1 /****************************************************************************
2 * Driver for Solarflare network controllers and boards
3 * Copyright 2005-2006 Fen Systems Ltd.
4 * Copyright 2006-2013 Solarflare Communications Inc.
6 * This program is free software; you can redistribute it and/or modify it
7 * under the terms of the GNU General Public License version 2 as published
8 * by the Free Software Foundation, incorporated herein by reference.
11 #include <linux/netdevice.h>
12 #include <linux/ethtool.h>
13 #include <linux/rtnetlink.h>
15 #include "net_driver.h"
16 #include "workarounds.h"
22 struct efx_sw_stat_desc
{
25 EFX_ETHTOOL_STAT_SOURCE_nic
,
26 EFX_ETHTOOL_STAT_SOURCE_channel
,
27 EFX_ETHTOOL_STAT_SOURCE_tx_queue
30 u64(*get_stat
) (void *field
); /* Reader function */
33 /* Initialiser for a struct efx_sw_stat_desc with type-checking */
34 #define EFX_ETHTOOL_STAT(stat_name, source_name, field, field_type, \
35 get_stat_function) { \
37 .source = EFX_ETHTOOL_STAT_SOURCE_##source_name, \
38 .offset = ((((field_type *) 0) == \
39 &((struct efx_##source_name *)0)->field) ? \
40 offsetof(struct efx_##source_name, field) : \
41 offsetof(struct efx_##source_name, field)), \
42 .get_stat = get_stat_function, \
45 static u64
efx_get_uint_stat(void *field
)
47 return *(unsigned int *)field
;
50 static u64
efx_get_atomic_stat(void *field
)
52 return atomic_read((atomic_t
*) field
);
55 #define EFX_ETHTOOL_ATOMIC_NIC_ERROR_STAT(field) \
56 EFX_ETHTOOL_STAT(field, nic, field, \
57 atomic_t, efx_get_atomic_stat)
59 #define EFX_ETHTOOL_UINT_CHANNEL_STAT(field) \
60 EFX_ETHTOOL_STAT(field, channel, n_##field, \
61 unsigned int, efx_get_uint_stat)
63 #define EFX_ETHTOOL_UINT_TXQ_STAT(field) \
64 EFX_ETHTOOL_STAT(tx_##field, tx_queue, field, \
65 unsigned int, efx_get_uint_stat)
67 static const struct efx_sw_stat_desc efx_sw_stat_desc
[] = {
68 EFX_ETHTOOL_UINT_TXQ_STAT(merge_events
),
69 EFX_ETHTOOL_UINT_TXQ_STAT(tso_bursts
),
70 EFX_ETHTOOL_UINT_TXQ_STAT(tso_long_headers
),
71 EFX_ETHTOOL_UINT_TXQ_STAT(tso_packets
),
72 EFX_ETHTOOL_UINT_TXQ_STAT(tso_fallbacks
),
73 EFX_ETHTOOL_UINT_TXQ_STAT(pushes
),
74 EFX_ETHTOOL_UINT_TXQ_STAT(pio_packets
),
75 EFX_ETHTOOL_UINT_TXQ_STAT(cb_packets
),
76 EFX_ETHTOOL_ATOMIC_NIC_ERROR_STAT(rx_reset
),
77 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_tobe_disc
),
78 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_ip_hdr_chksum_err
),
79 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_tcp_udp_chksum_err
),
80 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_inner_ip_hdr_chksum_err
),
81 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_inner_tcp_udp_chksum_err
),
82 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_outer_ip_hdr_chksum_err
),
83 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_outer_tcp_udp_chksum_err
),
84 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_eth_crc_err
),
85 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_mcast_mismatch
),
86 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_frm_trunc
),
87 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_merge_events
),
88 EFX_ETHTOOL_UINT_CHANNEL_STAT(rx_merge_packets
),
91 #define EFX_ETHTOOL_SW_STAT_COUNT ARRAY_SIZE(efx_sw_stat_desc)
93 #define EFX_ETHTOOL_EEPROM_MAGIC 0xEFAB
95 /**************************************************************************
99 **************************************************************************
102 /* Identify device by flashing LEDs */
103 static int efx_ethtool_phys_id(struct net_device
*net_dev
,
104 enum ethtool_phys_id_state state
)
106 struct efx_nic
*efx
= netdev_priv(net_dev
);
107 enum efx_led_mode mode
= EFX_LED_DEFAULT
;
116 case ETHTOOL_ID_INACTIVE
:
117 mode
= EFX_LED_DEFAULT
;
119 case ETHTOOL_ID_ACTIVE
:
120 return 1; /* cycle on/off once per second */
123 efx
->type
->set_id_led(efx
, mode
);
127 /* This must be called with rtnl_lock held. */
129 efx_ethtool_get_link_ksettings(struct net_device
*net_dev
,
130 struct ethtool_link_ksettings
*cmd
)
132 struct efx_nic
*efx
= netdev_priv(net_dev
);
133 struct efx_link_state
*link_state
= &efx
->link_state
;
136 mutex_lock(&efx
->mac_lock
);
137 efx
->phy_op
->get_link_ksettings(efx
, cmd
);
138 mutex_unlock(&efx
->mac_lock
);
140 /* Both MACs support pause frames (bidirectional and respond-only) */
141 ethtool_convert_link_mode_to_legacy_u32(&supported
,
142 cmd
->link_modes
.supported
);
144 supported
|= SUPPORTED_Pause
| SUPPORTED_Asym_Pause
;
146 ethtool_convert_legacy_u32_to_link_mode(cmd
->link_modes
.supported
,
149 if (LOOPBACK_INTERNAL(efx
)) {
150 cmd
->base
.speed
= link_state
->speed
;
151 cmd
->base
.duplex
= link_state
->fd
? DUPLEX_FULL
: DUPLEX_HALF
;
157 /* This must be called with rtnl_lock held. */
159 efx_ethtool_set_link_ksettings(struct net_device
*net_dev
,
160 const struct ethtool_link_ksettings
*cmd
)
162 struct efx_nic
*efx
= netdev_priv(net_dev
);
165 /* GMAC does not support 1000Mbps HD */
166 if ((cmd
->base
.speed
== SPEED_1000
) &&
167 (cmd
->base
.duplex
!= DUPLEX_FULL
)) {
168 netif_dbg(efx
, drv
, efx
->net_dev
,
169 "rejecting unsupported 1000Mbps HD setting\n");
173 mutex_lock(&efx
->mac_lock
);
174 rc
= efx
->phy_op
->set_link_ksettings(efx
, cmd
);
175 mutex_unlock(&efx
->mac_lock
);
179 static void efx_ethtool_get_drvinfo(struct net_device
*net_dev
,
180 struct ethtool_drvinfo
*info
)
182 struct efx_nic
*efx
= netdev_priv(net_dev
);
184 strlcpy(info
->driver
, KBUILD_MODNAME
, sizeof(info
->driver
));
185 strlcpy(info
->version
, EFX_DRIVER_VERSION
, sizeof(info
->version
));
186 efx_mcdi_print_fwver(efx
, info
->fw_version
,
187 sizeof(info
->fw_version
));
188 strlcpy(info
->bus_info
, pci_name(efx
->pci_dev
), sizeof(info
->bus_info
));
191 static int efx_ethtool_get_regs_len(struct net_device
*net_dev
)
193 return efx_nic_get_regs_len(netdev_priv(net_dev
));
196 static void efx_ethtool_get_regs(struct net_device
*net_dev
,
197 struct ethtool_regs
*regs
, void *buf
)
199 struct efx_nic
*efx
= netdev_priv(net_dev
);
201 regs
->version
= efx
->type
->revision
;
202 efx_nic_get_regs(efx
, buf
);
205 static u32
efx_ethtool_get_msglevel(struct net_device
*net_dev
)
207 struct efx_nic
*efx
= netdev_priv(net_dev
);
208 return efx
->msg_enable
;
211 static void efx_ethtool_set_msglevel(struct net_device
*net_dev
, u32 msg_enable
)
213 struct efx_nic
*efx
= netdev_priv(net_dev
);
214 efx
->msg_enable
= msg_enable
;
218 * efx_fill_test - fill in an individual self-test entry
219 * @test_index: Index of the test
220 * @strings: Ethtool strings, or %NULL
221 * @data: Ethtool test results, or %NULL
222 * @test: Pointer to test result (used only if data != %NULL)
223 * @unit_format: Unit name format (e.g. "chan\%d")
224 * @unit_id: Unit id (e.g. 0 for "chan0")
225 * @test_format: Test name format (e.g. "loopback.\%s.tx.sent")
226 * @test_id: Test id (e.g. "PHYXS" for "loopback.PHYXS.tx_sent")
228 * Fill in an individual self-test entry.
