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I have an ipv6 address in the following format

uint32_t adress6[4];

So the above array stores 4 uint32_t type data which equals 16 bytes overall and hence an ipv6 type address.

How can I convert the address stored in the above format to a network byte order?

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Are the 32-bit words in network byte order? –  Steve-o Mar 27 '13 at 14:32
    
No they are not in network byte order. –  Sumit Das Apr 10 '13 at 6:07

1 Answer 1

You'll need the details of how the address is laid out in the array.

Typically an IPv6 address is built with the uint32 elements in network order. The uint32 elements themselves are stored in host order.

Example:

ADDRESS: dead:beef:feed:face:cafe:babe:baad:c0de

adress6[0] = 0xdeadbeef;
adress6[1] = 0xfeedface;
adress6[2] = 0xcafebabe;
adress6[3] = 0xbaadc0de;

The array is in network order but each integer element is going to be in host order.

To get to network order you could do something like the following:

void network_order_me ( uint32_t *host_ipv6, uint32_t *net_ipv6 ) {
  net_ipv6[0] = ntohl(host_ipv6[0]);
  net_ipv6[1] = ntohl(host_ipv6[1]);
  net_ipv6[2] = ntohl(host_ipv6[2]);
  net_ipv6[3] = ntohl(host_ipv6[3]);
}
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shouldn't the calls be to htonl? –  ramrunner Dec 19 at 4:06

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