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[net-next-2.6.git] / drivers / net / spider_net.c
CommitLineData
aaec0fab
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1/*
2 * Network device driver for Cell Processor-Based Blade
3 *
4 * (C) Copyright IBM Corp. 2005
5 *
6 * Authors : Utz Bacher <utz.bacher@de.ibm.com>
7 * Jens Osterkamp <Jens.Osterkamp@de.ibm.com>
8 *
9 * This program is free software; you can redistribute it and/or modify
10 * it under the terms of the GNU General Public License as published by
11 * the Free Software Foundation; either version 2, or (at your option)
12 * any later version.
13 *
14 * This program is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 * GNU General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
22 */
23
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24#include <linux/compiler.h>
25#include <linux/crc32.h>
26#include <linux/delay.h>
27#include <linux/etherdevice.h>
28#include <linux/ethtool.h>
29#include <linux/firmware.h>
30#include <linux/if_vlan.h>
7c5c220e 31#include <linux/in.h>
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32#include <linux/init.h>
33#include <linux/ioport.h>
34#include <linux/ip.h>
35#include <linux/kernel.h>
36#include <linux/mii.h>
37#include <linux/module.h>
38#include <linux/netdevice.h>
39#include <linux/device.h>
40#include <linux/pci.h>
41#include <linux/skbuff.h>
42#include <linux/slab.h>
43#include <linux/tcp.h>
44#include <linux/types.h>
11f1a52b 45#include <linux/vmalloc.h>
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46#include <linux/wait.h>
47#include <linux/workqueue.h>
48#include <asm/bitops.h>
49#include <asm/pci-bridge.h>
50#include <net/checksum.h>
51
52#include "spider_net.h"
53
54MODULE_AUTHOR("Utz Bacher <utz.bacher@de.ibm.com> and Jens Osterkamp " \
55 "<Jens.Osterkamp@de.ibm.com>");
56MODULE_DESCRIPTION("Spider Southbridge Gigabit Ethernet driver");
57MODULE_LICENSE("GPL");
90f10841 58MODULE_VERSION(VERSION);
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59
60static int rx_descriptors = SPIDER_NET_RX_DESCRIPTORS_DEFAULT;
61static int tx_descriptors = SPIDER_NET_TX_DESCRIPTORS_DEFAULT;
62
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63module_param(rx_descriptors, int, 0444);
64module_param(tx_descriptors, int, 0444);
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65
66MODULE_PARM_DESC(rx_descriptors, "number of descriptors used " \
67 "in rx chains");
68MODULE_PARM_DESC(tx_descriptors, "number of descriptors used " \
69 "in tx chain");
70
71char spider_net_driver_name[] = "spidernet";
72
73static struct pci_device_id spider_net_pci_tbl[] = {
74 { PCI_VENDOR_ID_TOSHIBA_2, PCI_DEVICE_ID_TOSHIBA_SPIDER_NET,
75 PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0UL },
76 { 0, }
77};
78
79MODULE_DEVICE_TABLE(pci, spider_net_pci_tbl);
80
81/**
82 * spider_net_read_reg - reads an SMMIO register of a card
83 * @card: device structure
84 * @reg: register to read from
85 *
86 * returns the content of the specified SMMIO register.
87 */
bdd01503 88static inline u32
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89spider_net_read_reg(struct spider_net_card *card, u32 reg)
90{
91 u32 value;
92
93 value = readl(card->regs + reg);
94 value = le32_to_cpu(value);
95
96 return value;
97}
98
99/**
100 * spider_net_write_reg - writes to an SMMIO register of a card
101 * @card: device structure
102 * @reg: register to write to
103 * @value: value to write into the specified SMMIO register
104 */
bdd01503 105static inline void
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106spider_net_write_reg(struct spider_net_card *card, u32 reg, u32 value)
107{
108 value = cpu_to_le32(value);
109 writel(value, card->regs + reg);
110}
111
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112/** spider_net_write_phy - write to phy register
113 * @netdev: adapter to be written to
114 * @mii_id: id of MII
115 * @reg: PHY register
116 * @val: value to be written to phy register
117 *
118 * spider_net_write_phy_register writes to an arbitrary PHY
119 * register via the spider GPCWOPCMD register. We assume the queue does
120 * not run full (not more than 15 commands outstanding).
121 **/
122static void
123spider_net_write_phy(struct net_device *netdev, int mii_id,
124 int reg, int val)
125{
126 struct spider_net_card *card = netdev_priv(netdev);
127 u32 writevalue;
128
129 writevalue = ((u32)mii_id << 21) |
130 ((u32)reg << 16) | ((u32)val);
131
132 spider_net_write_reg(card, SPIDER_NET_GPCWOPCMD, writevalue);
133}
134
135/** spider_net_read_phy - read from phy register
136 * @netdev: network device to be read from
137 * @mii_id: id of MII
138 * @reg: PHY register
139 *
140 * Returns value read from PHY register
141 *
142 * spider_net_write_phy reads from an arbitrary PHY
143 * register via the spider GPCROPCMD register
144 **/
145static int
146spider_net_read_phy(struct net_device *netdev, int mii_id, int reg)
147{
148 struct spider_net_card *card = netdev_priv(netdev);
149 u32 readvalue;
150
151 readvalue = ((u32)mii_id << 21) | ((u32)reg << 16);
152 spider_net_write_reg(card, SPIDER_NET_GPCROPCMD, readvalue);
153
154 /* we don't use semaphores to wait for an SPIDER_NET_GPROPCMPINT
155 * interrupt, as we poll for the completion of the read operation
156 * in spider_net_read_phy. Should take about 50 us */
157 do {
158 readvalue = spider_net_read_reg(card, SPIDER_NET_GPCROPCMD);
159 } while (readvalue & SPIDER_NET_GPREXEC);
160
161 readvalue &= SPIDER_NET_GPRDAT_MASK;
162
163 return readvalue;
164}
165
166/**
11f1a52b 167 * spider_net_rx_irq_off - switch off rx irq on this spider card
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168 * @card: device structure
169 *
11f1a52b 170 * switches off rx irq by masking them out in the GHIINTnMSK register
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171 */
172static void
11f1a52b 173spider_net_rx_irq_off(struct spider_net_card *card)
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174{
175 u32 regvalue;
aaec0fab 176
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AB
177 regvalue = SPIDER_NET_INT0_MASK_VALUE & (~SPIDER_NET_RXINT);
178 spider_net_write_reg(card, SPIDER_NET_GHIINT0MSK, regvalue);
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179}
180
181/**
11f1a52b 182 * spider_net_rx_irq_on - switch on rx irq on this spider card
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183 * @card: device structure
184 *
11f1a52b 185 * switches on rx irq by enabling them in the GHIINTnMSK register
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186 */
187static void
11f1a52b 188spider_net_rx_irq_on(struct spider_net_card *card)
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189{
190 u32 regvalue;
aaec0fab 191
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192 regvalue = SPIDER_NET_INT0_MASK_VALUE | SPIDER_NET_RXINT;
193 spider_net_write_reg(card, SPIDER_NET_GHIINT0MSK, regvalue);
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194}
195
196/**
197 * spider_net_set_promisc - sets the unicast address or the promiscuous mode
198 * @card: card structure
199 *
200 * spider_net_set_promisc sets the unicast destination address filter and
201 * thus either allows for non-promisc mode or promisc mode
202 */
203static void
204spider_net_set_promisc(struct spider_net_card *card)
205{
206 u32 macu, macl;
207 struct net_device *netdev = card->netdev;
208
209 if (netdev->flags & IFF_PROMISC) {
210 /* clear destination entry 0 */
211 spider_net_write_reg(card, SPIDER_NET_GMRUAFILnR, 0);
212 spider_net_write_reg(card, SPIDER_NET_GMRUAFILnR + 0x04, 0);
213 spider_net_write_reg(card, SPIDER_NET_GMRUA0FIL15R,
214 SPIDER_NET_PROMISC_VALUE);
215 } else {
216 macu = netdev->dev_addr[0];
217 macu <<= 8;
218 macu |= netdev->dev_addr[1];
219 memcpy(&macl, &netdev->dev_addr[2], sizeof(macl));
220
221 macu |= SPIDER_NET_UA_DESCR_VALUE;
222 spider_net_write_reg(card, SPIDER_NET_GMRUAFILnR, macu);
223 spider_net_write_reg(card, SPIDER_NET_GMRUAFILnR + 0x04, macl);
224 spider_net_write_reg(card, SPIDER_NET_GMRUA0FIL15R,
225 SPIDER_NET_NONPROMISC_VALUE);
226 }
227}
228
229/**
230 * spider_net_get_mac_address - read mac address from spider card
231 * @card: device structure
232 *
233 * reads MAC address from GMACUNIMACU and GMACUNIMACL registers
234 */
235static int
236spider_net_get_mac_address(struct net_device *netdev)
237{
238 struct spider_net_card *card = netdev_priv(netdev);
239 u32 macl, macu;
240
241 macl = spider_net_read_reg(card, SPIDER_NET_GMACUNIMACL);
242 macu = spider_net_read_reg(card, SPIDER_NET_GMACUNIMACU);
243
244 netdev->dev_addr[0] = (macu >> 24) & 0xff;
245 netdev->dev_addr[1] = (macu >> 16) & 0xff;
246 netdev->dev_addr[2] = (macu >> 8) & 0xff;
247 netdev->dev_addr[3] = macu & 0xff;
248 netdev->dev_addr[4] = (macl >> 8) & 0xff;
249 netdev->dev_addr[5] = macl & 0xff;
250
251 if (!is_valid_ether_addr(&netdev->dev_addr[0]))
252 return -EINVAL;
253
254 return 0;
255}
256
257/**
258 * spider_net_get_descr_status -- returns the status of a descriptor
259 * @descr: descriptor to look at
260 *
261 * returns the status as in the dmac_cmd_status field of the descriptor
262 */
bdd01503 263static inline int
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264spider_net_get_descr_status(struct spider_net_descr *descr)
265{
bdd01503 266 return descr->dmac_cmd_status & SPIDER_NET_DESCR_IND_PROC_MASK;
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267}
268
269/**
270 * spider_net_free_chain - free descriptor chain
271 * @card: card structure
272 * @chain: address of chain
273 *
274 */
275static void
276spider_net_free_chain(struct spider_net_card *card,
277 struct spider_net_descr_chain *chain)
278{
279 struct spider_net_descr *descr;
280
281 for (descr = chain->tail; !descr->bus_addr; descr = descr->next) {
282 pci_unmap_single(card->pdev, descr->bus_addr,
283 SPIDER_NET_DESCR_SIZE, PCI_DMA_BIDIRECTIONAL);
284 descr->bus_addr = 0;
285 }
286}
287
288/**
289 * spider_net_init_chain - links descriptor chain
290 * @card: card structure
291 * @chain: address of chain
292 * @start_descr: address of descriptor array
293 * @no: number of descriptors
294 *
295 * we manage a circular list that mirrors the hardware structure,
296 * except that the hardware uses bus addresses.
