1 /* SPDX-License-Identifier: GPL-2.0-or-later */
3 Copyright (C) 2010 Willow Garage <http://www.willowgarage.com>
4 Copyright (C) 2004 - 2010 Ivo van Doorn <IvDoorn@gmail.com>
5 Copyright (C) 2004 - 2009 Gertjan van Wingerde <gwingerde@gmail.com>
6 <http://rt2x00.serialmonkey.com>
12 Abstract: rt2x00 global information.
18 #include <linux/bitops.h>
19 #include <linux/interrupt.h>
20 #include <linux/skbuff.h>
21 #include <linux/workqueue.h>
22 #include <linux/firmware.h>
23 #include <linux/leds.h>
24 #include <linux/mutex.h>
25 #include <linux/etherdevice.h>
26 #include <linux/kfifo.h>
27 #include <linux/hrtimer.h>
28 #include <linux/average.h>
29 #include <linux/usb.h>
30 #include <linux/clk.h>
32 #include <net/mac80211.h>
34 #include "rt2x00debug.h"
35 #include "rt2x00dump.h"
36 #include "rt2x00leds.h"
37 #include "rt2x00reg.h"
38 #include "rt2x00queue.h"
43 #define DRV_VERSION "2.3.0"
44 #define DRV_PROJECT "http://rt2x00.serialmonkey.com"
47 * Debug output has to be enabled during compile time.
49 #ifdef CONFIG_RT2X00_DEBUG
51 #endif /* CONFIG_RT2X00_DEBUG */
53 /* Utility printing macros
54 * rt2x00_probe_err is for messages when rt2x00_dev is uninitialized
56 #define rt2x00_probe_err(fmt, ...) \
57 printk(KERN_ERR KBUILD_MODNAME ": %s: Error - " fmt, \
58 __func__, ##__VA_ARGS__)
59 #define rt2x00_err(dev, fmt, ...) \
60 wiphy_err_ratelimited((dev)->hw->wiphy, "%s: Error - " fmt, \
61 __func__, ##__VA_ARGS__)
62 #define rt2x00_warn(dev, fmt, ...) \
63 wiphy_warn_ratelimited((dev)->hw->wiphy, "%s: Warning - " fmt, \
64 __func__, ##__VA_ARGS__)
65 #define rt2x00_info(dev, fmt, ...) \
66 wiphy_info((dev)->hw->wiphy, "%s: Info - " fmt, \
67 __func__, ##__VA_ARGS__)
69 /* Various debug levels */
70 #define rt2x00_dbg(dev, fmt, ...) \
71 wiphy_dbg((dev)->hw->wiphy, "%s: Debug - " fmt, \
72 __func__, ##__VA_ARGS__)
73 #define rt2x00_eeprom_dbg(dev, fmt, ...) \
74 wiphy_dbg((dev)->hw->wiphy, "%s: EEPROM recovery - " fmt, \
75 __func__, ##__VA_ARGS__)
78 * Duration calculations
79 * The rate variable passed is: 100kbs.
80 * To convert from bytes to bits we multiply size with 8,
81 * then the size is multiplied with 10 to make the
82 * real rate -> rate argument correction.
84 #define GET_DURATION(__size, __rate) (((__size) * 8 * 10) / (__rate))
85 #define GET_DURATION_RES(__size, __rate)(((__size) * 8 * 10) % (__rate))
88 * Determine the number of L2 padding bytes required between the header and
91 #define L2PAD_SIZE(__hdrlen) (-(__hdrlen) & 3)
94 * Determine the alignment requirement,
95 * to make sure the 802.11 payload is padded to a 4-byte boundrary
96 * we must determine the address of the payload and calculate the
97 * amount of bytes needed to move the data.
99 #define ALIGN_SIZE(__skb, __header) \
100 (((unsigned long)((__skb)->data + (__header))) & 3)
103 * Constants for extra TX headroom for alignment purposes.
105 #define RT2X00_ALIGN_SIZE 4 /* Only whole frame needs alignment */
106 #define RT2X00_L2PAD_SIZE 8 /* Both header & payload need alignment */
109 * Standard timing and size defines.
110 * These values should follow the ieee80211 specifications.
113 #define IEEE80211_HEADER 24
117 #define SHORT_PREAMBLE 72
119 #define SHORT_SLOT_TIME 9
121 #define PIFS (SIFS + SLOT_TIME)
122 #define SHORT_PIFS (SIFS + SHORT_SLOT_TIME)
123 #define DIFS (PIFS + SLOT_TIME)
124 #define SHORT_DIFS (SHORT_PIFS + SHORT_SLOT_TIME)
125 #define EIFS (SIFS + DIFS + \
126 GET_DURATION(IEEE80211_HEADER + ACK_SIZE, 10))
127 #define SHORT_EIFS (SIFS + SHORT_DIFS + \
128 GET_DURATION(IEEE80211_HEADER + ACK_SIZE, 10))
130 enum rt2x00_chip_intf
{
131 RT2X00_CHIP_INTF_PCI
,
132 RT2X00_CHIP_INTF_PCIE
,
133 RT2X00_CHIP_INTF_USB
,
134 RT2X00_CHIP_INTF_SOC
,
138 * Chipset identification
139 * The chipset on the device is composed of a RT and RF chip.
140 * The chipset combination is important for determining device capabilities.
