net/af_xdp: avoid deadlock due to empty fill queue
[dpdk.git] / drivers / net / igc / igc_ethdev.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2019-2020 Intel Corporation
3  */
4
5 #include <stdint.h>
6 #include <string.h>
7
8 #include <rte_string_fns.h>
9 #include <rte_pci.h>
10 #include <rte_bus_pci.h>
11 #include <rte_ethdev_driver.h>
12 #include <rte_ethdev_pci.h>
13 #include <rte_malloc.h>
14 #include <rte_alarm.h>
15
16 #include "igc_logs.h"
17 #include "igc_txrx.h"
18 #include "igc_filter.h"
19 #include "igc_flow.h"
20
21 #define IGC_INTEL_VENDOR_ID             0x8086
22
23 /*
24  * The overhead from MTU to max frame size.
25  * Considering VLAN so tag needs to be counted.
26  */
27 #define IGC_ETH_OVERHEAD                (RTE_ETHER_HDR_LEN + \
28                                         RTE_ETHER_CRC_LEN + VLAN_TAG_SIZE)
29
30 #define IGC_FC_PAUSE_TIME               0x0680
31 #define IGC_LINK_UPDATE_CHECK_TIMEOUT   90  /* 9s */
32 #define IGC_LINK_UPDATE_CHECK_INTERVAL  100 /* ms */
33
34 #define IGC_MISC_VEC_ID                 RTE_INTR_VEC_ZERO_OFFSET
35 #define IGC_RX_VEC_START                RTE_INTR_VEC_RXTX_OFFSET
36 #define IGC_MSIX_OTHER_INTR_VEC         0   /* MSI-X other interrupt vector */
37 #define IGC_FLAG_NEED_LINK_UPDATE       (1u << 0)       /* need update link */
38
39 #define IGC_DEFAULT_RX_FREE_THRESH      32
40
41 #define IGC_DEFAULT_RX_PTHRESH          8
42 #define IGC_DEFAULT_RX_HTHRESH          8
43 #define IGC_DEFAULT_RX_WTHRESH          4
44
45 #define IGC_DEFAULT_TX_PTHRESH          8
46 #define IGC_DEFAULT_TX_HTHRESH          1
47 #define IGC_DEFAULT_TX_WTHRESH          16
48
49 /* MSI-X other interrupt vector */
50 #define IGC_MSIX_OTHER_INTR_VEC         0
51
52 /* External VLAN Enable bit mask */
53 #define IGC_CTRL_EXT_EXT_VLAN           (1u << 26)
54
55 /* Speed select */
56 #define IGC_CTRL_SPEED_MASK             (7u << 8)
57 #define IGC_CTRL_SPEED_2500             (6u << 8)
58
59 /* External VLAN Ether Type bit mask and shift */
60 #define IGC_VET_EXT                     0xFFFF0000
61 #define IGC_VET_EXT_SHIFT               16
62
63 /* Force EEE Auto-negotiation */
64 #define IGC_EEER_EEE_FRC_AN             (1u << 28)
65
66 /* Per Queue Good Packets Received Count */
67 #define IGC_PQGPRC(idx)         (0x10010 + 0x100 * (idx))
68 /* Per Queue Good Octets Received Count */
69 #define IGC_PQGORC(idx)         (0x10018 + 0x100 * (idx))
70 /* Per Queue Good Octets Transmitted Count */
71 #define IGC_PQGOTC(idx)         (0x10034 + 0x100 * (idx))
72 /* Per Queue Multicast Packets Received Count */
73 #define IGC_PQMPRC(idx)         (0x10038 + 0x100 * (idx))
74 /* Transmit Queue Drop Packet Count */
75 #define IGC_TQDPC(idx)          (0xe030 + 0x40 * (idx))
76
77 #if RTE_BYTE_ORDER == RTE_LITTLE_ENDIAN
78 #define U32_0_IN_U64            0       /* lower bytes of u64 */
79 #define U32_1_IN_U64            1       /* higher bytes of u64 */
80 #else
81 #define U32_0_IN_U64            1
82 #define U32_1_IN_U64            0
83 #endif
84
85 #define IGC_ALARM_INTERVAL      8000000u
86 /* us, about 13.6s some per-queue registers will wrap around back to 0. */
87
88 static const struct rte_eth_desc_lim rx_desc_lim = {
89         .nb_max = IGC_MAX_RXD,
90         .nb_min = IGC_MIN_RXD,
91         .nb_align = IGC_RXD_ALIGN,
92 };
93
94 static const struct rte_eth_desc_lim tx_desc_lim = {
95         .nb_max = IGC_MAX_TXD,
96         .nb_min = IGC_MIN_TXD,
97         .nb_align = IGC_TXD_ALIGN,
98         .nb_seg_max = IGC_TX_MAX_SEG,
99         .nb_mtu_seg_max = IGC_TX_MAX_MTU_SEG,
100 };
101
102 static const struct rte_pci_id pci_id_igc_map[] = {
103         { RTE_PCI_DEVICE(IGC_INTEL_VENDOR_ID, IGC_DEV_ID_I225_LM) },
104         { RTE_PCI_DEVICE(IGC_INTEL_VENDOR_ID, IGC_DEV_ID_I225_V)  },
105         { RTE_PCI_DEVICE(IGC_INTEL_VENDOR_ID, IGC_DEV_ID_I225_I)  },
106         { RTE_PCI_DEVICE(IGC_INTEL_VENDOR_ID, IGC_DEV_ID_I225_K)  },
107         { .vendor_id = 0, /* sentinel */ },
108 };
109
110 /* store statistics names and its offset in stats structure */
111 struct rte_igc_xstats_name_off {
112         char name[RTE_ETH_XSTATS_NAME_SIZE];
113         unsigned int offset;
114 };
115
116 static const struct rte_igc_xstats_name_off rte_igc_stats_strings[] = {
117         {"rx_crc_errors", offsetof(struct igc_hw_stats, crcerrs)},
118         {"rx_align_errors", offsetof(struct igc_hw_stats, algnerrc)},
119         {"rx_errors", offsetof(struct igc_hw_stats, rxerrc)},
120         {"rx_missed_packets", offsetof(struct igc_hw_stats, mpc)},
121         {"tx_single_collision_packets", offsetof(struct igc_hw_stats, scc)},
122         {"tx_multiple_collision_packets", offsetof(struct igc_hw_stats, mcc)},
123         {"tx_excessive_collision_packets", offsetof(struct igc_hw_stats,
124                 ecol)},
125         {"tx_late_collisions", offsetof(struct igc_hw_stats, latecol)},
126         {"tx_total_collisions", offsetof(struct igc_hw_stats, colc)},
127         {"tx_deferred_packets", offsetof(struct igc_hw_stats, dc)},
128         {"tx_no_carrier_sense_packets", offsetof(struct igc_hw_stats, tncrs)},
129         {"tx_discarded_packets", offsetof(struct igc_hw_stats, htdpmc)},
130         {"rx_length_errors", offsetof(struct igc_hw_stats, rlec)},
131         {"rx_xon_packets", offsetof(struct igc_hw_stats, xonrxc)},
132         {"tx_xon_packets", offsetof(struct igc_hw_stats, xontxc)},
133         {"rx_xoff_packets", offsetof(struct igc_hw_stats, xoffrxc)},
134         {"tx_xoff_packets", offsetof(struct igc_hw_stats, xofftxc)},
135         {"rx_flow_control_unsupported_packets", offsetof(struct igc_hw_stats,
136                 fcruc)},
137         {"rx_size_64_packets", offsetof(struct igc_hw_stats, prc64)},
138         {"rx_size_65_to_127_packets", offsetof(struct igc_hw_stats, prc127)},
139         {"rx_size_128_to_255_packets", offsetof(struct igc_hw_stats, prc255)},
140         {"rx_size_256_to_511_packets", offsetof(struct igc_hw_stats, prc511)},
141         {"rx_size_512_to_1023_packets", offsetof(struct igc_hw_stats,
142                 prc1023)},
143         {"rx_size_1024_to_max_packets", offsetof(struct igc_hw_stats,
144                 prc1522)},
145         {"rx_broadcast_packets", offsetof(struct igc_hw_stats, bprc)},
146         {"rx_multicast_packets", offsetof(struct igc_hw_stats, mprc)},
147         {"rx_undersize_errors", offsetof(struct igc_hw_stats, ruc)},
148         {"rx_fragment_errors", offsetof(struct igc_hw_stats, rfc)},
149         {"rx_oversize_errors", offsetof(struct igc_hw_stats, roc)},
150         {"rx_jabber_errors", offsetof(struct igc_hw_stats, rjc)},
151         {"rx_no_buffers", offsetof(struct igc_hw_stats, rnbc)},
152         {"rx_management_packets", offsetof(struct igc_hw_stats, mgprc)},
153         {"rx_management_dropped", offsetof(struct igc_hw_stats, mgpdc)},
154         {"tx_management_packets", offsetof(struct igc_hw_stats, mgptc)},
155         {"rx_total_packets", offsetof(struct igc_hw_stats, tpr)},
156         {"tx_total_packets", offsetof(struct igc_hw_stats, tpt)},
157         {"rx_total_bytes", offsetof(struct igc_hw_stats, tor)},
158         {"tx_total_bytes", offsetof(struct igc_hw_stats, tot)},
159         {"tx_size_64_packets", offsetof(struct igc_hw_stats, ptc64)},
160         {"tx_size_65_to_127_packets", offsetof(struct igc_hw_stats, ptc127)},
161         {"tx_size_128_to_255_packets", offsetof(struct igc_hw_stats, ptc255)},
162         {"tx_size_256_to_511_packets", offsetof(struct igc_hw_stats, ptc511)},
163         {"tx_size_512_to_1023_packets", offsetof(struct igc_hw_stats,
164                 ptc1023)},
165         {"tx_size_1023_to_max_packets", offsetof(struct igc_hw_stats,
166                 ptc1522)},
167         {"tx_multicast_packets", offsetof(struct igc_hw_stats, mptc)},
168         {"tx_broadcast_packets", offsetof(struct igc_hw_stats, bptc)},
169         {"tx_tso_packets", offsetof(struct igc_hw_stats, tsctc)},
170         {"rx_sent_to_host_packets", offsetof(struct igc_hw_stats, rpthc)},
171         {"tx_sent_by_host_packets", offsetof(struct igc_hw_stats, hgptc)},
172         {"interrupt_assert_count", offsetof(struct igc_hw_stats, iac)},
173         {"rx_descriptor_lower_threshold",
174                 offsetof(struct igc_hw_stats, icrxdmtc)},
175 };
176
177 #define IGC_NB_XSTATS (sizeof(rte_igc_stats_strings) / \
178                 sizeof(rte_igc_stats_strings[0]))
179
180 static int eth_igc_configure(struct rte_eth_dev *dev);
181 static int eth_igc_link_update(struct rte_eth_dev *dev, int wait_to_complete);
182 static void eth_igc_stop(struct rte_eth_dev *dev);
183 static int eth_igc_start(struct rte_eth_dev *dev);
184 static int eth_igc_set_link_up(struct rte_eth_dev *dev);
185 static int eth_igc_set_link_down(struct rte_eth_dev *dev);
186 static void eth_igc_close(struct rte_eth_dev *dev);
187 static int eth_igc_reset(struct rte_eth_dev *dev);
188 static int eth_igc_promiscuous_enable(struct rte_eth_dev *dev);
189 static int eth_igc_promiscuous_disable(struct rte_eth_dev *dev);
190 static int eth_igc_fw_version_get(struct rte_eth_dev *dev,
191                                 char *fw_version, size_t fw_size);
192 static int eth_igc_infos_get(struct rte_eth_dev *dev,
193                         struct rte_eth_dev_info *dev_info);
194 static int eth_igc_led_on(struct rte_eth_dev *dev);
195 static int eth_igc_led_off(struct rte_eth_dev *dev);
196 static const uint32_t *eth_igc_supported_ptypes_get(struct rte_eth_dev *dev);
197 static int eth_igc_rar_set(struct rte_eth_dev *dev,
198                 struct rte_ether_addr *mac_addr, uint32_t index, uint32_t pool);
199 static void eth_igc_rar_clear(struct rte_eth_dev *dev, uint32_t index);
200 static int eth_igc_default_mac_addr_set(struct rte_eth_dev *dev,
201                         struct rte_ether_addr *addr);
202 static int eth_igc_set_mc_addr_list(struct rte_eth_dev *dev,
203                          struct rte_ether_addr *mc_addr_set,
204                          uint32_t nb_mc_addr);
205 static int eth_igc_allmulticast_enable(struct rte_eth_dev *dev);
206 static int eth_igc_allmulticast_disable(struct rte_eth_dev *dev);
207 static int eth_igc_mtu_set(struct rte_eth_dev *dev, uint16_t mtu);
208 static int eth_igc_stats_get(struct rte_eth_dev *dev,
209                         struct rte_eth_stats *rte_stats);
210 static int eth_igc_xstats_get(struct rte_eth_dev *dev,
211                         struct rte_eth_xstat *xstats, unsigned int n);
212 static int eth_igc_xstats_get_by_id(struct rte_eth_dev *dev,
213                                 const uint64_t *ids,
214                                 uint64_t *values, unsigned int n);
215 static int eth_igc_xstats_get_names(struct rte_eth_dev *dev,
216                                 struct rte_eth_xstat_name *xstats_names,
217                                 unsigned int size);
218 static int eth_igc_xstats_get_names_by_id(struct rte_eth_dev *dev,
219                 struct rte_eth_xstat_name *xstats_names, const uint64_t *ids,
220                 unsigned int limit);
221 static int eth_igc_xstats_reset(struct rte_eth_dev *dev);
222 static int
223 eth_igc_queue_stats_mapping_set(struct rte_eth_dev *dev,
224         uint16_t queue_id, uint8_t stat_idx, uint8_t is_rx);
225 static int
226 eth_igc_rx_queue_intr_disable(struct rte_eth_dev *dev, uint16_t queue_id);
227 static int
228 eth_igc_rx_queue_intr_enable(struct rte_eth_dev *dev, uint16_t queue_id);
229 static int
230 eth_igc_flow_ctrl_get(struct rte_eth_dev *dev, struct rte_eth_fc_conf *fc_conf);
231 static int
232 eth_igc_flow_ctrl_set(struct rte_eth_dev *dev, struct rte_eth_fc_conf *fc_conf);
233 static int eth_igc_rss_reta_update(struct rte_eth_dev *dev,
234                         struct rte_eth_rss_reta_entry64 *reta_conf,
235                         uint16_t reta_size);
236 static int eth_igc_rss_reta_query(struct rte_eth_dev *dev,
237                        struct rte_eth_rss_reta_entry64 *reta_conf,
238                        uint16_t reta_size);
239 static int eth_igc_rss_hash_update(struct rte_eth_dev *dev,
240                         struct rte_eth_rss_conf *rss_conf);
241 static int eth_igc_rss_hash_conf_get(struct rte_eth_dev *dev,
242                         struct rte_eth_rss_conf *rss_conf);
243 static int
244 eth_igc_vlan_filter_set(struct rte_eth_dev *dev, uint16_t vlan_id, int on);
245 static int eth_igc_vlan_offload_set(struct rte_eth_dev *dev, int mask);
246 static int eth_igc_vlan_tpid_set(struct rte_eth_dev *dev,
247                       enum rte_vlan_type vlan_type, uint16_t tpid);
248
249 static const struct eth_dev_ops eth_igc_ops = {
250         .dev_configure          = eth_igc_configure,
251         .link_update            = eth_igc_link_update,
