target_if_spectral_netlink.c 18 KB

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  1. /*
  2. * Copyright (c) 2011,2017-2021 The Linux Foundation. All rights reserved.
  3. *
  4. *
  5. * Permission to use, copy, modify, and/or distribute this software for
  6. * any purpose with or without fee is hereby granted, provided that the
  7. * above copyright notice and this permission notice appear in all
  8. * copies.
  9. *
  10. * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL
  11. * WARRANTIES WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED
  12. * WARRANTIES OF MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE
  13. * AUTHOR BE LIABLE FOR ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL
  14. * DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR
  15. * PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE OR OTHER
  16. * TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
  17. * PERFORMANCE OF THIS SOFTWARE.
  18. */
  19. #include <osdep.h>
  20. #include <wlan_tgt_def_config.h>
  21. #include <hif.h>
  22. #include <hif_hw_version.h>
  23. #include <wmi_unified_api.h>
  24. #include <target_if_spectral.h>
  25. #include <wlan_lmac_if_def.h>
  26. #include <wlan_osif_priv.h>
  27. #include <reg_services_public_struct.h>
  28. #ifdef OPTIMIZED_SAMP_MESSAGE
  29. QDF_STATUS
  30. target_if_spectral_fill_samp_msg(struct target_if_spectral *spectral,
  31. struct target_if_samp_msg_params *params)
  32. {
  33. struct spectral_samp_msg *spec_samp_msg;
  34. struct per_session_det_map *det_map;
  35. enum spectral_msg_type msg_type;
  36. QDF_STATUS ret;
  37. uint16_t dest_det_idx;
  38. enum spectral_scan_mode spectral_mode;
  39. if (!spectral) {
  40. spectral_err_rl("Spectral LMAC object is null");
  41. return QDF_STATUS_E_NULL_VALUE;
  42. }
  43. if (!params) {
  44. spectral_err_rl("SAMP msg params structure is null");
  45. return QDF_STATUS_E_NULL_VALUE;
  46. }
  47. if (params->hw_detector_id > SPECTRAL_DETECTOR_ID_MAX) {
  48. spectral_err_rl("Invalid detector ID");
  49. return QDF_STATUS_E_FAILURE;
  50. }
  51. det_map = &spectral->det_map[params->hw_detector_id];
  52. spectral_mode =
  53. spectral->rparams.detid_mode_table[params->hw_detector_id];
  54. if (spectral_mode >= SPECTRAL_SCAN_MODE_MAX) {
  55. spectral_err_rl("No valid Spectral mode for detector id %u",
  56. params->hw_detector_id);
  57. return QDF_STATUS_E_FAILURE;
  58. }
  59. ret = target_if_get_spectral_msg_type(spectral_mode,
  60. &msg_type);
  61. if (QDF_IS_STATUS_ERROR(ret)) {
  62. spectral_err_rl("Invalid spectral msg type");
  63. return QDF_STATUS_E_FAILURE;
  64. }
  65. spec_samp_msg = spectral->nl_cb.get_sbuff(spectral->pdev_obj,
  66. msg_type,
  67. det_map->buf_type);
  68. if (!spec_samp_msg) {
  69. spectral_err_rl("Spectral SAMP message is NULL");
  70. return QDF_STATUS_E_FAILURE;
  71. }
  72. for (dest_det_idx = 0; dest_det_idx < det_map->num_dest_det_info;
  73. dest_det_idx++) {
  74. struct per_session_dest_det_info *map_det_info;
  75. struct spectral_fft_bin_len_adj_swar *swar;
