iwlwifi: add wide firmware command infrastructure for TX
[firefly-linux-kernel-4.4.55.git] / drivers / net / wireless / iwlwifi / pcie / trans.c
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65 #include <linux/pci.h>
66 #include <linux/pci-aspm.h>
67 #include <linux/interrupt.h>
68 #include <linux/debugfs.h>
69 #include <linux/sched.h>
70 #include <linux/bitops.h>
71 #include <linux/gfp.h>
72 #include <linux/vmalloc.h>
73
74 #include "iwl-drv.h"
75 #include "iwl-trans.h"
76 #include "iwl-csr.h"
77 #include "iwl-prph.h"
78 #include "iwl-scd.h"
79 #include "iwl-agn-hw.h"
80 #include "iwl-fw-error-dump.h"
81 #include "internal.h"
82 #include "iwl-fh.h"
83
84 /* extended range in FW SRAM */
85 #define IWL_FW_MEM_EXTENDED_START       0x40000
86 #define IWL_FW_MEM_EXTENDED_END         0x57FFF
87
88 static void iwl_pcie_free_fw_monitor(struct iwl_trans *trans)
89 {
90         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
91
92         if (!trans_pcie->fw_mon_page)
93                 return;
94
95         dma_unmap_page(trans->dev, trans_pcie->fw_mon_phys,
96                        trans_pcie->fw_mon_size, DMA_FROM_DEVICE);
97         __free_pages(trans_pcie->fw_mon_page,
98                      get_order(trans_pcie->fw_mon_size));
99         trans_pcie->fw_mon_page = NULL;
100         trans_pcie->fw_mon_phys = 0;
101         trans_pcie->fw_mon_size = 0;
102 }
103
104 static void iwl_pcie_alloc_fw_monitor(struct iwl_trans *trans, u8 max_power)
105 {
106         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
107         struct page *page = NULL;
108         dma_addr_t phys;
109         u32 size = 0;
110         u8 power;
111
112         if (!max_power) {
113                 /* default max_power is maximum */
114                 max_power = 26;
115         } else {
116                 max_power += 11;
117         }
118
119         if (WARN(max_power > 26,
120                  "External buffer size for monitor is too big %d, check the FW TLV\n",
121                  max_power))
122                 return;
123
124         if (trans_pcie->fw_mon_page) {
125                 dma_sync_single_for_device(trans->dev, trans_pcie->fw_mon_phys,
126                                            trans_pcie->fw_mon_size,
127                                            DMA_FROM_DEVICE);
128                 return;
129         }
130
131         phys = 0;
132         for (power = max_power; power >= 11; power--) {
133                 int order;
134
135                 size = BIT(power);
136                 order = get_order(size);
137                 page = alloc_pages(__GFP_COMP | __GFP_NOWARN | __GFP_ZERO,
138                                    order);
139                 if (!page)
140                         continue;
141
142                 phys = dma_map_page(trans->dev, page, 0, PAGE_SIZE << order,
143                                     DMA_FROM_DEVICE);
144                 if (dma_mapping_error(trans->dev, phys)) {
145                         __free_pages(page, order);
146                         page = NULL;
147                         continue;
148                 }
149                 IWL_INFO(trans,
150                          "Allocated 0x%08x bytes (order %d) for firmware monitor.\n",
151                          size, order);
152                 break;
153         }
154
155         if (WARN_ON_ONCE(!page))
156                 return;
157
158         if (power != max_power)
159                 IWL_ERR(trans,
160                         "Sorry - debug buffer is only %luK while you requested %luK\n",
161                         (unsigned long)BIT(power - 10),
162                         (unsigned long)BIT(max_power - 10));
163
164         trans_pcie->fw_mon_page = page;
165         trans_pcie->fw_mon_phys = phys;
166         trans_pcie->fw_mon_size = size;
167 }
168
169 static u32 iwl_trans_pcie_read_shr(struct iwl_trans *trans, u32 reg)
170 {
171         iwl_write32(trans, HEEP_CTRL_WRD_PCIEX_CTRL_REG,
172                     ((reg & 0x0000ffff) | (2 << 28)));
173         return iwl_read32(trans, HEEP_CTRL_WRD_PCIEX_DATA_REG);
174 }
175
176 static void iwl_trans_pcie_write_shr(struct iwl_trans *trans, u32 reg, u32 val)
177 {
178         iwl_write32(trans, HEEP_CTRL_WRD_PCIEX_DATA_REG, val);
179         iwl_write32(trans, HEEP_CTRL_WRD_PCIEX_CTRL_REG,
180                     ((reg & 0x0000ffff) | (3 << 28)));
181 }
182
183 static void iwl_pcie_set_pwr(struct iwl_trans *trans, bool vaux)
184 {
185         if (!trans->cfg->apmg_not_supported)
186                 return;
187
188         if (vaux && pci_pme_capable(to_pci_dev(trans->dev), PCI_D3cold))
189                 iwl_set_bits_mask_prph(trans, APMG_PS_CTRL_REG,
190                                        APMG_PS_CTRL_VAL_PWR_SRC_VAUX,
191                                        ~APMG_PS_CTRL_MSK_PWR_SRC);
192         else
193                 iwl_set_bits_mask_prph(trans, APMG_PS_CTRL_REG,
194                                        APMG_PS_CTRL_VAL_PWR_SRC_VMAIN,
195                                        ~APMG_PS_CTRL_MSK_PWR_SRC);
196 }
197
198 /* PCI registers */
199 #define PCI_CFG_RETRY_TIMEOUT   0x041
200
201 static void iwl_pcie_apm_config(struct iwl_trans *trans)
202 {
203         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
204         u16 lctl;
205         u16 cap;
206
207         /*
208          * HW bug W/A for instability in PCIe bus L0S->L1 transition.
209          * Check if BIOS (or OS) enabled L1-ASPM on this device.
210          * If so (likely), disable L0S, so device moves directly L0->L1;
211          *    costs negligible amount of power savings.
212          * If not (unlikely), enable L0S, so there is at least some
213          *    power savings, even without L1.
214          */
215         pcie_capability_read_word(trans_pcie->pci_dev, PCI_EXP_LNKCTL, &lctl);
216         if (lctl & PCI_EXP_LNKCTL_ASPM_L1)
217                 iwl_set_bit(trans, CSR_GIO_REG, CSR_GIO_REG_VAL_L0S_ENABLED);
218         else
219                 iwl_clear_bit(trans, CSR_GIO_REG, CSR_GIO_REG_VAL_L0S_ENABLED);
220         trans->pm_support = !(lctl & PCI_EXP_LNKCTL_ASPM_L0S);
221
222         pcie_capability_read_word(trans_pcie->pci_dev, PCI_EXP_DEVCTL2, &cap);
223         trans->ltr_enabled = cap & PCI_EXP_DEVCTL2_LTR_EN;
224         dev_info(trans->dev, "L1 %sabled - LTR %sabled\n",
225                  (lctl & PCI_EXP_LNKCTL_ASPM_L1) ? "En" : "Dis",
226                  trans->ltr_enabled ? "En" : "Dis");
227 }
228
229 /*
230  * Start up NIC's basic functionality after it has been reset
231  * (e.g. after platform boot, or shutdown via iwl_pcie_apm_stop())
232  * NOTE:  This does not load uCode nor start the embedded processor
233  */
234 static int iwl_pcie_apm_init(struct iwl_trans *trans)
235 {
236         int ret = 0;
237         IWL_DEBUG_INFO(trans, "Init card's basic functions\n");
238
239         /*
240          * Use "set_bit" below rather than "write", to preserve any hardware
241          * bits already set by default after reset.
242          */
243
244         /* Disable L0S exit timer (platform NMI Work/Around) */
245         if (trans->cfg->device_family != IWL_DEVICE_FAMILY_8000)
246                 iwl_set_bit(trans, CSR_GIO_CHICKEN_BITS,
247                             CSR_GIO_CHICKEN_BITS_REG_BIT_DIS_L0S_EXIT_TIMER);
248
249         /*
250          * Disable L0s without affecting L1;
251          *  don't wait for ICH L0s (ICH bug W/A)
252          */
253         iwl_set_bit(trans, CSR_GIO_CHICKEN_BITS,
254                     CSR_GIO_CHICKEN_BITS_REG_BIT_L1A_NO_L0S_RX);
255
256         /* Set FH wait threshold to maximum (HW error during stress W/A) */
257         iwl_set_bit(trans, CSR_DBG_HPET_MEM_REG, CSR_DBG_HPET_MEM_REG_VAL);
258
259         /*
260          * Enable HAP INTA (interrupt from management bus) to
261          * wake device's PCI Express link L1a -> L0s
262          */
263         iwl_set_bit(trans, CSR_HW_IF_CONFIG_REG,
264                     CSR_HW_IF_CONFIG_REG_BIT_HAP_WAKE_L1A);
265
266         iwl_pcie_apm_config(trans);
267
268         /* Configure analog phase-lock-loop before activating to D0A */
269         if (trans->cfg->base_params->pll_cfg_val)
270                 iwl_set_bit(trans, CSR_ANA_PLL_CFG,
271                             trans->cfg->base_params->pll_cfg_val);
272
273         /*
274          * Set "initialization complete" bit to move adapter from
275          * D0U* --> D0A* (powered-up active) state.
276          */
277         iwl_set_bit(trans, CSR_GP_CNTRL, CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
278
279         /*
280          * Wait for clock stabilization; once stabilized, access to
281          * device-internal resources is supported, e.g. iwl_write_prph()
282          * and accesses to uCode SRAM.
283          */
284         ret = iwl_poll_bit(trans, CSR_GP_CNTRL,
285                            CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY,
286                            CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY, 25000);
287         if (ret < 0) {
288                 IWL_DEBUG_INFO(trans, "Failed to init the card\n");
289                 goto out;
290         }
291
292         if (trans->cfg->host_interrupt_operation_mode) {
293                 /*
294                  * This is a bit of an abuse - This is needed for 7260 / 3160
295                  * only check host_interrupt_operation_mode even if this is
296                  * not related to host_interrupt_operation_mode.
297                  *
298                  * Enable the oscillator to count wake up time for L1 exit. This
299                  * consumes slightly more power (100uA) - but allows to be sure
300                  * that we wake up from L1 on time.
301                  *
302                  * This looks weird: read twice the same register, discard the
303                  * value, set a bit, and yet again, read that same register
304                  * just to discard the value. But that's the way the hardware
305                  * seems to like it.
306                  */
307                 iwl_read_prph(trans, OSC_CLK);
308                 iwl_read_prph(trans, OSC_CLK);
309                 iwl_set_bits_prph(trans, OSC_CLK, OSC_CLK_FORCE_CONTROL);
310                 iwl_read_prph(trans, OSC_CLK);
311                 iwl_read_prph(trans, OSC_CLK);
312         }
313
314         /*
315          * Enable DMA clock and wait for it to stabilize.
316          *
317          * Write to "CLK_EN_REG"; "1" bits enable clocks, while "0"
318          * bits do not disable clocks.  This preserves any hardware
319          * bits already set by default in "CLK_CTRL_REG" after reset.
320          */
321         if (!trans->cfg->apmg_not_supported) {
322                 iwl_write_prph(trans, APMG_CLK_EN_REG,
323                                APMG_CLK_VAL_DMA_CLK_RQT);
324                 udelay(20);
325
326                 /* Disable L1-Active */
327                 iwl_set_bits_prph(trans, APMG_PCIDEV_STT_REG,
328                                   APMG_PCIDEV_STT_VAL_L1_ACT_DIS);
329
330                 /* Clear the interrupt in APMG if the NIC is in RFKILL */
331                 iwl_write_prph(trans, APMG_RTC_INT_STT_REG,
332                                APMG_RTC_INT_STT_RFKILL);
333         }
334
335         set_bit(STATUS_DEVICE_ENABLED, &trans->status);
336
337 out:
338         return ret;
339 }
340
341 /*
342  * Enable LP XTAL to avoid HW bug where device may consume much power if
343  * FW is not loaded after device reset. LP XTAL is disabled by default
344  * after device HW reset. Do it only if XTAL is fed by internal source.
345  * Configure device's "persistence" mode to avoid resetting XTAL again when
346  * SHRD_HW_RST occurs in S3.
347  */
348 static void iwl_pcie_apm_lp_xtal_enable(struct iwl_trans *trans)
349 {
350         int ret;
351         u32 apmg_gp1_reg;
352         u32 apmg_xtal_cfg_reg;
353         u32 dl_cfg_reg;
354
355         /* Force XTAL ON */
356         __iwl_trans_pcie_set_bit(trans, CSR_GP_CNTRL,
357                                  CSR_GP_CNTRL_REG_FLAG_XTAL_ON);
358
359         /* Reset entire device - do controller reset (results in SHRD_HW_RST) */
360         iwl_set_bit(trans, CSR_RESET, CSR_RESET_REG_FLAG_SW_RESET);
361
362         udelay(10);
363
364         /*
365          * Set "initialization complete" bit to move adapter from
366          * D0U* --> D0A* (powered-up active) state.
367          */
368         iwl_set_bit(trans, CSR_GP_CNTRL, CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
369
370         /*
371          * Wait for clock stabilization; once stabilized, access to
372          * device-internal resources is possible.
373          */
374         ret = iwl_poll_bit(trans, CSR_GP_CNTRL,
375                            CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY,
376                            CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY,
377                            25000);
378         if (WARN_ON(ret < 0)) {
379                 IWL_ERR(trans, "Access time out - failed to enable LP XTAL\n");
380                 /* Release XTAL ON request */
381                 __iwl_trans_pcie_clear_bit(trans, CSR_GP_CNTRL,
382                                            CSR_GP_CNTRL_REG_FLAG_XTAL_ON);
383                 return;
384         }
385
386         /*
387          * Clear "disable persistence" to avoid LP XTAL resetting when
388          * SHRD_HW_RST is applied in S3.
389          */
390         iwl_clear_bits_prph(trans, APMG_PCIDEV_STT_REG,
391                                     APMG_PCIDEV_STT_VAL_PERSIST_DIS);
392
393         /*
394          * Force APMG XTAL to be active to prevent its disabling by HW
395          * caused by APMG idle state.
396          */
397         apmg_xtal_cfg_reg = iwl_trans_pcie_read_shr(trans,
398                                                     SHR_APMG_XTAL_CFG_REG);
399         iwl_trans_pcie_write_shr(trans, SHR_APMG_XTAL_CFG_REG,
400                                  apmg_xtal_cfg_reg |
401                                  SHR_APMG_XTAL_CFG_XTAL_ON_REQ);
402
403         /*
404          * Reset entire device again - do controller reset (results in
405          * SHRD_HW_RST). Turn MAC off before proceeding.
