beacon.c 23 KB

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  1. /*
  2. * Copyright (c) 2008-2009 Atheros Communications Inc.
  3. *
  4. * Permission to use, copy, modify, and/or distribute this software for any
  5. * purpose with or without fee is hereby granted, provided that the above
  6. * copyright notice and this permission notice appear in all copies.
  7. *
  8. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
  9. * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
  10. * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
  11. * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
  12. * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
  13. * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
  14. * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
  15. */
  16. #include "ath9k.h"
  17. #define FUDGE 2
  18. /*
  19. * This function will modify certain transmit queue properties depending on
  20. * the operating mode of the station (AP or AdHoc). Parameters are AIFS
  21. * settings and channel width min/max
  22. */
  23. static int ath_beaconq_config(struct ath_softc *sc)
  24. {
  25. struct ath_hw *ah = sc->sc_ah;
  26. struct ath_common *common = ath9k_hw_common(ah);
  27. struct ath9k_tx_queue_info qi;
  28. ath9k_hw_get_txq_props(ah, sc->beacon.beaconq, &qi);
  29. if (sc->sc_ah->opmode == NL80211_IFTYPE_AP) {
  30. /* Always burst out beacon and CAB traffic. */
  31. qi.tqi_aifs = 1;
  32. qi.tqi_cwmin = 0;
  33. qi.tqi_cwmax = 0;
  34. } else {
  35. /* Adhoc mode; important thing is to use 2x cwmin. */
  36. qi.tqi_aifs = sc->beacon.beacon_qi.tqi_aifs;
  37. qi.tqi_cwmin = 2*sc->beacon.beacon_qi.tqi_cwmin;
  38. qi.tqi_cwmax = sc->beacon.beacon_qi.tqi_cwmax;
  39. }
  40. if (!ath9k_hw_set_txq_props(ah, sc->beacon.beaconq, &qi)) {
  41. ath_print(common, ATH_DBG_FATAL,
  42. "Unable to update h/w beacon queue parameters\n");
  43. return 0;
  44. } else {
  45. ath9k_hw_resettxqueue(ah, sc->beacon.beaconq);
  46. return 1;
  47. }
  48. }
  49. /*
  50. * Associates the beacon frame buffer with a transmit descriptor. Will set
  51. * up all required antenna switch parameters, rate codes, and channel flags.
  52. * Beacons are always sent out at the lowest rate, and are not retried.
  53. */
  54. static void ath_beacon_setup(struct ath_softc *sc, struct ath_vif *avp,
  55. struct ath_buf *bf)
  56. {
  57. struct sk_buff *skb = bf->bf_mpdu;
  58. struct ath_hw *ah = sc->sc_ah;
  59. struct ath_desc *ds;
  60. struct ath9k_11n_rate_series series[4];
  61. const struct ath_rate_table *rt;
  62. int flags, antenna, ctsrate = 0, ctsduration = 0;
  63. u8 rate;
  64. ds = bf->bf_desc;
  65. flags = ATH9K_TXDESC_NOACK;
  66. if (((sc->sc_ah->opmode == NL80211_IFTYPE_ADHOC) ||
  67. (sc->sc_ah->opmode == NL80211_IFTYPE_MESH_POINT)) &&
  68. (ah->caps.hw_caps & ATH9K_HW_CAP_VEOL)) {
  69. ds->ds_link = bf->bf_daddr; /* self-linked */
  70. flags |= ATH9K_TXDESC_VEOL;
  71. /* Let hardware handle antenna switching. */
  72. antenna = 0;
  73. } else {
  74. ds->ds_link = 0;
  75. /*
  76. * Switch antenna every beacon.
