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struct ifaddrs {
    struct ifaddrs  *ifa_next;
    char        *ifa_name;
    unsigned int     ifa_flags;
    struct sockaddr *ifa_addr;
    struct sockaddr *ifa_netmask;
    struct sockaddr *ifa_dstaddr;
    void        *ifa_data;

struct ifaddrs *addrs,*tmp;

if(getifaddrs(&addrs) != 0) {
    return 1;

for(tmp = addrs; tmp ; tmp = tmp->ifa_next) {


I have seen this code of getifaddrs getting the results in ifaddrs. But the Iteration

for loop is lopping through all the interfaces it can find.

for(tmp = addrs; tmp ; tmp = tmp->ifa_next) {


The question is I don't see how tmp->ifa_next pointer incremented or going to the next link.

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It is not incremented, it is just another pointer on each iteration. Try adding fprintf(stderr, "%p -> %p\n", tmp, tmp->ifa_next); inside the loop body and you will see. – wildplasser Sep 27 '13 at 19:51
because of tmp = tmp->ifa_next – Grijesh Chauhan Sep 27 '13 at 19:53
BTW: there is no doubly linked list involved. Are you confused by the pointer-to-pointer ? – wildplasser Sep 27 '13 at 20:52

1 Answer 1

It's saying while tmp is not NULL (has a value), to set tmp equal to tmp->next. So consider each loop. Below shows what happens on each iteration.

tmp = addrs;
tmp = tmp->next; ( tmp->next is equal to addrs->next)
tmp = tmp->next; ( tmp->next is equal to addrs->next->next because tmp is equal to addrs->next)


Eventually, tmp->next is NULL and sets tmp equal to NULL, at which point the loop is exited.

To further draw out this analogy (it took me a long time to get how linked lists work):

If we have a linked list of { 1, 2, 3, NULL }, use the above loop on this collection. Below is pseudo-code to give a better idea.

tmp = 1;
tmp = tmp->next; // 1->next = 2, so tmp = 2
tmp = tmp->next; // 2->next = 3, so tmp = 3
tmp = tmp->next; // 3->next = null, so tmp = null
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