252         .dev_stop               = eth_igc_stop,
253         .dev_start              = eth_igc_start,
254         .dev_close              = eth_igc_close,
255         .dev_reset              = eth_igc_reset,
256         .dev_set_link_up        = eth_igc_set_link_up,
257         .dev_set_link_down      = eth_igc_set_link_down,
258         .promiscuous_enable     = eth_igc_promiscuous_enable,
259         .promiscuous_disable    = eth_igc_promiscuous_disable,
260         .allmulticast_enable    = eth_igc_allmulticast_enable,
261         .allmulticast_disable   = eth_igc_allmulticast_disable,
262         .fw_version_get         = eth_igc_fw_version_get,
263         .dev_infos_get          = eth_igc_infos_get,
264         .dev_led_on             = eth_igc_led_on,
265         .dev_led_off            = eth_igc_led_off,
266         .dev_supported_ptypes_get = eth_igc_supported_ptypes_get,
267         .mtu_set                = eth_igc_mtu_set,
268         .mac_addr_add           = eth_igc_rar_set,
269         .mac_addr_remove        = eth_igc_rar_clear,
270         .mac_addr_set           = eth_igc_default_mac_addr_set,
271         .set_mc_addr_list       = eth_igc_set_mc_addr_list,
272
273         .rx_queue_setup         = eth_igc_rx_queue_setup,
274         .rx_queue_release       = eth_igc_rx_queue_release,
275         .tx_queue_setup         = eth_igc_tx_queue_setup,
276         .tx_queue_release       = eth_igc_tx_queue_release,
277         .tx_done_cleanup        = eth_igc_tx_done_cleanup,
278         .rxq_info_get           = eth_igc_rxq_info_get,
279         .txq_info_get           = eth_igc_txq_info_get,
280         .stats_get              = eth_igc_stats_get,
281         .xstats_get             = eth_igc_xstats_get,
282         .xstats_get_by_id       = eth_igc_xstats_get_by_id,
283         .xstats_get_names_by_id = eth_igc_xstats_get_names_by_id,
284         .xstats_get_names       = eth_igc_xstats_get_names,
285         .stats_reset            = eth_igc_xstats_reset,
286         .xstats_reset           = eth_igc_xstats_reset,
287         .queue_stats_mapping_set = eth_igc_queue_stats_mapping_set,
288         .rx_queue_intr_enable   = eth_igc_rx_queue_intr_enable,
289         .rx_queue_intr_disable  = eth_igc_rx_queue_intr_disable,
290         .flow_ctrl_get          = eth_igc_flow_ctrl_get,
291         .flow_ctrl_set          = eth_igc_flow_ctrl_set,
292         .reta_update            = eth_igc_rss_reta_update,
293         .reta_query             = eth_igc_rss_reta_query,
294         .rss_hash_update        = eth_igc_rss_hash_update,
295         .rss_hash_conf_get      = eth_igc_rss_hash_conf_get,
296         .vlan_filter_set        = eth_igc_vlan_filter_set,
297         .vlan_offload_set       = eth_igc_vlan_offload_set,
298         .vlan_tpid_set          = eth_igc_vlan_tpid_set,
299         .vlan_strip_queue_set   = eth_igc_vlan_strip_queue_set,
300         .filter_ctrl            = eth_igc_filter_ctrl,
301 };
302
303 /*
304  * multiple queue mode checking
305  */
306 static int
307 igc_check_mq_mode(struct rte_eth_dev *dev)
308 {
309         enum rte_eth_rx_mq_mode rx_mq_mode = dev->data->dev_conf.rxmode.mq_mode;
310         enum rte_eth_tx_mq_mode tx_mq_mode = dev->data->dev_conf.txmode.mq_mode;
311
312         if (RTE_ETH_DEV_SRIOV(dev).active != 0) {
313                 PMD_INIT_LOG(ERR, "SRIOV is not supported.");
314                 return -EINVAL;
315         }
316
317         if (rx_mq_mode != ETH_MQ_RX_NONE &&
318                 rx_mq_mode != ETH_MQ_RX_RSS) {
319                 /* RSS together with VMDq not supported*/
320                 PMD_INIT_LOG(ERR, "RX mode %d is not supported.",
321                                 rx_mq_mode);
322                 return -EINVAL;
323         }
324
325         /* To no break software that set invalid mode, only display
326          * warning if invalid mode is used.
327          */
328         if (tx_mq_mode != ETH_MQ_TX_NONE)
329                 PMD_INIT_LOG(WARNING,
330                         "TX mode %d is not supported. Due to meaningless in this driver, just ignore",
331                         tx_mq_mode);
332
333         return 0;
334 }
335
336 static int
337 eth_igc_configure(struct rte_eth_dev *dev)
338 {
339         struct igc_interrupt *intr = IGC_DEV_PRIVATE_INTR(dev);
340         int ret;
341
342         PMD_INIT_FUNC_TRACE();
343
344         ret  = igc_check_mq_mode(dev);
345         if (ret != 0)
346                 return ret;
347
348         intr->flags |= IGC_FLAG_NEED_LINK_UPDATE;
349         return 0;
350 }
351
352 static int
353 eth_igc_set_link_up(struct rte_eth_dev *dev)
354 {
355         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
356
357         if (hw->phy.media_type == igc_media_type_copper)
358                 igc_power_up_phy(hw);
359         else
360                 igc_power_up_fiber_serdes_link(hw);
361         return 0;
362 }
363
364 static int
365 eth_igc_set_link_down(struct rte_eth_dev *dev)
366 {
367         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
368
369         if (hw->phy.media_type == igc_media_type_copper)
370                 igc_power_down_phy(hw);
371         else
372                 igc_shutdown_fiber_serdes_link(hw);
373         return 0;
374 }
375
376 /*
377  * disable other interrupt
378  */
379 static void
380 igc_intr_other_disable(struct rte_eth_dev *dev)
381 {
382         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
383         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
384         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
385
386         if (rte_intr_allow_others(intr_handle) &&
387                 dev->data->dev_conf.intr_conf.lsc) {
388                 IGC_WRITE_REG(hw, IGC_EIMC, 1u << IGC_MSIX_OTHER_INTR_VEC);
389         }
390
391         IGC_WRITE_REG(hw, IGC_IMC, ~0);
392         IGC_WRITE_FLUSH(hw);
393 }
394
395 /*
396  * enable other interrupt
397  */
398 static inline void
399 igc_intr_other_enable(struct rte_eth_dev *dev)
400 {
401         struct igc_interrupt *intr = IGC_DEV_PRIVATE_INTR(dev);
402         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
403         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
404         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
405
406         if (rte_intr_allow_others(intr_handle) &&
407                 dev->data->dev_conf.intr_conf.lsc) {
408                 IGC_WRITE_REG(hw, IGC_EIMS, 1u << IGC_MSIX_OTHER_INTR_VEC);
409         }
410
411         IGC_WRITE_REG(hw, IGC_IMS, intr->mask);
412         IGC_WRITE_FLUSH(hw);
413 }
414
415 /*
416  * It reads ICR and gets interrupt causes, check it and set a bit flag
417  * to update link status.
418  */
419 static void
420 eth_igc_interrupt_get_status(struct rte_eth_dev *dev)
421 {
422         uint32_t icr;
423         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
424         struct igc_interrupt *intr = IGC_DEV_PRIVATE_INTR(dev);
425
426         /* read-on-clear nic registers here */
427         icr = IGC_READ_REG(hw, IGC_ICR);
428
429         intr->flags = 0;
430         if (icr & IGC_ICR_LSC)
431                 intr->flags |= IGC_FLAG_NEED_LINK_UPDATE;
432 }
433
434 /* return 0 means link status changed, -1 means not changed */
435 static int
436 eth_igc_link_update(struct rte_eth_dev *dev, int wait_to_complete)
437 {
438         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
439         struct rte_eth_link link;
440         int link_check, count;
441
442         link_check = 0;
443         hw->mac.get_link_status = 1;
444
445         /* possible wait-to-complete in up to 9 seconds */
446         for (count = 0; count < IGC_LINK_UPDATE_CHECK_TIMEOUT; count++) {
447                 /* Read the real link status */
448                 switch (hw->phy.media_type) {
449                 case igc_media_type_copper:
450                         /* Do the work to read phy */
451                         igc_check_for_link(hw);
452                         link_check = !hw->mac.get_link_status;
453                         break;
454
455                 case igc_media_type_fiber:
456                         igc_check_for_link(hw);
457                         link_check = (IGC_READ_REG(hw, IGC_STATUS) &
458                                       IGC_STATUS_LU);
459                         break;
460
461                 case igc_media_type_internal_serdes:
462                         igc_check_for_link(hw);
463                         link_check = hw->mac.serdes_has_link;
464                         break;
465
466                 default:
467                         break;
468                 }
469                 if (link_check || wait_to_complete == 0)
470                         break;
471                 rte_delay_ms(IGC_LINK_UPDATE_CHECK_INTERVAL);
472         }
473         memset(&link, 0, sizeof(link));
474
475         /* Now we check if a transition has happened */
476         if (link_check) {
477                 uint16_t duplex, speed;
478                 hw->mac.ops.get_link_up_info(hw, &speed, &duplex);
479                 link.link_duplex = (duplex == FULL_DUPLEX) ?
480                                 ETH_LINK_FULL_DUPLEX :
481                                 ETH_LINK_HALF_DUPLEX;
482                 link.link_speed = speed;
483                 link.link_status = ETH_LINK_UP;
484                 link.link_autoneg = !(dev->data->dev_conf.link_speeds &
485                                 ETH_LINK_SPEED_FIXED);
486
487                 if (speed == SPEED_2500) {
488                         uint32_t tipg = IGC_READ_REG(hw, IGC_TIPG);
489                         if ((tipg & IGC_TIPG_IPGT_MASK) != 0x0b) {
490                                 tipg &= ~IGC_TIPG_IPGT_MASK;
491                                 tipg |= 0x0b;
492                                 IGC_WRITE_REG(hw, IGC_TIPG, tipg);
493                         }
494                 }
495         } else {
496                 link.link_speed = 0;
497                 link.link_duplex = ETH_LINK_HALF_DUPLEX;
498                 link.link_status = ETH_LINK_DOWN;
499                 link.link_autoneg = ETH_LINK_FIXED;
500         }
501
502         return rte_eth_linkstatus_set(dev, &link);
503 }
504
505 /*
506  * It executes link_update after knowing an interrupt is present.
507  */
508 static void
509 eth_igc_interrupt_action(struct rte_eth_dev *dev)
510 {
511         struct igc_interrupt *intr = IGC_DEV_PRIVATE_INTR(dev);
512         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
513         struct rte_eth_link link;
514         int ret;
515
516         if (intr->flags & IGC_FLAG_NEED_LINK_UPDATE) {
517                 intr->flags &= ~IGC_FLAG_NEED_LINK_UPDATE;
518
519                 /* set get_link_status to check register later */
520                 ret = eth_igc_link_update(dev, 0);
521
522                 /* check if link has changed */
523                 if (ret < 0)
524                         return;
525
526                 rte_eth_linkstatus_get(dev, &link);
527                 if (link.link_status)
528                         PMD_DRV_LOG(INFO,
529                                 " Port %d: Link Up - speed %u Mbps - %s",
530                                 dev->data->port_id,
531                                 (unsigned int)link.link_speed,
532                                 link.link_duplex == ETH_LINK_FULL_DUPLEX ?
533                                 "full-duplex" : "half-duplex");
534                 else
535                         PMD_DRV_LOG(INFO, " Port %d: Link Down",
536                                 dev->data->port_id);
537
538                 PMD_DRV_LOG(DEBUG, "PCI Address: " PCI_PRI_FMT,
539                                 pci_dev->addr.domain,
540                                 pci_dev->addr.bus,
541                                 pci_dev->addr.devid,
542                                 pci_dev->addr.function);
543                 rte_eth_dev_callback_process(dev, RTE_ETH_EVENT_INTR_LSC, NULL);
544         }
545 }
546
547 /*
548  * Interrupt handler which shall be registered at first.
549  *
550  * @handle
551  *  Pointer to interrupt handle.
552  * @param
553  *  The address of parameter (struct rte_eth_dev *) registered before.
554  */
555 static void
556 eth_igc_interrupt_handler(void *param)
557 {
558         struct rte_eth_dev *dev = (struct rte_eth_dev *)param;
559
560         eth_igc_interrupt_get_status(dev);
561         eth_igc_interrupt_action(dev);
562 }
563
564 static void igc_read_queue_stats_register(struct rte_eth_dev *dev);
565
566 /*
567  * Update the queue status every IGC_ALARM_INTERVAL time.
568  * @param
569  *  The address of parameter (struct rte_eth_dev *) registered before.
