net: sxgbe: sw reset moved to probe function
[pandora-kernel.git] / drivers / net / ethernet / samsung / sxgbe / sxgbe_main.c
1 /* 10G controller driver for Samsung SoCs
2  *
3  * Copyright (C) 2013 Samsung Electronics Co., Ltd.
4  *              http://www.samsung.com
5  *
6  * Author: Siva Reddy Kallam <siva.kallam@samsung.com>
7  *
8  * This program is free software; you can redistribute it and/or modify
9  * it under the terms of the GNU General Public License version 2 as
10  * published by the Free Software Foundation.
11  */
12
13 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
14
15 #include <linux/clk.h>
16 #include <linux/crc32.h>
17 #include <linux/dma-mapping.h>
18 #include <linux/etherdevice.h>
19 #include <linux/ethtool.h>
20 #include <linux/if.h>
21 #include <linux/if_ether.h>
22 #include <linux/if_vlan.h>
23 #include <linux/init.h>
24 #include <linux/interrupt.h>
25 #include <linux/ip.h>
26 #include <linux/kernel.h>
27 #include <linux/mii.h>
28 #include <linux/module.h>
29 #include <linux/net_tstamp.h>
30 #include <linux/netdevice.h>
31 #include <linux/phy.h>
32 #include <linux/platform_device.h>
33 #include <linux/prefetch.h>
34 #include <linux/skbuff.h>
35 #include <linux/slab.h>
36 #include <linux/tcp.h>
37 #include <linux/sxgbe_platform.h>
38
39 #include "sxgbe_common.h"
40 #include "sxgbe_desc.h"
41 #include "sxgbe_dma.h"
42 #include "sxgbe_mtl.h"
43 #include "sxgbe_reg.h"
44
45 #define SXGBE_ALIGN(x)  L1_CACHE_ALIGN(x)
46 #define JUMBO_LEN       9000
47
48 /* Module parameters */
49 #define TX_TIMEO        5000
50 #define DMA_TX_SIZE     512
51 #define DMA_RX_SIZE     1024
52 #define TC_DEFAULT      64
53 #define DMA_BUFFER_SIZE BUF_SIZE_2KiB
54 /* The default timer value as per the sxgbe specification 1 sec(1000 ms) */
55 #define SXGBE_DEFAULT_LPI_TIMER 1000
56
57 static int debug = -1;
58 static int eee_timer = SXGBE_DEFAULT_LPI_TIMER;
59
60 module_param(eee_timer, int, S_IRUGO | S_IWUSR);
61
62 module_param(debug, int, S_IRUGO | S_IWUSR);
63 static const u32 default_msg_level = (NETIF_MSG_DRV | NETIF_MSG_PROBE |
64                                       NETIF_MSG_LINK | NETIF_MSG_IFUP |
65                                       NETIF_MSG_IFDOWN | NETIF_MSG_TIMER);
66
67 static irqreturn_t sxgbe_common_interrupt(int irq, void *dev_id);
68 static irqreturn_t sxgbe_tx_interrupt(int irq, void *dev_id);
69 static irqreturn_t sxgbe_rx_interrupt(int irq, void *dev_id);
70
71 #define SXGBE_COAL_TIMER(x) (jiffies + usecs_to_jiffies(x))
72
73 #define SXGBE_LPI_TIMER(x) (jiffies + msecs_to_jiffies(x))
74
75 /**
76  * sxgbe_verify_args - verify the driver parameters.
77  * Description: it verifies if some wrong parameter is passed to the driver.
78  * Note that wrong parameters are replaced with the default values.
79  */
80 static void sxgbe_verify_args(void)
81 {
82         if (unlikely(eee_timer < 0))
83                 eee_timer = SXGBE_DEFAULT_LPI_TIMER;
84 }
85
86 static void sxgbe_enable_eee_mode(const struct sxgbe_priv_data *priv)
87 {
88         /* Check and enter in LPI mode */
89         if (!priv->tx_path_in_lpi_mode)
90                 priv->hw->mac->set_eee_mode(priv->ioaddr);
91 }
92
93 void sxgbe_disable_eee_mode(struct sxgbe_priv_data * const priv)
94 {
95         /* Exit and disable EEE in case of we are are in LPI state. */
96         priv->hw->mac->reset_eee_mode(priv->ioaddr);
97         del_timer_sync(&priv->eee_ctrl_timer);
98         priv->tx_path_in_lpi_mode = false;
99 }
100
101 /**
102  * sxgbe_eee_ctrl_timer
103  * @arg : data hook
104  * Description:
105  *  If there is no data transfer and if we are not in LPI state,
106  *  then MAC Transmitter can be moved to LPI state.
107  */
108 static void sxgbe_eee_ctrl_timer(unsigned long arg)
109 {
110         struct sxgbe_priv_data *priv = (struct sxgbe_priv_data *)arg;
111
112         sxgbe_enable_eee_mode(priv);
113         mod_timer(&priv->eee_ctrl_timer, SXGBE_LPI_TIMER(eee_timer));
114 }
115
116 /**
117  * sxgbe_eee_init
118  * @priv: private device pointer
119  * Description:
120  *  If the EEE support has been enabled while configuring the driver,
121  *  if the GMAC actually supports the EEE (from the HW cap reg) and the
122  *  phy can also manage EEE, so enable the LPI state and start the timer
123  *  to verify if the tx path can enter in LPI state.
124  */
125 bool sxgbe_eee_init(struct sxgbe_priv_data * const priv)
126 {
127         bool ret = false;
128
129         /* MAC core supports the EEE feature. */
130         if (priv->hw_cap.eee) {
131                 /* Check if the PHY supports EEE */
132                 if (phy_init_eee(priv->phydev, 1))
133                         return false;
134
135                 priv->eee_active = 1;
136                 init_timer(&priv->eee_ctrl_timer);
137                 priv->eee_ctrl_timer.function = sxgbe_eee_ctrl_timer;
138                 priv->eee_ctrl_timer.data = (unsigned long)priv;
139                 priv->eee_ctrl_timer.expires = SXGBE_LPI_TIMER(eee_timer);
140                 add_timer(&priv->eee_ctrl_timer);
141
142                 priv->hw->mac->set_eee_timer(priv->ioaddr,
143                                              SXGBE_DEFAULT_LPI_TIMER,
144                                              priv->tx_lpi_timer);
145
146                 pr_info("Energy-Efficient Ethernet initialized\n");
147
148                 ret = true;
149         }
150
151         return ret;
152 }
153
154 static void sxgbe_eee_adjust(const struct sxgbe_priv_data *priv)
155 {
156         /* When the EEE has been already initialised we have to
157          * modify the PLS bit in the LPI ctrl & status reg according
158          * to the PHY link status. For this reason.
159          */
160         if (priv->eee_enabled)
161                 priv->hw->mac->set_eee_pls(priv->ioaddr, priv->phydev->link);
162 }
163
164 /**
165  * sxgbe_clk_csr_set - dynamically set the MDC clock
166  * @priv: driver private structure
167  * Description: this is to dynamically set the MDC clock according to the csr
168  * clock input.
169  */
170 static void sxgbe_clk_csr_set(struct sxgbe_priv_data *priv)
171 {
172         u32 clk_rate = clk_get_rate(priv->sxgbe_clk);
173
174         /* assign the proper divider, this will be used during
175          * mdio communication
176          */
177         if (clk_rate < SXGBE_CSR_F_150M)
178                 priv->clk_csr = SXGBE_CSR_100_150M;
179         else if (clk_rate <= SXGBE_CSR_F_250M)
180                 priv->clk_csr = SXGBE_CSR_150_250M;
181         else if (clk_rate <= SXGBE_CSR_F_300M)
182                 priv->clk_csr = SXGBE_CSR_250_300M;
183         else if (clk_rate <= SXGBE_CSR_F_350M)
184                 priv->clk_csr = SXGBE_CSR_300_350M;
185         else if (clk_rate <= SXGBE_CSR_F_400M)
186                 priv->clk_csr = SXGBE_CSR_350_400M;
187         else if (clk_rate <= SXGBE_CSR_F_500M)
188                 priv->clk_csr = SXGBE_CSR_400_500M;
189 }
190
191 /* minimum number of free TX descriptors required to wake up TX process */
192 #define SXGBE_TX_THRESH(x)      (x->dma_tx_size/4)
193
194 static inline u32 sxgbe_tx_avail(struct sxgbe_tx_queue *queue, int tx_qsize)
195 {
196         return queue->dirty_tx + tx_qsize - queue->cur_tx - 1;
197 }
198
199 /**
200  * sxgbe_adjust_link
201  * @dev: net device structure
202  * Description: it adjusts the link parameters.
203  */
204 static void sxgbe_adjust_link(struct net_device *dev)
205 {
206         struct sxgbe_priv_data *priv = netdev_priv(dev);
207         struct phy_device *phydev = priv->phydev;
208         u8 new_state = 0;
209         u8 speed = 0xff;
210
211         if (!phydev)
212                 return;
213
214         /* SXGBE is not supporting auto-negotiation and
215          * half duplex mode. so, not handling duplex change
216          * in this function. only handling speed and link status
217          */
218         if (phydev->link) {
219                 if (phydev->speed != priv->speed) {
220                         new_state = 1;
221                         switch (phydev->speed) {
222                         case SPEED_10000:
223                                 speed = SXGBE_SPEED_10G;
224                                 break;
225                         case SPEED_2500:
226                                 speed = SXGBE_SPEED_2_5G;
227                                 break;
228                         case SPEED_1000:
229                                 speed = SXGBE_SPEED_1G;
230                                 break;
231                         default:
232                                 netif_err(priv, link, dev,
233                                           "Speed (%d) not supported\n",
234                                           phydev->speed);
235                         }
236
237                         priv->speed = phydev->speed;
238                         priv->hw->mac->set_speed(priv->ioaddr, speed);
239                 }
240
241                 if (!priv->oldlink) {
242                         new_state = 1;
243                         priv->oldlink = 1;
244                 }
245         } else if (priv->oldlink) {
246                 new_state = 1;
247                 priv->oldlink = 0;
248                 priv->speed = SPEED_UNKNOWN;
249         }
250
251         if (new_state & netif_msg_link(priv))
252                 phy_print_status(phydev);
253
254         /* Alter the MAC settings for EEE */
255         sxgbe_eee_adjust(priv);
256 }
257
258 /**
259  * sxgbe_init_phy - PHY initialization
260  * @dev: net device structure
261  * Description: it initializes the driver's PHY state, and attaches the PHY
262  * to the mac driver.
263  *  Return value:
264  *  0 on success
265  */
266 static int sxgbe_init_phy(struct net_device *ndev)
267 {
268         char phy_id_fmt[MII_BUS_ID_SIZE + 3];
269         char bus_id[MII_BUS_ID_SIZE];
270         struct phy_device *phydev;
271         struct sxgbe_priv_data *priv = netdev_priv(ndev);
272         int phy_iface = priv->plat->interface;
273
274         /* assign default link status */
275         priv->oldlink = 0;
276         priv->speed = SPEED_UNKNOWN;
277         priv->oldduplex = DUPLEX_UNKNOWN;
278
279         if (priv->plat->phy_bus_name)
280                 snprintf(bus_id, MII_BUS_ID_SIZE, "%s-%x",
281                          priv->plat->phy_bus_name, priv->plat->bus_id);
282         else
283                 snprintf(bus_id, MII_BUS_ID_SIZE, "sxgbe-%x",
284                          priv->plat->bus_id);
285
286         snprintf(phy_id_fmt, MII_BUS_ID_SIZE + 3, PHY_ID_FMT, bus_id,
287                  priv->plat->phy_addr);
288         netdev_dbg(ndev, "%s: trying to attach to %s\n", __func__, phy_id_fmt);
289
290         phydev = phy_connect(ndev, phy_id_fmt, &sxgbe_adjust_link, phy_iface);
291
292         if (IS_ERR(phydev)) {
293                 netdev_err(ndev, "Could not attach to PHY\n");
294                 return PTR_ERR(phydev);
295         }
296
297         /* Stop Advertising 1000BASE Capability if interface is not GMII */
298         if ((phy_iface == PHY_INTERFACE_MODE_MII) ||
299             (phy_iface == PHY_INTERFACE_MODE_RMII))
300                 phydev->advertising &= ~(SUPPORTED_1000baseT_Half |
301                                          SUPPORTED_1000baseT_Full);
302         if (phydev->phy_id == 0) {
303                 phy_disconnect(phydev);
304                 return -ENODEV;
305         }
306
307         netdev_dbg(ndev, "%s: attached to PHY (UID 0x%x) Link = %d\n",
308                    __func__, phydev->phy_id, phydev->link);
309
310         /* save phy device in private structure */
311         priv->phydev = phydev;
312
313         return 0;
314 }
315
316 /**
317  * sxgbe_clear_descriptors: clear descriptors
318  * @priv: driver private structure
319  * Description: this function is called to clear the tx and rx descriptors
320  * in case of both basic and extended descriptors are used.
