[PATCH] skge: use mmiowb
[deliverable/linux.git] / drivers / net / skge.c
CommitLineData
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1/*
2 * New driver for Marvell Yukon chipset and SysKonnect Gigabit
3 * Ethernet adapters. Based on earlier sk98lin, e100 and
4 * FreeBSD if_sk drivers.
5 *
6 * This driver intentionally does not support all the features
7 * of the original driver such as link fail-over and link management because
8 * those should be done at higher levels.
9 *
747802ab 10 * Copyright (C) 2004, 2005 Stephen Hemminger <shemminger@osdl.org>
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11 *
12 * This program is free software; you can redistribute it and/or modify
13 * it under the terms of the GNU General Public License as published by
14 * the Free Software Foundation; either version 2 of the License, or
15 * (at your option) any later version.
16 *
17 * This program is distributed in the hope that it will be useful,
18 * but WITHOUT ANY WARRANTY; without even the implied warranty of
19 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
20 * GNU General Public License for more details.
21 *
22 * You should have received a copy of the GNU General Public License
23 * along with this program; if not, write to the Free Software
24 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
25 */
26
27#include <linux/config.h>
14c85021 28#include <linux/in.h>
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29#include <linux/kernel.h>
30#include <linux/module.h>
31#include <linux/moduleparam.h>
32#include <linux/netdevice.h>
33#include <linux/etherdevice.h>
34#include <linux/ethtool.h>
35#include <linux/pci.h>
36#include <linux/if_vlan.h>
37#include <linux/ip.h>
38#include <linux/delay.h>
39#include <linux/crc32.h>
4075400b 40#include <linux/dma-mapping.h>
2cd8e5d3 41#include <linux/mii.h>
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42#include <asm/irq.h>
43
44#include "skge.h"
45
46#define DRV_NAME "skge"
f15943f5 47#define DRV_VERSION "1.3"
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48#define PFX DRV_NAME " "
49
50#define DEFAULT_TX_RING_SIZE 128
51#define DEFAULT_RX_RING_SIZE 512
52#define MAX_TX_RING_SIZE 1024
53#define MAX_RX_RING_SIZE 4096
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54#define RX_COPY_THRESHOLD 128
55#define RX_BUF_SIZE 1536
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56#define PHY_RETRIES 1000
57#define ETH_JUMBO_MTU 9000
58#define TX_WATCHDOG (5 * HZ)
59#define NAPI_WEIGHT 64
6abebb53 60#define BLINK_MS 250
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61
62MODULE_DESCRIPTION("SysKonnect Gigabit Ethernet driver");
63MODULE_AUTHOR("Stephen Hemminger <shemminger@osdl.org>");
64MODULE_LICENSE("GPL");
65MODULE_VERSION(DRV_VERSION);
66
67static const u32 default_msg
68 = NETIF_MSG_DRV| NETIF_MSG_PROBE| NETIF_MSG_LINK
69 | NETIF_MSG_IFUP| NETIF_MSG_IFDOWN;
70
71static int debug = -1; /* defaults above */
72module_param(debug, int, 0);
73MODULE_PARM_DESC(debug, "Debug level (0=none,...,16=all)");
74
75static const struct pci_device_id skge_id_table[] = {
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76 { PCI_DEVICE(PCI_VENDOR_ID_3COM, PCI_DEVICE_ID_3COM_3C940) },
77 { PCI_DEVICE(PCI_VENDOR_ID_3COM, PCI_DEVICE_ID_3COM_3C940B) },
78 { PCI_DEVICE(PCI_VENDOR_ID_SYSKONNECT, PCI_DEVICE_ID_SYSKONNECT_GE) },
79 { PCI_DEVICE(PCI_VENDOR_ID_SYSKONNECT, PCI_DEVICE_ID_SYSKONNECT_YU) },
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80 { PCI_DEVICE(PCI_VENDOR_ID_DLINK, PCI_DEVICE_ID_DLINK_DGE510T), },
81 { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x4320) },
82 { PCI_DEVICE(PCI_VENDOR_ID_MARVELL, 0x5005) }, /* Belkin */
83 { PCI_DEVICE(PCI_VENDOR_ID_CNET, PCI_DEVICE_ID_CNET_GIGACARD) },
275834d1 84 { PCI_DEVICE(PCI_VENDOR_ID_LINKSYS, PCI_DEVICE_ID_LINKSYS_EG1064) },
86f0cd50 85 { PCI_VENDOR_ID_LINKSYS, 0x1032, PCI_ANY_ID, 0x0015, },
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86 { 0 }
87};
88MODULE_DEVICE_TABLE(pci, skge_id_table);
89
90static int skge_up(struct net_device *dev);
91static int skge_down(struct net_device *dev);
ee294dcd 92static void skge_phy_reset(struct skge_port *skge);
baef58b1 93static void skge_tx_clean(struct skge_port *skge);
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94static int xm_phy_write(struct skge_hw *hw, int port, u16 reg, u16 val);
95static int gm_phy_write(struct skge_hw *hw, int port, u16 reg, u16 val);
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96static void genesis_get_stats(struct skge_port *skge, u64 *data);
97static void yukon_get_stats(struct skge_port *skge, u64 *data);
98static void yukon_init(struct skge_hw *hw, int port);
baef58b1 99static void genesis_mac_init(struct skge_hw *hw, int port);
45bada65 100static void genesis_link_up(struct skge_port *skge);
baef58b1 101
7e676d91 102/* Avoid conditionals by using array */
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103static const int txqaddr[] = { Q_XA1, Q_XA2 };
104static const int rxqaddr[] = { Q_R1, Q_R2 };
105static const u32 rxirqmask[] = { IS_R1_F, IS_R2_F };
106static const u32 txirqmask[] = { IS_XA1_F, IS_XA2_F };
107
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108static int skge_get_regs_len(struct net_device *dev)
109{
c3f8be96 110 return 0x4000;
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111}
112
113/*
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114 * Returns copy of whole control register region
115 * Note: skip RAM address register because accessing it will
116 * cause bus hangs!
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117 */
118static void skge_get_regs(struct net_device *dev, struct ethtool_regs *regs,
119 void *p)
120{
121 const struct skge_port *skge = netdev_priv(dev);
baef58b1 122 const void __iomem *io = skge->hw->regs;
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123
124 regs->version = 1;
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125 memset(p, 0, regs->len);
126 memcpy_fromio(p, io, B3_RAM_ADDR);
baef58b1 127
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128 memcpy_fromio(p + B3_RI_WTO_R1, io + B3_RI_WTO_R1,
129 regs->len - B3_RI_WTO_R1);
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130}
131
8f3f8193 132/* Wake on Lan only supported on Yukon chips with rev 1 or above */
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133static int wol_supported(const struct skge_hw *hw)
134{
135 return !((hw->chip_id == CHIP_ID_GENESIS ||
981d0377 136 (hw->chip_id == CHIP_ID_YUKON && hw->chip_rev == 0)));
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137}
138
139static void skge_get_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
140{
141 struct skge_port *skge = netdev_priv(dev);
142
143 wol->supported = wol_supported(skge->hw) ? WAKE_MAGIC : 0;
144 wol->wolopts = skge->wol ? WAKE_MAGIC : 0;
145}
146
147static int skge_set_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
148{
149 struct skge_port *skge = netdev_priv(dev);
150 struct skge_hw *hw = skge->hw;
151
95566065 152 if (wol->wolopts != WAKE_MAGIC && wol->wolopts != 0)
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153 return -EOPNOTSUPP;
154
155 if (wol->wolopts == WAKE_MAGIC && !wol_supported(hw))
156 return -EOPNOTSUPP;
157
158 skge->wol = wol->wolopts == WAKE_MAGIC;
159
160 if (skge->wol) {
161 memcpy_toio(hw->regs + WOL_MAC_ADDR, dev->dev_addr, ETH_ALEN);
162
163 skge_write16(hw, WOL_CTRL_STAT,
164 WOL_CTL_ENA_PME_ON_MAGIC_PKT |
165 WOL_CTL_ENA_MAGIC_PKT_UNIT);
166 } else
167 skge_write16(hw, WOL_CTRL_STAT, WOL_CTL_DEFAULT);
168
169 return 0;
170}
171
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172/* Determine supported/advertised modes based on hardware.
173 * Note: ethtool ADVERTISED_xxx == SUPPORTED_xxx
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174 */
175static u32 skge_supported_modes(const struct skge_hw *hw)
176{
177 u32 supported;
178
5e1705dd 179 if (hw->copper) {
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180 supported = SUPPORTED_10baseT_Half
181 | SUPPORTED_10baseT_Full
182 | SUPPORTED_100baseT_Half
183 | SUPPORTED_100baseT_Full
184 | SUPPORTED_1000baseT_Half
185 | SUPPORTED_1000baseT_Full
186 | SUPPORTED_Autoneg| SUPPORTED_TP;
187
188 if (hw->chip_id == CHIP_ID_GENESIS)
189 supported &= ~(SUPPORTED_10baseT_Half
190 | SUPPORTED_10baseT_Full
191 | SUPPORTED_100baseT_Half
192 | SUPPORTED_100baseT_Full);
193
194 else if (hw->chip_id == CHIP_ID_YUKON)
195 supported &= ~SUPPORTED_1000baseT_Half;
196 } else
197 supported = SUPPORTED_1000baseT_Full | SUPPORTED_FIBRE
198 | SUPPORTED_Autoneg;
199
200 return supported;
201}
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202
203static int skge_get_settings(struct net_device *dev,
204 struct ethtool_cmd *ecmd)
205{
206 struct skge_port *skge = netdev_priv(dev);
207 struct skge_hw *hw = skge->hw;
208
209 ecmd->transceiver = XCVR_INTERNAL;
31b619c5 210 ecmd->supported = skge_supported_modes(hw);
baef58b1 211
5e1705dd 212 if (hw->copper) {
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213 ecmd->port = PORT_TP;
214 ecmd->phy_address = hw->phy_addr;
31b619c5 215 } else
baef58b1 216 ecmd->port = PORT_FIBRE;
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217
218 ecmd->advertising = skge->advertising;
219 ecmd->autoneg = skge->autoneg;
220 ecmd->speed = skge->speed;
221 ecmd->duplex = skge->duplex;
222 return 0;
223}
224
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225static int skge_set_settings(struct net_device *dev, struct ethtool_cmd *ecmd)
226{
227 struct skge_port *skge = netdev_priv(dev);
228 const struct skge_hw *hw = skge->hw;
31b619c5 229 u32 supported = skge_supported_modes(hw);
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230
231 if (ecmd->autoneg == AUTONEG_ENABLE) {
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232 ecmd->advertising = supported;
233 skge->duplex = -1;
234 skge->speed = -1;
baef58b1 235 } else {
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236 u32 setting;
237
2c668514 238 switch (ecmd->speed) {
baef58b1 239 case SPEED_1000:
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240 if (ecmd->duplex == DUPLEX_FULL)
241 setting = SUPPORTED_1000baseT_Full;
242 else if (ecmd->duplex == DUPLEX_HALF)
243 setting = SUPPORTED_1000baseT_Half;
244 else
245 return -EINVAL;
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246 break;
247 case SPEED_100:
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248 if (ecmd->duplex == DUPLEX_FULL)
249 setting = SUPPORTED_100baseT_Full;
250 else if (ecmd->duplex == DUPLEX_HALF)
251 setting = SUPPORTED_100baseT_Half;
252 else
253 return -EINVAL;
254 break;
255
baef58b1 256 case SPEED_10:
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257 if (ecmd->duplex == DUPLEX_FULL)
258 setting = SUPPORTED_10baseT_Full;
259 else if (ecmd->duplex == DUPLEX_HALF)
260 setting = SUPPORTED_10baseT_Half;
261 else
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262 return -EINVAL;
263 break;
264 default:
265 return -EINVAL;
266 }
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267
268 if ((setting & supported) == 0)
269 return -EINVAL;
270
271 skge->speed = ecmd->speed;
272 skge->duplex = ecmd->duplex;
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273 }
274
275 skge->autoneg = ecmd->autoneg;
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276 skge->advertising = ecmd->advertising;
277
ee294dcd
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278 if (netif_running(dev))
279 skge_phy_reset(skge);
280
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281 return (0);
282}
283
284static void skge_get_drvinfo(struct net_device *dev,
285 struct ethtool_drvinfo *info)
286{
287 struct skge_port *skge = netdev_priv(dev);
288
289 strcpy(info->driver, DRV_NAME);
290 strcpy(info->version, DRV_VERSION);
291 strcpy(info->fw_version, "N/A");
292 strcpy(info->bus_info, pci_name(skge->hw->pdev));
293}
294
295static const struct skge_stat {
296 char name[ETH_GSTRING_LEN];
297 u16 xmac_offset;
298 u16 gma_offset;
299} skge_stats[] = {
300 { "tx_bytes", XM_TXO_OK_HI, GM_TXO_OK_HI },
301 { "rx_bytes", XM_RXO_OK_HI, GM_RXO_OK_HI },
302
303 { "tx_broadcast", XM_TXF_BC_OK, GM_TXF_BC_OK },
304 { "rx_broadcast", XM_RXF_BC_OK, GM_RXF_BC_OK },
305 { "tx_multicast", XM_TXF_MC_OK, GM_TXF_MC_OK },
306 { "rx_multicast", XM_RXF_MC_OK, GM_RXF_MC_OK },
307 { "tx_unicast", XM_TXF_UC_OK, GM_TXF_UC_OK },
308 { "rx_unicast", XM_RXF_UC_OK, GM_RXF_UC_OK },
309 { "tx_mac_pause", XM_TXF_MPAUSE, GM_TXF_MPAUSE },
310 { "rx_mac_pause", XM_RXF_MPAUSE, GM_RXF_MPAUSE },
311
312 { "collisions", XM_TXF_SNG_COL, GM_TXF_SNG_COL },
313 { "multi_collisions", XM_TXF_MUL_COL, GM_TXF_MUL_COL },
314 { "aborted", XM_TXF_ABO_COL, GM_TXF_ABO_COL },
315 { "late_collision", XM_TXF_LAT_COL, GM_TXF_LAT_COL },
316 { "fifo_underrun", XM_TXE_FIFO_UR, GM_TXE_FIFO_UR },
317 { "fifo_overflow", XM_RXE_FIFO_OV, GM_RXE_FIFO_OV },
318
319 { "rx_toolong", XM_RXF_LNG_ERR, GM_RXF_LNG_ERR },
320 { "rx_jabber", XM_RXF_JAB_PKT, GM_RXF_JAB_PKT },
321 { "rx_runt", XM_RXE_RUNT, GM_RXE_FRAG },
322 { "rx_too_long", XM_RXF_LNG_ERR, GM_RXF_LNG_ERR },
323 { "rx_fcs_error", XM_RXF_FCS_ERR, GM_RXF_FCS_ERR },
324};
325
326static int skge_get_stats_count(struct net_device *dev)
327{
328 return ARRAY_SIZE(skge_stats);
329}
330
331static void skge_get_ethtool_stats(struct net_device *dev,
332 struct ethtool_stats *stats, u64 *data)
333{
334 struct skge_port *skge = netdev_priv(dev);
335
336 if (skge->hw->chip_id == CHIP_ID_GENESIS)
337 genesis_get_stats(skge, data);
338 else
339 yukon_get_stats(skge, data);
340}
341
342/* Use hardware MIB variables for critical path statistics and
343 * transmit feedback not reported at interrupt.