570  */
571 static void
572 igc_update_queue_stats_handler(void *param)
573 {
574         struct rte_eth_dev *dev = param;
575         igc_read_queue_stats_register(dev);
576         rte_eal_alarm_set(IGC_ALARM_INTERVAL,
577                         igc_update_queue_stats_handler, dev);
578 }
579
580 /*
581  * rx,tx enable/disable
582  */
583 static void
584 eth_igc_rxtx_control(struct rte_eth_dev *dev, bool enable)
585 {
586         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
587         uint32_t tctl, rctl;
588
589         tctl = IGC_READ_REG(hw, IGC_TCTL);
590         rctl = IGC_READ_REG(hw, IGC_RCTL);
591
592         if (enable) {
593                 /* enable Tx/Rx */
594                 tctl |= IGC_TCTL_EN;
595                 rctl |= IGC_RCTL_EN;
596         } else {
597                 /* disable Tx/Rx */
598                 tctl &= ~IGC_TCTL_EN;
599                 rctl &= ~IGC_RCTL_EN;
600         }
601         IGC_WRITE_REG(hw, IGC_TCTL, tctl);
602         IGC_WRITE_REG(hw, IGC_RCTL, rctl);
603         IGC_WRITE_FLUSH(hw);
604 }
605
606 /*
607  *  This routine disables all traffic on the adapter by issuing a
608  *  global reset on the MAC.
609  */
610 static void
611 eth_igc_stop(struct rte_eth_dev *dev)
612 {
613         struct igc_adapter *adapter = IGC_DEV_PRIVATE(dev);
614         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
615         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
616         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
617         struct rte_eth_link link;
618
619         adapter->stopped = 1;
620
621         /* disable receive and transmit */
622         eth_igc_rxtx_control(dev, false);
623
624         /* disable all MSI-X interrupts */
625         IGC_WRITE_REG(hw, IGC_EIMC, 0x1f);
626         IGC_WRITE_FLUSH(hw);
627
628         /* clear all MSI-X interrupts */
629         IGC_WRITE_REG(hw, IGC_EICR, 0x1f);
630
631         igc_intr_other_disable(dev);
632
633         rte_eal_alarm_cancel(igc_update_queue_stats_handler, dev);
634
635         /* disable intr eventfd mapping */
636         rte_intr_disable(intr_handle);
637
638         igc_reset_hw(hw);
639
640         /* disable all wake up */
641         IGC_WRITE_REG(hw, IGC_WUC, 0);
642
643         /* disable checking EEE operation in MAC loopback mode */
644         igc_read_reg_check_clear_bits(hw, IGC_EEER, IGC_EEER_EEE_FRC_AN);
645
646         /* Set bit for Go Link disconnect */
647         igc_read_reg_check_set_bits(hw, IGC_82580_PHY_POWER_MGMT,
648                         IGC_82580_PM_GO_LINKD);
649
650         /* Power down the phy. Needed to make the link go Down */
651         eth_igc_set_link_down(dev);
652
653         igc_dev_clear_queues(dev);
654
655         /* clear the recorded link status */
656         memset(&link, 0, sizeof(link));
657         rte_eth_linkstatus_set(dev, &link);
658
659         if (!rte_intr_allow_others(intr_handle))
660                 /* resume to the default handler */
661                 rte_intr_callback_register(intr_handle,
662                                            eth_igc_interrupt_handler,
663                                            (void *)dev);
664
665         /* Clean datapath event and queue/vec mapping */
666         rte_intr_efd_disable(intr_handle);
667         if (intr_handle->intr_vec != NULL) {
668                 rte_free(intr_handle->intr_vec);
669                 intr_handle->intr_vec = NULL;
670         }
671 }
672
673 /*
674  * write interrupt vector allocation register
675  * @hw
676  *  board private structure
677  * @queue_index
678  *  queue index, valid 0,1,2,3
679  * @tx
680  *  tx:1, rx:0
681  * @msix_vector
682  *  msix-vector, valid 0,1,2,3,4
683  */
684 static void
685 igc_write_ivar(struct igc_hw *hw, uint8_t queue_index,
686                 bool tx, uint8_t msix_vector)
687 {
688         uint8_t offset = 0;
689         uint8_t reg_index = queue_index >> 1;
690         uint32_t val;
691
692         /*
693          * IVAR(0)
694          * bit31...24   bit23...16      bit15...8       bit7...0
695          * TX1          RX1             TX0             RX0
696          *
697          * IVAR(1)
698          * bit31...24   bit23...16      bit15...8       bit7...0
699          * TX3          RX3             TX2             RX2
700          */
701
702         if (tx)
703                 offset = 8;
704
705         if (queue_index & 1)
706                 offset += 16;
707
708         val = IGC_READ_REG_ARRAY(hw, IGC_IVAR0, reg_index);
709
710         /* clear bits */
711         val &= ~((uint32_t)0xFF << offset);
712
713         /* write vector and valid bit */
714         val |= (uint32_t)(msix_vector | IGC_IVAR_VALID) << offset;
715
716         IGC_WRITE_REG_ARRAY(hw, IGC_IVAR0, reg_index, val);
717 }
718
719 /* Sets up the hardware to generate MSI-X interrupts properly
720  * @hw
721  *  board private structure
722  */
723 static void
724 igc_configure_msix_intr(struct rte_eth_dev *dev)
725 {
726         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
727         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
728         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
729
730         uint32_t intr_mask;
731         uint32_t vec = IGC_MISC_VEC_ID;
732         uint32_t base = IGC_MISC_VEC_ID;
733         uint32_t misc_shift = 0;
734         int i;
735
736         /* won't configure msix register if no mapping is done
737          * between intr vector and event fd
738          */
739         if (!rte_intr_dp_is_en(intr_handle))
740                 return;
741
742         if (rte_intr_allow_others(intr_handle)) {
743                 base = IGC_RX_VEC_START;
744                 vec = base;
745                 misc_shift = 1;
746         }
747
748         /* turn on MSI-X capability first */
749         IGC_WRITE_REG(hw, IGC_GPIE, IGC_GPIE_MSIX_MODE |
750                                 IGC_GPIE_PBA | IGC_GPIE_EIAME |
751                                 IGC_GPIE_NSICR);
752         intr_mask = RTE_LEN2MASK(intr_handle->nb_efd, uint32_t) <<
753                 misc_shift;
754
755         if (dev->data->dev_conf.intr_conf.lsc)
756                 intr_mask |= (1u << IGC_MSIX_OTHER_INTR_VEC);
757
758         /* enable msix auto-clear */
759         igc_read_reg_check_set_bits(hw, IGC_EIAC, intr_mask);
760
761         /* set other cause interrupt vector */
762         igc_read_reg_check_set_bits(hw, IGC_IVAR_MISC,
763                 (uint32_t)(IGC_MSIX_OTHER_INTR_VEC | IGC_IVAR_VALID) << 8);
764
765         /* enable auto-mask */
766         igc_read_reg_check_set_bits(hw, IGC_EIAM, intr_mask);
767
768         for (i = 0; i < dev->data->nb_rx_queues; i++) {
769                 igc_write_ivar(hw, i, 0, vec);
770                 intr_handle->intr_vec[i] = vec;
771                 if (vec < base + intr_handle->nb_efd - 1)
772                         vec++;
773         }
774
775         IGC_WRITE_FLUSH(hw);
776 }
777
778 /**
779  * It enables the interrupt mask and then enable the interrupt.
780  *
781  * @dev
782  *  Pointer to struct rte_eth_dev.
783  * @on
784  *  Enable or Disable
785  */
786 static void
787 igc_lsc_interrupt_setup(struct rte_eth_dev *dev, uint8_t on)
788 {
789         struct igc_interrupt *intr = IGC_DEV_PRIVATE_INTR(dev);
790
791         if (on)
792                 intr->mask |= IGC_ICR_LSC;
793         else
794                 intr->mask &= ~IGC_ICR_LSC;
795 }
796
797 /*
798  * It enables the interrupt.
799  * It will be called once only during nic initialized.
800  */
801 static void
802 igc_rxq_interrupt_setup(struct rte_eth_dev *dev)
803 {
804         uint32_t mask;
805         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
806         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
807         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
808         int misc_shift = rte_intr_allow_others(intr_handle) ? 1 : 0;
809
810         /* won't configure msix register if no mapping is done
811          * between intr vector and event fd
812          */
813         if (!rte_intr_dp_is_en(intr_handle))
814                 return;
815
816         mask = RTE_LEN2MASK(intr_handle->nb_efd, uint32_t) << misc_shift;
817         IGC_WRITE_REG(hw, IGC_EIMS, mask);
818 }
819
820 /*
821  *  Get hardware rx-buffer size.
822  */
823 static inline int
824 igc_get_rx_buffer_size(struct igc_hw *hw)
825 {
826         return (IGC_READ_REG(hw, IGC_RXPBS) & 0x3f) << 10;
827 }
828
829 /*
830  * igc_hw_control_acquire sets CTRL_EXT:DRV_LOAD bit.
831  * For ASF and Pass Through versions of f/w this means
832  * that the driver is loaded.
833  */
834 static void
835 igc_hw_control_acquire(struct igc_hw *hw)
836 {
837         uint32_t ctrl_ext;
838
839         /* Let firmware know the driver has taken over */
840         ctrl_ext = IGC_READ_REG(hw, IGC_CTRL_EXT);
841         IGC_WRITE_REG(hw, IGC_CTRL_EXT, ctrl_ext | IGC_CTRL_EXT_DRV_LOAD);
842 }
843
844 /*
845  * igc_hw_control_release resets CTRL_EXT:DRV_LOAD bit.
846  * For ASF and Pass Through versions of f/w this means that the
847  * driver is no longer loaded.
848  */
849 static void
850 igc_hw_control_release(struct igc_hw *hw)
851 {
852         uint32_t ctrl_ext;
853
854         /* Let firmware taken over control of h/w */
855         ctrl_ext = IGC_READ_REG(hw, IGC_CTRL_EXT);
856         IGC_WRITE_REG(hw, IGC_CTRL_EXT,
857                         ctrl_ext & ~IGC_CTRL_EXT_DRV_LOAD);
858 }
859
860 static int
861 igc_hardware_init(struct igc_hw *hw)
862 {
863         uint32_t rx_buf_size;
864         int diag;
865
866         /* Let the firmware know the OS is in control */
867         igc_hw_control_acquire(hw);
868
869         /* Issue a global reset */
870         igc_reset_hw(hw);
871
872         /* disable all wake up */
873         IGC_WRITE_REG(hw, IGC_WUC, 0);
874
875         /*
876          * Hardware flow control
877          * - High water mark should allow for at least two standard size (1518)
878          *   frames to be received after sending an XOFF.
879          * - Low water mark works best when it is very near the high water mark.
880          *   This allows the receiver to restart by sending XON when it has
881          *   drained a bit. Here we use an arbitrary value of 1500 which will
882          *   restart after one full frame is pulled from the buffer. There
883          *   could be several smaller frames in the buffer and if so they will
884          *   not trigger the XON until their total number reduces the buffer
885          *   by 1500.
