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v6.8
   1// SPDX-License-Identifier: ISC
   2/*
   3 * Copyright (c) 2005-2011 Atheros Communications Inc.
   4 * Copyright (c) 2011-2017 Qualcomm Atheros, Inc.
   5 * Copyright (c) 2018, The Linux Foundation. All rights reserved.
   6 * Copyright (c) 2022 Qualcomm Innovation Center, Inc. All rights reserved.
   7 */
   8
   9#include "core.h"
  10#include "htc.h"
  11#include "htt.h"
  12#include "txrx.h"
  13#include "debug.h"
  14#include "trace.h"
  15#include "mac.h"
  16
  17#include <linux/log2.h>
  18#include <linux/bitfield.h>
  19
  20/* when under memory pressure rx ring refill may fail and needs a retry */
  21#define HTT_RX_RING_REFILL_RETRY_MS 50
  22
  23#define HTT_RX_RING_REFILL_RESCHED_MS 5
  24
  25/* shortcut to interpret a raw memory buffer as a rx descriptor */
  26#define HTT_RX_BUF_TO_RX_DESC(hw, buf) ath10k_htt_rx_desc_from_raw_buffer(hw, buf)
  27
  28static int ath10k_htt_rx_get_csum_state(struct ath10k_hw_params *hw, struct sk_buff *skb);
  29
  30static struct sk_buff *
  31ath10k_htt_rx_find_skb_paddr(struct ath10k *ar, u64 paddr)
  32{
  33	struct ath10k_skb_rxcb *rxcb;
  34
  35	hash_for_each_possible(ar->htt.rx_ring.skb_table, rxcb, hlist, paddr)
  36		if (rxcb->paddr == paddr)
  37			return ATH10K_RXCB_SKB(rxcb);
  38
  39	WARN_ON_ONCE(1);
  40	return NULL;
  41}
  42
  43static void ath10k_htt_rx_ring_free(struct ath10k_htt *htt)
  44{
  45	struct sk_buff *skb;
  46	struct ath10k_skb_rxcb *rxcb;
  47	struct hlist_node *n;
  48	int i;
  49
  50	if (htt->rx_ring.in_ord_rx) {
  51		hash_for_each_safe(htt->rx_ring.skb_table, i, n, rxcb, hlist) {
  52			skb = ATH10K_RXCB_SKB(rxcb);
  53			dma_unmap_single(htt->ar->dev, rxcb->paddr,
  54					 skb->len + skb_tailroom(skb),
  55					 DMA_FROM_DEVICE);
  56			hash_del(&rxcb->hlist);
  57			dev_kfree_skb_any(skb);
  58		}
  59	} else {
  60		for (i = 0; i < htt->rx_ring.size; i++) {
  61			skb = htt->rx_ring.netbufs_ring[i];
  62			if (!skb)
  63				continue;
  64
  65			rxcb = ATH10K_SKB_RXCB(skb);
  66			dma_unmap_single(htt->ar->dev, rxcb->paddr,
  67					 skb->len + skb_tailroom(skb),
  68					 DMA_FROM_DEVICE);
  69			dev_kfree_skb_any(skb);
  70		}
  71	}
  72
  73	htt->rx_ring.fill_cnt = 0;
  74	hash_init(htt->rx_ring.skb_table);
  75	memset(htt->rx_ring.netbufs_ring, 0,
  76	       htt->rx_ring.size * sizeof(htt->rx_ring.netbufs_ring[0]));
  77}
  78
  79static size_t ath10k_htt_get_rx_ring_size_32(struct ath10k_htt *htt)
  80{
  81	return htt->rx_ring.size * sizeof(htt->rx_ring.paddrs_ring_32);
  82}
  83
  84static size_t ath10k_htt_get_rx_ring_size_64(struct ath10k_htt *htt)
  85{
  86	return htt->rx_ring.size * sizeof(htt->rx_ring.paddrs_ring_64);
  87}
  88
  89static void ath10k_htt_config_paddrs_ring_32(struct ath10k_htt *htt,
  90					     void *vaddr)
  91{
  92	htt->rx_ring.paddrs_ring_32 = vaddr;
  93}
  94
  95static void ath10k_htt_config_paddrs_ring_64(struct ath10k_htt *htt,
  96					     void *vaddr)
  97{
  98	htt->rx_ring.paddrs_ring_64 = vaddr;
  99}
 100
 101static void ath10k_htt_set_paddrs_ring_32(struct ath10k_htt *htt,
 102					  dma_addr_t paddr, int idx)
 103{
 104	htt->rx_ring.paddrs_ring_32[idx] = __cpu_to_le32(paddr);
 105}
 106
 107static void ath10k_htt_set_paddrs_ring_64(struct ath10k_htt *htt,
 108					  dma_addr_t paddr, int idx)
 109{
 110	htt->rx_ring.paddrs_ring_64[idx] = __cpu_to_le64(paddr);
 111}
 112
 113static void ath10k_htt_reset_paddrs_ring_32(struct ath10k_htt *htt, int idx)
 114{
 115	htt->rx_ring.paddrs_ring_32[idx] = 0;
 116}
 117
 118static void ath10k_htt_reset_paddrs_ring_64(struct ath10k_htt *htt, int idx)
 119{
 120	htt->rx_ring.paddrs_ring_64[idx] = 0;
 121}
 122
 123static void *ath10k_htt_get_vaddr_ring_32(struct ath10k_htt *htt)
 124{
 125	return (void *)htt->rx_ring.paddrs_ring_32;
 126}
 127
 128static void *ath10k_htt_get_vaddr_ring_64(struct ath10k_htt *htt)
 129{
 130	return (void *)htt->rx_ring.paddrs_ring_64;
 131}
 132
 133static int __ath10k_htt_rx_ring_fill_n(struct ath10k_htt *htt, int num)
 134{
 135	struct ath10k_hw_params *hw = &htt->ar->hw_params;
 136	struct htt_rx_desc *rx_desc;
 137	struct ath10k_skb_rxcb *rxcb;
 138	struct sk_buff *skb;
 139	dma_addr_t paddr;
 140	int ret = 0, idx;
 141
 142	/* The Full Rx Reorder firmware has no way of telling the host
 143	 * implicitly when it copied HTT Rx Ring buffers to MAC Rx Ring.
 144	 * To keep things simple make sure ring is always half empty. This
 145	 * guarantees there'll be no replenishment overruns possible.
 146	 */
 147	BUILD_BUG_ON(HTT_RX_RING_FILL_LEVEL >= HTT_RX_RING_SIZE / 2);
 148
 149	idx = __le32_to_cpu(*htt->rx_ring.alloc_idx.vaddr);
 150
 151	if (idx < 0 || idx >= htt->rx_ring.size) {
 152		ath10k_err(htt->ar, "rx ring index is not valid, firmware malfunctioning?\n");
 153		idx &= htt->rx_ring.size_mask;
 154		ret = -ENOMEM;
 155		goto fail;
 156	}
 157
 158	while (num > 0) {
 159		skb = dev_alloc_skb(HTT_RX_BUF_SIZE + HTT_RX_DESC_ALIGN);
 160		if (!skb) {
 161			ret = -ENOMEM;
 162			goto fail;
 163		}
 164
 165		if (!IS_ALIGNED((unsigned long)skb->data, HTT_RX_DESC_ALIGN))
 166			skb_pull(skb,
 167				 PTR_ALIGN(skb->data, HTT_RX_DESC_ALIGN) -
 168				 skb->data);
 169
 170		/* Clear rx_desc attention word before posting to Rx ring */
 171		rx_desc = HTT_RX_BUF_TO_RX_DESC(hw, skb->data);
 172		ath10k_htt_rx_desc_get_attention(hw, rx_desc)->flags = __cpu_to_le32(0);
 173
 174		paddr = dma_map_single(htt->ar->dev, skb->data,
 175				       skb->len + skb_tailroom(skb),
 176				       DMA_FROM_DEVICE);
 177
 178		if (unlikely(dma_mapping_error(htt->ar->dev, paddr))) {
 179			dev_kfree_skb_any(skb);
 180			ret = -ENOMEM;
 181			goto fail;
 182		}
 183
 184		rxcb = ATH10K_SKB_RXCB(skb);
 185		rxcb->paddr = paddr;
 186		htt->rx_ring.netbufs_ring[idx] = skb;
 187		ath10k_htt_set_paddrs_ring(htt, paddr, idx);
 188		htt->rx_ring.fill_cnt++;
 189
 190		if (htt->rx_ring.in_ord_rx) {
 191			hash_add(htt->rx_ring.skb_table,
 192				 &ATH10K_SKB_RXCB(skb)->hlist,
 193				 paddr);
 194		}
 195
 196		num--;
 197		idx++;
 198		idx &= htt->rx_ring.size_mask;
 199	}
 200
 201fail:
 202	/*
 203	 * Make sure the rx buffer is updated before available buffer
 204	 * index to avoid any potential rx ring corruption.
 205	 */
 206	mb();
 207	*htt->rx_ring.alloc_idx.vaddr = __cpu_to_le32(idx);
 208	return ret;
 209}
 210
 211static int ath10k_htt_rx_ring_fill_n(struct ath10k_htt *htt, int num)
 212{
 213	lockdep_assert_held(&htt->rx_ring.lock);
 214	return __ath10k_htt_rx_ring_fill_n(htt, num);
 215}
 216
 217static void ath10k_htt_rx_msdu_buff_replenish(struct ath10k_htt *htt)
 218{
 219	int ret, num_deficit, num_to_fill;
 220
 221	/* Refilling the whole RX ring buffer proves to be a bad idea. The
 222	 * reason is RX may take up significant amount of CPU cycles and starve
 223	 * other tasks, e.g. TX on an ethernet device while acting as a bridge
 224	 * with ath10k wlan interface. This ended up with very poor performance
 225	 * once CPU the host system was overwhelmed with RX on ath10k.
 226	 *
 227	 * By limiting the number of refills the replenishing occurs
 228	 * progressively. This in turns makes use of the fact tasklets are
 229	 * processed in FIFO order. This means actual RX processing can starve
 230	 * out refilling. If there's not enough buffers on RX ring FW will not
 231	 * report RX until it is refilled with enough buffers. This
 232	 * automatically balances load wrt to CPU power.
 233	 *
 234	 * This probably comes at a cost of lower maximum throughput but
 235	 * improves the average and stability.
 236	 */
 237	spin_lock_bh(&htt->rx_ring.lock);
 238	num_deficit = htt->rx_ring.fill_level - htt->rx_ring.fill_cnt;
 239	num_to_fill = min(ATH10K_HTT_MAX_NUM_REFILL, num_deficit);
 240	num_deficit -= num_to_fill;
 241	ret = ath10k_htt_rx_ring_fill_n(htt, num_to_fill);
 242	if (ret == -ENOMEM) {
 243		/*
 244		 * Failed to fill it to the desired level -
 245		 * we'll start a timer and try again next time.
 246		 * As long as enough buffers are left in the ring for
 247		 * another A-MPDU rx, no special recovery is needed.
 248		 */
 249		mod_timer(&htt->rx_ring.refill_retry_timer, jiffies +
 250			  msecs_to_jiffies(HTT_RX_RING_REFILL_RETRY_MS));
 251	} else if (num_deficit > 0) {
 252		mod_timer(&htt->rx_ring.refill_retry_timer, jiffies +
 253			  msecs_to_jiffies(HTT_RX_RING_REFILL_RESCHED_MS));
 254	}
 255	spin_unlock_bh(&htt->rx_ring.lock);
 256}
 257
 258static void ath10k_htt_rx_ring_refill_retry(struct timer_list *t)
 259{
 260	struct ath10k_htt *htt = from_timer(htt, t, rx_ring.refill_retry_timer);
 261
 262	ath10k_htt_rx_msdu_buff_replenish(htt);
 263}
 264
 265int ath10k_htt_rx_ring_refill(struct ath10k *ar)
 266{
 267	struct ath10k_htt *htt = &ar->htt;
 268	int ret;
 269
 270	if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
 271		return 0;
 272
 273	spin_lock_bh(&htt->rx_ring.lock);
 274	ret = ath10k_htt_rx_ring_fill_n(htt, (htt->rx_ring.fill_level -
 275					      htt->rx_ring.fill_cnt));
 276
 277	if (ret)
 278		ath10k_htt_rx_ring_free(htt);
 279
 280	spin_unlock_bh(&htt->rx_ring.lock);
 281
 282	return ret;
 283}
 284
 285void ath10k_htt_rx_free(struct ath10k_htt *htt)
 286{
 287	if (htt->ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
 288		return;
 289
 290	del_timer_sync(&htt->rx_ring.refill_retry_timer);
 291
 292	skb_queue_purge(&htt->rx_msdus_q);
 293	skb_queue_purge(&htt->rx_in_ord_compl_q);
 294	skb_queue_purge(&htt->tx_fetch_ind_q);
 295
 296	spin_lock_bh(&htt->rx_ring.lock);
 297	ath10k_htt_rx_ring_free(htt);
 298	spin_unlock_bh(&htt->rx_ring.lock);
 299
 300	dma_free_coherent(htt->ar->dev,
 301			  ath10k_htt_get_rx_ring_size(htt),
 302			  ath10k_htt_get_vaddr_ring(htt),
 303			  htt->rx_ring.base_paddr);
 304
 305	ath10k_htt_config_paddrs_ring(htt, NULL);
 306
 307	dma_free_coherent(htt->ar->dev,
 308			  sizeof(*htt->rx_ring.alloc_idx.vaddr),
 309			  htt->rx_ring.alloc_idx.vaddr,
 310			  htt->rx_ring.alloc_idx.paddr);
 311	htt->rx_ring.alloc_idx.vaddr = NULL;
 312
 313	kfree(htt->rx_ring.netbufs_ring);
 314	htt->rx_ring.netbufs_ring = NULL;
 315}
 316
 317static inline struct sk_buff *ath10k_htt_rx_netbuf_pop(struct ath10k_htt *htt)
 318{
 319	struct ath10k *ar = htt->ar;
 320	int idx;
 321	struct sk_buff *msdu;
 322
 323	lockdep_assert_held(&htt->rx_ring.lock);
 324
 325	if (htt->rx_ring.fill_cnt == 0) {
 326		ath10k_warn(ar, "tried to pop sk_buff from an empty rx ring\n");
 327		return NULL;
 328	}
 329
 330	idx = htt->rx_ring.sw_rd_idx.msdu_payld;
 331	msdu = htt->rx_ring.netbufs_ring[idx];
 332	htt->rx_ring.netbufs_ring[idx] = NULL;
 333	ath10k_htt_reset_paddrs_ring(htt, idx);
 334
 335	idx++;
 336	idx &= htt->rx_ring.size_mask;
 337	htt->rx_ring.sw_rd_idx.msdu_payld = idx;
 338	htt->rx_ring.fill_cnt--;
 339
 340	dma_unmap_single(htt->ar->dev,
 341			 ATH10K_SKB_RXCB(msdu)->paddr,
 342			 msdu->len + skb_tailroom(msdu),
 343			 DMA_FROM_DEVICE);
 344	ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt rx netbuf pop: ",
 345			msdu->data, msdu->len + skb_tailroom(msdu));
 346
 347	return msdu;
 348}
 349
 350/* return: < 0 fatal error, 0 - non chained msdu, 1 chained msdu */
 351static int ath10k_htt_rx_amsdu_pop(struct ath10k_htt *htt,
 352				   struct sk_buff_head *amsdu)
 353{
 354	struct ath10k *ar = htt->ar;
 355	struct ath10k_hw_params *hw = &ar->hw_params;
 356	int msdu_len, msdu_chaining = 0;
 357	struct sk_buff *msdu;
 358	struct htt_rx_desc *rx_desc;
 359	struct rx_attention *rx_desc_attention;
 360	struct rx_frag_info_common *rx_desc_frag_info_common;
 361	struct rx_msdu_start_common *rx_desc_msdu_start_common;
 362	struct rx_msdu_end_common *rx_desc_msdu_end_common;
 363
 364	lockdep_assert_held(&htt->rx_ring.lock);
 365
 366	for (;;) {
 367		int last_msdu, msdu_len_invalid, msdu_chained;
 368
 369		msdu = ath10k_htt_rx_netbuf_pop(htt);
 370		if (!msdu) {
 371			__skb_queue_purge(amsdu);
 372			return -ENOENT;
 373		}
 374
 375		__skb_queue_tail(amsdu, msdu);
 376
 377		rx_desc = HTT_RX_BUF_TO_RX_DESC(hw, msdu->data);
 378		rx_desc_attention = ath10k_htt_rx_desc_get_attention(hw, rx_desc);
 379		rx_desc_msdu_start_common = ath10k_htt_rx_desc_get_msdu_start(hw,
 380									      rx_desc);
 381		rx_desc_msdu_end_common = ath10k_htt_rx_desc_get_msdu_end(hw, rx_desc);
 382		rx_desc_frag_info_common = ath10k_htt_rx_desc_get_frag_info(hw, rx_desc);
 383
 384		/* FIXME: we must report msdu payload since this is what caller
 385		 * expects now
 386		 */
 387		skb_put(msdu, hw->rx_desc_ops->rx_desc_msdu_payload_offset);
 388		skb_pull(msdu, hw->rx_desc_ops->rx_desc_msdu_payload_offset);
 389
 390		/*
 391		 * Sanity check - confirm the HW is finished filling in the
 392		 * rx data.
 393		 * If the HW and SW are working correctly, then it's guaranteed
 394		 * that the HW's MAC DMA is done before this point in the SW.
 395		 * To prevent the case that we handle a stale Rx descriptor,
 396		 * just assert for now until we have a way to recover.
 397		 */
 398		if (!(__le32_to_cpu(rx_desc_attention->flags)
 399				& RX_ATTENTION_FLAGS_MSDU_DONE)) {
 400			__skb_queue_purge(amsdu);
 401			return -EIO;
 402		}
 403
 404		msdu_len_invalid = !!(__le32_to_cpu(rx_desc_attention->flags)
 405					& (RX_ATTENTION_FLAGS_MPDU_LENGTH_ERR |
 406					   RX_ATTENTION_FLAGS_MSDU_LENGTH_ERR));
 407		msdu_len = MS(__le32_to_cpu(rx_desc_msdu_start_common->info0),
 408			      RX_MSDU_START_INFO0_MSDU_LENGTH);
 409		msdu_chained = rx_desc_frag_info_common->ring2_more_count;
 410
 411		if (msdu_len_invalid)
 412			msdu_len = 0;
 413
 414		skb_trim(msdu, 0);
 415		skb_put(msdu, min(msdu_len, ath10k_htt_rx_msdu_size(hw)));
 416		msdu_len -= msdu->len;
 417
 418		/* Note: Chained buffers do not contain rx descriptor */
 419		while (msdu_chained--) {
 420			msdu = ath10k_htt_rx_netbuf_pop(htt);
 421			if (!msdu) {
 422				__skb_queue_purge(amsdu);
 423				return -ENOENT;
 424			}
 425
 426			__skb_queue_tail(amsdu, msdu);
 427			skb_trim(msdu, 0);
 428			skb_put(msdu, min(msdu_len, HTT_RX_BUF_SIZE));
 429			msdu_len -= msdu->len;
 430			msdu_chaining = 1;
 431		}
 432
 433		last_msdu = __le32_to_cpu(rx_desc_msdu_end_common->info0) &
 434				RX_MSDU_END_INFO0_LAST_MSDU;
 435
 436		/* FIXME: why are we skipping the first part of the rx_desc? */
 437		trace_ath10k_htt_rx_desc(ar, (void *)rx_desc + sizeof(u32),
 438					 hw->rx_desc_ops->rx_desc_size - sizeof(u32));
 439
 440		if (last_msdu)
 441			break;
 442	}
 443
 444	if (skb_queue_empty(amsdu))
 445		msdu_chaining = -1;
 446
 447	/*
 448	 * Don't refill the ring yet.
 449	 *
 450	 * First, the elements popped here are still in use - it is not
 451	 * safe to overwrite them until the matching call to
 452	 * mpdu_desc_list_next. Second, for efficiency it is preferable to
 453	 * refill the rx ring with 1 PPDU's worth of rx buffers (something
 454	 * like 32 x 3 buffers), rather than one MPDU's worth of rx buffers
 455	 * (something like 3 buffers). Consequently, we'll rely on the txrx
 456	 * SW to tell us when it is done pulling all the PPDU's rx buffers
 457	 * out of the rx ring, and then refill it just once.
 458	 */
 459
 460	return msdu_chaining;
 461}
 462
 463static struct sk_buff *ath10k_htt_rx_pop_paddr(struct ath10k_htt *htt,
 464					       u64 paddr)
 465{
 466	struct ath10k *ar = htt->ar;
 467	struct ath10k_skb_rxcb *rxcb;
 468	struct sk_buff *msdu;
 469
 470	lockdep_assert_held(&htt->rx_ring.lock);
 471
 472	msdu = ath10k_htt_rx_find_skb_paddr(ar, paddr);
 473	if (!msdu)
 474		return NULL;
 475
 476	rxcb = ATH10K_SKB_RXCB(msdu);
 477	hash_del(&rxcb->hlist);
 478	htt->rx_ring.fill_cnt--;
 479
 480	dma_unmap_single(htt->ar->dev, rxcb->paddr,
 481			 msdu->len + skb_tailroom(msdu),
 482			 DMA_FROM_DEVICE);
 483	ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt rx netbuf pop: ",
 484			msdu->data, msdu->len + skb_tailroom(msdu));
 485
 486	return msdu;
 487}
 488
 489static inline void ath10k_htt_append_frag_list(struct sk_buff *skb_head,
 490					       struct sk_buff *frag_list,
 491					       unsigned int frag_len)
 492{
 493	skb_shinfo(skb_head)->frag_list = frag_list;
 494	skb_head->data_len = frag_len;
 495	skb_head->len += skb_head->data_len;
 496}
 497
 498static int ath10k_htt_rx_handle_amsdu_mon_32(struct ath10k_htt *htt,
 499					     struct sk_buff *msdu,
 500					     struct htt_rx_in_ord_msdu_desc **msdu_desc)
 501{
 502	struct ath10k *ar = htt->ar;
 503	struct ath10k_hw_params *hw = &ar->hw_params;
 504	u32 paddr;
 505	struct sk_buff *frag_buf;
 506	struct sk_buff *prev_frag_buf;
 507	u8 last_frag;
 508	struct htt_rx_in_ord_msdu_desc *ind_desc = *msdu_desc;
 509	struct htt_rx_desc *rxd;
 510	int amsdu_len = __le16_to_cpu(ind_desc->msdu_len);
 511
 512	rxd = HTT_RX_BUF_TO_RX_DESC(hw, msdu->data);
 513	trace_ath10k_htt_rx_desc(ar, rxd, hw->rx_desc_ops->rx_desc_size);
 514
 515	skb_put(msdu, hw->rx_desc_ops->rx_desc_size);
 516	skb_pull(msdu, hw->rx_desc_ops->rx_desc_size);
 517	skb_put(msdu, min(amsdu_len, ath10k_htt_rx_msdu_size(hw)));
 518	amsdu_len -= msdu->len;
 519
 520	last_frag = ind_desc->reserved;
 521	if (last_frag) {
 522		if (amsdu_len) {
 523			ath10k_warn(ar, "invalid amsdu len %u, left %d",
 524				    __le16_to_cpu(ind_desc->msdu_len),
 525				    amsdu_len);
 526		}
 527		return 0;
 528	}
 529
 530	ind_desc++;
 531	paddr = __le32_to_cpu(ind_desc->msdu_paddr);
 532	frag_buf = ath10k_htt_rx_pop_paddr(htt, paddr);
 533	if (!frag_buf) {
 534		ath10k_warn(ar, "failed to pop frag-1 paddr: 0x%x", paddr);
 535		return -ENOENT;
 536	}
 537
 538	skb_put(frag_buf, min(amsdu_len, HTT_RX_BUF_SIZE));
 539	ath10k_htt_append_frag_list(msdu, frag_buf, amsdu_len);
 540
 541	amsdu_len -= frag_buf->len;
 542	prev_frag_buf = frag_buf;
 543	last_frag = ind_desc->reserved;
 544	while (!last_frag) {
 545		ind_desc++;
 546		paddr = __le32_to_cpu(ind_desc->msdu_paddr);
 547		frag_buf = ath10k_htt_rx_pop_paddr(htt, paddr);
 548		if (!frag_buf) {
 549			ath10k_warn(ar, "failed to pop frag-n paddr: 0x%x",
 550				    paddr);
 551			prev_frag_buf->next = NULL;
 552			return -ENOENT;
 553		}
 554
 555		skb_put(frag_buf, min(amsdu_len, HTT_RX_BUF_SIZE));
 556		last_frag = ind_desc->reserved;
 557		amsdu_len -= frag_buf->len;
 558
 559		prev_frag_buf->next = frag_buf;
 560		prev_frag_buf = frag_buf;
 561	}
 562
 563	if (amsdu_len) {
 564		ath10k_warn(ar, "invalid amsdu len %u, left %d",
 565			    __le16_to_cpu(ind_desc->msdu_len), amsdu_len);
 566	}
 567
 568	*msdu_desc = ind_desc;
 569
 570	prev_frag_buf->next = NULL;
 571	return 0;
 572}
 573
 574static int
 575ath10k_htt_rx_handle_amsdu_mon_64(struct ath10k_htt *htt,
 576				  struct sk_buff *msdu,
 577				  struct htt_rx_in_ord_msdu_desc_ext **msdu_desc)
 578{
 579	struct ath10k *ar = htt->ar;
 580	struct ath10k_hw_params *hw = &ar->hw_params;
 581	u64 paddr;
 582	struct sk_buff *frag_buf;
 583	struct sk_buff *prev_frag_buf;
 584	u8 last_frag;
 585	struct htt_rx_in_ord_msdu_desc_ext *ind_desc = *msdu_desc;
 586	struct htt_rx_desc *rxd;
 587	int amsdu_len = __le16_to_cpu(ind_desc->msdu_len);
 588
 589	rxd = HTT_RX_BUF_TO_RX_DESC(hw, msdu->data);
 590	trace_ath10k_htt_rx_desc(ar, rxd, hw->rx_desc_ops->rx_desc_size);
 591
 592	skb_put(msdu, hw->rx_desc_ops->rx_desc_size);
 593	skb_pull(msdu, hw->rx_desc_ops->rx_desc_size);
 594	skb_put(msdu, min(amsdu_len, ath10k_htt_rx_msdu_size(hw)));
 595	amsdu_len -= msdu->len;
 596
 597	last_frag = ind_desc->reserved;
 598	if (last_frag) {
 599		if (amsdu_len) {
 600			ath10k_warn(ar, "invalid amsdu len %u, left %d",
 601				    __le16_to_cpu(ind_desc->msdu_len),
 602				    amsdu_len);
 603		}
 604		return 0;
 605	}
 606
 607	ind_desc++;
 608	paddr = __le64_to_cpu(ind_desc->msdu_paddr);
 609	frag_buf = ath10k_htt_rx_pop_paddr(htt, paddr);
 610	if (!frag_buf) {
 611		ath10k_warn(ar, "failed to pop frag-1 paddr: 0x%llx", paddr);
 612		return -ENOENT;
 613	}
 614
 615	skb_put(frag_buf, min(amsdu_len, HTT_RX_BUF_SIZE));
 616	ath10k_htt_append_frag_list(msdu, frag_buf, amsdu_len);
 617
 618	amsdu_len -= frag_buf->len;
 619	prev_frag_buf = frag_buf;
 620	last_frag = ind_desc->reserved;
 621	while (!last_frag) {
 622		ind_desc++;
 623		paddr = __le64_to_cpu(ind_desc->msdu_paddr);
 624		frag_buf = ath10k_htt_rx_pop_paddr(htt, paddr);
 625		if (!frag_buf) {
 626			ath10k_warn(ar, "failed to pop frag-n paddr: 0x%llx",
 627				    paddr);
 628			prev_frag_buf->next = NULL;
 629			return -ENOENT;
 630		}
 631
 632		skb_put(frag_buf, min(amsdu_len, HTT_RX_BUF_SIZE));
 633		last_frag = ind_desc->reserved;
 634		amsdu_len -= frag_buf->len;
 635
 636		prev_frag_buf->next = frag_buf;
 637		prev_frag_buf = frag_buf;
 638	}
 639
 640	if (amsdu_len) {
 641		ath10k_warn(ar, "invalid amsdu len %u, left %d",
 642			    __le16_to_cpu(ind_desc->msdu_len), amsdu_len);
 643	}
 644
 645	*msdu_desc = ind_desc;
 646
 647	prev_frag_buf->next = NULL;
 648	return 0;
 649}
 650
 651static int ath10k_htt_rx_pop_paddr32_list(struct ath10k_htt *htt,
 652					  struct htt_rx_in_ord_ind *ev,
 653					  struct sk_buff_head *list)
 654{
 655	struct ath10k *ar = htt->ar;
 656	struct ath10k_hw_params *hw = &ar->hw_params;
 657	struct htt_rx_in_ord_msdu_desc *msdu_desc = ev->msdu_descs32;
 658	struct htt_rx_desc *rxd;
 659	struct rx_attention *rxd_attention;
 660	struct sk_buff *msdu;
 661	int msdu_count, ret;
 662	bool is_offload;
 663	u32 paddr;
 664
 665	lockdep_assert_held(&htt->rx_ring.lock);
 666
 667	msdu_count = __le16_to_cpu(ev->msdu_count);
 668	is_offload = !!(ev->info & HTT_RX_IN_ORD_IND_INFO_OFFLOAD_MASK);
 669
 670	while (msdu_count--) {
 671		paddr = __le32_to_cpu(msdu_desc->msdu_paddr);
 672
 673		msdu = ath10k_htt_rx_pop_paddr(htt, paddr);
 674		if (!msdu) {
 675			__skb_queue_purge(list);
 676			return -ENOENT;
 677		}
 678
 679		if (!is_offload && ar->monitor_arvif) {
 680			ret = ath10k_htt_rx_handle_amsdu_mon_32(htt, msdu,
 681								&msdu_desc);
 682			if (ret) {
 683				__skb_queue_purge(list);
 684				return ret;
 685			}
 686			__skb_queue_tail(list, msdu);
 687			msdu_desc++;
 688			continue;
 689		}
 690
 691		__skb_queue_tail(list, msdu);
 692
 693		if (!is_offload) {
 694			rxd = HTT_RX_BUF_TO_RX_DESC(hw, msdu->data);
 695			rxd_attention = ath10k_htt_rx_desc_get_attention(hw, rxd);
 696
 697			trace_ath10k_htt_rx_desc(ar, rxd, hw->rx_desc_ops->rx_desc_size);
 698
 699			skb_put(msdu, hw->rx_desc_ops->rx_desc_size);
 700			skb_pull(msdu, hw->rx_desc_ops->rx_desc_size);
 701			skb_put(msdu, __le16_to_cpu(msdu_desc->msdu_len));
 702
 703			if (!(__le32_to_cpu(rxd_attention->flags) &
 704			      RX_ATTENTION_FLAGS_MSDU_DONE)) {
 705				ath10k_warn(htt->ar, "tried to pop an incomplete frame, oops!\n");
 706				return -EIO;
 707			}
 708		}
 709
 710		msdu_desc++;
 711	}
 712
 713	return 0;
 714}
 715
 716static int ath10k_htt_rx_pop_paddr64_list(struct ath10k_htt *htt,
 717					  struct htt_rx_in_ord_ind *ev,
 718					  struct sk_buff_head *list)
 719{
 720	struct ath10k *ar = htt->ar;
 721	struct ath10k_hw_params *hw = &ar->hw_params;
 722	struct htt_rx_in_ord_msdu_desc_ext *msdu_desc = ev->msdu_descs64;
 723	struct htt_rx_desc *rxd;
 724	struct rx_attention *rxd_attention;
 725	struct sk_buff *msdu;
 726	int msdu_count, ret;
 727	bool is_offload;
 728	u64 paddr;
 729
 730	lockdep_assert_held(&htt->rx_ring.lock);
 731
 732	msdu_count = __le16_to_cpu(ev->msdu_count);
 733	is_offload = !!(ev->info & HTT_RX_IN_ORD_IND_INFO_OFFLOAD_MASK);
 734
 735	while (msdu_count--) {
 736		paddr = __le64_to_cpu(msdu_desc->msdu_paddr);
 737		msdu = ath10k_htt_rx_pop_paddr(htt, paddr);
 738		if (!msdu) {
 739			__skb_queue_purge(list);
 740			return -ENOENT;
 741		}
 742
 743		if (!is_offload && ar->monitor_arvif) {
 744			ret = ath10k_htt_rx_handle_amsdu_mon_64(htt, msdu,
 745								&msdu_desc);
 746			if (ret) {
 747				__skb_queue_purge(list);
 748				return ret;
 749			}
 750			__skb_queue_tail(list, msdu);
 751			msdu_desc++;
 752			continue;
 753		}
 754
 755		__skb_queue_tail(list, msdu);
 756
 757		if (!is_offload) {
 758			rxd = HTT_RX_BUF_TO_RX_DESC(hw, msdu->data);
 759			rxd_attention = ath10k_htt_rx_desc_get_attention(hw, rxd);
 760
 761			trace_ath10k_htt_rx_desc(ar, rxd, hw->rx_desc_ops->rx_desc_size);
 762
 763			skb_put(msdu, hw->rx_desc_ops->rx_desc_size);
 764			skb_pull(msdu, hw->rx_desc_ops->rx_desc_size);
 765			skb_put(msdu, __le16_to_cpu(msdu_desc->msdu_len));
 766
 767			if (!(__le32_to_cpu(rxd_attention->flags) &
 768			      RX_ATTENTION_FLAGS_MSDU_DONE)) {
 769				ath10k_warn(htt->ar, "tried to pop an incomplete frame, oops!\n");
 770				return -EIO;
 771			}
 772		}
 773
 774		msdu_desc++;
 775	}
 776
 777	return 0;
 778}
 779
 780int ath10k_htt_rx_alloc(struct ath10k_htt *htt)
 781{
 782	struct ath10k *ar = htt->ar;
 783	dma_addr_t paddr;
 784	void *vaddr, *vaddr_ring;
 785	size_t size;
 786	struct timer_list *timer = &htt->rx_ring.refill_retry_timer;
 787
 788	if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
 789		return 0;
 790
 791	htt->rx_confused = false;
 792
 793	/* XXX: The fill level could be changed during runtime in response to
 794	 * the host processing latency. Is this really worth it?
 795	 */
 796	htt->rx_ring.size = HTT_RX_RING_SIZE;
 797	htt->rx_ring.size_mask = htt->rx_ring.size - 1;
 798	htt->rx_ring.fill_level = ar->hw_params.rx_ring_fill_level;
 799
 800	if (!is_power_of_2(htt->rx_ring.size)) {
 801		ath10k_warn(ar, "htt rx ring size is not power of 2\n");
 802		return -EINVAL;
 803	}
 804
 805	htt->rx_ring.netbufs_ring =
 806		kcalloc(htt->rx_ring.size, sizeof(struct sk_buff *),
 807			GFP_KERNEL);
 808	if (!htt->rx_ring.netbufs_ring)
 809		goto err_netbuf;
 810
 811	size = ath10k_htt_get_rx_ring_size(htt);
 812
 813	vaddr_ring = dma_alloc_coherent(htt->ar->dev, size, &paddr, GFP_KERNEL);
 814	if (!vaddr_ring)
 815		goto err_dma_ring;
 816
 817	ath10k_htt_config_paddrs_ring(htt, vaddr_ring);
 818	htt->rx_ring.base_paddr = paddr;
 819
 820	vaddr = dma_alloc_coherent(htt->ar->dev,
 821				   sizeof(*htt->rx_ring.alloc_idx.vaddr),
 822				   &paddr, GFP_KERNEL);
 823	if (!vaddr)
 824		goto err_dma_idx;
 825
 826	htt->rx_ring.alloc_idx.vaddr = vaddr;
 827	htt->rx_ring.alloc_idx.paddr = paddr;
 828	htt->rx_ring.sw_rd_idx.msdu_payld = htt->rx_ring.size_mask;
 829	*htt->rx_ring.alloc_idx.vaddr = 0;
 830
 831	/* Initialize the Rx refill retry timer */
 832	timer_setup(timer, ath10k_htt_rx_ring_refill_retry, 0);
 833
 834	spin_lock_init(&htt->rx_ring.lock);
 835
 836	htt->rx_ring.fill_cnt = 0;
 837	htt->rx_ring.sw_rd_idx.msdu_payld = 0;
 838	hash_init(htt->rx_ring.skb_table);
 839
 840	skb_queue_head_init(&htt->rx_msdus_q);
 841	skb_queue_head_init(&htt->rx_in_ord_compl_q);
 842	skb_queue_head_init(&htt->tx_fetch_ind_q);
 843	atomic_set(&htt->num_mpdus_ready, 0);
 844
 845	ath10k_dbg(ar, ATH10K_DBG_BOOT, "htt rx ring size %d fill_level %d\n",
 846		   htt->rx_ring.size, htt->rx_ring.fill_level);
 847	return 0;
 848
 849err_dma_idx:
 850	dma_free_coherent(htt->ar->dev,
 851			  ath10k_htt_get_rx_ring_size(htt),
 852			  vaddr_ring,
 853			  htt->rx_ring.base_paddr);
 854	ath10k_htt_config_paddrs_ring(htt, NULL);
 855err_dma_ring:
 856	kfree(htt->rx_ring.netbufs_ring);
 857	htt->rx_ring.netbufs_ring = NULL;
 858err_netbuf:
 859	return -ENOMEM;
 860}
 861
 862static int ath10k_htt_rx_crypto_param_len(struct ath10k *ar,
 863					  enum htt_rx_mpdu_encrypt_type type)
 864{
 865	switch (type) {
 866	case HTT_RX_MPDU_ENCRYPT_NONE:
 867		return 0;
 868	case HTT_RX_MPDU_ENCRYPT_WEP40:
 869	case HTT_RX_MPDU_ENCRYPT_WEP104:
 870		return IEEE80211_WEP_IV_LEN;
 871	case HTT_RX_MPDU_ENCRYPT_TKIP_WITHOUT_MIC:
 872	case HTT_RX_MPDU_ENCRYPT_TKIP_WPA:
 873		return IEEE80211_TKIP_IV_LEN;
 874	case HTT_RX_MPDU_ENCRYPT_AES_CCM_WPA2:
 875		return IEEE80211_CCMP_HDR_LEN;
 876	case HTT_RX_MPDU_ENCRYPT_AES_CCM256_WPA2:
 877		return IEEE80211_CCMP_256_HDR_LEN;
 878	case HTT_RX_MPDU_ENCRYPT_AES_GCMP_WPA2:
 879	case HTT_RX_MPDU_ENCRYPT_AES_GCMP256_WPA2:
 880		return IEEE80211_GCMP_HDR_LEN;
 881	case HTT_RX_MPDU_ENCRYPT_WEP128:
 882	case HTT_RX_MPDU_ENCRYPT_WAPI:
 883		break;
 884	}
 885
 886	ath10k_warn(ar, "unsupported encryption type %d\n", type);
 887	return 0;
 888}
 889
 890#define MICHAEL_MIC_LEN 8
 891
 892static int ath10k_htt_rx_crypto_mic_len(struct ath10k *ar,
 893					enum htt_rx_mpdu_encrypt_type type)
 894{
 895	switch (type) {
 896	case HTT_RX_MPDU_ENCRYPT_NONE:
 897	case HTT_RX_MPDU_ENCRYPT_WEP40:
 898	case HTT_RX_MPDU_ENCRYPT_WEP104:
 899	case HTT_RX_MPDU_ENCRYPT_TKIP_WITHOUT_MIC:
 900	case HTT_RX_MPDU_ENCRYPT_TKIP_WPA:
 901		return 0;
 902	case HTT_RX_MPDU_ENCRYPT_AES_CCM_WPA2:
 903		return IEEE80211_CCMP_MIC_LEN;
 904	case HTT_RX_MPDU_ENCRYPT_AES_CCM256_WPA2:
 905		return IEEE80211_CCMP_256_MIC_LEN;
 906	case HTT_RX_MPDU_ENCRYPT_AES_GCMP_WPA2:
 907	case HTT_RX_MPDU_ENCRYPT_AES_GCMP256_WPA2:
 908		return IEEE80211_GCMP_MIC_LEN;
 909	case HTT_RX_MPDU_ENCRYPT_WEP128:
 910	case HTT_RX_MPDU_ENCRYPT_WAPI:
 911		break;
 912	}
 913
 914	ath10k_warn(ar, "unsupported encryption type %d\n", type);
 915	return 0;
 916}
 917
 918static int ath10k_htt_rx_crypto_icv_len(struct ath10k *ar,
 919					enum htt_rx_mpdu_encrypt_type type)
 920{
 921	switch (type) {
 922	case HTT_RX_MPDU_ENCRYPT_NONE:
 923	case HTT_RX_MPDU_ENCRYPT_AES_CCM_WPA2:
 924	case HTT_RX_MPDU_ENCRYPT_AES_CCM256_WPA2:
 925	case HTT_RX_MPDU_ENCRYPT_AES_GCMP_WPA2:
 926	case HTT_RX_MPDU_ENCRYPT_AES_GCMP256_WPA2:
 927		return 0;
 928	case HTT_RX_MPDU_ENCRYPT_WEP40:
 929	case HTT_RX_MPDU_ENCRYPT_WEP104:
 930		return IEEE80211_WEP_ICV_LEN;
 931	case HTT_RX_MPDU_ENCRYPT_TKIP_WITHOUT_MIC:
 932	case HTT_RX_MPDU_ENCRYPT_TKIP_WPA:
 933		return IEEE80211_TKIP_ICV_LEN;
 934	case HTT_RX_MPDU_ENCRYPT_WEP128:
 935	case HTT_RX_MPDU_ENCRYPT_WAPI:
 936		break;
 937	}
 938
 939	ath10k_warn(ar, "unsupported encryption type %d\n", type);
 940	return 0;
 941}
 942
 943struct amsdu_subframe_hdr {
 944	u8 dst[ETH_ALEN];
 945	u8 src[ETH_ALEN];
 946	__be16 len;
 947} __packed;
 948
 949#define GROUP_ID_IS_SU_MIMO(x) ((x) == 0 || (x) == 63)
 950
 951static inline u8 ath10k_bw_to_mac80211_bw(u8 bw)
 952{
 953	u8 ret = 0;
 954
 955	switch (bw) {
 956	case 0:
 957		ret = RATE_INFO_BW_20;
 958		break;
 959	case 1:
 960		ret = RATE_INFO_BW_40;
 961		break;
 962	case 2:
 963		ret = RATE_INFO_BW_80;
 964		break;
 965	case 3:
 966		ret = RATE_INFO_BW_160;
 967		break;
 968	}
 969
 970	return ret;
 971}
 972
 973static void ath10k_htt_rx_h_rates(struct ath10k *ar,
 974				  struct ieee80211_rx_status *status,
 975				  struct htt_rx_desc *rxd)
 976{
 977	struct ath10k_hw_params *hw = &ar->hw_params;
 978	struct rx_attention *rxd_attention;
 979	struct rx_mpdu_start *rxd_mpdu_start;
 980	struct rx_mpdu_end *rxd_mpdu_end;
 981	struct rx_msdu_start_common *rxd_msdu_start_common;
 982	struct rx_msdu_end_common *rxd_msdu_end_common;
 983	struct rx_ppdu_start *rxd_ppdu_start;
 984	struct ieee80211_supported_band *sband;
 985	u8 cck, rate, bw, sgi, mcs, nss;
 986	u8 *rxd_msdu_payload;
 987	u8 preamble = 0;
 988	u8 group_id;
 989	u32 info1, info2, info3;
 990	u32 stbc, nsts_su;
 991
 992	rxd_attention = ath10k_htt_rx_desc_get_attention(hw, rxd);
 993	rxd_mpdu_start = ath10k_htt_rx_desc_get_mpdu_start(hw, rxd);
 994	rxd_mpdu_end = ath10k_htt_rx_desc_get_mpdu_end(hw, rxd);
 995	rxd_msdu_start_common = ath10k_htt_rx_desc_get_msdu_start(hw, rxd);
 996	rxd_msdu_end_common = ath10k_htt_rx_desc_get_msdu_end(hw, rxd);
 997	rxd_ppdu_start = ath10k_htt_rx_desc_get_ppdu_start(hw, rxd);
 998	rxd_msdu_payload = ath10k_htt_rx_desc_get_msdu_payload(hw, rxd);
 999
1000	info1 = __le32_to_cpu(rxd_ppdu_start->info1);
1001	info2 = __le32_to_cpu(rxd_ppdu_start->info2);
1002	info3 = __le32_to_cpu(rxd_ppdu_start->info3);
1003
1004	preamble = MS(info1, RX_PPDU_START_INFO1_PREAMBLE_TYPE);
1005
1006	switch (preamble) {
1007	case HTT_RX_LEGACY:
1008		/* To get legacy rate index band is required. Since band can't
1009		 * be undefined check if freq is non-zero.
1010		 */
1011		if (!status->freq)
1012			return;
1013
1014		cck = info1 & RX_PPDU_START_INFO1_L_SIG_RATE_SELECT;
1015		rate = MS(info1, RX_PPDU_START_INFO1_L_SIG_RATE);
1016		rate &= ~RX_PPDU_START_RATE_FLAG;
1017
1018		sband = &ar->mac.sbands[status->band];
1019		status->rate_idx = ath10k_mac_hw_rate_to_idx(sband, rate, cck);
1020		break;
1021	case HTT_RX_HT:
1022	case HTT_RX_HT_WITH_TXBF:
1023		/* HT-SIG - Table 20-11 in info2 and info3 */
1024		mcs = info2 & 0x1F;
1025		nss = mcs >> 3;
1026		bw = (info2 >> 7) & 1;
1027		sgi = (info3 >> 7) & 1;
1028
1029		status->rate_idx = mcs;
1030		status->encoding = RX_ENC_HT;
1031		if (sgi)
1032			status->enc_flags |= RX_ENC_FLAG_SHORT_GI;
1033		if (bw)
1034			status->bw = RATE_INFO_BW_40;
1035		break;
1036	case HTT_RX_VHT:
1037	case HTT_RX_VHT_WITH_TXBF:
1038		/* VHT-SIG-A1 in info2, VHT-SIG-A2 in info3
1039		 * TODO check this
1040		 */
1041		bw = info2 & 3;
1042		sgi = info3 & 1;
1043		stbc = (info2 >> 3) & 1;
1044		group_id = (info2 >> 4) & 0x3F;
1045
1046		if (GROUP_ID_IS_SU_MIMO(group_id)) {
1047			mcs = (info3 >> 4) & 0x0F;
1048			nsts_su = ((info2 >> 10) & 0x07);
1049			if (stbc)
1050				nss = (nsts_su >> 2) + 1;
1051			else
1052				nss = (nsts_su + 1);
1053		} else {
1054			/* Hardware doesn't decode VHT-SIG-B into Rx descriptor
1055			 * so it's impossible to decode MCS. Also since
1056			 * firmware consumes Group Id Management frames host
1057			 * has no knowledge regarding group/user position
1058			 * mapping so it's impossible to pick the correct Nsts
1059			 * from VHT-SIG-A1.
1060			 *
1061			 * Bandwidth and SGI are valid so report the rateinfo
1062			 * on best-effort basis.
1063			 */
1064			mcs = 0;
1065			nss = 1;
1066		}
1067
1068		if (mcs > 0x09) {
1069			ath10k_warn(ar, "invalid MCS received %u\n", mcs);
1070			ath10k_warn(ar, "rxd %08x mpdu start %08x %08x msdu start %08x %08x ppdu start %08x %08x %08x %08x %08x\n",
1071				    __le32_to_cpu(rxd_attention->flags),
1072				    __le32_to_cpu(rxd_mpdu_start->info0),
1073				    __le32_to_cpu(rxd_mpdu_start->info1),
1074				    __le32_to_cpu(rxd_msdu_start_common->info0),
1075				    __le32_to_cpu(rxd_msdu_start_common->info1),
1076				    rxd_ppdu_start->info0,
1077				    __le32_to_cpu(rxd_ppdu_start->info1),
1078				    __le32_to_cpu(rxd_ppdu_start->info2),
1079				    __le32_to_cpu(rxd_ppdu_start->info3),
1080				    __le32_to_cpu(rxd_ppdu_start->info4));
1081
1082			ath10k_warn(ar, "msdu end %08x mpdu end %08x\n",
1083				    __le32_to_cpu(rxd_msdu_end_common->info0),
1084				    __le32_to_cpu(rxd_mpdu_end->info0));
1085
1086			ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL,
1087					"rx desc msdu payload: ",
1088					rxd_msdu_payload, 50);
1089		}
1090
1091		status->rate_idx = mcs;
1092		status->nss = nss;
1093
1094		if (sgi)
1095			status->enc_flags |= RX_ENC_FLAG_SHORT_GI;
1096
1097		status->bw = ath10k_bw_to_mac80211_bw(bw);
1098		status->encoding = RX_ENC_VHT;
1099		break;
1100	default:
1101		break;
1102	}
1103}
1104
1105static struct ieee80211_channel *
1106ath10k_htt_rx_h_peer_channel(struct ath10k *ar, struct htt_rx_desc *rxd)
1107{
1108	struct ath10k_hw_params *hw = &ar->hw_params;
1109	struct rx_attention *rxd_attention;
1110	struct rx_msdu_end_common *rxd_msdu_end_common;
1111	struct rx_mpdu_start *rxd_mpdu_start;
1112	struct ath10k_peer *peer;
1113	struct ath10k_vif *arvif;
1114	struct cfg80211_chan_def def;
1115	u16 peer_id;
1116
1117	lockdep_assert_held(&ar->data_lock);
1118
1119	if (!rxd)
1120		return NULL;
1121
1122	rxd_attention = ath10k_htt_rx_desc_get_attention(hw, rxd);
1123	rxd_msdu_end_common = ath10k_htt_rx_desc_get_msdu_end(hw, rxd);
1124	rxd_mpdu_start = ath10k_htt_rx_desc_get_mpdu_start(hw, rxd);
1125
1126	if (rxd_attention->flags &
1127	    __cpu_to_le32(RX_ATTENTION_FLAGS_PEER_IDX_INVALID))
1128		return NULL;
1129
1130	if (!(rxd_msdu_end_common->info0 &
1131	      __cpu_to_le32(RX_MSDU_END_INFO0_FIRST_MSDU)))
1132		return NULL;
1133
1134	peer_id = MS(__le32_to_cpu(rxd_mpdu_start->info0),
1135		     RX_MPDU_START_INFO0_PEER_IDX);
1136
1137	peer = ath10k_peer_find_by_id(ar, peer_id);
1138	if (!peer)
1139		return NULL;
1140
1141	arvif = ath10k_get_arvif(ar, peer->vdev_id);
1142	if (WARN_ON_ONCE(!arvif))
1143		return NULL;
1144
1145	if (ath10k_mac_vif_chan(arvif->vif, &def))
1146		return NULL;
1147
1148	return def.chan;
1149}
1150
1151static struct ieee80211_channel *
1152ath10k_htt_rx_h_vdev_channel(struct ath10k *ar, u32 vdev_id)
1153{
1154	struct ath10k_vif *arvif;
1155	struct cfg80211_chan_def def;
1156
1157	lockdep_assert_held(&ar->data_lock);
1158
1159	list_for_each_entry(arvif, &ar->arvifs, list) {
1160		if (arvif->vdev_id == vdev_id &&
