ar71xx: make sure that rx and interrupts are disabled before issuing the hardware...
[oweals/openwrt.git] / target / linux / ar71xx / files / drivers / net / ag71xx / ag71xx_main.c
1 /*
2  *  Atheros AR71xx built-in ethernet mac driver
3  *
4  *  Copyright (C) 2008-2010 Gabor Juhos <juhosg@openwrt.org>
5  *  Copyright (C) 2008 Imre Kaloz <kaloz@openwrt.org>
6  *
7  *  Based on Atheros' AG7100 driver
8  *
9  *  This program is free software; you can redistribute it and/or modify it
10  *  under the terms of the GNU General Public License version 2 as published
11  *  by the Free Software Foundation.
12  */
13
14 #include "ag71xx.h"
15
16 #define AG71XX_DEFAULT_MSG_ENABLE       \
17         (NETIF_MSG_DRV                  \
18         | NETIF_MSG_PROBE               \
19         | NETIF_MSG_LINK                \
20         | NETIF_MSG_TIMER               \
21         | NETIF_MSG_IFDOWN              \
22         | NETIF_MSG_IFUP                \
23         | NETIF_MSG_RX_ERR              \
24         | NETIF_MSG_TX_ERR)
25
26 static int ag71xx_msg_level = -1;
27
28 module_param_named(msg_level, ag71xx_msg_level, int, 0);
29 MODULE_PARM_DESC(msg_level, "Message level (-1=defaults,0=none,...,16=all)");
30
31 static void ag71xx_dump_dma_regs(struct ag71xx *ag)
32 {
33         DBG("%s: dma_tx_ctrl=%08x, dma_tx_desc=%08x, dma_tx_status=%08x\n",
34                 ag->dev->name,
35                 ag71xx_rr(ag, AG71XX_REG_TX_CTRL),
36                 ag71xx_rr(ag, AG71XX_REG_TX_DESC),
37                 ag71xx_rr(ag, AG71XX_REG_TX_STATUS));
38
39         DBG("%s: dma_rx_ctrl=%08x, dma_rx_desc=%08x, dma_rx_status=%08x\n",
40                 ag->dev->name,
41                 ag71xx_rr(ag, AG71XX_REG_RX_CTRL),
42                 ag71xx_rr(ag, AG71XX_REG_RX_DESC),
43                 ag71xx_rr(ag, AG71XX_REG_RX_STATUS));
44 }
45
46 static void ag71xx_dump_regs(struct ag71xx *ag)
47 {
48         DBG("%s: mac_cfg1=%08x, mac_cfg2=%08x, ipg=%08x, hdx=%08x, mfl=%08x\n",
49                 ag->dev->name,
50                 ag71xx_rr(ag, AG71XX_REG_MAC_CFG1),
51                 ag71xx_rr(ag, AG71XX_REG_MAC_CFG2),
52                 ag71xx_rr(ag, AG71XX_REG_MAC_IPG),
53                 ag71xx_rr(ag, AG71XX_REG_MAC_HDX),
54                 ag71xx_rr(ag, AG71XX_REG_MAC_MFL));
55         DBG("%s: mac_ifctl=%08x, mac_addr1=%08x, mac_addr2=%08x\n",
56                 ag->dev->name,
57                 ag71xx_rr(ag, AG71XX_REG_MAC_IFCTL),
58                 ag71xx_rr(ag, AG71XX_REG_MAC_ADDR1),
59                 ag71xx_rr(ag, AG71XX_REG_MAC_ADDR2));
60         DBG("%s: fifo_cfg0=%08x, fifo_cfg1=%08x, fifo_cfg2=%08x\n",
61                 ag->dev->name,
62                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG0),
63                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG1),
64                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG2));
65         DBG("%s: fifo_cfg3=%08x, fifo_cfg4=%08x, fifo_cfg5=%08x\n",
66                 ag->dev->name,
67                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG3),
68                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG4),
69                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG5));
70 }
71
72 static inline void ag71xx_dump_intr(struct ag71xx *ag, char *label, u32 intr)
73 {
74         DBG("%s: %s intr=%08x %s%s%s%s%s%s\n",
75                 ag->dev->name, label, intr,
76                 (intr & AG71XX_INT_TX_PS) ? "TXPS " : "",
77                 (intr & AG71XX_INT_TX_UR) ? "TXUR " : "",
78                 (intr & AG71XX_INT_TX_BE) ? "TXBE " : "",
79                 (intr & AG71XX_INT_RX_PR) ? "RXPR " : "",
80                 (intr & AG71XX_INT_RX_OF) ? "RXOF " : "",
81                 (intr & AG71XX_INT_RX_BE) ? "RXBE " : "");
82 }
83
84 static void ag71xx_ring_free(struct ag71xx_ring *ring)
85 {
86         kfree(ring->buf);
87
88         if (ring->descs_cpu)
89                 dma_free_coherent(NULL, ring->size * ring->desc_size,
90                                   ring->descs_cpu, ring->descs_dma);
91 }
92
93 static int ag71xx_ring_alloc(struct ag71xx_ring *ring)
94 {
95         int err;
96         int i;
97
98         ring->desc_size = sizeof(struct ag71xx_desc);
99         if (ring->desc_size % cache_line_size()) {
100                 DBG("ag71xx: ring %p, desc size %u rounded to %u\n",
101                         ring, ring->desc_size,
102                         roundup(ring->desc_size, cache_line_size()));
103                 ring->desc_size = roundup(ring->desc_size, cache_line_size());
104         }
105
106         ring->descs_cpu = dma_alloc_coherent(NULL, ring->size * ring->desc_size,
107                                              &ring->descs_dma, GFP_ATOMIC);
108         if (!ring->descs_cpu) {
109                 err = -ENOMEM;
110                 goto err;
111         }
112
113
114         ring->buf = kzalloc(ring->size * sizeof(*ring->buf), GFP_KERNEL);
115         if (!ring->buf) {
116                 err = -ENOMEM;
117                 goto err;
118         }
119
120         for (i = 0; i < ring->size; i++) {
