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.

1, Given a 32-bit integer value, how to exactly determine if it is private IPv4 address.

2, Given a 128-bit integer value, how to exactly determine if it is private IPv6 address.

Consider the byte order of the IP address on different platforms, it is error-prone to write such a common little function every time. So I think there should be a library function for this, is there?

share|improve this question
4  
Look at the assigned ranges. Take your pick. –  Jan Dvorak Jan 12 '13 at 11:58
    
"there should be a library function for this" - in which library? –  Csq Jan 12 '13 at 12:07
    
@Csq, for example, winsock. –  xmllmx Jan 12 '13 at 12:08

1 Answer 1

up vote 1 down vote accepted

This will get you started. I didn't bother including the "link local" address range, but that's an exercise left for you to complete by modifying the code below.

IPV6 is slightly different. And your question is slightly malformed since most systems don't have a native 128-bit type. IPv6 addresses are usually contained as an array of 16 bytes embedded in a sockaddr_in6 struct.

Everything you need to know to finish this example is at this link here.

// assumes ip is in HOST order.  Use ntohl() to convert as approrpriate

bool IsPrivateAddress(uint32_t ip)
{
    uint8_t b1, b2, b3, b4;
    b1 = (uint8_t)(ip >> 24);
    b2 = (uint8_t)((ip >> 16) & 0x0ff);
    b3 = (uint8_t)((ip >> 8) & 0x0ff);
    b3 = (uint8_t)(ip & 0x0ff);

    // 10.x.y.z
    if (b1 == 10)
        return true;

    // 172.16.0.0 - 172.31.255.255
    if ((b1 == 172) && (b2 >= 16) && (b2 <= 31))
        return true;

    // 192.168.0.0 - 192.168.255.255
    if ((b1 == 192) && (b2 == 168))
        return true;

    return false;
}
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.