1161		    ath10k_mac_vif_chan(arvif->vif, &def) == 0)
1162			return def.chan;
1163	}
1164
1165	return NULL;
1166}
1167
1168static void
1169ath10k_htt_rx_h_any_chan_iter(struct ieee80211_hw *hw,
1170			      struct ieee80211_chanctx_conf *conf,
1171			      void *data)
1172{
1173	struct cfg80211_chan_def *def = data;
1174
1175	*def = conf->def;
1176}
1177
1178static struct ieee80211_channel *
1179ath10k_htt_rx_h_any_channel(struct ath10k *ar)
1180{
1181	struct cfg80211_chan_def def = {};
1182
1183	ieee80211_iter_chan_contexts_atomic(ar->hw,
1184					    ath10k_htt_rx_h_any_chan_iter,
1185					    &def);
1186
1187	return def.chan;
1188}
1189
1190static bool ath10k_htt_rx_h_channel(struct ath10k *ar,
1191				    struct ieee80211_rx_status *status,
1192				    struct htt_rx_desc *rxd,
1193				    u32 vdev_id)
1194{
1195	struct ieee80211_channel *ch;
1196
1197	spin_lock_bh(&ar->data_lock);
1198	ch = ar->scan_channel;
1199	if (!ch)
1200		ch = ar->rx_channel;
1201	if (!ch)
1202		ch = ath10k_htt_rx_h_peer_channel(ar, rxd);
1203	if (!ch)
1204		ch = ath10k_htt_rx_h_vdev_channel(ar, vdev_id);
1205	if (!ch)
1206		ch = ath10k_htt_rx_h_any_channel(ar);
1207	if (!ch)
1208		ch = ar->tgt_oper_chan;
1209	spin_unlock_bh(&ar->data_lock);
1210
1211	if (!ch)
1212		return false;
1213
1214	status->band = ch->band;
1215	status->freq = ch->center_freq;
1216
1217	return true;
1218}
1219
1220static void ath10k_htt_rx_h_signal(struct ath10k *ar,
1221				   struct ieee80211_rx_status *status,
1222				   struct htt_rx_desc *rxd)
1223{
1224	struct ath10k_hw_params *hw = &ar->hw_params;
1225	struct rx_ppdu_start *rxd_ppdu_start = ath10k_htt_rx_desc_get_ppdu_start(hw, rxd);
1226	int i;
1227
1228	for (i = 0; i < IEEE80211_MAX_CHAINS ; i++) {
1229		status->chains &= ~BIT(i);
1230
1231		if (rxd_ppdu_start->rssi_chains[i].pri20_mhz != 0x80) {
1232			status->chain_signal[i] = ATH10K_DEFAULT_NOISE_FLOOR +
1233				rxd_ppdu_start->rssi_chains[i].pri20_mhz;
1234
1235			status->chains |= BIT(i);
1236		}
1237	}
1238
1239	/* FIXME: Get real NF */
1240	status->signal = ATH10K_DEFAULT_NOISE_FLOOR +
1241			 rxd_ppdu_start->rssi_comb;
1242	status->flag &= ~RX_FLAG_NO_SIGNAL_VAL;
1243}
1244
1245static void ath10k_htt_rx_h_mactime(struct ath10k *ar,
1246				    struct ieee80211_rx_status *status,
1247				    struct htt_rx_desc *rxd)
1248{
1249	struct ath10k_hw_params *hw = &ar->hw_params;
1250	struct rx_ppdu_end_common *rxd_ppdu_end_common;
1251
1252	rxd_ppdu_end_common = ath10k_htt_rx_desc_get_ppdu_end(hw, rxd);
1253
1254	/* FIXME: TSF is known only at the end of PPDU, in the last MPDU. This
1255	 * means all prior MSDUs in a PPDU are reported to mac80211 without the
1256	 * TSF. Is it worth holding frames until end of PPDU is known?
1257	 *
1258	 * FIXME: Can we get/compute 64bit TSF?
1259	 */
1260	status->mactime = __le32_to_cpu(rxd_ppdu_end_common->tsf_timestamp);
1261	status->flag |= RX_FLAG_MACTIME_END;
1262}
1263
1264static void ath10k_htt_rx_h_ppdu(struct ath10k *ar,
1265				 struct sk_buff_head *amsdu,
1266				 struct ieee80211_rx_status *status,
1267				 u32 vdev_id)
1268{
1269	struct sk_buff *first;
1270	struct ath10k_hw_params *hw = &ar->hw_params;
1271	struct htt_rx_desc *rxd;
1272	struct rx_attention *rxd_attention;
1273	bool is_first_ppdu;
1274	bool is_last_ppdu;
1275
1276	if (skb_queue_empty(amsdu))
1277		return;
1278
1279	first = skb_peek(amsdu);
1280	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1281				    (void *)first->data - hw->rx_desc_ops->rx_desc_size);
1282
1283	rxd_attention = ath10k_htt_rx_desc_get_attention(hw, rxd);
1284
1285	is_first_ppdu = !!(rxd_attention->flags &
1286			   __cpu_to_le32(RX_ATTENTION_FLAGS_FIRST_MPDU));
1287	is_last_ppdu = !!(rxd_attention->flags &
1288			  __cpu_to_le32(RX_ATTENTION_FLAGS_LAST_MPDU));
1289
1290	if (is_first_ppdu) {
1291		/* New PPDU starts so clear out the old per-PPDU status. */
1292		status->freq = 0;
1293		status->rate_idx = 0;
1294		status->nss = 0;
1295		status->encoding = RX_ENC_LEGACY;
1296		status->bw = RATE_INFO_BW_20;
1297
1298		status->flag &= ~RX_FLAG_MACTIME;
1299		status->flag |= RX_FLAG_NO_SIGNAL_VAL;
1300
1301		status->flag &= ~(RX_FLAG_AMPDU_IS_LAST);
1302		status->flag |= RX_FLAG_AMPDU_DETAILS | RX_FLAG_AMPDU_LAST_KNOWN;
1303		status->ampdu_reference = ar->ampdu_reference;
1304
1305		ath10k_htt_rx_h_signal(ar, status, rxd);
1306		ath10k_htt_rx_h_channel(ar, status, rxd, vdev_id);
1307		ath10k_htt_rx_h_rates(ar, status, rxd);
1308	}
1309
1310	if (is_last_ppdu) {
1311		ath10k_htt_rx_h_mactime(ar, status, rxd);
1312
1313		/* set ampdu last segment flag */
1314		status->flag |= RX_FLAG_AMPDU_IS_LAST;
1315		ar->ampdu_reference++;
1316	}
1317}
1318
1319static const char * const tid_to_ac[] = {
1320	"BE",
1321	"BK",
1322	"BK",
1323	"BE",
1324	"VI",
1325	"VI",
1326	"VO",
1327	"VO",
1328};
1329
1330static char *ath10k_get_tid(struct ieee80211_hdr *hdr, char *out, size_t size)
1331{
1332	u8 *qc;
1333	int tid;
1334
1335	if (!ieee80211_is_data_qos(hdr->frame_control))
1336		return "";
1337
1338	qc = ieee80211_get_qos_ctl(hdr);
1339	tid = *qc & IEEE80211_QOS_CTL_TID_MASK;
1340	if (tid < 8)
1341		snprintf(out, size, "tid %d (%s)", tid, tid_to_ac[tid]);
1342	else
1343		snprintf(out, size, "tid %d", tid);
1344
1345	return out;
1346}
1347
1348static void ath10k_htt_rx_h_queue_msdu(struct ath10k *ar,
1349				       struct ieee80211_rx_status *rx_status,
1350				       struct sk_buff *skb)
1351{
1352	struct ieee80211_rx_status *status;
1353
1354	status = IEEE80211_SKB_RXCB(skb);
1355	*status = *rx_status;
1356
1357	skb_queue_tail(&ar->htt.rx_msdus_q, skb);
1358}
1359
1360static void ath10k_process_rx(struct ath10k *ar, struct sk_buff *skb)
1361{
1362	struct ieee80211_rx_status *status;
1363	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
1364	char tid[32];
1365
1366	status = IEEE80211_SKB_RXCB(skb);
1367
1368	if (!(ar->filter_flags & FIF_FCSFAIL) &&
1369	    status->flag & RX_FLAG_FAILED_FCS_CRC) {
1370		ar->stats.rx_crc_err_drop++;
1371		dev_kfree_skb_any(skb);
1372		return;
1373	}
1374
1375	ath10k_dbg(ar, ATH10K_DBG_DATA,
1376		   "rx skb %pK len %u peer %pM %s %s sn %u %s%s%s%s%s%s %srate_idx %u vht_nss %u freq %u band %u flag 0x%x fcs-err %i mic-err %i amsdu-more %i\n",
1377		   skb,
1378		   skb->len,
1379		   ieee80211_get_SA(hdr),
1380		   ath10k_get_tid(hdr, tid, sizeof(tid)),
1381		   is_multicast_ether_addr(ieee80211_get_DA(hdr)) ?
1382							"mcast" : "ucast",
1383		   IEEE80211_SEQ_TO_SN(__le16_to_cpu(hdr->seq_ctrl)),
1384		   (status->encoding == RX_ENC_LEGACY) ? "legacy" : "",
1385		   (status->encoding == RX_ENC_HT) ? "ht" : "",
1386		   (status->encoding == RX_ENC_VHT) ? "vht" : "",
1387		   (status->bw == RATE_INFO_BW_40) ? "40" : "",
1388		   (status->bw == RATE_INFO_BW_80) ? "80" : "",
1389		   (status->bw == RATE_INFO_BW_160) ? "160" : "",
1390		   status->enc_flags & RX_ENC_FLAG_SHORT_GI ? "sgi " : "",
1391		   status->rate_idx,
1392		   status->nss,
1393		   status->freq,
1394		   status->band, status->flag,
1395		   !!(status->flag & RX_FLAG_FAILED_FCS_CRC),
1396		   !!(status->flag & RX_FLAG_MMIC_ERROR),
1397		   !!(status->flag & RX_FLAG_AMSDU_MORE));
1398	ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "rx skb: ",
1399			skb->data, skb->len);
1400	trace_ath10k_rx_hdr(ar, skb->data, skb->len);
1401	trace_ath10k_rx_payload(ar, skb->data, skb->len);
1402
1403	ieee80211_rx_napi(ar->hw, NULL, skb, &ar->napi);
1404}
1405
1406static int ath10k_htt_rx_nwifi_hdrlen(struct ath10k *ar,
1407				      struct ieee80211_hdr *hdr)
1408{
1409	int len = ieee80211_hdrlen(hdr->frame_control);
1410
1411	if (!test_bit(ATH10K_FW_FEATURE_NO_NWIFI_DECAP_4ADDR_PADDING,
1412		      ar->running_fw->fw_file.fw_features))
1413		len = round_up(len, 4);
1414
1415	return len;
1416}
1417
1418static void ath10k_htt_rx_h_undecap_raw(struct ath10k *ar,
1419					struct sk_buff *msdu,
1420					struct ieee80211_rx_status *status,
1421					enum htt_rx_mpdu_encrypt_type enctype,
1422					bool is_decrypted,
1423					const u8 first_hdr[64])
1424{
1425	struct ieee80211_hdr *hdr;
1426	struct ath10k_hw_params *hw = &ar->hw_params;
1427	struct htt_rx_desc *rxd;
1428	struct rx_msdu_end_common *rxd_msdu_end_common;
1429	size_t hdr_len;
1430	size_t crypto_len;
1431	bool is_first;
1432	bool is_last;
1433	bool msdu_limit_err;
1434	int bytes_aligned = ar->hw_params.decap_align_bytes;
1435	u8 *qos;
1436
1437	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1438				    (void *)msdu->data - hw->rx_desc_ops->rx_desc_size);
1439
1440	rxd_msdu_end_common = ath10k_htt_rx_desc_get_msdu_end(hw, rxd);
1441	is_first = !!(rxd_msdu_end_common->info0 &
1442		      __cpu_to_le32(RX_MSDU_END_INFO0_FIRST_MSDU));
1443	is_last = !!(rxd_msdu_end_common->info0 &
1444		     __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU));
1445
1446	/* Delivered decapped frame:
1447	 * [802.11 header]
1448	 * [crypto param] <-- can be trimmed if !fcs_err &&
1449	 *                    !decrypt_err && !peer_idx_invalid
1450	 * [amsdu header] <-- only if A-MSDU
1451	 * [rfc1042/llc]
1452	 * [payload]
1453	 * [FCS] <-- at end, needs to be trimmed
1454	 */
1455
1456	/* Some hardwares(QCA99x0 variants) limit number of msdus in a-msdu when
1457	 * deaggregate, so that unwanted MSDU-deaggregation is avoided for
1458	 * error packets. If limit exceeds, hw sends all remaining MSDUs as
1459	 * a single last MSDU with this msdu limit error set.
1460	 */
1461	msdu_limit_err = ath10k_htt_rx_desc_msdu_limit_error(hw, rxd);
1462
1463	/* If MSDU limit error happens, then don't warn on, the partial raw MSDU
1464	 * without first MSDU is expected in that case, and handled later here.
1465	 */
1466	/* This probably shouldn't happen but warn just in case */
1467	if (WARN_ON_ONCE(!is_first && !msdu_limit_err))
1468		return;
1469
1470	/* This probably shouldn't happen but warn just in case */
1471	if (WARN_ON_ONCE(!(is_first && is_last) && !msdu_limit_err))
1472		return;
1473
1474	skb_trim(msdu, msdu->len - FCS_LEN);
1475
1476	/* Push original 80211 header */
1477	if (unlikely(msdu_limit_err)) {
1478		hdr = (struct ieee80211_hdr *)first_hdr;
1479		hdr_len = ieee80211_hdrlen(hdr->frame_control);
1480		crypto_len = ath10k_htt_rx_crypto_param_len(ar, enctype);
1481
1482		if (ieee80211_is_data_qos(hdr->frame_control)) {
1483			qos = ieee80211_get_qos_ctl(hdr);
1484			qos[0] |= IEEE80211_QOS_CTL_A_MSDU_PRESENT;
1485		}
1486
1487		if (crypto_len)
1488			memcpy(skb_push(msdu, crypto_len),
1489			       (void *)hdr + round_up(hdr_len, bytes_aligned),
1490			       crypto_len);
1491
1492		memcpy(skb_push(msdu, hdr_len), hdr, hdr_len);
1493	}
1494
1495	/* In most cases this will be true for sniffed frames. It makes sense
1496	 * to deliver them as-is without stripping the crypto param. This is
1497	 * necessary for software based decryption.
1498	 *
1499	 * If there's no error then the frame is decrypted. At least that is
1500	 * the case for frames that come in via fragmented rx indication.
1501	 */
1502	if (!is_decrypted)
1503		return;
1504
1505	/* The payload is decrypted so strip crypto params. Start from tail
1506	 * since hdr is used to compute some stuff.
1507	 */
1508
1509	hdr = (void *)msdu->data;
1510
1511	/* Tail */
1512	if (status->flag & RX_FLAG_IV_STRIPPED) {
1513		skb_trim(msdu, msdu->len -
1514			 ath10k_htt_rx_crypto_mic_len(ar, enctype));
1515
1516		skb_trim(msdu, msdu->len -
1517			 ath10k_htt_rx_crypto_icv_len(ar, enctype));
1518	} else {
1519		/* MIC */
1520		if (status->flag & RX_FLAG_MIC_STRIPPED)
1521			skb_trim(msdu, msdu->len -
1522				 ath10k_htt_rx_crypto_mic_len(ar, enctype));
1523
1524		/* ICV */
1525		if (status->flag & RX_FLAG_ICV_STRIPPED)
1526			skb_trim(msdu, msdu->len -
1527				 ath10k_htt_rx_crypto_icv_len(ar, enctype));
1528	}
1529
1530	/* MMIC */
1531	if ((status->flag & RX_FLAG_MMIC_STRIPPED) &&
1532	    !ieee80211_has_morefrags(hdr->frame_control) &&
1533	    enctype == HTT_RX_MPDU_ENCRYPT_TKIP_WPA)
1534		skb_trim(msdu, msdu->len - MICHAEL_MIC_LEN);
1535
1536	/* Head */
1537	if (status->flag & RX_FLAG_IV_STRIPPED) {
1538		hdr_len = ieee80211_hdrlen(hdr->frame_control);
1539		crypto_len = ath10k_htt_rx_crypto_param_len(ar, enctype);
1540
1541		memmove((void *)msdu->data + crypto_len,
1542			(void *)msdu->data, hdr_len);
1543		skb_pull(msdu, crypto_len);
1544	}
1545}
1546
1547static void ath10k_htt_rx_h_undecap_nwifi(struct ath10k *ar,
1548					  struct sk_buff *msdu,
1549					  struct ieee80211_rx_status *status,
1550					  const u8 first_hdr[64],
1551					  enum htt_rx_mpdu_encrypt_type enctype)
1552{
1553	struct ath10k_hw_params *hw = &ar->hw_params;
1554	struct ieee80211_hdr *hdr;
1555	struct htt_rx_desc *rxd;
1556	size_t hdr_len;
1557	u8 da[ETH_ALEN];
1558	u8 sa[ETH_ALEN];
1559	int l3_pad_bytes;
1560	int bytes_aligned = ar->hw_params.decap_align_bytes;
1561
1562	/* Delivered decapped frame:
1563	 * [nwifi 802.11 header] <-- replaced with 802.11 hdr
1564	 * [rfc1042/llc]
1565	 *
1566	 * Note: The nwifi header doesn't have QoS Control and is
1567	 * (always?) a 3addr frame.
1568	 *
1569	 * Note2: There's no A-MSDU subframe header. Even if it's part
1570	 * of an A-MSDU.
1571	 */
1572
1573	/* pull decapped header and copy SA & DA */
1574	rxd = HTT_RX_BUF_TO_RX_DESC(hw, (void *)msdu->data -
1575				    hw->rx_desc_ops->rx_desc_size);
1576
1577	l3_pad_bytes = ath10k_htt_rx_desc_get_l3_pad_bytes(&ar->hw_params, rxd);
1578	skb_put(msdu, l3_pad_bytes);
1579
1580	hdr = (struct ieee80211_hdr *)(msdu->data + l3_pad_bytes);
1581
1582	hdr_len = ath10k_htt_rx_nwifi_hdrlen(ar, hdr);
1583	ether_addr_copy(da, ieee80211_get_DA(hdr));
1584	ether_addr_copy(sa, ieee80211_get_SA(hdr));
1585	skb_pull(msdu, hdr_len);
1586
1587	/* push original 802.11 header */
1588	hdr = (struct ieee80211_hdr *)first_hdr;
1589	hdr_len = ieee80211_hdrlen(hdr->frame_control);
1590
1591	if (!(status->flag & RX_FLAG_IV_STRIPPED)) {
1592		memcpy(skb_push(msdu,
1593				ath10k_htt_rx_crypto_param_len(ar, enctype)),
1594		       (void *)hdr + round_up(hdr_len, bytes_aligned),
1595			ath10k_htt_rx_crypto_param_len(ar, enctype));
1596	}
1597
1598	memcpy(skb_push(msdu, hdr_len), hdr, hdr_len);
1599
1600	/* original 802.11 header has a different DA and in
1601	 * case of 4addr it may also have different SA
1602	 */
1603	hdr = (struct ieee80211_hdr *)msdu->data;
1604	ether_addr_copy(ieee80211_get_DA(hdr), da);
1605	ether_addr_copy(ieee80211_get_SA(hdr), sa);
1606}
1607
1608static void *ath10k_htt_rx_h_find_rfc1042(struct ath10k *ar,
1609					  struct sk_buff *msdu,
1610					  enum htt_rx_mpdu_encrypt_type enctype)
1611{
1612	struct ieee80211_hdr *hdr;
1613	struct ath10k_hw_params *hw = &ar->hw_params;
1614	struct htt_rx_desc *rxd;
1615	struct rx_msdu_end_common *rxd_msdu_end_common;
1616	u8 *rxd_rx_hdr_status;
1617	size_t hdr_len, crypto_len;
1618	void *rfc1042;
1619	bool is_first, is_last, is_amsdu;
1620	int bytes_aligned = ar->hw_params.decap_align_bytes;
1621
1622	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1623				    (void *)msdu->data - hw->rx_desc_ops->rx_desc_size);
1624
1625	rxd_msdu_end_common = ath10k_htt_rx_desc_get_msdu_end(hw, rxd);
1626	rxd_rx_hdr_status = ath10k_htt_rx_desc_get_rx_hdr_status(hw, rxd);
1627	hdr = (void *)rxd_rx_hdr_status;
1628
1629	is_first = !!(rxd_msdu_end_common->info0 &
1630		      __cpu_to_le32(RX_MSDU_END_INFO0_FIRST_MSDU));
1631	is_last = !!(rxd_msdu_end_common->info0 &
1632		     __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU));
1633	is_amsdu = !(is_first && is_last);
1634
1635	rfc1042 = hdr;
1636
1637	if (is_first) {
1638		hdr_len = ieee80211_hdrlen(hdr->frame_control);
1639		crypto_len = ath10k_htt_rx_crypto_param_len(ar, enctype);
1640
1641		rfc1042 += round_up(hdr_len, bytes_aligned) +
1642			   round_up(crypto_len, bytes_aligned);
1643	}
1644
1645	if (is_amsdu)
1646		rfc1042 += sizeof(struct amsdu_subframe_hdr);
1647
1648	return rfc1042;
1649}
1650
1651static void ath10k_htt_rx_h_undecap_eth(struct ath10k *ar,
1652					struct sk_buff *msdu,
1653					struct ieee80211_rx_status *status,
1654					const u8 first_hdr[64],
1655					enum htt_rx_mpdu_encrypt_type enctype)
1656{
1657	struct ath10k_hw_params *hw = &ar->hw_params;
1658	struct ieee80211_hdr *hdr;
1659	struct ethhdr *eth;
1660	size_t hdr_len;
1661	void *rfc1042;
1662	u8 da[ETH_ALEN];
1663	u8 sa[ETH_ALEN];
1664	int l3_pad_bytes;
1665	struct htt_rx_desc *rxd;
1666	int bytes_aligned = ar->hw_params.decap_align_bytes;
1667
1668	/* Delivered decapped frame:
1669	 * [eth header] <-- replaced with 802.11 hdr & rfc1042/llc
1670	 * [payload]
1671	 */
1672
1673	rfc1042 = ath10k_htt_rx_h_find_rfc1042(ar, msdu, enctype);
1674	if (WARN_ON_ONCE(!rfc1042))
1675		return;
1676
1677	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1678				    (void *)msdu->data - hw->rx_desc_ops->rx_desc_size);
1679
1680	l3_pad_bytes = ath10k_htt_rx_desc_get_l3_pad_bytes(&ar->hw_params, rxd);
1681	skb_put(msdu, l3_pad_bytes);
1682	skb_pull(msdu, l3_pad_bytes);
1683
1684	/* pull decapped header and copy SA & DA */
1685	eth = (struct ethhdr *)msdu->data;
1686	ether_addr_copy(da, eth->h_dest);
1687	ether_addr_copy(sa, eth->h_source);
1688	skb_pull(msdu, sizeof(struct ethhdr));
1689
1690	/* push rfc1042/llc/snap */
1691	memcpy(skb_push(msdu, sizeof(struct rfc1042_hdr)), rfc1042,
1692	       sizeof(struct rfc1042_hdr));
1693
1694	/* push original 802.11 header */
1695	hdr = (struct ieee80211_hdr *)first_hdr;
1696	hdr_len = ieee80211_hdrlen(hdr->frame_control);
1697
1698	if (!(status->flag & RX_FLAG_IV_STRIPPED)) {
1699		memcpy(skb_push(msdu,
1700				ath10k_htt_rx_crypto_param_len(ar, enctype)),
1701		       (void *)hdr + round_up(hdr_len, bytes_aligned),
1702			ath10k_htt_rx_crypto_param_len(ar, enctype));
1703	}
1704
1705	memcpy(skb_push(msdu, hdr_len), hdr, hdr_len);
1706
1707	/* original 802.11 header has a different DA and in
1708	 * case of 4addr it may also have different SA
1709	 */
1710	hdr = (struct ieee80211_hdr *)msdu->data;
1711	ether_addr_copy(ieee80211_get_DA(hdr), da);
1712	ether_addr_copy(ieee80211_get_SA(hdr), sa);
1713}
1714
1715static void ath10k_htt_rx_h_undecap_snap(struct ath10k *ar,
1716					 struct sk_buff *msdu,
1717					 struct ieee80211_rx_status *status,
1718					 const u8 first_hdr[64],
1719					 enum htt_rx_mpdu_encrypt_type enctype)
1720{
1721	struct ath10k_hw_params *hw = &ar->hw_params;
1722	struct ieee80211_hdr *hdr;
1723	size_t hdr_len;
1724	int l3_pad_bytes;
1725	struct htt_rx_desc *rxd;
1726	int bytes_aligned = ar->hw_params.decap_align_bytes;
1727
1728	/* Delivered decapped frame:
1729	 * [amsdu header] <-- replaced with 802.11 hdr
1730	 * [rfc1042/llc]
1731	 * [payload]
1732	 */
1733
1734	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1735				    (void *)msdu->data - hw->rx_desc_ops->rx_desc_size);
1736
1737	l3_pad_bytes = ath10k_htt_rx_desc_get_l3_pad_bytes(&ar->hw_params, rxd);
1738
1739	skb_put(msdu, l3_pad_bytes);
1740	skb_pull(msdu, sizeof(struct amsdu_subframe_hdr) + l3_pad_bytes);
1741
1742	hdr = (struct ieee80211_hdr *)first_hdr;
1743	hdr_len = ieee80211_hdrlen(hdr->frame_control);
1744
1745	if (!(status->flag & RX_FLAG_IV_STRIPPED)) {
1746		memcpy(skb_push(msdu,
1747				ath10k_htt_rx_crypto_param_len(ar, enctype)),
1748		       (void *)hdr + round_up(hdr_len, bytes_aligned),
1749			ath10k_htt_rx_crypto_param_len(ar, enctype));
1750	}
1751
1752	memcpy(skb_push(msdu, hdr_len), hdr, hdr_len);
1753}
1754
1755static void ath10k_htt_rx_h_undecap(struct ath10k *ar,
1756				    struct sk_buff *msdu,
1757				    struct ieee80211_rx_status *status,
1758				    u8 first_hdr[64],
1759				    enum htt_rx_mpdu_encrypt_type enctype,
1760				    bool is_decrypted)
1761{
1762	struct ath10k_hw_params *hw = &ar->hw_params;
1763	struct htt_rx_desc *rxd;
1764	struct rx_msdu_start_common *rxd_msdu_start_common;
1765	enum rx_msdu_decap_format decap;
1766
1767	/* First msdu's decapped header:
1768	 * [802.11 header] <-- padded to 4 bytes long
1769	 * [crypto param] <-- padded to 4 bytes long
1770	 * [amsdu header] <-- only if A-MSDU
1771	 * [rfc1042/llc]
1772	 *
1773	 * Other (2nd, 3rd, ..) msdu's decapped header:
1774	 * [amsdu header] <-- only if A-MSDU
1775	 * [rfc1042/llc]
1776	 */
1777
1778	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1779				    (void *)msdu->data - hw->rx_desc_ops->rx_desc_size);
1780
1781	rxd_msdu_start_common = ath10k_htt_rx_desc_get_msdu_start(hw, rxd);
1782	decap = MS(__le32_to_cpu(rxd_msdu_start_common->info1),
1783		   RX_MSDU_START_INFO1_DECAP_FORMAT);
1784
1785	switch (decap) {
1786	case RX_MSDU_DECAP_RAW:
1787		ath10k_htt_rx_h_undecap_raw(ar, msdu, status, enctype,
1788					    is_decrypted, first_hdr);
1789		break;
1790	case RX_MSDU_DECAP_NATIVE_WIFI:
1791		ath10k_htt_rx_h_undecap_nwifi(ar, msdu, status, first_hdr,
1792					      enctype);
1793		break;
1794	case RX_MSDU_DECAP_ETHERNET2_DIX:
1795		ath10k_htt_rx_h_undecap_eth(ar, msdu, status, first_hdr, enctype);
1796		break;
1797	case RX_MSDU_DECAP_8023_SNAP_LLC:
1798		ath10k_htt_rx_h_undecap_snap(ar, msdu, status, first_hdr,
1799					     enctype);
1800		break;
1801	}
1802}
1803
1804static int ath10k_htt_rx_get_csum_state(struct ath10k_hw_params *hw, struct sk_buff *skb)
1805{
1806	struct htt_rx_desc *rxd;
1807	struct rx_attention *rxd_attention;
1808	struct rx_msdu_start_common *rxd_msdu_start_common;
1809	u32 flags, info;
1810	bool is_ip4, is_ip6;
1811	bool is_tcp, is_udp;
1812	bool ip_csum_ok, tcpudp_csum_ok;
1813
1814	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1815				    (void *)skb->data - hw->rx_desc_ops->rx_desc_size);
1816
1817	rxd_attention = ath10k_htt_rx_desc_get_attention(hw, rxd);
1818	rxd_msdu_start_common = ath10k_htt_rx_desc_get_msdu_start(hw, rxd);
1819	flags = __le32_to_cpu(rxd_attention->flags);
1820	info = __le32_to_cpu(rxd_msdu_start_common->info1);
1821
1822	is_ip4 = !!(info & RX_MSDU_START_INFO1_IPV4_PROTO);
1823	is_ip6 = !!(info & RX_MSDU_START_INFO1_IPV6_PROTO);
1824	is_tcp = !!(info & RX_MSDU_START_INFO1_TCP_PROTO);
1825	is_udp = !!(info & RX_MSDU_START_INFO1_UDP_PROTO);
1826	ip_csum_ok = !(flags & RX_ATTENTION_FLAGS_IP_CHKSUM_FAIL);
1827	tcpudp_csum_ok = !(flags & RX_ATTENTION_FLAGS_TCP_UDP_CHKSUM_FAIL);
1828
1829	if (!is_ip4 && !is_ip6)
1830		return CHECKSUM_NONE;
1831	if (!is_tcp && !is_udp)
1832		return CHECKSUM_NONE;
1833	if (!ip_csum_ok)
1834		return CHECKSUM_NONE;
1835	if (!tcpudp_csum_ok)
1836		return CHECKSUM_NONE;
1837
1838	return CHECKSUM_UNNECESSARY;
1839}
1840
1841static void ath10k_htt_rx_h_csum_offload(struct ath10k_hw_params *hw,
1842					 struct sk_buff *msdu)
1843{
1844	msdu->ip_summed = ath10k_htt_rx_get_csum_state(hw, msdu);
1845}
1846
1847static u64 ath10k_htt_rx_h_get_pn(struct ath10k *ar, struct sk_buff *skb,
1848				  enum htt_rx_mpdu_encrypt_type enctype)
1849{
1850	struct ieee80211_hdr *hdr;
1851	u64 pn = 0;
1852	u8 *ehdr;
1853
1854	hdr = (struct ieee80211_hdr *)skb->data;
1855	ehdr = skb->data + ieee80211_hdrlen(hdr->frame_control);
1856
1857	if (enctype == HTT_RX_MPDU_ENCRYPT_AES_CCM_WPA2) {
1858		pn = ehdr[0];
1859		pn |= (u64)ehdr[1] << 8;
1860		pn |= (u64)ehdr[4] << 16;
1861		pn |= (u64)ehdr[5] << 24;
1862		pn |= (u64)ehdr[6] << 32;
1863		pn |= (u64)ehdr[7] << 40;
1864	}
1865	return pn;
1866}
1867
1868static bool ath10k_htt_rx_h_frag_multicast_check(struct ath10k *ar,
1869						 struct sk_buff *skb)
1870{
1871	struct ieee80211_hdr *hdr;
1872
1873	hdr = (struct ieee80211_hdr *)skb->data;
1874	return !is_multicast_ether_addr(hdr->addr1);
1875}
1876
1877static bool ath10k_htt_rx_h_frag_pn_check(struct ath10k *ar,
1878					  struct sk_buff *skb,
1879					  u16 peer_id,
1880					  enum htt_rx_mpdu_encrypt_type enctype)
1881{
1882	struct ath10k_peer *peer;
1883	union htt_rx_pn_t *last_pn, new_pn = {0};
1884	struct ieee80211_hdr *hdr;
1885	u8 tid, frag_number;
1886	u32 seq;
1887
1888	peer = ath10k_peer_find_by_id(ar, peer_id);
1889	if (!peer) {
1890		ath10k_dbg(ar, ATH10K_DBG_HTT, "invalid peer for frag pn check\n");
1891		return false;
1892	}
1893
1894	hdr = (struct ieee80211_hdr *)skb->data;
1895	if (ieee80211_is_data_qos(hdr->frame_control))
1896		tid = ieee80211_get_tid(hdr);
1897	else
1898		tid = ATH10K_TXRX_NON_QOS_TID;
1899
1900	last_pn = &peer->frag_tids_last_pn[tid];
1901	new_pn.pn48 = ath10k_htt_rx_h_get_pn(ar, skb, enctype);
1902	frag_number = le16_to_cpu(hdr->seq_ctrl) & IEEE80211_SCTL_FRAG;
1903	seq = IEEE80211_SEQ_TO_SN(__le16_to_cpu(hdr->seq_ctrl));
1904
1905	if (frag_number == 0) {
1906		last_pn->pn48 = new_pn.pn48;
1907		peer->frag_tids_seq[tid] = seq;
1908	} else {
1909		if (seq != peer->frag_tids_seq[tid])
1910			return false;
1911
1912		if (new_pn.pn48 != last_pn->pn48 + 1)
1913			return false;
1914
1915		last_pn->pn48 = new_pn.pn48;
1916	}
1917
1918	return true;
1919}
1920
1921static void ath10k_htt_rx_h_mpdu(struct ath10k *ar,
1922				 struct sk_buff_head *amsdu,
1923				 struct ieee80211_rx_status *status,
1924				 bool fill_crypt_header,
1925				 u8 *rx_hdr,
1926				 enum ath10k_pkt_rx_err *err,
1927				 u16 peer_id,
1928				 bool frag)
1929{
1930	struct sk_buff *first;
1931	struct sk_buff *last;
1932	struct sk_buff *msdu, *temp;
1933	struct ath10k_hw_params *hw = &ar->hw_params;
1934	struct htt_rx_desc *rxd;
1935	struct rx_attention *rxd_attention;
1936	struct rx_mpdu_start *rxd_mpdu_start;
1937
1938	struct ieee80211_hdr *hdr;
1939	enum htt_rx_mpdu_encrypt_type enctype;
1940	u8 first_hdr[64];
1941	u8 *qos;
1942	bool has_fcs_err;
1943	bool has_crypto_err;
1944	bool has_tkip_err;
1945	bool has_peer_idx_invalid;
1946	bool is_decrypted;
1947	bool is_mgmt;
1948	u32 attention;
1949	bool frag_pn_check = true, multicast_check = true;
1950
1951	if (skb_queue_empty(amsdu))
1952		return;
1953
1954	first = skb_peek(amsdu);
1955	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1956				    (void *)first->data - hw->rx_desc_ops->rx_desc_size);
1957
1958	rxd_attention = ath10k_htt_rx_desc_get_attention(hw, rxd);
1959	rxd_mpdu_start = ath10k_htt_rx_desc_get_mpdu_start(hw, rxd);
1960
1961	is_mgmt = !!(rxd_attention->flags &
1962		     __cpu_to_le32(RX_ATTENTION_FLAGS_MGMT_TYPE));
1963
1964	enctype = MS(__le32_to_cpu(rxd_mpdu_start->info0),
1965		     RX_MPDU_START_INFO0_ENCRYPT_TYPE);
1966
1967	/* First MSDU's Rx descriptor in an A-MSDU contains full 802.11
1968	 * decapped header. It'll be used for undecapping of each MSDU.
1969	 */
1970	hdr = (void *)ath10k_htt_rx_desc_get_rx_hdr_status(hw, rxd);
1971	memcpy(first_hdr, hdr, RX_HTT_HDR_STATUS_LEN);
1972
1973	if (rx_hdr)
1974		memcpy(rx_hdr, hdr, RX_HTT_HDR_STATUS_LEN);
1975
1976	/* Each A-MSDU subframe will use the original header as the base and be
1977	 * reported as a separate MSDU so strip the A-MSDU bit from QoS Ctl.
1978	 */
1979	hdr = (void *)first_hdr;
1980
1981	if (ieee80211_is_data_qos(hdr->frame_control)) {
1982		qos = ieee80211_get_qos_ctl(hdr);
1983		qos[0] &= ~IEEE80211_QOS_CTL_A_MSDU_PRESENT;
1984	}
1985
1986	/* Some attention flags are valid only in the last MSDU. */
1987	last = skb_peek_tail(amsdu);
1988	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
1989				    (void *)last->data - hw->rx_desc_ops->rx_desc_size);
1990
1991	rxd_attention = ath10k_htt_rx_desc_get_attention(hw, rxd);
1992	attention = __le32_to_cpu(rxd_attention->flags);
1993
1994	has_fcs_err = !!(attention & RX_ATTENTION_FLAGS_FCS_ERR);
1995	has_crypto_err = !!(attention & RX_ATTENTION_FLAGS_DECRYPT_ERR);
1996	has_tkip_err = !!(attention & RX_ATTENTION_FLAGS_TKIP_MIC_ERR);
1997	has_peer_idx_invalid = !!(attention & RX_ATTENTION_FLAGS_PEER_IDX_INVALID);
1998
1999	/* Note: If hardware captures an encrypted frame that it can't decrypt,
2000	 * e.g. due to fcs error, missing peer or invalid key data it will
2001	 * report the frame as raw.
2002	 */
2003	is_decrypted = (enctype != HTT_RX_MPDU_ENCRYPT_NONE &&
2004			!has_fcs_err &&
2005			!has_crypto_err &&
2006			!has_peer_idx_invalid);
2007
2008	/* Clear per-MPDU flags while leaving per-PPDU flags intact. */
2009	status->flag &= ~(RX_FLAG_FAILED_FCS_CRC |
2010			  RX_FLAG_MMIC_ERROR |
2011			  RX_FLAG_DECRYPTED |
2012			  RX_FLAG_IV_STRIPPED |
2013			  RX_FLAG_ONLY_MONITOR |
2014			  RX_FLAG_MMIC_STRIPPED);
2015
2016	if (has_fcs_err)
2017		status->flag |= RX_FLAG_FAILED_FCS_CRC;
2018
2019	if (has_tkip_err)
2020		status->flag |= RX_FLAG_MMIC_ERROR;
2021
2022	if (err) {
2023		if (has_fcs_err)
2024			*err = ATH10K_PKT_RX_ERR_FCS;
2025		else if (has_tkip_err)
2026			*err = ATH10K_PKT_RX_ERR_TKIP;
2027		else if (has_crypto_err)
2028			*err = ATH10K_PKT_RX_ERR_CRYPT;
2029		else if (has_peer_idx_invalid)
2030			*err = ATH10K_PKT_RX_ERR_PEER_IDX_INVAL;
2031	}
2032
2033	/* Firmware reports all necessary management frames via WMI already.
2034	 * They are not reported to monitor interfaces at all so pass the ones
2035	 * coming via HTT to monitor interfaces instead. This simplifies
2036	 * matters a lot.
2037	 */
2038	if (is_mgmt)
2039		status->flag |= RX_FLAG_ONLY_MONITOR;
2040
2041	if (is_decrypted) {
2042		status->flag |= RX_FLAG_DECRYPTED;
2043
2044		if (likely(!is_mgmt))
2045			status->flag |= RX_FLAG_MMIC_STRIPPED;
2046
2047		if (fill_crypt_header)
2048			status->flag |= RX_FLAG_MIC_STRIPPED |
2049					RX_FLAG_ICV_STRIPPED;
2050		else
2051			status->flag |= RX_FLAG_IV_STRIPPED;
2052	}
2053
2054	skb_queue_walk(amsdu, msdu) {
2055		if (frag && !fill_crypt_header && is_decrypted &&
2056		    enctype == HTT_RX_MPDU_ENCRYPT_AES_CCM_WPA2)
2057			frag_pn_check = ath10k_htt_rx_h_frag_pn_check(ar,
2058								      msdu,
2059								      peer_id,
2060								      enctype);
2061
2062		if (frag)
2063			multicast_check = ath10k_htt_rx_h_frag_multicast_check(ar,
2064									       msdu);
2065
2066		if (!frag_pn_check || !multicast_check) {
2067			/* Discard the fragment with invalid PN or multicast DA
2068			 */
2069			temp = msdu->prev;
2070			__skb_unlink(msdu, amsdu);
2071			dev_kfree_skb_any(msdu);
2072			msdu = temp;
2073			frag_pn_check = true;
2074			multicast_check = true;
2075			continue;
2076		}
2077
2078		ath10k_htt_rx_h_csum_offload(&ar->hw_params, msdu);
2079
2080		if (frag && !fill_crypt_header &&
2081		    enctype == HTT_RX_MPDU_ENCRYPT_TKIP_WPA)
2082			status->flag &= ~RX_FLAG_MMIC_STRIPPED;
2083
2084		ath10k_htt_rx_h_undecap(ar, msdu, status, first_hdr, enctype,
2085					is_decrypted);
2086
2087		/* Undecapping involves copying the original 802.11 header back
2088		 * to sk_buff. If frame is protected and hardware has decrypted
2089		 * it then remove the protected bit.
2090		 */
2091		if (!is_decrypted)
2092			continue;
2093		if (is_mgmt)
2094			continue;
2095
2096		if (fill_crypt_header)
2097			continue;
2098
2099		hdr = (void *)msdu->data;
2100		hdr->frame_control &= ~__cpu_to_le16(IEEE80211_FCTL_PROTECTED);
2101
2102		if (frag && !fill_crypt_header &&
2103		    enctype == HTT_RX_MPDU_ENCRYPT_TKIP_WPA)
2104			status->flag &= ~RX_FLAG_IV_STRIPPED &
2105					~RX_FLAG_MMIC_STRIPPED;
2106	}
2107}
2108
2109static void ath10k_htt_rx_h_enqueue(struct ath10k *ar,
2110				    struct sk_buff_head *amsdu,
2111				    struct ieee80211_rx_status *status)
2112{
2113	struct sk_buff *msdu;
2114	struct sk_buff *first_subframe;
2115
2116	first_subframe = skb_peek(amsdu);
2117
2118	while ((msdu = __skb_dequeue(amsdu))) {
2119		/* Setup per-MSDU flags */
2120		if (skb_queue_empty(amsdu))
2121			status->flag &= ~RX_FLAG_AMSDU_MORE;
2122		else
2123			status->flag |= RX_FLAG_AMSDU_MORE;
2124
2125		if (msdu == first_subframe) {
2126			first_subframe = NULL;
2127			status->flag &= ~RX_FLAG_ALLOW_SAME_PN;
2128		} else {
2129			status->flag |= RX_FLAG_ALLOW_SAME_PN;
2130		}
2131
2132		ath10k_htt_rx_h_queue_msdu(ar, status, msdu);
2133	}
2134}
2135
2136static int ath10k_unchain_msdu(struct sk_buff_head *amsdu,
2137			       unsigned long *unchain_cnt)
2138{
2139	struct sk_buff *skb, *first;
2140	int space;
2141	int total_len = 0;
2142	int amsdu_len = skb_queue_len(amsdu);
2143
2144	/* TODO:  Might could optimize this by using
2145	 * skb_try_coalesce or similar method to
2146	 * decrease copying, or maybe get mac80211 to
2147	 * provide a way to just receive a list of
2148	 * skb?
2149	 */
2150
2151	first = __skb_dequeue(amsdu);
2152
2153	/* Allocate total length all at once. */
2154	skb_queue_walk(amsdu, skb)
2155		total_len += skb->len;
2156
2157	space = total_len - skb_tailroom(first);
2158	if ((space > 0) &&
2159	    (pskb_expand_head(first, 0, space, GFP_ATOMIC) < 0)) {
2160		/* TODO:  bump some rx-oom error stat */
2161		/* put it back together so we can free the
2162		 * whole list at once.
2163		 */
2164		__skb_queue_head(amsdu, first);
2165		return -1;
2166	}
2167
2168	/* Walk list again, copying contents into
2169	 * msdu_head
2170	 */
2171	while ((skb = __skb_dequeue(amsdu))) {
2172		skb_copy_from_linear_data(skb, skb_put(first, skb->len),
2173					  skb->len);
2174		dev_kfree_skb_any(skb);
2175	}
2176
2177	__skb_queue_head(amsdu, first);
2178
2179	*unchain_cnt += amsdu_len - 1;
2180
2181	return 0;
2182}
2183
2184static void ath10k_htt_rx_h_unchain(struct ath10k *ar,
2185				    struct sk_buff_head *amsdu,
2186				    unsigned long *drop_cnt,
2187				    unsigned long *unchain_cnt)
2188{
2189	struct sk_buff *first;
2190	struct ath10k_hw_params *hw = &ar->hw_params;
2191	struct htt_rx_desc *rxd;
2192	struct rx_msdu_start_common *rxd_msdu_start_common;
2193	struct rx_frag_info_common *rxd_frag_info;
2194	enum rx_msdu_decap_format decap;
2195
2196	first = skb_peek(amsdu);
2197	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
2198				    (void *)first->data - hw->rx_desc_ops->rx_desc_size);
2199
2200	rxd_msdu_start_common = ath10k_htt_rx_desc_get_msdu_start(hw, rxd);
2201	rxd_frag_info = ath10k_htt_rx_desc_get_frag_info(hw, rxd);
2202	decap = MS(__le32_to_cpu(rxd_msdu_start_common->info1),
2203		   RX_MSDU_START_INFO1_DECAP_FORMAT);
2204
2205	/* FIXME: Current unchaining logic can only handle simple case of raw
2206	 * msdu chaining. If decapping is other than raw the chaining may be
2207	 * more complex and this isn't handled by the current code. Don't even
2208	 * try re-constructing such frames - it'll be pretty much garbage.
2209	 */
2210	if (decap != RX_MSDU_DECAP_RAW ||
2211	    skb_queue_len(amsdu) != 1 + rxd_frag_info->ring2_more_count) {
2212		*drop_cnt += skb_queue_len(amsdu);
2213		__skb_queue_purge(amsdu);
2214		return;
2215	}
2216
2217	ath10k_unchain_msdu(amsdu, unchain_cnt);
2218}
2219
2220static bool ath10k_htt_rx_validate_amsdu(struct ath10k *ar,
2221					 struct sk_buff_head *amsdu)
2222{
2223	u8 *subframe_hdr;
2224	struct sk_buff *first;
2225	bool is_first, is_last;
2226	struct ath10k_hw_params *hw = &ar->hw_params;
2227	struct htt_rx_desc *rxd;
2228	struct rx_msdu_end_common *rxd_msdu_end_common;
2229	struct rx_mpdu_start *rxd_mpdu_start;
2230	struct ieee80211_hdr *hdr;
2231	size_t hdr_len, crypto_len;
2232	enum htt_rx_mpdu_encrypt_type enctype;
2233	int bytes_aligned = ar->hw_params.decap_align_bytes;
2234
2235	first = skb_peek(amsdu);
2236
2237	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
2238				    (void *)first->data - hw->rx_desc_ops->rx_desc_size);
2239
2240	rxd_msdu_end_common = ath10k_htt_rx_desc_get_msdu_end(hw, rxd);
2241	rxd_mpdu_start = ath10k_htt_rx_desc_get_mpdu_start(hw, rxd);
2242	hdr = (void *)ath10k_htt_rx_desc_get_rx_hdr_status(hw, rxd);
2243
2244	is_first = !!(rxd_msdu_end_common->info0 &
2245		      __cpu_to_le32(RX_MSDU_END_INFO0_FIRST_MSDU));
2246	is_last = !!(rxd_msdu_end_common->info0 &
2247		     __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU));
2248
2249	/* Return in case of non-aggregated msdu */
2250	if (is_first && is_last)
2251		return true;
2252
2253	/* First msdu flag is not set for the first msdu of the list */
2254	if (!is_first)
2255		return false;
2256
2257	enctype = MS(__le32_to_cpu(rxd_mpdu_start->info0),
2258		     RX_MPDU_START_INFO0_ENCRYPT_TYPE);
2259
2260	hdr_len = ieee80211_hdrlen(hdr->frame_control);
2261	crypto_len = ath10k_htt_rx_crypto_param_len(ar, enctype);
2262
2263	subframe_hdr = (u8 *)hdr + round_up(hdr_len, bytes_aligned) +
2264		       crypto_len;
2265
2266	/* Validate if the amsdu has a proper first subframe.
2267	 * There are chances a single msdu can be received as amsdu when
2268	 * the unauthenticated amsdu flag of a QoS header
2269	 * gets flipped in non-SPP AMSDU's, in such cases the first
2270	 * subframe has llc/snap header in place of a valid da.
2271	 * return false if the da matches rfc1042 pattern
2272	 */
2273	if (ether_addr_equal(subframe_hdr, rfc1042_header))
2274		return false;
2275
2276	return true;
2277}
2278
2279static bool ath10k_htt_rx_amsdu_allowed(struct ath10k *ar,
2280					struct sk_buff_head *amsdu,
2281					struct ieee80211_rx_status *rx_status)
2282{
 
