1 // Author: Xianjun Jiao, Michael Mehari, Wei Liu 2 // SPDX-FileCopyrightText: 2019 UGent 3 // SPDX-License-Identifier: AGPL-3.0-or-later 4 5 #include <linux/bitops.h> 6 #include <linux/dmapool.h> 7 #include <linux/io.h> 8 #include <linux/iopoll.h> 9 #include <linux/of_address.h> 10 #include <linux/of_platform.h> 11 #include <linux/of_irq.h> 12 #include <linux/slab.h> 13 #include <linux/clk.h> 14 #include <linux/io-64-nonatomic-lo-hi.h> 15 16 #include <linux/delay.h> 17 #include <linux/interrupt.h> 18 19 #include <linux/dmaengine.h> 20 #include <linux/slab.h> 21 #include <linux/delay.h> 22 #include <linux/etherdevice.h> 23 24 #include <linux/init.h> 25 #include <linux/kthread.h> 26 #include <linux/module.h> 27 #include <linux/of_dma.h> 28 #include <linux/platform_device.h> 29 #include <linux/random.h> 30 #include <linux/slab.h> 31 #include <linux/wait.h> 32 #include <linux/sched/task.h> 33 #include <linux/dma/xilinx_dma.h> 34 #include <linux/spi/spi.h> 35 #include <net/mac80211.h> 36 37 #include <linux/clk.h> 38 #include <linux/clkdev.h> 39 #include <linux/clk-provider.h> 40 41 #include <linux/iio/iio.h> 42 #include <linux/iio/sysfs.h> 43 44 #include <linux/gpio.h> 45 #include <linux/leds.h> 46 47 #define IIO_AD9361_USE_PRIVATE_H_ 48 #include <../../drivers/iio/adc/ad9361_regs.h> 49 #include <../../drivers/iio/adc/ad9361.h> 50 #include <../../drivers/iio/adc/ad9361_private.h> 51 52 #include <../../drivers/iio/frequency/cf_axi_dds.h> 53 extern int ad9361_get_tx_atten(struct ad9361_rf_phy *phy, u32 tx_num); 54 extern int ad9361_set_tx_atten(struct ad9361_rf_phy *phy, u32 atten_mdb, 55 bool tx1, bool tx2, bool immed); 56 extern int ad9361_ctrl_outs_setup(struct ad9361_rf_phy *phy, 57 struct ctrl_outs_control *ctrl); 58 59 #include "../user_space/sdrctl_src/nl80211_testmode_def.h" 60 #include "hw_def.h" 61 #include "sdr.h" 62 #include "git_rev.h" 63 64 // driver API of component driver 65 extern struct tx_intf_driver_api *tx_intf_api; 66 extern struct rx_intf_driver_api *rx_intf_api; 67 extern struct openofdm_tx_driver_api *openofdm_tx_api; 68 extern struct openofdm_rx_driver_api *openofdm_rx_api; 69 extern struct xpu_driver_api *xpu_api; 70 71 u32 gen_mpdu_crc(u8 *data_in, u32 num_bytes); 72 u8 gen_mpdu_delim_crc(u16 m); 73 74 static int test_mode = 0; // 0 normal; 1 rx test 75 76 MODULE_AUTHOR("Xianjun Jiao"); 77 MODULE_DESCRIPTION("SDR driver"); 78 MODULE_LICENSE("GPL v2"); 79 80 module_param(test_mode, int, 0); 81 MODULE_PARM_DESC(myint, "test_mode. 0 normal; 1 rx test"); 82 83 // ---------------rfkill--------------------------------------- 84 static bool openwifi_is_radio_enabled(struct openwifi_priv *priv) 85 { 86 int reg; 87 88 if (priv->tx_intf_cfg == TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT1) 89 reg = ad9361_get_tx_atten(priv->ad9361_phy, 2); 90 else 91 reg = ad9361_get_tx_atten(priv->ad9361_phy, 1); 92 93 if (reg == AD9361_RADIO_ON_TX_ATT) 94 return true;// 0 off, 1 on 95 return false; 96 } 97 98 void openwifi_rfkill_init(struct ieee80211_hw *hw) 99 { 100 struct openwifi_priv *priv = hw->priv; 101 102 priv->rfkill_off = openwifi_is_radio_enabled(priv); 103 printk("%s openwifi_rfkill_init: wireless switch is %s\n", sdr_compatible_str, priv->rfkill_off ? "on" : "off"); 104 wiphy_rfkill_set_hw_state(hw->wiphy, !priv->rfkill_off); 105 wiphy_rfkill_start_polling(hw->wiphy); 106 } 107 108 void openwifi_rfkill_poll(struct ieee80211_hw *hw) 109 { 110 bool enabled; 111 struct openwifi_priv *priv = hw->priv; 112 113 enabled = openwifi_is_radio_enabled(priv); 114 // printk("%s openwifi_rfkill_poll: wireless radio switch turned %s\n", sdr_compatible_str, enabled ? "on" : "off"); 115 if (unlikely(enabled != priv->rfkill_off)) { 116 priv->rfkill_off = enabled; 117 printk("%s openwifi_rfkill_poll: WARNING wireless radio switch turned %s\n", sdr_compatible_str, enabled ? "on" : "off"); 118 wiphy_rfkill_set_hw_state(hw->wiphy, !enabled); 119 } 120 } 121 122 void openwifi_rfkill_exit(struct ieee80211_hw *hw) 123 { 124 printk("%s openwifi_rfkill_exit\n", sdr_compatible_str); 125 wiphy_rfkill_stop_polling(hw->wiphy); 126 } 127 //----------------rfkill end----------------------------------- 128 129 //static void ad9361_rf_init(void); 130 //static void ad9361_rf_stop(void); 131 //static void ad9361_rf_calc_rssi(void); 132 static void ad9361_rf_set_channel(struct ieee80211_hw *dev, 133 struct ieee80211_conf *conf) 134 { 135 struct openwifi_priv *priv = dev->priv; 136 u32 actual_rx_lo = conf->chandef.chan->center_freq - priv->rx_freq_offset_to_lo_MHz + priv->drv_rx_reg_val[DRV_RX_REG_IDX_EXTRA_FO]; 137 u32 actual_tx_lo; 138 bool change_flag = (actual_rx_lo != priv->actual_rx_lo); 139 int static_lbt_th, auto_lbt_th, fpga_lbt_th; 140 141 if (change_flag) { 142 priv->actual_rx_lo = actual_rx_lo; 143 144 actual_tx_lo = conf->chandef.chan->center_freq - priv->tx_freq_offset_to_lo_MHz; 145 146 clk_set_rate(priv->ad9361_phy->clks[RX_RFPLL], ( ((u64)1000000ull)*((u64)actual_rx_lo )>>1) ); 147 clk_set_rate(priv->ad9361_phy->clks[TX_RFPLL], ( ((u64)1000000ull)*((u64)actual_tx_lo )>>1) ); 148 149 if (actual_rx_lo<2412) { 150 priv->rssi_correction = 153; 151 } else if (actual_rx_lo<=2484) { 152 priv->rssi_correction = 153; 153 } else if (actual_rx_lo<5160) { 154 priv->rssi_correction = 153; 155 } else if (actual_rx_lo<=5240) { 156 priv->rssi_correction = 145; 157 } else if (actual_rx_lo<=5320) { 158 priv->rssi_correction = 148; 159 } else { 160 priv->rssi_correction = 148; 161 } 162 163 // xpu_api->XPU_REG_LBT_TH_write((priv->rssi_correction-62)<<1); // -62dBm 164 // xpu_api->XPU_REG_LBT_TH_write((priv->rssi_correction-62-16)<<1); // wei's magic value is 135, here is 134 @ ch 44 165 auto_lbt_th = ((priv->rssi_correction-62-16)<<1); 166 static_lbt_th = priv->drv_xpu_reg_val[DRV_XPU_REG_IDX_LBT_TH]; 167 fpga_lbt_th = (static_lbt_th==0?auto_lbt_th:static_lbt_th); 168 xpu_api->XPU_REG_LBT_TH_write(fpga_lbt_th); 169 170 priv->last_auto_fpga_lbt_th = auto_lbt_th; 171 172 if (actual_rx_lo < 2500) { 173 //priv->slot_time = 20; //20 is default slot time in ERP(OFDM)/11g 2.4G; short one is 9. 174 //xpu_api->XPU_REG_BAND_CHANNEL_write(BAND_2_4GHZ<<16); 175 if (priv->band != BAND_2_4GHZ) { 176 priv->band = BAND_2_4GHZ; 177 xpu_api->XPU_REG_BAND_CHANNEL_write( (priv->use_short_slot<<24)|(priv->band<<16) ); 178 } 179 // //xpu_api->XPU_REG_RECV_ACK_COUNT_TOP_write( (((45+2)*10)<<16) | 10 ); // high 16 bits to cover sig valid of ACK packet, low 16 bits is adjustment of fcs valid waiting time. let's add 2us for those device that is really "slow"! 180 // xpu_api->XPU_REG_RECV_ACK_COUNT_TOP_write( (((45+2+2)*10)<<16) | 10 );//add 2us for longer fir. BUT corrding to FPGA probing test, we do not need this 181 // xpu_api->XPU_REG_SEND_ACK_WAIT_TOP_write( 0 ); 182 // tx_intf_api->TX_INTF_REG_CTS_TOSELF_WAIT_SIFS_TOP_write(((10)*10)<<16); 183 } 184 else { 185 //priv->slot_time = 9; //default slot time of OFDM PHY (OFDM by default means 5GHz) 186 // xpu_api->XPU_REG_BAND_CHANNEL_write(BAND_5_8GHZ<<16); 187 if (priv->band != BAND_5_8GHZ) { 188 priv->band = BAND_5_8GHZ; 189 xpu_api->XPU_REG_BAND_CHANNEL_write( (priv->use_short_slot<<24)|(priv->band<<16) ); 190 } 191 // //xpu_api->XPU_REG_RECV_ACK_COUNT_TOP_write( (((51+2)*10)<<16) | 10 ); // because 5GHz needs longer SIFS (16 instead of 10), we need 58 instead of 48 for XPU low mac setting. let's add 2us for those device that is really "slow"! 192 // xpu_api->XPU_REG_RECV_ACK_COUNT_TOP_write( (((51+2+2)*10)<<16) | 10 );//add 2us for longer fir. BUT corrding to FPGA probing test, we do not need this 193 // //xpu_api->XPU_REG_SEND_ACK_WAIT_TOP_write( 60*10 ); 194 // xpu_api->XPU_REG_SEND_ACK_WAIT_TOP_write( 50*10 );// for longer fir we need this delay 1us shorter 195 // tx_intf_api->TX_INTF_REG_CTS_TOSELF_WAIT_SIFS_TOP_write(((16)*10)<<16); 196 } 197 //printk("%s ad9361_rf_set_channel %dM rssi_correction %d\n", sdr_compatible_str,conf->chandef.chan->center_freq,priv->rssi_correction); 198 // //-- use less 199 //clk_prepare_enable(priv->ad9361_phy->clks[RX_RFPLL]); 200 //printk("%s ad9361_rf_set_channel tune to %d read back %llu\n", sdr_compatible_str,conf->chandef.chan->center_freq,2*priv->ad9361_phy->state->current_rx_lo_freq); 201 //ad9361_set_trx_clock_chain_default(priv->ad9361_phy); 202 //printk("%s ad9361_rf_set_channel tune to %d read back %llu\n", sdr_compatible_str,conf->chandef.chan->center_freq,2*priv->ad9361_phy->state->current_rx_lo_freq); 203 printk("%s ad9361_rf_set_channel %dM rssi_correction %d (change flag %d) fpga_lbt_th %d (auto %d static %d)\n", sdr_compatible_str,conf->chandef.chan->center_freq,priv->rssi_correction,change_flag,fpga_lbt_th,auto_lbt_th,static_lbt_th); 204 } 205 } 206 207 const struct openwifi_rf_ops ad9361_rf_ops = { 208 .name = "ad9361", 209 // .init = ad9361_rf_init, 210 // .stop = ad9361_rf_stop, 211 .set_chan = ad9361_rf_set_channel, 212 // .calc_rssi = ad9361_rf_calc_rssi, 213 }; 214 215 u16 reverse16(u16 d) { 216 union u16_byte2 tmp0, tmp1; 217 tmp0.a = d; 218 tmp1.c[0] = tmp0.c[1]; 219 tmp1.c[1] = tmp0.c[0]; 220 return(tmp1.a); 221 } 222 223 u32 reverse32(u32 d) { 224 union u32_byte4 tmp0, tmp1; 225 tmp0.a = d; 226 tmp1.c[0] = tmp0.c[3]; 227 tmp1.c[1] = tmp0.c[2]; 228 tmp1.c[2] = tmp0.c[1]; 229 tmp1.c[3] = tmp0.c[0]; 230 return(tmp1.a); 231 } 232 233 static int openwifi_init_tx_ring(struct openwifi_priv *priv, int ring_idx) 234 { 235 struct openwifi_ring *ring = &(priv->tx_ring[ring_idx]); 236 int i; 237 238 ring->stop_flag = 0; 239 ring->bd_wr_idx = 0; 240 ring->bd_rd_idx = 0; 241 ring->queued_cnt = 0; 242 ring->bds = kmalloc(sizeof(struct openwifi_buffer_descriptor)*NUM_TX_BD,GFP_KERNEL); 243 if (ring->bds==NULL) { 244 printk("%s openwifi_init_tx_ring: WARNING Cannot allocate TX ring\n",sdr_compatible_str); 245 return -ENOMEM; 246 } 247 248 for (i = 0; i < NUM_TX_BD; i++) { 249 ring->bds[i].skb_linked=0; // for tx, skb is from upper layer 250 //at first right after skb allocated, head, data, tail are the same. 251 ring->bds[i].dma_mapping_addr = 0; // for tx, mapping is done after skb is received from upper layer in tx routine 252 ring->bds[i].aggr_flag = false; 253 ring->bds[i].seq_no = 0; 254 } 255 256 return 0; 257 } 258 259 static void openwifi_free_tx_ring(struct openwifi_priv *priv, int ring_idx) 260 { 261 struct openwifi_ring *ring = &(priv->tx_ring[ring_idx]); 262 int i; 263 264 ring->stop_flag = 0; 265 ring->bd_wr_idx = 0; 266 ring->bd_rd_idx = 0; 267 ring->queued_cnt = 0; 268 for (i = 0; i < NUM_TX_BD; i++) { 269 if (ring->bds[i].skb_linked == 0 && ring->bds[i].dma_mapping_addr == 0) 270 continue; 271 if (ring->bds[i].dma_mapping_addr != 0) 272 dma_unmap_single(priv->tx_chan->device->dev, ring->bds[i].dma_mapping_addr,ring->bds[i].skb_linked->len, DMA_MEM_TO_DEV); 273 // if (ring->bds[i].skb_linked!=NULL) 274 // dev_kfree_skb(ring->bds[i].skb_linked); // only use dev_kfree_skb when there is exception 275 if ( (ring->bds[i].dma_mapping_addr != 0 && ring->bds[i].skb_linked == 0) || 276 (ring->bds[i].dma_mapping_addr == 0 && ring->bds[i].skb_linked != 0)) 277 printk("%s openwifi_free_tx_ring: WARNING ring %d i %d skb_linked %p dma_mapping_addr %08x\n", sdr_compatible_str, 278 ring_idx, i, (void*)(ring->bds[i].skb_linked), (unsigned int)(ring->bds[i].dma_mapping_addr)); 279 280 ring->bds[i].skb_linked=0; 281 ring->bds[i].dma_mapping_addr = 0; 282 ring->bds[i].aggr_flag = false; 283 ring->bds[i].seq_no = 0; 284 } 285 if (ring->bds) 286 kfree(ring->bds); 287 ring->bds = NULL; 288 } 289 290 static int openwifi_init_rx_ring(struct openwifi_priv *priv) 291 { 292 int i; 293 u8 *pdata_tmp; 294 295 priv->rx_cyclic_buf = dma_alloc_coherent(priv->rx_chan->device->dev,RX_BD_BUF_SIZE*NUM_RX_BD,&priv->rx_cyclic_buf_dma_mapping_addr,GFP_KERNEL); 296 if (!priv->rx_cyclic_buf) { 297 printk("%s openwifi_init_rx_ring: WARNING dma_alloc_coherent failed!\n", sdr_compatible_str); 298 dma_free_coherent(priv->rx_chan->device->dev,RX_BD_BUF_SIZE*NUM_RX_BD,priv->rx_cyclic_buf,priv->rx_cyclic_buf_dma_mapping_addr); 299 return(-1); 300 } 301 302 // Set tsft_low and tsft_high to 0. If they are not zero, it means there is a packet in the buffer by DMA 303 for (i=0; i<NUM_RX_BD; i++) { 304 pdata_tmp = priv->rx_cyclic_buf + i*RX_BD_BUF_SIZE; // our header insertion is at the beginning 305 (*((u32*)(pdata_tmp+0 ))) = 0; 306 (*((u32*)(pdata_tmp+4 ))) = 0; 307 } 308 printk("%s openwifi_init_rx_ring: tsft_low and tsft_high are cleared!\n", sdr_compatible_str); 309 310 return 0; 311 } 312 313 static void openwifi_free_rx_ring(struct openwifi_priv *priv) 314 { 315 if (priv->rx_cyclic_buf) 316 dma_free_coherent(priv->rx_chan->device->dev,RX_BD_BUF_SIZE*NUM_RX_BD,priv->rx_cyclic_buf,priv->rx_cyclic_buf_dma_mapping_addr); 317 318 priv->rx_cyclic_buf_dma_mapping_addr = 0; 319 priv->rx_cyclic_buf = 0; 320 } 321 322 static int rx_dma_setup(struct ieee80211_hw *dev){ 323 struct openwifi_priv *priv = dev->priv; 324 struct dma_device *rx_dev = priv->rx_chan->device; 325 326 priv->rxd = rx_dev->device_prep_dma_cyclic(priv->rx_chan,priv->rx_cyclic_buf_dma_mapping_addr,RX_BD_BUF_SIZE*NUM_RX_BD,RX_BD_BUF_SIZE,DMA_DEV_TO_MEM,DMA_CTRL_ACK|DMA_PREP_INTERRUPT); 327 if (!