321  */
322 static void sxgbe_clear_descriptors(struct sxgbe_priv_data *priv)
323 {
324         int i, j;
325         unsigned int txsize = priv->dma_tx_size;
326         unsigned int rxsize = priv->dma_rx_size;
327
328         /* Clear the Rx/Tx descriptors */
329         for (j = 0; j < SXGBE_RX_QUEUES; j++) {
330                 for (i = 0; i < rxsize; i++)
331                         priv->hw->desc->init_rx_desc(&priv->rxq[j]->dma_rx[i],
332                                                      priv->use_riwt, priv->mode,
333                                                      (i == rxsize - 1));
334         }
335
336         for (j = 0; j < SXGBE_TX_QUEUES; j++) {
337                 for (i = 0; i < txsize; i++)
338                         priv->hw->desc->init_tx_desc(&priv->txq[j]->dma_tx[i]);
339         }
340 }
341
342 static int sxgbe_init_rx_buffers(struct net_device *dev,
343                                  struct sxgbe_rx_norm_desc *p, int i,
344                                  unsigned int dma_buf_sz,
345                                  struct sxgbe_rx_queue *rx_ring)
346 {
347         struct sxgbe_priv_data *priv = netdev_priv(dev);
348         struct sk_buff *skb;
349
350         skb = __netdev_alloc_skb_ip_align(dev, dma_buf_sz, GFP_KERNEL);
351         if (!skb)
352                 return -ENOMEM;
353
354         rx_ring->rx_skbuff[i] = skb;
355         rx_ring->rx_skbuff_dma[i] = dma_map_single(priv->device, skb->data,
356                                                    dma_buf_sz, DMA_FROM_DEVICE);
357
358         if (dma_mapping_error(priv->device, rx_ring->rx_skbuff_dma[i])) {
359                 netdev_err(dev, "%s: DMA mapping error\n", __func__);
360                 dev_kfree_skb_any(skb);
361                 return -EINVAL;
362         }
363
364         p->rdes23.rx_rd_des23.buf2_addr = rx_ring->rx_skbuff_dma[i];
365
366         return 0;
367 }
368 /**
369  * init_tx_ring - init the TX descriptor ring
370  * @dev: net device structure
371  * @tx_ring: ring to be intialised
372  * @tx_rsize: ring size
373  * Description:  this function initializes the DMA TX descriptor
374  */
375 static int init_tx_ring(struct device *dev, u8 queue_no,
376                         struct sxgbe_tx_queue *tx_ring, int tx_rsize)
377 {
378         /* TX ring is not allcoated */
379         if (!tx_ring) {
380                 dev_err(dev, "No memory for TX queue of SXGBE\n");
381                 return -ENOMEM;
382         }
383
384         /* allocate memory for TX descriptors */
385         tx_ring->dma_tx = dma_zalloc_coherent(dev,
386                                               tx_rsize * sizeof(struct sxgbe_tx_norm_desc),
387                                               &tx_ring->dma_tx_phy, GFP_KERNEL);
388         if (!tx_ring->dma_tx)
389                 return -ENOMEM;
390
391         /* allocate memory for TX skbuff array */
392         tx_ring->tx_skbuff_dma = devm_kcalloc(dev, tx_rsize,
393                                               sizeof(dma_addr_t), GFP_KERNEL);
394         if (!tx_ring->tx_skbuff_dma)
395                 goto dmamem_err;
396
397         tx_ring->tx_skbuff = devm_kcalloc(dev, tx_rsize,
398                                           sizeof(struct sk_buff *), GFP_KERNEL);
399
400         if (!tx_ring->tx_skbuff)
401                 goto dmamem_err;
402
403         /* assign queue number */
404         tx_ring->queue_no = queue_no;
405
406         /* initalise counters */
407         tx_ring->dirty_tx = 0;
408         tx_ring->cur_tx = 0;
409
410         /* initalise TX queue lock */
411         spin_lock_init(&tx_ring->tx_lock);
412
413         return 0;
414
415 dmamem_err:
416         dma_free_coherent(dev, tx_rsize * sizeof(struct sxgbe_tx_norm_desc),
417                           tx_ring->dma_tx, tx_ring->dma_tx_phy);
418         return -ENOMEM;
419 }
420
421 /**
422  * free_rx_ring - free the RX descriptor ring
423  * @dev: net device structure
424  * @rx_ring: ring to be intialised
425  * @rx_rsize: ring size
426  * Description:  this function initializes the DMA RX descriptor
427  */
428 void free_rx_ring(struct device *dev, struct sxgbe_rx_queue *rx_ring,
429                   int rx_rsize)
430 {
431         dma_free_coherent(dev, rx_rsize * sizeof(struct sxgbe_rx_norm_desc),
432                           rx_ring->dma_rx, rx_ring->dma_rx_phy);
433         kfree(rx_ring->rx_skbuff_dma);
434         kfree(rx_ring->rx_skbuff);
435 }
436
437 /**
438  * init_rx_ring - init the RX descriptor ring
439  * @dev: net device structure
440  * @rx_ring: ring to be intialised
441  * @rx_rsize: ring size
442  * Description:  this function initializes the DMA RX descriptor
443  */
444 static int init_rx_ring(struct net_device *dev, u8 queue_no,
445                         struct sxgbe_rx_queue *rx_ring, int rx_rsize)
446 {
447         struct sxgbe_priv_data *priv = netdev_priv(dev);
448         int desc_index;
449         unsigned int bfsize = 0;
450         unsigned int ret = 0;
451
452         /* Set the max buffer size according to the MTU. */
453         bfsize = ALIGN(dev->mtu + ETH_HLEN + ETH_FCS_LEN + NET_IP_ALIGN, 8);
454
455         netif_dbg(priv, probe, dev, "%s: bfsize %d\n", __func__, bfsize);
456
457         /* RX ring is not allcoated */
458         if (rx_ring == NULL) {
459                 netdev_err(dev, "No memory for RX queue\n");
460                 goto error;
461         }
462
463         /* assign queue number */
464         rx_ring->queue_no = queue_no;
465
466         /* allocate memory for RX descriptors */
467         rx_ring->dma_rx = dma_zalloc_coherent(priv->device,
468                                               rx_rsize * sizeof(struct sxgbe_rx_norm_desc),
469                                               &rx_ring->dma_rx_phy, GFP_KERNEL);
470
471         if (rx_ring->dma_rx == NULL)
472                 goto error;
473
474         /* allocate memory for RX skbuff array */
475         rx_ring->rx_skbuff_dma = kmalloc_array(rx_rsize,
476                                                sizeof(dma_addr_t), GFP_KERNEL);
477         if (rx_ring->rx_skbuff_dma == NULL)
478                 goto dmamem_err;
479
480         rx_ring->rx_skbuff = kmalloc_array(rx_rsize,
481                                            sizeof(struct sk_buff *), GFP_KERNEL);
482         if (rx_ring->rx_skbuff == NULL)
483                 goto rxbuff_err;
484
485         /* initialise the buffers */
486         for (desc_index = 0; desc_index < rx_rsize; desc_index++) {
487                 struct sxgbe_rx_norm_desc *p;
488                 p = rx_ring->dma_rx + desc_index;
489                 ret = sxgbe_init_rx_buffers(dev, p, desc_index,
490                                             bfsize, rx_ring);
491                 if (ret)
492                         goto err_init_rx_buffers;
493         }
494
495         /* initalise counters */
496         rx_ring->cur_rx = 0;
497         rx_ring->dirty_rx = (unsigned int)(desc_index - rx_rsize);
498         priv->dma_buf_sz = bfsize;
499
500         return 0;
501
502 err_init_rx_buffers:
503         while (--desc_index >= 0)
504                 free_rx_ring(priv->device, rx_ring, desc_index);
505         kfree(rx_ring->rx_skbuff);
506 rxbuff_err:
507         kfree(rx_ring->rx_skbuff_dma);
508 dmamem_err:
509         dma_free_coherent(priv->device,
510                           rx_rsize * sizeof(struct sxgbe_rx_norm_desc),
511                           rx_ring->dma_rx, rx_ring->dma_rx_phy);
512 error:
513         return -ENOMEM;
514 }
515 /**
516  * free_tx_ring - free the TX descriptor ring
517  * @dev: net device structure
518  * @tx_ring: ring to be intialised
519  * @tx_rsize: ring size
520  * Description:  this function initializes the DMA TX descriptor
521  */
522 void free_tx_ring(struct device *dev, struct sxgbe_tx_queue *tx_ring,
523                   int tx_rsize)
524 {
525         dma_free_coherent(dev, tx_rsize * sizeof(struct sxgbe_tx_norm_desc),
526                           tx_ring->dma_tx, tx_ring->dma_tx_phy);
527 }
528
529 /**
530  * init_dma_desc_rings - init the RX/TX descriptor rings
531  * @dev: net device structure
532  * Description:  this function initializes the DMA RX/TX descriptors
533  * and allocates the socket buffers. It suppors the chained and ring
534  * modes.
535  */
536 static int init_dma_desc_rings(struct net_device *netd)
537 {
538         int queue_num, ret;
539         struct sxgbe_priv_data *priv = netdev_priv(netd);
540         int tx_rsize = priv->dma_tx_size;
541         int rx_rsize = priv->dma_rx_size;
542
543         /* Allocate memory for queue structures and TX descs */
544         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
545                 ret = init_tx_ring(priv->device, queue_num,
546                                    priv->txq[queue_num], tx_rsize);
547                 if (ret) {
548                         dev_err(&netd->dev, "TX DMA ring allocation failed!\n");
549                         goto txalloc_err;
550                 }
551
552                 /* save private pointer in each ring this
553                  * pointer is needed during cleaing TX queue
554                  */
555                 priv->txq[queue_num]->priv_ptr = priv;
556         }
557
558         /* Allocate memory for queue structures and RX descs */
559         SXGBE_FOR_EACH_QUEUE(SXGBE_RX_QUEUES, queue_num) {
560                 ret = init_rx_ring(netd, queue_num,
561                                    priv->rxq[queue_num], rx_rsize);
562                 if (ret) {
563                         netdev_err(netd, "RX DMA ring allocation failed!!\n");
564                         goto rxalloc_err;
565                 }
566
567                 /* save private pointer in each ring this
568                  * pointer is needed during cleaing TX queue
569                  */
570                 priv->rxq[queue_num]->priv_ptr = priv;
571         }
572
573         sxgbe_clear_descriptors(priv);
574
575         return 0;
576
577 txalloc_err:
578         while (queue_num--)
579                 free_tx_ring(priv->device, priv->txq[queue_num], tx_rsize);
580         return ret;
581
582 rxalloc_err:
583         while (queue_num--)
584                 free_rx_ring(priv->device, priv->rxq[queue_num], rx_rsize);
585         return ret;
586 }
587
588 static void tx_free_ring_skbufs(struct sxgbe_tx_queue *txqueue)
589 {
590         int dma_desc;
591         struct sxgbe_priv_data *priv = txqueue->priv_ptr;
592         int tx_rsize = priv->dma_tx_size;
593
594         for (dma_desc = 0; dma_desc < tx_rsize; dma_desc++) {
595                 struct sxgbe_tx_norm_desc *tdesc = txqueue->dma_tx + dma_desc;
596
597                 if (txqueue->tx_skbuff_dma[dma_desc])
598                         dma_unmap_single(priv->device,
599                                          txqueue->tx_skbuff_dma[dma_desc],
600                                          priv->hw->desc->get_tx_len(tdesc),
601                                          DMA_TO_DEVICE);
602
603                 dev_kfree_skb_any(txqueue->tx_skbuff[dma_desc]);
604                 txqueue->tx_skbuff[dma_desc] = NULL;
605                 txqueue->tx_skbuff_dma[dma_desc] = 0;
606         }
607 }
608
609
610 static void dma_free_tx_skbufs(struct sxgbe_priv_data *priv)
611 {
612         int queue_num;
613
614         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
615                 struct sxgbe_tx_queue *tqueue = priv->txq[queue_num];
616                 tx_free_ring_skbufs(tqueue);
617         }
618 }
619
620 static void free_dma_desc_resources(struct sxgbe_priv_data *priv)
621 {
622         int queue_num;
623         int tx_rsize = priv->dma_tx_size;
624         int rx_rsize = priv->dma_rx_size;
625
626         /* Release the DMA TX buffers */
627         dma_free_tx_skbufs(priv);
628
629         /* Release the TX ring memory also */
630         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
631                 free_tx_ring(priv->device, priv->txq[queue_num], tx_rsize);
632         }
633
634         /* Release the RX ring memory also */
635         SXGBE_FOR_EACH_QUEUE(SXGBE_RX_QUEUES, queue_num) {
636                 free_rx_ring(priv->device, priv->rxq[queue_num], rx_rsize);
637         }
638 }
639
640 static int txring_mem_alloc(struct sxgbe_priv_data *priv)
641 {
642         int queue_num;
643
644         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
645                 priv->txq[queue_num] = devm_kmalloc(priv->device,
646                                                     sizeof(struct sxgbe_tx_queue), GFP_KERNEL);
647                 if (!priv->txq[queue_num])
648                         return -ENOMEM;
649         }
650
651         return 0;
652 }
653
654 static int rxring_mem_alloc(struct sxgbe_priv_data *priv)
655 {
656         int queue_num;
657
658         SXGBE_FOR_EACH_QUEUE(SXGBE_RX_QUEUES, queue_num) {
659                 priv->rxq[queue_num] = devm_kmalloc(priv->device,
660                                                     sizeof(struct sxgbe_rx_queue), GFP_KERNEL);
661                 if (!priv->rxq[queue_num])
662                         return -ENOMEM;
663         }
664
665         return 0;
666 }
667
668 /**
669  *  sxgbe_mtl_operation_mode - HW MTL operation mode
670  *  @priv: driver private structure
671  *  Description: it sets the MTL operation mode: tx/rx MTL thresholds
672  *  or Store-And-Forward capability.