  76. struct samp_freq_span_info *span_info;
  77. struct samp_detector_info *detector_info;
  78. uint8_t dest_detector_id;
  79. uint8_t span_id;
  80. struct samp_edge_extra_bin_info *lb_edge_bins;
  81. struct samp_edge_extra_bin_info *rb_edge_bins;
  82. uint8_t *bin_pwr_data;
  83. uint32_t *binptr_32;
  84. uint16_t *binptr_16;
  85. uint16_t pwr_16;
  86. size_t pwr_count;
  87. uint16_t idx;
  88. uint16_t start_bin_index;
  89. swar = &spectral->len_adj_swar;
  90. map_det_info = &det_map->dest_det_info[dest_det_idx];
  91. span_id = map_det_info->freq_span_id;
  92. span_info = &spec_samp_msg->freq_span_info[span_id];
  93. span_info->num_detectors++;
  94. dest_detector_id = map_det_info->det_id;
  95. detector_info = &span_info->detector_info[dest_detector_id];
  96. lb_edge_bins = &detector_info->left_edge_bins;
  97. rb_edge_bins = &detector_info->right_edge_bins;
  98. detector_info->start_frequency = map_det_info->start_freq;
  99. detector_info->end_frequency = map_det_info->end_freq;
  100. detector_info->start_bin_idx = map_det_info->dest_start_bin_idx;
  101. detector_info->end_bin_idx = map_det_info->dest_end_bin_idx;
  102. lb_edge_bins->start_bin_idx =
  103. map_det_info->lb_extrabins_start_idx;
  104. lb_edge_bins->num_bins = map_det_info->lb_extrabins_num;
  105. rb_edge_bins->start_bin_idx =
  106. map_det_info->rb_extrabins_start_idx;
  107. rb_edge_bins->num_bins = map_det_info->rb_extrabins_num;
  108. start_bin_index = lb_edge_bins->start_bin_idx;
  109. detector_info->rssi = params->rssi;
  110. detector_info->last_raw_timestamp = params->last_raw_timestamp;
  111. detector_info->reset_delay = params->reset_delay;
  112. detector_info->raw_timestamp = params->raw_timestamp;
  113. detector_info->timestamp = params->timestamp;
  114. detector_info->timestamp_war_offset = spectral->timestamp_war.
  115. timestamp_war_offset[spectral_mode];
  116. detector_info->max_magnitude = params->max_mag;
  117. detector_info->max_index = params->max_index;
  118. detector_info->noise_floor = params->noise_floor;
  119. detector_info->agc_total_gain = params->agc_total_gain;
  120. detector_info->gainchange = params->gainchange;
  121. detector_info->is_sec80 = map_det_info->is_sec80;
  122. /* In 165MHz, Pri80 indication to be set for Span ID 0 only */
  123. if (span_id == SPECTRAL_FREQ_SPAN_ID_0)
  124. detector_info->pri80ind = params->pri80ind;
  125. bin_pwr_data = &params->bin_pwr_data
  126. [map_det_info->src_start_bin_idx];
  127. pwr_count = detector_info->end_bin_idx -
  128. detector_info->start_bin_idx +
  129. lb_edge_bins->num_bins +
  130. rb_edge_bins->num_bins + 1;
  131. spec_samp_msg->bin_pwr_count += pwr_count;
  132. /*
  133. * To check whether FFT bin values exceed 8 bits, we add a
  134. * check before copying values to samp_data->bin_pwr.
  135. * If it crosses 8 bits, we cap the values to maximum value
  136. * supported by 8 bits ie. 255. This needs to be done as the
  137. * destination array in SAMP message is 8 bits. This is a
  138. * temporary solution till an array of 16 bits is used for
  139. * SAMP message.