344 * Other errors are accounted for in interrupt handler.
345 */
346static struct net_device_stats *skge_get_stats(struct net_device *dev)
347{
348 struct skge_port *skge = netdev_priv(dev);
349 u64 data[ARRAY_SIZE(skge_stats)];
350
351 if (skge->hw->chip_id == CHIP_ID_GENESIS)
352 genesis_get_stats(skge, data);
353 else
354 yukon_get_stats(skge, data);
355
356 skge->net_stats.tx_bytes = data[0];
357 skge->net_stats.rx_bytes = data[1];
358 skge->net_stats.tx_packets = data[2] + data[4] + data[6];
359 skge->net_stats.rx_packets = data[3] + data[5] + data[7];
360 skge->net_stats.multicast = data[5] + data[7];
361 skge->net_stats.collisions = data[10];
362 skge->net_stats.tx_aborted_errors = data[12];
363
364 return &skge->net_stats;
365}
366
367static void skge_get_strings(struct net_device *dev, u32 stringset, u8 *data)
368{
369 int i;
370
95566065 371 switch (stringset) {
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372 case ETH_SS_STATS:
373 for (i = 0; i < ARRAY_SIZE(skge_stats); i++)
374 memcpy(data + i * ETH_GSTRING_LEN,
375 skge_stats[i].name, ETH_GSTRING_LEN);
376 break;
377 }
378}
379
380static void skge_get_ring_param(struct net_device *dev,
381 struct ethtool_ringparam *p)
382{
383 struct skge_port *skge = netdev_priv(dev);
384
385 p->rx_max_pending = MAX_RX_RING_SIZE;
386 p->tx_max_pending = MAX_TX_RING_SIZE;
387 p->rx_mini_max_pending = 0;
388 p->rx_jumbo_max_pending = 0;
389
390 p->rx_pending = skge->rx_ring.count;
391 p->tx_pending = skge->tx_ring.count;
392 p->rx_mini_pending = 0;
393 p->rx_jumbo_pending = 0;
394}
395
396static int skge_set_ring_param(struct net_device *dev,
397 struct ethtool_ringparam *p)
398{
399 struct skge_port *skge = netdev_priv(dev);
3b8bb472 400 int err;
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401
402 if (p->rx_pending == 0 || p->rx_pending > MAX_RX_RING_SIZE ||
403 p->tx_pending == 0 || p->tx_pending > MAX_TX_RING_SIZE)
404 return -EINVAL;
405
406 skge->rx_ring.count = p->rx_pending;
407 skge->tx_ring.count = p->tx_pending;
408
409 if (netif_running(dev)) {
410 skge_down(dev);
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411 err = skge_up(dev);
412 if (err)
413 dev_close(dev);
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414 }
415
416 return 0;
417}
418
419static u32 skge_get_msglevel(struct net_device *netdev)
420{
421 struct skge_port *skge = netdev_priv(netdev);
422 return skge->msg_enable;
423}
424
425static void skge_set_msglevel(struct net_device *netdev, u32 value)
426{
427 struct skge_port *skge = netdev_priv(netdev);
428 skge->msg_enable = value;
429}
430
431static int skge_nway_reset(struct net_device *dev)
432{
433 struct skge_port *skge = netdev_priv(dev);
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434
435 if (skge->autoneg != AUTONEG_ENABLE || !netif_running(dev))
436 return -EINVAL;
437
ee294dcd 438 skge_phy_reset(skge);
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439 return 0;
440}
441
442static int skge_set_sg(struct net_device *dev, u32 data)
443{
444 struct skge_port *skge = netdev_priv(dev);
445 struct skge_hw *hw = skge->hw;
446
447 if (hw->chip_id == CHIP_ID_GENESIS && data)
448 return -EOPNOTSUPP;
449 return ethtool_op_set_sg(dev, data);
450}
451
452static int skge_set_tx_csum(struct net_device *dev, u32 data)
453{
454 struct skge_port *skge = netdev_priv(dev);
455 struct skge_hw *hw = skge->hw;
456
457 if (hw->chip_id == CHIP_ID_GENESIS && data)
458 return -EOPNOTSUPP;
459
460 return ethtool_op_set_tx_csum(dev, data);
461}
462
463static u32 skge_get_rx_csum(struct net_device *dev)
464{
465 struct skge_port *skge = netdev_priv(dev);
466
467 return skge->rx_csum;
468}
469
470/* Only Yukon supports checksum offload. */
471static int skge_set_rx_csum(struct net_device *dev, u32 data)
472{
473 struct skge_port *skge = netdev_priv(dev);
474
475 if (skge->hw->chip_id == CHIP_ID_GENESIS && data)
476 return -EOPNOTSUPP;
477
478 skge->rx_csum = data;
479 return 0;
480}
481
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482static void skge_get_pauseparam(struct net_device *dev,
483 struct ethtool_pauseparam *ecmd)
484{
485 struct skge_port *skge = netdev_priv(dev);
486
487 ecmd->tx_pause = (skge->flow_control == FLOW_MODE_LOC_SEND)
488 || (skge->flow_control == FLOW_MODE_SYMMETRIC);
489 ecmd->rx_pause = (skge->flow_control == FLOW_MODE_REM_SEND)
490 || (skge->flow_control == FLOW_MODE_SYMMETRIC);
491
492 ecmd->autoneg = skge->autoneg;
493}
494
495static int skge_set_pauseparam(struct net_device *dev,
496 struct ethtool_pauseparam *ecmd)
497{
498 struct skge_port *skge = netdev_priv(dev);
499
500 skge->autoneg = ecmd->autoneg;
501 if (ecmd->rx_pause && ecmd->tx_pause)
502 skge->flow_control = FLOW_MODE_SYMMETRIC;
95566065 503 else if (ecmd->rx_pause && !ecmd->tx_pause)
baef58b1 504 skge->flow_control = FLOW_MODE_REM_SEND;
95566065 505 else if (!ecmd->rx_pause && ecmd->tx_pause)
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506 skge->flow_control = FLOW_MODE_LOC_SEND;
507 else
508 skge->flow_control = FLOW_MODE_NONE;
509
e8df8554
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510 if (netif_running(dev))
511 skge_phy_reset(skge);
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512 return 0;
513}
514
515/* Chip internal frequency for clock calculations */
516static inline u32 hwkhz(const struct skge_hw *hw)
517{
518 if (hw->chip_id == CHIP_ID_GENESIS)
519 return 53215; /* or: 53.125 MHz */
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520 else
521 return 78215; /* or: 78.125 MHz */
522}
523
8f3f8193 524/* Chip HZ to microseconds */
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525static inline u32 skge_clk2usec(const struct skge_hw *hw, u32 ticks)
526{
527 return (ticks * 1000) / hwkhz(hw);
528}
529
8f3f8193 530/* Microseconds to chip HZ */
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531static inline u32 skge_usecs2clk(const struct skge_hw *hw, u32 usec)
532{
533 return hwkhz(hw) * usec / 1000;
534}
535
536static int skge_get_coalesce(struct net_device *dev,
537 struct ethtool_coalesce *ecmd)
538{
539 struct skge_port *skge = netdev_priv(dev);
540 struct skge_hw *hw = skge->hw;
541 int port = skge->port;
542
543 ecmd->rx_coalesce_usecs = 0;
544 ecmd->tx_coalesce_usecs = 0;
545
546 if (skge_read32(hw, B2_IRQM_CTRL) & TIM_START) {
547 u32 delay = skge_clk2usec(hw, skge_read32(hw, B2_IRQM_INI));
548 u32 msk = skge_read32(hw, B2_IRQM_MSK);
549
550 if (msk & rxirqmask[port])
551 ecmd->rx_coalesce_usecs = delay;
552 if (msk & txirqmask[port])
553 ecmd->tx_coalesce_usecs = delay;
554 }
555
556 return 0;
557}
558
559/* Note: interrupt timer is per board, but can turn on/off per port */
560static int skge_set_coalesce(struct net_device *dev,
561 struct ethtool_coalesce *ecmd)
562{
563 struct skge_port *skge = netdev_priv(dev);
564 struct skge_hw *hw = skge->hw;
565 int port = skge->port;
566 u32 msk = skge_read32(hw, B2_IRQM_MSK);
567 u32 delay = 25;
568
569 if (ecmd->rx_coalesce_usecs == 0)
570 msk &= ~rxirqmask[port];
571 else if (ecmd->rx_coalesce_usecs < 25 ||
572 ecmd->rx_coalesce_usecs > 33333)
573 return -EINVAL;
574 else {
575 msk |= rxirqmask[port];
576 delay = ecmd->rx_coalesce_usecs;
577 }
578
579 if (ecmd->tx_coalesce_usecs == 0)
580 msk &= ~txirqmask[port];
581 else if (ecmd->tx_coalesce_usecs < 25 ||
582 ecmd->tx_coalesce_usecs > 33333)
583 return -EINVAL;
584 else {
585 msk |= txirqmask[port];
586 delay = min(delay, ecmd->rx_coalesce_usecs);
587 }
588
589 skge_write32(hw, B2_IRQM_MSK, msk);
590 if (msk == 0)
591 skge_write32(hw, B2_IRQM_CTRL, TIM_STOP);
592 else {
593 skge_write32(hw, B2_IRQM_INI, skge_usecs2clk(hw, delay));
594 skge_write32(hw, B2_IRQM_CTRL, TIM_START);
595 }
596 return 0;
597}
598
6abebb53
SH
599enum led_mode { LED_MODE_OFF, LED_MODE_ON, LED_MODE_TST };
600static void skge_led(struct skge_port *skge, enum led_mode mode)
baef58b1 601{
6abebb53
SH
602 struct skge_hw *hw = skge->hw;
603 int port = skge->port;
604
605 spin_lock_bh(&hw->phy_lock);
baef58b1 606 if (hw->chip_id == CHIP_ID_GENESIS) {
6abebb53
SH
607 switch (mode) {
608 case LED_MODE_OFF:
609 xm_phy_write(hw, port, PHY_BCOM_P_EXT_CTRL, PHY_B_PEC_LED_OFF);
610 skge_write8(hw, SK_REG(port, LNK_LED_REG), LINKLED_OFF);
611 skge_write32(hw, SK_REG(port, RX_LED_VAL), 0);
612 skge_write8(hw, SK_REG(port, RX_LED_CTRL), LED_T_OFF);
613 break;
baef58b1 614
6abebb53
SH
615 case LED_MODE_ON:
616 skge_write8(hw, SK_REG(port, LNK_LED_REG), LINKLED_ON);
617 skge_write8(hw, SK_REG(port, LNK_LED_REG), LINKLED_LINKSYNC_ON);
baef58b1 618
6abebb53
SH
619 skge_write8(hw, SK_REG(port, RX_LED_CTRL), LED_START);
620 skge_write8(hw, SK_REG(port, TX_LED_CTRL), LED_START);
baef58b1 621
6abebb53 622 break;
baef58b1 623
6abebb53
SH
624 case LED_MODE_TST:
625 skge_write8(hw, SK_REG(port, RX_LED_TST), LED_T_ON);
626 skge_write32(hw, SK_REG(port, RX_LED_VAL), 100);
627 skge_write8(hw, SK_REG(port, RX_LED_CTRL), LED_START);
baef58b1 628
6abebb53
SH
629 xm_phy_write(hw, port, PHY_BCOM_P_EXT_CTRL, PHY_B_PEC_LED_ON);
630 break;
631 }
baef58b1 632 } else {
6abebb53
SH
633 switch (mode) {
634 case LED_MODE_OFF:
635 gm_phy_write(hw, port, PHY_MARV_LED_CTRL, 0);
636 gm_phy_write(hw, port, PHY_MARV_LED_OVER,
637 PHY_M_LED_MO_DUP(MO_LED_OFF) |
638 PHY_M_LED_MO_10(MO_LED_OFF) |
639 PHY_M_LED_MO_100(MO_LED_OFF) |
640 PHY_M_LED_MO_1000(MO_LED_OFF) |
641 PHY_M_LED_MO_RX(MO_LED_OFF));
642 break;
643 case LED_MODE_ON:
644 gm_phy_write(hw, port, PHY_MARV_LED_CTRL,
645 PHY_M_LED_PULS_DUR(PULS_170MS) |
646 PHY_M_LED_BLINK_RT(BLINK_84MS) |
647 PHY_M_LEDC_TX_CTRL |
648 PHY_M_LEDC_DP_CTRL);
46a60f2d 649
6abebb53
SH
650 gm_phy_write(hw, port, PHY_MARV_LED_OVER,
651 PHY_M_LED_MO_RX(MO_LED_OFF) |
652 (skge->speed == SPEED_100 ?
