522 lines
13 KiB
C
522 lines
13 KiB
C
/*
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* FST module - FST group object implementation
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* Copyright (c) 2014, Qualcomm Atheros, Inc.
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*
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* This software may be distributed under the terms of the BSD license.
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* See README for more details.
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*/
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#include "utils/includes.h"
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#include "utils/common.h"
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#include "common/defs.h"
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#include "common/ieee802_11_defs.h"
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#include "common/ieee802_11_common.h"
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#include "drivers/driver.h"
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#include "fst/fst_internal.h"
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#include "fst/fst_defs.h"
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struct dl_list fst_global_groups_list;
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static void fst_dump_mb_ies(const char *group_id, const char *ifname,
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struct wpabuf *mbies)
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{
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const u8 *p = wpabuf_head(mbies);
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size_t s = wpabuf_len(mbies);
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while (s >= 2) {
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const struct multi_band_ie *mbie =
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(const struct multi_band_ie *) p;
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WPA_ASSERT(mbie->eid == WLAN_EID_MULTI_BAND);
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WPA_ASSERT(2U + mbie->len >= sizeof(*mbie));
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fst_printf(MSG_WARNING,
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"%s: %s: mb_ctrl=%u band_id=%u op_class=%u chan=%u bssid="
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MACSTR
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" beacon_int=%u tsf_offs=[%u %u %u %u %u %u %u %u] mb_cc=0x%02x tmout=%u",
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group_id, ifname,
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mbie->mb_ctrl, mbie->band_id, mbie->op_class,
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mbie->chan, MAC2STR(mbie->bssid), mbie->beacon_int,
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mbie->tsf_offs[0], mbie->tsf_offs[1],
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mbie->tsf_offs[2], mbie->tsf_offs[3],
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mbie->tsf_offs[4], mbie->tsf_offs[5],
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mbie->tsf_offs[6], mbie->tsf_offs[7],
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mbie->mb_connection_capability,
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mbie->fst_session_tmout);
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p += 2 + mbie->len;
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s -= 2 + mbie->len;
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}
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}
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static void fst_fill_mb_ie(struct wpabuf *buf, const u8 *bssid,
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const u8 *own_addr, enum mb_band_id band, u8 channel)
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{
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struct multi_band_ie *mbie;
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size_t len = sizeof(*mbie);
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if (own_addr)
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len += ETH_ALEN;
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mbie = wpabuf_put(buf, len);
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os_memset(mbie, 0, len);
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mbie->eid = WLAN_EID_MULTI_BAND;
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mbie->len = len - 2;
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#ifdef HOSTAPD
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mbie->mb_ctrl = MB_STA_ROLE_AP;
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mbie->mb_connection_capability = MB_CONNECTION_CAPABILITY_AP;
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#else /* HOSTAPD */
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mbie->mb_ctrl = MB_STA_ROLE_NON_PCP_NON_AP;
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mbie->mb_connection_capability = 0;
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#endif /* HOSTAPD */
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if (bssid)
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os_memcpy(mbie->bssid, bssid, ETH_ALEN);
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mbie->band_id = band;
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mbie->op_class = 0; /* means all */
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mbie->chan = channel;
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mbie->fst_session_tmout = FST_DEFAULT_SESSION_TIMEOUT_TU;
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if (own_addr) {
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mbie->mb_ctrl |= MB_CTRL_STA_MAC_PRESENT;
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os_memcpy(&mbie[1], own_addr, ETH_ALEN);
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}
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}
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static unsigned fst_fill_iface_mb_ies(struct fst_iface *f, struct wpabuf *buf)
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{
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const u8 *bssid;
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bssid = fst_iface_get_bssid(f);
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if (bssid) {
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enum hostapd_hw_mode hw_mode;
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u8 channel;
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if (buf) {
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fst_iface_get_channel_info(f, &hw_mode, &channel);
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fst_fill_mb_ie(buf, bssid, fst_iface_get_addr(f),
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fst_hw_mode_to_band(hw_mode), channel);
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}
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return 1;
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} else {
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unsigned bands[MB_BAND_ID_WIFI_60GHZ + 1] = {};
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struct hostapd_hw_modes *modes;
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enum mb_band_id b;
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int num_modes = fst_iface_get_hw_modes(f, &modes);
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int ret = 0;
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while (num_modes--) {
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b = fst_hw_mode_to_band(modes->mode);
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modes++;
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if (b >= ARRAY_SIZE(bands) || bands[b]++)
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continue;
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ret++;
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if (buf)
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fst_fill_mb_ie(buf, NULL, fst_iface_get_addr(f),
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b, MB_STA_CHANNEL_ALL);
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}
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return ret;
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}
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}
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static struct wpabuf * fst_group_create_mb_ie(struct fst_group *g,
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struct fst_iface *i)
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{
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struct wpabuf *buf;
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struct fst_iface *f;
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unsigned int nof_mbies = 0;
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unsigned int nof_ifaces_added = 0;
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foreach_fst_group_iface(g, f) {
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if (f == i)
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continue;
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nof_mbies += fst_fill_iface_mb_ies(f, NULL);
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}
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buf = wpabuf_alloc(nof_mbies *
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(sizeof(struct multi_band_ie) + ETH_ALEN));
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if (!buf) {
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fst_printf_iface(i, MSG_ERROR,
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"cannot allocate mem for %u MB IEs",
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nof_mbies);
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return NULL;
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}
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/* The list is sorted in descending order by priorities, so MB IEs will
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* be arranged in the same order, as required by spec (see corresponding
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* comment in.fst_attach().