886          */
887         rx_buf_size = igc_get_rx_buffer_size(hw);
888         hw->fc.high_water = rx_buf_size - (RTE_ETHER_MAX_LEN * 2);
889         hw->fc.low_water = hw->fc.high_water - 1500;
890         hw->fc.pause_time = IGC_FC_PAUSE_TIME;
891         hw->fc.send_xon = 1;
892         hw->fc.requested_mode = igc_fc_full;
893
894         diag = igc_init_hw(hw);
895         if (diag < 0)
896                 return diag;
897
898         igc_get_phy_info(hw);
899         igc_check_for_link(hw);
900
901         return 0;
902 }
903
904 static int
905 eth_igc_start(struct rte_eth_dev *dev)
906 {
907         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
908         struct igc_adapter *adapter = IGC_DEV_PRIVATE(dev);
909         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
910         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
911         uint32_t *speeds;
912         int ret;
913
914         PMD_INIT_FUNC_TRACE();
915
916         /* disable all MSI-X interrupts */
917         IGC_WRITE_REG(hw, IGC_EIMC, 0x1f);
918         IGC_WRITE_FLUSH(hw);
919
920         /* clear all MSI-X interrupts */
921         IGC_WRITE_REG(hw, IGC_EICR, 0x1f);
922
923         /* disable uio/vfio intr/eventfd mapping */
924         if (!adapter->stopped)
925                 rte_intr_disable(intr_handle);
926
927         /* Power up the phy. Needed to make the link go Up */
928         eth_igc_set_link_up(dev);
929
930         /* Put the address into the Receive Address Array */
931         igc_rar_set(hw, hw->mac.addr, 0);
932
933         /* Initialize the hardware */
934         if (igc_hardware_init(hw)) {
935                 PMD_DRV_LOG(ERR, "Unable to initialize the hardware");
936                 return -EIO;
937         }
938         adapter->stopped = 0;
939
940         /* check and configure queue intr-vector mapping */
941         if (rte_intr_cap_multiple(intr_handle) &&
942                 dev->data->dev_conf.intr_conf.rxq) {
943                 uint32_t intr_vector = dev->data->nb_rx_queues;
944                 if (rte_intr_efd_enable(intr_handle, intr_vector))
945                         return -1;
946         }
947
948         if (rte_intr_dp_is_en(intr_handle) && !intr_handle->intr_vec) {
949                 intr_handle->intr_vec = rte_zmalloc("intr_vec",
950                         dev->data->nb_rx_queues * sizeof(int), 0);
951                 if (intr_handle->intr_vec == NULL) {
952                         PMD_DRV_LOG(ERR,
953                                 "Failed to allocate %d rx_queues intr_vec",
954                                 dev->data->nb_rx_queues);
955                         return -ENOMEM;
956                 }
957         }
958
959         /* configure msix for rx interrupt */
960         igc_configure_msix_intr(dev);
961
962         igc_tx_init(dev);
963
964         /* This can fail when allocating mbufs for descriptor rings */
965         ret = igc_rx_init(dev);
966         if (ret) {
967                 PMD_DRV_LOG(ERR, "Unable to initialize RX hardware");
968                 igc_dev_clear_queues(dev);
969                 return ret;
970         }
971
972         igc_clear_hw_cntrs_base_generic(hw);
973
974         /* VLAN Offload Settings */
975         eth_igc_vlan_offload_set(dev,
976                 ETH_VLAN_STRIP_MASK | ETH_VLAN_FILTER_MASK |
977                 ETH_VLAN_EXTEND_MASK);
978
979         /* Setup link speed and duplex */
980         speeds = &dev->data->dev_conf.link_speeds;
981         if (*speeds == ETH_LINK_SPEED_AUTONEG) {
982                 hw->phy.autoneg_advertised = IGC_ALL_SPEED_DUPLEX_2500;
983                 hw->mac.autoneg = 1;
984         } else {
985                 int num_speeds = 0;
986                 bool autoneg = (*speeds & ETH_LINK_SPEED_FIXED) == 0;
987
988                 /* Reset */
989                 hw->phy.autoneg_advertised = 0;
990
991                 if (*speeds & ~(ETH_LINK_SPEED_10M_HD | ETH_LINK_SPEED_10M |
992                                 ETH_LINK_SPEED_100M_HD | ETH_LINK_SPEED_100M |
993                                 ETH_LINK_SPEED_1G | ETH_LINK_SPEED_2_5G |
994                                 ETH_LINK_SPEED_FIXED)) {
995                         num_speeds = -1;
996                         goto error_invalid_config;
997                 }
998                 if (*speeds & ETH_LINK_SPEED_10M_HD) {
999                         hw->phy.autoneg_advertised |= ADVERTISE_10_HALF;
1000                         num_speeds++;
1001                 }
1002                 if (*speeds & ETH_LINK_SPEED_10M) {
1003                         hw->phy.autoneg_advertised |= ADVERTISE_10_FULL;
1004                         num_speeds++;
1005                 }
1006                 if (*speeds & ETH_LINK_SPEED_100M_HD) {
1007                         hw->phy.autoneg_advertised |= ADVERTISE_100_HALF;
1008                         num_speeds++;
1009                 }
1010                 if (*speeds & ETH_LINK_SPEED_100M) {
1011                         hw->phy.autoneg_advertised |= ADVERTISE_100_FULL;
1012                         num_speeds++;
1013                 }
1014                 if (*speeds & ETH_LINK_SPEED_1G) {
1015                         hw->phy.autoneg_advertised |= ADVERTISE_1000_FULL;
1016                         num_speeds++;
1017                 }
1018                 if (*speeds & ETH_LINK_SPEED_2_5G) {
1019                         hw->phy.autoneg_advertised |= ADVERTISE_2500_FULL;
1020                         num_speeds++;
1021                 }
1022                 if (num_speeds == 0 || (!autoneg && num_speeds > 1))
1023                         goto error_invalid_config;
1024
1025                 /* Set/reset the mac.autoneg based on the link speed,
1026                  * fixed or not
1027                  */
1028                 if (!autoneg) {
1029                         hw->mac.autoneg = 0;
1030                         hw->mac.forced_speed_duplex =
1031                                         hw->phy.autoneg_advertised;
1032                 } else {
1033                         hw->mac.autoneg = 1;
1034                 }
1035         }
1036
1037         igc_setup_link(hw);
1038
1039         if (rte_intr_allow_others(intr_handle)) {
1040                 /* check if lsc interrupt is enabled */
1041                 if (dev->data->dev_conf.intr_conf.lsc)
1042                         igc_lsc_interrupt_setup(dev, 1);
1043                 else
1044                         igc_lsc_interrupt_setup(dev, 0);
1045         } else {
1046                 rte_intr_callback_unregister(intr_handle,
1047                                              eth_igc_interrupt_handler,
1048                                              (void *)dev);
1049                 if (dev->data->dev_conf.intr_conf.lsc)
1050                         PMD_DRV_LOG(INFO,
1051                                 "LSC won't enable because of no intr multiplex");
1052         }
1053
1054         /* enable uio/vfio intr/eventfd mapping */
1055         rte_intr_enable(intr_handle);
1056
1057         rte_eal_alarm_set(IGC_ALARM_INTERVAL,
1058                         igc_update_queue_stats_handler, dev);
1059
1060         /* check if rxq interrupt is enabled */
1061         if (dev->data->dev_conf.intr_conf.rxq &&
1062                         rte_intr_dp_is_en(intr_handle))
1063                 igc_rxq_interrupt_setup(dev);
1064
1065         /* resume enabled intr since hw reset */
1066         igc_intr_other_enable(dev);
1067
1068         eth_igc_rxtx_control(dev, true);
1069         eth_igc_link_update(dev, 0);
1070
1071         /* configure MAC-loopback mode */
1072         if (dev->data->dev_conf.lpbk_mode == 1) {
1073                 uint32_t reg_val;
1074
1075                 reg_val = IGC_READ_REG(hw, IGC_CTRL);
1076                 reg_val &= ~IGC_CTRL_SPEED_MASK;
1077                 reg_val |= IGC_CTRL_SLU | IGC_CTRL_FRCSPD |
1078                         IGC_CTRL_FRCDPX | IGC_CTRL_FD | IGC_CTRL_SPEED_2500;
1079                 IGC_WRITE_REG(hw, IGC_CTRL, reg_val);
1080
1081                 igc_read_reg_check_set_bits(hw, IGC_EEER, IGC_EEER_EEE_FRC_AN);
1082         }
1083
1084         return 0;
1085
1086 error_invalid_config:
1087         PMD_DRV_LOG(ERR, "Invalid advertised speeds (%u) for port %u",
1088                      dev->data->dev_conf.link_speeds, dev->data->port_id);
1089         igc_dev_clear_queues(dev);
1090         return -EINVAL;
1091 }
1092
1093 static int
1094 igc_reset_swfw_lock(struct igc_hw *hw)
1095 {
1096         int ret_val;
1097
1098         /*
1099          * Do mac ops initialization manually here, since we will need
1100          * some function pointers set by this call.
1101          */
1102         ret_val = igc_init_mac_params(hw);
1103         if (ret_val)
1104                 return ret_val;
1105
1106         /*
1107          * SMBI lock should not fail in this early stage. If this is the case,
1108          * it is due to an improper exit of the application.
1109          * So force the release of the faulty lock.
1110          */
1111         if (igc_get_hw_semaphore_generic(hw) < 0)
1112                 PMD_DRV_LOG(DEBUG, "SMBI lock released");
1113
1114         igc_put_hw_semaphore_generic(hw);
1115
1116         if (hw->mac.ops.acquire_swfw_sync != NULL) {
1117                 uint16_t mask;
1118
1119                 /*
1120                  * Phy lock should not fail in this early stage.
1121                  * If this is the case, it is due to an improper exit of the
1122                  * application. So force the release of the faulty lock.
1123                  */
1124                 mask = IGC_SWFW_PHY0_SM;
1125                 if (hw->mac.ops.acquire_swfw_sync(hw, mask) < 0) {
1126                         PMD_DRV_LOG(DEBUG, "SWFW phy%d lock released",
1127                                     hw->bus.func);
1128                 }
1129                 hw->mac.ops.release_swfw_sync(hw, mask);
1130
1131                 /*
1132                  * This one is more tricky since it is common to all ports; but
1133                  * swfw_sync retries last long enough (1s) to be almost sure
1134                  * that if lock can not be taken it is due to an improper lock
1135                  * of the semaphore.
1136                  */
1137                 mask = IGC_SWFW_EEP_SM;
1138                 if (hw->mac.ops.acquire_swfw_sync(hw, mask) < 0)
1139                         PMD_DRV_LOG(DEBUG, "SWFW common locks released");
1140
1141                 hw->mac.ops.release_swfw_sync(hw, mask);
1142         }
1143
1144         return IGC_SUCCESS;
1145 }
1146
1147 /*
1148  * free all rx/tx queues.
1149  */
1150 static void
1151 igc_dev_free_queues(struct rte_eth_dev *dev)
1152 {
1153         uint16_t i;
1154
1155         for (i = 0; i < dev->data->nb_rx_queues; i++) {
1156                 eth_igc_rx_queue_release(dev->data->rx_queues[i]);
1157                 dev->data->rx_queues[i] = NULL;
1158         }
1159         dev->data->nb_rx_queues = 0;
1160
1161         for (i = 0; i < dev->data->nb_tx_queues; i++) {
1162                 eth_igc_tx_queue_release(dev->data->tx_queues[i]);
1163                 dev->data->tx_queues[i] = NULL;
1164         }
1165         dev->data->nb_tx_queues = 0;
1166 }
1167
1168 static void
1169 eth_igc_close(struct rte_eth_dev *dev)
1170 {
1171         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
1172         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
1173         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1174         struct igc_adapter *adapter = IGC_DEV_PRIVATE(dev);
1175         int retry = 0;
1176
1177         PMD_INIT_FUNC_TRACE();
1178
1179         if (!adapter->stopped)
1180                 eth_igc_stop(dev);
1181
1182         igc_flow_flush(dev, NULL);
1183         igc_clear_all_filter(dev);
1184
1185         igc_intr_other_disable(dev);
1186         do {
1187                 int ret = rte_intr_callback_unregister(intr_handle,
1188                                 eth_igc_interrupt_handler, dev);
1189                 if (ret >= 0 || ret == -ENOENT || ret == -EINVAL)
1190                         break;
1191
1192                 PMD_DRV_LOG(ERR, "intr callback unregister failed: %d", ret);
1193                 DELAY(200 * 1000); /* delay 200ms */
1194         } while (retry++ < 5);
1195
1196         igc_phy_hw_reset(hw);
1197         igc_hw_control_release(hw);
1198         igc_dev_free_queues(dev);
1199
1200         /* Reset any pending lock */
1201         igc_reset_swfw_lock(hw);
1202 }
1203
1204 static void
1205 igc_identify_hardware(struct rte_eth_dev *dev, struct rte_pci_device *pci_dev)
1206 {
1207         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1208
1209         hw->vendor_id = pci_dev->id.vendor_id;
1210         hw->device_id = pci_dev->id.device_id;
1211         hw->subsystem_vendor_id = pci_dev->id.subsystem_vendor_id;
1212         hw->subsystem_device_id = pci_dev->id.subsystem_device_id;
1213 }
1214
1215 static int
1216 eth_igc_dev_init(struct rte_eth_dev *dev)
1217 {
1218         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
1219         struct igc_adapter *igc = IGC_DEV_PRIVATE(dev);
1220         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1221         int i, error = 0;
1222
1223         PMD_INIT_FUNC_TRACE();
1224         dev->dev_ops = &eth_igc_ops;
1225         dev->rx_descriptor_done = eth_igc_rx_descriptor_done;
1226         dev->rx_queue_count = eth_igc_rx_queue_count;
1227         dev->rx_descriptor_status = eth_igc_rx_descriptor_status;
1228         dev->tx_descriptor_status = eth_igc_tx_descriptor_status;
1229
1230         /*
1231          * for secondary processes, we don't initialize any further as primary
1232          * has already done this work. Only check we don't need a different
1233          * RX function.
1234          */
1235         if (rte_eal_process_type() != RTE_PROC_PRIMARY)
1236                 return 0;
1237
1238         rte_eth_copy_pci_info(dev, pci_dev);
1239
1240         hw->back = pci_dev;
1241         hw->hw_addr = (void *)pci_dev->mem_resource[0].addr;
1242
1243         igc_identify_hardware(dev, pci_dev);
1244         if (igc_setup_init_funcs(hw, false) != IGC_SUCCESS) {
1245                 error = -EIO;
1246                 goto err_late;
1247         }
1248
1249         igc_get_bus_info(hw);
1250
1251         /* Reset any pending lock */
1252         if (igc_reset_swfw_lock(hw) != IGC_SUCCESS) {
1253                 error = -EIO;
1254                 goto err_late;
1255         }
1256
1257         /* Finish initialization */
1258         if (igc_setup_init_funcs(hw, true) != IGC_SUCCESS) {
1259                 error = -EIO;
1260                 goto err_late;
1261         }
1262
1263         hw->mac.autoneg = 1;
1264         hw->phy.autoneg_wait_to_complete = 0;
1265         hw->phy.autoneg_advertised = IGC_ALL_SPEED_DUPLEX_2500;
1266
1267         /* Copper options */
1268         if (hw->phy.media_type == igc_media_type_copper) {
1269                 hw->phy.mdix = 0; /* AUTO_ALL_MODES */
1270                 hw->phy.disable_polarity_correction = 0;
1271                 hw->phy.ms_type = igc_ms_hw_default;
1272         }
1273
1274         /*
1275          * Start from a known state, this is important in reading the nvm
1276          * and mac from that.
1277          */
1278         igc_reset_hw(hw);
1279
1280         /* Make sure we have a good EEPROM before we read from it */
1281         if (igc_validate_nvm_checksum(hw) < 0) {
1282                 /*
1283                  * Some PCI-E parts fail the first check due to
1284                  * the link being in sleep state, call it again,
1285                  * if it fails a second time its a real issue.
1286                  */
1287                 if (igc_validate_nvm_checksum(hw) < 0) {
1288                         PMD_INIT_LOG(ERR, "EEPROM checksum invalid");
1289                         error = -EIO;
1290                         goto err_late;
1291                 }
1292         }
1293
1294         /* Read the permanent MAC address out of the EEPROM */
1295         if (igc_read_mac_addr(hw) != 0) {
1296                 PMD_INIT_LOG(ERR, "EEPROM error while reading MAC address");
1297                 error = -EIO;
1298                 goto err_late;
1299         }
1300
1301         /* Allocate memory for storing MAC addresses */
1302         dev->data->mac_addrs = rte_zmalloc("igc",
1303                 RTE_ETHER_ADDR_LEN * hw->mac.rar_entry_count, 0);
1304         if (dev->data->mac_addrs == NULL) {
1305                 PMD_INIT_LOG(ERR, "Failed to allocate %d bytes for storing MAC",
1306                                 RTE_ETHER_ADDR_LEN * hw->mac.rar_entry_count);
1307                 error = -ENOMEM;
1308                 goto err_late;
1309         }
1310
1311         /* Copy the permanent MAC address */
1312         rte_ether_addr_copy((struct rte_ether_addr *)hw->mac.addr,
1313                         &dev->data->mac_addrs[0]);
1314
1315         /* Now initialize the hardware */
1316         if (igc_hardware_init(hw) != 0) {
1317                 PMD_INIT_LOG(ERR, "Hardware initialization failed");
1318                 rte_free(dev->data->mac_addrs);
1319                 dev->data->mac_addrs = NULL;
1320                 error = -ENODEV;
1321                 goto err_late;
1322         }
1323
1324         /* Pass the information to the rte_eth_dev_close() that it should also
1325          * release the private port resources.
