1 // SPDX-License-Identifier: GPL-2.0
2 /* $Id: sungem.c,v 1.44.2.22 2002/03/13 01:18:12 davem Exp $
3 * sungem.c: Sun GEM ethernet driver.
4 *
5 * Copyright (C) 2000, 2001, 2002, 2003 David S. Miller (davem@redhat.com)
6 *
7 * Support for Apple GMAC and assorted PHYs, WOL, Power Management
8 * (C) 2001,2002,2003 Benjamin Herrenscmidt (benh@kernel.crashing.org)
9 * (C) 2004,2005 Benjamin Herrenscmidt, IBM Corp.
10 *
11 * NAPI and NETPOLL support
12 * (C) 2004 by Eric Lemoine (eric.lemoine@gmail.com)
13 *
14 */
15
16 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
17
18 #include <linux/module.h>
19 #include <linux/kernel.h>
20 #include <linux/types.h>
21 #include <linux/fcntl.h>
22 #include <linux/interrupt.h>
23 #include <linux/ioport.h>
24 #include <linux/in.h>
25 #include <linux/sched.h>
26 #include <linux/string.h>
27 #include <linux/delay.h>
28 #include <linux/errno.h>
29 #include <linux/pci.h>
30 #include <linux/dma-mapping.h>
31 #include <linux/netdevice.h>
32 #include <linux/etherdevice.h>
33 #include <linux/skbuff.h>
34 #include <linux/mii.h>
35 #include <linux/ethtool.h>
36 #include <linux/crc32.h>
37 #include <linux/random.h>
38 #include <linux/workqueue.h>
39 #include <linux/if_vlan.h>
40 #include <linux/bitops.h>
41 #include <linux/mm.h>
42 #include <linux/gfp.h>
43 #include <linux/of.h>
44
45 #include <asm/io.h>
46 #include <asm/byteorder.h>
47 #include <linux/uaccess.h>
48 #include <asm/irq.h>
49
50 #ifdef CONFIG_SPARC
51 #include <asm/idprom.h>
52 #include <asm/prom.h>
53 #endif
54
55 #ifdef CONFIG_PPC_PMAC
56 #include <asm/machdep.h>
57 #include <asm/pmac_feature.h>
58 #endif
59
60 #include <linux/sungem_phy.h>
61 #include "sungem.h"
62
63 #define STRIP_FCS
64
65 #define DEFAULT_MSG (NETIF_MSG_DRV | \
66 NETIF_MSG_PROBE | \
67 NETIF_MSG_LINK)
68
69 #define ADVERTISE_MASK (SUPPORTED_10baseT_Half | SUPPORTED_10baseT_Full | \
70 SUPPORTED_100baseT_Half | SUPPORTED_100baseT_Full | \
71 SUPPORTED_1000baseT_Half | SUPPORTED_1000baseT_Full | \
72 SUPPORTED_Pause | SUPPORTED_Autoneg)
73
74 #define DRV_NAME "sungem"
75 #define DRV_VERSION "1.0"
76 #define DRV_AUTHOR "David S. Miller <davem@redhat.com>"
77
78 static char version[] =
79 DRV_NAME ".c:v" DRV_VERSION " " DRV_AUTHOR "\n";
80
81 MODULE_AUTHOR(DRV_AUTHOR);
82 MODULE_DESCRIPTION("Sun GEM Gbit ethernet driver");
83 MODULE_LICENSE("GPL");
84
85 #define GEM_MODULE_NAME "gem"
86
87 static const struct pci_device_id gem_pci_tbl[] = {
88 { PCI_VDEVICE(SUN, PCI_DEVICE_ID_SUN_GEM) },
89
90 /* These models only differ from the original GEM in
91 * that their tx/rx fifos are of a different size and
92 * they only support 10/100 speeds. -DaveM
93 *
94 * Apple's GMAC does support gigabit on machines with
95 * the BCM54xx PHYs. -BenH
96 */
97 { PCI_VDEVICE(SUN, PCI_DEVICE_ID_SUN_RIO_GEM) },
98 { PCI_VDEVICE(APPLE, PCI_DEVICE_ID_APPLE_UNI_N_GMAC) },
99 { PCI_VDEVICE(APPLE, PCI_DEVICE_ID_APPLE_UNI_N_GMACP) },
100 { PCI_VDEVICE(APPLE, PCI_DEVICE_ID_APPLE_UNI_N_GMAC2) },
101 { PCI_VDEVICE(APPLE, PCI_DEVICE_ID_APPLE_K2_GMAC) },
102 { PCI_VDEVICE(APPLE, PCI_DEVICE_ID_APPLE_SH_SUNGEM) },
103 { PCI_VDEVICE(APPLE, PCI_DEVICE_ID_APPLE_IPID2_GMAC) },
104 { }
105 };
106
107 MODULE_DEVICE_TABLE(pci, gem_pci_tbl);
108
__sungem_phy_read(struct gem * gp,int phy_addr,int reg)109 static u16 __sungem_phy_read(struct gem *gp, int phy_addr, int reg)
110 {
111 u32 cmd;
112 int limit = 10000;
113
114 cmd = (1 << 30);
115 cmd |= (2 << 28);
116 cmd |= (phy_addr << 23) & MIF_FRAME_PHYAD;
117 cmd |= (reg << 18) & MIF_FRAME_REGAD;
118 cmd |= (MIF_FRAME_TAMSB);
119 writel(cmd, gp->regs + MIF_FRAME);
120
121 while (--limit) {
122 cmd = readl(gp->regs + MIF_FRAME);
123 if (cmd & MIF_FRAME_TALSB)
124 break;
125
126 udelay(10);
127 }
128
129 if (!limit)
130 cmd = 0xffff;
131
132 return cmd & MIF_FRAME_DATA;
133 }
134
_sungem_phy_read(struct net_device * dev,int mii_id,int reg)135 static inline int _sungem_phy_read(struct net_device *dev, int mii_id, int reg)
136 {
137 struct gem *gp = netdev_priv(dev);
138 return __sungem_phy_read(gp, mii_id, reg);
139 }
140
sungem_phy_read(struct gem * gp,int reg)141 static inline u16 sungem_phy_read(struct gem *gp, int reg)
142 {
143 return __sungem_phy_read(gp, gp->mii_phy_addr, reg);
144 }
145
__sungem_phy_write(struct gem * gp,int phy_addr,int reg,u16 val)146 static void __sungem_phy_write(struct gem *gp, int phy_addr, int reg, u16 val)
147 {
148 u32 cmd;
149 int limit = 10000;
150
151 cmd = (1 << 30);
152 cmd |= (1 << 28);
153 cmd |= (phy_addr << 23) & MIF_FRAME_PHYAD;
154 cmd |= (reg << 18) & MIF_FRAME_REGAD;
155 cmd |= (MIF_FRAME_TAMSB);
156 cmd |= (val & MIF_FRAME_DATA);
157 writel(cmd, gp->regs + MIF_FRAME);
158
159 while (limit--) {
160 cmd = readl(gp->regs + MIF_FRAME);
161 if (cmd & MIF_FRAME_TALSB)
162 break;
163
164 udelay(10);
165 }
166 }
167
_sungem_phy_write(struct net_device * dev,int mii_id,int reg,int val)168 static inline void _sungem_phy_write(struct net_device *dev, int mii_id, int reg, int val)
169 {
170 struct gem *gp = netdev_priv(dev);
171 __sungem_phy_write(gp, mii_id, reg, val & 0xffff);
172 }
173
sungem_phy_write(struct gem * gp,int reg,u16 val)174 static inline void sungem_phy_write(struct gem *gp, int reg, u16 val)
175 {
176 __sungem_phy_write(gp, gp->mii_phy_addr, reg, val);
177 }
178
gem_enable_ints(struct gem * gp)179 static inline void gem_enable_ints(struct gem *gp)
180 {
181 /* Enable all interrupts but TXDONE */
182 writel(GREG_STAT_TXDONE, gp->regs + GREG_IMASK);
183 }
184
gem_disable_ints(struct gem * gp)185 static inline void gem_disable_ints(struct gem *gp)
186 {
187 /* Disable all interrupts, including TXDONE */
188 writel(GREG_STAT_NAPI | GREG_STAT_TXDONE, gp->regs + GREG_IMASK);
189 (void)readl(gp->regs + GREG_IMASK); /* write posting */
190 }
191
gem_get_cell(struct gem * gp)192 static void gem_get_cell(struct gem *gp)
193 {
194 BUG_ON(gp->cell_enabled < 0);
195 gp->cell_enabled++;
196 #ifdef CONFIG_PPC_PMAC
197 if (gp->cell_enabled == 1) {
198 mb();
199 pmac_call_feature(PMAC_FTR_GMAC_ENABLE, gp->of_node, 0, 1);
200 udelay(10);
201 }
202 #endif /* CONFIG_PPC_PMAC */
203 }
204
205 /* Turn off the chip's clock */
gem_put_cell(struct gem * gp)206 static void gem_put_cell(struct gem *gp)
207 {
208 BUG_ON(gp->cell_enabled <= 0);
209 gp->cell_enabled--;
210 #ifdef CONFIG_PPC_PMAC
211 if (gp->cell_enabled == 0) {
212 mb();
213 pmac_call_feature(PMAC_FTR_GMAC_ENABLE, gp->of_node, 0, 0);
214 udelay(10);
215 }
216 #endif /* CONFIG_PPC_PMAC */
217 }
218
gem_netif_stop(struct gem * gp)219 static inline void gem_netif_stop(struct gem *gp)
220 {
221 netif_trans_update(gp->dev); /* prevent tx timeout */
222 napi_disable(&gp->napi);
223 netif_tx_disable(gp->dev);
224 }
225
gem_netif_start(struct gem * gp)226 static inline void gem_netif_start(struct gem *gp)
227 {
228 /* NOTE: unconditional netif_wake_queue is only
229 * appropriate so long as all callers are assured to
230 * have free tx slots.
231 */
232 netif_wake_queue(gp->dev);
233 napi_enable(&gp->napi);
234 }
235
gem_schedule_reset(struct gem * gp)236 static void gem_schedule_reset(struct gem *gp)
237 {
238 gp->reset_task_pending = 1;
239 schedule_work(&gp->reset_task);
240 }
241
gem_handle_mif_event(struct gem * gp,u32 reg_val,u32 changed_bits)242 static void gem_handle_mif_event(struct gem *gp, u32 reg_val, u32 changed_bits)
243 {
244 if (netif_msg_intr(gp))
245 printk(KERN_DEBUG "%s: mif interrupt\n", gp->dev->name);
246 }
247
gem_pcs_interrupt(struct net_device * dev,struct gem * gp,u32 gem_status)248 static int gem_pcs_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
249 {
250 u32 pcs_istat = readl(gp->regs + PCS_ISTAT);
251 u32 pcs_miistat;
252
253 if (netif_msg_intr(gp))
254 printk(KERN_DEBUG "%s: pcs interrupt, pcs_istat: 0x%x\n",
255 gp->dev->name, pcs_istat);
256
257 if (!(pcs_istat & PCS_ISTAT_LSC)) {
258 netdev_err(dev, "PCS irq but no link status change???\n");
259 return 0;
260 }
261
262 /* The link status bit latches on zero, so you must
263 * read it twice in such a case to see a transition
264 * to the link being up.
265 */
266 pcs_miistat = readl(gp->regs + PCS_MIISTAT);
267 if (!(pcs_miistat & PCS_MIISTAT_LS))
268 pcs_miistat |=
269 (readl(gp->regs + PCS_MIISTAT) &
270 PCS_MIISTAT_LS);
271
272 if (pcs_miistat & PCS_MIISTAT_ANC) {
273 /* The remote-fault indication is only valid
274 * when autoneg has completed.
275 */
276 if (pcs_miistat & PCS_MIISTAT_RF)
277 netdev_info(dev, "PCS AutoNEG complete, RemoteFault\n");
278 else
279 netdev_info(dev, "PCS AutoNEG complete\n");
280 }
281
282 if (pcs_miistat & PCS_MIISTAT_LS) {
283 netdev_info(dev, "PCS link is now up\n");
284 netif_carrier_on(gp->dev);
285 } else {
286 netdev_info(dev, "PCS link is now down\n");
287 netif_carrier_off(gp->dev);
288 /* If this happens and the link timer is not running,
289 * reset so we re-negotiate.
290 */
291 if (!timer_pending(&gp->link_timer))
292 return 1;
293 }
294
295 return 0;
296 }
297
gem_txmac_interrupt(struct net_device * dev,struct gem * gp,u32 gem_status)298 static int gem_txmac_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
299 {
300 u32 txmac_stat = readl(gp->regs + MAC_TXSTAT);
301
302 if (netif_msg_intr(gp))
303 printk(KERN_DEBUG "%s: txmac interrupt, txmac_stat: 0x%x\n",
304 gp->dev->name, txmac_stat);
305
306 /* Defer timer expiration is quite normal,
307 * don't even log the event.
308 */
309 if ((txmac_stat & MAC_TXSTAT_DTE) &&
310 !(txmac_stat & ~MAC_TXSTAT_DTE))
311 return 0;
312
313 if (txmac_stat & MAC_TXSTAT_URUN) {
314 netdev_err(dev, "TX MAC xmit underrun\n");
315 dev->stats.tx_fifo_errors++;
316 }
317
318 if (txmac_stat & MAC_TXSTAT_MPE) {
319 netdev_err(dev, "TX MAC max packet size error\n");
320 dev->stats.tx_errors++;
321 }
322
323 /* The rest are all cases of one of the 16-bit TX
324 * counters expiring.
325 */
326 if (txmac_stat & MAC_TXSTAT_NCE)
327 dev->stats.collisions += 0x10000;
328
329 if (txmac_stat & MAC_TXSTAT_ECE) {
330 dev->stats.tx_aborted_errors += 0x10000;
331 dev->stats.collisions += 0x10000;
332 }
333
334 if (txmac_stat & MAC_TXSTAT_LCE) {
335 dev->stats.tx_aborted_errors += 0x10000;
336 dev->stats.collisions += 0x10000;
337 }
338
339 /* We do not keep track of MAC_TXSTAT_FCE and
340 * MAC_TXSTAT_PCE events.
341 */
342 return 0;
343 }
344
345 /* When we get a RX fifo overflow, the RX unit in GEM is probably hung
346 * so we do the following.
347 *
348 * If any part of the reset goes wrong, we return 1 and that causes the
349 * whole chip to be reset.