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*/
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foreach_fst_group_iface(g, f) {
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if (f == i)
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continue;
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fst_fill_iface_mb_ies(f, buf);
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++nof_ifaces_added;
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fst_printf_iface(i, MSG_DEBUG, "added to MB IE");
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}
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if (!nof_ifaces_added) {
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wpabuf_free(buf);
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buf = NULL;
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fst_printf_iface(i, MSG_INFO,
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"cannot add MB IE: no backup ifaces");
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} else {
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fst_dump_mb_ies(fst_group_get_id(g), fst_iface_get_name(i),
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buf);
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}
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return buf;
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}
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static const u8 * fst_mbie_get_peer_addr(const struct multi_band_ie *mbie)
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{
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const u8 *peer_addr = NULL;
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switch (MB_CTRL_ROLE(mbie->mb_ctrl)) {
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case MB_STA_ROLE_AP:
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peer_addr = mbie->bssid;
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break;
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case MB_STA_ROLE_NON_PCP_NON_AP:
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if (mbie->mb_ctrl & MB_CTRL_STA_MAC_PRESENT &&
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(size_t) 2 + mbie->len >= sizeof(*mbie) + ETH_ALEN)
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peer_addr = (const u8 *) &mbie[1];
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break;
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default:
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break;
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}
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return peer_addr;
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}
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static const u8 * fst_mbie_get_peer_addr_for_band(const struct wpabuf *mbies,
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u8 band_id)
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{
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const u8 *p = wpabuf_head(mbies);
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size_t s = wpabuf_len(mbies);
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while (s >= 2) {
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const struct multi_band_ie *mbie =
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(const struct multi_band_ie *) p;
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if (mbie->eid != WLAN_EID_MULTI_BAND) {
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fst_printf(MSG_INFO, "unexpected eid %d", mbie->eid);
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return NULL;
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}
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if (mbie->len < sizeof(*mbie) - 2 || mbie->len > s - 2) {
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fst_printf(MSG_INFO, "invalid mbie len %d",
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mbie->len);
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return NULL;
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}
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if (mbie->band_id == band_id)
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return fst_mbie_get_peer_addr(mbie);
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p += 2 + mbie->len;
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s -= 2 + mbie->len;
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}
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fst_printf(MSG_INFO, "mbie doesn't contain band %d", band_id);
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return NULL;
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}
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struct fst_iface * fst_group_get_iface_by_name(struct fst_group *g,
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const char *ifname)
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{
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struct fst_iface *f;
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foreach_fst_group_iface(g, f) {
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const char *in = fst_iface_get_name(f);
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if (os_strncmp(in, ifname, os_strlen(in)) == 0)
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return f;
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}
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return NULL;
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}
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u8 fst_group_assign_dialog_token(struct fst_group *g)
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{
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g->dialog_token++;
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if (g->dialog_token == 0)
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g->dialog_token++;
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return g->dialog_token;
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}
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u32 fst_group_assign_fsts_id(struct fst_group *g)
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{
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g->fsts_id++;
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return g->fsts_id;
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}
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/**
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* fst_group_get_peer_other_connection_1 - Find peer's "other" connection
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* (iface, MAC tuple) by using peer's MB IE on iface.