 
 
 
2283	if (!rx_status->freq) {
2284		ath10k_dbg(ar, ATH10K_DBG_HTT, "no channel configured; ignoring frame(s)!\n");
2285		return false;
2286	}
2287
2288	if (test_bit(ATH10K_CAC_RUNNING, &ar->dev_flags)) {
2289		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx cac running\n");
2290		return false;
2291	}
2292
2293	if (!ath10k_htt_rx_validate_amsdu(ar, amsdu)) {
2294		ath10k_dbg(ar, ATH10K_DBG_HTT, "invalid amsdu received\n");
2295		return false;
2296	}
2297
2298	return true;
2299}
2300
2301static void ath10k_htt_rx_h_filter(struct ath10k *ar,
2302				   struct sk_buff_head *amsdu,
2303				   struct ieee80211_rx_status *rx_status,
2304				   unsigned long *drop_cnt)
2305{
2306	if (skb_queue_empty(amsdu))
2307		return;
2308
2309	if (ath10k_htt_rx_amsdu_allowed(ar, amsdu, rx_status))
2310		return;
2311
2312	if (drop_cnt)
2313		*drop_cnt += skb_queue_len(amsdu);
2314
2315	__skb_queue_purge(amsdu);
2316}
2317
2318static int ath10k_htt_rx_handle_amsdu(struct ath10k_htt *htt)
2319{
2320	struct ath10k *ar = htt->ar;
2321	struct ieee80211_rx_status *rx_status = &htt->rx_status;
2322	struct sk_buff_head amsdu;
2323	int ret;
2324	unsigned long drop_cnt = 0;
2325	unsigned long unchain_cnt = 0;
2326	unsigned long drop_cnt_filter = 0;
2327	unsigned long msdus_to_queue, num_msdus;
2328	enum ath10k_pkt_rx_err err = ATH10K_PKT_RX_ERR_MAX;
2329	u8 first_hdr[RX_HTT_HDR_STATUS_LEN];
2330
2331	__skb_queue_head_init(&amsdu);
2332
2333	spin_lock_bh(&htt->rx_ring.lock);
2334	if (htt->rx_confused) {
2335		spin_unlock_bh(&htt->rx_ring.lock);
2336		return -EIO;
2337	}
2338	ret = ath10k_htt_rx_amsdu_pop(htt, &amsdu);
2339	spin_unlock_bh(&htt->rx_ring.lock);
2340
2341	if (ret < 0) {
2342		ath10k_warn(ar, "rx ring became corrupted: %d\n", ret);
2343		__skb_queue_purge(&amsdu);
2344		/* FIXME: It's probably a good idea to reboot the
2345		 * device instead of leaving it inoperable.
2346		 */
2347		htt->rx_confused = true;
2348		return ret;
2349	}
2350
2351	num_msdus = skb_queue_len(&amsdu);
2352
2353	ath10k_htt_rx_h_ppdu(ar, &amsdu, rx_status, 0xffff);
2354
2355	/* only for ret = 1 indicates chained msdus */
2356	if (ret > 0)
2357		ath10k_htt_rx_h_unchain(ar, &amsdu, &drop_cnt, &unchain_cnt);
2358
2359	ath10k_htt_rx_h_filter(ar, &amsdu, rx_status, &drop_cnt_filter);
2360	ath10k_htt_rx_h_mpdu(ar, &amsdu, rx_status, true, first_hdr, &err, 0,
2361			     false);
2362	msdus_to_queue = skb_queue_len(&amsdu);
2363	ath10k_htt_rx_h_enqueue(ar, &amsdu, rx_status);
2364
2365	ath10k_sta_update_rx_tid_stats(ar, first_hdr, num_msdus, err,
2366				       unchain_cnt, drop_cnt, drop_cnt_filter,
2367				       msdus_to_queue);
2368
2369	return 0;
2370}
2371
2372static void ath10k_htt_rx_mpdu_desc_pn_hl(struct htt_hl_rx_desc *rx_desc,
2373					  union htt_rx_pn_t *pn,
2374					  int pn_len_bits)
2375{
2376	switch (pn_len_bits) {
2377	case 48:
2378		pn->pn48 = __le32_to_cpu(rx_desc->pn_31_0) +
2379			   ((u64)(__le32_to_cpu(rx_desc->u0.pn_63_32) & 0xFFFF) << 32);
2380		break;
2381	case 24:
2382		pn->pn24 = __le32_to_cpu(rx_desc->pn_31_0);
2383		break;
2384	}
2385}
2386
2387static bool ath10k_htt_rx_pn_cmp48(union htt_rx_pn_t *new_pn,
2388				   union htt_rx_pn_t *old_pn)
2389{
2390	return ((new_pn->pn48 & 0xffffffffffffULL) <=
2391		(old_pn->pn48 & 0xffffffffffffULL));
2392}
2393
2394static bool ath10k_htt_rx_pn_check_replay_hl(struct ath10k *ar,
2395					     struct ath10k_peer *peer,
2396					     struct htt_rx_indication_hl *rx)
2397{
2398	bool last_pn_valid, pn_invalid = false;
2399	enum htt_txrx_sec_cast_type sec_index;
2400	enum htt_security_types sec_type;
2401	union htt_rx_pn_t new_pn = {0};
2402	struct htt_hl_rx_desc *rx_desc;
2403	union htt_rx_pn_t *last_pn;
2404	u32 rx_desc_info, tid;
2405	int num_mpdu_ranges;
2406
2407	lockdep_assert_held(&ar->data_lock);
2408
2409	if (!peer)
2410		return false;
2411
2412	if (!(rx->fw_desc.flags & FW_RX_DESC_FLAGS_FIRST_MSDU))
2413		return false;
2414
2415	num_mpdu_ranges = MS(__le32_to_cpu(rx->hdr.info1),
2416			     HTT_RX_INDICATION_INFO1_NUM_MPDU_RANGES);
2417
2418	rx_desc = (struct htt_hl_rx_desc *)&rx->mpdu_ranges[num_mpdu_ranges];
2419	rx_desc_info = __le32_to_cpu(rx_desc->info);
2420
2421	if (!MS(rx_desc_info, HTT_RX_DESC_HL_INFO_ENCRYPTED))
2422		return false;
2423
2424	tid = MS(rx->hdr.info0, HTT_RX_INDICATION_INFO0_EXT_TID);
2425	last_pn_valid = peer->tids_last_pn_valid[tid];
2426	last_pn = &peer->tids_last_pn[tid];
2427
2428	if (MS(rx_desc_info, HTT_RX_DESC_HL_INFO_MCAST_BCAST))
2429		sec_index = HTT_TXRX_SEC_MCAST;
2430	else
2431		sec_index = HTT_TXRX_SEC_UCAST;
2432
2433	sec_type = peer->rx_pn[sec_index].sec_type;
2434	ath10k_htt_rx_mpdu_desc_pn_hl(rx_desc, &new_pn, peer->rx_pn[sec_index].pn_len);
2435
2436	if (sec_type != HTT_SECURITY_AES_CCMP &&
2437	    sec_type != HTT_SECURITY_TKIP &&
2438	    sec_type != HTT_SECURITY_TKIP_NOMIC)
2439		return false;
2440
2441	if (last_pn_valid)
2442		pn_invalid = ath10k_htt_rx_pn_cmp48(&new_pn, last_pn);
2443	else
2444		peer->tids_last_pn_valid[tid] = true;
2445
2446	if (!pn_invalid)
2447		last_pn->pn48 = new_pn.pn48;
2448
2449	return pn_invalid;
2450}
2451
2452static bool ath10k_htt_rx_proc_rx_ind_hl(struct ath10k_htt *htt,
2453					 struct htt_rx_indication_hl *rx,
2454					 struct sk_buff *skb,
2455					 enum htt_rx_pn_check_type check_pn_type,
2456					 enum htt_rx_tkip_demic_type tkip_mic_type)
2457{
2458	struct ath10k *ar = htt->ar;
2459	struct ath10k_peer *peer;
2460	struct htt_rx_indication_mpdu_range *mpdu_ranges;
2461	struct fw_rx_desc_hl *fw_desc;
2462	enum htt_txrx_sec_cast_type sec_index;
2463	enum htt_security_types sec_type;
2464	union htt_rx_pn_t new_pn = {0};
2465	struct htt_hl_rx_desc *rx_desc;
2466	struct ieee80211_hdr *hdr;
2467	struct ieee80211_rx_status *rx_status;
2468	u16 peer_id;
2469	u8 rx_desc_len;
2470	int num_mpdu_ranges;
2471	size_t tot_hdr_len;
2472	struct ieee80211_channel *ch;
2473	bool pn_invalid, qos, first_msdu;
2474	u32 tid, rx_desc_info;
2475
2476	peer_id = __le16_to_cpu(rx->hdr.peer_id);
2477	tid = MS(rx->hdr.info0, HTT_RX_INDICATION_INFO0_EXT_TID);
2478
2479	spin_lock_bh(&ar->data_lock);
2480	peer = ath10k_peer_find_by_id(ar, peer_id);
2481	spin_unlock_bh(&ar->data_lock);
2482	if (!peer && peer_id != HTT_INVALID_PEERID)
2483		ath10k_warn(ar, "Got RX ind from invalid peer: %u\n", peer_id);
2484
2485	if (!peer)
2486		return true;
2487
2488	num_mpdu_ranges = MS(__le32_to_cpu(rx->hdr.info1),
2489			     HTT_RX_INDICATION_INFO1_NUM_MPDU_RANGES);
2490	mpdu_ranges = htt_rx_ind_get_mpdu_ranges_hl(rx);
2491	fw_desc = &rx->fw_desc;
2492	rx_desc_len = fw_desc->len;
2493
2494	if (fw_desc->u.bits.discard) {
2495		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt discard mpdu\n");
2496		goto err;
2497	}
2498
2499	/* I have not yet seen any case where num_mpdu_ranges > 1.
2500	 * qcacld does not seem handle that case either, so we introduce the
2501	 * same limitation here as well.
2502	 */
2503	if (num_mpdu_ranges > 1)
2504		ath10k_warn(ar,
2505			    "Unsupported number of MPDU ranges: %d, ignoring all but the first\n",
2506			    num_mpdu_ranges);
2507
2508	if (mpdu_ranges->mpdu_range_status !=
2509	    HTT_RX_IND_MPDU_STATUS_OK &&
2510	    mpdu_ranges->mpdu_range_status !=
2511	    HTT_RX_IND_MPDU_STATUS_TKIP_MIC_ERR) {
2512		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt mpdu_range_status %d\n",
2513			   mpdu_ranges->mpdu_range_status);
2514		goto err;
2515	}
2516
2517	rx_desc = (struct htt_hl_rx_desc *)&rx->mpdu_ranges[num_mpdu_ranges];
2518	rx_desc_info = __le32_to_cpu(rx_desc->info);
2519
2520	if (MS(rx_desc_info, HTT_RX_DESC_HL_INFO_MCAST_BCAST))
2521		sec_index = HTT_TXRX_SEC_MCAST;
2522	else
2523		sec_index = HTT_TXRX_SEC_UCAST;
2524
2525	sec_type = peer->rx_pn[sec_index].sec_type;
2526	first_msdu = rx->fw_desc.flags & FW_RX_DESC_FLAGS_FIRST_MSDU;
2527
2528	ath10k_htt_rx_mpdu_desc_pn_hl(rx_desc, &new_pn, peer->rx_pn[sec_index].pn_len);
2529
2530	if (check_pn_type == HTT_RX_PN_CHECK && tid >= IEEE80211_NUM_TIDS) {
2531		spin_lock_bh(&ar->data_lock);
2532		pn_invalid = ath10k_htt_rx_pn_check_replay_hl(ar, peer, rx);
2533		spin_unlock_bh(&ar->data_lock);
2534
2535		if (pn_invalid)
2536			goto err;
2537	}
2538
2539	/* Strip off all headers before the MAC header before delivery to
2540	 * mac80211
2541	 */
2542	tot_hdr_len = sizeof(struct htt_resp_hdr) + sizeof(rx->hdr) +
2543		      sizeof(rx->ppdu) + sizeof(rx->prefix) +
2544		      sizeof(rx->fw_desc) +
2545		      sizeof(*mpdu_ranges) * num_mpdu_ranges + rx_desc_len;
2546
2547	skb_pull(skb, tot_hdr_len);
2548
2549	hdr = (struct ieee80211_hdr *)skb->data;
2550	qos = ieee80211_is_data_qos(hdr->frame_control);
2551
2552	rx_status = IEEE80211_SKB_RXCB(skb);
2553	memset(rx_status, 0, sizeof(*rx_status));
2554
2555	if (rx->ppdu.combined_rssi == 0) {
2556		/* SDIO firmware does not provide signal */
2557		rx_status->signal = 0;
2558		rx_status->flag |= RX_FLAG_NO_SIGNAL_VAL;
2559	} else {
2560		rx_status->signal = ATH10K_DEFAULT_NOISE_FLOOR +
2561			rx->ppdu.combined_rssi;
2562		rx_status->flag &= ~RX_FLAG_NO_SIGNAL_VAL;
2563	}
2564
2565	spin_lock_bh(&ar->data_lock);
2566	ch = ar->scan_channel;
2567	if (!ch)
2568		ch = ar->rx_channel;
2569	if (!ch)
2570		ch = ath10k_htt_rx_h_any_channel(ar);
2571	if (!ch)
2572		ch = ar->tgt_oper_chan;
2573	spin_unlock_bh(&ar->data_lock);
2574
2575	if (ch) {
2576		rx_status->band = ch->band;
2577		rx_status->freq = ch->center_freq;
2578	}
2579	if (rx->fw_desc.flags & FW_RX_DESC_FLAGS_LAST_MSDU)
2580		rx_status->flag &= ~RX_FLAG_AMSDU_MORE;
2581	else
2582		rx_status->flag |= RX_FLAG_AMSDU_MORE;
2583
2584	/* Not entirely sure about this, but all frames from the chipset has
2585	 * the protected flag set even though they have already been decrypted.
2586	 * Unmasking this flag is necessary in order for mac80211 not to drop
2587	 * the frame.
2588	 * TODO: Verify this is always the case or find out a way to check
2589	 * if there has been hw decryption.
2590	 */
2591	if (ieee80211_has_protected(hdr->frame_control)) {
2592		hdr->frame_control &= ~__cpu_to_le16(IEEE80211_FCTL_PROTECTED);
2593		rx_status->flag |= RX_FLAG_DECRYPTED |
2594				   RX_FLAG_IV_STRIPPED |
2595				   RX_FLAG_MMIC_STRIPPED;
2596
2597		if (tid < IEEE80211_NUM_TIDS &&
2598		    first_msdu &&
2599		    check_pn_type == HTT_RX_PN_CHECK &&
2600		   (sec_type == HTT_SECURITY_AES_CCMP ||
2601		    sec_type == HTT_SECURITY_TKIP ||
2602		    sec_type == HTT_SECURITY_TKIP_NOMIC)) {
2603			u8 offset, *ivp, i;
2604			s8 keyidx = 0;
2605			__le64 pn48 = cpu_to_le64(new_pn.pn48);
2606
2607			hdr = (struct ieee80211_hdr *)skb->data;
2608			offset = ieee80211_hdrlen(hdr->frame_control);
2609			hdr->frame_control |= __cpu_to_le16(IEEE80211_FCTL_PROTECTED);
2610			rx_status->flag &= ~RX_FLAG_IV_STRIPPED;
2611
2612			memmove(skb->data - IEEE80211_CCMP_HDR_LEN,
2613				skb->data, offset);
2614			skb_push(skb, IEEE80211_CCMP_HDR_LEN);
2615			ivp = skb->data + offset;
2616			memset(skb->data + offset, 0, IEEE80211_CCMP_HDR_LEN);
2617			/* Ext IV */
2618			ivp[IEEE80211_WEP_IV_LEN - 1] |= ATH10K_IEEE80211_EXTIV;
2619
2620			for (i = 0; i < ARRAY_SIZE(peer->keys); i++) {
2621				if (peer->keys[i] &&
2622				    peer->keys[i]->flags & IEEE80211_KEY_FLAG_PAIRWISE)
2623					keyidx = peer->keys[i]->keyidx;
2624			}
2625
2626			/* Key ID */
2627			ivp[IEEE80211_WEP_IV_LEN - 1] |= keyidx << 6;
2628
2629			if (sec_type == HTT_SECURITY_AES_CCMP) {
2630				rx_status->flag |= RX_FLAG_MIC_STRIPPED;
2631				/* pn 0, pn 1 */
2632				memcpy(skb->data + offset, &pn48, 2);
2633				/* pn 1, pn 3 , pn 34 , pn 5 */
2634				memcpy(skb->data + offset + 4, ((u8 *)&pn48) + 2, 4);
2635			} else {
2636				rx_status->flag |= RX_FLAG_ICV_STRIPPED;
2637				/* TSC 0 */
2638				memcpy(skb->data + offset + 2, &pn48, 1);
2639				/* TSC 1 */
2640				memcpy(skb->data + offset, ((u8 *)&pn48) + 1, 1);
2641				/* TSC 2 , TSC 3 , TSC 4 , TSC 5*/
2642				memcpy(skb->data + offset + 4, ((u8 *)&pn48) + 2, 4);
2643			}
2644		}
2645	}
2646
2647	if (tkip_mic_type == HTT_RX_TKIP_MIC)
2648		rx_status->flag &= ~RX_FLAG_IV_STRIPPED &
2649				   ~RX_FLAG_MMIC_STRIPPED;
2650
2651	if (mpdu_ranges->mpdu_range_status == HTT_RX_IND_MPDU_STATUS_TKIP_MIC_ERR)
2652		rx_status->flag |= RX_FLAG_MMIC_ERROR;
2653
2654	if (!qos && tid < IEEE80211_NUM_TIDS) {
2655		u8 offset;
2656		__le16 qos_ctrl = 0;
2657
2658		hdr = (struct ieee80211_hdr *)skb->data;
2659		offset = ieee80211_hdrlen(hdr->frame_control);
2660
2661		hdr->frame_control |= cpu_to_le16(IEEE80211_STYPE_QOS_DATA);
2662		memmove(skb->data - IEEE80211_QOS_CTL_LEN, skb->data, offset);
2663		skb_push(skb, IEEE80211_QOS_CTL_LEN);
2664		qos_ctrl = cpu_to_le16(tid);
2665		memcpy(skb->data + offset, &qos_ctrl, IEEE80211_QOS_CTL_LEN);
2666	}
2667
2668	if (ar->napi.dev)
2669		ieee80211_rx_napi(ar->hw, NULL, skb, &ar->napi);
2670	else
2671		ieee80211_rx_ni(ar->hw, skb);
2672
2673	/* We have delivered the skb to the upper layers (mac80211) so we
2674	 * must not free it.
2675	 */
2676	return false;
2677err:
2678	/* Tell the caller that it must free the skb since we have not
2679	 * consumed it
2680	 */
2681	return true;
2682}
2683
2684static int ath10k_htt_rx_frag_tkip_decap_nomic(struct sk_buff *skb,
2685					       u16 head_len,
2686					       u16 hdr_len)
2687{
2688	u8 *ivp, *orig_hdr;
2689
2690	orig_hdr = skb->data;
2691	ivp = orig_hdr + hdr_len + head_len;
2692
2693	/* the ExtIV bit is always set to 1 for TKIP */
2694	if (!(ivp[IEEE80211_WEP_IV_LEN - 1] & ATH10K_IEEE80211_EXTIV))
2695		return -EINVAL;
2696
2697	memmove(orig_hdr + IEEE80211_TKIP_IV_LEN, orig_hdr, head_len + hdr_len);
2698	skb_pull(skb, IEEE80211_TKIP_IV_LEN);
2699	skb_trim(skb, skb->len - ATH10K_IEEE80211_TKIP_MICLEN);
2700	return 0;
2701}
2702
2703static int ath10k_htt_rx_frag_tkip_decap_withmic(struct sk_buff *skb,
2704						 u16 head_len,
2705						 u16 hdr_len)
2706{
2707	u8 *ivp, *orig_hdr;
2708
2709	orig_hdr = skb->data;
2710	ivp = orig_hdr + hdr_len + head_len;
2711
2712	/* the ExtIV bit is always set to 1 for TKIP */
2713	if (!(ivp[IEEE80211_WEP_IV_LEN - 1] & ATH10K_IEEE80211_EXTIV))
2714		return -EINVAL;
2715
2716	memmove(orig_hdr + IEEE80211_TKIP_IV_LEN, orig_hdr, head_len + hdr_len);
2717	skb_pull(skb, IEEE80211_TKIP_IV_LEN);
2718	skb_trim(skb, skb->len - IEEE80211_TKIP_ICV_LEN);
2719	return 0;
2720}
2721
2722static int ath10k_htt_rx_frag_ccmp_decap(struct sk_buff *skb,
2723					 u16 head_len,
2724					 u16 hdr_len)
2725{
2726	u8 *ivp, *orig_hdr;
2727
2728	orig_hdr = skb->data;
2729	ivp = orig_hdr + hdr_len + head_len;
2730
2731	/* the ExtIV bit is always set to 1 for CCMP */
2732	if (!(ivp[IEEE80211_WEP_IV_LEN - 1] & ATH10K_IEEE80211_EXTIV))
2733		return -EINVAL;
2734
2735	skb_trim(skb, skb->len - IEEE80211_CCMP_MIC_LEN);
2736	memmove(orig_hdr + IEEE80211_CCMP_HDR_LEN, orig_hdr, head_len + hdr_len);
2737	skb_pull(skb, IEEE80211_CCMP_HDR_LEN);
2738	return 0;
2739}
2740
2741static int ath10k_htt_rx_frag_wep_decap(struct sk_buff *skb,
2742					u16 head_len,
2743					u16 hdr_len)
2744{
2745	u8 *orig_hdr;
2746
2747	orig_hdr = skb->data;
2748
2749	memmove(orig_hdr + IEEE80211_WEP_IV_LEN,
2750		orig_hdr, head_len + hdr_len);
2751	skb_pull(skb, IEEE80211_WEP_IV_LEN);
2752	skb_trim(skb, skb->len - IEEE80211_WEP_ICV_LEN);
2753	return 0;
2754}
2755
2756static bool ath10k_htt_rx_proc_rx_frag_ind_hl(struct ath10k_htt *htt,
2757					      struct htt_rx_fragment_indication *rx,
2758					      struct sk_buff *skb)
2759{
2760	struct ath10k *ar = htt->ar;
2761	enum htt_rx_tkip_demic_type tkip_mic = HTT_RX_NON_TKIP_MIC;
2762	enum htt_txrx_sec_cast_type sec_index;
2763	struct htt_rx_indication_hl *rx_hl;
2764	enum htt_security_types sec_type;
2765	u32 tid, frag, seq, rx_desc_info;
2766	union htt_rx_pn_t new_pn = {0};
2767	struct htt_hl_rx_desc *rx_desc;
2768	u16 peer_id, sc, hdr_space;
2769	union htt_rx_pn_t *last_pn;
2770	struct ieee80211_hdr *hdr;
2771	int ret, num_mpdu_ranges;
2772	struct ath10k_peer *peer;
2773	struct htt_resp *resp;
2774	size_t tot_hdr_len;
2775
2776	resp = (struct htt_resp *)(skb->data + HTT_RX_FRAG_IND_INFO0_HEADER_LEN);
2777	skb_pull(skb, HTT_RX_FRAG_IND_INFO0_HEADER_LEN);
2778	skb_trim(skb, skb->len - FCS_LEN);
2779
2780	peer_id = __le16_to_cpu(rx->peer_id);
2781	rx_hl = (struct htt_rx_indication_hl *)(&resp->rx_ind_hl);
2782
2783	spin_lock_bh(&ar->data_lock);
2784	peer = ath10k_peer_find_by_id(ar, peer_id);
2785	if (!peer) {
2786		ath10k_dbg(ar, ATH10K_DBG_HTT, "invalid peer: %u\n", peer_id);
2787		goto err;
2788	}
2789
2790	num_mpdu_ranges = MS(__le32_to_cpu(rx_hl->hdr.info1),
2791			     HTT_RX_INDICATION_INFO1_NUM_MPDU_RANGES);
2792
2793	tot_hdr_len = sizeof(struct htt_resp_hdr) +
2794		      sizeof(rx_hl->hdr) +
2795		      sizeof(rx_hl->ppdu) +
2796		      sizeof(rx_hl->prefix) +
2797		      sizeof(rx_hl->fw_desc) +
2798		      sizeof(struct htt_rx_indication_mpdu_range) * num_mpdu_ranges;
2799
2800	tid =  MS(rx_hl->hdr.info0, HTT_RX_INDICATION_INFO0_EXT_TID);
2801	rx_desc = (struct htt_hl_rx_desc *)(skb->data + tot_hdr_len);
2802	rx_desc_info = __le32_to_cpu(rx_desc->info);
2803
2804	hdr = (struct ieee80211_hdr *)((u8 *)rx_desc + rx_hl->fw_desc.len);
2805
2806	if (is_multicast_ether_addr(hdr->addr1)) {
2807		/* Discard the fragment with multicast DA */
2808		goto err;
2809	}
2810
2811	if (!MS(rx_desc_info, HTT_RX_DESC_HL_INFO_ENCRYPTED)) {
2812		spin_unlock_bh(&ar->data_lock);
2813		return ath10k_htt_rx_proc_rx_ind_hl(htt, &resp->rx_ind_hl, skb,
2814						    HTT_RX_NON_PN_CHECK,
2815						    HTT_RX_NON_TKIP_MIC);
2816	}
2817
 
 
2818	if (ieee80211_has_retry(hdr->frame_control))
2819		goto err;
2820
2821	hdr_space = ieee80211_hdrlen(hdr->frame_control);
2822	sc = __le16_to_cpu(hdr->seq_ctrl);
2823	seq = IEEE80211_SEQ_TO_SN(sc);
2824	frag = sc & IEEE80211_SCTL_FRAG;
2825
2826	sec_index = MS(rx_desc_info, HTT_RX_DESC_HL_INFO_MCAST_BCAST) ?
2827		    HTT_TXRX_SEC_MCAST : HTT_TXRX_SEC_UCAST;
2828	sec_type = peer->rx_pn[sec_index].sec_type;
2829	ath10k_htt_rx_mpdu_desc_pn_hl(rx_desc, &new_pn, peer->rx_pn[sec_index].pn_len);
2830
2831	switch (sec_type) {
2832	case HTT_SECURITY_TKIP:
2833		tkip_mic = HTT_RX_TKIP_MIC;
2834		ret = ath10k_htt_rx_frag_tkip_decap_withmic(skb,
2835							    tot_hdr_len +
2836							    rx_hl->fw_desc.len,
2837							    hdr_space);
2838		if (ret)
2839			goto err;
2840		break;
2841	case HTT_SECURITY_TKIP_NOMIC:
2842		ret = ath10k_htt_rx_frag_tkip_decap_nomic(skb,
2843							  tot_hdr_len +
2844							  rx_hl->fw_desc.len,
2845							  hdr_space);
2846		if (ret)
2847			goto err;
2848		break;
2849	case HTT_SECURITY_AES_CCMP:
2850		ret = ath10k_htt_rx_frag_ccmp_decap(skb,
2851						    tot_hdr_len + rx_hl->fw_desc.len,
2852						    hdr_space);
2853		if (ret)
2854			goto err;
2855		break;
2856	case HTT_SECURITY_WEP128:
2857	case HTT_SECURITY_WEP104:
2858	case HTT_SECURITY_WEP40:
2859		ret = ath10k_htt_rx_frag_wep_decap(skb,
2860						   tot_hdr_len + rx_hl->fw_desc.len,
2861						   hdr_space);
2862		if (ret)
2863			goto err;
2864		break;
2865	default:
2866		break;
2867	}
2868
2869	resp = (struct htt_resp *)(skb->data);
2870
2871	if (sec_type != HTT_SECURITY_AES_CCMP &&
2872	    sec_type != HTT_SECURITY_TKIP &&
2873	    sec_type != HTT_SECURITY_TKIP_NOMIC) {
2874		spin_unlock_bh(&ar->data_lock);
2875		return ath10k_htt_rx_proc_rx_ind_hl(htt, &resp->rx_ind_hl, skb,
2876						    HTT_RX_NON_PN_CHECK,
2877						    HTT_RX_NON_TKIP_MIC);
2878	}
2879
2880	last_pn = &peer->frag_tids_last_pn[tid];
2881
2882	if (frag == 0) {
2883		if (ath10k_htt_rx_pn_check_replay_hl(ar, peer, &resp->rx_ind_hl))
2884			goto err;
2885
2886		last_pn->pn48 = new_pn.pn48;
2887		peer->frag_tids_seq[tid] = seq;
2888	} else if (sec_type == HTT_SECURITY_AES_CCMP) {
2889		if (seq != peer->frag_tids_seq[tid])
2890			goto err;
2891
2892		if (new_pn.pn48 != last_pn->pn48 + 1)
2893			goto err;
2894
2895		last_pn->pn48 = new_pn.pn48;
2896		last_pn = &peer->tids_last_pn[tid];
2897		last_pn->pn48 = new_pn.pn48;
2898	}
2899
2900	spin_unlock_bh(&ar->data_lock);
2901
2902	return ath10k_htt_rx_proc_rx_ind_hl(htt, &resp->rx_ind_hl, skb,
2903					    HTT_RX_NON_PN_CHECK, tkip_mic);
2904
2905err:
2906	spin_unlock_bh(&ar->data_lock);
2907
2908	/* Tell the caller that it must free the skb since we have not
2909	 * consumed it
2910	 */
2911	return true;
2912}
2913
2914static void ath10k_htt_rx_proc_rx_ind_ll(struct ath10k_htt *htt,
2915					 struct htt_rx_indication *rx)
2916{
2917	struct ath10k *ar = htt->ar;
2918	struct htt_rx_indication_mpdu_range *mpdu_ranges;
2919	int num_mpdu_ranges;
2920	int i, mpdu_count = 0;
2921	u16 peer_id;
2922	u8 tid;
2923
2924	num_mpdu_ranges = MS(__le32_to_cpu(rx->hdr.info1),
2925			     HTT_RX_INDICATION_INFO1_NUM_MPDU_RANGES);
2926	peer_id = __le16_to_cpu(rx->hdr.peer_id);
2927	tid =  MS(rx->hdr.info0, HTT_RX_INDICATION_INFO0_EXT_TID);
2928
2929	mpdu_ranges = htt_rx_ind_get_mpdu_ranges(rx);
2930
2931	ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt rx ind: ",
2932			rx, struct_size(rx, mpdu_ranges, num_mpdu_ranges));
2933
2934	for (i = 0; i < num_mpdu_ranges; i++)
2935		mpdu_count += mpdu_ranges[i].mpdu_count;
2936
2937	atomic_add(mpdu_count, &htt->num_mpdus_ready);
2938
2939	ath10k_sta_update_rx_tid_stats_ampdu(ar, peer_id, tid, mpdu_ranges,
2940					     num_mpdu_ranges);
2941}
2942
2943static void ath10k_htt_rx_tx_compl_ind(struct ath10k *ar,
2944				       struct sk_buff *skb)
2945{
2946	struct ath10k_htt *htt = &ar->htt;
2947	struct htt_resp *resp = (struct htt_resp *)skb->data;
2948	struct htt_tx_done tx_done = {};
2949	int status = MS(resp->data_tx_completion.flags, HTT_DATA_TX_STATUS);
2950	__le16 msdu_id, *msdus;
2951	bool rssi_enabled = false;
2952	u8 msdu_count = 0, num_airtime_records, tid;
2953	int i, htt_pad = 0;
2954	struct htt_data_tx_compl_ppdu_dur *ppdu_info;
2955	struct ath10k_peer *peer;
2956	u16 ppdu_info_offset = 0, peer_id;
2957	u32 tx_duration;
2958
2959	switch (status) {
2960	case HTT_DATA_TX_STATUS_NO_ACK:
2961		tx_done.status = HTT_TX_COMPL_STATE_NOACK;
2962		break;
2963	case HTT_DATA_TX_STATUS_OK:
2964		tx_done.status = HTT_TX_COMPL_STATE_ACK;
2965		break;
2966	case HTT_DATA_TX_STATUS_DISCARD:
2967	case HTT_DATA_TX_STATUS_POSTPONE:
 