673  */
674 static void sxgbe_mtl_operation_mode(struct sxgbe_priv_data *priv)
675 {
676         int queue_num;
677
678         /* TX/RX threshold control */
679         if (likely(priv->plat->force_sf_dma_mode)) {
680                 /* set TC mode for TX QUEUES */
681                 SXGBE_FOR_EACH_QUEUE(priv->hw_cap.tx_mtl_queues, queue_num)
682                         priv->hw->mtl->set_tx_mtl_mode(priv->ioaddr, queue_num,
683                                                        SXGBE_MTL_SFMODE);
684                 priv->tx_tc = SXGBE_MTL_SFMODE;
685
686                 /* set TC mode for RX QUEUES */
687                 SXGBE_FOR_EACH_QUEUE(priv->hw_cap.rx_mtl_queues, queue_num)
688                         priv->hw->mtl->set_rx_mtl_mode(priv->ioaddr, queue_num,
689                                                        SXGBE_MTL_SFMODE);
690                 priv->rx_tc = SXGBE_MTL_SFMODE;
691         } else if (unlikely(priv->plat->force_thresh_dma_mode)) {
692                 /* set TC mode for TX QUEUES */
693                 SXGBE_FOR_EACH_QUEUE(priv->hw_cap.tx_mtl_queues, queue_num)
694                         priv->hw->mtl->set_tx_mtl_mode(priv->ioaddr, queue_num,
695                                                        priv->tx_tc);
696                 /* set TC mode for RX QUEUES */
697                 SXGBE_FOR_EACH_QUEUE(priv->hw_cap.rx_mtl_queues, queue_num)
698                         priv->hw->mtl->set_rx_mtl_mode(priv->ioaddr, queue_num,
699                                                        priv->rx_tc);
700         } else {
701                 pr_err("ERROR: %s: Invalid TX threshold mode\n", __func__);
702         }
703 }
704
705 /**
706  * sxgbe_tx_queue_clean:
707  * @priv: driver private structure
708  * Description: it reclaims resources after transmission completes.
709  */
710 static void sxgbe_tx_queue_clean(struct sxgbe_tx_queue *tqueue)
711 {
712         struct sxgbe_priv_data *priv = tqueue->priv_ptr;
713         unsigned int tx_rsize = priv->dma_tx_size;
714         struct netdev_queue *dev_txq;
715         u8 queue_no = tqueue->queue_no;
716
717         dev_txq = netdev_get_tx_queue(priv->dev, queue_no);
718
719         spin_lock(&tqueue->tx_lock);
720
721         priv->xstats.tx_clean++;
722         while (tqueue->dirty_tx != tqueue->cur_tx) {
723                 unsigned int entry = tqueue->dirty_tx % tx_rsize;
724                 struct sk_buff *skb = tqueue->tx_skbuff[entry];
725                 struct sxgbe_tx_norm_desc *p;
726
727                 p = tqueue->dma_tx + entry;
728
729                 /* Check if the descriptor is owned by the DMA. */
730                 if (priv->hw->desc->get_tx_owner(p))
731                         break;
732
733                 if (netif_msg_tx_done(priv))
734                         pr_debug("%s: curr %d, dirty %d\n",
735                                  __func__, tqueue->cur_tx, tqueue->dirty_tx);
736
737                 if (likely(tqueue->tx_skbuff_dma[entry])) {
738                         dma_unmap_single(priv->device,
739                                          tqueue->tx_skbuff_dma[entry],
740                                          priv->hw->desc->get_tx_len(p),
741                                          DMA_TO_DEVICE);
742                         tqueue->tx_skbuff_dma[entry] = 0;
743                 }
744
745                 if (likely(skb)) {
746                         dev_kfree_skb(skb);
747                         tqueue->tx_skbuff[entry] = NULL;
748                 }
749
750                 priv->hw->desc->release_tx_desc(p);
751
752                 tqueue->dirty_tx++;
753         }
754
755         /* wake up queue */
756         if (unlikely(netif_tx_queue_stopped(dev_txq) &&
757                      sxgbe_tx_avail(tqueue, tx_rsize) > SXGBE_TX_THRESH(priv))) {
758                 netif_tx_lock(priv->dev);
759                 if (netif_tx_queue_stopped(dev_txq) &&
760                     sxgbe_tx_avail(tqueue, tx_rsize) > SXGBE_TX_THRESH(priv)) {
761                         if (netif_msg_tx_done(priv))
762                                 pr_debug("%s: restart transmit\n", __func__);
763                         netif_tx_wake_queue(dev_txq);
764                 }
765                 netif_tx_unlock(priv->dev);
766         }
767
768         spin_unlock(&tqueue->tx_lock);
769 }
770
771 /**
772  * sxgbe_tx_clean:
773  * @priv: driver private structure
774  * Description: it reclaims resources after transmission completes.
775  */
776 static void sxgbe_tx_all_clean(struct sxgbe_priv_data * const priv)
777 {
778         u8 queue_num;
779
780         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
781                 struct sxgbe_tx_queue *tqueue = priv->txq[queue_num];
782
783                 sxgbe_tx_queue_clean(tqueue);
784         }
785
786         if ((priv->eee_enabled) && (!priv->tx_path_in_lpi_mode)) {
787                 sxgbe_enable_eee_mode(priv);
788                 mod_timer(&priv->eee_ctrl_timer, SXGBE_LPI_TIMER(eee_timer));
789         }
790 }
791
792 /**
793  * sxgbe_restart_tx_queue: irq tx error mng function
794  * @priv: driver private structure
795  * Description: it cleans the descriptors and restarts the transmission
796  * in case of errors.
797  */
798 static void sxgbe_restart_tx_queue(struct sxgbe_priv_data *priv, int queue_num)
799 {
800         struct sxgbe_tx_queue *tx_ring = priv->txq[queue_num];
801         struct netdev_queue *dev_txq = netdev_get_tx_queue(priv->dev,
802                                                            queue_num);
803
804         /* stop the queue */
805         netif_tx_stop_queue(dev_txq);
806
807         /* stop the tx dma */
808         priv->hw->dma->stop_tx_queue(priv->ioaddr, queue_num);
809
810         /* free the skbuffs of the ring */
811         tx_free_ring_skbufs(tx_ring);
812
813         /* initalise counters */
814         tx_ring->cur_tx = 0;
815         tx_ring->dirty_tx = 0;
816
817         /* start the tx dma */
818         priv->hw->dma->start_tx_queue(priv->ioaddr, queue_num);
819
820         priv->dev->stats.tx_errors++;
821
822         /* wakeup the queue */
823         netif_tx_wake_queue(dev_txq);
824 }
825
826 /**
827  * sxgbe_reset_all_tx_queues: irq tx error mng function
828  * @priv: driver private structure
829  * Description: it cleans all the descriptors and
830  * restarts the transmission on all queues in case of errors.
831  */
832 static void sxgbe_reset_all_tx_queues(struct sxgbe_priv_data *priv)
833 {
834         int queue_num;
835
836         /* On TX timeout of net device, resetting of all queues
837          * may not be proper way, revisit this later if needed
838          */
839         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num)
840                 sxgbe_restart_tx_queue(priv, queue_num);
841 }
842
843 /**
844  * sxgbe_get_hw_features: get XMAC capabilities from the HW cap. register.
845  * @priv: driver private structure
846  * Description:
847  *  new GMAC chip generations have a new register to indicate the
848  *  presence of the optional feature/functions.
849  *  This can be also used to override the value passed through the
850  *  platform and necessary for old MAC10/100 and GMAC chips.
851  */
852 static int sxgbe_get_hw_features(struct sxgbe_priv_data * const priv)
853 {
854         int rval = 0;
855         struct sxgbe_hw_features *features = &priv->hw_cap;
856
857         /* Read First Capability Register CAP[0] */
858         rval = priv->hw->mac->get_hw_feature(priv->ioaddr, 0);
859         if (rval) {
860                 features->pmt_remote_wake_up =
861                         SXGBE_HW_FEAT_PMT_TEMOTE_WOP(rval);
862                 features->pmt_magic_frame = SXGBE_HW_FEAT_PMT_MAGIC_PKT(rval);
863                 features->atime_stamp = SXGBE_HW_FEAT_IEEE1500_2008(rval);
864                 features->tx_csum_offload =
865                         SXGBE_HW_FEAT_TX_CSUM_OFFLOAD(rval);
866                 features->rx_csum_offload =
867                         SXGBE_HW_FEAT_RX_CSUM_OFFLOAD(rval);
868                 features->multi_macaddr = SXGBE_HW_FEAT_MACADDR_COUNT(rval);
869                 features->tstamp_srcselect = SXGBE_HW_FEAT_TSTMAP_SRC(rval);
870                 features->sa_vlan_insert = SXGBE_HW_FEAT_SRCADDR_VLAN(rval);
871                 features->eee = SXGBE_HW_FEAT_EEE(rval);
872         }
873
874         /* Read First Capability Register CAP[1] */
875         rval = priv->hw->mac->get_hw_feature(priv->ioaddr, 1);
876         if (rval) {
877                 features->rxfifo_size = SXGBE_HW_FEAT_RX_FIFO_SIZE(rval);
878                 features->txfifo_size = SXGBE_HW_FEAT_TX_FIFO_SIZE(rval);
879                 features->atstmap_hword = SXGBE_HW_FEAT_TX_FIFO_SIZE(rval);
880                 features->dcb_enable = SXGBE_HW_FEAT_DCB(rval);
881                 features->splithead_enable = SXGBE_HW_FEAT_SPLIT_HDR(rval);
882                 features->tcpseg_offload = SXGBE_HW_FEAT_TSO(rval);
883                 features->debug_mem = SXGBE_HW_FEAT_DEBUG_MEM_IFACE(rval);
884                 features->rss_enable = SXGBE_HW_FEAT_RSS(rval);
885                 features->hash_tsize = SXGBE_HW_FEAT_HASH_TABLE_SIZE(rval);
886                 features->l3l4_filer_size = SXGBE_HW_FEAT_L3L4_FILTER_NUM(rval);
887         }
888
889         /* Read First Capability Register CAP[2] */
890         rval = priv->hw->mac->get_hw_feature(priv->ioaddr, 2);
891         if (rval) {
892                 features->rx_mtl_queues = SXGBE_HW_FEAT_RX_MTL_QUEUES(rval);
893                 features->tx_mtl_queues = SXGBE_HW_FEAT_TX_MTL_QUEUES(rval);
894                 features->rx_dma_channels = SXGBE_HW_FEAT_RX_DMA_CHANNELS(rval);
895                 features->tx_dma_channels = SXGBE_HW_FEAT_TX_DMA_CHANNELS(rval);
896                 features->pps_output_count = SXGBE_HW_FEAT_PPS_OUTPUTS(rval);
897                 features->aux_input_count = SXGBE_HW_FEAT_AUX_SNAPSHOTS(rval);
898         }
899
900         return rval;
901 }
902
903 /**
904  * sxgbe_check_ether_addr: check if the MAC addr is valid
905  * @priv: driver private structure
906  * Description:
907  * it is to verify if the MAC address is valid, in case of failures it
908  * generates a random MAC address
909  */
910 static void sxgbe_check_ether_addr(struct sxgbe_priv_data *priv)
911 {
912         if (!is_valid_ether_addr(priv->dev->dev_addr)) {
913                 priv->hw->mac->get_umac_addr((void __iomem *)
914                                              priv->ioaddr,
915                                              priv->dev->dev_addr, 0);
916                 if (!is_valid_ether_addr(priv->dev->dev_addr))
917                         eth_hw_addr_random(priv->dev);
918         }
919         dev_info(priv->device, "device MAC address %pM\n",
920                  priv->dev->dev_addr);
921 }
922
923 /**
924  * sxgbe_init_dma_engine: DMA init.