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*
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* @iface: iface on which FST Setup Request was received
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* @peer_addr: Peer address on iface
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* @band_id: "other" connection band id
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* @other_peer_addr (out): Peer's MAC address on the "other" connection (on the
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* "other" iface)
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*
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* This function parses peer's MB IE on iface. It looks for peer's MAC address
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* on band_id (tmp_peer_addr). Next all interfaces are iterated to find an
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* interface which correlates with band_id. If such interface is found, peer
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* database is iterated to see if tmp_peer_addr is connected over it.
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*/
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static struct fst_iface *
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fst_group_get_peer_other_connection_1(struct fst_iface *iface,
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const u8 *peer_addr, u8 band_id,
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u8 *other_peer_addr)
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{
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const struct wpabuf *mbies;
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struct fst_iface *other_iface;
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const u8 *tmp_peer_addr;
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/* Get peer's MB IEs on iface */
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mbies = fst_iface_get_peer_mb_ie(iface, peer_addr);
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if (!mbies)
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return NULL;
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/* Get peer's MAC address on the "other" interface */
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tmp_peer_addr = fst_mbie_get_peer_addr_for_band(mbies, band_id);
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if (!tmp_peer_addr) {
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fst_printf(MSG_INFO,
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"couldn't extract other peer addr from mbies");
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return NULL;
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}
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fst_printf(MSG_DEBUG, "found other peer addr from mbies: " MACSTR,
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MAC2STR(tmp_peer_addr));
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foreach_fst_group_iface(fst_iface_get_group(iface), other_iface) {
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if (other_iface == iface ||
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band_id != fst_iface_get_band_id(other_iface))
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continue;
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if (fst_iface_is_connected(other_iface, tmp_peer_addr, FALSE)) {
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os_memcpy(other_peer_addr, tmp_peer_addr, ETH_ALEN);
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return other_iface;
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}
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}
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return NULL;
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}
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/**
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* fst_group_get_peer_other_connection_2 - Find peer's "other" connection
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* (iface, MAC tuple) by using MB IEs of other peers.
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*
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* @iface: iface on which FST Setup Request was received
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* @peer_addr: Peer address on iface
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* @band_id: "other" connection band id
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* @other_peer_addr (out): Peer's MAC address on the "other" connection (on the
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* "other" iface)
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*
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* This function iterates all connection (other_iface, cur_peer_addr tuples).
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* For each connection, MB IE (of cur_peer_addr on other_iface) is parsed and
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* MAC address on iface's band_id is extracted (this_peer_addr).
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* this_peer_addr is then compared to peer_addr. A match indicates we have
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* found the "other" connection.
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*/
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static struct fst_iface *
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fst_group_get_peer_other_connection_2(struct fst_iface *iface,
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const u8 *peer_addr, u8 band_id,
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u8 *other_peer_addr)
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{
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u8 this_band_id = fst_iface_get_band_id(iface);
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const u8 *cur_peer_addr, *this_peer_addr;
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struct fst_get_peer_ctx *ctx;
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struct fst_iface *other_iface;
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const struct wpabuf *cur_mbie;
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foreach_fst_group_iface(fst_iface_get_group(iface), other_iface) {
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if (other_iface == iface ||
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band_id != fst_iface_get_band_id(other_iface))
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continue;
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cur_peer_addr = fst_iface_get_peer_first(other_iface, &ctx,
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TRUE);
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for (; cur_peer_addr;
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cur_peer_addr = fst_iface_get_peer_next(other_iface, &ctx,
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TRUE)) {
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cur_mbie = fst_iface_get_peer_mb_ie(other_iface,
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cur_peer_addr);
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if (!cur_mbie)
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continue;
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this_peer_addr = fst_mbie_get_peer_addr_for_band(
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cur_mbie, this_band_id);
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if (!this_peer_addr)
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continue;
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if (os_memcmp(this_peer_addr, peer_addr, ETH_ALEN) ==
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0) {
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os_memcpy(other_peer_addr, cur_peer_addr,
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ETH_ALEN);
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return other_iface;
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}
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}
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}
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return NULL;
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}
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/**
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* fst_group_get_peer_other_connection - Find peer's "other" connection (iface,
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* MAC tuple).
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*
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* @iface: iface on which FST Setup Request was received
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* @peer_addr: Peer address on iface
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* @band_id: "other" connection band id
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* @other_peer_addr (out): Peer's MAC address on the "other" connection (on the
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* "other" iface)
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*
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* This function is called upon receiving FST Setup Request from some peer who
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* has peer_addr on iface. It searches for another connection of the same peer
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* on different interface which correlates with band_id. MB IEs received from
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* peer (on the two different interfaces) are used to identify same peer.