406          */
407         iwl_set_bit(trans, CSR_RESET, CSR_RESET_REG_FLAG_SW_RESET);
408
409         udelay(10);
410
411         /* Enable LP XTAL by indirect access through CSR */
412         apmg_gp1_reg = iwl_trans_pcie_read_shr(trans, SHR_APMG_GP1_REG);
413         iwl_trans_pcie_write_shr(trans, SHR_APMG_GP1_REG, apmg_gp1_reg |
414                                  SHR_APMG_GP1_WF_XTAL_LP_EN |
415                                  SHR_APMG_GP1_CHICKEN_BIT_SELECT);
416
417         /* Clear delay line clock power up */
418         dl_cfg_reg = iwl_trans_pcie_read_shr(trans, SHR_APMG_DL_CFG_REG);
419         iwl_trans_pcie_write_shr(trans, SHR_APMG_DL_CFG_REG, dl_cfg_reg &
420                                  ~SHR_APMG_DL_CFG_DL_CLOCK_POWER_UP);
421
422         /*
423          * Enable persistence mode to avoid LP XTAL resetting when
424          * SHRD_HW_RST is applied in S3.
425          */
426         iwl_set_bit(trans, CSR_HW_IF_CONFIG_REG,
427                     CSR_HW_IF_CONFIG_REG_PERSIST_MODE);
428
429         /*
430          * Clear "initialization complete" bit to move adapter from
431          * D0A* (powered-up Active) --> D0U* (Uninitialized) state.
432          */
433         iwl_clear_bit(trans, CSR_GP_CNTRL,
434                       CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
435
436         /* Activates XTAL resources monitor */
437         __iwl_trans_pcie_set_bit(trans, CSR_MONITOR_CFG_REG,
438                                  CSR_MONITOR_XTAL_RESOURCES);
439
440         /* Release XTAL ON request */
441         __iwl_trans_pcie_clear_bit(trans, CSR_GP_CNTRL,
442                                    CSR_GP_CNTRL_REG_FLAG_XTAL_ON);
443         udelay(10);
444
445         /* Release APMG XTAL */
446         iwl_trans_pcie_write_shr(trans, SHR_APMG_XTAL_CFG_REG,
447                                  apmg_xtal_cfg_reg &
448                                  ~SHR_APMG_XTAL_CFG_XTAL_ON_REQ);
449 }
450
451 static int iwl_pcie_apm_stop_master(struct iwl_trans *trans)
452 {
453         int ret = 0;
454
455         /* stop device's busmaster DMA activity */
456         iwl_set_bit(trans, CSR_RESET, CSR_RESET_REG_FLAG_STOP_MASTER);
457
458         ret = iwl_poll_bit(trans, CSR_RESET,
459                            CSR_RESET_REG_FLAG_MASTER_DISABLED,
460                            CSR_RESET_REG_FLAG_MASTER_DISABLED, 100);
461         if (ret < 0)
462                 IWL_WARN(trans, "Master Disable Timed Out, 100 usec\n");
463
464         IWL_DEBUG_INFO(trans, "stop master\n");
465
466         return ret;
467 }
468
469 static void iwl_pcie_apm_stop(struct iwl_trans *trans, bool op_mode_leave)
470 {
471         IWL_DEBUG_INFO(trans, "Stop card, put in low power state\n");
472
473         if (op_mode_leave) {
474                 if (!test_bit(STATUS_DEVICE_ENABLED, &trans->status))
475                         iwl_pcie_apm_init(trans);
476
477                 /* inform ME that we are leaving */
478                 if (trans->cfg->device_family == IWL_DEVICE_FAMILY_7000)
479                         iwl_set_bits_prph(trans, APMG_PCIDEV_STT_REG,
480                                           APMG_PCIDEV_STT_VAL_WAKE_ME);
481                 else if (trans->cfg->device_family == IWL_DEVICE_FAMILY_8000)
482                         iwl_set_bit(trans, CSR_HW_IF_CONFIG_REG,
483                                     CSR_HW_IF_CONFIG_REG_PREPARE |
484                                     CSR_HW_IF_CONFIG_REG_ENABLE_PME);
485                 mdelay(5);
486         }
487
488         clear_bit(STATUS_DEVICE_ENABLED, &trans->status);
489
490         /* Stop device's DMA activity */
491         iwl_pcie_apm_stop_master(trans);
492
493         if (trans->cfg->lp_xtal_workaround) {
494                 iwl_pcie_apm_lp_xtal_enable(trans);
495                 return;
496         }
497
498         /* Reset the entire device */
499         iwl_set_bit(trans, CSR_RESET, CSR_RESET_REG_FLAG_SW_RESET);
500
501         udelay(10);
502
503         /*
504          * Clear "initialization complete" bit to move adapter from
505          * D0A* (powered-up Active) --> D0U* (Uninitialized) state.
506          */
507         iwl_clear_bit(trans, CSR_GP_CNTRL,
508                       CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
509 }
510
511 static int iwl_pcie_nic_init(struct iwl_trans *trans)
512 {
513         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
514
515         /* nic_init */
516         spin_lock(&trans_pcie->irq_lock);
517         iwl_pcie_apm_init(trans);
518
519         spin_unlock(&trans_pcie->irq_lock);
520
521         iwl_pcie_set_pwr(trans, false);
522
523         iwl_op_mode_nic_config(trans->op_mode);
524
525         /* Allocate the RX queue, or reset if it is already allocated */
526         iwl_pcie_rx_init(trans);
527
528         /* Allocate or reset and init all Tx and Command queues */
529         if (iwl_pcie_tx_init(trans))
530                 return -ENOMEM;
531
532         if (trans->cfg->base_params->shadow_reg_enable) {
533                 /* enable shadow regs in HW */
534                 iwl_set_bit(trans, CSR_MAC_SHADOW_REG_CTRL, 0x800FFFFF);
535                 IWL_DEBUG_INFO(trans, "Enabling shadow registers in device\n");
536         }
537
538         return 0;
539 }
540
541 #define HW_READY_TIMEOUT (50)
542
543 /* Note: returns poll_bit return value, which is >= 0 if success */
544 static int iwl_pcie_set_hw_ready(struct iwl_trans *trans)
545 {
546         int ret;
547
548         iwl_set_bit(trans, CSR_HW_IF_CONFIG_REG,
549                     CSR_HW_IF_CONFIG_REG_BIT_NIC_READY);
550
551         /* See if we got it */
552         ret = iwl_poll_bit(trans, CSR_HW_IF_CONFIG_REG,
553                            CSR_HW_IF_CONFIG_REG_BIT_NIC_READY,
554                            CSR_HW_IF_CONFIG_REG_BIT_NIC_READY,
555                            HW_READY_TIMEOUT);
556
557         if (ret >= 0)
558                 iwl_set_bit(trans, CSR_MBOX_SET_REG, CSR_MBOX_SET_REG_OS_ALIVE);
559
560         IWL_DEBUG_INFO(trans, "hardware%s ready\n", ret < 0 ? " not" : "");
561         return ret;
562 }
563
564 /* Note: returns standard 0/-ERROR code */
565 static int iwl_pcie_prepare_card_hw(struct iwl_trans *trans)
566 {
567         int ret;
568         int t = 0;
569         int iter;
570
571         IWL_DEBUG_INFO(trans, "iwl_trans_prepare_card_hw enter\n");
572
573         ret = iwl_pcie_set_hw_ready(trans);
574         /* If the card is ready, exit 0 */
575         if (ret >= 0)
576                 return 0;
577
578         for (iter = 0; iter < 10; iter++) {
579                 /* If HW is not ready, prepare the conditions to check again */
580                 iwl_set_bit(trans, CSR_HW_IF_CONFIG_REG,
581                             CSR_HW_IF_CONFIG_REG_PREPARE);
582
583                 do {
584                         ret = iwl_pcie_set_hw_ready(trans);
585                         if (ret >= 0)
586                                 return 0;
587
588                         usleep_range(200, 1000);
589                         t += 200;
590                 } while (t < 150000);
591                 msleep(25);
592         }
593
594         IWL_ERR(trans, "Couldn't prepare the card\n");
595
596         return ret;
597 }
598
599 /*
600  * ucode
601  */
602 static int iwl_pcie_load_firmware_chunk(struct iwl_trans *trans, u32 dst_addr,
603                                    dma_addr_t phy_addr, u32 byte_cnt)
604 {
605         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
606         int ret;
607
608         trans_pcie->ucode_write_complete = false;
609
610         iwl_write_direct32(trans,
611                            FH_TCSR_CHNL_TX_CONFIG_REG(FH_SRVC_CHNL),
612                            FH_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_PAUSE);
613
614         iwl_write_direct32(trans,
615                            FH_SRVC_CHNL_SRAM_ADDR_REG(FH_SRVC_CHNL),
616                            dst_addr);
617
618         iwl_write_direct32(trans,
619                            FH_TFDIB_CTRL0_REG(FH_SRVC_CHNL),
620                            phy_addr & FH_MEM_TFDIB_DRAM_ADDR_LSB_MSK);
621
622         iwl_write_direct32(trans,
623                            FH_TFDIB_CTRL1_REG(FH_SRVC_CHNL),
624                            (iwl_get_dma_hi_addr(phy_addr)
625                                 << FH_MEM_TFDIB_REG1_ADDR_BITSHIFT) | byte_cnt);
626
627         iwl_write_direct32(trans,
628                            FH_TCSR_CHNL_TX_BUF_STS_REG(FH_SRVC_CHNL),
629                            1 << FH_TCSR_CHNL_TX_BUF_STS_REG_POS_TB_NUM |
630                            1 << FH_TCSR_CHNL_TX_BUF_STS_REG_POS_TB_IDX |
631                            FH_TCSR_CHNL_TX_BUF_STS_REG_VAL_TFDB_VALID);
632
633         iwl_write_direct32(trans,
634                            FH_TCSR_CHNL_TX_CONFIG_REG(FH_SRVC_CHNL),
635                            FH_TCSR_TX_CONFIG_REG_VAL_DMA_CHNL_ENABLE    |
636                            FH_TCSR_TX_CONFIG_REG_VAL_DMA_CREDIT_DISABLE |
637                            FH_TCSR_TX_CONFIG_REG_VAL_CIRQ_HOST_ENDTFD);
638
639         ret = wait_event_timeout(trans_pcie->ucode_write_waitq,
640                                  trans_pcie->ucode_write_complete, 5 * HZ);
641         if (!ret) {
642                 IWL_ERR(trans, "Failed to load firmware chunk!\n");
643                 return -ETIMEDOUT;
644         }
645
646         return 0;
647 }
648
649 static int iwl_pcie_load_section(struct iwl_trans *trans, u8 section_num,
650                             const struct fw_desc *section)
651 {
652         u8 *v_addr;
653         dma_addr_t p_addr;
654         u32 offset, chunk_sz = min_t(u32, FH_MEM_TB_MAX_LENGTH, section->len);
655         int ret = 0;
656
657         IWL_DEBUG_FW(trans, "[%d] uCode section being loaded...\n",
658                      section_num);
659
660         v_addr = dma_alloc_coherent(trans->dev, chunk_sz, &p_addr,
661                                     GFP_KERNEL | __GFP_NOWARN);
662         if (!v_addr) {
663                 IWL_DEBUG_INFO(trans, "Falling back to small chunks of DMA\n");
664                 chunk_sz = PAGE_SIZE;
665                 v_addr = dma_alloc_coherent(trans->dev, chunk_sz,
666                                             &p_addr, GFP_KERNEL);
667                 if (!v_addr)
668                         return -ENOMEM;
669         }
670
671         for (offset = 0; offset < section->len; offset += chunk_sz) {
672                 u32 copy_size, dst_addr;
673                 bool extended_addr = false;
674
675                 copy_size = min_t(u32, chunk_sz, section->len - offset);
676                 dst_addr = section->offset + offset;
677
678                 if (dst_addr >= IWL_FW_MEM_EXTENDED_START &&
679                     dst_addr <= IWL_FW_MEM_EXTENDED_END)
680                         extended_addr = true;
681
682                 if (extended_addr)
683                         iwl_set_bits_prph(trans, LMPM_CHICK,
684                                           LMPM_CHICK_EXTENDED_ADDR_SPACE);
685
686                 memcpy(v_addr, (u8 *)section->data + offset, copy_size);
687                 ret = iwl_pcie_load_firmware_chunk(trans, dst_addr, p_addr,
688                                                    copy_size);
689
690                 if (extended_addr)
691                         iwl_clear_bits_prph(trans, LMPM_CHICK,
692                                             LMPM_CHICK_EXTENDED_ADDR_SPACE);
693
694                 if (ret) {
695                         IWL_ERR(trans,
696                                 "Could not load the [%d] uCode section\n",
697                                 section_num);
698                         break;
699                 }
700         }
701
702         dma_free_coherent(trans->dev, chunk_sz, v_addr, p_addr);
703         return ret;
704 }
705
706 /*
707  * Driver Takes the ownership on secure machine before FW load
708  * and prevent race with the BT load.
709  * W/A for ROM bug. (should be remove in the next Si step)
710  */
711 static int iwl_pcie_rsa_race_bug_wa(struct iwl_trans *trans)
712 {
713         u32 val, loop = 1000;
714
715         /*
716          * Check the RSA semaphore is accessible.
717          * If the HW isn't locked and the rsa semaphore isn't accessible,
718          * we are in trouble.