297 *
298 * returns 0 on success, <0 on failure
299 */
300static int
301spider_net_init_chain(struct spider_net_card *card,
302 struct spider_net_descr_chain *chain,
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303 struct spider_net_descr *start_descr,
304 int direction, int no)
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305{
306 int i;
307 struct spider_net_descr *descr;
11f1a52b 308 dma_addr_t buf;
aaec0fab 309
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310 descr = start_descr;
311 memset(descr, 0, sizeof(*descr) * no);
312
313 /* set up the hardware pointers in each descriptor */
314 for (i=0; i<no; i++, descr++) {
bdd01503 315 descr->dmac_cmd_status = SPIDER_NET_DESCR_NOT_IN_USE;
aaec0fab 316
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AB
317 buf = pci_map_single(card->pdev, descr,
318 SPIDER_NET_DESCR_SIZE,
bdd01503 319 direction);
aaec0fab 320
d4b0a4c1 321 if (pci_dma_mapping_error(buf))
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322 goto iommu_error;
323
11f1a52b 324 descr->bus_addr = buf;
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325 descr->next = descr + 1;
326 descr->prev = descr - 1;
327
328 }
329 /* do actual circular list */
330 (descr-1)->next = start_descr;
331 start_descr->prev = descr-1;
332
333 descr = start_descr;
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334 if (direction == PCI_DMA_FROMDEVICE)
335 for (i=0; i < no; i++, descr++)
336 descr->next_descr_addr = descr->next->bus_addr;
aaec0fab 337
bdd01503 338 spin_lock_init(&chain->lock);
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339 chain->head = start_descr;
340 chain->tail = start_descr;
341
342 return 0;
343
344iommu_error:
345 descr = start_descr;
346 for (i=0; i < no; i++, descr++)
347 if (descr->bus_addr)
348 pci_unmap_single(card->pdev, descr->bus_addr,
11f1a52b 349 SPIDER_NET_DESCR_SIZE,
bdd01503 350 direction);
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351 return -ENOMEM;
352}
353
354/**
355 * spider_net_free_rx_chain_contents - frees descr contents in rx chain
356 * @card: card structure
357 *
358 * returns 0 on success, <0 on failure
359 */
360static void
361spider_net_free_rx_chain_contents(struct spider_net_card *card)
362{
363 struct spider_net_descr *descr;
364
365 descr = card->rx_chain.head;
366 while (descr->next != card->rx_chain.head) {
367 if (descr->skb) {
368 dev_kfree_skb(descr->skb);
369 pci_unmap_single(card->pdev, descr->buf_addr,
11f1a52b 370 SPIDER_NET_MAX_FRAME,
bdd01503 371 PCI_DMA_FROMDEVICE);
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372 }
373 descr = descr->next;
374 }
375}
376
377/**
378 * spider_net_prepare_rx_descr - reinitializes a rx descriptor
379 * @card: card structure
380 * @descr: descriptor to re-init
381 *
382 * return 0 on succes, <0 on failure
383 *
384 * allocates a new rx skb, iommu-maps it and attaches it to the descriptor.
385 * Activate the descriptor state-wise
386 */
387static int
388spider_net_prepare_rx_descr(struct spider_net_card *card,
389 struct spider_net_descr *descr)
390{
8e0a613b 391 dma_addr_t buf;
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392 int error = 0;
393 int offset;
394 int bufsize;
395
396 /* we need to round up the buffer size to a multiple of 128 */
11f1a52b 397 bufsize = (SPIDER_NET_MAX_FRAME + SPIDER_NET_RXBUF_ALIGN - 1) &
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398 (~(SPIDER_NET_RXBUF_ALIGN - 1));
399
400 /* and we need to have it 128 byte aligned, therefore we allocate a
401 * bit more */
402 /* allocate an skb */
403 descr->skb = dev_alloc_skb(bufsize + SPIDER_NET_RXBUF_ALIGN - 1);
404 if (!descr->skb) {
11f1a52b
AB
405 if (netif_msg_rx_err(card) && net_ratelimit())
406 pr_err("Not enough memory to allocate rx buffer\n");
9b6b0b81 407 card->spider_stats.alloc_rx_skb_error++;
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408 return -ENOMEM;
409 }
410 descr->buf_size = bufsize;
411 descr->result_size = 0;
412 descr->valid_size = 0;
413 descr->data_status = 0;
414 descr->data_error = 0;
415
416 offset = ((unsigned long)descr->skb->data) &
417 (SPIDER_NET_RXBUF_ALIGN - 1);
418 if (offset)
419 skb_reserve(descr->skb, SPIDER_NET_RXBUF_ALIGN - offset);
420 /* io-mmu-map the skb */
8e0a613b 421 buf = pci_map_single(card->pdev, descr->skb->data,
bdd01503 422 SPIDER_NET_MAX_FRAME, PCI_DMA_FROMDEVICE);
8e0a613b 423 descr->buf_addr = buf;
d4b0a4c1 424 if (pci_dma_mapping_error(buf)) {
aaec0fab 425 dev_kfree_skb_any(descr->skb);
11f1a52b 426 if (netif_msg_rx_err(card) && net_ratelimit())
aaec0fab 427 pr_err("Could not iommu-map rx buffer\n");
9b6b0b81 428 card->spider_stats.rx_iommu_map_error++;
bdd01503 429 descr->dmac_cmd_status = SPIDER_NET_DESCR_NOT_IN_USE;
aaec0fab 430 } else {
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431 descr->dmac_cmd_status = SPIDER_NET_DESCR_CARDOWNED |
432 SPIDER_NET_DMAC_NOINTR_COMPLETE;
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433 }
434
435 return error;
436}
437
438/**
11f1a52b 439 * spider_net_enable_rxchtails - sets RX dmac chain tail addresses
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440 * @card: card structure
441 *
11f1a52b 442 * spider_net_enable_rxchtails sets the RX DMAC chain tail adresses in the
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443 * chip by writing to the appropriate register. DMA is enabled in
444 * spider_net_enable_rxdmac.
445 */
bdd01503 446static inline void
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447spider_net_enable_rxchtails(struct spider_net_card *card)
448{
449 /* assume chain is aligned correctly */
450 spider_net_write_reg(card, SPIDER_NET_GDADCHA ,
451 card->rx_chain.tail->bus_addr);
452}
453
454/**
455 * spider_net_enable_rxdmac - enables a receive DMA controller
456 * @card: card structure
457 *
458 * spider_net_enable_rxdmac enables the DMA controller by setting RX_DMA_EN
459 * in the GDADMACCNTR register
460 */
bdd01503 461static inline void
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462spider_net_enable_rxdmac(struct spider_net_card *card)
463{
11f1a52b 464 wmb();
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465 spider_net_write_reg(card, SPIDER_NET_GDADMACCNTR,
466 SPIDER_NET_DMA_RX_VALUE);
467}
468
469/**
470 * spider_net_refill_rx_chain - refills descriptors/skbs in the rx chains
471 * @card: card structure
472 *
11f1a52b 473 * refills descriptors in the rx chain: allocates skbs and iommu-maps them.
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474 */
475static void
476spider_net_refill_rx_chain(struct spider_net_card *card)
477{
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478 struct spider_net_descr_chain *chain = &card->rx_chain;
479 unsigned long flags;
aaec0fab 480
11f1a52b
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481 /* one context doing the refill (and a second context seeing that
482 * and omitting it) is ok. If called by NAPI, we'll be called again
483 * as spider_net_decode_one_descr is called several times. If some
484 * interrupt calls us, the NAPI is about to clean up anyway. */
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485 if (!spin_trylock_irqsave(&chain->lock, flags))
486 return;
487
488 while (spider_net_get_descr_status(chain->head) ==
489 SPIDER_NET_DESCR_NOT_IN_USE) {
490 if (spider_net_prepare_rx_descr(card, chain->head))
491 break;
492 chain->head = chain->head->next;
493 }
aaec0fab 494
bdd01503 495 spin_unlock_irqrestore(&chain->lock, flags);
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496}
497
498/**
499 * spider_net_alloc_rx_skbs - allocates rx skbs in rx descriptor chains
500 * @card: card structure
501 *
502 * returns 0 on success, <0 on failure
503 */
504static int
505spider_net_alloc_rx_skbs(struct spider_net_card *card)
506{
507 int result;
508 struct spider_net_descr_chain *chain;
509
510 result = -ENOMEM;
511
512 chain = &card->rx_chain;
513 /* put at least one buffer into the chain. if this fails,
514 * we've got a problem. if not, spider_net_refill_rx_chain
515 * will do the rest at the end of this function */
516 if (spider_net_prepare_rx_descr(card, chain->head))
517 goto error;
518 else
519 chain->head = chain->head->next;
520
521 /* this will allocate the rest of the rx buffers; if not, it's
522 * business as usual later on */
523 spider_net_refill_rx_chain(card);
11f1a52b 524 spider_net_enable_rxdmac(card);
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525 return 0;
526
527error:
528 spider_net_free_rx_chain_contents(card);
529 return result;
530}
531
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532/**
533 * spider_net_get_multicast_hash - generates hash for multicast filter table
534 * @addr: multicast address
535 *
536 * returns the hash value.
537 *
538 * spider_net_get_multicast_hash calculates a hash value for a given multicast
539 * address, that is used to set the multicast filter tables
540 */
541static u8
542spider_net_get_multicast_hash(struct net_device *netdev, __u8 *addr)
543{
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544 u32 crc;
545 u8 hash;
11f1a52b
AB
546 char addr_for_crc[ETH_ALEN] = { 0, };
547 int i, bit;
548
549 for (i = 0; i < ETH_ALEN * 8; i++) {
550 bit = (addr[i / 8] >> (i % 8)) & 1;
551 addr_for_crc[ETH_ALEN - 1 - i / 8] += bit << (7 - (i % 8));
552 }
aaec0fab 553
11f1a52b 554 crc = crc32_be(~0, addr_for_crc, netdev->addr_len);
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555
556 hash = (crc >> 27);
557 hash <<= 3;
558 hash |= crc & 7;
11f1a52b 559 hash &= 0xff;
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560
561 return hash;
562}
563
564/**
565 * spider_net_set_multi - sets multicast addresses and promisc flags
566 * @netdev: interface device structure
567 *
568 * spider_net_set_multi configures multicast addresses as needed for the
569 * netdev interface. It also sets up multicast, allmulti and promisc
570 * flags appropriately
571 */
572static void
573spider_net_set_multi(struct net_device *netdev)
574{
575 struct dev_mc_list *mc;
576 u8 hash;
577 int i;
578 u32 reg;
579 struct spider_net_card *card = netdev_priv(netdev);
580 unsigned long bitmask[SPIDER_NET_MULTICAST_HASHES / BITS_PER_LONG] =
581 {0, };
582
583 spider_net_set_promisc(card);
584
585 if (netdev->flags & IFF_ALLMULTI) {
586 for (i = 0; i < SPIDER_NET_MULTICAST_HASHES; i++) {
587 set_bit(i, bitmask);
588 }
589 goto write_hash;
590 }
591
592 /* well, we know, what the broadcast hash value is: it's xfd
593 hash = spider_net_get_multicast_hash(netdev, netdev->broadcast); */
594 set_bit(0xfd, bitmask);
595
596 for (mc = netdev->mc_list; mc; mc = mc->next) {
597 hash = spider_net_get_multicast_hash(netdev, mc->dmi_addr);
598 set_bit(hash, bitmask);
599 }
600
601write_hash:
602 for (i = 0; i < SPIDER_NET_MULTICAST_HASHES / 4; i++) {
603 reg = 0;
604 if (test_bit(i * 4, bitmask))
605 reg += 0x08;
606 reg <<= 8;
607 if (test_bit(i * 4 + 1, bitmask))
608 reg += 0x08;
609 reg <<= 8;
610 if (test_bit(i * 4 + 2, bitmask))
611 reg += 0x08;
612 reg <<= 8;
613 if (test_bit(i * 4 + 3, bitmask))
614 reg += 0x08;
615
616 spider_net_write_reg(card, SPIDER_NET_GMRMHFILnR + i * 4, reg);
617 }
618}
619
620/**
621 * spider_net_disable_rxdmac - disables the receive DMA controller
622 * @card: card structure
623 *
624 * spider_net_disable_rxdmac terminates processing on the DMA controller by
625 * turing off DMA and issueing a force end
626 */
627static void
628spider_net_disable_rxdmac(struct spider_net_card *card)
629{
630 spider_net_write_reg(card, SPIDER_NET_GDADMACCNTR,
631 SPIDER_NET_DMA_RX_FEND_VALUE);
632}
633
aaec0fab
JO
634/**
635 * spider_net_prepare_tx_descr - fill tx descriptor with skb data
636 * @card: card structure
637 * @descr: descriptor structure to fill out
638 * @skb: packet to use
639 *
640 * returns 0 on success, <0 on failure.