121                 int idx = i * ring->desc_size;
122                 ring->buf[i].desc = (struct ag71xx_desc *)&ring->descs_cpu[idx];
123                 DBG("ag71xx: ring %p, desc %d at %p\n",
124                         ring, i, ring->buf[i].desc);
125         }
126
127         return 0;
128
129 err:
130         return err;
131 }
132
133 static void ag71xx_ring_tx_clean(struct ag71xx *ag)
134 {
135         struct ag71xx_ring *ring = &ag->tx_ring;
136         struct net_device *dev = ag->dev;
137
138         while (ring->curr != ring->dirty) {
139                 u32 i = ring->dirty % ring->size;
140
141                 if (!ag71xx_desc_empty(ring->buf[i].desc)) {
142                         ring->buf[i].desc->ctrl = 0;
143                         dev->stats.tx_errors++;
144                 }
145
146                 if (ring->buf[i].skb)
147                         dev_kfree_skb_any(ring->buf[i].skb);
148
149                 ring->buf[i].skb = NULL;
150
151                 ring->dirty++;
152         }
153
154         /* flush descriptors */
155         wmb();
156
157 }
158
159 static void ag71xx_ring_tx_init(struct ag71xx *ag)
160 {
161         struct ag71xx_ring *ring = &ag->tx_ring;
162         int i;
163
164         for (i = 0; i < ring->size; i++) {
165                 ring->buf[i].desc->next = (u32) (ring->descs_dma +
166                         ring->desc_size * ((i + 1) % ring->size));
167
168                 ring->buf[i].desc->ctrl = DESC_EMPTY;
169                 ring->buf[i].skb = NULL;
170         }
171
172         /* flush descriptors */
173         wmb();
174
175         ring->curr = 0;
176         ring->dirty = 0;
177 }
178
179 static void ag71xx_ring_rx_clean(struct ag71xx *ag)
180 {
181         struct ag71xx_ring *ring = &ag->rx_ring;
182         int i;
183
184         if (!ring->buf)
185                 return;
186
187         for (i = 0; i < ring->size; i++)
188                 if (ring->buf[i].skb) {
189                         dma_unmap_single(&ag->dev->dev, ring->buf[i].dma_addr,
190                                          AG71XX_RX_PKT_SIZE, DMA_FROM_DEVICE);
191                         kfree_skb(ring->buf[i].skb);
192                 }
193 }
194
195 static int ag71xx_rx_reserve(struct ag71xx *ag)
196 {
197         int reserve = 0;
198
199         if (ag71xx_get_pdata(ag)->is_ar724x) {
200                 if (!ag71xx_has_ar8216(ag))
201                         reserve = 2;
202
203                 if (ag->phy_dev)
204                         reserve += 4 - (ag->phy_dev->pkt_align % 4);
205
206                 reserve %= 4;
207         }
208
209         return reserve + AG71XX_RX_PKT_RESERVE;
210 }
211
212
213 static int ag71xx_ring_rx_init(struct ag71xx *ag)
214 {
215         struct ag71xx_ring *ring = &ag->rx_ring;
216         unsigned int reserve = ag71xx_rx_reserve(ag);
217         unsigned int i;
218         int ret;
219
220         ret = 0;
221         for (i = 0; i < ring->size; i++) {
222                 ring->buf[i].desc->next = (u32) (ring->descs_dma +
223                         ring->desc_size * ((i + 1) % ring->size));
224
225                 DBG("ag71xx: RX desc at %p, next is %08x\n",
226                         ring->buf[i].desc,
227                         ring->buf[i].desc->next);
228         }
229
230         for (i = 0; i < ring->size; i++) {
231                 struct sk_buff *skb;
232                 dma_addr_t dma_addr;
233
234                 skb = dev_alloc_skb(AG71XX_RX_PKT_SIZE + reserve);
235                 if (!skb) {
236                         ret = -ENOMEM;
237                         break;
238                 }
239
240                 skb->dev = ag->dev;
241                 skb_reserve(skb, reserve);
242
243                 dma_addr = dma_map_single(&ag->dev->dev, skb->data,
244                                           AG71XX_RX_PKT_SIZE,
245                                           DMA_FROM_DEVICE);
246                 ring->buf[i].skb = skb;
247                 ring->buf[i].dma_addr = dma_addr;
248                 ring->buf[i].desc->data = (u32) dma_addr;
249                 ring->buf[i].desc->ctrl = DESC_EMPTY;
250         }
251
252         /* flush descriptors */
253         wmb();
254
255         ring->curr = 0;
256         ring->dirty = 0;
257
258         return ret;
259 }
260
261 static int ag71xx_ring_rx_refill(struct ag71xx *ag)
262 {
263         struct ag71xx_ring *ring = &ag->rx_ring;
264         unsigned int reserve = ag71xx_rx_reserve(ag);
265         unsigned int count;
266
267         count = 0;
268         for (; ring->curr - ring->dirty > 0; ring->dirty++) {
269                 unsigned int i;
270
271                 i = ring->dirty % ring->size;
272
273                 if (ring->buf[i].skb == NULL) {
274                         dma_addr_t dma_addr;
275                         struct sk_buff *skb;
276
277                         skb = dev_alloc_skb(AG71XX_RX_PKT_SIZE + reserve);
278                         if (skb == NULL)
279                                 break;
280
281                         skb_reserve(skb, reserve);
