hal_8074v2.c 39 KB

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  1. /*
  2. * Copyright (c) 2016-2019 The Linux Foundation. All rights reserved.
  3. *
  4. * Permission to use, copy, modify, and/or distribute this software for
  5. * any purpose with or without fee is hereby granted, provided that the
  6. * above copyright notice and this permission notice appear in all
  7. * copies.
  8. *
  9. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL
  10. * WARRANTIES WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED
  11. * WARRANTIES OF MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE
  12. * AUTHOR BE LIABLE FOR ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL
  13. * DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR
  14. * PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER
  15. * TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
  16. * PERFORMANCE OF THIS SOFTWARE.
  17. */
  18. #include "hal_hw_headers.h"
  19. #include "hal_internal.h"
  20. #include "hal_api.h"
  21. #include "target_type.h"
  22. #include "wcss_version.h"
  23. #include "qdf_module.h"
  24. #define UNIFIED_RXPCU_PPDU_END_INFO_8_RX_PPDU_DURATION_OFFSET \
  25. RXPCU_PPDU_END_INFO_9_RX_PPDU_DURATION_OFFSET
  26. #define UNIFIED_RXPCU_PPDU_END_INFO_8_RX_PPDU_DURATION_MASK \
  27. RXPCU_PPDU_END_INFO_9_RX_PPDU_DURATION_MASK
  28. #define UNIFIED_RXPCU_PPDU_END_INFO_8_RX_PPDU_DURATION_LSB \
  29. RXPCU_PPDU_END_INFO_9_RX_PPDU_DURATION_LSB
  30. #define UNIFIED_PHYRX_HT_SIG_0_HT_SIG_INFO_PHYRX_HT_SIG_INFO_DETAILS_OFFSET \
  31. PHYRX_HT_SIG_0_PHYRX_HT_SIG_INFO_DETAILS_MCS_OFFSET
  32. #define UNIFIED_PHYRX_L_SIG_B_0_L_SIG_B_INFO_PHYRX_L_SIG_B_INFO_DETAILS_OFFSET \
  33. PHYRX_L_SIG_B_0_PHYRX_L_SIG_B_INFO_DETAILS_RATE_OFFSET
  34. #define UNIFIED_PHYRX_L_SIG_A_0_L_SIG_A_INFO_PHYRX_L_SIG_A_INFO_DETAILS_OFFSET \
  35. PHYRX_L_SIG_A_0_PHYRX_L_SIG_A_INFO_DETAILS_RATE_OFFSET
  36. #define UNIFIED_PHYRX_VHT_SIG_A_0_VHT_SIG_A_INFO_PHYRX_VHT_SIG_A_INFO_DETAILS_OFFSET \
  37. PHYRX_VHT_SIG_A_0_PHYRX_VHT_SIG_A_INFO_DETAILS_BANDWIDTH_OFFSET
  38. #define UNIFIED_PHYRX_HE_SIG_A_SU_0_HE_SIG_A_SU_INFO_PHYRX_HE_SIG_A_SU_INFO_DETAILS_OFFSET \
  39. PHYRX_HE_SIG_A_SU_0_PHYRX_HE_SIG_A_SU_INFO_DETAILS_FORMAT_INDICATION_OFFSET
  40. #define UNIFIED_PHYRX_HE_SIG_A_MU_DL_0_HE_SIG_A_MU_DL_INFO_PHYRX_HE_SIG_A_MU_DL_INFO_DETAILS_OFFSET \
  41. PHYRX_HE_SIG_A_MU_DL_0_PHYRX_HE_SIG_A_MU_DL_INFO_DETAILS_DL_UL_FLAG_OFFSET
  42. #define UNIFIED_PHYRX_HE_SIG_B1_MU_0_HE_SIG_B1_MU_INFO_PHYRX_HE_SIG_B1_MU_INFO_DETAILS_OFFSET \
  43. PHYRX_HE_SIG_B1_MU_0_PHYRX_HE_SIG_B1_MU_INFO_DETAILS_RU_ALLOCATION_OFFSET
  44. #define UNIFIED_PHYRX_HE_SIG_B2_MU_0_HE_SIG_B2_MU_INFO_PHYRX_HE_SIG_B2_MU_INFO_DETAILS_OFFSET \
  45. PHYRX_HE_SIG_B2_MU_0_PHYRX_HE_SIG_B2_MU_INFO_DETAILS_STA_ID_OFFSET
  46. #define UNIFIED_PHYRX_HE_SIG_B2_OFDMA_0_HE_SIG_B2_OFDMA_INFO_PHYRX_HE_SIG_B2_OFDMA_INFO_DETAILS_OFFSET \
  47. PHYRX_HE_SIG_B2_OFDMA_0_PHYRX_HE_SIG_B2_OFDMA_INFO_DETAILS_STA_ID_OFFSET
  48. #define UNIFIED_PHYRX_RSSI_LEGACY_3_RECEIVE_RSSI_INFO_PRE_RSSI_INFO_DETAILS_OFFSET \
  49. PHYRX_RSSI_LEGACY_3_PRE_RSSI_INFO_DETAILS_RSSI_PRI20_CHAIN0_OFFSET
  50. #define UNIFIED_PHYRX_RSSI_LEGACY_19_RECEIVE_RSSI_INFO_PREAMBLE_RSSI_INFO_DETAILS_OFFSET \
  51. PHYRX_RSSI_LEGACY_19_PREAMBLE_RSSI_INFO_DETAILS_RSSI_PRI20_CHAIN0_OFFSET
  52. #define UNIFIED_RX_MPDU_START_0_RX_MPDU_INFO_RX_MPDU_INFO_DETAILS_OFFSET \
  53. RX_MPDU_START_0_RX_MPDU_INFO_DETAILS_RXPCU_MPDU_FILTER_IN_CATEGORY_OFFSET
  54. #define UNIFIED_RX_MSDU_LINK_8_RX_MSDU_DETAILS_MSDU_0_OFFSET \
  55. RX_MSDU_LINK_8_MSDU_0_BUFFER_ADDR_INFO_DETAILS_BUFFER_ADDR_31_0_OFFSET
  56. #define UNIFIED_RX_MSDU_DETAILS_2_RX_MSDU_DESC_INFO_RX_MSDU_DESC_INFO_DETAILS_OFFSET \
  57. RX_MSDU_DETAILS_2_RX_MSDU_DESC_INFO_DETAILS_FIRST_MSDU_IN_MPDU_FLAG_OFFSET
  58. #define UNIFIED_RX_MPDU_DETAILS_2_RX_MPDU_DESC_INFO_RX_MPDU_DESC_INFO_DETAILS_OFFSET \
  59. RX_MPDU_DETAILS_2_RX_MPDU_DESC_INFO_DETAILS_MSDU_COUNT_OFFSET
  60. #define UNIFIED_REO_DESTINATION_RING_2_RX_MPDU_DESC_INFO_RX_MPDU_DESC_INFO_DETAILS_OFFSET \
  61. REO_DESTINATION_RING_2_RX_MPDU_DESC_INFO_DETAILS_MSDU_COUNT_OFFSET
  62. #define UNIFORM_REO_STATUS_HEADER_STATUS_HEADER \
  63. STATUS_HEADER_REO_STATUS_NUMBER
  64. #define UNIFORM_REO_STATUS_HEADER_STATUS_HEADER_GENERIC \
  65. STATUS_HEADER_TIMESTAMP
  66. #define UNIFIED_RX_MSDU_DETAILS_2_RX_MSDU_DESC_INFO_RX_MSDU_DESC_INFO_DETAILS_OFFSET \
  67. RX_MSDU_DETAILS_2_RX_MSDU_DESC_INFO_DETAILS_FIRST_MSDU_IN_MPDU_FLAG_OFFSET
  68. #define UNIFIED_RX_MSDU_LINK_8_RX_MSDU_DETAILS_MSDU_0_OFFSET \
  69. RX_MSDU_LINK_8_MSDU_0_BUFFER_ADDR_INFO_DETAILS_BUFFER_ADDR_31_0_OFFSET
  70. #define UNIFIED_TCL_DATA_CMD_0_BUFFER_ADDR_INFO_BUF_ADDR_INFO_OFFSET \
  71. TCL_DATA_CMD_0_BUF_ADDR_INFO_BUFFER_ADDR_31_0_OFFSET
  72. #define UNIFIED_TCL_DATA_CMD_1_BUFFER_ADDR_INFO_BUF_ADDR_INFO_OFFSET \
  73. TCL_DATA_CMD_1_BUF_ADDR_INFO_BUFFER_ADDR_39_32_OFFSET
  74. #define UNIFIED_TCL_DATA_CMD_2_BUF_OR_EXT_DESC_TYPE_OFFSET \
  75. TCL_DATA_CMD_2_BUF_OR_EXT_DESC_TYPE_OFFSET
  76. #define UNIFIED_BUFFER_ADDR_INFO_0_BUFFER_ADDR_31_0_LSB \
  77. BUFFER_ADDR_INFO_0_BUFFER_ADDR_31_0_LSB
  78. #define UNIFIED_BUFFER_ADDR_INFO_0_BUFFER_ADDR_31_0_MASK \
  79. BUFFER_ADDR_INFO_0_BUFFER_ADDR_31_0_MASK
  80. #define UNIFIED_BUFFER_ADDR_INFO_1_BUFFER_ADDR_39_32_LSB \
  81. BUFFER_ADDR_INFO_1_BUFFER_ADDR_39_32_LSB
  82. #define UNIFIED_BUFFER_ADDR_INFO_1_BUFFER_ADDR_39_32_MASK \