350 */
gem_rxmac_reset(struct gem * gp)351 static int gem_rxmac_reset(struct gem *gp)
352 {
353 struct net_device *dev = gp->dev;
354 int limit, i;
355 u64 desc_dma;
356 u32 val;
357
358 /* First, reset & disable MAC RX. */
359 writel(MAC_RXRST_CMD, gp->regs + MAC_RXRST);
360 for (limit = 0; limit < 5000; limit++) {
361 if (!(readl(gp->regs + MAC_RXRST) & MAC_RXRST_CMD))
362 break;
363 udelay(10);
364 }
365 if (limit == 5000) {
366 netdev_err(dev, "RX MAC will not reset, resetting whole chip\n");
367 return 1;
368 }
369
370 writel(gp->mac_rx_cfg & ~MAC_RXCFG_ENAB,
371 gp->regs + MAC_RXCFG);
372 for (limit = 0; limit < 5000; limit++) {
373 if (!(readl(gp->regs + MAC_RXCFG) & MAC_RXCFG_ENAB))
374 break;
375 udelay(10);
376 }
377 if (limit == 5000) {
378 netdev_err(dev, "RX MAC will not disable, resetting whole chip\n");
379 return 1;
380 }
381
382 /* Second, disable RX DMA. */
383 writel(0, gp->regs + RXDMA_CFG);
384 for (limit = 0; limit < 5000; limit++) {
385 if (!(readl(gp->regs + RXDMA_CFG) & RXDMA_CFG_ENABLE))
386 break;
387 udelay(10);
388 }
389 if (limit == 5000) {
390 netdev_err(dev, "RX DMA will not disable, resetting whole chip\n");
391 return 1;
392 }
393
394 mdelay(5);
395
396 /* Execute RX reset command. */
397 writel(gp->swrst_base | GREG_SWRST_RXRST,
398 gp->regs + GREG_SWRST);
399 for (limit = 0; limit < 5000; limit++) {
400 if (!(readl(gp->regs + GREG_SWRST) & GREG_SWRST_RXRST))
401 break;
402 udelay(10);
403 }
404 if (limit == 5000) {
405 netdev_err(dev, "RX reset command will not execute, resetting whole chip\n");
406 return 1;
407 }
408
409 /* Refresh the RX ring. */
410 for (i = 0; i < RX_RING_SIZE; i++) {
411 struct gem_rxd *rxd = &gp->init_block->rxd[i];
412
413 if (gp->rx_skbs[i] == NULL) {
414 netdev_err(dev, "Parts of RX ring empty, resetting whole chip\n");
415 return 1;
416 }
417
418 rxd->status_word = cpu_to_le64(RXDCTRL_FRESH(gp));
419 }
420 gp->rx_new = gp->rx_old = 0;
421
422 /* Now we must reprogram the rest of RX unit. */
423 desc_dma = (u64) gp->gblock_dvma;
424 desc_dma += (INIT_BLOCK_TX_RING_SIZE * sizeof(struct gem_txd));
425 writel(desc_dma >> 32, gp->regs + RXDMA_DBHI);
426 writel(desc_dma & 0xffffffff, gp->regs + RXDMA_DBLOW);
427 writel(RX_RING_SIZE - 4, gp->regs + RXDMA_KICK);
428 val = (RXDMA_CFG_BASE | (RX_OFFSET << 10) |
429 (ETH_HLEN << 13) | RXDMA_CFG_FTHRESH_128);
430 writel(val, gp->regs + RXDMA_CFG);
431 if (readl(gp->regs + GREG_BIFCFG) & GREG_BIFCFG_M66EN)
432 writel(((5 & RXDMA_BLANK_IPKTS) |
433 ((8 << 12) & RXDMA_BLANK_ITIME)),
434 gp->regs + RXDMA_BLANK);
435 else
436 writel(((5 & RXDMA_BLANK_IPKTS) |
437 ((4 << 12) & RXDMA_BLANK_ITIME)),
438 gp->regs + RXDMA_BLANK);
439 val = (((gp->rx_pause_off / 64) << 0) & RXDMA_PTHRESH_OFF);
440 val |= (((gp->rx_pause_on / 64) << 12) & RXDMA_PTHRESH_ON);
441 writel(val, gp->regs + RXDMA_PTHRESH);
442 val = readl(gp->regs + RXDMA_CFG);
443 writel(val | RXDMA_CFG_ENABLE, gp->regs + RXDMA_CFG);
444 writel(MAC_RXSTAT_RCV, gp->regs + MAC_RXMASK);
445 val = readl(gp->regs + MAC_RXCFG);
446 writel(val | MAC_RXCFG_ENAB, gp->regs + MAC_RXCFG);
447
448 return 0;
449 }
450
gem_rxmac_interrupt(struct net_device * dev,struct gem * gp,u32 gem_status)451 static int gem_rxmac_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
452 {
453 u32 rxmac_stat = readl(gp->regs + MAC_RXSTAT);
454 int ret = 0;
455
456 if (netif_msg_intr(gp))
457 printk(KERN_DEBUG "%s: rxmac interrupt, rxmac_stat: 0x%x\n",
458 gp->dev->name, rxmac_stat);
459
460 if (rxmac_stat & MAC_RXSTAT_OFLW) {
461 u32 smac = readl(gp->regs + MAC_SMACHINE);
462
463 netdev_err(dev, "RX MAC fifo overflow smac[%08x]\n", smac);
464 dev->stats.rx_over_errors++;
465 dev->stats.rx_fifo_errors++;
466
467 ret = gem_rxmac_reset(gp);
468 }
469
470 if (rxmac_stat & MAC_RXSTAT_ACE)
471 dev->stats.rx_frame_errors += 0x10000;
472
473 if (rxmac_stat & MAC_RXSTAT_CCE)
474 dev->stats.rx_crc_errors += 0x10000;
475
476 if (rxmac_stat & MAC_RXSTAT_LCE)
477 dev->stats.rx_length_errors += 0x10000;
478
479 /* We do not track MAC_RXSTAT_FCE and MAC_RXSTAT_VCE
480 * events.
481 */
482 return ret;
483 }
484
gem_mac_interrupt(struct net_device * dev,struct gem * gp,u32 gem_status)485 static int gem_mac_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
486 {
487 u32 mac_cstat = readl(gp->regs + MAC_CSTAT);
488
489 if (netif_msg_intr(gp))
490 printk(KERN_DEBUG "%s: mac interrupt, mac_cstat: 0x%x\n",
491 gp->dev->name, mac_cstat);
492
493 /* This interrupt is just for pause frame and pause
494 * tracking. It is useful for diagnostics and debug
495 * but probably by default we will mask these events.
496 */
497 if (mac_cstat & MAC_CSTAT_PS)
498 gp->pause_entered++;
499
500 if (mac_cstat & MAC_CSTAT_PRCV)
501 gp->pause_last_time_recvd = (mac_cstat >> 16);
502
503 return 0;
504 }
505
gem_mif_interrupt(struct net_device * dev,struct gem * gp,u32 gem_status)506 static int gem_mif_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
507 {
508 u32 mif_status = readl(gp->regs + MIF_STATUS);
509 u32 reg_val, changed_bits;
510
511 reg_val = (mif_status & MIF_STATUS_DATA) >> 16;
512 changed_bits = (mif_status & MIF_STATUS_STAT);
513
514 gem_handle_mif_event(gp, reg_val, changed_bits);
515
516 return 0;
517 }
518
gem_pci_interrupt(struct net_device * dev,struct gem * gp,u32 gem_status)519 static int gem_pci_interrupt(struct net_device *dev, struct gem *gp, u32 gem_status)
520 {
521 u32 pci_estat = readl(gp->regs + GREG_PCIESTAT);
522
523 if (gp->pdev->vendor == PCI_VENDOR_ID_SUN &&
524 gp->pdev->device == PCI_DEVICE_ID_SUN_GEM) {
525 netdev_err(dev, "PCI error [%04x]", pci_estat);
526
527 if (pci_estat & GREG_PCIESTAT_BADACK)
528 pr_cont(" <No ACK64# during ABS64 cycle>");
529 if (pci_estat & GREG_PCIESTAT_DTRTO)
530 pr_cont(" <Delayed transaction timeout>");
531 if (pci_estat & GREG_PCIESTAT_OTHER)
532 pr_cont(" <other>");
533 pr_cont("\n");
534 } else {
535 pci_estat |= GREG_PCIESTAT_OTHER;
536 netdev_err(dev, "PCI error\n");
537 }
538
539 if (pci_estat & GREG_PCIESTAT_OTHER) {
540 int pci_errs;
541
542 /* Interrogate PCI config space for the
543 * true cause.
544 */
545 pci_errs = pci_status_get_and_clear_errors(gp->pdev);
546 netdev_err(dev, "PCI status errors[%04x]\n", pci_errs);
547 if (pci_errs & PCI_STATUS_PARITY)
548 netdev_err(dev, "PCI parity error detected\n");
549 if (pci_errs & PCI_STATUS_SIG_TARGET_ABORT)
550 netdev_err(dev, "PCI target abort\n");
551 if (pci_errs & PCI_STATUS_REC_TARGET_ABORT)
552 netdev_err(dev, "PCI master acks target abort\n");
553 if (pci_errs & PCI_STATUS_REC_MASTER_ABORT)
554 netdev_err(dev, "PCI master abort\n");
555 if (pci_errs & PCI_STATUS_SIG_SYSTEM_ERROR)
556 netdev_err(dev, "PCI system error SERR#\n");
557 if (pci_errs & PCI_STATUS_DETECTED_PARITY)
558 netdev_err(dev, "PCI parity error\n");
559 }
560
561 /* For all PCI errors, we should reset the chip. */
562 return 1;
563 }
564
565 /* All non-normal interrupt conditions get serviced here.
566 * Returns non-zero if we should just exit the interrupt
567 * handler right now (ie. if we reset the card which invalidates
568 * all of the other original irq status bits).
569 */
gem_abnormal_irq(struct net_device * dev,struct gem * gp,u32 gem_status)570 static int gem_abnormal_irq(struct net_device *dev, struct gem *gp, u32 gem_status)
571 {
572 if (gem_status & GREG_STAT_RXNOBUF) {
573 /* Frame arrived, no free RX buffers available. */
574 if (netif_msg_rx_err(gp))
575 printk(KERN_DEBUG "%s: no buffer for rx frame\n",
576 gp->dev->name);
577 dev->stats.rx_dropped++;
578 }
579
580 if (gem_status & GREG_STAT_RXTAGERR) {
581 /* corrupt RX tag framing */
582 if (netif_msg_rx_err(gp))
583 printk(KERN_DEBUG "%s: corrupt rx tag framing\n",
584 gp->dev->name);
585 dev->stats.rx_errors++;
586
587 return 1;
588 }
589
590 if (gem_status & GREG_STAT_PCS) {
591 if (gem_pcs_interrupt(dev, gp, gem_status))
592 return 1;
593 }
594
595 if (gem_status & GREG_STAT_TXMAC) {
596 if (gem_txmac_interrupt(dev, gp, gem_status))
597 return 1;
598 }
599
600 if (gem_status & GREG_STAT_RXMAC) {
601 if (gem_rxmac_interrupt(dev, gp, gem_status))
602 return 1;
603 }
604
605 if (gem_status & GREG_STAT_MAC) {
606 if (gem_mac_interrupt(dev, gp, gem_status))
607 return 1;
608 }
609
610 if (gem_status & GREG_STAT_MIF) {
611 if (gem_mif_interrupt(dev, gp, gem_status))
612 return 1;
613 }
614
615 if (gem_status & GREG_STAT_PCIERR) {
616 if (gem_pci_interrupt(dev, gp, gem_status))
617 return 1;
618 }
619
620 return 0;
621 }
622
gem_tx(struct net_device * dev,struct gem * gp,u32 gem_status)623 static __inline__ void gem_tx(struct net_device *dev, struct gem *gp, u32 gem_status)
624 {
625 int entry, limit;
626
627 entry = gp->tx_old;
628 limit = ((gem_status & GREG_STAT_TXNR) >> GREG_STAT_TXNR_SHIFT);
629 while (entry != limit) {
630 struct sk_buff *skb;
631 struct gem_txd *txd;
632 dma_addr_t dma_addr;
633 u32 dma_len;
634 int frag;
635
636 if (netif_msg_tx_done(gp))
637 printk(KERN_DEBUG "%s: tx done, slot %d\n",
638 gp->dev->name, entry);
639 skb = gp->tx_skbs[entry];
640 if (skb_shinfo(skb)->nr_frags) {
641 int last = entry + skb_shinfo(skb)->nr_frags;
642 int walk = entry;
643 int incomplete = 0;
644
645 last &= (TX_RING_SIZE - 1);
646 for (;;) {
647 walk = NEXT_TX(walk);
648 if (walk == limit)
649 incomplete = 1;
650 if (walk == last)
651 break;
652 }
653 if (incomplete)
654 break;
655 }
656 gp->tx_skbs[entry] = NULL;
657 dev->stats.tx_bytes += skb->len;
658
659 for (frag = 0; frag <= skb_shinfo(skb)->nr_frags; frag++) {
660 txd = &gp->init_block->txd[entry];
661
662 dma_addr = le64_to_cpu(txd->buffer);
663 dma_len = le64_to_cpu(txd->control_word) & TXDCTRL_BUFSZ;
664
665 dma_unmap_page(&gp->pdev->dev, dma_addr, dma_len,
666 DMA_TO_DEVICE);
667 entry = NEXT_TX(entry);
668 }
669
670 dev->stats.tx_packets++;
671 dev_consume_skb_any(skb);
672 }
673 gp->tx_old = entry;
674
675 /* Need to make the tx_old update visible to gem_start_xmit()
676 * before checking for netif_queue_stopped(). Without the
677 * memory barrier, there is a small possibility that gem_start_xmit()
678 * will miss it and cause the queue to be stopped forever.
679 */
680 smp_mb();
681
682 if (unlikely(netif_queue_stopped(dev) &&
683 TX_BUFFS_AVAIL(gp) > (MAX_SKB_FRAGS + 1))) {
684 struct netdev_queue *txq = netdev_get_tx_queue(dev, 0);
685
686 __netif_tx_lock(txq, smp_processor_id());
687 if (netif_queue_stopped(dev) &&
688 TX_BUFFS_AVAIL(gp) > (MAX_SKB_FRAGS + 1))
689 netif_wake_queue(dev);
690 __netif_tx_unlock(txq);
691 }
692 }
693
gem_post_rxds(struct gem * gp,int limit)694 static __inline__ void gem_post_rxds(struct gem *gp, int limit)
695 {
696 int cluster_start, curr, count, kick;
697
698 cluster_start = curr = (gp->rx_new & ~(4 - 1));
699 count = 0;
700 kick = -1;
701 dma_wmb();
702 while (curr != limit) {
703 curr = NEXT_RX(curr);
704 if (++count == 4) {
705 struct gem_rxd *rxd =
706 &gp->init_block->rxd[cluster_start];
707 for (;;) {
708 rxd->status_word = cpu_to_le64(RXDCTRL_FRESH(gp));
709 rxd++;
710 cluster_start = NEXT_RX(cluster_start);
711 if (cluster_start == curr)
712 break;
713 }
714 kick = curr;
715 count = 0;
716 }
717 }
718 if (kick >= 0) {
719 mb();
720 writel(kick, gp->regs + RXDMA_KICK);
721 }
722 }
723
724 #define ALIGNED_RX_SKB_ADDR(addr) \
725 ((((unsigned long)(addr) + (64UL - 1UL)) & ~(64UL - 1UL)) - (unsigned long)(addr))
gem_alloc_skb(struct net_device * dev,int size,gfp_t gfp_flags)726 static __inline__ struct sk_buff *gem_alloc_skb(struct net_device *dev, int size,
727 gfp_t gfp_flags)
728 {
729 struct sk_buff *skb = alloc_skb(size + 64, gfp_flags);
730
731 if (likely(skb)) {
732 unsigned long offset = ALIGNED_RX_SKB_ADDR(skb->data);
733 skb_reserve(skb, offset);
734 }
735 return skb;
736 }
737
gem_rx(struct gem * gp,int work_to_do)738 static int gem_rx(struct gem *gp, int work_to_do)
739 {
740 struct net_device *dev = gp->dev;
741 int entry, drops, work_done = 0;
742 u32 done;
743
744 if (netif_msg_rx_status(gp))
745 printk(KERN_DEBUG "%s: rx interrupt, done: %d, rx_new: %d\n",
746 gp->dev->name, readl(gp->regs + RXDMA_DONE), gp->rx_new);
747
748 entry = gp->rx_new;
749 drops = 0;
750 done = readl(gp->regs + RXDMA_DONE);
751 for (;;) {
752 struct gem_rxd *rxd = &gp->init_block->rxd[entry];
753 struct sk_buff *skb;
754 u64 status = le64_to_cpu(rxd->status_word);
755 dma_addr_t dma_addr;
756 int len;
757
758 if ((status & RXDCTRL_OWN) != 0)
759 break;
760
761 if (work_done >= RX_RING_SIZE || work_done >= work_to_do)
762 break;
763
764 /* When writing back RX descriptor, GEM writes status
765 * then buffer address, possibly in separate transactions.