144 #define RT2460 0x2460
145 #define RT2560 0x2560
146 #define RT2570 0x2570
147 #define RT2661 0x2661
148 #define RT2573 0x2573
149 #define RT2860 0x2860 /* 2.4GHz */
150 #define RT2872 0x2872 /* WSOC */
151 #define RT2883 0x2883 /* WSOC */
152 #define RT3070 0x3070
153 #define RT3071 0x3071
154 #define RT3090 0x3090 /* 2.4GHz PCIe */
155 #define RT3290 0x3290
156 #define RT3352 0x3352 /* WSOC */
157 #define RT3390 0x3390
158 #define RT3572 0x3572
159 #define RT3593 0x3593
160 #define RT3883 0x3883 /* WSOC */
161 #define RT5350 0x5350 /* WSOC 2.4GHz */
162 #define RT5390 0x5390 /* 2.4GHz */
163 #define RT5392 0x5392 /* 2.4GHz */
164 #define RT5592 0x5592
165 #define RT6352 0x6352 /* WSOC 2.4GHz */
170 enum rt2x00_chip_intf intf
;
174 * RF register values that belong to a particular channel.
185 * Channel information structure
187 struct channel_info
{
189 #define GEOGRAPHY_ALLOWED 0x00000001
192 short default_power1
;
193 short default_power2
;
194 short default_power3
;
198 * Antenna setup values.
200 struct antenna_setup
{
208 * Quality statistics about the currently active link.
212 * Statistics required for Link tuning by driver
213 * The rssi value is provided by rt2x00lib during the
214 * link_tuner() callback function.
215 * The false_cca field is filled during the link_stats()
216 * callback function and could be used during the
217 * link_tuner() callback function.
224 * Hardware driver will tune the VGC level during each call
225 * to the link_tuner() callback function. This vgc_level is
226 * is determined based on the link quality statistics like
227 * average RSSI and the false CCA count.
229 * In some cases the drivers need to differentiate between
230 * the currently "desired" VGC level and the level configured
231 * in the hardware. The latter is important to reduce the
232 * number of BBP register reads to reduce register access
233 * overhead. For this reason we store both values here.
239 * Statistics required for Signal quality calculation.
240 * These fields might be changed during the link_stats()
249 DECLARE_EWMA(rssi
, 10, 8)
252 * Antenna settings about the currently active link.
259 #define ANTENNA_RX_DIVERSITY 0x00000001
260 #define ANTENNA_TX_DIVERSITY 0x00000002
261 #define ANTENNA_MODE_SAMPLE 0x00000004
264 * Currently active TX/RX antenna setup.
265 * When software diversity is used, this will indicate
266 * which antenna is actually used at this time.
268 struct antenna_setup active
;
271 * RSSI history information for the antenna.
272 * Used to determine when to switch antenna
273 * when using software diversity.
278 * Current RSSI average of the currently active antenna.
279 * Similar to the avg_rssi in the link_qual structure
280 * this value is updated by using the walking average.
282 struct ewma_rssi rssi_ant
;
286 * To optimize the quality of the link we need to store
287 * the quality of received frames and periodically
293 * The number of times the link has been tuned
294 * since the radio has been switched on.
299 * Quality measurement values.
301 struct link_qual qual
;
304 * TX/RX antenna setup.
309 * Currently active average RSSI value
311 struct ewma_rssi avg_rssi
;
314 * Work structure for scheduling periodic link tuning.
316 struct delayed_work work
;
319 * Work structure for scheduling periodic watchdog monitoring.
320 * This work must be scheduled on the kernel workqueue, while
321 * all other work structures must be queued on the mac80211
322 * workqueue. This guarantees that the watchdog can schedule
323 * other work structures and wait for their completion in order
324 * to bring the device/driver back into the desired state.
326 struct delayed_work watchdog_work
;
327 unsigned int watchdog_interval
;
328 bool watchdog_disabled
;
331 * Work structure for scheduling periodic AGC adjustments.
333 struct delayed_work agc_work
;
336 * Work structure for scheduling periodic VCO calibration.
338 struct delayed_work vco_work
;
341 enum rt2x00_delayed_flags
{
342 DELAYED_UPDATE_BEACON
,
346 * Interface structure
347 * Per interface configuration details, this structure
348 * is allocated as the private data for ieee80211_vif.
352 * beacon->skb must be protected with the mutex.
354 struct mutex beacon_skb_mutex
;
357 * Entry in the beacon queue which belongs to
358 * this interface. Each interface has its own
359 * dedicated beacon entry.
361 struct queue_entry
*beacon
;
365 * Actions that needed rescheduling.
367 unsigned long delayed_flags
;
370 * Software sequence counter, this is only required
371 * for hardware which doesn't support hardware
377 static inline struct rt2x00_intf
* vif_to_intf(struct ieee80211_vif
*vif
)
379 return (struct rt2x00_intf
*)vif
->drv_priv
;
383 * struct hw_mode_spec: Hardware specifications structure
385 * Details about the supported modes, rates and channels
386 * of a particular chipset. This is used by rt2x00lib
387 * to build the ieee80211_hw_mode array for mac80211.
389 * @supported_bands: Bitmask contained the supported bands (2.4GHz, 5.2GHz).
390 * @supported_rates: Rate types which are supported (CCK, OFDM).
391 * @num_channels: Number of supported channels. This is used as array size
392 * for @tx_power_a, @tx_power_bg and @channels.
393 * @channels: Device/chipset specific channel values (See &struct rf_channel).
394 * @channels_info: Additional information for channels (See &struct channel_info).
395 * @ht: Driver HT Capabilities (See &ieee80211_sta_ht_cap).
397 struct hw_mode_spec
{
398 unsigned int supported_bands
;
399 #define SUPPORT_BAND_2GHZ 0x00000001
400 #define SUPPORT_BAND_5GHZ 0x00000002
402 unsigned int supported_rates
;
403 #define SUPPORT_RATE_CCK 0x00000001
404 #define SUPPORT_RATE_OFDM 0x00000002
406 unsigned int num_channels
;
407 const struct rf_channel
*channels
;
408 const struct channel_info
*channels_info
;
410 struct ieee80211_sta_ht_cap ht
;
414 * Configuration structure wrapper around the
415 * mac80211 configuration structure.