  83. BUFFER_ADDR_INFO_1_BUFFER_ADDR_39_32_MASK
  84. #define UNIFIED_BUFFER_ADDR_INFO_1_RETURN_BUFFER_MANAGER_LSB \
  85. BUFFER_ADDR_INFO_1_RETURN_BUFFER_MANAGER_LSB
  86. #define UNIFIED_BUFFER_ADDR_INFO_1_RETURN_BUFFER_MANAGER_MASK \
  87. BUFFER_ADDR_INFO_1_RETURN_BUFFER_MANAGER_MASK
  88. #define UNIFIED_BUFFER_ADDR_INFO_1_SW_BUFFER_COOKIE_LSB \
  89. BUFFER_ADDR_INFO_1_SW_BUFFER_COOKIE_LSB
  90. #define UNIFIED_BUFFER_ADDR_INFO_1_SW_BUFFER_COOKIE_MASK \
  91. BUFFER_ADDR_INFO_1_SW_BUFFER_COOKIE_MASK
  92. #define UNIFIED_TCL_DATA_CMD_2_BUF_OR_EXT_DESC_TYPE_LSB \
  93. TCL_DATA_CMD_2_BUF_OR_EXT_DESC_TYPE_LSB
  94. #define UNIFIED_TCL_DATA_CMD_2_BUF_OR_EXT_DESC_TYPE_MASK \
  95. TCL_DATA_CMD_2_BUF_OR_EXT_DESC_TYPE_MASK
  96. #define UNIFIED_WBM_RELEASE_RING_6_TX_RATE_STATS_INFO_TX_RATE_STATS_MASK \
  97. WBM_RELEASE_RING_6_TX_RATE_STATS_PPDU_TRANSMISSION_TSF_MASK
  98. #define UNIFIED_WBM_RELEASE_RING_6_TX_RATE_STATS_INFO_TX_RATE_STATS_OFFSET \
  99. WBM_RELEASE_RING_6_TX_RATE_STATS_PPDU_TRANSMISSION_TSF_OFFSET
  100. #define UNIFIED_WBM_RELEASE_RING_6_TX_RATE_STATS_INFO_TX_RATE_STATS_LSB \
  101. WBM_RELEASE_RING_6_TX_RATE_STATS_PPDU_TRANSMISSION_TSF_LSB
  102. #include "hal_8074v2_tx.h"
  103. #include "hal_8074v2_rx.h"
  104. #include <hal_generic_api.h>
  105. #include <hal_wbm.h>
  106. /**
  107. * hal_rx_get_rx_fragment_number_8074v2(): Function to retrieve
  108. * rx fragment number
  109. *
  110. * @nbuf: Network buffer
  111. * Returns: rx fragment number
  112. */
  113. static
  114. uint8_t hal_rx_get_rx_fragment_number_8074v2(uint8_t *buf)
  115. {
  116. struct rx_pkt_tlvs *pkt_tlvs = hal_rx_get_pkt_tlvs(buf);
  117. struct rx_mpdu_info *rx_mpdu_info = hal_rx_get_mpdu_info(pkt_tlvs);
  118. /* Return first 4 bits as fragment number */
  119. return HAL_RX_MPDU_GET_SEQUENCE_NUMBER(rx_mpdu_info) &
  120. DOT11_SEQ_FRAG_MASK;
  121. }
  122. /**
  123. * hal_rx_msdu_end_da_is_mcbc_get_8074v2: API to check if pkt is MCBC
  124. * from rx_msdu_end TLV
  125. *
  126. * @ buf: pointer to the start of RX PKT TLV headers
  127. * Return: da_is_mcbc
  128. */
  129. static uint8_t
  130. hal_rx_msdu_end_da_is_mcbc_get_8074v2(uint8_t *buf)
  131. {
  132. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  133. struct rx_msdu_end *msdu_end = &pkt_tlvs->msdu_end_tlv.rx_msdu_end;
  134. return HAL_RX_MSDU_END_DA_IS_MCBC_GET(msdu_end);
  135. }
  136. /**
  137. * hal_rx_msdu_end_sa_is_valid_get_8074v2(): API to get_8074v2 the
  138. * sa_is_valid bit from rx_msdu_end TLV
  139. *
  140. * @ buf: pointer to the start of RX PKT TLV headers
  141. * Return: sa_is_valid bit
  142. */
  143. static uint8_t
  144. hal_rx_msdu_end_sa_is_valid_get_8074v2(uint8_t *buf)
  145. {
  146. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  147. struct rx_msdu_end *msdu_end = &pkt_tlvs->msdu_end_tlv.rx_msdu_end;
  148. uint8_t sa_is_valid;
  149. sa_is_valid = HAL_RX_MSDU_END_SA_IS_VALID_GET(msdu_end);
  150. return sa_is_valid;
  151. }
  152. /**
  153. * hal_rx_msdu_end_sa_idx_get_8074v2(): API to get_8074v2 the
  154. * sa_idx from rx_msdu_end TLV
  155. *
  156. * @ buf: pointer to the start of RX PKT TLV headers
  157. * Return: sa_idx (SA AST index)
  158. */
  159. static uint16_t hal_rx_msdu_end_sa_idx_get_8074v2(uint8_t *buf)
  160. {
  161. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  162. struct rx_msdu_end *msdu_end = &pkt_tlvs->msdu_end_tlv.rx_msdu_end;
  163. uint16_t sa_idx;
  164. sa_idx = HAL_RX_MSDU_END_SA_IDX_GET(msdu_end);
  165. return sa_idx;
  166. }
  167. /**
  168. * hal_rx_desc_is_first_msdu_8074v2() - Check if first msdu
  169. *
  170. * @hal_soc_hdl: hal_soc handle
  171. * @hw_desc_addr: hardware descriptor address
  172. *
  173. * Return: 0 - success/ non-zero failure
  174. */
  175. static uint32_t hal_rx_desc_is_first_msdu_8074v2(void *hw_desc_addr)
  176. {
  177. struct rx_pkt_tlvs *rx_tlvs = (struct rx_pkt_tlvs *)hw_desc_addr;
  178. struct rx_msdu_end *msdu_end = &rx_tlvs->msdu_end_tlv.rx_msdu_end;
  179. return HAL_RX_GET(msdu_end, RX_MSDU_END_5, FIRST_MSDU);
  180. }
  181. /**
  182. * hal_rx_msdu_end_l3_hdr_padding_get_8074v2(): API to get_8074v2 the
  183. * l3_header padding from rx_msdu_end TLV
  184. *
  185. * @ buf: pointer to the start of RX PKT TLV headers
  186. * Return: number of l3 header padding bytes
  187. */
  188. static uint32_t hal_rx_msdu_end_l3_hdr_padding_get_8074v2(uint8_t *buf)
  189. {
  190. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  191. struct rx_msdu_end *msdu_end = &pkt_tlvs->msdu_end_tlv.rx_msdu_end;
  192. uint32_t l3_header_padding;
  193. l3_header_padding = HAL_RX_MSDU_END_L3_HEADER_PADDING_GET(msdu_end);
  194. return l3_header_padding;
  195. }
  196. /*
  197. * @ hal_rx_encryption_info_valid_8074v2: Returns encryption type.
  198. *
  199. * @ buf: rx_tlv_hdr of the received packet
  200. * @ Return: encryption type
  201. */
  202. static uint32_t hal_rx_encryption_info_valid_8074v2(uint8_t *buf)
  203. {
  204. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  205. struct rx_mpdu_start *mpdu_start =
  206. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  207. struct rx_mpdu_info *mpdu_info = &mpdu_start->rx_mpdu_info_details;
  208. uint32_t encryption_info = HAL_RX_MPDU_ENCRYPTION_INFO_VALID(mpdu_info);
  209. return encryption_info;
  210. }
  211. /*
  212. * @ hal_rx_print_pn_8074v2: Prints the PN of rx packet.