230 static void efx_fill_test(unsigned int test_index
, u8
*strings
, u64
*data
,
231 int *test
, const char *unit_format
, int unit_id
,
232 const char *test_format
, const char *test_id
)
234 char unit_str
[ETH_GSTRING_LEN
], test_str
[ETH_GSTRING_LEN
];
236 /* Fill data value, if applicable */
238 data
[test_index
] = *test
;
240 /* Fill string, if applicable */
242 if (strchr(unit_format
, '%'))
243 snprintf(unit_str
, sizeof(unit_str
),
244 unit_format
, unit_id
);
246 strcpy(unit_str
, unit_format
);
247 snprintf(test_str
, sizeof(test_str
), test_format
, test_id
);
248 snprintf(strings
+ test_index
* ETH_GSTRING_LEN
,
250 "%-6s %-24s", unit_str
, test_str
);
254 #define EFX_CHANNEL_NAME(_channel) "chan%d", _channel->channel
255 #define EFX_TX_QUEUE_NAME(_tx_queue) "txq%d", _tx_queue->queue
256 #define EFX_RX_QUEUE_NAME(_rx_queue) "rxq%d", _rx_queue->queue
257 #define EFX_LOOPBACK_NAME(_mode, _counter) \
258 "loopback.%s." _counter, STRING_TABLE_LOOKUP(_mode, efx_loopback_mode)
261 * efx_fill_loopback_test - fill in a block of loopback self-test entries
263 * @lb_tests: Efx loopback self-test results structure
264 * @mode: Loopback test mode
265 * @test_index: Starting index of the test
266 * @strings: Ethtool strings, or %NULL
267 * @data: Ethtool test results, or %NULL
269 * Fill in a block of loopback self-test entries. Return new test
272 static int efx_fill_loopback_test(struct efx_nic
*efx
,
273 struct efx_loopback_self_tests
*lb_tests
,
274 enum efx_loopback_mode mode
,
275 unsigned int test_index
,
276 u8
*strings
, u64
*data
)
278 struct efx_channel
*channel
=
279 efx_get_channel(efx
, efx
->tx_channel_offset
);
280 struct efx_tx_queue
*tx_queue
;
282 efx_for_each_channel_tx_queue(tx_queue
, channel
) {
283 efx_fill_test(test_index
++, strings
, data
,
284 &lb_tests
->tx_sent
[tx_queue
->queue
],
285 EFX_TX_QUEUE_NAME(tx_queue
),
286 EFX_LOOPBACK_NAME(mode
, "tx_sent"));
287 efx_fill_test(test_index
++, strings
, data
,
288 &lb_tests
->tx_done
[tx_queue
->queue
],
289 EFX_TX_QUEUE_NAME(tx_queue
),
290 EFX_LOOPBACK_NAME(mode
, "tx_done"));
292 efx_fill_test(test_index
++, strings
, data
,
295 EFX_LOOPBACK_NAME(mode
, "rx_good"));
296 efx_fill_test(test_index
++, strings
, data
,
299 EFX_LOOPBACK_NAME(mode
, "rx_bad"));
305 * efx_ethtool_fill_self_tests - get self-test details
307 * @tests: Efx self-test results structure, or %NULL
308 * @strings: Ethtool strings, or %NULL
309 * @data: Ethtool test results, or %NULL
311 * Get self-test number of strings, strings, and/or test results.
312 * Return number of strings (== number of test results).
314 * The reason for merging these three functions is to make sure that
315 * they can never be inconsistent.
317 static int efx_ethtool_fill_self_tests(struct efx_nic
*efx
,
318 struct efx_self_tests
*tests
,
319 u8
*strings
, u64
*data
)
321 struct efx_channel
*channel
;
322 unsigned int n
= 0, i
;
323 enum efx_loopback_mode mode
;
325 efx_fill_test(n
++, strings
, data
, &tests
->phy_alive
,
326 "phy", 0, "alive", NULL
);
327 efx_fill_test(n
++, strings
, data
, &tests
->nvram
,
328 "core", 0, "nvram", NULL
);
329 efx_fill_test(n
++, strings
, data
, &tests
->interrupt
,
330 "core", 0, "interrupt", NULL
);
333 efx_for_each_channel(channel
, efx
) {
334 efx_fill_test(n
++, strings
, data
,
335 &tests
->eventq_dma
[channel
->channel
],
336 EFX_CHANNEL_NAME(channel
),
338 efx_fill_test(n
++, strings
, data
,
339 &tests
->eventq_int
[channel
->channel
],
340 EFX_CHANNEL_NAME(channel
),
344 efx_fill_test(n
++, strings
, data
, &tests
->memory
,
345 "core", 0, "memory", NULL
);
346 efx_fill_test(n
++, strings
, data
, &tests
->registers
,
347 "core", 0, "registers", NULL
);
349 if (efx
->phy_op
->run_tests
!= NULL
) {
350 EFX_WARN_ON_PARANOID(efx
->phy_op
->test_name
== NULL
);
352 for (i
= 0; true; ++i
) {
355 EFX_WARN_ON_PARANOID(i
>= EFX_MAX_PHY_TESTS
);
356 name
= efx
->phy_op
->test_name(efx
, i
);
360 efx_fill_test(n
++, strings
, data
, &tests
->phy_ext
[i
],
361 "phy", 0, name
, NULL
);
366 for (mode
= LOOPBACK_NONE
; mode
<= LOOPBACK_TEST_MAX
; mode
++) {
367 if (!(efx
->loopback_modes
& (1 << mode
)))
369 n
= efx_fill_loopback_test(efx
,
370 &tests
->loopback
[mode
], mode
, n
,
377 static size_t efx_describe_per_queue_stats(struct efx_nic
*efx
, u8
*strings
)
380 struct efx_channel
*channel
;
382 efx_for_each_channel(channel
, efx
) {
383 if (efx_channel_has_tx_queues(channel
)) {
385 if (strings
!= NULL
) {
386 snprintf(strings
, ETH_GSTRING_LEN
,
388 channel
->tx_queue
[0].queue
/
391 strings
+= ETH_GSTRING_LEN
;
395 efx_for_each_channel(channel
, efx
) {
396 if (efx_channel_has_rx_queue(channel
)) {
398 if (strings
!= NULL
) {
399 snprintf(strings
, ETH_GSTRING_LEN
,
400 "rx-%d.rx_packets", channel
->channel
);
401 strings
+= ETH_GSTRING_LEN
;
408 static int efx_ethtool_get_sset_count(struct net_device
*net_dev
,
411 struct efx_nic
*efx
= netdev_priv(net_dev
);
413 switch (string_set
) {