  77. * Should only switch every beacon period, not for every SWBA
  78. * XXX assumes two antennae
  79. */
  80. antenna = ((sc->beacon.ast_be_xmit / sc->nbcnvifs) & 1 ? 2 : 1);
  81. }
  82. ds->ds_data = bf->bf_buf_addr;
  83. rt = sc->cur_rate_table;
  84. rate = rt->info[0].ratecode;
  85. if (sc->sc_flags & SC_OP_PREAMBLE_SHORT)
  86. rate |= rt->info[0].short_preamble;
  87. ath9k_hw_set11n_txdesc(ah, ds, skb->len + FCS_LEN,
  88. ATH9K_PKT_TYPE_BEACON,
  89. MAX_RATE_POWER,
  90. ATH9K_TXKEYIX_INVALID,
  91. ATH9K_KEY_TYPE_CLEAR,
  92. flags);
  93. /* NB: beacon's BufLen must be a multiple of 4 bytes */
  94. ath9k_hw_filltxdesc(ah, ds, roundup(skb->len, 4),
  95. true, true, ds);
  96. memset(series, 0, sizeof(struct ath9k_11n_rate_series) * 4);
  97. series[0].Tries = 1;
  98. series[0].Rate = rate;
  99. series[0].ChSel = sc->tx_chainmask;
  100. series[0].RateFlags = (ctsrate) ? ATH9K_RATESERIES_RTS_CTS : 0;
  101. ath9k_hw_set11n_ratescenario(ah, ds, ds, 0, ctsrate, ctsduration,
  102. series, 4, 0);
  103. }
  104. static struct ath_buf *ath_beacon_generate(struct ieee80211_hw *hw,
  105. struct ieee80211_vif *vif)
  106. {
  107. struct ath_wiphy *aphy = hw->priv;
  108. struct ath_softc *sc = aphy->sc;
  109. struct ath_common *common = ath9k_hw_common(sc->sc_ah);
  110. struct ath_buf *bf;
  111. struct ath_vif *avp;
  112. struct sk_buff *skb;
  113. struct ath_txq *cabq;
  114. struct ieee80211_tx_info *info;
  115. int cabq_depth;
  116. if (aphy->state != ATH_WIPHY_ACTIVE)
  117. return NULL;
  118. avp = (void *)vif->drv_priv;
  119. cabq = sc->beacon.cabq;
  120. if (avp->av_bcbuf == NULL)
  121. return NULL;
  122. /* Release the old beacon first */
  123. bf = avp->av_bcbuf;
  124. skb = bf->bf_mpdu;
  125. if (skb) {
  126. dma_unmap_single(sc->dev, bf->bf_dmacontext,
  127. skb->len, DMA_TO_DEVICE);
  128. dev_kfree_skb_any(skb);
  129. }
  130. /* Get a new beacon from mac80211 */
  131. skb = ieee80211_beacon_get(hw, vif);
  132. bf->bf_mpdu = skb;
  133. if (skb == NULL)
  134. return NULL;
  135. ((struct ieee80211_mgmt *)skb->data)->u.beacon.timestamp =
  136. avp->tsf_adjust;
  137. info = IEEE80211_SKB_CB(skb);
  138. if (info->flags & IEEE80211_TX_CTL_ASSIGN_SEQ) {
  139. /*
  140. * TODO: make sure the seq# gets assigned properly (vs. other
  141. * TX frames)
  142. */
  143. struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
  144. sc->tx.seq_no += 0x10;
  145. hdr->seq_ctrl &= cpu_to_le16(IEEE80211_SCTL_FRAG);
  146. hdr->seq_ctrl |= cpu_to_le16(sc->tx.seq_no);
  147. }
  148. bf->bf_buf_addr = bf->bf_dmacontext =
  149. dma_map_single(sc->dev, skb->data,
  150. skb->len, DMA_TO_DEVICE);
  151. if (unlikely(dma_mapping_error(sc->dev, bf->bf_buf_addr))) {
  152. dev_kfree_skb_any(skb);
  153. bf->bf_mpdu = NULL;
  154. ath_print(common, ATH_DBG_FATAL,
  155. "dma_mapping_error on beaconing\n");
  156. return NULL;
  157. }
  158. skb = ieee80211_get_buffered_bc(hw, vif);
  159. /*
  160. * if the CABQ traffic from previous DTIM is pending and the current
  161. * beacon is also a DTIM.
  162. * 1) if there is only one vif let the cab traffic continue.
  163. * 2) if there are more than one vif and we are using staggered
  164. * beacons, then drain the cabq by dropping all the frames in
  165. * the cabq so that the current vifs cab traffic can be scheduled.