282                         skb->dev = ag->dev;
283
284                         dma_addr = dma_map_single(&ag->dev->dev, skb->data,
285                                                   AG71XX_RX_PKT_SIZE,
286                                                   DMA_FROM_DEVICE);
287
288                         ring->buf[i].skb = skb;
289                         ring->buf[i].dma_addr = dma_addr;
290                         ring->buf[i].desc->data = (u32) dma_addr;
291                 }
292
293                 ring->buf[i].desc->ctrl = DESC_EMPTY;
294                 count++;
295         }
296
297         /* flush descriptors */
298         wmb();
299
300         DBG("%s: %u rx descriptors refilled\n", ag->dev->name, count);
301
302         return count;
303 }
304
305 static int ag71xx_rings_init(struct ag71xx *ag)
306 {
307         int ret;
308
309         ret = ag71xx_ring_alloc(&ag->tx_ring);
310         if (ret)
311                 return ret;
312
313         ag71xx_ring_tx_init(ag);
314
315         ret = ag71xx_ring_alloc(&ag->rx_ring);
316         if (ret)
317                 return ret;
318
319         ret = ag71xx_ring_rx_init(ag);
320         return ret;
321 }
322
323 static void ag71xx_rings_cleanup(struct ag71xx *ag)
324 {
325         ag71xx_ring_rx_clean(ag);
326         ag71xx_ring_free(&ag->rx_ring);
327
328         ag71xx_ring_tx_clean(ag);
329         ag71xx_ring_free(&ag->tx_ring);
330 }
331
332 static unsigned char *ag71xx_speed_str(struct ag71xx *ag)
333 {
334         switch (ag->speed) {
335         case SPEED_1000:
336                 return "1000";
337         case SPEED_100:
338                 return "100";
339         case SPEED_10:
340                 return "10";
341         }
342
343         return "?";
344 }
345
346 static void ag71xx_hw_set_macaddr(struct ag71xx *ag, unsigned char *mac)
347 {
348         u32 t;
349
350         t = (((u32) mac[5]) << 24) | (((u32) mac[4]) << 16)
351           | (((u32) mac[3]) << 8) | ((u32) mac[2]);
352
353         ag71xx_wr(ag, AG71XX_REG_MAC_ADDR1, t);
354
355         t = (((u32) mac[1]) << 24) | (((u32) mac[0]) << 16);
356         ag71xx_wr(ag, AG71XX_REG_MAC_ADDR2, t);
357 }
358
359 static void ag71xx_dma_reset(struct ag71xx *ag)
360 {
361         u32 val;
362         int i;
363
364         ag71xx_dump_dma_regs(ag);
365
366         /* stop RX and TX */
367         ag71xx_wr(ag, AG71XX_REG_RX_CTRL, 0);
368         ag71xx_wr(ag, AG71XX_REG_TX_CTRL, 0);
369
370         /*
371          * give the hardware some time to really stop all rx/tx activity
372          * clearing the descriptors too early causes random memory corruption
373          */
374         mdelay(1);
375
376         /* clear descriptor addresses */
377         ag71xx_wr(ag, AG71XX_REG_TX_DESC, 0);
378         ag71xx_wr(ag, AG71XX_REG_RX_DESC, 0);
379
380         /* clear pending RX/TX interrupts */
381         for (i = 0; i < 256; i++) {
382                 ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_PR);
383                 ag71xx_wr(ag, AG71XX_REG_TX_STATUS, TX_STATUS_PS);
384         }
385
386         /* clear pending errors */
387         ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_BE | RX_STATUS_OF);
388         ag71xx_wr(ag, AG71XX_REG_TX_STATUS, TX_STATUS_BE | TX_STATUS_UR);
389
390         val = ag71xx_rr(ag, AG71XX_REG_RX_STATUS);
391         if (val)
392                 printk(KERN_ALERT "%s: unable to clear DMA Rx status: %08x\n",
393                         ag->dev->name, val);
394
395         val = ag71xx_rr(ag, AG71XX_REG_TX_STATUS);
396
397         /* mask out reserved bits */
398         val &= ~0xff000000;
399
400         if (val)
401                 printk(KERN_ALERT "%s: unable to clear DMA Tx status: %08x\n",
402                         ag->dev->name, val);
403
404         ag71xx_dump_dma_regs(ag);
405 }
406
407 #define MAC_CFG1_INIT   (MAC_CFG1_RXE | MAC_CFG1_TXE | \
408                          MAC_CFG1_SRX | MAC_CFG1_STX)
409
410 #define FIFO_CFG0_INIT  (FIFO_CFG0_ALL << FIFO_CFG0_ENABLE_SHIFT)
411
412 #define FIFO_CFG4_INIT  (FIFO_CFG4_DE | FIFO_CFG4_DV | FIFO_CFG4_FC | \
413                          FIFO_CFG4_CE | FIFO_CFG4_CR | FIFO_CFG4_LM | \
414                          FIFO_CFG4_LO | FIFO_CFG4_OK | FIFO_CFG4_MC | \
415                          FIFO_CFG4_BC | FIFO_CFG4_DR | FIFO_CFG4_LE | \
416                          FIFO_CFG4_CF | FIFO_CFG4_PF | FIFO_CFG4_UO | \
417                          FIFO_CFG4_VT)
418
419 #define FIFO_CFG5_INIT  (FIFO_CFG5_DE | FIFO_CFG5_DV | FIFO_CFG5_FC | \
420                          FIFO_CFG5_CE | FIFO_CFG5_LO | FIFO_CFG5_OK | \
421                          FIFO_CFG5_MC | FIFO_CFG5_BC | FIFO_CFG5_DR | \
422                          FIFO_CFG5_CF | FIFO_CFG5_PF | FIFO_CFG5_VT | \
423                          FIFO_CFG5_LE | FIFO_CFG5_FT | FIFO_CFG5_16 | \
424                          FIFO_CFG5_17 | FIFO_CFG5_SF)
425
426 static void ag71xx_hw_stop(struct ag71xx *ag)
427 {
428         /* disable all interrupts and stop the rx engine */
429         ag71xx_wr(ag, AG71XX_REG_INT_ENABLE, 0);
430         ag71xx_wr(ag, AG71XX_REG_RX_CTRL, 0);