653 PHY_M_LED_MO_100(MO_LED_ON) : 0));
654 break;
655 case LED_MODE_TST:
656 gm_phy_write(hw, port, PHY_MARV_LED_CTRL, 0);
657 gm_phy_write(hw, port, PHY_MARV_LED_OVER,
658 PHY_M_LED_MO_DUP(MO_LED_ON) |
659 PHY_M_LED_MO_10(MO_LED_ON) |
660 PHY_M_LED_MO_100(MO_LED_ON) |
661 PHY_M_LED_MO_1000(MO_LED_ON) |
662 PHY_M_LED_MO_RX(MO_LED_ON));
663 }
baef58b1 664 }
4ff6ac05 665 spin_unlock_bh(&hw->phy_lock);
baef58b1
SH
666}
667
668/* blink LED's for finding board */
669static int skge_phys_id(struct net_device *dev, u32 data)
670{
671 struct skge_port *skge = netdev_priv(dev);
6abebb53
SH
672 unsigned long ms;
673 enum led_mode mode = LED_MODE_TST;
baef58b1 674
95566065 675 if (!data || data > (u32)(MAX_SCHEDULE_TIMEOUT / HZ))
6abebb53
SH
676 ms = jiffies_to_msecs(MAX_SCHEDULE_TIMEOUT / HZ) * 1000;
677 else
678 ms = data * 1000;
baef58b1 679
6abebb53
SH
680 while (ms > 0) {
681 skge_led(skge, mode);
682 mode ^= LED_MODE_TST;
baef58b1 683
6abebb53
SH
684 if (msleep_interruptible(BLINK_MS))
685 break;
686 ms -= BLINK_MS;
687 }
baef58b1 688
6abebb53
SH
689 /* back to regular LED state */
690 skge_led(skge, netif_running(dev) ? LED_MODE_ON : LED_MODE_OFF);
baef58b1
SH
691
692 return 0;
693}
694
695static struct ethtool_ops skge_ethtool_ops = {
696 .get_settings = skge_get_settings,
697 .set_settings = skge_set_settings,
698 .get_drvinfo = skge_get_drvinfo,
699 .get_regs_len = skge_get_regs_len,
700 .get_regs = skge_get_regs,
701 .get_wol = skge_get_wol,
702 .set_wol = skge_set_wol,
703 .get_msglevel = skge_get_msglevel,
704 .set_msglevel = skge_set_msglevel,
705 .nway_reset = skge_nway_reset,
706 .get_link = ethtool_op_get_link,
707 .get_ringparam = skge_get_ring_param,
708 .set_ringparam = skge_set_ring_param,
709 .get_pauseparam = skge_get_pauseparam,
710 .set_pauseparam = skge_set_pauseparam,
711 .get_coalesce = skge_get_coalesce,
712 .set_coalesce = skge_set_coalesce,
baef58b1
SH
713 .get_sg = ethtool_op_get_sg,
714 .set_sg = skge_set_sg,
715 .get_tx_csum = ethtool_op_get_tx_csum,
716 .set_tx_csum = skge_set_tx_csum,
717 .get_rx_csum = skge_get_rx_csum,
718 .set_rx_csum = skge_set_rx_csum,
719 .get_strings = skge_get_strings,
720 .phys_id = skge_phys_id,
721 .get_stats_count = skge_get_stats_count,
722 .get_ethtool_stats = skge_get_ethtool_stats,
56230d53 723 .get_perm_addr = ethtool_op_get_perm_addr,
baef58b1
SH
724};
725
726/*
727 * Allocate ring elements and chain them together
728 * One-to-one association of board descriptors with ring elements
729 */
c3da1447 730static int skge_ring_alloc(struct skge_ring *ring, void *vaddr, u32 base)
baef58b1
SH
731{
732 struct skge_tx_desc *d;
733 struct skge_element *e;
734 int i;
735
ff7907ae 736 ring->start = kcalloc(sizeof(*e), ring->count, GFP_KERNEL);
baef58b1
SH
737 if (!ring->start)
738 return -ENOMEM;
739
740 for (i = 0, e = ring->start, d = vaddr; i < ring->count; i++, e++, d++) {
741 e->desc = d;
742 if (i == ring->count - 1) {
743 e->next = ring->start;
744 d->next_offset = base;
745 } else {
746 e->next = e + 1;
747 d->next_offset = base + (i+1) * sizeof(*d);
748 }
749 }
750 ring->to_use = ring->to_clean = ring->start;
751
752 return 0;
753}
754
19a33d4e
SH
755/* Allocate and setup a new buffer for receiving */
756static void skge_rx_setup(struct skge_port *skge, struct skge_element *e,
757 struct sk_buff *skb, unsigned int bufsize)
758{
759 struct skge_rx_desc *rd = e->desc;
760 u64 map;
baef58b1
SH
761
762 map = pci_map_single(skge->hw->pdev, skb->data, bufsize,
763 PCI_DMA_FROMDEVICE);
764
765 rd->dma_lo = map;
766 rd->dma_hi = map >> 32;
767 e->skb = skb;
768 rd->csum1_start = ETH_HLEN;
769 rd->csum2_start = ETH_HLEN;
770 rd->csum1 = 0;
771 rd->csum2 = 0;
772
773 wmb();
774
775 rd->control = BMU_OWN | BMU_STF | BMU_IRQ_EOF | BMU_TCP_CHECK | bufsize;
776 pci_unmap_addr_set(e, mapaddr, map);
777 pci_unmap_len_set(e, maplen, bufsize);
baef58b1
SH
778}
779
19a33d4e
SH
780/* Resume receiving using existing skb,
781 * Note: DMA address is not changed by chip.
782 * MTU not changed while receiver active.
783 */
784static void skge_rx_reuse(struct skge_element *e, unsigned int size)
785{
786 struct skge_rx_desc *rd = e->desc;
787
788 rd->csum2 = 0;
789 rd->csum2_start = ETH_HLEN;
790
791 wmb();
792
793 rd->control = BMU_OWN | BMU_STF | BMU_IRQ_EOF | BMU_TCP_CHECK | size;
794}
795
796
797/* Free all buffers in receive ring, assumes receiver stopped */
baef58b1
SH
798static void skge_rx_clean(struct skge_port *skge)
799{
800 struct skge_hw *hw = skge->hw;
801 struct skge_ring *ring = &skge->rx_ring;
802 struct skge_element *e;
803
19a33d4e
SH
804 e = ring->start;
805 do {
baef58b1
SH
806 struct skge_rx_desc *rd = e->desc;
807 rd->control = 0;
19a33d4e
SH
808 if (e->skb) {
809 pci_unmap_single(hw->pdev,
810 pci_unmap_addr(e, mapaddr),
811 pci_unmap_len(e, maplen),
812 PCI_DMA_FROMDEVICE);
813 dev_kfree_skb(e->skb);
814 e->skb = NULL;
815 }
816 } while ((e = e->next) != ring->start);
baef58b1
SH
817}
818
19a33d4e 819
baef58b1 820/* Allocate buffers for receive ring
19a33d4e 821 * For receive: to_clean is next received frame.
baef58b1
SH
822 */
823static int skge_rx_fill(struct skge_port *skge)
824{
825 struct skge_ring *ring = &skge->rx_ring;
826 struct skge_element *e;
baef58b1 827
19a33d4e
SH
828 e = ring->start;
829 do {
383181ac 830 struct sk_buff *skb;
baef58b1 831
383181ac 832 skb = dev_alloc_skb(skge->rx_buf_size + NET_IP_ALIGN);
19a33d4e
SH
833 if (!skb)
834 return -ENOMEM;
835
383181ac
SH
836 skb_reserve(skb, NET_IP_ALIGN);
837 skge_rx_setup(skge, e, skb, skge->rx_buf_size);
19a33d4e 838 } while ( (e = e->next) != ring->start);
baef58b1 839
19a33d4e
SH
840 ring->to_clean = ring->start;
841 return 0;
baef58b1
SH
842}
843
844static void skge_link_up(struct skge_port *skge)
845{
46a60f2d 846 skge_write8(skge->hw, SK_REG(skge->port, LNK_LED_REG),
54cfb5aa
SH
847 LED_BLK_OFF|LED_SYNC_OFF|LED_ON);
848
baef58b1
SH
849 netif_carrier_on(skge->netdev);
850 if (skge->tx_avail > MAX_SKB_FRAGS + 1)
851 netif_wake_queue(skge->netdev);
852
853 if (netif_msg_link(skge))
854 printk(KERN_INFO PFX
855 "%s: Link is up at %d Mbps, %s duplex, flow control %s\n",
856 skge->netdev->name, skge->speed,
857 skge->duplex == DUPLEX_FULL ? "full" : "half",
858 (skge->flow_control == FLOW_MODE_NONE) ? "none" :
859 (skge->flow_control == FLOW_MODE_LOC_SEND) ? "tx only" :
860 (skge->flow_control == FLOW_MODE_REM_SEND) ? "rx only" :
861 (skge->flow_control == FLOW_MODE_SYMMETRIC) ? "tx and rx" :
862 "unknown");
863}
864
865static void skge_link_down(struct skge_port *skge)
866{
54cfb5aa 867 skge_write8(skge->hw, SK_REG(skge->port, LNK_LED_REG), LED_OFF);
baef58b1
SH
868 netif_carrier_off(skge->netdev);
869 netif_stop_queue(skge->netdev);
870
871 if (netif_msg_link(skge))
872 printk(KERN_INFO PFX "%s: Link is down.\n", skge->netdev->name);
873}
874
2cd8e5d3 875static int __xm_phy_read(struct skge_hw *hw, int port, u16 reg, u16 *val)
baef58b1
SH
876{
877 int i;
baef58b1 878
6b0c1480 879 xm_write16(hw, port, XM_PHY_ADDR, reg | hw->phy_addr);
0781191c 880 *val = xm_read16(hw, port, XM_PHY_DATA);
baef58b1 881
89bf5f23 882 for (i = 0; i < PHY_RETRIES; i++) {
2cd8e5d3 883 if (xm_read16(hw, port, XM_MMU_CMD) & XM_MMU_PHY_RDY)
89bf5f23 884 goto ready;
0781191c 885 udelay(1);
baef58b1
SH
886 }
887
2cd8e5d3 888 return -ETIMEDOUT;
89bf5f23 889 ready:
2cd8e5d3 890 *val = xm_read16(hw, port, XM_PHY_DATA);
89bf5f23 891
2cd8e5d3
SH
892 return 0;
893}
894
895static u16 xm_phy_read(struct skge_hw *hw, int port, u16 reg)
896{
897 u16 v = 0;
898 if (__xm_phy_read(hw, port, reg, &v))
899 printk(KERN_WARNING PFX "%s: phy read timed out\n",
900 hw->dev[port]->name);
baef58b1
SH
901 return v;
902}
903
2cd8e5d3 904static int xm_phy_write(struct skge_hw *hw, int port, u16 reg, u16 val)
baef58b1
SH
905{
906 int i;
907
6b0c1480 908 xm_write16(hw, port, XM_PHY_ADDR, reg | hw->phy_addr);
baef58b1 909 for (i = 0; i < PHY_RETRIES; i++) {
6b0c1480 910 if (!(xm_read16(hw, port, XM_MMU_CMD) & XM_MMU_PHY_BUSY))
baef58b1 911 goto ready;
89bf5f23 912 udelay(1);
baef58b1 913 }
2cd8e5d3 914 return -EIO;
baef58b1
SH
915
916 ready:
6b0c1480 917 xm_write16(hw, port, XM_PHY_DATA, val);
0781191c
SH
918 for (i = 0; i < PHY_RETRIES; i++) {
919 if (!(xm_read16(hw, port, XM_MMU_CMD) & XM_MMU_PHY_BUSY))
920 return 0;
921 udelay(1);
922 }
923 return -ETIMEDOUT;
baef58b1
SH
924}
925
926static void genesis_init(struct skge_hw *hw)
927{