  140. */
  141. if (swar->fftbin_size_war ==
  142. SPECTRAL_FFTBIN_SIZE_WAR_4BYTE_TO_1BYTE) {
  143. binptr_32 = (uint32_t *)bin_pwr_data;
  144. for (idx = 0; idx < pwr_count; idx++) {
  145. /* Read only the first 2 bytes of the DWORD */
  146. pwr_16 = *((uint16_t *)binptr_32++);
  147. if (qdf_unlikely(pwr_16 > MAX_FFTBIN_VALUE))
  148. pwr_16 = MAX_FFTBIN_VALUE;
  149. spec_samp_msg->bin_pwr[start_bin_index + idx]
  150. = pwr_16;
  151. }
  152. } else if (swar->fftbin_size_war ==
  153. SPECTRAL_FFTBIN_SIZE_WAR_2BYTE_TO_1BYTE) {
  154. binptr_16 = (uint16_t *)bin_pwr_data;
  155. for (idx = 0; idx < pwr_count; idx++) {
  156. pwr_16 = *(binptr_16++);
  157. if (qdf_unlikely(pwr_16 > MAX_FFTBIN_VALUE))
  158. pwr_16 = MAX_FFTBIN_VALUE;
  159. spec_samp_msg->bin_pwr[start_bin_index + idx]
  160. = pwr_16;
  161. }
  162. } else {
  163. qdf_mem_copy(&spec_samp_msg->bin_pwr[start_bin_index],
  164. bin_pwr_data, pwr_count);
  165. }
  166. }
  167. if (det_map->send_to_upper_layers) {
  168. /* Fill per-report information */
  169. struct per_session_report_info *rpt_info;
  170. struct target_if_spectral_ops *p_sops;
  171. p_sops = GET_TARGET_IF_SPECTRAL_OPS(spectral);
  172. rpt_info = &spectral->report_info[spectral_mode];
  173. spec_samp_msg->signature = SPECTRAL_SIGNATURE;
  174. p_sops->get_mac_address(spectral, spec_samp_msg->macaddr);
  175. spec_samp_msg->spectral_mode = spectral_mode;
  176. spec_samp_msg->target_reset_count =
  177. spectral->timestamp_war.target_reset_count;
  178. spec_samp_msg->operating_bw = rpt_info->operating_bw;
  179. spec_samp_msg->pri20_freq = rpt_info->pri20_freq;
  180. spec_samp_msg->cfreq1 = rpt_info->cfreq1;
  181. spec_samp_msg->cfreq2 = rpt_info->cfreq2;
  182. spec_samp_msg->sscan_cfreq1 = rpt_info->sscan_cfreq1;
  183. spec_samp_msg->sscan_cfreq2 = rpt_info->sscan_cfreq2;
  184. spec_samp_msg->sscan_bw = rpt_info->sscan_bw;
  185. spec_samp_msg->fft_width = FFT_BIN_SIZE_1BYTE;
  186. spec_samp_msg->num_freq_spans = rpt_info->num_spans;
  187. spec_samp_msg->spectral_upper_rssi = params->upper_rssi;
  188. spec_samp_msg->spectral_lower_rssi = params->lower_rssi;
  189. qdf_mem_copy(spec_samp_msg->spectral_chain_ctl_rssi,
  190. params->chain_ctl_rssi,
  191. sizeof(params->chain_ctl_rssi));
  192. qdf_mem_copy(spec_samp_msg->spectral_chain_ext_rssi,
  193. params->chain_ext_rssi,
  194. sizeof(params->chain_ext_rssi));
  195. if (spectral->send_phy_data(spectral->pdev_obj,
  196. msg_type) == 0)
  197. spectral->spectral_sent_msg++;
  198. if (spectral->spectral_gen == SPECTRAL_GEN3)
  199. reset_160mhz_delivery_state_machine(spectral,
  200. spectral_mode);
  201. }
  202. return QDF_STATUS_SUCCESS;
  203. }
  204. #endif /* OPTIMIZED_SAMP_MESSAGE */
  205. #ifndef OPTIMIZED_SAMP_MESSAGE
  206. void
  207. target_if_spectral_create_samp_msg(struct target_if_spectral *spectral,
  208. struct target_if_samp_msg_params *params)
  209. {
  210. /*
  211. * XXX : Non-Rentrant. Will be an issue with dual concurrent
  212. * operation on multi-processor system
  213. */
  214. struct spectral_samp_msg *spec_samp_msg = NULL;
  215. uint8_t *bin_pwr_data = NULL;
  216. struct spectral_classifier_params *cp = NULL;
  217. struct spectral_classifier_params *pcp = NULL;
  218. struct target_if_spectral_ops *p_sops = NULL;
  219. uint32_t *binptr_32 = NULL;
  220. uint16_t *binptr_16 = NULL;
  221. uint16_t pwr_16;
  222. int idx = 0;
  223. struct spectral_samp_data *samp_data;
  224. static int samp_msg_index;
  225. size_t pwr_count = 0;
  226. size_t pwr_count_sec80 = 0;
  227. size_t pwr_count_5mhz = 0;