  166. */
  167. spin_lock_bh(&cabq->axq_lock);
  168. cabq_depth = cabq->axq_depth;
  169. spin_unlock_bh(&cabq->axq_lock);
  170. if (skb && cabq_depth) {
  171. if (sc->nvifs > 1) {
  172. ath_print(common, ATH_DBG_BEACON,
  173. "Flushing previous cabq traffic\n");
  174. ath_draintxq(sc, cabq, false);
  175. }
  176. }
  177. ath_beacon_setup(sc, avp, bf);
  178. while (skb) {
  179. ath_tx_cabq(hw, skb);
  180. skb = ieee80211_get_buffered_bc(hw, vif);
  181. }
  182. return bf;
  183. }
  184. /*
  185. * Startup beacon transmission for adhoc mode when they are sent entirely
  186. * by the hardware using the self-linked descriptor + veol trick.
  187. */
  188. static void ath_beacon_start_adhoc(struct ath_softc *sc,
  189. struct ieee80211_vif *vif)
  190. {
  191. struct ath_hw *ah = sc->sc_ah;
  192. struct ath_common *common = ath9k_hw_common(ah);
  193. struct ath_buf *bf;
  194. struct ath_vif *avp;
  195. struct sk_buff *skb;
  196. avp = (void *)vif->drv_priv;
  197. if (avp->av_bcbuf == NULL)
  198. return;
  199. bf = avp->av_bcbuf;
  200. skb = bf->bf_mpdu;
  201. ath_beacon_setup(sc, avp, bf);
  202. /* NB: caller is known to have already stopped tx dma */
  203. ath9k_hw_puttxbuf(ah, sc->beacon.beaconq, bf->bf_daddr);
  204. ath9k_hw_txstart(ah, sc->beacon.beaconq);
  205. ath_print(common, ATH_DBG_BEACON, "TXDP%u = %llx (%p)\n",
  206. sc->beacon.beaconq, ito64(bf->bf_daddr), bf->bf_desc);
  207. }
  208. int ath_beaconq_setup(struct ath_hw *ah)
  209. {
  210. struct ath9k_tx_queue_info qi;
  211. memset(&qi, 0, sizeof(qi));
  212. qi.tqi_aifs = 1;
  213. qi.tqi_cwmin = 0;
  214. qi.tqi_cwmax = 0;
  215. /* NB: don't enable any interrupts */
  216. return ath9k_hw_setuptxqueue(ah, ATH9K_TX_QUEUE_BEACON, &qi);
  217. }
  218. int ath_beacon_alloc(struct ath_wiphy *aphy, struct ieee80211_vif *vif)
  219. {
  220. struct ath_softc *sc = aphy->sc;
  221. struct ath_common *common = ath9k_hw_common(sc->sc_ah);
  222. struct ath_vif *avp;
  223. struct ath_buf *bf;
  224. struct sk_buff *skb;
  225. __le64 tstamp;
  226. avp = (void *)vif->drv_priv;
  227. /* Allocate a beacon descriptor if we haven't done so. */
  228. if (!avp->av_bcbuf) {
  229. /* Allocate beacon state for hostap/ibss. We know
  230. * a buffer is available. */
  231. avp->av_bcbuf = list_first_entry(&sc->beacon.bbuf,
  232. struct ath_buf, list);
  233. list_del(&avp->av_bcbuf->list);
  234. if (sc->sc_ah->opmode == NL80211_IFTYPE_AP ||
  235. !(sc->sc_ah->caps.hw_caps & ATH9K_HW_CAP_VEOL)) {
  236. int slot;
  237. /*
  238. * Assign the vif to a beacon xmit slot. As
  239. * above, this cannot fail to find one.
