#include "common/netif.h" #include "common/io.h" #include "common/mallocHelper.h" #include #include #include #include #include #include #define ROUNDUP2(a, n) ((a) > 0 ? (1 + (((a) - 1U) | ((n) - 1))) : (n)) #if __DragonFly__ // https://github.com/DragonFlyBSD/DragonFlyBSD/blob/cf0aa2f1e47a3f0a6055fe427563cb3f3e627064/sys/net/route.h#L315C9-L315C19 #define ROUNDUP(a) ROUNDUP2((a), sizeof(long)) #elif __FreeBSD__ // https://github.com/freebsd/freebsd-src/blob/e4c0ecba44b20ebb2e4d80978c2cb6d16b730cb9/sys/net/route.h#L368C9-L368C16 #define ROUNDUP(a) ROUNDUP2((a), sizeof(long)) #elif __NetBSD__ // https://github.com/NetBSD/src/blob/29beb637d057520c0ed37ac2cde966f7cc0cadf4/sys/net/route.h#L330 #define ROUNDUP(a) ROUNDUP2((a), sizeof(uint64_t)) #elif __OpenBSD__ // https://github.com/openbsd/src/blob/ca647cfa4ec3ccb8360714bc0ebc32a394f7fb6a/regress/sys/netinet/bindconnect/bindconnect.c#L250 #define ROUNDUP(a) ROUNDUP2((a), sizeof(long)) #else #error unknown platform #endif static struct sockaddr* get_rt_address(struct rt_msghdr* rtm, int desired) { struct sockaddr* sa = (struct sockaddr*) (rtm + 1); for (int i = 0; i < RTAX_MAX; i++) { if (rtm->rtm_addrs & (1 << i)) { if ((1 << i) == desired) { return sa; } sa = (struct sockaddr*) (ROUNDUP(sa->sa_len) + (char*) sa); } } return NULL; } bool ffNetifGetDefaultRouteImplV4(FFNetifDefaultRouteResult* result) { int mib[6] = { CTL_NET, PF_ROUTE, 0, AF_INET, NET_RT_FLAGS, RTF_GATEWAY }; size_t needed; if (sysctl(mib, 6, NULL, &needed, NULL, 0) < 0 || needed == 0) { return false; } FF_AUTO_FREE char* buf = malloc(needed); if (sysctl(mib, 6, buf, &needed, NULL, 0) < 0) { return false; } char* lim = buf + needed; struct rt_msghdr* rtm; for (char* next = buf; next < lim; next += rtm->rtm_msglen) { rtm = (struct rt_msghdr*) next; struct sockaddr* sa = (struct sockaddr*) (rtm + 1); if ((rtm->rtm_flags & RTF_GATEWAY) && !(rtm->rtm_flags & RTF_REJECT) && (sa->sa_family == AF_INET)) { struct sockaddr_dl* sdl = (struct sockaddr_dl*) get_rt_address(rtm, RTA_IFP); if (sdl && sdl->sdl_family == AF_LINK) { if (sdl->sdl_nlen > IF_NAMESIZE) { continue; } memcpy(result->ifName, sdl->sdl_data, sdl->sdl_nlen); result->ifName[sdl->sdl_nlen] = '\0'; result->ifIndex = sdl->sdl_index; // Get the preferred source address struct sockaddr_in* src = (struct sockaddr_in*) get_rt_address(rtm, RTA_IFA); if (src && src->sin_family == AF_INET) { result->preferredSourceAddrV4 = src->sin_addr.s_addr; } return true; } } } return false; } bool ffNetifGetDefaultRouteImplV6(FFNetifDefaultRouteResult* result) { int mib[6] = { CTL_NET, PF_ROUTE, 0, AF_INET6, NET_RT_FLAGS, RTF_GATEWAY }; size_t needed; if (sysctl(mib, 6, NULL, &needed, NULL, 0) < 0 || needed == 0) { return false; } FF_AUTO_FREE char* buf = malloc(needed); if (sysctl(mib, 6, buf, &needed, NULL, 0) < 0) { return false; } char* lim = buf + needed; struct rt_msghdr* rtm; for (char* next = buf; next < lim; next += rtm->rtm_msglen) { rtm = (struct rt_msghdr*) next; struct sockaddr* sa = (struct sockaddr*) (rtm + 1); if ((rtm->rtm_flags & RTF_GATEWAY) && !(rtm->rtm_flags & RTF_REJECT) && (sa->sa_family == AF_INET6)) { struct sockaddr_dl* sdl = (struct sockaddr_dl*) get_rt_address(rtm, RTA_IFP); if (sdl && sdl->sdl_family == AF_LINK) { if (sdl->sdl_nlen > IF_NAMESIZE) { continue; } memcpy(result->ifName, sdl->sdl_data, sdl->sdl_nlen); result->ifName[sdl->sdl_nlen] = '\0'; result->ifIndex = sdl->sdl_index; return true; } } } return false; }