416 * When mac80211 configures the driver, rt2x00lib
417 * can precalculate values which are equal for all
418 * rt2x00 drivers. Those values can be stored in here.
420 struct rt2x00lib_conf
{
421 struct ieee80211_conf
*conf
;
423 struct rf_channel rf
;
424 struct channel_info channel
;
428 * Configuration structure for erp settings.
430 struct rt2x00lib_erp
{
448 * Configuration structure for hardware encryption.
450 struct rt2x00lib_crypto
{
453 enum set_key_cmd cmd
;
466 * Configuration structure wrapper around the
467 * rt2x00 interface configuration handler.
469 struct rt2x00intf_conf
{
473 enum nl80211_iftype type
;
476 * TSF sync value, this is dependent on the operation type.
481 * The MAC and BSSID addresses are simple array of bytes,
482 * these arrays are little endian, so when sending the addresses
483 * to the drivers, copy the it into a endian-signed variable.
485 * Note that all devices (except rt2500usb) have 32 bits
486 * register word sizes. This means that whatever variable we
487 * pass _must_ be a multiple of 32 bits. Otherwise the device
488 * might not accept what we are sending to it.
489 * This will also make it easier for the driver to write
490 * the data to the device.
497 * Private structure for storing STA details
498 * wcid: Wireless Client ID
504 static inline struct rt2x00_sta
* sta_to_rt2x00_sta(struct ieee80211_sta
*sta
)
506 return (struct rt2x00_sta
*)sta
->drv_priv
;
510 * rt2x00lib callback functions.
512 struct rt2x00lib_ops
{
514 * Interrupt handlers.
516 irq_handler_t irq_handler
;
519 * TX status tasklet handler.
521 void (*txstatus_tasklet
) (unsigned long data
);
522 void (*pretbtt_tasklet
) (unsigned long data
);
523 void (*tbtt_tasklet
) (unsigned long data
);
524 void (*rxdone_tasklet
) (unsigned long data
);
525 void (*autowake_tasklet
) (unsigned long data
);
528 * Device init handlers.
530 int (*probe_hw
) (struct rt2x00_dev
*rt2x00dev
);
531 char *(*get_firmware_name
) (struct rt2x00_dev
*rt2x00dev
);
532 int (*check_firmware
) (struct rt2x00_dev
*rt2x00dev
,
533 const u8
*data
, const size_t len
);
534 int (*load_firmware
) (struct rt2x00_dev
*rt2x00dev
,
535 const u8
*data
, const size_t len
);
538 * Device initialization/deinitialization handlers.
540 int (*initialize
) (struct rt2x00_dev
*rt2x00dev
);
541 void (*uninitialize
) (struct rt2x00_dev
*rt2x00dev
);
544 * queue initialization handlers
546 bool (*get_entry_state
) (struct queue_entry
*entry
);
547 void (*clear_entry
) (struct queue_entry
*entry
);
550 * Radio control handlers.
552 int (*set_device_state
) (struct rt2x00_dev
*rt2x00dev
,
553 enum dev_state state
);
554 int (*rfkill_poll
) (struct rt2x00_dev
*rt2x00dev
);
555 void (*link_stats
) (struct rt2x00_dev
*rt2x00dev
,
556 struct link_qual
*qual
);
557 void (*reset_tuner
) (struct rt2x00_dev
*rt2x00dev
,
558 struct link_qual
*qual
);
559 void (*link_tuner
) (struct rt2x00_dev
*rt2x00dev
,
560 struct link_qual
*qual
, const u32 count
);
561 void (*gain_calibration
) (struct rt2x00_dev
*rt2x00dev
);
562 void (*vco_calibration
) (struct rt2x00_dev
*rt2x00dev
);
565 * Data queue handlers.
567 void (*watchdog
) (struct rt2x00_dev
*rt2x00dev
);
568 void (*start_queue
) (struct data_queue
*queue
);
569 void (*kick_queue
) (struct data_queue
*queue
);
570 void (*stop_queue
) (struct data_queue
*queue
);
571 void (*flush_queue
) (struct data_queue
*queue
, bool drop
);
572 void (*tx_dma_done
) (struct queue_entry
*entry
);
575 * TX control handlers
577 void (*write_tx_desc
) (struct queue_entry
*entry
,
578 struct txentry_desc
*txdesc
);
579 void (*write_tx_data
) (struct queue_entry
*entry
,
580 struct txentry_desc
*txdesc
);
581 void (*write_beacon
) (struct queue_entry
*entry
,
582 struct txentry_desc
*txdesc
);
583 void (*clear_beacon
) (struct queue_entry
*entry
);
584 int (*get_tx_data_len
) (struct queue_entry
*entry
);
587 * RX control handlers
589 void (*fill_rxdone
) (struct queue_entry
*entry
,
590 struct rxdone_entry_desc
*rxdesc
);
593 * Configuration handlers.