2968		tx_done.status = HTT_TX_COMPL_STATE_DISCARD;
2969		break;
2970	default:
2971		ath10k_warn(ar, "unhandled tx completion status %d\n", status);
2972		tx_done.status = HTT_TX_COMPL_STATE_DISCARD;
2973		break;
2974	}
2975
2976	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt tx completion num_msdus %d\n",
2977		   resp->data_tx_completion.num_msdus);
2978
2979	msdu_count = resp->data_tx_completion.num_msdus;
2980	msdus = resp->data_tx_completion.msdus;
2981	rssi_enabled = ath10k_is_rssi_enable(&ar->hw_params, resp);
2982
2983	if (rssi_enabled)
2984		htt_pad = ath10k_tx_data_rssi_get_pad_bytes(&ar->hw_params,
2985							    resp);
2986
2987	for (i = 0; i < msdu_count; i++) {
2988		msdu_id = msdus[i];
2989		tx_done.msdu_id = __le16_to_cpu(msdu_id);
2990
2991		if (rssi_enabled) {
2992			/* Total no of MSDUs should be even,
2993			 * if odd MSDUs are sent firmware fills
2994			 * last msdu id with 0xffff
2995			 */
2996			if (msdu_count & 0x01) {
2997				msdu_id = msdus[msdu_count +  i + 1 + htt_pad];
2998				tx_done.ack_rssi = __le16_to_cpu(msdu_id);
2999			} else {
3000				msdu_id = msdus[msdu_count +  i + htt_pad];
3001				tx_done.ack_rssi = __le16_to_cpu(msdu_id);
3002			}
3003		}
3004
3005		/* kfifo_put: In practice firmware shouldn't fire off per-CE
3006		 * interrupt and main interrupt (MSI/-X range case) for the same
3007		 * HTC service so it should be safe to use kfifo_put w/o lock.
3008		 *
3009		 * From kfifo_put() documentation:
3010		 *  Note that with only one concurrent reader and one concurrent
3011		 *  writer, you don't need extra locking to use these macro.
3012		 */
3013		if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL) {
3014			ath10k_txrx_tx_unref(htt, &tx_done);
3015		} else if (!kfifo_put(&htt->txdone_fifo, tx_done)) {
3016			ath10k_warn(ar, "txdone fifo overrun, msdu_id %d status %d\n",
3017				    tx_done.msdu_id, tx_done.status);
3018			ath10k_txrx_tx_unref(htt, &tx_done);
3019		}
3020	}
3021
3022	if (!(resp->data_tx_completion.flags2 & HTT_TX_CMPL_FLAG_PPDU_DURATION_PRESENT))
3023		return;
3024
3025	ppdu_info_offset = (msdu_count & 0x01) ? msdu_count + 1 : msdu_count;
3026
3027	if (rssi_enabled)
3028		ppdu_info_offset += ppdu_info_offset;
3029
3030	if (resp->data_tx_completion.flags2 &
3031	    (HTT_TX_CMPL_FLAG_PPID_PRESENT | HTT_TX_CMPL_FLAG_PA_PRESENT))
3032		ppdu_info_offset += 2;
3033
3034	ppdu_info = (struct htt_data_tx_compl_ppdu_dur *)&msdus[ppdu_info_offset];
3035	num_airtime_records = FIELD_GET(HTT_TX_COMPL_PPDU_DUR_INFO0_NUM_ENTRIES_MASK,
3036					__le32_to_cpu(ppdu_info->info0));
3037
3038	for (i = 0; i < num_airtime_records; i++) {
3039		struct htt_data_tx_ppdu_dur *ppdu_dur;
3040		u32 info0;
3041
3042		ppdu_dur = &ppdu_info->ppdu_dur[i];
3043		info0 = __le32_to_cpu(ppdu_dur->info0);
3044
3045		peer_id = FIELD_GET(HTT_TX_PPDU_DUR_INFO0_PEER_ID_MASK,
3046				    info0);
3047		rcu_read_lock();
3048		spin_lock_bh(&ar->data_lock);
3049
3050		peer = ath10k_peer_find_by_id(ar, peer_id);
3051		if (!peer || !peer->sta) {
3052			spin_unlock_bh(&ar->data_lock);
3053			rcu_read_unlock();
3054			continue;
3055		}
3056
3057		tid = FIELD_GET(HTT_TX_PPDU_DUR_INFO0_TID_MASK, info0) &
3058						IEEE80211_QOS_CTL_TID_MASK;
3059		tx_duration = __le32_to_cpu(ppdu_dur->tx_duration);
3060
3061		ieee80211_sta_register_airtime(peer->sta, tid, tx_duration, 0);
3062
3063		spin_unlock_bh(&ar->data_lock);
3064		rcu_read_unlock();
3065	}
3066}
3067
3068static void ath10k_htt_rx_addba(struct ath10k *ar, struct htt_resp *resp)
3069{
3070	struct htt_rx_addba *ev = &resp->rx_addba;
3071	struct ath10k_peer *peer;
3072	struct ath10k_vif *arvif;
3073	u16 info0, tid, peer_id;
3074
3075	info0 = __le16_to_cpu(ev->info0);
3076	tid = MS(info0, HTT_RX_BA_INFO0_TID);
3077	peer_id = MS(info0, HTT_RX_BA_INFO0_PEER_ID);
3078
3079	ath10k_dbg(ar, ATH10K_DBG_HTT,
3080		   "htt rx addba tid %u peer_id %u size %u\n",
3081		   tid, peer_id, ev->window_size);
3082
3083	spin_lock_bh(&ar->data_lock);
3084	peer = ath10k_peer_find_by_id(ar, peer_id);
3085	if (!peer) {
3086		ath10k_warn(ar, "received addba event for invalid peer_id: %u\n",
3087			    peer_id);
3088		spin_unlock_bh(&ar->data_lock);
3089		return;
3090	}
3091
3092	arvif = ath10k_get_arvif(ar, peer->vdev_id);
3093	if (!arvif) {
3094		ath10k_warn(ar, "received addba event for invalid vdev_id: %u\n",
3095			    peer->vdev_id);
3096		spin_unlock_bh(&ar->data_lock);
3097		return;
3098	}
3099
3100	ath10k_dbg(ar, ATH10K_DBG_HTT,
3101		   "htt rx start rx ba session sta %pM tid %u size %u\n",
3102		   peer->addr, tid, ev->window_size);
3103
3104	ieee80211_start_rx_ba_session_offl(arvif->vif, peer->addr, tid);
3105	spin_unlock_bh(&ar->data_lock);
3106}
3107
3108static void ath10k_htt_rx_delba(struct ath10k *ar, struct htt_resp *resp)
3109{
3110	struct htt_rx_delba *ev = &resp->rx_delba;
3111	struct ath10k_peer *peer;
3112	struct ath10k_vif *arvif;
3113	u16 info0, tid, peer_id;
3114
3115	info0 = __le16_to_cpu(ev->info0);
3116	tid = MS(info0, HTT_RX_BA_INFO0_TID);
3117	peer_id = MS(info0, HTT_RX_BA_INFO0_PEER_ID);
3118
3119	ath10k_dbg(ar, ATH10K_DBG_HTT,
3120		   "htt rx delba tid %u peer_id %u\n",
3121		   tid, peer_id);
3122
3123	spin_lock_bh(&ar->data_lock);
3124	peer = ath10k_peer_find_by_id(ar, peer_id);
3125	if (!peer) {
3126		ath10k_warn(ar, "received addba event for invalid peer_id: %u\n",
3127			    peer_id);
3128		spin_unlock_bh(&ar->data_lock);
3129		return;
3130	}
3131
3132	arvif = ath10k_get_arvif(ar, peer->vdev_id);
3133	if (!arvif) {
3134		ath10k_warn(ar, "received addba event for invalid vdev_id: %u\n",
3135			    peer->vdev_id);
3136		spin_unlock_bh(&ar->data_lock);
3137		return;
3138	}
3139
3140	ath10k_dbg(ar, ATH10K_DBG_HTT,
3141		   "htt rx stop rx ba session sta %pM tid %u\n",
3142		   peer->addr, tid);
3143
3144	ieee80211_stop_rx_ba_session_offl(arvif->vif, peer->addr, tid);
3145	spin_unlock_bh(&ar->data_lock);
3146}
3147
3148static int ath10k_htt_rx_extract_amsdu(struct ath10k_hw_params *hw,
3149				       struct sk_buff_head *list,
3150				       struct sk_buff_head *amsdu)
3151{
3152	struct sk_buff *msdu;
3153	struct htt_rx_desc *rxd;
3154	struct rx_msdu_end_common *rxd_msdu_end_common;
3155
3156	if (skb_queue_empty(list))
3157		return -ENOBUFS;
3158
3159	if (WARN_ON(!skb_queue_empty(amsdu)))
3160		return -EINVAL;
3161
3162	while ((msdu = __skb_dequeue(list))) {
3163		__skb_queue_tail(amsdu, msdu);
3164
3165		rxd = HTT_RX_BUF_TO_RX_DESC(hw,
3166					    (void *)msdu->data -
3167					    hw->rx_desc_ops->rx_desc_size);
3168
3169		rxd_msdu_end_common = ath10k_htt_rx_desc_get_msdu_end(hw, rxd);
3170		if (rxd_msdu_end_common->info0 &
3171		    __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU))
3172			break;
3173	}
3174
3175	msdu = skb_peek_tail(amsdu);
3176	rxd = HTT_RX_BUF_TO_RX_DESC(hw,
3177				    (void *)msdu->data - hw->rx_desc_ops->rx_desc_size);
3178
3179	rxd_msdu_end_common = ath10k_htt_rx_desc_get_msdu_end(hw, rxd);
3180	if (!(rxd_msdu_end_common->info0 &
3181	      __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU))) {
3182		skb_queue_splice_init(amsdu, list);
3183		return -EAGAIN;
3184	}
3185
3186	return 0;
3187}
3188
3189static void ath10k_htt_rx_h_rx_offload_prot(struct ieee80211_rx_status *status,
3190					    struct sk_buff *skb)
3191{
3192	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
3193
3194	if (!ieee80211_has_protected(hdr->frame_control))
3195		return;
3196
3197	/* Offloaded frames are already decrypted but firmware insists they are
3198	 * protected in the 802.11 header. Strip the flag.  Otherwise mac80211
3199	 * will drop the frame.
3200	 */
3201
3202	hdr->frame_control &= ~__cpu_to_le16(IEEE80211_FCTL_PROTECTED);
3203	status->flag |= RX_FLAG_DECRYPTED |
3204			RX_FLAG_IV_STRIPPED |
3205			RX_FLAG_MMIC_STRIPPED;
3206}
3207
3208static void ath10k_htt_rx_h_rx_offload(struct ath10k *ar,
3209				       struct sk_buff_head *list)
3210{
3211	struct ath10k_htt *htt = &ar->htt;
3212	struct ieee80211_rx_status *status = &htt->rx_status;
3213	struct htt_rx_offload_msdu *rx;
3214	struct sk_buff *msdu;
3215	size_t offset;
3216
3217	while ((msdu = __skb_dequeue(list))) {
3218		/* Offloaded frames don't have Rx descriptor. Instead they have
3219		 * a short meta information header.
3220		 */
3221
3222		rx = (void *)msdu->data;
3223
3224		skb_put(msdu, sizeof(*rx));
3225		skb_pull(msdu, sizeof(*rx));
3226
3227		if (skb_tailroom(msdu) < __le16_to_cpu(rx->msdu_len)) {
3228			ath10k_warn(ar, "dropping frame: offloaded rx msdu is too long!\n");
3229			dev_kfree_skb_any(msdu);
3230			continue;
3231		}
3232
3233		skb_put(msdu, __le16_to_cpu(rx->msdu_len));
3234
3235		/* Offloaded rx header length isn't multiple of 2 nor 4 so the
3236		 * actual payload is unaligned. Align the frame.  Otherwise
3237		 * mac80211 complains.  This shouldn't reduce performance much
3238		 * because these offloaded frames are rare.
3239		 */
3240		offset = 4 - ((unsigned long)msdu->data & 3);
3241		skb_put(msdu, offset);
3242		memmove(msdu->data + offset, msdu->data, msdu->len);
3243		skb_pull(msdu, offset);
3244
3245		/* FIXME: The frame is NWifi. Re-construct QoS Control
3246		 * if possible later.
3247		 */
3248
3249		memset(status, 0, sizeof(*status));
3250		status->flag |= RX_FLAG_NO_SIGNAL_VAL;
3251
3252		ath10k_htt_rx_h_rx_offload_prot(status, msdu);
3253		ath10k_htt_rx_h_channel(ar, status, NULL, rx->vdev_id);
3254		ath10k_htt_rx_h_queue_msdu(ar, status, msdu);
3255	}
3256}
3257
3258static int ath10k_htt_rx_in_ord_ind(struct ath10k *ar, struct sk_buff *skb)
3259{
3260	struct ath10k_htt *htt = &ar->htt;
3261	struct htt_resp *resp = (void *)skb->data;
3262	struct ieee80211_rx_status *status = &htt->rx_status;
3263	struct sk_buff_head list;
3264	struct sk_buff_head amsdu;
3265	u16 peer_id;
3266	u16 msdu_count;
3267	u8 vdev_id;
3268	u8 tid;
3269	bool offload;
3270	bool frag;
3271	int ret;
3272
3273	lockdep_assert_held(&htt->rx_ring.lock);
3274
3275	if (htt->rx_confused)
3276		return -EIO;
3277
3278	skb_pull(skb, sizeof(resp->hdr));
3279	skb_pull(skb, sizeof(resp->rx_in_ord_ind));
3280
3281	peer_id = __le16_to_cpu(resp->rx_in_ord_ind.peer_id);
3282	msdu_count = __le16_to_cpu(resp->rx_in_ord_ind.msdu_count);
3283	vdev_id = resp->rx_in_ord_ind.vdev_id;
3284	tid = SM(resp->rx_in_ord_ind.info, HTT_RX_IN_ORD_IND_INFO_TID);
3285	offload = !!(resp->rx_in_ord_ind.info &
3286			HTT_RX_IN_ORD_IND_INFO_OFFLOAD_MASK);
3287	frag = !!(resp->rx_in_ord_ind.info & HTT_RX_IN_ORD_IND_INFO_FRAG_MASK);
3288
3289	ath10k_dbg(ar, ATH10K_DBG_HTT,
3290		   "htt rx in ord vdev %i peer %i tid %i offload %i frag %i msdu count %i\n",
3291		   vdev_id, peer_id, tid, offload, frag, msdu_count);
3292
3293	if (skb->len < msdu_count * sizeof(*resp->rx_in_ord_ind.msdu_descs32)) {
3294		ath10k_warn(ar, "dropping invalid in order rx indication\n");
3295		return -EINVAL;
3296	}
3297
3298	/* The event can deliver more than 1 A-MSDU. Each A-MSDU is later
3299	 * extracted and processed.
3300	 */
3301	__skb_queue_head_init(&list);
3302	if (ar->hw_params.target_64bit)
3303		ret = ath10k_htt_rx_pop_paddr64_list(htt, &resp->rx_in_ord_ind,
3304						     &list);
3305	else
3306		ret = ath10k_htt_rx_pop_paddr32_list(htt, &resp->rx_in_ord_ind,
3307						     &list);
3308
3309	if (ret < 0) {
3310		ath10k_warn(ar, "failed to pop paddr list: %d\n", ret);
3311		htt->rx_confused = true;
3312		return -EIO;
3313	}
3314
3315	/* Offloaded frames are very different and need to be handled
3316	 * separately.
3317	 */
3318	if (offload)
3319		ath10k_htt_rx_h_rx_offload(ar, &list);
3320
3321	while (!skb_queue_empty(&list)) {
3322		__skb_queue_head_init(&amsdu);
3323		ret = ath10k_htt_rx_extract_amsdu(&ar->hw_params, &list, &amsdu);
3324		switch (ret) {
3325		case 0:
3326			/* Note: The in-order indication may report interleaved
3327			 * frames from different PPDUs meaning reported rx rate
3328			 * to mac80211 isn't accurate/reliable. It's still
3329			 * better to report something than nothing though. This
3330			 * should still give an idea about rx rate to the user.
3331			 */
3332			ath10k_htt_rx_h_ppdu(ar, &amsdu, status, vdev_id);
3333			ath10k_htt_rx_h_filter(ar, &amsdu, status, NULL);
3334			ath10k_htt_rx_h_mpdu(ar, &amsdu, status, false, NULL,
3335					     NULL, peer_id, frag);
3336			ath10k_htt_rx_h_enqueue(ar, &amsdu, status);
3337			break;
3338		case -EAGAIN:
3339			fallthrough;
3340		default:
3341			/* Should not happen. */
3342			ath10k_warn(ar, "failed to extract amsdu: %d\n", ret);
3343			htt->rx_confused = true;
3344			__skb_queue_purge(&list);
3345			return -EIO;
3346		}
3347	}
3348	return ret;
3349}
3350
3351static void ath10k_htt_rx_tx_fetch_resp_id_confirm(struct ath10k *ar,
3352						   const __le32 *resp_ids,
3353						   int num_resp_ids)
3354{
3355	int i;
3356	u32 resp_id;
3357
3358	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch confirm num_resp_ids %d\n",
3359		   num_resp_ids);
3360
3361	for (i = 0; i < num_resp_ids; i++) {
3362		resp_id = le32_to_cpu(resp_ids[i]);
3363
3364		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch confirm resp_id %u\n",
3365			   resp_id);
3366
3367		/* TODO: free resp_id */
3368	}
3369}
3370
3371static void ath10k_htt_rx_tx_fetch_ind(struct ath10k *ar, struct sk_buff *skb)
3372{
3373	struct ieee80211_hw *hw = ar->hw;
3374	struct ieee80211_txq *txq;
3375	struct htt_resp *resp = (struct htt_resp *)skb->data;
3376	struct htt_tx_fetch_record *record;
3377	size_t len;
3378	size_t max_num_bytes;
3379	size_t max_num_msdus;
3380	size_t num_bytes;
3381	size_t num_msdus;
3382	const __le32 *resp_ids;
3383	u16 num_records;
3384	u16 num_resp_ids;
3385	u16 peer_id;
3386	u8 tid;
3387	int ret;
3388	int i;
3389	bool may_tx;
3390
3391	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch ind\n");
3392
3393	len = sizeof(resp->hdr) + sizeof(resp->tx_fetch_ind);
3394	if (unlikely(skb->len < len)) {
3395		ath10k_warn(ar, "received corrupted tx_fetch_ind event: buffer too short\n");
3396		return;
3397	}
3398
3399	num_records = le16_to_cpu(resp->tx_fetch_ind.num_records);
3400	num_resp_ids = le16_to_cpu(resp->tx_fetch_ind.num_resp_ids);
3401
3402	len += sizeof(resp->tx_fetch_ind.records[0]) * num_records;
3403	len += sizeof(resp->tx_fetch_ind.resp_ids[0]) * num_resp_ids;
3404
3405	if (unlikely(skb->len < len)) {
3406		ath10k_warn(ar, "received corrupted tx_fetch_ind event: too many records/resp_ids\n");
3407		return;
3408	}
3409
3410	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch ind num records %u num resps %u seq %u\n",
3411		   num_records, num_resp_ids,
3412		   le16_to_cpu(resp->tx_fetch_ind.fetch_seq_num));
3413
3414	if (!ar->htt.tx_q_state.enabled) {
3415		ath10k_warn(ar, "received unexpected tx_fetch_ind event: not enabled\n");
3416		return;
3417	}
3418
3419	if (ar->htt.tx_q_state.mode == HTT_TX_MODE_SWITCH_PUSH) {
3420		ath10k_warn(ar, "received unexpected tx_fetch_ind event: in push mode\n");
3421		return;
3422	}
3423
3424	rcu_read_lock();
3425
3426	for (i = 0; i < num_records; i++) {
3427		record = &resp->tx_fetch_ind.records[i];
3428		peer_id = MS(le16_to_cpu(record->info),
3429			     HTT_TX_FETCH_RECORD_INFO_PEER_ID);
3430		tid = MS(le16_to_cpu(record->info),
3431			 HTT_TX_FETCH_RECORD_INFO_TID);
3432		max_num_msdus = le16_to_cpu(record->num_msdus);
3433		max_num_bytes = le32_to_cpu(record->num_bytes);
3434
3435		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch record %i peer_id %u tid %u msdus %zu bytes %zu\n",
3436			   i, peer_id, tid, max_num_msdus, max_num_bytes);
3437
3438		if (unlikely(peer_id >= ar->htt.tx_q_state.num_peers) ||
3439		    unlikely(tid >= ar->htt.tx_q_state.num_tids)) {
3440			ath10k_warn(ar, "received out of range peer_id %u tid %u\n",
3441				    peer_id, tid);
3442			continue;
3443		}
3444
3445		spin_lock_bh(&ar->data_lock);
3446		txq = ath10k_mac_txq_lookup(ar, peer_id, tid);
3447		spin_unlock_bh(&ar->data_lock);
3448
3449		/* It is okay to release the lock and use txq because RCU read
3450		 * lock is held.
3451		 */
3452
3453		if (unlikely(!txq)) {
3454			ath10k_warn(ar, "failed to lookup txq for peer_id %u tid %u\n",
3455				    peer_id, tid);
3456			continue;
3457		}
3458
3459		num_msdus = 0;
3460		num_bytes = 0;
3461
3462		ieee80211_txq_schedule_start(hw, txq->ac);
3463		may_tx = ieee80211_txq_may_transmit(hw, txq);
3464		while (num_msdus < max_num_msdus &&
3465		       num_bytes < max_num_bytes) {
3466			if (!may_tx)
3467				break;
3468
3469			ret = ath10k_mac_tx_push_txq(hw, txq);
3470			if (ret < 0)
3471				break;
3472
3473			num_msdus++;
3474			num_bytes += ret;
3475		}
3476		ieee80211_return_txq(hw, txq, false);
3477		ieee80211_txq_schedule_end(hw, txq->ac);
3478
3479		record->num_msdus = cpu_to_le16(num_msdus);
3480		record->num_bytes = cpu_to_le32(num_bytes);
3481
3482		ath10k_htt_tx_txq_recalc(hw, txq);
3483	}
3484
3485	rcu_read_unlock();
3486
3487	resp_ids = ath10k_htt_get_tx_fetch_ind_resp_ids(&resp->tx_fetch_ind);
3488	ath10k_htt_rx_tx_fetch_resp_id_confirm(ar, resp_ids, num_resp_ids);
3489
3490	ret = ath10k_htt_tx_fetch_resp(ar,
3491				       resp->tx_fetch_ind.token,
3492				       resp->tx_fetch_ind.fetch_seq_num,
3493				       resp->tx_fetch_ind.records,
3494				       num_records);
3495	if (unlikely(ret)) {
3496		ath10k_warn(ar, "failed to submit tx fetch resp for token 0x%08x: %d\n",
3497			    le32_to_cpu(resp->tx_fetch_ind.token), ret);
3498		/* FIXME: request fw restart */
3499	}
3500
3501	ath10k_htt_tx_txq_sync(ar);
3502}
3503
3504static void ath10k_htt_rx_tx_fetch_confirm(struct ath10k *ar,
3505					   struct sk_buff *skb)
3506{
3507	const struct htt_resp *resp = (void *)skb->data;
3508	size_t len;
3509	int num_resp_ids;
3510
3511	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch confirm\n");
3512
3513	len = sizeof(resp->hdr) + sizeof(resp->tx_fetch_confirm);
3514	if (unlikely(skb->len < len)) {
3515		ath10k_warn(ar, "received corrupted tx_fetch_confirm event: buffer too short\n");
3516		return;
3517	}
3518
3519	num_resp_ids = le16_to_cpu(resp->tx_fetch_confirm.num_resp_ids);
3520	len += sizeof(resp->tx_fetch_confirm.resp_ids[0]) * num_resp_ids;
3521
3522	if (unlikely(skb->len < len)) {
3523		ath10k_warn(ar, "received corrupted tx_fetch_confirm event: resp_ids buffer overflow\n");
3524		return;
3525	}
3526
3527	ath10k_htt_rx_tx_fetch_resp_id_confirm(ar,
3528					       resp->tx_fetch_confirm.resp_ids,
3529					       num_resp_ids);
3530}
3531
3532static void ath10k_htt_rx_tx_mode_switch_ind(struct ath10k *ar,
3533					     struct sk_buff *skb)
3534{
3535	const struct htt_resp *resp = (void *)skb->data;
3536	const struct htt_tx_mode_switch_record *record;
3537	struct ieee80211_txq *txq;
3538	struct ath10k_txq *artxq;
3539	size_t len;
3540	size_t num_records;
3541	enum htt_tx_mode_switch_mode mode;
3542	bool enable;
3543	u16 info0;
3544	u16 info1;
3545	u16 threshold;
3546	u16 peer_id;
3547	u8 tid;
3548	int i;
3549
3550	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx mode switch ind\n");
3551
3552	len = sizeof(resp->hdr) + sizeof(resp->tx_mode_switch_ind);
3553	if (unlikely(skb->len < len)) {
3554		ath10k_warn(ar, "received corrupted tx_mode_switch_ind event: buffer too short\n");
3555		return;
3556	}
3557
3558	info0 = le16_to_cpu(resp->tx_mode_switch_ind.info0);
3559	info1 = le16_to_cpu(resp->tx_mode_switch_ind.info1);
3560
3561	enable = !!(info0 & HTT_TX_MODE_SWITCH_IND_INFO0_ENABLE);
3562	num_records = MS(info0, HTT_TX_MODE_SWITCH_IND_INFO1_THRESHOLD);
3563	mode = MS(info1, HTT_TX_MODE_SWITCH_IND_INFO1_MODE);
3564	threshold = MS(info1, HTT_TX_MODE_SWITCH_IND_INFO1_THRESHOLD);
3565
3566	ath10k_dbg(ar, ATH10K_DBG_HTT,
3567		   "htt rx tx mode switch ind info0 0x%04x info1 0x%04x enable %d num records %zd mode %d threshold %u\n",
3568		   info0, info1, enable, num_records, mode, threshold);
3569
3570	len += sizeof(resp->tx_mode_switch_ind.records[0]) * num_records;
3571
3572	if (unlikely(skb->len < len)) {
3573		ath10k_warn(ar, "received corrupted tx_mode_switch_mode_ind event: too many records\n");
3574		return;
3575	}
3576
3577	switch (mode) {
3578	case HTT_TX_MODE_SWITCH_PUSH:
3579	case HTT_TX_MODE_SWITCH_PUSH_PULL:
3580		break;
3581	default:
3582		ath10k_warn(ar, "received invalid tx_mode_switch_mode_ind mode %d, ignoring\n",
3583			    mode);
3584		return;
3585	}
3586
3587	if (!enable)
3588		return;
3589
3590	ar->htt.tx_q_state.enabled = enable;
3591	ar->htt.tx_q_state.mode = mode;
3592	ar->htt.tx_q_state.num_push_allowed = threshold;
3593
3594	rcu_read_lock();
3595
3596	for (i = 0; i < num_records; i++) {
3597		record = &resp->tx_mode_switch_ind.records[i];
3598		info0 = le16_to_cpu(record->info0);
3599		peer_id = MS(info0, HTT_TX_MODE_SWITCH_RECORD_INFO0_PEER_ID);
3600		tid = MS(info0, HTT_TX_MODE_SWITCH_RECORD_INFO0_TID);
3601
3602		if (unlikely(peer_id >= ar->htt.tx_q_state.num_peers) ||
3603		    unlikely(tid >= ar->htt.tx_q_state.num_tids)) {
3604			ath10k_warn(ar, "received out of range peer_id %u tid %u\n",
3605				    peer_id, tid);
3606			continue;
3607		}
3608
3609		spin_lock_bh(&ar->data_lock);
3610		txq = ath10k_mac_txq_lookup(ar, peer_id, tid);
3611		spin_unlock_bh(&ar->data_lock);
3612
3613		/* It is okay to release the lock and use txq because RCU read
3614		 * lock is held.
3615		 */
3616
3617		if (unlikely(!txq)) {
3618			ath10k_warn(ar, "failed to lookup txq for peer_id %u tid %u\n",
3619				    peer_id, tid);
3620			continue;
3621		}
3622
3623		spin_lock_bh(&ar->htt.tx_lock);
3624		artxq = (void *)txq->drv_priv;
3625		artxq->num_push_allowed = le16_to_cpu(record->num_max_msdus);
3626		spin_unlock_bh(&ar->htt.tx_lock);
3627	}
3628
3629	rcu_read_unlock();
3630
3631	ath10k_mac_tx_push_pending(ar);
3632}
3633
3634void ath10k_htt_htc_t2h_msg_handler(struct ath10k *ar, struct sk_buff *skb)
3635{
3636	bool release;
3637
3638	release = ath10k_htt_t2h_msg_handler(ar, skb);
3639
3640	/* Free the indication buffer */
3641	if (release)
3642		dev_kfree_skb_any(skb);
3643}
3644
3645static inline s8 ath10k_get_legacy_rate_idx(struct ath10k *ar, u8 rate)
3646{
3647	static const u8 legacy_rates[] = {1, 2, 5, 11, 6, 9, 12,
3648					  18, 24, 36, 48, 54};
3649	int i;
3650
3651	for (i = 0; i < ARRAY_SIZE(legacy_rates); i++) {
3652		if (rate == legacy_rates[i])
3653			return i;
3654	}
3655
3656	ath10k_warn(ar, "Invalid legacy rate %d peer stats", rate);
3657	return -EINVAL;
3658}
3659
3660static void
3661ath10k_accumulate_per_peer_tx_stats(struct ath10k *ar,
3662				    struct ath10k_sta *arsta,
3663				    struct ath10k_per_peer_tx_stats *pstats,
3664				    s8 legacy_rate_idx)
3665{
3666	struct rate_info *txrate = &arsta->txrate;
3667	struct ath10k_htt_tx_stats *tx_stats;
3668	int idx, ht_idx, gi, mcs, bw, nss;
3669	unsigned long flags;
3670
3671	if (!arsta->tx_stats)
3672		return;
3673
3674	tx_stats = arsta->tx_stats;
3675	flags = txrate->flags;
3676	gi = test_bit(ATH10K_RATE_INFO_FLAGS_SGI_BIT, &flags);
3677	mcs = ATH10K_HW_MCS_RATE(pstats->ratecode);
3678	bw = txrate->bw;
3679	nss = txrate->nss;
3680	ht_idx = mcs + (nss - 1) * 8;
3681	idx = mcs * 8 + 8 * 10 * (nss - 1);
3682	idx += bw * 2 + gi;
3683
3684#define STATS_OP_FMT(name) tx_stats->stats[ATH10K_STATS_TYPE_##name]
3685
3686	if (txrate->flags & RATE_INFO_FLAGS_VHT_MCS) {
3687		STATS_OP_FMT(SUCC).vht[0][mcs] += pstats->succ_bytes;
3688		STATS_OP_FMT(SUCC).vht[1][mcs] += pstats->succ_pkts;
3689		STATS_OP_FMT(FAIL).vht[0][mcs] += pstats->failed_bytes;
3690		STATS_OP_FMT(FAIL).vht[1][mcs] += pstats->failed_pkts;
3691		STATS_OP_FMT(RETRY).vht[0][mcs] += pstats->retry_bytes;
3692		STATS_OP_FMT(RETRY).vht[1][mcs] += pstats->retry_pkts;
3693	} else if (txrate->flags & RATE_INFO_FLAGS_MCS) {
3694		STATS_OP_FMT(SUCC).ht[0][ht_idx] += pstats->succ_bytes;
3695		STATS_OP_FMT(SUCC).ht[1][ht_idx] += pstats->succ_pkts;
3696		STATS_OP_FMT(FAIL).ht[0][ht_idx] += pstats->failed_bytes;
3697		STATS_OP_FMT(FAIL).ht[1][ht_idx] += pstats->failed_pkts;
3698		STATS_OP_FMT(RETRY).ht[0][ht_idx] += pstats->retry_bytes;
3699		STATS_OP_FMT(RETRY).ht[1][ht_idx] += pstats->retry_pkts;
3700	} else {
3701		mcs = legacy_rate_idx;
3702
3703		STATS_OP_FMT(SUCC).legacy[0][mcs] += pstats->succ_bytes;
3704		STATS_OP_FMT(SUCC).legacy[1][mcs] += pstats->succ_pkts;
3705		STATS_OP_FMT(FAIL).legacy[0][mcs] += pstats->failed_bytes;
3706		STATS_OP_FMT(FAIL).legacy[1][mcs] += pstats->failed_pkts;
3707		STATS_OP_FMT(RETRY).legacy[0][mcs] += pstats->retry_bytes;
3708		STATS_OP_FMT(RETRY).legacy[1][mcs] += pstats->retry_pkts;
3709	}
3710
3711	if (ATH10K_HW_AMPDU(pstats->flags)) {
3712		tx_stats->ba_fails += ATH10K_HW_BA_FAIL(pstats->flags);
3713
3714		if (txrate->flags & RATE_INFO_FLAGS_MCS) {
3715			STATS_OP_FMT(AMPDU).ht[0][ht_idx] +=
3716				pstats->succ_bytes + pstats->retry_bytes;
3717			STATS_OP_FMT(AMPDU).ht[1][ht_idx] +=
3718				pstats->succ_pkts + pstats->retry_pkts;
3719		} else {
3720			STATS_OP_FMT(AMPDU).vht[0][mcs] +=
3721				pstats->succ_bytes + pstats->retry_bytes;
3722			STATS_OP_FMT(AMPDU).vht[1][mcs] +=
3723				pstats->succ_pkts + pstats->retry_pkts;
3724		}
3725		STATS_OP_FMT(AMPDU).bw[0][bw] +=
3726			pstats->succ_bytes + pstats->retry_bytes;
3727		STATS_OP_FMT(AMPDU).nss[0][nss - 1] +=
3728			pstats->succ_bytes + pstats->retry_bytes;
3729		STATS_OP_FMT(AMPDU).gi[0][gi] +=
3730			pstats->succ_bytes + pstats->retry_bytes;
3731		STATS_OP_FMT(AMPDU).rate_table[0][idx] +=
3732			pstats->succ_bytes + pstats->retry_bytes;
3733		STATS_OP_FMT(AMPDU).bw[1][bw] +=
3734			pstats->succ_pkts + pstats->retry_pkts;
3735		STATS_OP_FMT(AMPDU).nss[1][nss - 1] +=
3736			pstats->succ_pkts + pstats->retry_pkts;
3737		STATS_OP_FMT(AMPDU).gi[1][gi] +=
3738			pstats->succ_pkts + pstats->retry_pkts;
3739		STATS_OP_FMT(AMPDU).rate_table[1][idx] +=
3740			pstats->succ_pkts + pstats->retry_pkts;
3741	} else {
3742		tx_stats->ack_fails +=
3743				ATH10K_HW_BA_FAIL(pstats->flags);
3744	}
3745
3746	STATS_OP_FMT(SUCC).bw[0][bw] += pstats->succ_bytes;
3747	STATS_OP_FMT(SUCC).nss[0][nss - 1] += pstats->succ_bytes;
3748	STATS_OP_FMT(SUCC).gi[0][gi] += pstats->succ_bytes;
3749
3750	STATS_OP_FMT(SUCC).bw[1][bw] += pstats->succ_pkts;
3751	STATS_OP_FMT(SUCC).nss[1][nss - 1] += pstats->succ_pkts;
3752	STATS_OP_FMT(SUCC).gi[1][gi] += pstats->succ_pkts;
3753
3754	STATS_OP_FMT(FAIL).bw[0][bw] += pstats->failed_bytes;
3755	STATS_OP_FMT(FAIL).nss[0][nss - 1] += pstats->failed_bytes;
3756	STATS_OP_FMT(FAIL).gi[0][gi] += pstats->failed_bytes;
3757
3758	STATS_OP_FMT(FAIL).bw[1][bw] += pstats->failed_pkts;
3759	STATS_OP_FMT(FAIL).nss[1][nss - 1] += pstats->failed_pkts;
3760	STATS_OP_FMT(FAIL).gi[1][gi] += pstats->failed_pkts;
3761
3762	STATS_OP_FMT(RETRY).bw[0][bw] += pstats->retry_bytes;
3763	STATS_OP_FMT(RETRY).nss[0][nss - 1] += pstats->retry_bytes;
3764	STATS_OP_FMT(RETRY).gi[0][gi] += pstats->retry_bytes;
3765
3766	STATS_OP_FMT(RETRY).bw[1][bw] += pstats->retry_pkts;
3767	STATS_OP_FMT(RETRY).nss[1][nss - 1] += pstats->retry_pkts;
3768	STATS_OP_FMT(RETRY).gi[1][gi] += pstats->retry_pkts;
3769
3770	if (txrate->flags >= RATE_INFO_FLAGS_MCS) {
3771		STATS_OP_FMT(SUCC).rate_table[0][idx] += pstats->succ_bytes;
3772		STATS_OP_FMT(SUCC).rate_table[1][idx] += pstats->succ_pkts;
3773		STATS_OP_FMT(FAIL).rate_table[0][idx] += pstats->failed_bytes;
3774		STATS_OP_FMT(FAIL).rate_table[1][idx] += pstats->failed_pkts;
3775		STATS_OP_FMT(RETRY).rate_table[0][idx] += pstats->retry_bytes;
3776		STATS_OP_FMT(RETRY).rate_table[1][idx] += pstats->retry_pkts;
3777	}
3778
3779	tx_stats->tx_duration += pstats->duration;
3780}
3781
3782static void
3783ath10k_update_per_peer_tx_stats(struct ath10k *ar,
3784				struct ieee80211_sta *sta,
3785				struct ath10k_per_peer_tx_stats *peer_stats)
3786{
3787	struct ath10k_sta *arsta = (struct ath10k_sta *)sta->drv_priv;
3788	struct ieee80211_chanctx_conf *conf = NULL;
3789	u8 rate = 0, sgi;
3790	s8 rate_idx = 0;
3791	bool skip_auto_rate;
3792	struct rate_info txrate;
3793
3794	lockdep_assert_held(&ar->data_lock);
3795
3796	txrate.flags = ATH10K_HW_PREAMBLE(peer_stats->ratecode);
3797	txrate.bw = ATH10K_HW_BW(peer_stats->flags);
3798	txrate.nss = ATH10K_HW_NSS(peer_stats->ratecode);
3799	txrate.mcs = ATH10K_HW_MCS_RATE(peer_stats->ratecode);
3800	sgi = ATH10K_HW_GI(peer_stats->flags);
3801	skip_auto_rate = ATH10K_FW_SKIPPED_RATE_CTRL(peer_stats->flags);
3802
3803	/* Firmware's rate control skips broadcast/management frames,
3804	 * if host has configure fixed rates and in some other special cases.
3805	 */
3806	if (skip_auto_rate)
3807		return;
3808
3809	if (txrate.flags == WMI_RATE_PREAMBLE_VHT && txrate.mcs > 9) {
3810		ath10k_warn(ar, "Invalid VHT mcs %d peer stats",  txrate.mcs);
3811		return;
3812	}
3813
3814	if (txrate.flags == WMI_RATE_PREAMBLE_HT &&
3815	    (txrate.mcs > 7 || txrate.nss < 1)) {
3816		ath10k_warn(ar, "Invalid HT mcs %d nss %d peer stats",
3817			    txrate.mcs, txrate.nss);
3818		return;
3819	}
3820
3821	memset(&arsta->txrate, 0, sizeof(arsta->txrate));
3822	memset(&arsta->tx_info.status, 0, sizeof(arsta->tx_info.status));
3823	if (txrate.flags == WMI_RATE_PREAMBLE_CCK ||
3824	    txrate.flags == WMI_RATE_PREAMBLE_OFDM) {
3825		rate = ATH10K_HW_LEGACY_RATE(peer_stats->ratecode);
3826		/* This is hacky, FW sends CCK rate 5.5Mbps as 6 */
3827		if (rate == 6 && txrate.flags == WMI_RATE_PREAMBLE_CCK)
3828			rate = 5;
3829		rate_idx = ath10k_get_legacy_rate_idx(ar, rate);
3830		if (rate_idx < 0)
3831			return;
3832		arsta->txrate.legacy = rate;
3833	} else if (txrate.flags == WMI_RATE_PREAMBLE_HT) {
3834		arsta->txrate.flags = RATE_INFO_FLAGS_MCS;
3835		arsta->txrate.mcs = txrate.mcs + 8 * (txrate.nss - 1);
3836	} else {
3837		arsta->txrate.flags = RATE_INFO_FLAGS_VHT_MCS;
3838		arsta->txrate.mcs = txrate.mcs;
3839	}
3840
3841	switch (txrate.flags) {
3842	case WMI_RATE_PREAMBLE_OFDM:
3843		if (arsta->arvif && arsta->arvif->vif)
3844			conf = rcu_dereference(arsta->arvif->vif->bss_conf.chanctx_conf);
3845		if (conf && conf->def.chan->band == NL80211_BAND_5GHZ)
3846			arsta->tx_info.status.rates[0].idx = rate_idx - 4;
3847		break;
3848	case WMI_RATE_PREAMBLE_CCK:
3849		arsta->tx_info.status.rates[0].idx = rate_idx;
3850		if (sgi)
3851			arsta->tx_info.status.rates[0].flags |=
3852				(IEEE80211_TX_RC_USE_SHORT_PREAMBLE |
3853				 IEEE80211_TX_RC_SHORT_GI);
3854		break;
3855	case WMI_RATE_PREAMBLE_HT:
3856		arsta->tx_info.status.rates[0].idx =
3857				txrate.mcs + ((txrate.nss - 1) * 8);
3858		if (sgi)
3859			arsta->tx_info.status.rates[0].flags |=
3860					IEEE80211_TX_RC_SHORT_GI;
3861		arsta->tx_info.status.rates[0].flags |= IEEE80211_TX_RC_MCS;
3862		break;
3863	case WMI_RATE_PREAMBLE_VHT:
3864		ieee80211_rate_set_vht(&arsta->tx_info.status.rates[0],
3865				       txrate.mcs, txrate.nss);
3866		if (sgi)
3867			arsta->tx_info.status.rates[0].flags |=
3868						IEEE80211_TX_RC_SHORT_GI;
3869		arsta->tx_info.status.rates[0].flags |= IEEE80211_TX_RC_VHT_MCS;
3870		break;
3871	}
3872
3873	arsta->txrate.nss = txrate.nss;
3874	arsta->txrate.bw = ath10k_bw_to_mac80211_bw(txrate.bw);
3875	arsta->last_tx_bitrate = cfg80211_calculate_bitrate(&arsta->txrate);
3876	if (sgi)
3877		arsta->txrate.flags |= RATE_INFO_FLAGS_SHORT_GI;
3878
3879	switch (arsta->txrate.bw) {
3880	case RATE_INFO_BW_40:
3881		arsta->tx_info.status.rates[0].flags |=
3882				IEEE80211_TX_RC_40_MHZ_WIDTH;
3883		break;
3884	case RATE_INFO_BW_80:
3885		arsta->tx_info.status.rates[0].flags |=
3886				IEEE80211_TX_RC_80_MHZ_WIDTH;
3887		break;
3888	case RATE_INFO_BW_160:
3889		arsta->tx_info.status.rates[0].flags |=
3890				IEEE80211_TX_RC_160_MHZ_WIDTH;
3891		break;
3892	}
3893
3894	if (peer_stats->succ_pkts) {
3895		arsta->tx_info.flags = IEEE80211_TX_STAT_ACK;
3896		arsta->tx_info.status.rates[0].count = 1;
3897		ieee80211_tx_rate_update(ar->hw, sta, &arsta->tx_info);
3898	}
3899
3900	if (ar->htt.disable_tx_comp) {
3901		arsta->tx_failed += peer_stats->failed_pkts;
3902		ath10k_dbg(ar, ATH10K_DBG_HTT, "tx failed %d\n",
3903			   arsta->tx_failed);
3904	}
3905
3906	arsta->tx_retries += peer_stats->retry_pkts;
3907	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt tx retries %d", arsta->tx_retries);
3908
3909	if (ath10k_debug_is_extd_tx_stats_enabled(ar))
3910		ath10k_accumulate_per_peer_tx_stats(ar, arsta, peer_stats,
3911						    rate_idx);
3912}
3913
3914static void ath10k_htt_fetch_peer_stats(struct ath10k *ar,
3915					struct sk_buff *skb)
3916{
3917	struct htt_resp *resp = (struct htt_resp *)skb->data;
3918	struct ath10k_per_peer_tx_stats *p_tx_stats = &ar->peer_tx_stats;
3919	struct htt_per_peer_tx_stats_ind *tx_stats;
3920	struct ieee80211_sta *sta;
3921	struct ath10k_peer *peer;
3922	int peer_id, i;
3923	u8 ppdu_len, num_ppdu;
3924
3925	num_ppdu = resp->peer_tx_stats.num_ppdu;
3926	ppdu_len = resp->peer_tx_stats.ppdu_len * sizeof(__le32);
3927
3928	if (skb->len < sizeof(struct htt_resp_hdr) + num_ppdu * ppdu_len) {
3929		ath10k_warn(ar, "Invalid peer stats buf length %d\n", skb->len);
3930		return;
3931	}
3932
3933	tx_stats = (struct htt_per_peer_tx_stats_ind *)
3934			(resp->peer_tx_stats.payload);
3935	peer_id = __le16_to_cpu(tx_stats->peer_id);
3936
3937	rcu_read_lock();
3938	spin_lock_bh(&ar->data_lock);
3939	peer = ath10k_peer_find_by_id(ar, peer_id);
3940	if (!peer || !peer->sta) {
3941		ath10k_warn(ar, "Invalid peer id %d peer stats buffer\n",
3942			    peer_id);
3943		goto out;
3944	}
3945
3946	sta = peer->sta;
3947	for (i = 0; i < num_ppdu; i++) {
3948		tx_stats = (struct htt_per_peer_tx_stats_ind *)
3949			   (resp->peer_tx_stats.payload + i * ppdu_len);
3950
3951		p_tx_stats->succ_bytes = __le32_to_cpu(tx_stats->succ_bytes);
3952		p_tx_stats->retry_bytes = __le32_to_cpu(tx_stats->retry_bytes);
3953		p_tx_stats->failed_bytes =
3954				__le32_to_cpu(tx_stats->failed_bytes);
3955		p_tx_stats->ratecode = tx_stats->ratecode;
3956		p_tx_stats->flags = tx_stats->flags;
3957		p_tx_stats->succ_pkts = __le16_to_cpu(tx_stats->succ_pkts);
3958		p_tx_stats->retry_pkts = __le16_to_cpu(tx_stats->retry_pkts);
3959		p_tx_stats->failed_pkts = __le16_to_cpu(tx_stats->failed_pkts);
3960		p_tx_stats->duration = __le16_to_cpu(tx_stats->tx_duration);
3961
3962		ath10k_update_per_peer_tx_stats(ar, sta, p_tx_stats);
3963	}
3964
3965out:
3966	spin_unlock_bh(&ar->data_lock);
3967	rcu_read_unlock();
3968}
3969
3970static void ath10k_fetch_10_2_tx_stats(struct ath10k *ar, u8 *data)
3971{
3972	struct ath10k_pktlog_hdr *hdr = (struct ath10k_pktlog_hdr *)data;
3973	struct ath10k_per_peer_tx_stats *p_tx_stats = &ar->peer_tx_stats;
3974	struct ath10k_10_2_peer_tx_stats *tx_stats;
3975	struct ieee80211_sta *sta;
3976	struct ath10k_peer *peer;
3977	u16 log_type = __le16_to_cpu(hdr->log_type);
3978	u32 peer_id = 0, i;
3979
3980	if (log_type != ATH_PKTLOG_TYPE_TX_STAT)
3981		return;
3982
3983	tx_stats = (struct ath10k_10_2_peer_tx_stats *)((hdr->payload) +
3984		    ATH10K_10_2_TX_STATS_OFFSET);
3985
3986	if (!tx_stats->tx_ppdu_cnt)
3987		return;
3988
3989	peer_id = tx_stats->peer_id;
3990
3991	rcu_read_lock();
3992	spin_lock_bh(&ar->data_lock);
3993	peer = ath10k_peer_find_by_id(ar, peer_id);
3994	if (!peer || !peer->sta) {
3995		ath10k_warn(ar, "Invalid peer id %d in peer stats buffer\n",
3996			    peer_id);
3997		goto out;
3998	}
3999
4000	sta = peer->sta;
4001	for (i = 0; i < tx_stats->tx_ppdu_cnt; i++) {
4002		p_tx_stats->succ_bytes =
4003			__le16_to_cpu(tx_stats->success_bytes[i]);
4004		p_tx_stats->retry_bytes =
4005			__le16_to_cpu(tx_stats->retry_bytes[i]);
4006		p_tx_stats->failed_bytes =
4007			__le16_to_cpu(tx_stats->failed_bytes[i]);
4008		p_tx_stats->ratecode = tx_stats->ratecode[i];
4009		p_tx_stats->flags = tx_stats->flags[i];
4010		p_tx_stats->succ_pkts = tx_stats->success_pkts[i];
4011		p_tx_stats->retry_pkts = tx_stats->retry_pkts[i];
4012		p_tx_stats->failed_pkts = tx_stats->failed_pkts[i];
4013
4014		ath10k_update_per_peer_tx_stats(ar, sta, p_tx_stats);
4015	}
4016	spin_unlock_bh(&ar->data_lock);
4017	rcu_read_unlock();
4018
4019	return;
4020
4021out:
4022	spin_unlock_bh(&ar->data_lock);
4023	rcu_read_unlock();
4024}
4025
4026static int ath10k_htt_rx_pn_len(enum htt_security_types sec_type)
4027{
4028	switch (sec_type) {
4029	case HTT_SECURITY_TKIP:
4030	case HTT_SECURITY_TKIP_NOMIC:
4031	case HTT_SECURITY_AES_CCMP:
4032		return 48;
4033	default:
4034		return 0;
4035	}
4036}
4037
4038static void ath10k_htt_rx_sec_ind_handler(struct ath10k *ar,
4039					  struct htt_security_indication *ev)
4040{
4041	enum htt_txrx_sec_cast_type sec_index;
4042	enum htt_security_types sec_type;
4043	struct ath10k_peer *peer;
4044
4045	spin_lock_bh(&ar->data_lock);
4046
4047	peer = ath10k_peer_find_by_id(ar, __le16_to_cpu(ev->peer_id));
4048	if (!peer) {
4049		ath10k_warn(ar, "failed to find peer id %d for security indication",
4050			    __le16_to_cpu(ev->peer_id));
4051		goto out;
4052	}
4053
4054	sec_type = MS(ev->flags, HTT_SECURITY_TYPE);
4055
4056	if (ev->flags & HTT_SECURITY_IS_UNICAST)
4057		sec_index = HTT_TXRX_SEC_UCAST;
4058	else
4059		sec_index = HTT_TXRX_SEC_MCAST;
4060
4061	peer->rx_pn[sec_index].sec_type = sec_type;
4062	peer->rx_pn[sec_index].pn_len = ath10k_htt_rx_pn_len(sec_type);
4063
4064	memset(peer->tids_last_pn_valid, 0, sizeof(peer->tids_last_pn_valid));
4065	memset(peer->tids_last_pn, 0, sizeof(peer->tids_last_pn));
4066
4067out:
4068	spin_unlock_bh(&ar->data_lock);
4069}
4070
4071bool ath10k_htt_t2h_msg_handler(struct ath10k *ar, struct sk_buff *skb)
4072{
4073	struct ath10k_htt *htt = &ar->htt;
4074	struct htt_resp *resp = (struct htt_resp *)skb->data;
4075	enum htt_t2h_msg_type type;
4076
4077	/* confirm alignment */
4078	if (!IS_ALIGNED((unsigned long)skb->data, 4))
4079		ath10k_warn(ar, "unaligned htt message, expect trouble\n");
4080
4081	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx, msg_type: 0x%0X\n",
4082		   resp->hdr.msg_type);
4083
4084	if (resp->hdr.msg_type >= ar->htt.t2h_msg_types_max) {
4085		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx, unsupported msg_type: 0x%0X\n max: 0x%0X",
4086			   resp->hdr.msg_type, ar->htt.t2h_msg_types_max);
4087		return true;
4088	}
4089	type = ar->htt.t2h_msg_types[resp->hdr.msg_type];
4090
4091	switch (type) {
4092	case HTT_T2H_MSG_TYPE_VERSION_CONF: {
4093		htt->target_version_major = resp->ver_resp.major;
4094		htt->target_version_minor = resp->ver_resp.minor;
4095		complete(&htt->target_version_received);
4096		break;
4097	}
4098	case HTT_T2H_MSG_TYPE_RX_IND:
4099		if (ar->bus_param.dev_type != ATH10K_DEV_TYPE_HL) {
 
 
 
 
 
 
4100			ath10k_htt_rx_proc_rx_ind_ll(htt, &resp->rx_ind);
4101		} else {
4102			skb_queue_tail(&htt->rx_indication_head, skb);
4103			return false;
4104		}
4105		break;
4106	case HTT_T2H_MSG_TYPE_PEER_MAP: {
4107		struct htt_peer_map_event ev = {
4108			.vdev_id = resp->peer_map.vdev_id,
4109			.peer_id = __le16_to_cpu(resp->peer_map.peer_id),
4110		};
4111		memcpy(ev.addr, resp->peer_map.addr, sizeof(ev.addr));
4112		ath10k_peer_map_event(htt, &ev);
4113		break;
4114	}
4115	case HTT_T2H_MSG_TYPE_PEER_UNMAP: {
4116		struct htt_peer_unmap_event ev = {
4117			.peer_id = __le16_to_cpu(resp->peer_unmap.peer_id),
4118		};
4119		ath10k_peer_unmap_event(htt, &ev);
4120		break;
4121	}
4122	case HTT_T2H_MSG_TYPE_MGMT_TX_COMPLETION: {
4123		struct htt_tx_done tx_done = {};
4124		struct ath10k_htt *htt = &ar->htt;
4125		struct ath10k_htc *htc = &ar->htc;
4126		struct ath10k_htc_ep *ep = &ar->htc.endpoint[htt->eid];
4127		int status = __le32_to_cpu(resp->mgmt_tx_completion.status);
4128		int info = __le32_to_cpu(resp->mgmt_tx_completion.info);
4129
4130		tx_done.msdu_id = __le32_to_cpu(resp->mgmt_tx_completion.desc_id);
4131
4132		switch (status) {
4133		case HTT_MGMT_TX_STATUS_OK:
4134			tx_done.status = HTT_TX_COMPL_STATE_ACK;
4135			if (test_bit(WMI_SERVICE_HTT_MGMT_TX_COMP_VALID_FLAGS,
4136				     ar->wmi.svc_map) &&
4137			    (resp->mgmt_tx_completion.flags &
4138			     HTT_MGMT_TX_CMPL_FLAG_ACK_RSSI)) {
4139				tx_done.ack_rssi =
4140				FIELD_GET(HTT_MGMT_TX_CMPL_INFO_ACK_RSSI_MASK,
4141					  info);
4142			}
4143			break;
4144		case HTT_MGMT_TX_STATUS_RETRY:
4145			tx_done.status = HTT_TX_COMPL_STATE_NOACK;
4146			break;
4147		case HTT_MGMT_TX_STATUS_DROP:
4148			tx_done.status = HTT_TX_COMPL_STATE_DISCARD;
4149			break;
4150		}
4151
4152		if (htt->disable_tx_comp) {
4153			spin_lock_bh(&htc->tx_lock);
4154			ep->tx_credits++;
4155			spin_unlock_bh(&htc->tx_lock);
4156		}
4157
4158		status = ath10k_txrx_tx_unref(htt, &tx_done);
4159		if (!status) {
4160			spin_lock_bh(&htt->tx_lock);
4161			ath10k_htt_tx_mgmt_dec_pending(htt);
4162			spin_unlock_bh(&htt->tx_lock);
4163		}
4164		break;
4165	}
4166	case HTT_T2H_MSG_TYPE_TX_COMPL_IND:
4167		ath10k_htt_rx_tx_compl_ind(htt->ar, skb);
4168		break;
4169	case HTT_T2H_MSG_TYPE_SEC_IND: {
4170		struct ath10k *ar = htt->ar;
4171		struct htt_security_indication *ev = &resp->security_indication;
4172
4173		ath10k_htt_rx_sec_ind_handler(ar, ev);
4174		ath10k_dbg(ar, ATH10K_DBG_HTT,
4175			   "sec ind peer_id %d unicast %d type %d\n",
4176			  __le16_to_cpu(ev->peer_id),
4177			  !!(ev->flags & HTT_SECURITY_IS_UNICAST),
4178			  MS(ev->flags, HTT_SECURITY_TYPE));
4179		complete(&ar->install_key_done);
4180		break;
4181	}
4182	case HTT_T2H_MSG_TYPE_RX_FRAG_IND: {
4183		ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt event: ",
4184				skb->data, skb->len);
4185		atomic_inc(&htt->num_mpdus_ready);
4186
4187		return ath10k_htt_rx_proc_rx_frag_ind(htt,
4188						      &resp->rx_frag_ind,
4189						      skb);
 