  213. *
  214. * @ buf: rx_tlv_hdr of the received packet
  215. * @ Return: void
  216. */
  217. static void hal_rx_print_pn_8074v2(uint8_t *buf)
  218. {
  219. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  220. struct rx_mpdu_start *mpdu_start =
  221. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  222. struct rx_mpdu_info *mpdu_info = &mpdu_start->rx_mpdu_info_details;
  223. uint32_t pn_31_0 = HAL_RX_MPDU_PN_31_0_GET(mpdu_info);
  224. uint32_t pn_63_32 = HAL_RX_MPDU_PN_63_32_GET(mpdu_info);
  225. uint32_t pn_95_64 = HAL_RX_MPDU_PN_95_64_GET(mpdu_info);
  226. uint32_t pn_127_96 = HAL_RX_MPDU_PN_127_96_GET(mpdu_info);
  227. hal_debug("PN number pn_127_96 0x%x pn_95_64 0x%x pn_63_32 0x%x pn_31_0 0x%x ",
  228. pn_127_96, pn_95_64, pn_63_32, pn_31_0);
  229. }
  230. /**
  231. * hal_rx_msdu_end_first_msdu_get_8074v2: API to get first msdu status
  232. * from rx_msdu_end TLV
  233. *
  234. * @ buf: pointer to the start of RX PKT TLV headers
  235. * Return: first_msdu
  236. */
  237. static uint8_t hal_rx_msdu_end_first_msdu_get_8074v2(uint8_t *buf)
  238. {
  239. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  240. struct rx_msdu_end *msdu_end = &pkt_tlvs->msdu_end_tlv.rx_msdu_end;
  241. uint8_t first_msdu;
  242. first_msdu = HAL_RX_MSDU_END_FIRST_MSDU_GET(msdu_end);
  243. return first_msdu;
  244. }
  245. /**
  246. * hal_rx_msdu_end_da_is_valid_get_8074v2: API to check if da is valid
  247. * from rx_msdu_end TLV
  248. *
  249. * @ buf: pointer to the start of RX PKT TLV headers
  250. * Return: da_is_valid
  251. */
  252. static uint8_t hal_rx_msdu_end_da_is_valid_get_8074v2(uint8_t *buf)
  253. {
  254. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  255. struct rx_msdu_end *msdu_end = &pkt_tlvs->msdu_end_tlv.rx_msdu_end;
  256. uint8_t da_is_valid;
  257. da_is_valid = HAL_RX_MSDU_END_DA_IS_VALID_GET(msdu_end);
  258. return da_is_valid;
  259. }
  260. /**
  261. * hal_rx_msdu_end_last_msdu_get_8074v2: API to get last msdu status
  262. * from rx_msdu_end TLV
  263. *
  264. * @ buf: pointer to the start of RX PKT TLV headers
  265. * Return: last_msdu
  266. */
  267. static uint8_t hal_rx_msdu_end_last_msdu_get_8074v2(uint8_t *buf)
  268. {
  269. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  270. struct rx_msdu_end *msdu_end = &pkt_tlvs->msdu_end_tlv.rx_msdu_end;
  271. uint8_t last_msdu;
  272. last_msdu = HAL_RX_MSDU_END_LAST_MSDU_GET(msdu_end);
  273. return last_msdu;
  274. }
  275. /*
  276. * hal_rx_get_mpdu_mac_ad4_valid_8074v2(): Retrieves if mpdu 4th addr is valid
  277. *
  278. * @nbuf: Network buffer
  279. * Returns: value of mpdu 4th address valid field
  280. */
  281. static bool hal_rx_get_mpdu_mac_ad4_valid_8074v2(uint8_t *buf)
  282. {
  283. struct rx_pkt_tlvs *pkt_tlvs = hal_rx_get_pkt_tlvs(buf);
  284. struct rx_mpdu_info *rx_mpdu_info = hal_rx_get_mpdu_info(pkt_tlvs);
  285. bool ad4_valid = 0;
  286. ad4_valid = HAL_RX_MPDU_GET_MAC_AD4_VALID(rx_mpdu_info);
  287. return ad4_valid;
  288. }
  289. /**
  290. * hal_rx_mpdu_start_sw_peer_id_get_8074v2: Retrieve sw peer_id
  291. * @buf: network buffer
  292. *
  293. * Return: sw peer_id
  294. */
  295. static uint32_t hal_rx_mpdu_start_sw_peer_id_get_8074v2(uint8_t *buf)
  296. {
  297. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  298. struct rx_mpdu_start *mpdu_start =
  299. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  300. return HAL_RX_MPDU_INFO_SW_PEER_ID_GET(
  301. &mpdu_start->rx_mpdu_info_details);
  302. }
  303. /*
  304. * hal_rx_mpdu_get_to_ds_8074v2(): API to get the tods info
  305. * from rx_mpdu_start
  306. *
  307. * @buf: pointer to the start of RX PKT TLV header
  308. * Return: uint32_t(to_ds)
  309. */
  310. static uint32_t hal_rx_mpdu_get_to_ds_8074v2(uint8_t *buf)
  311. {
  312. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  313. struct rx_mpdu_start *mpdu_start =
  314. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  315. struct rx_mpdu_info *mpdu_info = &mpdu_start->rx_mpdu_info_details;
  316. return HAL_RX_MPDU_GET_TODS(mpdu_info);
  317. }
  318. /*
  319. * hal_rx_mpdu_get_fr_ds_8074v2(): API to get the from ds info
  320. * from rx_mpdu_start
  321. *
  322. * @buf: pointer to the start of RX PKT TLV header
  323. * Return: uint32_t(fr_ds)
  324. */
  325. static uint32_t hal_rx_mpdu_get_fr_ds_8074v2(uint8_t *buf)
  326. {
  327. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  328. struct rx_mpdu_start *mpdu_start =
  329. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  330. struct rx_mpdu_info *mpdu_info = &mpdu_start->rx_mpdu_info_details;
  331. return HAL_RX_MPDU_GET_FROMDS(mpdu_info);
  332. }
  333. /*
  334. * hal_rx_get_mpdu_frame_control_valid_8074v2(): Retrieves mpdu
  335. * frame control valid
  336. *
  337. * @nbuf: Network buffer
  338. * Returns: value of frame control valid field
  339. */
  340. static uint8_t hal_rx_get_mpdu_frame_control_valid_8074v2(uint8_t *buf)
  341. {
  342. struct rx_pkt_tlvs *pkt_tlvs = hal_rx_get_pkt_tlvs(buf);
  343. struct rx_mpdu_info *rx_mpdu_info = hal_rx_get_mpdu_info(pkt_tlvs);
  344. return HAL_RX_MPDU_GET_FRAME_CONTROL_VALID(rx_mpdu_info);
  345. }
  346. /*
  347. * hal_rx_mpdu_get_addr1_8074v2(): API to check get address1 of the mpdu
  348. *
  349. * @buf: pointer to the start of RX PKT TLV headera
  350. * @mac_addr: pointer to mac address
  351. * Return: success/failure
  352. */
  353. static QDF_STATUS hal_rx_mpdu_get_addr1_8074v2(uint8_t *buf, uint8_t *mac_addr)
  354. {
  355. struct __attribute__((__packed__)) hal_addr1 {
  356. uint32_t ad1_31_0;
  357. uint16_t ad1_47_32;
  358. };
  359. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  360. struct rx_mpdu_start *mpdu_start =
  361. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  362. struct rx_mpdu_info *mpdu_info = &mpdu_start->rx_mpdu_info_details;
  363. struct hal_addr1 *addr = (struct hal_addr1 *)mac_addr;
  364. uint32_t mac_addr_ad1_valid;
  365. mac_addr_ad1_valid = HAL_RX_MPDU_MAC_ADDR_AD1_VALID_GET(mpdu_info);
  366. if (mac_addr_ad1_valid) {
  367. addr->ad1_31_0 = HAL_RX_MPDU_AD1_31_0_GET(mpdu_info);
  368. addr->ad1_47_32 = HAL_RX_MPDU_AD1_47_32_GET(mpdu_info);
  369. return QDF_STATUS_SUCCESS;
  370. }
  371. return QDF_STATUS_E_FAILURE;
  372. }
  373. /*