641 *
642 * fills out the descriptor structure with skb data and len. Copies data,
643 * if needed (32bit DMA!)
644 */
645static int
646spider_net_prepare_tx_descr(struct spider_net_card *card,
aaec0fab
JO
647 struct sk_buff *skb)
648{
bdd01503 649 struct spider_net_descr *descr = card->tx_chain.head;
11f1a52b 650 dma_addr_t buf;
808999c9 651 int length;
11f1a52b 652
808999c9
LV
653 length = skb->len;
654 if (length < ETH_ZLEN) {
655 if (skb_pad(skb, ETH_ZLEN-length))
656 return 0;
657 length = ETH_ZLEN;
658 }
659
660 buf = pci_map_single(card->pdev, skb->data, length, PCI_DMA_TODEVICE);
d4b0a4c1 661 if (pci_dma_mapping_error(buf)) {
11f1a52b 662 if (netif_msg_tx_err(card) && net_ratelimit())
aaec0fab 663 pr_err("could not iommu-map packet (%p, %i). "
808999c9 664 "Dropping packet\n", skb->data, length);
9b6b0b81 665 card->spider_stats.tx_iommu_map_error++;
aaec0fab
JO
666 return -ENOMEM;
667 }
668
8e0a613b 669 descr->buf_addr = buf;
808999c9 670 descr->buf_size = length;
bdd01503 671 descr->next_descr_addr = 0;
aaec0fab
JO
672 descr->skb = skb;
673 descr->data_status = 0;
674
bdd01503
JO
675 descr->dmac_cmd_status =
676 SPIDER_NET_DESCR_CARDOWNED | SPIDER_NET_DMAC_NOCS;
677 if (skb->protocol == htons(ETH_P_IP))
678 switch (skb->nh.iph->protocol) {
679 case IPPROTO_TCP:
680 descr->dmac_cmd_status |= SPIDER_NET_DMAC_TCP;
681 break;
682 case IPPROTO_UDP:
683 descr->dmac_cmd_status |= SPIDER_NET_DMAC_UDP;
684 break;
685 }
686
687 descr->prev->next_descr_addr = descr->bus_addr;
688
689 return 0;
690}
691
692/**
693 * spider_net_release_tx_descr - processes a used tx descriptor
694 * @card: card structure
695 * @descr: descriptor to release
696 *
697 * releases a used tx descriptor (unmapping, freeing of skb)
698 */
699static inline void
700spider_net_release_tx_descr(struct spider_net_card *card)
701{
702 struct spider_net_descr *descr = card->tx_chain.tail;
703 struct sk_buff *skb;
808999c9 704 unsigned int len;
bdd01503
JO
705
706 card->tx_chain.tail = card->tx_chain.tail->next;
707 descr->dmac_cmd_status |= SPIDER_NET_DESCR_NOT_IN_USE;
708
709 /* unmap the skb */
710 skb = descr->skb;
c3fee4c5
LV
711 if (!skb)
712 return;
808999c9
LV
713 len = skb->len < ETH_ZLEN ? ETH_ZLEN : skb->len;
714 pci_unmap_single(card->pdev, descr->buf_addr, len,
bdd01503
JO
715 PCI_DMA_TODEVICE);
716 dev_kfree_skb_any(skb);
717}
718
719/**
720 * spider_net_release_tx_chain - processes sent tx descriptors
721 * @card: adapter structure
722 * @brutal: if set, don't care about whether descriptor seems to be in use
723 *
724 * returns 0 if the tx ring is empty, otherwise 1.
725 *
726 * spider_net_release_tx_chain releases the tx descriptors that spider has
727 * finished with (if non-brutal) or simply release tx descriptors (if brutal).
728 * If some other context is calling this function, we return 1 so that we're
729 * scheduled again (if we were scheduled) and will not loose initiative.
730 */
731static int
732spider_net_release_tx_chain(struct spider_net_card *card, int brutal)
733{
734 struct spider_net_descr_chain *chain = &card->tx_chain;
735 int status;
736
737 spider_net_read_reg(card, SPIDER_NET_GDTDMACCNTR);
738
739 while (chain->tail != chain->head) {
740 status = spider_net_get_descr_status(chain->tail);
741 switch (status) {
742 case SPIDER_NET_DESCR_COMPLETE:
743 card->netdev_stats.tx_packets++;
744 card->netdev_stats.tx_bytes += chain->tail->skb->len;
745 break;
746
747 case SPIDER_NET_DESCR_CARDOWNED:
748 if (!brutal)
749 return 1;
750 /* fallthrough, if we release the descriptors
751 * brutally (then we don't care about
752 * SPIDER_NET_DESCR_CARDOWNED) */
753
754 case SPIDER_NET_DESCR_RESPONSE_ERROR:
755 case SPIDER_NET_DESCR_PROTECTION_ERROR:
756 case SPIDER_NET_DESCR_FORCE_END:
757 if (netif_msg_tx_err(card))
758 pr_err("%s: forcing end of tx descriptor "
759 "with status x%02x\n",
760 card->netdev->name, status);
761 card->netdev_stats.tx_errors++;
762 break;
763
764 default:
765 card->netdev_stats.tx_dropped++;
c3fee4c5
LV
766 if (!brutal)
767 return 1;
bdd01503
JO
768 }
769 spider_net_release_tx_descr(card);
770 }
aaec0fab
JO
771
772 return 0;
773}
774
775/**
776 * spider_net_kick_tx_dma - enables TX DMA processing
777 * @card: card structure
778 * @descr: descriptor address to enable TX processing at
779 *
780 * spider_net_kick_tx_dma writes the current tx chain head as start address
781 * of the tx descriptor chain and enables the transmission DMA engine
782 */
bdd01503
JO
783static inline void
784spider_net_kick_tx_dma(struct spider_net_card *card)
aaec0fab 785{
bdd01503 786 struct spider_net_descr *descr;
aaec0fab 787
bdd01503
JO
788 if (spider_net_read_reg(card, SPIDER_NET_GDTDMACCNTR) &
789 SPIDER_NET_TX_DMA_EN)
790 goto out;
aaec0fab 791
bdd01503
JO
792 descr = card->tx_chain.tail;
793 for (;;) {
794 if (spider_net_get_descr_status(descr) ==
795 SPIDER_NET_DESCR_CARDOWNED) {
796 spider_net_write_reg(card, SPIDER_NET_GDTDCHA,
797 descr->bus_addr);
798 spider_net_write_reg(card, SPIDER_NET_GDTDMACCNTR,
799 SPIDER_NET_DMA_TX_VALUE);
800 break;
801 }
802 if (descr == card->tx_chain.head)
803 break;
804 descr = descr->next;
805 }
806
807out:
808 mod_timer(&card->tx_timer, jiffies + SPIDER_NET_TX_TIMER);
aaec0fab
JO
809}
810
811/**
812 * spider_net_xmit - transmits a frame over the device
813 * @skb: packet to send out
814 * @netdev: interface device structure
815 *
bdd01503 816 * returns 0 on success, !0 on failure
aaec0fab
JO
817 */
818static int
819spider_net_xmit(struct sk_buff *skb, struct net_device *netdev)
820{
821 struct spider_net_card *card = netdev_priv(netdev);
bdd01503
JO
822 struct spider_net_descr_chain *chain = &card->tx_chain;
823 struct spider_net_descr *descr = chain->head;
824 unsigned long flags;
aaec0fab
JO
825 int result;
826
bdd01503
JO
827 spin_lock_irqsave(&chain->lock, flags);
828
11f1a52b 829 spider_net_release_tx_chain(card, 0);
aaec0fab 830
bdd01503
JO
831 if (chain->head->next == chain->tail->prev) {
832 card->netdev_stats.tx_dropped++;
833 result = NETDEV_TX_LOCKED;
834 goto out;
835 }
836
837 if (spider_net_get_descr_status(descr) != SPIDER_NET_DESCR_NOT_IN_USE) {
9b6b0b81 838 card->netdev_stats.tx_dropped++;
bdd01503
JO
839 result = NETDEV_TX_LOCKED;
840 goto out;
841 }
aaec0fab 842
bdd01503
JO
843 if (spider_net_prepare_tx_descr(card, skb) != 0) {
844 card->netdev_stats.tx_dropped++;
845 result = NETDEV_TX_BUSY;
846 goto out;
847 }
aaec0fab 848
bdd01503 849 result = NETDEV_TX_OK;
aaec0fab 850
bdd01503 851 spider_net_kick_tx_dma(card);
aaec0fab
JO
852 card->tx_chain.head = card->tx_chain.head->next;
853
bdd01503
JO
854out:
855 spin_unlock_irqrestore(&chain->lock, flags);
856 netif_wake_queue(netdev);
857 return result;
858}
11f1a52b 859
bdd01503
JO
860/**
861 * spider_net_cleanup_tx_ring - cleans up the TX ring
862 * @card: card structure
863 *
864 * spider_net_cleanup_tx_ring is called by the tx_timer (as we don't use
865 * interrupts to cleanup our TX ring) and returns sent packets to the stack
866 * by freeing them
867 */
868static void
869spider_net_cleanup_tx_ring(struct spider_net_card *card)
870{
871 unsigned long flags;
aaec0fab 872
bdd01503 873 spin_lock_irqsave(&card->tx_chain.lock, flags);
aaec0fab 874
bdd01503
JO
875 if ((spider_net_release_tx_chain(card, 0) != 0) &&
876 (card->netdev->flags & IFF_UP))
877 spider_net_kick_tx_dma(card);
878
879 spin_unlock_irqrestore(&card->tx_chain.lock, flags);
aaec0fab
JO
880}
881
882/**
883 * spider_net_do_ioctl - called for device ioctls
884 * @netdev: interface device structure
885 * @ifr: request parameter structure for ioctl
886 * @cmd: command code for ioctl
887 *
888 * returns 0 on success, <0 on failure. Currently, we have no special ioctls.
889 * -EOPNOTSUPP is returned, if an unknown ioctl was requested
890 */
891static int
892spider_net_do_ioctl(struct net_device *netdev, struct ifreq *ifr, int cmd)
893{
894 switch (cmd) {
895 default:
896 return -EOPNOTSUPP;
897 }
898}
899
900/**
901 * spider_net_pass_skb_up - takes an skb from a descriptor and passes it on
902 * @descr: descriptor to process
903 * @card: card structure
11f1a52b 904 * @napi: whether caller is in NAPI context
aaec0fab
JO
905 *
906 * returns 1 on success, 0 if no packet was passed to the stack
907 *
908 * iommu-unmaps the skb, fills out skb structure and passes the data to the
909 * stack. The descriptor state is not changed.