(priv->rxd)) { 328 openwifi_free_rx_ring(priv); 329 printk("%s rx_dma_setup: WARNING rx_dev->device_prep_dma_cyclic %p\n", sdr_compatible_str, (void*)(priv->rxd)); 330 return(-1); 331 } 332 priv->rxd->callback = 0; 333 priv->rxd->callback_param = 0; 334 335 priv->rx_cookie = priv->rxd->tx_submit(priv->rxd); 336 337 if (dma_submit_error(priv->rx_cookie)) { 338 printk("%s rx_dma_setup: WARNING dma_submit_error(rx_cookie) %d\n", sdr_compatible_str, (u32)(priv->rx_cookie)); 339 return(-1); 340 } 341 342 dma_async_issue_pending(priv->rx_chan); 343 return(0); 344 } 345 346 static irqreturn_t openwifi_rx_interrupt(int irq, void *dev_id) 347 { 348 struct ieee80211_hw *dev = dev_id; 349 struct openwifi_priv *priv = dev->priv; 350 struct ieee80211_rx_status rx_status = {0}; 351 struct sk_buff *skb; 352 struct ieee80211_hdr *hdr; 353 u32 addr1_low32=0, addr2_low32=0, addr3_low32=0, len, rate_idx, tsft_low, tsft_high, loop_count=0;//, fc_di; 354 bool ht_flag, short_gi, ht_aggr, ht_aggr_last; 355 // u32 dma_driver_buf_idx_mod; 356 u8 *pdata_tmp, fcs_ok;//, target_buf_idx;//, phy_rx_sn_hw; 357 s8 signal; 358 u16 agc_status_and_pkt_exist_flag, rssi_val, addr1_high16=0, addr2_high16=0, addr3_high16=0, sc=0; 359 bool content_ok = false, len_overflow = false; 360 361 #ifdef USE_NEW_RX_INTERRUPT 362 int i; 363 spin_lock(&priv->lock); 364 for (i=0; i<NUM_RX_BD; i++) { 365 pdata_tmp = priv->rx_cyclic_buf + i*RX_BD_BUF_SIZE; 366 agc_status_and_pkt_exist_flag = (*((u16*)(pdata_tmp+10))); //check rx_intf_pl_to_m_axis.v. FPGA TODO: add pkt exist 1bit flag next to gpio_status_lock_by_sig_valid 367 if ( agc_status_and_pkt_exist_flag==0 ) // no packet in the buffer 368 continue; 369 #else 370 static u8 target_buf_idx_old = 0; 371 spin_lock(&priv->lock); 372 while(1) { // loop all rx buffers that have new rx packets 373 pdata_tmp = priv->rx_cyclic_buf + target_buf_idx_old*RX_BD_BUF_SIZE; // our header insertion is at the beginning 374 agc_status_and_pkt_exist_flag = (*((u16*)(pdata_tmp+10))); 375 if ( agc_status_and_pkt_exist_flag==0 ) // no packet in the buffer 376 break; 377 #endif 378 379 tsft_low = (*((u32*)(pdata_tmp+0 ))); 380 tsft_high = (*((u32*)(pdata_tmp+4 ))); 381 rssi_val = (*((u16*)(pdata_tmp+8 ))); 382 len = (*((u16*)(pdata_tmp+12))); 383 384 len_overflow = (len>(RX_BD_BUF_SIZE-16)?true:false); 385 386 rate_idx = (*((u16*)(pdata_tmp+14))); 387 ht_flag = ((rate_idx&0x10)!=0); 388 short_gi = ((rate_idx&0x20)!=0); 389 ht_aggr = (ht_flag & ((rate_idx&0x40)!=0)); 390 ht_aggr_last = (ht_flag & ((rate_idx&0x80)!=0)); 391 rate_idx = (rate_idx&0x1F); 392 393 fcs_ok = ( len_overflow?0:(*(( u8*)(pdata_tmp+16+len-1))) ); 394 395 //phy_rx_sn_hw = (fcs_ok&(NUM_RX_BD-1)); 396 // phy_rx_sn_hw = (fcs_ok&0x7f);//0x7f is FPGA limitation 397 // dma_driver_buf_idx_mod = (state.residue&0x7f); 398 fcs_ok = ((fcs_ok&0x80)!=0); 399 400 if ( (len>=14 && (!len_overflow)) && (rate_idx>=8 && rate_idx<=23)) { 401 // if ( phy_rx_sn_hw!=dma_driver_buf_idx_mod) { 402 // printk("%s openwifi_rx_interrupt: WARNING sn %d next buf_idx %d!\n", sdr_compatible_str,phy_rx_sn_hw,dma_driver_buf_idx_mod); 403 // } 404 content_ok = true; 405 } else { 406 printk("%s openwifi_rx_interrupt: WARNING content!\n", sdr_compatible_str); 407 content_ok = false; 408 } 409 410 rssi_val = (rssi_val>>1); 411 if ( (rssi_val+128)<priv->rssi_correction ) 412 signal = -128; 413 else 414 signal = rssi_val - priv->rssi_correction; 415 416 // fc_di = (*((u32*)(pdata_tmp+16))); 417 // addr1_high16 = (*((u16*)(pdata_tmp+16+4))); 418 // addr1_low32 = (*((u32*)(pdata_tmp+16+4+2))); 419 // addr2_high16 = (*((u16*)(pdata_tmp+16+6+4))); 420 // addr2_low32 = (*((u32*)(pdata_tmp+16+6+4+2))); 421 // addr3_high16 = (*((u16*)(pdata_tmp+16+12+4))); 422 // addr3_low32 = (*((u32*)(pdata_tmp+16+12+4+2))); 423 if ( (priv->drv_rx_reg_val[DRV_RX_REG_IDX_PRINT_CFG]&2) || ( (priv->drv_rx_reg_val[DRV_RX_REG_IDX_PRINT_CFG]&1) && fcs_ok==0 ) ) { 424 hdr = (struct ieee80211_hdr *)(pdata_tmp+16); 425 addr1_low32 = *((u32*)(hdr->addr1+2)); 426 addr1_high16 = *((u16*)(hdr->addr1)); 427 if (len>=20) { 428 addr2_low32 = *((u32*)(hdr->addr2+2)); 429 addr2_high16 = *((u16*)(hdr->addr2)); 430 } 431 if (len>=26) { 432 addr3_low32 = *((u32*)(hdr->addr3+2)); 433 addr3_high16 = *((u16*)(hdr->addr3)); 434 } 435 if (len>=28) 436 sc = hdr->seq_ctrl; 437 438 if ( (addr1_low32!=0xffffffff || addr1_high16!=0xffff) || (priv->drv_rx_reg_val[DRV_RX_REG_IDX_PRINT_CFG]&4) ) 439 printk("%s openwifi_rx_interrupt:%4dbytes ht%d aggr%d/%d sgi%d %3dM FC%04x DI%04x addr1/2/3:%04x%08x/%04x%08x/%04x%08x SC%04x fcs%d buf_idx%d %ddBm\n", sdr_compatible_str, 440 len, ht_flag, ht_aggr, ht_aggr_last, short_gi, wifi_rate_table[rate_idx], hdr->frame_control, hdr->duration_id, 441 reverse16(addr1_high16), reverse32(addr1_low32), reverse16(addr2_high16), reverse32(addr2_low32), reverse16(addr3_high16), reverse32(addr3_low32), 442 #ifdef USE_NEW_RX_INTERRUPT 443 sc, fcs_ok, i, signal); 444 #else 445 sc, fcs_ok, target_buf_idx_old, signal); 446 #endif 447 } 448 449 // priv->phy_rx_sn_hw_old = phy_rx_sn_hw; 450 if (content_ok) { 451 skb = dev_alloc_skb(len); 452 if (skb) { 453 skb_put_data(skb,pdata_tmp+16,len); 454 455 rx_status.antenna = 0; 456 // def in ieee80211_rate openwifi_rates 0~11. 0~3 11b(1M~11M), 4~11 11a/g(6M~54M) 457 rx_status.rate_idx = wifi_rate_table_mapping[rate_idx]; 458 rx_status.signal = signal; 459 rx_status.freq = dev->conf.chandef.chan->center_freq; 460 rx_status.band = dev->conf.chandef.chan->band; 461 rx_status.mactime = ( ( (u64)tsft_low ) | ( ((u64)tsft_high)<<32 ) ); 462 rx_status.flag |= RX_FLAG_MACTIME_START; 463 if (!fcs_ok) 464 rx_status.flag |= RX_FLAG_FAILED_FCS_CRC; 465 if (rate_idx <= 15) 466 rx_status.encoding = RX_ENC_LEGACY; 467 else 468 rx_status.encoding = RX_ENC_HT; 469 rx_status.bw = RATE_INFO_BW_20; 470 if (short_gi) 471 rx_status.enc_flags |= RX_ENC_FLAG_SHORT_GI; 472 if(ht_aggr) 473 { 474 rx_status.ampdu_reference = priv->ampdu_reference; 475 rx_status.flag |= RX_FLAG_AMPDU_DETAILS | RX_FLAG_AMPDU_LAST_KNOWN; 476 if (ht_aggr_last) 477 rx_status.flag |= RX_FLAG_AMPDU_IS_LAST; 478 } 479 480 memcpy(IEEE80211_SKB_RXCB(skb), &rx_status, sizeof(rx_status)); // put rx_status into skb->cb, from now on skb->cb is not dma_dsts any more. 481 ieee80211_rx_irqsafe(dev, skb); // call mac80211 function 482 } else 483 printk("%s openwifi_rx_interrupt: WARNING dev_alloc_skb failed!\n", sdr_compatible_str); 484 485 if(ht_aggr_last) 486 priv->ampdu_reference++; 487 } 488 (*((u16*)(pdata_tmp+10))) = 0; // clear the field (set by rx_intf_pl_to_m_axis.v) to indicate the packet has been processed 489 loop_count++; 490 #ifndef USE_NEW_RX_INTERRUPT 491 target_buf_idx_old=((target_buf_idx_old+1)&(NUM_RX_BD-1)); 492 #endif 493 } 494 495 if ( loop_count!=1 && (priv->drv_rx_reg_val[DRV_RX_REG_IDX_PRINT_CFG]&1) ) 496 printk("%s openwifi_rx_interrupt: WARNING loop_count %d\n", sdr_compatible_str,loop_count); 497 498 // openwifi_rx_interrupt_out: 499 spin_unlock(&priv->lock); 500 return IRQ_HANDLED; 501 } 502 503 static irqreturn_t openwifi_tx_interrupt(int irq, void *dev_id) 504 { 505 struct ieee80211_hw *dev = dev_id; 506 struct openwifi_priv *priv = dev->priv; 507 struct openwifi_ring *ring; 508 struct sk_buff *skb; 509 struct ieee80211_tx_info *info; 510 u32 reg_val1, reg_val2, prio, queue_idx, dma_fifo_no_room, num_slot_random, cw, loop_count=0; 511 u16 seq_no, pkt_cnt, blk_ack_ssn, start_idx; 512 u8 nof_retx=-1, last_bd_rd_idx, i; 513 u64 blk_ack_bitmap; 514 // u16 prio_rd_idx_store[64]={0}; 515 bool aggr_flag, tx_fail=false; 516 517 spin_lock(&priv->lock); 518 519 while(1) { // loop all packets that have been sent by FPGA 520 reg_val1 = tx_intf_api->TX_INTF_REG_PKT_INFO1_read(); 521 reg_val2 = tx_intf_api->TX_INTF_REG_PKT_INFO2_read(); 522 blk_ack_bitmap = (tx_intf_api->TX_INTF_REG_PKT_INFO3_read() | ((u64)tx_intf_api->TX_INTF_REG_PKT_INFO4_read())<<32); 523 524 if (reg_val1!=0xFFFFFFFF) { 525 nof_retx = (reg_val1&0xF); 526 last_bd_rd_idx = ((reg_val1>>5)&(NUM_TX_BD-1)); 527 queue_idx = ((reg_val1>>15)&(MAX_NUM_HW_QUEUE-1)); 528 prio = ((reg_val1>>17)&0x3); 529 num_slot_random = ((reg_val1>>19)&0x1FF); 530 //num_slot_random = ((0xFF80000 ®_val1)>>(2+5+NUM_BIT_MAX_PHY_TX_SN+NUM_BIT_MAX_NUM_HW_QUEUE)); 531 cw = ((reg_val1>>28)&0xF); 532 //cw = ((0xF0000000 & reg_val1) >> 28); 533 if(cw > 10) { 534 cw = 10 ; 535 num_slot_random += 512 ; 536 } 537 pkt_cnt = (reg_val2&0x3F); 538 blk_ack_ssn = ((reg_val2>>6)&0xFFF); 539 540 ring = &(priv->tx_ring[prio]); 541 // Wake up Linux queue if FPGA and driver ring have room 542 dma_fifo_no_room = tx_intf_api->TX_INTF_REG_S_AXIS_FIFO_NO_ROOM_read(); 543 544 if ( ring->stop_flag == 1 && dma_fifo_no_room < 200 && (NUM_TX_BD-ring->queued_cnt)>=RING_ROOM_THRESHOLD ) { 545 // printk("%s openwifi_tx_interrupt: WARNING ieee80211_wake_queue loop %d call %d\n", sdr_compatible_str, loop_count, priv->call_counter); 546 printk("%s openwifi_tx_interrupt: WARNING ieee80211_wake_queue prio %d queue %d no room %d queued_cnt %d wr %d rd %d\n", sdr_compatible_str, 547 prio, queue_idx, dma_fifo_no_room, ring->queued_cnt, ring->bd_wr_idx, last_bd_rd_idx); 548 ieee80211_wake_queue(dev, prio); 549 ring->stop_flag = 0; 550 } 551 552 for(i = 1; i <= pkt_cnt; i++) 553 { 554 ring->bd_rd_idx = (last_bd_rd_idx + i - pkt_cnt + 64)%64; 555 ring->queued_cnt--; 556 aggr_flag = ring->bds[ring->bd_rd_idx].aggr_flag; 557 seq_no = ring->bds[ring->bd_rd_idx].seq_no; 558 skb = ring->bds[ring->bd_rd_idx].skb_linked; 559 560 dma_unmap_single(priv->tx_chan->device->dev,ring->bds[ring->bd_rd_idx].dma_mapping_addr, 561 skb->len, DMA_MEM_TO_DEV); 562 563 if(aggr_flag) 564 { 565 skb_pull(skb, LEN_MPDU_DELIM); 566 //skb_trim(skb, num_byte_pad_skb); 567 } 568 info = IEEE80211_SKB_CB(skb); 569 ieee80211_tx_info_clear_status(info); 570 571 if ( !(info->flags & IEEE80211_TX_CTL_NO_ACK) ) { 572 if(aggr_flag) 573 { 574 start_idx = (seq_no>=blk_ack_ssn) ? (seq_no-blk_ack_ssn) : (seq_no+((~blk_ack_ssn+1)&0x0FFF)); 575 tx_fail = (((blk_ack_bitmap>>start_idx)&0x1)==0); 576 } 577 else 578 { 579 tx_fail = ((blk_ack_bitmap&0x1)==0); 580 } 581 582 if (tx_fail == false) 583 info->flags |= IEEE80211_TX_STAT_ACK; 584 585 if ((pkt_cnt > 1) && (info->flags & IEEE80211_TX_CTL_AMPDU)) 586 { 587 info->flags |= IEEE80211_TX_STAT_AMPDU; 588 info->status.ampdu_len = 1; 589 info->status.ampdu_ack_len = (tx_fail == true) ? 0 : 1; 590 } 591 else 592 { 593 info->flags &= (~IEEE80211_TX_CTL_AMPDU); 594 } 595 596 // printk("%s openwifi_tx_interrupt: rate&try: %d %d %03x; %d %d %03x; %d %d %03x; %d %d %03x\n", sdr_compatible_str, 597 // info->status.rates[0].idx,info->status.rates[0].count,info->status.rates[0].flags, 598 // info->status.rates[1].idx,info->status.rates[1].count,info->status.rates[1].flags, 599 // info->status.rates[2].idx,info->status.rates[2].count,info->status.rates[2].flags, 600 // info->status.rates[3].idx,info->status.rates[3].count,info->status.rates[3].flags); 601 } 602 603 info->status.rates[0].count = nof_retx + 1; //according to our test, the 1st rate is the most important. we only do retry on the 1st rate 604 info->status.rates[1].idx = -1; 605 info->status.rates[2].idx = -1; 606 info->status.rates[3].idx = -1;//in mac80211.h: #define IEEE80211_TX_MAX_RATES 4 607 608 if ( tx_fail && ((priv->drv_tx_reg_val[DRV_TX_REG_IDX_PRINT_CFG])&1) ) 609 printk("%s openwifi_tx_interrupt: WARNING pkt_no %d/%d tx_result [nof_retx %d pass %d] prio%d wr%d rd%d\n", sdr_compatible_str, i, pkt_cnt, nof_retx+1, !tx_fail, prio, ring->bd_wr_idx, ring->bd_rd_idx); 610 if ( ( (!(info->flags & IEEE80211_TX_CTL_NO_ACK))||(priv->drv_tx_reg_val[DRV_TX_REG_IDX_PRINT_CFG]&4) ) && ((priv->drv_tx_reg_val[DRV_TX_REG_IDX_PRINT_CFG])&2) ) 611 printk("%s openwifi_tx_interrupt: tx_result [nof_retx %d pass %d] prio%d wr%d rd%d num_rand_slot %d cw %d \n", sdr_compatible_str, nof_retx+1, !tx_fail, prio, ring->bd_wr_idx, ring->bd_rd_idx, num_slot_random, cw); 612 613 ieee80211_tx_status_irqsafe(dev, skb); 614 } 615 616 loop_count++; 617 618 // printk("%s openwifi_tx_interrupt: loop %d prio %d rd %d\n", sdr_compatible_str, loop_count, prio, ring->bd_rd_idx); 619 620 } else 621 break; 622 } 623 if ( loop_count!