766 * If we don't wait for the chip to write both, we could
767 * post a new buffer to this descriptor then have GEM spam
768 * on the buffer address. We sync on the RX completion
769 * register to prevent this from happening.
770 */
771 if (entry == done) {
772 done = readl(gp->regs + RXDMA_DONE);
773 if (entry == done)
774 break;
775 }
776
777 /* We can now account for the work we're about to do */
778 work_done++;
779
780 skb = gp->rx_skbs[entry];
781
782 len = (status & RXDCTRL_BUFSZ) >> 16;
783 if ((len < ETH_ZLEN) || (status & RXDCTRL_BAD)) {
784 dev->stats.rx_errors++;
785 if (len < ETH_ZLEN)
786 dev->stats.rx_length_errors++;
787 if (len & RXDCTRL_BAD)
788 dev->stats.rx_crc_errors++;
789
790 /* We'll just return it to GEM. */
791 drop_it:
792 dev->stats.rx_dropped++;
793 goto next;
794 }
795
796 dma_addr = le64_to_cpu(rxd->buffer);
797 if (len > RX_COPY_THRESHOLD) {
798 struct sk_buff *new_skb;
799
800 new_skb = gem_alloc_skb(dev, RX_BUF_ALLOC_SIZE(gp), GFP_ATOMIC);
801 if (new_skb == NULL) {
802 drops++;
803 goto drop_it;
804 }
805 dma_unmap_page(&gp->pdev->dev, dma_addr,
806 RX_BUF_ALLOC_SIZE(gp), DMA_FROM_DEVICE);
807 gp->rx_skbs[entry] = new_skb;
808 skb_put(new_skb, (gp->rx_buf_sz + RX_OFFSET));
809 rxd->buffer = cpu_to_le64(dma_map_page(&gp->pdev->dev,
810 virt_to_page(new_skb->data),
811 offset_in_page(new_skb->data),
812 RX_BUF_ALLOC_SIZE(gp),
813 DMA_FROM_DEVICE));
814 skb_reserve(new_skb, RX_OFFSET);
815
816 /* Trim the original skb for the netif. */
817 skb_trim(skb, len);
818 } else {
819 struct sk_buff *copy_skb = netdev_alloc_skb(dev, len + 2);
820
821 if (copy_skb == NULL) {
822 drops++;
823 goto drop_it;
824 }
825
826 skb_reserve(copy_skb, 2);
827 skb_put(copy_skb, len);
828 dma_sync_single_for_cpu(&gp->pdev->dev, dma_addr, len,
829 DMA_FROM_DEVICE);
830 skb_copy_from_linear_data(skb, copy_skb->data, len);
831 dma_sync_single_for_device(&gp->pdev->dev, dma_addr,
832 len, DMA_FROM_DEVICE);
833
834 /* We'll reuse the original ring buffer. */
835 skb = copy_skb;
836 }
837
838 if (likely(dev->features & NETIF_F_RXCSUM)) {
839 __sum16 csum;
840
841 csum = (__force __sum16)htons((status & RXDCTRL_TCPCSUM) ^ 0xffff);
842 skb->csum = csum_unfold(csum);
843 skb->ip_summed = CHECKSUM_COMPLETE;
844 }
845 skb->protocol = eth_type_trans(skb, gp->dev);
846
847 napi_gro_receive(&gp->napi, skb);
848
849 dev->stats.rx_packets++;
850 dev->stats.rx_bytes += len;
851
852 next:
853 entry = NEXT_RX(entry);
854 }
855
856 gem_post_rxds(gp, entry);
857
858 gp->rx_new = entry;
859
860 if (drops)
861 netdev_info(gp->dev, "Memory squeeze, deferring packet\n");
862
863 return work_done;
864 }
865
gem_poll(struct napi_struct * napi,int budget)866 static int gem_poll(struct napi_struct *napi, int budget)
867 {
868 struct gem *gp = container_of(napi, struct gem, napi);
869 struct net_device *dev = gp->dev;
870 int work_done;
871
872 work_done = 0;
873 do {
874 /* Handle anomalies */
875 if (unlikely(gp->status & GREG_STAT_ABNORMAL)) {
876 struct netdev_queue *txq = netdev_get_tx_queue(dev, 0);
877 int reset;
878
879 /* We run the abnormal interrupt handling code with
880 * the Tx lock. It only resets the Rx portion of the
881 * chip, but we need to guard it against DMA being
882 * restarted by the link poll timer
883 */
884 __netif_tx_lock(txq, smp_processor_id());
885 reset = gem_abnormal_irq(dev, gp, gp->status);
886 __netif_tx_unlock(txq);
887 if (reset) {
888 gem_schedule_reset(gp);
889 napi_complete(napi);
890 return work_done;
891 }
892 }
893
894 /* Run TX completion thread */
895 gem_tx(dev, gp, gp->status);
896
897 /* Run RX thread. We don't use any locking here,
898 * code willing to do bad things - like cleaning the
899 * rx ring - must call napi_disable(), which
900 * schedule_timeout()'s if polling is already disabled.
901 */
902 work_done += gem_rx(gp, budget - work_done);
903
904 if (work_done >= budget)
905 return work_done;
906
907 gp->status = readl(gp->regs + GREG_STAT);
908 } while (gp->status & GREG_STAT_NAPI);
909
910 napi_complete_done(napi, work_done);
911 gem_enable_ints(gp);
912
913 return work_done;
914 }
915
gem_interrupt(int irq,void * dev_id)916 static irqreturn_t gem_interrupt(int irq, void *dev_id)
917 {
918 struct net_device *dev = dev_id;
919 struct gem *gp = netdev_priv(dev);
920
921 if (napi_schedule_prep(&gp->napi)) {
922 u32 gem_status = readl(gp->regs + GREG_STAT);
923
924 if (unlikely(gem_status == 0)) {
925 napi_enable(&gp->napi);
926 return IRQ_NONE;
927 }
928 if (netif_msg_intr(gp))
929 printk(KERN_DEBUG "%s: gem_interrupt() gem_status: 0x%x\n",
930 gp->dev->name, gem_status);
931
932 gp->status = gem_status;
933 gem_disable_ints(gp);
934 __napi_schedule(&gp->napi);
935 }
936
937 /* If polling was disabled at the time we received that
938 * interrupt, we may return IRQ_HANDLED here while we
939 * should return IRQ_NONE. No big deal...
940 */
941 return IRQ_HANDLED;
942 }
943
gem_tx_timeout(struct net_device * dev,unsigned int txqueue)944 static void gem_tx_timeout(struct net_device *dev, unsigned int txqueue)
945 {
946 struct gem *gp = netdev_priv(dev);
947
948 netdev_err(dev, "transmit timed out, resetting\n");
949
950 netdev_err(dev, "TX_STATE[%08x:%08x:%08x]\n",
951 readl(gp->regs + TXDMA_CFG),
952 readl(gp->regs + MAC_TXSTAT),
953 readl(gp->regs + MAC_TXCFG));
954 netdev_err(dev, "RX_STATE[%08x:%08x:%08x]\n",
955 readl(gp->regs + RXDMA_CFG),
956 readl(gp->regs + MAC_RXSTAT),
957 readl(gp->regs + MAC_RXCFG));
958
959 gem_schedule_reset(gp);
960 }
961
gem_intme(int entry)962 static __inline__ int gem_intme(int entry)
963 {
964 /* Algorithm: IRQ every 1/2 of descriptors. */
965 if (!(entry & ((TX_RING_SIZE>>1)-1)))
966 return 1;
967
968 return 0;
969 }
970
gem_start_xmit(struct sk_buff * skb,struct net_device * dev)971 static netdev_tx_t gem_start_xmit(struct sk_buff *skb,
972 struct net_device *dev)
973 {
974 struct gem *gp = netdev_priv(dev);
975 int entry;
976 u64 ctrl;
977
978 ctrl = 0;
979 if (skb->ip_summed == CHECKSUM_PARTIAL) {
980 const u64 csum_start_off = skb_checksum_start_offset(skb);
981 const u64 csum_stuff_off = csum_start_off + skb->csum_offset;
982
983 ctrl = (TXDCTRL_CENAB |
984 (csum_start_off << 15) |
985 (csum_stuff_off << 21));
986 }
987
988 if (unlikely(TX_BUFFS_AVAIL(gp) <= (skb_shinfo(skb)->nr_frags + 1))) {
989 /* This is a hard error, log it. */
990 if (!netif_queue_stopped(dev)) {
991 netif_stop_queue(dev);
992 netdev_err(dev, "BUG! Tx Ring full when queue awake!\n");
993 }
994 return NETDEV_TX_BUSY;
995 }
996
997 entry = gp->tx_new;
998 gp->tx_skbs[entry] = skb;
999
1000 if (skb_shinfo(skb)->nr_frags == 0) {
1001 struct gem_txd *txd = &gp->init_block->txd[entry];
1002 dma_addr_t mapping;
1003 u32 len;
1004
1005 len = skb->len;
1006 mapping = dma_map_page(&gp->pdev->dev,
1007 virt_to_page(skb->data),
1008 offset_in_page(skb->data),
1009 len, DMA_TO_DEVICE);
1010 ctrl |= TXDCTRL_SOF | TXDCTRL_EOF | len;
1011 if (gem_intme(entry))
1012 ctrl |= TXDCTRL_INTME;
1013 txd->buffer = cpu_to_le64(mapping);
1014 dma_wmb();
1015 txd->control_word = cpu_to_le64(ctrl);
1016 entry = NEXT_TX(entry);
1017 } else {
1018 struct gem_txd *txd;
1019 u32 first_len;
1020 u64 intme;
1021 dma_addr_t first_mapping;
1022 int frag, first_entry = entry;
1023
1024 intme = 0;
1025 if (gem_intme(entry))
1026 intme |= TXDCTRL_INTME;
1027
1028 /* We must give this initial chunk to the device last.
1029 * Otherwise we could race with the device.
1030 */
1031 first_len = skb_headlen(skb);
1032 first_mapping = dma_map_page(&gp->pdev->dev,
1033 virt_to_page(skb->data),
1034 offset_in_page(skb->data),
1035 first_len, DMA_TO_DEVICE);
1036 entry = NEXT_TX(entry);
1037
1038 for (frag = 0; frag < skb_shinfo(skb)->nr_frags; frag++) {
1039 const skb_frag_t *this_frag = &skb_shinfo(skb)->frags[frag];
1040 u32 len;
1041 dma_addr_t mapping;
1042 u64 this_ctrl;
1043
1044 len = skb_frag_size(this_frag);
1045 mapping = skb_frag_dma_map(&gp->pdev->dev, this_frag,
1046 0, len, DMA_TO_DEVICE);
1047 this_ctrl = ctrl;
1048 if (frag == skb_shinfo(skb)->nr_frags - 1)
1049 this_ctrl |= TXDCTRL_EOF;
1050
1051 txd = &gp->init_block->txd[entry];
1052 txd->buffer = cpu_to_le64(mapping);
1053 dma_wmb();
1054 txd->control_word = cpu_to_le64(this_ctrl | len);
1055
1056 if (gem_intme(entry))
1057 intme |= TXDCTRL_INTME;
1058
1059 entry = NEXT_TX(entry);
1060 }
1061 txd = &gp->init_block->txd[first_entry];
1062 txd->buffer = cpu_to_le64(first_mapping);
1063 dma_wmb();
1064 txd->control_word =
1065 cpu_to_le64(ctrl | TXDCTRL_SOF | intme | first_len);
1066 }
1067
1068 gp->tx_new = entry;
1069 if (unlikely(TX_BUFFS_AVAIL(gp) <= (MAX_SKB_FRAGS + 1))) {
1070 netif_stop_queue(dev);
1071
1072 /* netif_stop_queue() must be done before checking
1073 * tx index in TX_BUFFS_AVAIL() below, because
1074 * in gem_tx(), we update tx_old before checking for
1075 * netif_queue_stopped().
1076 */
1077 smp_mb();
1078 if (TX_BUFFS_AVAIL(gp) > (MAX_SKB_FRAGS + 1))
1079 netif_wake_queue(dev);
1080 }
1081 if (netif_msg_tx_queued(gp))
1082 printk(KERN_DEBUG "%s: tx queued, slot %d, skblen %d\n",
1083 dev->name, entry, skb->len);
1084 mb();
1085 writel(gp->tx_new, gp->regs + TXDMA_KICK);
1086
1087 return NETDEV_TX_OK;
1088 }
1089
gem_pcs_reset(struct gem * gp)1090 static void gem_pcs_reset(struct gem *gp)
1091 {
1092 int limit;
1093 u32 val;
1094
1095 /* Reset PCS unit. */
1096 val = readl(gp->regs + PCS_MIICTRL);
1097 val |= PCS_MIICTRL_RST;
1098 writel(val, gp->regs + PCS_MIICTRL);
1099
1100 limit = 32;
1101 while (readl(gp->regs + PCS_MIICTRL) & PCS_MIICTRL_RST) {
1102 udelay(100);
1103 if (limit-- <= 0)
1104 break;
1105 }
1106 if (limit < 0)
1107 netdev_warn(gp->dev, "PCS reset bit would not clear\n");
1108 }
1109
gem_pcs_reinit_adv(struct gem * gp)1110 static void gem_pcs_reinit_adv(struct gem *gp)
1111 {
1112 u32 val;
1113
1114 /* Make sure PCS is disabled while changing advertisement
1115 * configuration.
1116 */
1117 val = readl(gp->regs + PCS_CFG);
1118 val &= ~(PCS_CFG_ENABLE | PCS_CFG_TO);
1119 writel(val, gp->regs + PCS_CFG);
1120
1121 /* Advertise all capabilities except asymmetric
1122 * pause.
1123 */
1124 val = readl(gp->regs + PCS_MIIADV);
1125 val |= (PCS_MIIADV_FD | PCS_MIIADV_HD |
1126 PCS_MIIADV_SP | PCS_MIIADV_AP);
1127 writel(val, gp->regs + PCS_MIIADV);
1128
1129 /* Enable and restart auto-negotiation, disable wrapback/loopback,
1130 * and re-enable PCS.
1131 */
1132 val = readl(gp->regs + PCS_MIICTRL);
1133 val |= (PCS_MIICTRL_RAN | PCS_MIICTRL_ANE);
1134 val &= ~PCS_MIICTRL_WB;
1135 writel(val, gp->regs + PCS_MIICTRL);
1136
1137 val = readl(gp->regs + PCS_CFG);
1138 val |= PCS_CFG_ENABLE;
1139 writel(val, gp->regs + PCS_CFG);
1140
1141 /* Make sure serialink loopback is off. The meaning
1142 * of this bit is logically inverted based upon whether
1143 * you are in Serialink or SERDES mode.