719          */
720         val = iwl_read_prph(trans, PREG_AUX_BUS_WPROT_0);
721         if (val & (BIT(1) | BIT(17))) {
722                 IWL_INFO(trans,
723                          "can't access the RSA semaphore it is write protected\n");
724                 return 0;
725         }
726
727         /* take ownership on the AUX IF */
728         iwl_write_prph(trans, WFPM_CTRL_REG, WFPM_AUX_CTL_AUX_IF_MAC_OWNER_MSK);
729         iwl_write_prph(trans, AUX_MISC_MASTER1_EN, AUX_MISC_MASTER1_EN_SBE_MSK);
730
731         do {
732                 iwl_write_prph(trans, AUX_MISC_MASTER1_SMPHR_STATUS, 0x1);
733                 val = iwl_read_prph(trans, AUX_MISC_MASTER1_SMPHR_STATUS);
734                 if (val == 0x1) {
735                         iwl_write_prph(trans, RSA_ENABLE, 0);
736                         return 0;
737                 }
738
739                 udelay(10);
740                 loop--;
741         } while (loop > 0);
742
743         IWL_ERR(trans, "Failed to take ownership on secure machine\n");
744         return -EIO;
745 }
746
747 static int iwl_pcie_load_cpu_sections_8000(struct iwl_trans *trans,
748                                            const struct fw_img *image,
749                                            int cpu,
750                                            int *first_ucode_section)
751 {
752         int shift_param;
753         int i, ret = 0, sec_num = 0x1;
754         u32 val, last_read_idx = 0;
755
756         if (cpu == 1) {
757                 shift_param = 0;
758                 *first_ucode_section = 0;
759         } else {
760                 shift_param = 16;
761                 (*first_ucode_section)++;
762         }
763
764         for (i = *first_ucode_section; i < IWL_UCODE_SECTION_MAX; i++) {
765                 last_read_idx = i;
766
767                 if (!image->sec[i].data ||
768                     image->sec[i].offset == CPU1_CPU2_SEPARATOR_SECTION) {
769                         IWL_DEBUG_FW(trans,
770                                      "Break since Data not valid or Empty section, sec = %d\n",
771                                      i);
772                         break;
773                 }
774
775                 ret = iwl_pcie_load_section(trans, i, &image->sec[i]);
776                 if (ret)
777                         return ret;
778
779                 /* Notify the ucode of the loaded section number and status */
780                 val = iwl_read_direct32(trans, FH_UCODE_LOAD_STATUS);
781                 val = val | (sec_num << shift_param);
782                 iwl_write_direct32(trans, FH_UCODE_LOAD_STATUS, val);
783                 sec_num = (sec_num << 1) | 0x1;
784         }
785
786         *first_ucode_section = last_read_idx;
787
788         if (cpu == 1)
789                 iwl_write_direct32(trans, FH_UCODE_LOAD_STATUS, 0xFFFF);
790         else
791                 iwl_write_direct32(trans, FH_UCODE_LOAD_STATUS, 0xFFFFFFFF);
792
793         return 0;
794 }
795
796 static int iwl_pcie_load_cpu_sections(struct iwl_trans *trans,
797                                       const struct fw_img *image,
798                                       int cpu,
799                                       int *first_ucode_section)
800 {
801         int shift_param;
802         int i, ret = 0;
803         u32 last_read_idx = 0;
804
805         if (cpu == 1) {
806                 shift_param = 0;
807                 *first_ucode_section = 0;
808         } else {
809                 shift_param = 16;
810                 (*first_ucode_section)++;
811         }
812
813         for (i = *first_ucode_section; i < IWL_UCODE_SECTION_MAX; i++) {
814                 last_read_idx = i;
815
816                 if (!image->sec[i].data ||
817                     image->sec[i].offset == CPU1_CPU2_SEPARATOR_SECTION) {
818                         IWL_DEBUG_FW(trans,
819                                      "Break since Data not valid or Empty section, sec = %d\n",
820                                      i);
821                         break;
822                 }
823
824                 ret = iwl_pcie_load_section(trans, i, &image->sec[i]);
825                 if (ret)
826                         return ret;
827         }
828
829         if (trans->cfg->device_family == IWL_DEVICE_FAMILY_8000)
830                 iwl_set_bits_prph(trans,
831                                   CSR_UCODE_LOAD_STATUS_ADDR,
832                                   (LMPM_CPU_UCODE_LOADING_COMPLETED |
833                                    LMPM_CPU_HDRS_LOADING_COMPLETED |
834                                    LMPM_CPU_UCODE_LOADING_STARTED) <<
835                                         shift_param);
836
837         *first_ucode_section = last_read_idx;
838
839         return 0;
840 }
841
842 static void iwl_pcie_apply_destination(struct iwl_trans *trans)
843 {
844         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
845         const struct iwl_fw_dbg_dest_tlv *dest = trans->dbg_dest_tlv;
846         int i;
847
848         if (dest->version)
849                 IWL_ERR(trans,
850                         "DBG DEST version is %d - expect issues\n",
851                         dest->version);
852
853         IWL_INFO(trans, "Applying debug destination %s\n",
854                  get_fw_dbg_mode_string(dest->monitor_mode));
855
856         if (dest->monitor_mode == EXTERNAL_MODE)
857                 iwl_pcie_alloc_fw_monitor(trans, dest->size_power);
858         else
859                 IWL_WARN(trans, "PCI should have external buffer debug\n");
860
861         for (i = 0; i < trans->dbg_dest_reg_num; i++) {
862                 u32 addr = le32_to_cpu(dest->reg_ops[i].addr);
863                 u32 val = le32_to_cpu(dest->reg_ops[i].val);
864
865                 switch (dest->reg_ops[i].op) {
866                 case CSR_ASSIGN:
867                         iwl_write32(trans, addr, val);
868                         break;
869                 case CSR_SETBIT:
870                         iwl_set_bit(trans, addr, BIT(val));
871                         break;
872                 case CSR_CLEARBIT:
873                         iwl_clear_bit(trans, addr, BIT(val));
874                         break;
875                 case PRPH_ASSIGN:
876                         iwl_write_prph(trans, addr, val);
877                         break;
878                 case PRPH_SETBIT:
879                         iwl_set_bits_prph(trans, addr, BIT(val));
880                         break;
881                 case PRPH_CLEARBIT:
882                         iwl_clear_bits_prph(trans, addr, BIT(val));
883                         break;
884                 default:
885                         IWL_ERR(trans, "FW debug - unknown OP %d\n",
886                                 dest->reg_ops[i].op);
887                         break;
888                 }
889         }
890
891         if (dest->monitor_mode == EXTERNAL_MODE && trans_pcie->fw_mon_size) {
892                 iwl_write_prph(trans, le32_to_cpu(dest->base_reg),
893                                trans_pcie->fw_mon_phys >> dest->base_shift);
894                 iwl_write_prph(trans, le32_to_cpu(dest->end_reg),
895                                (trans_pcie->fw_mon_phys +
896                                 trans_pcie->fw_mon_size) >> dest->end_shift);
897         }
898 }
899
900 static int iwl_pcie_load_given_ucode(struct iwl_trans *trans,
901                                 const struct fw_img *image)
902 {
903         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
904         int ret = 0;
905         int first_ucode_section;
906
907         IWL_DEBUG_FW(trans, "working with %s CPU\n",
908                      image->is_dual_cpus ? "Dual" : "Single");
909
910         /* load to FW the binary non secured sections of CPU1 */
911         ret = iwl_pcie_load_cpu_sections(trans, image, 1, &first_ucode_section);
912         if (ret)
913                 return ret;
914
915         if (image->is_dual_cpus) {
916                 /* set CPU2 header address */
917                 iwl_write_prph(trans,
918                                LMPM_SECURE_UCODE_LOAD_CPU2_HDR_ADDR,
919                                LMPM_SECURE_CPU2_HDR_MEM_SPACE);
920
921                 /* load to FW the binary sections of CPU2 */
922                 ret = iwl_pcie_load_cpu_sections(trans, image, 2,
923                                                  &first_ucode_section);
924                 if (ret)
925                         return ret;
926         }
927
928         /* supported for 7000 only for the moment */
929         if (iwlwifi_mod_params.fw_monitor &&
930             trans->cfg->device_family == IWL_DEVICE_FAMILY_7000) {
931                 iwl_pcie_alloc_fw_monitor(trans, 0);
932
933                 if (trans_pcie->fw_mon_size) {
934                         iwl_write_prph(trans, MON_BUFF_BASE_ADDR,
935                                        trans_pcie->fw_mon_phys >> 4);
936                         iwl_write_prph(trans, MON_BUFF_END_ADDR,
937                                        (trans_pcie->fw_mon_phys +
938                                         trans_pcie->fw_mon_size) >> 4);
939                 }
940         } else if (trans->dbg_dest_tlv) {
941                 iwl_pcie_apply_destination(trans);
942         }
943
944         /* release CPU reset */
945         iwl_write32(trans, CSR_RESET, 0);
946
947         return 0;
948 }
949
950 static int iwl_pcie_load_given_ucode_8000(struct iwl_trans *trans,
951                                           const struct fw_img *image)
952 {
953         int ret = 0;
954         int first_ucode_section;
955
956         IWL_DEBUG_FW(trans, "working with %s CPU\n",
957                      image->is_dual_cpus ? "Dual" : "Single");
958
959         if (trans->dbg_dest_tlv)
960                 iwl_pcie_apply_destination(trans);
961
962         /* TODO: remove in the next Si step */
963         ret = iwl_pcie_rsa_race_bug_wa(trans);
964         if (ret)
965                 return ret;
966
967         /* configure the ucode to be ready to get the secured image */
968         /* release CPU reset */
969         iwl_write_prph(trans, RELEASE_CPU_RESET, RELEASE_CPU_RESET_BIT);
970
971         /* load to FW the binary Secured sections of CPU1 */
972         ret = iwl_pcie_load_cpu_sections_8000(trans, image, 1,
973                                               &first_ucode_section);
974         if (ret)
975                 return ret;
976
977         /* load to FW the binary sections of CPU2 */
978         return iwl_pcie_load_cpu_sections_8000(trans, image, 2,
979                                                &first_ucode_section);
980 }
981
982 static int iwl_trans_pcie_start_fw(struct iwl_trans *trans,
983                                    const struct fw_img *fw, bool run_in_rfkill)
984 {
985         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
986         bool hw_rfkill;
987         int ret;
988
989         mutex_lock(&trans_pcie->mutex);
990
991         /* Someone called stop_device, don't try to start_fw */
992         if (trans_pcie->is_down) {
993                 IWL_WARN(trans,
994                          "Can't start_fw since the HW hasn't been started\n");
995                 ret = EIO;
996                 goto out;
997         }
998
999         /* This may fail if AMT took ownership of the device */
1000         if (iwl_pcie_prepare_card_hw(trans)) {
1001                 IWL_WARN(trans, "Exit HW not ready\n");
1002                 ret = -EIO;
1003                 goto out;
1004         }
1005
1006         iwl_enable_rfkill_int(trans);
1007
1008         /* If platform's RF_KILL switch is NOT set to KILL */
1009         hw_rfkill = iwl_is_rfkill_set(trans);
1010         if (hw_rfkill)
1011                 set_bit(STATUS_RFKILL, &trans->status);
1012         else
1013                 clear_bit(STATUS_RFKILL, &trans->status);
1014         iwl_trans_pcie_rf_kill(trans, hw_rfkill);
1015         if (hw_rfkill && !run_in_rfkill) {
1016                 ret = -ERFKILL;
1017                 goto out;
1018         }
1019
1020         iwl_write32(trans, CSR_INT, 0xFFFFFFFF);
1021
1022         ret = iwl_pcie_nic_init(trans);
1023         if (ret) {
1024                 IWL_ERR(trans, "Unable to init nic\n");
1025                 goto out;
1026         }
1027
1028         /* make sure rfkill handshake bits are cleared */
1029         iwl_write32(trans, CSR_UCODE_DRV_GP1_CLR, CSR_UCODE_SW_BIT_RFKILL);
1030         iwl_write32(trans, CSR_UCODE_DRV_GP1_CLR,
1031                     CSR_UCODE_DRV_GP1_BIT_CMD_BLOCKED);
1032
1033         /* clear (again), then enable host interrupts */
1034         iwl_write32(trans, CSR_INT, 0xFFFFFFFF);
1035         iwl_enable_interrupts(trans);
1036
1037         /* really make sure rfkill handshake bits are cleared */
1038         iwl_write32(trans, CSR_UCODE_DRV_GP1_CLR, CSR_UCODE_SW_BIT_RFKILL);
1039         iwl_write32(trans, CSR_UCODE_DRV_GP1_CLR, CSR_UCODE_SW_BIT_RFKILL);
1040
1041         /* Load the given image to the HW */
1042         if (trans->cfg->device_family == IWL_DEVICE_FAMILY_8000)
1043                 ret = iwl_pcie_load_given_ucode_8000(trans, fw);
1044         else
1045                 ret = iwl_pcie_load_given_ucode(trans, fw);
1046
1047 out:
1048         mutex_unlock(&trans_pcie->mutex);
1049         return ret;
1050 }
1051
1052 static void iwl_trans_pcie_fw_alive(struct iwl_trans *trans, u32 scd_addr)
1053 {
1054         iwl_pcie_reset_ict(trans);
1055         iwl_pcie_tx_start(trans, scd_addr);
1056 }
1057
1058 static void _iwl_trans_pcie_stop_device(struct iwl_trans *trans, bool low_power)
1059 {
1060         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1061         bool hw_rfkill, was_hw_rfkill;
1062
1063         lockdep_assert_held(&trans_pcie->mutex);
1064
1065         if (trans_pcie->is_down)
1066                 return;
1067
1068         trans_pcie->is_down = true;
1069
1070         was_hw_rfkill = iwl_is_rfkill_set(trans);
1071
1072         /* tell the device to stop sending interrupts */
1073         spin_lock(&trans_pcie->irq_lock);
1074         iwl_disable_interrupts(trans);
1075         spin_unlock(&trans_pcie->irq_lock);
1076
1077         /* device going down, Stop using ICT table */
1078         iwl_pcie_disable_ict(trans);
1079
1080         /*
1081          * If a HW restart happens during firmware loading,
1082          * then the firmware loading might call this function
1083          * and later it might be called again due to the
1084          * restart. So don't process again if the device is
1085          * already dead.
1086          */
1087         if (test_and_clear_bit(STATUS_DEVICE_ENABLED, &trans->status)) {
1088                 IWL_DEBUG_INFO(trans, "DEVICE_ENABLED bit was set and is now cleared\n");
1089                 iwl_pcie_tx_stop(trans);
1090                 iwl_pcie_rx_stop(trans);
1091
1092                 /* Power-down device's busmaster DMA clocks */
1093                 if (!trans->cfg->apmg_not_supported) {
1094                         iwl_write_prph(trans, APMG_CLK_DIS_REG,
1095                                        APMG_CLK_VAL_DMA_CLK_RQT);
1096                         udelay(5);
1097                 }
1098         }
1099
1100         /* Make sure (redundant) we've released our request to stay awake */
1101         iwl_clear_bit(trans, CSR_GP_CNTRL,
1102                       CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
1103
1104         /* Stop the device, and put it in low power state */
1105         iwl_pcie_apm_stop(trans, false);
1106
1107         /* stop and reset the on-board processor */
1108         iwl_write32(trans, CSR_RESET, CSR_RESET_REG_FLAG_SW_RESET);
1109         udelay(20);
1110
1111         /*
1112          * Upon stop, the APM issues an interrupt if HW RF kill is set.