910 */
911static int
912spider_net_pass_skb_up(struct spider_net_descr *descr,
11f1a52b 913 struct spider_net_card *card, int napi)
aaec0fab
JO
914{
915 struct sk_buff *skb;
916 struct net_device *netdev;
917 u32 data_status, data_error;
918
919 data_status = descr->data_status;
920 data_error = descr->data_error;
921
922 netdev = card->netdev;
923
11f1a52b
AB
924 /* unmap descriptor */
925 pci_unmap_single(card->pdev, descr->buf_addr, SPIDER_NET_MAX_FRAME,
bdd01503 926 PCI_DMA_FROMDEVICE);
aaec0fab
JO
927
928 /* the cases we'll throw away the packet immediately */
11f1a52b
AB
929 if (data_error & SPIDER_NET_DESTROY_RX_FLAGS) {
930 if (netif_msg_rx_err(card))
931 pr_err("error in received descriptor found, "
932 "data_status=x%08x, data_error=x%08x\n",
933 data_status, data_error);
9b6b0b81 934 card->spider_stats.rx_desc_error++;
aaec0fab 935 return 0;
11f1a52b 936 }
aaec0fab 937
11f1a52b 938 skb = descr->skb;
aaec0fab
JO
939 skb->dev = netdev;
940 skb_put(skb, descr->valid_size);
941
942 /* the card seems to add 2 bytes of junk in front
943 * of the ethernet frame */
944#define SPIDER_MISALIGN 2
945 skb_pull(skb, SPIDER_MISALIGN);
946 skb->protocol = eth_type_trans(skb, netdev);
947
948 /* checksum offload */
949 if (card->options.rx_csum) {
11f1a52b
AB
950 if ( ( (data_status & SPIDER_NET_DATA_STATUS_CKSUM_MASK) ==
951 SPIDER_NET_DATA_STATUS_CKSUM_MASK) &&
952 !(data_error & SPIDER_NET_DATA_ERR_CKSUM_MASK))
aaec0fab
JO
953 skb->ip_summed = CHECKSUM_UNNECESSARY;
954 else
955 skb->ip_summed = CHECKSUM_NONE;
11f1a52b 956 } else
aaec0fab 957 skb->ip_summed = CHECKSUM_NONE;
aaec0fab
JO
958
959 if (data_status & SPIDER_NET_VLAN_PACKET) {
960 /* further enhancements: HW-accel VLAN
961 * vlan_hwaccel_receive_skb
962 */
963 }
964
965 /* pass skb up to stack */
11f1a52b
AB
966 if (napi)
967 netif_receive_skb(skb);
968 else
969 netif_rx_ni(skb);
aaec0fab
JO
970
971 /* update netdevice statistics */
972 card->netdev_stats.rx_packets++;
973 card->netdev_stats.rx_bytes += skb->len;
974
975 return 1;
976}
977
978/**
11f1a52b 979 * spider_net_decode_one_descr - processes an rx descriptor
aaec0fab 980 * @card: card structure
11f1a52b 981 * @napi: whether caller is in NAPI context
aaec0fab
JO
982 *
983 * returns 1 if a packet has been sent to the stack, otherwise 0
984 *
985 * processes an rx descriptor by iommu-unmapping the data buffer and passing
11f1a52b
AB
986 * the packet up to the stack. This function is called in softirq
987 * context, e.g. either bottom half from interrupt or NAPI polling context
aaec0fab
JO
988 */
989static int
11f1a52b 990spider_net_decode_one_descr(struct spider_net_card *card, int napi)
aaec0fab 991{
bdd01503
JO
992 struct spider_net_descr_chain *chain = &card->rx_chain;
993 struct spider_net_descr *descr = chain->tail;
994 int status;
aaec0fab
JO
995 int result;
996
aaec0fab
JO
997 status = spider_net_get_descr_status(descr);
998
999 if (status == SPIDER_NET_DESCR_CARDOWNED) {
1000 /* nothing in the descriptor yet */
11f1a52b
AB
1001 result=0;
1002 goto out;
aaec0fab
JO
1003 }
1004
1005 if (status == SPIDER_NET_DESCR_NOT_IN_USE) {
11f1a52b 1006 /* not initialized yet, the ring must be empty */
aaec0fab 1007 spider_net_refill_rx_chain(card);
11f1a52b
AB
1008 spider_net_enable_rxdmac(card);
1009 result=0;
1010 goto out;
aaec0fab
JO
1011 }
1012
11f1a52b 1013 /* descriptor definitively used -- move on tail */
aaec0fab
JO
1014 chain->tail = descr->next;
1015
1016 result = 0;
1017 if ( (status == SPIDER_NET_DESCR_RESPONSE_ERROR) ||
1018 (status == SPIDER_NET_DESCR_PROTECTION_ERROR) ||
1019 (status == SPIDER_NET_DESCR_FORCE_END) ) {
1020 if (netif_msg_rx_err(card))
1021 pr_err("%s: dropping RX descriptor with state %d\n",
1022 card->netdev->name, status);
1023 card->netdev_stats.rx_dropped++;
11f1a52b 1024 pci_unmap_single(card->pdev, descr->buf_addr,
bdd01503 1025 SPIDER_NET_MAX_FRAME, PCI_DMA_FROMDEVICE);
11f1a52b 1026 dev_kfree_skb_irq(descr->skb);
aaec0fab
JO
1027 goto refill;
1028 }
1029
1030 if ( (status != SPIDER_NET_DESCR_COMPLETE) &&
1031 (status != SPIDER_NET_DESCR_FRAME_END) ) {
9b6b0b81 1032 if (netif_msg_rx_err(card)) {
aaec0fab
JO
1033 pr_err("%s: RX descriptor with state %d\n",
1034 card->netdev->name, status);
9b6b0b81
JL
1035 card->spider_stats.rx_desc_unk_state++;
1036 }
aaec0fab
JO
1037 goto refill;
1038 }
1039
1040 /* ok, we've got a packet in descr */
11f1a52b 1041 result = spider_net_pass_skb_up(descr, card, napi);
aaec0fab 1042refill:
bdd01503 1043 descr->dmac_cmd_status = SPIDER_NET_DESCR_NOT_IN_USE;
aaec0fab 1044 /* change the descriptor state: */
11f1a52b
AB
1045 if (!napi)
1046 spider_net_refill_rx_chain(card);
1047out:
aaec0fab
JO
1048 return result;
1049}
1050
1051/**
1052 * spider_net_poll - NAPI poll function called by the stack to return packets
1053 * @netdev: interface device structure
1054 * @budget: number of packets we can pass to the stack at most
1055 *
1056 * returns 0 if no more packets available to the driver/stack. Returns 1,
1057 * if the quota is exceeded, but the driver has still packets.
1058 *
1059 * spider_net_poll returns all packets from the rx descriptors to the stack
1060 * (using netif_receive_skb). If all/enough packets are up, the driver
1061 * reenables interrupts and returns 0. If not, 1 is returned.
1062 */
1063static int
1064spider_net_poll(struct net_device *netdev, int *budget)
1065{
1066 struct spider_net_card *card = netdev_priv(netdev);
1067 int packets_to_do, packets_done = 0;
1068 int no_more_packets = 0;
1069
1070 packets_to_do = min(*budget, netdev->quota);
1071
1072 while (packets_to_do) {
11f1a52b 1073 if (spider_net_decode_one_descr(card, 1)) {
aaec0fab
JO
1074 packets_done++;
1075 packets_to_do--;
1076 } else {
1077 /* no more packets for the stack */
1078 no_more_packets = 1;
1079 break;
1080 }
1081 }
1082
1083 netdev->quota -= packets_done;
1084 *budget -= packets_done;
11f1a52b 1085 spider_net_refill_rx_chain(card);
aaec0fab
JO
1086
1087 /* if all packets are in the stack, enable interrupts and return 0 */
1088 /* if not, return 1 */
1089 if (no_more_packets) {
1090 netif_rx_complete(netdev);
1091 spider_net_rx_irq_on(card);
1092 return 0;
1093 }
1094
1095 return 1;
1096}
1097
1098/**
1099 * spider_net_vlan_rx_reg - initializes VLAN structures in the driver and card
1100 * @netdev: interface device structure
1101 * @grp: vlan_group structure that is registered (NULL on destroying interface)
1102 */
1103static void
1104spider_net_vlan_rx_reg(struct net_device *netdev, struct vlan_group *grp)
1105{
1106 /* further enhancement... yet to do */
1107 return;
1108}
1109
1110/**
1111 * spider_net_vlan_rx_add - adds VLAN id to the card filter
1112 * @netdev: interface device structure
1113 * @vid: VLAN id to add
1114 */
1115static void
1116spider_net_vlan_rx_add(struct net_device *netdev, uint16_t vid)
1117{
1118 /* further enhancement... yet to do */
1119 /* add vid to card's VLAN filter table */
1120 return;
1121}
1122
1123/**
1124 * spider_net_vlan_rx_kill - removes VLAN id to the card filter
1125 * @netdev: interface device structure
1126 * @vid: VLAN id to remove
1127 */
1128static void
1129spider_net_vlan_rx_kill(struct net_device *netdev, uint16_t vid)
1130{
1131 /* further enhancement... yet to do */
1132 /* remove vid from card's VLAN filter table */
1133}
1134
1135/**
1136 * spider_net_get_stats - get interface statistics
1137 * @netdev: interface device structure
1138 *
1139 * returns the interface statistics residing in the spider_net_card struct
1140 */
1141static struct net_device_stats *
1142spider_net_get_stats(struct net_device *netdev)
1143{
1144 struct spider_net_card *card = netdev_priv(netdev);
1145 struct net_device_stats *stats = &card->netdev_stats;
1146 return stats;
1147}
1148
1149/**
1150 * spider_net_change_mtu - changes the MTU of an interface
1151 * @netdev: interface device structure
1152 * @new_mtu: new MTU value
1153 *
1154 * returns 0 on success, <0 on failure
1155 */
1156static int
1157spider_net_change_mtu(struct net_device *netdev, int new_mtu)
1158{
1159 /* no need to re-alloc skbs or so -- the max mtu is about 2.3k
1160 * and mtu is outbound only anyway */
1161 if ( (new_mtu < SPIDER_NET_MIN_MTU ) ||
1162 (new_mtu > SPIDER_NET_MAX_MTU) )
1163 return -EINVAL;
1164 netdev->mtu = new_mtu;
1165 return 0;
1166}
1167
1168/**
1169 * spider_net_set_mac - sets the MAC of an interface
1170 * @netdev: interface device structure
1171 * @ptr: pointer to new MAC address
1172 *
1173 * Returns 0 on success, <0 on failure. Currently, we don't support this
1174 * and will always return EOPNOTSUPP.
