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I wanted to know how i can parse an IPv6 address in 'C' and convert it to a 128 bit value? So a hex address like 1:22:333:aaaa:b:c:d:e:f needs to be converted to its 128 bit equivalent binary. The problem is the IP address could be of the type ::2 and its variant since they are valid IPv6 address.

The input is from the keyboard and hence is in ASCII format.

Any suggestions or pointers will be appreciated. Thanks!!!

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2  
That seems to be a 144-bit IP address you've got there. –  Thanatos Jun 3 '10 at 0:51
    
Oops...Thanks for pointing that out ..Actually I meant 1:22:333:aaaa:b:c:d:e –  The Stig Jun 3 '10 at 1:23

4 Answers 4

up vote 6 down vote accepted

You can use POSIX inet_pton to convert a string to a struct in6_addr.

#include <arpa/inet.h>

  ...

const char *ip6str = "::2";
struct in6_addr result;

if (inet_pton(AF_INET6, ip6str, &result) == 1) // success!
{
    //successfully parsed string into "result"
}
else
{
    //failed, perhaps not a valid representation of IPv6?
}
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You can pass anything big enough to hold the result, for example, an array of 8 short will do as well; just as long as the buffer is at least 128-bits in length. –  dreamlax Jun 3 '10 at 1:07
1  
I personally like this a bit more than getaddrinfo(), which I suggested below. Sadly, it seems that Windows only has inet_pton() starting with Vista. (And I'd almost bet that it doesn't parse according to RFC 2373, and only does your typical IPv6 address... anyone know?) –  Thanatos Jun 3 '10 at 3:11
    
@Thanatos: This link refers to RFC 2553 which declares the function inet_pton as a function that converts IPv4 and IPv6 textual representations into binary form, and it says that it must accept IPv6 addresses in the representations described in section 2.2 of RFC 2373. –  dreamlax Jun 3 '10 at 3:20
    
Thanks Thanatos and dreamlax for the answers. I used them in my Linux enviroment and it worked perfectly.But the problem is my actual code where i wanted to incorporate this is a stripped down version of Linux and does not have all the libraries.Unfortunately the inet.h header file is not present in the enviroment so inet_pton is not supported... Looks like I might end up writing my own function as YeenFei pointed out.. Need some help as to how to go forward on this... Thanks !! Regards -TG –  The Stig Jun 3 '10 at 18:54
1  
Sometimes it's worth just trying this: declare the structs and function prototypes yourself, then just call the function in the hope that it's in the library (inet_pton part of glibc, not some other random library) despite your not having the header(s). –  Bernd Jendrissek Feb 3 '11 at 14:14

getaddrinfo() can understand IPv6 addresses. Pass AF_INET6 to it in the hints, as well as AI_NUMERICHOST (to prevent a DNS lookup). Linux has it, Windows has it as of Windows XP.

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1  
Don't forget to use freeaddrinfo if the function succeeded. –  dreamlax Jun 3 '10 at 2:39

To parse IPv6 in C, you need to build yourself a utility function, which tokenized string (colon for hex blocks, and forward-slash for subnet bits).

  1. Tokenize raw IPv6 string into smaller substring.
  2. Convert non-empty substring into hex blocks. (ASCII to decimal conversion)
  3. Expand hex block into 2-bytes by padding zero in front. (only leading zeroes get trimmed)
  4. Complete IPv6 should have 8 hex blocks, calculate missing hex-block(s). (zeroes grouping can happen only once)
  5. Reinsert missing hex-block. (use index of the empty substring)
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1  
Good description if someone wants to learn IPv6 parsing. Buf it he just wants to actually parse addresses, the other answers are much simpler. –  bortzmeyer Jun 3 '10 at 11:45
    
Thanks YeenFei for the description. I might end up writing the function.. –  The Stig Jun 3 '10 at 18:57

In Windows, you can use WSAStringToAddress, which is available since Windows 2000.

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