925  * @priv: driver private structure
926  * Description:
927  * It inits the DMA invoking the specific SXGBE callback.
928  * Some DMA parameters can be passed from the platform;
929  * in case of these are not passed a default is kept for the MAC or GMAC.
930  */
931 static int sxgbe_init_dma_engine(struct sxgbe_priv_data *priv)
932 {
933         int pbl = DEFAULT_DMA_PBL, fixed_burst = 0, burst_map = 0;
934         int queue_num;
935
936         if (priv->plat->dma_cfg) {
937                 pbl = priv->plat->dma_cfg->pbl;
938                 fixed_burst = priv->plat->dma_cfg->fixed_burst;
939                 burst_map = priv->plat->dma_cfg->burst_map;
940         }
941
942         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num)
943                 priv->hw->dma->cha_init(priv->ioaddr, queue_num,
944                                         fixed_burst, pbl,
945                                         (priv->txq[queue_num])->dma_tx_phy,
946                                         (priv->rxq[queue_num])->dma_rx_phy,
947                                         priv->dma_tx_size, priv->dma_rx_size);
948
949         return priv->hw->dma->init(priv->ioaddr, fixed_burst, burst_map);
950 }
951
952 /**
953  * sxgbe_init_mtl_engine: MTL init.
954  * @priv: driver private structure
955  * Description:
956  * It inits the MTL invoking the specific SXGBE callback.
957  */
958 static void sxgbe_init_mtl_engine(struct sxgbe_priv_data *priv)
959 {
960         int queue_num;
961
962         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
963                 priv->hw->mtl->mtl_set_txfifosize(priv->ioaddr, queue_num,
964                                                   priv->hw_cap.tx_mtl_qsize);
965                 priv->hw->mtl->mtl_enable_txqueue(priv->ioaddr, queue_num);
966         }
967 }
968
969 /**
970  * sxgbe_disable_mtl_engine: MTL disable.
971  * @priv: driver private structure
972  * Description:
973  * It disables the MTL queues by invoking the specific SXGBE callback.
974  */
975 static void sxgbe_disable_mtl_engine(struct sxgbe_priv_data *priv)
976 {
977         int queue_num;
978
979         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num)
980                 priv->hw->mtl->mtl_disable_txqueue(priv->ioaddr, queue_num);
981 }
982
983
984 /**
985  * sxgbe_tx_timer: mitigation sw timer for tx.
986  * @data: data pointer
987  * Description:
988  * This is the timer handler to directly invoke the sxgbe_tx_clean.
989  */
990 static void sxgbe_tx_timer(unsigned long data)
991 {
992         struct sxgbe_tx_queue *p = (struct sxgbe_tx_queue *)data;
993         sxgbe_tx_queue_clean(p);
994 }
995
996 /**
997  * sxgbe_init_tx_coalesce: init tx mitigation options.
998  * @priv: driver private structure
999  * Description:
1000  * This inits the transmit coalesce parameters: i.e. timer rate,
1001  * timer handler and default threshold used for enabling the
1002  * interrupt on completion bit.
1003  */
1004 static void sxgbe_tx_init_coalesce(struct sxgbe_priv_data *priv)
1005 {
1006         u8 queue_num;
1007
1008         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
1009                 struct sxgbe_tx_queue *p = priv->txq[queue_num];
1010                 p->tx_coal_frames =  SXGBE_TX_FRAMES;
1011                 p->tx_coal_timer = SXGBE_COAL_TX_TIMER;
1012                 init_timer(&p->txtimer);
1013                 p->txtimer.expires = SXGBE_COAL_TIMER(p->tx_coal_timer);
1014                 p->txtimer.data = (unsigned long)&priv->txq[queue_num];
1015                 p->txtimer.function = sxgbe_tx_timer;
1016                 add_timer(&p->txtimer);
1017         }
1018 }
1019
1020 static void sxgbe_tx_del_timer(struct sxgbe_priv_data *priv)
1021 {
1022         u8 queue_num;
1023
1024         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
1025                 struct sxgbe_tx_queue *p = priv->txq[queue_num];
1026                 del_timer_sync(&p->txtimer);
1027         }
1028 }
1029
1030 /**
1031  *  sxgbe_open - open entry point of the driver
1032  *  @dev : pointer to the device structure.
1033  *  Description:
1034  *  This function is the open entry point of the driver.
1035  *  Return value:
1036  *  0 on success and an appropriate (-)ve integer as defined in errno.h
1037  *  file on failure.
1038  */
1039 static int sxgbe_open(struct net_device *dev)
1040 {
1041         struct sxgbe_priv_data *priv = netdev_priv(dev);
1042         int ret, queue_num;
1043
1044         clk_prepare_enable(priv->sxgbe_clk);
1045
1046         sxgbe_check_ether_addr(priv);
1047
1048         /* Init the phy */
1049         ret = sxgbe_init_phy(dev);
1050         if (ret) {
1051                 netdev_err(dev, "%s: Cannot attach to PHY (error: %d)\n",
1052                            __func__, ret);
1053                 goto phy_error;
1054         }
1055
1056         /* Create and initialize the TX/RX descriptors chains. */
1057         priv->dma_tx_size = SXGBE_ALIGN(DMA_TX_SIZE);
1058         priv->dma_rx_size = SXGBE_ALIGN(DMA_RX_SIZE);
1059         priv->dma_buf_sz = SXGBE_ALIGN(DMA_BUFFER_SIZE);
1060         priv->tx_tc = TC_DEFAULT;
1061         priv->rx_tc = TC_DEFAULT;
1062         init_dma_desc_rings(dev);
1063
1064         /* DMA initialization and SW reset */
1065         ret = sxgbe_init_dma_engine(priv);
1066         if (ret < 0) {
1067                 netdev_err(dev, "%s: DMA initialization failed\n", __func__);
1068                 goto init_error;
1069         }
1070
1071         /*  MTL initialization */
1072         sxgbe_init_mtl_engine(priv);
1073
1074         /* Copy the MAC addr into the HW  */
1075         priv->hw->mac->set_umac_addr(priv->ioaddr, dev->dev_addr, 0);
1076
1077         /* Initialize the MAC Core */
1078         priv->hw->mac->core_init(priv->ioaddr);
1079
1080         /* Request the IRQ lines */
1081         ret = devm_request_irq(priv->device, priv->irq, sxgbe_common_interrupt,
1082                                IRQF_SHARED, dev->name, dev);
1083         if (unlikely(ret < 0)) {
1084                 netdev_err(dev, "%s: ERROR: allocating the IRQ %d (error: %d)\n",
1085                            __func__, priv->irq, ret);
1086                 goto init_error;
1087         }
1088
1089         /* If the LPI irq is different from the mac irq
1090          * register a dedicated handler
1091          */
1092         if (priv->lpi_irq != dev->irq) {
1093                 ret = devm_request_irq(priv->device, priv->lpi_irq,
1094                                        sxgbe_common_interrupt,
1095                                        IRQF_SHARED, dev->name, dev);
1096                 if (unlikely(ret < 0)) {
1097                         netdev_err(dev, "%s: ERROR: allocating the LPI IRQ %d (%d)\n",
1098                                    __func__, priv->lpi_irq, ret);
1099                         goto init_error;
1100                 }
1101         }
1102
1103         /* Request TX DMA irq lines */
1104         SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
1105                 ret = devm_request_irq(priv->device,
1106                                        (priv->txq[queue_num])->irq_no,
1107                                        sxgbe_tx_interrupt, 0,
1108                                        dev->name, priv->txq[queue_num]);
1109                 if (unlikely(ret < 0)) {
1110                         netdev_err(dev, "%s: ERROR: allocating TX IRQ %d (error: %d)\n",
1111                                    __func__, priv->irq, ret);
1112                         goto init_error;
1113                 }
1114         }
1115
1116         /* Request RX DMA irq lines */
1117         SXGBE_FOR_EACH_QUEUE(SXGBE_RX_QUEUES, queue_num) {
1118                 ret = devm_request_irq(priv->device,
1119                                        (priv->rxq[queue_num])->irq_no,
1120                                        sxgbe_rx_interrupt, 0,
1121                                        dev->name, priv->rxq[queue_num]);
1122                 if (unlikely(ret < 0)) {
1123                         netdev_err(dev, "%s: ERROR: allocating TX IRQ %d (error: %d)\n",
1124                                    __func__, priv->irq, ret);
1125                         goto init_error;
1126                 }
1127         }
1128
1129         /* Enable the MAC Rx/Tx */
1130         priv->hw->mac->enable_tx(priv->ioaddr, true);
1131         priv->hw->mac->enable_rx(priv->ioaddr, true);
1132
1133         /* Set the HW DMA mode and the COE */
1134         sxgbe_mtl_operation_mode(priv);
1135
1136         /* Extra statistics */
1137         memset(&priv->xstats, 0, sizeof(struct sxgbe_extra_stats));
1138
1139         priv->xstats.tx_threshold = priv->tx_tc;
1140         priv->xstats.rx_threshold = priv->rx_tc;
1141
1142         /* Start the ball rolling... */
1143         netdev_dbg(dev, "DMA RX/TX processes started...\n");
1144         priv->hw->dma->start_tx(priv->ioaddr, SXGBE_TX_QUEUES);
1145         priv->hw->dma->start_rx(priv->ioaddr, SXGBE_RX_QUEUES);
1146
1147         if (priv->phydev)
1148                 phy_start(priv->phydev);
1149
1150         /* initalise TX coalesce parameters */
1151         sxgbe_tx_init_coalesce(priv);
1152
1153         if ((priv->use_riwt) && (priv->hw->dma->rx_watchdog)) {
1154                 priv->rx_riwt = SXGBE_MAX_DMA_RIWT;
1155                 priv->hw->dma->rx_watchdog(priv->ioaddr, SXGBE_MAX_DMA_RIWT);
1156         }
1157
1158         priv->tx_lpi_timer = SXGBE_DEFAULT_LPI_TIMER;
1159         priv->eee_enabled = sxgbe_eee_init(priv);
1160
1161         napi_enable(&priv->napi);
1162         netif_start_queue(dev);
1163
1164         return 0;
1165
1166 init_error:
1167         free_dma_desc_resources(priv);
1168         if (priv->phydev)
1169                 phy_disconnect(priv->phydev);
1170 phy_error:
1171         clk_disable_unprepare(priv->sxgbe_clk);
1172
1173         return ret;
1174 }
1175
1176 /**
1177  *  sxgbe_release - close entry point of the driver
1178  *  @dev : device pointer.
1179  *  Description:
1180  *  This is the stop entry point of the driver.