1326          */
1327         dev->data->dev_flags |= RTE_ETH_DEV_CLOSE_REMOVE;
1328
1329         hw->mac.get_link_status = 1;
1330         igc->stopped = 0;
1331
1332         /* Indicate SOL/IDER usage */
1333         if (igc_check_reset_block(hw) < 0)
1334                 PMD_INIT_LOG(ERR,
1335                         "PHY reset is blocked due to SOL/IDER session.");
1336
1337         PMD_INIT_LOG(DEBUG, "port_id %d vendorID=0x%x deviceID=0x%x",
1338                         dev->data->port_id, pci_dev->id.vendor_id,
1339                         pci_dev->id.device_id);
1340
1341         rte_intr_callback_register(&pci_dev->intr_handle,
1342                         eth_igc_interrupt_handler, (void *)dev);
1343
1344         /* enable uio/vfio intr/eventfd mapping */
1345         rte_intr_enable(&pci_dev->intr_handle);
1346
1347         /* enable support intr */
1348         igc_intr_other_enable(dev);
1349
1350         /* initiate queue status */
1351         for (i = 0; i < IGC_QUEUE_PAIRS_NUM; i++) {
1352                 igc->txq_stats_map[i] = -1;
1353                 igc->rxq_stats_map[i] = -1;
1354         }
1355
1356         igc_flow_init(dev);
1357         igc_clear_all_filter(dev);
1358         return 0;
1359
1360 err_late:
1361         igc_hw_control_release(hw);
1362         return error;
1363 }
1364
1365 static int
1366 eth_igc_dev_uninit(__rte_unused struct rte_eth_dev *eth_dev)
1367 {
1368         PMD_INIT_FUNC_TRACE();
1369
1370         if (rte_eal_process_type() != RTE_PROC_PRIMARY)
1371                 return 0;
1372
1373         eth_igc_close(eth_dev);
1374         return 0;
1375 }
1376
1377 static int
1378 eth_igc_reset(struct rte_eth_dev *dev)
1379 {
1380         int ret;
1381
1382         PMD_INIT_FUNC_TRACE();
1383
1384         ret = eth_igc_dev_uninit(dev);
1385         if (ret)
1386                 return ret;
1387
1388         return eth_igc_dev_init(dev);
1389 }
1390
1391 static int
1392 eth_igc_promiscuous_enable(struct rte_eth_dev *dev)
1393 {
1394         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1395         uint32_t rctl;
1396
1397         rctl = IGC_READ_REG(hw, IGC_RCTL);
1398         rctl |= (IGC_RCTL_UPE | IGC_RCTL_MPE);
1399         IGC_WRITE_REG(hw, IGC_RCTL, rctl);
1400         return 0;
1401 }
1402
1403 static int
1404 eth_igc_promiscuous_disable(struct rte_eth_dev *dev)
1405 {
1406         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1407         uint32_t rctl;
1408
1409         rctl = IGC_READ_REG(hw, IGC_RCTL);
1410         rctl &= (~IGC_RCTL_UPE);
1411         if (dev->data->all_multicast == 1)
1412                 rctl |= IGC_RCTL_MPE;
1413         else
1414                 rctl &= (~IGC_RCTL_MPE);
1415         IGC_WRITE_REG(hw, IGC_RCTL, rctl);
1416         return 0;
1417 }
1418
1419 static int
1420 eth_igc_allmulticast_enable(struct rte_eth_dev *dev)
1421 {
1422         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1423         uint32_t rctl;
1424
1425         rctl = IGC_READ_REG(hw, IGC_RCTL);
1426         rctl |= IGC_RCTL_MPE;
1427         IGC_WRITE_REG(hw, IGC_RCTL, rctl);
1428         return 0;
1429 }
1430
1431 static int
1432 eth_igc_allmulticast_disable(struct rte_eth_dev *dev)
1433 {
1434         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1435         uint32_t rctl;
1436
1437         if (dev->data->promiscuous == 1)
1438                 return 0;       /* must remain in all_multicast mode */
1439
1440         rctl = IGC_READ_REG(hw, IGC_RCTL);
1441         rctl &= (~IGC_RCTL_MPE);
1442         IGC_WRITE_REG(hw, IGC_RCTL, rctl);
1443         return 0;
1444 }
1445
1446 static int
1447 eth_igc_fw_version_get(struct rte_eth_dev *dev, char *fw_version,
1448                        size_t fw_size)
1449 {
1450         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1451         struct igc_fw_version fw;
1452         int ret;
1453
1454         igc_get_fw_version(hw, &fw);
1455
1456         /* if option rom is valid, display its version too */
1457         if (fw.or_valid) {
1458                 ret = snprintf(fw_version, fw_size,
1459                          "%d.%d, 0x%08x, %d.%d.%d",
1460                          fw.eep_major, fw.eep_minor, fw.etrack_id,
1461                          fw.or_major, fw.or_build, fw.or_patch);
1462         /* no option rom */
1463         } else {
1464                 if (fw.etrack_id != 0X0000) {
1465                         ret = snprintf(fw_version, fw_size,
1466                                  "%d.%d, 0x%08x",
1467                                  fw.eep_major, fw.eep_minor,
1468                                  fw.etrack_id);
1469                 } else {
1470                         ret = snprintf(fw_version, fw_size,
1471                                  "%d.%d.%d",
1472                                  fw.eep_major, fw.eep_minor,
1473                                  fw.eep_build);
1474                 }
1475         }
1476
1477         ret += 1; /* add the size of '\0' */
1478         if (fw_size < (u32)ret)
1479                 return ret;
1480         else
1481                 return 0;
1482 }
1483
1484 static int
1485 eth_igc_infos_get(struct rte_eth_dev *dev, struct rte_eth_dev_info *dev_info)
1486 {
1487         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1488
1489         dev_info->min_rx_bufsize = 256; /* See BSIZE field of RCTL register. */
1490         dev_info->max_rx_pktlen = MAX_RX_JUMBO_FRAME_SIZE;
1491         dev_info->max_mac_addrs = hw->mac.rar_entry_count;
1492         dev_info->rx_offload_capa = IGC_RX_OFFLOAD_ALL;
1493         dev_info->tx_offload_capa = IGC_TX_OFFLOAD_ALL;
1494         dev_info->rx_queue_offload_capa = DEV_RX_OFFLOAD_VLAN_STRIP;
1495
1496         dev_info->max_rx_queues = IGC_QUEUE_PAIRS_NUM;
1497         dev_info->max_tx_queues = IGC_QUEUE_PAIRS_NUM;
1498         dev_info->max_vmdq_pools = 0;
1499
1500         dev_info->hash_key_size = IGC_HKEY_MAX_INDEX * sizeof(uint32_t);
1501         dev_info->reta_size = ETH_RSS_RETA_SIZE_128;
1502         dev_info->flow_type_rss_offloads = IGC_RSS_OFFLOAD_ALL;
1503
1504         dev_info->default_rxconf = (struct rte_eth_rxconf) {
1505                 .rx_thresh = {
1506                         .pthresh = IGC_DEFAULT_RX_PTHRESH,
1507                         .hthresh = IGC_DEFAULT_RX_HTHRESH,
1508                         .wthresh = IGC_DEFAULT_RX_WTHRESH,
1509                 },
1510                 .rx_free_thresh = IGC_DEFAULT_RX_FREE_THRESH,
1511                 .rx_drop_en = 0,
1512                 .offloads = 0,
1513         };
1514
1515         dev_info->default_txconf = (struct rte_eth_txconf) {
1516                 .tx_thresh = {
1517                         .pthresh = IGC_DEFAULT_TX_PTHRESH,
1518                         .hthresh = IGC_DEFAULT_TX_HTHRESH,
1519                         .wthresh = IGC_DEFAULT_TX_WTHRESH,
1520                 },
1521                 .offloads = 0,
1522         };
1523
1524         dev_info->rx_desc_lim = rx_desc_lim;
1525         dev_info->tx_desc_lim = tx_desc_lim;
1526
1527         dev_info->speed_capa = ETH_LINK_SPEED_10M_HD | ETH_LINK_SPEED_10M |
1528                         ETH_LINK_SPEED_100M_HD | ETH_LINK_SPEED_100M |
1529                         ETH_LINK_SPEED_1G | ETH_LINK_SPEED_2_5G;
1530
1531         dev_info->max_mtu = dev_info->max_rx_pktlen - IGC_ETH_OVERHEAD;
1532         dev_info->min_mtu = RTE_ETHER_MIN_MTU;
1533         return 0;
1534 }
1535
1536 static int
1537 eth_igc_led_on(struct rte_eth_dev *dev)
1538 {
1539         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1540
1541         return igc_led_on(hw) == IGC_SUCCESS ? 0 : -ENOTSUP;
1542 }
1543
1544 static int
1545 eth_igc_led_off(struct rte_eth_dev *dev)
1546 {
1547         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1548
1549         return igc_led_off(hw) == IGC_SUCCESS ? 0 : -ENOTSUP;
1550 }
1551
1552 static const uint32_t *
1553 eth_igc_supported_ptypes_get(__rte_unused struct rte_eth_dev *dev)
1554 {
1555         static const uint32_t ptypes[] = {
1556                 /* refers to rx_desc_pkt_info_to_pkt_type() */
1557                 RTE_PTYPE_L2_ETHER,
1558                 RTE_PTYPE_L3_IPV4,
1559                 RTE_PTYPE_L3_IPV4_EXT,
1560                 RTE_PTYPE_L3_IPV6,
1561                 RTE_PTYPE_L3_IPV6_EXT,
1562                 RTE_PTYPE_L4_TCP,
1563                 RTE_PTYPE_L4_UDP,
1564                 RTE_PTYPE_L4_SCTP,
1565                 RTE_PTYPE_TUNNEL_IP,
1566                 RTE_PTYPE_INNER_L3_IPV6,
1567                 RTE_PTYPE_INNER_L3_IPV6_EXT,
1568                 RTE_PTYPE_INNER_L4_TCP,
1569                 RTE_PTYPE_INNER_L4_UDP,
1570                 RTE_PTYPE_UNKNOWN
1571         };
1572
1573         return ptypes;
1574 }
1575
1576 static int
1577 eth_igc_mtu_set(struct rte_eth_dev *dev, uint16_t mtu)
1578 {
1579         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1580         uint32_t frame_size = mtu + IGC_ETH_OVERHEAD;
1581         uint32_t rctl;
1582
1583         /* if extend vlan has been enabled */
1584         if (IGC_READ_REG(hw, IGC_CTRL_EXT) & IGC_CTRL_EXT_EXT_VLAN)
1585                 frame_size += VLAN_TAG_SIZE;
1586
1587         /* check that mtu is within the allowed range */
1588         if (mtu < RTE_ETHER_MIN_MTU ||
1589                 frame_size > MAX_RX_JUMBO_FRAME_SIZE)
1590                 return -EINVAL;
1591
1592         /*
1593          * refuse mtu that requires the support of scattered packets when
1594          * this feature has not been enabled before.
1595          */
1596         if (!dev->data->scattered_rx &&
1597             frame_size > dev->data->min_rx_buf_size - RTE_PKTMBUF_HEADROOM)
1598                 return -EINVAL;
1599
1600         rctl = IGC_READ_REG(hw, IGC_RCTL);
1601
1602         /* switch to jumbo mode if needed */
1603         if (mtu > RTE_ETHER_MTU) {
1604                 dev->data->dev_conf.rxmode.offloads |=
1605                         DEV_RX_OFFLOAD_JUMBO_FRAME;
1606                 rctl |= IGC_RCTL_LPE;
1607         } else {
1608                 dev->data->dev_conf.rxmode.offloads &=
1609                         ~DEV_RX_OFFLOAD_JUMBO_FRAME;
1610                 rctl &= ~IGC_RCTL_LPE;
1611         }
1612         IGC_WRITE_REG(hw, IGC_RCTL, rctl);
1613
1614         /* update max frame size */
1615         dev->data->dev_conf.rxmode.max_rx_pkt_len = frame_size;
1616
1617         IGC_WRITE_REG(hw, IGC_RLPML,
1618                         dev->data->dev_conf.rxmode.max_rx_pkt_len);
1619
1620         return 0;
1621 }
1622
1623 static int
1624 eth_igc_rar_set(struct rte_eth_dev *dev, struct rte_ether_addr *mac_addr,
1625                 uint32_t index, uint32_t pool)
1626 {
1627         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1628
1629         igc_rar_set(hw, mac_addr->addr_bytes, index);
1630         RTE_SET_USED(pool);
1631         return 0;
1632 }
1633
1634 static void
1635 eth_igc_rar_clear(struct rte_eth_dev *dev, uint32_t index)
1636 {
1637         uint8_t addr[RTE_ETHER_ADDR_LEN];
1638         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1639
1640         memset(addr, 0, sizeof(addr));
1641         igc_rar_set(hw, addr, index);
1642 }
1643
1644 static int
1645 eth_igc_default_mac_addr_set(struct rte_eth_dev *dev,
1646                         struct rte_ether_addr *addr)
1647 {
1648         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1649         igc_rar_set(hw, addr->addr_bytes, 0);
1650         return 0;
1651 }
1652
1653 static int
1654 eth_igc_set_mc_addr_list(struct rte_eth_dev *dev,
1655                          struct rte_ether_addr *mc_addr_set,
1656                          uint32_t nb_mc_addr)
1657 {
1658         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1659         igc_update_mc_addr_list(hw, (u8 *)mc_addr_set, nb_mc_addr);
1660         return 0;
1661 }
1662
1663 /*
1664  * Read hardware registers
1665  */
1666 static void
1667 igc_read_stats_registers(struct igc_hw *hw, struct igc_hw_stats *stats)
1668 {
1669         int pause_frames;
1670
1671         uint64_t old_gprc  = stats->gprc;
1672         uint64_t old_gptc  = stats->gptc;
1673         uint64_t old_tpr   = stats->tpr;
1674         uint64_t old_tpt   = stats->tpt;
1675         uint64_t old_rpthc = stats->rpthc;
1676         uint64_t old_hgptc = stats->hgptc;
1677
1678         stats->crcerrs += IGC_READ_REG(hw, IGC_CRCERRS);
1679         stats->algnerrc += IGC_READ_REG(hw, IGC_ALGNERRC);
1680         stats->rxerrc += IGC_READ_REG(hw, IGC_RXERRC);
1681         stats->mpc += IGC_READ_REG(hw, IGC_MPC);
1682         stats->scc += IGC_READ_REG(hw, IGC_SCC);
1683         stats->ecol += IGC_READ_REG(hw, IGC_ECOL);
1684
1685         stats->mcc += IGC_READ_REG(hw, IGC_MCC);
1686         stats->latecol += IGC_READ_REG(hw, IGC_LATECOL);
1687         stats->colc += IGC_READ_REG(hw, IGC_COLC);
1688
1689         stats->dc += IGC_READ_REG(hw, IGC_DC);
1690         stats->tncrs += IGC_READ_REG(hw, IGC_TNCRS);
1691         stats->htdpmc += IGC_READ_REG(hw, IGC_HTDPMC);
1692         stats->rlec += IGC_READ_REG(hw, IGC_RLEC);
1693         stats->xonrxc += IGC_READ_REG(hw, IGC_XONRXC);
1694         stats->xontxc += IGC_READ_REG(hw, IGC_XONTXC);
1695
1696         /*
1697          * For watchdog management we need to know if we have been
1698          * paused during the last interval, so capture that here.
