigned char *serialize_uint32(unsigned char *buffer, uint32_t *value) {
    *((uint32_t *) buffer) = htonl(*value);
    return buffer;
}

This implementation ensures that the byte ordering is the correct independently from the underlying architecture.

share|improve this answer
3  
That won't work in every case because the buffer might point to some address that is not properly aligned for an int. –  Roland Illig May 26 '11 at 21:55

Your first method may result in better code, because in the second one the compiler must assume that the pointers data and value can alias (though this may be mitigated if the compiler is able to inline the function where it is used).

If you have a C99 compiler, you may want to take advantange of uint32_t, inline and for the second variant, restrict.

share|improve this answer
    
what's the difference between using uint32_t and what I am using? Also, this code will be ported to another environment that uses TI MSP 430. –  emge May 27 '11 at 14:25
    
The advantage of uint32_t is just that it's part of the C standard, so you don't have to worry about defining it yourself for new platforms. –  caf May 27 '11 at 14:26

One can make judicious use of casting to do this easily. Just cast the char buffer to the type you want.

uint32 deserialize_uint32(unsigned char *buf)
{
    uint32 *x = (uint32*)buf;
    return *x;
}

unsigned char * deserialize_uint32B(unsigned char *buffer, uint32* value)
{
    *(uint32*)buffer = *value;
    return buffer;
}
share|improve this answer

Your Answer

 
discard

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.