1181  */
1182 static int sxgbe_release(struct net_device *dev)
1183 {
1184         struct sxgbe_priv_data *priv = netdev_priv(dev);
1185
1186         if (priv->eee_enabled)
1187                 del_timer_sync(&priv->eee_ctrl_timer);
1188
1189         /* Stop and disconnect the PHY */
1190         if (priv->phydev) {
1191                 phy_stop(priv->phydev);
1192                 phy_disconnect(priv->phydev);
1193                 priv->phydev = NULL;
1194         }
1195
1196         netif_tx_stop_all_queues(dev);
1197
1198         napi_disable(&priv->napi);
1199
1200         /* delete TX timers */
1201         sxgbe_tx_del_timer(priv);
1202
1203         /* Stop TX/RX DMA and clear the descriptors */
1204         priv->hw->dma->stop_tx(priv->ioaddr, SXGBE_TX_QUEUES);
1205         priv->hw->dma->stop_rx(priv->ioaddr, SXGBE_RX_QUEUES);
1206
1207         /* disable MTL queue */
1208         sxgbe_disable_mtl_engine(priv);
1209
1210         /* Release and free the Rx/Tx resources */
1211         free_dma_desc_resources(priv);
1212
1213         /* Disable the MAC Rx/Tx */
1214         priv->hw->mac->enable_tx(priv->ioaddr, false);
1215         priv->hw->mac->enable_rx(priv->ioaddr, false);
1216
1217         clk_disable_unprepare(priv->sxgbe_clk);
1218
1219         return 0;
1220 }
1221
1222 /* Prepare first Tx descriptor for doing TSO operation */
1223 void sxgbe_tso_prepare(struct sxgbe_priv_data *priv,
1224                        struct sxgbe_tx_norm_desc *first_desc,
1225                        struct sk_buff *skb)
1226 {
1227         unsigned int total_hdr_len, tcp_hdr_len;
1228
1229         /* Write first Tx descriptor with appropriate value */
1230         tcp_hdr_len = tcp_hdrlen(skb);
1231         total_hdr_len = skb_transport_offset(skb) + tcp_hdr_len;
1232
1233         first_desc->tdes01 = dma_map_single(priv->device, skb->data,
1234                                             total_hdr_len, DMA_TO_DEVICE);
1235         if (dma_mapping_error(priv->device, first_desc->tdes01))
1236                 pr_err("%s: TX dma mapping failed!!\n", __func__);
1237
1238         first_desc->tdes23.tx_rd_des23.first_desc = 1;
1239         priv->hw->desc->tx_desc_enable_tse(first_desc, 1, total_hdr_len,
1240                                            tcp_hdr_len,
1241                                            skb->len - total_hdr_len);
1242 }
1243
1244 /**
1245  *  sxgbe_xmit: Tx entry point of the driver
1246  *  @skb : the socket buffer
1247  *  @dev : device pointer
1248  *  Description : this is the tx entry point of the driver.
1249  *  It programs the chain or the ring and supports oversized frames
1250  *  and SG feature.
1251  */
1252 static netdev_tx_t sxgbe_xmit(struct sk_buff *skb, struct net_device *dev)
1253 {
1254         unsigned int entry, frag_num;
1255         int cksum_flag = 0;
1256         struct netdev_queue *dev_txq;
1257         unsigned txq_index = skb_get_queue_mapping(skb);
1258         struct sxgbe_priv_data *priv = netdev_priv(dev);
1259         unsigned int tx_rsize = priv->dma_tx_size;
1260         struct sxgbe_tx_queue *tqueue = priv->txq[txq_index];
1261         struct sxgbe_tx_norm_desc *tx_desc, *first_desc;
1262         struct sxgbe_tx_ctxt_desc *ctxt_desc = NULL;
1263         int nr_frags = skb_shinfo(skb)->nr_frags;
1264         int no_pagedlen = skb_headlen(skb);
1265         int is_jumbo = 0;
1266         u16 cur_mss = skb_shinfo(skb)->gso_size;
1267         u32 ctxt_desc_req = 0;
1268
1269         /* get the TX queue handle */
1270         dev_txq = netdev_get_tx_queue(dev, txq_index);
1271
1272         if (unlikely(skb_is_gso(skb) && tqueue->prev_mss != cur_mss))
1273                 ctxt_desc_req = 1;
1274
1275         if (unlikely(vlan_tx_tag_present(skb) ||
1276                      ((skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP) &&
1277                       tqueue->hwts_tx_en)))
1278                 ctxt_desc_req = 1;
1279
1280         /* get the spinlock */
1281         spin_lock(&tqueue->tx_lock);
1282
1283         if (priv->tx_path_in_lpi_mode)
1284                 sxgbe_disable_eee_mode(priv);
1285
1286         if (unlikely(sxgbe_tx_avail(tqueue, tx_rsize) < nr_frags + 1)) {
1287                 if (!netif_tx_queue_stopped(dev_txq)) {
1288                         netif_tx_stop_queue(dev_txq);
1289                         netdev_err(dev, "%s: Tx Ring is full when %d queue is awake\n",
1290                                    __func__, txq_index);
1291                 }
1292                 /* release the spin lock in case of BUSY */
1293                 spin_unlock(&tqueue->tx_lock);
1294                 return NETDEV_TX_BUSY;
1295         }
1296
1297         entry = tqueue->cur_tx % tx_rsize;
1298         tx_desc = tqueue->dma_tx + entry;
1299
1300         first_desc = tx_desc;
1301         if (ctxt_desc_req)
1302                 ctxt_desc = (struct sxgbe_tx_ctxt_desc *)first_desc;
1303
1304         /* save the skb address */
1305         tqueue->tx_skbuff[entry] = skb;
1306
1307         if (!is_jumbo) {
1308                 if (likely(skb_is_gso(skb))) {
1309                         /* TSO support */
1310                         if (unlikely(tqueue->prev_mss != cur_mss)) {
1311                                 priv->hw->desc->tx_ctxt_desc_set_mss(
1312                                                 ctxt_desc, cur_mss);
1313                                 priv->hw->desc->tx_ctxt_desc_set_tcmssv(
1314                                                 ctxt_desc);
1315                                 priv->hw->desc->tx_ctxt_desc_reset_ostc(
1316                                                 ctxt_desc);
1317                                 priv->hw->desc->tx_ctxt_desc_set_ctxt(
1318                                                 ctxt_desc);
1319                                 priv->hw->desc->tx_ctxt_desc_set_owner(
1320                                                 ctxt_desc);
1321
1322                                 entry = (++tqueue->cur_tx) % tx_rsize;
1323                                 first_desc = tqueue->dma_tx + entry;
1324
1325                                 tqueue->prev_mss = cur_mss;
1326                         }
1327                         sxgbe_tso_prepare(priv, first_desc, skb);
1328                 } else {
1329                         tx_desc->tdes01 = dma_map_single(priv->device,
1330                                                          skb->data, no_pagedlen, DMA_TO_DEVICE);
1331                         if (dma_mapping_error(priv->device, tx_desc->tdes01))
1332                                 netdev_err(dev, "%s: TX dma mapping failed!!\n",
1333                                            __func__);
1334
1335                         priv->hw->desc->prepare_tx_desc(tx_desc, 1, no_pagedlen,
1336                                                         no_pagedlen, cksum_flag);
1337                 }
1338         }
1339
1340         for (frag_num = 0; frag_num < nr_frags; frag_num++) {
1341                 const skb_frag_t *frag = &skb_shinfo(skb)->frags[frag_num];
1342                 int len = skb_frag_size(frag);
1343
1344                 entry = (++tqueue->cur_tx) % tx_rsize;
1345                 tx_desc = tqueue->dma_tx + entry;
1346                 tx_desc->tdes01 = skb_frag_dma_map(priv->device, frag, 0, len,
1347                                                    DMA_TO_DEVICE);
1348
1349                 tqueue->tx_skbuff_dma[entry] = tx_desc->tdes01;
1350                 tqueue->tx_skbuff[entry] = NULL;
1351
1352                 /* prepare the descriptor */
1353                 priv->hw->desc->prepare_tx_desc(tx_desc, 0, len,
1354                                                 len, cksum_flag);
1355                 /* memory barrier to flush descriptor */
1356                 wmb();
1357
1358                 /* set the owner */
1359                 priv->hw->desc->set_tx_owner(tx_desc);
1360         }
1361
1362         /* close the descriptors */
1363         priv->hw->desc->close_tx_desc(tx_desc);
1364
1365         /* memory barrier to flush descriptor */
1366         wmb();
1367
1368         tqueue->tx_count_frames += nr_frags + 1;
1369         if (tqueue->tx_count_frames > tqueue->tx_coal_frames) {
1370                 priv->hw->desc->clear_tx_ic(tx_desc);
1371                 priv->xstats.tx_reset_ic_bit++;
1372                 mod_timer(&tqueue->txtimer,
1373                           SXGBE_COAL_TIMER(tqueue->tx_coal_timer));
1374         } else {
1375                 tqueue->tx_count_frames = 0;
1376         }
1377
1378         /* set owner for first desc */
1379         priv->hw->desc->set_tx_owner(first_desc);
1380
1381         /* memory barrier to flush descriptor */
1382         wmb();
1383
1384         tqueue->cur_tx++;
1385
1386         /* display current ring */
1387         netif_dbg(priv, pktdata, dev, "%s: curr %d dirty=%d entry=%d, first=%p, nfrags=%d\n",
1388                   __func__, tqueue->cur_tx % tx_rsize,
1389                   tqueue->dirty_tx % tx_rsize, entry,
1390                   first_desc, nr_frags);
1391
1392         if (unlikely(sxgbe_tx_avail(tqueue, tx_rsize) <= (MAX_SKB_FRAGS + 1))) {
1393                 netif_dbg(priv, hw, dev, "%s: stop transmitted packets\n",
1394                           __func__);
1395                 netif_tx_stop_queue(dev_txq);
1396         }
1397
1398         dev->stats.tx_bytes += skb->len;
1399
1400         if (unlikely((skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP) &&
1401                      tqueue->hwts_tx_en)) {
1402                 /* declare that device is doing timestamping */
1403                 skb_shinfo(skb)->tx_flags |= SKBTX_IN_PROGRESS;
1404                 priv->hw->desc->tx_enable_tstamp(first_desc);
1405         }
1406
1407         if (!tqueue->hwts_tx_en)
1408                 skb_tx_timestamp(skb);
1409
1410         priv->hw->dma->enable_dma_transmission(priv->ioaddr, txq_index);
1411
1412         spin_unlock(&tqueue->tx_lock);
1413
1414         return NETDEV_TX_OK;
1415 }
1416
1417 /**
1418  * sxgbe_rx_refill: refill used skb preallocated buffers
1419  * @priv: driver private structure
1420  * Description : this is to reallocate the skb for the reception process
1421  * that is based on zero-copy.
1422  */
1423 static void sxgbe_rx_refill(struct sxgbe_priv_data *priv)
1424 {
1425         unsigned int rxsize = priv->dma_rx_size;
1426         int bfsize = priv->dma_buf_sz;
1427         u8 qnum = priv->cur_rx_qnum;
1428
1429         for (; priv->rxq[qnum]->cur_rx - priv->rxq[qnum]->dirty_rx > 0;
1430              priv->rxq[qnum]->dirty_rx++) {
1431                 unsigned int entry = priv->rxq[qnum]->dirty_rx % rxsize;
1432                 struct sxgbe_rx_norm_desc *p;
1433
1434                 p = priv->rxq[qnum]->dma_rx + entry;
1435
1436                 if (likely(priv->rxq[qnum]->rx_skbuff[entry] == NULL)) {
1437                         struct sk_buff *skb;
1438
1439                         skb = netdev_alloc_skb_ip_align(priv->dev, bfsize);
1440
1441                         if (unlikely(skb == NULL))
1442                                 break;
1443
1444                         priv->rxq[qnum]->rx_skbuff[entry] = skb;
1445                         priv->rxq[qnum]->rx_skbuff_dma[entry] =
1446                                 dma_map_single(priv->device, skb->data, bfsize,
1447                                                DMA_FROM_DEVICE);
1448
1449                         p->rdes23.rx_rd_des23.buf2_addr =
1450                                 priv->rxq[qnum]->rx_skbuff_dma[entry];
1451                 }
1452
1453                 /* Added memory barrier for RX descriptor modification */
1454                 wmb();
1455                 priv->hw->desc->set_rx_owner(p);
1456                 /* Added memory barrier for RX descriptor modification */
1457                 wmb();
1458         }
1459 }
1460
1461 /**
1462  * sxgbe_rx: receive the frames from the remote host
1463  * @priv: driver private structure
1464  * @limit: napi bugget.