928 /* set blink source counter */
929 skge_write32(hw, B2_BSC_INI, (SK_BLK_DUR * SK_FACT_53) / 100);
930 skge_write8(hw, B2_BSC_CTRL, BSC_START);
931
932 /* configure mac arbiter */
933 skge_write16(hw, B3_MA_TO_CTRL, MA_RST_CLR);
934
935 /* configure mac arbiter timeout values */
936 skge_write8(hw, B3_MA_TOINI_RX1, SK_MAC_TO_53);
937 skge_write8(hw, B3_MA_TOINI_RX2, SK_MAC_TO_53);
938 skge_write8(hw, B3_MA_TOINI_TX1, SK_MAC_TO_53);
939 skge_write8(hw, B3_MA_TOINI_TX2, SK_MAC_TO_53);
940
941 skge_write8(hw, B3_MA_RCINI_RX1, 0);
942 skge_write8(hw, B3_MA_RCINI_RX2, 0);
943 skge_write8(hw, B3_MA_RCINI_TX1, 0);
944 skge_write8(hw, B3_MA_RCINI_TX2, 0);
945
946 /* configure packet arbiter timeout */
947 skge_write16(hw, B3_PA_CTRL, PA_RST_CLR);
948 skge_write16(hw, B3_PA_TOINI_RX1, SK_PKT_TO_MAX);
949 skge_write16(hw, B3_PA_TOINI_TX1, SK_PKT_TO_MAX);
950 skge_write16(hw, B3_PA_TOINI_RX2, SK_PKT_TO_MAX);
951 skge_write16(hw, B3_PA_TOINI_TX2, SK_PKT_TO_MAX);
952}
953
954static void genesis_reset(struct skge_hw *hw, int port)
955{
45bada65 956 const u8 zero[8] = { 0 };
baef58b1 957
46a60f2d
SH
958 skge_write8(hw, SK_REG(port, GMAC_IRQ_MSK), 0);
959
baef58b1 960 /* reset the statistics module */
6b0c1480
SH
961 xm_write32(hw, port, XM_GP_PORT, XM_GP_RES_STAT);
962 xm_write16(hw, port, XM_IMSK, 0xffff); /* disable XMAC IRQs */
963 xm_write32(hw, port, XM_MODE, 0); /* clear Mode Reg */
964 xm_write16(hw, port, XM_TX_CMD, 0); /* reset TX CMD Reg */
965 xm_write16(hw, port, XM_RX_CMD, 0); /* reset RX CMD Reg */
baef58b1 966
89bf5f23
SH
967 /* disable Broadcom PHY IRQ */
968 xm_write16(hw, port, PHY_BCOM_INT_MASK, 0xffff);
baef58b1 969
45bada65 970 xm_outhash(hw, port, XM_HSM, zero);
baef58b1
SH
971}
972
973
45bada65
SH
974/* Convert mode to MII values */
975static const u16 phy_pause_map[] = {
976 [FLOW_MODE_NONE] = 0,
977 [FLOW_MODE_LOC_SEND] = PHY_AN_PAUSE_ASYM,
978 [FLOW_MODE_SYMMETRIC] = PHY_AN_PAUSE_CAP,
979 [FLOW_MODE_REM_SEND] = PHY_AN_PAUSE_CAP | PHY_AN_PAUSE_ASYM,
980};
981
982
983/* Check status of Broadcom phy link */
984static void bcom_check_link(struct skge_hw *hw, int port)
baef58b1 985{
45bada65
SH
986 struct net_device *dev = hw->dev[port];
987 struct skge_port *skge = netdev_priv(dev);
988 u16 status;
989
990 /* read twice because of latch */
991 (void) xm_phy_read(hw, port, PHY_BCOM_STAT);
992 status = xm_phy_read(hw, port, PHY_BCOM_STAT);
993
45bada65
SH
994 if ((status & PHY_ST_LSYNC) == 0) {
995 u16 cmd = xm_read16(hw, port, XM_MMU_CMD);
996 cmd &= ~(XM_MMU_ENA_RX | XM_MMU_ENA_TX);
997 xm_write16(hw, port, XM_MMU_CMD, cmd);
998 /* dummy read to ensure writing */
999 (void) xm_read16(hw, port, XM_MMU_CMD);
1000
1001 if (netif_carrier_ok(dev))
1002 skge_link_down(skge);
1003 } else {
1004 if (skge->autoneg == AUTONEG_ENABLE &&
1005 (status & PHY_ST_AN_OVER)) {
1006 u16 lpa = xm_phy_read(hw, port, PHY_BCOM_AUNE_LP);
1007 u16 aux = xm_phy_read(hw, port, PHY_BCOM_AUX_STAT);
1008
1009 if (lpa & PHY_B_AN_RF) {
1010 printk(KERN_NOTICE PFX "%s: remote fault\n",
1011 dev->name);
1012 return;
1013 }
1014
1015 /* Check Duplex mismatch */
2c668514 1016 switch (aux & PHY_B_AS_AN_RES_MSK) {
45bada65
SH
1017 case PHY_B_RES_1000FD:
1018 skge->duplex = DUPLEX_FULL;
1019 break;
1020 case PHY_B_RES_1000HD:
1021 skge->duplex = DUPLEX_HALF;
1022 break;
1023 default:
1024 printk(KERN_NOTICE PFX "%s: duplex mismatch\n",
1025 dev->name);
1026 return;
1027 }
1028
1029
1030 /* We are using IEEE 802.3z/D5.0 Table 37-4 */
1031 switch (aux & PHY_B_AS_PAUSE_MSK) {
1032 case PHY_B_AS_PAUSE_MSK:
1033 skge->flow_control = FLOW_MODE_SYMMETRIC;
1034 break;
1035 case PHY_B_AS_PRR:
1036 skge->flow_control = FLOW_MODE_REM_SEND;
1037 break;
1038 case PHY_B_AS_PRT:
1039 skge->flow_control = FLOW_MODE_LOC_SEND;
1040 break;
1041 default:
1042 skge->flow_control = FLOW_MODE_NONE;
1043 }
1044
1045 skge->speed = SPEED_1000;
1046 }
1047
1048 if (!netif_carrier_ok(dev))
1049 genesis_link_up(skge);
1050 }
1051}
1052
1053/* Broadcom 5400 only supports giagabit! SysKonnect did not put an additional
1054 * Phy on for 100 or 10Mbit operation
1055 */
1056static void bcom_phy_init(struct skge_port *skge, int jumbo)
1057{
1058 struct skge_hw *hw = skge->hw;
1059 int port = skge->port;
baef58b1 1060 int i;
45bada65 1061 u16 id1, r, ext, ctl;
baef58b1
SH
1062
1063 /* magic workaround patterns for Broadcom */
1064 static const struct {
1065 u16 reg;
1066 u16 val;
1067 } A1hack[] = {
1068 { 0x18, 0x0c20 }, { 0x17, 0x0012 }, { 0x15, 0x1104 },
1069 { 0x17, 0x0013 }, { 0x15, 0x0404 }, { 0x17, 0x8006 },
1070 { 0x15, 0x0132 }, { 0x17, 0x8006 }, { 0x15, 0x0232 },
1071 { 0x17, 0x800D }, { 0x15, 0x000F }, { 0x18, 0x0420 },
1072 }, C0hack[] = {
1073 { 0x18, 0x0c20 }, { 0x17, 0x0012 }, { 0x15, 0x1204 },
1074 { 0x17, 0x0013 }, { 0x15, 0x0A04 }, { 0x18, 0x0420 },
1075 };
1076
45bada65
SH
1077 /* read Id from external PHY (all have the same address) */
1078 id1 = xm_phy_read(hw, port, PHY_XMAC_ID1);
1079
1080 /* Optimize MDIO transfer by suppressing preamble. */
1081 r = xm_read16(hw, port, XM_MMU_CMD);
1082 r |= XM_MMU_NO_PRE;
1083 xm_write16(hw, port, XM_MMU_CMD,r);
1084
2c668514 1085 switch (id1) {
45bada65
SH
1086 case PHY_BCOM_ID1_C0:
1087 /*
1088 * Workaround BCOM Errata for the C0 type.
1089 * Write magic patterns to reserved registers.
1090 */
1091 for (i = 0; i < ARRAY_SIZE(C0hack); i++)
1092 xm_phy_write(hw, port,
1093 C0hack[i].reg, C0hack[i].val);
1094
1095 break;
1096 case PHY_BCOM_ID1_A1:
1097 /*
1098 * Workaround BCOM Errata for the A1 type.
1099 * Write magic patterns to reserved registers.
1100 */
1101 for (i = 0; i < ARRAY_SIZE(A1hack); i++)
1102 xm_phy_write(hw, port,
1103 A1hack[i].reg, A1hack[i].val);
1104 break;
1105 }
1106
1107 /*
1108 * Workaround BCOM Errata (#10523) for all BCom PHYs.
1109 * Disable Power Management after reset.
1110 */
1111 r = xm_phy_read(hw, port, PHY_BCOM_AUX_CTRL);
1112 r |= PHY_B_AC_DIS_PM;
1113 xm_phy_write(hw, port, PHY_BCOM_AUX_CTRL, r);
1114
1115 /* Dummy read */
1116 xm_read16(hw, port, XM_ISRC);
1117
1118 ext = PHY_B_PEC_EN_LTR; /* enable tx led */
1119 ctl = PHY_CT_SP1000; /* always 1000mbit */
1120
1121 if (skge->autoneg == AUTONEG_ENABLE) {
1122 /*
1123 * Workaround BCOM Errata #1 for the C5 type.
1124 * 1000Base-T Link Acquisition Failure in Slave Mode
1125 * Set Repeater/DTE bit 10 of the 1000Base-T Control Register
1126 */
1127 u16 adv = PHY_B_1000C_RD;
1128 if (skge->advertising & ADVERTISED_1000baseT_Half)
1129 adv |= PHY_B_1000C_AHD;
1130 if (skge->advertising & ADVERTISED_1000baseT_Full)
1131 adv |= PHY_B_1000C_AFD;
1132 xm_phy_write(hw, port, PHY_BCOM_1000T_CTRL, adv);
1133
1134 ctl |= PHY_CT_ANE | PHY_CT_RE_CFG;
1135 } else {
1136 if (skge->duplex == DUPLEX_FULL)
1137 ctl |= PHY_CT_DUP_MD;
1138 /* Force to slave */
1139 xm_phy_write(hw, port, PHY_BCOM_1000T_CTRL, PHY_B_1000C_MSE);
1140 }
1141
1142 /* Set autonegotiation pause parameters */
1143 xm_phy_write(hw, port, PHY_BCOM_AUNE_ADV,
1144 phy_pause_map[skge->flow_control] | PHY_AN_CSMA);
1145
1146 /* Handle Jumbo frames */
1147 if (jumbo) {
1148 xm_phy_write(hw, port, PHY_BCOM_AUX_CTRL,
1149 PHY_B_AC_TX_TST | PHY_B_AC_LONG_PACK);
1150
1151 ext |= PHY_B_PEC_HIGH_LA;
1152
1153 }
1154
1155 xm_phy_write(hw, port, PHY_BCOM_P_EXT_CTRL, ext);
1156 xm_phy_write(hw, port, PHY_BCOM_CTRL, ctl);
1157
8f3f8193 1158 /* Use link status change interrupt */
45bada65
SH
1159 xm_phy_write(hw, port, PHY_BCOM_INT_MASK, PHY_B_DEF_MSK);
1160
1161 bcom_check_link(hw, port);
1162}
1163
1164static void genesis_mac_init(struct skge_hw *hw, int port)
1165{
1166 struct net_device *dev = hw->dev[port];
1167 struct skge_port *skge = netdev_priv(dev);
1168 int jumbo = hw->dev[port]->mtu > ETH_DATA_LEN;
1169 int i;
1170 u32 r;
1171 const u8 zero[6] = { 0 };
1172
0781191c
SH
1173 for (i = 0; i < 10; i++) {
1174 skge_write16(hw, SK_REG(port, TX_MFF_CTRL1),
1175 MFF_SET_MAC_RST);
1176 if (skge_read16(hw, SK_REG(port, TX_MFF_CTRL1)) & MFF_SET_MAC_RST)
1177 goto reset_ok;
1178 udelay(1);
1179 }
baef58b1 1180
0781191c
SH
1181 printk(KERN_WARNING PFX "%s: genesis reset failed\n", dev->name);
1182
1183 reset_ok:
baef58b1 1184 /* Unreset the XMAC. */
6b0c1480 1185 skge_write16(hw, SK_REG(port, TX_MFF_CTRL1), MFF_CLR_MAC_RST);
baef58b1
SH
1186
1187 /*
1188 * Perform additional initialization for external PHYs,
1189 * namely for the 1000baseTX cards that use the XMAC's
1190 * GMII mode.