  228. enum spectral_msg_type msg_type;
  229. QDF_STATUS ret;
  230. struct spectral_fft_bin_len_adj_swar *swar = &spectral->len_adj_swar;
  231. ret = target_if_get_spectral_msg_type(params->smode, &msg_type);
  232. if (QDF_IS_STATUS_ERROR(ret))
  233. return;
  234. if (is_primaryseg_rx_inprog(spectral, params->smode)) {
  235. spec_samp_msg = (struct spectral_samp_msg *)
  236. spectral->nl_cb.get_sbuff(spectral->pdev_obj,
  237. msg_type,
  238. SPECTRAL_MSG_BUF_NEW);
  239. if (!spec_samp_msg)
  240. return;
  241. samp_data = &spec_samp_msg->samp_data;
  242. p_sops = GET_TARGET_IF_SPECTRAL_OPS(spectral);
  243. bin_pwr_data = params->bin_pwr_data;
  244. spec_samp_msg->signature = SPECTRAL_SIGNATURE;
  245. spec_samp_msg->freq = params->freq;
  246. spec_samp_msg->agile_freq1 = params->agile_freq1;
  247. spec_samp_msg->agile_freq2 = params->agile_freq2;
  248. spec_samp_msg->freq_loading = params->freq_loading;
  249. spec_samp_msg->vhtop_ch_freq_seg1 = params->vhtop_ch_freq_seg1;
  250. spec_samp_msg->vhtop_ch_freq_seg2 = params->vhtop_ch_freq_seg2;
  251. samp_data->spectral_mode = params->smode;
  252. samp_data->spectral_data_len = params->datalen;
  253. samp_data->spectral_rssi = params->rssi;
  254. samp_data->ch_width =
  255. spectral->ch_width[SPECTRAL_SCAN_MODE_NORMAL];
  256. samp_data->agile_ch_width =
  257. spectral->ch_width[SPECTRAL_SCAN_MODE_AGILE];
  258. samp_data->spectral_agc_total_gain = params->agc_total_gain;
  259. samp_data->spectral_gainchange = params->gainchange;
  260. samp_data->spectral_pri80ind = params->pri80ind;
  261. samp_data->last_raw_timestamp = params->last_raw_timestamp;
  262. samp_data->timestamp_war_offset = params->timestamp_war_offset;
  263. samp_data->raw_timestamp = params->raw_timestamp;
  264. samp_data->reset_delay = params->reset_delay;
  265. samp_data->target_reset_count = params->target_reset_count;
  266. samp_data->spectral_combined_rssi =
  267. (uint8_t)params->rssi;
  268. samp_data->spectral_upper_rssi = params->upper_rssi;
  269. samp_data->spectral_lower_rssi = params->lower_rssi;
  270. qdf_mem_copy(samp_data->spectral_chain_ctl_rssi,
  271. params->chain_ctl_rssi,
  272. sizeof(params->chain_ctl_rssi));
  273. qdf_mem_copy(samp_data->spectral_chain_ext_rssi,
  274. params->chain_ext_rssi,
  275. sizeof(params->chain_ext_rssi));
  276. samp_data->spectral_bwinfo = params->bwinfo;
  277. samp_data->spectral_tstamp = params->tstamp;
  278. samp_data->spectral_max_index = params->max_index;
  279. /* Classifier in user space needs access to these */
  280. samp_data->spectral_lower_max_index =
  281. params->max_lower_index;
  282. samp_data->spectral_upper_max_index =
  283. params->max_upper_index;
  284. samp_data->spectral_nb_lower = params->nb_lower;
  285. samp_data->spectral_nb_upper = params->nb_upper;
  286. samp_data->spectral_last_tstamp = params->last_tstamp;
  287. samp_data->spectral_max_mag = params->max_mag;
  288. /*
  289. * Currently, we compute pwr_count considering the size of the
  290. * samp_data->bin_pwr array rather than the number of elements
  291. * in this array. The reasons are that
  292. * SPECTRAL_MESSAGE_COPY_CHAR_ARRAY() where pwr_count will be
  293. * used maps directly to OS_MEMCPY() on little endian platforms,
  294. * and that samp_data->bin_pwr is an array of u_int8_t elements
  295. * due to which the number of elements in the array == the size
  296. * of the array. In case FFT bin size is increased from 8 bits
  297. * in the future, this code would have to be changed along with
  298. * rest of framework on which it depends.