1144 */
1145 val = readl(gp->regs + PCS_SCTRL);
1146 if (gp->phy_type == phy_serialink)
1147 val &= ~PCS_SCTRL_LOOP;
1148 else
1149 val |= PCS_SCTRL_LOOP;
1150 writel(val, gp->regs + PCS_SCTRL);
1151 }
1152
1153 #define STOP_TRIES 32
1154
gem_reset(struct gem * gp)1155 static void gem_reset(struct gem *gp)
1156 {
1157 int limit;
1158 u32 val;
1159
1160 /* Make sure we won't get any more interrupts */
1161 writel(0xffffffff, gp->regs + GREG_IMASK);
1162
1163 /* Reset the chip */
1164 writel(gp->swrst_base | GREG_SWRST_TXRST | GREG_SWRST_RXRST,
1165 gp->regs + GREG_SWRST);
1166
1167 limit = STOP_TRIES;
1168
1169 do {
1170 udelay(20);
1171 val = readl(gp->regs + GREG_SWRST);
1172 if (limit-- <= 0)
1173 break;
1174 } while (val & (GREG_SWRST_TXRST | GREG_SWRST_RXRST));
1175
1176 if (limit < 0)
1177 netdev_err(gp->dev, "SW reset is ghetto\n");
1178
1179 if (gp->phy_type == phy_serialink || gp->phy_type == phy_serdes)
1180 gem_pcs_reinit_adv(gp);
1181 }
1182
gem_start_dma(struct gem * gp)1183 static void gem_start_dma(struct gem *gp)
1184 {
1185 u32 val;
1186
1187 /* We are ready to rock, turn everything on. */
1188 val = readl(gp->regs + TXDMA_CFG);
1189 writel(val | TXDMA_CFG_ENABLE, gp->regs + TXDMA_CFG);
1190 val = readl(gp->regs + RXDMA_CFG);
1191 writel(val | RXDMA_CFG_ENABLE, gp->regs + RXDMA_CFG);
1192 val = readl(gp->regs + MAC_TXCFG);
1193 writel(val | MAC_TXCFG_ENAB, gp->regs + MAC_TXCFG);
1194 val = readl(gp->regs + MAC_RXCFG);
1195 writel(val | MAC_RXCFG_ENAB, gp->regs + MAC_RXCFG);
1196
1197 (void) readl(gp->regs + MAC_RXCFG);
1198 udelay(100);
1199
1200 gem_enable_ints(gp);
1201
1202 writel(RX_RING_SIZE - 4, gp->regs + RXDMA_KICK);
1203 }
1204
1205 /* DMA won't be actually stopped before about 4ms tho ...
1206 */
gem_stop_dma(struct gem * gp)1207 static void gem_stop_dma(struct gem *gp)
1208 {
1209 u32 val;
1210
1211 /* We are done rocking, turn everything off. */
1212 val = readl(gp->regs + TXDMA_CFG);
1213 writel(val & ~TXDMA_CFG_ENABLE, gp->regs + TXDMA_CFG);
1214 val = readl(gp->regs + RXDMA_CFG);
1215 writel(val & ~RXDMA_CFG_ENABLE, gp->regs + RXDMA_CFG);
1216 val = readl(gp->regs + MAC_TXCFG);
1217 writel(val & ~MAC_TXCFG_ENAB, gp->regs + MAC_TXCFG);
1218 val = readl(gp->regs + MAC_RXCFG);
1219 writel(val & ~MAC_RXCFG_ENAB, gp->regs + MAC_RXCFG);
1220
1221 (void) readl(gp->regs + MAC_RXCFG);
1222
1223 /* Need to wait a bit ... done by the caller */
1224 }
1225
1226
1227 // XXX dbl check what that function should do when called on PCS PHY
gem_begin_auto_negotiation(struct gem * gp,const struct ethtool_link_ksettings * ep)1228 static void gem_begin_auto_negotiation(struct gem *gp,
1229 const struct ethtool_link_ksettings *ep)
1230 {
1231 u32 advertise, features;
1232 int autoneg;
1233 int speed;
1234 int duplex;
1235 u32 advertising;
1236
1237 if (ep)
1238 ethtool_convert_link_mode_to_legacy_u32(
1239 &advertising, ep->link_modes.advertising);
1240
1241 if (gp->phy_type != phy_mii_mdio0 &&
1242 gp->phy_type != phy_mii_mdio1)
1243 goto non_mii;
1244
1245 /* Setup advertise */
1246 if (found_mii_phy(gp))
1247 features = gp->phy_mii.def->features;
1248 else
1249 features = 0;
1250
1251 advertise = features & ADVERTISE_MASK;
1252 if (gp->phy_mii.advertising != 0)
1253 advertise &= gp->phy_mii.advertising;
1254
1255 autoneg = gp->want_autoneg;
1256 speed = gp->phy_mii.speed;
1257 duplex = gp->phy_mii.duplex;
1258
1259 /* Setup link parameters */
1260 if (!ep)
1261 goto start_aneg;
1262 if (ep->base.autoneg == AUTONEG_ENABLE) {
1263 advertise = advertising;
1264 autoneg = 1;
1265 } else {
1266 autoneg = 0;
1267 speed = ep->base.speed;
1268 duplex = ep->base.duplex;
1269 }
1270
1271 start_aneg:
1272 /* Sanitize settings based on PHY capabilities */
1273 if ((features & SUPPORTED_Autoneg) == 0)
1274 autoneg = 0;
1275 if (speed == SPEED_1000 &&
1276 !(features & (SUPPORTED_1000baseT_Half | SUPPORTED_1000baseT_Full)))
1277 speed = SPEED_100;
1278 if (speed == SPEED_100 &&
1279 !(features & (SUPPORTED_100baseT_Half | SUPPORTED_100baseT_Full)))
1280 speed = SPEED_10;
1281 if (duplex == DUPLEX_FULL &&
1282 !(features & (SUPPORTED_1000baseT_Full |
1283 SUPPORTED_100baseT_Full |
1284 SUPPORTED_10baseT_Full)))
1285 duplex = DUPLEX_HALF;
1286 if (speed == 0)
1287 speed = SPEED_10;
1288
1289 /* If we are asleep, we don't try to actually setup the PHY, we
1290 * just store the settings
1291 */
1292 if (!netif_device_present(gp->dev)) {
1293 gp->phy_mii.autoneg = gp->want_autoneg = autoneg;
1294 gp->phy_mii.speed = speed;
1295 gp->phy_mii.duplex = duplex;
1296 return;
1297 }
1298
1299 /* Configure PHY & start aneg */
1300 gp->want_autoneg = autoneg;
1301 if (autoneg) {
1302 if (found_mii_phy(gp))
1303 gp->phy_mii.def->ops->setup_aneg(&gp->phy_mii, advertise);
1304 gp->lstate = link_aneg;
1305 } else {
1306 if (found_mii_phy(gp))
1307 gp->phy_mii.def->ops->setup_forced(&gp->phy_mii, speed, duplex);
1308 gp->lstate = link_force_ok;
1309 }
1310
1311 non_mii:
1312 gp->timer_ticks = 0;
1313 mod_timer(&gp->link_timer, jiffies + ((12 * HZ) / 10));
1314 }
1315
1316 /* A link-up condition has occurred, initialize and enable the
1317 * rest of the chip.
1318 */
gem_set_link_modes(struct gem * gp)1319 static int gem_set_link_modes(struct gem *gp)
1320 {
1321 struct netdev_queue *txq = netdev_get_tx_queue(gp->dev, 0);
1322 int full_duplex, speed, pause;
1323 u32 val;
1324
1325 full_duplex = 0;
1326 speed = SPEED_10;
1327 pause = 0;
1328
1329 if (found_mii_phy(gp)) {
1330 if (gp->phy_mii.def->ops->read_link(&gp->phy_mii))
1331 return 1;
1332 full_duplex = (gp->phy_mii.duplex == DUPLEX_FULL);
1333 speed = gp->phy_mii.speed;
1334 pause = gp->phy_mii.pause;
1335 } else if (gp->phy_type == phy_serialink ||
1336 gp->phy_type == phy_serdes) {
1337 u32 pcs_lpa = readl(gp->regs + PCS_MIILP);
1338
1339 if ((pcs_lpa & PCS_MIIADV_FD) || gp->phy_type == phy_serdes)
1340 full_duplex = 1;
1341 speed = SPEED_1000;
1342 }
1343
1344 netif_info(gp, link, gp->dev, "Link is up at %d Mbps, %s-duplex\n",
1345 speed, (full_duplex ? "full" : "half"));
1346
1347
1348 /* We take the tx queue lock to avoid collisions between
1349 * this code, the tx path and the NAPI-driven error path
1350 */
1351 __netif_tx_lock(txq, smp_processor_id());
1352
1353 val = (MAC_TXCFG_EIPG0 | MAC_TXCFG_NGU);
1354 if (full_duplex) {
1355 val |= (MAC_TXCFG_ICS | MAC_TXCFG_ICOLL);
1356 } else {
1357 /* MAC_TXCFG_NBO must be zero. */
1358 }
1359 writel(val, gp->regs + MAC_TXCFG);
1360
1361 val = (MAC_XIFCFG_OE | MAC_XIFCFG_LLED);
1362 if (!full_duplex &&
1363 (gp->phy_type == phy_mii_mdio0 ||
1364 gp->phy_type == phy_mii_mdio1)) {
1365 val |= MAC_XIFCFG_DISE;
1366 } else if (full_duplex) {
1367 val |= MAC_XIFCFG_FLED;
1368 }
1369
1370 if (speed == SPEED_1000)
1371 val |= (MAC_XIFCFG_GMII);
1372
1373 writel(val, gp->regs + MAC_XIFCFG);
1374
1375 /* If gigabit and half-duplex, enable carrier extension
1376 * mode. Else, disable it.
1377 */
1378 if (speed == SPEED_1000 && !full_duplex) {
1379 val = readl(gp->regs + MAC_TXCFG);
1380 writel(val | MAC_TXCFG_TCE, gp->regs + MAC_TXCFG);
1381
1382 val = readl(gp->regs + MAC_RXCFG);
1383 writel(val | MAC_RXCFG_RCE, gp->regs + MAC_RXCFG);
1384 } else {
1385 val = readl(gp->regs + MAC_TXCFG);
1386 writel(val & ~MAC_TXCFG_TCE, gp->regs + MAC_TXCFG);
1387
1388 val = readl(gp->regs + MAC_RXCFG);
1389 writel(val & ~MAC_RXCFG_RCE, gp->regs + MAC_RXCFG);
1390 }
1391
1392 if (gp->phy_type == phy_serialink ||
1393 gp->phy_type == phy_serdes) {
1394 u32 pcs_lpa = readl(gp->regs + PCS_MIILP);
1395
1396 if (pcs_lpa & (PCS_MIIADV_SP | PCS_MIIADV_AP))
1397 pause = 1;
1398 }
1399
1400 if (!full_duplex)
1401 writel(512, gp->regs + MAC_STIME);
1402 else
1403 writel(64, gp->regs + MAC_STIME);
1404 val = readl(gp->regs + MAC_MCCFG);
1405 if (pause)
1406 val |= (MAC_MCCFG_SPE | MAC_MCCFG_RPE);
1407 else
1408 val &= ~(MAC_MCCFG_SPE | MAC_MCCFG_RPE);
1409 writel(val, gp->regs + MAC_MCCFG);
1410
1411 gem_start_dma(gp);
1412
1413 __netif_tx_unlock(txq);
1414
1415 if (netif_msg_link(gp)) {
1416 if (pause) {
1417 netdev_info(gp->dev,
1418 "Pause is enabled (rxfifo: %d off: %d on: %d)\n",
1419 gp->rx_fifo_sz,
1420 gp->rx_pause_off,
1421 gp->rx_pause_on);
1422 } else {
1423 netdev_info(gp->dev, "Pause is disabled\n");
1424 }
1425 }
1426
1427 return 0;
1428 }
1429
gem_mdio_link_not_up(struct gem * gp)1430 static int gem_mdio_link_not_up(struct gem *gp)
1431 {
1432 switch (gp->lstate) {
1433 case link_force_ret:
1434 netif_info(gp, link, gp->dev,
1435 "Autoneg failed again, keeping forced mode\n");
1436 gp->phy_mii.def->ops->setup_forced(&gp->phy_mii,
1437 gp->last_forced_speed, DUPLEX_HALF);
1438 gp->timer_ticks = 5;
1439 gp->lstate = link_force_ok;
1440 return 0;
1441 case link_aneg:
1442 /* We try forced modes after a failed aneg only on PHYs that don't
1443 * have "magic_aneg" bit set, which means they internally do the
1444 * while forced-mode thingy. On these, we just restart aneg
1445 */
1446 if (gp->phy_mii.def->magic_aneg)
1447 return 1;
1448 netif_info(gp, link, gp->dev, "switching to forced 100bt\n");
1449 /* Try forced modes. */
1450 gp->phy_mii.def->ops->setup_forced(&gp->phy_mii, SPEED_100,
1451 DUPLEX_HALF);
1452 gp->timer_ticks = 5;
1453 gp->lstate = link_force_try;
1454 return 0;
1455 case link_force_try:
1456 /* Downgrade from 100 to 10 Mbps if necessary.
1457 * If already at 10Mbps, warn user about the
1458 * situation every 10 ticks.