1191 */
45bada65 1192 /* Take external Phy out of reset */
89bf5f23
SH
1193 r = skge_read32(hw, B2_GP_IO);
1194 if (port == 0)
1195 r |= GP_DIR_0|GP_IO_0;
1196 else
1197 r |= GP_DIR_2|GP_IO_2;
1198
1199 skge_write32(hw, B2_GP_IO, r);
0781191c 1200
89bf5f23 1201
8f3f8193 1202 /* Enable GMII interface */
89bf5f23
SH
1203 xm_write16(hw, port, XM_HW_CFG, XM_HW_GMII_MD);
1204
45bada65 1205 bcom_phy_init(skge, jumbo);
89bf5f23 1206
45bada65
SH
1207 /* Set Station Address */
1208 xm_outaddr(hw, port, XM_SA, dev->dev_addr);
89bf5f23 1209
45bada65
SH
1210 /* We don't use match addresses so clear */
1211 for (i = 1; i < 16; i++)
1212 xm_outaddr(hw, port, XM_EXM(i), zero);
1213
0781191c
SH
1214 /* Clear MIB counters */
1215 xm_write16(hw, port, XM_STAT_CMD,
1216 XM_SC_CLR_RXC | XM_SC_CLR_TXC);
1217 /* Clear two times according to Errata #3 */
1218 xm_write16(hw, port, XM_STAT_CMD,
1219 XM_SC_CLR_RXC | XM_SC_CLR_TXC);
1220
45bada65
SH
1221 /* configure Rx High Water Mark (XM_RX_HI_WM) */
1222 xm_write16(hw, port, XM_RX_HI_WM, 1450);
1223
1224 /* We don't need the FCS appended to the packet. */
1225 r = XM_RX_LENERR_OK | XM_RX_STRIP_FCS;
1226 if (jumbo)
1227 r |= XM_RX_BIG_PK_OK;
89bf5f23 1228
45bada65 1229 if (skge->duplex == DUPLEX_HALF) {
89bf5f23 1230 /*
45bada65
SH
1231 * If in manual half duplex mode the other side might be in
1232 * full duplex mode, so ignore if a carrier extension is not seen
1233 * on frames received
89bf5f23 1234 */
45bada65 1235 r |= XM_RX_DIS_CEXT;
baef58b1 1236 }
45bada65 1237 xm_write16(hw, port, XM_RX_CMD, r);
baef58b1 1238
baef58b1
SH
1239
1240 /* We want short frames padded to 60 bytes. */
45bada65
SH
1241 xm_write16(hw, port, XM_TX_CMD, XM_TX_AUTO_PAD);
1242
1243 /*
1244 * Bump up the transmit threshold. This helps hold off transmit
1245 * underruns when we're blasting traffic from both ports at once.
1246 */
1247 xm_write16(hw, port, XM_TX_THR, 512);
baef58b1
SH
1248
1249 /*
1250 * Enable the reception of all error frames. This is is
1251 * a necessary evil due to the design of the XMAC. The
1252 * XMAC's receive FIFO is only 8K in size, however jumbo
1253 * frames can be up to 9000 bytes in length. When bad
1254 * frame filtering is enabled, the XMAC's RX FIFO operates
1255 * in 'store and forward' mode. For this to work, the
1256 * entire frame has to fit into the FIFO, but that means
1257 * that jumbo frames larger than 8192 bytes will be
1258 * truncated. Disabling all bad frame filtering causes
1259 * the RX FIFO to operate in streaming mode, in which
8f3f8193 1260 * case the XMAC will start transferring frames out of the
baef58b1
SH
1261 * RX FIFO as soon as the FIFO threshold is reached.
1262 */
45bada65 1263 xm_write32(hw, port, XM_MODE, XM_DEF_MODE);
baef58b1 1264
baef58b1
SH
1265
1266 /*
45bada65
SH
1267 * Initialize the Receive Counter Event Mask (XM_RX_EV_MSK)
1268 * - Enable all bits excepting 'Octets Rx OK Low CntOv'
1269 * and 'Octets Rx OK Hi Cnt Ov'.
baef58b1 1270 */
45bada65
SH
1271 xm_write32(hw, port, XM_RX_EV_MSK, XMR_DEF_MSK);
1272
1273 /*
1274 * Initialize the Transmit Counter Event Mask (XM_TX_EV_MSK)
1275 * - Enable all bits excepting 'Octets Tx OK Low CntOv'
1276 * and 'Octets Tx OK Hi Cnt Ov'.
1277 */
1278 xm_write32(hw, port, XM_TX_EV_MSK, XMT_DEF_MSK);
baef58b1
SH
1279
1280 /* Configure MAC arbiter */
1281 skge_write16(hw, B3_MA_TO_CTRL, MA_RST_CLR);
1282
1283 /* configure timeout values */
1284 skge_write8(hw, B3_MA_TOINI_RX1, 72);
1285 skge_write8(hw, B3_MA_TOINI_RX2, 72);
1286 skge_write8(hw, B3_MA_TOINI_TX1, 72);
1287 skge_write8(hw, B3_MA_TOINI_TX2, 72);
1288
1289 skge_write8(hw, B3_MA_RCINI_RX1, 0);
1290 skge_write8(hw, B3_MA_RCINI_RX2, 0);
1291 skge_write8(hw, B3_MA_RCINI_TX1, 0);
1292 skge_write8(hw, B3_MA_RCINI_TX2, 0);
1293
1294 /* Configure Rx MAC FIFO */
6b0c1480
SH
1295 skge_write8(hw, SK_REG(port, RX_MFF_CTRL2), MFF_RST_CLR);
1296 skge_write16(hw, SK_REG(port, RX_MFF_CTRL1), MFF_ENA_TIM_PAT);
1297 skge_write8(hw, SK_REG(port, RX_MFF_CTRL2), MFF_ENA_OP_MD);
baef58b1
SH
1298
1299 /* Configure Tx MAC FIFO */
6b0c1480
SH
1300 skge_write8(hw, SK_REG(port, TX_MFF_CTRL2), MFF_RST_CLR);
1301 skge_write16(hw, SK_REG(port, TX_MFF_CTRL1), MFF_TX_CTRL_DEF);
1302 skge_write8(hw, SK_REG(port, TX_MFF_CTRL2), MFF_ENA_OP_MD);
baef58b1 1303
45bada65 1304 if (jumbo) {
baef58b1 1305 /* Enable frame flushing if jumbo frames used */
6b0c1480 1306 skge_write16(hw, SK_REG(port,RX_MFF_CTRL1), MFF_ENA_FLUSH);
baef58b1
SH
1307 } else {
1308 /* enable timeout timers if normal frames */
1309 skge_write16(hw, B3_PA_CTRL,
45bada65 1310 (port == 0) ? PA_ENA_TO_TX1 : PA_ENA_TO_TX2);
baef58b1 1311 }
baef58b1
SH
1312}
1313
1314static void genesis_stop(struct skge_port *skge)
1315{
1316 struct skge_hw *hw = skge->hw;
1317 int port = skge->port;
89bf5f23 1318 u32 reg;
baef58b1 1319
46a60f2d
SH
1320 genesis_reset(hw, port);
1321
baef58b1
SH
1322 /* Clear Tx packet arbiter timeout IRQ */
1323 skge_write16(hw, B3_PA_CTRL,
1324 port == 0 ? PA_CLR_TO_TX1 : PA_CLR_TO_TX2);
1325
1326 /*
8f3f8193 1327 * If the transfer sticks at the MAC the STOP command will not
baef58b1
SH
1328 * terminate if we don't flush the XMAC's transmit FIFO !
1329 */
6b0c1480
SH
1330 xm_write32(hw, port, XM_MODE,
1331 xm_read32(hw, port, XM_MODE)|XM_MD_FTF);
baef58b1
SH
1332
1333
1334 /* Reset the MAC */
6b0c1480 1335 skge_write16(hw, SK_REG(port, TX_MFF_CTRL1), MFF_SET_MAC_RST);
baef58b1
SH
1336
1337 /* For external PHYs there must be special handling */
89bf5f23
SH
1338 reg = skge_read32(hw, B2_GP_IO);
1339 if (port == 0) {
1340 reg |= GP_DIR_0;
1341 reg &= ~GP_IO_0;
1342 } else {
1343 reg |= GP_DIR_2;
1344 reg &= ~GP_IO_2;
baef58b1 1345 }
89bf5f23
SH
1346 skge_write32(hw, B2_GP_IO, reg);
1347 skge_read32(hw, B2_GP_IO);
baef58b1 1348
6b0c1480
SH
1349 xm_write16(hw, port, XM_MMU_CMD,
1350 xm_read16(hw, port, XM_MMU_CMD)
baef58b1
SH
1351 & ~(XM_MMU_ENA_RX | XM_MMU_ENA_TX));
1352
6b0c1480 1353 xm_read16(hw, port, XM_MMU_CMD);
baef58b1
SH
1354}
1355
1356
1357static void genesis_get_stats(struct skge_port *skge, u64 *data)
1358{
1359 struct skge_hw *hw = skge->hw;
1360 int port = skge->port;
1361 int i;
1362 unsigned long timeout = jiffies + HZ;
1363
6b0c1480 1364 xm_write16(hw, port,
baef58b1
SH
1365 XM_STAT_CMD, XM_SC_SNP_TXC | XM_SC_SNP_RXC);
1366
1367 /* wait for update to complete */
6b0c1480 1368 while (xm_read16(hw, port, XM_STAT_CMD)
baef58b1
SH
1369 & (XM_SC_SNP_TXC | XM_SC_SNP_RXC)) {
1370 if (time_after(jiffies, timeout))
1371 break;
1372 udelay(10);
1373 }
1374
1375 /* special case for 64 bit octet counter */
6b0c1480
SH
1376 data[0] = (u64) xm_read32(hw, port, XM_TXO_OK_HI) << 32
1377 | xm_read32(hw, port, XM_TXO_OK_LO);
1378 data[1] = (u64) xm_read32(hw, port, XM_RXO_OK_HI) << 32
1379 | xm_read32(hw, port, XM_RXO_OK_LO);
baef58b1
SH
1380
1381 for (i = 2; i < ARRAY_SIZE(skge_stats); i++)
6b0c1480 1382 data[i] = xm_read32(hw, port, skge_stats[i].xmac_offset);
baef58b1
SH
1383}
1384
1385static void genesis_mac_intr(struct skge_hw *hw, int port)
1386{
1387 struct skge_port *skge = netdev_priv(hw->dev[port]);
6b0c1480 1388 u16 status = xm_read16(hw, port, XM_ISRC);
baef58b1 1389
7e676d91
SH
1390 if (netif_msg_intr(skge))
1391 printk(KERN_DEBUG PFX "%s: mac interrupt status 0x%x\n",
1392 skge->netdev->name, status);
baef58b1
SH
1393
1394 if (status & XM_IS_TXF_UR) {
6b0c1480 1395 xm_write32(hw, port, XM_MODE, XM_MD_FTF);
baef58b1
SH
1396 ++skge->net_stats.tx_fifo_errors;
1397 }
1398 if (status & XM_IS_RXF_OV) {
6b0c1480 1399 xm_write32(hw, port, XM_MODE, XM_MD_FRF);
baef58b1
SH
1400 ++skge->net_stats.rx_fifo_errors;
1401 }
1402}
1403
baef58b1
SH
1404static void genesis_link_up(struct skge_port *skge)
1405{
1406 struct skge_hw *hw = skge->hw;
1407 int port = skge->port;
1408 u16 cmd;
1409 u32 mode, msk;
1410
6b0c1480 1411 cmd = xm_read16(hw, port, XM_MMU_CMD);
baef58b1
SH
1412
1413 /*
1414 * enabling pause frame reception is required for 1000BT
1415 * because the XMAC is not reset if the link is going down
1416 */
1417 if (skge->flow_control == FLOW_MODE_NONE ||
1418 skge->flow_control == FLOW_MODE_LOC_SEND)
7e676d91 1419 /* Disable Pause Frame Reception */
baef58b1
SH
1420 cmd |= XM_MMU_IGN_PF;
1421 else
1422 /* Enable Pause Frame Reception */
1423 cmd &= ~XM_MMU_IGN_PF;
1424
6b0c1480 1425 xm_write16(hw, port, XM_MMU_CMD, cmd);
baef58b1 1426
6b0c1480 1427 mode = xm_read32(hw, port, XM_MODE);
baef58b1
SH
1428 if (skge->flow_control == FLOW_MODE_SYMMETRIC ||
1429 skge->flow_control == FLOW_MODE_LOC_SEND) {
1430 /*
1431 * Configure Pause Frame Generation
1432 * Use internal and external Pause Frame Generation.
1433 * Sending pause frames is edge triggered.
1434 * Send a Pause frame with the maximum pause time if
1435 * internal oder external FIFO full condition occurs.
1436 * Send a zero pause time frame to re-start transmission.
1437 */
1438 /* XM_PAUSE_DA = '010000C28001' (default) */
1439 /* XM_MAC_PTIME = 0xffff (maximum) */
1440 /* remember this value is defined in big endian (!) */
6b0c1480 1441 xm_write16(hw, port, XM_MAC_PTIME, 0xffff);
baef58b1
SH
1442
1443 mode |= XM_PAUSE_MODE;
6b0c1480 1444 skge_write16(hw, SK_REG(port, RX_MFF_CTRL1), MFF_ENA_PAUSE);
baef58b1
SH
1445 } else {
1446 /*
1447 * disable pause frame generation is required for 1000BT
1448 * because the XMAC is not reset if the link is going down
1449 */
1450 /* Disable Pause Mode in Mode Register */
1451 mode &= ~XM_PAUSE_MODE;
1452
6b0c1480 1453 skge_write16(hw, SK_REG(port, RX_MFF_CTRL1), MFF_DIS_PAUSE);
baef58b1
SH
1454 }
1455
6b0c1480 1456 xm_write32(hw, port, XM_MODE, mode);
baef58b1
SH
1457
1458 msk = XM_DEF_MSK;
89bf5f23
SH
1459 /* disable GP0 interrupt bit for external Phy */
1460 msk |= XM_IS_INP_ASS;
baef58b1 1461
6b0c1480
SH
1462 xm_write16(hw, port, XM_IMSK, msk);
1463 xm_read16(hw, port, XM_ISRC);
baef58b1
SH
1464
1465 /* get MMU Command Reg. */
6b0c1480 1466 cmd = xm_read16(hw, port, XM_MMU_CMD);
89bf5f23 1467 if (skge->duplex == DUPLEX_FULL)
baef58b1
SH
1468 cmd |= XM_MMU_GMII_FD;
1469
89bf5f23
SH
1470 /*
1471 * Workaround BCOM Errata (#10523) for all BCom Phys
1472 * Enable Power Management after link up
1473 */
1474 xm_phy_write(hw, port, PHY_BCOM_AUX_CTRL,
1475 xm_phy_read(hw, port, PHY_BCOM_AUX_CTRL)
1476 & ~PHY_B_AC_DIS_PM);
1477 xm_phy_write(hw, port, PHY_BCOM_INT_MASK, PHY_B_DEF_MSK);
baef58b1
SH
1478
1479 /* enable Rx/Tx */
6b0c1480 1480 xm_write16(hw, port, XM_MMU_CMD,
baef58b1
SH
1481 cmd | XM_MMU_ENA_RX | XM_MMU_ENA_TX);
1482 skge_link_up(skge);
1483}
1484
1485
45bada65 1486static inline void bcom_phy_intr(struct skge_port *skge)
baef58b1
SH
1487{
1488 struct skge_hw *hw = skge->hw;
1489 int port = skge->port;
45bada65
SH
1490 u16 isrc;
1491
1492 isrc = xm_phy_read(hw, port, PHY_BCOM_INT_STAT);
7e676d91
SH
1493 if (netif_msg_intr(skge))
1494 printk(KERN_DEBUG PFX "%s: phy interrupt status 0x%x\n",
1495 skge->netdev->name, isrc);
baef58b1 1496
45bada65
SH
1497 if (isrc & PHY_B_IS_PSE)
1498 printk(KERN_ERR PFX "%s: uncorrectable pair swap error\n",
1499 hw->dev[port]->name);
baef58b1
SH
1500
1501 /* Workaround BCom Errata:
1502 * enable and disable loopback mode if "NO HCD" occurs.