415 return efx
->type
->describe_stats(efx
, NULL
) +
416 EFX_ETHTOOL_SW_STAT_COUNT
+
417 efx_describe_per_queue_stats(efx
, NULL
) +
418 efx_ptp_describe_stats(efx
, NULL
);
420 return efx_ethtool_fill_self_tests(efx
, NULL
, NULL
, NULL
);
426 static void efx_ethtool_get_strings(struct net_device
*net_dev
,
427 u32 string_set
, u8
*strings
)
429 struct efx_nic
*efx
= netdev_priv(net_dev
);
432 switch (string_set
) {
434 strings
+= (efx
->type
->describe_stats(efx
, strings
) *
436 for (i
= 0; i
< EFX_ETHTOOL_SW_STAT_COUNT
; i
++)
437 strlcpy(strings
+ i
* ETH_GSTRING_LEN
,
438 efx_sw_stat_desc
[i
].name
, ETH_GSTRING_LEN
);
439 strings
+= EFX_ETHTOOL_SW_STAT_COUNT
* ETH_GSTRING_LEN
;
440 strings
+= (efx_describe_per_queue_stats(efx
, strings
) *
442 efx_ptp_describe_stats(efx
, strings
);
445 efx_ethtool_fill_self_tests(efx
, NULL
, strings
, NULL
);
448 /* No other string sets */
453 static void efx_ethtool_get_stats(struct net_device
*net_dev
,
454 struct ethtool_stats
*stats
,
457 struct efx_nic
*efx
= netdev_priv(net_dev
);
458 const struct efx_sw_stat_desc
*stat
;
459 struct efx_channel
*channel
;
460 struct efx_tx_queue
*tx_queue
;
461 struct efx_rx_queue
*rx_queue
;
464 spin_lock_bh(&efx
->stats_lock
);
466 /* Get NIC statistics */
467 data
+= efx
->type
->update_stats(efx
, data
, NULL
);
469 /* Get software statistics */
470 for (i
= 0; i
< EFX_ETHTOOL_SW_STAT_COUNT
; i
++) {
471 stat
= &efx_sw_stat_desc
[i
];
472 switch (stat
->source
) {
473 case EFX_ETHTOOL_STAT_SOURCE_nic
:
474 data
[i
] = stat
->get_stat((void *)efx
+ stat
->offset
);
476 case EFX_ETHTOOL_STAT_SOURCE_channel
:
478 efx_for_each_channel(channel
, efx
)
479 data
[i
] += stat
->get_stat((void *)channel
+
482 case EFX_ETHTOOL_STAT_SOURCE_tx_queue
:
484 efx_for_each_channel(channel
, efx
) {
485 efx_for_each_channel_tx_queue(tx_queue
, channel
)
487 stat
->get_stat((void *)tx_queue
493 data
+= EFX_ETHTOOL_SW_STAT_COUNT
;
495 spin_unlock_bh(&efx
->stats_lock
);
497 efx_for_each_channel(channel
, efx
) {
498 if (efx_channel_has_tx_queues(channel
)) {
500 efx_for_each_channel_tx_queue(tx_queue
, channel
) {
501 *data
+= tx_queue
->tx_packets
;
506 efx_for_each_channel(channel
, efx
) {
507 if (efx_channel_has_rx_queue(channel
)) {
509 efx_for_each_channel_rx_queue(rx_queue
, channel
) {
510 *data
+= rx_queue
->rx_packets
;
516 efx_ptp_update_stats(efx
, data
);
519 static void efx_ethtool_self_test(struct net_device
*net_dev
,
520 struct ethtool_test
*test
, u64
*data
)
522 struct efx_nic
*efx
= netdev_priv(net_dev
);
523 struct efx_self_tests
*efx_tests
;
527 efx_tests
= kzalloc(sizeof(*efx_tests
), GFP_KERNEL
);
531 if (efx
->state
!= STATE_READY
) {
536 netif_info(efx
, drv
, efx
->net_dev
, "starting %sline testing\n",
537 (test
->flags
& ETH_TEST_FL_OFFLINE
) ? "off" : "on");
539 /* We need rx buffers and interrupts. */
540 already_up
= (efx
->net_dev
->flags
& IFF_UP
);
542 rc
= dev_open(efx
->net_dev
);
544 netif_err(efx
, drv
, efx
->net_dev
,
545 "failed opening device.\n");
550 rc
= efx_selftest(efx
, efx_tests
, test
->flags
);
553 dev_close(efx
->net_dev
);
555 netif_info(efx
, drv
, efx
->net_dev
, "%s %sline self-tests\n",
556 rc
== 0 ? "passed" : "failed",
557 (test
->flags
& ETH_TEST_FL_OFFLINE
) ? "off" : "on");
560 efx_ethtool_fill_self_tests(efx
, efx_tests
, NULL
, data
);
564 test
->flags
|= ETH_TEST_FL_FAILED
;
567 /* Restart autonegotiation */
568 static int efx_ethtool_nway_reset(struct net_device
*net_dev
)
570 struct efx_nic
*efx
= netdev_priv(net_dev
);
572 return mdio45_nway_restart(&efx
->mdio
);
576 * Each channel has a single IRQ and moderation timer, started by any
577 * completion (or other event). Unless the module parameter
578 * separate_tx_channels is set, IRQs and moderation are therefore
579 * shared between RX and TX completions. In this case, when RX IRQ
580 * moderation is explicitly changed then TX IRQ moderation is
581 * automatically changed too, but otherwise we fail if the two values
582 * are requested to be different.
584 * The hardware does not support a limit on the number of completions
585 * before an IRQ, so we do not use the max_frames fields. We should
586 * report and require that max_frames == (usecs != 0), but this would
587 * invalidate existing user documentation.
589 * The hardware does not have distinct settings for interrupt
590 * moderation while the previous IRQ is being handled, so we should
591 * not use the 'irq' fields. However, an earlier developer
592 * misunderstood the meaning of the 'irq' fields and the driver did
593 * not support the standard fields. To avoid invalidating existing
594 * user documentation, we report and accept changes through either the
595 * standard or 'irq' fields. If both are changed at the same time, we
596 * prefer the standard field.
598 * We implement adaptive IRQ moderation, but use a different algorithm
599 * from that assumed in the definition of struct ethtool_coalesce.