1459 */
1460 if (gp->phy_mii.speed == SPEED_100) {
1461 gp->phy_mii.def->ops->setup_forced(&gp->phy_mii, SPEED_10,
1462 DUPLEX_HALF);
1463 gp->timer_ticks = 5;
1464 netif_info(gp, link, gp->dev,
1465 "switching to forced 10bt\n");
1466 return 0;
1467 } else
1468 return 1;
1469 default:
1470 return 0;
1471 }
1472 }
1473
gem_link_timer(struct timer_list * t)1474 static void gem_link_timer(struct timer_list *t)
1475 {
1476 struct gem *gp = timer_container_of(gp, t, link_timer);
1477 struct net_device *dev = gp->dev;
1478 int restart_aneg = 0;
1479
1480 /* There's no point doing anything if we're going to be reset */
1481 if (gp->reset_task_pending)
1482 return;
1483
1484 if (gp->phy_type == phy_serialink ||
1485 gp->phy_type == phy_serdes) {
1486 u32 val = readl(gp->regs + PCS_MIISTAT);
1487
1488 if (!(val & PCS_MIISTAT_LS))
1489 val = readl(gp->regs + PCS_MIISTAT);
1490
1491 if ((val & PCS_MIISTAT_LS) != 0) {
1492 if (gp->lstate == link_up)
1493 goto restart;
1494
1495 gp->lstate = link_up;
1496 netif_carrier_on(dev);
1497 (void)gem_set_link_modes(gp);
1498 }
1499 goto restart;
1500 }
1501 if (found_mii_phy(gp) && gp->phy_mii.def->ops->poll_link(&gp->phy_mii)) {
1502 /* Ok, here we got a link. If we had it due to a forced
1503 * fallback, and we were configured for autoneg, we do
1504 * retry a short autoneg pass. If you know your hub is
1505 * broken, use ethtool ;)
1506 */
1507 if (gp->lstate == link_force_try && gp->want_autoneg) {
1508 gp->lstate = link_force_ret;
1509 gp->last_forced_speed = gp->phy_mii.speed;
1510 gp->timer_ticks = 5;
1511 if (netif_msg_link(gp))
1512 netdev_info(dev,
1513 "Got link after fallback, retrying autoneg once...\n");
1514 gp->phy_mii.def->ops->setup_aneg(&gp->phy_mii, gp->phy_mii.advertising);
1515 } else if (gp->lstate != link_up) {
1516 gp->lstate = link_up;
1517 netif_carrier_on(dev);
1518 if (gem_set_link_modes(gp))
1519 restart_aneg = 1;
1520 }
1521 } else {
1522 /* If the link was previously up, we restart the
1523 * whole process
1524 */
1525 if (gp->lstate == link_up) {
1526 gp->lstate = link_down;
1527 netif_info(gp, link, dev, "Link down\n");
1528 netif_carrier_off(dev);
1529 gem_schedule_reset(gp);
1530 /* The reset task will restart the timer */
1531 return;
1532 } else if (++gp->timer_ticks > 10) {
1533 if (found_mii_phy(gp))
1534 restart_aneg = gem_mdio_link_not_up(gp);
1535 else
1536 restart_aneg = 1;
1537 }
1538 }
1539 if (restart_aneg) {
1540 gem_begin_auto_negotiation(gp, NULL);
1541 return;
1542 }
1543 restart:
1544 mod_timer(&gp->link_timer, jiffies + ((12 * HZ) / 10));
1545 }
1546
gem_clean_rings(struct gem * gp)1547 static void gem_clean_rings(struct gem *gp)
1548 {
1549 struct gem_init_block *gb = gp->init_block;
1550 struct sk_buff *skb;
1551 int i;
1552 dma_addr_t dma_addr;
1553
1554 for (i = 0; i < RX_RING_SIZE; i++) {
1555 struct gem_rxd *rxd;
1556
1557 rxd = &gb->rxd[i];
1558 if (gp->rx_skbs[i] != NULL) {
1559 skb = gp->rx_skbs[i];
1560 dma_addr = le64_to_cpu(rxd->buffer);
1561 dma_unmap_page(&gp->pdev->dev, dma_addr,
1562 RX_BUF_ALLOC_SIZE(gp),
1563 DMA_FROM_DEVICE);
1564 dev_kfree_skb_any(skb);
1565 gp->rx_skbs[i] = NULL;
1566 }
1567 rxd->status_word = 0;
1568 dma_wmb();
1569 rxd->buffer = 0;
1570 }
1571
1572 for (i = 0; i < TX_RING_SIZE; i++) {
1573 if (gp->tx_skbs[i] != NULL) {
1574 struct gem_txd *txd;
1575 int frag;
1576
1577 skb = gp->tx_skbs[i];
1578 gp->tx_skbs[i] = NULL;
1579
1580 for (frag = 0; frag <= skb_shinfo(skb)->nr_frags; frag++) {
1581 int ent = i & (TX_RING_SIZE - 1);
1582
1583 txd = &gb->txd[ent];
1584 dma_addr = le64_to_cpu(txd->buffer);
1585 dma_unmap_page(&gp->pdev->dev, dma_addr,
1586 le64_to_cpu(txd->control_word) &
1587 TXDCTRL_BUFSZ, DMA_TO_DEVICE);
1588
1589 if (frag != skb_shinfo(skb)->nr_frags)
1590 i++;
1591 }
1592 dev_kfree_skb_any(skb);
1593 }
1594 }
1595 }
1596
gem_init_rings(struct gem * gp)1597 static void gem_init_rings(struct gem *gp)
1598 {
1599 struct gem_init_block *gb = gp->init_block;
1600 struct net_device *dev = gp->dev;
1601 int i;
1602 dma_addr_t dma_addr;
1603
1604 gp->rx_new = gp->rx_old = gp->tx_new = gp->tx_old = 0;
1605
1606 gem_clean_rings(gp);
1607
1608 gp->rx_buf_sz = max(dev->mtu + ETH_HLEN + VLAN_HLEN,
1609 (unsigned)VLAN_ETH_FRAME_LEN);
1610
1611 for (i = 0; i < RX_RING_SIZE; i++) {
1612 struct sk_buff *skb;
1613 struct gem_rxd *rxd = &gb->rxd[i];
1614
1615 skb = gem_alloc_skb(dev, RX_BUF_ALLOC_SIZE(gp), GFP_KERNEL);
1616 if (!skb) {
1617 rxd->buffer = 0;
1618 rxd->status_word = 0;
1619 continue;
1620 }
1621
1622 gp->rx_skbs[i] = skb;
1623 skb_put(skb, (gp->rx_buf_sz + RX_OFFSET));
1624 dma_addr = dma_map_page(&gp->pdev->dev,
1625 virt_to_page(skb->data),
1626 offset_in_page(skb->data),
1627 RX_BUF_ALLOC_SIZE(gp),
1628 DMA_FROM_DEVICE);
1629 rxd->buffer = cpu_to_le64(dma_addr);
1630 dma_wmb();
1631 rxd->status_word = cpu_to_le64(RXDCTRL_FRESH(gp));
1632 skb_reserve(skb, RX_OFFSET);
1633 }
1634
1635 for (i = 0; i < TX_RING_SIZE; i++) {
1636 struct gem_txd *txd = &gb->txd[i];
1637
1638 txd->control_word = 0;
1639 dma_wmb();
1640 txd->buffer = 0;
1641 }
1642 wmb();
1643 }
1644
1645 /* Init PHY interface and start link poll state machine */
gem_init_phy(struct gem * gp)1646 static void gem_init_phy(struct gem *gp)
1647 {
1648 u32 mifcfg;
1649
1650 /* Revert MIF CFG setting done on stop_phy */
1651 mifcfg = readl(gp->regs + MIF_CFG);
1652 mifcfg &= ~MIF_CFG_BBMODE;
1653 writel(mifcfg, gp->regs + MIF_CFG);
1654
1655 if (gp->pdev->vendor == PCI_VENDOR_ID_APPLE) {
1656 int i;
1657
1658 /* Those delays sucks, the HW seems to love them though, I'll
1659 * seriously consider breaking some locks here to be able
1660 * to schedule instead
1661 */
1662 for (i = 0; i < 3; i++) {
1663 #ifdef CONFIG_PPC_PMAC
1664 pmac_call_feature(PMAC_FTR_GMAC_PHY_RESET, gp->of_node, 0, 0);
1665 msleep(20);
1666 #endif
1667 /* Some PHYs used by apple have problem getting back to us,
1668 * we do an additional reset here
1669 */
1670 sungem_phy_write(gp, MII_BMCR, BMCR_RESET);
1671 msleep(20);
1672 if (sungem_phy_read(gp, MII_BMCR) != 0xffff)
1673 break;
1674 if (i == 2)
1675 netdev_warn(gp->dev, "GMAC PHY not responding !\n");
1676 }
1677 }
1678
1679 if (gp->pdev->vendor == PCI_VENDOR_ID_SUN &&
1680 gp->pdev->device == PCI_DEVICE_ID_SUN_GEM) {
1681 u32 val;
1682
1683 /* Init datapath mode register. */
1684 if (gp->phy_type == phy_mii_mdio0 ||
1685 gp->phy_type == phy_mii_mdio1) {
1686 val = PCS_DMODE_MGM;
1687 } else if (gp->phy_type == phy_serialink) {
1688 val = PCS_DMODE_SM | PCS_DMODE_GMOE;
1689 } else {
1690 val = PCS_DMODE_ESM;
1691 }
1692
1693 writel(val, gp->regs + PCS_DMODE);
1694 }
1695
1696 if (gp->phy_type == phy_mii_mdio0 ||
1697 gp->phy_type == phy_mii_mdio1) {
1698 /* Reset and detect MII PHY */
1699 sungem_phy_probe(&gp->phy_mii, gp->mii_phy_addr);
1700
1701 /* Init PHY */
1702 if (gp->phy_mii.def && gp->phy_mii.def->ops->init)
1703 gp->phy_mii.def->ops->init(&gp->phy_mii);
1704 } else {
1705 gem_pcs_reset(gp);
1706 gem_pcs_reinit_adv(gp);
1707 }
1708
1709 /* Default aneg parameters */
1710 gp->timer_ticks = 0;
1711 gp->lstate = link_down;
1712 netif_carrier_off(gp->dev);
1713
1714 /* Print things out */
1715 if (gp->phy_type == phy_mii_mdio0 ||
1716 gp->phy_type == phy_mii_mdio1)
1717 netdev_info(gp->dev, "Found %s PHY\n",
1718 gp->phy_mii.def ? gp->phy_mii.def->name : "no");
1719
1720 gem_begin_auto_negotiation(gp, NULL);
1721 }
1722
gem_init_dma(struct gem * gp)1723 static void gem_init_dma(struct gem *gp)
1724 {
1725 u64 desc_dma = (u64) gp->gblock_dvma;
1726 u32 val;
1727
1728 val = (TXDMA_CFG_BASE | (0x7ff << 10) | TXDMA_CFG_PMODE);
1729 writel(val, gp->regs + TXDMA_CFG);
1730
1731 writel(desc_dma >> 32, gp->regs + TXDMA_DBHI);
1732 writel(desc_dma & 0xffffffff, gp->regs + TXDMA_DBLOW);
1733 desc_dma += (INIT_BLOCK_TX_RING_SIZE * sizeof(struct gem_txd));
1734
1735 writel(0, gp->regs + TXDMA_KICK);
1736
1737 val = (RXDMA_CFG_BASE | (RX_OFFSET << 10) |
1738 (ETH_HLEN << 13) | RXDMA_CFG_FTHRESH_128);
1739 writel(val, gp->regs + RXDMA_CFG);
1740
1741 writel(desc_dma >> 32, gp->regs + RXDMA_DBHI);
1742 writel(desc_dma & 0xffffffff, gp->regs + RXDMA_DBLOW);
1743
1744 writel(RX_RING_SIZE - 4, gp->regs + RXDMA_KICK);
1745
1746 val = (((gp->rx_pause_off / 64) << 0) & RXDMA_PTHRESH_OFF);
1747 val |= (((gp->rx_pause_on / 64) << 12) & RXDMA_PTHRESH_ON);
1748 writel(val, gp->regs + RXDMA_PTHRESH);
1749
1750 if (readl(gp->regs + GREG_BIFCFG) & GREG_BIFCFG_M66EN)
1751 writel(((5 & RXDMA_BLANK_IPKTS) |
1752 ((8 << 12) & RXDMA_BLANK_ITIME)),
1753 gp->regs + RXDMA_BLANK);
1754 else
1755 writel(((5 & RXDMA_BLANK_IPKTS) |
1756 ((4 << 12) & RXDMA_BLANK_ITIME)),
1757 gp->regs + RXDMA_BLANK);
1758 }
1759
gem_setup_multicast(struct gem * gp)1760 static u32 gem_setup_multicast(struct gem *gp)
1761 {
1762 u32 rxcfg = 0;
1763 int i;
1764
1765 if ((gp->dev->flags & IFF_ALLMULTI) ||
1766 (netdev_mc_count(gp->dev) > 256)) {
1767 for (i=0; i<16; i++)
1768 writel(0xffff, gp->regs + MAC_HASH0 + (i << 2));
1769 rxcfg |= MAC_RXCFG_HFE;
1770 } else if (gp->dev->flags & IFF_PROMISC) {
1771 rxcfg |= MAC_RXCFG_PROM;
1772 } else {
1773 u16 hash_table[16];
1774 u32 crc;
1775 struct netdev_hw_addr *ha;
1776 int i;
1777
1778 memset(hash_table, 0, sizeof(hash_table));
1779 netdev_for_each_mc_addr(ha, gp->dev) {
1780 crc = ether_crc_le(6, ha->addr);
1781 crc >>= 24;
1782 hash_table[crc >> 4] |= 1 << (15 - (crc & 0xf));
1783 }
1784 for (i=0; i<16; i++)
1785 writel(hash_table[i], gp->regs + MAC_HASH0 + (i << 2));
1786 rxcfg |= MAC_RXCFG_HFE;
1787 }
1788
1789 return rxcfg;
1790 }
1791
gem_init_mac(struct gem * gp)1792 static void gem_init_mac(struct gem *gp)
1793 {
1794 const unsigned char *e = &gp->dev->dev_addr[0];
1795
1796 writel(0x1bf0, gp->regs + MAC_SNDPAUSE);
1797
1798 writel(0x00, gp->regs + MAC_IPG0);
1799 writel(0x08, gp->regs + MAC_IPG1);
1800 writel(0x04, gp->regs + MAC_IPG2);
1801 writel(0x40, gp->regs + MAC_STIME);
1802 writel(0x40, gp->regs + MAC_MINFSZ);
1803
1804 /* Ethernet payload + header + FCS + optional VLAN tag. */
1805 writel(0x20000000 | (gp->rx_buf_sz + 4), gp->regs + MAC_MAXFSZ);
1806
1807 writel(0x07, gp->regs + MAC_PASIZE);
1808 writel(0x04, gp->regs + MAC_JAMSIZE);
1809 writel(0x10, gp->regs + MAC_ATTLIM);
1810 writel(0x8808, gp->regs + MAC_MCTYPE);
1811
1812 writel((e[5] | (e[4] << 8)) & 0x3ff, gp->regs + MAC_RANDSEED);
1813
1814 writel((e[4] << 8) | e[5], gp->regs + MAC_ADDR0);
1815 writel((e[2] << 8) | e[3], gp->regs + MAC_ADDR1);
1816 writel((e[0] << 8) | e[1], gp->regs + MAC_ADDR2);
1817
1818 writel(0, gp->regs + MAC_ADDR3);
1819 writel(0, gp->regs + MAC_ADDR4);
1820 writel(0, gp->regs + MAC_ADDR5);
1821
1822 writel(0x0001, gp->regs + MAC_ADDR6);
1823 writel(0xc200, gp->regs + MAC_ADDR7);
1824 writel(0x0180, gp->regs + MAC_ADDR8);
1825
1826 writel(0, gp->regs + MAC_AFILT0);
1827 writel(0, gp->regs + MAC_AFILT1);
1828 writel(0, gp->regs + MAC_AFILT2);
1829 writel(0, gp->regs + MAC_AF21MSK);
1830 writel(0, gp->regs + MAC_AF0MSK);
1831
1832 gp->mac_rx_cfg = gem_setup_multicast(gp);
1833 #ifdef STRIP_FCS
1834 gp->mac_rx_cfg |= MAC_RXCFG_SFCS;
1835 #endif
1836 writel(0, gp->regs + MAC_NCOLL);
1837 writel(0, gp->regs + MAC_FASUCC);
1838 writel(0, gp->regs + MAC_ECOLL);
1839 writel(0, gp->regs + MAC_LCOLL);
1840 writel(0, gp->regs + MAC_DTIMER);
1841 writel(0, gp->regs + MAC_PATMPS);
1842 writel(0, gp->regs + MAC_RFCTR);
1843 writel(0, gp->regs + MAC_LERR);
1844 writel(0, gp->regs + MAC_AERR);
1845 writel(0, gp->regs + MAC_FCSERR);
1846 writel(0, gp->regs + MAC_RXCVERR);
1847
1848 /* Clear RX/TX/MAC/XIF config, we will set these up and enable
1849 * them once a link is established.
1850 */
1851 writel(0, gp->regs + MAC_TXCFG);
1852 writel(gp->mac_rx_cfg, gp->regs + MAC_RXCFG);
1853 writel(0, gp->regs + MAC_MCCFG);
1854 writel(0, gp->regs + MAC_XIFCFG);
1855
1856 /* Setup MAC interrupts. We want to get all of the interesting
1857 * counter expiration events, but we do not want to hear about
1858 * normal rx/tx as the DMA engine tells us that.
1859 */
1860 writel(MAC_TXSTAT_XMIT, gp->regs + MAC_TXMASK);
1861 writel(MAC_RXSTAT_RCV, gp->regs + MAC_RXMASK);
1862
1863 /* Don't enable even the PAUSE interrupts for now, we
1864 * make no use of those events other than to record them.