  240. */
  241. avp->av_bslot = 0;
  242. for (slot = 0; slot < ATH_BCBUF; slot++)
  243. if (sc->beacon.bslot[slot] == NULL) {
  244. /*
  245. * XXX hack, space out slots to better
  246. * deal with misses
  247. */
  248. if (slot+1 < ATH_BCBUF &&
  249. sc->beacon.bslot[slot+1] == NULL) {
  250. avp->av_bslot = slot+1;
  251. break;
  252. }
  253. avp->av_bslot = slot;
  254. /* NB: keep looking for a double slot */
  255. }
  256. BUG_ON(sc->beacon.bslot[avp->av_bslot] != NULL);
  257. sc->beacon.bslot[avp->av_bslot] = vif;
  258. sc->beacon.bslot_aphy[avp->av_bslot] = aphy;
  259. sc->nbcnvifs++;
  260. }
  261. }
  262. /* release the previous beacon frame, if it already exists. */
  263. bf = avp->av_bcbuf;
  264. if (bf->bf_mpdu != NULL) {
  265. skb = bf->bf_mpdu;
  266. dma_unmap_single(sc->dev, bf->bf_dmacontext,
  267. skb->len, DMA_TO_DEVICE);
  268. dev_kfree_skb_any(skb);
  269. bf->bf_mpdu = NULL;
  270. }
  271. /* NB: the beacon data buffer must be 32-bit aligned. */
  272. skb = ieee80211_beacon_get(sc->hw, vif);
  273. if (skb == NULL) {
  274. ath_print(common, ATH_DBG_BEACON, "cannot get skb\n");
  275. return -ENOMEM;
  276. }
  277. tstamp = ((struct ieee80211_mgmt *)skb->data)->u.beacon.timestamp;
  278. sc->beacon.bc_tstamp = le64_to_cpu(tstamp);
  279. /* Calculate a TSF adjustment factor required for staggered beacons. */
  280. if (avp->av_bslot > 0) {
  281. u64 tsfadjust;
  282. int intval;
  283. intval = sc->beacon_interval ? : ATH_DEFAULT_BINTVAL;
  284. /*
  285. * Calculate the TSF offset for this beacon slot, i.e., the
  286. * number of usecs that need to be added to the timestamp field
  287. * in Beacon and Probe Response frames. Beacon slot 0 is
  288. * processed at the correct offset, so it does not require TSF
  289. * adjustment. Other slots are adjusted to get the timestamp
  290. * close to the TBTT for the BSS.
  291. */
  292. tsfadjust = intval * avp->av_bslot / ATH_BCBUF;
  293. avp->tsf_adjust = cpu_to_le64(TU_TO_USEC(tsfadjust));
  294. ath_print(common, ATH_DBG_BEACON,
  295. "stagger beacons, bslot %d intval "
  296. "%u tsfadjust %llu\n",
  297. avp->av_bslot, intval, (unsigned long long)tsfadjust);
  298. ((struct ieee80211_mgmt *)skb->data)->u.beacon.timestamp =
  299. avp->tsf_adjust;
  300. } else
  301. avp->tsf_adjust = cpu_to_le64(0);
  302. bf->bf_mpdu = skb;
  303. bf->bf_buf_addr = bf->bf_dmacontext =
  304. dma_map_single(sc->dev, skb->data,
  305. skb->len, DMA_TO_DEVICE);
  306. if (unlikely(dma_mapping_error(sc->dev, bf->bf_buf_addr))) {
  307. dev_kfree_skb_any(skb);
  308. bf->bf_mpdu = NULL;
  309. ath_print(common, ATH_DBG_FATAL,
  310. "dma_mapping_error on beacon alloc\n");
  311. return -ENOMEM;
  312. }
  313. return 0;
  314. }
  315. void ath_beacon_return(struct ath_softc *sc, struct ath_vif *avp)
  316. {
  317. if (avp->av_bcbuf != NULL) {
  318. struct ath_buf *bf;
  319. if (avp->av_bslot != -1) {
  320. sc->beacon.bslot[avp->av_bslot] = NULL;
  321. sc->beacon.bslot_aphy[avp->av_bslot] = NULL;
  322. sc->nbcnvifs--;
  323. }
  324. bf = avp->av_bcbuf;
  325. if (bf->bf_mpdu != NULL) {
  326. struct sk_buff *skb = bf->bf_mpdu;
  327. dma_unmap_single(sc->dev, bf->bf_dmacontext,
  328. skb->len, DMA_TO_DEVICE);
  329. dev_kfree_skb_any(skb);
  330. bf->bf_mpdu = NULL;
  331. }
  332. list_add_tail(&bf->list, &sc->beacon.bbuf);
  333. avp->av_bcbuf = NULL;
  334. }
  335. }
  336. void ath_beacon_tasklet(unsigned long data)
  337. {
  338. struct ath_softc *sc = (struct ath_softc *)data;
  339. struct ath_hw *ah = sc->sc_ah;
  340. struct ath_common *common = ath9k_hw_common(ah);
  341. struct ath_buf *bf = NULL;
  342. struct ieee80211_vif *vif;
  343. struct ath_wiphy *aphy;
  344. int slot;
  345. u32 bfaddr, bc = 0, tsftu;
  346. u64 tsf;
  347. u16 intval;
  348. /*
  349. * Check if the previous beacon has gone out. If
  350. * not don't try to post another, skip this period
  351. * and wait for the next. Missed beacons indicate
  352. * a problem and should not occur. If we miss too
  353. * many consecutive beacons reset the device.