4190	}
4191	case HTT_T2H_MSG_TYPE_TEST:
4192		break;
4193	case HTT_T2H_MSG_TYPE_STATS_CONF:
4194		trace_ath10k_htt_stats(ar, skb->data, skb->len);
4195		break;
4196	case HTT_T2H_MSG_TYPE_TX_INSPECT_IND:
4197		/* Firmware can return tx frames if it's unable to fully
4198		 * process them and suspects host may be able to fix it. ath10k
4199		 * sends all tx frames as already inspected so this shouldn't
4200		 * happen unless fw has a bug.
4201		 */
4202		ath10k_warn(ar, "received an unexpected htt tx inspect event\n");
4203		break;
4204	case HTT_T2H_MSG_TYPE_RX_ADDBA:
4205		ath10k_htt_rx_addba(ar, resp);
4206		break;
4207	case HTT_T2H_MSG_TYPE_RX_DELBA:
4208		ath10k_htt_rx_delba(ar, resp);
4209		break;
4210	case HTT_T2H_MSG_TYPE_PKTLOG: {
4211		trace_ath10k_htt_pktlog(ar, resp->pktlog_msg.payload,
4212					skb->len -
4213					offsetof(struct htt_resp,
4214						 pktlog_msg.payload));
4215
4216		if (ath10k_peer_stats_enabled(ar))
4217			ath10k_fetch_10_2_tx_stats(ar,
4218						   resp->pktlog_msg.payload);
4219		break;
4220	}
4221	case HTT_T2H_MSG_TYPE_RX_FLUSH: {
4222		/* Ignore this event because mac80211 takes care of Rx
4223		 * aggregation reordering.
4224		 */
4225		break;
4226	}
4227	case HTT_T2H_MSG_TYPE_RX_IN_ORD_PADDR_IND: {
4228		skb_queue_tail(&htt->rx_in_ord_compl_q, skb);
4229		return false;
4230	}
4231	case HTT_T2H_MSG_TYPE_TX_CREDIT_UPDATE_IND: {
4232		struct ath10k_htt *htt = &ar->htt;
4233		struct ath10k_htc *htc = &ar->htc;
4234		struct ath10k_htc_ep *ep = &ar->htc.endpoint[htt->eid];
4235		u32 msg_word = __le32_to_cpu(*(__le32 *)resp);
4236		int htt_credit_delta;
4237
4238		htt_credit_delta = HTT_TX_CREDIT_DELTA_ABS_GET(msg_word);
4239		if (HTT_TX_CREDIT_SIGN_BIT_GET(msg_word))
4240			htt_credit_delta = -htt_credit_delta;
4241
4242		ath10k_dbg(ar, ATH10K_DBG_HTT,
4243			   "htt credit update delta %d\n",
4244			   htt_credit_delta);
4245
4246		if (htt->disable_tx_comp) {
4247			spin_lock_bh(&htc->tx_lock);
4248			ep->tx_credits += htt_credit_delta;
4249			spin_unlock_bh(&htc->tx_lock);
4250			ath10k_dbg(ar, ATH10K_DBG_HTT,
4251				   "htt credit total %d\n",
4252				   ep->tx_credits);
4253			ep->ep_ops.ep_tx_credits(htc->ar);
4254		}
4255		break;
4256	}
4257	case HTT_T2H_MSG_TYPE_CHAN_CHANGE: {
4258		u32 phymode = __le32_to_cpu(resp->chan_change.phymode);
4259		u32 freq = __le32_to_cpu(resp->chan_change.freq);
4260
4261		ar->tgt_oper_chan = ieee80211_get_channel(ar->hw->wiphy, freq);
4262		ath10k_dbg(ar, ATH10K_DBG_HTT,
4263			   "htt chan change freq %u phymode %s\n",
4264			   freq, ath10k_wmi_phymode_str(phymode));
4265		break;
4266	}
4267	case HTT_T2H_MSG_TYPE_AGGR_CONF:
4268		break;
4269	case HTT_T2H_MSG_TYPE_TX_FETCH_IND: {
4270		struct sk_buff *tx_fetch_ind = skb_copy(skb, GFP_ATOMIC);
4271
4272		if (!tx_fetch_ind) {
4273			ath10k_warn(ar, "failed to copy htt tx fetch ind\n");
4274			break;
4275		}
4276		skb_queue_tail(&htt->tx_fetch_ind_q, tx_fetch_ind);
4277		break;
4278	}
4279	case HTT_T2H_MSG_TYPE_TX_FETCH_CONFIRM:
4280		ath10k_htt_rx_tx_fetch_confirm(ar, skb);
4281		break;
4282	case HTT_T2H_MSG_TYPE_TX_MODE_SWITCH_IND:
4283		ath10k_htt_rx_tx_mode_switch_ind(ar, skb);
4284		break;
4285	case HTT_T2H_MSG_TYPE_PEER_STATS:
4286		ath10k_htt_fetch_peer_stats(ar, skb);
4287		break;
4288	case HTT_T2H_MSG_TYPE_EN_STATS:
4289	default:
4290		ath10k_warn(ar, "htt event (%d) not handled\n",
4291			    resp->hdr.msg_type);
4292		ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt event: ",
4293				skb->data, skb->len);
4294		break;
4295	}
4296	return true;
4297}
4298EXPORT_SYMBOL(ath10k_htt_t2h_msg_handler);
4299
4300void ath10k_htt_rx_pktlog_completion_handler(struct ath10k *ar,
4301					     struct sk_buff *skb)
4302{
4303	trace_ath10k_htt_pktlog(ar, skb->data, skb->len);
4304	dev_kfree_skb_any(skb);
4305}
4306EXPORT_SYMBOL(ath10k_htt_rx_pktlog_completion_handler);
4307
4308static int ath10k_htt_rx_deliver_msdu(struct ath10k *ar, int quota, int budget)
4309{
4310	struct sk_buff *skb;
4311
4312	while (quota < budget) {
4313		if (skb_queue_empty(&ar->htt.rx_msdus_q))
4314			break;
4315
4316		skb = skb_dequeue(&ar->htt.rx_msdus_q);
4317		if (!skb)
4318			break;
4319		ath10k_process_rx(ar, skb);
4320		quota++;
4321	}
4322
4323	return quota;
4324}
4325
4326int ath10k_htt_rx_hl_indication(struct ath10k *ar, int budget)
4327{
4328	struct htt_resp *resp;
4329	struct ath10k_htt *htt = &ar->htt;
4330	struct sk_buff *skb;
4331	bool release;
4332	int quota;
4333
4334	for (quota = 0; quota < budget; quota++) {
4335		skb = skb_dequeue(&htt->rx_indication_head);
4336		if (!skb)
4337			break;
4338
4339		resp = (struct htt_resp *)skb->data;
4340
4341		release = ath10k_htt_rx_proc_rx_ind_hl(htt,
4342						       &resp->rx_ind_hl,
4343						       skb,
4344						       HTT_RX_PN_CHECK,
4345						       HTT_RX_NON_TKIP_MIC);
4346
4347		if (release)
4348			dev_kfree_skb_any(skb);
4349
4350		ath10k_dbg(ar, ATH10K_DBG_HTT, "rx indication poll pending count:%d\n",
4351			   skb_queue_len(&htt->rx_indication_head));
4352	}
4353	return quota;
4354}
4355EXPORT_SYMBOL(ath10k_htt_rx_hl_indication);
4356
4357int ath10k_htt_txrx_compl_task(struct ath10k *ar, int budget)
4358{
4359	struct ath10k_htt *htt = &ar->htt;
4360	struct htt_tx_done tx_done = {};
4361	struct sk_buff_head tx_ind_q;
4362	struct sk_buff *skb;
4363	unsigned long flags;
4364	int quota = 0, done, ret;
4365	bool resched_napi = false;
4366
4367	__skb_queue_head_init(&tx_ind_q);
4368
4369	/* Process pending frames before dequeuing more data
4370	 * from hardware.
4371	 */
4372	quota = ath10k_htt_rx_deliver_msdu(ar, quota, budget);
4373	if (quota == budget) {
4374		resched_napi = true;
4375		goto exit;
4376	}
4377
4378	while ((skb = skb_dequeue(&htt->rx_in_ord_compl_q))) {
4379		spin_lock_bh(&htt->rx_ring.lock);
4380		ret = ath10k_htt_rx_in_ord_ind(ar, skb);
4381		spin_unlock_bh(&htt->rx_ring.lock);
4382
4383		dev_kfree_skb_any(skb);
4384		if (ret == -EIO) {
4385			resched_napi = true;
4386			goto exit;
4387		}
4388	}
4389
4390	while (atomic_read(&htt->num_mpdus_ready)) {
4391		ret = ath10k_htt_rx_handle_amsdu(htt);
4392		if (ret == -EIO) {
4393			resched_napi = true;
4394			goto exit;
4395		}
4396		atomic_dec(&htt->num_mpdus_ready);
4397	}
4398
4399	/* Deliver received data after processing data from hardware */
4400	quota = ath10k_htt_rx_deliver_msdu(ar, quota, budget);
4401
4402	/* From NAPI documentation:
4403	 *  The napi poll() function may also process TX completions, in which
4404	 *  case if it processes the entire TX ring then it should count that
4405	 *  work as the rest of the budget.
4406	 */
4407	if ((quota < budget) && !kfifo_is_empty(&htt->txdone_fifo))
4408		quota = budget;
4409
4410	/* kfifo_get: called only within txrx_tasklet so it's neatly serialized.
4411	 * From kfifo_get() documentation:
4412	 *  Note that with only one concurrent reader and one concurrent writer,
4413	 *  you don't need extra locking to use these macro.
4414	 */
4415	while (kfifo_get(&htt->txdone_fifo, &tx_done))
4416		ath10k_txrx_tx_unref(htt, &tx_done);
4417
4418	ath10k_mac_tx_push_pending(ar);
4419
4420	spin_lock_irqsave(&htt->tx_fetch_ind_q.lock, flags);
4421	skb_queue_splice_init(&htt->tx_fetch_ind_q, &tx_ind_q);
4422	spin_unlock_irqrestore(&htt->tx_fetch_ind_q.lock, flags);
4423
4424	while ((skb = __skb_dequeue(&tx_ind_q))) {
4425		ath10k_htt_rx_tx_fetch_ind(ar, skb);
4426		dev_kfree_skb_any(skb);
4427	}
4428
4429exit:
4430	ath10k_htt_rx_msdu_buff_replenish(htt);
4431	/* In case of rx failure or more data to read, report budget
4432	 * to reschedule NAPI poll
4433	 */
4434	done = resched_napi ? budget : quota;
4435
4436	return done;
4437}
4438EXPORT_SYMBOL(ath10k_htt_txrx_compl_task);
4439
4440static const struct ath10k_htt_rx_ops htt_rx_ops_32 = {
4441	.htt_get_rx_ring_size = ath10k_htt_get_rx_ring_size_32,
4442	.htt_config_paddrs_ring = ath10k_htt_config_paddrs_ring_32,
4443	.htt_set_paddrs_ring = ath10k_htt_set_paddrs_ring_32,
4444	.htt_get_vaddr_ring = ath10k_htt_get_vaddr_ring_32,
4445	.htt_reset_paddrs_ring = ath10k_htt_reset_paddrs_ring_32,
4446};
4447
4448static const struct ath10k_htt_rx_ops htt_rx_ops_64 = {
4449	.htt_get_rx_ring_size = ath10k_htt_get_rx_ring_size_64,
4450	.htt_config_paddrs_ring = ath10k_htt_config_paddrs_ring_64,
4451	.htt_set_paddrs_ring = ath10k_htt_set_paddrs_ring_64,
4452	.htt_get_vaddr_ring = ath10k_htt_get_vaddr_ring_64,
4453	.htt_reset_paddrs_ring = ath10k_htt_reset_paddrs_ring_64,
4454};
4455
4456static const struct ath10k_htt_rx_ops htt_rx_ops_hl = {
4457	.htt_rx_proc_rx_frag_ind = ath10k_htt_rx_proc_rx_frag_ind_hl,
4458};
4459
4460void ath10k_htt_set_rx_ops(struct ath10k_htt *htt)
4461{
4462	struct ath10k *ar = htt->ar;
4463
4464	if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
4465		htt->rx_ops = &htt_rx_ops_hl;
4466	else if (ar->hw_params.target_64bit)
4467		htt->rx_ops = &htt_rx_ops_64;
4468	else
4469		htt->rx_ops = &htt_rx_ops_32;
4470}
v5.4
   1// SPDX-License-Identifier: ISC
   2/*
   3 * Copyright (c) 2005-2011 Atheros Communications Inc.
   4 * Copyright (c) 2011-2017 Qualcomm Atheros, Inc.
   5 * Copyright (c) 2018, The Linux Foundation. All rights reserved.
 
   6 */
   7
   8#include "core.h"
   9#include "htc.h"
  10#include "htt.h"
  11#include "txrx.h"
  12#include "debug.h"
  13#include "trace.h"
  14#include "mac.h"
  15
  16#include <linux/log2.h>
  17#include <linux/bitfield.h>
  18
  19/* when under memory pressure rx ring refill may fail and needs a retry */
  20#define HTT_RX_RING_REFILL_RETRY_MS 50
  21
  22#define HTT_RX_RING_REFILL_RESCHED_MS 5
  23
  24static int ath10k_htt_rx_get_csum_state(struct sk_buff *skb);
 
 
 
  25
  26static struct sk_buff *
  27ath10k_htt_rx_find_skb_paddr(struct ath10k *ar, u64 paddr)
  28{
  29	struct ath10k_skb_rxcb *rxcb;
  30
  31	hash_for_each_possible(ar->htt.rx_ring.skb_table, rxcb, hlist, paddr)
  32		if (rxcb->paddr == paddr)
  33			return ATH10K_RXCB_SKB(rxcb);
  34
  35	WARN_ON_ONCE(1);
  36	return NULL;
  37}
  38
  39static void ath10k_htt_rx_ring_free(struct ath10k_htt *htt)
  40{
  41	struct sk_buff *skb;
  42	struct ath10k_skb_rxcb *rxcb;
  43	struct hlist_node *n;
  44	int i;
  45
  46	if (htt->rx_ring.in_ord_rx) {
  47		hash_for_each_safe(htt->rx_ring.skb_table, i, n, rxcb, hlist) {
  48			skb = ATH10K_RXCB_SKB(rxcb);
  49			dma_unmap_single(htt->ar->dev, rxcb->paddr,
  50					 skb->len + skb_tailroom(skb),
  51					 DMA_FROM_DEVICE);
  52			hash_del(&rxcb->hlist);
  53			dev_kfree_skb_any(skb);
  54		}
  55	} else {
  56		for (i = 0; i < htt->rx_ring.size; i++) {
  57			skb = htt->rx_ring.netbufs_ring[i];
  58			if (!skb)
  59				continue;
  60
  61			rxcb = ATH10K_SKB_RXCB(skb);
  62			dma_unmap_single(htt->ar->dev, rxcb->paddr,
  63					 skb->len + skb_tailroom(skb),
  64					 DMA_FROM_DEVICE);
  65			dev_kfree_skb_any(skb);
  66		}
  67	}
  68
  69	htt->rx_ring.fill_cnt = 0;
  70	hash_init(htt->rx_ring.skb_table);
  71	memset(htt->rx_ring.netbufs_ring, 0,
  72	       htt->rx_ring.size * sizeof(htt->rx_ring.netbufs_ring[0]));
  73}
  74
  75static size_t ath10k_htt_get_rx_ring_size_32(struct ath10k_htt *htt)
  76{
  77	return htt->rx_ring.size * sizeof(htt->rx_ring.paddrs_ring_32);
  78}
  79
  80static size_t ath10k_htt_get_rx_ring_size_64(struct ath10k_htt *htt)
  81{
  82	return htt->rx_ring.size * sizeof(htt->rx_ring.paddrs_ring_64);
  83}
  84
  85static void ath10k_htt_config_paddrs_ring_32(struct ath10k_htt *htt,
  86					     void *vaddr)
  87{
  88	htt->rx_ring.paddrs_ring_32 = vaddr;
  89}
  90
  91static void ath10k_htt_config_paddrs_ring_64(struct ath10k_htt *htt,
  92					     void *vaddr)
  93{
  94	htt->rx_ring.paddrs_ring_64 = vaddr;
  95}
  96
  97static void ath10k_htt_set_paddrs_ring_32(struct ath10k_htt *htt,
  98					  dma_addr_t paddr, int idx)
  99{
 100	htt->rx_ring.paddrs_ring_32[idx] = __cpu_to_le32(paddr);
 101}
 102
 103static void ath10k_htt_set_paddrs_ring_64(struct ath10k_htt *htt,
 104					  dma_addr_t paddr, int idx)
 105{
 106	htt->rx_ring.paddrs_ring_64[idx] = __cpu_to_le64(paddr);
 107}
 108
 109static void ath10k_htt_reset_paddrs_ring_32(struct ath10k_htt *htt, int idx)
 110{
 111	htt->rx_ring.paddrs_ring_32[idx] = 0;
 112}
 113
 114static void ath10k_htt_reset_paddrs_ring_64(struct ath10k_htt *htt, int idx)
 115{
 116	htt->rx_ring.paddrs_ring_64[idx] = 0;
 117}
 118
 119static void *ath10k_htt_get_vaddr_ring_32(struct ath10k_htt *htt)
 120{
 121	return (void *)htt->rx_ring.paddrs_ring_32;
 122}
 123
 124static void *ath10k_htt_get_vaddr_ring_64(struct ath10k_htt *htt)
 125{
 126	return (void *)htt->rx_ring.paddrs_ring_64;
 127}
 128
 129static int __ath10k_htt_rx_ring_fill_n(struct ath10k_htt *htt, int num)
 130{
 
 131	struct htt_rx_desc *rx_desc;
 132	struct ath10k_skb_rxcb *rxcb;
 133	struct sk_buff *skb;
 134	dma_addr_t paddr;
 135	int ret = 0, idx;
 136
 137	/* The Full Rx Reorder firmware has no way of telling the host
 138	 * implicitly when it copied HTT Rx Ring buffers to MAC Rx Ring.
 139	 * To keep things simple make sure ring is always half empty. This
 140	 * guarantees there'll be no replenishment overruns possible.
 141	 */
 142	BUILD_BUG_ON(HTT_RX_RING_FILL_LEVEL >= HTT_RX_RING_SIZE / 2);
 143
 144	idx = __le32_to_cpu(*htt->rx_ring.alloc_idx.vaddr);
 
 
 
 
 
 
 
 
 145	while (num > 0) {
 146		skb = dev_alloc_skb(HTT_RX_BUF_SIZE + HTT_RX_DESC_ALIGN);
 147		if (!skb) {
 148			ret = -ENOMEM;
 149			goto fail;
 150		}
 151
 152		if (!IS_ALIGNED((unsigned long)skb->data, HTT_RX_DESC_ALIGN))
 153			skb_pull(skb,
 154				 PTR_ALIGN(skb->data, HTT_RX_DESC_ALIGN) -
 155				 skb->data);
 156
 157		/* Clear rx_desc attention word before posting to Rx ring */
 158		rx_desc = (struct htt_rx_desc *)skb->data;
 159		rx_desc->attention.flags = __cpu_to_le32(0);
 160
 161		paddr = dma_map_single(htt->ar->dev, skb->data,
 162				       skb->len + skb_tailroom(skb),
 163				       DMA_FROM_DEVICE);
 164
 165		if (unlikely(dma_mapping_error(htt->ar->dev, paddr))) {
 166			dev_kfree_skb_any(skb);
 167			ret = -ENOMEM;
 168			goto fail;
 169		}
 170
 171		rxcb = ATH10K_SKB_RXCB(skb);
 172		rxcb->paddr = paddr;
 173		htt->rx_ring.netbufs_ring[idx] = skb;
 174		ath10k_htt_set_paddrs_ring(htt, paddr, idx);
 175		htt->rx_ring.fill_cnt++;
 176
 177		if (htt->rx_ring.in_ord_rx) {
 178			hash_add(htt->rx_ring.skb_table,
 179				 &ATH10K_SKB_RXCB(skb)->hlist,
 180				 paddr);
 181		}
 182
 183		num--;
 184		idx++;
 185		idx &= htt->rx_ring.size_mask;
 186	}
 187
 188fail:
 189	/*
 190	 * Make sure the rx buffer is updated before available buffer
 191	 * index to avoid any potential rx ring corruption.
 192	 */
 193	mb();
 194	*htt->rx_ring.alloc_idx.vaddr = __cpu_to_le32(idx);
 195	return ret;
 196}
 197
 198static int ath10k_htt_rx_ring_fill_n(struct ath10k_htt *htt, int num)
 199{
 200	lockdep_assert_held(&htt->rx_ring.lock);
 201	return __ath10k_htt_rx_ring_fill_n(htt, num);
 202}
 203
 204static void ath10k_htt_rx_msdu_buff_replenish(struct ath10k_htt *htt)
 205{
 206	int ret, num_deficit, num_to_fill;
 207
 208	/* Refilling the whole RX ring buffer proves to be a bad idea. The
 209	 * reason is RX may take up significant amount of CPU cycles and starve
 210	 * other tasks, e.g. TX on an ethernet device while acting as a bridge
 211	 * with ath10k wlan interface. This ended up with very poor performance
 212	 * once CPU the host system was overwhelmed with RX on ath10k.
 213	 *
 214	 * By limiting the number of refills the replenishing occurs
 215	 * progressively. This in turns makes use of the fact tasklets are
 216	 * processed in FIFO order. This means actual RX processing can starve
 217	 * out refilling. If there's not enough buffers on RX ring FW will not
 218	 * report RX until it is refilled with enough buffers. This
 219	 * automatically balances load wrt to CPU power.
 220	 *
 221	 * This probably comes at a cost of lower maximum throughput but
 222	 * improves the average and stability.
 223	 */
 224	spin_lock_bh(&htt->rx_ring.lock);
 225	num_deficit = htt->rx_ring.fill_level - htt->rx_ring.fill_cnt;
 226	num_to_fill = min(ATH10K_HTT_MAX_NUM_REFILL, num_deficit);
 227	num_deficit -= num_to_fill;
 228	ret = ath10k_htt_rx_ring_fill_n(htt, num_to_fill);
 229	if (ret == -ENOMEM) {
 230		/*
 231		 * Failed to fill it to the desired level -
 232		 * we'll start a timer and try again next time.
 233		 * As long as enough buffers are left in the ring for
 234		 * another A-MPDU rx, no special recovery is needed.
 235		 */
 236		mod_timer(&htt->rx_ring.refill_retry_timer, jiffies +
 237			  msecs_to_jiffies(HTT_RX_RING_REFILL_RETRY_MS));
 238	} else if (num_deficit > 0) {
 239		mod_timer(&htt->rx_ring.refill_retry_timer, jiffies +
 240			  msecs_to_jiffies(HTT_RX_RING_REFILL_RESCHED_MS));
 241	}
 242	spin_unlock_bh(&htt->rx_ring.lock);
 243}
 244
 245static void ath10k_htt_rx_ring_refill_retry(struct timer_list *t)
 246{
 247	struct ath10k_htt *htt = from_timer(htt, t, rx_ring.refill_retry_timer);
 248
 249	ath10k_htt_rx_msdu_buff_replenish(htt);
 250}
 251
 252int ath10k_htt_rx_ring_refill(struct ath10k *ar)
 253{
 254	struct ath10k_htt *htt = &ar->htt;
 255	int ret;
 256
 257	if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
 258		return 0;
 259
 260	spin_lock_bh(&htt->rx_ring.lock);
 261	ret = ath10k_htt_rx_ring_fill_n(htt, (htt->rx_ring.fill_level -
 262					      htt->rx_ring.fill_cnt));
 263
 264	if (ret)
 265		ath10k_htt_rx_ring_free(htt);
 266
 267	spin_unlock_bh(&htt->rx_ring.lock);
 268
 269	return ret;
 270}
 271
 272void ath10k_htt_rx_free(struct ath10k_htt *htt)
 273{
 274	if (htt->ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
 275		return;
 276
 277	del_timer_sync(&htt->rx_ring.refill_retry_timer);
 278
 279	skb_queue_purge(&htt->rx_msdus_q);
 280	skb_queue_purge(&htt->rx_in_ord_compl_q);
 281	skb_queue_purge(&htt->tx_fetch_ind_q);
 282
 283	spin_lock_bh(&htt->rx_ring.lock);
 284	ath10k_htt_rx_ring_free(htt);
 285	spin_unlock_bh(&htt->rx_ring.lock);
 286
 287	dma_free_coherent(htt->ar->dev,
 288			  ath10k_htt_get_rx_ring_size(htt),
 289			  ath10k_htt_get_vaddr_ring(htt),
 290			  htt->rx_ring.base_paddr);
 291
 
 
 292	dma_free_coherent(htt->ar->dev,
 293			  sizeof(*htt->rx_ring.alloc_idx.vaddr),
 294			  htt->rx_ring.alloc_idx.vaddr,
 295			  htt->rx_ring.alloc_idx.paddr);
 
 296
 297	kfree(htt->rx_ring.netbufs_ring);
 
 298}
 299
 300static inline struct sk_buff *ath10k_htt_rx_netbuf_pop(struct ath10k_htt *htt)
 301{
 302	struct ath10k *ar = htt->ar;
 303	int idx;
 304	struct sk_buff *msdu;
 305
 306	lockdep_assert_held(&htt->rx_ring.lock);
 307
 308	if (htt->rx_ring.fill_cnt == 0) {
 309		ath10k_warn(ar, "tried to pop sk_buff from an empty rx ring\n");
 310		return NULL;
 311	}
 312
 313	idx = htt->rx_ring.sw_rd_idx.msdu_payld;
 314	msdu = htt->rx_ring.netbufs_ring[idx];
 315	htt->rx_ring.netbufs_ring[idx] = NULL;
 316	ath10k_htt_reset_paddrs_ring(htt, idx);
 317
 318	idx++;
 319	idx &= htt->rx_ring.size_mask;
 320	htt->rx_ring.sw_rd_idx.msdu_payld = idx;
 321	htt->rx_ring.fill_cnt--;
 322
 323	dma_unmap_single(htt->ar->dev,
 324			 ATH10K_SKB_RXCB(msdu)->paddr,
 325			 msdu->len + skb_tailroom(msdu),
 326			 DMA_FROM_DEVICE);
 327	ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt rx netbuf pop: ",
 328			msdu->data, msdu->len + skb_tailroom(msdu));
 329
 330	return msdu;
 331}
 332
 333/* return: < 0 fatal error, 0 - non chained msdu, 1 chained msdu */
 334static int ath10k_htt_rx_amsdu_pop(struct ath10k_htt *htt,
 335				   struct sk_buff_head *amsdu)
 336{
 337	struct ath10k *ar = htt->ar;
 
 338	int msdu_len, msdu_chaining = 0;
 339	struct sk_buff *msdu;
 340	struct htt_rx_desc *rx_desc;
 
 
 
 
 341
 342	lockdep_assert_held(&htt->rx_ring.lock);
 343
 344	for (;;) {
 345		int last_msdu, msdu_len_invalid, msdu_chained;
 346
 347		msdu = ath10k_htt_rx_netbuf_pop(htt);
 348		if (!msdu) {
 349			__skb_queue_purge(amsdu);
 350			return -ENOENT;
 351		}
 352
 353		__skb_queue_tail(amsdu, msdu);
 354
 355		rx_desc = (struct htt_rx_desc *)msdu->data;
 
 
 
 
 
 356
 357		/* FIXME: we must report msdu payload since this is what caller
 358		 * expects now
 359		 */
 360		skb_put(msdu, offsetof(struct htt_rx_desc, msdu_payload));
 361		skb_pull(msdu, offsetof(struct htt_rx_desc, msdu_payload));
 362
 363		/*
 364		 * Sanity check - confirm the HW is finished filling in the
 365		 * rx data.
 366		 * If the HW and SW are working correctly, then it's guaranteed
 367		 * that the HW's MAC DMA is done before this point in the SW.
 368		 * To prevent the case that we handle a stale Rx descriptor,
 369		 * just assert for now until we have a way to recover.
 370		 */
 371		if (!(__le32_to_cpu(rx_desc->attention.flags)
 372				& RX_ATTENTION_FLAGS_MSDU_DONE)) {
 373			__skb_queue_purge(amsdu);
 374			return -EIO;
 375		}
 376
 377		msdu_len_invalid = !!(__le32_to_cpu(rx_desc->attention.flags)
 378					& (RX_ATTENTION_FLAGS_MPDU_LENGTH_ERR |
 379					   RX_ATTENTION_FLAGS_MSDU_LENGTH_ERR));
 380		msdu_len = MS(__le32_to_cpu(rx_desc->msdu_start.common.info0),
 381			      RX_MSDU_START_INFO0_MSDU_LENGTH);
 382		msdu_chained = rx_desc->frag_info.ring2_more_count;
 383
 384		if (msdu_len_invalid)
 385			msdu_len = 0;
 386
 387		skb_trim(msdu, 0);
 388		skb_put(msdu, min(msdu_len, HTT_RX_MSDU_SIZE));
 389		msdu_len -= msdu->len;
 390
 391		/* Note: Chained buffers do not contain rx descriptor */
 392		while (msdu_chained--) {
 393			msdu = ath10k_htt_rx_netbuf_pop(htt);
 394			if (!msdu) {
 395				__skb_queue_purge(amsdu);
 396				return -ENOENT;
 397			}
 398
 399			__skb_queue_tail(amsdu, msdu);
 400			skb_trim(msdu, 0);
 401			skb_put(msdu, min(msdu_len, HTT_RX_BUF_SIZE));
 402			msdu_len -= msdu->len;
 403			msdu_chaining = 1;
 404		}
 405
 406		last_msdu = __le32_to_cpu(rx_desc->msdu_end.common.info0) &
 407				RX_MSDU_END_INFO0_LAST_MSDU;
 408
 409		trace_ath10k_htt_rx_desc(ar, &rx_desc->attention,
 410					 sizeof(*rx_desc) - sizeof(u32));
 
 411
 412		if (last_msdu)
 413			break;
 414	}
 415
 416	if (skb_queue_empty(amsdu))
 417		msdu_chaining = -1;
 418
 419	/*
 420	 * Don't refill the ring yet.
 421	 *
 422	 * First, the elements popped here are still in use - it is not
 423	 * safe to overwrite them until the matching call to
 424	 * mpdu_desc_list_next. Second, for efficiency it is preferable to
 425	 * refill the rx ring with 1 PPDU's worth of rx buffers (something
 426	 * like 32 x 3 buffers), rather than one MPDU's worth of rx buffers
 427	 * (something like 3 buffers). Consequently, we'll rely on the txrx
 428	 * SW to tell us when it is done pulling all the PPDU's rx buffers
 429	 * out of the rx ring, and then refill it just once.
 430	 */
 431
 432	return msdu_chaining;
 433}
 434
 435static struct sk_buff *ath10k_htt_rx_pop_paddr(struct ath10k_htt *htt,
 436					       u64 paddr)
 437{
 438	struct ath10k *ar = htt->ar;
 439	struct ath10k_skb_rxcb *rxcb;
 440	struct sk_buff *msdu;
 441
 442	lockdep_assert_held(&htt->rx_ring.lock);
 443
 444	msdu = ath10k_htt_rx_find_skb_paddr(ar, paddr);
 445	if (!msdu)
 446		return NULL;
 447
 448	rxcb = ATH10K_SKB_RXCB(msdu);
 449	hash_del(&rxcb->hlist);
 450	htt->rx_ring.fill_cnt--;
 451
 452	dma_unmap_single(htt->ar->dev, rxcb->paddr,
 453			 msdu->len + skb_tailroom(msdu),
 454			 DMA_FROM_DEVICE);
 455	ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt rx netbuf pop: ",
 456			msdu->data, msdu->len + skb_tailroom(msdu));
 457
 458	return msdu;
 459}
 460
 461static inline void ath10k_htt_append_frag_list(struct sk_buff *skb_head,
 462					       struct sk_buff *frag_list,
 463					       unsigned int frag_len)
 464{
 465	skb_shinfo(skb_head)->frag_list = frag_list;
 466	skb_head->data_len = frag_len;
 467	skb_head->len += skb_head->data_len;
 468}
 469
 470static int ath10k_htt_rx_handle_amsdu_mon_32(struct ath10k_htt *htt,
 471					     struct sk_buff *msdu,
 472					     struct htt_rx_in_ord_msdu_desc **msdu_desc)
 473{
 474	struct ath10k *ar = htt->ar;
 
 475	u32 paddr;
 476	struct sk_buff *frag_buf;
 477	struct sk_buff *prev_frag_buf;
 478	u8 last_frag;
 479	struct htt_rx_in_ord_msdu_desc *ind_desc = *msdu_desc;
 480	struct htt_rx_desc *rxd;
 481	int amsdu_len = __le16_to_cpu(ind_desc->msdu_len);
 482
 483	rxd = (void *)msdu->data;
 484	trace_ath10k_htt_rx_desc(ar, rxd, sizeof(*rxd));
 485
 486	skb_put(msdu, sizeof(struct htt_rx_desc));
 487	skb_pull(msdu, sizeof(struct htt_rx_desc));
 488	skb_put(msdu, min(amsdu_len, HTT_RX_MSDU_SIZE));
 489	amsdu_len -= msdu->len;
 490
 491	last_frag = ind_desc->reserved;
 492	if (last_frag) {
 493		if (amsdu_len) {
 494			ath10k_warn(ar, "invalid amsdu len %u, left %d",
 495				    __le16_to_cpu(ind_desc->msdu_len),
 496				    amsdu_len);
 497		}
 498		return 0;
 499	}
 500
 501	ind_desc++;
 502	paddr = __le32_to_cpu(ind_desc->msdu_paddr);
 503	frag_buf = ath10k_htt_rx_pop_paddr(htt, paddr);
 504	if (!frag_buf) {
 505		ath10k_warn(ar, "failed to pop frag-1 paddr: 0x%x", paddr);
 506		return -ENOENT;
 507	}
 508
 509	skb_put(frag_buf, min(amsdu_len, HTT_RX_BUF_SIZE));
 510	ath10k_htt_append_frag_list(msdu, frag_buf, amsdu_len);
 511
 512	amsdu_len -= frag_buf->len;
 513	prev_frag_buf = frag_buf;
 514	last_frag = ind_desc->reserved;
 515	while (!last_frag) {
 516		ind_desc++;
 517		paddr = __le32_to_cpu(ind_desc->msdu_paddr);
 518		frag_buf = ath10k_htt_rx_pop_paddr(htt, paddr);
 519		if (!frag_buf) {
 520			ath10k_warn(ar, "failed to pop frag-n paddr: 0x%x",
 521				    paddr);
 522			prev_frag_buf->next = NULL;
 523			return -ENOENT;
 524		}
 525
 526		skb_put(frag_buf, min(amsdu_len, HTT_RX_BUF_SIZE));
 527		last_frag = ind_desc->reserved;
 528		amsdu_len -= frag_buf->len;
 529
 530		prev_frag_buf->next = frag_buf;
 531		prev_frag_buf = frag_buf;
 532	}
 533
 534	if (amsdu_len) {
 535		ath10k_warn(ar, "invalid amsdu len %u, left %d",
 536			    __le16_to_cpu(ind_desc->msdu_len), amsdu_len);
 537	}
 538
 539	*msdu_desc = ind_desc;
 540
 541	prev_frag_buf->next = NULL;
 542	return 0;
 543}
 544
 545static int
 546ath10k_htt_rx_handle_amsdu_mon_64(struct ath10k_htt *htt,
 547				  struct sk_buff *msdu,
 548				  struct htt_rx_in_ord_msdu_desc_ext **msdu_desc)
 549{
 550	struct ath10k *ar = htt->ar;
 
 551	u64 paddr;
 552	struct sk_buff *frag_buf;
 553	struct sk_buff *prev_frag_buf;
 554	u8 last_frag;
 555	struct htt_rx_in_ord_msdu_desc_ext *ind_desc = *msdu_desc;
 556	struct htt_rx_desc *rxd;
 557	int amsdu_len = __le16_to_cpu(ind_desc->msdu_len);
 558
 559	rxd = (void *)msdu->data;
 560	trace_ath10k_htt_rx_desc(ar, rxd, sizeof(*rxd));
 561
 562	skb_put(msdu, sizeof(struct htt_rx_desc));
 563	skb_pull(msdu, sizeof(struct htt_rx_desc));
 564	skb_put(msdu, min(amsdu_len, HTT_RX_MSDU_SIZE));
 565	amsdu_len -= msdu->len;
 566
 567	last_frag = ind_desc->reserved;
 568	if (last_frag) {
 569		if (amsdu_len) {
 570			ath10k_warn(ar, "invalid amsdu len %u, left %d",
 571				    __le16_to_cpu(ind_desc->msdu_len),
 572				    amsdu_len);
 573		}
 574		return 0;
 575	}
 576
 577	ind_desc++;
 578	paddr = __le64_to_cpu(ind_desc->msdu_paddr);
 579	frag_buf = ath10k_htt_rx_pop_paddr(htt, paddr);
 580	if (!frag_buf) {
 581		ath10k_warn(ar, "failed to pop frag-1 paddr: 0x%llx", paddr);
 582		return -ENOENT;
 583	}
 584
 585	skb_put(frag_buf, min(amsdu_len, HTT_RX_BUF_SIZE));
 586	ath10k_htt_append_frag_list(msdu, frag_buf, amsdu_len);
 587
 588	amsdu_len -= frag_buf->len;
 589	prev_frag_buf = frag_buf;
 590	last_frag = ind_desc->reserved;
 591	while (!last_frag) {
 592		ind_desc++;
 593		paddr = __le64_to_cpu(ind_desc->msdu_paddr);
 594		frag_buf = ath10k_htt_rx_pop_paddr(htt, paddr);
 595		if (!frag_buf) {
 596			ath10k_warn(ar, "failed to pop frag-n paddr: 0x%llx",
 597				    paddr);
 598			prev_frag_buf->next = NULL;
 599			return -ENOENT;
 600		}
 601
 602		skb_put(frag_buf, min(amsdu_len, HTT_RX_BUF_SIZE));
 603		last_frag = ind_desc->reserved;
 604		amsdu_len -= frag_buf->len;
 605
 606		prev_frag_buf->next = frag_buf;
 607		prev_frag_buf = frag_buf;
 608	}
 609
 610	if (amsdu_len) {
 611		ath10k_warn(ar, "invalid amsdu len %u, left %d",
 612			    __le16_to_cpu(ind_desc->msdu_len), amsdu_len);
 613	}
 614
 615	*msdu_desc = ind_desc;
 616
 617	prev_frag_buf->next = NULL;
 618	return 0;
 619}
 620
 621static int ath10k_htt_rx_pop_paddr32_list(struct ath10k_htt *htt,
 622					  struct htt_rx_in_ord_ind *ev,
 623					  struct sk_buff_head *list)
 624{
 625	struct ath10k *ar = htt->ar;
 
 626	struct htt_rx_in_ord_msdu_desc *msdu_desc = ev->msdu_descs32;
 627	struct htt_rx_desc *rxd;
 
 628	struct sk_buff *msdu;
 629	int msdu_count, ret;
 630	bool is_offload;
 631	u32 paddr;
 632
 633	lockdep_assert_held(&htt->rx_ring.lock);
 634
 635	msdu_count = __le16_to_cpu(ev->msdu_count);
 636	is_offload = !!(ev->info & HTT_RX_IN_ORD_IND_INFO_OFFLOAD_MASK);
 637
 638	while (msdu_count--) {
 639		paddr = __le32_to_cpu(msdu_desc->msdu_paddr);
 640
 641		msdu = ath10k_htt_rx_pop_paddr(htt, paddr);
 642		if (!msdu) {
 643			__skb_queue_purge(list);
 644			return -ENOENT;
 645		}
 646
 647		if (!is_offload && ar->monitor_arvif) {
 648			ret = ath10k_htt_rx_handle_amsdu_mon_32(htt, msdu,
 649								&msdu_desc);
 650			if (ret) {
 651				__skb_queue_purge(list);
 652				return ret;
 653			}
 654			__skb_queue_tail(list, msdu);
 655			msdu_desc++;
 656			continue;
 657		}
 658
 659		__skb_queue_tail(list, msdu);
 660
 661		if (!is_offload) {
 662			rxd = (void *)msdu->data;
 
 663
 664			trace_ath10k_htt_rx_desc(ar, rxd, sizeof(*rxd));
 665
 666			skb_put(msdu, sizeof(*rxd));
 667			skb_pull(msdu, sizeof(*rxd));
 668			skb_put(msdu, __le16_to_cpu(msdu_desc->msdu_len));
 669
 670			if (!(__le32_to_cpu(rxd->attention.flags) &
 671			      RX_ATTENTION_FLAGS_MSDU_DONE)) {
 672				ath10k_warn(htt->ar, "tried to pop an incomplete frame, oops!\n");
 673				return -EIO;
 674			}
 675		}
 676
 677		msdu_desc++;
 678	}
 679
 680	return 0;
 681}
 682
 683static int ath10k_htt_rx_pop_paddr64_list(struct ath10k_htt *htt,
 684					  struct htt_rx_in_ord_ind *ev,
 685					  struct sk_buff_head *list)
 686{
 687	struct ath10k *ar = htt->ar;
 
 688	struct htt_rx_in_ord_msdu_desc_ext *msdu_desc = ev->msdu_descs64;
 689	struct htt_rx_desc *rxd;
 
 690	struct sk_buff *msdu;
 691	int msdu_count, ret;
 692	bool is_offload;
 693	u64 paddr;
 694
 695	lockdep_assert_held(&htt->rx_ring.lock);
 696
 697	msdu_count = __le16_to_cpu(ev->msdu_count);
 698	is_offload = !!(ev->info & HTT_RX_IN_ORD_IND_INFO_OFFLOAD_MASK);
 699
 700	while (msdu_count--) {
 701		paddr = __le64_to_cpu(msdu_desc->msdu_paddr);
 702		msdu = ath10k_htt_rx_pop_paddr(htt, paddr);
 703		if (!msdu) {
 704			__skb_queue_purge(list);
 705			return -ENOENT;
 706		}
 707
 708		if (!is_offload && ar->monitor_arvif) {
 709			ret = ath10k_htt_rx_handle_amsdu_mon_64(htt, msdu,
 710								&msdu_desc);
 711			if (ret) {
 712				__skb_queue_purge(list);
 713				return ret;
 714			}
 715			__skb_queue_tail(list, msdu);
 716			msdu_desc++;
 717			continue;
 718		}
 719
 720		__skb_queue_tail(list, msdu);
 721
 722		if (!is_offload) {
 723			rxd = (void *)msdu->data;
 
 724
 725			trace_ath10k_htt_rx_desc(ar, rxd, sizeof(*rxd));
 726
 727			skb_put(msdu, sizeof(*rxd));
 728			skb_pull(msdu, sizeof(*rxd));
 729			skb_put(msdu, __le16_to_cpu(msdu_desc->msdu_len));
 730
 731			if (!(__le32_to_cpu(rxd->attention.flags) &
 732			      RX_ATTENTION_FLAGS_MSDU_DONE)) {
 733				ath10k_warn(htt->ar, "tried to pop an incomplete frame, oops!\n");
 734				return -EIO;
 735			}
 736		}
 737
 738		msdu_desc++;
 739	}
 740
 741	return 0;
 742}
 743
 744int ath10k_htt_rx_alloc(struct ath10k_htt *htt)
 745{
 746	struct ath10k *ar = htt->ar;
 747	dma_addr_t paddr;
 748	void *vaddr, *vaddr_ring;
 749	size_t size;
 750	struct timer_list *timer = &htt->rx_ring.refill_retry_timer;
 751
 752	if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
 753		return 0;
 754
 755	htt->rx_confused = false;
 756
 757	/* XXX: The fill level could be changed during runtime in response to
 758	 * the host processing latency. Is this really worth it?
 759	 */
 760	htt->rx_ring.size = HTT_RX_RING_SIZE;
 761	htt->rx_ring.size_mask = htt->rx_ring.size - 1;
 762	htt->rx_ring.fill_level = ar->hw_params.rx_ring_fill_level;
 763
 764	if (!is_power_of_2(htt->rx_ring.size)) {
 765		ath10k_warn(ar, "htt rx ring size is not power of 2\n");
 766		return -EINVAL;
 767	}
 768
 769	htt->rx_ring.netbufs_ring =
 770		kcalloc(htt->rx_ring.size, sizeof(struct sk_buff *),
 771			GFP_KERNEL);
 772	if (!htt->rx_ring.netbufs_ring)
 773		goto err_netbuf;
 774
 775	size = ath10k_htt_get_rx_ring_size(htt);
 776
 777	vaddr_ring = dma_alloc_coherent(htt->ar->dev, size, &paddr, GFP_KERNEL);
 778	if (!vaddr_ring)
 779		goto err_dma_ring;
 780
 781	ath10k_htt_config_paddrs_ring(htt, vaddr_ring);
 782	htt->rx_ring.base_paddr = paddr;
 783
 784	vaddr = dma_alloc_coherent(htt->ar->dev,
 785				   sizeof(*htt->rx_ring.alloc_idx.vaddr),
 786				   &paddr, GFP_KERNEL);
 787	if (!vaddr)
 788		goto err_dma_idx;
 789
 790	htt->rx_ring.alloc_idx.vaddr = vaddr;
 791	htt->rx_ring.alloc_idx.paddr = paddr;
 792	htt->rx_ring.sw_rd_idx.msdu_payld = htt->rx_ring.size_mask;
 793	*htt->rx_ring.alloc_idx.vaddr = 0;
 794
 795	/* Initialize the Rx refill retry timer */
 796	timer_setup(timer, ath10k_htt_rx_ring_refill_retry, 0);
 797
 798	spin_lock_init(&htt->rx_ring.lock);
 799
 800	htt->rx_ring.fill_cnt = 0;
 801	htt->rx_ring.sw_rd_idx.msdu_payld = 0;
 802	hash_init(htt->rx_ring.skb_table);
 803
 804	skb_queue_head_init(&htt->rx_msdus_q);
 805	skb_queue_head_init(&htt->rx_in_ord_compl_q);
 806	skb_queue_head_init(&htt->tx_fetch_ind_q);
 807	atomic_set(&htt->num_mpdus_ready, 0);
 808
 809	ath10k_dbg(ar, ATH10K_DBG_BOOT, "htt rx ring size %d fill_level %d\n",
 810		   htt->rx_ring.size, htt->rx_ring.fill_level);
 811	return 0;
 812
 813err_dma_idx:
 814	dma_free_coherent(htt->ar->dev,
 815			  ath10k_htt_get_rx_ring_size(htt),
 816			  vaddr_ring,
 817			  htt->rx_ring.base_paddr);
 
 818err_dma_ring:
 819	kfree(htt->rx_ring.netbufs_ring);
 
 820err_netbuf:
 821	return -ENOMEM;
 822}
 823
 824static int ath10k_htt_rx_crypto_param_len(struct ath10k *ar,
 825					  enum htt_rx_mpdu_encrypt_type type)
 826{
 827	switch (type) {
 828	case HTT_RX_MPDU_ENCRYPT_NONE:
 829		return 0;
 830	case HTT_RX_MPDU_ENCRYPT_WEP40:
 831	case HTT_RX_MPDU_ENCRYPT_WEP104:
 832		return IEEE80211_WEP_IV_LEN;
 833	case HTT_RX_MPDU_ENCRYPT_TKIP_WITHOUT_MIC:
 834	case HTT_RX_MPDU_ENCRYPT_TKIP_WPA:
 835		return IEEE80211_TKIP_IV_LEN;
 836	case HTT_RX_MPDU_ENCRYPT_AES_CCM_WPA2:
 837		return IEEE80211_CCMP_HDR_LEN;
 838	case HTT_RX_MPDU_ENCRYPT_AES_CCM256_WPA2:
 839		return IEEE80211_CCMP_256_HDR_LEN;
 840	case HTT_RX_MPDU_ENCRYPT_AES_GCMP_WPA2:
 841	case HTT_RX_MPDU_ENCRYPT_AES_GCMP256_WPA2:
 842		return IEEE80211_GCMP_HDR_LEN;
 843	case HTT_RX_MPDU_ENCRYPT_WEP128:
 844	case HTT_RX_MPDU_ENCRYPT_WAPI:
 845		break;
 846	}
 847
 848	ath10k_warn(ar, "unsupported encryption type %d\n", type);
 849	return 0;
 850}
 851
 852#define MICHAEL_MIC_LEN 8
 853
 854static int ath10k_htt_rx_crypto_mic_len(struct ath10k *ar,
 855					enum htt_rx_mpdu_encrypt_type type)
 856{
 857	switch (type) {
 858	case HTT_RX_MPDU_ENCRYPT_NONE:
 859	case HTT_RX_MPDU_ENCRYPT_WEP40:
 860	case HTT_RX_MPDU_ENCRYPT_WEP104:
 861	case HTT_RX_MPDU_ENCRYPT_TKIP_WITHOUT_MIC:
 862	case HTT_RX_MPDU_ENCRYPT_TKIP_WPA:
 863		return 0;
 864	case HTT_RX_MPDU_ENCRYPT_AES_CCM_WPA2:
 865		return IEEE80211_CCMP_MIC_LEN;
 866	case HTT_RX_MPDU_ENCRYPT_AES_CCM256_WPA2:
 867		return IEEE80211_CCMP_256_MIC_LEN;
 868	case HTT_RX_MPDU_ENCRYPT_AES_GCMP_WPA2:
 869	case HTT_RX_MPDU_ENCRYPT_AES_GCMP256_WPA2:
 870		return IEEE80211_GCMP_MIC_LEN;
 871	case HTT_RX_MPDU_ENCRYPT_WEP128:
 872	case HTT_RX_MPDU_ENCRYPT_WAPI:
 873		break;
 874	}
 875
 876	ath10k_warn(ar, "unsupported encryption type %d\n", type);
 877	return 0;
 878}
 879
 880static int ath10k_htt_rx_crypto_icv_len(struct ath10k *ar,
 881					enum htt_rx_mpdu_encrypt_type type)
 882{
 883	switch (type) {
 884	case HTT_RX_MPDU_ENCRYPT_NONE:
 885	case HTT_RX_MPDU_ENCRYPT_AES_CCM_WPA2:
 886	case HTT_RX_MPDU_ENCRYPT_AES_CCM256_WPA2:
 887	case HTT_RX_MPDU_ENCRYPT_AES_GCMP_WPA2:
 888	case HTT_RX_MPDU_ENCRYPT_AES_GCMP256_WPA2:
 889		return 0;
 890	case HTT_RX_MPDU_ENCRYPT_WEP40:
 891	case HTT_RX_MPDU_ENCRYPT_WEP104:
 892		return IEEE80211_WEP_ICV_LEN;
 893	case HTT_RX_MPDU_ENCRYPT_TKIP_WITHOUT_MIC:
 894	case HTT_RX_MPDU_ENCRYPT_TKIP_WPA:
 895		return IEEE80211_TKIP_ICV_LEN;
 896	case HTT_RX_MPDU_ENCRYPT_WEP128:
 897	case HTT_RX_MPDU_ENCRYPT_WAPI:
 898		break;
 899	}
 900
 901	ath10k_warn(ar, "unsupported encryption type %d\n", type);
 902	return 0;
 903}
 904
 905struct amsdu_subframe_hdr {
 906	u8 dst[ETH_ALEN];
 907	u8 src[ETH_ALEN];
 908	__be16 len;
 909} __packed;
 910
 911#define GROUP_ID_IS_SU_MIMO(x) ((x) == 0 || (x) == 63)
 912
 913static inline u8 ath10k_bw_to_mac80211_bw(u8 bw)
 914{
 915	u8 ret = 0;
 916
 917	switch (bw) {
 918	case 0:
 919		ret = RATE_INFO_BW_20;
 920		break;
 921	case 1:
 922		ret = RATE_INFO_BW_40;
 923		break;
 924	case 2:
 925		ret = RATE_INFO_BW_80;
 926		break;
 927	case 3:
 928		ret = RATE_INFO_BW_160;
 929		break;
 930	}
 931
 932	return ret;
 933}
 934
 935static void ath10k_htt_rx_h_rates(struct ath10k *ar,
 936				  struct ieee80211_rx_status *status,
 937				  struct htt_rx_desc *rxd)
 938{
 