1865 */
1866 writel(0xffffffff, gp->regs + MAC_MCMASK);
1867
1868 /* Don't enable GEM's WOL in normal operations
1869 */
1870 if (gp->has_wol)
1871 writel(0, gp->regs + WOL_WAKECSR);
1872 }
1873
gem_init_pause_thresholds(struct gem * gp)1874 static void gem_init_pause_thresholds(struct gem *gp)
1875 {
1876 u32 cfg;
1877
1878 /* Calculate pause thresholds. Setting the OFF threshold to the
1879 * full RX fifo size effectively disables PAUSE generation which
1880 * is what we do for 10/100 only GEMs which have FIFOs too small
1881 * to make real gains from PAUSE.
1882 */
1883 if (gp->rx_fifo_sz <= (2 * 1024)) {
1884 gp->rx_pause_off = gp->rx_pause_on = gp->rx_fifo_sz;
1885 } else {
1886 int max_frame = (gp->rx_buf_sz + 4 + 64) & ~63;
1887 int off = (gp->rx_fifo_sz - (max_frame * 2));
1888 int on = off - max_frame;
1889
1890 gp->rx_pause_off = off;
1891 gp->rx_pause_on = on;
1892 }
1893
1894
1895 /* Configure the chip "burst" DMA mode & enable some
1896 * HW bug fixes on Apple version
1897 */
1898 cfg = 0;
1899 if (gp->pdev->vendor == PCI_VENDOR_ID_APPLE)
1900 cfg |= GREG_CFG_RONPAULBIT | GREG_CFG_ENBUG2FIX;
1901 #if !defined(CONFIG_SPARC64) && !defined(CONFIG_ALPHA)
1902 cfg |= GREG_CFG_IBURST;
1903 #endif
1904 cfg |= ((31 << 1) & GREG_CFG_TXDMALIM);
1905 cfg |= ((31 << 6) & GREG_CFG_RXDMALIM);
1906 writel(cfg, gp->regs + GREG_CFG);
1907
1908 /* If Infinite Burst didn't stick, then use different
1909 * thresholds (and Apple bug fixes don't exist)
1910 */
1911 if (!(readl(gp->regs + GREG_CFG) & GREG_CFG_IBURST)) {
1912 cfg = ((2 << 1) & GREG_CFG_TXDMALIM);
1913 cfg |= ((8 << 6) & GREG_CFG_RXDMALIM);
1914 writel(cfg, gp->regs + GREG_CFG);
1915 }
1916 }
1917
gem_check_invariants(struct gem * gp)1918 static int gem_check_invariants(struct gem *gp)
1919 {
1920 struct pci_dev *pdev = gp->pdev;
1921 u32 mif_cfg;
1922
1923 /* On Apple's sungem, we can't rely on registers as the chip
1924 * was been powered down by the firmware. The PHY is looked
1925 * up later on.
1926 */
1927 if (pdev->vendor == PCI_VENDOR_ID_APPLE) {
1928 gp->phy_type = phy_mii_mdio0;
1929 gp->tx_fifo_sz = readl(gp->regs + TXDMA_FSZ) * 64;
1930 gp->rx_fifo_sz = readl(gp->regs + RXDMA_FSZ) * 64;
1931 gp->swrst_base = 0;
1932
1933 mif_cfg = readl(gp->regs + MIF_CFG);
1934 mif_cfg &= ~(MIF_CFG_PSELECT|MIF_CFG_POLL|MIF_CFG_BBMODE|MIF_CFG_MDI1);
1935 mif_cfg |= MIF_CFG_MDI0;
1936 writel(mif_cfg, gp->regs + MIF_CFG);
1937 writel(PCS_DMODE_MGM, gp->regs + PCS_DMODE);
1938 writel(MAC_XIFCFG_OE, gp->regs + MAC_XIFCFG);
1939
1940 /* We hard-code the PHY address so we can properly bring it out of
1941 * reset later on, we can't really probe it at this point, though
1942 * that isn't an issue.
1943 */
1944 if (gp->pdev->device == PCI_DEVICE_ID_APPLE_K2_GMAC)
1945 gp->mii_phy_addr = 1;
1946 else
1947 gp->mii_phy_addr = 0;
1948
1949 return 0;
1950 }
1951
1952 mif_cfg = readl(gp->regs + MIF_CFG);
1953
1954 if (pdev->vendor == PCI_VENDOR_ID_SUN &&
1955 pdev->device == PCI_DEVICE_ID_SUN_RIO_GEM) {
1956 /* One of the MII PHYs _must_ be present
1957 * as this chip has no gigabit PHY.
1958 */
1959 if ((mif_cfg & (MIF_CFG_MDI0 | MIF_CFG_MDI1)) == 0) {
1960 pr_err("RIO GEM lacks MII phy, mif_cfg[%08x]\n",
1961 mif_cfg);
1962 return -1;
1963 }
1964 }
1965
1966 /* Determine initial PHY interface type guess. MDIO1 is the
1967 * external PHY and thus takes precedence over MDIO0.
1968 */
1969
1970 if (mif_cfg & MIF_CFG_MDI1) {
1971 gp->phy_type = phy_mii_mdio1;
1972 mif_cfg |= MIF_CFG_PSELECT;
1973 writel(mif_cfg, gp->regs + MIF_CFG);
1974 } else if (mif_cfg & MIF_CFG_MDI0) {
1975 gp->phy_type = phy_mii_mdio0;
1976 mif_cfg &= ~MIF_CFG_PSELECT;
1977 writel(mif_cfg, gp->regs + MIF_CFG);
1978 } else {
1979 #ifdef CONFIG_SPARC
1980 const char *p;
1981
1982 p = of_get_property(gp->of_node, "shared-pins", NULL);
1983 if (p && !strcmp(p, "serdes"))
1984 gp->phy_type = phy_serdes;
1985 else
1986 #endif
1987 gp->phy_type = phy_serialink;
1988 }
1989 if (gp->phy_type == phy_mii_mdio1 ||
1990 gp->phy_type == phy_mii_mdio0) {
1991 int i;
1992
1993 for (i = 0; i < 32; i++) {
1994 gp->mii_phy_addr = i;
1995 if (sungem_phy_read(gp, MII_BMCR) != 0xffff)
1996 break;
1997 }
1998 if (i == 32) {
1999 if (pdev->device != PCI_DEVICE_ID_SUN_GEM) {
2000 pr_err("RIO MII phy will not respond\n");
2001 return -1;
2002 }
2003 gp->phy_type = phy_serdes;
2004 }
2005 }
2006
2007 /* Fetch the FIFO configurations now too. */
2008 gp->tx_fifo_sz = readl(gp->regs + TXDMA_FSZ) * 64;
2009 gp->rx_fifo_sz = readl(gp->regs + RXDMA_FSZ) * 64;
2010
2011 if (pdev->vendor == PCI_VENDOR_ID_SUN) {
2012 if (pdev->device == PCI_DEVICE_ID_SUN_GEM) {
2013 if (gp->tx_fifo_sz != (9 * 1024) ||
2014 gp->rx_fifo_sz != (20 * 1024)) {
2015 pr_err("GEM has bogus fifo sizes tx(%d) rx(%d)\n",
2016 gp->tx_fifo_sz, gp->rx_fifo_sz);
2017 return -1;
2018 }
2019 gp->swrst_base = 0;
2020 } else {
2021 if (gp->tx_fifo_sz != (2 * 1024) ||
2022 gp->rx_fifo_sz != (2 * 1024)) {
2023 pr_err("RIO GEM has bogus fifo sizes tx(%d) rx(%d)\n",
2024 gp->tx_fifo_sz, gp->rx_fifo_sz);
2025 return -1;
2026 }
2027 gp->swrst_base = (64 / 4) << GREG_SWRST_CACHE_SHIFT;
2028 }
2029 }
2030
2031 return 0;
2032 }
2033
gem_reinit_chip(struct gem * gp)2034 static void gem_reinit_chip(struct gem *gp)
2035 {
2036 /* Reset the chip */
2037 gem_reset(gp);
2038
2039 /* Make sure ints are disabled */
2040 gem_disable_ints(gp);
2041
2042 /* Allocate & setup ring buffers */
2043 gem_init_rings(gp);
2044
2045 /* Configure pause thresholds */
2046 gem_init_pause_thresholds(gp);
2047
2048 /* Init DMA & MAC engines */
2049 gem_init_dma(gp);
2050 gem_init_mac(gp);
2051 }
2052
2053
gem_stop_phy(struct gem * gp,int wol)2054 static void gem_stop_phy(struct gem *gp, int wol)
2055 {
2056 u32 mifcfg;
2057
2058 /* Let the chip settle down a bit, it seems that helps
2059 * for sleep mode on some models
2060 */
2061 msleep(10);
2062
2063 /* Make sure we aren't polling PHY status change. We
2064 * don't currently use that feature though
2065 */
2066 mifcfg = readl(gp->regs + MIF_CFG);
2067 mifcfg &= ~MIF_CFG_POLL;
2068 writel(mifcfg, gp->regs + MIF_CFG);
2069
2070 if (wol && gp->has_wol) {
2071 const unsigned char *e = &gp->dev->dev_addr[0];
2072 u32 csr;
2073
2074 /* Setup wake-on-lan for MAGIC packet */
2075 writel(MAC_RXCFG_HFE | MAC_RXCFG_SFCS | MAC_RXCFG_ENAB,
2076 gp->regs + MAC_RXCFG);
2077 writel((e[4] << 8) | e[5], gp->regs + WOL_MATCH0);
2078 writel((e[2] << 8) | e[3], gp->regs + WOL_MATCH1);
2079 writel((e[0] << 8) | e[1], gp->regs + WOL_MATCH2);
2080
2081 writel(WOL_MCOUNT_N | WOL_MCOUNT_M, gp->regs + WOL_MCOUNT);
2082 csr = WOL_WAKECSR_ENABLE;
2083 if ((readl(gp->regs + MAC_XIFCFG) & MAC_XIFCFG_GMII) == 0)
2084 csr |= WOL_WAKECSR_MII;
2085 writel(csr, gp->regs + WOL_WAKECSR);
2086 } else {
2087 writel(0, gp->regs + MAC_RXCFG);
2088 (void)readl(gp->regs + MAC_RXCFG);
2089 /* Machine sleep will die in strange ways if we
2090 * dont wait a bit here, looks like the chip takes
2091 * some time to really shut down
2092 */
2093 msleep(10);
2094 }
2095
2096 writel(0, gp->regs + MAC_TXCFG);
2097 writel(0, gp->regs + MAC_XIFCFG);
2098 writel(0, gp->regs + TXDMA_CFG);
2099 writel(0, gp->regs + RXDMA_CFG);
2100
2101 if (!wol) {
2102 gem_reset(gp);
2103 writel(MAC_TXRST_CMD, gp->regs + MAC_TXRST);
2104 writel(MAC_RXRST_CMD, gp->regs + MAC_RXRST);
2105
2106 if (found_mii_phy(gp) && gp->phy_mii.def->ops->suspend)
2107 gp->phy_mii.def->ops->suspend(&gp->phy_mii);
2108
2109 /* According to Apple, we must set the MDIO pins to this begnign
2110 * state or we may 1) eat more current, 2) damage some PHYs
2111 */
2112 writel(mifcfg | MIF_CFG_BBMODE, gp->regs + MIF_CFG);
2113 writel(0, gp->regs + MIF_BBCLK);
2114 writel(0, gp->regs + MIF_BBDATA);
2115 writel(0, gp->regs + MIF_BBOENAB);
2116 writel(MAC_XIFCFG_GMII | MAC_XIFCFG_LBCK, gp->regs + MAC_XIFCFG);
2117 (void) readl(gp->regs + MAC_XIFCFG);
2118 }
2119 }
2120
gem_do_start(struct net_device * dev)2121 static int gem_do_start(struct net_device *dev)
2122 {
2123 struct gem *gp = netdev_priv(dev);
2124 int rc;
2125
2126 pci_set_master(gp->pdev);
2127
2128 /* Init & setup chip hardware */
2129 gem_reinit_chip(gp);
2130
2131 /* An interrupt might come in handy */
2132 rc = request_irq(gp->pdev->irq, gem_interrupt,
2133 IRQF_SHARED, dev->name, (void *)dev);
2134 if (rc) {
2135 netdev_err(dev, "failed to request irq !\n");
2136
2137 gem_reset(gp);
2138 gem_clean_rings(gp);
2139 gem_put_cell(gp);
2140 return rc;
2141 }
2142
2143 /* Mark us as attached again if we come from resume(), this has
2144 * no effect if we weren't detached and needs to be done now.
2145 */
2146 netif_device_attach(dev);
2147
2148 /* Restart NAPI & queues */
2149 gem_netif_start(gp);
2150
2151 /* Detect & init PHY, start autoneg etc... this will
2152 * eventually result in starting DMA operations when
2153 * the link is up
2154 */
2155 gem_init_phy(gp);
2156
2157 return 0;
2158 }
2159
gem_do_stop(struct net_device * dev,int wol)2160 static void gem_do_stop(struct net_device *dev, int wol)
2161 {
2162 struct gem *gp = netdev_priv(dev);
2163
2164 /* Stop NAPI and stop tx queue */
2165 gem_netif_stop(gp);
2166
2167 /* Make sure ints are disabled. We don't care about
2168 * synchronizing as NAPI is disabled, thus a stray
2169 * interrupt will do nothing bad (our irq handler
2170 * just schedules NAPI)
2171 */
2172 gem_disable_ints(gp);
2173
2174 /* Stop the link timer */
2175 timer_delete_sync(&gp->link_timer);
2176
2177 /* We cannot cancel the reset task while holding the
2178 * rtnl lock, we'd get an A->B / B->A deadlock stituation
2179 * if we did. This is not an issue however as the reset
2180 * task is synchronized vs. us (rtnl_lock) and will do
2181 * nothing if the device is down or suspended. We do
2182 * still clear reset_task_pending to avoid a spurious
2183 * reset later on in case we do resume before it gets
2184 * scheduled.