  354. */
  355. if (ath9k_hw_numtxpending(ah, sc->beacon.beaconq) != 0) {
  356. sc->beacon.bmisscnt++;
  357. if (sc->beacon.bmisscnt < BSTUCK_THRESH) {
  358. ath_print(common, ATH_DBG_BEACON,
  359. "missed %u consecutive beacons\n",
  360. sc->beacon.bmisscnt);
  361. } else if (sc->beacon.bmisscnt >= BSTUCK_THRESH) {
  362. ath_print(common, ATH_DBG_BEACON,
  363. "beacon is officially stuck\n");
  364. sc->sc_flags |= SC_OP_TSF_RESET;
  365. ath_reset(sc, false);
  366. }
  367. return;
  368. }
  369. if (sc->beacon.bmisscnt != 0) {
  370. ath_print(common, ATH_DBG_BEACON,
  371. "resume beacon xmit after %u misses\n",
  372. sc->beacon.bmisscnt);
  373. sc->beacon.bmisscnt = 0;
  374. }
  375. /*
  376. * Generate beacon frames. we are sending frames
  377. * staggered so calculate the slot for this frame based
  378. * on the tsf to safeguard against missing an swba.
  379. */
  380. intval = sc->beacon_interval ? : ATH_DEFAULT_BINTVAL;
  381. tsf = ath9k_hw_gettsf64(ah);
  382. tsftu = TSF_TO_TU(tsf>>32, tsf);
  383. slot = ((tsftu % intval) * ATH_BCBUF) / intval;
  384. /*
  385. * Reverse the slot order to get slot 0 on the TBTT offset that does
  386. * not require TSF adjustment and other slots adding
  387. * slot/ATH_BCBUF * beacon_int to timestamp. For example, with
  388. * ATH_BCBUF = 4, we process beacon slots as follows: 3 2 1 0 3 2 1 ..
  389. * and slot 0 is at correct offset to TBTT.
  390. */
  391. slot = ATH_BCBUF - slot - 1;
  392. vif = sc->beacon.bslot[slot];
  393. aphy = sc->beacon.bslot_aphy[slot];
  394. ath_print(common, ATH_DBG_BEACON,
  395. "slot %d [tsf %llu tsftu %u intval %u] vif %p\n",
  396. slot, tsf, tsftu, intval, vif);
  397. bfaddr = 0;
  398. if (vif) {
  399. bf = ath_beacon_generate(aphy->hw, vif);
  400. if (bf != NULL) {
  401. bfaddr = bf->bf_daddr;
  402. bc = 1;
  403. }
  404. }
  405. /*
  406. * Handle slot time change when a non-ERP station joins/leaves
  407. * an 11g network. The 802.11 layer notifies us via callback,
  408. * we mark updateslot, then wait one beacon before effecting
  409. * the change. This gives associated stations at least one
  410. * beacon interval to note the state change.
  411. *
  412. * NB: The slot time change state machine is clocked according
  413. * to whether we are bursting or staggering beacons. We
  414. * recognize the request to update and record the current
  415. * slot then don't transition until that slot is reached
  416. * again. If we miss a beacon for that slot then we'll be
  417. * slow to transition but we'll be sure at least one beacon
  418. * interval has passed. When bursting slot is always left
  419. * set to ATH_BCBUF so this check is a noop.
  420. */
  421. if (sc->beacon.updateslot == UPDATE) {
  422. sc->beacon.updateslot = COMMIT; /* commit next beacon */
  423. sc->beacon.slotupdate = slot;
  424. } else if (sc->beacon.updateslot == COMMIT && sc->beacon.slotupdate == slot) {
  425. ath9k_hw_setslottime(sc->sc_ah, sc->beacon.slottime);
  426. sc->beacon.updateslot = OK;
  427. }
  428. if (bfaddr != 0) {
  429. /*
  430. * Stop any current dma and put the new frame(s) on the queue.
  431. * This should never fail since we check above that no frames
  432. * are still pending on the queue.