1113          * This is a bug in certain verions of the hardware.
1114          * Certain devices also keep sending HW RF kill interrupt all
1115          * the time, unless the interrupt is ACKed even if the interrupt
1116          * should be masked. Re-ACK all the interrupts here.
1117          */
1118         spin_lock(&trans_pcie->irq_lock);
1119         iwl_disable_interrupts(trans);
1120         spin_unlock(&trans_pcie->irq_lock);
1121
1122
1123         /* clear all status bits */
1124         clear_bit(STATUS_SYNC_HCMD_ACTIVE, &trans->status);
1125         clear_bit(STATUS_INT_ENABLED, &trans->status);
1126         clear_bit(STATUS_TPOWER_PMI, &trans->status);
1127         clear_bit(STATUS_RFKILL, &trans->status);
1128
1129         /*
1130          * Even if we stop the HW, we still want the RF kill
1131          * interrupt
1132          */
1133         iwl_enable_rfkill_int(trans);
1134
1135         /*
1136          * Check again since the RF kill state may have changed while
1137          * all the interrupts were disabled, in this case we couldn't
1138          * receive the RF kill interrupt and update the state in the
1139          * op_mode.
1140          * Don't call the op_mode if the rkfill state hasn't changed.
1141          * This allows the op_mode to call stop_device from the rfkill
1142          * notification without endless recursion. Under very rare
1143          * circumstances, we might have a small recursion if the rfkill
1144          * state changed exactly now while we were called from stop_device.
1145          * This is very unlikely but can happen and is supported.
1146          */
1147         hw_rfkill = iwl_is_rfkill_set(trans);
1148         if (hw_rfkill)
1149                 set_bit(STATUS_RFKILL, &trans->status);
1150         else
1151                 clear_bit(STATUS_RFKILL, &trans->status);
1152         if (hw_rfkill != was_hw_rfkill)
1153                 iwl_trans_pcie_rf_kill(trans, hw_rfkill);
1154
1155         /* re-take ownership to prevent other users from stealing the deivce */
1156         iwl_pcie_prepare_card_hw(trans);
1157 }
1158
1159 static void iwl_trans_pcie_stop_device(struct iwl_trans *trans, bool low_power)
1160 {
1161         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1162
1163         mutex_lock(&trans_pcie->mutex);
1164         _iwl_trans_pcie_stop_device(trans, low_power);
1165         mutex_unlock(&trans_pcie->mutex);
1166 }
1167
1168 void iwl_trans_pcie_rf_kill(struct iwl_trans *trans, bool state)
1169 {
1170         struct iwl_trans_pcie __maybe_unused *trans_pcie =
1171                 IWL_TRANS_GET_PCIE_TRANS(trans);
1172
1173         lockdep_assert_held(&trans_pcie->mutex);
1174
1175         if (iwl_op_mode_hw_rf_kill(trans->op_mode, state))
1176                 _iwl_trans_pcie_stop_device(trans, true);
1177 }
1178
1179 static void iwl_trans_pcie_d3_suspend(struct iwl_trans *trans, bool test)
1180 {
1181         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1182
1183         iwl_disable_interrupts(trans);
1184
1185         /*
1186          * in testing mode, the host stays awake and the
1187          * hardware won't be reset (not even partially)
1188          */
1189         if (test)
1190                 return;
1191
1192         iwl_pcie_disable_ict(trans);
1193
1194         synchronize_irq(trans_pcie->pci_dev->irq);
1195
1196         iwl_clear_bit(trans, CSR_GP_CNTRL,
1197                       CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
1198         iwl_clear_bit(trans, CSR_GP_CNTRL,
1199                       CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
1200
1201         /*
1202          * reset TX queues -- some of their registers reset during S3
1203          * so if we don't reset everything here the D3 image would try
1204          * to execute some invalid memory upon resume
1205          */
1206         iwl_trans_pcie_tx_reset(trans);
1207
1208         iwl_pcie_set_pwr(trans, true);
1209 }
1210
1211 static int iwl_trans_pcie_d3_resume(struct iwl_trans *trans,
1212                                     enum iwl_d3_status *status,
1213                                     bool test)
1214 {
1215         u32 val;
1216         int ret;
1217
1218         if (test) {
1219                 iwl_enable_interrupts(trans);
1220                 *status = IWL_D3_STATUS_ALIVE;
1221                 return 0;
1222         }
1223
1224         /*
1225          * Also enables interrupts - none will happen as the device doesn't
1226          * know we're waking it up, only when the opmode actually tells it
1227          * after this call.
1228          */
1229         iwl_pcie_reset_ict(trans);
1230
1231         iwl_set_bit(trans, CSR_GP_CNTRL, CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
1232         iwl_set_bit(trans, CSR_GP_CNTRL, CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
1233
1234         if (trans->cfg->device_family == IWL_DEVICE_FAMILY_8000)
1235                 udelay(2);
1236
1237         ret = iwl_poll_bit(trans, CSR_GP_CNTRL,
1238                            CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY,
1239                            CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY,
1240                            25000);
1241         if (ret < 0) {
1242                 IWL_ERR(trans, "Failed to resume the device (mac ready)\n");
1243                 return ret;
1244         }
1245
1246         iwl_pcie_set_pwr(trans, false);
1247
1248         iwl_trans_pcie_tx_reset(trans);
1249
1250         ret = iwl_pcie_rx_init(trans);
1251         if (ret) {
1252                 IWL_ERR(trans, "Failed to resume the device (RX reset)\n");
1253                 return ret;
1254         }
1255
1256         val = iwl_read32(trans, CSR_RESET);
1257         if (val & CSR_RESET_REG_FLAG_NEVO_RESET)
1258                 *status = IWL_D3_STATUS_RESET;
1259         else
1260                 *status = IWL_D3_STATUS_ALIVE;
1261
1262         return 0;
1263 }
1264
1265 static int _iwl_trans_pcie_start_hw(struct iwl_trans *trans, bool low_power)
1266 {
1267         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1268         bool hw_rfkill;
1269         int err;
1270
1271         lockdep_assert_held(&trans_pcie->mutex);
1272
1273         err = iwl_pcie_prepare_card_hw(trans);
1274         if (err) {
1275                 IWL_ERR(trans, "Error while preparing HW: %d\n", err);
1276                 return err;
1277         }
1278
1279         /* Reset the entire device */
1280         iwl_write32(trans, CSR_RESET, CSR_RESET_REG_FLAG_SW_RESET);
1281
1282         usleep_range(10, 15);
1283
1284         iwl_pcie_apm_init(trans);
1285
1286         /* From now on, the op_mode will be kept updated about RF kill state */
1287         iwl_enable_rfkill_int(trans);
1288
1289         /* Set is_down to false here so that...*/
1290         trans_pcie->is_down = false;
1291
1292         hw_rfkill = iwl_is_rfkill_set(trans);
1293         if (hw_rfkill)
1294                 set_bit(STATUS_RFKILL, &trans->status);
1295         else
1296                 clear_bit(STATUS_RFKILL, &trans->status);
1297         /* ... rfkill can call stop_device and set it false if needed */
1298         iwl_trans_pcie_rf_kill(trans, hw_rfkill);
1299
1300         return 0;
1301 }
1302
1303 static int iwl_trans_pcie_start_hw(struct iwl_trans *trans, bool low_power)
1304 {
1305         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1306         int ret;
1307
1308         mutex_lock(&trans_pcie->mutex);
1309         ret = _iwl_trans_pcie_start_hw(trans, low_power);
1310         mutex_unlock(&trans_pcie->mutex);
1311
1312         return ret;
1313 }
1314
1315 static void iwl_trans_pcie_op_mode_leave(struct iwl_trans *trans)
1316 {
1317         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1318
1319         mutex_lock(&trans_pcie->mutex);
1320
1321         /* disable interrupts - don't enable HW RF kill interrupt */
1322         spin_lock(&trans_pcie->irq_lock);
1323         iwl_disable_interrupts(trans);
1324         spin_unlock(&trans_pcie->irq_lock);
1325
1326         iwl_pcie_apm_stop(trans, true);
1327
1328         spin_lock(&trans_pcie->irq_lock);
1329         iwl_disable_interrupts(trans);
1330         spin_unlock(&trans_pcie->irq_lock);
1331
1332         iwl_pcie_disable_ict(trans);
1333
1334         mutex_unlock(&trans_pcie->mutex);
1335
1336         synchronize_irq(trans_pcie->pci_dev->irq);
1337 }
1338
1339 static void iwl_trans_pcie_write8(struct iwl_trans *trans, u32 ofs, u8 val)
1340 {
1341         writeb(val, IWL_TRANS_GET_PCIE_TRANS(trans)->hw_base + ofs);
1342 }
1343
1344 static void iwl_trans_pcie_write32(struct iwl_trans *trans, u32 ofs, u32 val)
1345 {
1346         writel(val, IWL_TRANS_GET_PCIE_TRANS(trans)->hw_base + ofs);
1347 }
1348
1349 static u32 iwl_trans_pcie_read32(struct iwl_trans *trans, u32 ofs)
1350 {
1351         return readl(IWL_TRANS_GET_PCIE_TRANS(trans)->hw_base + ofs);
1352 }
1353
1354 static u32 iwl_trans_pcie_read_prph(struct iwl_trans *trans, u32 reg)
1355 {
1356         iwl_trans_pcie_write32(trans, HBUS_TARG_PRPH_RADDR,
1357                                ((reg & 0x000FFFFF) | (3 << 24)));
1358         return iwl_trans_pcie_read32(trans, HBUS_TARG_PRPH_RDAT);
1359 }
1360
1361 static void iwl_trans_pcie_write_prph(struct iwl_trans *trans, u32 addr,
1362                                       u32 val)
1363 {
1364         iwl_trans_pcie_write32(trans, HBUS_TARG_PRPH_WADDR,
1365                                ((addr & 0x000FFFFF) | (3 << 24)));
1366         iwl_trans_pcie_write32(trans, HBUS_TARG_PRPH_WDAT, val);
1367 }
1368
1369 static int iwl_pcie_dummy_napi_poll(struct napi_struct *napi, int budget)
1370 {
1371         WARN_ON(1);
1372         return 0;
1373 }
1374
1375 static void iwl_trans_pcie_configure(struct iwl_trans *trans,
1376                                      const struct iwl_trans_config *trans_cfg)
1377 {
1378         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1379
1380         trans_pcie->cmd_queue = trans_cfg->cmd_queue;
1381         trans_pcie->cmd_fifo = trans_cfg->cmd_fifo;
1382         trans_pcie->cmd_q_wdg_timeout = trans_cfg->cmd_q_wdg_timeout;
1383         if (WARN_ON(trans_cfg->n_no_reclaim_cmds > MAX_NO_RECLAIM_CMDS))
1384                 trans_pcie->n_no_reclaim_cmds = 0;
1385         else
1386                 trans_pcie->n_no_reclaim_cmds = trans_cfg->n_no_reclaim_cmds;
1387         if (trans_pcie->n_no_reclaim_cmds)
1388                 memcpy(trans_pcie->no_reclaim_cmds, trans_cfg->no_reclaim_cmds,
1389                        trans_pcie->n_no_reclaim_cmds * sizeof(u8));
1390
1391         trans_pcie->rx_buf_size_8k = trans_cfg->rx_buf_size_8k;
1392         if (trans_pcie->rx_buf_size_8k)
1393                 trans_pcie->rx_page_order = get_order(8 * 1024);
1394         else
1395                 trans_pcie->rx_page_order = get_order(4 * 1024);
1396
1397         trans_pcie->wide_cmd_header = trans_cfg->wide_cmd_header;
1398         trans_pcie->command_names = trans_cfg->command_names;
1399         trans_pcie->bc_table_dword = trans_cfg->bc_table_dword;
1400         trans_pcie->scd_set_active = trans_cfg->scd_set_active;
1401
1402         /* init ref_count to 1 (should be cleared when ucode is loaded) */
1403         trans_pcie->ref_count = 1;
1404
1405         /* Initialize NAPI here - it should be before registering to mac80211
1406          * in the opmode but after the HW struct is allocated.
1407          * As this function may be called again in some corner cases don't
1408          * do anything if NAPI was already initialized.
1409          */
1410         if (!trans_pcie->napi.poll && trans->op_mode->ops->napi_add) {
1411                 init_dummy_netdev(&trans_pcie->napi_dev);
1412                 iwl_op_mode_napi_add(trans->op_mode, &trans_pcie->napi,
1413                                      &trans_pcie->napi_dev,
1414                                      iwl_pcie_dummy_napi_poll, 64);
1415         }
1416 }
1417
1418 void iwl_trans_pcie_free(struct iwl_trans *trans)
1419 {
1420         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1421
1422         synchronize_irq(trans_pcie->pci_dev->irq);
1423
1424         iwl_pcie_tx_free(trans);
1425         iwl_pcie_rx_free(trans);
1426
1427         free_irq(trans_pcie->pci_dev->irq, trans);
1428         iwl_pcie_free_ict(trans);
1429
1430         pci_disable_msi(trans_pcie->pci_dev);
1431         iounmap(trans_pcie->hw_base);
1432         pci_release_regions(trans_pcie->pci_dev);
1433         pci_disable_device(trans_pcie->pci_dev);
1434
1435         if (trans_pcie->napi.poll)
1436                 netif_napi_del(&trans_pcie->napi);
1437
1438         iwl_pcie_free_fw_monitor(trans);
1439
1440         iwl_trans_free(trans);
1441 }
1442
1443 static void iwl_trans_pcie_set_pmi(struct iwl_trans *trans, bool state)
1444 {
1445         if (state)
1446                 set_bit(STATUS_TPOWER_PMI, &trans->status);
1447         else
1448                 clear_bit(STATUS_TPOWER_PMI, &trans->status);
1449 }
1450
1451 static bool iwl_trans_pcie_grab_nic_access(struct iwl_trans *trans, bool silent,
1452                                                 unsigned long *flags)
1453 {
1454         int ret;
1455         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1456
1457         spin_lock_irqsave(&trans_pcie->reg_lock, *flags);
1458
1459         if (trans_pcie->cmd_hold_nic_awake)
1460                 goto out;
1461
1462         /* this bit wakes up the NIC */
1463         __iwl_trans_pcie_set_bit(trans, CSR_GP_CNTRL,
1464                                  CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
1465         if (trans->cfg->device_family == IWL_DEVICE_FAMILY_8000)
1466                 udelay(2);
1467
1468         /*
1469          * These bits say the device is running, and should keep running for
1470          * at least a short while (at least as long as MAC_ACCESS_REQ stays 1),
1471          * but they do not indicate that embedded SRAM is restored yet;
1472          * 3945 and 4965 have volatile SRAM, and must save/restore contents
1473          * to/from host DRAM when sleeping/waking for power-saving.
