How to initialize in6_addr structure?

Question

How to initialize in6_addr structure?

I know one method for this,

const struct in6_addr naddr6 = { { 
                0x3f, 0xfe, 0x05, 0x01,
                0x00, 0x08, 0x00, 0x00, 
                0x02, 0x60, 0x97, 0xff,
                0xfe, 0x40, 0xef, 0xab
}};

but could not with this,

const struct in6_addr naddr6 = 
                { { { 0x3ffe0501, 0x00080000, 0x026097ff, 0xfe40efab } } };

and it seems that I can either 1/2/3 paris the brackets. Why?

thanks.

+3

network-programming ipv6

Jichao Nov 10 '09 at 13:39

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2 answers

A portable way to do this is:

struct in6_addr s6 = { };
if (!IN6_IS_ADDR_UNSPECIFIED(&s6))
  inet_pton(AF_INET6, "2001:db8::1", &s6);

+6

james woodyatt Nov 20 '09 at 21:54

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philant · Accepted Answer · 2009-11-10T14:15:46+0000

Since you must specify which address form is addressed (shown with C99):

const struct in6_addr naddr6 = 
    { { .u6_addr32 = { 0x3ffe0501, 0x00080000, 0x026097ff, 0xfe40efab } } };

The first pair of brackets for the in6_addr structure, the second to combine:

struct in6_addr
  {
    union
      {
 uint8_t u6_addr8[16];
 uint16_t u6_addr16[8];
 uint32_t u6_addr32[4];
      } in6_u;
  };

How to initialize in6_addr structure?

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