 
 
 
 
 
 
 939	struct ieee80211_supported_band *sband;
 940	u8 cck, rate, bw, sgi, mcs, nss;
 
 941	u8 preamble = 0;
 942	u8 group_id;
 943	u32 info1, info2, info3;
 
 944
 945	info1 = __le32_to_cpu(rxd->ppdu_start.info1);
 946	info2 = __le32_to_cpu(rxd->ppdu_start.info2);
 947	info3 = __le32_to_cpu(rxd->ppdu_start.info3);
 
 
 
 
 
 
 
 
 948
 949	preamble = MS(info1, RX_PPDU_START_INFO1_PREAMBLE_TYPE);
 950
 951	switch (preamble) {
 952	case HTT_RX_LEGACY:
 953		/* To get legacy rate index band is required. Since band can't
 954		 * be undefined check if freq is non-zero.
 955		 */
 956		if (!status->freq)
 957			return;
 958
 959		cck = info1 & RX_PPDU_START_INFO1_L_SIG_RATE_SELECT;
 960		rate = MS(info1, RX_PPDU_START_INFO1_L_SIG_RATE);
 961		rate &= ~RX_PPDU_START_RATE_FLAG;
 962
 963		sband = &ar->mac.sbands[status->band];
 964		status->rate_idx = ath10k_mac_hw_rate_to_idx(sband, rate, cck);
 965		break;
 966	case HTT_RX_HT:
 967	case HTT_RX_HT_WITH_TXBF:
 968		/* HT-SIG - Table 20-11 in info2 and info3 */
 969		mcs = info2 & 0x1F;
 970		nss = mcs >> 3;
 971		bw = (info2 >> 7) & 1;
 972		sgi = (info3 >> 7) & 1;
 973
 974		status->rate_idx = mcs;
 975		status->encoding = RX_ENC_HT;
 976		if (sgi)
 977			status->enc_flags |= RX_ENC_FLAG_SHORT_GI;
 978		if (bw)
 979			status->bw = RATE_INFO_BW_40;
 980		break;
 981	case HTT_RX_VHT:
 982	case HTT_RX_VHT_WITH_TXBF:
 983		/* VHT-SIG-A1 in info2, VHT-SIG-A2 in info3
 984		 * TODO check this
 985		 */
 986		bw = info2 & 3;
 987		sgi = info3 & 1;
 
 988		group_id = (info2 >> 4) & 0x3F;
 989
 990		if (GROUP_ID_IS_SU_MIMO(group_id)) {
 991			mcs = (info3 >> 4) & 0x0F;
 992			nss = ((info2 >> 10) & 0x07) + 1;
 
 
 
 
 993		} else {
 994			/* Hardware doesn't decode VHT-SIG-B into Rx descriptor
 995			 * so it's impossible to decode MCS. Also since
 996			 * firmware consumes Group Id Management frames host
 997			 * has no knowledge regarding group/user position
 998			 * mapping so it's impossible to pick the correct Nsts
 999			 * from VHT-SIG-A1.
1000			 *
1001			 * Bandwidth and SGI are valid so report the rateinfo
1002			 * on best-effort basis.
1003			 */
1004			mcs = 0;
1005			nss = 1;
1006		}
1007
1008		if (mcs > 0x09) {
1009			ath10k_warn(ar, "invalid MCS received %u\n", mcs);
1010			ath10k_warn(ar, "rxd %08x mpdu start %08x %08x msdu start %08x %08x ppdu start %08x %08x %08x %08x %08x\n",
1011				    __le32_to_cpu(rxd->attention.flags),
1012				    __le32_to_cpu(rxd->mpdu_start.info0),
1013				    __le32_to_cpu(rxd->mpdu_start.info1),
1014				    __le32_to_cpu(rxd->msdu_start.common.info0),
1015				    __le32_to_cpu(rxd->msdu_start.common.info1),
1016				    rxd->ppdu_start.info0,
1017				    __le32_to_cpu(rxd->ppdu_start.info1),
1018				    __le32_to_cpu(rxd->ppdu_start.info2),
1019				    __le32_to_cpu(rxd->ppdu_start.info3),
1020				    __le32_to_cpu(rxd->ppdu_start.info4));
1021
1022			ath10k_warn(ar, "msdu end %08x mpdu end %08x\n",
1023				    __le32_to_cpu(rxd->msdu_end.common.info0),
1024				    __le32_to_cpu(rxd->mpdu_end.info0));
1025
1026			ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL,
1027					"rx desc msdu payload: ",
1028					rxd->msdu_payload, 50);
1029		}
1030
1031		status->rate_idx = mcs;
1032		status->nss = nss;
1033
1034		if (sgi)
1035			status->enc_flags |= RX_ENC_FLAG_SHORT_GI;
1036
1037		status->bw = ath10k_bw_to_mac80211_bw(bw);
1038		status->encoding = RX_ENC_VHT;
1039		break;
1040	default:
1041		break;
1042	}
1043}
1044
1045static struct ieee80211_channel *
1046ath10k_htt_rx_h_peer_channel(struct ath10k *ar, struct htt_rx_desc *rxd)
1047{
 
 
 
 
1048	struct ath10k_peer *peer;
1049	struct ath10k_vif *arvif;
1050	struct cfg80211_chan_def def;
1051	u16 peer_id;
1052
1053	lockdep_assert_held(&ar->data_lock);
1054
1055	if (!rxd)
1056		return NULL;
1057
1058	if (rxd->attention.flags &
 
 
 
 
1059	    __cpu_to_le32(RX_ATTENTION_FLAGS_PEER_IDX_INVALID))
1060		return NULL;
1061
1062	if (!(rxd->msdu_end.common.info0 &
1063	      __cpu_to_le32(RX_MSDU_END_INFO0_FIRST_MSDU)))
1064		return NULL;
1065
1066	peer_id = MS(__le32_to_cpu(rxd->mpdu_start.info0),
1067		     RX_MPDU_START_INFO0_PEER_IDX);
1068
1069	peer = ath10k_peer_find_by_id(ar, peer_id);
1070	if (!peer)
1071		return NULL;
1072
1073	arvif = ath10k_get_arvif(ar, peer->vdev_id);
1074	if (WARN_ON_ONCE(!arvif))
1075		return NULL;
1076
1077	if (ath10k_mac_vif_chan(arvif->vif, &def))
1078		return NULL;
1079
1080	return def.chan;
1081}
1082
1083static struct ieee80211_channel *
1084ath10k_htt_rx_h_vdev_channel(struct ath10k *ar, u32 vdev_id)
1085{
1086	struct ath10k_vif *arvif;
1087	struct cfg80211_chan_def def;
1088
1089	lockdep_assert_held(&ar->data_lock);
1090
1091	list_for_each_entry(arvif, &ar->arvifs, list) {
1092		if (arvif->vdev_id == vdev_id &&
1093		    ath10k_mac_vif_chan(arvif->vif, &def) == 0)
1094			return def.chan;
1095	}
1096
1097	return NULL;
1098}
1099
1100static void
1101ath10k_htt_rx_h_any_chan_iter(struct ieee80211_hw *hw,
1102			      struct ieee80211_chanctx_conf *conf,
1103			      void *data)
1104{
1105	struct cfg80211_chan_def *def = data;
1106
1107	*def = conf->def;
1108}
1109
1110static struct ieee80211_channel *
1111ath10k_htt_rx_h_any_channel(struct ath10k *ar)
1112{
1113	struct cfg80211_chan_def def = {};
1114
1115	ieee80211_iter_chan_contexts_atomic(ar->hw,
1116					    ath10k_htt_rx_h_any_chan_iter,
1117					    &def);
1118
1119	return def.chan;
1120}
1121
1122static bool ath10k_htt_rx_h_channel(struct ath10k *ar,
1123				    struct ieee80211_rx_status *status,
1124				    struct htt_rx_desc *rxd,
1125				    u32 vdev_id)
1126{
1127	struct ieee80211_channel *ch;
1128
1129	spin_lock_bh(&ar->data_lock);
1130	ch = ar->scan_channel;
1131	if (!ch)
1132		ch = ar->rx_channel;
1133	if (!ch)
1134		ch = ath10k_htt_rx_h_peer_channel(ar, rxd);
1135	if (!ch)
1136		ch = ath10k_htt_rx_h_vdev_channel(ar, vdev_id);
1137	if (!ch)
1138		ch = ath10k_htt_rx_h_any_channel(ar);
1139	if (!ch)
1140		ch = ar->tgt_oper_chan;
1141	spin_unlock_bh(&ar->data_lock);
1142
1143	if (!ch)
1144		return false;
1145
1146	status->band = ch->band;
1147	status->freq = ch->center_freq;
1148
1149	return true;
1150}
1151
1152static void ath10k_htt_rx_h_signal(struct ath10k *ar,
1153				   struct ieee80211_rx_status *status,
1154				   struct htt_rx_desc *rxd)
1155{
 
 
1156	int i;
1157
1158	for (i = 0; i < IEEE80211_MAX_CHAINS ; i++) {
1159		status->chains &= ~BIT(i);
1160
1161		if (rxd->ppdu_start.rssi_chains[i].pri20_mhz != 0x80) {
1162			status->chain_signal[i] = ATH10K_DEFAULT_NOISE_FLOOR +
1163				rxd->ppdu_start.rssi_chains[i].pri20_mhz;
1164
1165			status->chains |= BIT(i);
1166		}
1167	}
1168
1169	/* FIXME: Get real NF */
1170	status->signal = ATH10K_DEFAULT_NOISE_FLOOR +
1171			 rxd->ppdu_start.rssi_comb;
1172	status->flag &= ~RX_FLAG_NO_SIGNAL_VAL;
1173}
1174
1175static void ath10k_htt_rx_h_mactime(struct ath10k *ar,
1176				    struct ieee80211_rx_status *status,
1177				    struct htt_rx_desc *rxd)
1178{
 
 
 
 
 
1179	/* FIXME: TSF is known only at the end of PPDU, in the last MPDU. This
1180	 * means all prior MSDUs in a PPDU are reported to mac80211 without the
1181	 * TSF. Is it worth holding frames until end of PPDU is known?
1182	 *
1183	 * FIXME: Can we get/compute 64bit TSF?
1184	 */
1185	status->mactime = __le32_to_cpu(rxd->ppdu_end.common.tsf_timestamp);
1186	status->flag |= RX_FLAG_MACTIME_END;
1187}
1188
1189static void ath10k_htt_rx_h_ppdu(struct ath10k *ar,
1190				 struct sk_buff_head *amsdu,
1191				 struct ieee80211_rx_status *status,
1192				 u32 vdev_id)
1193{
1194	struct sk_buff *first;
 
1195	struct htt_rx_desc *rxd;
 
1196	bool is_first_ppdu;
1197	bool is_last_ppdu;
1198
1199	if (skb_queue_empty(amsdu))
1200		return;
1201
1202	first = skb_peek(amsdu);
1203	rxd = (void *)first->data - sizeof(*rxd);
 
 
 
1204
1205	is_first_ppdu = !!(rxd->attention.flags &
1206			   __cpu_to_le32(RX_ATTENTION_FLAGS_FIRST_MPDU));
1207	is_last_ppdu = !!(rxd->attention.flags &
1208			  __cpu_to_le32(RX_ATTENTION_FLAGS_LAST_MPDU));
1209
1210	if (is_first_ppdu) {
1211		/* New PPDU starts so clear out the old per-PPDU status. */
1212		status->freq = 0;
1213		status->rate_idx = 0;
1214		status->nss = 0;
1215		status->encoding = RX_ENC_LEGACY;
1216		status->bw = RATE_INFO_BW_20;
1217
1218		status->flag &= ~RX_FLAG_MACTIME_END;
1219		status->flag |= RX_FLAG_NO_SIGNAL_VAL;
1220
1221		status->flag &= ~(RX_FLAG_AMPDU_IS_LAST);
1222		status->flag |= RX_FLAG_AMPDU_DETAILS | RX_FLAG_AMPDU_LAST_KNOWN;
1223		status->ampdu_reference = ar->ampdu_reference;
1224
1225		ath10k_htt_rx_h_signal(ar, status, rxd);
1226		ath10k_htt_rx_h_channel(ar, status, rxd, vdev_id);
1227		ath10k_htt_rx_h_rates(ar, status, rxd);
1228	}
1229
1230	if (is_last_ppdu) {
1231		ath10k_htt_rx_h_mactime(ar, status, rxd);
1232
1233		/* set ampdu last segment flag */
1234		status->flag |= RX_FLAG_AMPDU_IS_LAST;
1235		ar->ampdu_reference++;
1236	}
1237}
1238
1239static const char * const tid_to_ac[] = {
1240	"BE",
1241	"BK",
1242	"BK",
1243	"BE",
1244	"VI",
1245	"VI",
1246	"VO",
1247	"VO",
1248};
1249
1250static char *ath10k_get_tid(struct ieee80211_hdr *hdr, char *out, size_t size)
1251{
1252	u8 *qc;
1253	int tid;
1254
1255	if (!ieee80211_is_data_qos(hdr->frame_control))
1256		return "";
1257
1258	qc = ieee80211_get_qos_ctl(hdr);
1259	tid = *qc & IEEE80211_QOS_CTL_TID_MASK;
1260	if (tid < 8)
1261		snprintf(out, size, "tid %d (%s)", tid, tid_to_ac[tid]);
1262	else
1263		snprintf(out, size, "tid %d", tid);
1264
1265	return out;
1266}
1267
1268static void ath10k_htt_rx_h_queue_msdu(struct ath10k *ar,
1269				       struct ieee80211_rx_status *rx_status,
1270				       struct sk_buff *skb)
1271{
1272	struct ieee80211_rx_status *status;
1273
1274	status = IEEE80211_SKB_RXCB(skb);
1275	*status = *rx_status;
1276
1277	skb_queue_tail(&ar->htt.rx_msdus_q, skb);
1278}
1279
1280static void ath10k_process_rx(struct ath10k *ar, struct sk_buff *skb)
1281{
1282	struct ieee80211_rx_status *status;
1283	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
1284	char tid[32];
1285
1286	status = IEEE80211_SKB_RXCB(skb);
1287
 
 
 
 
 
 
 
1288	ath10k_dbg(ar, ATH10K_DBG_DATA,
1289		   "rx skb %pK len %u peer %pM %s %s sn %u %s%s%s%s%s%s %srate_idx %u vht_nss %u freq %u band %u flag 0x%x fcs-err %i mic-err %i amsdu-more %i\n",
1290		   skb,
1291		   skb->len,
1292		   ieee80211_get_SA(hdr),
1293		   ath10k_get_tid(hdr, tid, sizeof(tid)),
1294		   is_multicast_ether_addr(ieee80211_get_DA(hdr)) ?
1295							"mcast" : "ucast",
1296		   (__le16_to_cpu(hdr->seq_ctrl) & IEEE80211_SCTL_SEQ) >> 4,
1297		   (status->encoding == RX_ENC_LEGACY) ? "legacy" : "",
1298		   (status->encoding == RX_ENC_HT) ? "ht" : "",
1299		   (status->encoding == RX_ENC_VHT) ? "vht" : "",
1300		   (status->bw == RATE_INFO_BW_40) ? "40" : "",
1301		   (status->bw == RATE_INFO_BW_80) ? "80" : "",
1302		   (status->bw == RATE_INFO_BW_160) ? "160" : "",
1303		   status->enc_flags & RX_ENC_FLAG_SHORT_GI ? "sgi " : "",
1304		   status->rate_idx,
1305		   status->nss,
1306		   status->freq,
1307		   status->band, status->flag,
1308		   !!(status->flag & RX_FLAG_FAILED_FCS_CRC),
1309		   !!(status->flag & RX_FLAG_MMIC_ERROR),
1310		   !!(status->flag & RX_FLAG_AMSDU_MORE));
1311	ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "rx skb: ",
1312			skb->data, skb->len);
1313	trace_ath10k_rx_hdr(ar, skb->data, skb->len);
1314	trace_ath10k_rx_payload(ar, skb->data, skb->len);
1315
1316	ieee80211_rx_napi(ar->hw, NULL, skb, &ar->napi);
1317}
1318
1319static int ath10k_htt_rx_nwifi_hdrlen(struct ath10k *ar,
1320				      struct ieee80211_hdr *hdr)
1321{
1322	int len = ieee80211_hdrlen(hdr->frame_control);
1323
1324	if (!test_bit(ATH10K_FW_FEATURE_NO_NWIFI_DECAP_4ADDR_PADDING,
1325		      ar->running_fw->fw_file.fw_features))
1326		len = round_up(len, 4);
1327
1328	return len;
1329}
1330
1331static void ath10k_htt_rx_h_undecap_raw(struct ath10k *ar,
1332					struct sk_buff *msdu,
1333					struct ieee80211_rx_status *status,
1334					enum htt_rx_mpdu_encrypt_type enctype,
1335					bool is_decrypted,
1336					const u8 first_hdr[64])
1337{
1338	struct ieee80211_hdr *hdr;
 
1339	struct htt_rx_desc *rxd;
 
1340	size_t hdr_len;
1341	size_t crypto_len;
1342	bool is_first;
1343	bool is_last;
1344	bool msdu_limit_err;
1345	int bytes_aligned = ar->hw_params.decap_align_bytes;
1346	u8 *qos;
1347
1348	rxd = (void *)msdu->data - sizeof(*rxd);
1349	is_first = !!(rxd->msdu_end.common.info0 &
 
 
 
1350		      __cpu_to_le32(RX_MSDU_END_INFO0_FIRST_MSDU));
1351	is_last = !!(rxd->msdu_end.common.info0 &
1352		     __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU));
1353
1354	/* Delivered decapped frame:
1355	 * [802.11 header]
1356	 * [crypto param] <-- can be trimmed if !fcs_err &&
1357	 *                    !decrypt_err && !peer_idx_invalid
1358	 * [amsdu header] <-- only if A-MSDU
1359	 * [rfc1042/llc]
1360	 * [payload]
1361	 * [FCS] <-- at end, needs to be trimmed
1362	 */
1363
1364	/* Some hardwares(QCA99x0 variants) limit number of msdus in a-msdu when
1365	 * deaggregate, so that unwanted MSDU-deaggregation is avoided for
1366	 * error packets. If limit exceeds, hw sends all remaining MSDUs as
1367	 * a single last MSDU with this msdu limit error set.
1368	 */
1369	msdu_limit_err = ath10k_rx_desc_msdu_limit_error(&ar->hw_params, rxd);
1370
1371	/* If MSDU limit error happens, then don't warn on, the partial raw MSDU
1372	 * without first MSDU is expected in that case, and handled later here.
1373	 */
1374	/* This probably shouldn't happen but warn just in case */
1375	if (WARN_ON_ONCE(!is_first && !msdu_limit_err))
1376		return;
1377
1378	/* This probably shouldn't happen but warn just in case */
1379	if (WARN_ON_ONCE(!(is_first && is_last) && !msdu_limit_err))
1380		return;
1381
1382	skb_trim(msdu, msdu->len - FCS_LEN);
1383
1384	/* Push original 80211 header */
1385	if (unlikely(msdu_limit_err)) {
1386		hdr = (struct ieee80211_hdr *)first_hdr;
1387		hdr_len = ieee80211_hdrlen(hdr->frame_control);
1388		crypto_len = ath10k_htt_rx_crypto_param_len(ar, enctype);
1389
1390		if (ieee80211_is_data_qos(hdr->frame_control)) {
1391			qos = ieee80211_get_qos_ctl(hdr);
1392			qos[0] |= IEEE80211_QOS_CTL_A_MSDU_PRESENT;
1393		}
1394
1395		if (crypto_len)
1396			memcpy(skb_push(msdu, crypto_len),
1397			       (void *)hdr + round_up(hdr_len, bytes_aligned),
1398			       crypto_len);
1399
1400		memcpy(skb_push(msdu, hdr_len), hdr, hdr_len);
1401	}
1402
1403	/* In most cases this will be true for sniffed frames. It makes sense
1404	 * to deliver them as-is without stripping the crypto param. This is
1405	 * necessary for software based decryption.
1406	 *
1407	 * If there's no error then the frame is decrypted. At least that is
1408	 * the case for frames that come in via fragmented rx indication.
1409	 */
1410	if (!is_decrypted)
1411		return;
1412
1413	/* The payload is decrypted so strip crypto params. Start from tail
1414	 * since hdr is used to compute some stuff.
1415	 */
1416
1417	hdr = (void *)msdu->data;
1418
1419	/* Tail */
1420	if (status->flag & RX_FLAG_IV_STRIPPED) {
1421		skb_trim(msdu, msdu->len -
1422			 ath10k_htt_rx_crypto_mic_len(ar, enctype));
1423
1424		skb_trim(msdu, msdu->len -
1425			 ath10k_htt_rx_crypto_icv_len(ar, enctype));
1426	} else {
1427		/* MIC */
1428		if (status->flag & RX_FLAG_MIC_STRIPPED)
1429			skb_trim(msdu, msdu->len -
1430				 ath10k_htt_rx_crypto_mic_len(ar, enctype));
1431
1432		/* ICV */
1433		if (status->flag & RX_FLAG_ICV_STRIPPED)
1434			skb_trim(msdu, msdu->len -
1435				 ath10k_htt_rx_crypto_icv_len(ar, enctype));
1436	}
1437
1438	/* MMIC */
1439	if ((status->flag & RX_FLAG_MMIC_STRIPPED) &&
1440	    !ieee80211_has_morefrags(hdr->frame_control) &&
1441	    enctype == HTT_RX_MPDU_ENCRYPT_TKIP_WPA)
1442		skb_trim(msdu, msdu->len - MICHAEL_MIC_LEN);
1443
1444	/* Head */
1445	if (status->flag & RX_FLAG_IV_STRIPPED) {
1446		hdr_len = ieee80211_hdrlen(hdr->frame_control);
1447		crypto_len = ath10k_htt_rx_crypto_param_len(ar, enctype);
1448
1449		memmove((void *)msdu->data + crypto_len,
1450			(void *)msdu->data, hdr_len);
1451		skb_pull(msdu, crypto_len);
1452	}
1453}
1454
1455static void ath10k_htt_rx_h_undecap_nwifi(struct ath10k *ar,
1456					  struct sk_buff *msdu,
1457					  struct ieee80211_rx_status *status,
1458					  const u8 first_hdr[64],
1459					  enum htt_rx_mpdu_encrypt_type enctype)
1460{
 
1461	struct ieee80211_hdr *hdr;
1462	struct htt_rx_desc *rxd;
1463	size_t hdr_len;
1464	u8 da[ETH_ALEN];
1465	u8 sa[ETH_ALEN];
1466	int l3_pad_bytes;
1467	int bytes_aligned = ar->hw_params.decap_align_bytes;
1468
1469	/* Delivered decapped frame:
1470	 * [nwifi 802.11 header] <-- replaced with 802.11 hdr
1471	 * [rfc1042/llc]
1472	 *
1473	 * Note: The nwifi header doesn't have QoS Control and is
1474	 * (always?) a 3addr frame.
1475	 *
1476	 * Note2: There's no A-MSDU subframe header. Even if it's part
1477	 * of an A-MSDU.
1478	 */
1479
1480	/* pull decapped header and copy SA & DA */
1481	rxd = (void *)msdu->data - sizeof(*rxd);
 
1482
1483	l3_pad_bytes = ath10k_rx_desc_get_l3_pad_bytes(&ar->hw_params, rxd);
1484	skb_put(msdu, l3_pad_bytes);
1485
1486	hdr = (struct ieee80211_hdr *)(msdu->data + l3_pad_bytes);
1487
1488	hdr_len = ath10k_htt_rx_nwifi_hdrlen(ar, hdr);
1489	ether_addr_copy(da, ieee80211_get_DA(hdr));
1490	ether_addr_copy(sa, ieee80211_get_SA(hdr));
1491	skb_pull(msdu, hdr_len);
1492
1493	/* push original 802.11 header */
1494	hdr = (struct ieee80211_hdr *)first_hdr;
1495	hdr_len = ieee80211_hdrlen(hdr->frame_control);
1496
1497	if (!(status->flag & RX_FLAG_IV_STRIPPED)) {
1498		memcpy(skb_push(msdu,
1499				ath10k_htt_rx_crypto_param_len(ar, enctype)),
1500		       (void *)hdr + round_up(hdr_len, bytes_aligned),
1501			ath10k_htt_rx_crypto_param_len(ar, enctype));
1502	}
1503
1504	memcpy(skb_push(msdu, hdr_len), hdr, hdr_len);
1505
1506	/* original 802.11 header has a different DA and in
1507	 * case of 4addr it may also have different SA
1508	 */
1509	hdr = (struct ieee80211_hdr *)msdu->data;
1510	ether_addr_copy(ieee80211_get_DA(hdr), da);
1511	ether_addr_copy(ieee80211_get_SA(hdr), sa);
1512}
1513
1514static void *ath10k_htt_rx_h_find_rfc1042(struct ath10k *ar,
1515					  struct sk_buff *msdu,
1516					  enum htt_rx_mpdu_encrypt_type enctype)
1517{
1518	struct ieee80211_hdr *hdr;
 
1519	struct htt_rx_desc *rxd;
 
 
1520	size_t hdr_len, crypto_len;
1521	void *rfc1042;
1522	bool is_first, is_last, is_amsdu;
1523	int bytes_aligned = ar->hw_params.decap_align_bytes;
1524
1525	rxd = (void *)msdu->data - sizeof(*rxd);
1526	hdr = (void *)rxd->rx_hdr_status;
1527
1528	is_first = !!(rxd->msdu_end.common.info0 &
 
 
 
 
1529		      __cpu_to_le32(RX_MSDU_END_INFO0_FIRST_MSDU));
1530	is_last = !!(rxd->msdu_end.common.info0 &
1531		     __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU));
1532	is_amsdu = !(is_first && is_last);
1533
1534	rfc1042 = hdr;
1535
1536	if (is_first) {
1537		hdr_len = ieee80211_hdrlen(hdr->frame_control);
1538		crypto_len = ath10k_htt_rx_crypto_param_len(ar, enctype);
1539
1540		rfc1042 += round_up(hdr_len, bytes_aligned) +
1541			   round_up(crypto_len, bytes_aligned);
1542	}
1543
1544	if (is_amsdu)
1545		rfc1042 += sizeof(struct amsdu_subframe_hdr);
1546
1547	return rfc1042;
1548}
1549
1550static void ath10k_htt_rx_h_undecap_eth(struct ath10k *ar,
1551					struct sk_buff *msdu,
1552					struct ieee80211_rx_status *status,
1553					const u8 first_hdr[64],
1554					enum htt_rx_mpdu_encrypt_type enctype)
1555{
 
1556	struct ieee80211_hdr *hdr;
1557	struct ethhdr *eth;
1558	size_t hdr_len;
1559	void *rfc1042;
1560	u8 da[ETH_ALEN];
1561	u8 sa[ETH_ALEN];
1562	int l3_pad_bytes;
1563	struct htt_rx_desc *rxd;
1564	int bytes_aligned = ar->hw_params.decap_align_bytes;
1565
1566	/* Delivered decapped frame:
1567	 * [eth header] <-- replaced with 802.11 hdr & rfc1042/llc
1568	 * [payload]
1569	 */
1570
1571	rfc1042 = ath10k_htt_rx_h_find_rfc1042(ar, msdu, enctype);
1572	if (WARN_ON_ONCE(!rfc1042))
1573		return;
1574
1575	rxd = (void *)msdu->data - sizeof(*rxd);
1576	l3_pad_bytes = ath10k_rx_desc_get_l3_pad_bytes(&ar->hw_params, rxd);
 
 
1577	skb_put(msdu, l3_pad_bytes);
1578	skb_pull(msdu, l3_pad_bytes);
1579
1580	/* pull decapped header and copy SA & DA */
1581	eth = (struct ethhdr *)msdu->data;
1582	ether_addr_copy(da, eth->h_dest);
1583	ether_addr_copy(sa, eth->h_source);
1584	skb_pull(msdu, sizeof(struct ethhdr));
1585
1586	/* push rfc1042/llc/snap */
1587	memcpy(skb_push(msdu, sizeof(struct rfc1042_hdr)), rfc1042,
1588	       sizeof(struct rfc1042_hdr));
1589
1590	/* push original 802.11 header */
1591	hdr = (struct ieee80211_hdr *)first_hdr;
1592	hdr_len = ieee80211_hdrlen(hdr->frame_control);
1593
1594	if (!(status->flag & RX_FLAG_IV_STRIPPED)) {
1595		memcpy(skb_push(msdu,
1596				ath10k_htt_rx_crypto_param_len(ar, enctype)),
1597		       (void *)hdr + round_up(hdr_len, bytes_aligned),
1598			ath10k_htt_rx_crypto_param_len(ar, enctype));
1599	}
1600
1601	memcpy(skb_push(msdu, hdr_len), hdr, hdr_len);
1602
1603	/* original 802.11 header has a different DA and in
1604	 * case of 4addr it may also have different SA
1605	 */
1606	hdr = (struct ieee80211_hdr *)msdu->data;
1607	ether_addr_copy(ieee80211_get_DA(hdr), da);
1608	ether_addr_copy(ieee80211_get_SA(hdr), sa);
1609}
1610
1611static void ath10k_htt_rx_h_undecap_snap(struct ath10k *ar,
1612					 struct sk_buff *msdu,
1613					 struct ieee80211_rx_status *status,
1614					 const u8 first_hdr[64],
1615					 enum htt_rx_mpdu_encrypt_type enctype)
1616{
 
1617	struct ieee80211_hdr *hdr;
1618	size_t hdr_len;
1619	int l3_pad_bytes;
1620	struct htt_rx_desc *rxd;
1621	int bytes_aligned = ar->hw_params.decap_align_bytes;
1622
1623	/* Delivered decapped frame:
1624	 * [amsdu header] <-- replaced with 802.11 hdr
1625	 * [rfc1042/llc]
1626	 * [payload]
1627	 */
1628
1629	rxd = (void *)msdu->data - sizeof(*rxd);
1630	l3_pad_bytes = ath10k_rx_desc_get_l3_pad_bytes(&ar->hw_params, rxd);
 
 
1631
1632	skb_put(msdu, l3_pad_bytes);
1633	skb_pull(msdu, sizeof(struct amsdu_subframe_hdr) + l3_pad_bytes);
1634
1635	hdr = (struct ieee80211_hdr *)first_hdr;
1636	hdr_len = ieee80211_hdrlen(hdr->frame_control);
1637
1638	if (!(status->flag & RX_FLAG_IV_STRIPPED)) {
1639		memcpy(skb_push(msdu,
1640				ath10k_htt_rx_crypto_param_len(ar, enctype)),
1641		       (void *)hdr + round_up(hdr_len, bytes_aligned),
1642			ath10k_htt_rx_crypto_param_len(ar, enctype));
1643	}
1644
1645	memcpy(skb_push(msdu, hdr_len), hdr, hdr_len);
1646}
1647
1648static void ath10k_htt_rx_h_undecap(struct ath10k *ar,
1649				    struct sk_buff *msdu,
1650				    struct ieee80211_rx_status *status,
1651				    u8 first_hdr[64],
1652				    enum htt_rx_mpdu_encrypt_type enctype,
1653				    bool is_decrypted)
1654{
 
1655	struct htt_rx_desc *rxd;
 
1656	enum rx_msdu_decap_format decap;
1657
1658	/* First msdu's decapped header:
1659	 * [802.11 header] <-- padded to 4 bytes long
1660	 * [crypto param] <-- padded to 4 bytes long
1661	 * [amsdu header] <-- only if A-MSDU
1662	 * [rfc1042/llc]
1663	 *
1664	 * Other (2nd, 3rd, ..) msdu's decapped header:
1665	 * [amsdu header] <-- only if A-MSDU
1666	 * [rfc1042/llc]
1667	 */
1668
1669	rxd = (void *)msdu->data - sizeof(*rxd);
1670	decap = MS(__le32_to_cpu(rxd->msdu_start.common.info1),
 
 
 
1671		   RX_MSDU_START_INFO1_DECAP_FORMAT);
1672
1673	switch (decap) {
1674	case RX_MSDU_DECAP_RAW:
1675		ath10k_htt_rx_h_undecap_raw(ar, msdu, status, enctype,
1676					    is_decrypted, first_hdr);
1677		break;
1678	case RX_MSDU_DECAP_NATIVE_WIFI:
1679		ath10k_htt_rx_h_undecap_nwifi(ar, msdu, status, first_hdr,
1680					      enctype);
1681		break;
1682	case RX_MSDU_DECAP_ETHERNET2_DIX:
1683		ath10k_htt_rx_h_undecap_eth(ar, msdu, status, first_hdr, enctype);
1684		break;
1685	case RX_MSDU_DECAP_8023_SNAP_LLC:
1686		ath10k_htt_rx_h_undecap_snap(ar, msdu, status, first_hdr,
1687					     enctype);
1688		break;
1689	}
1690}
1691
1692static int ath10k_htt_rx_get_csum_state(struct sk_buff *skb)
1693{
1694	struct htt_rx_desc *rxd;
 
 
1695	u32 flags, info;
1696	bool is_ip4, is_ip6;
1697	bool is_tcp, is_udp;
1698	bool ip_csum_ok, tcpudp_csum_ok;
1699
1700	rxd = (void *)skb->data - sizeof(*rxd);
1701	flags = __le32_to_cpu(rxd->attention.flags);
1702	info = __le32_to_cpu(rxd->msdu_start.common.info1);
 
 
 
 
1703
1704	is_ip4 = !!(info & RX_MSDU_START_INFO1_IPV4_PROTO);
1705	is_ip6 = !!(info & RX_MSDU_START_INFO1_IPV6_PROTO);
1706	is_tcp = !!(info & RX_MSDU_START_INFO1_TCP_PROTO);
1707	is_udp = !!(info & RX_MSDU_START_INFO1_UDP_PROTO);
1708	ip_csum_ok = !(flags & RX_ATTENTION_FLAGS_IP_CHKSUM_FAIL);
1709	tcpudp_csum_ok = !(flags & RX_ATTENTION_FLAGS_TCP_UDP_CHKSUM_FAIL);
1710
1711	if (!is_ip4 && !is_ip6)
1712		return CHECKSUM_NONE;
1713	if (!is_tcp && !is_udp)
1714		return CHECKSUM_NONE;
1715	if (!ip_csum_ok)
1716		return CHECKSUM_NONE;
1717	if (!tcpudp_csum_ok)
1718		return CHECKSUM_NONE;
1719
1720	return CHECKSUM_UNNECESSARY;
1721}
1722
1723static void ath10k_htt_rx_h_csum_offload(struct sk_buff *msdu)
 
1724{
1725	msdu->ip_summed = ath10k_htt_rx_get_csum_state(msdu);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1726}
1727
1728static void ath10k_htt_rx_h_mpdu(struct ath10k *ar,
1729				 struct sk_buff_head *amsdu,
1730				 struct ieee80211_rx_status *status,
1731				 bool fill_crypt_header,
1732				 u8 *rx_hdr,
1733				 enum ath10k_pkt_rx_err *err)
 
 
1734{
1735	struct sk_buff *first;
1736	struct sk_buff *last;
1737	struct sk_buff *msdu;
 
1738	struct htt_rx_desc *rxd;
 
 
 
1739	struct ieee80211_hdr *hdr;
1740	enum htt_rx_mpdu_encrypt_type enctype;
1741	u8 first_hdr[64];
1742	u8 *qos;
1743	bool has_fcs_err;
1744	bool has_crypto_err;
1745	bool has_tkip_err;
1746	bool has_peer_idx_invalid;
1747	bool is_decrypted;
1748	bool is_mgmt;
1749	u32 attention;
 
1750
1751	if (skb_queue_empty(amsdu))
1752		return;
1753
1754	first = skb_peek(amsdu);
1755	rxd = (void *)first->data - sizeof(*rxd);
 
 
 
 
1756
1757	is_mgmt = !!(rxd->attention.flags &
1758		     __cpu_to_le32(RX_ATTENTION_FLAGS_MGMT_TYPE));
1759
1760	enctype = MS(__le32_to_cpu(rxd->mpdu_start.info0),
1761		     RX_MPDU_START_INFO0_ENCRYPT_TYPE);
1762
1763	/* First MSDU's Rx descriptor in an A-MSDU contains full 802.11
1764	 * decapped header. It'll be used for undecapping of each MSDU.
1765	 */
1766	hdr = (void *)rxd->rx_hdr_status;
1767	memcpy(first_hdr, hdr, RX_HTT_HDR_STATUS_LEN);
1768
1769	if (rx_hdr)
1770		memcpy(rx_hdr, hdr, RX_HTT_HDR_STATUS_LEN);
1771
1772	/* Each A-MSDU subframe will use the original header as the base and be
1773	 * reported as a separate MSDU so strip the A-MSDU bit from QoS Ctl.
1774	 */
1775	hdr = (void *)first_hdr;
1776
1777	if (ieee80211_is_data_qos(hdr->frame_control)) {
1778		qos = ieee80211_get_qos_ctl(hdr);
1779		qos[0] &= ~IEEE80211_QOS_CTL_A_MSDU_PRESENT;
1780	}
1781
1782	/* Some attention flags are valid only in the last MSDU. */
1783	last = skb_peek_tail(amsdu);
1784	rxd = (void *)last->data - sizeof(*rxd);
1785	attention = __le32_to_cpu(rxd->attention.flags);
 
 
 
1786
1787	has_fcs_err = !!(attention & RX_ATTENTION_FLAGS_FCS_ERR);
1788	has_crypto_err = !!(attention & RX_ATTENTION_FLAGS_DECRYPT_ERR);
1789	has_tkip_err = !!(attention & RX_ATTENTION_FLAGS_TKIP_MIC_ERR);
1790	has_peer_idx_invalid = !!(attention & RX_ATTENTION_FLAGS_PEER_IDX_INVALID);
1791
1792	/* Note: If hardware captures an encrypted frame that it can't decrypt,
1793	 * e.g. due to fcs error, missing peer or invalid key data it will
1794	 * report the frame as raw.
1795	 */
1796	is_decrypted = (enctype != HTT_RX_MPDU_ENCRYPT_NONE &&
1797			!has_fcs_err &&
1798			!has_crypto_err &&
1799			!has_peer_idx_invalid);
1800
1801	/* Clear per-MPDU flags while leaving per-PPDU flags intact. */
1802	status->flag &= ~(RX_FLAG_FAILED_FCS_CRC |
1803			  RX_FLAG_MMIC_ERROR |
1804			  RX_FLAG_DECRYPTED |
1805			  RX_FLAG_IV_STRIPPED |
1806			  RX_FLAG_ONLY_MONITOR |
1807			  RX_FLAG_MMIC_STRIPPED);
1808
1809	if (has_fcs_err)
1810		status->flag |= RX_FLAG_FAILED_FCS_CRC;
1811
1812	if (has_tkip_err)
1813		status->flag |= RX_FLAG_MMIC_ERROR;
1814
1815	if (err) {
1816		if (has_fcs_err)
1817			*err = ATH10K_PKT_RX_ERR_FCS;
1818		else if (has_tkip_err)
1819			*err = ATH10K_PKT_RX_ERR_TKIP;
1820		else if (has_crypto_err)
1821			*err = ATH10K_PKT_RX_ERR_CRYPT;
1822		else if (has_peer_idx_invalid)
1823			*err = ATH10K_PKT_RX_ERR_PEER_IDX_INVAL;
1824	}
1825
1826	/* Firmware reports all necessary management frames via WMI already.
1827	 * They are not reported to monitor interfaces at all so pass the ones
1828	 * coming via HTT to monitor interfaces instead. This simplifies
1829	 * matters a lot.
1830	 */
1831	if (is_mgmt)
1832		status->flag |= RX_FLAG_ONLY_MONITOR;
1833
1834	if (is_decrypted) {
1835		status->flag |= RX_FLAG_DECRYPTED;
1836
1837		if (likely(!is_mgmt))
1838			status->flag |= RX_FLAG_MMIC_STRIPPED;
1839
1840		if (fill_crypt_header)
1841			status->flag |= RX_FLAG_MIC_STRIPPED |
1842					RX_FLAG_ICV_STRIPPED;
1843		else
1844			status->flag |= RX_FLAG_IV_STRIPPED;
1845	}
1846
1847	skb_queue_walk(amsdu, msdu) {
1848		ath10k_htt_rx_h_csum_offload(msdu);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1849		ath10k_htt_rx_h_undecap(ar, msdu, status, first_hdr, enctype,
1850					is_decrypted);
1851
1852		/* Undecapping involves copying the original 802.11 header back
1853		 * to sk_buff. If frame is protected and hardware has decrypted
1854		 * it then remove the protected bit.
1855		 */
1856		if (!is_decrypted)
1857			continue;
1858		if (is_mgmt)
1859			continue;
1860
1861		if (fill_crypt_header)
1862			continue;
1863
1864		hdr = (void *)msdu->data;
1865		hdr->frame_control &= ~__cpu_to_le16(IEEE80211_FCTL_PROTECTED);
 
 
 
 
 
1866	}
1867}
1868
1869static void ath10k_htt_rx_h_enqueue(struct ath10k *ar,
1870				    struct sk_buff_head *amsdu,
1871				    struct ieee80211_rx_status *status)
1872{
1873	struct sk_buff *msdu;
1874	struct sk_buff *first_subframe;
1875
1876	first_subframe = skb_peek(amsdu);
1877
1878	while ((msdu = __skb_dequeue(amsdu))) {
1879		/* Setup per-MSDU flags */
1880		if (skb_queue_empty(amsdu))
1881			status->flag &= ~RX_FLAG_AMSDU_MORE;
1882		else
1883			status->flag |= RX_FLAG_AMSDU_MORE;
1884
1885		if (msdu == first_subframe) {
1886			first_subframe = NULL;
1887			status->flag &= ~RX_FLAG_ALLOW_SAME_PN;
1888		} else {
1889			status->flag |= RX_FLAG_ALLOW_SAME_PN;
1890		}
1891
1892		ath10k_htt_rx_h_queue_msdu(ar, status, msdu);
1893	}
1894}
1895
1896static int ath10k_unchain_msdu(struct sk_buff_head *amsdu,
1897			       unsigned long *unchain_cnt)
1898{
1899	struct sk_buff *skb, *first;
1900	int space;
1901	int total_len = 0;
1902	int amsdu_len = skb_queue_len(amsdu);
1903
1904	/* TODO:  Might could optimize this by using
1905	 * skb_try_coalesce or similar method to
1906	 * decrease copying, or maybe get mac80211 to
1907	 * provide a way to just receive a list of
1908	 * skb?
1909	 */
1910
1911	first = __skb_dequeue(amsdu);
1912
1913	/* Allocate total length all at once. */
1914	skb_queue_walk(amsdu, skb)
1915		total_len += skb->len;
1916
1917	space = total_len - skb_tailroom(first);
1918	if ((space > 0) &&
1919	    (pskb_expand_head(first, 0, space, GFP_ATOMIC) < 0)) {
1920		/* TODO:  bump some rx-oom error stat */
1921		/* put it back together so we can free the
1922		 * whole list at once.
1923		 */
1924		__skb_queue_head(amsdu, first);
1925		return -1;
1926	}
1927
1928	/* Walk list again, copying contents into
1929	 * msdu_head
1930	 */
1931	while ((skb = __skb_dequeue(amsdu))) {
1932		skb_copy_from_linear_data(skb, skb_put(first, skb->len),
1933					  skb->len);
1934		dev_kfree_skb_any(skb);
1935	}
1936
1937	__skb_queue_head(amsdu, first);
1938
1939	*unchain_cnt += amsdu_len - 1;
1940
1941	return 0;
1942}
1943
1944static void ath10k_htt_rx_h_unchain(struct ath10k *ar,
1945				    struct sk_buff_head *amsdu,
1946				    unsigned long *drop_cnt,
1947				    unsigned long *unchain_cnt)
1948{
1949	struct sk_buff *first;
 
1950	struct htt_rx_desc *rxd;
 
 
1951	enum rx_msdu_decap_format decap;
1952
1953	first = skb_peek(amsdu);
1954	rxd = (void *)first->data - sizeof(*rxd);
1955	decap = MS(__le32_to_cpu(rxd->msdu_start.common.info1),
 
 
 
 
1956		   RX_MSDU_START_INFO1_DECAP_FORMAT);
1957
1958	/* FIXME: Current unchaining logic can only handle simple case of raw
1959	 * msdu chaining. If decapping is other than raw the chaining may be
1960	 * more complex and this isn't handled by the current code. Don't even
1961	 * try re-constructing such frames - it'll be pretty much garbage.
1962	 */
1963	if (decap != RX_MSDU_DECAP_RAW ||
1964	    skb_queue_len(amsdu) != 1 + rxd->frag_info.ring2_more_count) {
1965		*drop_cnt += skb_queue_len(amsdu);
1966		__skb_queue_purge(amsdu);
1967		return;
1968	}
1969
1970	ath10k_unchain_msdu(amsdu, unchain_cnt);
1971}
1972
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1973static bool ath10k_htt_rx_amsdu_allowed(struct ath10k *ar,
1974					struct sk_buff_head *amsdu,
1975					struct ieee80211_rx_status *rx_status)
1976{
1977	/* FIXME: It might be a good idea to do some fuzzy-testing to drop
1978	 * invalid/dangerous frames.
1979	 */
1980
1981	if (!rx_status->freq) {
1982		ath10k_dbg(ar, ATH10K_DBG_HTT, "no channel configured; ignoring frame(s)!\n");
1983		return false;
1984	}
1985
1986	if (test_bit(ATH10K_CAC_RUNNING, &ar->dev_flags)) {
1987		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx cac running\n");
1988		return false;
1989	}
1990
 
 
 
 
 