1474          * Each direction takes approximately 1/4 millisecond; with this
1475          * overhead, it's a good idea to grab and hold MAC_ACCESS_REQUEST if a
1476          * series of register accesses are expected (e.g. reading Event Log),
1477          * to keep device from sleeping.
1478          *
1479          * CSR_UCODE_DRV_GP1 register bit MAC_SLEEP == 0 indicates that
1480          * SRAM is okay/restored.  We don't check that here because this call
1481          * is just for hardware register access; but GP1 MAC_SLEEP check is a
1482          * good idea before accessing 3945/4965 SRAM (e.g. reading Event Log).
1483          *
1484          * 5000 series and later (including 1000 series) have non-volatile SRAM,
1485          * and do not save/restore SRAM when power cycling.
1486          */
1487         ret = iwl_poll_bit(trans, CSR_GP_CNTRL,
1488                            CSR_GP_CNTRL_REG_VAL_MAC_ACCESS_EN,
1489                            (CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY |
1490                             CSR_GP_CNTRL_REG_FLAG_GOING_TO_SLEEP), 15000);
1491         if (unlikely(ret < 0)) {
1492                 iwl_write32(trans, CSR_RESET, CSR_RESET_REG_FLAG_FORCE_NMI);
1493                 if (!silent) {
1494                         u32 val = iwl_read32(trans, CSR_GP_CNTRL);
1495                         WARN_ONCE(1,
1496                                   "Timeout waiting for hardware access (CSR_GP_CNTRL 0x%08x)\n",
1497                                   val);
1498                         spin_unlock_irqrestore(&trans_pcie->reg_lock, *flags);
1499                         return false;
1500                 }
1501         }
1502
1503 out:
1504         /*
1505          * Fool sparse by faking we release the lock - sparse will
1506          * track nic_access anyway.
1507          */
1508         __release(&trans_pcie->reg_lock);
1509         return true;
1510 }
1511
1512 static void iwl_trans_pcie_release_nic_access(struct iwl_trans *trans,
1513                                               unsigned long *flags)
1514 {
1515         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1516
1517         lockdep_assert_held(&trans_pcie->reg_lock);
1518
1519         /*
1520          * Fool sparse by faking we acquiring the lock - sparse will
1521          * track nic_access anyway.
1522          */
1523         __acquire(&trans_pcie->reg_lock);
1524
1525         if (trans_pcie->cmd_hold_nic_awake)
1526                 goto out;
1527
1528         __iwl_trans_pcie_clear_bit(trans, CSR_GP_CNTRL,
1529                                    CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
1530         /*
1531          * Above we read the CSR_GP_CNTRL register, which will flush
1532          * any previous writes, but we need the write that clears the
1533          * MAC_ACCESS_REQ bit to be performed before any other writes
1534          * scheduled on different CPUs (after we drop reg_lock).
1535          */
1536         mmiowb();
1537 out:
1538         spin_unlock_irqrestore(&trans_pcie->reg_lock, *flags);
1539 }
1540
1541 static int iwl_trans_pcie_read_mem(struct iwl_trans *trans, u32 addr,
1542                                    void *buf, int dwords)
1543 {
1544         unsigned long flags;
1545         int offs, ret = 0;
1546         u32 *vals = buf;
1547
1548         if (iwl_trans_grab_nic_access(trans, false, &flags)) {
1549                 iwl_write32(trans, HBUS_TARG_MEM_RADDR, addr);
1550                 for (offs = 0; offs < dwords; offs++)
1551                         vals[offs] = iwl_read32(trans, HBUS_TARG_MEM_RDAT);
1552                 iwl_trans_release_nic_access(trans, &flags);
1553         } else {
1554                 ret = -EBUSY;
1555         }
1556         return ret;
1557 }
1558
1559 static int iwl_trans_pcie_write_mem(struct iwl_trans *trans, u32 addr,
1560                                     const void *buf, int dwords)
1561 {
1562         unsigned long flags;
1563         int offs, ret = 0;
1564         const u32 *vals = buf;
1565
1566         if (iwl_trans_grab_nic_access(trans, false, &flags)) {
1567                 iwl_write32(trans, HBUS_TARG_MEM_WADDR, addr);
1568                 for (offs = 0; offs < dwords; offs++)
1569                         iwl_write32(trans, HBUS_TARG_MEM_WDAT,
1570                                     vals ? vals[offs] : 0);
1571                 iwl_trans_release_nic_access(trans, &flags);
1572         } else {
1573                 ret = -EBUSY;
1574         }
1575         return ret;
1576 }
1577
1578 static void iwl_trans_pcie_freeze_txq_timer(struct iwl_trans *trans,
1579                                             unsigned long txqs,
1580                                             bool freeze)
1581 {
1582         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1583         int queue;
1584
1585         for_each_set_bit(queue, &txqs, BITS_PER_LONG) {
1586                 struct iwl_txq *txq = &trans_pcie->txq[queue];
1587                 unsigned long now;
1588
1589                 spin_lock_bh(&txq->lock);
1590
1591                 now = jiffies;
1592
1593                 if (txq->frozen == freeze)
1594                         goto next_queue;
1595
1596                 IWL_DEBUG_TX_QUEUES(trans, "%s TXQ %d\n",
1597                                     freeze ? "Freezing" : "Waking", queue);
1598
1599                 txq->frozen = freeze;
1600
1601                 if (txq->q.read_ptr == txq->q.write_ptr)
1602                         goto next_queue;
1603
1604                 if (freeze) {
1605                         if (unlikely(time_after(now,
1606                                                 txq->stuck_timer.expires))) {
1607                                 /*
1608                                  * The timer should have fired, maybe it is
1609                                  * spinning right now on the lock.
1610                                  */
1611                                 goto next_queue;
1612                         }
1613                         /* remember how long until the timer fires */
1614                         txq->frozen_expiry_remainder =
1615                                 txq->stuck_timer.expires - now;
1616                         del_timer(&txq->stuck_timer);
1617                         goto next_queue;
1618                 }
1619
1620                 /*
1621                  * Wake a non-empty queue -> arm timer with the
1622                  * remainder before it froze
1623                  */
1624                 mod_timer(&txq->stuck_timer,
1625                           now + txq->frozen_expiry_remainder);
1626
1627 next_queue:
1628                 spin_unlock_bh(&txq->lock);
1629         }
1630 }
1631
1632 #define IWL_FLUSH_WAIT_MS       2000
1633
1634 static int iwl_trans_pcie_wait_txq_empty(struct iwl_trans *trans, u32 txq_bm)
1635 {
1636         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1637         struct iwl_txq *txq;
1638         struct iwl_queue *q;
1639         int cnt;
1640         unsigned long now = jiffies;
1641         u32 scd_sram_addr;
1642         u8 buf[16];
1643         int ret = 0;
1644
1645         /* waiting for all the tx frames complete might take a while */
1646         for (cnt = 0; cnt < trans->cfg->base_params->num_of_queues; cnt++) {
1647                 u8 wr_ptr;
1648
1649                 if (cnt == trans_pcie->cmd_queue)
1650                         continue;
1651                 if (!test_bit(cnt, trans_pcie->queue_used))
1652                         continue;
1653                 if (!(BIT(cnt) & txq_bm))
1654                         continue;
1655
1656                 IWL_DEBUG_TX_QUEUES(trans, "Emptying queue %d...\n", cnt);
1657                 txq = &trans_pcie->txq[cnt];
1658                 q = &txq->q;
1659                 wr_ptr = ACCESS_ONCE(q->write_ptr);
1660
1661                 while (q->read_ptr != ACCESS_ONCE(q->write_ptr) &&
1662                        !time_after(jiffies,
1663                                    now + msecs_to_jiffies(IWL_FLUSH_WAIT_MS))) {
1664                         u8 write_ptr = ACCESS_ONCE(q->write_ptr);
1665
1666                         if (WARN_ONCE(wr_ptr != write_ptr,
1667                                       "WR pointer moved while flushing %d -> %d\n",
1668                                       wr_ptr, write_ptr))
1669                                 return -ETIMEDOUT;
1670                         msleep(1);
1671                 }
1672
1673                 if (q->read_ptr != q->write_ptr) {
1674                         IWL_ERR(trans,
1675                                 "fail to flush all tx fifo queues Q %d\n", cnt);
1676                         ret = -ETIMEDOUT;
1677                         break;
1678                 }
1679                 IWL_DEBUG_TX_QUEUES(trans, "Queue %d is now empty.\n", cnt);
1680         }
1681
1682         if (!ret)
1683                 return 0;
1684
1685         IWL_ERR(trans, "Current SW read_ptr %d write_ptr %d\n",
1686                 txq->q.read_ptr, txq->q.write_ptr);
1687
1688         scd_sram_addr = trans_pcie->scd_base_addr +
1689                         SCD_TX_STTS_QUEUE_OFFSET(txq->q.id);
1690         iwl_trans_read_mem_bytes(trans, scd_sram_addr, buf, sizeof(buf));
1691
1692         iwl_print_hex_error(trans, buf, sizeof(buf));
1693
1694         for (cnt = 0; cnt < FH_TCSR_CHNL_NUM; cnt++)
1695                 IWL_ERR(trans, "FH TRBs(%d) = 0x%08x\n", cnt,
1696                         iwl_read_direct32(trans, FH_TX_TRB_REG(cnt)));
1697
1698         for (cnt = 0; cnt < trans->cfg->base_params->num_of_queues; cnt++) {
1699                 u32 status = iwl_read_prph(trans, SCD_QUEUE_STATUS_BITS(cnt));
1700                 u8 fifo = (status >> SCD_QUEUE_STTS_REG_POS_TXF) & 0x7;
1701                 bool active = !!(status & BIT(SCD_QUEUE_STTS_REG_POS_ACTIVE));
1702                 u32 tbl_dw =
1703                         iwl_trans_read_mem32(trans, trans_pcie->scd_base_addr +
1704                                              SCD_TRANS_TBL_OFFSET_QUEUE(cnt));
1705
1706                 if (cnt & 0x1)
1707                         tbl_dw = (tbl_dw & 0xFFFF0000) >> 16;
1708                 else
1709                         tbl_dw = tbl_dw & 0x0000FFFF;
1710
1711                 IWL_ERR(trans,
1712                         "Q %d is %sactive and mapped to fifo %d ra_tid 0x%04x [%d,%d]\n",
1713                         cnt, active ? "" : "in", fifo, tbl_dw,
1714                         iwl_read_prph(trans, SCD_QUEUE_RDPTR(cnt)) &
1715                                 (TFD_QUEUE_SIZE_MAX - 1),
1716                         iwl_read_prph(trans, SCD_QUEUE_WRPTR(cnt)));
1717         }
1718
1719         return ret;
1720 }
1721
1722 static void iwl_trans_pcie_set_bits_mask(struct iwl_trans *trans, u32 reg,
1723                                          u32 mask, u32 value)
1724 {
1725         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1726         unsigned long flags;
1727
1728         spin_lock_irqsave(&trans_pcie->reg_lock, flags);
1729         __iwl_trans_pcie_set_bits_mask(trans, reg, mask, value);
1730         spin_unlock_irqrestore(&trans_pcie->reg_lock, flags);
1731 }
1732
1733 void iwl_trans_pcie_ref(struct iwl_trans *trans)
1734 {
1735         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1736         unsigned long flags;
1737
1738         if (iwlwifi_mod_params.d0i3_disable)
1739                 return;
1740
1741         spin_lock_irqsave(&trans_pcie->ref_lock, flags);
1742         IWL_DEBUG_RPM(trans, "ref_counter: %d\n", trans_pcie->ref_count);
1743         trans_pcie->ref_count++;
1744         spin_unlock_irqrestore(&trans_pcie->ref_lock, flags);
1745 }
1746
1747 void iwl_trans_pcie_unref(struct iwl_trans *trans)
1748 {
1749         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1750         unsigned long flags;
1751
1752         if (iwlwifi_mod_params.d0i3_disable)
1753                 return;
1754
1755         spin_lock_irqsave(&trans_pcie->ref_lock, flags);
1756         IWL_DEBUG_RPM(trans, "ref_counter: %d\n", trans_pcie->ref_count);
1757         if (WARN_ON_ONCE(trans_pcie->ref_count == 0)) {
1758                 spin_unlock_irqrestore(&trans_pcie->ref_lock, flags);
1759                 return;
1760         }
1761         trans_pcie->ref_count--;
1762         spin_unlock_irqrestore(&trans_pcie->ref_lock, flags);
1763 }
1764
1765 static const char *get_csr_string(int cmd)
1766 {
1767 #define IWL_CMD(x) case x: return #x
1768         switch (cmd) {
1769         IWL_CMD(CSR_HW_IF_CONFIG_REG);
1770         IWL_CMD(CSR_INT_COALESCING);
1771         IWL_CMD(CSR_INT);
1772         IWL_CMD(CSR_INT_MASK);
1773         IWL_CMD(CSR_FH_INT_STATUS);
1774         IWL_CMD(CSR_GPIO_IN);
1775         IWL_CMD(CSR_RESET);
1776         IWL_CMD(CSR_GP_CNTRL);
1777         IWL_CMD(CSR_HW_REV);
1778         IWL_CMD(CSR_EEPROM_REG);
1779         IWL_CMD(CSR_EEPROM_GP);
1780         IWL_CMD(CSR_OTP_GP_REG);
1781         IWL_CMD(CSR_GIO_REG);
1782         IWL_CMD(CSR_GP_UCODE_REG);
1783         IWL_CMD(CSR_GP_DRIVER_REG);
1784         IWL_CMD(CSR_UCODE_DRV_GP1);
1785         IWL_CMD(CSR_UCODE_DRV_GP2);
1786         IWL_CMD(CSR_LED_REG);
1787         IWL_CMD(CSR_DRAM_INT_TBL_REG);
1788         IWL_CMD(CSR_GIO_CHICKEN_BITS);
1789         IWL_CMD(CSR_ANA_PLL_CFG);
1790         IWL_CMD(CSR_HW_REV_WA_REG);
1791         IWL_CMD(CSR_MONITOR_STATUS_REG);
1792         IWL_CMD(CSR_DBG_HPET_MEM_REG);
1793         default:
1794                 return "UNKNOWN";
1795         }
1796 #undef IWL_CMD
1797 }
1798
1799 void iwl_pcie_dump_csr(struct iwl_trans *trans)
1800 {
1801         int i;
1802         static const u32 csr_tbl[] = {
1803                 CSR_HW_IF_CONFIG_REG,
1804                 CSR_INT_COALESCING,
1805                 CSR_INT,
1806                 CSR_INT_MASK,
1807                 CSR_FH_INT_STATUS,
1808                 CSR_GPIO_IN,
1809                 CSR_RESET,
1810                 CSR_GP_CNTRL,