=1 && ((priv->drv_tx_reg_val[DRV_TX_REG_IDX_PRINT_CFG])&1) ) 624 printk("%s openwifi_tx_interrupt: WARNING loop_count %d\n", sdr_compatible_str, loop_count); 625 626 spin_unlock(&priv->lock); 627 return IRQ_HANDLED; 628 } 629 630 u32 crc_table[16] = {0x4DBDF21C, 0x500AE278, 0x76D3D2D4, 0x6B64C2B0, 0x3B61B38C, 0x26D6A3E8, 0x000F9344, 0x1DB88320, 0xA005713C, 0xBDB26158, 0x9B6B51F4, 0x86DC4190, 0xD6D930AC, 0xCB6E20C8, 0xEDB71064, 0xF0000000}; 631 u32 gen_mpdu_crc(u8 *data_in, u32 num_bytes) 632 { 633 u32 i, crc = 0; 634 u8 idx; 635 for( i = 0; i < num_bytes; i++) 636 { 637 idx = (crc & 0x0F) ^ (data_in[i] & 0x0F); 638 crc = (crc >> 4) ^ crc_table[idx]; 639 640 idx = (crc & 0x0F) ^ ((data_in[i] >> 4) & 0x0F); 641 crc = (crc >> 4) ^ crc_table[idx]; 642 } 643 644 return crc; 645 } 646 647 u8 gen_mpdu_delim_crc(u16 m) 648 { 649 u8 i, temp, c[8] = {1, 1, 1, 1, 1, 1, 1, 1}, mpdu_delim_crc; 650 651 for (i = 0; i < 16; i++) 652 { 653 temp = c[7] ^ ((m >> i) & 0x01); 654 655 c[7] = c[6]; 656 c[6] = c[5]; 657 c[5] = c[4]; 658 c[4] = c[3]; 659 c[3] = c[2]; 660 c[2] = c[1] ^ temp; 661 c[1] = c[0] ^ temp; 662 c[0] = temp; 663 } 664 mpdu_delim_crc = ((~c[7] & 0x01) << 0) | ((~c[6] & 0x01) << 1) | ((~c[5] & 0x01) << 2) | ((~c[4] & 0x01) << 3) | ((~c[3] & 0x01) << 4) | ((~c[2] & 0x01) << 5) | ((~c[1] & 0x01) << 6) | ((~c[0] & 0x01) << 7); 665 666 return mpdu_delim_crc; 667 } 668 669 static inline struct gpio_led_data * //please align with the implementation in leds-gpio.c 670 cdev_to_gpio_led_data(struct led_classdev *led_cdev) 671 { 672 return container_of(led_cdev, struct gpio_led_data, cdev); 673 } 674 675 static void openwifi_tx(struct ieee80211_hw *dev, 676 struct ieee80211_tx_control *control, 677 struct sk_buff *skb) 678 { 679 struct openwifi_priv *priv = dev->priv; 680 unsigned long flags; 681 struct ieee80211_tx_info *info = IEEE80211_SKB_CB(skb); 682 struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data; 683 struct openwifi_ring *ring = NULL; 684 dma_addr_t dma_mapping_addr; 685 unsigned int prio=0, i; 686 u32 num_dma_symbol, len_mpdu = 0, len_mpdu_delim_pad = 0, num_dma_byte, len_psdu, num_byte_pad; 687 u32 rate_signal_value,rate_hw_value=0,ack_flag; 688 u32 pkt_need_ack=0, addr1_low32=0, addr2_low32=0, addr3_low32=0, queue_idx=2, tx_config, cts_reg, phy_hdr_config;//, openofdm_state_history; 689 u16 addr1_high16=0, addr2_high16=0, addr3_high16=0, sc=0, cts_duration=0, cts_rate_hw_value=0, cts_rate_signal_value=0, sifs, ack_duration=0, traffic_pkt_duration; 690 u8 fc_flag,fc_type,fc_subtype,retry_limit_raw=0,use_short_gi=0,*dma_buf,retry_limit_hw_value,rc_flags,*qos_hdr; 691 bool use_rts_cts, use_cts_protect=false, ht_aggr_start=false, use_ht_rate=false, use_ht_aggr=false, addr_flag, cts_use_traffic_rate=false, force_use_cts_protect=false; 692 __le16 frame_control,duration_id; 693 u32 s_axis_fifo_threshold, dma_fifo_no_room; 694 enum dma_status status; 695 696 static u32 rate_hw_value_prev = -1, pkt_need_ack_prev = -1; 697 static unsigned int prio_prev = -1; 698 static u8 retry_limit_raw_prev = -1; 699 static u8 use_short_gi_prev = -1; 700 701 // static bool led_status=0; 702 // struct gpio_led_data *led_dat = cdev_to_gpio_led_data(priv->led[3]); 703 704 // if ( (priv->phy_tx_sn&7) ==0 ) { 705 // openofdm_state_history = openofdm_rx_api->OPENOFDM_RX_REG_STATE_HISTORY_read(); 706 // if (openofdm_state_history!=openofdm_state_history_old){ 707 // led_status = (~led_status); 708 // openofdm_state_history_old = openofdm_state_history; 709 // gpiod_set_value(led_dat->gpiod, led_status); 710 // } 711 // } 712 713 if (test_mode==1){ 714 printk("%s openwifi_tx: WARNING test_mode==1\n", sdr_compatible_str); 715 goto openwifi_tx_early_out; 716 } 717 718 if (skb->data_len>0) {// more data are not in linear data area skb->data 719 printk("%s openwifi_tx: WARNING skb->data_len>0\n", sdr_compatible_str); 720 goto openwifi_tx_early_out; 721 } 722 723 len_mpdu = skb->len; 724 725 // get Linux priority/queue setting info and target mac address 726 prio = skb_get_queue_mapping(skb); 727 addr1_low32 = *((u32*)(hdr->addr1+2)); 728 ring = &(priv->tx_ring[prio]); 729 730 // -------------- DO your idea here! Map Linux/SW "prio" to hardware "queue_idx" ----------- 731 if (priv->slice_idx == 0xFFFFFFFF) {// use Linux default prio setting, if there isn't any slice config 732 queue_idx = prio; 733 } else {// customized prio to queue_idx mapping 734 //if (fc_type==2 && fc_subtype==0 && (!addr_flag)) { // for unicast data packet only 735 // check current packet belonging to which slice/hw-queue 736 for (i=0; i<MAX_NUM_HW_QUEUE; i++) { 737 if ( priv->dest_mac_addr_queue_map[i] == addr1_low32 ) { 738 break; 739 } 740 } 741 //} 742 queue_idx = (i>=MAX_NUM_HW_QUEUE?2:i); // if no address is hit, use FPGA queue 2. because the queue 2 is the longest. 743 } 744 // -------------------- end of Map Linux/SW "prio" to hardware "queue_idx" ------------------ 745 // get other info from packet header 746 addr1_high16 = *((u16*)(hdr->addr1)); 747 if (len_mpdu>=20) { 748 addr2_low32 = *((u32*)(hdr->addr2+2)); 749 addr2_high16 = *((u16*)(hdr->addr2)); 750 } 751 if (len_mpdu>=26) { 752 addr3_low32 = *((u32*)(hdr->addr3+2)); 753 addr3_high16 = *((u16*)(hdr->addr3)); 754 } 755 756 duration_id = hdr->duration_id; 757 frame_control=hdr->frame_control; 758 ack_flag = (info->flags&IEEE80211_TX_CTL_NO_ACK); 759 fc_type = ((frame_control)>>2)&3; 760 fc_subtype = ((frame_control)>>4)&0xf; 761 fc_flag = ( fc_type==2 || fc_type==0 || (fc_type==1 && (fc_subtype==8 || fc_subtype==9 || fc_subtype==10) ) ); 762 //if it is broadcasting or multicasting addr 763 addr_flag = ( (addr1_low32==0 && addr1_high16==0) || 764 (addr1_low32==0xFFFFFFFF && addr1_high16==0xFFFF) || 765 (addr1_high16==0x3333) || 766 (addr1_high16==0x0001 && hdr->addr1[2]==0x5E) ); 767 if ( fc_flag && ( !addr_flag ) && (!ack_flag) ) { // unicast data frame 768 pkt_need_ack = 1; //FPGA need to wait ACK after this pkt sent 769 } else { 770 pkt_need_ack = 0; 771 } 772 773 // get Linux rate (MCS) setting 774 rate_hw_value = ieee80211_get_tx_rate(dev, info)->hw_value; 775 //rate_hw_value = 10; //4:6M, 5:9M, 6:12M, 7:18M, 8:24M, 9:36M, 10:48M, 11:54M 776 if (priv->drv_tx_reg_val[DRV_TX_REG_IDX_RATE]>0 && fc_type==2 && (!addr_flag)) //rate override command 777 rate_hw_value = priv->drv_tx_reg_val[DRV_TX_REG_IDX_RATE]; 778 779 retry_limit_raw = info->control.rates[0].count; 780 781 rc_flags = info->control.rates[0].flags; 782 use_rts_cts = ((rc_flags&IEEE80211_TX_RC_USE_RTS_CTS)!=0); 783 use_cts_protect = ((rc_flags&IEEE80211_TX_RC_USE_CTS_PROTECT)!=0); 784 use_ht_rate = ((rc_flags&IEEE80211_TX_RC_MCS)!=0); 785 use_short_gi = ((rc_flags&IEEE80211_TX_RC_SHORT_GI)!=0); 786 use_ht_aggr = ((info->flags&IEEE80211_TX_CTL_AMPDU)!=0); 787 788 if (use_rts_cts) 789 printk("%s openwifi_tx: WARNING sn %d use_rts_cts is not supported!\n", sdr_compatible_str, ring->bd_wr_idx); 790 791 if (use_cts_protect) { 792 cts_rate_hw_value = ieee80211_get_rts_cts_rate(dev, info)->hw_value; 793 cts_duration = le16_to_cpu(ieee80211_ctstoself_duration(dev,info->control.vif,len_mpdu,info)); 794 } else if (force_use_cts_protect) { // could override mac80211 setting here. 795 cts_rate_hw_value = 4; //wifi_mcs_table_11b_force_up[] translate it to 1011(6M) 796 sifs = (priv->actual_rx_lo<2500?10:16); 797 if (pkt_need_ack) 798 ack_duration = 44;//assume the ack we wait use 6Mbps: 4*ceil((22+14*8)/24) + 20(preamble+SIGNAL) 799 traffic_pkt_duration = 20 + 4*(((22+len_mpdu*8)/wifi_n_dbps_table[rate_hw_value])+1); 800 cts_duration = traffic_pkt_duration + sifs + pkt_need_ack*(sifs+ack_duration); 801 } 802 803 // this is 11b stuff 804 // if (info->flags&IEEE80211_TX_RC_USE_SHORT_PREAMBLE) 805 // printk("%s openwifi_tx: WARNING IEEE80211_TX_RC_USE_SHORT_PREAMBLE\n", sdr_compatible_str); 806 807 if (len_mpdu>=28) { 808 if (info->flags & IEEE80211_TX_CTL_ASSIGN_SEQ) { 809 if (info->flags & IEEE80211_TX_CTL_FIRST_FRAGMENT) 810 priv->seqno += 0x10; 811 hdr->seq_ctrl &= cpu_to_le16(IEEE80211_SCTL_FRAG); 812 hdr->seq_ctrl |= cpu_to_le16(priv->seqno); 813 } 814 sc = hdr->seq_ctrl; 815 } 816 817 if ( ( (!addr_flag)||(priv->drv_tx_reg_val[DRV_TX_REG_IDX_PRINT_CFG]&4) ) && (priv->drv_tx_reg_val[DRV_TX_REG_IDX_PRINT_CFG]&2) ) 818 printk("%s openwifi_tx: %4dbytes ht%d aggr%d %3dM FC%04x DI%04x addr1/2/3:%04x%08x/%04x%08x/%04x%08x SC%04x flag%08x retr%d ack%d prio%d q%d wr%d rd%d\n", sdr_compatible_str, 819 len_mpdu, (use_ht_rate == false ? 0 : 1), (use_ht_aggr == false ? 0 : 1), (use_ht_rate == false ? wifi_rate_all[rate_hw_value] : wifi_rate_all[rate_hw_value + 12]),frame_control,duration_id, 820 reverse16(addr1_high16), reverse32(addr1_low32), reverse16(addr2_high16), reverse32(addr2_low32), reverse16(addr3_high16), reverse32(addr3_low32), 821 sc, info->flags, retry_limit_raw, pkt_need_ack, prio, queue_idx, 822 // use_rts_cts,use_cts_protect|force_use_cts_protect,wifi_rate_all[cts_rate_hw_value],cts_duration, 823 ring->bd_wr_idx,ring->bd_rd_idx); 824 825 // printk("%s openwifi_tx: rate&try: %d %d %03x; %d %d %03x; %d %d %03x; %d %d %03x\n", sdr_compatible_str, 826 // info->status.rates[0].idx,info->status.rates[0].count,info->status.rates[0].flags, 827 // info->status.rates[1].idx,info->status.rates[1].count,info->status.rates[1].flags, 828 // info->status.rates[2].idx,info->status.rates[2].count,info->status.rates[2].flags, 829 // info->status.rates[3].idx,info->status.rates[3].count,info->status.rates[3].flags); 830 831 // -----------end of preprocess some info from header and skb---------------- 832 833 // /* HW will perform RTS-CTS when only RTS flags is set. 834 // * HW will perform CTS-to-self when both RTS and CTS flags are set. 835 // * RTS rate and RTS duration will be used also for CTS-to-self. 836 // */ 837 // if (rc_flags & IEEE80211_TX_RC_USE_RTS_CTS) { 838 // tx_flags |= ieee80211_get_rts_cts_rate(dev, info)->hw_value << 19; 839 // rts_duration = ieee80211_rts_duration(dev, priv->vif[0], // assume all vif have the same config 840 // len_mpdu, info); 841 // printk("%s openwifi_tx: rc_flags & IEEE80211_TX_RC_USE_RTS_CTS\n", sdr_compatible_str); 842 // } else if (rc_flags & IEEE80211_TX_RC_USE_CTS_PROTECT) { 843 // tx_flags |= ieee80211_get_rts_cts_rate(dev, info)->hw_value << 19; 844 // rts_duration = ieee80211_ctstoself_duration(dev, priv->vif[0], // assume all vif have the same config 845 // len_mpdu, info); 846 // printk("%s openwifi_tx: rc_flags & IEEE80211_TX_RC_USE_CTS_PROTECT\n", sdr_compatible_str); 847 // } 848 849 if(use_ht_aggr) 850 { 851 qos_hdr = ieee80211_get_qos_ctl(hdr); 852 if(ieee80211_is_data_qos(frame_control) == false || qos_hdr[0] != priv->tid) 853 { 854 printk("%s openwifi_tx: WARNING packet is either not qos or tid %u does not match registered tid %u\n", sdr_compatible_str, qos_hdr[0], priv->tid); 855 goto openwifi_tx_early_out; 856 } 857 858 // psdu = [ MPDU DEL | MPDU | CRC | MPDU padding ] 859 len_mpdu_delim_pad = ((len_mpdu + LEN_PHY_CRC)%4 == 0) ? 0 :(4 - (len_mpdu + LEN_PHY_CRC)%4); 860 len_psdu = LEN_MPDU_DELIM + len_mpdu + LEN_PHY_CRC + len_mpdu_delim_pad; 861 862 if( (rate_hw_value != rate_hw_value_prev) || (use_short_gi != use_short_gi_prev) || (prio != prio_prev) || (retry_limit_raw != retry_limit_raw_prev) || (pkt_need_ack != pkt_need_ack_prev) ) 863 { 864 rate_hw_value_prev = rate_hw_value; 865 use_short_gi_prev = use_short_gi; 866 prio_prev = prio; 867 retry_limit_raw_prev = retry_limit_raw; 868 pkt_need_ack_prev = pkt_need_ack; 869 870 ht_aggr_start = true; 871 } 872 } 873 else 874 { 875 // psdu = [ MPDU ] 876 len_psdu = len_mpdu; 877 878 use_short_gi_prev = -1; 879 rate_hw_value_prev = -1; 880 prio_prev = -1; 881 retry_limit_raw_prev = -1; 882 pkt_need_ack_prev = -1; 883 } 884 num_dma_symbol = (len_psdu>>TX_INTF_NUM_BYTE_PER_DMA_SYMBOL_IN_BITS) + ((len_psdu&(TX_INTF_NUM_BYTE_PER_DMA_SYMBOL-1))!=0); 885 886 // check whether the packet is bigger than DMA buffer size 887 num_dma_byte = (num_dma_symbol<<TX_INTF_NUM_BYTE_PER_DMA_SYMBOL_IN_BITS); 888 if (num_dma_byte > TX_BD_BUF_SIZE) { 889 printk("%s openwifi_tx: WARNING sn %d num_dma_byte > TX_BD_BUF_SIZE\n", sdr_compatible_str, ring->bd_wr_idx); 890 goto openwifi_tx_early_out; 891 } 892 893 // Copy MPDU delimiter and padding into sk_buff 894 if(use_ht_aggr) 895 { 896 // when skb does not have enough headroom, skb_push will cause kernel panic. headroom needs to be extended if necessary 897 if (skb_headroom(skb)<LEN_MPDU_DELIM) { 898 struct sk_buff *skb_new; // in case original skb headroom is not enough to host MPDU delimiter 899 printk("%s openwifi_tx: WARNING sn %d skb_headroom(skb)<LEN_MPDU_DELIM\n", sdr_compatible_str, ring->bd_wr_idx); 900 if ((skb_new = skb_realloc_headroom(skb, LEN_MPDU_DELIM)) == NULL) { 901 printk("%s openwifi_tx: WARNING sn %d skb_realloc_headroom failed!\n", sdr_compatible_str, ring->bd_wr_idx); 902 goto openwifi_tx_early_out; 903 } 904 if (skb->sk != NULL) 905 skb_set_owner_w(skb_new, skb->sk); 906 dev_kfree_skb(skb); 907 skb = skb_new; 908 } 909 skb_push( skb, LEN_MPDU_DELIM ); 910 dma_buf = skb->data; 911 912 // fill in MPDU delimiter 913 *((u16*)(dma_buf+0)) = ((u16)(len_mpdu+LEN_PHY_CRC) << 4) & 0xFFF0; 914 *((u8 *)(dma_buf+2)) = gen_mpdu_delim_crc(*((u16 *)dma_buf)); 915 *((u8 *)(dma_buf+3)) = 0x4e; 916 917 // Extend sk_buff to hold CRC + MPDU padding + empty MPDU delimiter 918 num_byte_pad = num_dma_byte - (LEN_MPDU_DELIM + len_mpdu); 919 if (skb_tailroom(skb)<num_byte_pad) { 920 printk("%s openwifi_tx: WARNING sn %d skb_tailroom(skb)<num_byte_pad!\n", sdr_compatible_str, ring->bd_wr_idx); 921 goto openwifi_tx_early_out; 922 } 923 skb_put( skb, num_byte_pad ); 924 925 // fill in MPDU CRC 926 *((u32*)(dma_buf+LEN_MPDU_DELIM+len_mpdu)) = gen_mpdu_crc(dma_buf+LEN_MPDU_DELIM, len_mpdu); 927 928 // fill in MPDU delimiter padding 929 memset(dma_buf+LEN_MPDU_DELIM+len_mpdu+LEN_PHY_CRC, 0, len_mpdu_delim_pad); 930 931 // num_dma_byte is on 8-byte boundary and len_psdu is on 4 byte boundary. 932 // If they have different lengths, add "empty MPDU delimiter" for alignment 933 if(num_dma_byte == len_psdu + 4) 934 { 935 *((u32*)(dma_buf+len_psdu)) = 0x4e140000; 936 len_psdu = num_dma_byte; 937 } 938 } 939 else 940 { 941 // Extend sk_buff to hold padding 942 num_byte_pad = num_dma_byte - len_mpdu; 943 if (skb_tailroom(skb)<num_byte_pad) { 944 printk("%s openwifi_tx: WARNING sn %d skb_tailroom(skb)<num_byte_pad!