600 * Therefore we do not use any of the adaptive moderation parameters
604 static int efx_ethtool_get_coalesce(struct net_device
*net_dev
,
605 struct ethtool_coalesce
*coalesce
)
607 struct efx_nic
*efx
= netdev_priv(net_dev
);
608 unsigned int tx_usecs
, rx_usecs
;
611 efx_get_irq_moderation(efx
, &tx_usecs
, &rx_usecs
, &rx_adaptive
);
613 coalesce
->tx_coalesce_usecs
= tx_usecs
;
614 coalesce
->tx_coalesce_usecs_irq
= tx_usecs
;
615 coalesce
->rx_coalesce_usecs
= rx_usecs
;
616 coalesce
->rx_coalesce_usecs_irq
= rx_usecs
;
617 coalesce
->use_adaptive_rx_coalesce
= rx_adaptive
;
622 static int efx_ethtool_set_coalesce(struct net_device
*net_dev
,
623 struct ethtool_coalesce
*coalesce
)
625 struct efx_nic
*efx
= netdev_priv(net_dev
);
626 struct efx_channel
*channel
;
627 unsigned int tx_usecs
, rx_usecs
;
628 bool adaptive
, rx_may_override_tx
;
631 if (coalesce
->use_adaptive_tx_coalesce
)
634 efx_get_irq_moderation(efx
, &tx_usecs
, &rx_usecs
, &adaptive
);
636 if (coalesce
->rx_coalesce_usecs
!= rx_usecs
)
637 rx_usecs
= coalesce
->rx_coalesce_usecs
;
639 rx_usecs
= coalesce
->rx_coalesce_usecs_irq
;
641 adaptive
= coalesce
->use_adaptive_rx_coalesce
;
643 /* If channels are shared, TX IRQ moderation can be quietly
644 * overridden unless it is changed from its old value.
646 rx_may_override_tx
= (coalesce
->tx_coalesce_usecs
== tx_usecs
&&
647 coalesce
->tx_coalesce_usecs_irq
== tx_usecs
);
648 if (coalesce
->tx_coalesce_usecs
!= tx_usecs
)
649 tx_usecs
= coalesce
->tx_coalesce_usecs
;
651 tx_usecs
= coalesce
->tx_coalesce_usecs_irq
;
653 rc
= efx_init_irq_moderation(efx
, tx_usecs
, rx_usecs
, adaptive
,
658 efx_for_each_channel(channel
, efx
)
659 efx
->type
->push_irq_moderation(channel
);
664 static void efx_ethtool_get_ringparam(struct net_device
*net_dev
,
665 struct ethtool_ringparam
*ring
)
667 struct efx_nic
*efx
= netdev_priv(net_dev
);
669 ring
->rx_max_pending
= EFX_MAX_DMAQ_SIZE
;
670 ring
->tx_max_pending
= EFX_TXQ_MAX_ENT(efx
);
671 ring
->rx_pending
= efx
->rxq_entries
;
672 ring
->tx_pending
= efx
->txq_entries
;
675 static int efx_ethtool_set_ringparam(struct net_device
*net_dev
,
676 struct ethtool_ringparam
*ring
)
678 struct efx_nic
*efx
= netdev_priv(net_dev
);
681 if (ring
->rx_mini_pending
|| ring
->rx_jumbo_pending
||
682 ring
->rx_pending
> EFX_MAX_DMAQ_SIZE
||
683 ring
->tx_pending
> EFX_TXQ_MAX_ENT(efx
))
686 if (ring
->rx_pending
< EFX_RXQ_MIN_ENT
) {
687 netif_err(efx
, drv
, efx
->net_dev
,
688 "RX queues cannot be smaller than %u\n",
693 txq_entries
= max(ring
->tx_pending
, EFX_TXQ_MIN_ENT(efx
));
694 if (txq_entries
!= ring
->tx_pending
)
695 netif_warn(efx
, drv
, efx
->net_dev
,
696 "increasing TX queue size to minimum of %u\n",
699 return efx_realloc_channels(efx
, ring
->rx_pending
, txq_entries
);
702 static int efx_ethtool_set_pauseparam(struct net_device
*net_dev
,
703 struct ethtool_pauseparam
*pause
)
705 struct efx_nic
*efx
= netdev_priv(net_dev
);
706 u8 wanted_fc
, old_fc
;
710 mutex_lock(&efx
->mac_lock
);
712 wanted_fc
= ((pause
->rx_pause
? EFX_FC_RX
: 0) |
713 (pause
->tx_pause
? EFX_FC_TX
: 0) |
714 (pause
->autoneg
? EFX_FC_AUTO
: 0));
716 if ((wanted_fc
& EFX_FC_TX
) && !(wanted_fc
& EFX_FC_RX
)) {
717 netif_dbg(efx
, drv
, efx
->net_dev
,
718 "Flow control unsupported: tx ON rx OFF\n");
723 if ((wanted_fc
& EFX_FC_AUTO
) && !efx
->link_advertising
) {
724 netif_dbg(efx
, drv
, efx
->net_dev
,
725 "Autonegotiation is disabled\n");
730 /* Hook for Falcon bug 11482 workaround */
731 if (efx
->type
->prepare_enable_fc_tx
&&
732 (wanted_fc
& EFX_FC_TX
) && !(efx
->wanted_fc
& EFX_FC_TX
))
733 efx
->type
->prepare_enable_fc_tx(efx
);
735 old_adv
= efx
->link_advertising
;
736 old_fc
= efx
->wanted_fc
;
737 efx_link_set_wanted_fc(efx
, wanted_fc
);
738 if (efx
->link_advertising
!= old_adv
||
739 (efx
->wanted_fc
^ old_fc
) & EFX_FC_AUTO
) {
740 rc
= efx
->phy_op
->reconfigure(efx
);
742 netif_err(efx
, drv
, efx
->net_dev
,
743 "Unable to advertise requested flow "
744 "control setting\n");
749 /* Reconfigure the MAC. The PHY *may* generate a link state change event
750 * if the user just changed the advertised capabilities, but there's no
751 * harm doing this twice */
752 efx_mac_reconfigure(efx
);
755 mutex_unlock(&efx
->mac_lock
);
760 static void efx_ethtool_get_pauseparam(struct net_device
*net_dev
,
761 struct ethtool_pauseparam
*pause
)
763 struct efx_nic
*efx
= netdev_priv(net_dev
);
765 pause
->rx_pause
= !!(efx
->wanted_fc
& EFX_FC_RX
);
766 pause
->tx_pause
= !!(efx
->wanted_fc
& EFX_FC_TX
);
767 pause
->autoneg
= !!(efx
->wanted_fc
& EFX_FC_AUTO
);
770 static void efx_ethtool_get_wol(struct net_device
*net_dev
,
771 struct ethtool_wolinfo
*wol
)
773 struct efx_nic
*efx
= netdev_priv(net_dev
);
774 return efx
->type
->get_wol(efx
, wol
);
778 static int efx_ethtool_set_wol(struct net_device