1175 */
1176static int
1177spider_net_set_mac(struct net_device *netdev, void *p)
1178{
1179 struct spider_net_card *card = netdev_priv(netdev);
054034db 1180 u32 macl, macu, regvalue;
aaec0fab
JO
1181 struct sockaddr *addr = p;
1182
aaec0fab
JO
1183 if (!is_valid_ether_addr(addr->sa_data))
1184 return -EADDRNOTAVAIL;
1185
054034db
JO
1186 /* switch off GMACTPE and GMACRPE */
1187 regvalue = spider_net_read_reg(card, SPIDER_NET_GMACOPEMD);
1188 regvalue &= ~((1 << 5) | (1 << 6));
1189 spider_net_write_reg(card, SPIDER_NET_GMACOPEMD, regvalue);
1190
1191 /* write mac */
aaec0fab
JO
1192 macu = (addr->sa_data[0]<<24) + (addr->sa_data[1]<<16) +
1193 (addr->sa_data[2]<<8) + (addr->sa_data[3]);
1194 macl = (addr->sa_data[4]<<8) + (addr->sa_data[5]);
1195 spider_net_write_reg(card, SPIDER_NET_GMACUNIMACU, macu);
1196 spider_net_write_reg(card, SPIDER_NET_GMACUNIMACL, macl);
1197
054034db
JO
1198 /* switch GMACTPE and GMACRPE back on */
1199 regvalue = spider_net_read_reg(card, SPIDER_NET_GMACOPEMD);
1200 regvalue |= ((1 << 5) | (1 << 6));
1201 spider_net_write_reg(card, SPIDER_NET_GMACOPEMD, regvalue);
1202
aaec0fab
JO
1203 spider_net_set_promisc(card);
1204
1205 /* look up, whether we have been successful */
1206 if (spider_net_get_mac_address(netdev))
1207 return -EADDRNOTAVAIL;
1208 if (memcmp(netdev->dev_addr,addr->sa_data,netdev->addr_len))
1209 return -EADDRNOTAVAIL;
1210
1211 return 0;
1212}
1213
11f1a52b
AB
1214/**
1215 * spider_net_handle_rxram_full - cleans up RX ring upon RX RAM full interrupt
1216 * @card: card structure
1217 *
1218 * spider_net_handle_rxram_full empties the RX ring so that spider can put
1219 * more packets in it and empty its RX RAM. This is called in bottom half
1220 * context
1221 */
1222static void
1223spider_net_handle_rxram_full(struct spider_net_card *card)
1224{
1225 while (spider_net_decode_one_descr(card, 0))
1226 ;
1227 spider_net_enable_rxchtails(card);
1228 spider_net_enable_rxdmac(card);
1229 netif_rx_schedule(card->netdev);
1230}
1231
aaec0fab
JO
1232/**
1233 * spider_net_handle_error_irq - handles errors raised by an interrupt
1234 * @card: card structure
1235 * @status_reg: interrupt status register 0 (GHIINT0STS)
1236 *
1237 * spider_net_handle_error_irq treats or ignores all error conditions
1238 * found when an interrupt is presented
1239 */
1240static void
1241spider_net_handle_error_irq(struct spider_net_card *card, u32 status_reg)
1242{
1243 u32 error_reg1, error_reg2;
1244 u32 i;
1245 int show_error = 1;
1246
1247 error_reg1 = spider_net_read_reg(card, SPIDER_NET_GHIINT1STS);
1248 error_reg2 = spider_net_read_reg(card, SPIDER_NET_GHIINT2STS);
1249
1250 /* check GHIINT0STS ************************************/
1251 if (status_reg)
1252 for (i = 0; i < 32; i++)
1253 if (status_reg & (1<<i))
1254 switch (i)
1255 {
1256 /* let error_reg1 and error_reg2 evaluation decide, what to do
1257 case SPIDER_NET_PHYINT:
1258 case SPIDER_NET_GMAC2INT:
1259 case SPIDER_NET_GMAC1INT:
1260 case SPIDER_NET_GIPSINT:
1261 case SPIDER_NET_GFIFOINT:
1262 case SPIDER_NET_DMACINT:
1263 case SPIDER_NET_GSYSINT:
1264 break; */
1265
1266 case SPIDER_NET_GPWOPCMPINT:
1267 /* PHY write operation completed */
1268 show_error = 0;
1269 break;
1270 case SPIDER_NET_GPROPCMPINT:
1271 /* PHY read operation completed */
1272 /* we don't use semaphores, as we poll for the completion
1273 * of the read operation in spider_net_read_phy. Should take
1274 * about 50 us */
1275 show_error = 0;
1276 break;
1277 case SPIDER_NET_GPWFFINT:
1278 /* PHY command queue full */
1279 if (netif_msg_intr(card))
1280 pr_err("PHY write queue full\n");
1281 show_error = 0;
1282 break;
1283
1284 /* case SPIDER_NET_GRMDADRINT: not used. print a message */
1285 /* case SPIDER_NET_GRMARPINT: not used. print a message */
1286 /* case SPIDER_NET_GRMMPINT: not used. print a message */
1287
1288 case SPIDER_NET_GDTDEN0INT:
1289 /* someone has set TX_DMA_EN to 0 */
1290 show_error = 0;
1291 break;
1292
1293 case SPIDER_NET_GDDDEN0INT: /* fallthrough */
1294 case SPIDER_NET_GDCDEN0INT: /* fallthrough */
1295 case SPIDER_NET_GDBDEN0INT: /* fallthrough */
1296 case SPIDER_NET_GDADEN0INT:
1297 /* someone has set RX_DMA_EN to 0 */
1298 show_error = 0;
1299 break;
1300
1301 /* RX interrupts */
1302 case SPIDER_NET_GDDFDCINT:
1303 case SPIDER_NET_GDCFDCINT:
1304 case SPIDER_NET_GDBFDCINT:
1305 case SPIDER_NET_GDAFDCINT:
1306 /* case SPIDER_NET_GDNMINT: not used. print a message */
1307 /* case SPIDER_NET_GCNMINT: not used. print a message */
1308 /* case SPIDER_NET_GBNMINT: not used. print a message */
1309 /* case SPIDER_NET_GANMINT: not used. print a message */
1310 /* case SPIDER_NET_GRFNMINT: not used. print a message */
1311 show_error = 0;
1312 break;
1313
1314 /* TX interrupts */
1315 case SPIDER_NET_GDTFDCINT:
1316 show_error = 0;
1317 break;
1318 case SPIDER_NET_GTTEDINT:
1319 show_error = 0;
1320 break;
1321 case SPIDER_NET_GDTDCEINT:
1322 /* chain end. If a descriptor should be sent, kick off
1323 * tx dma
1324 if (card->tx_chain.tail == card->tx_chain.head)
1325 spider_net_kick_tx_dma(card);
1326 show_error = 0; */
1327 break;
1328
1329 /* case SPIDER_NET_G1TMCNTINT: not used. print a message */
1330 /* case SPIDER_NET_GFREECNTINT: not used. print a message */
1331 }
1332
1333 /* check GHIINT1STS ************************************/
1334 if (error_reg1)
1335 for (i = 0; i < 32; i++)
1336 if (error_reg1 & (1<<i))
1337 switch (i)
1338 {
1339 case SPIDER_NET_GTMFLLINT:
11f1a52b 1340 if (netif_msg_intr(card) && net_ratelimit())
aaec0fab
JO
1341 pr_err("Spider TX RAM full\n");
1342 show_error = 0;
1343 break;
11f1a52b
AB
1344 case SPIDER_NET_GRFDFLLINT: /* fallthrough */
1345 case SPIDER_NET_GRFCFLLINT: /* fallthrough */
1346 case SPIDER_NET_GRFBFLLINT: /* fallthrough */
1347 case SPIDER_NET_GRFAFLLINT: /* fallthrough */
aaec0fab 1348 case SPIDER_NET_GRMFLLINT:
11f1a52b 1349 if (netif_msg_intr(card) && net_ratelimit())
4e5077b6 1350 pr_debug("Spider RX RAM full, incoming packets "
11f1a52b
AB
1351 "might be discarded!\n");
1352 spider_net_rx_irq_off(card);
1353 tasklet_schedule(&card->rxram_full_tl);
1354 show_error = 0;
aaec0fab
JO
1355 break;
1356
1357 /* case SPIDER_NET_GTMSHTINT: problem, print a message */
1358 case SPIDER_NET_GDTINVDINT:
1359 /* allrighty. tx from previous descr ok */
1360 show_error = 0;
1361 break;
aaec0fab
JO
1362
1363 /* chain end */
1364 case SPIDER_NET_GDDDCEINT: /* fallthrough */
1365 case SPIDER_NET_GDCDCEINT: /* fallthrough */
1366 case SPIDER_NET_GDBDCEINT: /* fallthrough */
1367 case SPIDER_NET_GDADCEINT:
1368 if (netif_msg_intr(card))
1369 pr_err("got descriptor chain end interrupt, "
1370 "restarting DMAC %c.\n",
1371 'D'+i-SPIDER_NET_GDDDCEINT);
1372 spider_net_refill_rx_chain(card);
11f1a52b 1373 spider_net_enable_rxdmac(card);
aaec0fab
JO
1374 show_error = 0;
1375 break;
1376
1377 /* invalid descriptor */
1378 case SPIDER_NET_GDDINVDINT: /* fallthrough */
1379 case SPIDER_NET_GDCINVDINT: /* fallthrough */
1380 case SPIDER_NET_GDBINVDINT: /* fallthrough */
1381 case SPIDER_NET_GDAINVDINT:
1382 /* could happen when rx chain is full */
1383 spider_net_refill_rx_chain(card);
11f1a52b 1384 spider_net_enable_rxdmac(card);
aaec0fab
JO
1385 show_error = 0;
1386 break;
1387
1388 /* case SPIDER_NET_GDTRSERINT: problem, print a message */
1389 /* case SPIDER_NET_GDDRSERINT: problem, print a message */
1390 /* case SPIDER_NET_GDCRSERINT: problem, print a message */
1391 /* case SPIDER_NET_GDBRSERINT: problem, print a message */
1392 /* case SPIDER_NET_GDARSERINT: problem, print a message */
1393 /* case SPIDER_NET_GDSERINT: problem, print a message */
1394 /* case SPIDER_NET_GDTPTERINT: problem, print a message */
1395 /* case SPIDER_NET_GDDPTERINT: problem, print a message */
1396 /* case SPIDER_NET_GDCPTERINT: problem, print a message */
1397 /* case SPIDER_NET_GDBPTERINT: problem, print a message */
1398 /* case SPIDER_NET_GDAPTERINT: problem, print a message */
1399 default:
1400 show_error = 1;
1401 break;
1402 }
1403
1404 /* check GHIINT2STS ************************************/
1405 if (error_reg2)
1406 for (i = 0; i < 32; i++)
1407 if (error_reg2 & (1<<i))
1408 switch (i)
1409 {
1410 /* there is nothing we can (want to) do at this time. Log a
1411 * message, we can switch on and off the specific values later on
1412 case SPIDER_NET_GPROPERINT:
1413 case SPIDER_NET_GMCTCRSNGINT:
1414 case SPIDER_NET_GMCTLCOLINT:
1415 case SPIDER_NET_GMCTTMOTINT:
1416 case SPIDER_NET_GMCRCAERINT:
1417 case SPIDER_NET_GMCRCALERINT:
1418 case SPIDER_NET_GMCRALNERINT:
1419 case SPIDER_NET_GMCROVRINT:
1420 case SPIDER_NET_GMCRRNTINT:
1421 case SPIDER_NET_GMCRRXERINT:
1422 case SPIDER_NET_GTITCSERINT:
1423 case SPIDER_NET_GTIFMTERINT:
1424 case SPIDER_NET_GTIPKTRVKINT:
1425 case SPIDER_NET_GTISPINGINT:
1426 case SPIDER_NET_GTISADNGINT:
1427 case SPIDER_NET_GTISPDNGINT:
1428 case SPIDER_NET_GRIFMTERINT:
1429 case SPIDER_NET_GRIPKTRVKINT:
1430 case SPIDER_NET_GRISPINGINT:
1431 case SPIDER_NET_GRISADNGINT:
1432 case SPIDER_NET_GRISPDNGINT:
1433 break;
1434 */
1435 default:
1436 break;
1437 }
1438
1439 if ((show_error) && (netif_msg_intr(card)))
1440 pr_err("Got error interrupt, GHIINT0STS = 0x%08x, "
1441 "GHIINT1STS = 0x%08x, GHIINT2STS = 0x%08x\n",
1442 status_reg, error_reg1, error_reg2);
1443
1444 /* clear interrupt sources */
1445 spider_net_write_reg(card, SPIDER_NET_GHIINT1STS, error_reg1);
1446 spider_net_write_reg(card, SPIDER_NET_GHIINT2STS, error_reg2);
1447}
1448
1449/**
1450 * spider_net_interrupt - interrupt handler for spider_net
1451 * @irq: interupt number
1452 * @ptr: pointer to net_device
1453 * @regs: PU registers
1454 *
1455 * returns IRQ_HANDLED, if interrupt was for driver, or IRQ_NONE, if no
1456 * interrupt found raised by card.