\n", sdr_compatible_str, ring->bd_wr_idx); 945 goto openwifi_tx_early_out; 946 } 947 skb_put( skb, num_byte_pad ); 948 949 dma_buf = skb->data; 950 } 951 // for(i = 0; i <= num_dma_symbol; i++) 952 // printk("%16llx\n", (*(u64*)(&(dma_buf[i*8])))); 953 954 rate_signal_value = (use_ht_rate ? rate_hw_value : wifi_mcs_table_11b_force_up[rate_hw_value]); 955 956 retry_limit_hw_value = ( retry_limit_raw==0?0:((retry_limit_raw - 1)&0xF) ); 957 958 cts_rate_signal_value = wifi_mcs_table_11b_force_up[cts_rate_hw_value]; 959 cts_reg = ((use_cts_protect|force_use_cts_protect)<<31 | cts_use_traffic_rate<<30 | cts_duration<<8 | cts_rate_signal_value<<4 | rate_signal_value); 960 tx_config = ( prio<<26 | ring->bd_wr_idx<<20 | queue_idx<<18 | retry_limit_hw_value<<14 | pkt_need_ack<<13 | (len_mpdu+LEN_PHY_CRC) ); 961 phy_hdr_config = ( ht_aggr_start<<20 | rate_hw_value<<16 | use_ht_rate<<15 | use_short_gi<<14 | use_ht_aggr<<13 | len_psdu ); 962 963 /* We must be sure that tx_flags is written last because the HW 964 * looks at it to check if the rest of data is valid or not 965 */ 966 //wmb(); 967 // entry->flags = cpu_to_le32(tx_flags); 968 /* We must be sure this has been written before following HW 969 * register write, because this write will make the HW attempts 970 * to DMA the just-written data 971 */ 972 //wmb(); 973 974 spin_lock_irqsave(&priv->lock, flags); // from now on, we'd better avoid interrupt because ring->stop_flag is shared with interrupt 975 976 // -------------check whether FPGA dma fifo and queue (queue_idx) has enough room------------- 977 s_axis_fifo_threshold = (priv->fpga_type == LARGE_FPGA) ? (8192-200) : (4096-200); // MAX_NUM_DMA_SYMBOL: LARGE_FPGA = 8192 and SMALL_FPGA = 4096 978 dma_fifo_no_room = tx_intf_api->TX_INTF_REG_S_AXIS_FIFO_NO_ROOM_read(); 979 if ( (dma_fifo_no_room > s_axis_fifo_threshold) || ((NUM_TX_BD-ring->queued_cnt)<RING_ROOM_THRESHOLD) || ring->stop_flag==1 ) { 980 ieee80211_stop_queue(dev, prio); // here we should stop those prio related to the queue idx flag set in TX_INTF_REG_S_AXIS_FIFO_NO_ROOM_read 981 // printk("%s openwifi_tx: WARNING ieee80211_stop_queue prio %d queue %d no room %d queued_cnt %d request %d wr %d rd %d\n", sdr_compatible_str, 982 // prio, queue_idx, dma_fifo_no_room, ring->queued_cnt, num_dma_symbol, ring->bd_wr_idx, ring->bd_rd_idx); 983 ring->stop_flag = 1; 984 //goto openwifi_tx_early_out_after_lock; 985 } 986 // --------end of check whether FPGA fifo (queue_idx) has enough room------------ 987 988 status = dma_async_is_tx_complete(priv->tx_chan, priv->tx_cookie, NULL, NULL); 989 if (status!=DMA_COMPLETE) { 990 printk("%s openwifi_tx: WARNING status!=DMA_COMPLETE\n", sdr_compatible_str); 991 goto openwifi_tx_early_out_after_lock; 992 } 993 994 //-------------------------fire skb DMA to hardware---------------------------------- 995 dma_mapping_addr = dma_map_single(priv->tx_chan->device->dev, dma_buf, 996 num_dma_byte, DMA_MEM_TO_DEV); 997 998 if (dma_mapping_error(priv->tx_chan->device->dev,dma_mapping_addr)) { 999 // dev_err(priv->tx_chan->device->dev, "sdr,sdr openwifi_tx: WARNING TX DMA mapping error\n"); 1000 printk("%s openwifi_tx: WARNING sn %d TX DMA mapping error\n", sdr_compatible_str, ring->bd_wr_idx); 1001 goto openwifi_tx_early_out_after_lock; 1002 } 1003 1004 sg_init_table(&(priv->tx_sg), 1); // only need to be initialized once in openwifi_start 1005 sg_dma_address( &(priv->tx_sg) ) = dma_mapping_addr; 1006 sg_dma_len( &(priv->tx_sg) ) = num_dma_byte; 1007 1008 tx_intf_api->TX_INTF_REG_CTS_TOSELF_CONFIG_write(cts_reg); 1009 tx_intf_api->TX_INTF_REG_TX_CONFIG_write(tx_config); 1010 tx_intf_api->TX_INTF_REG_PHY_HDR_CONFIG_write(phy_hdr_config); 1011 priv->txd = priv->tx_chan->device->device_prep_slave_sg(priv->tx_chan, &(priv->tx_sg),1,DMA_MEM_TO_DEV, DMA_CTRL_ACK | DMA_PREP_INTERRUPT, NULL); 1012 if (!(priv->txd)) { 1013 printk("%s openwifi_tx: WARNING sn %d device_prep_slave_sg %p\n", sdr_compatible_str, ring->bd_wr_idx, (void*)(priv->txd)); 1014 goto openwifi_tx_after_dma_mapping; 1015 } 1016 1017 priv->tx_cookie = priv->txd->tx_submit(priv->txd); 1018 1019 if (dma_submit_error(priv->tx_cookie)) { 1020 printk("%s openwifi_tx: WARNING sn %d dma_submit_error(tx_cookie) %d\n", sdr_compatible_str, ring->bd_wr_idx, (u32)(priv->tx_cookie)); 1021 goto openwifi_tx_after_dma_mapping; 1022 } 1023 1024 // seems everything is ok. let's mark this pkt in bd descriptor ring 1025 ring->bds[ring->bd_wr_idx].aggr_flag = use_ht_aggr; 1026 ring->bds[ring->bd_wr_idx].seq_no = (sc&IEEE80211_SCTL_SEQ)>>4; 1027 ring->bds[ring->bd_wr_idx].skb_linked = skb; 1028 ring->bds[ring->bd_wr_idx].dma_mapping_addr = dma_mapping_addr; 1029 1030 ring->bd_wr_idx = ((ring->bd_wr_idx+1)&(NUM_TX_BD-1)); 1031 ring->queued_cnt++; 1032 1033 dma_async_issue_pending(priv->tx_chan); 1034 1035 spin_unlock_irqrestore(&priv->lock, flags); 1036 1037 return; 1038 1039 openwifi_tx_after_dma_mapping: 1040 dma_unmap_single(priv->tx_chan->device->dev, dma_mapping_addr, num_dma_byte, DMA_MEM_TO_DEV); 1041 1042 openwifi_tx_early_out_after_lock: 1043 dev_kfree_skb(skb); 1044 spin_unlock_irqrestore(&priv->lock, flags); 1045 // printk("%s openwifi_tx: WARNING openwifi_tx_after_dma_mapping phy_tx_sn %d queue %d\n", sdr_compatible_str,priv->phy_tx_sn,queue_idx); 1046 return; 1047 1048 openwifi_tx_early_out: 1049 dev_kfree_skb(skb); 1050 // printk("%s openwifi_tx: WARNING openwifi_tx_early_out phy_tx_sn %d queue %d\n", sdr_compatible_str,priv->phy_tx_sn,queue_idx); 1051 } 1052 1053 static int openwifi_start(struct ieee80211_hw *dev) 1054 { 1055 struct openwifi_priv *priv = dev->priv; 1056 int ret, i, rssi_half_db_offset, agc_gain_delay;//rssi_half_db_th, 1057 u32 reg; 1058 1059 for (i=0; i<MAX_NUM_VIF; i++) { 1060 priv->vif[i] = NULL; 1061 } 1062 1063 memset(priv->drv_tx_reg_val, 0, sizeof(priv->drv_tx_reg_val)); 1064 memset(priv->drv_rx_reg_val, 0, sizeof(priv->drv_rx_reg_val)); 1065 memset(priv->drv_xpu_reg_val, 0, sizeof(priv->drv_xpu_reg_val)); 1066 priv->drv_xpu_reg_val[DRV_XPU_REG_IDX_GIT_REV] = GIT_REV; 1067 1068 //turn on radio 1069 if (priv->tx_intf_cfg == TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT1) { 1070 ad9361_set_tx_atten(priv->ad9361_phy, AD9361_RADIO_ON_TX_ATT, false, true, true); // AD9361_RADIO_ON_TX_ATT 3000 means 3dB, 0 means 0dB 1071 reg = ad9361_get_tx_atten(priv->ad9361_phy, 2); 1072 } else { 1073 ad9361_set_tx_atten(priv->ad9361_phy, AD9361_RADIO_ON_TX_ATT, true, false, true); // AD9361_RADIO_ON_TX_ATT 3000 means 3dB, 0 means 0dB 1074 reg = ad9361_get_tx_atten(priv->ad9361_phy, 1); 1075 } 1076 if (reg == AD9361_RADIO_ON_TX_ATT) { 1077 priv->rfkill_off = 1;// 0 off, 1 on 1078 printk("%s openwifi_start: rfkill radio on\n",sdr_compatible_str); 1079 } 1080 else 1081 printk("%s openwifi_start: WARNING rfkill radio on failed. tx att read %d require %d\n",sdr_compatible_str, reg, AD9361_RADIO_ON_TX_ATT); 1082 1083 if (priv->rx_intf_cfg == RX_INTF_BW_20MHZ_AT_0MHZ_ANT0) 1084 priv->ctrl_out.index=0x16; 1085 else 1086 priv->ctrl_out.index=0x17; 1087 1088 ret = ad9361_ctrl_outs_setup(priv->ad9361_phy, &(priv->ctrl_out)); 1089 if (ret < 0) { 1090 printk("%s openwifi_start: WARNING ad9361_ctrl_outs_setup %d\n",sdr_compatible_str, ret); 1091 } else { 1092 printk("%s openwifi_start: ad9361_ctrl_outs_setup en_mask 0x%02x index 0x%02x\n",sdr_compatible_str, priv->ctrl_out.en_mask, priv->ctrl_out.index); 1093 } 1094 1095 priv->rx_freq_offset_to_lo_MHz = rx_intf_fo_mapping[priv->rx_intf_cfg]; 1096 priv->tx_freq_offset_to_lo_MHz = tx_intf_fo_mapping[priv->tx_intf_cfg]; 1097 1098 rx_intf_api->hw_init(priv->rx_intf_cfg,8,8); 1099 tx_intf_api->hw_init(priv->tx_intf_cfg,8,8); 1100 openofdm_tx_api->hw_init(priv->openofdm_tx_cfg); 1101 openofdm_rx_api->hw_init(priv->openofdm_rx_cfg); 1102 xpu_api->hw_init(priv->xpu_cfg); 1103 1104 agc_gain_delay = 50; //samples 1105 rssi_half_db_offset = 150; // to be consistent 1106 xpu_api->XPU_REG_RSSI_DB_CFG_write(0x80000000|((rssi_half_db_offset<<16)|agc_gain_delay) ); 1107 xpu_api->XPU_REG_RSSI_DB_CFG_write((~0x80000000)&((rssi_half_db_offset<<16)|agc_gain_delay) ); 1108 1109 openofdm_rx_api->OPENOFDM_RX_REG_POWER_THRES_write(0); 1110 // rssi_half_db_th = 87<<1; // -62dBm // will setup in runtime in _rf_set_channel 1111 // xpu_api->XPU_REG_LBT_TH_write(rssi_half_db_th); // set IQ rssi th step .5dB to xxx and enable it 1112 xpu_api->XPU_REG_FORCE_IDLE_MISC_write(75); //control the duration to force ch_idle after decoding a packet due to imperfection of agc and signals 1113 1114 //xpu_api->XPU_REG_SEND_ACK_WAIT_TOP_write( ((40)<<16)|0 );//high 16bit 5GHz; low 16 bit 2.4GHz (Attention, current tx core has around 1.19us starting delay that makes the ack fall behind 10us SIFS in 2.4GHz! Need to improve TX in 2.4GHz!) 1115 //xpu_api->XPU_REG_SEND_ACK_WAIT_TOP_write( ((51)<<16)|0 );//now our tx send out I/Q immediately 1116 xpu_api->XPU_REG_SEND_ACK_WAIT_TOP_write( ((51+23)<<16)|(0+23) );//we have more time when we use FIR in AD9361 1117 1118 xpu_api->XPU_REG_RECV_ACK_COUNT_TOP0_write( (1<<31) | (((45+2+2)*10 + 15)<<16) | 10 );//2.4GHz. extra 300 clocks are needed when rx core fall into fake ht detection phase (rx mcs 6M) 1119 xpu_api->XPU_REG_RECV_ACK_COUNT_TOP1_write( (1<<31) | (((51+2+2)*10 + 15)<<16) | 10 );//5GHz. extra 300 clocks are needed when rx core fall into fake ht detection phase (rx mcs 6M) 1120 1121 tx_intf_api->TX_INTF_REG_CTS_TOSELF_WAIT_SIFS_TOP_write( ((16*10)<<16)|(10*10) );//high 16bit 5GHz; low 16 bit 2.4GHz. counter speed 10MHz is assumed 1122 1123 // //xpu_api->XPU_REG_BB_RF_DELAY_write(51); // fine tuned value at 0.005us. old: dac-->ant port: 0.6us, 57 taps fir at 40MHz: 1.425us; round trip: 2*(0.6+1.425)=4.05us; 4.05*10=41 1124 // xpu_api->XPU_REG_BB_RF_DELAY_write(47);//add .5us for slightly longer fir -- already in xpu.c 1125 xpu_api->XPU_REG_MAC_ADDR_write(priv->mac_addr); 1126 1127 // setup time schedule of 4 slices 1128 // slice 0 1129 xpu_api->XPU_REG_SLICE_COUNT_TOTAL_write(50000-1); // total 50ms 1130 xpu_api->XPU_REG_SLICE_COUNT_START_write(0); //start 0ms 1131 xpu_api->XPU_REG_SLICE_COUNT_END_write(50000-1); //end 50ms 1132 1133 // slice 1 1134 xpu_api->XPU_REG_SLICE_COUNT_TOTAL_write((1<<20)|(50000-1)); // total 50ms 1135 xpu_api->XPU_REG_SLICE_COUNT_START_write((1<<20)|(0)); //start 0ms 1136 //xpu_api->XPU_REG_SLICE_COUNT_END_write((1<<20)|(20000-1)); //end 20ms 1137 xpu_api->XPU_REG_SLICE_COUNT_END_write((1<<20)|(50000-1)); //end 20ms 1138 1139 // slice 2 1140 xpu_api->XPU_REG_SLICE_COUNT_TOTAL_write((2<<20)|(50000-1)); // total 50ms 1141 //xpu_api->XPU_REG_SLICE_COUNT_START_write((2<<20)|(20000)); //start 20ms 1142 xpu_api->XPU_REG_SLICE_COUNT_START_write((2<<20)|(0)); //start 20ms 1143 //xpu_api->XPU_REG_SLICE_COUNT_END_write((2<<20)|(40000-1)); //end 20ms 1144 xpu_api->XPU_REG_SLICE_COUNT_END_write((2<<20)|(50000-1)); //end 20ms 1145 1146 // slice 3 1147 xpu_api->XPU_REG_SLICE_COUNT_TOTAL_write((3<<20)|(50000-1)); // total 50ms 1148 //xpu_api->XPU_REG_SLICE_COUNT_START_write((3<<20)|(40000)); //start 40ms 1149 xpu_api->XPU_REG_SLICE_COUNT_START_write((3<<20)|(0)); //start 40ms 1150 //xpu_api->XPU_REG_SLICE_COUNT_END_write((3<<20)|(50000-1)); //end 20ms 1151 xpu_api->XPU_REG_SLICE_COUNT_END_write((3<<20)|(50000-1)); //end 20ms 1152 1153 // all slice sync rest 1154 xpu_api->XPU_REG_MULTI_RST_write(1<<7); //bit7 reset the counter for all queues at the same time 1155 xpu_api->XPU_REG_MULTI_RST_write(0<<7); 1156 1157 //xpu_api->XPU_REG_MAC_ADDR_HIGH_write( (*( (u16*)(priv->mac_addr + 4) )) ); 1158 printk("%s openwifi_start: rx_intf_cfg %d openofdm_rx_cfg %d tx_intf_cfg %d openofdm_tx_cfg %d\n",sdr_compatible_str, priv->rx_intf_cfg, priv->openofdm_rx_cfg, priv->tx_intf_cfg, priv->openofdm_tx_cfg); 1159 printk("%s openwifi_start: rx_freq_offset_to_lo_MHz %d tx_freq_offset_to_lo_MHz %d\n",sdr_compatible_str, priv->rx_freq_offset_to_lo_MHz, priv->tx_freq_offset_to_lo_MHz); 1160 1161 tx_intf_api->TX_INTF_REG_INTERRUPT_SEL_write(0x30004); //disable tx interrupt 1162 rx_intf_api->RX_INTF_REG_INTERRUPT_TEST_write(0x100); // disable rx interrupt by interrupt test mode 1163 rx_intf_api->RX_INTF_REG_M_AXIS_RST_write(1); // hold M AXIS in reset status 1164 1165 if (test_mode==1) { 1166 printk("%s openwifi_start: test_mode==1\n",sdr_compatible_str); 1167 goto normal_out; 1168 } 1169 1170 priv->rx_chan = dma_request_slave_channel(&(priv->pdev->dev), "rx_dma_s2mm"); 1171 if (IS_ERR(priv->rx_chan) || priv->rx_chan==NULL) { 1172 ret = PTR_ERR(priv->rx_chan); 1173 pr_err("%s openwifi_start: No Rx channel ret %d priv->rx_chan 0x%p\n",sdr_compatible_str, ret, priv->rx_chan); 1174 goto err_dma; 1175 } 1176 1177 priv->tx_chan = dma_request_slave_channel(&(priv->pdev->dev), "tx_dma_mm2s"); 1178 if (IS_ERR(priv->tx_chan) || priv->tx_chan==NULL) { 1179 ret = PTR_ERR(priv->tx_chan); 1180 pr_err("%s openwifi_start: No Tx channel ret %d priv->tx_chan 0x%p\n",sdr_compatible_str, ret, priv->tx_chan); 1181 goto err_dma; 1182 } 1183 printk("%s openwifi_start: DMA channel setup successfully. priv->rx_chan 0x%p priv->tx_chan 0x%p\n",sdr_compatible_str, priv->rx_chan, priv->tx_chan); 1184 1185 ret = openwifi_init_rx_ring(priv); 1186 if (ret) { 1187 printk("%s openwifi_start: openwifi_init_rx_ring ret %d\n", sdr_compatible_str,ret); 1188 goto err_free_rings; 1189 } 1190 1191 priv->seqno=0; 