1811                 CSR_HW_REV,
1812                 CSR_EEPROM_REG,
1813                 CSR_EEPROM_GP,
1814                 CSR_OTP_GP_REG,
1815                 CSR_GIO_REG,
1816                 CSR_GP_UCODE_REG,
1817                 CSR_GP_DRIVER_REG,
1818                 CSR_UCODE_DRV_GP1,
1819                 CSR_UCODE_DRV_GP2,
1820                 CSR_LED_REG,
1821                 CSR_DRAM_INT_TBL_REG,
1822                 CSR_GIO_CHICKEN_BITS,
1823                 CSR_ANA_PLL_CFG,
1824                 CSR_MONITOR_STATUS_REG,
1825                 CSR_HW_REV_WA_REG,
1826                 CSR_DBG_HPET_MEM_REG
1827         };
1828         IWL_ERR(trans, "CSR values:\n");
1829         IWL_ERR(trans, "(2nd byte of CSR_INT_COALESCING is "
1830                 "CSR_INT_PERIODIC_REG)\n");
1831         for (i = 0; i <  ARRAY_SIZE(csr_tbl); i++) {
1832                 IWL_ERR(trans, "  %25s: 0X%08x\n",
1833                         get_csr_string(csr_tbl[i]),
1834                         iwl_read32(trans, csr_tbl[i]));
1835         }
1836 }
1837
1838 #ifdef CONFIG_IWLWIFI_DEBUGFS
1839 /* create and remove of files */
1840 #define DEBUGFS_ADD_FILE(name, parent, mode) do {                       \
1841         if (!debugfs_create_file(#name, mode, parent, trans,            \
1842                                  &iwl_dbgfs_##name##_ops))              \
1843                 goto err;                                               \
1844 } while (0)
1845
1846 /* file operation */
1847 #define DEBUGFS_READ_FILE_OPS(name)                                     \
1848 static const struct file_operations iwl_dbgfs_##name##_ops = {          \
1849         .read = iwl_dbgfs_##name##_read,                                \
1850         .open = simple_open,                                            \
1851         .llseek = generic_file_llseek,                                  \
1852 };
1853
1854 #define DEBUGFS_WRITE_FILE_OPS(name)                                    \
1855 static const struct file_operations iwl_dbgfs_##name##_ops = {          \
1856         .write = iwl_dbgfs_##name##_write,                              \
1857         .open = simple_open,                                            \
1858         .llseek = generic_file_llseek,                                  \
1859 };
1860
1861 #define DEBUGFS_READ_WRITE_FILE_OPS(name)                               \
1862 static const struct file_operations iwl_dbgfs_##name##_ops = {          \
1863         .write = iwl_dbgfs_##name##_write,                              \
1864         .read = iwl_dbgfs_##name##_read,                                \
1865         .open = simple_open,                                            \
1866         .llseek = generic_file_llseek,                                  \
1867 };
1868
1869 static ssize_t iwl_dbgfs_tx_queue_read(struct file *file,
1870                                        char __user *user_buf,
1871                                        size_t count, loff_t *ppos)
1872 {
1873         struct iwl_trans *trans = file->private_data;
1874         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1875         struct iwl_txq *txq;
1876         struct iwl_queue *q;
1877         char *buf;
1878         int pos = 0;
1879         int cnt;
1880         int ret;
1881         size_t bufsz;
1882
1883         bufsz = sizeof(char) * 75 * trans->cfg->base_params->num_of_queues;
1884
1885         if (!trans_pcie->txq)
1886                 return -EAGAIN;
1887
1888         buf = kzalloc(bufsz, GFP_KERNEL);
1889         if (!buf)
1890                 return -ENOMEM;
1891
1892         for (cnt = 0; cnt < trans->cfg->base_params->num_of_queues; cnt++) {
1893                 txq = &trans_pcie->txq[cnt];
1894                 q = &txq->q;
1895                 pos += scnprintf(buf + pos, bufsz - pos,
1896                                 "hwq %.2d: read=%u write=%u use=%d stop=%d need_update=%d frozen=%d%s\n",
1897                                 cnt, q->read_ptr, q->write_ptr,
1898                                 !!test_bit(cnt, trans_pcie->queue_used),
1899                                  !!test_bit(cnt, trans_pcie->queue_stopped),
1900                                  txq->need_update, txq->frozen,
1901                                  (cnt == trans_pcie->cmd_queue ? " HCMD" : ""));
1902         }
1903         ret = simple_read_from_buffer(user_buf, count, ppos, buf, pos);
1904         kfree(buf);
1905         return ret;
1906 }
1907
1908 static ssize_t iwl_dbgfs_rx_queue_read(struct file *file,
1909                                        char __user *user_buf,
1910                                        size_t count, loff_t *ppos)
1911 {
1912         struct iwl_trans *trans = file->private_data;
1913         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1914         struct iwl_rxq *rxq = &trans_pcie->rxq;
1915         char buf[256];
1916         int pos = 0;
1917         const size_t bufsz = sizeof(buf);
1918
1919         pos += scnprintf(buf + pos, bufsz - pos, "read: %u\n",
1920                                                 rxq->read);
1921         pos += scnprintf(buf + pos, bufsz - pos, "write: %u\n",
1922                                                 rxq->write);
1923         pos += scnprintf(buf + pos, bufsz - pos, "write_actual: %u\n",
1924                                                 rxq->write_actual);
1925         pos += scnprintf(buf + pos, bufsz - pos, "need_update: %d\n",
1926                                                 rxq->need_update);
1927         pos += scnprintf(buf + pos, bufsz - pos, "free_count: %u\n",
1928                                                 rxq->free_count);
1929         if (rxq->rb_stts) {
1930                 pos += scnprintf(buf + pos, bufsz - pos, "closed_rb_num: %u\n",
1931                          le16_to_cpu(rxq->rb_stts->closed_rb_num) &  0x0FFF);
1932         } else {
1933                 pos += scnprintf(buf + pos, bufsz - pos,
1934                                         "closed_rb_num: Not Allocated\n");
1935         }
1936         return simple_read_from_buffer(user_buf, count, ppos, buf, pos);
1937 }
1938
1939 static ssize_t iwl_dbgfs_interrupt_read(struct file *file,
1940                                         char __user *user_buf,
1941                                         size_t count, loff_t *ppos)
1942 {
1943         struct iwl_trans *trans = file->private_data;
1944         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1945         struct isr_statistics *isr_stats = &trans_pcie->isr_stats;
1946
1947         int pos = 0;
1948         char *buf;
1949         int bufsz = 24 * 64; /* 24 items * 64 char per item */
1950         ssize_t ret;
1951
1952         buf = kzalloc(bufsz, GFP_KERNEL);
1953         if (!buf)
1954                 return -ENOMEM;
1955
1956         pos += scnprintf(buf + pos, bufsz - pos,
1957                         "Interrupt Statistics Report:\n");
1958
1959         pos += scnprintf(buf + pos, bufsz - pos, "HW Error:\t\t\t %u\n",
1960                 isr_stats->hw);
1961         pos += scnprintf(buf + pos, bufsz - pos, "SW Error:\t\t\t %u\n",
1962                 isr_stats->sw);
1963         if (isr_stats->sw || isr_stats->hw) {
1964                 pos += scnprintf(buf + pos, bufsz - pos,
1965                         "\tLast Restarting Code:  0x%X\n",
1966                         isr_stats->err_code);
1967         }
1968 #ifdef CONFIG_IWLWIFI_DEBUG
1969         pos += scnprintf(buf + pos, bufsz - pos, "Frame transmitted:\t\t %u\n",
1970                 isr_stats->sch);
1971         pos += scnprintf(buf + pos, bufsz - pos, "Alive interrupt:\t\t %u\n",
1972                 isr_stats->alive);
1973 #endif
1974         pos += scnprintf(buf + pos, bufsz - pos,
1975                 "HW RF KILL switch toggled:\t %u\n", isr_stats->rfkill);
1976
1977         pos += scnprintf(buf + pos, bufsz - pos, "CT KILL:\t\t\t %u\n",
1978                 isr_stats->ctkill);
1979
1980         pos += scnprintf(buf + pos, bufsz - pos, "Wakeup Interrupt:\t\t %u\n",
1981                 isr_stats->wakeup);
1982
1983         pos += scnprintf(buf + pos, bufsz - pos,
1984                 "Rx command responses:\t\t %u\n", isr_stats->rx);
1985
1986         pos += scnprintf(buf + pos, bufsz - pos, "Tx/FH interrupt:\t\t %u\n",
1987                 isr_stats->tx);
1988
1989         pos += scnprintf(buf + pos, bufsz - pos, "Unexpected INTA:\t\t %u\n",
1990                 isr_stats->unhandled);
1991
1992         ret = simple_read_from_buffer(user_buf, count, ppos, buf, pos);
1993         kfree(buf);
1994         return ret;
1995 }
1996
1997 static ssize_t iwl_dbgfs_interrupt_write(struct file *file,
1998                                          const char __user *user_buf,
1999                                          size_t count, loff_t *ppos)
2000 {
2001         struct iwl_trans *trans = file->private_data;
2002         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
2003         struct isr_statistics *isr_stats = &trans_pcie->isr_stats;
2004
2005         char buf[8];
2006         int buf_size;
2007         u32 reset_flag;
2008
2009         memset(buf, 0, sizeof(buf));
2010         buf_size = min(count, sizeof(buf) -  1);
2011         if (copy_from_user(buf, user_buf, buf_size))
2012                 return -EFAULT;
2013         if (sscanf(buf, "%x", &reset_flag) != 1)
2014                 return -EFAULT;
2015         if (reset_flag == 0)
2016                 memset(isr_stats, 0, sizeof(*isr_stats));
2017
2018         return count;
2019 }
2020
2021 static ssize_t iwl_dbgfs_csr_write(struct file *file,
2022                                    const char __user *user_buf,
2023                                    size_t count, loff_t *ppos)
2024 {
2025         struct iwl_trans *trans = file->private_data;
2026         char buf[8];
2027         int buf_size;
2028         int csr;
2029
2030         memset(buf, 0, sizeof(buf));
2031         buf_size = min(count, sizeof(buf) -  1);
2032         if (copy_from_user(buf, user_buf, buf_size))
2033                 return -EFAULT;
2034         if (sscanf(buf, "%d", &csr) != 1)
2035                 return -EFAULT;
2036
2037         iwl_pcie_dump_csr(trans);
2038
2039         return count;
2040 }
2041
2042 static ssize_t iwl_dbgfs_fh_reg_read(struct file *file,
2043                                      char __user *user_buf,
2044                                      size_t count, loff_t *ppos)
2045 {
2046         struct iwl_trans *trans = file->private_data;
2047         char *buf = NULL;
2048         ssize_t ret;
2049
2050         ret = iwl_dump_fh(trans, &buf);
2051         if (ret < 0)
2052                 return ret;
2053         if (!buf)
2054                 return -EINVAL;
2055         ret = simple_read_from_buffer(user_buf, count, ppos, buf, ret);
2056         kfree(buf);
2057         return ret;
2058 }
2059
2060 DEBUGFS_READ_WRITE_FILE_OPS(interrupt);
2061 DEBUGFS_READ_FILE_OPS(fh_reg);
2062 DEBUGFS_READ_FILE_OPS(rx_queue);
2063 DEBUGFS_READ_FILE_OPS(tx_queue);
2064 DEBUGFS_WRITE_FILE_OPS(csr);
2065
2066 /*
2067  * Create the debugfs files and directories
2068  *
2069  */
2070 static int iwl_trans_pcie_dbgfs_register(struct iwl_trans *trans,
2071                                          struct dentry *dir)
2072 {
2073         DEBUGFS_ADD_FILE(rx_queue, dir, S_IRUSR);
2074         DEBUGFS_ADD_FILE(tx_queue, dir, S_IRUSR);
2075         DEBUGFS_ADD_FILE(interrupt, dir, S_IWUSR | S_IRUSR);
2076         DEBUGFS_ADD_FILE(csr, dir, S_IWUSR);
2077         DEBUGFS_ADD_FILE(fh_reg, dir, S_IRUSR);
2078         return 0;
2079
2080 err:
2081         IWL_ERR(trans, "failed to create the trans debugfs entry\n");
2082         return -ENOMEM;
2083 }
2084 #else
2085 static int iwl_trans_pcie_dbgfs_register(struct iwl_trans *trans,
2086                                          struct dentry *dir)
2087 {
2088         return 0;
2089 }
2090 #endif /*CONFIG_IWLWIFI_DEBUGFS */
2091
2092 static u32 iwl_trans_pcie_get_cmdlen(struct iwl_tfd *tfd)
2093 {
2094         u32 cmdlen = 0;
2095         int i;
2096
2097         for (i = 0; i < IWL_NUM_OF_TBS; i++)
2098                 cmdlen += iwl_pcie_tfd_tb_get_len(tfd, i);
2099
2100         return cmdlen;
2101 }
2102
2103 static const struct {
2104         u32 start, end;
2105 } iwl_prph_dump_addr[] = {
2106         { .start = 0x00a00000, .end = 0x00a00000 },
2107         { .start = 0x00a0000c, .end = 0x00a00024 },
2108         { .start = 0x00a0002c, .end = 0x00a0003c },
2109         { .start = 0x00a00410, .end = 0x00a00418 },
2110         { .start = 0x00a00420, .end = 0x00a00420 },
2111         { .start = 0x00a00428, .end = 0x00a00428 },
2112         { .start = 0x00a00430, .end = 0x00a0043c },
2113         { .start = 0x00a00444, .end = 0x00a00444 },
2114         { .start = 0x00a004c0, .end = 0x00a004cc },
2115         { .start = 0x00a004d8, .end = 0x00a004d8 },
2116         { .start = 0x00a004e0, .end = 0x00a004f0 },
2117         { .start = 0x00a00840, .end = 0x00a00840 },
2118         { .start = 0x00a00850, .end = 0x00a00858 },
2119         { .start = 0x00a01004, .end = 0x00a01008 },
2120         { .start = 0x00a01010, .end = 0x00a01010 },
2121         { .start = 0x00a01018, .end = 0x00a01018 },
2122         { .start = 0x00a01024, .end = 0x00a01024 },
2123         { .start = 0x00a0102c, .end = 0x00a01034 },
2124         { .start = 0x00a0103c, .end = 0x00a01040 },
2125         { .start = 0x00a01048, .end = 0x00a01094 },
2126         { .start = 0x00a01c00, .end = 0x00a01c20 },
2127         { .start = 0x00a01c58, .end = 0x00a01c58 },
2128         { .start = 0x00a01c7c, .end = 0x00a01c7c },
2129         { .start = 0x00a01c28, .end = 0x00a01c54 },
2130         { .start = 0x00a01c5c, .end = 0x00a01c5c },
2131         { .start = 0x00a01c60, .end = 0x00a01cdc },
2132         { .start = 0x00a01ce0, .end = 0x00a01d0c },
2133         { .start = 0x00a01d18, .end = 0x00a01d20 },
2134         { .start = 0x00a01d2c, .end = 0x00a01d30 },
2135         { .start = 0x00a01d40, .end = 0x00a01d5c },