  374. * hal_rx_mpdu_get_addr2_8074v2(): API to check get address2 of the mpdu
  375. * in the packet
  376. *
  377. * @buf: pointer to the start of RX PKT TLV header
  378. * @mac_addr: pointer to mac address
  379. * Return: success/failure
  380. */
  381. static QDF_STATUS hal_rx_mpdu_get_addr2_8074v2(uint8_t *buf, uint8_t *mac_addr)
  382. {
  383. struct __attribute__((__packed__)) hal_addr2 {
  384. uint16_t ad2_15_0;
  385. uint32_t ad2_47_16;
  386. };
  387. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  388. struct rx_mpdu_start *mpdu_start =
  389. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  390. struct rx_mpdu_info *mpdu_info = &mpdu_start->rx_mpdu_info_details;
  391. struct hal_addr2 *addr = (struct hal_addr2 *)mac_addr;
  392. uint32_t mac_addr_ad2_valid;
  393. mac_addr_ad2_valid = HAL_RX_MPDU_MAC_ADDR_AD2_VALID_GET(mpdu_info);
  394. if (mac_addr_ad2_valid) {
  395. addr->ad2_15_0 = HAL_RX_MPDU_AD2_15_0_GET(mpdu_info);
  396. addr->ad2_47_16 = HAL_RX_MPDU_AD2_47_16_GET(mpdu_info);
  397. return QDF_STATUS_SUCCESS;
  398. }
  399. return QDF_STATUS_E_FAILURE;
  400. }
  401. /*
  402. * hal_rx_mpdu_get_addr3_8074v2(): API to get address3 of the mpdu
  403. * in the packet
  404. *
  405. * @buf: pointer to the start of RX PKT TLV header
  406. * @mac_addr: pointer to mac address
  407. * Return: success/failure
  408. */
  409. static QDF_STATUS hal_rx_mpdu_get_addr3_8074v2(uint8_t *buf, uint8_t *mac_addr)
  410. {
  411. struct __attribute__((__packed__)) hal_addr3 {
  412. uint32_t ad3_31_0;
  413. uint16_t ad3_47_32;
  414. };
  415. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  416. struct rx_mpdu_start *mpdu_start =
  417. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  418. struct rx_mpdu_info *mpdu_info = &mpdu_start->rx_mpdu_info_details;
  419. struct hal_addr3 *addr = (struct hal_addr3 *)mac_addr;
  420. uint32_t mac_addr_ad3_valid;
  421. mac_addr_ad3_valid = HAL_RX_MPDU_MAC_ADDR_AD3_VALID_GET(mpdu_info);
  422. if (mac_addr_ad3_valid) {
  423. addr->ad3_31_0 = HAL_RX_MPDU_AD3_31_0_GET(mpdu_info);
  424. addr->ad3_47_32 = HAL_RX_MPDU_AD3_47_32_GET(mpdu_info);
  425. return QDF_STATUS_SUCCESS;
  426. }
  427. return QDF_STATUS_E_FAILURE;
  428. }
  429. /*
  430. * hal_rx_mpdu_get_addr4_8074v2(): API to get address4 of the mpdu
  431. * in the packet
  432. *
  433. * @buf: pointer to the start of RX PKT TLV header
  434. * @mac_addr: pointer to mac address
  435. * Return: success/failure
  436. */
  437. static QDF_STATUS hal_rx_mpdu_get_addr4_8074v2(uint8_t *buf, uint8_t *mac_addr)
  438. {
  439. struct __attribute__((__packed__)) hal_addr4 {
  440. uint32_t ad4_31_0;
  441. uint16_t ad4_47_32;
  442. };
  443. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  444. struct rx_mpdu_start *mpdu_start =
  445. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  446. struct rx_mpdu_info *mpdu_info = &mpdu_start->rx_mpdu_info_details;
  447. struct hal_addr4 *addr = (struct hal_addr4 *)mac_addr;
  448. uint32_t mac_addr_ad4_valid;
  449. mac_addr_ad4_valid = HAL_RX_MPDU_MAC_ADDR_AD4_VALID_GET(mpdu_info);
  450. if (mac_addr_ad4_valid) {
  451. addr->ad4_31_0 = HAL_RX_MPDU_AD4_31_0_GET(mpdu_info);
  452. addr->ad4_47_32 = HAL_RX_MPDU_AD4_47_32_GET(mpdu_info);
  453. return QDF_STATUS_SUCCESS;
  454. }
  455. return QDF_STATUS_E_FAILURE;
  456. }
  457. /*
  458. * hal_rx_get_mpdu_sequence_control_valid_8074v2(): Get mpdu
  459. * sequence control valid
  460. *
  461. * @nbuf: Network buffer
  462. * Returns: value of sequence control valid field
  463. */
  464. static uint8_t hal_rx_get_mpdu_sequence_control_valid_8074v2(uint8_t *buf)
  465. {
  466. struct rx_pkt_tlvs *pkt_tlvs = hal_rx_get_pkt_tlvs(buf);
  467. struct rx_mpdu_info *rx_mpdu_info = hal_rx_get_mpdu_info(pkt_tlvs);
  468. return HAL_RX_MPDU_GET_SEQUENCE_CONTROL_VALID(rx_mpdu_info);
  469. }
  470. /**
  471. * hal_rx_is_unicast_8074v2: check packet is unicast frame or not.
  472. *
  473. * @ buf: pointer to rx pkt TLV.
  474. *
  475. * Return: true on unicast.
  476. */
  477. static bool hal_rx_is_unicast_8074v2(uint8_t *buf)
  478. {
  479. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  480. struct rx_mpdu_start *mpdu_start =
  481. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  482. uint32_t grp_id;
  483. uint8_t *rx_mpdu_info = (uint8_t *)&mpdu_start->rx_mpdu_info_details;
  484. grp_id = (_HAL_MS((*_OFFSET_TO_WORD_PTR((rx_mpdu_info),
  485. RX_MPDU_INFO_0_SW_FRAME_GROUP_ID_OFFSET)),
  486. RX_MPDU_INFO_0_SW_FRAME_GROUP_ID_MASK,
  487. RX_MPDU_INFO_0_SW_FRAME_GROUP_ID_LSB));
  488. return (HAL_MPDU_SW_FRAME_GROUP_UNICAST_DATA == grp_id) ? true : false;
  489. }
  490. /**
  491. * hal_rx_tid_get_8074v2: get tid based on qos control valid.
  492. * @hal_soc_hdl: hal soc handle
  493. * @buf: pointer to rx pkt TLV.
  494. *
  495. * Return: tid
  496. */
  497. static uint32_t hal_rx_tid_get_8074v2(hal_soc_handle_t hal_soc_hdl,
  498. uint8_t *buf)
  499. {
  500. struct rx_pkt_tlvs *pkt_tlvs = (struct rx_pkt_tlvs *)buf;
  501. struct rx_mpdu_start *mpdu_start =
  502. &pkt_tlvs->mpdu_start_tlv.rx_mpdu_start;
  503. uint8_t *rx_mpdu_info = (uint8_t *)&mpdu_start->rx_mpdu_info_details;
  504. uint8_t qos_control_valid =
  505. (_HAL_MS((*_OFFSET_TO_WORD_PTR((rx_mpdu_info),
  506. RX_MPDU_INFO_2_MPDU_QOS_CONTROL_VALID_OFFSET)),
  507. RX_MPDU_INFO_2_MPDU_QOS_CONTROL_VALID_MASK,
  508. RX_MPDU_INFO_2_MPDU_QOS_CONTROL_VALID_LSB));
  509. if (qos_control_valid)
  510. return hal_rx_mpdu_start_tid_get_8074v2(buf);
  511. return HAL_RX_NON_QOS_TID;
  512. }
  513. /**
  514. * hal_rx_hw_desc_get_ppduid_get_8074v2(): retrieve ppdu id
  515. * @hw_desc_addr: hw addr
  516. *
  517. * Return: ppdu id
  518. */
  519. static uint32_t hal_rx_hw_desc_get_ppduid_get_8074v2(void *hw_desc_addr)
  520. {
  521. struct rx_mpdu_info *rx_mpdu_info;
  522. struct rx_pkt_tlvs *rx_desc = (struct rx_pkt_tlvs *)hw_desc_addr;
  523. rx_mpdu_info =
  524. &rx_desc->mpdu_start_tlv.rx_mpdu_start.rx_mpdu_info_details;
  525. return HAL_RX_GET(rx_mpdu_info, RX_MPDU_INFO_0, PHY_PPDU_ID);
  526. }
  527. /**
  528. * hal_reo_status_get_header_8074v2 - Process reo desc info
  529. * @d - Pointer to reo descriptior
  530. * @b - tlv type info
  531. * @h1 - Pointer to hal_reo_status_header where info to be stored
  532. *
  533. * Return - none.