1991	return true;
1992}
1993
1994static void ath10k_htt_rx_h_filter(struct ath10k *ar,
1995				   struct sk_buff_head *amsdu,
1996				   struct ieee80211_rx_status *rx_status,
1997				   unsigned long *drop_cnt)
1998{
1999	if (skb_queue_empty(amsdu))
2000		return;
2001
2002	if (ath10k_htt_rx_amsdu_allowed(ar, amsdu, rx_status))
2003		return;
2004
2005	if (drop_cnt)
2006		*drop_cnt += skb_queue_len(amsdu);
2007
2008	__skb_queue_purge(amsdu);
2009}
2010
2011static int ath10k_htt_rx_handle_amsdu(struct ath10k_htt *htt)
2012{
2013	struct ath10k *ar = htt->ar;
2014	struct ieee80211_rx_status *rx_status = &htt->rx_status;
2015	struct sk_buff_head amsdu;
2016	int ret;
2017	unsigned long drop_cnt = 0;
2018	unsigned long unchain_cnt = 0;
2019	unsigned long drop_cnt_filter = 0;
2020	unsigned long msdus_to_queue, num_msdus;
2021	enum ath10k_pkt_rx_err err = ATH10K_PKT_RX_ERR_MAX;
2022	u8 first_hdr[RX_HTT_HDR_STATUS_LEN];
2023
2024	__skb_queue_head_init(&amsdu);
2025
2026	spin_lock_bh(&htt->rx_ring.lock);
2027	if (htt->rx_confused) {
2028		spin_unlock_bh(&htt->rx_ring.lock);
2029		return -EIO;
2030	}
2031	ret = ath10k_htt_rx_amsdu_pop(htt, &amsdu);
2032	spin_unlock_bh(&htt->rx_ring.lock);
2033
2034	if (ret < 0) {
2035		ath10k_warn(ar, "rx ring became corrupted: %d\n", ret);
2036		__skb_queue_purge(&amsdu);
2037		/* FIXME: It's probably a good idea to reboot the
2038		 * device instead of leaving it inoperable.
2039		 */
2040		htt->rx_confused = true;
2041		return ret;
2042	}
2043
2044	num_msdus = skb_queue_len(&amsdu);
2045
2046	ath10k_htt_rx_h_ppdu(ar, &amsdu, rx_status, 0xffff);
2047
2048	/* only for ret = 1 indicates chained msdus */
2049	if (ret > 0)
2050		ath10k_htt_rx_h_unchain(ar, &amsdu, &drop_cnt, &unchain_cnt);
2051
2052	ath10k_htt_rx_h_filter(ar, &amsdu, rx_status, &drop_cnt_filter);
2053	ath10k_htt_rx_h_mpdu(ar, &amsdu, rx_status, true, first_hdr, &err);
 
2054	msdus_to_queue = skb_queue_len(&amsdu);
2055	ath10k_htt_rx_h_enqueue(ar, &amsdu, rx_status);
2056
2057	ath10k_sta_update_rx_tid_stats(ar, first_hdr, num_msdus, err,
2058				       unchain_cnt, drop_cnt, drop_cnt_filter,
2059				       msdus_to_queue);
2060
2061	return 0;
2062}
2063
2064static void ath10k_htt_rx_mpdu_desc_pn_hl(struct htt_hl_rx_desc *rx_desc,
2065					  union htt_rx_pn_t *pn,
2066					  int pn_len_bits)
2067{
2068	switch (pn_len_bits) {
2069	case 48:
2070		pn->pn48 = __le32_to_cpu(rx_desc->pn_31_0) +
2071			   ((u64)(__le32_to_cpu(rx_desc->u0.pn_63_32) & 0xFFFF) << 32);
2072		break;
2073	case 24:
2074		pn->pn24 = __le32_to_cpu(rx_desc->pn_31_0);
2075		break;
2076	};
2077}
2078
2079static bool ath10k_htt_rx_pn_cmp48(union htt_rx_pn_t *new_pn,
2080				   union htt_rx_pn_t *old_pn)
2081{
2082	return ((new_pn->pn48 & 0xffffffffffffULL) <=
2083		(old_pn->pn48 & 0xffffffffffffULL));
2084}
2085
2086static bool ath10k_htt_rx_pn_check_replay_hl(struct ath10k *ar,
2087					     struct ath10k_peer *peer,
2088					     struct htt_rx_indication_hl *rx)
2089{
2090	bool last_pn_valid, pn_invalid = false;
2091	enum htt_txrx_sec_cast_type sec_index;
2092	enum htt_security_types sec_type;
2093	union htt_rx_pn_t new_pn = {0};
2094	struct htt_hl_rx_desc *rx_desc;
2095	union htt_rx_pn_t *last_pn;
2096	u32 rx_desc_info, tid;
2097	int num_mpdu_ranges;
2098
2099	lockdep_assert_held(&ar->data_lock);
2100
2101	if (!peer)
2102		return false;
2103
2104	if (!(rx->fw_desc.flags & FW_RX_DESC_FLAGS_FIRST_MSDU))
2105		return false;
2106
2107	num_mpdu_ranges = MS(__le32_to_cpu(rx->hdr.info1),
2108			     HTT_RX_INDICATION_INFO1_NUM_MPDU_RANGES);
2109
2110	rx_desc = (struct htt_hl_rx_desc *)&rx->mpdu_ranges[num_mpdu_ranges];
2111	rx_desc_info = __le32_to_cpu(rx_desc->info);
2112
2113	if (!MS(rx_desc_info, HTT_RX_DESC_HL_INFO_ENCRYPTED))
2114		return false;
2115
2116	tid = MS(rx->hdr.info0, HTT_RX_INDICATION_INFO0_EXT_TID);
2117	last_pn_valid = peer->tids_last_pn_valid[tid];
2118	last_pn = &peer->tids_last_pn[tid];
2119
2120	if (MS(rx_desc_info, HTT_RX_DESC_HL_INFO_MCAST_BCAST))
2121		sec_index = HTT_TXRX_SEC_MCAST;
2122	else
2123		sec_index = HTT_TXRX_SEC_UCAST;
2124
2125	sec_type = peer->rx_pn[sec_index].sec_type;
2126	ath10k_htt_rx_mpdu_desc_pn_hl(rx_desc, &new_pn, peer->rx_pn[sec_index].pn_len);
2127
2128	if (sec_type != HTT_SECURITY_AES_CCMP &&
2129	    sec_type != HTT_SECURITY_TKIP &&
2130	    sec_type != HTT_SECURITY_TKIP_NOMIC)
2131		return false;
2132
2133	if (last_pn_valid)
2134		pn_invalid = ath10k_htt_rx_pn_cmp48(&new_pn, last_pn);
2135	else
2136		peer->tids_last_pn_valid[tid] = 1;
2137
2138	if (!pn_invalid)
2139		last_pn->pn48 = new_pn.pn48;
2140
2141	return pn_invalid;
2142}
2143
2144static bool ath10k_htt_rx_proc_rx_ind_hl(struct ath10k_htt *htt,
2145					 struct htt_rx_indication_hl *rx,
2146					 struct sk_buff *skb,
2147					 enum htt_rx_pn_check_type check_pn_type,
2148					 enum htt_rx_tkip_demic_type tkip_mic_type)
2149{
2150	struct ath10k *ar = htt->ar;
2151	struct ath10k_peer *peer;
2152	struct htt_rx_indication_mpdu_range *mpdu_ranges;
2153	struct fw_rx_desc_hl *fw_desc;
2154	enum htt_txrx_sec_cast_type sec_index;
2155	enum htt_security_types sec_type;
2156	union htt_rx_pn_t new_pn = {0};
2157	struct htt_hl_rx_desc *rx_desc;
2158	struct ieee80211_hdr *hdr;
2159	struct ieee80211_rx_status *rx_status;
2160	u16 peer_id;
2161	u8 rx_desc_len;
2162	int num_mpdu_ranges;
2163	size_t tot_hdr_len;
2164	struct ieee80211_channel *ch;
2165	bool pn_invalid, qos, first_msdu;
2166	u32 tid, rx_desc_info;
2167
2168	peer_id = __le16_to_cpu(rx->hdr.peer_id);
2169	tid = MS(rx->hdr.info0, HTT_RX_INDICATION_INFO0_EXT_TID);
2170
2171	spin_lock_bh(&ar->data_lock);
2172	peer = ath10k_peer_find_by_id(ar, peer_id);
2173	spin_unlock_bh(&ar->data_lock);
2174	if (!peer && peer_id != HTT_INVALID_PEERID)
2175		ath10k_warn(ar, "Got RX ind from invalid peer: %u\n", peer_id);
2176
2177	if (!peer)
2178		return true;
2179
2180	num_mpdu_ranges = MS(__le32_to_cpu(rx->hdr.info1),
2181			     HTT_RX_INDICATION_INFO1_NUM_MPDU_RANGES);
2182	mpdu_ranges = htt_rx_ind_get_mpdu_ranges_hl(rx);
2183	fw_desc = &rx->fw_desc;
2184	rx_desc_len = fw_desc->len;
2185
 
 
 
 
 
2186	/* I have not yet seen any case where num_mpdu_ranges > 1.
2187	 * qcacld does not seem handle that case either, so we introduce the
2188	 * same limitiation here as well.
2189	 */
2190	if (num_mpdu_ranges > 1)
2191		ath10k_warn(ar,
2192			    "Unsupported number of MPDU ranges: %d, ignoring all but the first\n",
2193			    num_mpdu_ranges);
2194
2195	if (mpdu_ranges->mpdu_range_status !=
2196	    HTT_RX_IND_MPDU_STATUS_OK &&
2197	    mpdu_ranges->mpdu_range_status !=
2198	    HTT_RX_IND_MPDU_STATUS_TKIP_MIC_ERR) {
2199		ath10k_warn(ar, "MPDU range status: %d\n",
2200			    mpdu_ranges->mpdu_range_status);
2201		goto err;
2202	}
2203
2204	rx_desc = (struct htt_hl_rx_desc *)&rx->mpdu_ranges[num_mpdu_ranges];
2205	rx_desc_info = __le32_to_cpu(rx_desc->info);
2206
2207	if (MS(rx_desc_info, HTT_RX_DESC_HL_INFO_MCAST_BCAST))
2208		sec_index = HTT_TXRX_SEC_MCAST;
2209	else
2210		sec_index = HTT_TXRX_SEC_UCAST;
2211
2212	sec_type = peer->rx_pn[sec_index].sec_type;
2213	first_msdu = rx->fw_desc.flags & FW_RX_DESC_FLAGS_FIRST_MSDU;
2214
2215	ath10k_htt_rx_mpdu_desc_pn_hl(rx_desc, &new_pn, peer->rx_pn[sec_index].pn_len);
2216
2217	if (check_pn_type == HTT_RX_PN_CHECK && tid >= IEEE80211_NUM_TIDS) {
2218		spin_lock_bh(&ar->data_lock);
2219		pn_invalid = ath10k_htt_rx_pn_check_replay_hl(ar, peer, rx);
2220		spin_unlock_bh(&ar->data_lock);
2221
2222		if (pn_invalid)
2223			goto err;
2224	}
2225
2226	/* Strip off all headers before the MAC header before delivery to
2227	 * mac80211
2228	 */
2229	tot_hdr_len = sizeof(struct htt_resp_hdr) + sizeof(rx->hdr) +
2230		      sizeof(rx->ppdu) + sizeof(rx->prefix) +
2231		      sizeof(rx->fw_desc) +
2232		      sizeof(*mpdu_ranges) * num_mpdu_ranges + rx_desc_len;
2233
2234	skb_pull(skb, tot_hdr_len);
2235
2236	hdr = (struct ieee80211_hdr *)skb->data;
2237	qos = ieee80211_is_data_qos(hdr->frame_control);
 
2238	rx_status = IEEE80211_SKB_RXCB(skb);
2239	rx_status->chains |= BIT(0);
 
2240	if (rx->ppdu.combined_rssi == 0) {
2241		/* SDIO firmware does not provide signal */
2242		rx_status->signal = 0;
2243		rx_status->flag |= RX_FLAG_NO_SIGNAL_VAL;
2244	} else {
2245		rx_status->signal = ATH10K_DEFAULT_NOISE_FLOOR +
2246			rx->ppdu.combined_rssi;
2247		rx_status->flag &= ~RX_FLAG_NO_SIGNAL_VAL;
2248	}
2249
2250	spin_lock_bh(&ar->data_lock);
2251	ch = ar->scan_channel;
2252	if (!ch)
2253		ch = ar->rx_channel;
2254	if (!ch)
2255		ch = ath10k_htt_rx_h_any_channel(ar);
2256	if (!ch)
2257		ch = ar->tgt_oper_chan;
2258	spin_unlock_bh(&ar->data_lock);
2259
2260	if (ch) {
2261		rx_status->band = ch->band;
2262		rx_status->freq = ch->center_freq;
2263	}
2264	if (rx->fw_desc.flags & FW_RX_DESC_FLAGS_LAST_MSDU)
2265		rx_status->flag &= ~RX_FLAG_AMSDU_MORE;
2266	else
2267		rx_status->flag |= RX_FLAG_AMSDU_MORE;
2268
2269	/* Not entirely sure about this, but all frames from the chipset has
2270	 * the protected flag set even though they have already been decrypted.
2271	 * Unmasking this flag is necessary in order for mac80211 not to drop
2272	 * the frame.
2273	 * TODO: Verify this is always the case or find out a way to check
2274	 * if there has been hw decryption.
2275	 */
2276	if (ieee80211_has_protected(hdr->frame_control)) {
2277		hdr->frame_control &= ~__cpu_to_le16(IEEE80211_FCTL_PROTECTED);
2278		rx_status->flag |= RX_FLAG_DECRYPTED |
2279				   RX_FLAG_IV_STRIPPED |
2280				   RX_FLAG_MMIC_STRIPPED;
2281
2282		if (tid < IEEE80211_NUM_TIDS &&
2283		    first_msdu &&
2284		    check_pn_type == HTT_RX_PN_CHECK &&
2285		   (sec_type == HTT_SECURITY_AES_CCMP ||
2286		    sec_type == HTT_SECURITY_TKIP ||
2287		    sec_type == HTT_SECURITY_TKIP_NOMIC)) {
2288			u8 offset, *ivp, i;
2289			s8 keyidx = 0;
2290			__le64 pn48 = cpu_to_le64(new_pn.pn48);
2291
2292			hdr = (struct ieee80211_hdr *)skb->data;
2293			offset = ieee80211_hdrlen(hdr->frame_control);
2294			hdr->frame_control |= __cpu_to_le16(IEEE80211_FCTL_PROTECTED);
2295			rx_status->flag &= ~RX_FLAG_IV_STRIPPED;
2296
2297			memmove(skb->data - IEEE80211_CCMP_HDR_LEN,
2298				skb->data, offset);
2299			skb_push(skb, IEEE80211_CCMP_HDR_LEN);
2300			ivp = skb->data + offset;
2301			memset(skb->data + offset, 0, IEEE80211_CCMP_HDR_LEN);
2302			/* Ext IV */
2303			ivp[IEEE80211_WEP_IV_LEN - 1] |= ATH10K_IEEE80211_EXTIV;
2304
2305			for (i = 0; i < ARRAY_SIZE(peer->keys); i++) {
2306				if (peer->keys[i] &&
2307				    peer->keys[i]->flags & IEEE80211_KEY_FLAG_PAIRWISE)
2308					keyidx = peer->keys[i]->keyidx;
2309			}
2310
2311			/* Key ID */
2312			ivp[IEEE80211_WEP_IV_LEN - 1] |= keyidx << 6;
2313
2314			if (sec_type == HTT_SECURITY_AES_CCMP) {
2315				rx_status->flag |= RX_FLAG_MIC_STRIPPED;
2316				/* pn 0, pn 1 */
2317				memcpy(skb->data + offset, &pn48, 2);
2318				/* pn 1, pn 3 , pn 34 , pn 5 */
2319				memcpy(skb->data + offset + 4, ((u8 *)&pn48) + 2, 4);
2320			} else {
2321				rx_status->flag |= RX_FLAG_ICV_STRIPPED;
2322				/* TSC 0 */
2323				memcpy(skb->data + offset + 2, &pn48, 1);
2324				/* TSC 1 */
2325				memcpy(skb->data + offset, ((u8 *)&pn48) + 1, 1);
2326				/* TSC 2 , TSC 3 , TSC 4 , TSC 5*/
2327				memcpy(skb->data + offset + 4, ((u8 *)&pn48) + 2, 4);
2328			}
2329		}
2330	}
2331
2332	if (tkip_mic_type == HTT_RX_TKIP_MIC)
2333		rx_status->flag &= ~RX_FLAG_IV_STRIPPED &
2334				   ~RX_FLAG_MMIC_STRIPPED;
2335
2336	if (mpdu_ranges->mpdu_range_status == HTT_RX_IND_MPDU_STATUS_TKIP_MIC_ERR)
2337		rx_status->flag |= RX_FLAG_MMIC_ERROR;
2338
2339	if (!qos && tid < IEEE80211_NUM_TIDS) {
2340		u8 offset;
2341		__le16 qos_ctrl = 0;
2342
2343		hdr = (struct ieee80211_hdr *)skb->data;
2344		offset = ieee80211_hdrlen(hdr->frame_control);
2345
2346		hdr->frame_control |= cpu_to_le16(IEEE80211_STYPE_QOS_DATA);
2347		memmove(skb->data - IEEE80211_QOS_CTL_LEN, skb->data, offset);
2348		skb_push(skb, IEEE80211_QOS_CTL_LEN);
2349		qos_ctrl = cpu_to_le16(tid);
2350		memcpy(skb->data + offset, &qos_ctrl, IEEE80211_QOS_CTL_LEN);
2351	}
2352
2353	ieee80211_rx_ni(ar->hw, skb);
 
 
 
2354
2355	/* We have delivered the skb to the upper layers (mac80211) so we
2356	 * must not free it.
2357	 */
2358	return false;
2359err:
2360	/* Tell the caller that it must free the skb since we have not
2361	 * consumed it
2362	 */
2363	return true;
2364}
2365
2366static int ath10k_htt_rx_frag_tkip_decap_nomic(struct sk_buff *skb,
2367					       u16 head_len,
2368					       u16 hdr_len)
2369{
2370	u8 *ivp, *orig_hdr;
2371
2372	orig_hdr = skb->data;
2373	ivp = orig_hdr + hdr_len + head_len;
2374
2375	/* the ExtIV bit is always set to 1 for TKIP */
2376	if (!(ivp[IEEE80211_WEP_IV_LEN - 1] & ATH10K_IEEE80211_EXTIV))
2377		return -EINVAL;
2378
2379	memmove(orig_hdr + IEEE80211_TKIP_IV_LEN, orig_hdr, head_len + hdr_len);
2380	skb_pull(skb, IEEE80211_TKIP_IV_LEN);
2381	skb_trim(skb, skb->len - ATH10K_IEEE80211_TKIP_MICLEN);
2382	return 0;
2383}
2384
2385static int ath10k_htt_rx_frag_tkip_decap_withmic(struct sk_buff *skb,
2386						 u16 head_len,
2387						 u16 hdr_len)
2388{
2389	u8 *ivp, *orig_hdr;
2390
2391	orig_hdr = skb->data;
2392	ivp = orig_hdr + hdr_len + head_len;
2393
2394	/* the ExtIV bit is always set to 1 for TKIP */
2395	if (!(ivp[IEEE80211_WEP_IV_LEN - 1] & ATH10K_IEEE80211_EXTIV))
2396		return -EINVAL;
2397
2398	memmove(orig_hdr + IEEE80211_TKIP_IV_LEN, orig_hdr, head_len + hdr_len);
2399	skb_pull(skb, IEEE80211_TKIP_IV_LEN);
2400	skb_trim(skb, skb->len - IEEE80211_TKIP_ICV_LEN);
2401	return 0;
2402}
2403
2404static int ath10k_htt_rx_frag_ccmp_decap(struct sk_buff *skb,
2405					 u16 head_len,
2406					 u16 hdr_len)
2407{
2408	u8 *ivp, *orig_hdr;
2409
2410	orig_hdr = skb->data;
2411	ivp = orig_hdr + hdr_len + head_len;
2412
2413	/* the ExtIV bit is always set to 1 for CCMP */
2414	if (!(ivp[IEEE80211_WEP_IV_LEN - 1] & ATH10K_IEEE80211_EXTIV))
2415		return -EINVAL;
2416
2417	skb_trim(skb, skb->len - IEEE80211_CCMP_MIC_LEN);
2418	memmove(orig_hdr + IEEE80211_CCMP_HDR_LEN, orig_hdr, head_len + hdr_len);
2419	skb_pull(skb, IEEE80211_CCMP_HDR_LEN);
2420	return 0;
2421}
2422
2423static int ath10k_htt_rx_frag_wep_decap(struct sk_buff *skb,
2424					u16 head_len,
2425					u16 hdr_len)
2426{
2427	u8 *orig_hdr;
2428
2429	orig_hdr = skb->data;
2430
2431	memmove(orig_hdr + IEEE80211_WEP_IV_LEN,
2432		orig_hdr, head_len + hdr_len);
2433	skb_pull(skb, IEEE80211_WEP_IV_LEN);
2434	skb_trim(skb, skb->len - IEEE80211_WEP_ICV_LEN);
2435	return 0;
2436}
2437
2438static bool ath10k_htt_rx_proc_rx_frag_ind_hl(struct ath10k_htt *htt,
2439					      struct htt_rx_fragment_indication *rx,
2440					      struct sk_buff *skb)
2441{
2442	struct ath10k *ar = htt->ar;
2443	enum htt_rx_tkip_demic_type tkip_mic = HTT_RX_NON_TKIP_MIC;
2444	enum htt_txrx_sec_cast_type sec_index;
2445	struct htt_rx_indication_hl *rx_hl;
2446	enum htt_security_types sec_type;
2447	u32 tid, frag, seq, rx_desc_info;
2448	union htt_rx_pn_t new_pn = {0};
2449	struct htt_hl_rx_desc *rx_desc;
2450	u16 peer_id, sc, hdr_space;
2451	union htt_rx_pn_t *last_pn;
2452	struct ieee80211_hdr *hdr;
2453	int ret, num_mpdu_ranges;
2454	struct ath10k_peer *peer;
2455	struct htt_resp *resp;
2456	size_t tot_hdr_len;
2457
2458	resp = (struct htt_resp *)(skb->data + HTT_RX_FRAG_IND_INFO0_HEADER_LEN);
2459	skb_pull(skb, HTT_RX_FRAG_IND_INFO0_HEADER_LEN);
2460	skb_trim(skb, skb->len - FCS_LEN);
2461
2462	peer_id = __le16_to_cpu(rx->peer_id);
2463	rx_hl = (struct htt_rx_indication_hl *)(&resp->rx_ind_hl);
2464
2465	spin_lock_bh(&ar->data_lock);
2466	peer = ath10k_peer_find_by_id(ar, peer_id);
2467	if (!peer) {
2468		ath10k_dbg(ar, ATH10K_DBG_HTT, "invalid peer: %u\n", peer_id);
2469		goto err;
2470	}
2471
2472	num_mpdu_ranges = MS(__le32_to_cpu(rx_hl->hdr.info1),
2473			     HTT_RX_INDICATION_INFO1_NUM_MPDU_RANGES);
2474
2475	tot_hdr_len = sizeof(struct htt_resp_hdr) +
2476		      sizeof(rx_hl->hdr) +
2477		      sizeof(rx_hl->ppdu) +
2478		      sizeof(rx_hl->prefix) +
2479		      sizeof(rx_hl->fw_desc) +
2480		      sizeof(struct htt_rx_indication_mpdu_range) * num_mpdu_ranges;
2481
2482	tid =  MS(rx_hl->hdr.info0, HTT_RX_INDICATION_INFO0_EXT_TID);
2483	rx_desc = (struct htt_hl_rx_desc *)(skb->data + tot_hdr_len);
2484	rx_desc_info = __le32_to_cpu(rx_desc->info);
2485
 
 
 
 
 
 
 
2486	if (!MS(rx_desc_info, HTT_RX_DESC_HL_INFO_ENCRYPTED)) {
2487		spin_unlock_bh(&ar->data_lock);
2488		return ath10k_htt_rx_proc_rx_ind_hl(htt, &resp->rx_ind_hl, skb,
2489						    HTT_RX_NON_PN_CHECK,
2490						    HTT_RX_NON_TKIP_MIC);
2491	}
2492
2493	hdr = (struct ieee80211_hdr *)((u8 *)rx_desc + rx_hl->fw_desc.len);
2494
2495	if (ieee80211_has_retry(hdr->frame_control))
2496		goto err;
2497
2498	hdr_space = ieee80211_hdrlen(hdr->frame_control);
2499	sc = __le16_to_cpu(hdr->seq_ctrl);
2500	seq = (sc & IEEE80211_SCTL_SEQ) >> 4;
2501	frag = sc & IEEE80211_SCTL_FRAG;
2502
2503	sec_index = MS(rx_desc_info, HTT_RX_DESC_HL_INFO_MCAST_BCAST) ?
2504		    HTT_TXRX_SEC_MCAST : HTT_TXRX_SEC_UCAST;
2505	sec_type = peer->rx_pn[sec_index].sec_type;
2506	ath10k_htt_rx_mpdu_desc_pn_hl(rx_desc, &new_pn, peer->rx_pn[sec_index].pn_len);
2507
2508	switch (sec_type) {
2509	case HTT_SECURITY_TKIP:
2510		tkip_mic = HTT_RX_TKIP_MIC;
2511		ret = ath10k_htt_rx_frag_tkip_decap_withmic(skb,
2512							    tot_hdr_len +
2513							    rx_hl->fw_desc.len,
2514							    hdr_space);
2515		if (ret)
2516			goto err;
2517		break;
2518	case HTT_SECURITY_TKIP_NOMIC:
2519		ret = ath10k_htt_rx_frag_tkip_decap_nomic(skb,
2520							  tot_hdr_len +
2521							  rx_hl->fw_desc.len,
2522							  hdr_space);
2523		if (ret)
2524			goto err;
2525		break;
2526	case HTT_SECURITY_AES_CCMP:
2527		ret = ath10k_htt_rx_frag_ccmp_decap(skb,
2528						    tot_hdr_len + rx_hl->fw_desc.len,
2529						    hdr_space);
2530		if (ret)
2531			goto err;
2532		break;
2533	case HTT_SECURITY_WEP128:
2534	case HTT_SECURITY_WEP104:
2535	case HTT_SECURITY_WEP40:
2536		ret = ath10k_htt_rx_frag_wep_decap(skb,
2537						   tot_hdr_len + rx_hl->fw_desc.len,
2538						   hdr_space);
2539		if (ret)
2540			goto err;
2541		break;
2542	default:
2543		break;
2544	}
2545
2546	resp = (struct htt_resp *)(skb->data);
2547
2548	if (sec_type != HTT_SECURITY_AES_CCMP &&
2549	    sec_type != HTT_SECURITY_TKIP &&
2550	    sec_type != HTT_SECURITY_TKIP_NOMIC) {
2551		spin_unlock_bh(&ar->data_lock);
2552		return ath10k_htt_rx_proc_rx_ind_hl(htt, &resp->rx_ind_hl, skb,
2553						    HTT_RX_NON_PN_CHECK,
2554						    HTT_RX_NON_TKIP_MIC);
2555	}
2556
2557	last_pn = &peer->frag_tids_last_pn[tid];
2558
2559	if (frag == 0) {
2560		if (ath10k_htt_rx_pn_check_replay_hl(ar, peer, &resp->rx_ind_hl))
2561			goto err;
2562
2563		last_pn->pn48 = new_pn.pn48;
2564		peer->frag_tids_seq[tid] = seq;
2565	} else if (sec_type == HTT_SECURITY_AES_CCMP) {
2566		if (seq != peer->frag_tids_seq[tid])
2567			goto err;
2568
2569		if (new_pn.pn48 != last_pn->pn48 + 1)
2570			goto err;
2571
2572		last_pn->pn48 = new_pn.pn48;
2573		last_pn = &peer->tids_last_pn[tid];
2574		last_pn->pn48 = new_pn.pn48;
2575	}
2576
2577	spin_unlock_bh(&ar->data_lock);
2578
2579	return ath10k_htt_rx_proc_rx_ind_hl(htt, &resp->rx_ind_hl, skb,
2580					    HTT_RX_NON_PN_CHECK, tkip_mic);
2581
2582err:
2583	spin_unlock_bh(&ar->data_lock);
2584
2585	/* Tell the caller that it must free the skb since we have not
2586	 * consumed it
2587	 */
2588	return true;
2589}
2590
2591static void ath10k_htt_rx_proc_rx_ind_ll(struct ath10k_htt *htt,
2592					 struct htt_rx_indication *rx)
2593{
2594	struct ath10k *ar = htt->ar;
2595	struct htt_rx_indication_mpdu_range *mpdu_ranges;
2596	int num_mpdu_ranges;
2597	int i, mpdu_count = 0;
2598	u16 peer_id;
2599	u8 tid;
2600
2601	num_mpdu_ranges = MS(__le32_to_cpu(rx->hdr.info1),
2602			     HTT_RX_INDICATION_INFO1_NUM_MPDU_RANGES);
2603	peer_id = __le16_to_cpu(rx->hdr.peer_id);
2604	tid =  MS(rx->hdr.info0, HTT_RX_INDICATION_INFO0_EXT_TID);
2605
2606	mpdu_ranges = htt_rx_ind_get_mpdu_ranges(rx);
2607
2608	ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt rx ind: ",
2609			rx, struct_size(rx, mpdu_ranges, num_mpdu_ranges));
2610
2611	for (i = 0; i < num_mpdu_ranges; i++)
2612		mpdu_count += mpdu_ranges[i].mpdu_count;
2613
2614	atomic_add(mpdu_count, &htt->num_mpdus_ready);
2615
2616	ath10k_sta_update_rx_tid_stats_ampdu(ar, peer_id, tid, mpdu_ranges,
2617					     num_mpdu_ranges);
2618}
2619
2620static void ath10k_htt_rx_tx_compl_ind(struct ath10k *ar,
2621				       struct sk_buff *skb)
2622{
2623	struct ath10k_htt *htt = &ar->htt;
2624	struct htt_resp *resp = (struct htt_resp *)skb->data;
2625	struct htt_tx_done tx_done = {};
2626	int status = MS(resp->data_tx_completion.flags, HTT_DATA_TX_STATUS);
2627	__le16 msdu_id, *msdus;
2628	bool rssi_enabled = false;
2629	u8 msdu_count = 0, num_airtime_records, tid;
2630	int i, htt_pad = 0;
2631	struct htt_data_tx_compl_ppdu_dur *ppdu_info;
2632	struct ath10k_peer *peer;
2633	u16 ppdu_info_offset = 0, peer_id;
2634	u32 tx_duration;
2635
2636	switch (status) {
2637	case HTT_DATA_TX_STATUS_NO_ACK:
2638		tx_done.status = HTT_TX_COMPL_STATE_NOACK;
2639		break;
2640	case HTT_DATA_TX_STATUS_OK:
2641		tx_done.status = HTT_TX_COMPL_STATE_ACK;
2642		break;
2643	case HTT_DATA_TX_STATUS_DISCARD:
2644	case HTT_DATA_TX_STATUS_POSTPONE:
2645	case HTT_DATA_TX_STATUS_DOWNLOAD_FAIL:
2646		tx_done.status = HTT_TX_COMPL_STATE_DISCARD;
2647		break;
2648	default:
2649		ath10k_warn(ar, "unhandled tx completion status %d\n", status);
2650		tx_done.status = HTT_TX_COMPL_STATE_DISCARD;
2651		break;
2652	}
2653
2654	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt tx completion num_msdus %d\n",
2655		   resp->data_tx_completion.num_msdus);
2656
2657	msdu_count = resp->data_tx_completion.num_msdus;
2658	msdus = resp->data_tx_completion.msdus;
2659	rssi_enabled = ath10k_is_rssi_enable(&ar->hw_params, resp);
2660
2661	if (rssi_enabled)
2662		htt_pad = ath10k_tx_data_rssi_get_pad_bytes(&ar->hw_params,
2663							    resp);
2664
2665	for (i = 0; i < msdu_count; i++) {
2666		msdu_id = msdus[i];
2667		tx_done.msdu_id = __le16_to_cpu(msdu_id);
2668
2669		if (rssi_enabled) {
2670			/* Total no of MSDUs should be even,
2671			 * if odd MSDUs are sent firmware fills
2672			 * last msdu id with 0xffff
2673			 */
2674			if (msdu_count & 0x01) {
2675				msdu_id = msdus[msdu_count +  i + 1 + htt_pad];
2676				tx_done.ack_rssi = __le16_to_cpu(msdu_id);
2677			} else {
2678				msdu_id = msdus[msdu_count +  i + htt_pad];
2679				tx_done.ack_rssi = __le16_to_cpu(msdu_id);
2680			}
2681		}
2682
2683		/* kfifo_put: In practice firmware shouldn't fire off per-CE
2684		 * interrupt and main interrupt (MSI/-X range case) for the same
2685		 * HTC service so it should be safe to use kfifo_put w/o lock.
2686		 *
2687		 * From kfifo_put() documentation:
2688		 *  Note that with only one concurrent reader and one concurrent
2689		 *  writer, you don't need extra locking to use these macro.
2690		 */
2691		if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL) {
2692			ath10k_txrx_tx_unref(htt, &tx_done);
2693		} else if (!kfifo_put(&htt->txdone_fifo, tx_done)) {
2694			ath10k_warn(ar, "txdone fifo overrun, msdu_id %d status %d\n",
2695				    tx_done.msdu_id, tx_done.status);
2696			ath10k_txrx_tx_unref(htt, &tx_done);
2697		}
2698	}
2699
2700	if (!(resp->data_tx_completion.flags2 & HTT_TX_CMPL_FLAG_PPDU_DURATION_PRESENT))
2701		return;
2702
2703	ppdu_info_offset = (msdu_count & 0x01) ? msdu_count + 1 : msdu_count;
2704
2705	if (rssi_enabled)
2706		ppdu_info_offset += ppdu_info_offset;
2707
2708	if (resp->data_tx_completion.flags2 &
2709	    (HTT_TX_CMPL_FLAG_PPID_PRESENT | HTT_TX_CMPL_FLAG_PA_PRESENT))
2710		ppdu_info_offset += 2;
2711
2712	ppdu_info = (struct htt_data_tx_compl_ppdu_dur *)&msdus[ppdu_info_offset];
2713	num_airtime_records = FIELD_GET(HTT_TX_COMPL_PPDU_DUR_INFO0_NUM_ENTRIES_MASK,
2714					__le32_to_cpu(ppdu_info->info0));
2715
2716	for (i = 0; i < num_airtime_records; i++) {
2717		struct htt_data_tx_ppdu_dur *ppdu_dur;
2718		u32 info0;
2719
2720		ppdu_dur = &ppdu_info->ppdu_dur[i];
2721		info0 = __le32_to_cpu(ppdu_dur->info0);
2722
2723		peer_id = FIELD_GET(HTT_TX_PPDU_DUR_INFO0_PEER_ID_MASK,
2724				    info0);
2725		rcu_read_lock();
2726		spin_lock_bh(&ar->data_lock);
2727
2728		peer = ath10k_peer_find_by_id(ar, peer_id);
2729		if (!peer) {
2730			spin_unlock_bh(&ar->data_lock);
2731			rcu_read_unlock();
2732			continue;
2733		}
2734
2735		tid = FIELD_GET(HTT_TX_PPDU_DUR_INFO0_TID_MASK, info0);
 
2736		tx_duration = __le32_to_cpu(ppdu_dur->tx_duration);
2737
2738		ieee80211_sta_register_airtime(peer->sta, tid, tx_duration, 0);
2739
2740		spin_unlock_bh(&ar->data_lock);
2741		rcu_read_unlock();
2742	}
2743}
2744
2745static void ath10k_htt_rx_addba(struct ath10k *ar, struct htt_resp *resp)
2746{
2747	struct htt_rx_addba *ev = &resp->rx_addba;
2748	struct ath10k_peer *peer;
2749	struct ath10k_vif *arvif;
2750	u16 info0, tid, peer_id;
2751
2752	info0 = __le16_to_cpu(ev->info0);
2753	tid = MS(info0, HTT_RX_BA_INFO0_TID);
2754	peer_id = MS(info0, HTT_RX_BA_INFO0_PEER_ID);
2755
2756	ath10k_dbg(ar, ATH10K_DBG_HTT,
2757		   "htt rx addba tid %hu peer_id %hu size %hhu\n",
2758		   tid, peer_id, ev->window_size);
2759
2760	spin_lock_bh(&ar->data_lock);
2761	peer = ath10k_peer_find_by_id(ar, peer_id);
2762	if (!peer) {
2763		ath10k_warn(ar, "received addba event for invalid peer_id: %hu\n",
2764			    peer_id);
2765		spin_unlock_bh(&ar->data_lock);
2766		return;
2767	}
2768
2769	arvif = ath10k_get_arvif(ar, peer->vdev_id);
2770	if (!arvif) {
2771		ath10k_warn(ar, "received addba event for invalid vdev_id: %u\n",
2772			    peer->vdev_id);
2773		spin_unlock_bh(&ar->data_lock);
2774		return;
2775	}
2776
2777	ath10k_dbg(ar, ATH10K_DBG_HTT,
2778		   "htt rx start rx ba session sta %pM tid %hu size %hhu\n",
2779		   peer->addr, tid, ev->window_size);
2780
2781	ieee80211_start_rx_ba_session_offl(arvif->vif, peer->addr, tid);
2782	spin_unlock_bh(&ar->data_lock);
2783}
2784
2785static void ath10k_htt_rx_delba(struct ath10k *ar, struct htt_resp *resp)
2786{
2787	struct htt_rx_delba *ev = &resp->rx_delba;
2788	struct ath10k_peer *peer;
2789	struct ath10k_vif *arvif;
2790	u16 info0, tid, peer_id;
2791
2792	info0 = __le16_to_cpu(ev->info0);
2793	tid = MS(info0, HTT_RX_BA_INFO0_TID);
2794	peer_id = MS(info0, HTT_RX_BA_INFO0_PEER_ID);
2795
2796	ath10k_dbg(ar, ATH10K_DBG_HTT,
2797		   "htt rx delba tid %hu peer_id %hu\n",
2798		   tid, peer_id);
2799
2800	spin_lock_bh(&ar->data_lock);
2801	peer = ath10k_peer_find_by_id(ar, peer_id);
2802	if (!peer) {
2803		ath10k_warn(ar, "received addba event for invalid peer_id: %hu\n",
2804			    peer_id);
2805		spin_unlock_bh(&ar->data_lock);
2806		return;
2807	}
2808
2809	arvif = ath10k_get_arvif(ar, peer->vdev_id);
2810	if (!arvif) {
2811		ath10k_warn(ar, "received addba event for invalid vdev_id: %u\n",
2812			    peer->vdev_id);
2813		spin_unlock_bh(&ar->data_lock);
2814		return;
2815	}
2816
2817	ath10k_dbg(ar, ATH10K_DBG_HTT,
2818		   "htt rx stop rx ba session sta %pM tid %hu\n",
2819		   peer->addr, tid);
2820
2821	ieee80211_stop_rx_ba_session_offl(arvif->vif, peer->addr, tid);
2822	spin_unlock_bh(&ar->data_lock);
2823}
2824
2825static int ath10k_htt_rx_extract_amsdu(struct sk_buff_head *list,
 
2826				       struct sk_buff_head *amsdu)
2827{
2828	struct sk_buff *msdu;
2829	struct htt_rx_desc *rxd;
 
2830
2831	if (skb_queue_empty(list))
2832		return -ENOBUFS;
2833
2834	if (WARN_ON(!skb_queue_empty(amsdu)))
2835		return -EINVAL;
2836
2837	while ((msdu = __skb_dequeue(list))) {
2838		__skb_queue_tail(amsdu, msdu);
2839
2840		rxd = (void *)msdu->data - sizeof(*rxd);
2841		if (rxd->msdu_end.common.info0 &
 
 
 
 
2842		    __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU))
2843			break;
2844	}
2845
2846	msdu = skb_peek_tail(amsdu);
2847	rxd = (void *)msdu->data - sizeof(*rxd);
2848	if (!(rxd->msdu_end.common.info0 &
 
 
 