2136         { .start = 0x00a01d80, .end = 0x00a01d80 },
2137         { .start = 0x00a01d98, .end = 0x00a01d9c },
2138         { .start = 0x00a01da8, .end = 0x00a01da8 },
2139         { .start = 0x00a01db8, .end = 0x00a01df4 },
2140         { .start = 0x00a01dc0, .end = 0x00a01dfc },
2141         { .start = 0x00a01e00, .end = 0x00a01e2c },
2142         { .start = 0x00a01e40, .end = 0x00a01e60 },
2143         { .start = 0x00a01e68, .end = 0x00a01e6c },
2144         { .start = 0x00a01e74, .end = 0x00a01e74 },
2145         { .start = 0x00a01e84, .end = 0x00a01e90 },
2146         { .start = 0x00a01e9c, .end = 0x00a01ec4 },
2147         { .start = 0x00a01ed0, .end = 0x00a01ee0 },
2148         { .start = 0x00a01f00, .end = 0x00a01f1c },
2149         { .start = 0x00a01f44, .end = 0x00a01ffc },
2150         { .start = 0x00a02000, .end = 0x00a02048 },
2151         { .start = 0x00a02068, .end = 0x00a020f0 },
2152         { .start = 0x00a02100, .end = 0x00a02118 },
2153         { .start = 0x00a02140, .end = 0x00a0214c },
2154         { .start = 0x00a02168, .end = 0x00a0218c },
2155         { .start = 0x00a021c0, .end = 0x00a021c0 },
2156         { .start = 0x00a02400, .end = 0x00a02410 },
2157         { .start = 0x00a02418, .end = 0x00a02420 },
2158         { .start = 0x00a02428, .end = 0x00a0242c },
2159         { .start = 0x00a02434, .end = 0x00a02434 },
2160         { .start = 0x00a02440, .end = 0x00a02460 },
2161         { .start = 0x00a02468, .end = 0x00a024b0 },
2162         { .start = 0x00a024c8, .end = 0x00a024cc },
2163         { .start = 0x00a02500, .end = 0x00a02504 },
2164         { .start = 0x00a0250c, .end = 0x00a02510 },
2165         { .start = 0x00a02540, .end = 0x00a02554 },
2166         { .start = 0x00a02580, .end = 0x00a025f4 },
2167         { .start = 0x00a02600, .end = 0x00a0260c },
2168         { .start = 0x00a02648, .end = 0x00a02650 },
2169         { .start = 0x00a02680, .end = 0x00a02680 },
2170         { .start = 0x00a026c0, .end = 0x00a026d0 },
2171         { .start = 0x00a02700, .end = 0x00a0270c },
2172         { .start = 0x00a02804, .end = 0x00a02804 },
2173         { .start = 0x00a02818, .end = 0x00a0281c },
2174         { .start = 0x00a02c00, .end = 0x00a02db4 },
2175         { .start = 0x00a02df4, .end = 0x00a02fb0 },
2176         { .start = 0x00a03000, .end = 0x00a03014 },
2177         { .start = 0x00a0301c, .end = 0x00a0302c },
2178         { .start = 0x00a03034, .end = 0x00a03038 },
2179         { .start = 0x00a03040, .end = 0x00a03048 },
2180         { .start = 0x00a03060, .end = 0x00a03068 },
2181         { .start = 0x00a03070, .end = 0x00a03074 },
2182         { .start = 0x00a0307c, .end = 0x00a0307c },
2183         { .start = 0x00a03080, .end = 0x00a03084 },
2184         { .start = 0x00a0308c, .end = 0x00a03090 },
2185         { .start = 0x00a03098, .end = 0x00a03098 },
2186         { .start = 0x00a030a0, .end = 0x00a030a0 },
2187         { .start = 0x00a030a8, .end = 0x00a030b4 },
2188         { .start = 0x00a030bc, .end = 0x00a030bc },
2189         { .start = 0x00a030c0, .end = 0x00a0312c },
2190         { .start = 0x00a03c00, .end = 0x00a03c5c },
2191         { .start = 0x00a04400, .end = 0x00a04454 },
2192         { .start = 0x00a04460, .end = 0x00a04474 },
2193         { .start = 0x00a044c0, .end = 0x00a044ec },
2194         { .start = 0x00a04500, .end = 0x00a04504 },
2195         { .start = 0x00a04510, .end = 0x00a04538 },
2196         { .start = 0x00a04540, .end = 0x00a04548 },
2197         { .start = 0x00a04560, .end = 0x00a0457c },
2198         { .start = 0x00a04590, .end = 0x00a04598 },
2199         { .start = 0x00a045c0, .end = 0x00a045f4 },
2200 };
2201
2202 static u32 iwl_trans_pcie_dump_prph(struct iwl_trans *trans,
2203                                     struct iwl_fw_error_dump_data **data)
2204 {
2205         struct iwl_fw_error_dump_prph *prph;
2206         unsigned long flags;
2207         u32 prph_len = 0, i;
2208
2209         if (!iwl_trans_grab_nic_access(trans, false, &flags))
2210                 return 0;
2211
2212         for (i = 0; i < ARRAY_SIZE(iwl_prph_dump_addr); i++) {
2213                 /* The range includes both boundaries */
2214                 int num_bytes_in_chunk = iwl_prph_dump_addr[i].end -
2215                          iwl_prph_dump_addr[i].start + 4;
2216                 int reg;
2217                 __le32 *val;
2218
2219                 prph_len += sizeof(**data) + sizeof(*prph) + num_bytes_in_chunk;
2220
2221                 (*data)->type = cpu_to_le32(IWL_FW_ERROR_DUMP_PRPH);
2222                 (*data)->len = cpu_to_le32(sizeof(*prph) +
2223                                         num_bytes_in_chunk);
2224                 prph = (void *)(*data)->data;
2225                 prph->prph_start = cpu_to_le32(iwl_prph_dump_addr[i].start);
2226                 val = (void *)prph->data;
2227
2228                 for (reg = iwl_prph_dump_addr[i].start;
2229                      reg <= iwl_prph_dump_addr[i].end;
2230                      reg += 4)
2231                         *val++ = cpu_to_le32(iwl_trans_pcie_read_prph(trans,
2232                                                                       reg));
2233                 *data = iwl_fw_error_next_data(*data);
2234         }
2235
2236         iwl_trans_release_nic_access(trans, &flags);
2237
2238         return prph_len;
2239 }
2240
2241 #define IWL_CSR_TO_DUMP (0x250)
2242
2243 static u32 iwl_trans_pcie_dump_csr(struct iwl_trans *trans,
2244                                    struct iwl_fw_error_dump_data **data)
2245 {
2246         u32 csr_len = sizeof(**data) + IWL_CSR_TO_DUMP;
2247         __le32 *val;
2248         int i;
2249
2250         (*data)->type = cpu_to_le32(IWL_FW_ERROR_DUMP_CSR);
2251         (*data)->len = cpu_to_le32(IWL_CSR_TO_DUMP);
2252         val = (void *)(*data)->data;
2253
2254         for (i = 0; i < IWL_CSR_TO_DUMP; i += 4)
2255                 *val++ = cpu_to_le32(iwl_trans_pcie_read32(trans, i));
2256
2257         *data = iwl_fw_error_next_data(*data);
2258
2259         return csr_len;
2260 }
2261
2262 static u32 iwl_trans_pcie_fh_regs_dump(struct iwl_trans *trans,
2263                                        struct iwl_fw_error_dump_data **data)
2264 {
2265         u32 fh_regs_len = FH_MEM_UPPER_BOUND - FH_MEM_LOWER_BOUND;
2266         unsigned long flags;
2267         __le32 *val;
2268         int i;
2269
2270         if (!iwl_trans_grab_nic_access(trans, false, &flags))
2271                 return 0;
2272
2273         (*data)->type = cpu_to_le32(IWL_FW_ERROR_DUMP_FH_REGS);
2274         (*data)->len = cpu_to_le32(fh_regs_len);
2275         val = (void *)(*data)->data;
2276
2277         for (i = FH_MEM_LOWER_BOUND; i < FH_MEM_UPPER_BOUND; i += sizeof(u32))
2278                 *val++ = cpu_to_le32(iwl_trans_pcie_read32(trans, i));
2279
2280         iwl_trans_release_nic_access(trans, &flags);
2281
2282         *data = iwl_fw_error_next_data(*data);
2283
2284         return sizeof(**data) + fh_regs_len;
2285 }
2286
2287 static u32
2288 iwl_trans_pci_dump_marbh_monitor(struct iwl_trans *trans,
2289                                  struct iwl_fw_error_dump_fw_mon *fw_mon_data,
2290                                  u32 monitor_len)
2291 {
2292         u32 buf_size_in_dwords = (monitor_len >> 2);
2293         u32 *buffer = (u32 *)fw_mon_data->data;
2294         unsigned long flags;
2295         u32 i;
2296
2297         if (!iwl_trans_grab_nic_access(trans, false, &flags))
2298                 return 0;
2299
2300         __iwl_write_prph(trans, MON_DMARB_RD_CTL_ADDR, 0x1);
2301         for (i = 0; i < buf_size_in_dwords; i++)
2302                 buffer[i] = __iwl_read_prph(trans, MON_DMARB_RD_DATA_ADDR);
2303         __iwl_write_prph(trans, MON_DMARB_RD_CTL_ADDR, 0x0);
2304
2305         iwl_trans_release_nic_access(trans, &flags);
2306
2307         return monitor_len;
2308 }
2309
2310 static
2311 struct iwl_trans_dump_data *iwl_trans_pcie_dump_data(struct iwl_trans *trans)
2312 {
2313         struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
2314         struct iwl_fw_error_dump_data *data;
2315         struct iwl_txq *cmdq = &trans_pcie->txq[trans_pcie->cmd_queue];
2316         struct iwl_fw_error_dump_txcmd *txcmd;
2317         struct iwl_trans_dump_data *dump_data;
2318         u32 len;
2319         u32 monitor_len;
2320         int i, ptr;
2321
2322         /* transport dump header */
2323         len = sizeof(*dump_data);
2324
2325         /* host commands */
2326         len += sizeof(*data) +
2327                 cmdq->q.n_window * (sizeof(*txcmd) + TFD_MAX_PAYLOAD_SIZE);
2328
2329         /* CSR registers */
2330         len += sizeof(*data) + IWL_CSR_TO_DUMP;
2331
2332         /* PRPH registers */
2333         for (i = 0; i < ARRAY_SIZE(iwl_prph_dump_addr); i++) {
2334                 /* The range includes both boundaries */
2335                 int num_bytes_in_chunk = iwl_prph_dump_addr[i].end -
2336                         iwl_prph_dump_addr[i].start + 4;
2337
2338                 len += sizeof(*data) + sizeof(struct iwl_fw_error_dump_prph) +
2339                         num_bytes_in_chunk;
2340         }
2341
2342         /* FH registers */
2343         len += sizeof(*data) + (FH_MEM_UPPER_BOUND - FH_MEM_LOWER_BOUND);
2344
2345         /* FW monitor */
2346         if (trans_pcie->fw_mon_page) {
2347                 len += sizeof(*data) + sizeof(struct iwl_fw_error_dump_fw_mon) +
2348                        trans_pcie->fw_mon_size;
2349                 monitor_len = trans_pcie->fw_mon_size;
2350         } else if (trans->dbg_dest_tlv) {
2351                 u32 base, end;
2352
2353                 base = le32_to_cpu(trans->dbg_dest_tlv->base_reg);
2354                 end = le32_to_cpu(trans->dbg_dest_tlv->end_reg);
2355
2356                 base = iwl_read_prph(trans, base) <<
2357                        trans->dbg_dest_tlv->base_shift;
2358                 end = iwl_read_prph(trans, end) <<
2359                       trans->dbg_dest_tlv->end_shift;
2360
2361                 /* Make "end" point to the actual end */
2362                 if (trans->cfg->device_family == IWL_DEVICE_FAMILY_8000 ||
2363                     trans->dbg_dest_tlv->monitor_mode == MARBH_MODE)
2364                         end += (1 << trans->dbg_dest_tlv->end_shift);
2365                 monitor_len = end - base;
2366                 len += sizeof(*data) + sizeof(struct iwl_fw_error_dump_fw_mon) +
2367                        monitor_len;
2368         } else {
2369                 monitor_len = 0;
2370         }
2371
2372         dump_data = vzalloc(len);
2373         if (!dump_data)
2374                 return NULL;
2375
2376         len = 0;
2377         data = (void *)dump_data->data;
2378         data->type = cpu_to_le32(IWL_FW_ERROR_DUMP_TXCMD);
2379         txcmd = (void *)data->data;
2380         spin_lock_bh(&cmdq->lock);
2381         ptr = cmdq->q.write_ptr;
2382         for (i = 0; i < cmdq->q.n_window; i++) {
2383                 u8 idx = get_cmd_index(&cmdq->q, ptr);
2384                 u32 caplen, cmdlen;
2385
2386                 cmdlen = iwl_trans_pcie_get_cmdlen(&cmdq->tfds[ptr]);
2387                 caplen = min_t(u32, TFD_MAX_PAYLOAD_SIZE, cmdlen);
2388
2389                 if (cmdlen) {
2390                         len += sizeof(*txcmd) + caplen;
2391                         txcmd->cmdlen = cpu_to_le32(cmdlen);
2392                         txcmd->caplen = cpu_to_le32(caplen);
2393                         memcpy(txcmd->data, cmdq->entries[idx].cmd, caplen);
2394                         txcmd = (void *)((u8 *)txcmd->data + caplen);
2395                 }
2396
2397                 ptr = iwl_queue_dec_wrap(ptr);
2398         }
2399         spin_unlock_bh(&cmdq->lock);
2400
2401         data->len = cpu_to_le32(len);
2402         len += sizeof(*data);
2403         data = iwl_fw_error_next_data(data);
2404
2405         len += iwl_trans_pcie_dump_prph(trans, &data);
2406         len += iwl_trans_pcie_dump_csr(trans, &data);
2407         len += iwl_trans_pcie_fh_regs_dump(trans, &data);
2408         /* data is already pointing to the next section */
2409
2410         if ((trans_pcie->fw_mon_page &&
2411              trans->cfg->device_family == IWL_DEVICE_FAMILY_7000) ||
2412             trans->dbg_dest_tlv) {
2413                 struct iwl_fw_error_dump_fw_mon *fw_mon_data;
2414                 u32 base, write_ptr, wrap_cnt;
2415
2416                 /* If there was a dest TLV - use the values from there */
2417                 if (trans->dbg_dest_tlv) {
2418                         write_ptr =
2419                                 le32_to_cpu(trans->dbg_dest_tlv->write_ptr_reg);
2420                         wrap_cnt = le32_to_cpu(trans->dbg_dest_tlv->wrap_count);
2421                         base = le32_to_cpu(trans->dbg_dest_tlv->base_reg);
2422                 } else {
2423                         base = MON_BUFF_BASE_ADDR;
2424                         write_ptr = MON_BUFF_WRPTR;
2425                         wrap_cnt = MON_BUFF_CYCLE_CNT;
2426                 }
2427
2428                 data->type = cpu_to_le32(IWL_FW_ERROR_DUMP_FW_MONITOR);
2429                 fw_mon_data = (void *)data->data;
2430                 fw_mon_data->fw_mon_wr_ptr =
2431                         cpu_to_le32(iwl_read_prph(trans, write_ptr));
2432                 fw_mon_data->fw_mon_cycle_cnt =
2433                         cpu_to_le32(iwl_read_prph(trans, wrap_cnt));
2434                 fw_mon_data->fw_mon_base_ptr =
2435                         cpu_to_le32(iwl_read_prph(trans, base));
2436
2437                 len += sizeof(*data) + sizeof(*fw_mon_data);
2438                 if (trans_pcie->fw_mon_page) {
2439                         /*
2440                          * The firmware is now asserted, it won't write anything
2441                          * to the buffer. CPU can take ownership to fetch the
2442                          * data. The buffer will be handed back to the device
2443                          * before the firmware will be restarted.