*net_dev
,
779 struct ethtool_wolinfo
*wol
)
781 struct efx_nic
*efx
= netdev_priv(net_dev
);
782 return efx
->type
->set_wol(efx
, wol
->wolopts
);
785 static int efx_ethtool_reset(struct net_device
*net_dev
, u32
*flags
)
787 struct efx_nic
*efx
= netdev_priv(net_dev
);
790 rc
= efx
->type
->map_reset_flags(flags
);
794 return efx_reset(efx
, rc
);
797 /* MAC address mask including only I/G bit */
798 static const u8 mac_addr_ig_mask
[ETH_ALEN
] __aligned(2) = {0x01, 0, 0, 0, 0, 0};
800 #define IP4_ADDR_FULL_MASK ((__force __be32)~0)
801 #define IP_PROTO_FULL_MASK 0xFF
802 #define PORT_FULL_MASK ((__force __be16)~0)
803 #define ETHER_TYPE_FULL_MASK ((__force __be16)~0)
805 static inline void ip6_fill_mask(__be32
*mask
)
807 mask
[0] = mask
[1] = mask
[2] = mask
[3] = ~(__be32
)0;
810 static int efx_ethtool_get_class_rule(struct efx_nic
*efx
,
811 struct ethtool_rx_flow_spec
*rule
)
813 struct ethtool_tcpip4_spec
*ip_entry
= &rule
->h_u
.tcp_ip4_spec
;
814 struct ethtool_tcpip4_spec
*ip_mask
= &rule
->m_u
.tcp_ip4_spec
;
815 struct ethtool_usrip4_spec
*uip_entry
= &rule
->h_u
.usr_ip4_spec
;
816 struct ethtool_usrip4_spec
*uip_mask
= &rule
->m_u
.usr_ip4_spec
;
817 struct ethtool_tcpip6_spec
*ip6_entry
= &rule
->h_u
.tcp_ip6_spec
;
818 struct ethtool_tcpip6_spec
*ip6_mask
= &rule
->m_u
.tcp_ip6_spec
;
819 struct ethtool_usrip6_spec
*uip6_entry
= &rule
->h_u
.usr_ip6_spec
;
820 struct ethtool_usrip6_spec
*uip6_mask
= &rule
->m_u
.usr_ip6_spec
;
821 struct ethhdr
*mac_entry
= &rule
->h_u
.ether_spec
;
822 struct ethhdr
*mac_mask
= &rule
->m_u
.ether_spec
;
823 struct efx_filter_spec spec
;
826 rc
= efx_filter_get_filter_safe(efx
, EFX_FILTER_PRI_MANUAL
,
827 rule
->location
, &spec
);
831 if (spec
.dmaq_id
== EFX_FILTER_RX_DMAQ_ID_DROP
)
832 rule
->ring_cookie
= RX_CLS_FLOW_DISC
;
834 rule
->ring_cookie
= spec
.dmaq_id
;
836 if ((spec
.match_flags
& EFX_FILTER_MATCH_ETHER_TYPE
) &&
837 spec
.ether_type
== htons(ETH_P_IP
) &&
838 (spec
.match_flags
& EFX_FILTER_MATCH_IP_PROTO
) &&
839 (spec
.ip_proto
== IPPROTO_TCP
|| spec
.ip_proto
== IPPROTO_UDP
) &&
841 ~(EFX_FILTER_MATCH_ETHER_TYPE
| EFX_FILTER_MATCH_OUTER_VID
|
842 EFX_FILTER_MATCH_LOC_HOST
| EFX_FILTER_MATCH_REM_HOST
|
843 EFX_FILTER_MATCH_IP_PROTO
|
844 EFX_FILTER_MATCH_LOC_PORT
| EFX_FILTER_MATCH_REM_PORT
))) {
845 rule
->flow_type
= ((spec
.ip_proto
== IPPROTO_TCP
) ?
846 TCP_V4_FLOW
: UDP_V4_FLOW
);
847 if (spec
.match_flags
& EFX_FILTER_MATCH_LOC_HOST
) {
848 ip_entry
->ip4dst
= spec
.loc_host
[0];
849 ip_mask
->ip4dst
= IP4_ADDR_FULL_MASK
;
851 if (spec
.match_flags
& EFX_FILTER_MATCH_REM_HOST
) {
852 ip_entry
->ip4src
= spec
.rem_host
[0];
853 ip_mask
->ip4src
= IP4_ADDR_FULL_MASK
;
855 if (spec
.match_flags
& EFX_FILTER_MATCH_LOC_PORT
) {
856 ip_entry
->pdst
= spec
.loc_port
;
857 ip_mask
->pdst
= PORT_FULL_MASK
;
859 if (spec
.match_flags
& EFX_FILTER_MATCH_REM_PORT
) {
860 ip_entry
->psrc
= spec
.rem_port
;
861 ip_mask
->psrc
= PORT_FULL_MASK
;
863 } else if ((spec
.match_flags
& EFX_FILTER_MATCH_ETHER_TYPE
) &&
864 spec
.ether_type
== htons(ETH_P_IPV6
) &&
865 (spec
.match_flags
& EFX_FILTER_MATCH_IP_PROTO
) &&
866 (spec
.ip_proto
== IPPROTO_TCP
|| spec
.ip_proto
== IPPROTO_UDP
) &&
868 ~(EFX_FILTER_MATCH_ETHER_TYPE
| EFX_FILTER_MATCH_OUTER_VID
|
869 EFX_FILTER_MATCH_LOC_HOST
| EFX_FILTER_MATCH_REM_HOST
|
870 EFX_FILTER_MATCH_IP_PROTO
|
871 EFX_FILTER_MATCH_LOC_PORT
| EFX_FILTER_MATCH_REM_PORT
))) {
872 rule
->flow_type
= ((spec
.ip_proto
== IPPROTO_TCP
) ?
873 TCP_V6_FLOW
: UDP_V6_FLOW
);
874 if (spec
.match_flags
& EFX_FILTER_MATCH_LOC_HOST
) {
875 memcpy(ip6_entry
->ip6dst
, spec
.loc_host
,
876 sizeof(ip6_entry
->ip6dst
));
877 ip6_fill_mask(ip6_mask
->ip6dst
);
879 if (spec
.match_flags
& EFX_FILTER_MATCH_REM_HOST
) {
880 memcpy(ip6_entry
->ip6src
, spec
.rem_host
,
881 sizeof(ip6_entry
->ip6src
));
882 ip6_fill_mask(ip6_mask
->ip6src
);
884 if (spec
.match_flags
& EFX_FILTER_MATCH_LOC_PORT
) {
885 ip6_entry
->pdst
= spec
.loc_port
;
886 ip6_mask
->pdst
= PORT_FULL_MASK
;
888 if (spec
.match_flags
& EFX_FILTER_MATCH_REM_PORT
) {
889 ip6_entry
->psrc
= spec
.rem_port
;
890 ip6_mask
->psrc
= PORT_FULL_MASK
;
892 } else if (!(spec
.match_flags
&
893 ~(EFX_FILTER_MATCH_LOC_MAC
| EFX_FILTER_MATCH_LOC_MAC_IG
|
894 EFX_FILTER_MATCH_REM_MAC
| EFX_FILTER_MATCH_ETHER_TYPE
|
895 EFX_FILTER_MATCH_OUTER_VID
))) {
896 rule
->flow_type
= ETHER_FLOW
;
897 if (spec
.match_flags
&
898 (EFX_FILTER_MATCH_LOC_MAC
| EFX_FILTER_MATCH_LOC_MAC_IG
)) {
899 ether_addr_copy(mac_entry
->h_dest
, spec
.loc_mac
);
900 if (spec
.match_flags
& EFX_FILTER_MATCH_LOC_MAC
)
901 eth_broadcast_addr(mac_mask
->h_dest
);
903 ether_addr_copy(mac_mask
->h_dest
,
906 if (spec
.match_flags
& EFX_FILTER_MATCH_REM_MAC
) {
907 ether_addr_copy(mac_entry
->h_source
, spec
.rem_mac
);
908 eth_broadcast_addr(mac_mask
->h_source
);
910 if (spec