1192 for (i=0; i<MAX_NUM_SW_QUEUE; i++) { 1193 if ((ret = openwifi_init_tx_ring(priv, i))) { 1194 printk("%s openwifi_start: openwifi_init_tx_ring %d ret %d\n", sdr_compatible_str, i, ret); 1195 goto err_free_rings; 1196 } 1197 } 1198 1199 if ( (ret = rx_dma_setup(dev)) ) { 1200 printk("%s openwifi_start: rx_dma_setup ret %d\n", sdr_compatible_str,ret); 1201 goto err_free_rings; 1202 } 1203 1204 priv->irq_rx = irq_of_parse_and_map(priv->pdev->dev.of_node, 1); 1205 ret = request_irq(priv->irq_rx, openwifi_rx_interrupt, 1206 IRQF_SHARED, "sdr,rx_pkt_intr", dev); 1207 if (ret) { 1208 wiphy_err(dev->wiphy, "openwifi_start:failed to register IRQ handler openwifi_rx_interrupt\n"); 1209 goto err_free_rings; 1210 } else { 1211 printk("%s openwifi_start: irq_rx %d\n", sdr_compatible_str, priv->irq_rx); 1212 } 1213 1214 priv->irq_tx = irq_of_parse_and_map(priv->pdev->dev.of_node, 3); 1215 ret = request_irq(priv->irq_tx, openwifi_tx_interrupt, 1216 IRQF_SHARED, "sdr,tx_itrpt", dev); 1217 if (ret) { 1218 wiphy_err(dev->wiphy, "openwifi_start: failed to register IRQ handler openwifi_tx_interrupt\n"); 1219 goto err_free_rings; 1220 } else { 1221 printk("%s openwifi_start: irq_tx %d\n", sdr_compatible_str, priv->irq_tx); 1222 } 1223 1224 rx_intf_api->RX_INTF_REG_INTERRUPT_TEST_write(0x000); // enable rx interrupt get normal fcs valid pass through ddc to ARM 1225 tx_intf_api->TX_INTF_REG_INTERRUPT_SEL_write(0x4); //enable tx interrupt 1226 rx_intf_api->RX_INTF_REG_M_AXIS_RST_write(0); // release M AXIS 1227 xpu_api->XPU_REG_TSF_LOAD_VAL_write(0,0); // reset tsf timer 1228 1229 //ieee80211_wake_queue(dev, 0); 1230 1231 normal_out: 1232 printk("%s openwifi_start: normal end\n", sdr_compatible_str); 1233 return 0; 1234 1235 err_free_rings: 1236 openwifi_free_rx_ring(priv); 1237 for (i=0; i<MAX_NUM_SW_QUEUE; i++) 1238 openwifi_free_tx_ring(priv, i); 1239 1240 err_dma: 1241 ret = -1; 1242 printk("%s openwifi_start: abnormal end ret %d\n", sdr_compatible_str, ret); 1243 return ret; 1244 } 1245 1246 static void openwifi_stop(struct ieee80211_hw *dev) 1247 { 1248 struct openwifi_priv *priv = dev->priv; 1249 u32 reg, reg1; 1250 int i; 1251 1252 if (test_mode==1){ 1253 pr_info("%s openwifi_stop: test_mode==1\n", sdr_compatible_str); 1254 goto normal_out; 1255 } 1256 1257 //turn off radio 1258 #if 1 1259 ad9361_tx_mute(priv->ad9361_phy, 1); 1260 reg = ad9361_get_tx_atten(priv->ad9361_phy, 2); 1261 reg1 = ad9361_get_tx_atten(priv->ad9361_phy, 1); 1262 if (reg == AD9361_RADIO_OFF_TX_ATT && reg1 == AD9361_RADIO_OFF_TX_ATT ) { 1263 priv->rfkill_off = 0;// 0 off, 1 on 1264 printk("%s openwifi_stop: rfkill radio off\n",sdr_compatible_str); 1265 } 1266 else 1267 printk("%s openwifi_stop: WARNING rfkill radio off failed. tx att read %d %d require %d\n",sdr_compatible_str, reg, reg1, AD9361_RADIO_OFF_TX_ATT); 1268 #endif 1269 1270 //ieee80211_stop_queue(dev, 0); 1271 1272 tx_intf_api->TX_INTF_REG_INTERRUPT_SEL_write(0x30004); //disable tx interrupt 1273 rx_intf_api->RX_INTF_REG_INTERRUPT_TEST_write(0x100); // disable fcs_valid by interrupt test mode 1274 rx_intf_api->RX_INTF_REG_M_AXIS_RST_write(1); // hold M AXIS in reset status 1275 1276 for (i=0; i<MAX_NUM_VIF; i++) { 1277 priv->vif[i] = NULL; 1278 } 1279 1280 openwifi_free_rx_ring(priv); 1281 for (i=0; i<MAX_NUM_SW_QUEUE; i++) 1282 openwifi_free_tx_ring(priv, i); 1283 1284 pr_info("%s openwifi_stop: dropped channel %s\n", sdr_compatible_str, dma_chan_name(priv->rx_chan)); 1285 dmaengine_terminate_all(priv->rx_chan); 1286 dma_release_channel(priv->rx_chan); 1287 pr_info("%s openwifi_stop: dropped channel %s\n", sdr_compatible_str, dma_chan_name(priv->tx_chan)); 1288 dmaengine_terminate_all(priv->tx_chan); 1289 dma_release_channel(priv->tx_chan); 1290 1291 //priv->rf->stop(dev); 1292 1293 free_irq(priv->irq_rx, dev); 1294 free_irq(priv->irq_tx, dev); 1295 1296 normal_out: 1297 printk("%s openwifi_stop\n", sdr_compatible_str); 1298 } 1299 1300 static u64 openwifi_get_tsf(struct ieee80211_hw *dev, 1301 struct ieee80211_vif *vif) 1302 { 1303 u32 tsft_low, tsft_high; 1304 1305 tsft_low = xpu_api->XPU_REG_TSF_RUNTIME_VAL_LOW_read(); 1306 tsft_high = xpu_api->XPU_REG_TSF_RUNTIME_VAL_HIGH_read(); 1307 //printk("%s openwifi_get_tsf: %08x%08x\n", sdr_compatible_str,tsft_high,tsft_low); 1308 return( ( (u64)tsft_low ) | ( ((u64)tsft_high)<<32 ) ); 1309 } 1310 1311 static void openwifi_set_tsf(struct ieee80211_hw *hw, struct ieee80211_vif *vif, u64 tsf) 1312 { 1313 u32 tsft_high = ((tsf >> 32)&0xffffffff); 1314 u32 tsft_low = (tsf&0xffffffff); 1315 xpu_api->XPU_REG_TSF_LOAD_VAL_write(tsft_high,tsft_low); 1316 printk("%s openwifi_set_tsf: %08x%08x\n", sdr_compatible_str,tsft_high,tsft_low); 1317 } 1318 1319 static void openwifi_reset_tsf(struct ieee80211_hw *hw, struct ieee80211_vif *vif) 1320 { 1321 xpu_api->XPU_REG_TSF_LOAD_VAL_write(0,0); 1322 printk("%s openwifi_reset_tsf\n", sdr_compatible_str); 1323 } 1324 1325 static int openwifi_set_rts_threshold(struct ieee80211_hw *hw, u32 value) 1326 { 1327 printk("%s openwifi_set_rts_threshold WARNING value %d\n", sdr_compatible_str,value); 1328 return(0); 1329 } 1330 1331 static void openwifi_beacon_work(struct work_struct *work) 1332 { 1333 struct openwifi_vif *vif_priv = 1334 container_of(work, struct openwifi_vif, beacon_work.work); 1335 struct ieee80211_vif *vif = 1336 container_of((void *)vif_priv, struct ieee80211_vif, drv_priv); 1337 struct ieee80211_hw *dev = vif_priv->dev; 1338 struct ieee80211_mgmt *mgmt; 1339 struct sk_buff *skb; 1340 1341 /* don't overflow the tx ring */ 1342 if (ieee80211_queue_stopped(dev, 0)) 1343 goto resched; 1344 1345 /* grab a fresh beacon */ 1346 skb = ieee80211_beacon_get(dev, vif); 1347 if (!skb) 1348 goto resched; 1349 1350 /* 1351 * update beacon timestamp w/ TSF value 1352 * TODO: make hardware update beacon timestamp 1353 */ 1354 mgmt = (struct ieee80211_mgmt *)skb->data; 1355 mgmt->u.beacon.timestamp = cpu_to_le64(openwifi_get_tsf(dev, vif)); 1356 1357 /* TODO: use actual beacon queue */ 1358 skb_set_queue_mapping(skb, 0); 1359 openwifi_tx(dev, NULL, skb); 1360 1361 resched: 1362 /* 1363 * schedule next beacon 1364 * TODO: use hardware support for beacon timing 1365 */ 1366 schedule_delayed_work(&vif_priv->beacon_work, 1367 usecs_to_jiffies(1024 * vif->bss_conf.beacon_int)); 1368 } 1369 1370 static int openwifi_add_interface(struct ieee80211_hw *dev, 1371 struct ieee80211_vif *vif) 1372 { 1373 int i; 1374 struct openwifi_priv *priv = dev->priv; 1375 struct openwifi_vif *vif_priv; 1376 1377 switch (vif->type) { 1378 case NL80211_IFTYPE_AP: 1379 case NL80211_IFTYPE_STATION: 1380 case NL80211_IFTYPE_ADHOC: 1381 case NL80211_IFTYPE_MONITOR: 1382 case NL80211_IFTYPE_MESH_POINT: 1383 break; 1384 default: 1385 return -EOPNOTSUPP; 1386 } 1387 // let's support more than 1 interface 1388 for (i=0; i<MAX_NUM_VIF; i++) { 1389 if (priv->vif[i] == NULL) 1390 break; 1391 } 1392 1393 printk("%s openwifi_add_interface start. vif for loop result %d\n", sdr_compatible_str, i); 1394 1395 if (i==MAX_NUM_VIF) 1396 return -EBUSY; 1397 1398 priv->vif[i] = vif; 1399 1400 /* Initialize driver private area */ 1401 vif_priv = (struct openwifi_vif *)&vif->drv_priv; 1402 vif_priv->idx = i; 1403 1404 vif_priv->dev = dev; 1405 INIT_DELAYED_WORK(&vif_priv->beacon_work, openwifi_beacon_work); 1406 vif_priv->enable_beacon = false; 1407 1408 printk("%s openwifi_add_interface end with vif idx %d\n", sdr_compatible_str,vif_priv->idx); 1409 1410 return 0; 1411 } 1412 1413 static void openwifi_remove_interface(struct ieee80211_hw *dev, 1414 struct ieee80211_vif *vif) 1415 { 1416 struct openwifi_vif *vif_priv; 1417 struct openwifi_priv *priv = dev->priv; 1418 1419 vif_priv = (struct openwifi_vif *)&vif->drv_priv; 1420 priv->vif[vif_priv->idx] = NULL; 1421 printk("%s openwifi_remove_interface vif idx %d\n", sdr_compatible_str, vif_priv->idx); 1422 } 1423 1424 static int openwifi_config(struct ieee80211_hw *dev, u32 changed) 1425 { 1426 struct openwifi_priv *priv = dev->priv; 1427 struct ieee80211_conf *conf = &dev->conf; 1428 1429 if (changed & IEEE80211_CONF_CHANGE_CHANNEL) 1430 priv->rf->set_chan(dev, conf); 1431 else 1432 printk("%s openwifi_config changed flag %08x\n", sdr_compatible_str, changed); 1433 1434 return 0; 1435 } 1436 1437 static void openwifi_bss_info_changed(struct ieee80211_hw *dev, 1438 struct ieee80211_vif *vif, 1439 struct ieee80211_bss_conf *info, 1440 u32 changed) 1441 { 1442 struct openwifi_priv *priv = dev->priv; 1443 struct openwifi_vif *vif_priv; 1444 u32 bssid_low, bssid_high; 1445 1446 vif_priv = (struct openwifi_vif *)&vif->drv_priv; 1447 1448 //be careful: we don have valid chip, so registers addresses in priv->map->BSSID[0] are not valid! should not print it! 1449 //printk("%s openwifi_bss_info_changed map bssid %02x%02x%02x%02x%02x%02x\n",sdr_compatible_str,priv->map->BSSID[0],priv->map->BSSID[1],priv->map->BSSID[2],priv->map->BSSID[3],priv->map->BSSID[4],priv->map->BSSID[5]); 1450 if (changed & BSS_CHANGED_BSSID) { 1451 printk("%s openwifi_bss_info_changed BSS_CHANGED_BSSID %02x%02x%02x%02x%02x%02x\n",sdr_compatible_str,info->bssid[0],info->bssid[1],info->bssid[2],info->bssid[3],info->bssid[4],info->bssid[5]); 1452 // write new bssid to our HW, and do not change bssid filter 1453 //u32 bssid_filter_high = xpu_api->XPU_REG_BSSID_FILTER_HIGH_read(); 1454 bssid_low = ( *( (u32*)(info->bssid) ) ); 1455 bssid_high = ( *( (u16*)(info->bssid+4) ) ); 1456 1457 //bssid_filter_high = (bssid_filter_high&0x80000000); 1458 //bssid_high = (bssid_high|bssid_filter_high); 1459 xpu_api->XPU_REG_BSSID_FILTER_LOW_write(bssid_low); 1460 xpu_api->XPU_REG_BSSID_FILTER_HIGH_write(bssid_high); 1461 } 1462 1463 if (changed & BSS_CHANGED_BEACON_INT) { 1464 printk("%s openwifi_bss_info_changed WARNING BSS_CHANGED_BEACON_INT %x\n",sdr_compatible_str,info->beacon_int); 1465 } 1466 1467 if (changed & BSS_CHANGED_TXPOWER) 1468 printk("%s openwifi_bss_info_changed WARNING BSS_CHANGED_TXPOWER %x\n",sdr_compatible_str,info->txpower); 1469 1470 if (changed & BSS_CHANGED_ERP_CTS_PROT) 1471 printk("%s openwifi_bss_info_changed WARNING BSS_CHANGED_ERP_CTS_PROT %x\n",sdr_compatible_str,info->use_cts_prot); 1472 1473 if (changed & BSS_CHANGED_BASIC_RATES) 1474 printk("%s openwifi_bss_info_changed WARNING BSS_CHANGED_BASIC_RATES %x\n",sdr_compatible_str,info->basic_rates); 1475 1476 if (changed & (BSS_CHANGED_ERP_SLOT | BSS_CHANGED_ERP_PREAMBLE)) { 1477 printk("%s openwifi_bss_info_changed WARNING BSS_CHANGED_ERP_SLOT %d BSS_CHANGED_ERP_PREAMBLE %d short slot %d\n",sdr_compatible_str, 1478 changed&BSS_CHANGED_ERP_SLOT,changed&BSS_CHANGED_ERP_PREAMBLE,info->use_short_slot); 1479 if (info->use_short_slot && priv->use_short_slot==false) { 1480 priv->use_short_slot=true; 1481 xpu_api->XPU_REG_BAND_CHANNEL_write( (priv->use_short_slot<<24)|(priv->band<<16) ); 1482 } else if ((!info->use_short_slot) && priv->use_short_slot==true) { 1483 priv->use_short_slot=false; 1484 xpu_api->XPU_REG_BAND_CHANNEL_write( (priv->use_short_slot<<24)|(priv->band<<16) ); 1485 } 1486 } 1487 1488 if (changed & BSS_CHANGED_BEACON_ENABLED) { 1489 printk("%s openwifi_bss_info_changed WARNING BSS_CHANGED_BEACON_ENABLED\n",sdr_compatible_str); 1490 vif_priv->enable_beacon = info->enable_beacon; 1491 } 1492 1493 if (changed & (BSS_CHANGED_BEACON_ENABLED | BSS_CHANGED_BEACON)) { 1494 cancel_delayed_work_sync(&vif_priv->beacon_work); 1495 if (vif_priv->enable_beacon) 1496 schedule_work(&vif_priv->beacon_work.work); 1497 printk("%s openwifi_bss_info_changed WARNING BSS_CHANGED_BEACON_ENABLED %d BSS_CHANGED_BEACON %d\n",sdr_compatible_str, 1498 changed&BSS_CHANGED_BEACON_ENABLED,changed&BSS_CHANGED_BEACON); 1499 } 1500 } 1501 // helper function 1502 u32 log2val(u32 val){ 1503 u32 ret_val = 0 ; 1504 while(val>1){ 1505 val = val >> 1 ; 1506 ret_val ++ ; 1507 } 1508 return ret_val ; 1509 } 1510 1511 static int openwifi_conf_tx(struct ieee80211_hw *hw, struct ieee80211_vif *vif, u16 queue, 1512 const struct ieee80211_tx_queue_params *params) 1513 { 1514 u32 reg_val, cw_min_exp, cw_max_exp; 1515 1516 printk("%s openwifi_conf_tx: [queue %d], aifs: %d, cw_min: %d, cw_max: %d, txop: %d, aifs and txop ignored\n", 1517 sdr_compatible_str,queue,params->aifs,params->cw_min,params->cw_max,params->txop); 1518 1519 reg_val=xpu_api->XPU_REG_CSMA_CFG_read(); 1520 cw_min_exp = (log2val(params->cw_min + 1) & 0x0F); 1521 cw_max_exp = (log2val(params->cw_max + 1) & 0x0F); 1522 switch(queue){ 1523 case 0: reg_val = ( (reg_val & 0xFFFFFF00) | ((cw_min_exp | (cw_max_exp << 4)) << 0) ); break; 1524 case 1: reg_val = ( (reg_val & 0xFFFF00FF) | ((cw_min_exp | (cw_max_exp << 4)) << 8) ); break; 1525 case 2: reg_val = ( (reg_val & 0xFF00FFFF) | ((cw_min_exp | (cw_max_exp << 4)) << 16) ); break; 1526 case 3: reg_val = ( (reg_val & 0x00FFFFFF) | ((cw_min_exp | (cw_max_exp << 4)) << 24) ); break; 1527 default: printk("%s openwifi_conf_tx: WARNING queue %d does not exist",sdr_compatible_str, queue); return(0); 1528 } 1529 xpu_api->XPU_REG_CSMA_CFG_write(reg_val); 1530 return(0); 1531 } 1532 1533 static u64 openwifi_prepare_multicast(struct ieee80211_hw *dev, 1534 struct netdev_hw_addr_list *mc_list) 1535 { 1536 printk("%s openwifi_prepare_multicast\n", sdr_compatible_str); 1537 return netdev_hw_addr_list_count(mc_list); 1538 } 1539 1540 static void openwifi_configure_filter(struct ieee80211_hw *dev, 1541 unsigned int changed_flags, 1542 unsigned int *total_flags, 1543 u64 multicast) 1544 { 1545 u32 filter_flag; 1546 1547 (*total_flags) &= SDR_SUPPORTED_FILTERS; 1548 (*total_flags) |= FIF_ALLMULTI; //because we need to pass all multicast (no matter it is for us or not) to upper layer 1549 1550 filter_flag = (*total_flags); 1551 1552 filter_flag = (filter_flag|UNICAST_FOR_US|BROADCAST_ALL_ONE|BROADCAST_ALL_ZERO); 1553 //filter_flag = (filter_flag|UNICAST_FOR_US|BROADCAST_ALL_ONE|BROADCAST_ALL_ZERO|MONITOR_ALL); // all pkt will be delivered to arm 1554 1555 //if (priv->vif[0]->type == NL80211_IFTYPE_MONITOR) 1556 if ((filter_flag&0xf0) == 0xf0) //FIF_BCN_PRBRESP_PROMISC/FIF_CONTROL/FIF_OTHER_BSS/FIF_PSPOLL are set means monitor mode 1557 filter_flag = (filter_flag|MONITOR_ALL); 1558 else 1559 filter_flag = (filter_flag&(~MONITOR_ALL)); 1560 1561 if ( !