  433. */
  434. if (!ath9k_hw_stoptxdma(ah, sc->beacon.beaconq)) {
  435. ath_print(common, ATH_DBG_FATAL,
  436. "beacon queue %u did not stop?\n", sc->beacon.beaconq);
  437. }
  438. /* NB: cabq traffic should already be queued and primed */
  439. ath9k_hw_puttxbuf(ah, sc->beacon.beaconq, bfaddr);
  440. ath9k_hw_txstart(ah, sc->beacon.beaconq);
  441. sc->beacon.ast_be_xmit += bc; /* XXX per-vif? */
  442. }
  443. }
  444. static void ath9k_beacon_init(struct ath_softc *sc,
  445. u32 next_beacon,
  446. u32 beacon_period)
  447. {
  448. if (beacon_period & ATH9K_BEACON_RESET_TSF)
  449. ath9k_ps_wakeup(sc);
  450. ath9k_hw_beaconinit(sc->sc_ah, next_beacon, beacon_period);
  451. if (beacon_period & ATH9K_BEACON_RESET_TSF)
  452. ath9k_ps_restore(sc);
  453. }
  454. /*
  455. * For multi-bss ap support beacons are either staggered evenly over N slots or
  456. * burst together. For the former arrange for the SWBA to be delivered for each
  457. * slot. Slots that are not occupied will generate nothing.
  458. */
  459. static void ath_beacon_config_ap(struct ath_softc *sc,
  460. struct ath_beacon_config *conf)
  461. {
  462. u32 nexttbtt, intval;
  463. /* Configure the timers only when the TSF has to be reset */
  464. if (!(sc->sc_flags & SC_OP_TSF_RESET))
  465. return;
  466. /* NB: the beacon interval is kept internally in TU's */
  467. intval = conf->beacon_interval & ATH9K_BEACON_PERIOD;
  468. intval /= ATH_BCBUF; /* for staggered beacons */
  469. nexttbtt = intval;
  470. intval |= ATH9K_BEACON_RESET_TSF;
  471. /*
  472. * In AP mode we enable the beacon timers and SWBA interrupts to
  473. * prepare beacon frames.
  474. */
  475. intval |= ATH9K_BEACON_ENA;
  476. sc->imask |= ATH9K_INT_SWBA;
  477. ath_beaconq_config(sc);
  478. /* Set the computed AP beacon timers */
  479. ath9k_hw_set_interrupts(sc->sc_ah, 0);
  480. ath9k_beacon_init(sc, nexttbtt, intval);
  481. sc->beacon.bmisscnt = 0;
  482. ath9k_hw_set_interrupts(sc->sc_ah, sc->imask);
  483. /* Clear the reset TSF flag, so that subsequent beacon updation
  484. will not reset the HW TSF. */
  485. sc->sc_flags &= ~SC_OP_TSF_RESET;
  486. }
  487. /*
  488. * This sets up the beacon timers according to the timestamp of the last
  489. * received beacon and the current TSF, configures PCF and DTIM
  490. * handling, programs the sleep registers so the hardware will wakeup in
  491. * time to receive beacons, and configures the beacon miss handling so
  492. * we'll receive a BMISS interrupt when we stop seeing beacons from the AP
  493. * we've associated with.
  494. */
  495. static void ath_beacon_config_sta(struct ath_softc *sc,
  496. struct ath_beacon_config *conf)
  497. {
  498. struct ath_common *common = ath9k_hw_common(sc->sc_ah);
  499. struct ath9k_beacon_state bs;
  500. int dtimperiod, dtimcount, sleepduration;
  501. int cfpperiod, cfpcount;
  502. u32 nexttbtt = 0, intval, tsftu;
  503. u64 tsf;
  504. int num_beacons, offset, dtim_dec_count, cfp_dec_count;
  505. memset(&bs, 0, sizeof(bs));
  506. intval = conf->beacon_interval & ATH9K_BEACON_PERIOD;
  507. /*
  508. * Setup dtim and cfp parameters according to
  509. * last beacon we received (which may be none).
  510. */
  511. dtimperiod = conf->dtim_period;
  512. if (dtimperiod <= 0) /* NB: 0 if not known */
  513. dtimperiod = 1;
  514. dtimcount = conf->dtim_count;
  515. if (dtimcount >= dtimperiod) /* NB: sanity check */
  516. dtimcount = 0;
  517. cfpperiod = 1; /* NB: no PCF support yet */
  518. cfpcount = 0;
  519. sleepduration = conf->listen_interval * intval;
  520. if (sleepduration <= 0)
  521. sleepduration = intval;
  522. /*
  523. * Pull nexttbtt forward to reflect the current
  524. * TSF and calculate dtim+cfp state for the result.