1465  * Description :  this the function called by the napi poll method.
1466  * It gets all the frames inside the ring.
1467  */
1468 static int sxgbe_rx(struct sxgbe_priv_data *priv, int limit)
1469 {
1470         u8 qnum = priv->cur_rx_qnum;
1471         unsigned int rxsize = priv->dma_rx_size;
1472         unsigned int entry = priv->rxq[qnum]->cur_rx;
1473         unsigned int next_entry = 0;
1474         unsigned int count = 0;
1475         int checksum;
1476         int status;
1477
1478         while (count < limit) {
1479                 struct sxgbe_rx_norm_desc *p;
1480                 struct sk_buff *skb;
1481                 int frame_len;
1482
1483                 p = priv->rxq[qnum]->dma_rx + entry;
1484
1485                 if (priv->hw->desc->get_rx_owner(p))
1486                         break;
1487
1488                 count++;
1489
1490                 next_entry = (++priv->rxq[qnum]->cur_rx) % rxsize;
1491                 prefetch(priv->rxq[qnum]->dma_rx + next_entry);
1492
1493                 /* Read the status of the incoming frame and also get checksum
1494                  * value based on whether it is enabled in SXGBE hardware or
1495                  * not.
1496                  */
1497                 status = priv->hw->desc->rx_wbstatus(p, &priv->xstats,
1498                                                      &checksum);
1499                 if (unlikely(status < 0)) {
1500                         entry = next_entry;
1501                         continue;
1502                 }
1503                 if (unlikely(!priv->rxcsum_insertion))
1504                         checksum = CHECKSUM_NONE;
1505
1506                 skb = priv->rxq[qnum]->rx_skbuff[entry];
1507
1508                 if (unlikely(!skb))
1509                         netdev_err(priv->dev, "rx descriptor is not consistent\n");
1510
1511                 prefetch(skb->data - NET_IP_ALIGN);
1512                 priv->rxq[qnum]->rx_skbuff[entry] = NULL;
1513
1514                 frame_len = priv->hw->desc->get_rx_frame_len(p);
1515
1516                 skb_put(skb, frame_len);
1517
1518                 skb->ip_summed = checksum;
1519                 if (checksum == CHECKSUM_NONE)
1520                         netif_receive_skb(skb);
1521                 else
1522                         napi_gro_receive(&priv->napi, skb);
1523
1524                 entry = next_entry;
1525         }
1526
1527         sxgbe_rx_refill(priv);
1528
1529         return count;
1530 }
1531
1532 /**
1533  *  sxgbe_poll - sxgbe poll method (NAPI)
1534  *  @napi : pointer to the napi structure.
1535  *  @budget : maximum number of packets that the current CPU can receive from
1536  *            all interfaces.
1537  *  Description :
1538  *  To look at the incoming frames and clear the tx resources.
1539  */
1540 static int sxgbe_poll(struct napi_struct *napi, int budget)
1541 {
1542         struct sxgbe_priv_data *priv = container_of(napi,
1543                                                     struct sxgbe_priv_data, napi);
1544         int work_done = 0;
1545         u8 qnum = priv->cur_rx_qnum;
1546
1547         priv->xstats.napi_poll++;
1548         /* first, clean the tx queues */
1549         sxgbe_tx_all_clean(priv);
1550
1551         work_done = sxgbe_rx(priv, budget);
1552         if (work_done < budget) {
1553                 napi_complete(napi);
1554                 priv->hw->dma->enable_dma_irq(priv->ioaddr, qnum);
1555         }
1556
1557         return work_done;
1558 }
1559
1560 /**
1561  *  sxgbe_tx_timeout
1562  *  @dev : Pointer to net device structure
1563  *  Description: this function is called when a packet transmission fails to
1564  *   complete within a reasonable time. The driver will mark the error in the
1565  *   netdev structure and arrange for the device to be reset to a sane state
1566  *   in order to transmit a new packet.
1567  */
1568 static void sxgbe_tx_timeout(struct net_device *dev)
1569 {
1570         struct sxgbe_priv_data *priv = netdev_priv(dev);
1571
1572         sxgbe_reset_all_tx_queues(priv);
1573 }
1574
1575 /**
1576  *  sxgbe_common_interrupt - main ISR
1577  *  @irq: interrupt number.
1578  *  @dev_id: to pass the net device pointer.
1579  *  Description: this is the main driver interrupt service routine.
1580  *  It calls the DMA ISR and also the core ISR to manage PMT, MMC, LPI
1581  *  interrupts.
1582  */
1583 static irqreturn_t sxgbe_common_interrupt(int irq, void *dev_id)
1584 {
1585         struct net_device *netdev = (struct net_device *)dev_id;
1586         struct sxgbe_priv_data *priv = netdev_priv(netdev);
1587         int status;
1588
1589         status = priv->hw->mac->host_irq_status(priv->ioaddr, &priv->xstats);
1590         /* For LPI we need to save the tx status */
1591         if (status & TX_ENTRY_LPI_MODE) {
1592                 priv->xstats.tx_lpi_entry_n++;
1593                 priv->tx_path_in_lpi_mode = true;
1594         }
1595         if (status & TX_EXIT_LPI_MODE) {
1596                 priv->xstats.tx_lpi_exit_n++;
1597                 priv->tx_path_in_lpi_mode = false;
1598         }
1599         if (status & RX_ENTRY_LPI_MODE)
1600                 priv->xstats.rx_lpi_entry_n++;
1601         if (status & RX_EXIT_LPI_MODE)
1602                 priv->xstats.rx_lpi_exit_n++;
1603
1604         return IRQ_HANDLED;
1605 }
1606
1607 /**
1608  *  sxgbe_tx_interrupt - TX DMA ISR
1609  *  @irq: interrupt number.
1610  *  @dev_id: to pass the net device pointer.
1611  *  Description: this is the tx dma interrupt service routine.
1612  */
1613 static irqreturn_t sxgbe_tx_interrupt(int irq, void *dev_id)
1614 {
1615         int status;
1616         struct sxgbe_tx_queue *txq = (struct sxgbe_tx_queue *)dev_id;
1617         struct sxgbe_priv_data *priv = txq->priv_ptr;
1618
1619         /* get the channel status */
1620         status = priv->hw->dma->tx_dma_int_status(priv->ioaddr, txq->queue_no,
1621                                                   &priv->xstats);
1622         /* check for normal path */
1623         if (likely((status & handle_tx)))
1624                 napi_schedule(&priv->napi);
1625
1626         /* check for unrecoverable error */
1627         if (unlikely((status & tx_hard_error)))
1628                 sxgbe_restart_tx_queue(priv, txq->queue_no);
1629
1630         /* check for TC configuration change */
1631         if (unlikely((status & tx_bump_tc) &&
1632                      (priv->tx_tc != SXGBE_MTL_SFMODE) &&
1633                      (priv->tx_tc < 512))) {
1634                 /* step of TX TC is 32 till 128, otherwise 64 */
1635                 priv->tx_tc += (priv->tx_tc < 128) ? 32 : 64;
1636                 priv->hw->mtl->set_tx_mtl_mode(priv->ioaddr,
1637                                                txq->queue_no, priv->tx_tc);
1638                 priv->xstats.tx_threshold = priv->tx_tc;
1639         }
1640
1641         return IRQ_HANDLED;
1642 }
1643
1644 /**
1645  *  sxgbe_rx_interrupt - RX DMA ISR
1646  *  @irq: interrupt number.
1647  *  @dev_id: to pass the net device pointer.
1648  *  Description: this is the rx dma interrupt service routine.
1649  */
1650 static irqreturn_t sxgbe_rx_interrupt(int irq, void *dev_id)
1651 {
1652         int status;
1653         struct sxgbe_rx_queue *rxq = (struct sxgbe_rx_queue *)dev_id;
1654         struct sxgbe_priv_data *priv = rxq->priv_ptr;
1655
1656         /* get the channel status */
1657         status = priv->hw->dma->rx_dma_int_status(priv->ioaddr, rxq->queue_no,
1658                                                   &priv->xstats);
1659
1660         if (likely((status & handle_rx) && (napi_schedule_prep(&priv->napi)))) {
1661                 priv->hw->dma->disable_dma_irq(priv->ioaddr, rxq->queue_no);
1662                 __napi_schedule(&priv->napi);
1663         }
1664
1665         /* check for TC configuration change */
1666         if (unlikely((status & rx_bump_tc) &&
1667                      (priv->rx_tc != SXGBE_MTL_SFMODE) &&
1668                      (priv->rx_tc < 128))) {
1669                 /* step of TC is 32 */
1670                 priv->rx_tc += 32;
1671                 priv->hw->mtl->set_rx_mtl_mode(priv->ioaddr,
1672                                                rxq->queue_no, priv->rx_tc);
1673                 priv->xstats.rx_threshold = priv->rx_tc;
1674         }
1675
1676         return IRQ_HANDLED;
1677 }
1678
1679 static inline u64 sxgbe_get_stat64(void __iomem *ioaddr, int reg_lo, int reg_hi)
1680 {
1681         u64 val = readl(ioaddr + reg_lo);
1682
1683         val |= ((u64)readl(ioaddr + reg_hi)) << 32;
1684
1685         return val;
1686 }
1687
1688
1689 /*  sxgbe_get_stats64 - entry point to see statistical information of device
1690  *  @dev : device pointer.
1691  *  @stats : pointer to hold all the statistical information of device.
1692  *  Description:
1693  *  This function is a driver entry point whenever ifconfig command gets
1694  *  executed to see device statistics. Statistics are number of
1695  *  bytes sent or received, errors occured etc.
1696  *  Return value:
1697  *  This function returns various statistical information of device.
1698  */
1699 static struct rtnl_link_stats64 *sxgbe_get_stats64(struct net_device *dev,
1700                                                    struct rtnl_link_stats64 *stats)
1701 {
1702         struct sxgbe_priv_data *priv = netdev_priv(dev);
1703         void __iomem *ioaddr = priv->ioaddr;
1704         u64 count;
1705
1706         spin_lock(&priv->stats_lock);
1707         /* Freeze the counter registers before reading value otherwise it may
1708          * get updated by hardware while we are reading them
1709          */
1710         writel(SXGBE_MMC_CTRL_CNT_FRZ, ioaddr + SXGBE_MMC_CTL_REG);
1711
1712         stats->rx_bytes = sxgbe_get_stat64(ioaddr,
1713                                            SXGBE_MMC_RXOCTETLO_GCNT_REG,
1714                                            SXGBE_MMC_RXOCTETHI_GCNT_REG);
1715
1716         stats->rx_packets = sxgbe_get_stat64(ioaddr,
1717                                              SXGBE_MMC_RXFRAMELO_GBCNT_REG,
1718                                              SXGBE_MMC_RXFRAMEHI_GBCNT_REG);
1719
1720         stats->multicast = sxgbe_get_stat64(ioaddr,
1721                                             SXGBE_MMC_RXMULTILO_GCNT_REG,
1722                                             SXGBE_MMC_RXMULTIHI_GCNT_REG);
1723
1724         stats->rx_crc_errors = sxgbe_get_stat64(ioaddr,
1725                                                 SXGBE_MMC_RXCRCERRLO_REG,
1726                                                 SXGBE_MMC_RXCRCERRHI_REG);
1727
1728         stats->rx_length_errors = sxgbe_get_stat64(ioaddr,
1729                                                   SXGBE_MMC_RXLENERRLO_REG,
1730                                                   SXGBE_MMC_RXLENERRHI_REG);
1731
1732         stats->rx_missed_errors = sxgbe_get_stat64(ioaddr,
1733                                                    SXGBE_MMC_RXFIFOOVERFLOWLO_GBCNT_REG,
1734                                                    SXGBE_MMC_RXFIFOOVERFLOWHI_GBCNT_REG);
1735
1736         stats->tx_bytes = sxgbe_get_stat64(ioaddr,
1737                                            SXGBE_MMC_TXOCTETLO_GCNT_REG,
1738                                            SXGBE_MMC_TXOCTETHI_GCNT_REG);
1739
1740         count = sxgbe_get_stat64(ioaddr, SXGBE_MMC_TXFRAMELO_GBCNT_REG,
1741                                  SXGBE_MMC_TXFRAMEHI_GBCNT_REG);
1742
1743         stats->tx_errors = sxgbe_get_stat64(ioaddr, SXGBE_MMC_TXFRAMELO_GCNT_REG,
1744                                             SXGBE_MMC_TXFRAMEHI_GCNT_REG);
1745         stats->tx_errors = count - stats->tx_errors;
1746         stats->tx_packets = count;
1747         stats->tx_fifo_errors = sxgbe_get_stat64(ioaddr, SXGBE_MMC_TXUFLWLO_GBCNT_REG,
1748                                                  SXGBE_MMC_TXUFLWHI_GBCNT_REG);
1749         writel(0, ioaddr + SXGBE_MMC_CTL_REG);
1750         spin_unlock(&priv->stats_lock);
1751
1752         return stats;
1753 }
1754
1755 /*  sxgbe_set_features - entry point to set offload features of the device.