431 }
432
433 static void ag71xx_hw_init(struct ag71xx *ag)
434 {
435         struct ag71xx_platform_data *pdata = ag71xx_get_pdata(ag);
436
437         ag71xx_hw_stop(ag);
438
439         ag71xx_sb(ag, AG71XX_REG_MAC_CFG1, MAC_CFG1_SR);
440         udelay(20);
441
442         ar71xx_device_stop(pdata->reset_bit);
443         mdelay(100);
444         ar71xx_device_start(pdata->reset_bit);
445         mdelay(200);
446
447         /* setup MAC configuration registers */
448         ag71xx_wr(ag, AG71XX_REG_MAC_CFG1, MAC_CFG1_INIT);
449
450         ag71xx_sb(ag, AG71XX_REG_MAC_CFG2,
451                   MAC_CFG2_PAD_CRC_EN | MAC_CFG2_LEN_CHECK);
452
453         /* setup max frame length */
454         ag71xx_wr(ag, AG71XX_REG_MAC_MFL, AG71XX_TX_MTU_LEN);
455
456         /* setup MII interface type */
457         ag71xx_mii_ctrl_set_if(ag, pdata->mii_if);
458
459         /* setup FIFO configuration registers */
460         ag71xx_wr(ag, AG71XX_REG_FIFO_CFG0, FIFO_CFG0_INIT);
461         if (pdata->is_ar724x) {
462                 ag71xx_wr(ag, AG71XX_REG_FIFO_CFG1, pdata->fifo_cfg1);
463                 ag71xx_wr(ag, AG71XX_REG_FIFO_CFG2, pdata->fifo_cfg2);
464         } else {
465                 ag71xx_wr(ag, AG71XX_REG_FIFO_CFG1, 0x0fff0000);
466                 ag71xx_wr(ag, AG71XX_REG_FIFO_CFG2, 0x00001fff);
467         }
468         ag71xx_wr(ag, AG71XX_REG_FIFO_CFG4, FIFO_CFG4_INIT);
469         ag71xx_wr(ag, AG71XX_REG_FIFO_CFG5, FIFO_CFG5_INIT);
470
471         ag71xx_dma_reset(ag);
472 }
473
474 static void ag71xx_hw_start(struct ag71xx *ag)
475 {
476         /* start RX engine */
477         ag71xx_wr(ag, AG71XX_REG_RX_CTRL, RX_CTRL_RXE);
478
479         /* enable interrupts */
480         ag71xx_wr(ag, AG71XX_REG_INT_ENABLE, AG71XX_INT_INIT);
481 }
482
483 void ag71xx_link_adjust(struct ag71xx *ag)
484 {
485         struct ag71xx_platform_data *pdata = ag71xx_get_pdata(ag);
486         u32 cfg2;
487         u32 ifctl;
488         u32 fifo5;
489         u32 mii_speed;
490
491         if (!ag->link) {
492                 ag71xx_hw_stop(ag);
493                 netif_carrier_off(ag->dev);
494                 if (netif_msg_link(ag))
495                         printk(KERN_INFO "%s: link down\n", ag->dev->name);
496                 return;
497         }
498
499         cfg2 = ag71xx_rr(ag, AG71XX_REG_MAC_CFG2);
500         cfg2 &= ~(MAC_CFG2_IF_1000 | MAC_CFG2_IF_10_100 | MAC_CFG2_FDX);
501         cfg2 |= (ag->duplex) ? MAC_CFG2_FDX : 0;
502
503         ifctl = ag71xx_rr(ag, AG71XX_REG_MAC_IFCTL);
504         ifctl &= ~(MAC_IFCTL_SPEED);
505
506         fifo5 = ag71xx_rr(ag, AG71XX_REG_FIFO_CFG5);
507         fifo5 &= ~FIFO_CFG5_BM;
508
509         switch (ag->speed) {
510         case SPEED_1000:
511                 mii_speed =  MII_CTRL_SPEED_1000;
512                 cfg2 |= MAC_CFG2_IF_1000;
513                 fifo5 |= FIFO_CFG5_BM;
514                 break;
515         case SPEED_100:
516                 mii_speed = MII_CTRL_SPEED_100;
517                 cfg2 |= MAC_CFG2_IF_10_100;
518                 ifctl |= MAC_IFCTL_SPEED;
519                 break;
520         case SPEED_10:
521                 mii_speed = MII_CTRL_SPEED_10;
522                 cfg2 |= MAC_CFG2_IF_10_100;
523                 break;
524         default:
525                 BUG();
526                 return;
527         }
528
529         if (pdata->is_ar91xx)
530                 ag71xx_wr(ag, AG71XX_REG_FIFO_CFG3, 0x00780fff);
531         else if (pdata->is_ar724x)
532                 ag71xx_wr(ag, AG71XX_REG_FIFO_CFG3, pdata->fifo_cfg3);
533         else
534                 ag71xx_wr(ag, AG71XX_REG_FIFO_CFG3, 0x008001ff);
535
536         if (pdata->set_pll)
537                 pdata->set_pll(ag->speed);
538
539         ag71xx_mii_ctrl_set_speed(ag, mii_speed);
540
541         ag71xx_wr(ag, AG71XX_REG_MAC_CFG2, cfg2);
542         ag71xx_wr(ag, AG71XX_REG_FIFO_CFG5, fifo5);
543         ag71xx_wr(ag, AG71XX_REG_MAC_IFCTL, ifctl);
544         ag71xx_hw_start(ag);
545
546         netif_carrier_on(ag->dev);
547         if (netif_msg_link(ag))
548                 printk(KERN_INFO "%s: link up (%sMbps/%s duplex)\n",
549                         ag->dev->name,
550                         ag71xx_speed_str(ag),
551                         (DUPLEX_FULL == ag->duplex) ? "Full" : "Half");
552
553         DBG("%s: fifo_cfg0=%#x, fifo_cfg1=%#x, fifo_cfg2=%#x\n",
554                 ag->dev->name,
555                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG0),
556                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG1),
557                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG2));
558
559         DBG("%s: fifo_cfg3=%#x, fifo_cfg4=%#x, fifo_cfg5=%#x\n",
560                 ag->dev->name,
561                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG3),
562                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG4),
563                 ag71xx_rr(ag, AG71XX_REG_FIFO_CFG5));
564
565         DBG("%s: mac_cfg2=%#x, mac_ifctl=%#x, mii_ctrl=%#x\n",
566                 ag->dev->name,