  534. *
  535. */
  536. static void hal_reo_status_get_header_8074v2(uint32_t *d, int b, void *h1)
  537. {
  538. uint32_t val1 = 0;
  539. struct hal_reo_status_header *h =
  540. (struct hal_reo_status_header *)h1;
  541. switch (b) {
  542. case HAL_REO_QUEUE_STATS_STATUS_TLV:
  543. val1 = d[HAL_OFFSET_DW(REO_GET_QUEUE_STATS_STATUS_0,
  544. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER)];
  545. break;
  546. case HAL_REO_FLUSH_QUEUE_STATUS_TLV:
  547. val1 = d[HAL_OFFSET_DW(REO_FLUSH_QUEUE_STATUS_0,
  548. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER)];
  549. break;
  550. case HAL_REO_FLUSH_CACHE_STATUS_TLV:
  551. val1 = d[HAL_OFFSET_DW(REO_FLUSH_CACHE_STATUS_0,
  552. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER)];
  553. break;
  554. case HAL_REO_UNBLK_CACHE_STATUS_TLV:
  555. val1 = d[HAL_OFFSET_DW(REO_UNBLOCK_CACHE_STATUS_0,
  556. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER)];
  557. break;
  558. case HAL_REO_TIMOUT_LIST_STATUS_TLV:
  559. val1 = d[HAL_OFFSET_DW(REO_FLUSH_TIMEOUT_LIST_STATUS_0,
  560. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER)];
  561. break;
  562. case HAL_REO_DESC_THRES_STATUS_TLV:
  563. val1 =
  564. d[HAL_OFFSET_DW(REO_DESCRIPTOR_THRESHOLD_REACHED_STATUS_0,
  565. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER)];
  566. break;
  567. case HAL_REO_UPDATE_RX_QUEUE_STATUS_TLV:
  568. val1 = d[HAL_OFFSET_DW(REO_UPDATE_RX_REO_QUEUE_STATUS_0,
  569. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER)];
  570. break;
  571. default:
  572. qdf_nofl_err("ERROR: Unknown tlv\n");
  573. break;
  574. }
  575. h->cmd_num =
  576. HAL_GET_FIELD(
  577. UNIFORM_REO_STATUS_HEADER_0, REO_STATUS_NUMBER,
  578. val1);
  579. h->exec_time =
  580. HAL_GET_FIELD(UNIFORM_REO_STATUS_HEADER_0,
  581. CMD_EXECUTION_TIME, val1);
  582. h->status =
  583. HAL_GET_FIELD(UNIFORM_REO_STATUS_HEADER_0,
  584. REO_CMD_EXECUTION_STATUS, val1);
  585. switch (b) {
  586. case HAL_REO_QUEUE_STATS_STATUS_TLV:
  587. val1 = d[HAL_OFFSET_DW(REO_GET_QUEUE_STATS_STATUS_1,
  588. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER_GENERIC)];
  589. break;
  590. case HAL_REO_FLUSH_QUEUE_STATUS_TLV:
  591. val1 = d[HAL_OFFSET_DW(REO_FLUSH_QUEUE_STATUS_1,
  592. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER_GENERIC)];
  593. break;
  594. case HAL_REO_FLUSH_CACHE_STATUS_TLV:
  595. val1 = d[HAL_OFFSET_DW(REO_FLUSH_CACHE_STATUS_1,
  596. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER_GENERIC)];
  597. break;
  598. case HAL_REO_UNBLK_CACHE_STATUS_TLV:
  599. val1 = d[HAL_OFFSET_DW(REO_UNBLOCK_CACHE_STATUS_1,
  600. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER_GENERIC)];
  601. break;
  602. case HAL_REO_TIMOUT_LIST_STATUS_TLV:
  603. val1 = d[HAL_OFFSET_DW(REO_FLUSH_TIMEOUT_LIST_STATUS_1,
  604. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER_GENERIC)];
  605. break;
  606. case HAL_REO_DESC_THRES_STATUS_TLV:
  607. val1 =
  608. d[HAL_OFFSET_DW(REO_DESCRIPTOR_THRESHOLD_REACHED_STATUS_1,
  609. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER_GENERIC)];
  610. break;
  611. case HAL_REO_UPDATE_RX_QUEUE_STATUS_TLV:
  612. val1 = d[HAL_OFFSET_DW(REO_UPDATE_RX_REO_QUEUE_STATUS_1,
  613. UNIFORM_REO_STATUS_HEADER_STATUS_HEADER_GENERIC)];
  614. break;
  615. default:
  616. qdf_nofl_err("ERROR: Unknown tlv\n");
  617. break;
  618. }
  619. h->tstamp =
  620. HAL_GET_FIELD(UNIFORM_REO_STATUS_HEADER_1, TIMESTAMP, val1);
  621. }
  622. struct hal_hw_txrx_ops qca8074v2_hal_hw_txrx_ops = {
  623. /* init and setup */
  624. hal_srng_dst_hw_init_generic,
  625. hal_srng_src_hw_init_generic,
  626. hal_get_hw_hptp_generic,
  627. hal_reo_setup_generic,
  628. hal_setup_link_idle_list_generic,
  629. /* tx */
  630. hal_tx_desc_set_dscp_tid_table_id_8074v2,
  631. hal_tx_set_dscp_tid_map_8074v2,
  632. hal_tx_update_dscp_tid_8074v2,
  633. hal_tx_desc_set_lmac_id_8074v2,
  634. hal_tx_desc_set_buf_addr_generic,
  635. hal_tx_desc_set_search_type_generic,
  636. hal_tx_desc_set_search_index_generic,
  637. hal_tx_desc_set_cache_set_num_generic,
  638. hal_tx_comp_get_status_generic,
  639. hal_tx_comp_get_release_reason_generic,
  640. /* rx */
  641. hal_rx_msdu_start_nss_get_8074v2,
  642. hal_rx_mon_hw_desc_get_mpdu_status_8074v2,
  643. hal_rx_get_tlv_8074v2,
  644. hal_rx_proc_phyrx_other_receive_info_tlv_8074v2,
  645. hal_rx_dump_msdu_start_tlv_8074v2,
  646. hal_rx_dump_msdu_end_tlv_8074v2,
  647. hal_get_link_desc_size_8074v2,
  648. hal_rx_mpdu_start_tid_get_8074v2,
  649. hal_rx_msdu_start_reception_type_get_8074v2,
  650. hal_rx_msdu_end_da_idx_get_8074v2,
  651. hal_rx_msdu_desc_info_get_ptr_generic,
  652. hal_rx_link_desc_msdu0_ptr_generic,
  653. hal_reo_status_get_header_8074v2,
  654. hal_rx_status_get_tlv_info_generic,
  655. hal_rx_wbm_err_info_get_generic,
  656. hal_rx_dump_mpdu_start_tlv_generic,
  657. hal_tx_set_pcp_tid_map_generic,
  658. hal_tx_update_pcp_tid_generic,
  659. hal_tx_update_tidmap_prty_generic,
  660. hal_rx_get_rx_fragment_number_8074v2,
  661. hal_rx_msdu_end_da_is_mcbc_get_8074v2,
  662. hal_rx_msdu_end_sa_is_valid_get_8074v2,
  663. hal_rx_msdu_end_sa_idx_get_8074v2,
  664. hal_rx_desc_is_first_msdu_8074v2,
  665. hal_rx_msdu_end_l3_hdr_padding_get_8074v2,
  666. hal_rx_encryption_info_valid_8074v2,
  667. hal_rx_print_pn_8074v2,
  668. hal_rx_msdu_end_first_msdu_get_8074v2,
  669. hal_rx_msdu_end_da_is_valid_get_8074v2,
  670. hal_rx_msdu_end_last_msdu_get_8074v2,
  671. hal_rx_get_mpdu_mac_ad4_valid_8074v2,
  672. hal_rx_mpdu_start_sw_peer_id_get_8074v2,
  673. hal_rx_mpdu_get_to_ds_8074v2,
  674. hal_rx_mpdu_get_fr_ds_8074v2,
  675. hal_rx_get_mpdu_frame_control_valid_8074v2,
  676. hal_rx_mpdu_get_addr1_8074v2,
  677. hal_rx_mpdu_get_addr2_8074v2,
  678. hal_rx_mpdu_get_addr3_8074v2,
  679. hal_rx_mpdu_get_addr4_8074v2,
  680. hal_rx_get_mpdu_sequence_control_valid_8074v2,
  681. hal_rx_is_unicast_8074v2,
  682. hal_rx_tid_get_8074v2,
  683. hal_rx_hw_desc_get_ppduid_get_8074v2,
  684. };
  685. struct hal_hw_srng_config hw_srng_table_8074v2[] = {
  686. /* TODO: max_rings can populated by querying HW capabilities */
  687. { /* REO_DST */
  688. .start_ring_id = HAL_SRNG_REO2SW1,
  689. .max_rings = 4,
  690. .entry_size = sizeof(struct reo_destination_ring) >> 2,
  691. .lmac_ring = FALSE,
  692. .ring_dir = HAL_SRNG_DST_RING,
  693. .reg_start = {
  694. HWIO_REO_R0_REO2SW1_RING_BASE_LSB_ADDR(
  695. SEQ_WCSS_UMAC_REO_REG_OFFSET),
  696. HWIO_REO_R2_REO2SW1_RING_HP_ADDR(
  697. SEQ_WCSS_UMAC_REO_REG_OFFSET)
  698. },
  699. .reg_size = {
  700. HWIO_REO_R0_REO2SW2_RING_BASE_LSB_ADDR(0) -
  701. HWIO_REO_R0_REO2SW1_RING_BASE_LSB_ADDR(0),
  702. HWIO_REO_R2_REO2SW2_RING_HP_ADDR(0) -
  703. HWIO_REO_R2_REO2SW1_RING_HP_ADDR(0),
  704. },
  705. .max_size =
  706. HWIO_REO_R0_REO2SW1_RING_BASE_MSB_RING_SIZE_BMSK >>
  707. HWIO_REO_R0_REO2SW1_RING_BASE_MSB_RING_SIZE_SHFT,
  708. },
  709. { /* REO_EXCEPTION */
  710. /* Designating REO2TCL ring as exception ring. This ring is
  711. * similar to other REO2SW rings though it is named as REO2TCL.