595 int (*config_shared_key
) (struct rt2x00_dev
*rt2x00dev
,
596 struct rt2x00lib_crypto
*crypto
,
597 struct ieee80211_key_conf
*key
);
598 int (*config_pairwise_key
) (struct rt2x00_dev
*rt2x00dev
,
599 struct rt2x00lib_crypto
*crypto
,
600 struct ieee80211_key_conf
*key
);
601 void (*config_filter
) (struct rt2x00_dev
*rt2x00dev
,
602 const unsigned int filter_flags
);
603 void (*config_intf
) (struct rt2x00_dev
*rt2x00dev
,
604 struct rt2x00_intf
*intf
,
605 struct rt2x00intf_conf
*conf
,
606 const unsigned int flags
);
607 #define CONFIG_UPDATE_TYPE ( 1 << 1 )
608 #define CONFIG_UPDATE_MAC ( 1 << 2 )
609 #define CONFIG_UPDATE_BSSID ( 1 << 3 )
611 void (*config_erp
) (struct rt2x00_dev
*rt2x00dev
,
612 struct rt2x00lib_erp
*erp
,
614 void (*config_ant
) (struct rt2x00_dev
*rt2x00dev
,
615 struct antenna_setup
*ant
);
616 void (*config
) (struct rt2x00_dev
*rt2x00dev
,
617 struct rt2x00lib_conf
*libconf
,
618 const unsigned int changed_flags
);
619 void (*pre_reset_hw
) (struct rt2x00_dev
*rt2x00dev
);
620 int (*sta_add
) (struct rt2x00_dev
*rt2x00dev
,
621 struct ieee80211_vif
*vif
,
622 struct ieee80211_sta
*sta
);
623 int (*sta_remove
) (struct rt2x00_dev
*rt2x00dev
,
624 struct ieee80211_sta
*sta
);
628 * rt2x00 driver callback operation structure.
632 const unsigned int drv_data_size
;
633 const unsigned int max_ap_intf
;
634 const unsigned int eeprom_size
;
635 const unsigned int rf_size
;
636 const unsigned int tx_queues
;
637 void (*queue_init
)(struct data_queue
*queue
);
638 const struct rt2x00lib_ops
*lib
;
640 const struct ieee80211_ops
*hw
;
641 #ifdef CONFIG_RT2X00_LIB_DEBUGFS
642 const struct rt2x00debug
*debugfs
;
643 #endif /* CONFIG_RT2X00_LIB_DEBUGFS */
649 enum rt2x00_state_flags
{
653 DEVICE_STATE_PRESENT
,
654 DEVICE_STATE_REGISTERED_HW
,
655 DEVICE_STATE_INITIALIZED
,
656 DEVICE_STATE_STARTED
,
657 DEVICE_STATE_ENABLED_RADIO
,
658 DEVICE_STATE_SCANNING
,
659 DEVICE_STATE_FLUSHING
,
663 * Driver configuration
671 * Mark we currently are sequentially reading TX_STA_FIFO register
672 * FIXME: this is for only rt2800usb, should go to private data
678 * rt2x00 capability flags
680 enum rt2x00_capability_flags
{
685 REQUIRE_BEACON_GUARD
,
690 REQUIRE_TXSTATUS_FIFO
,
691 REQUIRE_TASKLET_CONTEXT
,
695 REQUIRE_DELAYED_RFKILL
,
700 CAPABILITY_HW_BUTTON
,
701 CAPABILITY_HW_CRYPTO
,
702 CAPABILITY_POWER_LIMIT
,
703 CAPABILITY_CONTROL_FILTERS
,
704 CAPABILITY_CONTROL_FILTER_PSPOLL
,
705 CAPABILITY_PRE_TBTT_INTERRUPT
,
706 CAPABILITY_LINK_TUNING
,
707 CAPABILITY_FRAME_TYPE
,
708 CAPABILITY_RF_SEQUENCE
,
709 CAPABILITY_EXTERNAL_LNA_A
,
710 CAPABILITY_EXTERNAL_LNA_BG
,
711 CAPABILITY_DOUBLE_ANTENNA
,
712 CAPABILITY_BT_COEXIST
,
713 CAPABILITY_VCO_RECALIBRATION
,
714 CAPABILITY_EXTERNAL_PA_TX0
,
715 CAPABILITY_EXTERNAL_PA_TX1
,
716 CAPABILITY_RESTART_HW
,
720 * Interface combinations
728 * rt2x00 device structure.
733 * The structure stored in here depends on the
734 * system bus (PCI or USB).
735 * When accessing this variable, the rt2x00dev_{pci,usb}
736 * macros should be used for correct typecasting.
741 * Callback functions.
743 const struct rt2x00_ops
*ops
;
751 * IEEE80211 control structure.
753 struct ieee80211_hw
*hw
;
754 struct ieee80211_supported_band bands
[NUM_NL80211_BANDS
];
755 enum nl80211_band curr_band
;
759 * If enabled, the debugfs interface structures
760 * required for deregistration of debugfs.
762 #ifdef CONFIG_RT2X00_LIB_DEBUGFS
763 struct rt2x00debug_intf
*debugfs_intf
;
764 #endif /* CONFIG_RT2X00_LIB_DEBUGFS */
767 * LED structure for changing the LED status
768 * by mac8011 or the kernel.
770 #ifdef CONFIG_RT2X00_LIB_LEDS
771 struct rt2x00_led led_radio
;
772 struct rt2x00_led led_assoc
;
773 struct rt2x00_led led_qual
;
775 #endif /* CONFIG_RT2X00_LIB_LEDS */
778 * Device state flags.
779 * In these flags the current status is stored.
780 * Access to these flags should occur atomically.
785 * Device capabiltiy flags.
786 * In these flags the device/driver capabilities are stored.
787 * Access to these flags should occur non-atomically.
789 unsigned long cap_flags
;
792 * Device information, Bus IRQ and name (PCI, SoC)
798 * Chipset identification.
800 struct rt2x00_chip chip
;
803 * hw capability specifications.
805 struct hw_mode_spec spec
;
808 * This is the default TX/RX antenna setup as indicated
809 * by the device's EEPROM.
811 struct antenna_setup default_ant
;
815 * csr.base: CSR base register address. (PCI)
816 * csr.cache: CSR cache for usb_control_msg. (USB)
824 * Mutex to protect register accesses.