567                 ag71xx_rr(ag, AG71XX_REG_MAC_CFG2),
568                 ag71xx_rr(ag, AG71XX_REG_MAC_IFCTL),
569                 ag71xx_mii_ctrl_rr(ag));
570 }
571
572 static int ag71xx_open(struct net_device *dev)
573 {
574         struct ag71xx *ag = netdev_priv(dev);
575         int ret;
576
577         ret = ag71xx_rings_init(ag);
578         if (ret)
579                 goto err;
580
581         napi_enable(&ag->napi);
582
583         netif_carrier_off(dev);
584         ag71xx_phy_start(ag);
585
586         ag71xx_wr(ag, AG71XX_REG_TX_DESC, ag->tx_ring.descs_dma);
587         ag71xx_wr(ag, AG71XX_REG_RX_DESC, ag->rx_ring.descs_dma);
588
589         ag71xx_hw_set_macaddr(ag, dev->dev_addr);
590
591         netif_start_queue(dev);
592
593         return 0;
594
595 err:
596         ag71xx_rings_cleanup(ag);
597         return ret;
598 }
599
600 static int ag71xx_stop(struct net_device *dev)
601 {
602         struct ag71xx *ag = netdev_priv(dev);
603         unsigned long flags;
604
605         netif_carrier_off(dev);
606         ag71xx_phy_stop(ag);
607
608         spin_lock_irqsave(&ag->lock, flags);
609
610         netif_stop_queue(dev);
611
612         ag71xx_hw_stop(ag);
613         ag71xx_dma_reset(ag);
614
615         napi_disable(&ag->napi);
616         del_timer_sync(&ag->oom_timer);
617
618         spin_unlock_irqrestore(&ag->lock, flags);
619
620         ag71xx_rings_cleanup(ag);
621
622         return 0;
623 }
624
625 static netdev_tx_t ag71xx_hard_start_xmit(struct sk_buff *skb,
626                                           struct net_device *dev)
627 {
628         struct ag71xx *ag = netdev_priv(dev);
629         struct ag71xx_ring *ring = &ag->tx_ring;
630         struct ag71xx_desc *desc;
631         dma_addr_t dma_addr;
632         int i;
633
634         i = ring->curr % ring->size;
635         desc = ring->buf[i].desc;
636
637         if (!ag71xx_desc_empty(desc))
638                 goto err_drop;
639
640         if (ag71xx_has_ar8216(ag))
641                 ag71xx_add_ar8216_header(ag, skb);
642
643         if (skb->len <= 0) {
644                 DBG("%s: packet len is too small\n", ag->dev->name);
645                 goto err_drop;
646         }
647
648         dma_addr = dma_map_single(&dev->dev, skb->data, skb->len,
649                                   DMA_TO_DEVICE);
650
651         ring->buf[i].skb = skb;
652         ring->buf[i].timestamp = jiffies;
653
654         /* setup descriptor fields */
655         desc->data = (u32) dma_addr;
656         desc->ctrl = (skb->len & DESC_PKTLEN_M);
657
658         /* flush descriptor */
659         wmb();
660
661         ring->curr++;
662         if (ring->curr == (ring->dirty + ring->size)) {
663                 DBG("%s: tx queue full\n", ag->dev->name);
664                 netif_stop_queue(dev);
665         }
666
667         DBG("%s: packet injected into TX queue\n", ag->dev->name);
668
669         /* enable TX engine */
670         ag71xx_wr(ag, AG71XX_REG_TX_CTRL, TX_CTRL_TXE);
671
672         return NETDEV_TX_OK;
673
674 err_drop:
675         dev->stats.tx_dropped++;
676
677         dev_kfree_skb(skb);
678         return NETDEV_TX_OK;
679 }
680
681 static int ag71xx_do_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
682 {
683         struct ag71xx *ag = netdev_priv(dev);
684         int ret;
685
686         switch (cmd) {
687         case SIOCETHTOOL:
688                 if (ag->phy_dev == NULL)
689                         break;
690
691                 spin_lock_irq(&ag->lock);
692                 ret = phy_ethtool_ioctl(ag->phy_dev, (void *) ifr->ifr_data);
693                 spin_unlock_irq(&ag->lock);
694                 return ret;
695
696         case SIOCSIFHWADDR:
697                 if (copy_from_user
698                         (dev->dev_addr, ifr->ifr_data, sizeof(dev->dev_addr)))
699                         return -EFAULT;
700                 return 0;
701
702         case SIOCGIFHWADDR:
703                 if (copy_to_user
704                         (ifr->ifr_data, dev->dev_addr, sizeof(dev->dev_addr)))
705                         return -EFAULT;
706                 return 0;
707
708         case SIOCGMIIPHY:
709         case SIOCGMIIREG:
710         case SIOCSMIIREG:
711                 if (ag->phy_dev == NULL)
712                         break;
713
714                 return phy_mii_ioctl(ag->phy_dev, ifr, cmd);
715
716         default:
717                 break;
718         }
719
720         return -EOPNOTSUPP;
721 }
722
723 static void ag71xx_oom_timer_handler(unsigned long data)
724 {
725         struct net_device *dev = (struct net_device *) data;
726         struct ag71xx *ag = netdev_priv(dev);
727
728         napi_schedule(&ag->napi);
729 }
730
731 static void ag71xx_tx_timeout(struct net_device *dev)
732 {
733         struct ag71xx *ag = netdev_priv(dev);
734
735         if (netif_msg_tx_err(ag))
736                 printk(KERN_DEBUG "%s: tx timeout\n", ag->dev->name);
737
738         schedule_work(&ag->restart_work);
739 }
740
741 static void ag71xx_restart_work_func(struct work_struct *work)
742 {