2849	      __cpu_to_le32(RX_MSDU_END_INFO0_LAST_MSDU))) {
2850		skb_queue_splice_init(amsdu, list);
2851		return -EAGAIN;
2852	}
2853
2854	return 0;
2855}
2856
2857static void ath10k_htt_rx_h_rx_offload_prot(struct ieee80211_rx_status *status,
2858					    struct sk_buff *skb)
2859{
2860	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
2861
2862	if (!ieee80211_has_protected(hdr->frame_control))
2863		return;
2864
2865	/* Offloaded frames are already decrypted but firmware insists they are
2866	 * protected in the 802.11 header. Strip the flag.  Otherwise mac80211
2867	 * will drop the frame.
2868	 */
2869
2870	hdr->frame_control &= ~__cpu_to_le16(IEEE80211_FCTL_PROTECTED);
2871	status->flag |= RX_FLAG_DECRYPTED |
2872			RX_FLAG_IV_STRIPPED |
2873			RX_FLAG_MMIC_STRIPPED;
2874}
2875
2876static void ath10k_htt_rx_h_rx_offload(struct ath10k *ar,
2877				       struct sk_buff_head *list)
2878{
2879	struct ath10k_htt *htt = &ar->htt;
2880	struct ieee80211_rx_status *status = &htt->rx_status;
2881	struct htt_rx_offload_msdu *rx;
2882	struct sk_buff *msdu;
2883	size_t offset;
2884
2885	while ((msdu = __skb_dequeue(list))) {
2886		/* Offloaded frames don't have Rx descriptor. Instead they have
2887		 * a short meta information header.
2888		 */
2889
2890		rx = (void *)msdu->data;
2891
2892		skb_put(msdu, sizeof(*rx));
2893		skb_pull(msdu, sizeof(*rx));
2894
2895		if (skb_tailroom(msdu) < __le16_to_cpu(rx->msdu_len)) {
2896			ath10k_warn(ar, "dropping frame: offloaded rx msdu is too long!\n");
2897			dev_kfree_skb_any(msdu);
2898			continue;
2899		}
2900
2901		skb_put(msdu, __le16_to_cpu(rx->msdu_len));
2902
2903		/* Offloaded rx header length isn't multiple of 2 nor 4 so the
2904		 * actual payload is unaligned. Align the frame.  Otherwise
2905		 * mac80211 complains.  This shouldn't reduce performance much
2906		 * because these offloaded frames are rare.
2907		 */
2908		offset = 4 - ((unsigned long)msdu->data & 3);
2909		skb_put(msdu, offset);
2910		memmove(msdu->data + offset, msdu->data, msdu->len);
2911		skb_pull(msdu, offset);
2912
2913		/* FIXME: The frame is NWifi. Re-construct QoS Control
2914		 * if possible later.
2915		 */
2916
2917		memset(status, 0, sizeof(*status));
2918		status->flag |= RX_FLAG_NO_SIGNAL_VAL;
2919
2920		ath10k_htt_rx_h_rx_offload_prot(status, msdu);
2921		ath10k_htt_rx_h_channel(ar, status, NULL, rx->vdev_id);
2922		ath10k_htt_rx_h_queue_msdu(ar, status, msdu);
2923	}
2924}
2925
2926static int ath10k_htt_rx_in_ord_ind(struct ath10k *ar, struct sk_buff *skb)
2927{
2928	struct ath10k_htt *htt = &ar->htt;
2929	struct htt_resp *resp = (void *)skb->data;
2930	struct ieee80211_rx_status *status = &htt->rx_status;
2931	struct sk_buff_head list;
2932	struct sk_buff_head amsdu;
2933	u16 peer_id;
2934	u16 msdu_count;
2935	u8 vdev_id;
2936	u8 tid;
2937	bool offload;
2938	bool frag;
2939	int ret;
2940
2941	lockdep_assert_held(&htt->rx_ring.lock);
2942
2943	if (htt->rx_confused)
2944		return -EIO;
2945
2946	skb_pull(skb, sizeof(resp->hdr));
2947	skb_pull(skb, sizeof(resp->rx_in_ord_ind));
2948
2949	peer_id = __le16_to_cpu(resp->rx_in_ord_ind.peer_id);
2950	msdu_count = __le16_to_cpu(resp->rx_in_ord_ind.msdu_count);
2951	vdev_id = resp->rx_in_ord_ind.vdev_id;
2952	tid = SM(resp->rx_in_ord_ind.info, HTT_RX_IN_ORD_IND_INFO_TID);
2953	offload = !!(resp->rx_in_ord_ind.info &
2954			HTT_RX_IN_ORD_IND_INFO_OFFLOAD_MASK);
2955	frag = !!(resp->rx_in_ord_ind.info & HTT_RX_IN_ORD_IND_INFO_FRAG_MASK);
2956
2957	ath10k_dbg(ar, ATH10K_DBG_HTT,
2958		   "htt rx in ord vdev %i peer %i tid %i offload %i frag %i msdu count %i\n",
2959		   vdev_id, peer_id, tid, offload, frag, msdu_count);
2960
2961	if (skb->len < msdu_count * sizeof(*resp->rx_in_ord_ind.msdu_descs32)) {
2962		ath10k_warn(ar, "dropping invalid in order rx indication\n");
2963		return -EINVAL;
2964	}
2965
2966	/* The event can deliver more than 1 A-MSDU. Each A-MSDU is later
2967	 * extracted and processed.
2968	 */
2969	__skb_queue_head_init(&list);
2970	if (ar->hw_params.target_64bit)
2971		ret = ath10k_htt_rx_pop_paddr64_list(htt, &resp->rx_in_ord_ind,
2972						     &list);
2973	else
2974		ret = ath10k_htt_rx_pop_paddr32_list(htt, &resp->rx_in_ord_ind,
2975						     &list);
2976
2977	if (ret < 0) {
2978		ath10k_warn(ar, "failed to pop paddr list: %d\n", ret);
2979		htt->rx_confused = true;
2980		return -EIO;
2981	}
2982
2983	/* Offloaded frames are very different and need to be handled
2984	 * separately.
2985	 */
2986	if (offload)
2987		ath10k_htt_rx_h_rx_offload(ar, &list);
2988
2989	while (!skb_queue_empty(&list)) {
2990		__skb_queue_head_init(&amsdu);
2991		ret = ath10k_htt_rx_extract_amsdu(&list, &amsdu);
2992		switch (ret) {
2993		case 0:
2994			/* Note: The in-order indication may report interleaved
2995			 * frames from different PPDUs meaning reported rx rate
2996			 * to mac80211 isn't accurate/reliable. It's still
2997			 * better to report something than nothing though. This
2998			 * should still give an idea about rx rate to the user.
2999			 */
3000			ath10k_htt_rx_h_ppdu(ar, &amsdu, status, vdev_id);
3001			ath10k_htt_rx_h_filter(ar, &amsdu, status, NULL);
3002			ath10k_htt_rx_h_mpdu(ar, &amsdu, status, false, NULL,
3003					     NULL);
3004			ath10k_htt_rx_h_enqueue(ar, &amsdu, status);
3005			break;
3006		case -EAGAIN:
3007			/* fall through */
3008		default:
3009			/* Should not happen. */
3010			ath10k_warn(ar, "failed to extract amsdu: %d\n", ret);
3011			htt->rx_confused = true;
3012			__skb_queue_purge(&list);
3013			return -EIO;
3014		}
3015	}
3016	return ret;
3017}
3018
3019static void ath10k_htt_rx_tx_fetch_resp_id_confirm(struct ath10k *ar,
3020						   const __le32 *resp_ids,
3021						   int num_resp_ids)
3022{
3023	int i;
3024	u32 resp_id;
3025
3026	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch confirm num_resp_ids %d\n",
3027		   num_resp_ids);
3028
3029	for (i = 0; i < num_resp_ids; i++) {
3030		resp_id = le32_to_cpu(resp_ids[i]);
3031
3032		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch confirm resp_id %u\n",
3033			   resp_id);
3034
3035		/* TODO: free resp_id */
3036	}
3037}
3038
3039static void ath10k_htt_rx_tx_fetch_ind(struct ath10k *ar, struct sk_buff *skb)
3040{
3041	struct ieee80211_hw *hw = ar->hw;
3042	struct ieee80211_txq *txq;
3043	struct htt_resp *resp = (struct htt_resp *)skb->data;
3044	struct htt_tx_fetch_record *record;
3045	size_t len;
3046	size_t max_num_bytes;
3047	size_t max_num_msdus;
3048	size_t num_bytes;
3049	size_t num_msdus;
3050	const __le32 *resp_ids;
3051	u16 num_records;
3052	u16 num_resp_ids;
3053	u16 peer_id;
3054	u8 tid;
3055	int ret;
3056	int i;
3057	bool may_tx;
3058
3059	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch ind\n");
3060
3061	len = sizeof(resp->hdr) + sizeof(resp->tx_fetch_ind);
3062	if (unlikely(skb->len < len)) {
3063		ath10k_warn(ar, "received corrupted tx_fetch_ind event: buffer too short\n");
3064		return;
3065	}
3066
3067	num_records = le16_to_cpu(resp->tx_fetch_ind.num_records);
3068	num_resp_ids = le16_to_cpu(resp->tx_fetch_ind.num_resp_ids);
3069
3070	len += sizeof(resp->tx_fetch_ind.records[0]) * num_records;
3071	len += sizeof(resp->tx_fetch_ind.resp_ids[0]) * num_resp_ids;
3072
3073	if (unlikely(skb->len < len)) {
3074		ath10k_warn(ar, "received corrupted tx_fetch_ind event: too many records/resp_ids\n");
3075		return;
3076	}
3077
3078	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch ind num records %hu num resps %hu seq %hu\n",
3079		   num_records, num_resp_ids,
3080		   le16_to_cpu(resp->tx_fetch_ind.fetch_seq_num));
3081
3082	if (!ar->htt.tx_q_state.enabled) {
3083		ath10k_warn(ar, "received unexpected tx_fetch_ind event: not enabled\n");
3084		return;
3085	}
3086
3087	if (ar->htt.tx_q_state.mode == HTT_TX_MODE_SWITCH_PUSH) {
3088		ath10k_warn(ar, "received unexpected tx_fetch_ind event: in push mode\n");
3089		return;
3090	}
3091
3092	rcu_read_lock();
3093
3094	for (i = 0; i < num_records; i++) {
3095		record = &resp->tx_fetch_ind.records[i];
3096		peer_id = MS(le16_to_cpu(record->info),
3097			     HTT_TX_FETCH_RECORD_INFO_PEER_ID);
3098		tid = MS(le16_to_cpu(record->info),
3099			 HTT_TX_FETCH_RECORD_INFO_TID);
3100		max_num_msdus = le16_to_cpu(record->num_msdus);
3101		max_num_bytes = le32_to_cpu(record->num_bytes);
3102
3103		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch record %i peer_id %hu tid %hhu msdus %zu bytes %zu\n",
3104			   i, peer_id, tid, max_num_msdus, max_num_bytes);
3105
3106		if (unlikely(peer_id >= ar->htt.tx_q_state.num_peers) ||
3107		    unlikely(tid >= ar->htt.tx_q_state.num_tids)) {
3108			ath10k_warn(ar, "received out of range peer_id %hu tid %hhu\n",
3109				    peer_id, tid);
3110			continue;
3111		}
3112
3113		spin_lock_bh(&ar->data_lock);
3114		txq = ath10k_mac_txq_lookup(ar, peer_id, tid);
3115		spin_unlock_bh(&ar->data_lock);
3116
3117		/* It is okay to release the lock and use txq because RCU read
3118		 * lock is held.
3119		 */
3120
3121		if (unlikely(!txq)) {
3122			ath10k_warn(ar, "failed to lookup txq for peer_id %hu tid %hhu\n",
3123				    peer_id, tid);
3124			continue;
3125		}
3126
3127		num_msdus = 0;
3128		num_bytes = 0;
3129
3130		ieee80211_txq_schedule_start(hw, txq->ac);
3131		may_tx = ieee80211_txq_may_transmit(hw, txq);
3132		while (num_msdus < max_num_msdus &&
3133		       num_bytes < max_num_bytes) {
3134			if (!may_tx)
3135				break;
3136
3137			ret = ath10k_mac_tx_push_txq(hw, txq);
3138			if (ret < 0)
3139				break;
3140
3141			num_msdus++;
3142			num_bytes += ret;
3143		}
3144		ieee80211_return_txq(hw, txq, false);
3145		ieee80211_txq_schedule_end(hw, txq->ac);
3146
3147		record->num_msdus = cpu_to_le16(num_msdus);
3148		record->num_bytes = cpu_to_le32(num_bytes);
3149
3150		ath10k_htt_tx_txq_recalc(hw, txq);
3151	}
3152
3153	rcu_read_unlock();
3154
3155	resp_ids = ath10k_htt_get_tx_fetch_ind_resp_ids(&resp->tx_fetch_ind);
3156	ath10k_htt_rx_tx_fetch_resp_id_confirm(ar, resp_ids, num_resp_ids);
3157
3158	ret = ath10k_htt_tx_fetch_resp(ar,
3159				       resp->tx_fetch_ind.token,
3160				       resp->tx_fetch_ind.fetch_seq_num,
3161				       resp->tx_fetch_ind.records,
3162				       num_records);
3163	if (unlikely(ret)) {
3164		ath10k_warn(ar, "failed to submit tx fetch resp for token 0x%08x: %d\n",
3165			    le32_to_cpu(resp->tx_fetch_ind.token), ret);
3166		/* FIXME: request fw restart */
3167	}
3168
3169	ath10k_htt_tx_txq_sync(ar);
3170}
3171
3172static void ath10k_htt_rx_tx_fetch_confirm(struct ath10k *ar,
3173					   struct sk_buff *skb)
3174{
3175	const struct htt_resp *resp = (void *)skb->data;
3176	size_t len;
3177	int num_resp_ids;
3178
3179	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx fetch confirm\n");
3180
3181	len = sizeof(resp->hdr) + sizeof(resp->tx_fetch_confirm);
3182	if (unlikely(skb->len < len)) {
3183		ath10k_warn(ar, "received corrupted tx_fetch_confirm event: buffer too short\n");
3184		return;
3185	}
3186
3187	num_resp_ids = le16_to_cpu(resp->tx_fetch_confirm.num_resp_ids);
3188	len += sizeof(resp->tx_fetch_confirm.resp_ids[0]) * num_resp_ids;
3189
3190	if (unlikely(skb->len < len)) {
3191		ath10k_warn(ar, "received corrupted tx_fetch_confirm event: resp_ids buffer overflow\n");
3192		return;
3193	}
3194
3195	ath10k_htt_rx_tx_fetch_resp_id_confirm(ar,
3196					       resp->tx_fetch_confirm.resp_ids,
3197					       num_resp_ids);
3198}
3199
3200static void ath10k_htt_rx_tx_mode_switch_ind(struct ath10k *ar,
3201					     struct sk_buff *skb)
3202{
3203	const struct htt_resp *resp = (void *)skb->data;
3204	const struct htt_tx_mode_switch_record *record;
3205	struct ieee80211_txq *txq;
3206	struct ath10k_txq *artxq;
3207	size_t len;
3208	size_t num_records;
3209	enum htt_tx_mode_switch_mode mode;
3210	bool enable;
3211	u16 info0;
3212	u16 info1;
3213	u16 threshold;
3214	u16 peer_id;
3215	u8 tid;
3216	int i;
3217
3218	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx tx mode switch ind\n");
3219
3220	len = sizeof(resp->hdr) + sizeof(resp->tx_mode_switch_ind);
3221	if (unlikely(skb->len < len)) {
3222		ath10k_warn(ar, "received corrupted tx_mode_switch_ind event: buffer too short\n");
3223		return;
3224	}
3225
3226	info0 = le16_to_cpu(resp->tx_mode_switch_ind.info0);
3227	info1 = le16_to_cpu(resp->tx_mode_switch_ind.info1);
3228
3229	enable = !!(info0 & HTT_TX_MODE_SWITCH_IND_INFO0_ENABLE);
3230	num_records = MS(info0, HTT_TX_MODE_SWITCH_IND_INFO1_THRESHOLD);
3231	mode = MS(info1, HTT_TX_MODE_SWITCH_IND_INFO1_MODE);
3232	threshold = MS(info1, HTT_TX_MODE_SWITCH_IND_INFO1_THRESHOLD);
3233
3234	ath10k_dbg(ar, ATH10K_DBG_HTT,
3235		   "htt rx tx mode switch ind info0 0x%04hx info1 0x%04hx enable %d num records %zd mode %d threshold %hu\n",
3236		   info0, info1, enable, num_records, mode, threshold);
3237
3238	len += sizeof(resp->tx_mode_switch_ind.records[0]) * num_records;
3239
3240	if (unlikely(skb->len < len)) {
3241		ath10k_warn(ar, "received corrupted tx_mode_switch_mode_ind event: too many records\n");
3242		return;
3243	}
3244
3245	switch (mode) {
3246	case HTT_TX_MODE_SWITCH_PUSH:
3247	case HTT_TX_MODE_SWITCH_PUSH_PULL:
3248		break;
3249	default:
3250		ath10k_warn(ar, "received invalid tx_mode_switch_mode_ind mode %d, ignoring\n",
3251			    mode);
3252		return;
3253	}
3254
3255	if (!enable)
3256		return;
3257
3258	ar->htt.tx_q_state.enabled = enable;
3259	ar->htt.tx_q_state.mode = mode;
3260	ar->htt.tx_q_state.num_push_allowed = threshold;
3261
3262	rcu_read_lock();
3263
3264	for (i = 0; i < num_records; i++) {
3265		record = &resp->tx_mode_switch_ind.records[i];
3266		info0 = le16_to_cpu(record->info0);
3267		peer_id = MS(info0, HTT_TX_MODE_SWITCH_RECORD_INFO0_PEER_ID);
3268		tid = MS(info0, HTT_TX_MODE_SWITCH_RECORD_INFO0_TID);
3269
3270		if (unlikely(peer_id >= ar->htt.tx_q_state.num_peers) ||
3271		    unlikely(tid >= ar->htt.tx_q_state.num_tids)) {
3272			ath10k_warn(ar, "received out of range peer_id %hu tid %hhu\n",
3273				    peer_id, tid);
3274			continue;
3275		}
3276
3277		spin_lock_bh(&ar->data_lock);
3278		txq = ath10k_mac_txq_lookup(ar, peer_id, tid);
3279		spin_unlock_bh(&ar->data_lock);
3280
3281		/* It is okay to release the lock and use txq because RCU read
3282		 * lock is held.
3283		 */
3284
3285		if (unlikely(!txq)) {
3286			ath10k_warn(ar, "failed to lookup txq for peer_id %hu tid %hhu\n",
3287				    peer_id, tid);
3288			continue;
3289		}
3290
3291		spin_lock_bh(&ar->htt.tx_lock);
3292		artxq = (void *)txq->drv_priv;
3293		artxq->num_push_allowed = le16_to_cpu(record->num_max_msdus);
3294		spin_unlock_bh(&ar->htt.tx_lock);
3295	}
3296
3297	rcu_read_unlock();
3298
3299	ath10k_mac_tx_push_pending(ar);
3300}
3301
3302void ath10k_htt_htc_t2h_msg_handler(struct ath10k *ar, struct sk_buff *skb)
3303{
3304	bool release;
3305
3306	release = ath10k_htt_t2h_msg_handler(ar, skb);
3307
3308	/* Free the indication buffer */
3309	if (release)
3310		dev_kfree_skb_any(skb);
3311}
3312
3313static inline s8 ath10k_get_legacy_rate_idx(struct ath10k *ar, u8 rate)
3314{
3315	static const u8 legacy_rates[] = {1, 2, 5, 11, 6, 9, 12,
3316					  18, 24, 36, 48, 54};
3317	int i;
3318
3319	for (i = 0; i < ARRAY_SIZE(legacy_rates); i++) {
3320		if (rate == legacy_rates[i])
3321			return i;
3322	}
3323
3324	ath10k_warn(ar, "Invalid legacy rate %hhd peer stats", rate);
3325	return -EINVAL;
3326}
3327
3328static void
3329ath10k_accumulate_per_peer_tx_stats(struct ath10k *ar,
3330				    struct ath10k_sta *arsta,
3331				    struct ath10k_per_peer_tx_stats *pstats,
3332				    s8 legacy_rate_idx)
3333{
3334	struct rate_info *txrate = &arsta->txrate;
3335	struct ath10k_htt_tx_stats *tx_stats;
3336	int idx, ht_idx, gi, mcs, bw, nss;
3337	unsigned long flags;
3338
3339	if (!arsta->tx_stats)
3340		return;
3341
3342	tx_stats = arsta->tx_stats;
3343	flags = txrate->flags;
3344	gi = test_bit(ATH10K_RATE_INFO_FLAGS_SGI_BIT, &flags);
3345	mcs = ATH10K_HW_MCS_RATE(pstats->ratecode);
3346	bw = txrate->bw;
3347	nss = txrate->nss;
3348	ht_idx = mcs + (nss - 1) * 8;
3349	idx = mcs * 8 + 8 * 10 * (nss - 1);
3350	idx += bw * 2 + gi;
3351
3352#define STATS_OP_FMT(name) tx_stats->stats[ATH10K_STATS_TYPE_##name]
3353
3354	if (txrate->flags & RATE_INFO_FLAGS_VHT_MCS) {
3355		STATS_OP_FMT(SUCC).vht[0][mcs] += pstats->succ_bytes;
3356		STATS_OP_FMT(SUCC).vht[1][mcs] += pstats->succ_pkts;
3357		STATS_OP_FMT(FAIL).vht[0][mcs] += pstats->failed_bytes;
3358		STATS_OP_FMT(FAIL).vht[1][mcs] += pstats->failed_pkts;
3359		STATS_OP_FMT(RETRY).vht[0][mcs] += pstats->retry_bytes;
3360		STATS_OP_FMT(RETRY).vht[1][mcs] += pstats->retry_pkts;
3361	} else if (txrate->flags & RATE_INFO_FLAGS_MCS) {
3362		STATS_OP_FMT(SUCC).ht[0][ht_idx] += pstats->succ_bytes;
3363		STATS_OP_FMT(SUCC).ht[1][ht_idx] += pstats->succ_pkts;
3364		STATS_OP_FMT(FAIL).ht[0][ht_idx] += pstats->failed_bytes;
3365		STATS_OP_FMT(FAIL).ht[1][ht_idx] += pstats->failed_pkts;
3366		STATS_OP_FMT(RETRY).ht[0][ht_idx] += pstats->retry_bytes;
3367		STATS_OP_FMT(RETRY).ht[1][ht_idx] += pstats->retry_pkts;
3368	} else {
3369		mcs = legacy_rate_idx;
3370
3371		STATS_OP_FMT(SUCC).legacy[0][mcs] += pstats->succ_bytes;
3372		STATS_OP_FMT(SUCC).legacy[1][mcs] += pstats->succ_pkts;
3373		STATS_OP_FMT(FAIL).legacy[0][mcs] += pstats->failed_bytes;
3374		STATS_OP_FMT(FAIL).legacy[1][mcs] += pstats->failed_pkts;
3375		STATS_OP_FMT(RETRY).legacy[0][mcs] += pstats->retry_bytes;
3376		STATS_OP_FMT(RETRY).legacy[1][mcs] += pstats->retry_pkts;
3377	}
3378
3379	if (ATH10K_HW_AMPDU(pstats->flags)) {
3380		tx_stats->ba_fails += ATH10K_HW_BA_FAIL(pstats->flags);
3381
3382		if (txrate->flags & RATE_INFO_FLAGS_MCS) {
3383			STATS_OP_FMT(AMPDU).ht[0][ht_idx] +=
3384				pstats->succ_bytes + pstats->retry_bytes;
3385			STATS_OP_FMT(AMPDU).ht[1][ht_idx] +=
3386				pstats->succ_pkts + pstats->retry_pkts;
3387		} else {
3388			STATS_OP_FMT(AMPDU).vht[0][mcs] +=
3389				pstats->succ_bytes + pstats->retry_bytes;
3390			STATS_OP_FMT(AMPDU).vht[1][mcs] +=
3391				pstats->succ_pkts + pstats->retry_pkts;
3392		}
3393		STATS_OP_FMT(AMPDU).bw[0][bw] +=
3394			pstats->succ_bytes + pstats->retry_bytes;
3395		STATS_OP_FMT(AMPDU).nss[0][nss - 1] +=
3396			pstats->succ_bytes + pstats->retry_bytes;
3397		STATS_OP_FMT(AMPDU).gi[0][gi] +=
3398			pstats->succ_bytes + pstats->retry_bytes;
3399		STATS_OP_FMT(AMPDU).rate_table[0][idx] +=
3400			pstats->succ_bytes + pstats->retry_bytes;
3401		STATS_OP_FMT(AMPDU).bw[1][bw] +=
3402			pstats->succ_pkts + pstats->retry_pkts;
3403		STATS_OP_FMT(AMPDU).nss[1][nss - 1] +=
3404			pstats->succ_pkts + pstats->retry_pkts;
3405		STATS_OP_FMT(AMPDU).gi[1][gi] +=
3406			pstats->succ_pkts + pstats->retry_pkts;
3407		STATS_OP_FMT(AMPDU).rate_table[1][idx] +=
3408			pstats->succ_pkts + pstats->retry_pkts;
3409	} else {
3410		tx_stats->ack_fails +=
3411				ATH10K_HW_BA_FAIL(pstats->flags);
3412	}
3413
3414	STATS_OP_FMT(SUCC).bw[0][bw] += pstats->succ_bytes;
3415	STATS_OP_FMT(SUCC).nss[0][nss - 1] += pstats->succ_bytes;
3416	STATS_OP_FMT(SUCC).gi[0][gi] += pstats->succ_bytes;
3417
3418	STATS_OP_FMT(SUCC).bw[1][bw] += pstats->succ_pkts;
3419	STATS_OP_FMT(SUCC).nss[1][nss - 1] += pstats->succ_pkts;
3420	STATS_OP_FMT(SUCC).gi[1][gi] += pstats->succ_pkts;
3421
3422	STATS_OP_FMT(FAIL).bw[0][bw] += pstats->failed_bytes;
3423	STATS_OP_FMT(FAIL).nss[0][nss - 1] += pstats->failed_bytes;
3424	STATS_OP_FMT(FAIL).gi[0][gi] += pstats->failed_bytes;
3425
3426	STATS_OP_FMT(FAIL).bw[1][bw] += pstats->failed_pkts;
3427	STATS_OP_FMT(FAIL).nss[1][nss - 1] += pstats->failed_pkts;
3428	STATS_OP_FMT(FAIL).gi[1][gi] += pstats->failed_pkts;
3429
3430	STATS_OP_FMT(RETRY).bw[0][bw] += pstats->retry_bytes;
3431	STATS_OP_FMT(RETRY).nss[0][nss - 1] += pstats->retry_bytes;
3432	STATS_OP_FMT(RETRY).gi[0][gi] += pstats->retry_bytes;
3433
3434	STATS_OP_FMT(RETRY).bw[1][bw] += pstats->retry_pkts;
3435	STATS_OP_FMT(RETRY).nss[1][nss - 1] += pstats->retry_pkts;
3436	STATS_OP_FMT(RETRY).gi[1][gi] += pstats->retry_pkts;
3437
3438	if (txrate->flags >= RATE_INFO_FLAGS_MCS) {
3439		STATS_OP_FMT(SUCC).rate_table[0][idx] += pstats->succ_bytes;
3440		STATS_OP_FMT(SUCC).rate_table[1][idx] += pstats->succ_pkts;
3441		STATS_OP_FMT(FAIL).rate_table[0][idx] += pstats->failed_bytes;
3442		STATS_OP_FMT(FAIL).rate_table[1][idx] += pstats->failed_pkts;
3443		STATS_OP_FMT(RETRY).rate_table[0][idx] += pstats->retry_bytes;
3444		STATS_OP_FMT(RETRY).rate_table[1][idx] += pstats->retry_pkts;
3445	}
3446
3447	tx_stats->tx_duration += pstats->duration;
3448}
3449
3450static void
3451ath10k_update_per_peer_tx_stats(struct ath10k *ar,
3452				struct ieee80211_sta *sta,
3453				struct ath10k_per_peer_tx_stats *peer_stats)
3454{
3455	struct ath10k_sta *arsta = (struct ath10k_sta *)sta->drv_priv;
3456	struct ieee80211_chanctx_conf *conf = NULL;
3457	u8 rate = 0, sgi;
3458	s8 rate_idx = 0;
3459	bool skip_auto_rate;
3460	struct rate_info txrate;
3461
3462	lockdep_assert_held(&ar->data_lock);
3463
3464	txrate.flags = ATH10K_HW_PREAMBLE(peer_stats->ratecode);
3465	txrate.bw = ATH10K_HW_BW(peer_stats->flags);
3466	txrate.nss = ATH10K_HW_NSS(peer_stats->ratecode);
3467	txrate.mcs = ATH10K_HW_MCS_RATE(peer_stats->ratecode);
3468	sgi = ATH10K_HW_GI(peer_stats->flags);
3469	skip_auto_rate = ATH10K_FW_SKIPPED_RATE_CTRL(peer_stats->flags);
3470
3471	/* Firmware's rate control skips broadcast/management frames,
3472	 * if host has configure fixed rates and in some other special cases.
3473	 */
3474	if (skip_auto_rate)
3475		return;
3476
3477	if (txrate.flags == WMI_RATE_PREAMBLE_VHT && txrate.mcs > 9) {
3478		ath10k_warn(ar, "Invalid VHT mcs %hhd peer stats",  txrate.mcs);
3479		return;
3480	}
3481
3482	if (txrate.flags == WMI_RATE_PREAMBLE_HT &&
3483	    (txrate.mcs > 7 || txrate.nss < 1)) {
3484		ath10k_warn(ar, "Invalid HT mcs %hhd nss %hhd peer stats",
3485			    txrate.mcs, txrate.nss);
3486		return;
3487	}
3488
3489	memset(&arsta->txrate, 0, sizeof(arsta->txrate));
3490	memset(&arsta->tx_info.status, 0, sizeof(arsta->tx_info.status));
3491	if (txrate.flags == WMI_RATE_PREAMBLE_CCK ||
3492	    txrate.flags == WMI_RATE_PREAMBLE_OFDM) {
3493		rate = ATH10K_HW_LEGACY_RATE(peer_stats->ratecode);
3494		/* This is hacky, FW sends CCK rate 5.5Mbps as 6 */
3495		if (rate == 6 && txrate.flags == WMI_RATE_PREAMBLE_CCK)
3496			rate = 5;
3497		rate_idx = ath10k_get_legacy_rate_idx(ar, rate);
3498		if (rate_idx < 0)
3499			return;
3500		arsta->txrate.legacy = rate;
3501	} else if (txrate.flags == WMI_RATE_PREAMBLE_HT) {
3502		arsta->txrate.flags = RATE_INFO_FLAGS_MCS;
3503		arsta->txrate.mcs = txrate.mcs + 8 * (txrate.nss - 1);
3504	} else {
3505		arsta->txrate.flags = RATE_INFO_FLAGS_VHT_MCS;
3506		arsta->txrate.mcs = txrate.mcs;
3507	}
3508
3509	switch (txrate.flags) {
3510	case WMI_RATE_PREAMBLE_OFDM:
3511		if (arsta->arvif && arsta->arvif->vif)
3512			conf = rcu_dereference(arsta->arvif->vif->chanctx_conf);
3513		if (conf && conf->def.chan->band == NL80211_BAND_5GHZ)
3514			arsta->tx_info.status.rates[0].idx = rate_idx - 4;
3515		break;
3516	case WMI_RATE_PREAMBLE_CCK:
3517		arsta->tx_info.status.rates[0].idx = rate_idx;
3518		if (sgi)
3519			arsta->tx_info.status.rates[0].flags |=
3520				(IEEE80211_TX_RC_USE_SHORT_PREAMBLE |
3521				 IEEE80211_TX_RC_SHORT_GI);
3522		break;
3523	case WMI_RATE_PREAMBLE_HT:
3524		arsta->tx_info.status.rates[0].idx =
3525				txrate.mcs + ((txrate.nss - 1) * 8);
3526		if (sgi)
3527			arsta->tx_info.status.rates[0].flags |=
3528					IEEE80211_TX_RC_SHORT_GI;
3529		arsta->tx_info.status.rates[0].flags |= IEEE80211_TX_RC_MCS;
3530		break;
3531	case WMI_RATE_PREAMBLE_VHT:
3532		ieee80211_rate_set_vht(&arsta->tx_info.status.rates[0],
3533				       txrate.mcs, txrate.nss);
3534		if (sgi)
3535			arsta->tx_info.status.rates[0].flags |=
3536						IEEE80211_TX_RC_SHORT_GI;
3537		arsta->tx_info.status.rates[0].flags |= IEEE80211_TX_RC_VHT_MCS;
3538		break;
3539	}
3540
3541	arsta->txrate.nss = txrate.nss;
3542	arsta->txrate.bw = ath10k_bw_to_mac80211_bw(txrate.bw);
3543	arsta->last_tx_bitrate = cfg80211_calculate_bitrate(&arsta->txrate);
3544	if (sgi)
3545		arsta->txrate.flags |= RATE_INFO_FLAGS_SHORT_GI;
3546
3547	switch (arsta->txrate.bw) {
3548	case RATE_INFO_BW_40:
3549		arsta->tx_info.status.rates[0].flags |=
3550				IEEE80211_TX_RC_40_MHZ_WIDTH;
3551		break;
3552	case RATE_INFO_BW_80:
3553		arsta->tx_info.status.rates[0].flags |=
3554				IEEE80211_TX_RC_80_MHZ_WIDTH;
3555		break;
 
 
 
 
3556	}
3557
3558	if (peer_stats->succ_pkts) {
3559		arsta->tx_info.flags = IEEE80211_TX_STAT_ACK;
3560		arsta->tx_info.status.rates[0].count = 1;
3561		ieee80211_tx_rate_update(ar->hw, sta, &arsta->tx_info);
3562	}
3563
 
 
 
 
 
 
 
 
 
3564	if (ath10k_debug_is_extd_tx_stats_enabled(ar))
3565		ath10k_accumulate_per_peer_tx_stats(ar, arsta, peer_stats,
3566						    rate_idx);
3567}
3568
3569static void ath10k_htt_fetch_peer_stats(struct ath10k *ar,
3570					struct sk_buff *skb)
3571{
3572	struct htt_resp *resp = (struct htt_resp *)skb->data;
3573	struct ath10k_per_peer_tx_stats *p_tx_stats = &ar->peer_tx_stats;
3574	struct htt_per_peer_tx_stats_ind *tx_stats;
3575	struct ieee80211_sta *sta;
3576	struct ath10k_peer *peer;
3577	int peer_id, i;
3578	u8 ppdu_len, num_ppdu;
3579
3580	num_ppdu = resp->peer_tx_stats.num_ppdu;
3581	ppdu_len = resp->peer_tx_stats.ppdu_len * sizeof(__le32);
3582
3583	if (skb->len < sizeof(struct htt_resp_hdr) + num_ppdu * ppdu_len) {
3584		ath10k_warn(ar, "Invalid peer stats buf length %d\n", skb->len);
3585		return;
3586	}
3587
3588	tx_stats = (struct htt_per_peer_tx_stats_ind *)
3589			(resp->peer_tx_stats.payload);
3590	peer_id = __le16_to_cpu(tx_stats->peer_id);
3591
3592	rcu_read_lock();
3593	spin_lock_bh(&ar->data_lock);
3594	peer = ath10k_peer_find_by_id(ar, peer_id);
3595	if (!peer || !peer->sta) {
3596		ath10k_warn(ar, "Invalid peer id %d peer stats buffer\n",
3597			    peer_id);
3598		goto out;
3599	}
3600
3601	sta = peer->sta;
3602	for (i = 0; i < num_ppdu; i++) {
3603		tx_stats = (struct htt_per_peer_tx_stats_ind *)
3604			   (resp->peer_tx_stats.payload + i * ppdu_len);
3605
3606		p_tx_stats->succ_bytes = __le32_to_cpu(tx_stats->succ_bytes);
3607		p_tx_stats->retry_bytes = __le32_to_cpu(tx_stats->retry_bytes);
3608		p_tx_stats->failed_bytes =
3609				__le32_to_cpu(tx_stats->failed_bytes);
3610		p_tx_stats->ratecode = tx_stats->ratecode;
3611		p_tx_stats->flags = tx_stats->flags;
3612		p_tx_stats->succ_pkts = __le16_to_cpu(tx_stats->succ_pkts);
3613		p_tx_stats->retry_pkts = __le16_to_cpu(tx_stats->retry_pkts);
3614		p_tx_stats->failed_pkts = __le16_to_cpu(tx_stats->failed_pkts);
3615		p_tx_stats->duration = __le16_to_cpu(tx_stats->tx_duration);
3616
3617		ath10k_update_per_peer_tx_stats(ar, sta, p_tx_stats);
3618	}
3619
3620out:
3621	spin_unlock_bh(&ar->data_lock);
3622	rcu_read_unlock();
3623}
3624
3625static void ath10k_fetch_10_2_tx_stats(struct ath10k *ar, u8 *data)
3626{
3627	struct ath10k_pktlog_hdr *hdr = (struct ath10k_pktlog_hdr *)data;
3628	struct ath10k_per_peer_tx_stats *p_tx_stats = &ar->peer_tx_stats;
3629	struct ath10k_10_2_peer_tx_stats *tx_stats;
3630	struct ieee80211_sta *sta;
3631	struct ath10k_peer *peer;
3632	u16 log_type = __le16_to_cpu(hdr->log_type);
3633	u32 peer_id = 0, i;
3634
3635	if (log_type != ATH_PKTLOG_TYPE_TX_STAT)
3636		return;
3637
3638	tx_stats = (struct ath10k_10_2_peer_tx_stats *)((hdr->payload) +
3639		    ATH10K_10_2_TX_STATS_OFFSET);
3640
3641	if (!tx_stats->tx_ppdu_cnt)
3642		return;
3643
3644	peer_id = tx_stats->peer_id;
3645
3646	rcu_read_lock();
3647	spin_lock_bh(&ar->data_lock);
3648	peer = ath10k_peer_find_by_id(ar, peer_id);
3649	if (!peer || !peer->sta) {
3650		ath10k_warn(ar, "Invalid peer id %d in peer stats buffer\n",
3651			    peer_id);
3652		goto out;
3653	}
3654
3655	sta = peer->sta;
3656	for (i = 0; i < tx_stats->tx_ppdu_cnt; i++) {
3657		p_tx_stats->succ_bytes =
3658			__le16_to_cpu(tx_stats->success_bytes[i]);
3659		p_tx_stats->retry_bytes =
3660			__le16_to_cpu(tx_stats->retry_bytes[i]);
3661		p_tx_stats->failed_bytes =
3662			__le16_to_cpu(tx_stats->failed_bytes[i]);
3663		p_tx_stats->ratecode = tx_stats->ratecode[i];
3664		p_tx_stats->flags = tx_stats->flags[i];
3665		p_tx_stats->succ_pkts = tx_stats->success_pkts[i];
3666		p_tx_stats->retry_pkts = tx_stats->retry_pkts[i];
3667		p_tx_stats->failed_pkts = tx_stats->failed_pkts[i];
3668
3669		ath10k_update_per_peer_tx_stats(ar, sta, p_tx_stats);
3670	}
3671	spin_unlock_bh(&ar->data_lock);
3672	rcu_read_unlock();
3673
3674	return;
3675
3676out:
3677	spin_unlock_bh(&ar->data_lock);
3678	rcu_read_unlock();
3679}
3680
3681static int ath10k_htt_rx_pn_len(enum htt_security_types sec_type)
3682{
3683	switch (sec_type) {
3684	case HTT_SECURITY_TKIP:
3685	case HTT_SECURITY_TKIP_NOMIC:
3686	case HTT_SECURITY_AES_CCMP:
3687		return 48;
3688	default:
3689		return 0;
3690	}
3691}
3692
3693static void ath10k_htt_rx_sec_ind_handler(struct ath10k *ar,
3694					  struct htt_security_indication *ev)
3695{
3696	enum htt_txrx_sec_cast_type sec_index;
3697	enum htt_security_types sec_type;
3698	struct ath10k_peer *peer;
3699
3700	spin_lock_bh(&ar->data_lock);
3701
3702	peer = ath10k_peer_find_by_id(ar, __le16_to_cpu(ev->peer_id));
3703	if (!peer) {
3704		ath10k_warn(ar, "failed to find peer id %d for security indication",
3705			    __le16_to_cpu(ev->peer_id));
3706		goto out;
3707	}
3708
3709	sec_type = MS(ev->flags, HTT_SECURITY_TYPE);
3710
3711	if (ev->flags & HTT_SECURITY_IS_UNICAST)
3712		sec_index = HTT_TXRX_SEC_UCAST;
3713	else
3714		sec_index = HTT_TXRX_SEC_MCAST;
3715
3716	peer->rx_pn[sec_index].sec_type = sec_type;
3717	peer->rx_pn[sec_index].pn_len = ath10k_htt_rx_pn_len(sec_type);
3718
3719	memset(peer->tids_last_pn_valid, 0, sizeof(peer->tids_last_pn_valid));
3720	memset(peer->tids_last_pn, 0, sizeof(peer->tids_last_pn));
3721
3722out:
3723	spin_unlock_bh(&ar->data_lock);
3724}
3725
3726bool ath10k_htt_t2h_msg_handler(struct ath10k *ar, struct sk_buff *skb)
3727{
3728	struct ath10k_htt *htt = &ar->htt;
3729	struct htt_resp *resp = (struct htt_resp *)skb->data;
3730	enum htt_t2h_msg_type type;
3731
3732	/* confirm alignment */
3733	if (!IS_ALIGNED((unsigned long)skb->data, 4))
3734		ath10k_warn(ar, "unaligned htt message, expect trouble\n");
3735
3736	ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx, msg_type: 0x%0X\n",
3737		   resp->hdr.msg_type);
3738
3739	if (resp->hdr.msg_type >= ar->htt.t2h_msg_types_max) {
3740		ath10k_dbg(ar, ATH10K_DBG_HTT, "htt rx, unsupported msg_type: 0x%0X\n max: 0x%0X",
3741			   resp->hdr.msg_type, ar->htt.t2h_msg_types_max);
3742		return true;
3743	}
3744	type = ar->htt.t2h_msg_types[resp->hdr.msg_type];
3745
3746	switch (type) {
3747	case HTT_T2H_MSG_TYPE_VERSION_CONF: {
3748		htt->target_version_major = resp->ver_resp.major;
3749		htt->target_version_minor = resp->ver_resp.minor;
3750		complete(&htt->target_version_received);
3751		break;
3752	}
3753	case HTT_T2H_MSG_TYPE_RX_IND:
3754		if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
3755			return ath10k_htt_rx_proc_rx_ind_hl(htt,
3756							    &resp->rx_ind_hl,
3757							    skb,
3758							    HTT_RX_PN_CHECK,
3759							    HTT_RX_NON_TKIP_MIC);
3760		else
3761			ath10k_htt_rx_proc_rx_ind_ll(htt, &resp->rx_ind);
 
 
 
 
3762		break;
3763	case HTT_T2H_MSG_TYPE_PEER_MAP: {
3764		struct htt_peer_map_event ev = {
3765			.vdev_id = resp->peer_map.vdev_id,
3766			.peer_id = __le16_to_cpu(resp->peer_map.peer_id),
3767		};
3768		memcpy(ev.addr, resp->peer_map.addr, sizeof(ev.addr));
3769		ath10k_peer_map_event(htt, &ev);
3770		break;
3771	}
3772	case HTT_T2H_MSG_TYPE_PEER_UNMAP: {
3773		struct htt_peer_unmap_event ev = {
3774			.peer_id = __le16_to_cpu(resp->peer_unmap.peer_id),
3775		};
3776		ath10k_peer_unmap_event(htt, &ev);
3777		break;
3778	}
3779	case HTT_T2H_MSG_TYPE_MGMT_TX_COMPLETION: {
3780		struct htt_tx_done tx_done = {};
 
 
 
3781		int status = __le32_to_cpu(resp->mgmt_tx_completion.status);
3782		int info = __le32_to_cpu(resp->mgmt_tx_completion.info);
3783
3784		tx_done.msdu_id = __le32_to_cpu(resp->mgmt_tx_completion.desc_id);
3785
3786		switch (status) {
3787		case HTT_MGMT_TX_STATUS_OK:
3788			tx_done.status = HTT_TX_COMPL_STATE_ACK;
3789			if (test_bit(WMI_SERVICE_HTT_MGMT_TX_COMP_VALID_FLAGS,
3790				     ar->wmi.svc_map) &&
3791			    (resp->mgmt_tx_completion.flags &
3792			     HTT_MGMT_TX_CMPL_FLAG_ACK_RSSI)) {
3793				tx_done.ack_rssi =
3794				FIELD_GET(HTT_MGMT_TX_CMPL_INFO_ACK_RSSI_MASK,
3795					  info);
3796			}
3797			break;
3798		case HTT_MGMT_TX_STATUS_RETRY:
3799			tx_done.status = HTT_TX_COMPL_STATE_NOACK;
3800			break;
3801		case HTT_MGMT_TX_STATUS_DROP:
3802			tx_done.status = HTT_TX_COMPL_STATE_DISCARD;
3803			break;
3804		}
3805
 
 
 
 
 
 
3806		status = ath10k_txrx_tx_unref(htt, &tx_done);
3807		if (!status) {
3808			spin_lock_bh(&htt->tx_lock);
3809			ath10k_htt_tx_mgmt_dec_pending(htt);
3810			spin_unlock_bh(&htt->tx_lock);
3811		}
3812		break;
3813	}
3814	case HTT_T2H_MSG_TYPE_TX_COMPL_IND:
3815		ath10k_htt_rx_tx_compl_ind(htt->ar, skb);
3816		break;
3817	case HTT_T2H_MSG_TYPE_SEC_IND: {
3818		struct ath10k *ar = htt->ar;
3819		struct htt_security_indication *ev = &resp->security_indication;
3820
3821		ath10k_htt_rx_sec_ind_handler(ar, ev);
3822		ath10k_dbg(ar, ATH10K_DBG_HTT,
3823			   "sec ind peer_id %d unicast %d type %d\n",
3824			  __le16_to_cpu(ev->peer_id),
3825			  !!(ev->flags & HTT_SECURITY_IS_UNICAST),
3826			  MS(ev->flags, HTT_SECURITY_TYPE));
3827		complete(&ar->install_key_done);
3828		break;
3829	}
3830	case HTT_T2H_MSG_TYPE_RX_FRAG_IND: {
3831		ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt event: ",
3832				skb->data, skb->len);
3833		atomic_inc(&htt->num_mpdus_ready);
3834
3835		return ath10k_htt_rx_proc_rx_frag_ind(htt,
3836						      &resp->rx_frag_ind,
3837						      skb);
3838		break;
3839	}
3840	case HTT_T2H_MSG_TYPE_TEST:
3841		break;
3842	case HTT_T2H_MSG_TYPE_STATS_CONF:
3843		trace_ath10k_htt_stats(ar, skb->data, skb->len);
3844		break;
3845	case HTT_T2H_MSG_TYPE_TX_INSPECT_IND:
3846		/* Firmware can return tx frames if it's unable to fully
3847		 * process them and suspects host may be able to fix it. ath10k
3848		 * sends all tx frames as already inspected so this shouldn't
3849		 * happen unless fw has a bug.
3850		 */
3851		ath10k_warn(ar, "received an unexpected htt tx inspect event\n");
3852		break;
3853	case HTT_T2H_MSG_TYPE_RX_ADDBA:
3854		ath10k_htt_rx_addba(ar, resp);
3855		break;
3856	case HTT_T2H_MSG_TYPE_RX_DELBA:
3857		ath10k_htt_rx_delba(ar, resp);
3858		break;
3859	case HTT_T2H_MSG_TYPE_PKTLOG: {
3860		trace_ath10k_htt_pktlog(ar, resp->pktlog_msg.payload,
3861					skb->len -
3862					offsetof(struct htt_resp,
3863						 pktlog_msg.payload));
3864
3865		if (ath10k_peer_stats_enabled(ar))
3866			ath10k_fetch_10_2_tx_stats(ar,
3867						   resp->pktlog_msg.payload);
3868		break;
3869	}
3870	case HTT_T2H_MSG_TYPE_RX_FLUSH: {
3871		/* Ignore this event because mac80211 takes care of Rx
3872		 * aggregation reordering.
3873		 */
3874		break;
3875	}
3876	case HTT_T2H_MSG_TYPE_RX_IN_ORD_PADDR_IND: {
3877		skb_queue_tail(&htt->rx_in_ord_compl_q, skb);
3878		return false;
3879	}
3880	case HTT_T2H_MSG_TYPE_TX_CREDIT_UPDATE_IND:
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3881		break;
 
3882	case HTT_T2H_MSG_TYPE_CHAN_CHANGE: {
3883		u32 phymode = __le32_to_cpu(resp->chan_change.phymode);
3884		u32 freq = __le32_to_cpu(resp->chan_change.freq);
3885
3886		ar->tgt_oper_chan = ieee80211_get_channel(ar->hw->wiphy, freq);
3887		ath10k_dbg(ar, ATH10K_DBG_HTT,
3888			   "htt chan change freq %u phymode %s\n",
3889			   freq, ath10k_wmi_phymode_str(phymode));
3890		break;
3891	}
3892	case HTT_T2H_MSG_TYPE_AGGR_CONF:
3893		break;
3894	case HTT_T2H_MSG_TYPE_TX_FETCH_IND: {
3895		struct sk_buff *tx_fetch_ind = skb_copy(skb, GFP_ATOMIC);
3896
3897		if (!tx_fetch_ind) {
3898			ath10k_warn(ar, "failed to copy htt tx fetch ind\n");
3899			break;
3900		}
3901		skb_queue_tail(&htt->tx_fetch_ind_q, tx_fetch_ind);
3902		break;
3903	}
3904	case HTT_T2H_MSG_TYPE_TX_FETCH_CONFIRM:
3905		ath10k_htt_rx_tx_fetch_confirm(ar, skb);
3906		break;
3907	case HTT_T2H_MSG_TYPE_TX_MODE_SWITCH_IND:
3908		ath10k_htt_rx_tx_mode_switch_ind(ar, skb);
3909		break;
3910	case HTT_T2H_MSG_TYPE_PEER_STATS:
3911		ath10k_htt_fetch_peer_stats(ar, skb);
3912		break;
3913	case HTT_T2H_MSG_TYPE_EN_STATS:
3914	default:
3915		ath10k_warn(ar, "htt event (%d) not handled\n",
3916			    resp->hdr.msg_type);
3917		ath10k_dbg_dump(ar, ATH10K_DBG_HTT_DUMP, NULL, "htt event: ",
3918				skb->data, skb->len);
3919		break;
3920	}
3921	return true;
3922}
3923EXPORT_SYMBOL(ath10k_htt_t2h_msg_handler);
3924
3925void ath10k_htt_rx_pktlog_completion_handler(struct ath10k *ar,
3926					     struct sk_buff *skb)
3927{
3928	trace_ath10k_htt_pktlog(ar, skb->data, skb->len);
3929	dev_kfree_skb_any(skb);
3930}
3931EXPORT_SYMBOL(ath10k_htt_rx_pktlog_completion_handler);
3932
3933static int ath10k_htt_rx_deliver_msdu(struct ath10k *ar, int quota, int budget)
3934{
3935	struct sk_buff *skb;
3936
3937	while (quota < budget) {
3938		if (skb_queue_empty(&ar->htt.rx_msdus_q))
3939			break;
3940
3941		skb = skb_dequeue(&ar->htt.rx_msdus_q);
3942		if (!skb)
3943			break;
3944		ath10k_process_rx(ar, skb);
3945		quota++;
3946	}
3947
3948	return quota;
3949}
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3950
3951int ath10k_htt_txrx_compl_task(struct ath10k *ar, int budget)
3952{
3953	struct ath10k_htt *htt = &ar->htt;
3954	struct htt_tx_done tx_done = {};
3955	struct sk_buff_head tx_ind_q;
3956	struct sk_buff *skb;
3957	unsigned long flags;
3958	int quota = 0, done, ret;
3959	bool resched_napi = false;
3960
3961	__skb_queue_head_init(&tx_ind_q);
3962
3963	/* Process pending frames before dequeuing more data
3964	 * from hardware.
3965	 */
3966	quota = ath10k_htt_rx_deliver_msdu(ar, quota, budget);
3967	if (quota == budget) {
3968		resched_napi = true;
3969		goto exit;
3970	}
3971
3972	while ((skb = skb_dequeue(&htt->rx_in_ord_compl_q))) {
3973		spin_lock_bh(&htt->rx_ring.lock);
3974		ret = ath10k_htt_rx_in_ord_ind(ar, skb);
3975		spin_unlock_bh(&htt->rx_ring.lock);
3976
3977		dev_kfree_skb_any(skb);
3978		if (ret == -EIO) {
3979			resched_napi = true;
3980			goto exit;
3981		}
3982	}
3983
3984	while (atomic_read(&htt->num_mpdus_ready)) {
3985		ret = ath10k_htt_rx_handle_amsdu(htt);
3986		if (ret == -EIO) {
3987			resched_napi = true;
3988			goto exit;
3989		}
3990		atomic_dec(&htt->num_mpdus_ready);
3991	}
3992
3993	/* Deliver received data after processing data from hardware */
3994	quota = ath10k_htt_rx_deliver_msdu(ar, quota, budget);
3995
3996	/* From NAPI documentation:
3997	 *  The napi poll() function may also process TX completions, in which
3998	 *  case if it processes the entire TX ring then it should count that
3999	 *  work as the rest of the budget.
4000	 */
4001	if ((quota < budget) && !kfifo_is_empty(&htt->txdone_fifo))
4002		quota = budget;
4003
4004	/* kfifo_get: called only within txrx_tasklet so it's neatly serialized.
4005	 * From kfifo_get() documentation:
4006	 *  Note that with only one concurrent reader and one concurrent writer,
4007	 *  you don't need extra locking to use these macro.
4008	 */
4009	while (kfifo_get(&htt->txdone_fifo, &tx_done))
4010		ath10k_txrx_tx_unref(htt, &tx_done);
4011
4012	ath10k_mac_tx_push_pending(ar);
4013
4014	spin_lock_irqsave(&htt->tx_fetch_ind_q.lock, flags);
4015	skb_queue_splice_init(&htt->tx_fetch_ind_q, &tx_ind_q);
4016	spin_unlock_irqrestore(&htt->tx_fetch_ind_q.lock, flags);
4017
4018	while ((skb = __skb_dequeue(&tx_ind_q))) {
4019		ath10k_htt_rx_tx_fetch_ind(ar, skb);
4020		dev_kfree_skb_any(skb);
4021	}
4022
4023exit:
4024	ath10k_htt_rx_msdu_buff_replenish(htt);
4025	/* In case of rx failure or more data to read, report budget
4026	 * to reschedule NAPI poll
4027	 */
4028	done = resched_napi ? budget : quota;
4029
4030	return done;
4031}
4032EXPORT_SYMBOL(ath10k_htt_txrx_compl_task);
4033
4034static const struct ath10k_htt_rx_ops htt_rx_ops_32 = {
4035	.htt_get_rx_ring_size = ath10k_htt_get_rx_ring_size_32,
4036	.htt_config_paddrs_ring = ath10k_htt_config_paddrs_ring_32,
4037	.htt_set_paddrs_ring = ath10k_htt_set_paddrs_ring_32,
4038	.htt_get_vaddr_ring = ath10k_htt_get_vaddr_ring_32,
4039	.htt_reset_paddrs_ring = ath10k_htt_reset_paddrs_ring_32,
4040};
4041
4042static const struct ath10k_htt_rx_ops htt_rx_ops_64 = {
4043	.htt_get_rx_ring_size = ath10k_htt_get_rx_ring_size_64,
4044	.htt_config_paddrs_ring = ath10k_htt_config_paddrs_ring_64,
4045	.htt_set_paddrs_ring = ath10k_htt_set_paddrs_ring_64,
4046	.htt_get_vaddr_ring = ath10k_htt_get_vaddr_ring_64,
4047	.htt_reset_paddrs_ring = ath10k_htt_reset_paddrs_ring_64,
4048};
4049
4050static const struct ath10k_htt_rx_ops htt_rx_ops_hl = {
4051	.htt_rx_proc_rx_frag_ind = ath10k_htt_rx_proc_rx_frag_ind_hl,
4052};
4053
4054void ath10k_htt_set_rx_ops(struct ath10k_htt *htt)
4055{
4056	struct ath10k *ar = htt->ar;
4057
4058	if (ar->bus_param.dev_type == ATH10K_DEV_TYPE_HL)
4059		htt->rx_ops = &htt_rx_ops_hl;
4060	else if (ar->hw_params.target_64bit)
4061		htt->rx_ops = &htt_rx_ops_64;
4062	else
4063		htt->rx_ops = &htt_rx_ops_32;
4064}