2444                          */
2445                         dma_sync_single_for_cpu(trans->dev,
2446                                                 trans_pcie->fw_mon_phys,
2447                                                 trans_pcie->fw_mon_size,
2448                                                 DMA_FROM_DEVICE);
2449                         memcpy(fw_mon_data->data,
2450                                page_address(trans_pcie->fw_mon_page),
2451                                trans_pcie->fw_mon_size);
2452
2453                         monitor_len = trans_pcie->fw_mon_size;
2454                 } else if (trans->dbg_dest_tlv->monitor_mode == SMEM_MODE) {
2455                         /*
2456                          * Update pointers to reflect actual values after
2457                          * shifting
2458                          */
2459                         base = iwl_read_prph(trans, base) <<
2460                                trans->dbg_dest_tlv->base_shift;
2461                         iwl_trans_read_mem(trans, base, fw_mon_data->data,
2462                                            monitor_len / sizeof(u32));
2463                 } else if (trans->dbg_dest_tlv->monitor_mode == MARBH_MODE) {
2464                         monitor_len =
2465                                 iwl_trans_pci_dump_marbh_monitor(trans,
2466                                                                  fw_mon_data,
2467                                                                  monitor_len);
2468                 } else {
2469                         /* Didn't match anything - output no monitor data */
2470                         monitor_len = 0;
2471                 }
2472
2473                 len += monitor_len;
2474                 data->len = cpu_to_le32(monitor_len + sizeof(*fw_mon_data));
2475         }
2476
2477         dump_data->len = len;
2478
2479         return dump_data;
2480 }
2481
2482 static const struct iwl_trans_ops trans_ops_pcie = {
2483         .start_hw = iwl_trans_pcie_start_hw,
2484         .op_mode_leave = iwl_trans_pcie_op_mode_leave,
2485         .fw_alive = iwl_trans_pcie_fw_alive,
2486         .start_fw = iwl_trans_pcie_start_fw,
2487         .stop_device = iwl_trans_pcie_stop_device,
2488
2489         .d3_suspend = iwl_trans_pcie_d3_suspend,
2490         .d3_resume = iwl_trans_pcie_d3_resume,
2491
2492         .send_cmd = iwl_trans_pcie_send_hcmd,
2493
2494         .tx = iwl_trans_pcie_tx,
2495         .reclaim = iwl_trans_pcie_reclaim,
2496
2497         .txq_disable = iwl_trans_pcie_txq_disable,
2498         .txq_enable = iwl_trans_pcie_txq_enable,
2499
2500         .dbgfs_register = iwl_trans_pcie_dbgfs_register,
2501
2502         .wait_tx_queue_empty = iwl_trans_pcie_wait_txq_empty,
2503         .freeze_txq_timer = iwl_trans_pcie_freeze_txq_timer,
2504
2505         .write8 = iwl_trans_pcie_write8,
2506         .write32 = iwl_trans_pcie_write32,
2507         .read32 = iwl_trans_pcie_read32,
2508         .read_prph = iwl_trans_pcie_read_prph,
2509         .write_prph = iwl_trans_pcie_write_prph,
2510         .read_mem = iwl_trans_pcie_read_mem,
2511         .write_mem = iwl_trans_pcie_write_mem,
2512         .configure = iwl_trans_pcie_configure,
2513         .set_pmi = iwl_trans_pcie_set_pmi,
2514         .grab_nic_access = iwl_trans_pcie_grab_nic_access,
2515         .release_nic_access = iwl_trans_pcie_release_nic_access,
2516         .set_bits_mask = iwl_trans_pcie_set_bits_mask,
2517
2518         .ref = iwl_trans_pcie_ref,
2519         .unref = iwl_trans_pcie_unref,
2520
2521         .dump_data = iwl_trans_pcie_dump_data,
2522 };
2523
2524 struct iwl_trans *iwl_trans_pcie_alloc(struct pci_dev *pdev,
2525                                        const struct pci_device_id *ent,
2526                                        const struct iwl_cfg *cfg)
2527 {
2528         struct iwl_trans_pcie *trans_pcie;
2529         struct iwl_trans *trans;
2530         u16 pci_cmd;
2531         int err;
2532
2533         trans = iwl_trans_alloc(sizeof(struct iwl_trans_pcie),
2534                                 &pdev->dev, cfg, &trans_ops_pcie, 0);
2535         if (!trans)
2536                 return ERR_PTR(-ENOMEM);
2537
2538         trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
2539
2540         trans_pcie->trans = trans;
2541         spin_lock_init(&trans_pcie->irq_lock);
2542         spin_lock_init(&trans_pcie->reg_lock);
2543         spin_lock_init(&trans_pcie->ref_lock);
2544         mutex_init(&trans_pcie->mutex);
2545         init_waitqueue_head(&trans_pcie->ucode_write_waitq);
2546
2547         err = pci_enable_device(pdev);
2548         if (err)
2549                 goto out_no_pci;
2550
2551         if (!cfg->base_params->pcie_l1_allowed) {
2552                 /*
2553                  * W/A - seems to solve weird behavior. We need to remove this
2554                  * if we don't want to stay in L1 all the time. This wastes a
2555                  * lot of power.
2556                  */
2557                 pci_disable_link_state(pdev, PCIE_LINK_STATE_L0S |
2558                                        PCIE_LINK_STATE_L1 |
2559                                        PCIE_LINK_STATE_CLKPM);
2560         }
2561
2562         pci_set_master(pdev);
2563
2564         err = pci_set_dma_mask(pdev, DMA_BIT_MASK(36));
2565         if (!err)
2566                 err = pci_set_consistent_dma_mask(pdev, DMA_BIT_MASK(36));
2567         if (err) {
2568                 err = pci_set_dma_mask(pdev, DMA_BIT_MASK(32));
2569                 if (!err)
2570                         err = pci_set_consistent_dma_mask(pdev,
2571                                                           DMA_BIT_MASK(32));
2572                 /* both attempts failed: */
2573                 if (err) {
2574                         dev_err(&pdev->dev, "No suitable DMA available\n");
2575                         goto out_pci_disable_device;
2576                 }
2577         }
2578
2579         err = pci_request_regions(pdev, DRV_NAME);
2580         if (err) {
2581                 dev_err(&pdev->dev, "pci_request_regions failed\n");
2582                 goto out_pci_disable_device;
2583         }
2584
2585         trans_pcie->hw_base = pci_ioremap_bar(pdev, 0);
2586         if (!trans_pcie->hw_base) {
2587                 dev_err(&pdev->dev, "pci_ioremap_bar failed\n");
2588                 err = -ENODEV;
2589                 goto out_pci_release_regions;
2590         }
2591
2592         /* We disable the RETRY_TIMEOUT register (0x41) to keep
2593          * PCI Tx retries from interfering with C3 CPU state */
2594         pci_write_config_byte(pdev, PCI_CFG_RETRY_TIMEOUT, 0x00);
2595
2596         trans->dev = &pdev->dev;
2597         trans_pcie->pci_dev = pdev;
2598         iwl_disable_interrupts(trans);
2599
2600         err = pci_enable_msi(pdev);
2601         if (err) {
2602                 dev_err(&pdev->dev, "pci_enable_msi failed(0X%x)\n", err);
2603                 /* enable rfkill interrupt: hw bug w/a */
2604                 pci_read_config_word(pdev, PCI_COMMAND, &pci_cmd);
2605                 if (pci_cmd & PCI_COMMAND_INTX_DISABLE) {
2606                         pci_cmd &= ~PCI_COMMAND_INTX_DISABLE;
2607                         pci_write_config_word(pdev, PCI_COMMAND, pci_cmd);
2608                 }
2609         }
2610
2611         trans->hw_rev = iwl_read32(trans, CSR_HW_REV);
2612         /*
2613          * In the 8000 HW family the format of the 4 bytes of CSR_HW_REV have
2614          * changed, and now the revision step also includes bit 0-1 (no more
2615          * "dash" value). To keep hw_rev backwards compatible - we'll store it
2616          * in the old format.
2617          */
2618         if (trans->cfg->device_family == IWL_DEVICE_FAMILY_8000) {
2619                 unsigned long flags;
2620                 int ret;
2621
2622                 trans->hw_rev = (trans->hw_rev & 0xfff0) |
2623                                 (CSR_HW_REV_STEP(trans->hw_rev << 2) << 2);
2624
2625                 /*
2626                  * in-order to recognize C step driver should read chip version
2627                  * id located at the AUX bus MISC address space.
2628                  */
2629                 iwl_set_bit(trans, CSR_GP_CNTRL,
2630                             CSR_GP_CNTRL_REG_FLAG_INIT_DONE);
2631                 udelay(2);
2632
2633                 ret = iwl_poll_bit(trans, CSR_GP_CNTRL,
2634                                    CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY,
2635                                    CSR_GP_CNTRL_REG_FLAG_MAC_CLOCK_READY,
2636                                    25000);
2637                 if (ret < 0) {
2638                         IWL_DEBUG_INFO(trans, "Failed to wake up the nic\n");
2639                         goto out_pci_disable_msi;
2640                 }
2641
2642                 if (iwl_trans_grab_nic_access(trans, false, &flags)) {
2643                         u32 hw_step;
2644
2645                         hw_step = __iwl_read_prph(trans, WFPM_CTRL_REG);
2646                         hw_step |= ENABLE_WFPM;
2647                         __iwl_write_prph(trans, WFPM_CTRL_REG, hw_step);
2648                         hw_step = __iwl_read_prph(trans, AUX_MISC_REG);
2649                         hw_step = (hw_step >> HW_STEP_LOCATION_BITS) & 0xF;
2650                         if (hw_step == 0x3)
2651                                 trans->hw_rev = (trans->hw_rev & 0xFFFFFFF3) |
2652                                                 (SILICON_C_STEP << 2);
2653                         iwl_trans_release_nic_access(trans, &flags);
2654                 }
2655         }
2656
2657         trans->hw_id = (pdev->device << 16) + pdev->subsystem_device;
2658         snprintf(trans->hw_id_str, sizeof(trans->hw_id_str),
2659                  "PCI ID: 0x%04X:0x%04X", pdev->device, pdev->subsystem_device);
2660
2661         /* Initialize the wait queue for commands */
2662         init_waitqueue_head(&trans_pcie->wait_command_queue);
2663
2664         if (iwl_pcie_alloc_ict(trans))
2665                 goto out_pci_disable_msi;
2666
2667         err = request_threaded_irq(pdev->irq, iwl_pcie_isr,
2668                                    iwl_pcie_irq_handler,
2669                                    IRQF_SHARED, DRV_NAME, trans);
2670         if (err) {
2671                 IWL_ERR(trans, "Error allocating IRQ %d\n", pdev->irq);
2672                 goto out_free_ict;
2673         }
2674
2675         trans_pcie->inta_mask = CSR_INI_SET_MASK;
2676         trans->d0i3_mode = IWL_D0I3_MODE_ON_SUSPEND;
2677
2678         return trans;
2679
2680 out_free_ict:
2681         iwl_pcie_free_ict(trans);
2682 out_pci_disable_msi:
2683         pci_disable_msi(pdev);
2684 out_pci_release_regions:
2685         pci_release_regions(pdev);
2686 out_pci_disable_device:
2687         pci_disable_device(pdev);
2688 out_no_pci:
2689         iwl_trans_free(trans);
2690         return ERR_PTR(err);
2691 }