825 * For PCI and USB devices it protects against concurrent indirect
826 * register access (BBP, RF, MCU) since accessing those
827 * registers require multiple calls to the CSR registers.
828 * For USB devices it also protects the csr_cache since that
829 * field is used for normal CSR access and it cannot support
830 * multiple callers simultaneously.
832 struct mutex csr_mutex
;
835 * Mutex to synchronize config and link tuner.
837 struct mutex conf_mutex
;
839 * Current packet filter configuration for the device.
840 * This contains all currently active FIF_* flags send
841 * to us by mac80211 during configure_filter().
843 unsigned int packet_filter
;
847 * - Open ap interface count.
848 * - Open sta interface count.
849 * - Association count.
850 * - Beaconing enabled count.
852 unsigned int intf_ap_count
;
853 unsigned int intf_sta_count
;
854 unsigned int intf_associated
;
855 unsigned int intf_beaconing
;
858 * Interface combinations
860 struct ieee80211_iface_limit if_limits_ap
;
861 struct ieee80211_iface_combination if_combinations
[NUM_IF_COMB
];
874 * Active RF register values.
875 * These are stored here so we don't need
876 * to read the rf registers and can directly
877 * use this value instead.
878 * This field should be accessed by using
879 * rt2x00_rf_read() and rt2x00_rf_write().
889 * Current TX power value.
894 * Current retry values.
900 * Rssi <-> Dbm offset
920 * Timestamp of last received beacon
922 unsigned long last_beacon
;
925 * Low level statistics which will have
926 * to be kept up to date while device is running.
928 struct ieee80211_low_level_stats low_level_stats
;
931 * Work queue for all work which should not be placed
932 * on the mac80211 workqueue (because of dependencies
933 * between various work structures).
935 struct workqueue_struct
*workqueue
;
939 * NOTE: intf_work will use ieee80211_iterate_active_interfaces()
940 * which means it cannot be placed on the hw->workqueue
941 * due to RTNL locking requirements.
943 struct work_struct intf_work
;
946 * Scheduled work for TX/RX done handling (USB devices)
948 struct work_struct rxdone_work
;
949 struct work_struct txdone_work
;
954 struct delayed_work autowakeup_work
;
955 struct work_struct sleep_work
;
958 * Data queue arrays for RX, TX, Beacon and ATIM.
960 unsigned int data_queues
;
961 struct data_queue
*rx
;
962 struct data_queue
*tx
;
963 struct data_queue
*bcn
;
964 struct data_queue
*atim
;
969 const struct firmware
*fw
;
972 * FIFO for storing tx status reports between isr and tasklet.
974 DECLARE_KFIFO_PTR(txstatus_fifo
, u32
);
977 * Timer to ensure tx status reports are read (rt2800usb).
979 struct hrtimer txstatus_timer
;
982 * Tasklet for processing tx status reports (rt2800pci).
984 struct tasklet_struct txstatus_tasklet
;
985 struct tasklet_struct pretbtt_tasklet
;
986 struct tasklet_struct tbtt_tasklet
;
987 struct tasklet_struct rxdone_tasklet
;
988 struct tasklet_struct autowake_tasklet
;
991 * Used for VCO periodic calibration.
996 * Protect the interrupt mask register.
998 spinlock_t irqmask_lock
;
1001 * List of BlockAckReq TX entries that need driver BlockAck processing.
1003 struct list_head bar_list
;
1004 spinlock_t bar_list_lock
;
1006 /* Extra TX headroom required for alignment purposes. */
1007 unsigned int extra_tx_headroom
;
1009 struct usb_anchor
*anchor
;
1010 unsigned int num_proto_errs
;
1012 /* Clock for System On Chip devices. */
1016 struct rt2x00_bar_list_entry
{
1017 struct list_head list
;
1018 struct rcu_head head
;
1020 struct queue_entry
*entry
;
1023 /* Relevant parts of the IEEE80211 BAR header */
1027 __le16 start_seq_num
;
1032 * Some registers require multiple attempts before success,
1033 * in those cases REGISTER_BUSY_COUNT attempts should be
1034 * taken with a REGISTER_BUSY_DELAY interval. Due to USB
1035 * bus delays, we do not have to loop so many times to wait
1036 * for valid register value on that bus.
1038 #define REGISTER_BUSY_COUNT 100
1039 #define REGISTER_USB_BUSY_COUNT 20
1040 #define REGISTER_BUSY_DELAY 100
1043 * Generic RF access.
1044 * The RF is being accessed by word index.
1046 static inline u32
rt2x00_rf_read(struct rt2x00_dev
*rt2x00dev
,
1047 const unsigned int word
)
1049 BUG_ON(word
< 1 || word
> rt2x00dev
->ops
->rf_size
/ sizeof(u32
));
1050 return rt2x00dev
->rf
[word
- 1];
1053 static inline void rt2x00_rf_write(struct rt2x00_dev
*rt2x00dev
,
1054 const unsigned int word
, u32 data
)
1056 BUG_ON(word
< 1 || word
> rt2x00dev
->ops
->rf_size
/ sizeof(u32
));
1057 rt2x00dev
->rf
[word
- 1] = data
;
1061 * Generic EEPROM access. The EEPROM is being accessed by word or byte index.