  712. * Any of theREO2SW rings can be used as exception ring.
  713. */
  714. .start_ring_id = HAL_SRNG_REO2TCL,
  715. .max_rings = 1,
  716. .entry_size = sizeof(struct reo_destination_ring) >> 2,
  717. .lmac_ring = FALSE,
  718. .ring_dir = HAL_SRNG_DST_RING,
  719. .reg_start = {
  720. HWIO_REO_R0_REO2TCL_RING_BASE_LSB_ADDR(
  721. SEQ_WCSS_UMAC_REO_REG_OFFSET),
  722. HWIO_REO_R2_REO2TCL_RING_HP_ADDR(
  723. SEQ_WCSS_UMAC_REO_REG_OFFSET)
  724. },
  725. /* Single ring - provide ring size if multiple rings of this
  726. * type are supported
  727. */
  728. .reg_size = {},
  729. .max_size =
  730. HWIO_REO_R0_REO2TCL_RING_BASE_MSB_RING_SIZE_BMSK >>
  731. HWIO_REO_R0_REO2TCL_RING_BASE_MSB_RING_SIZE_SHFT,
  732. },
  733. { /* REO_REINJECT */
  734. .start_ring_id = HAL_SRNG_SW2REO,
  735. .max_rings = 1,
  736. .entry_size = sizeof(struct reo_entrance_ring) >> 2,
  737. .lmac_ring = FALSE,
  738. .ring_dir = HAL_SRNG_SRC_RING,
  739. .reg_start = {
  740. HWIO_REO_R0_SW2REO_RING_BASE_LSB_ADDR(
  741. SEQ_WCSS_UMAC_REO_REG_OFFSET),
  742. HWIO_REO_R2_SW2REO_RING_HP_ADDR(
  743. SEQ_WCSS_UMAC_REO_REG_OFFSET)
  744. },
  745. /* Single ring - provide ring size if multiple rings of this
  746. * type are supported
  747. */
  748. .reg_size = {},
  749. .max_size = HWIO_REO_R0_SW2REO_RING_BASE_MSB_RING_SIZE_BMSK >>
  750. HWIO_REO_R0_SW2REO_RING_BASE_MSB_RING_SIZE_SHFT,
  751. },
  752. { /* REO_CMD */
  753. .start_ring_id = HAL_SRNG_REO_CMD,
  754. .max_rings = 1,
  755. .entry_size = (sizeof(struct tlv_32_hdr) +
  756. sizeof(struct reo_get_queue_stats)) >> 2,
  757. .lmac_ring = FALSE,
  758. .ring_dir = HAL_SRNG_SRC_RING,
  759. .reg_start = {
  760. HWIO_REO_R0_REO_CMD_RING_BASE_LSB_ADDR(
  761. SEQ_WCSS_UMAC_REO_REG_OFFSET),
  762. HWIO_REO_R2_REO_CMD_RING_HP_ADDR(
  763. SEQ_WCSS_UMAC_REO_REG_OFFSET),
  764. },
  765. /* Single ring - provide ring size if multiple rings of this
  766. * type are supported
  767. */
  768. .reg_size = {},
  769. .max_size = HWIO_REO_R0_REO_CMD_RING_BASE_MSB_RING_SIZE_BMSK >>
  770. HWIO_REO_R0_REO_CMD_RING_BASE_MSB_RING_SIZE_SHFT,
  771. },
  772. { /* REO_STATUS */
  773. .start_ring_id = HAL_SRNG_REO_STATUS,
  774. .max_rings = 1,
  775. .entry_size = (sizeof(struct tlv_32_hdr) +
  776. sizeof(struct reo_get_queue_stats_status)) >> 2,
  777. .lmac_ring = FALSE,
  778. .ring_dir = HAL_SRNG_DST_RING,
  779. .reg_start = {
  780. HWIO_REO_R0_REO_STATUS_RING_BASE_LSB_ADDR(
  781. SEQ_WCSS_UMAC_REO_REG_OFFSET),
  782. HWIO_REO_R2_REO_STATUS_RING_HP_ADDR(
  783. SEQ_WCSS_UMAC_REO_REG_OFFSET),
  784. },
  785. /* Single ring - provide ring size if multiple rings of this
  786. * type are supported
  787. */
  788. .reg_size = {},
  789. .max_size =
  790. HWIO_REO_R0_REO_STATUS_RING_BASE_MSB_RING_SIZE_BMSK >>
  791. HWIO_REO_R0_REO_STATUS_RING_BASE_MSB_RING_SIZE_SHFT,
  792. },
  793. { /* TCL_DATA */
  794. .start_ring_id = HAL_SRNG_SW2TCL1,
  795. .max_rings = 3,
  796. .entry_size = (sizeof(struct tlv_32_hdr) +
  797. sizeof(struct tcl_data_cmd)) >> 2,
  798. .lmac_ring = FALSE,
  799. .ring_dir = HAL_SRNG_SRC_RING,
  800. .reg_start = {
  801. HWIO_TCL_R0_SW2TCL1_RING_BASE_LSB_ADDR(
  802. SEQ_WCSS_UMAC_MAC_TCL_REG_OFFSET),
  803. HWIO_TCL_R2_SW2TCL1_RING_HP_ADDR(
  804. SEQ_WCSS_UMAC_MAC_TCL_REG_OFFSET),
  805. },
  806. .reg_size = {
  807. HWIO_TCL_R0_SW2TCL2_RING_BASE_LSB_ADDR(0) -
  808. HWIO_TCL_R0_SW2TCL1_RING_BASE_LSB_ADDR(0),
  809. HWIO_TCL_R2_SW2TCL2_RING_HP_ADDR(0) -
  810. HWIO_TCL_R2_SW2TCL1_RING_HP_ADDR(0),
  811. },
  812. .max_size =
  813. HWIO_TCL_R0_SW2TCL1_RING_BASE_MSB_RING_SIZE_BMSK >>
  814. HWIO_TCL_R0_SW2TCL1_RING_BASE_MSB_RING_SIZE_SHFT,
  815. },
  816. { /* TCL_CMD */
  817. .start_ring_id = HAL_SRNG_SW2TCL_CMD,
  818. .max_rings = 1,
  819. .entry_size = (sizeof(struct tlv_32_hdr) +
  820. sizeof(struct tcl_gse_cmd)) >> 2,
  821. .lmac_ring = FALSE,
  822. .ring_dir = HAL_SRNG_SRC_RING,
  823. .reg_start = {
  824. HWIO_TCL_R0_SW2TCL_CMD_RING_BASE_LSB_ADDR(
  825. SEQ_WCSS_UMAC_MAC_TCL_REG_OFFSET),
  826. HWIO_TCL_R2_SW2TCL_CMD_RING_HP_ADDR(
  827. SEQ_WCSS_UMAC_MAC_TCL_REG_OFFSET),
  828. },
  829. /* Single ring - provide ring size if multiple rings of this
  830. * type are supported
  831. */
  832. .reg_size = {},
  833. .max_size =
  834. HWIO_TCL_R0_SW2TCL_CMD_RING_BASE_MSB_RING_SIZE_BMSK >>
  835. HWIO_TCL_R0_SW2TCL_CMD_RING_BASE_MSB_RING_SIZE_SHFT,
  836. },
  837. { /* TCL_STATUS */
  838. .start_ring_id = HAL_SRNG_TCL_STATUS,
  839. .max_rings = 1,
  840. .entry_size = (sizeof(struct tlv_32_hdr) +
  841. sizeof(struct tcl_status_ring)) >> 2,
  842. .lmac_ring = FALSE,
  843. .ring_dir = HAL_SRNG_DST_RING,
  844. .reg_start = {
  845. HWIO_TCL_R0_TCL_STATUS1_RING_BASE_LSB_ADDR(
  846. SEQ_WCSS_UMAC_MAC_TCL_REG_OFFSET),
  847. HWIO_TCL_R2_TCL_STATUS1_RING_HP_ADDR(
  848. SEQ_WCSS_UMAC_MAC_TCL_REG_OFFSET),
  849. },
  850. /* Single ring - provide ring size if multiple rings of this
  851. * type are supported
  852. */
  853. .reg_size = {},
  854. .max_size =
  855. HWIO_TCL_R0_TCL_STATUS1_RING_BASE_MSB_RING_SIZE_BMSK >>
  856. HWIO_TCL_R0_TCL_STATUS1_RING_BASE_MSB_RING_SIZE_SHFT,
  857. },
  858. { /* CE_SRC */
  859. .start_ring_id = HAL_SRNG_CE_0_SRC,
  860. .max_rings = 12,
  861. .entry_size = sizeof(struct ce_src_desc) >> 2,
  862. .lmac_ring = FALSE,
  863. .ring_dir = HAL_SRNG_SRC_RING,