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*/
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struct fst_iface *
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fst_group_get_peer_other_connection(struct fst_iface *iface,
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const u8 *peer_addr, u8 band_id,
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u8 *other_peer_addr)
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{
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struct fst_iface *other_iface;
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fst_printf(MSG_DEBUG, "%s: %s:" MACSTR ", %d", __func__,
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fst_iface_get_name(iface), MAC2STR(peer_addr), band_id);
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/*
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* Two search methods are used:
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* 1. Use peer's MB IE on iface to extract peer's MAC address on
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* "other" connection. Then check if such "other" connection exists.
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* 2. Iterate peer database, examine each MB IE to see if it points to
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* (iface, peer_addr) tuple
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*/
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other_iface = fst_group_get_peer_other_connection_1(iface, peer_addr,
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band_id,
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other_peer_addr);
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if (other_iface) {
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fst_printf(MSG_DEBUG, "found by method #1. %s:" MACSTR,
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fst_iface_get_name(other_iface),
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MAC2STR(other_peer_addr));
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return other_iface;
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}
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other_iface = fst_group_get_peer_other_connection_2(iface, peer_addr,
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band_id,
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other_peer_addr);
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if (other_iface) {
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fst_printf(MSG_DEBUG, "found by method #2. %s:" MACSTR,
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fst_iface_get_name(other_iface),
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MAC2STR(other_peer_addr));
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return other_iface;
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}
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fst_printf(MSG_INFO, "%s: other connection not found", __func__);
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return NULL;
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}
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struct fst_group * fst_group_create(const char *group_id)
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{
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struct fst_group *g;
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g = os_zalloc(sizeof(*g));
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if (g == NULL) {
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fst_printf(MSG_ERROR, "%s: Cannot alloc group", group_id);
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return NULL;
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}
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dl_list_init(&g->ifaces);
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os_strlcpy(g->group_id, group_id, sizeof(g->group_id));
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dl_list_add_tail(&fst_global_groups_list, &g->global_groups_lentry);
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fst_printf_group(g, MSG_DEBUG, "instance created");
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foreach_fst_ctrl_call(on_group_created, g);
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return g;
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}
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void fst_group_attach_iface(struct fst_group *g, struct fst_iface *i)
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{
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struct dl_list *list = &g->ifaces;
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struct fst_iface *f;
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/*
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* Add new interface to the list.
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* The list is sorted in descending order by priority to allow
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* multiple MB IEs creation according to the spec (see 10.32 Multi-band
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* operation, 10.32.1 General), as they should be ordered according to
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* priorities.
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*/
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foreach_fst_group_iface(g, f) {
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if (fst_iface_get_priority(f) < fst_iface_get_priority(i))
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break;
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list = &f->group_lentry;
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}
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dl_list_add(list, &i->group_lentry);
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}
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void fst_group_detach_iface(struct fst_group *g, struct fst_iface *i)
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{
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dl_list_del(&i->group_lentry);
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}
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void fst_group_delete(struct fst_group *group)
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{
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struct fst_session *s;
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dl_list_del(&group->global_groups_lentry);
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WPA_ASSERT(dl_list_empty(&group->ifaces));
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foreach_fst_ctrl_call(on_group_deleted, group);
|
|
fst_printf_group(group, MSG_DEBUG, "instance deleted");
|
|
while ((s = fst_session_global_get_first_by_group(group)) != NULL)
|
|
fst_session_delete(s);
|
|
os_free(group);
|
|
}
|
|
|
|
|
|
Boolean fst_group_delete_if_empty(struct fst_group *group)
|
|
{
|
|
Boolean is_empty = !fst_group_has_ifaces(group) &&
|
|
!fst_session_global_get_first_by_group(group);
|
|
|
|
if (is_empty)
|
|
fst_group_delete(group);
|
|
|
|
return is_empty;
|
|
}
|
|
|
|
|
|
void fst_group_update_ie(struct fst_group *g)
|
|
{
|
|
struct fst_iface *i;
|
|
|
|
foreach_fst_group_iface(g, i) {
|
|
struct wpabuf *mbie = fst_group_create_mb_ie(g, i);
|
|
|
|
if (!mbie)
|
|
fst_printf_iface(i, MSG_WARNING, "cannot create MB IE");
|
|
|
|
fst_iface_attach_mbie(i, mbie);
|
|
fst_iface_set_ies(i, mbie);
|
|
fst_printf_iface(i, MSG_DEBUG, "multi-band IE set to %p", mbie);
|
|
}
|
|
}
|