743         struct ag71xx *ag = container_of(work, struct ag71xx, restart_work);
744
745         ag71xx_stop(ag->dev);
746         ag71xx_open(ag->dev);
747 }
748
749 static int ag71xx_tx_packets(struct ag71xx *ag)
750 {
751         struct ag71xx_ring *ring = &ag->tx_ring;
752         int sent;
753
754         DBG("%s: processing TX ring\n", ag->dev->name);
755
756         sent = 0;
757         while (ring->dirty != ring->curr) {
758                 unsigned int i = ring->dirty % ring->size;
759                 struct ag71xx_desc *desc = ring->buf[i].desc;
760                 struct sk_buff *skb = ring->buf[i].skb;
761
762                 if (!ag71xx_desc_empty(desc))
763                         break;
764
765                 ag71xx_wr(ag, AG71XX_REG_TX_STATUS, TX_STATUS_PS);
766
767                 ag->dev->stats.tx_bytes += skb->len;
768                 ag->dev->stats.tx_packets++;
769
770                 dev_kfree_skb_any(skb);
771                 ring->buf[i].skb = NULL;
772
773                 ring->dirty++;
774                 sent++;
775         }
776
777         DBG("%s: %d packets sent out\n", ag->dev->name, sent);
778
779         if ((ring->curr - ring->dirty) < (ring->size * 3) / 4)
780                 netif_wake_queue(ag->dev);
781
782         return sent;
783 }
784
785 static int ag71xx_rx_packets(struct ag71xx *ag, int limit)
786 {
787         struct net_device *dev = ag->dev;
788         struct ag71xx_ring *ring = &ag->rx_ring;
789         int done = 0;
790
791         DBG("%s: rx packets, limit=%d, curr=%u, dirty=%u\n",
792                         dev->name, limit, ring->curr, ring->dirty);
793
794         while (done < limit) {
795                 unsigned int i = ring->curr % ring->size;
796                 struct ag71xx_desc *desc = ring->buf[i].desc;
797                 struct sk_buff *skb;
798                 int pktlen;
799                 int err = 0;
800
801                 if (ag71xx_desc_empty(desc))
802                         break;
803
804                 if ((ring->dirty + ring->size) == ring->curr) {
805                         ag71xx_assert(0);
806                         break;
807                 }
808
809                 ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_PR);
810
811                 skb = ring->buf[i].skb;
812                 pktlen = ag71xx_desc_pktlen(desc);
813                 pktlen -= ETH_FCS_LEN;
814
815                 dma_unmap_single(&dev->dev, ring->buf[i].dma_addr,
816                                  AG71XX_RX_PKT_SIZE, DMA_FROM_DEVICE);
817
818                 dev->last_rx = jiffies;
819                 dev->stats.rx_packets++;
820                 dev->stats.rx_bytes += pktlen;
821
822                 skb_put(skb, pktlen);
823                 if (ag71xx_has_ar8216(ag))
824                         err = ag71xx_remove_ar8216_header(ag, skb, pktlen);
825
826                 if (err) {
827                         dev->stats.rx_dropped++;
828                         kfree_skb(skb);
829                 } else {
830                         skb->dev = dev;
831                         skb->ip_summed = CHECKSUM_NONE;
832                         if (ag->phy_dev) {
833                                 ag->phy_dev->netif_receive_skb(skb);
834                         } else {
835                                 skb->protocol = eth_type_trans(skb, dev);
836                                 netif_receive_skb(skb);
837                         }
838                 }
839
840                 ring->buf[i].skb = NULL;
841                 done++;
842
843                 ring->curr++;
844         }
845
846         ag71xx_ring_rx_refill(ag);
847
848         DBG("%s: rx finish, curr=%u, dirty=%u, done=%d\n",
849                 dev->name, ring->curr, ring->dirty, done);
850
851         return done;
852 }
853
854 static int ag71xx_poll(struct napi_struct *napi, int limit)
855 {
856         struct ag71xx *ag = container_of(napi, struct ag71xx, napi);
857         struct ag71xx_platform_data *pdata = ag71xx_get_pdata(ag);
858         struct net_device *dev = ag->dev;
859         struct ag71xx_ring *rx_ring;
860         unsigned long flags;
861         u32 status;
862         int tx_done;
863         int rx_done;
864
865         pdata->ddr_flush();
866         tx_done = ag71xx_tx_packets(ag);
867
868         DBG("%s: processing RX ring\n", dev->name);
869         rx_done = ag71xx_rx_packets(ag, limit);
870
871         ag71xx_debugfs_update_napi_stats(ag, rx_done, tx_done);
872
873         rx_ring = &ag->rx_ring;
874         if (rx_ring->buf[rx_ring->dirty % rx_ring->size].skb == NULL)
875                 goto oom;
876
877         status = ag71xx_rr(ag, AG71XX_REG_RX_STATUS);
878         if (unlikely(status & RX_STATUS_OF)) {
879                 ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_OF);
880                 dev->stats.rx_fifo_errors++;
881
882                 /* restart RX */
883                 ag71xx_wr(ag, AG71XX_REG_RX_CTRL, RX_CTRL_RXE);
884         }
885
886         if (rx_done < limit) {
887                 if (status & RX_STATUS_PR)
888                         goto more;
889