1503 */
45bada65 1504 if (isrc & PHY_B_IS_NO_HDCL) {
6b0c1480
SH
1505 u16 ctrl = xm_phy_read(hw, port, PHY_BCOM_CTRL);
1506 xm_phy_write(hw, port, PHY_BCOM_CTRL,
baef58b1 1507 ctrl | PHY_CT_LOOP);
6b0c1480 1508 xm_phy_write(hw, port, PHY_BCOM_CTRL,
baef58b1
SH
1509 ctrl & ~PHY_CT_LOOP);
1510 }
1511
45bada65
SH
1512 if (isrc & (PHY_B_IS_AN_PR | PHY_B_IS_LST_CHANGE))
1513 bcom_check_link(hw, port);
baef58b1 1514
baef58b1
SH
1515}
1516
2cd8e5d3
SH
1517static int gm_phy_write(struct skge_hw *hw, int port, u16 reg, u16 val)
1518{
1519 int i;
1520
1521 gma_write16(hw, port, GM_SMI_DATA, val);
1522 gma_write16(hw, port, GM_SMI_CTRL,
1523 GM_SMI_CT_PHY_AD(hw->phy_addr) | GM_SMI_CT_REG_AD(reg));
1524 for (i = 0; i < PHY_RETRIES; i++) {
1525 udelay(1);
1526
1527 if (!(gma_read16(hw, port, GM_SMI_CTRL) & GM_SMI_CT_BUSY))
1528 return 0;
1529 }
1530
1531 printk(KERN_WARNING PFX "%s: phy write timeout\n",
1532 hw->dev[port]->name);
1533 return -EIO;
1534}
1535
1536static int __gm_phy_read(struct skge_hw *hw, int port, u16 reg, u16 *val)
1537{
1538 int i;
1539
1540 gma_write16(hw, port, GM_SMI_CTRL,
1541 GM_SMI_CT_PHY_AD(hw->phy_addr)
1542 | GM_SMI_CT_REG_AD(reg) | GM_SMI_CT_OP_RD);
1543
1544 for (i = 0; i < PHY_RETRIES; i++) {
1545 udelay(1);
1546 if (gma_read16(hw, port, GM_SMI_CTRL) & GM_SMI_CT_RD_VAL)
1547 goto ready;
1548 }
1549
1550 return -ETIMEDOUT;
1551 ready:
1552 *val = gma_read16(hw, port, GM_SMI_DATA);
1553 return 0;
1554}
1555
1556static u16 gm_phy_read(struct skge_hw *hw, int port, u16 reg)
1557{
1558 u16 v = 0;
1559 if (__gm_phy_read(hw, port, reg, &v))
1560 printk(KERN_WARNING PFX "%s: phy read timeout\n",
1561 hw->dev[port]->name);
1562 return v;
1563}
1564
8f3f8193 1565/* Marvell Phy Initialization */
baef58b1
SH
1566static void yukon_init(struct skge_hw *hw, int port)
1567{
1568 struct skge_port *skge = netdev_priv(hw->dev[port]);
1569 u16 ctrl, ct1000, adv;
baef58b1 1570
baef58b1 1571 if (skge->autoneg == AUTONEG_ENABLE) {
6b0c1480 1572 u16 ectrl = gm_phy_read(hw, port, PHY_MARV_EXT_CTRL);
baef58b1
SH
1573
1574 ectrl &= ~(PHY_M_EC_M_DSC_MSK | PHY_M_EC_S_DSC_MSK |
1575 PHY_M_EC_MAC_S_MSK);
1576 ectrl |= PHY_M_EC_MAC_S(MAC_TX_CLK_25_MHZ);
1577
c506a509 1578 ectrl |= PHY_M_EC_M_DSC(0) | PHY_M_EC_S_DSC(1);
baef58b1 1579
6b0c1480 1580 gm_phy_write(hw, port, PHY_MARV_EXT_CTRL, ectrl);
baef58b1
SH
1581 }
1582
6b0c1480 1583 ctrl = gm_phy_read(hw, port, PHY_MARV_CTRL);
baef58b1
SH
1584 if (skge->autoneg == AUTONEG_DISABLE)
1585 ctrl &= ~PHY_CT_ANE;
1586
1587 ctrl |= PHY_CT_RESET;
6b0c1480 1588 gm_phy_write(hw, port, PHY_MARV_CTRL, ctrl);
baef58b1
SH
1589
1590 ctrl = 0;
1591 ct1000 = 0;
b18f2091 1592 adv = PHY_AN_CSMA;
baef58b1
SH
1593
1594 if (skge->autoneg == AUTONEG_ENABLE) {
5e1705dd 1595 if (hw->copper) {
baef58b1
SH
1596 if (skge->advertising & ADVERTISED_1000baseT_Full)
1597 ct1000 |= PHY_M_1000C_AFD;
1598 if (skge->advertising & ADVERTISED_1000baseT_Half)
1599 ct1000 |= PHY_M_1000C_AHD;
1600 if (skge->advertising & ADVERTISED_100baseT_Full)
1601 adv |= PHY_M_AN_100_FD;
1602 if (skge->advertising & ADVERTISED_100baseT_Half)
1603 adv |= PHY_M_AN_100_HD;
1604 if (skge->advertising & ADVERTISED_10baseT_Full)
1605 adv |= PHY_M_AN_10_FD;
1606 if (skge->advertising & ADVERTISED_10baseT_Half)
1607 adv |= PHY_M_AN_10_HD;
45bada65 1608 } else /* special defines for FIBER (88E1011S only) */
baef58b1
SH
1609 adv |= PHY_M_AN_1000X_AHD | PHY_M_AN_1000X_AFD;
1610
45bada65
SH
1611 /* Set Flow-control capabilities */
1612 adv |= phy_pause_map[skge->flow_control];
1613
baef58b1
SH
1614 /* Restart Auto-negotiation */
1615 ctrl |= PHY_CT_ANE | PHY_CT_RE_CFG;
1616 } else {
1617 /* forced speed/duplex settings */
1618 ct1000 = PHY_M_1000C_MSE;
1619
1620 if (skge->duplex == DUPLEX_FULL)
1621 ctrl |= PHY_CT_DUP_MD;
1622
1623 switch (skge->speed) {
1624 case SPEED_1000:
1625 ctrl |= PHY_CT_SP1000;
1626 break;
1627 case SPEED_100:
1628 ctrl |= PHY_CT_SP100;
1629 break;
1630 }
1631
1632 ctrl |= PHY_CT_RESET;
1633 }
1634
c506a509 1635 gm_phy_write(hw, port, PHY_MARV_1000T_CTRL, ct1000);
baef58b1 1636
6b0c1480
SH
1637 gm_phy_write(hw, port, PHY_MARV_AUNE_ADV, adv);
1638 gm_phy_write(hw, port, PHY_MARV_CTRL, ctrl);
baef58b1 1639
baef58b1
SH
1640 /* Enable phy interrupt on autonegotiation complete (or link up) */
1641 if (skge->autoneg == AUTONEG_ENABLE)
4cde06ed 1642 gm_phy_write(hw, port, PHY_MARV_INT_MASK, PHY_M_IS_AN_MSK);
baef58b1 1643 else
4cde06ed 1644 gm_phy_write(hw, port, PHY_MARV_INT_MASK, PHY_M_IS_DEF_MSK);
baef58b1
SH
1645}
1646
1647static void yukon_reset(struct skge_hw *hw, int port)
1648{
6b0c1480
SH
1649 gm_phy_write(hw, port, PHY_MARV_INT_MASK, 0);/* disable PHY IRQs */
1650 gma_write16(hw, port, GM_MC_ADDR_H1, 0); /* clear MC hash */
1651 gma_write16(hw, port, GM_MC_ADDR_H2, 0);
1652 gma_write16(hw, port, GM_MC_ADDR_H3, 0);
1653 gma_write16(hw, port, GM_MC_ADDR_H4, 0);
baef58b1 1654
6b0c1480
SH
1655 gma_write16(hw, port, GM_RX_CTRL,
1656 gma_read16(hw, port, GM_RX_CTRL)
baef58b1
SH
1657 | GM_RXCR_UCF_ENA | GM_RXCR_MCF_ENA);
1658}
1659
c8868611
SH
1660/* Apparently, early versions of Yukon-Lite had wrong chip_id? */
1661static int is_yukon_lite_a0(struct skge_hw *hw)
1662{
1663 u32 reg;
1664 int ret;
1665
1666 if (hw->chip_id != CHIP_ID_YUKON)
1667 return 0;
1668
1669 reg = skge_read32(hw, B2_FAR);
1670 skge_write8(hw, B2_FAR + 3, 0xff);
1671 ret = (skge_read8(hw, B2_FAR + 3) != 0);
1672 skge_write32(hw, B2_FAR, reg);
1673 return ret;
1674}
1675
baef58b1
SH
1676static void yukon_mac_init(struct skge_hw *hw, int port)
1677{
1678 struct skge_port *skge = netdev_priv(hw->dev[port]);
1679 int i;
1680 u32 reg;
1681 const u8 *addr = hw->dev[port]->dev_addr;
1682
1683 /* WA code for COMA mode -- set PHY reset */
1684 if (hw->chip_id == CHIP_ID_YUKON_LITE &&
46a60f2d
SH
1685 hw->chip_rev >= CHIP_REV_YU_LITE_A3) {
1686 reg = skge_read32(hw, B2_GP_IO);
1687 reg |= GP_DIR_9 | GP_IO_9;
1688 skge_write32(hw, B2_GP_IO, reg);
1689 }
baef58b1
SH
1690
1691 /* hard reset */
6b0c1480
SH
1692 skge_write32(hw, SK_REG(port, GPHY_CTRL), GPC_RST_SET);
1693 skge_write32(hw, SK_REG(port, GMAC_CTRL), GMC_RST_SET);
baef58b1
SH
1694
1695 /* WA code for COMA mode -- clear PHY reset */
1696 if (hw->chip_id == CHIP_ID_YUKON_LITE &&
46a60f2d
SH
1697 hw->chip_rev >= CHIP_REV_YU_LITE_A3) {
1698 reg = skge_read32(hw, B2_GP_IO);
1699 reg |= GP_DIR_9;
1700 reg &= ~GP_IO_9;
1701 skge_write32(hw, B2_GP_IO, reg);
1702 }
baef58b1
SH
1703
1704 /* Set hardware config mode */
1705 reg = GPC_INT_POL_HI | GPC_DIS_FC | GPC_DIS_SLEEP |
1706 GPC_ENA_XC | GPC_ANEG_ADV_ALL_M | GPC_ENA_PAUSE;
5e1705dd 1707 reg |= hw->copper ? GPC_HWCFG_GMII_COP : GPC_HWCFG_GMII_FIB;
baef58b1
SH
1708
1709 /* Clear GMC reset */
6b0c1480
SH
1710 skge_write32(hw, SK_REG(port, GPHY_CTRL), reg | GPC_RST_SET);
1711 skge_write32(hw, SK_REG(port, GPHY_CTRL), reg | GPC_RST_CLR);
1712 skge_write32(hw, SK_REG(port, GMAC_CTRL), GMC_PAUSE_ON | GMC_RST_CLR);
564f9abb 1713
baef58b1
SH
1714 if (skge->autoneg == AUTONEG_DISABLE) {
1715 reg = GM_GPCR_AU_ALL_DIS;
6b0c1480
SH
1716 gma_write16(hw, port, GM_GP_CTRL,
1717 gma_read16(hw, port, GM_GP_CTRL) | reg);
baef58b1
SH
1718
1719 switch (skge->speed) {
1720 case SPEED_1000:
564f9abb 1721 reg &= ~GM_GPCR_SPEED_100;
baef58b1 1722 reg |= GM_GPCR_SPEED_1000;
564f9abb 1723 break;
baef58b1 1724 case SPEED_100:
564f9abb 1725 reg &= ~GM_GPCR_SPEED_1000;
baef58b1 1726 reg |= GM_GPCR_SPEED_100;
564f9abb
SH
1727 break;
1728 case SPEED_10:
1729 reg &= ~(GM_GPCR_SPEED_1000 | GM_GPCR_SPEED_100);
1730 break;
baef58b1
SH
1731 }
1732
1733 if (skge->duplex == DUPLEX_FULL)
1734 reg |= GM_GPCR_DUP_FULL;
1735 } else
1736 reg = GM_GPCR_SPEED_1000 | GM_GPCR_SPEED_100 | GM_GPCR_DUP_FULL;
564f9abb 1737
baef58b1
SH
1738 switch (skge->flow_control) {
1739 case FLOW_MODE_NONE:
6b0c1480 1740 skge_write32(hw, SK_REG(port, GMAC_CTRL), GMC_PAUSE_OFF);
baef58b1
SH
1741 reg |= GM_GPCR_FC_TX_DIS | GM_GPCR_FC_RX_DIS | GM_GPCR_AU_FCT_DIS;
1742 break;
1743 case FLOW_MODE_LOC_SEND:
1744 /* disable Rx flow-control */
1745 reg |= GM_GPCR_FC_RX_DIS | GM_GPCR_AU_FCT_DIS;
1746 }
1747
6b0c1480 1748 gma_write16(hw, port, GM_GP_CTRL, reg);
46a60f2d 1749 skge_read16(hw, SK_REG(port, GMAC_IRQ_SRC));
baef58b1 1750
baef58b1 1751 yukon_init(hw, port);
baef58b1
SH
1752
1753 /* MIB clear */
6b0c1480
SH
1754 reg = gma_read16(hw, port, GM_PHY_ADDR);
1755 gma_write16(hw, port, GM_PHY_ADDR, reg | GM_PAR_MIB_CLR);
baef58b1
SH
1756