(filter_flag&FIF_BCN_PRBRESP_PROMISC) ) 1562 filter_flag = (filter_flag|MY_BEACON); 1563 1564 filter_flag = (filter_flag|FIF_PSPOLL); 1565 1566 xpu_api->XPU_REG_FILTER_FLAG_write(filter_flag|HIGH_PRIORITY_DISCARD_FLAG); 1567 //xpu_api->XPU_REG_FILTER_FLAG_write(filter_flag); //do not discard any pkt 1568 1569 printk("%s openwifi_configure_filter MON %d M_BCN %d BST0 %d BST1 %d UST %d PB_RQ %d PS_PL %d O_BSS %d CTL %d BCN_PRP %d PCP_FL %d FCS_FL %d ALL_MUT %d\n", sdr_compatible_str, 1570 (filter_flag>>13)&1,(filter_flag>>12)&1,(filter_flag>>11)&1,(filter_flag>>10)&1,(filter_flag>>9)&1,(filter_flag>>8)&1,(filter_flag>>7)&1,(filter_flag>>6)&1,(filter_flag>>5)&1,(filter_flag>>4)&1,(filter_flag>>3)&1,(filter_flag>>2)&1,(filter_flag>>1)&1); 1571 } 1572 1573 static int openwifi_ampdu_action(struct ieee80211_hw *hw, struct ieee80211_vif *vif, struct ieee80211_ampdu_params *params) 1574 { 1575 struct ieee80211_sta *sta = params->sta; 1576 enum ieee80211_ampdu_mlme_action action = params->action; 1577 struct openwifi_priv *priv = hw->priv; 1578 u16 max_tx_bytes, buf_size, aggr_dur_us; 1579 u32 ampdu_action_config; 1580 1581 switch (action) 1582 { 1583 case IEEE80211_AMPDU_TX_START: 1584 ieee80211_start_tx_ba_cb_irqsafe(vif, sta->addr, params->tid); 1585 break; 1586 case IEEE80211_AMPDU_TX_STOP_CONT: 1587 case IEEE80211_AMPDU_TX_STOP_FLUSH: 1588 case IEEE80211_AMPDU_TX_STOP_FLUSH_CONT: 1589 ieee80211_stop_tx_ba_cb_irqsafe(vif, sta->addr, params->tid); 1590 break; 1591 case IEEE80211_AMPDU_TX_OPERATIONAL: 1592 priv->tid = params->tid; 1593 aggr_dur_us = 100; 1594 buf_size = 4; 1595 // buf_size = (params->buf_size) - 1; 1596 max_tx_bytes = (1 << (IEEE80211_HT_MAX_AMPDU_FACTOR + sta->ht_cap.ampdu_factor)) - 1; 1597 ampdu_action_config = ( aggr_dur_us<<21 | buf_size<<16 | max_tx_bytes ); 1598 tx_intf_api->TX_INTF_REG_AMPDU_ACTION_CONFIG_write(ampdu_action_config); 1599 break; 1600 case IEEE80211_AMPDU_RX_START: 1601 xpu_api->XPU_REG_AMPDU_ACTION_write((params->tid & 0x000F)<<1 | 1); 1602 break; 1603 case IEEE80211_AMPDU_RX_STOP: 1604 xpu_api->XPU_REG_AMPDU_ACTION_write((params->tid & 0x000F)<<1 | 0); 1605 break; 1606 default: 1607 return -EOPNOTSUPP; 1608 } 1609 1610 return 0; 1611 } 1612 1613 static int openwifi_testmode_cmd(struct ieee80211_hw *hw, struct ieee80211_vif *vif, void *data, int len) 1614 { 1615 struct openwifi_priv *priv = hw->priv; 1616 struct nlattr *tb[OPENWIFI_ATTR_MAX + 1]; 1617 struct sk_buff *skb; 1618 int err; 1619 u32 tmp=-1, reg_cat, reg_addr, reg_val, reg_addr_idx, tsft_high, tsft_low; 1620 1621 err = nla_parse(tb, OPENWIFI_ATTR_MAX, data, len, openwifi_testmode_policy, NULL); 1622 if (err) 1623 return err; 1624 1625 if (!tb[OPENWIFI_ATTR_CMD]) 1626 return -EINVAL; 1627 1628 switch (nla_get_u32(tb[OPENWIFI_ATTR_CMD])) { 1629 case OPENWIFI_CMD_SET_GAP: 1630 if (!tb[OPENWIFI_ATTR_GAP]) 1631 return -EINVAL; 1632 tmp = nla_get_u32(tb[OPENWIFI_ATTR_GAP]); 1633 printk("%s openwifi radio inter frame gap set to %d usec\n", sdr_compatible_str, tmp); 1634 xpu_api->XPU_REG_CSMA_CFG_write(tmp); // unit us 1635 return 0; 1636 case OPENWIFI_CMD_GET_GAP: 1637 skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1638 if (!skb) 1639 return -ENOMEM; 1640 tmp = xpu_api->XPU_REG_CSMA_CFG_read(); 1641 if (nla_put_u32(skb, OPENWIFI_ATTR_GAP, tmp)) 1642 goto nla_put_failure; 1643 return cfg80211_testmode_reply(skb); 1644 case OPENWIFI_CMD_SET_SLICE_IDX: 1645 if (!tb[OPENWIFI_ATTR_SLICE_IDX]) 1646 return -EINVAL; 1647 tmp = nla_get_u32(tb[OPENWIFI_ATTR_SLICE_IDX]); 1648 printk("%s set openwifi slice_idx in hex: %08x\n", sdr_compatible_str, tmp); 1649 if (tmp == MAX_NUM_HW_QUEUE) { 1650 printk("%s set openwifi slice_idx reset all queue counter.\n", sdr_compatible_str); 1651 xpu_api->XPU_REG_MULTI_RST_write(1<<7); //bit7 reset the counter for all queues at the same time 1652 xpu_api->XPU_REG_MULTI_RST_write(0<<7); 1653 } else { 1654 priv->slice_idx = tmp; 1655 } 1656 return 0; 1657 case OPENWIFI_CMD_GET_SLICE_IDX: 1658 skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1659 if (!skb) 1660 return -ENOMEM; 1661 tmp = priv->slice_idx; 1662 if (nla_put_u32(skb, OPENWIFI_ATTR_SLICE_IDX, tmp)) 1663 goto nla_put_failure; 1664 printk("%s get openwifi slice_idx in hex: %08x\n", sdr_compatible_str, tmp); 1665 return cfg80211_testmode_reply(skb); 1666 case OPENWIFI_CMD_SET_ADDR: 1667 if (!tb[OPENWIFI_ATTR_ADDR]) 1668 return -EINVAL; 1669 tmp = nla_get_u32(tb[OPENWIFI_ATTR_ADDR]); 1670 if (priv->slice_idx>=MAX_NUM_HW_QUEUE) { 1671 printk("%s set openwifi slice_target_mac_addr(low32) WARNING: current slice idx %d is invalid!\n", sdr_compatible_str, priv->slice_idx); 1672 } else { 1673 printk("%s set openwifi slice_target_mac_addr(low32) in hex: %08x to slice %d\n", sdr_compatible_str, tmp, priv->slice_idx); 1674 priv->dest_mac_addr_queue_map[priv->slice_idx] = reverse32(tmp); 1675 } 1676 return 0; 1677 case OPENWIFI_CMD_GET_ADDR: 1678 skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1679 if (!skb) 1680 return -ENOMEM; 1681 if (priv->slice_idx>=MAX_NUM_HW_QUEUE) { 1682 tmp = -1; 1683 } else { 1684 tmp = reverse32(priv->dest_mac_addr_queue_map[priv->slice_idx]); 1685 } 1686 if (nla_put_u32(skb, OPENWIFI_ATTR_ADDR, tmp)) 1687 goto nla_put_failure; 1688 printk("%s get openwifi slice_target_mac_addr(low32) in hex: %08x of slice %d\n", sdr_compatible_str, tmp, priv->slice_idx); 1689 return cfg80211_testmode_reply(skb); 1690 1691 case OPENWIFI_CMD_SET_SLICE_TOTAL: 1692 if (!tb[OPENWIFI_ATTR_SLICE_TOTAL]) 1693 return -EINVAL; 1694 tmp = nla_get_u32(tb[OPENWIFI_ATTR_SLICE_TOTAL]); 1695 if (priv->slice_idx>=MAX_NUM_HW_QUEUE) { 1696 printk("%s set SLICE_TOTAL(duration) WARNING: current slice idx %d is invalid!\n", sdr_compatible_str, priv->slice_idx); 1697 } else { 1698 printk("%s set SLICE_TOTAL(duration) %d usec to slice %d\n", sdr_compatible_str, tmp, priv->slice_idx); 1699 xpu_api->XPU_REG_SLICE_COUNT_TOTAL_write((priv->slice_idx<<20)|tmp); 1700 } 1701 return 0; 1702 case OPENWIFI_CMD_GET_SLICE_TOTAL: 1703 skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1704 if (!skb) 1705 return -ENOMEM; 1706 tmp = (xpu_api->XPU_REG_SLICE_COUNT_TOTAL_read()); 1707 printk("%s get SLICE_TOTAL(duration) %d usec of slice %d\n", sdr_compatible_str, tmp&0xFFFFF, tmp>>20); 1708 if (nla_put_u32(skb, OPENWIFI_ATTR_SLICE_TOTAL, tmp)) 1709 goto nla_put_failure; 1710 return cfg80211_testmode_reply(skb); 1711 1712 case OPENWIFI_CMD_SET_SLICE_START: 1713 if (!tb[OPENWIFI_ATTR_SLICE_START]) 1714 return -EINVAL; 1715 tmp = nla_get_u32(tb[OPENWIFI_ATTR_SLICE_START]); 1716 if (priv->slice_idx>=MAX_NUM_HW_QUEUE) { 1717 printk("%s set SLICE_START(duration) WARNING: current slice idx %d is invalid!\n", sdr_compatible_str, priv->slice_idx); 1718 } else { 1719 printk("%s set SLICE_START(duration) %d usec to slice %d\n", sdr_compatible_str, tmp, priv->slice_idx); 1720 xpu_api->XPU_REG_SLICE_COUNT_START_write((priv->slice_idx<<20)|tmp); 1721 } 1722 return 0; 1723 case OPENWIFI_CMD_GET_SLICE_START: 1724 skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1725 if (!skb) 1726 return -ENOMEM; 1727 tmp = (xpu_api->XPU_REG_SLICE_COUNT_START_read()); 1728 printk("%s get SLICE_START(duration) %d usec of slice %d\n", sdr_compatible_str, tmp&0xFFFFF, tmp>>20); 1729 if (nla_put_u32(skb, OPENWIFI_ATTR_SLICE_START, tmp)) 1730 goto nla_put_failure; 1731 return cfg80211_testmode_reply(skb); 1732 1733 case OPENWIFI_CMD_SET_SLICE_END: 1734 if (!tb[OPENWIFI_ATTR_SLICE_END]) 1735 return -EINVAL; 1736 tmp = nla_get_u32(tb[OPENWIFI_ATTR_SLICE_END]); 1737 if (priv->slice_idx>=MAX_NUM_HW_QUEUE) { 1738 printk("%s set SLICE_END(duration) WARNING: current slice idx %d is invalid!\n", sdr_compatible_str, priv->slice_idx); 1739 } else { 1740 printk("%s set SLICE_END(duration) %d usec to slice %d\n", sdr_compatible_str, tmp, priv->slice_idx); 1741 xpu_api->XPU_REG_SLICE_COUNT_END_write((priv->slice_idx<<20)|tmp); 1742 } 1743 return 0; 1744 case OPENWIFI_CMD_GET_SLICE_END: 1745 skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1746 if (!skb) 1747 return -ENOMEM; 1748 tmp = (xpu_api->XPU_REG_SLICE_COUNT_END_read()); 1749 printk("%s get SLICE_END(duration) %d usec of slice %d\n", sdr_compatible_str, tmp&0xFFFFF, tmp>>20); 1750 if (nla_put_u32(skb, OPENWIFI_ATTR_SLICE_END, tmp)) 1751 goto nla_put_failure; 1752 return cfg80211_testmode_reply(skb); 1753 1754 // case OPENWIFI_CMD_SET_SLICE_TOTAL1: 1755 // if (!tb[OPENWIFI_ATTR_SLICE_TOTAL1]) 1756 // return -EINVAL; 1757 // tmp = nla_get_u32(tb[OPENWIFI_ATTR_SLICE_TOTAL1]); 1758 // printk("%s set SLICE_TOTAL1(duration) to %d usec\n", sdr_compatible_str, tmp); 1759 // // xpu_api->XPU_REG_SLICE_COUNT_TOTAL1_write(tmp); 1760 // return 0; 1761 // case OPENWIFI_CMD_GET_SLICE_TOTAL1: 1762 // skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1763 // if (!skb) 1764 // return -ENOMEM; 1765 // // tmp = (xpu_api->XPU_REG_SLICE_COUNT_TOTAL1_read()); 1766 // if (nla_put_u32(skb, OPENWIFI_ATTR_SLICE_TOTAL1, tmp)) 1767 // goto nla_put_failure; 1768 // return cfg80211_testmode_reply(skb); 1769 1770 // case OPENWIFI_CMD_SET_SLICE_START1: 1771 // if (!tb[OPENWIFI_ATTR_SLICE_START1]) 1772 // return -EINVAL; 1773 // tmp = nla_get_u32(tb[OPENWIFI_ATTR_SLICE_START1]); 1774 // printk("%s set SLICE_START1(duration) to %d usec\n", sdr_compatible_str, tmp); 1775 // // xpu_api->XPU_REG_SLICE_COUNT_START1_write(tmp); 1776 // return 0; 1777 // case OPENWIFI_CMD_GET_SLICE_START1: 1778 // skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1779 // if (!skb) 1780 // return -ENOMEM; 1781 // // tmp = (xpu_api->XPU_REG_SLICE_COUNT_START1_read()); 1782 // if (nla_put_u32(skb, OPENWIFI_ATTR_SLICE_START1, tmp)) 1783 // goto nla_put_failure; 1784 // return cfg80211_testmode_reply(skb); 1785 1786 // case OPENWIFI_CMD_SET_SLICE_END1: 1787 // if (!tb[OPENWIFI_ATTR_SLICE_END1]) 1788 // return -EINVAL; 1789 // tmp = nla_get_u32(tb[OPENWIFI_ATTR_SLICE_END1]); 1790 // printk("%s set SLICE_END1(duration) to %d usec\n", sdr_compatible_str, tmp); 1791 // // xpu_api->XPU_REG_SLICE_COUNT_END1_write(tmp); 1792 // return 0; 1793 // case OPENWIFI_CMD_GET_SLICE_END1: 1794 // skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1795 // if (!skb) 1796 // return -ENOMEM; 1797 // // tmp = (xpu_api->XPU_REG_SLICE_COUNT_END1_read()); 1798 // if (nla_put_u32(skb, OPENWIFI_ATTR_SLICE_END1, tmp)) 1799 // goto nla_put_failure; 1800 // return cfg80211_testmode_reply(skb); 1801 1802 case OPENWIFI_CMD_SET_RSSI_TH: 1803 if (!tb[OPENWIFI_ATTR_RSSI_TH]) 1804 return -EINVAL; 1805 tmp = nla_get_u32(tb[OPENWIFI_ATTR_RSSI_TH]); 1806 // printk("%s set RSSI_TH to %d\n", sdr_compatible_str, tmp); 1807 // xpu_api->XPU_REG_LBT_TH_write(tmp); 1808 // return 0; 1809 printk("%s WARNING Please use command: sdrctl dev sdr0 set reg drv_xpu 0 reg_value! (1~2047, 0 means AUTO)!\n", sdr_compatible_str); 1810 return -EOPNOTSUPP; 1811 case OPENWIFI_CMD_GET_RSSI_TH: 1812 skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1813 if (!skb) 1814 return -ENOMEM; 1815 tmp = xpu_api->XPU_REG_LBT_TH_read(); 1816 if (nla_put_u32(skb, OPENWIFI_ATTR_RSSI_TH, tmp)) 1817 goto nla_put_failure; 1818 return cfg80211_testmode_reply(skb); 1819 1820 case OPENWIFI_CMD_SET_TSF: 1821 printk("openwifi_set_tsf_1"); 1822 if ( (!tb[OPENWIFI_ATTR_HIGH_TSF]) || (!tb[OPENWIFI_ATTR_LOW_TSF]) ) 1823 return -EINVAL; 1824 printk("openwifi_set_tsf_2"); 1825 tsft_high = nla_get_u32(tb[OPENWIFI_ATTR_HIGH_TSF]); 1826 tsft_low = nla_get_u32(tb[OPENWIFI_ATTR_LOW_TSF]); 1827 xpu_api->XPU_REG_TSF_LOAD_VAL_write(tsft_high,tsft_low); 1828 printk("%s openwifi_set_tsf: %08x%08x\n", sdr_compatible_str,tsft_high,tsft_low); 1829 return 0; 1830 1831 case REG_CMD_SET: 1832 if ( (!tb[REG_ATTR_ADDR]) || (!tb[REG_ATTR_VAL]) ) 1833 return -EINVAL; 1834 reg_addr = nla_get_u32(tb[REG_ATTR_ADDR]); 1835 reg_val = nla_get_u32(tb[REG_ATTR_VAL]); 1836 reg_cat = ((reg_addr>>16)&0xFFFF); 1837 reg_addr = (reg_addr&0xFFFF); 1838 reg_addr_idx = (reg_addr>>2); 1839 printk("%s recv set cmd reg cat %d addr %08x val %08x idx %d\n", sdr_compatible_str, reg_cat, reg_addr, reg_val, reg_addr_idx); 1840 if (reg_cat==1) 1841 printk("%s WARNING reg cat 1 (rf) is not supported yet!