  864. .reg_start = {
  865. HWIO_WFSS_CE_CHANNEL_DST_R0_DEST_RING_BASE_LSB_ADDR(
  866. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_SRC_REG_OFFSET),
  867. HWIO_WFSS_CE_CHANNEL_DST_R2_DEST_RING_HP_ADDR(
  868. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_SRC_REG_OFFSET),
  869. },
  870. .reg_size = {
  871. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_1_CHANNEL_SRC_REG_OFFSET -
  872. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_SRC_REG_OFFSET,
  873. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_1_CHANNEL_SRC_REG_OFFSET -
  874. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_SRC_REG_OFFSET,
  875. },
  876. .max_size =
  877. HWIO_WFSS_CE_CHANNEL_DST_R0_DEST_RING_BASE_MSB_RING_SIZE_BMSK >>
  878. HWIO_WFSS_CE_CHANNEL_DST_R0_DEST_RING_BASE_MSB_RING_SIZE_SHFT,
  879. },
  880. { /* CE_DST */
  881. .start_ring_id = HAL_SRNG_CE_0_DST,
  882. .max_rings = 12,
  883. .entry_size = 8 >> 2,
  884. /*TODO: entry_size above should actually be
  885. * sizeof(struct ce_dst_desc) >> 2, but couldn't find definition
  886. * of struct ce_dst_desc in HW header files
  887. */
  888. .lmac_ring = FALSE,
  889. .ring_dir = HAL_SRNG_SRC_RING,
  890. .reg_start = {
  891. HWIO_WFSS_CE_CHANNEL_DST_R0_DEST_RING_BASE_LSB_ADDR(
  892. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_DST_REG_OFFSET),
  893. HWIO_WFSS_CE_CHANNEL_DST_R2_DEST_RING_HP_ADDR(
  894. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_DST_REG_OFFSET),
  895. },
  896. .reg_size = {
  897. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_1_CHANNEL_DST_REG_OFFSET -
  898. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_DST_REG_OFFSET,
  899. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_1_CHANNEL_DST_REG_OFFSET -
  900. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_DST_REG_OFFSET,
  901. },
  902. .max_size =
  903. HWIO_WFSS_CE_CHANNEL_DST_R0_DEST_RING_BASE_MSB_RING_SIZE_BMSK >>
  904. HWIO_WFSS_CE_CHANNEL_DST_R0_DEST_RING_BASE_MSB_RING_SIZE_SHFT,
  905. },
  906. { /* CE_DST_STATUS */
  907. .start_ring_id = HAL_SRNG_CE_0_DST_STATUS,
  908. .max_rings = 12,
  909. .entry_size = sizeof(struct ce_stat_desc) >> 2,
  910. .lmac_ring = FALSE,
  911. .ring_dir = HAL_SRNG_DST_RING,
  912. .reg_start = {
  913. HWIO_WFSS_CE_CHANNEL_DST_R0_STATUS_RING_BASE_LSB_ADDR(
  914. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_DST_REG_OFFSET),
  915. HWIO_WFSS_CE_CHANNEL_DST_R2_STATUS_RING_HP_ADDR(
  916. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_DST_REG_OFFSET),
  917. },
  918. /* TODO: check destination status ring registers */
  919. .reg_size = {
  920. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_1_CHANNEL_DST_REG_OFFSET -
  921. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_DST_REG_OFFSET,
  922. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_1_CHANNEL_DST_REG_OFFSET -
  923. SEQ_WCSS_UMAC_WFSS_CE_0_REG_WFSS_CE_0_CHANNEL_DST_REG_OFFSET,
  924. },
  925. .max_size =
  926. HWIO_WFSS_CE_CHANNEL_DST_R0_STATUS_RING_BASE_MSB_RING_SIZE_BMSK >>
  927. HWIO_WFSS_CE_CHANNEL_DST_R0_STATUS_RING_BASE_MSB_RING_SIZE_SHFT,
  928. },
  929. { /* WBM_IDLE_LINK */
  930. .start_ring_id = HAL_SRNG_WBM_IDLE_LINK,
  931. .max_rings = 1,
  932. .entry_size = sizeof(struct wbm_link_descriptor_ring) >> 2,
  933. .lmac_ring = FALSE,
  934. .ring_dir = HAL_SRNG_SRC_RING,
  935. .reg_start = {
  936. HWIO_WBM_R0_WBM_IDLE_LINK_RING_BASE_LSB_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET),
  937. HWIO_WBM_R2_WBM_IDLE_LINK_RING_HP_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET),
  938. },
  939. /* Single ring - provide ring size if multiple rings of this
  940. * type are supported
  941. */
  942. .reg_size = {},
  943. .max_size =
  944. HWIO_WBM_R0_WBM_IDLE_LINK_RING_BASE_MSB_RING_SIZE_BMSK >>
  945. HWIO_WBM_R0_WBM_IDLE_LINK_RING_BASE_MSB_RING_SIZE_SHFT,
  946. },
  947. { /* SW2WBM_RELEASE */
  948. .start_ring_id = HAL_SRNG_WBM_SW_RELEASE,
  949. .max_rings = 1,
  950. .entry_size = sizeof(struct wbm_release_ring) >> 2,
  951. .lmac_ring = FALSE,
  952. .ring_dir = HAL_SRNG_SRC_RING,
  953. .reg_start = {
  954. HWIO_WBM_R0_SW_RELEASE_RING_BASE_LSB_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET),
  955. HWIO_WBM_R2_SW_RELEASE_RING_HP_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET),
  956. },
  957. /* Single ring - provide ring size if multiple rings of this
  958. * type are supported
  959. */
  960. .reg_size = {},
  961. .max_size =
  962. HWIO_WBM_R0_SW_RELEASE_RING_BASE_MSB_RING_SIZE_BMSK >>
  963. HWIO_WBM_R0_SW_RELEASE_RING_BASE_MSB_RING_SIZE_SHFT,
  964. },
  965. { /* WBM2SW_RELEASE */
  966. .start_ring_id = HAL_SRNG_WBM2SW0_RELEASE,
  967. .max_rings = 4,
  968. .entry_size = sizeof(struct wbm_release_ring) >> 2,
  969. .lmac_ring = FALSE,
  970. .ring_dir = HAL_SRNG_DST_RING,
  971. .reg_start = {
  972. HWIO_WBM_R0_WBM2SW0_RELEASE_RING_BASE_LSB_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET),
  973. HWIO_WBM_R2_WBM2SW0_RELEASE_RING_HP_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET),
  974. },
  975. .reg_size = {
  976. HWIO_WBM_R0_WBM2SW1_RELEASE_RING_BASE_LSB_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET) -
  977. HWIO_WBM_R0_WBM2SW0_RELEASE_RING_BASE_LSB_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET),