1699          */
1700         pause_frames = IGC_READ_REG(hw, IGC_XOFFRXC);
1701         stats->xoffrxc += pause_frames;
1702         stats->xofftxc += IGC_READ_REG(hw, IGC_XOFFTXC);
1703         stats->fcruc += IGC_READ_REG(hw, IGC_FCRUC);
1704         stats->prc64 += IGC_READ_REG(hw, IGC_PRC64);
1705         stats->prc127 += IGC_READ_REG(hw, IGC_PRC127);
1706         stats->prc255 += IGC_READ_REG(hw, IGC_PRC255);
1707         stats->prc511 += IGC_READ_REG(hw, IGC_PRC511);
1708         stats->prc1023 += IGC_READ_REG(hw, IGC_PRC1023);
1709         stats->prc1522 += IGC_READ_REG(hw, IGC_PRC1522);
1710         stats->gprc += IGC_READ_REG(hw, IGC_GPRC);
1711         stats->bprc += IGC_READ_REG(hw, IGC_BPRC);
1712         stats->mprc += IGC_READ_REG(hw, IGC_MPRC);
1713         stats->gptc += IGC_READ_REG(hw, IGC_GPTC);
1714
1715         /* For the 64-bit byte counters the low dword must be read first. */
1716         /* Both registers clear on the read of the high dword */
1717
1718         /* Workaround CRC bytes included in size, take away 4 bytes/packet */
1719         stats->gorc += IGC_READ_REG(hw, IGC_GORCL);
1720         stats->gorc += ((uint64_t)IGC_READ_REG(hw, IGC_GORCH) << 32);
1721         stats->gorc -= (stats->gprc - old_gprc) * RTE_ETHER_CRC_LEN;
1722         stats->gotc += IGC_READ_REG(hw, IGC_GOTCL);
1723         stats->gotc += ((uint64_t)IGC_READ_REG(hw, IGC_GOTCH) << 32);
1724         stats->gotc -= (stats->gptc - old_gptc) * RTE_ETHER_CRC_LEN;
1725
1726         stats->rnbc += IGC_READ_REG(hw, IGC_RNBC);
1727         stats->ruc += IGC_READ_REG(hw, IGC_RUC);
1728         stats->rfc += IGC_READ_REG(hw, IGC_RFC);
1729         stats->roc += IGC_READ_REG(hw, IGC_ROC);
1730         stats->rjc += IGC_READ_REG(hw, IGC_RJC);
1731
1732         stats->mgprc += IGC_READ_REG(hw, IGC_MGTPRC);
1733         stats->mgpdc += IGC_READ_REG(hw, IGC_MGTPDC);
1734         stats->mgptc += IGC_READ_REG(hw, IGC_MGTPTC);
1735         stats->b2ospc += IGC_READ_REG(hw, IGC_B2OSPC);
1736         stats->b2ogprc += IGC_READ_REG(hw, IGC_B2OGPRC);
1737         stats->o2bgptc += IGC_READ_REG(hw, IGC_O2BGPTC);
1738         stats->o2bspc += IGC_READ_REG(hw, IGC_O2BSPC);
1739
1740         stats->tpr += IGC_READ_REG(hw, IGC_TPR);
1741         stats->tpt += IGC_READ_REG(hw, IGC_TPT);
1742
1743         stats->tor += IGC_READ_REG(hw, IGC_TORL);
1744         stats->tor += ((uint64_t)IGC_READ_REG(hw, IGC_TORH) << 32);
1745         stats->tor -= (stats->tpr - old_tpr) * RTE_ETHER_CRC_LEN;
1746         stats->tot += IGC_READ_REG(hw, IGC_TOTL);
1747         stats->tot += ((uint64_t)IGC_READ_REG(hw, IGC_TOTH) << 32);
1748         stats->tot -= (stats->tpt - old_tpt) * RTE_ETHER_CRC_LEN;
1749
1750         stats->ptc64 += IGC_READ_REG(hw, IGC_PTC64);
1751         stats->ptc127 += IGC_READ_REG(hw, IGC_PTC127);
1752         stats->ptc255 += IGC_READ_REG(hw, IGC_PTC255);
1753         stats->ptc511 += IGC_READ_REG(hw, IGC_PTC511);
1754         stats->ptc1023 += IGC_READ_REG(hw, IGC_PTC1023);
1755         stats->ptc1522 += IGC_READ_REG(hw, IGC_PTC1522);
1756         stats->mptc += IGC_READ_REG(hw, IGC_MPTC);
1757         stats->bptc += IGC_READ_REG(hw, IGC_BPTC);
1758         stats->tsctc += IGC_READ_REG(hw, IGC_TSCTC);
1759
1760         stats->iac += IGC_READ_REG(hw, IGC_IAC);
1761         stats->rpthc += IGC_READ_REG(hw, IGC_RPTHC);
1762         stats->hgptc += IGC_READ_REG(hw, IGC_HGPTC);
1763         stats->icrxdmtc += IGC_READ_REG(hw, IGC_ICRXDMTC);
1764
1765         /* Host to Card Statistics */
1766         stats->hgorc += IGC_READ_REG(hw, IGC_HGORCL);
1767         stats->hgorc += ((uint64_t)IGC_READ_REG(hw, IGC_HGORCH) << 32);
1768         stats->hgorc -= (stats->rpthc - old_rpthc) * RTE_ETHER_CRC_LEN;
1769         stats->hgotc += IGC_READ_REG(hw, IGC_HGOTCL);
1770         stats->hgotc += ((uint64_t)IGC_READ_REG(hw, IGC_HGOTCH) << 32);
1771         stats->hgotc -= (stats->hgptc - old_hgptc) * RTE_ETHER_CRC_LEN;
1772         stats->lenerrs += IGC_READ_REG(hw, IGC_LENERRS);
1773 }
1774
1775 /*
1776  * Write 0 to all queue status registers
1777  */
1778 static void
1779 igc_reset_queue_stats_register(struct igc_hw *hw)
1780 {
1781         int i;
1782
1783         for (i = 0; i < IGC_QUEUE_PAIRS_NUM; i++) {
1784                 IGC_WRITE_REG(hw, IGC_PQGPRC(i), 0);
1785                 IGC_WRITE_REG(hw, IGC_PQGPTC(i), 0);
1786                 IGC_WRITE_REG(hw, IGC_PQGORC(i), 0);
1787                 IGC_WRITE_REG(hw, IGC_PQGOTC(i), 0);
1788                 IGC_WRITE_REG(hw, IGC_PQMPRC(i), 0);
1789                 IGC_WRITE_REG(hw, IGC_RQDPC(i), 0);
1790                 IGC_WRITE_REG(hw, IGC_TQDPC(i), 0);
1791         }
1792 }
1793
1794 /*
1795  * Read all hardware queue status registers
1796  */
1797 static void
1798 igc_read_queue_stats_register(struct rte_eth_dev *dev)
1799 {
1800         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1801         struct igc_hw_queue_stats *queue_stats =
1802                                 IGC_DEV_PRIVATE_QUEUE_STATS(dev);
1803         int i;
1804
1805         /*
1806          * This register is not cleared on read. Furthermore, the register wraps
1807          * around back to 0x00000000 on the next increment when reaching a value
1808          * of 0xFFFFFFFF and then continues normal count operation.
1809          */
1810         for (i = 0; i < IGC_QUEUE_PAIRS_NUM; i++) {
1811                 union {
1812                         u64 ddword;
1813                         u32 dword[2];
1814                 } value;
1815                 u32 tmp;
1816
1817                 /*
1818                  * Read the register first, if the value is smaller than that
1819                  * previous read, that mean the register has been overflowed,
1820                  * then we add the high 4 bytes by 1 and replace the low 4
1821                  * bytes by the new value.
1822                  */
1823                 tmp = IGC_READ_REG(hw, IGC_PQGPRC(i));
1824                 value.ddword = queue_stats->pqgprc[i];
1825                 if (value.dword[U32_0_IN_U64] > tmp)
1826                         value.dword[U32_1_IN_U64]++;
1827                 value.dword[U32_0_IN_U64] = tmp;
1828                 queue_stats->pqgprc[i] = value.ddword;
1829
1830                 tmp = IGC_READ_REG(hw, IGC_PQGPTC(i));
1831                 value.ddword = queue_stats->pqgptc[i];
1832                 if (value.dword[U32_0_IN_U64] > tmp)
1833                         value.dword[U32_1_IN_U64]++;
1834                 value.dword[U32_0_IN_U64] = tmp;
1835                 queue_stats->pqgptc[i] = value.ddword;
1836
1837                 tmp = IGC_READ_REG(hw, IGC_PQGORC(i));
1838                 value.ddword = queue_stats->pqgorc[i];
1839                 if (value.dword[U32_0_IN_U64] > tmp)
1840                         value.dword[U32_1_IN_U64]++;
1841                 value.dword[U32_0_IN_U64] = tmp;
1842                 queue_stats->pqgorc[i] = value.ddword;
1843
1844                 tmp = IGC_READ_REG(hw, IGC_PQGOTC(i));
1845                 value.ddword = queue_stats->pqgotc[i];
1846                 if (value.dword[U32_0_IN_U64] > tmp)
1847                         value.dword[U32_1_IN_U64]++;
1848                 value.dword[U32_0_IN_U64] = tmp;
1849                 queue_stats->pqgotc[i] = value.ddword;
1850
1851                 tmp = IGC_READ_REG(hw, IGC_PQMPRC(i));
1852                 value.ddword = queue_stats->pqmprc[i];
1853                 if (value.dword[U32_0_IN_U64] > tmp)
1854                         value.dword[U32_1_IN_U64]++;
1855                 value.dword[U32_0_IN_U64] = tmp;
1856                 queue_stats->pqmprc[i] = value.ddword;
1857
1858                 tmp = IGC_READ_REG(hw, IGC_RQDPC(i));
1859                 value.ddword = queue_stats->rqdpc[i];
1860                 if (value.dword[U32_0_IN_U64] > tmp)
1861                         value.dword[U32_1_IN_U64]++;
1862                 value.dword[U32_0_IN_U64] = tmp;
1863                 queue_stats->rqdpc[i] = value.ddword;
1864
1865                 tmp = IGC_READ_REG(hw, IGC_TQDPC(i));
1866                 value.ddword = queue_stats->tqdpc[i];
1867                 if (value.dword[U32_0_IN_U64] > tmp)
1868                         value.dword[U32_1_IN_U64]++;
1869                 value.dword[U32_0_IN_U64] = tmp;
1870                 queue_stats->tqdpc[i] = value.ddword;
1871         }
1872 }
1873
1874 static int
1875 eth_igc_stats_get(struct rte_eth_dev *dev, struct rte_eth_stats *rte_stats)
1876 {
1877         struct igc_adapter *igc = IGC_DEV_PRIVATE(dev);
1878         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1879         struct igc_hw_stats *stats = IGC_DEV_PRIVATE_STATS(dev);
1880         struct igc_hw_queue_stats *queue_stats =
1881                         IGC_DEV_PRIVATE_QUEUE_STATS(dev);
1882         int i;
1883
1884         /*
1885          * Cancel status handler since it will read the queue status registers
1886          */
1887         rte_eal_alarm_cancel(igc_update_queue_stats_handler, dev);
1888
1889         /* Read status register */
1890         igc_read_queue_stats_register(dev);
1891         igc_read_stats_registers(hw, stats);
1892
1893         if (rte_stats == NULL) {
1894                 /* Restart queue status handler */
1895                 rte_eal_alarm_set(IGC_ALARM_INTERVAL,
1896                                 igc_update_queue_stats_handler, dev);
1897                 return -EINVAL;
1898         }
1899
1900         /* Rx Errors */
1901         rte_stats->imissed = stats->mpc;
1902         rte_stats->ierrors = stats->crcerrs +
1903                         stats->rlec + stats->ruc + stats->roc +
1904                         stats->rxerrc + stats->algnerrc;
1905
1906         /* Tx Errors */
1907         rte_stats->oerrors = stats->ecol + stats->latecol;
1908
1909         rte_stats->ipackets = stats->gprc;
1910         rte_stats->opackets = stats->gptc;
1911         rte_stats->ibytes   = stats->gorc;
1912         rte_stats->obytes   = stats->gotc;
1913
1914         /* Get per-queue statuses */
1915         for (i = 0; i < IGC_QUEUE_PAIRS_NUM; i++) {
1916                 /* GET TX queue statuses */
1917                 int map_id = igc->txq_stats_map[i];
1918                 if (map_id >= 0) {
1919                         rte_stats->q_opackets[map_id] += queue_stats->pqgptc[i];
1920                         rte_stats->q_obytes[map_id] += queue_stats->pqgotc[i];
1921                 }
1922                 /* Get RX queue statuses */
1923                 map_id = igc->rxq_stats_map[i];
1924                 if (map_id >= 0) {
1925                         rte_stats->q_ipackets[map_id] += queue_stats->pqgprc[i];
1926                         rte_stats->q_ibytes[map_id] += queue_stats->pqgorc[i];
1927                         rte_stats->q_errors[map_id] += queue_stats->rqdpc[i];
1928                 }
1929         }
1930
1931         /* Restart queue status handler */
1932         rte_eal_alarm_set(IGC_ALARM_INTERVAL,
1933                         igc_update_queue_stats_handler, dev);
1934         return 0;
1935 }
1936
1937 static int
1938 eth_igc_xstats_get(struct rte_eth_dev *dev, struct rte_eth_xstat *xstats,
1939                    unsigned int n)
1940 {
1941         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1942         struct igc_hw_stats *hw_stats =
1943                         IGC_DEV_PRIVATE_STATS(dev);
1944         unsigned int i;
1945
1946         igc_read_stats_registers(hw, hw_stats);
1947
1948         if (n < IGC_NB_XSTATS)
1949                 return IGC_NB_XSTATS;
1950
1951         /* If this is a reset xstats is NULL, and we have cleared the
1952          * registers by reading them.