\n", sdr_compatible_str); 1842 else if (reg_cat==2) 1843 rx_intf_api->reg_write(reg_addr,reg_val); 1844 else if (reg_cat==3) 1845 tx_intf_api->reg_write(reg_addr,reg_val); 1846 else if (reg_cat==4) 1847 openofdm_rx_api->reg_write(reg_addr,reg_val); 1848 else if (reg_cat==5) 1849 openofdm_tx_api->reg_write(reg_addr,reg_val); 1850 else if (reg_cat==6) 1851 xpu_api->reg_write(reg_addr,reg_val); 1852 else if (reg_cat==7) { 1853 if (reg_addr_idx>=0 && reg_addr_idx<MAX_NUM_DRV_REG) { 1854 priv->drv_rx_reg_val[reg_addr_idx]=reg_val; 1855 if (reg_addr_idx==DRV_RX_REG_IDX_FREQ_BW_CFG) { 1856 if (reg_val==0) 1857 priv->rx_intf_cfg = RX_INTF_BW_20MHZ_AT_0MHZ_ANT0; 1858 else 1859 priv->rx_intf_cfg = RX_INTF_BW_20MHZ_AT_0MHZ_ANT1; 1860 1861 priv->rx_freq_offset_to_lo_MHz = rx_intf_fo_mapping[priv->rx_intf_cfg]; 1862 //priv->tx_freq_offset_to_lo_MHz = tx_intf_fo_mapping[priv->tx_intf_cfg]; 1863 } 1864 } else 1865 printk("%s WARNING reg_addr_idx %d is out of range!\n", sdr_compatible_str, reg_addr_idx); 1866 } 1867 else if (reg_cat==8) { 1868 if (reg_addr_idx>=0 && reg_addr_idx<MAX_NUM_DRV_REG) { 1869 priv->drv_tx_reg_val[reg_addr_idx]=reg_val; 1870 if (reg_addr_idx==DRV_TX_REG_IDX_FREQ_BW_CFG) { 1871 if (reg_val==0) { 1872 priv->tx_intf_cfg = TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT0; 1873 ad9361_set_tx_atten(priv->ad9361_phy, AD9361_RADIO_ON_TX_ATT, true, false, true); 1874 } else { 1875 priv->tx_intf_cfg = TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT1; 1876 ad9361_set_tx_atten(priv->ad9361_phy, AD9361_RADIO_ON_TX_ATT, false, true, true); 1877 } 1878 1879 //priv->rx_freq_offset_to_lo_MHz = rx_intf_fo_mapping[priv->rx_intf_cfg]; 1880 priv->tx_freq_offset_to_lo_MHz = tx_intf_fo_mapping[priv->tx_intf_cfg]; 1881 } 1882 } else 1883 printk("%s WARNING reg_addr_idx %d is out of range!\n", sdr_compatible_str, reg_addr_idx); 1884 } 1885 else if (reg_cat==9) { 1886 if (reg_addr_idx>=0 && reg_addr_idx<MAX_NUM_DRV_REG) { 1887 priv->drv_xpu_reg_val[reg_addr_idx]=reg_val; 1888 if (reg_addr_idx==DRV_XPU_REG_IDX_LBT_TH) { 1889 if (reg_val) { 1890 xpu_api->XPU_REG_LBT_TH_write(reg_val); 1891 printk("%s override FPGA LBT threshold to %d. The last_auto_fpga_lbt_th %d\n", sdr_compatible_str, reg_val, priv->last_auto_fpga_lbt_th); 1892 } else { 1893 xpu_api->XPU_REG_LBT_TH_write(priv->last_auto_fpga_lbt_th); 1894 printk("%s Restore last_auto_fpga_lbt_th %d to FPGA. ad9361_rf_set_channel will take control\n", sdr_compatible_str, priv->last_auto_fpga_lbt_th); 1895 } 1896 } 1897 } else 1898 printk("%s WARNING reg_addr_idx %d is out of range!\n", sdr_compatible_str, reg_addr_idx); 1899 } 1900 else 1901 printk("%s WARNING reg cat %d is not supported yet!\n", sdr_compatible_str, reg_cat); 1902 1903 return 0; 1904 case REG_CMD_GET: 1905 skb = cfg80211_testmode_alloc_reply_skb(hw->wiphy, nla_total_size(sizeof(u32))); 1906 if (!skb) 1907 return -ENOMEM; 1908 reg_addr = nla_get_u32(tb[REG_ATTR_ADDR]); 1909 reg_cat = ((reg_addr>>16)&0xFFFF); 1910 reg_addr = (reg_addr&0xFFFF); 1911 reg_addr_idx = (reg_addr>>2); 1912 printk("%s recv get cmd reg cat %d addr %08x idx %d\n", sdr_compatible_str, reg_cat, reg_addr, reg_addr_idx); 1913 if (reg_cat==1) { 1914 printk("%s WARNING reg cat 1 (rf) is not supported yet!\n", sdr_compatible_str); 1915 tmp = 0xFFFFFFFF; 1916 } 1917 else if (reg_cat==2) 1918 tmp = rx_intf_api->reg_read(reg_addr); 1919 else if (reg_cat==3) 1920 tmp = tx_intf_api->reg_read(reg_addr); 1921 else if (reg_cat==4) 1922 tmp = openofdm_rx_api->reg_read(reg_addr); 1923 else if (reg_cat==5) 1924 tmp = openofdm_tx_api->reg_read(reg_addr); 1925 else if (reg_cat==6) 1926 tmp = xpu_api->reg_read(reg_addr); 1927 else if (reg_cat==7) { 1928 if (reg_addr_idx>=0 && reg_addr_idx<MAX_NUM_DRV_REG) { 1929 if (reg_addr_idx==DRV_RX_REG_IDX_FREQ_BW_CFG) { 1930 priv->rx_freq_offset_to_lo_MHz = rx_intf_fo_mapping[priv->rx_intf_cfg]; 1931 //priv->tx_freq_offset_to_lo_MHz = tx_intf_fo_mapping[priv->tx_intf_cfg]; 1932 1933 if (priv->rx_intf_cfg == RX_INTF_BW_20MHZ_AT_0MHZ_ANT0) 1934 priv->drv_rx_reg_val[reg_addr_idx]=0; 1935 else if (priv->rx_intf_cfg == RX_INTF_BW_20MHZ_AT_0MHZ_ANT1) 1936 priv->drv_rx_reg_val[reg_addr_idx]=1; 1937 } 1938 tmp = priv->drv_rx_reg_val[reg_addr_idx]; 1939 } else 1940 printk("%s WARNING reg_addr_idx %d is out of range!\n", sdr_compatible_str, reg_addr_idx); 1941 } 1942 else if (reg_cat==8) { 1943 if (reg_addr_idx>=0 && reg_addr_idx<MAX_NUM_DRV_REG) { 1944 if (reg_addr_idx==DRV_TX_REG_IDX_FREQ_BW_CFG) { 1945 //priv->rx_freq_offset_to_lo_MHz = rx_intf_fo_mapping[priv->rx_intf_cfg]; 1946 priv->tx_freq_offset_to_lo_MHz = tx_intf_fo_mapping[priv->tx_intf_cfg]; 1947 if (priv->tx_intf_cfg == TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT0) 1948 priv->drv_tx_reg_val[reg_addr_idx]=0; 1949 else if (priv->tx_intf_cfg == TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT1) 1950 priv->drv_tx_reg_val[reg_addr_idx]=1; 1951 } 1952 tmp = priv->drv_tx_reg_val[reg_addr_idx]; 1953 } else 1954 printk("%s WARNING reg_addr_idx %d is out of range!\n", sdr_compatible_str, reg_addr_idx); 1955 } 1956 else if (reg_cat==9) { 1957 if (reg_addr_idx>=0 && reg_addr_idx<MAX_NUM_DRV_REG) 1958 tmp = priv->drv_xpu_reg_val[reg_addr_idx]; 1959 else 1960 printk("%s WARNING reg_addr_idx %d is out of range!\n", sdr_compatible_str, reg_addr_idx); 1961 } 1962 else 1963 printk("%s WARNING reg cat %d is not supported yet!\n", sdr_compatible_str, reg_cat); 1964 1965 if (nla_put_u32(skb, REG_ATTR_VAL, tmp)) 1966 goto nla_put_failure; 1967 return cfg80211_testmode_reply(skb); 1968 1969 default: 1970 return -EOPNOTSUPP; 1971 } 1972 1973 nla_put_failure: 1974 dev_kfree_skb(skb); 1975 return -ENOBUFS; 1976 } 1977 1978 static const struct ieee80211_ops openwifi_ops = { 1979 .tx = openwifi_tx, 1980 .start = openwifi_start, 1981 .stop = openwifi_stop, 1982 .add_interface = openwifi_add_interface, 1983 .remove_interface = openwifi_remove_interface, 1984 .config = openwifi_config, 1985 .bss_info_changed = openwifi_bss_info_changed, 1986 .conf_tx = openwifi_conf_tx, 1987 .prepare_multicast = openwifi_prepare_multicast, 1988 .configure_filter = openwifi_configure_filter, 1989 .rfkill_poll = openwifi_rfkill_poll, 1990 .get_tsf = openwifi_get_tsf, 1991 .set_tsf = openwifi_set_tsf, 1992 .reset_tsf = openwifi_reset_tsf, 1993 .set_rts_threshold = openwifi_set_rts_threshold, 1994 .ampdu_action = openwifi_ampdu_action, 1995 .testmode_cmd = openwifi_testmode_cmd, 1996 }; 1997 1998 static const struct of_device_id openwifi_dev_of_ids[] = { 1999 { .compatible = "sdr,sdr", }, 2000 {} 2001 }; 2002 MODULE_DEVICE_TABLE(of, openwifi_dev_of_ids); 2003 2004 static int custom_match_spi_dev(struct device *dev, void *data) 2005 { 2006 const char *name = data; 2007 2008 bool ret = sysfs_streq(name, dev->of_node->name); 2009 printk("%s custom_match_spi_dev %s %s %d\n", sdr_compatible_str,name, dev->of_node->name, ret); 2010 return ret; 2011 } 2012 2013 static int custom_match_platform_dev(struct device *dev, void *data) 2014 { 2015 struct platform_device *plat_dev = to_platform_device(dev); 2016 const char *name = data; 2017 char *name_in_sys_bus_platform_devices = strstr(plat_dev->name, name); 2018 bool match_flag = (name_in_sys_bus_platform_devices != NULL); 2019 2020 if (match_flag) { 2021 printk("%s custom_match_platform_dev %s\n", sdr_compatible_str,plat_dev->name); 2022 } 2023 return(match_flag); 2024 } 2025 2026 static int openwifi_dev_probe(struct platform_device *pdev) 2027 { 2028 struct ieee80211_hw *dev; 2029 struct openwifi_priv *priv; 2030 int err=1, rand_val; 2031 const char *chip_name, *fpga_model; 2032 u32 reg;//, reg1; 2033 2034 struct device_node *np = pdev->dev.of_node; 2035 2036 struct device *tmp_dev; 2037 struct platform_device *tmp_pdev; 2038 struct iio_dev *tmp_indio_dev; 2039 // struct gpio_leds_priv *tmp_led_priv; 2040 2041 printk("\n"); 2042 2043 if (np) { 2044 const struct of_device_id *match; 2045 2046 match = of_match_node(openwifi_dev_of_ids, np); 2047 if (match) { 2048 printk("%s openwifi_dev_probe: match!\n", sdr_compatible_str); 2049 err = 0; 2050 } 2051 } 2052 2053 if (err) 2054 return err; 2055 2056 dev = ieee80211_alloc_hw(sizeof(*priv), &openwifi_ops); 2057 if (!dev) { 2058 printk(KERN_ERR "%s openwifi_dev_probe: ieee80211 alloc failed\n",sdr_compatible_str); 2059 err = -ENOMEM; 2060 goto err_free_dev; 2061 } 2062 2063 priv = dev->priv; 2064 priv->pdev = pdev; 2065 2066 err = of_property_read_string(of_find_node_by_path("/"), "model", &fpga_model); 2067 if(err < 0) { 2068 printk("%s openwifi_dev_probe: WARNING unknown openwifi FPGA model %d\n",sdr_compatible_str, err); 2069 priv->fpga_type = SMALL_FPGA; 2070 } else { 2071 // LARGE FPGAs (i.e. ZCU102, Z7035, ZC706) 2072 if(strstr(fpga_model, "ZCU102") != NULL || strstr(fpga_model, "Z7035") != NULL || strstr(fpga_model, "ZC706") != NULL) 2073 priv->fpga_type = LARGE_FPGA; 2074 // SMALL FPGA: (i.e. ZED, ZC702, Z7020) 2075 else if(strstr(fpga_model, "ZED") != NULL || strstr(fpga_model, "ZC702") != NULL || strstr(fpga_model, "Z7020") != NULL) 2076 priv->fpga_type = SMALL_FPGA; 2077 } 2078 2079 // //-------------find ad9361-phy driver for lo/channel control--------------- 2080 priv->actual_rx_lo = 0; 2081 tmp_dev = bus_find_device( &spi_bus_type, NULL, "ad9361-phy", custom_match_spi_dev ); 2082 if (tmp_dev == NULL) { 2083 printk(KERN_ERR "%s find_dev ad9361-phy failed\n",sdr_compatible_str); 2084 err = -ENOMEM; 2085 goto err_free_dev; 2086 } 2087 printk("%s bus_find_device ad9361-phy: %s. driver_data pointer %p\n", sdr_compatible_str, ((struct spi_device*)tmp_dev)->modalias, (void*)(((struct spi_device*)tmp_dev)->dev.driver_data)); 2088 if (((struct spi_device*)tmp_dev)->dev.driver_data == NULL) { 2089 printk(KERN_ERR "%s find_dev ad9361-phy failed. dev.driver_data == NULL\n",sdr_compatible_str); 2090 err = -ENOMEM; 2091 goto err_free_dev; 2092 } 2093 2094 priv->ad9361_phy = ad9361_spi_to_phy((struct spi_device*)tmp_dev); 2095 if (!(priv->ad9361_phy)) { 2096 printk(KERN_ERR "%s ad9361_spi_to_phy failed\n",sdr_compatible_str); 2097 err = -ENOMEM; 2098 goto err_free_dev; 2099 } 2100 printk("%s ad9361_spi_to_phy ad9361-phy: %s\n", sdr_compatible_str, priv->ad9361_phy->spi->modalias); 2101 2102 priv->ctrl_out.en_mask=0xFF; 2103 priv->ctrl_out.index=0x16; 2104 err = ad9361_ctrl_outs_setup(priv->ad9361_phy, &(priv->ctrl_out)); 2105 if (err < 0) { 2106 printk("%s openwifi_dev_probe: WARNING ad9361_ctrl_outs_setup %d\n",sdr_compatible_str, err); 2107 } else { 2108 printk("%s openwifi_dev_probe: ad9361_ctrl_outs_setup en_mask 0x%02x index 0x%02x\n",sdr_compatible_str, priv->ctrl_out.en_mask, priv->ctrl_out.index); 2109 } 2110 2111 reg = ad9361_spi_read(priv->ad9361_phy->spi, REG_CTRL_OUTPUT_POINTER); 2112 printk("%s openwifi_dev_probe: ad9361_spi_read REG_CTRL_OUTPUT_POINTER 0x%02x\n",sdr_compatible_str, reg); 2113 reg = ad9361_spi_read(priv->ad9361_phy->spi, REG_CTRL_OUTPUT_ENABLE); 2114 printk("%s openwifi_dev_probe: ad9361_spi_read REG_CTRL_OUTPUT_ENABLE 0x%02x\n",sdr_compatible_str, reg); 2115 2116 // //-------------find driver: axi_ad9361 hdl ref design module, dac channel--------------- 2117 tmp_dev = bus_find_device( &platform_bus_type, NULL, "cf-ad9361-dds-core-lpc", custom_match_platform_dev ); 2118 if (!tmp_dev) { 2119 printk(KERN_ERR "%s bus_find_device platform_bus_type cf-ad9361-dds-core-lpc failed\n",sdr_compatible_str); 2120 err = -ENOMEM; 2121 goto err_free_dev; 2122 } 2123 2124 tmp_pdev = to_platform_device(tmp_dev); 2125 if (!tmp_pdev) { 2126 printk(KERN_ERR "%s to_platform_device failed\n",sdr_compatible_str); 2127 err = -ENOMEM; 2128 goto err_free_dev; 2129 } 2130 2131 tmp_indio_dev = platform_get_drvdata(tmp_pdev); 2132 if (!tmp_indio_dev) { 2133 printk(KERN_ERR "%s platform_get_drvdata failed\n",sdr_compatible_str); 2134 err = -ENOMEM; 2135 goto err_free_dev; 2136 } 2137 2138 priv->dds_st = iio_priv(tmp_indio_dev); 2139 if (!