.match_flags
& EFX_FILTER_MATCH_ETHER_TYPE
) {
911 mac_entry
->h_proto
= spec
.ether_type
;
912 mac_mask
->h_proto
= ETHER_TYPE_FULL_MASK
;
914 } else if (spec
.match_flags
& EFX_FILTER_MATCH_ETHER_TYPE
&&
915 spec
.ether_type
== htons(ETH_P_IP
) &&
917 ~(EFX_FILTER_MATCH_ETHER_TYPE
| EFX_FILTER_MATCH_OUTER_VID
|
918 EFX_FILTER_MATCH_LOC_HOST
| EFX_FILTER_MATCH_REM_HOST
|
919 EFX_FILTER_MATCH_IP_PROTO
))) {
920 rule
->flow_type
= IPV4_USER_FLOW
;
921 uip_entry
->ip_ver
= ETH_RX_NFC_IP4
;
922 if (spec
.match_flags
& EFX_FILTER_MATCH_IP_PROTO
) {
923 uip_mask
->proto
= IP_PROTO_FULL_MASK
;
924 uip_entry
->proto
= spec
.ip_proto
;
926 if (spec
.match_flags
& EFX_FILTER_MATCH_LOC_HOST
) {
927 uip_entry
->ip4dst
= spec
.loc_host
[0];
928 uip_mask
->ip4dst
= IP4_ADDR_FULL_MASK
;
930 if (spec
.match_flags
& EFX_FILTER_MATCH_REM_HOST
) {
931 uip_entry
->ip4src
= spec
.rem_host
[0];
932 uip_mask
->ip4src
= IP4_ADDR_FULL_MASK
;
934 } else if (spec
.match_flags
& EFX_FILTER_MATCH_ETHER_TYPE
&&
935 spec
.ether_type
== htons(ETH_P_IPV6
) &&
937 ~(EFX_FILTER_MATCH_ETHER_TYPE
| EFX_FILTER_MATCH_OUTER_VID
|
938 EFX_FILTER_MATCH_LOC_HOST
| EFX_FILTER_MATCH_REM_HOST
|
939 EFX_FILTER_MATCH_IP_PROTO
))) {
940 rule
->flow_type
= IPV6_USER_FLOW
;
941 if (spec
.match_flags
& EFX_FILTER_MATCH_IP_PROTO
) {
942 uip6_mask
->l4_proto
= IP_PROTO_FULL_MASK
;
943 uip6_entry
->l4_proto
= spec
.ip_proto
;
945 if (spec
.match_flags
& EFX_FILTER_MATCH_LOC_HOST
) {
946 memcpy(uip6_entry
->ip6dst
, spec
.loc_host
,
947 sizeof(uip6_entry
->ip6dst
));
948 ip6_fill_mask(uip6_mask
->ip6dst
);
950 if (spec
.match_flags
& EFX_FILTER_MATCH_REM_HOST
) {
951 memcpy(uip6_entry
->ip6src
, spec
.rem_host
,
952 sizeof(uip6_entry
->ip6src
));
953 ip6_fill_mask(uip6_mask
->ip6src
);
956 /* The above should handle all filters that we insert */
961 if (spec
.match_flags
& EFX_FILTER_MATCH_OUTER_VID
) {
962 rule
->flow_type
|= FLOW_EXT
;
963 rule
->h_ext
.vlan_tci
= spec
.outer_vid
;
964 rule
->m_ext
.vlan_tci
= htons(0xfff);
971 efx_ethtool_get_rxnfc(struct net_device
*net_dev
,
972 struct ethtool_rxnfc
*info
, u32
*rule_locs
)
974 struct efx_nic
*efx
= netdev_priv(net_dev
);
977 case ETHTOOL_GRXRINGS
:
978 info
->data
= efx
->n_rx_channels
;
981 case ETHTOOL_GRXFH
: {
983 if (!efx
->rss_active
) /* No RSS */
985 switch (info
->flow_type
) {
987 if (efx
->rx_hash_udp_4tuple
)
990 info
->data
|= RXH_L4_B_0_1
| RXH_L4_B_2_3
;
995 info
->data
|= RXH_IP_SRC
| RXH_IP_DST
;
998 if (efx
->rx_hash_udp_4tuple
)
1001 info
->data
|= RXH_L4_B_0_1
| RXH_L4_B_2_3
;
1004 case AH_ESP_V6_FLOW
:
1006 info
->data
|= RXH_IP_SRC
| RXH_IP_DST
;
1014 case ETHTOOL_GRXCLSRLCNT
:
1015 info
->data
= efx_filter_get_rx_id_limit(efx
);
1016 if (info
->data
== 0)
1018 info
->data
|= RX_CLS_LOC_SPECIAL
;
1020 efx_filter_count_rx_used(efx
, EFX_FILTER_PRI_MANUAL
);
1023 case ETHTOOL_GRXCLSRULE
:
1024 if (efx_filter_get_rx_id_limit(efx
) == 0)
1026 return efx_ethtool_get_class_rule(efx
, &info
->fs
);
1028 case ETHTOOL_GRXCLSRLALL
: {
1030 info
->data
= efx_filter_get_rx_id_limit(efx
);
1031 if (info
->data
== 0)
1033 rc
= efx_filter_get_rx_ids(efx
, EFX_FILTER_PRI_MANUAL
,
1034 rule_locs
, info
->rule_cnt
);
1037 info
->rule_cnt
= rc
;
1046 static inline bool ip6_mask_is_full(__be32 mask
[4])
1048 return !~(mask
[0] & mask
[1] & mask
[2] & mask
[3]);
1051 static inline bool ip6_mask_is_empty(__be32 mask
[4])
1053 return !(mask
[0] | mask
[1] | mask
[2] | mask
[3]);
1056 static int efx_ethtool_set_class_rule(struct efx_nic
*efx
,
1057 struct ethtool_rx_flow_spec
*rule
)
1059 struct ethtool_tcpip4_spec
*ip_entry
= &rule
->h_u
.tcp_ip4_spec
;
1060 struct ethtool_tcpip4_spec
*ip_mask
= &rule
->m_u
.tcp_ip4_spec
;
1061 struct ethtool_usrip4_spec
*uip_entry
= &rule
->h_u
.usr_ip4_spec
;
1062 struct ethtool_usrip4_spec
*uip_mask
= &rule
->m_u
.usr_ip4_spec
;
1063 struct ethtool_tcpip6_spec
*ip6_entry
= &rule
->h_u
.tcp_ip6_spec
;
1064 struct ethtool_tcpip6_spec
*ip6_mask
= &rule
->m_u
.tcp_ip6_spec
;
1065 struct ethtool_usrip6_spec
*uip6_entry
= &rule
->h_u
.usr_ip6_spec
;
1066 struct ethtool_usrip6_spec
*uip6_mask
= &rule
->m_u
.usr_ip6_spec
;
1067 struct ethhdr
*mac_entry
= &rule
->h_u
.ether_spec
;
1068 struct ethhdr
*mac_mask
= &rule
->m_u
.ether_spec
;
1069 struct efx_filter_spec spec
;
1072 /* Check that user wants us to choose the location */
1073 if (rule
->location
!= RX_CLS_LOC_ANY
)
1076 /* Range-check ring_cookie */
1077 if (rule
->ring_cookie
>= efx
->n_rx_channels
&&
1078 rule
->ring_cookie
!= RX_CLS_FLOW_DISC
)
1081 /* Check for unsupported extensions */
1082 if ((rule
->flow_type
& FLOW_EXT
) &&
1083 (rule
->m_ext
.vlan_etype
|| rule
->m_ext
.data
[0] ||
1084 rule
->m_ext
.data
[1]))
1087 efx_filter_init_rx(&spec
, EFX_FILTER_PRI_MANUAL
,
1088 efx
->rx_scatter
? EFX_FILTER_FLAG_RX_SCATTER
: 0,
1089 (rule
->ring_cookie
== RX_CLS_FLOW_DISC
) ?