1457 *
1458 * This is the interrupt handler, that turns off
1459 * interrupts for this device and makes the stack poll the driver
1460 */
1461static irqreturn_t
7d12e780 1462spider_net_interrupt(int irq, void *ptr)
aaec0fab
JO
1463{
1464 struct net_device *netdev = ptr;
1465 struct spider_net_card *card = netdev_priv(netdev);
1466 u32 status_reg;
1467
1468 status_reg = spider_net_read_reg(card, SPIDER_NET_GHIINT0STS);
1469
1470 if (!status_reg)
1471 return IRQ_NONE;
1472
aaec0fab
JO
1473 if (status_reg & SPIDER_NET_RXINT ) {
1474 spider_net_rx_irq_off(card);
1475 netif_rx_schedule(netdev);
1476 }
1477
11f1a52b
AB
1478 if (status_reg & SPIDER_NET_ERRINT )
1479 spider_net_handle_error_irq(card, status_reg);
aaec0fab
JO
1480
1481 /* clear interrupt sources */
1482 spider_net_write_reg(card, SPIDER_NET_GHIINT0STS, status_reg);
1483
1484 return IRQ_HANDLED;
1485}
1486
1487#ifdef CONFIG_NET_POLL_CONTROLLER
1488/**
1489 * spider_net_poll_controller - artificial interrupt for netconsole etc.
1490 * @netdev: interface device structure
1491 *
1492 * see Documentation/networking/netconsole.txt
1493 */
1494static void
1495spider_net_poll_controller(struct net_device *netdev)
1496{
1497 disable_irq(netdev->irq);
7d12e780 1498 spider_net_interrupt(netdev->irq, netdev);
aaec0fab
JO
1499 enable_irq(netdev->irq);
1500}
1501#endif /* CONFIG_NET_POLL_CONTROLLER */
1502
1503/**
1504 * spider_net_init_card - initializes the card
1505 * @card: card structure
1506 *
1507 * spider_net_init_card initializes the card so that other registers can
1508 * be used
1509 */
1510static void
1511spider_net_init_card(struct spider_net_card *card)
1512{
1513 spider_net_write_reg(card, SPIDER_NET_CKRCTRL,
1514 SPIDER_NET_CKRCTRL_STOP_VALUE);
1515
1516 spider_net_write_reg(card, SPIDER_NET_CKRCTRL,
1517 SPIDER_NET_CKRCTRL_RUN_VALUE);
1518}
1519
1520/**
1521 * spider_net_enable_card - enables the card by setting all kinds of regs
1522 * @card: card structure
1523 *
1524 * spider_net_enable_card sets a lot of SMMIO registers to enable the device
1525 */
1526static void
1527spider_net_enable_card(struct spider_net_card *card)
1528{
1529 int i;
1530 /* the following array consists of (register),(value) pairs
1531 * that are set in this function. A register of 0 ends the list */
1532 u32 regs[][2] = {
1533 { SPIDER_NET_GRESUMINTNUM, 0 },
1534 { SPIDER_NET_GREINTNUM, 0 },
1535
1536 /* set interrupt frame number registers */
1537 /* clear the single DMA engine registers first */
1538 { SPIDER_NET_GFAFRMNUM, SPIDER_NET_GFXFRAMES_VALUE },
1539 { SPIDER_NET_GFBFRMNUM, SPIDER_NET_GFXFRAMES_VALUE },
1540 { SPIDER_NET_GFCFRMNUM, SPIDER_NET_GFXFRAMES_VALUE },
1541 { SPIDER_NET_GFDFRMNUM, SPIDER_NET_GFXFRAMES_VALUE },
1542 /* then set, what we really need */
1543 { SPIDER_NET_GFFRMNUM, SPIDER_NET_FRAMENUM_VALUE },
1544
1545 /* timer counter registers and stuff */
1546 { SPIDER_NET_GFREECNNUM, 0 },
1547 { SPIDER_NET_GONETIMENUM, 0 },
1548 { SPIDER_NET_GTOUTFRMNUM, 0 },
1549
1550 /* RX mode setting */
1551 { SPIDER_NET_GRXMDSET, SPIDER_NET_RXMODE_VALUE },
1552 /* TX mode setting */
1553 { SPIDER_NET_GTXMDSET, SPIDER_NET_TXMODE_VALUE },
1554 /* IPSEC mode setting */
1555 { SPIDER_NET_GIPSECINIT, SPIDER_NET_IPSECINIT_VALUE },
1556
1557 { SPIDER_NET_GFTRESTRT, SPIDER_NET_RESTART_VALUE },
1558
1559 { SPIDER_NET_GMRWOLCTRL, 0 },
b636d17a
JO
1560 { SPIDER_NET_GTESTMD, 0x10000000 },
1561 { SPIDER_NET_GTTQMSK, 0x00400040 },
aaec0fab
JO
1562
1563 { SPIDER_NET_GMACINTEN, 0 },
1564
1565 /* flow control stuff */
1566 { SPIDER_NET_GMACAPAUSE, SPIDER_NET_MACAPAUSE_VALUE },
1567 { SPIDER_NET_GMACTXPAUSE, SPIDER_NET_TXPAUSE_VALUE },
1568
1569 { SPIDER_NET_GMACBSTLMT, SPIDER_NET_BURSTLMT_VALUE },
1570 { 0, 0}
1571 };
1572
1573 i = 0;
1574 while (regs[i][0]) {
1575 spider_net_write_reg(card, regs[i][0], regs[i][1]);
1576 i++;
1577 }
1578
1579 /* clear unicast filter table entries 1 to 14 */
1580 for (i = 1; i <= 14; i++) {
1581 spider_net_write_reg(card,
1582 SPIDER_NET_GMRUAFILnR + i * 8,
1583 0x00080000);
1584 spider_net_write_reg(card,
1585 SPIDER_NET_GMRUAFILnR + i * 8 + 4,
1586 0x00000000);
1587 }
1588
1589 spider_net_write_reg(card, SPIDER_NET_GMRUA0FIL15R, 0x08080000);
1590
1591 spider_net_write_reg(card, SPIDER_NET_ECMODE, SPIDER_NET_ECMODE_VALUE);
1592
1593 /* set chain tail adress for RX chains and
1594 * enable DMA */
1595 spider_net_enable_rxchtails(card);
1596 spider_net_enable_rxdmac(card);
1597
1598 spider_net_write_reg(card, SPIDER_NET_GRXDMAEN, SPIDER_NET_WOL_VALUE);
1599
aaec0fab
JO
1600 spider_net_write_reg(card, SPIDER_NET_GMACLENLMT,
1601 SPIDER_NET_LENLMT_VALUE);
1602 spider_net_write_reg(card, SPIDER_NET_GMACMODE,
1603 SPIDER_NET_MACMODE_VALUE);
1604 spider_net_write_reg(card, SPIDER_NET_GMACOPEMD,
1605 SPIDER_NET_OPMODE_VALUE);
1606
1607 /* set interrupt mask registers */
1608 spider_net_write_reg(card, SPIDER_NET_GHIINT0MSK,
1609 SPIDER_NET_INT0_MASK_VALUE);
1610 spider_net_write_reg(card, SPIDER_NET_GHIINT1MSK,
1611 SPIDER_NET_INT1_MASK_VALUE);
1612 spider_net_write_reg(card, SPIDER_NET_GHIINT2MSK,
1613 SPIDER_NET_INT2_MASK_VALUE);
bdd01503
JO
1614
1615 spider_net_write_reg(card, SPIDER_NET_GDTDMACCNTR,
1616 SPIDER_NET_GDTDCEIDIS);
aaec0fab
JO
1617}
1618
1619/**
1620 * spider_net_open - called upon ifonfig up
1621 * @netdev: interface device structure
1622 *
1623 * returns 0 on success, <0 on failure
1624 *
1625 * spider_net_open allocates all the descriptors and memory needed for
1626 * operation, sets up multicast list and enables interrupts
1627 */
1628int
1629spider_net_open(struct net_device *netdev)
1630{
1631 struct spider_net_card *card = netdev_priv(netdev);
1632 int result;
1633
1634 result = -ENOMEM;
b68a60e5
JL
1635 if (spider_net_init_chain(card, &card->tx_chain, card->descr,
1636 PCI_DMA_TODEVICE, card->tx_desc))
aaec0fab
JO
1637 goto alloc_tx_failed;
1638 if (spider_net_init_chain(card, &card->rx_chain,
b68a60e5
JL
1639 card->descr + card->rx_desc,
1640 PCI_DMA_FROMDEVICE, card->rx_desc))
aaec0fab
JO
1641 goto alloc_rx_failed;
1642
1643 /* allocate rx skbs */
1644 if (spider_net_alloc_rx_skbs(card))
1645 goto alloc_skbs_failed;
1646
1647 spider_net_set_multi(netdev);
1648
1649 /* further enhancement: setup hw vlan, if needed */
1650
1651 result = -EBUSY;
1652 if (request_irq(netdev->irq, spider_net_interrupt,
1fb9df5d 1653 IRQF_SHARED, netdev->name, netdev))
aaec0fab
JO
1654 goto register_int_failed;
1655
1656 spider_net_enable_card(card);
1657
543cec51
JO
1658 netif_start_queue(netdev);
1659 netif_carrier_on(netdev);
1660 netif_poll_enable(netdev);
1661
aaec0fab
JO
1662 return 0;
1663
1664register_int_failed:
1665 spider_net_free_rx_chain_contents(card);
1666alloc_skbs_failed:
1667 spider_net_free_chain(card, &card->rx_chain);
1668alloc_rx_failed:
1669 spider_net_free_chain(card, &card->tx_chain);
1670alloc_tx_failed:
1671 return result;
1672}
1673
1674/**
1675 * spider_net_setup_phy - setup PHY
1676 * @card: card structure
1677 *
1678 * returns 0 on success, <0 on failure
1679 *
1680 * spider_net_setup_phy is used as part of spider_net_probe. Sets
1681 * the PHY to 1000 Mbps
1682 **/
1683static int
1684spider_net_setup_phy(struct spider_net_card *card)
1685{
1686 struct mii_phy *phy = &card->phy;
1687
1688 spider_net_write_reg(card, SPIDER_NET_GDTDMASEL,
1689 SPIDER_NET_DMASEL_VALUE);
1690 spider_net_write_reg(card, SPIDER_NET_GPCCTRL,
1691 SPIDER_NET_PHY_CTRL_VALUE);
1692 phy->mii_id = 1;
1693 phy->dev = card->netdev;
1694 phy->mdio_read = spider_net_read_phy;
1695 phy->mdio_write = spider_net_write_phy;
1696
1697 mii_phy_probe(phy, phy->mii_id);
1698
1699 if (phy->def->ops->setup_forced)
1700 phy->def->ops->setup_forced(phy, SPEED_1000, DUPLEX_FULL);
1701
8ec93459 1702 phy->def->ops->enable_fiber(phy);
53abbf7e 1703
aaec0fab
JO
1704 phy->def->ops->read_link(phy);
1705 pr_info("Found %s with %i Mbps, %s-duplex.\n", phy->def->name,
1706 phy->speed, phy->duplex==1 ? "Full" : "Half");
1707
1708 return 0;
1709}
1710
1711/**
1712 * spider_net_download_firmware - loads firmware into the adapter
1713 * @card: card structure
11f1a52b 1714 * @firmware_ptr: pointer to firmware data
aaec0fab 1715 *
11f1a52b
AB
1716 * spider_net_download_firmware loads the firmware data into the
1717 * adapter. It assumes the length etc. to be allright.