1063 static inline void *rt2x00_eeprom_addr(struct rt2x00_dev
*rt2x00dev
,
1064 const unsigned int word
)
1066 return (void *)&rt2x00dev
->eeprom
[word
];
1069 static inline u16
rt2x00_eeprom_read(struct rt2x00_dev
*rt2x00dev
,
1070 const unsigned int word
)
1072 return le16_to_cpu(rt2x00dev
->eeprom
[word
]);
1075 static inline void rt2x00_eeprom_write(struct rt2x00_dev
*rt2x00dev
,
1076 const unsigned int word
, u16 data
)
1078 rt2x00dev
->eeprom
[word
] = cpu_to_le16(data
);
1081 static inline u8
rt2x00_eeprom_byte(struct rt2x00_dev
*rt2x00dev
,
1082 const unsigned int byte
)
1084 return *(((u8
*)rt2x00dev
->eeprom
) + byte
);
1090 static inline void rt2x00_set_chip(struct rt2x00_dev
*rt2x00dev
,
1091 const u16 rt
, const u16 rf
, const u16 rev
)
1093 rt2x00dev
->chip
.rt
= rt
;
1094 rt2x00dev
->chip
.rf
= rf
;
1095 rt2x00dev
->chip
.rev
= rev
;
1097 rt2x00_info(rt2x00dev
, "Chipset detected - rt: %04x, rf: %04x, rev: %04x\n",
1098 rt2x00dev
->chip
.rt
, rt2x00dev
->chip
.rf
,
1099 rt2x00dev
->chip
.rev
);
1102 static inline void rt2x00_set_rt(struct rt2x00_dev
*rt2x00dev
,
1103 const u16 rt
, const u16 rev
)
1105 rt2x00dev
->chip
.rt
= rt
;
1106 rt2x00dev
->chip
.rev
= rev
;
1108 rt2x00_info(rt2x00dev
, "RT chipset %04x, rev %04x detected\n",
1109 rt2x00dev
->chip
.rt
, rt2x00dev
->chip
.rev
);
1112 static inline void rt2x00_set_rf(struct rt2x00_dev
*rt2x00dev
, const u16 rf
)
1114 rt2x00dev
->chip
.rf
= rf
;
1116 rt2x00_info(rt2x00dev
, "RF chipset %04x detected\n",
1117 rt2x00dev
->chip
.rf
);
1120 static inline bool rt2x00_rt(struct rt2x00_dev
*rt2x00dev
, const u16 rt
)
1122 return (rt2x00dev
->chip
.rt
== rt
);
1125 static inline bool rt2x00_rf(struct rt2x00_dev
*rt2x00dev
, const u16 rf
)
1127 return (rt2x00dev
->chip
.rf
== rf
);
1130 static inline u16
rt2x00_rev(struct rt2x00_dev
*rt2x00dev
)
1132 return rt2x00dev
->chip
.rev
;
1135 static inline bool rt2x00_rt_rev(struct rt2x00_dev
*rt2x00dev
,
1136 const u16 rt
, const u16 rev
)
1138 return (rt2x00_rt(rt2x00dev
, rt
) && rt2x00_rev(rt2x00dev
) == rev
);
1141 static inline bool rt2x00_rt_rev_lt(struct rt2x00_dev
*rt2x00dev
,
1142 const u16 rt
, const u16 rev
)
1144 return (rt2x00_rt(rt2x00dev
, rt
) && rt2x00_rev(rt2x00dev
) < rev
);
1147 static inline bool rt2x00_rt_rev_gte(struct rt2x00_dev
*rt2x00dev
,
1148 const u16 rt
, const u16 rev
)
1150 return (rt2x00_rt(rt2x00dev
, rt
) && rt2x00_rev(rt2x00dev
) >= rev
);
1153 static inline void rt2x00_set_chip_intf(struct rt2x00_dev
*rt2x00dev
,
1154 enum rt2x00_chip_intf intf
)
1156 rt2x00dev
->chip
.intf
= intf
;
1159 static inline bool rt2x00_intf(struct rt2x00_dev
*rt2x00dev
,
1160 enum rt2x00_chip_intf intf
)
1162 return (rt2x00dev
->chip
.intf
== intf
);
1165 static inline bool rt2x00_is_pci(struct rt2x00_dev
*rt2x00dev
)
1167 return rt2x00_intf(rt2x00dev
, RT2X00_CHIP_INTF_PCI
) ||
1168 rt2x00_intf(rt2x00dev
, RT2X00_CHIP_INTF_PCIE
);
1171 static inline bool rt2x00_is_pcie(struct rt2x00_dev
*rt2x00dev
)
1173 return rt2x00_intf(rt2x00dev
, RT2X00_CHIP_INTF_PCIE
);
1176 static inline bool rt2x00_is_usb(struct rt2x00_dev
*rt2x00dev
)
1178 return rt2x00_intf(rt2x00dev
, RT2X00_CHIP_INTF_USB
);
1181 static inline bool rt2x00_is_soc(struct rt2x00_dev
*rt2x00dev
)
1183 return rt2x00_intf(rt2x00dev
, RT2X00_CHIP_INTF_SOC
);
1186 /* Helpers for capability flags */
1189 rt2x00_has_cap_flag(struct rt2x00_dev
*rt2x00dev
,
1190 enum rt2x00_capability_flags cap_flag
)
1192 return test_bit(cap_flag
, &rt2x00dev
->cap_flags
);
1196 rt2x00_has_cap_hw_crypto(struct rt2x00_dev
*rt2x00dev
)
1198 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_HW_CRYPTO
);
1202 rt2x00_has_cap_power_limit(struct rt2x00_dev
*rt2x00dev
)
1204 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_POWER_LIMIT
);
1208 rt2x00_has_cap_control_filters(struct rt2x00_dev
*rt2x00dev
)
1210 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_CONTROL_FILTERS
);
1214 rt2x00_has_cap_control_filter_pspoll(struct rt2x00_dev
*rt2x00dev
)
1216 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_CONTROL_FILTER_PSPOLL
);
1220 rt2x00_has_cap_pre_tbtt_interrupt(struct rt2x00_dev
*rt2x00dev
)
1222 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_PRE_TBTT_INTERRUPT
);
1226 rt2x00_has_cap_link_tuning(struct rt2x00_dev
*rt2x00dev
)
1228 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_LINK_TUNING
);
1232 rt2x00_has_cap_frame_type(struct rt2x00_dev
*rt2x00dev
)
1234 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_FRAME_TYPE
);
1238 rt2x00_has_cap_rf_sequence(struct rt2x00_dev
*rt2x00dev
)
1240 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_RF_SEQUENCE
);
1244 rt2x00_has_cap_external_lna_a(struct rt2x00_dev
*rt2x00dev
)
1246 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_EXTERNAL_LNA_A
);
1250 rt2x00_has_cap_external_lna_bg(struct rt2x00_dev
*rt2x00dev
)
1252 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_EXTERNAL_LNA_BG
);
1256 rt2x00_has_cap_double_antenna(struct rt2x00_dev
*rt2x00dev
)
1258 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_DOUBLE_ANTENNA
);
1262 rt2x00_has_cap_bt_coexist(struct rt2x00_dev
*rt2x00dev
)
1264 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_BT_COEXIST
);
1268 rt2x00_has_cap_vco_recalibration(struct rt2x00_dev
*rt2x00dev
)
1270 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_VCO_RECALIBRATION
);
1274 rt2x00_has_cap_restart_hw(struct rt2x00_dev
*rt2x00dev
)
1276 return rt2x00_has_cap_flag(rt2x00dev
, CAPABILITY_RESTART_HW
);
1280 * rt2x00queue_map_txskb - Map a skb into DMA for TX purposes.