1953          */
1954         if (!xstats)
1955                 return 0;
1956
1957         /* Extended stats */
1958         for (i = 0; i < IGC_NB_XSTATS; i++) {
1959                 xstats[i].id = i;
1960                 xstats[i].value = *(uint64_t *)(((char *)hw_stats) +
1961                         rte_igc_stats_strings[i].offset);
1962         }
1963
1964         return IGC_NB_XSTATS;
1965 }
1966
1967 static int
1968 eth_igc_xstats_reset(struct rte_eth_dev *dev)
1969 {
1970         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
1971         struct igc_hw_stats *hw_stats = IGC_DEV_PRIVATE_STATS(dev);
1972         struct igc_hw_queue_stats *queue_stats =
1973                         IGC_DEV_PRIVATE_QUEUE_STATS(dev);
1974
1975         /* Cancel queue status handler for avoid conflict */
1976         rte_eal_alarm_cancel(igc_update_queue_stats_handler, dev);
1977
1978         /* HW registers are cleared on read */
1979         igc_reset_queue_stats_register(hw);
1980         igc_read_stats_registers(hw, hw_stats);
1981
1982         /* Reset software totals */
1983         memset(hw_stats, 0, sizeof(*hw_stats));
1984         memset(queue_stats, 0, sizeof(*queue_stats));
1985
1986         /* Restart the queue status handler */
1987         rte_eal_alarm_set(IGC_ALARM_INTERVAL, igc_update_queue_stats_handler,
1988                         dev);
1989
1990         return 0;
1991 }
1992
1993 static int
1994 eth_igc_xstats_get_names(__rte_unused struct rte_eth_dev *dev,
1995         struct rte_eth_xstat_name *xstats_names, unsigned int size)
1996 {
1997         unsigned int i;
1998
1999         if (xstats_names == NULL)
2000                 return IGC_NB_XSTATS;
2001
2002         if (size < IGC_NB_XSTATS) {
2003                 PMD_DRV_LOG(ERR, "not enough buffers!");
2004                 return IGC_NB_XSTATS;
2005         }
2006
2007         for (i = 0; i < IGC_NB_XSTATS; i++)
2008                 strlcpy(xstats_names[i].name, rte_igc_stats_strings[i].name,
2009                         sizeof(xstats_names[i].name));
2010
2011         return IGC_NB_XSTATS;
2012 }
2013
2014 static int
2015 eth_igc_xstats_get_names_by_id(struct rte_eth_dev *dev,
2016                 struct rte_eth_xstat_name *xstats_names, const uint64_t *ids,
2017                 unsigned int limit)
2018 {
2019         unsigned int i;
2020
2021         if (!ids)
2022                 return eth_igc_xstats_get_names(dev, xstats_names, limit);
2023
2024         for (i = 0; i < limit; i++) {
2025                 if (ids[i] >= IGC_NB_XSTATS) {
2026                         PMD_DRV_LOG(ERR, "id value isn't valid");
2027                         return -EINVAL;
2028                 }
2029                 strlcpy(xstats_names[i].name,
2030                         rte_igc_stats_strings[ids[i]].name,
2031                         sizeof(xstats_names[i].name));
2032         }
2033         return limit;
2034 }
2035
2036 static int
2037 eth_igc_xstats_get_by_id(struct rte_eth_dev *dev, const uint64_t *ids,
2038                 uint64_t *values, unsigned int n)
2039 {
2040         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2041         struct igc_hw_stats *hw_stats = IGC_DEV_PRIVATE_STATS(dev);
2042         unsigned int i;
2043
2044         igc_read_stats_registers(hw, hw_stats);
2045
2046         if (!ids) {
2047                 if (n < IGC_NB_XSTATS)
2048                         return IGC_NB_XSTATS;
2049
2050                 /* If this is a reset xstats is NULL, and we have cleared the
2051                  * registers by reading them.
2052                  */
2053                 if (!values)
2054                         return 0;
2055
2056                 /* Extended stats */
2057                 for (i = 0; i < IGC_NB_XSTATS; i++)
2058                         values[i] = *(uint64_t *)(((char *)hw_stats) +
2059                                         rte_igc_stats_strings[i].offset);
2060
2061                 return IGC_NB_XSTATS;
2062
2063         } else {
2064                 for (i = 0; i < n; i++) {
2065                         if (ids[i] >= IGC_NB_XSTATS) {
2066                                 PMD_DRV_LOG(ERR, "id value isn't valid");
2067                                 return -EINVAL;
2068                         }
2069                         values[i] = *(uint64_t *)(((char *)hw_stats) +
2070                                         rte_igc_stats_strings[ids[i]].offset);
2071                 }
2072                 return n;
2073         }
2074 }
2075
2076 static int
2077 eth_igc_queue_stats_mapping_set(struct rte_eth_dev *dev,
2078                 uint16_t queue_id, uint8_t stat_idx, uint8_t is_rx)
2079 {
2080         struct igc_adapter *igc = IGC_DEV_PRIVATE(dev);
2081
2082         /* check queue id is valid */
2083         if (queue_id >= IGC_QUEUE_PAIRS_NUM) {
2084                 PMD_DRV_LOG(ERR, "queue id(%u) error, max is %u",
2085                         queue_id, IGC_QUEUE_PAIRS_NUM - 1);
2086                 return -EINVAL;
2087         }
2088
2089         /* store the mapping status id */
2090         if (is_rx)
2091                 igc->rxq_stats_map[queue_id] = stat_idx;
2092         else
2093                 igc->txq_stats_map[queue_id] = stat_idx;
2094
2095         return 0;
2096 }
2097
2098 static int
2099 eth_igc_rx_queue_intr_disable(struct rte_eth_dev *dev, uint16_t queue_id)
2100 {
2101         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2102         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
2103         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
2104         uint32_t vec = IGC_MISC_VEC_ID;
2105
2106         if (rte_intr_allow_others(intr_handle))
2107                 vec = IGC_RX_VEC_START;
2108
2109         uint32_t mask = 1u << (queue_id + vec);
2110
2111         IGC_WRITE_REG(hw, IGC_EIMC, mask);
2112         IGC_WRITE_FLUSH(hw);
2113
2114         return 0;
2115 }
2116
2117 static int
2118 eth_igc_rx_queue_intr_enable(struct rte_eth_dev *dev, uint16_t queue_id)
2119 {
2120         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2121         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
2122         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
2123         uint32_t vec = IGC_MISC_VEC_ID;
2124
2125         if (rte_intr_allow_others(intr_handle))
2126                 vec = IGC_RX_VEC_START;
2127
2128         uint32_t mask = 1u << (queue_id + vec);
2129
2130         IGC_WRITE_REG(hw, IGC_EIMS, mask);
2131         IGC_WRITE_FLUSH(hw);
2132
2133         rte_intr_enable(intr_handle);
2134
2135         return 0;
2136 }
2137
2138 static int
2139 eth_igc_flow_ctrl_get(struct rte_eth_dev *dev, struct rte_eth_fc_conf *fc_conf)
2140 {
2141         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2142         uint32_t ctrl;
2143         int tx_pause;
2144         int rx_pause;
2145
2146         fc_conf->pause_time = hw->fc.pause_time;
2147         fc_conf->high_water = hw->fc.high_water;
2148         fc_conf->low_water = hw->fc.low_water;
2149         fc_conf->send_xon = hw->fc.send_xon;
2150         fc_conf->autoneg = hw->mac.autoneg;
2151
2152         /*
2153          * Return rx_pause and tx_pause status according to actual setting of
2154          * the TFCE and RFCE bits in the CTRL register.
2155          */
2156         ctrl = IGC_READ_REG(hw, IGC_CTRL);
2157         if (ctrl & IGC_CTRL_TFCE)
2158                 tx_pause = 1;
2159         else
2160                 tx_pause = 0;
2161
2162         if (ctrl & IGC_CTRL_RFCE)
2163                 rx_pause = 1;
2164         else
2165                 rx_pause = 0;
2166
2167         if (rx_pause && tx_pause)
2168                 fc_conf->mode = RTE_FC_FULL;
2169         else if (rx_pause)
2170                 fc_conf->mode = RTE_FC_RX_PAUSE;
2171         else if (tx_pause)
2172                 fc_conf->mode = RTE_FC_TX_PAUSE;
2173         else
2174                 fc_conf->mode = RTE_FC_NONE;
2175
2176         return 0;
2177 }
2178
2179 static int
2180 eth_igc_flow_ctrl_set(struct rte_eth_dev *dev, struct rte_eth_fc_conf *fc_conf)
2181 {
2182         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2183         uint32_t rx_buf_size;
2184         uint32_t max_high_water;
2185         uint32_t rctl;
2186         int err;
2187
2188         if (fc_conf->autoneg != hw->mac.autoneg)
2189                 return -ENOTSUP;
2190
2191         rx_buf_size = igc_get_rx_buffer_size(hw);
2192         PMD_DRV_LOG(DEBUG, "Rx packet buffer size = 0x%x", rx_buf_size);
2193
2194         /* At least reserve one Ethernet frame for watermark */
2195         max_high_water = rx_buf_size - RTE_ETHER_MAX_LEN;
2196         if (fc_conf->high_water > max_high_water ||
2197                 fc_conf->high_water < fc_conf->low_water) {
2198                 PMD_DRV_LOG(ERR,
2199                         "Incorrect high(%u)/low(%u) water value, max is %u",
2200                         fc_conf->high_water, fc_conf->low_water,
2201                         max_high_water);
2202                 return -EINVAL;
2203         }
2204
2205         switch (fc_conf->mode) {
2206         case RTE_FC_NONE:
2207                 hw->fc.requested_mode = igc_fc_none;
2208                 break;
2209         case RTE_FC_RX_PAUSE:
2210                 hw->fc.requested_mode = igc_fc_rx_pause;
2211                 break;
2212         case RTE_FC_TX_PAUSE:
2213                 hw->fc.requested_mode = igc_fc_tx_pause;
2214                 break;
2215         case RTE_FC_FULL:
2216                 hw->fc.requested_mode = igc_fc_full;
2217                 break;
2218         default:
2219                 PMD_DRV_LOG(ERR, "unsupported fc mode: %u", fc_conf->mode);
2220                 return -EINVAL;
2221         }
2222
2223         hw->fc.pause_time     = fc_conf->pause_time;
2224         hw->fc.high_water     = fc_conf->high_water;
2225         hw->fc.low_water      = fc_conf->low_water;
2226         hw->fc.send_xon       = fc_conf->send_xon;
2227
2228         err = igc_setup_link_generic(hw);
2229         if (err == IGC_SUCCESS) {
2230                 /**
2231                  * check if we want to forward MAC frames - driver doesn't have
2232                  * native capability to do that, so we'll write the registers
2233                  * ourselves
2234                  **/
2235                 rctl = IGC_READ_REG(hw, IGC_RCTL);
2236
2237                 /* set or clear MFLCN.PMCF bit depending on configuration */
2238                 if (fc_conf->mac_ctrl_frame_fwd != 0)
2239                         rctl |= IGC_RCTL_PMCF;
2240                 else
2241                         rctl &= ~IGC_RCTL_PMCF;
2242
2243                 IGC_WRITE_REG(hw, IGC_RCTL, rctl);
2244                 IGC_WRITE_FLUSH(hw);
2245
2246                 return 0;
2247         }
2248
2249         PMD_DRV_LOG(ERR, "igc_setup_link_generic = 0x%x", err);
2250         return -EIO;
2251 }
2252
2253 static int
2254 eth_igc_rss_reta_update(struct rte_eth_dev *dev,
2255                         struct rte_eth_rss_reta_entry64 *reta_conf,
2256                         uint16_t reta_size)
2257 {
2258         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2259         uint16_t i;
2260
2261         if (reta_size != ETH_RSS_RETA_SIZE_128) {
2262                 PMD_DRV_LOG(ERR,
2263                         "The size of RSS redirection table configured(%d) doesn't match the number hardware can supported(%d)",
2264                         reta_size, ETH_RSS_RETA_SIZE_128);
2265                 return -EINVAL;
2266         }
2267
2268         RTE_BUILD_BUG_ON(ETH_RSS_RETA_SIZE_128 % IGC_RSS_RDT_REG_SIZE);
2269
2270         /* set redirection table */
2271         for (i = 0; i < ETH_RSS_RETA_SIZE_128; i += IGC_RSS_RDT_REG_SIZE) {
2272                 union igc_rss_reta_reg reta, reg;
2273                 uint16_t idx, shift;
2274                 uint8_t j, mask;
2275
2276                 idx = i / RTE_RETA_GROUP_SIZE;
2277                 shift = i % RTE_RETA_GROUP_SIZE;
2278                 mask = (uint8_t)((reta_conf[idx].mask >> shift) &
2279                                 IGC_RSS_RDT_REG_SIZE_MASK);
2280
2281                 /* if no need to update the register */
2282                 if (!mask ||
2283                     shift > (RTE_RETA_GROUP_SIZE - IGC_RSS_RDT_REG_SIZE))
2284                         continue;
2285
2286                 /* check mask whether need to read the register value first */
2287                 if (mask == IGC_RSS_RDT_REG_SIZE_MASK)
2288                         reg.dword = 0;
2289                 else
2290                         reg.dword = IGC_READ_REG_LE_VALUE(hw,
2291                                         IGC_RETA(i / IGC_RSS_RDT_REG_SIZE));
2292
2293                 /* update the register */
2294                 RTE_BUILD_BUG_ON(sizeof(reta.bytes) != IGC_RSS_RDT_REG_SIZE);
2295                 for (j = 0; j < IGC_RSS_RDT_REG_SIZE; j++) {