  525. */
  526. tsf = ath9k_hw_gettsf64(sc->sc_ah);
  527. tsftu = TSF_TO_TU(tsf>>32, tsf) + FUDGE;
  528. num_beacons = tsftu / intval + 1;
  529. offset = tsftu % intval;
  530. nexttbtt = tsftu - offset;
  531. if (offset)
  532. nexttbtt += intval;
  533. /* DTIM Beacon every dtimperiod Beacon */
  534. dtim_dec_count = num_beacons % dtimperiod;
  535. /* CFP every cfpperiod DTIM Beacon */
  536. cfp_dec_count = (num_beacons / dtimperiod) % cfpperiod;
  537. if (dtim_dec_count)
  538. cfp_dec_count++;
  539. dtimcount -= dtim_dec_count;
  540. if (dtimcount < 0)
  541. dtimcount += dtimperiod;
  542. cfpcount -= cfp_dec_count;
  543. if (cfpcount < 0)
  544. cfpcount += cfpperiod;
  545. bs.bs_intval = intval;
  546. bs.bs_nexttbtt = nexttbtt;
  547. bs.bs_dtimperiod = dtimperiod*intval;
  548. bs.bs_nextdtim = bs.bs_nexttbtt + dtimcount*intval;
  549. bs.bs_cfpperiod = cfpperiod*bs.bs_dtimperiod;
  550. bs.bs_cfpnext = bs.bs_nextdtim + cfpcount*bs.bs_dtimperiod;
  551. bs.bs_cfpmaxduration = 0;
  552. /*
  553. * Calculate the number of consecutive beacons to miss* before taking
  554. * a BMISS interrupt. The configuration is specified in TU so we only
  555. * need calculate based on the beacon interval. Note that we clamp the
  556. * result to at most 15 beacons.
  557. */
  558. if (sleepduration > intval) {
  559. bs.bs_bmissthreshold = conf->listen_interval *
  560. ATH_DEFAULT_BMISS_LIMIT / 2;
  561. } else {
  562. bs.bs_bmissthreshold = DIV_ROUND_UP(conf->bmiss_timeout, intval);
  563. if (bs.bs_bmissthreshold > 15)
  564. bs.bs_bmissthreshold = 15;
  565. else if (bs.bs_bmissthreshold <= 0)
  566. bs.bs_bmissthreshold = 1;
  567. }
  568. /*
  569. * Calculate sleep duration. The configuration is given in ms.
  570. * We ensure a multiple of the beacon period is used. Also, if the sleep
  571. * duration is greater than the DTIM period then it makes senses
  572. * to make it a multiple of that.
  573. *
  574. * XXX fixed at 100ms
  575. */
  576. bs.bs_sleepduration = roundup(IEEE80211_MS_TO_TU(100), sleepduration);
  577. if (bs.bs_sleepduration > bs.bs_dtimperiod)
  578. bs.bs_sleepduration = bs.bs_dtimperiod;
  579. /* TSF out of range threshold fixed at 1 second */
  580. bs.bs_tsfoor_threshold = ATH9K_TSFOOR_THRESHOLD;
  581. ath_print(common, ATH_DBG_BEACON, "tsf: %llu tsftu: %u\n", tsf, tsftu);
  582. ath_print(common, ATH_DBG_BEACON,
  583. "bmiss: %u sleep: %u cfp-period: %u maxdur: %u next: %u\n",
  584. bs.bs_bmissthreshold, bs.bs_sleepduration,
  585. bs.bs_cfpperiod, bs.bs_cfpmaxduration, bs.bs_cfpnext);
  586. /* Set the computed STA beacon timers */
  587. ath9k_hw_set_interrupts(sc->sc_ah, 0);
  588. ath9k_hw_set_sta_beacon_timers(sc->sc_ah, &bs);
  589. sc->imask |= ATH9K_INT_BMISS;
  590. ath9k_hw_set_interrupts(sc->sc_ah, sc->imask);
  591. }
  592. static void ath_beacon_config_adhoc(struct ath_softc *sc,
  593. struct ath_beacon_config *conf,
  594. struct ieee80211_vif *vif)
  595. {
  596. struct ath_common *common = ath9k_hw_common(sc->sc_ah);
  597. u64 tsf;
  598. u32 tsftu, intval, nexttbtt;