1281 * @entry: Pointer to &struct queue_entry
1283 * Returns -ENOMEM if mapping fail, 0 otherwise.
1285 int rt2x00queue_map_txskb(struct queue_entry
*entry
);
1288 * rt2x00queue_unmap_skb - Unmap a skb from DMA.
1289 * @entry: Pointer to &struct queue_entry
1291 void rt2x00queue_unmap_skb(struct queue_entry
*entry
);
1294 * rt2x00queue_get_tx_queue - Convert tx queue index to queue pointer
1295 * @rt2x00dev: Pointer to &struct rt2x00_dev.
1296 * @queue: rt2x00 queue index (see &enum data_queue_qid).
1298 * Returns NULL for non tx queues.
1300 static inline struct data_queue
*
1301 rt2x00queue_get_tx_queue(struct rt2x00_dev
*rt2x00dev
,
1302 const enum data_queue_qid queue
)
1304 if (queue
< rt2x00dev
->ops
->tx_queues
&& rt2x00dev
->tx
)
1305 return &rt2x00dev
->tx
[queue
];
1307 if (queue
== QID_ATIM
)
1308 return rt2x00dev
->atim
;
1314 * rt2x00queue_get_entry - Get queue entry where the given index points to.
1315 * @queue: Pointer to &struct data_queue from where we obtain the entry.
1316 * @index: Index identifier for obtaining the correct index.
1318 struct queue_entry
*rt2x00queue_get_entry(struct data_queue
*queue
,
1319 enum queue_index index
);
1322 * rt2x00queue_pause_queue - Pause a data queue
1323 * @queue: Pointer to &struct data_queue.
1325 * This function will pause the data queue locally, preventing
1326 * new frames to be added to the queue (while the hardware is
1327 * still allowed to run).
1329 void rt2x00queue_pause_queue(struct data_queue
*queue
);
1332 * rt2x00queue_unpause_queue - unpause a data queue
1333 * @queue: Pointer to &struct data_queue.
1335 * This function will unpause the data queue locally, allowing
1336 * new frames to be added to the queue again.
1338 void rt2x00queue_unpause_queue(struct data_queue
*queue
);
1341 * rt2x00queue_start_queue - Start a data queue
1342 * @queue: Pointer to &struct data_queue.
1344 * This function will start handling all pending frames in the queue.
1346 void rt2x00queue_start_queue(struct data_queue
*queue
);
1349 * rt2x00queue_stop_queue - Halt a data queue
1350 * @queue: Pointer to &struct data_queue.
1352 * This function will stop all pending frames in the queue.
1354 void rt2x00queue_stop_queue(struct data_queue
*queue
);
1357 * rt2x00queue_flush_queue - Flush a data queue
1358 * @queue: Pointer to &struct data_queue.
1359 * @drop: True to drop all pending frames.
1361 * This function will flush the queue. After this call
1362 * the queue is guaranteed to be empty.
1364 void rt2x00queue_flush_queue(struct data_queue
*queue
, bool drop
);
1367 * rt2x00queue_start_queues - Start all data queues
1368 * @rt2x00dev: Pointer to &struct rt2x00_dev.
1370 * This function will loop through all available queues to start them
1372 void rt2x00queue_start_queues(struct rt2x00_dev
*rt2x00dev
);
1375 * rt2x00queue_stop_queues - Halt all data queues
1376 * @rt2x00dev: Pointer to &struct rt2x00_dev.
1378 * This function will loop through all available queues to stop
1379 * any pending frames.
1381 void rt2x00queue_stop_queues(struct rt2x00_dev
*rt2x00dev
);
1384 * rt2x00queue_flush_queues - Flush all data queues
1385 * @rt2x00dev: Pointer to &struct rt2x00_dev.
1386 * @drop: True to drop all pending frames.
1388 * This function will loop through all available queues to flush
1389 * any pending frames.
1391 void rt2x00queue_flush_queues(struct rt2x00_dev
*rt2x00dev
, bool drop
);
1397 * rt2x00debug_dump_frame - Dump a frame to userspace through debugfs.
1398 * @rt2x00dev: Pointer to &struct rt2x00_dev.
1399 * @type: The type of frame that is being dumped.
