59

I'm working on an implementation of the memcache protocol which, at some points, uses 64 bits integer values. These values must be stored in "network byte order".

I wish there was some uint64_t htonll(uint64_t value) function to do the change, but unfortunately, if it exist, I couldn't find it.

So I have 1 or 2 questions:

  • Is there any portable (Windows, Linux, AIX) standard function to do this ?
  • If there is no such function, how would you implement it ?

I have in mind a basic implementation but I don't know how to check the endianness at compile-time to make the code portable. So your help is more than welcome here ;)

Thank you.


Here is the final solution I wrote, thanks to Brian's solution.

uint64_t htonll(uint64_t value)
{
    // The answer is 42
    static const int num = 42;

    // Check the endianness
    if (*reinterpret_cast<const char*>(&num) == num)
    {
        const uint32_t high_part = htonl(static_cast<uint32_t>(value >> 32));
        const uint32_t low_part = htonl(static_cast<uint32_t>(value & 0xFFFFFFFFLL));

        return (static_cast<uint64_t>(low_part) << 32) | high_part;
    } else
    {
        return value;
    }
}
  • 2
    possible duplicate of this one stackoverflow.com/questions/809902/64-bit-ntohl-in-c – INS Jun 11 '10 at 13:05
  • @ereOn: I also have similar question here. If possible can you take a look and let me know what wrong I am doing here? – AKIWEB Oct 16 '13 at 5:10
  • 1
    Instead of including your answer inside the question, you should let your answer with answers. It is more readable. – mpromonet Aug 29 '15 at 15:24
18

You are probably looking for bswap_64 I think it is supported pretty much everywhere but I wouldn't call it standard.

You can easily check the endianness by creating an int with a value of 1, casting your int's address as a char* and checking the value of the first byte.

For example:

int num = 42;
if(*(char *)&num == 42)
{
   //Little Endian
}
else
{
   //Big Endian
} 

Knowing this you could also make a simple function that does the swapping.


You could also always use boost which contains endian macros which are portable cross platform.

14
#define htonll(x) ((1==htonl(1)) ? (x) : ((uint64_t)htonl((x) & 0xFFFFFFFF) << 32) | htonl((x) >> 32))
#define ntohll(x) ((1==ntohl(1)) ? (x) : ((uint64_t)ntohl((x) & 0xFFFFFFFF) << 32) | ntohl((x) >> 32))

The test (1==htonl(1)) simply determines (at runtime sadly) if the hardware architecture requres byte swapping. There aren't any portable ways to determine at compile-time what the architecture is, so we resort to using "htonl", which is as portable as it gets in this situation. If byte-swapping is required, then we swap 32 bits at a time using htonl (remembering to swap the two 32 bit words as well).

  • 1
    I'm sure this answer is great, but could you please add something other than code to explain what and why? – AndyG Feb 18 '15 at 20:40
  • Thanks! I've edited your answer with the explanation. – AndyG Feb 19 '15 at 14:55
  • as mentioned @ereon you cannot use 32 bits shifts on ntohl or ntohl because they return uint32_t, hence triggering UB. – Aif May 17 '17 at 11:08
5

You can try with uint64_t htobe64(uint64_t host_64bits) & uint64_t be64toh(uint64_t big_endian_64bits) for vice-versa.

  • 2
    Well, no I can't because it's been 6+ years since I touched that codebase ;) – ereOn Oct 25 '17 at 16:55
4

This seems to work in C; did I do anything wrong?

uint64_t htonll(uint64_t value) {
    int num = 42;
    if (*(char *)&num == 42) {
        uint32_t high_part = htonl((uint32_t)(value >> 32));
        uint32_t low_part = htonl((uint32_t)(value & 0xFFFFFFFFLL));
        return (((uint64_t)low_part) << 32) | high_part;
    } else {
        return value;
    }
}
2

To reduce the overhead of the "if num == ..." Use the pre-processor defines:

#if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
#else
#endif
-3

EDIT: combining the two (used Brian's code):

uint64_t htonll(uint64_t value)
{
     int num = 42;
     if(*(char *)&num == 42)
          return (htonl(value & 0xFFFFFFFF) << 32LL) | htonl(value >> 32);
     else 
          return value;
}

Warning: untested code! Please test before using.

  • @Pavel Still doesn't work. htonl() returns a 32 bits value on which you cannot call << 32LL (because you cannot shift 32 bits left on an only 32 bits value). – ereOn Jun 11 '10 at 13:08
  • I think shifting by 32LL will do promotion of the left side, no? – Pavel Radzivilovsky Jun 11 '10 at 15:03
  • @Pavel: no, the bit-size of the shift value doesn't change anything. gcc emits a warning: "left shift count >= width of type". And your function says that htonll(0x0102030405060708ULL) == 0xc070605. – bstpierre Aug 2 '10 at 19:52
  • Change it to return ((uint64_t)htonl(value & 0xFFFFFFFF) << 32LL) | htonl(value >> 32); and it works right. – bstpierre Aug 2 '10 at 19:55

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