  299. */
  300. pwr_count = qdf_min((size_t)params->pwr_count,
  301. sizeof(samp_data->bin_pwr));
  302. samp_data->bin_pwr_count = pwr_count;
  303. samp_data->lb_edge_extrabins =
  304. spectral->lb_edge_extrabins;
  305. samp_data->rb_edge_extrabins =
  306. spectral->rb_edge_extrabins;
  307. samp_data->spectral_combined_rssi = params->rssi;
  308. samp_data->spectral_max_scale = params->max_exp;
  309. samp_data->noise_floor = params->noise_floor;
  310. /* Classifier in user space needs access to these */
  311. cp = &samp_data->classifier_params;
  312. pcp = &params->classifier_params;
  313. qdf_mem_copy(cp, pcp,
  314. sizeof(struct spectral_classifier_params));
  315. /*
  316. * To check whether FFT bin values exceed 8 bits, we add a
  317. * check before copying values to samp_data->bin_pwr.
  318. * If it crosses 8 bits, we cap the values to maximum value
  319. * supported by 8 bits ie. 255. This needs to be done as the
  320. * destination array in SAMP message is 8 bits. This is a
  321. * temporary solution till an array of 16 bits is used for
  322. * SAMP message.
  323. */
  324. if (swar->fftbin_size_war ==
  325. SPECTRAL_FFTBIN_SIZE_WAR_4BYTE_TO_1BYTE) {
  326. binptr_32 = (uint32_t *)bin_pwr_data;
  327. for (idx = 0; idx < pwr_count; idx++) {
  328. /* Read only the first 2 bytes of the DWORD */
  329. pwr_16 = *((uint16_t *)binptr_32++);
  330. if (qdf_unlikely(pwr_16 > MAX_FFTBIN_VALUE))
  331. pwr_16 = MAX_FFTBIN_VALUE;
  332. samp_data->bin_pwr[idx] = pwr_16;
  333. }
  334. } else if (swar->fftbin_size_war ==
  335. SPECTRAL_FFTBIN_SIZE_WAR_2BYTE_TO_1BYTE) {
  336. binptr_16 = (uint16_t *)bin_pwr_data;
  337. for (idx = 0; idx < pwr_count; idx++) {
  338. pwr_16 = *(binptr_16++);
  339. if (qdf_unlikely(pwr_16 > MAX_FFTBIN_VALUE))
  340. pwr_16 = MAX_FFTBIN_VALUE;
  341. samp_data->bin_pwr[idx] = pwr_16;
  342. }
  343. } else {
  344. SPECTRAL_MESSAGE_COPY_CHAR_ARRAY(
  345. &samp_data->bin_pwr[0], bin_pwr_data,
  346. pwr_count);
  347. }
  348. p_sops->get_mac_address(spectral, spec_samp_msg->macaddr);
  349. }
  350. if (is_secondaryseg_rx_inprog(spectral, params->smode)) {
  351. spec_samp_msg = (struct spectral_samp_msg *)
  352. spectral->nl_cb.get_sbuff(spectral->pdev_obj,
  353. msg_type,
  354. SPECTRAL_MSG_BUF_SAVED);
  355. if (!spec_samp_msg) {
  356. spectral_err("Spectral SAMP message is NULL");
  357. return;
  358. }
  359. samp_data = &spec_samp_msg->samp_data;
  360. samp_data->spectral_rssi_sec80 =
  361. params->rssi_sec80;
  362. samp_data->noise_floor_sec80 =
  363. params->noise_floor_sec80;
  364. spec_samp_msg->samp_data.spectral_agc_total_gain_sec80 =
  365. params->agc_total_gain_sec80;
  366. spec_samp_msg->samp_data.spectral_gainchange_sec80 =
  367. params->gainchange_sec80;
  368. spec_samp_msg->samp_data.spectral_pri80ind_sec80 =
  369. params->pri80ind_sec80;
  370. samp_data->spectral_data_len_sec80 =
  371. params->datalen_sec80;
  372. samp_data->spectral_max_index_sec80 =
  373. params->max_index_sec80;
  374. samp_data->spectral_max_mag_sec80 =
  375. params->max_mag_sec80;
  376. samp_data->raw_timestamp_sec80 = params->raw_timestamp_sec80;
  377. /*
  378. * Currently, we compute pwr_count_sec80 considering the size of
  379. * the samp_data->bin_pwr_sec80 array rather than the number of
  380. * elements in this array. The reasons are that
  381. * SPECTRAL_MESSAGE_COPY_CHAR_ARRAY() where pwr_count_sec80 will
  382. * be used maps directly to OS_MEMCPY() on little endian
  383. * platforms, and that samp_data->bin_pwr_sec80 is an array of
  384. * u_int8_t elements due to which the number of elements in the
  385. * array == the size of the array. In case FFT bin size is
  386. * increased from 8 bits in the future, this code would have to
  387. * be changed along with rest of framework on which it depends.