  599. intval = conf->beacon_interval & ATH9K_BEACON_PERIOD;
  600. /* Pull nexttbtt forward to reflect the current TSF */
  601. nexttbtt = TSF_TO_TU(sc->beacon.bc_tstamp >> 32, sc->beacon.bc_tstamp);
  602. if (nexttbtt == 0)
  603. nexttbtt = intval;
  604. else if (intval)
  605. nexttbtt = roundup(nexttbtt, intval);
  606. tsf = ath9k_hw_gettsf64(sc->sc_ah);
  607. tsftu = TSF_TO_TU((u32)(tsf>>32), (u32)tsf) + FUDGE;
  608. do {
  609. nexttbtt += intval;
  610. } while (nexttbtt < tsftu);
  611. ath_print(common, ATH_DBG_BEACON,
  612. "IBSS nexttbtt %u intval %u (%u)\n",
  613. nexttbtt, intval, conf->beacon_interval);
  614. /*
  615. * In IBSS mode enable the beacon timers but only enable SWBA interrupts
  616. * if we need to manually prepare beacon frames. Otherwise we use a
  617. * self-linked tx descriptor and let the hardware deal with things.
  618. */
  619. intval |= ATH9K_BEACON_ENA;
  620. if (!(sc->sc_ah->caps.hw_caps & ATH9K_HW_CAP_VEOL))
  621. sc->imask |= ATH9K_INT_SWBA;
  622. ath_beaconq_config(sc);
  623. /* Set the computed ADHOC beacon timers */
  624. ath9k_hw_set_interrupts(sc->sc_ah, 0);
  625. ath9k_beacon_init(sc, nexttbtt, intval);
  626. sc->beacon.bmisscnt = 0;
  627. ath9k_hw_set_interrupts(sc->sc_ah, sc->imask);
  628. /* FIXME: Handle properly when vif is NULL */
  629. if (vif && sc->sc_ah->caps.hw_caps & ATH9K_HW_CAP_VEOL)
  630. ath_beacon_start_adhoc(sc, vif);
  631. }
  632. void ath_beacon_config(struct ath_softc *sc, struct ieee80211_vif *vif)
  633. {
  634. struct ath_beacon_config *cur_conf = &sc->cur_beacon_conf;
  635. struct ath_common *common = ath9k_hw_common(sc->sc_ah);
  636. enum nl80211_iftype iftype;
  637. /* Setup the beacon configuration parameters */
  638. if (vif) {
  639. struct ieee80211_bss_conf *bss_conf = &vif->bss_conf;
  640. iftype = vif->type;
  641. cur_conf->beacon_interval = bss_conf->beacon_int;
  642. cur_conf->dtim_period = bss_conf->dtim_period;
  643. cur_conf->listen_interval = 1;
  644. cur_conf->dtim_count = 1;
  645. cur_conf->bmiss_timeout =
  646. ATH_DEFAULT_BMISS_LIMIT * cur_conf->beacon_interval;
  647. } else {
  648. iftype = sc->sc_ah->opmode;
  649. }
  650. /*
  651. * It looks like mac80211 may end up using beacon interval of zero in
  652. * some cases (at least for mesh point). Avoid getting into an
  653. * infinite loop by using a bit safer value instead. To be safe,
  654. * do sanity check on beacon interval for all operating modes.
  655. */
  656. if (cur_conf->beacon_interval == 0)
  657. cur_conf->beacon_interval = 100;
  658. switch (iftype) {
  659. case NL80211_IFTYPE_AP:
  660. ath_beacon_config_ap(sc, cur_conf);
  661. break;
  662. case NL80211_IFTYPE_ADHOC:
  663. case NL80211_IFTYPE_MESH_POINT:
  664. ath_beacon_config_adhoc(sc, cur_conf, vif);
  665. break;
  666. case NL80211_IFTYPE_STATION:
  667. ath_beacon_config_sta(sc, cur_conf);
  668. break;
  669. default:
  670. ath_print(common, ATH_DBG_CONFIG,
  671. "Unsupported beaconing mode\n");
  672. return;
  673. }
  674. sc->sc_flags |= SC_OP_BEACONS;
  675. }