(priv->dds_st)) { 2140 printk(KERN_ERR "%s iio_priv failed\n",sdr_compatible_str); 2141 err = -ENOMEM; 2142 goto err_free_dev; 2143 } 2144 printk("%s openwifi_dev_probe: cf-ad9361-dds-core-lpc dds_st->version %08x chip_info->name %s\n",sdr_compatible_str,priv->dds_st->version,priv->dds_st->chip_info->name); 2145 cf_axi_dds_datasel(priv->dds_st, -1, DATA_SEL_DMA); 2146 printk("%s openwifi_dev_probe: cf_axi_dds_datasel DATA_SEL_DMA\n",sdr_compatible_str); 2147 2148 // //-------------find driver: axi_ad9361 hdl ref design module, adc channel--------------- 2149 // turn off radio by muting tx 2150 // ad9361_tx_mute(priv->ad9361_phy, 1); 2151 // reg = ad9361_get_tx_atten(priv->ad9361_phy, 2); 2152 // reg1 = ad9361_get_tx_atten(priv->ad9361_phy, 1); 2153 // if (reg == AD9361_RADIO_OFF_TX_ATT && reg1 == AD9361_RADIO_OFF_TX_ATT ) { 2154 // priv->rfkill_off = 0;// 0 off, 1 on 2155 // printk("%s openwifi_dev_probe: rfkill radio off\n",sdr_compatible_str); 2156 // } 2157 // else 2158 // printk("%s openwifi_dev_probe: WARNING rfkill radio off failed. tx att read %d %d require %d\n",sdr_compatible_str, reg, reg1, AD9361_RADIO_OFF_TX_ATT); 2159 2160 priv->last_auto_fpga_lbt_th = 134;//just to avoid uninitialized 2161 priv->rssi_correction = 43;//this will be set in real-time by _rf_set_channel() 2162 2163 //priv->rf_bw = 20000000; // Signal quality issue! NOT use for now. 20MHz or 40MHz. 40MHz need ddc/duc. 20MHz works in bypass mode 2164 priv->rf_bw = 40000000; // 20MHz or 40MHz. 40MHz need ddc/duc. 20MHz works in bypass mode 2165 2166 priv->xpu_cfg = XPU_NORMAL; 2167 2168 priv->openofdm_tx_cfg = OPENOFDM_TX_NORMAL; 2169 priv->openofdm_rx_cfg = OPENOFDM_RX_NORMAL; 2170 2171 printk("%s openwifi_dev_probe: priv->rf_bw == %dHz. bool for 20000000 %d, 40000000 %d\n",sdr_compatible_str, priv->rf_bw, (priv->rf_bw==20000000) , (priv->rf_bw==40000000) ); 2172 if (priv->rf_bw == 20000000) { 2173 priv->rx_intf_cfg = RX_INTF_BYPASS; 2174 priv->tx_intf_cfg = TX_INTF_BYPASS; 2175 //priv->rx_freq_offset_to_lo_MHz = 0; 2176 //priv->tx_freq_offset_to_lo_MHz = 0; 2177 } else if (priv->rf_bw == 40000000) { 2178 //priv->rx_intf_cfg = RX_INTF_BW_20MHZ_AT_P_10MHZ; //work 2179 //priv->tx_intf_cfg = TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT1; //work 2180 2181 // // test ddc at central, duc at central+10M. It works. And also change rx BW from 40MHz to 20MHz in rf_init.sh. Rx sampling rate is still 40Msps 2182 priv->rx_intf_cfg = RX_INTF_BW_20MHZ_AT_0MHZ_ANT0; 2183 priv->tx_intf_cfg = TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT0; // Let's use rx0 tx0 as default mode, because it works for both 9361 and 9364 2184 // // try another antenna option 2185 //priv->rx_intf_cfg = RX_INTF_BW_20MHZ_AT_0MHZ_ANT1; 2186 //priv->tx_intf_cfg = TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT0; 2187 2188 #if 0 2189 if (priv->rx_intf_cfg == DDC_BW_20MHZ_AT_N_10MHZ) { 2190 priv->rx_freq_offset_to_lo_MHz = -10; 2191 } else if (priv->rx_intf_cfg == DDC_BW_20MHZ_AT_P_10MHZ) { 2192 priv->rx_freq_offset_to_lo_MHz = 10; 2193 } else if (priv->rx_intf_cfg == DDC_BW_20MHZ_AT_0MHZ) { 2194 priv->rx_freq_offset_to_lo_MHz = 0; 2195 } else { 2196 printk("%s openwifi_dev_probe: Warning! priv->rx_intf_cfg == %d\n",sdr_compatible_str,priv->rx_intf_cfg); 2197 } 2198 #endif 2199 } else { 2200 printk("%s openwifi_dev_probe: Warning! priv->rf_bw == %dHz (should be 20000000 or 40000000)\n",sdr_compatible_str, priv->rf_bw); 2201 } 2202 priv->rx_freq_offset_to_lo_MHz = rx_intf_fo_mapping[priv->rx_intf_cfg]; 2203 priv->tx_freq_offset_to_lo_MHz = tx_intf_fo_mapping[priv->tx_intf_cfg]; 2204 printk("%s openwifi_dev_probe: test_mode %d\n", sdr_compatible_str, test_mode); 2205 2206 //let's by default turn radio on when probing 2207 if (priv->tx_intf_cfg == TX_INTF_BW_20MHZ_AT_N_10MHZ_ANT1) { 2208 ad9361_set_tx_atten(priv->ad9361_phy, AD9361_RADIO_ON_TX_ATT, false, true, true); // AD9361_RADIO_ON_TX_ATT 3000 means 3dB, 0 means 0dB 2209 reg = ad9361_get_tx_atten(priv->ad9361_phy, 2); 2210 } else { 2211 ad9361_set_tx_atten(priv->ad9361_phy, AD9361_RADIO_ON_TX_ATT, true, false, true); // AD9361_RADIO_ON_TX_ATT 3000 means 3dB, 0 means 0dB 2212 reg = ad9361_get_tx_atten(priv->ad9361_phy, 1); 2213 } 2214 if (reg == AD9361_RADIO_ON_TX_ATT) { 2215 priv->rfkill_off = 1;// 0 off, 1 on 2216 printk("%s openwifi_dev_probe: rfkill radio on\n",sdr_compatible_str); 2217 } else 2218 printk("%s openwifi_dev_probe: WARNING rfkill radio on failed. tx att read %d require %d\n",sdr_compatible_str, reg, AD9361_RADIO_ON_TX_ATT); 2219 2220 memset(priv->drv_rx_reg_val,0,sizeof(priv->drv_rx_reg_val)); 2221 memset(priv->drv_tx_reg_val,0,sizeof(priv->drv_tx_reg_val)); 2222 memset(priv->drv_xpu_reg_val,0,sizeof(priv->drv_xpu_reg_val)); 2223 2224 // //set ad9361 in certain mode 2225 #if 0 2226 err = ad9361_set_trx_clock_chain_freq(priv->ad9361_phy,priv->rf_bw); 2227 printk("%s openwifi_dev_probe: ad9361_set_trx_clock_chain_freq %dHz err %d\n",sdr_compatible_str, priv->rf_bw,err); 2228 err = ad9361_update_rf_bandwidth(priv->ad9361_phy,priv->rf_bw,priv->rf_bw); 2229 printk("%s openwifi_dev_probe: ad9361_update_rf_bandwidth %dHz err %d\n",sdr_compatible_str, priv->rf_bw,err); 2230 2231 rx_intf_api->hw_init(priv->rx_intf_cfg,8,8); 2232 tx_intf_api->hw_init(priv->tx_intf_cfg,8,8); 2233 openofdm_tx_api->hw_init(priv->openofdm_tx_cfg); 2234 openofdm_rx_api->hw_init(priv->openofdm_rx_cfg); 2235 printk("%s openwifi_dev_probe: rx_intf_cfg %d openofdm_rx_cfg %d tx_intf_cfg %d openofdm_tx_cfg %d\n",sdr_compatible_str, priv->rx_intf_cfg, priv->openofdm_rx_cfg, priv->tx_intf_cfg, priv->openofdm_tx_cfg); 2236 printk("%s openwifi_dev_probe: rx_freq_offset_to_lo_MHz %d tx_freq_offset_to_lo_MHz %d\n",sdr_compatible_str, priv->rx_freq_offset_to_lo_MHz, priv->tx_freq_offset_to_lo_MHz); 2237 #endif 2238 2239 dev->max_rates = 1; //maximum number of alternate rate retry stages the hw can handle. 2240 2241 SET_IEEE80211_DEV(dev, &pdev->dev); 2242 platform_set_drvdata(pdev, dev); 2243 2244 BUILD_BUG_ON(sizeof(priv->rates_2GHz) != sizeof(openwifi_2GHz_rates)); 2245 BUILD_BUG_ON(sizeof(priv->rates_5GHz) != sizeof(openwifi_5GHz_rates)); 2246 BUILD_BUG_ON(sizeof(priv->channels_2GHz) != sizeof(openwifi_2GHz_channels)); 2247 BUILD_BUG_ON(sizeof(priv->channels_5GHz) != sizeof(openwifi_5GHz_channels)); 2248 2249 memcpy(priv->rates_2GHz, openwifi_2GHz_rates, sizeof(openwifi_2GHz_rates)); 2250 memcpy(priv->rates_5GHz, openwifi_5GHz_rates, sizeof(openwifi_5GHz_rates)); 2251 memcpy(priv->channels_2GHz, openwifi_2GHz_channels, sizeof(openwifi_2GHz_channels)); 2252 memcpy(priv->channels_5GHz, openwifi_5GHz_channels, sizeof(openwifi_5GHz_channels)); 2253 2254 priv->band = BAND_5_8GHZ; //this can be changed by band _rf_set_channel() (2.4GHz ERP(OFDM)) (5GHz OFDM) 2255 priv->channel = 44; //currently useless. this can be changed by band _rf_set_channel() 2256 priv->use_short_slot = false; //this can be changed by openwifi_bss_info_changed: BSS_CHANGED_ERP_SLOT 2257 priv->ampdu_reference = 0; 2258 2259 priv->band_2GHz.band = NL80211_BAND_2GHZ; 2260 priv->band_2GHz.channels = priv->channels_2GHz; 2261 priv->band_2GHz.n_channels = ARRAY_SIZE(priv->channels_2GHz); 2262 priv->band_2GHz.bitrates = priv->rates_2GHz; 2263 priv->band_2GHz.n_bitrates = ARRAY_SIZE(priv->rates_2GHz); 2264 priv->band_2GHz.ht_cap.ht_supported = true; 2265 priv->band_2GHz.ht_cap.cap = IEEE80211_HT_CAP_SGI_20; 2266 priv->band_2GHz.ht_cap.ampdu_factor = IEEE80211_HT_MAX_AMPDU_8K; 2267 priv->band_2GHz.ht_cap.ampdu_density = IEEE80211_HT_MPDU_DENSITY_2; 2268 memset(&priv->band_2GHz.ht_cap.mcs, 0, sizeof(priv->band_2GHz.ht_cap.mcs)); 2269 priv->band_2GHz.ht_cap.mcs.rx_mask[0] = 0xff; 2270 priv->band_2GHz.ht_cap.mcs.tx_params = IEEE80211_HT_MCS_TX_DEFINED; 2271 dev->wiphy->bands[NL80211_BAND_2GHZ] = &(priv->band_2GHz); 2272 2273 priv->band_5GHz.band = NL80211_BAND_5GHZ; 2274 priv->band_5GHz.channels = priv->channels_5GHz; 2275 priv->band_5GHz.n_channels = ARRAY_SIZE(priv->channels_5GHz); 2276 priv->band_5GHz.bitrates = priv->rates_5GHz; 2277 priv->band_5GHz.n_bitrates = ARRAY_SIZE(priv->rates_5GHz); 2278 priv->band_5GHz.ht_cap.ht_supported = true; 2279 priv->band_5GHz.ht_cap.cap = IEEE80211_HT_CAP_SGI_20; 2280 priv->band_5GHz.ht_cap.ampdu_factor = IEEE80211_HT_MAX_AMPDU_8K; 2281 priv->band_5GHz.ht_cap.ampdu_density = IEEE80211_HT_MPDU_DENSITY_2; 2282 memset(&priv->band_5GHz.ht_cap.mcs, 0, sizeof(priv->band_5GHz.ht_cap.mcs)); 2283 priv->band_5GHz.ht_cap.mcs.rx_mask[0] = 0xff; 2284 priv->band_5GHz.ht_cap.mcs.tx_params = IEEE80211_HT_MCS_TX_DEFINED; 2285 dev->wiphy->bands[NL80211_BAND_5GHZ] = &(priv->band_5GHz); 2286 2287 printk("%s openwifi_dev_probe: band_2GHz.n_channels %d n_bitrates %d band_5GHz.n_channels %d n_bitrates %d\n",sdr_compatible_str, 2288 priv->band_2GHz.n_channels,priv->band_2GHz.n_bitrates,priv->band_5GHz.n_channels,priv->band_5GHz.n_bitrates); 2289 2290 ieee80211_hw_set(dev, HOST_BROADCAST_PS_BUFFERING); 2291 ieee80211_hw_set(dev, RX_INCLUDES_FCS); 2292 ieee80211_hw_set(dev, BEACON_TX_STATUS); 2293 ieee80211_hw_set(dev, AMPDU_AGGREGATION); 2294 2295 dev->vif_data_size = sizeof(struct openwifi_vif); 2296 dev->wiphy->interface_modes = 2297 BIT(NL80211_IFTYPE_MONITOR)| 2298 BIT(NL80211_IFTYPE_P2P_GO) | 2299 BIT(NL80211_IFTYPE_P2P_CLIENT) | 2300 BIT(NL80211_IFTYPE_AP) | 2301 BIT(NL80211_IFTYPE_STATION) | 2302 BIT(NL80211_IFTYPE_ADHOC) | 2303 BIT(NL80211_IFTYPE_MESH_POINT) | 2304 BIT(NL80211_IFTYPE_OCB); 2305 dev->wiphy->iface_combinations = &openwifi_if_comb; 2306 dev->wiphy->n_iface_combinations = 1; 2307 2308 dev->wiphy->regulatory_flags = (REGULATORY_STRICT_REG|REGULATORY_CUSTOM_REG); // use our own config within strict regulation 2309 //dev->wiphy->regulatory_flags = REGULATORY_CUSTOM_REG; // use our own config 2310 wiphy_apply_custom_regulatory(dev->wiphy, &sdr_regd); 2311 2312 chip_name = "ZYNQ"; 2313 2314 /* we declare to MAC80211 all the queues except for beacon queue 2315 * that will be eventually handled by DRV. 2316 * TX rings are arranged in such a way that lower is the IDX, 2317 * higher is the priority, in order to achieve direct mapping 2318 * with mac80211, however the beacon queue is an exception and it 2319 * is mapped on the highst tx ring IDX. 2320 */ 2321 dev->queues = MAX_NUM_HW_QUEUE; 2322 //dev->queues = 1; 2323 2324 ieee80211_hw_set(dev, SIGNAL_DBM); 2325 2326 wiphy_ext_feature_set(dev->wiphy, NL80211_EXT_FEATURE_CQM_RSSI_LIST); 2327 2328 priv->rf = &ad9361_rf_ops; 2329 2330 memset(priv->dest_mac_addr_queue_map,0,sizeof(priv->dest_mac_addr_queue_map)); 2331 priv->slice_idx = 0xFFFFFFFF; 2332 2333 sg_init_table(&(priv->tx_sg), 1); 2334 2335 get_random_bytes(&rand_val, sizeof(rand_val)); 2336 rand_val%=250; 2337 priv->mac_addr[0]=0x66; priv->mac_addr[1]=0x55; priv->mac_addr[2]=0x44; priv->mac_addr[3]=0x33; priv->mac_addr[4]=0x22; 2338 priv->mac_addr[5]=rand_val+1; 2339 //priv->mac_addr[5]=0x11; 2340 if (!is_valid_ether_addr(priv->mac_addr)) { 2341 printk(KERN_WARNING "%s openwifi_dev_probe: WARNING Invalid hwaddr! Using randomly generated MAC addr\n",sdr_compatible_str); 2342 eth_random_addr(priv->mac_addr); 2343 } else { 2344 printk("%s openwifi_dev_probe: mac_addr %02x:%02x:%02x:%02x:%02x:%02x\n",sdr_compatible_str,priv->mac_addr[0],priv->mac_addr[1],priv->mac_addr[2],priv->mac_addr[3],priv->mac_addr[4],priv->mac_addr[5]); 2345 } 2346 SET_IEEE80211_PERM_ADDR(dev, priv->mac_addr); 2347 2348 spin_lock_init(&priv->lock); 2349 2350 err = ieee80211_register_hw(dev); 2351 if (err) { 2352 pr_err(KERN_ERR "%s openwifi_dev_probe: WARNING Cannot register device\n",sdr_compatible_str); 2353 goto err_free_dev; 2354 } else { 2355 printk("%s openwifi_dev_probe: ieee80211_register_hw %d\n",sdr_compatible_str, err); 2356 } 2357 2358 // // //--------------------hook leds (not complete yet)-------------------------------- 2359 // tmp_dev = bus_find_device( &platform_bus_type, NULL, "leds", custom_match_platform_dev ); //leds is the name in devicetree, not "compatible" field 2360 // if (!tmp_dev) { 2361 // printk(KERN_ERR "%s bus_find_device platform_bus_type leds-gpio failed\n",sdr_compatible_str); 2362 // err = -ENOMEM; 2363 // goto err_free_dev; 2364 // } 2365 2366 // tmp_pdev = to_platform_device(tmp_dev); 2367 // if (!tmp_pdev) { 2368 // printk(KERN_ERR "%s to_platform_device failed for leds-gpio\n",sdr_compatible_str); 2369 // err = -ENOMEM; 2370 // goto err_free_dev; 2371 // } 2372 2373 // tmp_led_priv = platform_get_drvdata(tmp_pdev); 2374 // if (!tmp_led_priv) { 2375 // printk(KERN_ERR "%s platform_get_drvdata failed for leds-gpio\n",sdr_compatible_str); 2376 // err = -ENOMEM; 2377 // goto err_free_dev; 2378 // } 2379 // printk("%s openwifi_dev_probe: leds-gpio detect %d leds!\n",sdr_compatible_str, tmp_led_priv->num_leds); 2380 // if (tmp_led_priv->num_leds!=4){ 2381 // printk(KERN_ERR "%s WARNING we expect 4 leds, but actual %d leds\n",sdr_compatible_str,tmp_led_priv->num_leds); 2382 // err = -ENOMEM; 2383 // goto err_free_dev; 2384 // } 2385 // gpiod_set_value(tmp_led_priv->leds[0].gpiod, 1);//light it 2386 // gpiod_set_value(tmp_led_priv->leds[3].gpiod, 0);//black it 2387 // priv->num_led = tmp_led_priv->num_leds; 2388 // priv->led[0] = &(tmp_led_priv->leds[0].cdev); 2389 // priv->led[1] = &(tmp_led_priv->leds[1].cdev); 2390 // priv->led[2] = &(tmp_led_priv->leds[2].cdev); 2391 // priv->led[3] = &(tmp_led_priv->leds[3].cdev); 2392 2393 // snprintf(priv->led_name[0], OPENWIFI_LED_MAX_NAME_LEN, "openwifi-%s::radio", wiphy_name(dev->wiphy)); 2394 // snprintf(priv->led_name[1], OPENWIFI_LED_MAX_NAME_LEN, "openwifi-%s::assoc", wiphy_name(dev->wiphy)); 2395 // snprintf(priv->led_name[2], OPENWIFI_LED_MAX_NAME_LEN, "openwifi-%s::tx", wiphy_name(dev->wiphy)); 2396 // snprintf(priv->led_name[3], OPENWIFI_LED_MAX_NAME_LEN, "openwifi-%s::rx", wiphy_name(dev->wiphy)); 2397 2398 wiphy_info(dev->wiphy, "hwaddr %pm, %s + %s\n", 2399 priv->mac_addr, chip_name, priv->rf->name); 2400 2401 openwifi_rfkill_init(dev); 2402 return 0; 2403 2404 err_free_dev: 2405 ieee80211_free_hw(dev); 2406 2407 return err; 2408 } 2409 2410 static int openwifi_dev_remove(struct platform_device *pdev) 2411 { 2412 struct ieee80211_hw *dev = platform_get_drvdata(pdev); 2413 2414 if (!dev) { 2415 pr_info("%s openwifi_dev_remove: dev %p\n", sdr_compatible_str, (void*)dev); 2416 return(-1); 2417 } 2418 2419 openwifi_rfkill_exit(dev); 2420 ieee80211_unregister_hw(dev); 2421 ieee80211_free_hw(dev); 2422 return(0); 2423 } 2424 2425 static struct platform_driver openwifi_dev_driver = { 2426 .driver = { 2427 .name = "sdr,sdr", 2428 .owner = THIS_MODULE, 2429 .of_match_table = openwifi_dev_of_ids, 2430 }, 2431 .probe = openwifi_dev_probe, 2432 .remove = openwifi_dev_remove, 2433 }; 2434 2435 module_platform_driver(openwifi_dev_driver); 2436