890                 status = ag71xx_rr(ag, AG71XX_REG_TX_STATUS);
891                 if (status & TX_STATUS_PS)
892                         goto more;
893
894                 DBG("%s: disable polling mode, rx=%d, tx=%d,limit=%d\n",
895                         dev->name, rx_done, tx_done, limit);
896
897                 napi_complete(napi);
898
899                 /* enable interrupts */
900                 spin_lock_irqsave(&ag->lock, flags);
901                 ag71xx_int_enable(ag, AG71XX_INT_POLL);
902                 spin_unlock_irqrestore(&ag->lock, flags);
903                 return rx_done;
904         }
905
906 more:
907         DBG("%s: stay in polling mode, rx=%d, tx=%d, limit=%d\n",
908                         dev->name, rx_done, tx_done, limit);
909         return rx_done;
910
911 oom:
912         if (netif_msg_rx_err(ag))
913                 printk(KERN_DEBUG "%s: out of memory\n", dev->name);
914
915         mod_timer(&ag->oom_timer, jiffies + AG71XX_OOM_REFILL);
916         napi_complete(napi);
917         return 0;
918 }
919
920 static irqreturn_t ag71xx_interrupt(int irq, void *dev_id)
921 {
922         struct net_device *dev = dev_id;
923         struct ag71xx *ag = netdev_priv(dev);
924         u32 status;
925
926         status = ag71xx_rr(ag, AG71XX_REG_INT_STATUS);
927         ag71xx_dump_intr(ag, "raw", status);
928
929         if (unlikely(!status))
930                 return IRQ_NONE;
931
932         if (unlikely(status & AG71XX_INT_ERR)) {
933                 if (status & AG71XX_INT_TX_BE) {
934                         ag71xx_wr(ag, AG71XX_REG_TX_STATUS, TX_STATUS_BE);
935                         dev_err(&dev->dev, "TX BUS error\n");
936                 }
937                 if (status & AG71XX_INT_RX_BE) {
938                         ag71xx_wr(ag, AG71XX_REG_RX_STATUS, RX_STATUS_BE);
939                         dev_err(&dev->dev, "RX BUS error\n");
940                 }
941         }
942
943         if (likely(status & AG71XX_INT_POLL)) {
944                 ag71xx_int_disable(ag, AG71XX_INT_POLL);
945                 DBG("%s: enable polling mode\n", dev->name);
946                 napi_schedule(&ag->napi);
947         }
948
949         ag71xx_debugfs_update_int_stats(ag, status);
950
951         return IRQ_HANDLED;
952 }
953
954 static void ag71xx_set_multicast_list(struct net_device *dev)
955 {
956         /* TODO */
957 }
958
959 #ifdef CONFIG_NET_POLL_CONTROLLER
960 /*
961  * Polling 'interrupt' - used by things like netconsole to send skbs
962  * without having to re-enable interrupts. It's not called while
963  * the interrupt routine is executing.
964  */
965 static void ag71xx_netpoll(struct net_device *dev)
966 {
967         disable_irq(dev->irq);
968         ag71xx_interrupt(dev->irq, dev);
969         enable_irq(dev->irq);
970 }
971 #endif
972
973 static const struct net_device_ops ag71xx_netdev_ops = {
974         .ndo_open               = ag71xx_open,
975         .ndo_stop               = ag71xx_stop,
976         .ndo_start_xmit         = ag71xx_hard_start_xmit,
977         .ndo_set_multicast_list = ag71xx_set_multicast_list,
978         .ndo_do_ioctl           = ag71xx_do_ioctl,
979         .ndo_tx_timeout         = ag71xx_tx_timeout,
980         .ndo_change_mtu         = eth_change_mtu,
981         .ndo_set_mac_address    = eth_mac_addr,
982         .ndo_validate_addr      = eth_validate_addr,
983 #ifdef CONFIG_NET_POLL_CONTROLLER
984         .ndo_poll_controller    = ag71xx_netpoll,
985 #endif
986 };
987
988 static int __devinit ag71xx_probe(struct platform_device *pdev)
989 {
990         struct net_device *dev;
991         struct resource *res;
992         struct ag71xx *ag;
993         struct ag71xx_platform_data *pdata;
994         int err;
995
996         pdata = pdev->dev.platform_data;
997         if (!pdata) {
998                 dev_err(&pdev->dev, "no platform data specified\n");
999                 err = -ENXIO;
1000                 goto err_out;
1001         }
1002
1003         if (pdata->mii_bus_dev == NULL) {
1004                 dev_err(&pdev->dev, "no MII bus device specified\n");
1005                 err = -EINVAL;
1006                 goto err_out;
1007         }
1008
1009         dev = alloc_etherdev(sizeof(*ag));
1010         if (!dev) {
1011                 dev_err(&pdev->dev, "alloc_etherdev failed\n");
1012                 err = -ENOMEM;
1013                 goto err_out;
1014         }
1015
1016         SET_NETDEV_DEV(dev, &pdev->dev);
1017
1018         ag = netdev_priv(dev);
1019         ag->pdev = pdev;
1020         ag->dev = dev;
1021         ag->msg_enable = netif_msg_init(ag71xx_msg_level,
1022                                         AG71XX_DEFAULT_MSG_ENABLE);
1023         spin_lock_init(&ag->lock);
1024
1025         res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "mac_base");
1026         if (!res) {
1027                 dev_err(&pdev->dev, "no mac_base resource found\n");
1028                 err = -ENXIO;
1029                 goto err_out;
1030         }
1031
1032         ag->mac_base = ioremap_nocache(res->start, res->end - res->start + 1);