2296                         if (mask & (1u << j))
2297                                 reta.bytes[j] =
2298                                         (uint8_t)reta_conf[idx].reta[shift + j];
2299                         else
2300                                 reta.bytes[j] = reg.bytes[j];
2301                 }
2302                 IGC_WRITE_REG_LE_VALUE(hw,
2303                         IGC_RETA(i / IGC_RSS_RDT_REG_SIZE), reta.dword);
2304         }
2305
2306         return 0;
2307 }
2308
2309 static int
2310 eth_igc_rss_reta_query(struct rte_eth_dev *dev,
2311                        struct rte_eth_rss_reta_entry64 *reta_conf,
2312                        uint16_t reta_size)
2313 {
2314         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2315         uint16_t i;
2316
2317         if (reta_size != ETH_RSS_RETA_SIZE_128) {
2318                 PMD_DRV_LOG(ERR,
2319                         "The size of RSS redirection table configured(%d) doesn't match the number hardware can supported(%d)",
2320                         reta_size, ETH_RSS_RETA_SIZE_128);
2321                 return -EINVAL;
2322         }
2323
2324         RTE_BUILD_BUG_ON(ETH_RSS_RETA_SIZE_128 % IGC_RSS_RDT_REG_SIZE);
2325
2326         /* read redirection table */
2327         for (i = 0; i < ETH_RSS_RETA_SIZE_128; i += IGC_RSS_RDT_REG_SIZE) {
2328                 union igc_rss_reta_reg reta;
2329                 uint16_t idx, shift;
2330                 uint8_t j, mask;
2331
2332                 idx = i / RTE_RETA_GROUP_SIZE;
2333                 shift = i % RTE_RETA_GROUP_SIZE;
2334                 mask = (uint8_t)((reta_conf[idx].mask >> shift) &
2335                                 IGC_RSS_RDT_REG_SIZE_MASK);
2336
2337                 /* if no need to read register */
2338                 if (!mask ||
2339                     shift > (RTE_RETA_GROUP_SIZE - IGC_RSS_RDT_REG_SIZE))
2340                         continue;
2341
2342                 /* read register and get the queue index */
2343                 RTE_BUILD_BUG_ON(sizeof(reta.bytes) != IGC_RSS_RDT_REG_SIZE);
2344                 reta.dword = IGC_READ_REG_LE_VALUE(hw,
2345                                 IGC_RETA(i / IGC_RSS_RDT_REG_SIZE));
2346                 for (j = 0; j < IGC_RSS_RDT_REG_SIZE; j++) {
2347                         if (mask & (1u << j))
2348                                 reta_conf[idx].reta[shift + j] = reta.bytes[j];
2349                 }
2350         }
2351
2352         return 0;
2353 }
2354
2355 static int
2356 eth_igc_rss_hash_update(struct rte_eth_dev *dev,
2357                         struct rte_eth_rss_conf *rss_conf)
2358 {
2359         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2360         igc_hw_rss_hash_set(hw, rss_conf);
2361         return 0;
2362 }
2363
2364 static int
2365 eth_igc_rss_hash_conf_get(struct rte_eth_dev *dev,
2366                         struct rte_eth_rss_conf *rss_conf)
2367 {
2368         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2369         uint32_t *hash_key = (uint32_t *)rss_conf->rss_key;
2370         uint32_t mrqc;
2371         uint64_t rss_hf;
2372
2373         if (hash_key != NULL) {
2374                 int i;
2375
2376                 /* if not enough space for store hash key */
2377                 if (rss_conf->rss_key_len != IGC_HKEY_SIZE) {
2378                         PMD_DRV_LOG(ERR,
2379                                 "RSS hash key size %u in parameter doesn't match the hardware hash key size %u",
2380                                 rss_conf->rss_key_len, IGC_HKEY_SIZE);
2381                         return -EINVAL;
2382                 }
2383
2384                 /* read RSS key from register */
2385                 for (i = 0; i < IGC_HKEY_MAX_INDEX; i++)
2386                         hash_key[i] = IGC_READ_REG_LE_VALUE(hw, IGC_RSSRK(i));
2387         }
2388
2389         /* get RSS functions configured in MRQC register */
2390         mrqc = IGC_READ_REG(hw, IGC_MRQC);
2391         if ((mrqc & IGC_MRQC_ENABLE_RSS_4Q) == 0)
2392                 return 0;
2393
2394         rss_hf = 0;
2395         if (mrqc & IGC_MRQC_RSS_FIELD_IPV4)
2396                 rss_hf |= ETH_RSS_IPV4;
2397         if (mrqc & IGC_MRQC_RSS_FIELD_IPV4_TCP)
2398                 rss_hf |= ETH_RSS_NONFRAG_IPV4_TCP;
2399         if (mrqc & IGC_MRQC_RSS_FIELD_IPV6)
2400                 rss_hf |= ETH_RSS_IPV6;
2401         if (mrqc & IGC_MRQC_RSS_FIELD_IPV6_EX)
2402                 rss_hf |= ETH_RSS_IPV6_EX;
2403         if (mrqc & IGC_MRQC_RSS_FIELD_IPV6_TCP)
2404                 rss_hf |= ETH_RSS_NONFRAG_IPV6_TCP;
2405         if (mrqc & IGC_MRQC_RSS_FIELD_IPV6_TCP_EX)
2406                 rss_hf |= ETH_RSS_IPV6_TCP_EX;
2407         if (mrqc & IGC_MRQC_RSS_FIELD_IPV4_UDP)
2408                 rss_hf |= ETH_RSS_NONFRAG_IPV4_UDP;
2409         if (mrqc & IGC_MRQC_RSS_FIELD_IPV6_UDP)
2410                 rss_hf |= ETH_RSS_NONFRAG_IPV6_UDP;
2411         if (mrqc & IGC_MRQC_RSS_FIELD_IPV6_UDP_EX)
2412                 rss_hf |= ETH_RSS_IPV6_UDP_EX;
2413
2414         rss_conf->rss_hf |= rss_hf;
2415         return 0;
2416 }
2417
2418 static int
2419 eth_igc_vlan_filter_set(struct rte_eth_dev *dev, uint16_t vlan_id, int on)
2420 {
2421         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2422         struct igc_vfta *shadow_vfta = IGC_DEV_PRIVATE_VFTA(dev);
2423         uint32_t vfta;
2424         uint32_t vid_idx;
2425         uint32_t vid_bit;
2426
2427         vid_idx = (vlan_id >> IGC_VFTA_ENTRY_SHIFT) & IGC_VFTA_ENTRY_MASK;
2428         vid_bit = 1u << (vlan_id & IGC_VFTA_ENTRY_BIT_SHIFT_MASK);
2429         vfta = shadow_vfta->vfta[vid_idx];
2430         if (on)
2431                 vfta |= vid_bit;
2432         else
2433                 vfta &= ~vid_bit;
2434         IGC_WRITE_REG_ARRAY(hw, IGC_VFTA, vid_idx, vfta);
2435
2436         /* update local VFTA copy */
2437         shadow_vfta->vfta[vid_idx] = vfta;
2438
2439         return 0;
2440 }
2441
2442 static void
2443 igc_vlan_hw_filter_disable(struct rte_eth_dev *dev)
2444 {
2445         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2446         igc_read_reg_check_clear_bits(hw, IGC_RCTL,
2447                         IGC_RCTL_CFIEN | IGC_RCTL_VFE);
2448 }
2449
2450 static void
2451 igc_vlan_hw_filter_enable(struct rte_eth_dev *dev)
2452 {
2453         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2454         struct igc_vfta *shadow_vfta = IGC_DEV_PRIVATE_VFTA(dev);
2455         uint32_t reg_val;
2456         int i;
2457
2458         /* Filter Table Enable, CFI not used for packet acceptance */
2459         reg_val = IGC_READ_REG(hw, IGC_RCTL);
2460         reg_val &= ~IGC_RCTL_CFIEN;
2461         reg_val |= IGC_RCTL_VFE;
2462         IGC_WRITE_REG(hw, IGC_RCTL, reg_val);
2463
2464         /* restore VFTA table */
2465         for (i = 0; i < IGC_VFTA_SIZE; i++)
2466                 IGC_WRITE_REG_ARRAY(hw, IGC_VFTA, i, shadow_vfta->vfta[i]);
2467 }
2468
2469 static void
2470 igc_vlan_hw_strip_disable(struct rte_eth_dev *dev)
2471 {
2472         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2473
2474         igc_read_reg_check_clear_bits(hw, IGC_CTRL, IGC_CTRL_VME);
2475 }
2476
2477 static void
2478 igc_vlan_hw_strip_enable(struct rte_eth_dev *dev)
2479 {
2480         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2481
2482         igc_read_reg_check_set_bits(hw, IGC_CTRL, IGC_CTRL_VME);
2483 }
2484
2485 static int
2486 igc_vlan_hw_extend_disable(struct rte_eth_dev *dev)
2487 {
2488         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2489         uint32_t ctrl_ext;
2490
2491         ctrl_ext = IGC_READ_REG(hw, IGC_CTRL_EXT);
2492
2493         /* if extend vlan hasn't been enabled */
2494         if ((ctrl_ext & IGC_CTRL_EXT_EXT_VLAN) == 0)
2495                 return 0;
2496
2497         if ((dev->data->dev_conf.rxmode.offloads &
2498                         DEV_RX_OFFLOAD_JUMBO_FRAME) == 0)
2499                 goto write_ext_vlan;
2500
2501         /* Update maximum packet length */
2502         if (dev->data->dev_conf.rxmode.max_rx_pkt_len <
2503                 RTE_ETHER_MIN_MTU + VLAN_TAG_SIZE) {
2504                 PMD_DRV_LOG(ERR, "Maximum packet length %u error, min is %u",
2505                         dev->data->dev_conf.rxmode.max_rx_pkt_len,
2506                         VLAN_TAG_SIZE + RTE_ETHER_MIN_MTU);
2507                 return -EINVAL;
2508         }
2509         dev->data->dev_conf.rxmode.max_rx_pkt_len -= VLAN_TAG_SIZE;
2510         IGC_WRITE_REG(hw, IGC_RLPML,
2511                 dev->data->dev_conf.rxmode.max_rx_pkt_len);
2512
2513 write_ext_vlan:
2514         IGC_WRITE_REG(hw, IGC_CTRL_EXT, ctrl_ext & ~IGC_CTRL_EXT_EXT_VLAN);
2515         return 0;
2516 }
2517
2518 static int
2519 igc_vlan_hw_extend_enable(struct rte_eth_dev *dev)
2520 {
2521         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2522         uint32_t ctrl_ext;
2523
2524         ctrl_ext = IGC_READ_REG(hw, IGC_CTRL_EXT);
2525
2526         /* if extend vlan has been enabled */
2527         if (ctrl_ext & IGC_CTRL_EXT_EXT_VLAN)
2528                 return 0;
2529
2530         if ((dev->data->dev_conf.rxmode.offloads &
2531                         DEV_RX_OFFLOAD_JUMBO_FRAME) == 0)
2532                 goto write_ext_vlan;
2533
2534         /* Update maximum packet length */
2535         if (dev->data->dev_conf.rxmode.max_rx_pkt_len >
2536                 MAX_RX_JUMBO_FRAME_SIZE - VLAN_TAG_SIZE) {
2537                 PMD_DRV_LOG(ERR, "Maximum packet length %u error, max is %u",
2538                         dev->data->dev_conf.rxmode.max_rx_pkt_len +
2539                         VLAN_TAG_SIZE, MAX_RX_JUMBO_FRAME_SIZE);
2540                 return -EINVAL;
2541         }
2542         dev->data->dev_conf.rxmode.max_rx_pkt_len += VLAN_TAG_SIZE;
2543         IGC_WRITE_REG(hw, IGC_RLPML,
2544                 dev->data->dev_conf.rxmode.max_rx_pkt_len);
2545
2546 write_ext_vlan:
2547         IGC_WRITE_REG(hw, IGC_CTRL_EXT, ctrl_ext | IGC_CTRL_EXT_EXT_VLAN);
2548         return 0;
2549 }
2550
2551 static int
2552 eth_igc_vlan_offload_set(struct rte_eth_dev *dev, int mask)
2553 {
2554         struct rte_eth_rxmode *rxmode;
2555
2556         rxmode = &dev->data->dev_conf.rxmode;
2557         if (mask & ETH_VLAN_STRIP_MASK) {
2558                 if (rxmode->offloads & DEV_RX_OFFLOAD_VLAN_STRIP)
2559                         igc_vlan_hw_strip_enable(dev);
2560                 else
2561                         igc_vlan_hw_strip_disable(dev);
2562         }
2563
2564         if (mask & ETH_VLAN_FILTER_MASK) {
2565                 if (rxmode->offloads & DEV_RX_OFFLOAD_VLAN_FILTER)
2566                         igc_vlan_hw_filter_enable(dev);
2567                 else
2568                         igc_vlan_hw_filter_disable(dev);
2569         }
2570
2571         if (mask & ETH_VLAN_EXTEND_MASK) {
2572                 if (rxmode->offloads & DEV_RX_OFFLOAD_VLAN_EXTEND)
2573                         return igc_vlan_hw_extend_enable(dev);
2574                 else
2575                         return igc_vlan_hw_extend_disable(dev);
2576         }
2577
2578         return 0;
2579 }
2580
2581 static int
2582 eth_igc_vlan_tpid_set(struct rte_eth_dev *dev,
2583                       enum rte_vlan_type vlan_type,
2584                       uint16_t tpid)
2585 {
2586         struct igc_hw *hw = IGC_DEV_PRIVATE_HW(dev);
2587         uint32_t reg_val;
2588
2589         /* only outer TPID of double VLAN can be configured*/
2590         if (vlan_type == ETH_VLAN_TYPE_OUTER) {
2591                 reg_val = IGC_READ_REG(hw, IGC_VET);
2592                 reg_val = (reg_val & (~IGC_VET_EXT)) |
2593                         ((uint32_t)tpid << IGC_VET_EXT_SHIFT);
2594                 IGC_WRITE_REG(hw, IGC_VET, reg_val);
2595
2596                 return 0;
2597         }
2598
2599         /* all other TPID values are read-only*/
2600         PMD_DRV_LOG(ERR, "Not supported");
2601         return -ENOTSUP;
2602 }
2603
2604 static int
2605 eth_igc_pci_probe(struct rte_pci_driver *pci_drv __rte_unused,
2606         struct rte_pci_device *pci_dev)
2607 {
2608         PMD_INIT_FUNC_TRACE();
2609         return rte_eth_dev_pci_generic_probe(pci_dev,
2610                 sizeof(struct igc_adapter), eth_igc_dev_init);
2611 }
2612
2613 static int
2614 eth_igc_pci_remove(struct rte_pci_device *pci_dev)
2615 {
2616         PMD_INIT_FUNC_TRACE();
2617         return rte_eth_dev_pci_generic_remove(pci_dev, eth_igc_dev_uninit);
2618 }
2619
2620 static struct rte_pci_driver rte_igc_pmd = {
2621         .id_table = pci_id_igc_map,
2622         .drv_flags = RTE_PCI_DRV_NEED_MAPPING | RTE_PCI_DRV_INTR_LSC,
2623         .probe = eth_igc_pci_probe,
2624         .remove = eth_igc_pci_remove,
2625 };
2626
2627 RTE_PMD_REGISTER_PCI(net_igc, rte_igc_pmd);
2628 RTE_PMD_REGISTER_PCI_TABLE(net_igc, pci_id_igc_map);
2629 RTE_PMD_REGISTER_KMOD_DEP(net_igc, "* igb_uio | uio_pci_generic | vfio-pci");