  388. */
  389. pwr_count_sec80 = qdf_min((size_t)params->pwr_count_sec80,
  390. sizeof(samp_data->bin_pwr_sec80));
  391. pwr_count_5mhz = qdf_min((size_t)params->pwr_count_5mhz,
  392. sizeof(samp_data->bin_pwr_5mhz));
  393. samp_data->bin_pwr_count_sec80 = pwr_count_sec80;
  394. samp_data->bin_pwr_count_5mhz = pwr_count_5mhz;
  395. bin_pwr_data = params->bin_pwr_data_sec80;
  396. /*
  397. * To check whether FFT bin values exceed 8 bits, we add a
  398. * check before copying values to samp_data->bin_pwr_sec80.
  399. * If it crosses 8 bits, we cap the values to maximum value
  400. * supported by 8 bits ie. 255. This needs to be done as the
  401. * destination array in SAMP message is 8 bits. This is a
  402. * temporary solution till an array of 16 bits is used for
  403. * SAMP message.
  404. */
  405. if (swar->fftbin_size_war ==
  406. SPECTRAL_FFTBIN_SIZE_WAR_4BYTE_TO_1BYTE) {
  407. binptr_32 = (uint32_t *)bin_pwr_data;
  408. for (idx = 0; idx < pwr_count_sec80; idx++) {
  409. /* Read only the first 2 bytes of the DWORD */
  410. pwr_16 = *((uint16_t *)binptr_32++);
  411. if (qdf_unlikely(pwr_16 > MAX_FFTBIN_VALUE))
  412. pwr_16 = MAX_FFTBIN_VALUE;
  413. samp_data->bin_pwr_sec80[idx] = pwr_16;
  414. }
  415. } else if (swar->fftbin_size_war ==
  416. SPECTRAL_FFTBIN_SIZE_WAR_2BYTE_TO_1BYTE) {
  417. binptr_16 = (uint16_t *)bin_pwr_data;
  418. for (idx = 0; idx < pwr_count_sec80; idx++) {
  419. pwr_16 = *(binptr_16++);
  420. if (qdf_unlikely(pwr_16 > MAX_FFTBIN_VALUE))
  421. pwr_16 = MAX_FFTBIN_VALUE;
  422. samp_data->bin_pwr_sec80[idx] = pwr_16;
  423. }
  424. binptr_16 = (uint16_t *)params->bin_pwr_data_5mhz;
  425. for (idx = 0; idx < pwr_count_5mhz; idx++) {
  426. pwr_16 = *(binptr_16++);
  427. if (qdf_unlikely(pwr_16 > MAX_FFTBIN_VALUE))
  428. pwr_16 = MAX_FFTBIN_VALUE;
  429. samp_data->bin_pwr_5mhz[idx] = pwr_16;
  430. }
  431. } else {
  432. SPECTRAL_MESSAGE_COPY_CHAR_ARRAY(
  433. &samp_data->bin_pwr_sec80[0],
  434. params->bin_pwr_data_sec80,
  435. pwr_count_sec80);
  436. }
  437. }
  438. if (!is_ch_width_160_or_80p80(spectral->ch_width[params->smode]) ||
  439. is_secondaryseg_rx_inprog(spectral, params->smode)) {
  440. if (spectral->send_phy_data(spectral->pdev_obj,
  441. msg_type) == 0)
  442. spectral->spectral_sent_msg++;
  443. samp_msg_index++;
  444. }
  445. /* Take care of state transitions for 160MHz/ 80p80 */
  446. if (spectral->spectral_gen == SPECTRAL_GEN3 &&
  447. is_ch_width_160_or_80p80(spectral->ch_width[params->smode]) &&
  448. spectral->rparams.fragmentation_160[params->smode])
  449. target_if_160mhz_delivery_state_change(
  450. spectral, params->smode,
  451. SPECTRAL_DETECTOR_ID_INVALID);
  452. }
  453. #endif