  978. HWIO_WBM_R2_WBM2SW1_RELEASE_RING_HP_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET) -
  979. HWIO_WBM_R2_WBM2SW0_RELEASE_RING_HP_ADDR(SEQ_WCSS_UMAC_WBM_REG_OFFSET),
  980. },
  981. .max_size =
  982. HWIO_WBM_R0_WBM2SW0_RELEASE_RING_BASE_MSB_RING_SIZE_BMSK >>
  983. HWIO_WBM_R0_WBM2SW0_RELEASE_RING_BASE_MSB_RING_SIZE_SHFT,
  984. },
  985. { /* RXDMA_BUF */
  986. .start_ring_id = HAL_SRNG_WMAC1_SW2RXDMA0_BUF0,
  987. #ifdef IPA_OFFLOAD
  988. .max_rings = 3,
  989. #else
  990. .max_rings = 2,
  991. #endif
  992. .entry_size = sizeof(struct wbm_buffer_ring) >> 2,
  993. .lmac_ring = TRUE,
  994. .ring_dir = HAL_SRNG_SRC_RING,
  995. /* reg_start is not set because LMAC rings are not accessed
  996. * from host
  997. */
  998. .reg_start = {},
  999. .reg_size = {},
  1000. .max_size = HAL_RXDMA_MAX_RING_SIZE,
  1001. },
  1002. { /* RXDMA_DST */
  1003. .start_ring_id = HAL_SRNG_WMAC1_RXDMA2SW0,
  1004. .max_rings = 1,
  1005. .entry_size = sizeof(struct reo_entrance_ring) >> 2,
  1006. .lmac_ring = TRUE,
  1007. .ring_dir = HAL_SRNG_DST_RING,
  1008. /* reg_start is not set because LMAC rings are not accessed
  1009. * from host
  1010. */
  1011. .reg_start = {},
  1012. .reg_size = {},
  1013. .max_size = HAL_RXDMA_MAX_RING_SIZE,
  1014. },
  1015. { /* RXDMA_MONITOR_BUF */
  1016. .start_ring_id = HAL_SRNG_WMAC1_SW2RXDMA2_BUF,
  1017. .max_rings = 1,
  1018. .entry_size = sizeof(struct wbm_buffer_ring) >> 2,
  1019. .lmac_ring = TRUE,
  1020. .ring_dir = HAL_SRNG_SRC_RING,
  1021. /* reg_start is not set because LMAC rings are not accessed
  1022. * from host
  1023. */
  1024. .reg_start = {},
  1025. .reg_size = {},
  1026. .max_size = HAL_RXDMA_MAX_RING_SIZE,
  1027. },
  1028. { /* RXDMA_MONITOR_STATUS */
  1029. .start_ring_id = HAL_SRNG_WMAC1_SW2RXDMA1_STATBUF,
  1030. .max_rings = 1,
  1031. .entry_size = sizeof(struct wbm_buffer_ring) >> 2,
  1032. .lmac_ring = TRUE,
  1033. .ring_dir = HAL_SRNG_SRC_RING,
  1034. /* reg_start is not set because LMAC rings are not accessed
  1035. * from host
  1036. */
  1037. .reg_start = {},
  1038. .reg_size = {},
  1039. .max_size = HAL_RXDMA_MAX_RING_SIZE,
  1040. },
  1041. { /* RXDMA_MONITOR_DST */
  1042. .start_ring_id = HAL_SRNG_WMAC1_RXDMA2SW1,
  1043. .max_rings = 1,
  1044. .entry_size = sizeof(struct reo_entrance_ring) >> 2,
  1045. .lmac_ring = TRUE,
  1046. .ring_dir = HAL_SRNG_DST_RING,
  1047. /* reg_start is not set because LMAC rings are not accessed
  1048. * from host
  1049. */
  1050. .reg_start = {},
  1051. .reg_size = {},
  1052. .max_size = HAL_RXDMA_MAX_RING_SIZE,
  1053. },
  1054. { /* RXDMA_MONITOR_DESC */
  1055. .start_ring_id = HAL_SRNG_WMAC1_SW2RXDMA1_DESC,
  1056. .max_rings = 1,
  1057. .entry_size = sizeof(struct wbm_buffer_ring) >> 2,
  1058. .lmac_ring = TRUE,
  1059. .ring_dir = HAL_SRNG_SRC_RING,
  1060. /* reg_start is not set because LMAC rings are not accessed
  1061. * from host
  1062. */
  1063. .reg_start = {},
  1064. .reg_size = {},
  1065. .max_size = HAL_RXDMA_MAX_RING_SIZE,
  1066. },
  1067. { /* DIR_BUF_RX_DMA_SRC */
  1068. .start_ring_id = HAL_SRNG_DIR_BUF_RX_SRC_DMA_RING,
  1069. /* one ring for spectral and one ring for cfr */
  1070. .max_rings = 2,
  1071. .entry_size = 2,
  1072. .lmac_ring = TRUE,
  1073. .ring_dir = HAL_SRNG_SRC_RING,
  1074. /* reg_start is not set because LMAC rings are not accessed
  1075. * from host
  1076. */
  1077. .reg_start = {},
  1078. .reg_size = {},
  1079. .max_size = HAL_RXDMA_MAX_RING_SIZE,
  1080. },
  1081. #ifdef WLAN_FEATURE_CIF_CFR
  1082. { /* WIFI_POS_SRC */
  1083. .start_ring_id = HAL_SRNG_WIFI_POS_SRC_DMA_RING,
  1084. .max_rings = 1,
  1085. .entry_size = sizeof(wmi_oem_dma_buf_release_entry) >> 2,
  1086. .lmac_ring = TRUE,
  1087. .ring_dir = HAL_SRNG_SRC_RING,
  1088. /* reg_start is not set because LMAC rings are not accessed
  1089. * from host
  1090. */
  1091. .reg_start = {},
  1092. .reg_size = {},
  1093. .max_size = HAL_RXDMA_MAX_RING_SIZE,
  1094. },
  1095. #endif
  1096. };
  1097. int32_t hal_hw_reg_offset_qca8074v2[] = {
  1098. /* dst */
  1099. REG_OFFSET(DST, HP),
  1100. REG_OFFSET(DST, TP),
  1101. REG_OFFSET(DST, ID),
  1102. REG_OFFSET(DST, MISC),
  1103. REG_OFFSET(DST, HP_ADDR_LSB),
  1104. REG_OFFSET(DST, HP_ADDR_MSB),
  1105. REG_OFFSET(DST, MSI1_BASE_LSB),
  1106. REG_OFFSET(DST, MSI1_BASE_MSB),
  1107. REG_OFFSET(DST, MSI1_DATA),
  1108. REG_OFFSET(DST, BASE_LSB),
  1109. REG_OFFSET(DST, BASE_MSB),
  1110. REG_OFFSET(DST, PRODUCER_INT_SETUP),
  1111. /* src */
  1112. REG_OFFSET(SRC, HP),
  1113. REG_OFFSET(SRC, TP),
  1114. REG_OFFSET(SRC, ID),
  1115. REG_OFFSET(SRC, MISC),
  1116. REG_OFFSET(SRC, TP_ADDR_LSB),
  1117. REG_OFFSET(SRC, TP_ADDR_MSB),
  1118. REG_OFFSET(SRC, MSI1_BASE_LSB),
  1119. REG_OFFSET(SRC, MSI1_BASE_MSB),
  1120. REG_OFFSET(SRC, MSI1_DATA),
  1121. REG_OFFSET(SRC, BASE_LSB),
  1122. REG_OFFSET(SRC, BASE_MSB),
  1123. REG_OFFSET(SRC, CONSUMER_INT_SETUP_IX0),
  1124. REG_OFFSET(SRC, CONSUMER_INT_SETUP_IX1),
  1125. };
  1126. /**
  1127. * hal_qca8074v2_attach() - Attach 8074v2 target specific hal_soc ops,
  1128. * offset and srng table
  1129. */
  1130. void hal_qca8074v2_attach(struct hal_soc *hal_soc)
  1131. {
  1132. hal_soc->hw_srng_table = hw_srng_table_8074v2;
  1133. hal_soc->hal_hw_reg_offset = hal_hw_reg_offset_qca8074v2;
  1134. hal_soc->ops = &qca8074v2_hal_hw_txrx_ops;
  1135. }