1756  *  @dev : device pointer.
1757  *  @features : features which are required to be set.
1758  *  Description:
1759  *  This function is a driver entry point and called by Linux kernel whenever
1760  *  any device features are set or reset by user.
1761  *  Return value:
1762  *  This function returns 0 after setting or resetting device features.
1763  */
1764 static int sxgbe_set_features(struct net_device *dev,
1765                               netdev_features_t features)
1766 {
1767         struct sxgbe_priv_data *priv = netdev_priv(dev);
1768         netdev_features_t changed = dev->features ^ features;
1769
1770         if (changed & NETIF_F_RXCSUM) {
1771                 if (features & NETIF_F_RXCSUM) {
1772                         priv->hw->mac->enable_rx_csum(priv->ioaddr);
1773                         priv->rxcsum_insertion = true;
1774                 } else {
1775                         priv->hw->mac->disable_rx_csum(priv->ioaddr);
1776                         priv->rxcsum_insertion = false;
1777                 }
1778         }
1779
1780         return 0;
1781 }
1782
1783 /*  sxgbe_change_mtu - entry point to change MTU size for the device.
1784  *  @dev : device pointer.
1785  *  @new_mtu : the new MTU size for the device.
1786  *  Description: the Maximum Transfer Unit (MTU) is used by the network layer
1787  *  to drive packet transmission. Ethernet has an MTU of 1500 octets
1788  *  (ETH_DATA_LEN). This value can be changed with ifconfig.
1789  *  Return value:
1790  *  0 on success and an appropriate (-)ve integer as defined in errno.h
1791  *  file on failure.
1792  */
1793 static int sxgbe_change_mtu(struct net_device *dev, int new_mtu)
1794 {
1795         /* RFC 791, page 25, "Every internet module must be able to forward
1796          * a datagram of 68 octets without further fragmentation."
1797          */
1798         if (new_mtu < MIN_MTU || (new_mtu > MAX_MTU)) {
1799                 netdev_err(dev, "invalid MTU, MTU should be in between %d and %d\n",
1800                            MIN_MTU, MAX_MTU);
1801                 return -EINVAL;
1802         }
1803
1804         /* Return if the buffer sizes will not change */
1805         if (dev->mtu == new_mtu)
1806                 return 0;
1807
1808         dev->mtu = new_mtu;
1809
1810         if (!netif_running(dev))
1811                 return 0;
1812
1813         /* Recevice ring buffer size is needed to be set based on MTU. If MTU is
1814          * changed then reinitilisation of the receive ring buffers need to be
1815          * done. Hence bring interface down and bring interface back up
1816          */
1817         sxgbe_release(dev);
1818         return sxgbe_open(dev);
1819 }
1820
1821 static void sxgbe_set_umac_addr(void __iomem *ioaddr, unsigned char *addr,
1822                                 unsigned int reg_n)
1823 {
1824         unsigned long data;
1825
1826         data = (addr[5] << 8) | addr[4];
1827         /* For MAC Addr registers se have to set the Address Enable (AE)
1828          * bit that has no effect on the High Reg 0 where the bit 31 (MO)
1829          * is RO.
1830          */
1831         writel(data | SXGBE_HI_REG_AE, ioaddr + SXGBE_ADDR_HIGH(reg_n));
1832         data = (addr[3] << 24) | (addr[2] << 16) | (addr[1] << 8) | addr[0];
1833         writel(data, ioaddr + SXGBE_ADDR_LOW(reg_n));
1834 }
1835
1836 /**
1837  * sxgbe_set_rx_mode - entry point for setting different receive mode of
1838  * a device. unicast, multicast addressing
1839  * @dev : pointer to the device structure
1840  * Description:
1841  * This function is a driver entry point which gets called by the kernel
1842  * whenever different receive mode like unicast, multicast and promiscuous
1843  * must be enabled/disabled.
1844  * Return value:
1845  * void.
1846  */
1847 static void sxgbe_set_rx_mode(struct net_device *dev)
1848 {
1849         struct sxgbe_priv_data *priv = netdev_priv(dev);
1850         void __iomem *ioaddr = (void __iomem *)priv->ioaddr;
1851         unsigned int value = 0;
1852         u32 mc_filter[2];
1853         struct netdev_hw_addr *ha;
1854         int reg = 1;
1855
1856         netdev_dbg(dev, "%s: # mcasts %d, # unicast %d\n",
1857                    __func__, netdev_mc_count(dev), netdev_uc_count(dev));
1858
1859         if (dev->flags & IFF_PROMISC) {
1860                 value = SXGBE_FRAME_FILTER_PR;
1861
1862         } else if ((netdev_mc_count(dev) > SXGBE_HASH_TABLE_SIZE) ||
1863                    (dev->flags & IFF_ALLMULTI)) {
1864                 value = SXGBE_FRAME_FILTER_PM;  /* pass all multi */
1865                 writel(0xffffffff, ioaddr + SXGBE_HASH_HIGH);
1866                 writel(0xffffffff, ioaddr + SXGBE_HASH_LOW);
1867
1868         } else if (!netdev_mc_empty(dev)) {
1869                 /* Hash filter for multicast */
1870                 value = SXGBE_FRAME_FILTER_HMC;
1871
1872                 memset(mc_filter, 0, sizeof(mc_filter));
1873                 netdev_for_each_mc_addr(ha, dev) {
1874                         /* The upper 6 bits of the calculated CRC are used to
1875                          * index the contens of the hash table
1876                          */
1877                         int bit_nr = bitrev32(~crc32_le(~0, ha->addr, 6)) >> 26;
1878
1879                         /* The most significant bit determines the register to
1880                          * use (H/L) while the other 5 bits determine the bit
1881                          * within the register.
1882                          */
1883                         mc_filter[bit_nr >> 5] |= 1 << (bit_nr & 31);
1884                 }
1885                 writel(mc_filter[0], ioaddr + SXGBE_HASH_LOW);
1886                 writel(mc_filter[1], ioaddr + SXGBE_HASH_HIGH);
1887         }
1888
1889         /* Handle multiple unicast addresses (perfect filtering) */
1890         if (netdev_uc_count(dev) > SXGBE_MAX_PERFECT_ADDRESSES)
1891                 /* Switch to promiscuous mode if more than 16 addrs
1892                  * are required
1893                  */
1894                 value |= SXGBE_FRAME_FILTER_PR;
1895         else {
1896                 netdev_for_each_uc_addr(ha, dev) {
1897                         sxgbe_set_umac_addr(ioaddr, ha->addr, reg);
1898                         reg++;
1899                 }
1900         }
1901 #ifdef FRAME_FILTER_DEBUG
1902         /* Enable Receive all mode (to debug filtering_fail errors) */
1903         value |= SXGBE_FRAME_FILTER_RA;
1904 #endif
1905         writel(value, ioaddr + SXGBE_FRAME_FILTER);
1906
1907         netdev_dbg(dev, "Filter: 0x%08x\n\tHash: HI 0x%08x, LO 0x%08x\n",
1908                    readl(ioaddr + SXGBE_FRAME_FILTER),
1909                    readl(ioaddr + SXGBE_HASH_HIGH),
1910                    readl(ioaddr + SXGBE_HASH_LOW));
1911 }
1912
1913 /**
1914  * sxgbe_config - entry point for changing configuration mode passed on by
1915  * ifconfig
1916  * @dev : pointer to the device structure
1917  * @map : pointer to the device mapping structure
1918  * Description:
1919  * This function is a driver entry point which gets called by the kernel
1920  * whenever some device configuration is changed.
1921  * Return value:
1922  * This function returns 0 if success and appropriate error otherwise.
1923  */
1924 static int sxgbe_config(struct net_device *dev, struct ifmap *map)
1925 {
1926         struct sxgbe_priv_data *priv = netdev_priv(dev);
1927
1928         /* Can't act on a running interface */
1929         if (dev->flags & IFF_UP)
1930                 return -EBUSY;
1931
1932         /* Don't allow changing the I/O address */
1933         if (map->base_addr != (unsigned long)priv->ioaddr) {
1934                 netdev_warn(dev, "can't change I/O address\n");
1935                 return -EOPNOTSUPP;
1936         }
1937
1938         /* Don't allow changing the IRQ */
1939         if (map->irq != priv->irq) {
1940                 netdev_warn(dev, "not change IRQ number %d\n", priv->irq);
1941                 return -EOPNOTSUPP;
1942         }
1943
1944         return 0;
1945 }
1946
1947 #ifdef CONFIG_NET_POLL_CONTROLLER
1948 /**
1949  * sxgbe_poll_controller - entry point for polling receive by device
1950  * @dev : pointer to the device structure
1951  * Description:
1952  * This function is used by NETCONSOLE and other diagnostic tools
1953  * to allow network I/O with interrupts disabled.
1954  * Return value:
1955  * Void.
1956  */
1957 static void sxgbe_poll_controller(struct net_device *dev)
1958 {
1959         struct sxgbe_priv_data *priv = netdev_priv(dev);
1960
1961         disable_irq(priv->irq);
1962         sxgbe_rx_interrupt(priv->irq, dev);
1963         enable_irq(priv->irq);
1964 }
1965 #endif
1966
1967 /*  sxgbe_ioctl - Entry point for the Ioctl
1968  *  @dev: Device pointer.
1969  *  @rq: An IOCTL specefic structure, that can contain a pointer to
1970  *  a proprietary structure used to pass information to the driver.
1971  *  @cmd: IOCTL command
1972  *  Description:
1973  *  Currently it supports the phy_mii_ioctl(...) and HW time stamping.
1974  */
1975 static int sxgbe_ioctl(struct net_device *dev, struct ifreq *rq, int cmd)
1976 {
1977         struct sxgbe_priv_data *priv = netdev_priv(dev);
1978         int ret = -EOPNOTSUPP;
1979
1980         if (!netif_running(dev))
1981                 return -EINVAL;
1982
1983         switch (cmd) {
1984         case SIOCGMIIPHY:
1985         case SIOCGMIIREG:
1986         case SIOCSMIIREG:
1987                 if (!priv->phydev)
1988                         return -EINVAL;
1989                 ret = phy_mii_ioctl(priv->phydev, rq, cmd);
1990                 break;
1991         default:
1992                 break;
1993         }
1994
1995         return ret;
1996 }
1997
1998 static const struct net_device_ops sxgbe_netdev_ops = {
1999         .ndo_open               = sxgbe_open,
2000         .ndo_start_xmit         = sxgbe_xmit,
2001         .ndo_stop               = sxgbe_release,
2002         .ndo_get_stats64        = sxgbe_get_stats64,
2003         .ndo_change_mtu         = sxgbe_change_mtu,
2004         .ndo_set_features       = sxgbe_set_features,
2005         .ndo_set_rx_mode        = sxgbe_set_rx_mode,
2006         .ndo_tx_timeout         = sxgbe_tx_timeout,
2007         .ndo_do_ioctl           = sxgbe_ioctl,
2008         .ndo_set_config         = sxgbe_config,
2009 #ifdef CONFIG_NET_POLL_CONTROLLER
2010         .ndo_poll_controller    = sxgbe_poll_controller,
2011 #endif
2012         .ndo_set_mac_address    = eth_mac_addr,
2013 };
2014
2015 /* Get the hardware ops */
2016 static void sxgbe_get_ops(struct sxgbe_ops * const ops_ptr)
2017 {
2018         ops_ptr->mac            = sxgbe_get_core_ops();
2019         ops_ptr->desc           = sxgbe_get_desc_ops();
2020         ops_ptr->dma            = sxgbe_get_dma_ops();
2021         ops_ptr->mtl            = sxgbe_get_mtl_ops();
2022
2023         /* set the MDIO communication Address/Data regisers */
2024         ops_ptr->mii.addr       = SXGBE_MDIO_SCMD_ADD_REG;
2025         ops_ptr->mii.data       = SXGBE_MDIO_SCMD_DATA_REG;
2026
2027         /* Assigning the default link settings
2028          * no SXGBE defined default values to be set in registers,
2029          * so assigning as 0 for port and duplex
2030          */
2031         ops_ptr->link.port      = 0;
2032         ops_ptr->link.duplex    = 0;
2033         ops_ptr->link.speed     = SXGBE_SPEED_10G;
2034 }
2035
2036 /**
2037  *  sxgbe_hw_init - Init the GMAC device
2038  *  @priv: driver private structure
2039  *  Description: this function checks the HW capability
2040  *  (if supported) and sets the driver's features.