1400 * @entry: The queue entry containing the frame to be dumped.
1402 #ifdef CONFIG_RT2X00_LIB_DEBUGFS
1403 void rt2x00debug_dump_frame(struct rt2x00_dev
*rt2x00dev
,
1404 enum rt2x00_dump_type type
, struct queue_entry
*entry
);
1406 static inline void rt2x00debug_dump_frame(struct rt2x00_dev
*rt2x00dev
,
1407 enum rt2x00_dump_type type
,
1408 struct queue_entry
*entry
)
1411 #endif /* CONFIG_RT2X00_LIB_DEBUGFS */
1414 * Utility functions.
1416 u32
rt2x00lib_get_bssidx(struct rt2x00_dev
*rt2x00dev
,
1417 struct ieee80211_vif
*vif
);
1418 void rt2x00lib_set_mac_address(struct rt2x00_dev
*rt2x00dev
, u8
*eeprom_mac_addr
);
1421 * Interrupt context handlers.
1423 void rt2x00lib_beacondone(struct rt2x00_dev
*rt2x00dev
);
1424 void rt2x00lib_pretbtt(struct rt2x00_dev
*rt2x00dev
);
1425 void rt2x00lib_dmastart(struct queue_entry
*entry
);
1426 void rt2x00lib_dmadone(struct queue_entry
*entry
);
1427 void rt2x00lib_txdone(struct queue_entry
*entry
,
1428 struct txdone_entry_desc
*txdesc
);
1429 void rt2x00lib_txdone_nomatch(struct queue_entry
*entry
,
1430 struct txdone_entry_desc
*txdesc
);
1431 void rt2x00lib_txdone_noinfo(struct queue_entry
*entry
, u32 status
);
1432 void rt2x00lib_rxdone(struct queue_entry
*entry
, gfp_t gfp
);
1435 * mac80211 handlers.
1437 void rt2x00mac_tx(struct ieee80211_hw
*hw
,
1438 struct ieee80211_tx_control
*control
,
1439 struct sk_buff
*skb
);
1440 int rt2x00mac_start(struct ieee80211_hw
*hw
);
1441 void rt2x00mac_stop(struct ieee80211_hw
*hw
);
1442 void rt2x00mac_reconfig_complete(struct ieee80211_hw
*hw
,
1443 enum ieee80211_reconfig_type reconfig_type
);
1444 int rt2x00mac_add_interface(struct ieee80211_hw
*hw
,
1445 struct ieee80211_vif
*vif
);
1446 void rt2x00mac_remove_interface(struct ieee80211_hw
*hw
,
1447 struct ieee80211_vif
*vif
);
1448 int rt2x00mac_config(struct ieee80211_hw
*hw
, u32 changed
);
1449 void rt2x00mac_configure_filter(struct ieee80211_hw
*hw
,
1450 unsigned int changed_flags
,
1451 unsigned int *total_flags
,
1453 int rt2x00mac_set_tim(struct ieee80211_hw
*hw
, struct ieee80211_sta
*sta
,
1455 #ifdef CONFIG_RT2X00_LIB_CRYPTO
1456 int rt2x00mac_set_key(struct ieee80211_hw
*hw
, enum set_key_cmd cmd
,
1457 struct ieee80211_vif
*vif
, struct ieee80211_sta
*sta
,
1458 struct ieee80211_key_conf
*key
);
1460 #define rt2x00mac_set_key NULL
1461 #endif /* CONFIG_RT2X00_LIB_CRYPTO */
1462 void rt2x00mac_sw_scan_start(struct ieee80211_hw
*hw
,
1463 struct ieee80211_vif
*vif
,
1464 const u8
*mac_addr
);
1465 void rt2x00mac_sw_scan_complete(struct ieee80211_hw
*hw
,
1466 struct ieee80211_vif
*vif
);
1467 int rt2x00mac_get_stats(struct ieee80211_hw
*hw
,
1468 struct ieee80211_low_level_stats
*stats
);
1469 void rt2x00mac_bss_info_changed(struct ieee80211_hw
*hw
,
1470 struct ieee80211_vif
*vif
,
1471 struct ieee80211_bss_conf
*bss_conf
,
1473 int rt2x00mac_conf_tx(struct ieee80211_hw
*hw
,
1474 struct ieee80211_vif
*vif
, u16 queue
,
1475 const struct ieee80211_tx_queue_params
*params
);
1476 void rt2x00mac_rfkill_poll(struct ieee80211_hw
*hw
);
1477 void rt2x00mac_flush(struct ieee80211_hw
*hw
, struct ieee80211_vif
*vif
,
1478 u32 queues
, bool drop
);
1479 int rt2x00mac_set_antenna(struct ieee80211_hw
*hw
, u32 tx_ant
, u32 rx_ant
);
1480 int rt2x00mac_get_antenna(struct ieee80211_hw
*hw
, u32
*tx_ant
, u32
*rx_ant
);
1481 void rt2x00mac_get_ringparam(struct ieee80211_hw
*hw
,
1482 u32
*tx
, u32
*tx_max
, u32
*rx
, u32
*rx_max
);
1483 bool rt2x00mac_tx_frames_pending(struct ieee80211_hw
*hw
);
1486 * Driver allocation handlers.
1488 int rt2x00lib_probe_dev(struct rt2x00_dev
*rt2x00dev
);
1489 void rt2x00lib_remove_dev(struct rt2x00_dev
*rt2x00dev
);
1491 int rt2x00lib_suspend(struct rt2x00_dev
*rt2x00dev
, pm_message_t state
);
1492 int rt2x00lib_resume(struct rt2x00_dev
*rt2x00dev
);
1493 #endif /* CONFIG_PM */
1495 #endif /* RT2X00_H */