2185 */
2186 gp->reset_task_pending = 0;
2187
2188 /* If we are going to sleep with WOL */
2189 gem_stop_dma(gp);
2190 msleep(10);
2191 if (!wol)
2192 gem_reset(gp);
2193 msleep(10);
2194
2195 /* Get rid of rings */
2196 gem_clean_rings(gp);
2197
2198 /* No irq needed anymore */
2199 free_irq(gp->pdev->irq, (void *) dev);
2200
2201 /* Shut the PHY down eventually and setup WOL */
2202 gem_stop_phy(gp, wol);
2203 }
2204
gem_reset_task(struct work_struct * work)2205 static void gem_reset_task(struct work_struct *work)
2206 {
2207 struct gem *gp = container_of(work, struct gem, reset_task);
2208
2209 /* Lock out the network stack (essentially shield ourselves
2210 * against a racing open, close, control call, or suspend
2211 */
2212 rtnl_lock();
2213
2214 /* Skip the reset task if suspended or closed, or if it's
2215 * been cancelled by gem_do_stop (see comment there)
2216 */
2217 if (!netif_device_present(gp->dev) ||
2218 !netif_running(gp->dev) ||
2219 !gp->reset_task_pending) {
2220 rtnl_unlock();
2221 return;
2222 }
2223
2224 /* Stop the link timer */
2225 timer_delete_sync(&gp->link_timer);
2226
2227 /* Stop NAPI and tx */
2228 gem_netif_stop(gp);
2229
2230 /* Reset the chip & rings */
2231 gem_reinit_chip(gp);
2232 if (gp->lstate == link_up)
2233 gem_set_link_modes(gp);
2234
2235 /* Restart NAPI and Tx */
2236 gem_netif_start(gp);
2237
2238 /* We are back ! */
2239 gp->reset_task_pending = 0;
2240
2241 /* If the link is not up, restart autoneg, else restart the
2242 * polling timer
2243 */
2244 if (gp->lstate != link_up)
2245 gem_begin_auto_negotiation(gp, NULL);
2246 else
2247 mod_timer(&gp->link_timer, jiffies + ((12 * HZ) / 10));
2248
2249 rtnl_unlock();
2250 }
2251
gem_open(struct net_device * dev)2252 static int gem_open(struct net_device *dev)
2253 {
2254 struct gem *gp = netdev_priv(dev);
2255 int rc;
2256
2257 /* We allow open while suspended, we just do nothing,
2258 * the chip will be initialized in resume()
2259 */
2260 if (netif_device_present(dev)) {
2261 /* Enable the cell */
2262 gem_get_cell(gp);
2263
2264 /* Make sure PCI access and bus master are enabled */
2265 rc = pci_enable_device(gp->pdev);
2266 if (rc) {
2267 netdev_err(dev, "Failed to enable chip on PCI bus !\n");
2268
2269 /* Put cell and forget it for now, it will be considered
2270 *as still asleep, a new sleep cycle may bring it back
2271 */
2272 gem_put_cell(gp);
2273 return -ENXIO;
2274 }
2275 return gem_do_start(dev);
2276 }
2277
2278 return 0;
2279 }
2280
gem_close(struct net_device * dev)2281 static int gem_close(struct net_device *dev)
2282 {
2283 struct gem *gp = netdev_priv(dev);
2284
2285 if (netif_device_present(dev)) {
2286 gem_do_stop(dev, 0);
2287
2288 /* Make sure bus master is disabled */
2289 pci_disable_device(gp->pdev);
2290
2291 /* Cell not needed neither if no WOL */
2292 if (!gp->asleep_wol)
2293 gem_put_cell(gp);
2294 }
2295 return 0;
2296 }
2297
gem_suspend(struct device * dev_d)2298 static int __maybe_unused gem_suspend(struct device *dev_d)
2299 {
2300 struct net_device *dev = dev_get_drvdata(dev_d);
2301 struct gem *gp = netdev_priv(dev);
2302
2303 /* Lock the network stack first to avoid racing with open/close,
2304 * reset task and setting calls
2305 */
2306 rtnl_lock();
2307
2308 /* Not running, mark ourselves non-present, no need for
2309 * a lock here
2310 */
2311 if (!netif_running(dev)) {
2312 netif_device_detach(dev);
2313 rtnl_unlock();
2314 return 0;
2315 }
2316 netdev_info(dev, "suspending, WakeOnLan %s\n",
2317 (gp->wake_on_lan && netif_running(dev)) ?
2318 "enabled" : "disabled");
2319
2320 /* Tell the network stack we're gone. gem_do_stop() below will
2321 * synchronize with TX, stop NAPI etc...
2322 */
2323 netif_device_detach(dev);
2324
2325 /* Switch off chip, remember WOL setting */
2326 gp->asleep_wol = !!gp->wake_on_lan;
2327 gem_do_stop(dev, gp->asleep_wol);
2328
2329 /* Cell not needed neither if no WOL */
2330 if (!gp->asleep_wol)
2331 gem_put_cell(gp);
2332
2333 /* Unlock the network stack */
2334 rtnl_unlock();
2335
2336 return 0;
2337 }
2338
gem_resume(struct device * dev_d)2339 static int __maybe_unused gem_resume(struct device *dev_d)
2340 {
2341 struct net_device *dev = dev_get_drvdata(dev_d);
2342 struct gem *gp = netdev_priv(dev);
2343
2344 /* See locking comment in gem_suspend */
2345 rtnl_lock();
2346
2347 /* Not running, mark ourselves present, no need for
2348 * a lock here
2349 */
2350 if (!netif_running(dev)) {
2351 netif_device_attach(dev);
2352 rtnl_unlock();
2353 return 0;
2354 }
2355
2356 /* Enable the cell */
2357 gem_get_cell(gp);
2358
2359 /* Restart chip. If that fails there isn't much we can do, we
2360 * leave things stopped.
2361 */
2362 gem_do_start(dev);
2363
2364 /* If we had WOL enabled, the cell clock was never turned off during
2365 * sleep, so we end up being unbalanced. Fix that here
2366 */
2367 if (gp->asleep_wol)
2368 gem_put_cell(gp);
2369
2370 /* Unlock the network stack */
2371 rtnl_unlock();
2372
2373 return 0;
2374 }
2375
gem_get_stats(struct net_device * dev)2376 static struct net_device_stats *gem_get_stats(struct net_device *dev)
2377 {
2378 struct gem *gp = netdev_priv(dev);
2379
2380 /* I have seen this being called while the PM was in progress,
2381 * so we shield against this. Let's also not poke at registers
2382 * while the reset task is going on.
2383 *
2384 * TODO: Move stats collection elsewhere (link timer ?) and
2385 * make this a nop to avoid all those synchro issues
2386 */
2387 if (!netif_device_present(dev) || !netif_running(dev))
2388 goto bail;
2389
2390 /* Better safe than sorry... */
2391 if (WARN_ON(!gp->cell_enabled))
2392 goto bail;
2393
2394 dev->stats.rx_crc_errors += readl(gp->regs + MAC_FCSERR);
2395 writel(0, gp->regs + MAC_FCSERR);
2396
2397 dev->stats.rx_frame_errors += readl(gp->regs + MAC_AERR);
2398 writel(0, gp->regs + MAC_AERR);
2399
2400 dev->stats.rx_length_errors += readl(gp->regs + MAC_LERR);
2401 writel(0, gp->regs + MAC_LERR);
2402
2403 dev->stats.tx_aborted_errors += readl(gp->regs + MAC_ECOLL);
2404 dev->stats.collisions +=
2405 (readl(gp->regs + MAC_ECOLL) + readl(gp->regs + MAC_LCOLL));
2406 writel(0, gp->regs + MAC_ECOLL);
2407 writel(0, gp->regs + MAC_LCOLL);
2408 bail:
2409 return &dev->stats;
2410 }
2411
gem_set_mac_address(struct net_device * dev,void * addr)2412 static int gem_set_mac_address(struct net_device *dev, void *addr)
2413 {
2414 struct sockaddr *macaddr = (struct sockaddr *) addr;
2415 const unsigned char *e = &dev->dev_addr[0];
2416 struct gem *gp = netdev_priv(dev);
2417
2418 if (!is_valid_ether_addr(macaddr->sa_data))
2419 return -EADDRNOTAVAIL;
2420
2421 eth_hw_addr_set(dev, macaddr->sa_data);
2422
2423 /* We'll just catch it later when the device is up'd or resumed */
2424 if (!netif_running(dev) || !netif_device_present(dev))
2425 return 0;
2426
2427 /* Better safe than sorry... */
2428 if (WARN_ON(!gp->cell_enabled))
2429 return 0;
2430
2431 writel((e[4] << 8) | e[5], gp->regs + MAC_ADDR0);
2432 writel((e[2] << 8) | e[3], gp->regs + MAC_ADDR1);
2433 writel((e[0] << 8) | e[1], gp->regs + MAC_ADDR2);
2434
2435 return 0;
2436 }
2437
gem_set_multicast(struct net_device * dev)2438 static void gem_set_multicast(struct net_device *dev)
2439 {
2440 struct gem *gp = netdev_priv(dev);
2441 u32 rxcfg, rxcfg_new;
2442 int limit = 10000;
2443
2444 if (!netif_running(dev) || !netif_device_present(dev))
2445 return;
2446
2447 /* Better safe than sorry... */
2448 if (gp->reset_task_pending || WARN_ON(!gp->cell_enabled))
2449 return;
2450
2451 rxcfg = readl(gp->regs + MAC_RXCFG);
2452 rxcfg_new = gem_setup_multicast(gp);
2453 #ifdef STRIP_FCS
2454 rxcfg_new |= MAC_RXCFG_SFCS;
2455 #endif
2456 gp->mac_rx_cfg = rxcfg_new;
2457
2458 writel(rxcfg & ~MAC_RXCFG_ENAB, gp->regs + MAC_RXCFG);
2459 while (readl(gp->regs + MAC_RXCFG) & MAC_RXCFG_ENAB) {
2460 if (!limit--)
2461 break;
2462 udelay(10);
2463 }
2464
2465 rxcfg &= ~(MAC_RXCFG_PROM | MAC_RXCFG_HFE);
2466 rxcfg |= rxcfg_new;
2467
2468 writel(rxcfg, gp->regs + MAC_RXCFG);
2469 }
2470
2471 /* Jumbo-grams don't seem to work :-( */
2472 #define GEM_MIN_MTU ETH_MIN_MTU
2473 #if 1
2474 #define GEM_MAX_MTU ETH_DATA_LEN
2475 #else
2476 #define GEM_MAX_MTU 9000
2477 #endif
2478
gem_change_mtu(struct net_device * dev,int new_mtu)2479 static int gem_change_mtu(struct net_device *dev, int new_mtu)
2480 {
2481 struct gem *gp = netdev_priv(dev);
2482
2483 WRITE_ONCE(dev->mtu, new_mtu);
2484
2485 /* We'll just catch it later when the device is up'd or resumed */
2486 if (!netif_running(dev) || !netif_device_present(dev))
2487 return 0;
2488
2489 /* Better safe than sorry... */
2490 if (WARN_ON(!gp->cell_enabled))
2491 return 0;
2492
2493 gem_netif_stop(gp);
2494 gem_reinit_chip(gp);
2495 if (gp->lstate == link_up)
2496 gem_set_link_modes(gp);
2497 gem_netif_start(gp);
2498
2499 return 0;
2500 }
2501
gem_get_drvinfo(struct net_device * dev,struct ethtool_drvinfo * info)2502 static void gem_get_drvinfo(struct net_device *dev, struct ethtool_drvinfo *info)
2503 {
2504 struct gem *gp = netdev_priv(dev);
2505
2506 strscpy(info->driver, DRV_NAME, sizeof(info->driver));
2507 strscpy(info->version, DRV_VERSION, sizeof(info->version));
2508 strscpy(info->bus_info, pci_name(gp->pdev), sizeof(info->bus_info));
2509 }
2510
gem_get_link_ksettings(struct net_device * dev,struct ethtool_link_ksettings * cmd)2511 static int gem_get_link_ksettings(struct net_device *dev,
2512 struct ethtool_link_ksettings *cmd)
2513 {
2514 struct gem *gp = netdev_priv(dev);
2515 u32 supported, advertising;
2516
2517 if (gp->phy_type == phy_mii_mdio0 ||
2518 gp->phy_type == phy_mii_mdio1) {
2519 if (gp->phy_mii.def)
2520 supported = gp->phy_mii.def->features;
2521 else
2522 supported = (SUPPORTED_10baseT_Half |
2523 SUPPORTED_10baseT_Full);
2524
2525 /* XXX hardcoded stuff for now */
2526 cmd->base.port = PORT_MII;
2527 cmd->base.phy_address = 0; /* XXX fixed PHYAD */
2528
2529 /* Return current PHY settings */
2530 cmd->base.autoneg = gp->want_autoneg;
2531 cmd->base.speed = gp->phy_mii.speed;
2532 cmd->base.duplex = gp->phy_mii.duplex;
2533 advertising = gp->phy_mii.advertising;
2534
2535 /* If we started with a forced mode, we don't have a default
2536 * advertise set, we need to return something sensible so
2537 * userland can re-enable autoneg properly.
2538 */
2539 if (advertising == 0)
2540 advertising = supported;
2541 } else { // XXX PCS ?