aaec0fab 1718 */
0d3ea166 1719static int
aaec0fab 1720spider_net_download_firmware(struct spider_net_card *card,
1a2509c9 1721 const void *firmware_ptr)
aaec0fab
JO
1722{
1723 int sequencer, i;
1a2509c9 1724 const u32 *fw_ptr = firmware_ptr;
aaec0fab
JO
1725
1726 /* stop sequencers */
1727 spider_net_write_reg(card, SPIDER_NET_GSINIT,
1728 SPIDER_NET_STOP_SEQ_VALUE);
1729
11f1a52b
AB
1730 for (sequencer = 0; sequencer < SPIDER_NET_FIRMWARE_SEQS;
1731 sequencer++) {
aaec0fab
JO
1732 spider_net_write_reg(card,
1733 SPIDER_NET_GSnPRGADR + sequencer * 8, 0);
11f1a52b 1734 for (i = 0; i < SPIDER_NET_FIRMWARE_SEQWORDS; i++) {
aaec0fab
JO
1735 spider_net_write_reg(card, SPIDER_NET_GSnPRGDAT +
1736 sequencer * 8, *fw_ptr);
1737 fw_ptr++;
1738 }
1739 }
1740
0d3ea166
AB
1741 if (spider_net_read_reg(card, SPIDER_NET_GSINIT))
1742 return -EIO;
1743
aaec0fab
JO
1744 spider_net_write_reg(card, SPIDER_NET_GSINIT,
1745 SPIDER_NET_RUN_SEQ_VALUE);
0d3ea166
AB
1746
1747 return 0;
aaec0fab
JO
1748}
1749
1750/**
1751 * spider_net_init_firmware - reads in firmware parts
1752 * @card: card structure
1753 *
1754 * Returns 0 on success, <0 on failure
1755 *
1756 * spider_net_init_firmware opens the sequencer firmware and does some basic
1757 * checks. This function opens and releases the firmware structure. A call
1758 * to download the firmware is performed before the release.
1759 *
1760 * Firmware format
1761 * ===============
1762 * spider_fw.bin is expected to be a file containing 6*1024*4 bytes, 4k being
1763 * the program for each sequencer. Use the command
1764 * tail -q -n +2 Seq_code1_0x088.txt Seq_code2_0x090.txt \
1765 * Seq_code3_0x098.txt Seq_code4_0x0A0.txt Seq_code5_0x0A8.txt \
1766 * Seq_code6_0x0B0.txt | xxd -r -p -c4 > spider_fw.bin
1767 *
1768 * to generate spider_fw.bin, if you have sequencer programs with something
1769 * like the following contents for each sequencer:
1770 * <ONE LINE COMMENT>
1771 * <FIRST 4-BYTES-WORD FOR SEQUENCER>
1772 * <SECOND 4-BYTES-WORD FOR SEQUENCER>
1773 * ...
1774 * <1024th 4-BYTES-WORD FOR SEQUENCER>
1775 */
1776static int
1777spider_net_init_firmware(struct spider_net_card *card)
1778{
11f1a52b 1779 struct firmware *firmware = NULL;
030d6753 1780 struct device_node *dn;
1a2509c9 1781 const u8 *fw_prop = NULL;
11f1a52b
AB
1782 int err = -ENOENT;
1783 int fw_size;
aaec0fab 1784
030d6753 1785 if (request_firmware((const struct firmware **)&firmware,
11f1a52b
AB
1786 SPIDER_NET_FIRMWARE_NAME, &card->pdev->dev) == 0) {
1787 if ( (firmware->size != SPIDER_NET_FIRMWARE_LEN) &&
1788 netif_msg_probe(card) ) {
1789 pr_err("Incorrect size of spidernet firmware in " \
1790 "filesystem. Looking in host firmware...\n");
1791 goto try_host_fw;
1792 }
1793 err = spider_net_download_firmware(card, firmware->data);
030d6753 1794
11f1a52b
AB
1795 release_firmware(firmware);
1796 if (err)
1797 goto try_host_fw;
030d6753 1798
11f1a52b 1799 goto done;
aaec0fab
JO
1800 }
1801
11f1a52b
AB
1802try_host_fw:
1803 dn = pci_device_to_OF_node(card->pdev);
1804 if (!dn)
1805 goto out_err;
1806
1a2509c9 1807 fw_prop = get_property(dn, "firmware", &fw_size);
11f1a52b
AB
1808 if (!fw_prop)
1809 goto out_err;
1810
1811 if ( (fw_size != SPIDER_NET_FIRMWARE_LEN) &&
1812 netif_msg_probe(card) ) {
1813 pr_err("Incorrect size of spidernet firmware in " \
1814 "host firmware\n");
1815 goto done;
aaec0fab
JO
1816 }
1817
11f1a52b 1818 err = spider_net_download_firmware(card, fw_prop);
aaec0fab 1819
11f1a52b
AB
1820done:
1821 return err;
1822out_err:
1823 if (netif_msg_probe(card))
1824 pr_err("Couldn't find spidernet firmware in filesystem " \
1825 "or host firmware\n");
aaec0fab
JO
1826 return err;
1827}
1828
1829/**
1830 * spider_net_workaround_rxramfull - work around firmware bug
1831 * @card: card structure
1832 *
1833 * no return value
1834 **/
1835static void
1836spider_net_workaround_rxramfull(struct spider_net_card *card)
1837{
1838 int i, sequencer = 0;
1839
1840 /* cancel reset */
1841 spider_net_write_reg(card, SPIDER_NET_CKRCTRL,
1842 SPIDER_NET_CKRCTRL_RUN_VALUE);
1843
1844 /* empty sequencer data */
11f1a52b
AB
1845 for (sequencer = 0; sequencer < SPIDER_NET_FIRMWARE_SEQS;
1846 sequencer++) {
ee962a5c 1847 spider_net_write_reg(card, SPIDER_NET_GSnPRGADR +
aaec0fab 1848 sequencer * 8, 0x0);
11f1a52b 1849 for (i = 0; i < SPIDER_NET_FIRMWARE_SEQWORDS; i++) {
aaec0fab
JO
1850 spider_net_write_reg(card, SPIDER_NET_GSnPRGDAT +
1851 sequencer * 8, 0x0);
1852 }
1853 }
1854
1855 /* set sequencer operation */
1856 spider_net_write_reg(card, SPIDER_NET_GSINIT, 0x000000fe);
1857
1858 /* reset */
1859 spider_net_write_reg(card, SPIDER_NET_CKRCTRL,
1860 SPIDER_NET_CKRCTRL_STOP_VALUE);
1861}
1862
bdd01503
JO
1863/**
1864 * spider_net_stop - called upon ifconfig down
1865 * @netdev: interface device structure
1866 *
1867 * always returns 0
1868 */
1869int
1870spider_net_stop(struct net_device *netdev)
1871{
1872 struct spider_net_card *card = netdev_priv(netdev);
1873
1874 tasklet_kill(&card->rxram_full_tl);
1875 netif_poll_disable(netdev);
1876 netif_carrier_off(netdev);
1877 netif_stop_queue(netdev);
1878 del_timer_sync(&card->tx_timer);
1879
1880 /* disable/mask all interrupts */
1881 spider_net_write_reg(card, SPIDER_NET_GHIINT0MSK, 0);
1882 spider_net_write_reg(card, SPIDER_NET_GHIINT1MSK, 0);
1883 spider_net_write_reg(card, SPIDER_NET_GHIINT2MSK, 0);
1884
1885 /* free_irq(netdev->irq, netdev);*/
1886 free_irq(to_pci_dev(netdev->class_dev.dev)->irq, netdev);
1887
1888 spider_net_write_reg(card, SPIDER_NET_GDTDMACCNTR,
1889 SPIDER_NET_DMA_TX_FEND_VALUE);
1890
1891 /* turn off DMA, force end */
1892 spider_net_disable_rxdmac(card);
1893
1894 /* release chains */
1895 if (spin_trylock(&card->tx_chain.lock)) {
1896 spider_net_release_tx_chain(card, 1);
1897 spin_unlock(&card->tx_chain.lock);
1898 }
1899
1900 spider_net_free_chain(card, &card->tx_chain);
1901 spider_net_free_chain(card, &card->rx_chain);
1902
1903 return 0;
1904}
1905
aaec0fab
JO
1906/**
1907 * spider_net_tx_timeout_task - task scheduled by the watchdog timeout
1908 * function (to be called not under interrupt status)
1909 * @data: data, is interface device structure
1910 *
1911 * called as task when tx hangs, resets interface (if interface is up)
1912 */
1913static void
1914spider_net_tx_timeout_task(void *data)
1915{
1916 struct net_device *netdev = data;
1917 struct spider_net_card *card = netdev_priv(netdev);
1918
1919 if (!(netdev->flags & IFF_UP))
1920 goto out;
1921
1922 netif_device_detach(netdev);
1923 spider_net_stop(netdev);
1924
1925 spider_net_workaround_rxramfull(card);
1926 spider_net_init_card(card);
1927
1928 if (spider_net_setup_phy(card))
1929 goto out;
1930 if (spider_net_init_firmware(card))
1931 goto out;
1932
1933 spider_net_open(netdev);
bdd01503 1934 spider_net_kick_tx_dma(card);
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JO
1935 netif_device_attach(netdev);
1936
1937out:
1938 atomic_dec(&card->tx_timeout_task_counter);
1939}
1940
1941/**
1942 * spider_net_tx_timeout - called when the tx timeout watchdog kicks in.