1033         if (!ag->mac_base) {
1034                 dev_err(&pdev->dev, "unable to ioremap mac_base\n");
1035                 err = -ENOMEM;
1036                 goto err_free_dev;
1037         }
1038
1039         res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "mii_ctrl");
1040         if (!res) {
1041                 dev_err(&pdev->dev, "no mii_ctrl resource found\n");
1042                 err = -ENXIO;
1043                 goto err_unmap_base;
1044         }
1045
1046         ag->mii_ctrl = ioremap_nocache(res->start, res->end - res->start + 1);
1047         if (!ag->mii_ctrl) {
1048                 dev_err(&pdev->dev, "unable to ioremap mii_ctrl\n");
1049                 err = -ENOMEM;
1050                 goto err_unmap_base;
1051         }
1052
1053         dev->irq = platform_get_irq(pdev, 0);
1054         err = request_irq(dev->irq, ag71xx_interrupt,
1055                           IRQF_DISABLED,
1056                           dev->name, dev);
1057         if (err) {
1058                 dev_err(&pdev->dev, "unable to request IRQ %d\n", dev->irq);
1059                 goto err_unmap_mii_ctrl;
1060         }
1061
1062         dev->base_addr = (unsigned long)ag->mac_base;
1063         dev->netdev_ops = &ag71xx_netdev_ops;
1064         dev->ethtool_ops = &ag71xx_ethtool_ops;
1065
1066         INIT_WORK(&ag->restart_work, ag71xx_restart_work_func);
1067
1068         init_timer(&ag->oom_timer);
1069         ag->oom_timer.data = (unsigned long) dev;
1070         ag->oom_timer.function = ag71xx_oom_timer_handler;
1071
1072         ag->tx_ring.size = AG71XX_TX_RING_SIZE_DEFAULT;
1073         ag->rx_ring.size = AG71XX_RX_RING_SIZE_DEFAULT;
1074
1075         memcpy(dev->dev_addr, pdata->mac_addr, ETH_ALEN);
1076
1077         netif_napi_add(dev, &ag->napi, ag71xx_poll, AG71XX_NAPI_WEIGHT);
1078
1079         err = register_netdev(dev);
1080         if (err) {
1081                 dev_err(&pdev->dev, "unable to register net device\n");
1082                 goto err_free_irq;
1083         }
1084
1085         printk(KERN_INFO "%s: Atheros AG71xx at 0x%08lx, irq %d\n",
1086                dev->name, dev->base_addr, dev->irq);
1087
1088         ag71xx_dump_regs(ag);
1089
1090         ag71xx_hw_init(ag);
1091
1092         ag71xx_dump_regs(ag);
1093
1094         err = ag71xx_phy_connect(ag);
1095         if (err)
1096                 goto err_unregister_netdev;
1097
1098         err = ag71xx_debugfs_init(ag);
1099         if (err)
1100                 goto err_phy_disconnect;
1101
1102         platform_set_drvdata(pdev, dev);
1103
1104         return 0;
1105
1106 err_phy_disconnect:
1107         ag71xx_phy_disconnect(ag);
1108 err_unregister_netdev:
1109         unregister_netdev(dev);
1110 err_free_irq:
1111         free_irq(dev->irq, dev);
1112 err_unmap_mii_ctrl:
1113         iounmap(ag->mii_ctrl);
1114 err_unmap_base:
1115         iounmap(ag->mac_base);
1116 err_free_dev:
1117         kfree(dev);
1118 err_out:
1119         platform_set_drvdata(pdev, NULL);
1120         return err;
1121 }
1122
1123 static int __devexit ag71xx_remove(struct platform_device *pdev)
1124 {
1125         struct net_device *dev = platform_get_drvdata(pdev);
1126
1127         if (dev) {
1128                 struct ag71xx *ag = netdev_priv(dev);
1129
1130                 ag71xx_debugfs_exit(ag);
1131                 ag71xx_phy_disconnect(ag);
1132                 unregister_netdev(dev);
1133                 free_irq(dev->irq, dev);
1134                 iounmap(ag->mii_ctrl);
1135                 iounmap(ag->mac_base);
1136                 kfree(dev);
1137                 platform_set_drvdata(pdev, NULL);
1138         }
1139
1140         return 0;
1141 }
1142
1143 static struct platform_driver ag71xx_driver = {
1144         .probe          = ag71xx_probe,
1145         .remove         = __exit_p(ag71xx_remove),
1146         .driver = {
1147                 .name   = AG71XX_DRV_NAME,
1148         }
1149 };
1150
1151 static int __init ag71xx_module_init(void)
1152 {
1153         int ret;
1154
1155         ret = ag71xx_debugfs_root_init();
1156         if (ret)
1157                 goto err_out;
1158
1159         ret = ag71xx_mdio_driver_init();
1160         if (ret)
1161                 goto err_debugfs_exit;
1162
1163         ret = platform_driver_register(&ag71xx_driver);
1164         if (ret)
1165                 goto err_mdio_exit;
1166
1167         return 0;
1168
1169 err_mdio_exit:
1170         ag71xx_mdio_driver_exit();
1171 err_debugfs_exit:
1172         ag71xx_debugfs_root_exit();
1173 err_out:
1174         return ret;
1175 }
1176
1177 static void __exit ag71xx_module_exit(void)
1178 {
1179         platform_driver_unregister(&ag71xx_driver);
1180         ag71xx_mdio_driver_exit();
1181         ag71xx_debugfs_root_exit();
1182 }
1183
1184 module_init(ag71xx_module_init);
1185 module_exit(ag71xx_module_exit);
1186
1187 MODULE_VERSION(AG71XX_DRV_VERSION);
1188 MODULE_AUTHOR("Gabor Juhos <juhosg@openwrt.org>");
1189 MODULE_AUTHOR("Imre Kaloz <kaloz@openwrt.org>");
1190 MODULE_LICENSE("GPL v2");
1191 MODULE_ALIAS("platform:" AG71XX_DRV_NAME);