1090 EFX_FILTER_RX_DMAQ_ID_DROP
: rule
->ring_cookie
);
1092 switch (rule
->flow_type
& ~FLOW_EXT
) {
1095 spec
.match_flags
= (EFX_FILTER_MATCH_ETHER_TYPE
|
1096 EFX_FILTER_MATCH_IP_PROTO
);
1097 spec
.ether_type
= htons(ETH_P_IP
);
1098 spec
.ip_proto
= ((rule
->flow_type
& ~FLOW_EXT
) == TCP_V4_FLOW
?
1099 IPPROTO_TCP
: IPPROTO_UDP
);
1100 if (ip_mask
->ip4dst
) {
1101 if (ip_mask
->ip4dst
!= IP4_ADDR_FULL_MASK
)
1103 spec
.match_flags
|= EFX_FILTER_MATCH_LOC_HOST
;
1104 spec
.loc_host
[0] = ip_entry
->ip4dst
;
1106 if (ip_mask
->ip4src
) {
1107 if (ip_mask
->ip4src
!= IP4_ADDR_FULL_MASK
)
1109 spec
.match_flags
|= EFX_FILTER_MATCH_REM_HOST
;
1110 spec
.rem_host
[0] = ip_entry
->ip4src
;
1112 if (ip_mask
->pdst
) {
1113 if (ip_mask
->pdst
!= PORT_FULL_MASK
)
1115 spec
.match_flags
|= EFX_FILTER_MATCH_LOC_PORT
;
1116 spec
.loc_port
= ip_entry
->pdst
;
1118 if (ip_mask
->psrc
) {
1119 if (ip_mask
->psrc
!= PORT_FULL_MASK
)
1121 spec
.match_flags
|= EFX_FILTER_MATCH_REM_PORT
;
1122 spec
.rem_port
= ip_entry
->psrc
;
1130 spec
.match_flags
= (EFX_FILTER_MATCH_ETHER_TYPE
|
1131 EFX_FILTER_MATCH_IP_PROTO
);
1132 spec
.ether_type
= htons(ETH_P_IPV6
);
1133 spec
.ip_proto
= ((rule
->flow_type
& ~FLOW_EXT
) == TCP_V6_FLOW
?
1134 IPPROTO_TCP
: IPPROTO_UDP
);
1135 if (!ip6_mask_is_empty(ip6_mask
->ip6dst
)) {
1136 if (!ip6_mask_is_full(ip6_mask
->ip6dst
))
1138 spec
.match_flags
|= EFX_FILTER_MATCH_LOC_HOST
;
1139 memcpy(spec
.loc_host
, ip6_entry
->ip6dst
, sizeof(spec
.loc_host
));
1141 if (!ip6_mask_is_empty(ip6_mask
->ip6src
)) {
1142 if (!ip6_mask_is_full(ip6_mask
->ip6src
))
1144 spec
.match_flags
|= EFX_FILTER_MATCH_REM_HOST
;
1145 memcpy(spec
.rem_host
, ip6_entry
->ip6src
, sizeof(spec
.rem_host
));
1147 if (ip6_mask
->pdst
) {
1148 if (ip6_mask
->pdst
!= PORT_FULL_MASK
)
1150 spec
.match_flags
|= EFX_FILTER_MATCH_LOC_PORT
;
1151 spec
.loc_port
= ip6_entry
->pdst
;
1153 if (ip6_mask
->psrc
) {
1154 if (ip6_mask
->psrc
!= PORT_FULL_MASK
)
1156 spec
.match_flags
|= EFX_FILTER_MATCH_REM_PORT
;
1157 spec
.rem_port
= ip6_entry
->psrc
;
1159 if (ip6_mask
->tclass
)
1163 case IPV4_USER_FLOW
:
1164 if (uip_mask
->l4_4_bytes
|| uip_mask
->tos
|| uip_mask
->ip_ver
||
1165 uip_entry
->ip_ver
!= ETH_RX_NFC_IP4
)
1167 spec
.match_flags
= EFX_FILTER_MATCH_ETHER_TYPE
;
1168 spec
.ether_type
= htons(ETH_P_IP
);
1169 if (uip_mask
->ip4dst
) {
1170 if (uip_mask
->ip4dst
!= IP4_ADDR_FULL_MASK
)
1172 spec
.match_flags
|= EFX_FILTER_MATCH_LOC_HOST
;
1173 spec
.loc_host
[0] = uip_entry
->ip4dst
;
1175 if (uip_mask
->ip4src
) {
1176 if (uip_mask
->ip4src
!= IP4_ADDR_FULL_MASK
)
1178 spec
.match_flags
|= EFX_FILTER_MATCH_REM_HOST
;
1179 spec
.rem_host
[0] = uip_entry
->ip4src
;
1181 if (uip_mask
->proto
) {
1182 if (uip_mask
->proto
!= IP_PROTO_FULL_MASK
)
1184 spec
.match_flags
|= EFX_FILTER_MATCH_IP_PROTO
;
1185 spec
.ip_proto
= uip_entry
->proto
;
1189 case IPV6_USER_FLOW
:
1190 if (uip6_mask
->l4_4_bytes
|| uip6_mask
->tclass
)
1192 spec
.match_flags
= EFX_FILTER_MATCH_ETHER_TYPE
;
1193 spec
.ether_type
= htons(ETH_P_IPV6
);
1194 if (!ip6_mask_is_empty(uip6_mask
->ip6dst
)) {
1195 if (!ip6_mask_is_full(uip6_mask
->ip6dst
))
1197 spec
.match_flags
|= EFX_FILTER_MATCH_LOC_HOST
;
1198 memcpy(spec
.loc_host
, uip6_entry
->ip6dst
, sizeof(spec
.loc_host
));
1200 if (!ip6_mask_is_empty(uip6_mask
->ip6src
)) {
1201 if (!ip6_mask_is_full(uip6_mask
->ip6src
))
1203 spec
.match_flags
|= EFX_FILTER_MATCH_REM_HOST
;
1204 memcpy(spec
.rem_host
, uip6_entry
->ip6src
, sizeof(spec
.rem_host
));
1206 if (uip6_mask
->l4_proto
) {
1207 if (uip6_mask
->l4_proto
!= IP_PROTO_FULL_MASK
)
1209 spec
.match_flags
|= EFX_FILTER_MATCH_IP_PROTO
;
1210 spec
.ip_proto
= uip6_entry
->l4_proto
;
1215 if (!is_zero_ether_addr(mac_mask
->h_dest
)) {
1216 if (ether_addr_equal(mac_mask
->h_dest
,
1218 spec
.match_flags
|= EFX_FILTER_MATCH_LOC_MAC_IG
;
1219 else if (is_broadcast_ether_addr(mac_mask
->h_dest
))
1220 spec
.match_flags
|= EFX_FILTER_MATCH_LOC_MAC
;
1223 ether_addr_copy(spec
.loc_mac
, mac_entry
->h_dest
);
1225 if (!is_zero_ether_addr(mac_mask
->h_source
)) {
1226 if (!is_broadcast_ether_addr(mac_mask
->h_source
))
1228 spec
.match_flags
|= EFX_FILTER_MATCH_REM_MAC
;
1229 ether_addr_copy(spec
.rem_mac
, mac_entry
->h_source
);
1231 if (mac_mask
->h_proto
) {
1232 if (mac_mask
->h_proto
!= ETHER_TYPE_FULL_MASK
)
1234 spec
.match_flags
|= EFX_FILTER_MATCH_ETHER_TYPE
;
1235 spec
.ether_type
= mac_entry
->h_proto
;
1243 if ((rule
->flow_type
& FLOW_EXT
) && rule