2542 supported =
2543 (SUPPORTED_10baseT_Half | SUPPORTED_10baseT_Full |
2544 SUPPORTED_100baseT_Half | SUPPORTED_100baseT_Full |
2545 SUPPORTED_Autoneg);
2546 advertising = supported;
2547 cmd->base.speed = 0;
2548 cmd->base.duplex = 0;
2549 cmd->base.port = 0;
2550 cmd->base.phy_address = 0;
2551 cmd->base.autoneg = 0;
2552
2553 /* serdes means usually a Fibre connector, with most fixed */
2554 if (gp->phy_type == phy_serdes) {
2555 cmd->base.port = PORT_FIBRE;
2556 supported = (SUPPORTED_1000baseT_Half |
2557 SUPPORTED_1000baseT_Full |
2558 SUPPORTED_FIBRE | SUPPORTED_Autoneg |
2559 SUPPORTED_Pause | SUPPORTED_Asym_Pause);
2560 advertising = supported;
2561 if (gp->lstate == link_up)
2562 cmd->base.speed = SPEED_1000;
2563 cmd->base.duplex = DUPLEX_FULL;
2564 cmd->base.autoneg = 1;
2565 }
2566 }
2567
2568 ethtool_convert_legacy_u32_to_link_mode(cmd->link_modes.supported,
2569 supported);
2570 ethtool_convert_legacy_u32_to_link_mode(cmd->link_modes.advertising,
2571 advertising);
2572
2573 return 0;
2574 }
2575
gem_set_link_ksettings(struct net_device * dev,const struct ethtool_link_ksettings * cmd)2576 static int gem_set_link_ksettings(struct net_device *dev,
2577 const struct ethtool_link_ksettings *cmd)
2578 {
2579 struct gem *gp = netdev_priv(dev);
2580 u32 speed = cmd->base.speed;
2581 u32 advertising;
2582
2583 ethtool_convert_link_mode_to_legacy_u32(&advertising,
2584 cmd->link_modes.advertising);
2585
2586 /* Verify the settings we care about. */
2587 if (cmd->base.autoneg != AUTONEG_ENABLE &&
2588 cmd->base.autoneg != AUTONEG_DISABLE)
2589 return -EINVAL;
2590
2591 if (cmd->base.autoneg == AUTONEG_ENABLE &&
2592 advertising == 0)
2593 return -EINVAL;
2594
2595 if (cmd->base.autoneg == AUTONEG_DISABLE &&
2596 ((speed != SPEED_1000 &&
2597 speed != SPEED_100 &&
2598 speed != SPEED_10) ||
2599 (cmd->base.duplex != DUPLEX_HALF &&
2600 cmd->base.duplex != DUPLEX_FULL)))
2601 return -EINVAL;
2602
2603 /* Apply settings and restart link process. */
2604 if (netif_device_present(gp->dev)) {
2605 timer_delete_sync(&gp->link_timer);
2606 gem_begin_auto_negotiation(gp, cmd);
2607 }
2608
2609 return 0;
2610 }
2611
gem_nway_reset(struct net_device * dev)2612 static int gem_nway_reset(struct net_device *dev)
2613 {
2614 struct gem *gp = netdev_priv(dev);
2615
2616 if (!gp->want_autoneg)
2617 return -EINVAL;
2618
2619 /* Restart link process */
2620 if (netif_device_present(gp->dev)) {
2621 timer_delete_sync(&gp->link_timer);
2622 gem_begin_auto_negotiation(gp, NULL);
2623 }
2624
2625 return 0;
2626 }
2627
gem_get_msglevel(struct net_device * dev)2628 static u32 gem_get_msglevel(struct net_device *dev)
2629 {
2630 struct gem *gp = netdev_priv(dev);
2631 return gp->msg_enable;
2632 }
2633
gem_set_msglevel(struct net_device * dev,u32 value)2634 static void gem_set_msglevel(struct net_device *dev, u32 value)
2635 {
2636 struct gem *gp = netdev_priv(dev);
2637 gp->msg_enable = value;
2638 }
2639
2640
2641 /* Add more when I understand how to program the chip */
2642 /* like WAKE_UCAST | WAKE_MCAST | WAKE_BCAST */
2643
2644 #define WOL_SUPPORTED_MASK (WAKE_MAGIC)
2645
gem_get_wol(struct net_device * dev,struct ethtool_wolinfo * wol)2646 static void gem_get_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
2647 {
2648 struct gem *gp = netdev_priv(dev);
2649
2650 /* Add more when I understand how to program the chip */
2651 if (gp->has_wol) {
2652 wol->supported = WOL_SUPPORTED_MASK;
2653 wol->wolopts = gp->wake_on_lan;
2654 } else {
2655 wol->supported = 0;
2656 wol->wolopts = 0;
2657 }
2658 }
2659
gem_set_wol(struct net_device * dev,struct ethtool_wolinfo * wol)2660 static int gem_set_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
2661 {
2662 struct gem *gp = netdev_priv(dev);
2663
2664 if (!gp->has_wol)
2665 return -EOPNOTSUPP;
2666 gp->wake_on_lan = wol->wolopts & WOL_SUPPORTED_MASK;
2667 return 0;
2668 }
2669
2670 static const struct ethtool_ops gem_ethtool_ops = {
2671 .get_drvinfo = gem_get_drvinfo,
2672 .get_link = ethtool_op_get_link,
2673 .nway_reset = gem_nway_reset,
2674 .get_msglevel = gem_get_msglevel,
2675 .set_msglevel = gem_set_msglevel,
2676 .get_wol = gem_get_wol,
2677 .set_wol = gem_set_wol,
2678 .get_link_ksettings = gem_get_link_ksettings,
2679 .set_link_ksettings = gem_set_link_ksettings,
2680 };
2681
gem_ioctl(struct net_device * dev,struct ifreq * ifr,int cmd)2682 static int gem_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
2683 {
2684 struct gem *gp = netdev_priv(dev);
2685 struct mii_ioctl_data *data = if_mii(ifr);
2686 int rc = -EOPNOTSUPP;
2687
2688 /* For SIOCGMIIREG and SIOCSMIIREG the core checks for us that
2689 * netif_device_present() is true and holds rtnl_lock for us
2690 * so we have nothing to worry about
2691 */
2692
2693 switch (cmd) {
2694 case SIOCGMIIPHY: /* Get address of MII PHY in use. */
2695 data->phy_id = gp->mii_phy_addr;
2696 fallthrough;
2697
2698 case SIOCGMIIREG: /* Read MII PHY register. */
2699 data->val_out = __sungem_phy_read(gp, data->phy_id & 0x1f,
2700 data->reg_num & 0x1f);
2701 rc = 0;
2702 break;
2703
2704 case SIOCSMIIREG: /* Write MII PHY register. */
2705 __sungem_phy_write(gp, data->phy_id & 0x1f, data->reg_num & 0x1f,
2706 data->val_in);
2707 rc = 0;
2708 break;
2709 }
2710 return rc;
2711 }
2712
2713 #if (!defined(CONFIG_SPARC) && !defined(CONFIG_PPC_PMAC))
2714 /* Fetch MAC address from vital product data of PCI ROM. */
find_eth_addr_in_vpd(void __iomem * rom_base,int len,unsigned char * dev_addr)2715 static int find_eth_addr_in_vpd(void __iomem *rom_base, int len, unsigned char *dev_addr)
2716 {
2717 int this_offset;
2718
2719 for (this_offset = 0x20; this_offset < len; this_offset++) {
2720 void __iomem *p = rom_base + this_offset;
2721 int i;
2722
2723 if (readb(p + 0) != 0x90 ||
2724 readb(p + 1) != 0x00 ||
2725 readb(p + 2) != 0x09 ||
2726 readb(p + 3) != 0x4e ||
2727 readb(p + 4) != 0x41 ||
2728 readb(p + 5) != 0x06)
2729 continue;
2730
2731 this_offset += 6;
2732 p += 6;
2733
2734 for (i = 0; i < 6; i++)
2735 dev_addr[i] = readb(p + i);
2736 return 1;
2737 }
2738 return 0;
2739 }
2740
get_gem_mac_nonobp(struct pci_dev * pdev,unsigned char * dev_addr)2741 static void get_gem_mac_nonobp(struct pci_dev *pdev, unsigned char *dev_addr)
2742 {
2743 size_t size;
2744 void __iomem *p = pci_map_rom(pdev, &size);
2745
2746 if (p) {
2747 int found;
2748
2749 found = readb(p) == 0x55 &&
2750 readb(p + 1) == 0xaa &&
2751 find_eth_addr_in_vpd(p, (64 * 1024), dev_addr);
2752 pci_unmap_rom(pdev, p);
2753 if (found)
2754 return;
2755 }
2756
2757 /* Sun MAC prefix then 3 random bytes. */
2758 dev_addr[0] = 0x08;
2759 dev_addr[1] = 0x00;
2760 dev_addr[2] = 0x20;
2761 get_random_bytes(dev_addr + 3, 3);
2762 }
2763 #endif /* not Sparc and not PPC */
2764
gem_get_device_address(struct gem * gp)2765 static int gem_get_device_address(struct gem *gp)
2766 {
2767 #if defined(CONFIG_SPARC) || defined(CONFIG_PPC_PMAC)
2768 struct net_device *dev = gp->dev;
2769 const unsigned char *addr;
2770
2771 addr = of_get_property(gp->of_node, "local-mac-address", NULL);
2772 if (addr == NULL) {
2773 #ifdef CONFIG_SPARC
2774 addr = idprom->id_ethaddr;
2775 #else
2776 printk("\n");
2777 pr_err("%s: can't get mac-address\n", dev->name);
2778 return -1;
2779 #endif
2780 }
2781 eth_hw_addr_set(dev, addr);
2782 #else
2783 u8 addr[ETH_ALEN];
2784
2785 get_gem_mac_nonobp(gp->pdev, addr);
2786 eth_hw_addr_set(gp->dev, addr);
2787 #endif
2788 return 0;
2789 }
2790
gem_remove_one(struct pci_dev * pdev)2791 static void gem_remove_one(struct pci_dev *pdev)
2792 {
2793 struct net_device *dev = pci_get_drvdata(pdev);
2794
2795 if (dev) {
2796 struct gem *gp = netdev_priv(dev);
2797
2798 unregister_netdev(dev);
2799
2800 /* Ensure reset task is truly gone */
2801 cancel_work_sync(&gp->reset_task);
2802
2803 /* Free resources */
2804 dma_free_coherent(&pdev->dev, sizeof(struct gem_init_block),
2805 gp->init_block, gp->gblock_dvma);
2806 iounmap(gp->regs);
2807 pci_release_regions(pdev);
2808 free_netdev(dev);
2809 }
2810 }
2811
2812 static const struct net_device_ops gem_netdev_ops = {
2813 .ndo_open = gem_open,
2814 .ndo_stop = gem_close,
2815 .ndo_start_xmit = gem_start_xmit,
2816 .ndo_get_stats = gem_get_stats,
2817 .ndo_set_rx_mode = gem_set_multicast,
2818 .ndo_eth_ioctl = gem_ioctl,
2819 .ndo_tx_timeout = gem_tx_timeout,
2820 .ndo_change_mtu = gem_change_mtu,
2821 .ndo_validate_addr = eth_validate_addr,
2822 .ndo_set_mac_address = gem_set_mac_address,
2823 };
2824
gem_init_one(struct pci_dev * pdev,const struct pci_device_id * ent)2825 static int gem_init_one(struct pci_dev *pdev, const struct pci_device_id *ent)
2826 {
2827 unsigned long gemreg_base, gemreg_len;
2828 struct net_device *dev;
2829 struct gem *gp;
2830 int err, pci_using_dac;
2831
2832 printk_once(KERN_INFO "%s", version);
2833
2834 /* Apple gmac note: during probe, the chip is powered up by
2835 * the arch code to allow the code below to work (and to let
2836 * the chip be probed on the config space. It won't stay powered
2837 * up until the interface is brought up however, so we can't rely
2838 * on register configuration done at this point.
2839 */
2840 err = pci_enable_device(pdev);
2841 if (err) {
2842 pr_err("Cannot enable MMIO operation, aborting\n");
2843 return err;
2844 }
2845 pci_set_master(pdev);
2846
2847 /* Configure DMA attributes. */
2848
2849 /* All of the GEM documentation states that 64-bit DMA addressing
2850 * is fully supported and should work just fine. However the
2851 * front end for RIO based GEMs is different and only supports
2852 * 32-bit addressing.
2853 *
2854 * For now we assume the various PPC GEMs are 32-bit only as well.
2855 */
2856 if (pdev->vendor == PCI_VENDOR_ID_SUN &&
2857 pdev->device == PCI_DEVICE_ID_SUN_GEM &&
2858 !dma_set_mask(&pdev->dev, DMA_BIT_MASK(64))) {
2859 pci_using_dac = 1;
2860 } else {
2861 err = dma_set_mask(&pdev->dev, DMA_BIT_MASK(32));
2862 if (err) {
2863 pr_err("No usable DMA configuration, aborting\n");
2864 goto err_disable_device;
2865 }
2866 pci_using_dac = 0;
2867 }
2868
2869 gemreg_base = pci_resource_start(pdev, 0);
2870 gemreg_len = pci_resource_len(pdev, 0);
2871
2872 if ((pci_resource_flags(pdev, 0) & IORESOURCE_IO) != 0) {
2873 pr_err("Cannot find proper PCI device base address, aborting\n");
2874 err = -ENODEV;
2875 goto err_disable_device;
2876 }
2877
2878 dev = alloc_etherdev(sizeof(*gp));
2879 if (!dev) {
2880 err = -ENOMEM;
2881 goto err_disable_device;
2882 }
2883 SET_NETDEV_DEV(dev, &pdev->dev);
2884
2885 gp = netdev_priv(dev);
2886
2887 err = pci_request_regions(pdev, DRV_NAME);
2888 if (err) {
2889 pr_err("Cannot obtain PCI resources, aborting\n");
2890 goto err_out_free_netdev;
2891 }
2892
2893 gp->pdev = pdev;
2894 gp->dev = dev;
2895
2896 gp->msg_enable = DEFAULT_MSG;
2897
2898 timer_setup(&gp->link_timer, gem_link_timer, 0);
2899
2900 INIT_WORK(&gp->reset_task, gem_reset_task);
2901
2902 gp->lstate = link_down;
2903 gp->timer_ticks = 0;
2904 netif_carrier_off(dev);
2905
2906 gp->regs = ioremap(gemreg_base, gemreg_len);
2907 if (!gp->regs) {
2908 pr_err("Cannot map device registers, aborting\n");
2909 err = -EIO;
2910 goto err_out_free_res;
2911 }
2912
2913 /* On Apple, we want a reference to the Open Firmware device-tree
2914 * node. We use it for clock control.
2915 */
2916 #if defined(CONFIG_PPC_PMAC) || defined(CONFIG_SPARC)
2917 gp->of_node = pci_device_to_OF_node(pdev);
2918 #endif
2919
2920 /* Only Apple version supports WOL afaik */
2921 if (pdev->vendor == PCI_VENDOR_ID_APPLE)
2922 gp->has_wol = 1;
2923
2924 /* Make sure cell is enabled */
2925 gem_get_cell(gp);
2926
2927 /* Make sure everything is stopped and in init state */
2928 gem_reset(gp);
2929
2930 /* Fill up the mii_phy structure (even if we won't use it) */
2931 gp->phy_mii.dev = dev;
2932 gp->phy_mii.mdio_read = _sungem_phy_read;
2933 gp->phy_mii.mdio_write = _sungem_phy_write;
2934 #ifdef CONFIG_PPC_PMAC
2935 gp->phy_mii.platform_data = gp->of_node;
2936 #endif
2937 /* By default, we start with autoneg */
2938 gp->want_autoneg = 1;
2939
2940 /* Check fifo sizes, PHY type, etc... */
2941 if (gem_check_invariants(gp)) {
2942 err = -ENODEV;
2943 goto err_out_iounmap;
2944 }
2945
2946 /* It is guaranteed that the returned buffer will be at least
2947 * PAGE_SIZE aligned.
2948 */
2949 gp->init_block = dma_alloc_coherent(&pdev->dev, sizeof(struct gem_init_block),
2950 &gp->gblock_dvma, GFP_KERNEL);
2951 if (!gp->init_block) {
2952 pr_err("Cannot allocate init block, aborting\n");
2953 err = -ENOMEM;
2954 goto err_out_iounmap;
2955 }
2956
2957 err = gem_get_device_address(gp);
2958 if (err)
2959 goto err_out_free_consistent;
2960
2961 dev->netdev_ops = &gem_netdev_ops;
2962 netif_napi_add(dev, &gp->napi, gem_poll);
2963 dev->ethtool_ops = &gem_ethtool_ops;
2964 dev->watchdog_timeo = 5 * HZ;
2965 dev->dma = 0;
2966
2967 /* Set that now, in case PM kicks in now */
2968 pci_set_drvdata(pdev, dev);
2969
2970 /* We can do scatter/gather and HW checksum */
2971 dev->hw_features = NETIF_F_SG | NETIF_F_HW_CSUM | NETIF_F_RXCSUM;
2972 dev->features = dev->hw_features;
2973 if (pci_using_dac)
2974 dev->features |= NETIF_F_HIGHDMA;
2975
2976 /* MTU range: 68 - 1500 (Jumbo mode is broken) */
2977 dev->min_mtu = GEM_MIN_MTU;
2978 dev->max_mtu = GEM_MAX_MTU;
2979
2980 /* Register with kernel */
2981 err = register_netdev(dev);
2982 if (err) {
2983 pr_err("Cannot register net device, aborting\n");
2984 goto err_out_clear_drvdata;
2985 }
2986
2987 /* Undo the get_cell with appropriate locking (we could use
2988 * ndo_init/uninit but that would be even more clumsy imho)
2989 */
2990 rtnl_lock();
2991 gem_put_cell(gp);
2992 rtnl_unlock();
2993
2994 netdev_info(dev, "Sun GEM (PCI) 10/100/1000BaseT Ethernet %pM\n",
2995 dev->dev_addr);
2996 return 0;
2997
2998 err_out_clear_drvdata:
2999 pci_set_drvdata(pdev, NULL);
3000 netif_napi_del(&gp->napi);
3001
3002 err_out_free_consistent:
3003 dma_free_coherent(&pdev->dev, sizeof(struct gem_init_block),
3004 gp->init_block, gp->gblock_dvma);
3005 err_out_iounmap:
3006 gem_put_cell(gp);
3007 iounmap(gp->regs);
3008
3009 err_out_free_res:
3010 pci_release_regions(pdev);
3011
3012 err_out_free_netdev:
3013 free_netdev(dev);
3014 err_disable_device:
3015 pci_disable_device(pdev);
3016 return err;
3017
3018 }
3019
3020 static SIMPLE_DEV_PM_OPS(gem_pm_ops, gem_suspend, gem_resume);
3021
3022 static struct pci_driver gem_driver = {
3023 .name = GEM_MODULE_NAME,
3024 .id_table = gem_pci_tbl,
3025 .probe = gem_init_one,
3026 .remove = gem_remove_one,
3027 .driver.pm = &gem_pm_ops,
3028 };
3029
3030 module_pci_driver(gem_driver);
3031