1943 * @netdev: interface device structure
1944 *
1945 * called, if tx hangs. Schedules a task that resets the interface
1946 */
1947static void
1948spider_net_tx_timeout(struct net_device *netdev)
1949{
1950 struct spider_net_card *card;
1951
1952 card = netdev_priv(netdev);
1953 atomic_inc(&card->tx_timeout_task_counter);
1954 if (netdev->flags & IFF_UP)
1955 schedule_work(&card->tx_timeout_task);
1956 else
1957 atomic_dec(&card->tx_timeout_task_counter);
9b6b0b81 1958 card->spider_stats.tx_timeouts++;
aaec0fab
JO
1959}
1960
1961/**
1962 * spider_net_setup_netdev_ops - initialization of net_device operations
1963 * @netdev: net_device structure
1964 *
1965 * fills out function pointers in the net_device structure
1966 */
1967static void
1968spider_net_setup_netdev_ops(struct net_device *netdev)
1969{
1970 netdev->open = &spider_net_open;
1971 netdev->stop = &spider_net_stop;
1972 netdev->hard_start_xmit = &spider_net_xmit;
1973 netdev->get_stats = &spider_net_get_stats;
1974 netdev->set_multicast_list = &spider_net_set_multi;
1975 netdev->set_mac_address = &spider_net_set_mac;
1976 netdev->change_mtu = &spider_net_change_mtu;
1977 netdev->do_ioctl = &spider_net_do_ioctl;
1978 /* tx watchdog */
1979 netdev->tx_timeout = &spider_net_tx_timeout;
1980 netdev->watchdog_timeo = SPIDER_NET_WATCHDOG_TIMEOUT;
1981 /* NAPI */
1982 netdev->poll = &spider_net_poll;
1983 netdev->weight = SPIDER_NET_NAPI_WEIGHT;
1984 /* HW VLAN */
1985 netdev->vlan_rx_register = &spider_net_vlan_rx_reg;
1986 netdev->vlan_rx_add_vid = &spider_net_vlan_rx_add;
1987 netdev->vlan_rx_kill_vid = &spider_net_vlan_rx_kill;
1988#ifdef CONFIG_NET_POLL_CONTROLLER
1989 /* poll controller */
1990 netdev->poll_controller = &spider_net_poll_controller;
1991#endif /* CONFIG_NET_POLL_CONTROLLER */
1992 /* ethtool ops */
1993 netdev->ethtool_ops = &spider_net_ethtool_ops;
1994}
1995
1996/**
1997 * spider_net_setup_netdev - initialization of net_device
1998 * @card: card structure
1999 *
2000 * Returns 0 on success or <0 on failure
2001 *
2002 * spider_net_setup_netdev initializes the net_device structure
2003 **/
2004static int
2005spider_net_setup_netdev(struct spider_net_card *card)
2006{
2007 int result;
2008 struct net_device *netdev = card->netdev;
2009 struct device_node *dn;
2010 struct sockaddr addr;
1a2509c9 2011 const u8 *mac;
aaec0fab
JO
2012
2013 SET_MODULE_OWNER(netdev);
2014 SET_NETDEV_DEV(netdev, &card->pdev->dev);
2015
2016 pci_set_drvdata(card->pdev, netdev);
11f1a52b 2017
11f1a52b
AB
2018 card->rxram_full_tl.data = (unsigned long) card;
2019 card->rxram_full_tl.func =
2020 (void (*)(unsigned long)) spider_net_handle_rxram_full;
2021 init_timer(&card->tx_timer);
2022 card->tx_timer.function =
2023 (void (*)(unsigned long)) spider_net_cleanup_tx_ring;
2024 card->tx_timer.data = (unsigned long) card;
aaec0fab
JO
2025 netdev->irq = card->pdev->irq;
2026
2027 card->options.rx_csum = SPIDER_NET_RX_CSUM_DEFAULT;
2028
b68a60e5
JL
2029 card->tx_desc = tx_descriptors;
2030 card->rx_desc = rx_descriptors;
2031
aaec0fab
JO
2032 spider_net_setup_netdev_ops(netdev);
2033
bdd01503 2034 netdev->features = NETIF_F_HW_CSUM | NETIF_F_LLTX;
aaec0fab
JO
2035 /* some time: NETIF_F_HW_VLAN_TX | NETIF_F_HW_VLAN_RX |
2036 * NETIF_F_HW_VLAN_FILTER */
2037
2038 netdev->irq = card->pdev->irq;
2039
2040 dn = pci_device_to_OF_node(card->pdev);
543cec51
JO
2041 if (!dn)
2042 return -EIO;
2043
1a2509c9 2044 mac = get_property(dn, "local-mac-address", NULL);
543cec51
JO
2045 if (!mac)
2046 return -EIO;
aaec0fab
JO
2047 memcpy(addr.sa_data, mac, ETH_ALEN);
2048
2049 result = spider_net_set_mac(netdev, &addr);
2050 if ((result) && (netif_msg_probe(card)))
2051 pr_err("Failed to set MAC address: %i\n", result);
2052
2053 result = register_netdev(netdev);
2054 if (result) {
2055 if (netif_msg_probe(card))
2056 pr_err("Couldn't register net_device: %i\n",
2057 result);
2058 return result;
2059 }
2060
2061 if (netif_msg_probe(card))
2062 pr_info("Initialized device %s.\n", netdev->name);
2063
2064 return 0;
2065}
2066
2067/**
2068 * spider_net_alloc_card - allocates net_device and card structure
2069 *
2070 * returns the card structure or NULL in case of errors
2071 *
2072 * the card and net_device structures are linked to each other
2073 */
2074static struct spider_net_card *
2075spider_net_alloc_card(void)
2076{
2077 struct net_device *netdev;
2078 struct spider_net_card *card;
2079 size_t alloc_size;
2080
2081 alloc_size = sizeof (*card) +
2082 sizeof (struct spider_net_descr) * rx_descriptors +
2083 sizeof (struct spider_net_descr) * tx_descriptors;
2084 netdev = alloc_etherdev(alloc_size);
2085 if (!netdev)
2086 return NULL;
2087
2088 card = netdev_priv(netdev);
2089 card->netdev = netdev;
2090 card->msg_enable = SPIDER_NET_DEFAULT_MSG;
2091 INIT_WORK(&card->tx_timeout_task, spider_net_tx_timeout_task, netdev);
2092 init_waitqueue_head(&card->waitq);
2093 atomic_set(&card->tx_timeout_task_counter, 0);
2094
2095 return card;
2096}
2097
2098/**
2099 * spider_net_undo_pci_setup - releases PCI ressources
2100 * @card: card structure
2101 *
2102 * spider_net_undo_pci_setup releases the mapped regions
2103 */
2104static void
2105spider_net_undo_pci_setup(struct spider_net_card *card)
2106{
2107 iounmap(card->regs);
2108 pci_release_regions(card->pdev);
2109}
2110
2111/**
2112 * spider_net_setup_pci_dev - sets up the device in terms of PCI operations
2113 * @card: card structure
2114 * @pdev: PCI device
2115 *
2116 * Returns the card structure or NULL if any errors occur
2117 *
2118 * spider_net_setup_pci_dev initializes pdev and together with the
2119 * functions called in spider_net_open configures the device so that
2120 * data can be transferred over it
2121 * The net_device structure is attached to the card structure, if the
2122 * function returns without error.
2123 **/
2124static struct spider_net_card *
2125spider_net_setup_pci_dev(struct pci_dev *pdev)
2126{
2127 struct spider_net_card *card;
2128 unsigned long mmio_start, mmio_len;
2129
2130 if (pci_enable_device(pdev)) {
2131 pr_err("Couldn't enable PCI device\n");
2132 return NULL;
2133 }
2134
2135 if (!(pci_resource_flags(pdev, 0) & IORESOURCE_MEM)) {
2136 pr_err("Couldn't find proper PCI device base address.\n");
2137 goto out_disable_dev;
2138 }
2139
2140 if (pci_request_regions(pdev, spider_net_driver_name)) {
2141 pr_err("Couldn't obtain PCI resources, aborting.\n");
2142 goto out_disable_dev;
2143 }
2144
2145 pci_set_master(pdev);
2146
2147 card = spider_net_alloc_card();
2148 if (!card) {
2149 pr_err("Couldn't allocate net_device structure, "
2150 "aborting.\n");
2151 goto out_release_regions;
2152 }
2153 card->pdev = pdev;
2154
2155 /* fetch base address and length of first resource */
2156 mmio_start = pci_resource_start(pdev, 0);
2157 mmio_len = pci_resource_len(pdev, 0);
2158
2159 card->netdev->mem_start = mmio_start;
2160 card->netdev->mem_end = mmio_start + mmio_len;
2161 card->regs = ioremap(mmio_start, mmio_len);
2162
2163 if (!card->regs) {
2164 pr_err("Couldn't obtain PCI resources, aborting.\n");
2165 goto out_release_regions;
2166 }
2167
2168 return card;
2169
2170out_release_regions:
2171 pci_release_regions(pdev);
2172out_disable_dev:
2173 pci_disable_device(pdev);
2174 pci_set_drvdata(pdev, NULL);
2175 return NULL;
2176}
2177
2178/**
2179 * spider_net_probe - initialization of a device
2180 * @pdev: PCI device
2181 * @ent: entry in the device id list
2182 *
2183 * Returns 0 on success, <0 on failure
2184 *
2185 * spider_net_probe initializes pdev and registers a net_device
2186 * structure for it. After that, the device can be ifconfig'ed up
2187 **/
2188static int __devinit
2189spider_net_probe(struct pci_dev *pdev, const struct pci_device_id *ent)
2190{
2191 int err = -EIO;
2192 struct spider_net_card *card;
2193
2194 card = spider_net_setup_pci_dev(pdev);
2195 if (!card)
2196 goto out;
2197
2198 spider_net_workaround_rxramfull(card);
2199 spider_net_init_card(card);
2200
2201 err = spider_net_setup_phy(card);
2202 if (err)
2203 goto out_undo_pci;
2204
2205 err = spider_net_init_firmware(card);
2206 if (err)
2207 goto out_undo_pci;
2208
2209 err = spider_net_setup_netdev(card);
2210 if (err)
2211 goto out_undo_pci;
2212
2213 return 0;
2214
2215out_undo_pci:
2216 spider_net_undo_pci_setup(card);
2217 free_netdev(card->netdev);
2218out:
2219 return err;
2220}
2221
2222/**
2223 * spider_net_remove - removal of a device
2224 * @pdev: PCI device
2225 *
2226 * Returns 0 on success, <0 on failure
2227 *
2228 * spider_net_remove is called to remove the device and unregisters the
2229 * net_device
2230 **/
2231static void __devexit
2232spider_net_remove(struct pci_dev *pdev)
2233{
2234 struct net_device *netdev;
2235 struct spider_net_card *card;
2236
2237 netdev = pci_get_drvdata(pdev);
2238 card = netdev_priv(netdev);
2239
2240 wait_event(card->waitq,
2241 atomic_read(&card->tx_timeout_task_counter) == 0);
2242
2243 unregister_netdev(netdev);
543cec51
JO
2244
2245 /* switch off card */
2246 spider_net_write_reg(card, SPIDER_NET_CKRCTRL,
2247 SPIDER_NET_CKRCTRL_STOP_VALUE);
2248 spider_net_write_reg(card, SPIDER_NET_CKRCTRL,
2249 SPIDER_NET_CKRCTRL_RUN_VALUE);
2250
aaec0fab
JO
2251 spider_net_undo_pci_setup(card);
2252 free_netdev(netdev);
aaec0fab
JO
2253}
2254
2255static struct pci_driver spider_net_driver = {
aaec0fab
JO
2256 .name = spider_net_driver_name,
2257 .id_table = spider_net_pci_tbl,
2258 .probe = spider_net_probe,
2259 .remove = __devexit_p(spider_net_remove)
2260};
2261
2262/**
2263 * spider_net_init - init function when the driver is loaded
2264 *
2265 * spider_net_init registers the device driver
2266 */
2267static int __init spider_net_init(void)
2268{
90f10841
LV
2269 printk(KERN_INFO "Spidernet version %s.\n", VERSION);
2270
aaec0fab
JO
2271 if (rx_descriptors < SPIDER_NET_RX_DESCRIPTORS_MIN) {
2272 rx_descriptors = SPIDER_NET_RX_DESCRIPTORS_MIN;
2273 pr_info("adjusting rx descriptors to %i.\n", rx_descriptors);
2274 }
2275 if (rx_descriptors > SPIDER_NET_RX_DESCRIPTORS_MAX) {
2276 rx_descriptors = SPIDER_NET_RX_DESCRIPTORS_MAX;
2277 pr_info("adjusting rx descriptors to %i.\n", rx_descriptors);
2278 }
2279 if (tx_descriptors < SPIDER_NET_TX_DESCRIPTORS_MIN) {
2280 tx_descriptors = SPIDER_NET_TX_DESCRIPTORS_MIN;
2281 pr_info("adjusting tx descriptors to %i.\n", tx_descriptors);
2282 }
2283 if (tx_descriptors > SPIDER_NET_TX_DESCRIPTORS_MAX) {
2284 tx_descriptors = SPIDER_NET_TX_DESCRIPTORS_MAX;
2285 pr_info("adjusting tx descriptors to %i.\n", tx_descriptors);
2286 }
2287
2288 return pci_register_driver(&spider_net_driver);
2289}
2290
2291/**
2292 * spider_net_cleanup - exit function when driver is unloaded
2293 *
2294 * spider_net_cleanup unregisters the device driver
2295 */
2296static void __exit spider_net_cleanup(void)
2297{
2298 pci_unregister_driver(&spider_net_driver);
2299}
2300
2301module_init(spider_net_init);
2302module_exit(spider_net_cleanup);