->m_ext
.vlan_tci
) {
1244 if (rule
->m_ext
.vlan_tci
!= htons(0xfff))
1246 spec
.match_flags
|= EFX_FILTER_MATCH_OUTER_VID
;
1247 spec
.outer_vid
= rule
->h_ext
.vlan_tci
;
1250 rc
= efx_filter_insert_filter(efx
, &spec
, true);
1254 rule
->location
= rc
;
1258 static int efx_ethtool_set_rxnfc(struct net_device
*net_dev
,
1259 struct ethtool_rxnfc
*info
)
1261 struct efx_nic
*efx
= netdev_priv(net_dev
);
1263 if (efx_filter_get_rx_id_limit(efx
) == 0)
1266 switch (info
->cmd
) {
1267 case ETHTOOL_SRXCLSRLINS
:
1268 return efx_ethtool_set_class_rule(efx
, &info
->fs
);
1270 case ETHTOOL_SRXCLSRLDEL
:
1271 return efx_filter_remove_id_safe(efx
, EFX_FILTER_PRI_MANUAL
,
1279 static u32
efx_ethtool_get_rxfh_indir_size(struct net_device
*net_dev
)
1281 struct efx_nic
*efx
= netdev_priv(net_dev
);
1283 return (efx
->n_rx_channels
== 1) ? 0 : ARRAY_SIZE(efx
->rx_indir_table
);
1286 static u32
efx_ethtool_get_rxfh_key_size(struct net_device
*net_dev
)
1288 struct efx_nic
*efx
= netdev_priv(net_dev
);
1290 return efx
->type
->rx_hash_key_size
;
1293 static int efx_ethtool_get_rxfh(struct net_device
*net_dev
, u32
*indir
, u8
*key
,
1296 struct efx_nic
*efx
= netdev_priv(net_dev
);
1299 rc
= efx
->type
->rx_pull_rss_config(efx
);
1304 *hfunc
= ETH_RSS_HASH_TOP
;
1306 memcpy(indir
, efx
->rx_indir_table
, sizeof(efx
->rx_indir_table
));
1308 memcpy(key
, efx
->rx_hash_key
, efx
->type
->rx_hash_key_size
);
1312 static int efx_ethtool_set_rxfh(struct net_device
*net_dev
, const u32
*indir
,
1313 const u8
*key
, const u8 hfunc
)
1315 struct efx_nic
*efx
= netdev_priv(net_dev
);
1317 /* Hash function is Toeplitz, cannot be changed */
1318 if (hfunc
!= ETH_RSS_HASH_NO_CHANGE
&& hfunc
!= ETH_RSS_HASH_TOP
)
1324 key
= efx
->rx_hash_key
;
1326 indir
= efx
->rx_indir_table
;
1328 return efx
->type
->rx_push_rss_config(efx
, true, indir
, key
);
1331 static int efx_ethtool_get_ts_info(struct net_device
*net_dev
,
1332 struct ethtool_ts_info
*ts_info
)
1334 struct efx_nic
*efx
= netdev_priv(net_dev
);
1336 /* Software capabilities */
1337 ts_info
->so_timestamping
= (SOF_TIMESTAMPING_RX_SOFTWARE
|
1338 SOF_TIMESTAMPING_SOFTWARE
);
1339 ts_info
->phc_index
= -1;
1341 efx_ptp_get_ts_info(efx
, ts_info
);
1345 static int efx_ethtool_get_module_eeprom(struct net_device
*net_dev
,
1346 struct ethtool_eeprom
*ee
,
1349 struct efx_nic
*efx
= netdev_priv(net_dev
);
1352 if (!efx
->phy_op
|| !efx
->phy_op
->get_module_eeprom
)
1355 mutex_lock(&efx
->mac_lock
);
1356 ret
= efx
->phy_op
->get_module_eeprom(efx
, ee
, data
);
1357 mutex_unlock(&efx
->mac_lock
);
1362 static int efx_ethtool_get_module_info(struct net_device
*net_dev
,
1363 struct ethtool_modinfo
*modinfo
)
1365 struct efx_nic
*efx
= netdev_priv(net_dev
);
1368 if (!efx
->phy_op
|| !efx
->phy_op
->get_module_info
)
1371 mutex_lock(&efx
->mac_lock
);
1372 ret
= efx
->phy_op
->get_module_info(efx
, modinfo
);
1373 mutex_unlock(&efx
->mac_lock
);
1378 const struct ethtool_ops efx_ethtool_ops
= {
1379 .get_drvinfo
= efx_ethtool_get_drvinfo
,
1380 .get_regs_len
= efx_ethtool_get_regs_len
,
1381 .get_regs
= efx_ethtool_get_regs
,
1382 .get_msglevel
= efx_ethtool_get_msglevel
,
1383 .set_msglevel
= efx_ethtool_set_msglevel
,
1384 .nway_reset
= efx_ethtool_nway_reset
,
1385 .get_link
= ethtool_op_get_link
,
1386 .get_coalesce
= efx_ethtool_get_coalesce
,
1387 .set_coalesce
= efx_ethtool_set_coalesce
,
1388 .get_ringparam
= efx_ethtool_get_ringparam
,
1389 .set_ringparam
= efx_ethtool_set_ringparam
,
1390 .get_pauseparam
= efx_ethtool_get_pauseparam
,
1391 .set_pauseparam
= efx_ethtool_set_pauseparam
,
1392 .get_sset_count
= efx_ethtool_get_sset_count
,
1393 .self_test
= efx_ethtool_self_test
,
1394 .get_strings
= efx_ethtool_get_strings
,
1395 .set_phys_id
= efx_ethtool_phys_id
,
1396 .get_ethtool_stats
= efx_ethtool_get_stats
,
1397 .get_wol
= efx_ethtool_get_wol
,
1398 .set_wol
= efx_ethtool_set_wol
,
1399 .reset
= efx_ethtool_reset
,
1400 .get_rxnfc
= efx_ethtool_get_rxnfc
,
1401 .set_rxnfc
= efx_ethtool_set_rxnfc
,
1402 .get_rxfh_indir_size
= efx_ethtool_get_rxfh_indir_size
,
1403 .get_rxfh_key_size
= efx_ethtool_get_rxfh_key_size
,
1404 .get_rxfh
= efx_ethtool_get_rxfh
,
1405 .set_rxfh
= efx_ethtool_set_rxfh
,
1406 .get_ts_info
= efx_ethtool_get_ts_info
,
1407 .get_module_info
= efx_ethtool_get_module_info
,
1408 .get_module_eeprom
= efx_ethtool_get_module_eeprom
,
1409 .get_link_ksettings
= efx_ethtool_get_link_ksettings
,
1410 .set_link_ksettings
= efx_ethtool_set_link_ksettings
,