2041  */
2042 static int sxgbe_hw_init(struct sxgbe_priv_data * const priv)
2043 {
2044         u32 ctrl_ids;
2045
2046         priv->hw = kmalloc(sizeof(*priv->hw), GFP_KERNEL);
2047         if(!priv->hw)
2048                 return -ENOMEM;
2049
2050         /* get the hardware ops */
2051         sxgbe_get_ops(priv->hw);
2052
2053         /* get the controller id */
2054         ctrl_ids = priv->hw->mac->get_controller_version(priv->ioaddr);
2055         priv->hw->ctrl_uid = (ctrl_ids & 0x00ff0000) >> 16;
2056         priv->hw->ctrl_id = (ctrl_ids & 0x000000ff);
2057         pr_info("user ID: 0x%x, Controller ID: 0x%x\n",
2058                 priv->hw->ctrl_uid, priv->hw->ctrl_id);
2059
2060         /* get the H/W features */
2061         if (!sxgbe_get_hw_features(priv))
2062                 pr_info("Hardware features not found\n");
2063
2064         if (priv->hw_cap.tx_csum_offload)
2065                 pr_info("TX Checksum offload supported\n");
2066
2067         if (priv->hw_cap.rx_csum_offload)
2068                 pr_info("RX Checksum offload supported\n");
2069
2070         return 0;
2071 }
2072
2073 static int sxgbe_sw_reset(void __iomem *addr)
2074 {
2075         int retry_count = 10;
2076
2077         writel(SXGBE_DMA_SOFT_RESET, addr + SXGBE_DMA_MODE_REG);
2078         while (retry_count--) {
2079                 if (!(readl(addr + SXGBE_DMA_MODE_REG) &
2080                       SXGBE_DMA_SOFT_RESET))
2081                         break;
2082                 mdelay(10);
2083         }
2084
2085         if (retry_count < 0)
2086                 return -EBUSY;
2087
2088         return 0;
2089 }
2090
2091 /**
2092  * sxgbe_drv_probe
2093  * @device: device pointer
2094  * @plat_dat: platform data pointer
2095  * @addr: iobase memory address
2096  * Description: this is the main probe function used to
2097  * call the alloc_etherdev, allocate the priv structure.
2098  */
2099 struct sxgbe_priv_data *sxgbe_drv_probe(struct device *device,
2100                                         struct sxgbe_plat_data *plat_dat,
2101                                         void __iomem *addr)
2102 {
2103         struct sxgbe_priv_data *priv;
2104         struct net_device *ndev;
2105         int ret;
2106         u8 queue_num;
2107
2108         ndev = alloc_etherdev_mqs(sizeof(struct sxgbe_priv_data),
2109                                   SXGBE_TX_QUEUES, SXGBE_RX_QUEUES);
2110         if (!ndev)
2111                 return NULL;
2112
2113         SET_NETDEV_DEV(ndev, device);
2114
2115         priv = netdev_priv(ndev);
2116         priv->device = device;
2117         priv->dev = ndev;
2118
2119         sxgbe_set_ethtool_ops(ndev);
2120         priv->plat = plat_dat;
2121         priv->ioaddr = addr;
2122
2123         ret = sxgbe_sw_reset(priv->ioaddr);
2124         if (ret)
2125                 goto error_free_netdev;
2126
2127         /* Verify driver arguments */
2128         sxgbe_verify_args();
2129
2130         /* Init MAC and get the capabilities */
2131         ret = sxgbe_hw_init(priv);
2132         if (ret)
2133                 goto error_free_netdev;
2134
2135         /* allocate memory resources for Descriptor rings */
2136         ret = txring_mem_alloc(priv);
2137         if (ret)
2138                 goto error_free_hw;
2139
2140         ret = rxring_mem_alloc(priv);
2141         if (ret)
2142                 goto error_free_hw;
2143
2144         ndev->netdev_ops = &sxgbe_netdev_ops;
2145
2146         ndev->hw_features = NETIF_F_SG | NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM |
2147                 NETIF_F_RXCSUM | NETIF_F_TSO | NETIF_F_TSO6 |
2148                 NETIF_F_GRO;
2149         ndev->features |= ndev->hw_features | NETIF_F_HIGHDMA;
2150         ndev->watchdog_timeo = msecs_to_jiffies(TX_TIMEO);
2151
2152         /* assign filtering support */
2153         ndev->priv_flags |= IFF_UNICAST_FLT;
2154
2155         priv->msg_enable = netif_msg_init(debug, default_msg_level);
2156
2157         /* Enable TCP segmentation offload for all DMA channels */
2158         if (priv->hw_cap.tcpseg_offload) {
2159                 SXGBE_FOR_EACH_QUEUE(SXGBE_TX_QUEUES, queue_num) {
2160                         priv->hw->dma->enable_tso(priv->ioaddr, queue_num);
2161                 }
2162         }
2163
2164         /* Enable Rx checksum offload */
2165         if (priv->hw_cap.rx_csum_offload) {
2166                 priv->hw->mac->enable_rx_csum(priv->ioaddr);
2167                 priv->rxcsum_insertion = true;
2168         }
2169
2170         /* Initialise pause frame settings */
2171         priv->rx_pause = 1;
2172         priv->tx_pause = 1;
2173
2174         /* Rx Watchdog is available, enable depend on platform data */
2175         if (!priv->plat->riwt_off) {
2176                 priv->use_riwt = 1;
2177                 pr_info("Enable RX Mitigation via HW Watchdog Timer\n");
2178         }
2179
2180         netif_napi_add(ndev, &priv->napi, sxgbe_poll, 64);
2181
2182         spin_lock_init(&priv->stats_lock);
2183
2184         priv->sxgbe_clk = clk_get(priv->device, SXGBE_RESOURCE_NAME);
2185         if (IS_ERR(priv->sxgbe_clk)) {
2186                 netdev_warn(ndev, "%s: warning: cannot get CSR clock\n",
2187                             __func__);
2188                 goto error_napi_del;
2189         }
2190
2191         /* If a specific clk_csr value is passed from the platform
2192          * this means that the CSR Clock Range selection cannot be
2193          * changed at run-time and it is fixed. Viceversa the driver'll try to
2194          * set the MDC clock dynamically according to the csr actual
2195          * clock input.
2196          */
2197         if (!priv->plat->clk_csr)
2198                 sxgbe_clk_csr_set(priv);
2199         else
2200                 priv->clk_csr = priv->plat->clk_csr;
2201
2202         /* MDIO bus Registration */
2203         ret = sxgbe_mdio_register(ndev);
2204         if (ret < 0) {
2205                 netdev_dbg(ndev, "%s: MDIO bus (id: %d) registration failed\n",
2206                            __func__, priv->plat->bus_id);
2207                 goto error_clk_put;
2208         }
2209
2210         ret = register_netdev(ndev);
2211         if (ret) {
2212                 pr_err("%s: ERROR %i registering the device\n", __func__, ret);
2213                 goto error_mdio_unregister;
2214         }
2215
2216         sxgbe_check_ether_addr(priv);
2217
2218         return priv;
2219
2220 error_mdio_unregister:
2221         sxgbe_mdio_unregister(ndev);
2222 error_clk_put:
2223         clk_put(priv->sxgbe_clk);
2224 error_napi_del:
2225         netif_napi_del(&priv->napi);
2226 error_free_hw:
2227         kfree(priv->hw);
2228 error_free_netdev:
2229         free_netdev(ndev);
2230
2231         return NULL;
2232 }
2233
2234 /**
2235  * sxgbe_drv_remove
2236  * @ndev: net device pointer
2237  * Description: this function resets the TX/RX processes, disables the MAC RX/TX
2238  * changes the link status, releases the DMA descriptor rings.
2239  */
2240 int sxgbe_drv_remove(struct net_device *ndev)
2241 {
2242         struct sxgbe_priv_data *priv = netdev_priv(ndev);
2243
2244         netdev_info(ndev, "%s: removing driver\n", __func__);
2245
2246         priv->hw->dma->stop_rx(priv->ioaddr, SXGBE_RX_QUEUES);
2247         priv->hw->dma->stop_tx(priv->ioaddr, SXGBE_TX_QUEUES);
2248
2249         priv->hw->mac->enable_tx(priv->ioaddr, false);
2250         priv->hw->mac->enable_rx(priv->ioaddr, false);
2251
2252         unregister_netdev(ndev);
2253
2254         sxgbe_mdio_unregister(ndev);
2255
2256         clk_put(priv->sxgbe_clk);
2257
2258         netif_napi_del(&priv->napi);
2259
2260         kfree(priv->hw);
2261
2262         free_netdev(ndev);
2263
2264         return 0;
2265 }
2266
2267 #ifdef CONFIG_PM
2268 int sxgbe_suspend(struct net_device *ndev)
2269 {
2270         return 0;
2271 }
2272
2273 int sxgbe_resume(struct net_device *ndev)
2274 {
2275         return 0;
2276 }
2277
2278 int sxgbe_freeze(struct net_device *ndev)
2279 {
2280         return -ENOSYS;
2281 }
2282
2283 int sxgbe_restore(struct net_device *ndev)
2284 {
2285         return -ENOSYS;
2286 }
2287 #endif /* CONFIG_PM */
2288
2289 /* Driver is configured as Platform driver */
2290 static int __init sxgbe_init(void)
2291 {
2292         int ret;
2293
2294         ret = sxgbe_register_platform();
2295         if (ret)
2296                 goto err;
2297         return 0;
2298 err:
2299         pr_err("driver registration failed\n");
2300         return ret;
2301 }
2302
2303 static void __exit sxgbe_exit(void)
2304 {
2305         sxgbe_unregister_platform();
2306 }
2307
2308 module_init(sxgbe_init);
2309 module_exit(sxgbe_exit);
2310
2311 #ifndef MODULE
2312 static int __init sxgbe_cmdline_opt(char *str)
2313 {
2314         char *opt;
2315
2316         if (!str || !*str)
2317                 return -EINVAL;
2318         while ((opt = strsep(&str, ",")) != NULL) {
2319                 if (!strncmp(opt, "eee_timer:", 6)) {
2320                         if (kstrtoint(opt + 10, 0, &eee_timer))
2321                                 goto err;
2322                 }
2323         }
2324         return 0;
2325
2326 err:
2327         pr_err("%s: ERROR broken module parameter conversion\n", __func__);
2328         return -EINVAL;
2329 }
2330
2331 __setup("sxgbeeth=", sxgbe_cmdline_opt);
2332 #endif /* MODULE */
2333
2334
2335
2336 MODULE_DESCRIPTION("SAMSUNG 10G/2.5G/1G Ethernet PLATFORM driver");
2337
2338 MODULE_PARM_DESC(debug, "Message Level (-1: default, 0: no output, 16: all)");
2339 MODULE_PARM_DESC(eee_timer, "EEE-LPI Default LS timer value");
2340
2341 MODULE_AUTHOR("Siva Reddy Kallam <siva.kallam@samsung.com>");
2342 MODULE_AUTHOR("ByungHo An <bh74.an@samsung.com>");
2343 MODULE_AUTHOR("Girish K S <ks.giri@samsung.com>");
2344 MODULE_AUTHOR("Vipul Pandya <vipul.pandya@samsung.com>");
2345
2346 MODULE_LICENSE("GPL");