1757 for (i = 0; i < GM_MIB_CNT_SIZE; i++)
6b0c1480
SH
1758 gma_read16(hw, port, GM_MIB_CNT_BASE + 8*i);
1759 gma_write16(hw, port, GM_PHY_ADDR, reg);
baef58b1
SH
1760
1761 /* transmit control */
6b0c1480 1762 gma_write16(hw, port, GM_TX_CTRL, TX_COL_THR(TX_COL_DEF));
baef58b1
SH
1763
1764 /* receive control reg: unicast + multicast + no FCS */
6b0c1480 1765 gma_write16(hw, port, GM_RX_CTRL,
baef58b1
SH
1766 GM_RXCR_UCF_ENA | GM_RXCR_CRC_DIS | GM_RXCR_MCF_ENA);
1767
1768 /* transmit flow control */
6b0c1480 1769 gma_write16(hw, port, GM_TX_FLOW_CTRL, 0xffff);
baef58b1
SH
1770
1771 /* transmit parameter */
6b0c1480 1772 gma_write16(hw, port, GM_TX_PARAM,
baef58b1
SH
1773 TX_JAM_LEN_VAL(TX_JAM_LEN_DEF) |
1774 TX_JAM_IPG_VAL(TX_JAM_IPG_DEF) |
1775 TX_IPG_JAM_DATA(TX_IPG_JAM_DEF));
1776
1777 /* serial mode register */
1778 reg = GM_SMOD_VLAN_ENA | IPG_DATA_VAL(IPG_DATA_DEF);
1779 if (hw->dev[port]->mtu > 1500)
1780 reg |= GM_SMOD_JUMBO_ENA;
1781
6b0c1480 1782 gma_write16(hw, port, GM_SERIAL_MODE, reg);
baef58b1
SH
1783
1784 /* physical address: used for pause frames */
6b0c1480 1785 gma_set_addr(hw, port, GM_SRC_ADDR_1L, addr);
baef58b1 1786 /* virtual address for data */
6b0c1480 1787 gma_set_addr(hw, port, GM_SRC_ADDR_2L, addr);
baef58b1
SH
1788
1789 /* enable interrupt mask for counter overflows */
6b0c1480
SH
1790 gma_write16(hw, port, GM_TX_IRQ_MSK, 0);
1791 gma_write16(hw, port, GM_RX_IRQ_MSK, 0);
1792 gma_write16(hw, port, GM_TR_IRQ_MSK, 0);
baef58b1
SH
1793
1794 /* Initialize Mac Fifo */
1795
1796 /* Configure Rx MAC FIFO */
6b0c1480 1797 skge_write16(hw, SK_REG(port, RX_GMF_FL_MSK), RX_FF_FL_DEF_MSK);
baef58b1 1798 reg = GMF_OPER_ON | GMF_RX_F_FL_ON;
c8868611
SH
1799
1800 /* disable Rx GMAC FIFO Flush for YUKON-Lite Rev. A0 only */
1801 if (is_yukon_lite_a0(hw))
baef58b1 1802 reg &= ~GMF_RX_F_FL_ON;
c8868611 1803
6b0c1480
SH
1804 skge_write8(hw, SK_REG(port, RX_GMF_CTRL_T), GMF_RST_CLR);
1805 skge_write16(hw, SK_REG(port, RX_GMF_CTRL_T), reg);
c5923081
SH
1806 /*
1807 * because Pause Packet Truncation in GMAC is not working
1808 * we have to increase the Flush Threshold to 64 bytes
1809 * in order to flush pause packets in Rx FIFO on Yukon-1
1810 */
1811 skge_write16(hw, SK_REG(port, RX_GMF_FL_THR), RX_GMF_FL_THR_DEF+1);
baef58b1
SH
1812
1813 /* Configure Tx MAC FIFO */
6b0c1480
SH
1814 skge_write8(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_RST_CLR);
1815 skge_write16(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_OPER_ON);
baef58b1
SH
1816}
1817
355ec572
SH
1818/* Go into power down mode */
1819static void yukon_suspend(struct skge_hw *hw, int port)
1820{
1821 u16 ctrl;
1822
1823 ctrl = gm_phy_read(hw, port, PHY_MARV_PHY_CTRL);
1824 ctrl |= PHY_M_PC_POL_R_DIS;
1825 gm_phy_write(hw, port, PHY_MARV_PHY_CTRL, ctrl);
1826
1827 ctrl = gm_phy_read(hw, port, PHY_MARV_CTRL);
1828 ctrl |= PHY_CT_RESET;
1829 gm_phy_write(hw, port, PHY_MARV_CTRL, ctrl);
1830
1831 /* switch IEEE compatible power down mode on */
1832 ctrl = gm_phy_read(hw, port, PHY_MARV_CTRL);
1833 ctrl |= PHY_CT_PDOWN;
1834 gm_phy_write(hw, port, PHY_MARV_CTRL, ctrl);
1835}
1836
baef58b1
SH
1837static void yukon_stop(struct skge_port *skge)
1838{
1839 struct skge_hw *hw = skge->hw;
1840 int port = skge->port;
1841
46a60f2d
SH
1842 skge_write8(hw, SK_REG(port, GMAC_IRQ_MSK), 0);
1843 yukon_reset(hw, port);
baef58b1 1844
6b0c1480
SH
1845 gma_write16(hw, port, GM_GP_CTRL,
1846 gma_read16(hw, port, GM_GP_CTRL)
0eedf4ac 1847 & ~(GM_GPCR_TX_ENA|GM_GPCR_RX_ENA));
6b0c1480 1848 gma_read16(hw, port, GM_GP_CTRL);
baef58b1 1849
355ec572 1850 yukon_suspend(hw, port);
46a60f2d 1851
baef58b1 1852 /* set GPHY Control reset */
46a60f2d
SH
1853 skge_write8(hw, SK_REG(port, GPHY_CTRL), GPC_RST_SET);
1854 skge_write8(hw, SK_REG(port, GMAC_CTRL), GMC_RST_SET);
baef58b1
SH
1855}
1856
1857static void yukon_get_stats(struct skge_port *skge, u64 *data)
1858{
1859 struct skge_hw *hw = skge->hw;
1860 int port = skge->port;
1861 int i;
1862
6b0c1480
SH
1863 data[0] = (u64) gma_read32(hw, port, GM_TXO_OK_HI) << 32
1864 | gma_read32(hw, port, GM_TXO_OK_LO);
1865 data[1] = (u64) gma_read32(hw, port, GM_RXO_OK_HI) << 32
1866 | gma_read32(hw, port, GM_RXO_OK_LO);
baef58b1
SH
1867
1868 for (i = 2; i < ARRAY_SIZE(skge_stats); i++)
6b0c1480 1869 data[i] = gma_read32(hw, port,
baef58b1
SH
1870 skge_stats[i].gma_offset);
1871}
1872
1873static void yukon_mac_intr(struct skge_hw *hw, int port)
1874{
7e676d91
SH
1875 struct net_device *dev = hw->dev[port];
1876 struct skge_port *skge = netdev_priv(dev);
6b0c1480 1877 u8 status = skge_read8(hw, SK_REG(port, GMAC_IRQ_SRC));
baef58b1 1878
7e676d91
SH
1879 if (netif_msg_intr(skge))
1880 printk(KERN_DEBUG PFX "%s: mac interrupt status 0x%x\n",
1881 dev->name, status);
1882
baef58b1
SH
1883 if (status & GM_IS_RX_FF_OR) {
1884 ++skge->net_stats.rx_fifo_errors;
d8a09943 1885 skge_write8(hw, SK_REG(port, RX_GMF_CTRL_T), GMF_CLI_RX_FO);
baef58b1 1886 }
d8a09943 1887
baef58b1
SH
1888 if (status & GM_IS_TX_FF_UR) {
1889 ++skge->net_stats.tx_fifo_errors;
d8a09943 1890 skge_write8(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_CLI_TX_FU);
baef58b1
SH
1891 }
1892
1893}
1894
1895static u16 yukon_speed(const struct skge_hw *hw, u16 aux)
1896{
95566065 1897 switch (aux & PHY_M_PS_SPEED_MSK) {
baef58b1
SH
1898 case PHY_M_PS_SPEED_1000:
1899 return SPEED_1000;
1900 case PHY_M_PS_SPEED_100:
1901 return SPEED_100;
1902 default:
1903 return SPEED_10;
1904 }
1905}
1906
1907static void yukon_link_up(struct skge_port *skge)
1908{
1909 struct skge_hw *hw = skge->hw;
1910 int port = skge->port;
1911 u16 reg;
1912
baef58b1 1913 /* Enable Transmit FIFO Underrun */
46a60f2d 1914 skge_write8(hw, SK_REG(port, GMAC_IRQ_MSK), GMAC_DEF_MSK);
baef58b1 1915
6b0c1480 1916 reg = gma_read16(hw, port, GM_GP_CTRL);
baef58b1
SH
1917 if (skge->duplex == DUPLEX_FULL || skge->autoneg == AUTONEG_ENABLE)
1918 reg |= GM_GPCR_DUP_FULL;
1919
1920 /* enable Rx/Tx */
1921 reg |= GM_GPCR_RX_ENA | GM_GPCR_TX_ENA;
6b0c1480 1922 gma_write16(hw, port, GM_GP_CTRL, reg);
baef58b1 1923
4cde06ed 1924 gm_phy_write(hw, port, PHY_MARV_INT_MASK, PHY_M_IS_DEF_MSK);
baef58b1
SH
1925 skge_link_up(skge);
1926}
1927
1928static void yukon_link_down(struct skge_port *skge)
1929{
1930 struct skge_hw *hw = skge->hw;
1931 int port = skge->port;
d8a09943 1932 u16 ctrl;
baef58b1 1933
6b0c1480 1934 gm_phy_write(hw, port, PHY_MARV_INT_MASK, 0);
d8a09943
SH
1935
1936 ctrl = gma_read16(hw, port, GM_GP_CTRL);
1937 ctrl &= ~(GM_GPCR_RX_ENA | GM_GPCR_TX_ENA);
1938 gma_write16(hw, port, GM_GP_CTRL, ctrl);
baef58b1 1939
c506a509 1940 if (skge->flow_control == FLOW_MODE_REM_SEND) {
baef58b1 1941 /* restore Asymmetric Pause bit */
6b0c1480
SH
1942 gm_phy_write(hw, port, PHY_MARV_AUNE_ADV,
1943 gm_phy_read(hw, port,
baef58b1
SH
1944 PHY_MARV_AUNE_ADV)
1945 | PHY_M_AN_ASP);
1946
1947 }
1948
1949 yukon_reset(hw, port);
1950 skge_link_down(skge);
1951
1952 yukon_init(hw, port);
1953}
1954
1955static void yukon_phy_intr(struct skge_port *skge)
1956{
1957 struct skge_hw *hw = skge->hw;
1958 int port = skge->port;
1959 const char *reason = NULL;
1960 u16 istatus, phystat;
1961
6b0c1480
SH
1962 istatus = gm_phy_read(hw, port, PHY_MARV_INT_STAT);
1963 phystat = gm_phy_read(hw, port, PHY_MARV_PHY_STAT);
7e676d91
SH
1964
1965 if (netif_msg_intr(skge))
1966 printk(KERN_DEBUG PFX "%s: phy interrupt status 0x%x 0x%x\n",
1967 skge->netdev->name, istatus, phystat);
baef58b1
SH
1968
1969 if (istatus & PHY_M_IS_AN_COMPL) {
6b0c1480 1970 if (gm_phy_read(hw, port, PHY_MARV_AUNE_LP)
baef58b1
SH
1971 & PHY_M_AN_RF) {
1972 reason = "remote fault";
1973 goto failed;
1974 }
1975
c506a509 1976 if (gm_phy_read(hw, port, PHY_MARV_1000T_STAT) & PHY_B_1000S_MSF) {
baef58b1
SH
1977 reason = "master/slave fault";
1978 goto failed;
1979 }
1980
1981 if (!(phystat & PHY_M_PS_SPDUP_RES)) {
1982 reason = "speed/duplex";
1983 goto failed;
1984 }
1985
1986 skge->duplex = (phystat & PHY_M_PS_FULL_DUP)
1987 ? DUPLEX_FULL : DUPLEX_HALF;
1988 skge->speed = yukon_speed(hw, phystat);
1989
baef58b1
SH
1990 /* We are using IEEE 802.3z/D5.0 Table 37-4 */
1991 switch (phystat & PHY_M_PS_PAUSE_MSK) {
1992 case PHY_M_PS_PAUSE_MSK:
1993 skge->flow_control = FLOW_MODE_SYMMETRIC;
1994 break;
1995 case PHY_M_PS_RX_P_EN:
1996 skge->flow_control = FLOW_MODE_REM_SEND;
1997 break;
1998 case PHY_M_PS_TX_P_EN:
1999 skge->flow_control = FLOW_MODE_LOC_SEND;
2000 break;
2001 default:
2002 skge->flow_control = FLOW_MODE_NONE;
2003 }
2004
2005 if (skge->flow_control == FLOW_MODE_NONE ||
2006 (skge->speed < SPEED_1000 && skge->duplex == DUPLEX_HALF))
6b0c1480 2007 skge_write8(hw, SK_REG(port, GMAC_CTRL), GMC_PAUSE_OFF);
baef58b1 2008 else
6b0c1480 2009 skge_write8(hw, SK_REG(port, GMAC_CTRL), GMC_PAUSE_ON);
baef58b1
SH
2010 yukon_link_up(skge);
2011 return;
2012 }
2013
2014 if (istatus & PHY_M_IS_LSP_CHANGE)
2015 skge->speed = yukon_speed(hw, phystat);
2016
2017 if (istatus & PHY_M_IS_DUP_CHANGE)
2018 skge->duplex = (phystat & PHY_M_PS_FULL_DUP) ? DUPLEX_FULL : DUPLEX_HALF;
2019 if (istatus & PHY_M_IS_LST_CHANGE) {
2020 if (phystat & PHY_M_PS_LINK_UP)
2021 yukon_link_up(skge);
2022 else
2023 yukon_link_down(skge);
2024 }
2025 return;
2026 failed:
2027 printk(KERN_ERR PFX "%s: autonegotiation failed (%s)\n",
2028 skge->netdev->name, reason);
2029
2030 /* XXX restart autonegotiation? */
2031}
2032
ee294dcd
SH
2033static void skge_phy_reset(struct skge_port *skge)
2034{
2035 struct skge_hw *hw = skge->hw;
2036 int port = skge->port;
2037
2038 netif_stop_queue(skge->netdev);
2039 netif_carrier_off(skge->netdev);
2040
2041 spin_lock_bh(&hw->phy_lock);
2042 if (hw->chip_id == CHIP_ID_GENESIS) {
2043 genesis_reset(hw, port);
2044 genesis_mac_init(hw, port);
2045 } else {
2046 yukon_reset(hw, port);
2047 yukon_init(hw, port);
2048 }
2049 spin_unlock_bh(&hw->phy_lock);
2050}
2051
2cd8e5d3
SH
2052/* Basic MII support */
2053static int skge_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
2054{
2055 struct mii_ioctl_data *data = if_mii(ifr);
2056 struct skge_port *skge = netdev_priv(dev);
2057 struct skge_hw *hw = skge->hw;
2058 int err = -EOPNOTSUPP;
2059
2060 if (!netif_running(dev))
2061 return -ENODEV; /* Phy still in reset */
2062
2063 switch(cmd) {
2064 case SIOCGMIIPHY:
2065 data->phy_id = hw->phy_addr;
2066
2067 /* fallthru */
2068 case SIOCGMIIREG: {
2069 u16 val = 0;
2070 spin_lock_bh(&hw->phy_lock);
2071 if (hw->chip_id == CHIP_ID_GENESIS)
2072 err = __xm_phy_read(hw, skge->port, data->reg_num & 0x1f, &val);
2073 else
2074 err = __gm_phy_read(hw, skge->port, data->reg_num & 0x1f, &val);
2075 spin_unlock_bh(&hw->phy_lock);
2076 data->val_out = val;
2077 break;
2078 }
2079
2080 case SIOCSMIIREG:
2081 if (!capable(CAP_NET_ADMIN))
2082 return -EPERM;
2083
2084 spin_lock_bh(&hw->phy_lock);
2085 if (hw->chip_id == CHIP_ID_GENESIS)
2086 err = xm_phy_write(hw, skge->port, data->reg_num & 0x1f,
2087 data->val_in);
2088 else
2089 err = gm_phy_write(hw, skge->port, data->reg_num & 0x1f,
2090 data->val_in);
2091 spin_unlock_bh(&hw->phy_lock);
2092 break;
2093 }
2094 return err;
2095}
2096
baef58b1
SH
2097static void skge_ramset(struct skge_hw *hw, u16 q, u32 start, size_t len)
2098{
2099 u32 end;
2100
2101 start /= 8;
2102 len /= 8;
2103 end = start + len - 1;
2104
2105 skge_write8(hw, RB_ADDR(q, RB_CTRL), RB_RST_CLR);
2106 skge_write32(hw, RB_ADDR(q, RB_START), start);
2107 skge_write32(hw, RB_ADDR(q, RB_WP), start);
2108 skge_write32(hw, RB_ADDR(q, RB_RP), start);
2109 skge_write32(hw, RB_ADDR(q, RB_END), end);
2110
2111 if (q == Q_R1 || q == Q_R2) {
2112 /* Set thresholds on receive queue's */
2113 skge_write32(hw, RB_ADDR(q, RB_RX_UTPP),
2114 start + (2*len)/3);
2115 skge_write32(hw, RB_ADDR(q, RB_RX_LTPP),
2116 start + (len/3));
2117 } else {
2118 /* Enable store & forward on Tx queue's because
2119 * Tx FIFO is only 4K on Genesis and 1K on Yukon
2120 */
2121 skge_write8(hw, RB_ADDR(q, RB_CTRL), RB_ENA_STFWD);
2122 }
2123
2124 skge_write8(hw, RB_ADDR(q, RB_CTRL), RB_ENA_OP_MD);
2125}
2126
2127/* Setup Bus Memory Interface */
2128static void skge_qset(struct skge_port *skge, u16 q,
2129 const struct skge_element *e)
2130{
2131 struct skge_hw *hw = skge->hw;
2132 u32 watermark = 0x600;
2133 u64 base = skge->dma + (e->desc - skge->mem);
2134
2135 /* optimization to reduce window on 32bit/33mhz */
2136 if ((skge_read16(hw, B0_CTST) & (CS_BUS_CLOCK | CS_BUS_SLOT_SZ)) == 0)
2137 watermark /= 2;
2138
2139 skge_write32(hw, Q_ADDR(q, Q_CSR), CSR_CLR_RESET);
2140 skge_write32(hw, Q_ADDR(q, Q_F), watermark);
2141 skge_write32(hw, Q_ADDR(q, Q_DA_H), (u32)(base >> 32));
2142 skge_write32(hw, Q_ADDR(q, Q_DA_L), (u32)base);
2143}
2144
2145static int skge_up(struct net_device *dev)
2146{
2147 struct skge_port *skge = netdev_priv(dev);
2148 struct skge_hw *hw = skge->hw;
2149 int port = skge->port;
2150 u32 chunk, ram_addr;
2151 size_t rx_size, tx_size;
2152 int err;
2153
2154 if (netif_msg_ifup(skge))
2155 printk(KERN_INFO PFX "%s: enabling interface\n", dev->name);
2156
19a33d4e
SH
2157 if (dev->mtu > RX_BUF_SIZE)
2158 skge->rx_buf_size = dev->mtu + ETH_HLEN + NET_IP_ALIGN;
2159 else
2160 skge->rx_buf_size = RX_BUF_SIZE;
2161
2162
baef58b1
SH
2163 rx_size = skge->rx_ring.count * sizeof(struct skge_rx_desc);
2164 tx_size = skge->tx_ring.count * sizeof(struct skge_tx_desc);
2165 skge->mem_size = tx_size + rx_size;
2166 skge->mem = pci_alloc_consistent(hw->pdev, skge->mem_size, &skge->dma);
2167 if (!skge->mem)
2168 return -ENOMEM;
2169
c3da1447
SH
2170 BUG_ON(skge->dma & 7);
2171
2172 if ((u64)skge->dma >> 32 != ((u64) skge->dma + skge->mem_size) >> 32) {
2173 printk(KERN_ERR PFX "pci_alloc_consistent region crosses 4G boundary\n");
2174 err = -EINVAL;
2175 goto free_pci_mem;
2176 }
2177
baef58b1
SH
2178 memset(skge->mem, 0, skge->mem_size);
2179
2180 if ((err = skge_ring_alloc(&skge->rx_ring, skge->mem, skge->dma)))
2181 goto free_pci_mem;
2182
19a33d4e
SH
2183 err = skge_rx_fill(skge);
2184 if (err)
baef58b1
SH
2185 goto free_rx_ring;
2186
2187 if ((err = skge_ring_alloc(&skge->tx_ring, skge->mem + rx_size,
2188 skge->dma + rx_size)))
2189 goto free_rx_ring;
2190
2191 skge->tx_avail = skge->tx_ring.count - 1;
2192
8f3f8193 2193 /* Initialize MAC */
4ff6ac05 2194 spin_lock_bh(&hw->phy_lock);
baef58b1
SH
2195 if (hw->chip_id == CHIP_ID_GENESIS)
2196 genesis_mac_init(hw, port);
2197 else
2198 yukon_mac_init(hw, port);
4ff6ac05 2199 spin_unlock_bh(&hw->phy_lock);
baef58b1
SH
2200
2201 /* Configure RAMbuffers */
981d0377 2202 chunk = hw->ram_size / ((hw->ports + 1)*2);
baef58b1
SH
2203 ram_addr = hw->ram_offset + 2 * chunk * port;
2204
2205 skge_ramset(hw, rxqaddr[port], ram_addr, chunk);
2206 skge_qset(skge, rxqaddr[port], skge->rx_ring.to_clean);
2207
2208 BUG_ON(skge->tx_ring.to_use != skge->tx_ring.to_clean);
2209 skge_ramset(hw, txqaddr[port], ram_addr+chunk, chunk);
2210 skge_qset(skge, txqaddr[port], skge->tx_ring.to_use);
2211
2212 /* Start receiver BMU */
2213 wmb();
2214 skge_write8(hw, Q_ADDR(rxqaddr[port], Q_CSR), CSR_START | CSR_IRQ_CL_F);
6abebb53 2215 skge_led(skge, LED_MODE_ON);
baef58b1 2216
baef58b1
SH
2217 return 0;
2218
2219 free_rx_ring:
2220 skge_rx_clean(skge);
2221 kfree(skge->rx_ring.start);
2222 free_pci_mem:
2223 pci_free_consistent(hw->pdev, skge->mem_size, skge->mem, skge->dma);
7731a4ea 2224 skge->mem = NULL;
baef58b1
SH
2225
2226 return err;
2227}
2228
2229static int skge_down(struct net_device *dev)
2230{
2231 struct skge_port *skge = netdev_priv(dev);
2232 struct skge_hw *hw = skge->hw;
2233 int port = skge->port;
2234
7731a4ea
SH
2235 if (skge->mem == NULL)
2236 return 0;
2237
baef58b1
SH
2238 if (netif_msg_ifdown(skge))
2239 printk(KERN_INFO PFX "%s: disabling interface\n", dev->name);
2240
2241 netif_stop_queue(dev);
2242
46a60f2d
SH
2243 skge_write8(skge->hw, SK_REG(skge->port, LNK_LED_REG), LED_OFF);
2244 if (hw->chip_id == CHIP_ID_GENESIS)
2245 genesis_stop(skge);
2246 else
2247 yukon_stop(skge);
2248
baef58b1
SH
2249 /* Stop transmitter */
2250 skge_write8(hw, Q_ADDR(txqaddr[port], Q_CSR), CSR_STOP);
2251 skge_write32(hw, RB_ADDR(txqaddr[port], RB_CTRL),
2252 RB_RST_SET|RB_DIS_OP_MD);
2253
baef58b1
SH
2254
2255 /* Disable Force Sync bit and Enable Alloc bit */
6b0c1480 2256 skge_write8(hw, SK_REG(port, TXA_CTRL),
baef58b1
SH
2257 TXA_DIS_FSYNC | TXA_DIS_ALLOC | TXA_STOP_RC);
2258
2259 /* Stop Interval Timer and Limit Counter of Tx Arbiter */
6b0c1480
SH
2260 skge_write32(hw, SK_REG(port, TXA_ITI_INI), 0L);
2261 skge_write32(hw, SK_REG(port, TXA_LIM_INI), 0L);
baef58b1
SH
2262
2263 /* Reset PCI FIFO */
2264 skge_write32(hw, Q_ADDR(txqaddr[port], Q_CSR), CSR_SET_RESET);
2265 skge_write32(hw, RB_ADDR(txqaddr[port], RB_CTRL), RB_RST_SET);
2266
2267 /* Reset the RAM Buffer async Tx queue */
2268 skge_write8(hw, RB_ADDR(port == 0 ? Q_XA1 : Q_XA2, RB_CTRL), RB_RST_SET);
2269 /* stop receiver */
2270 skge_write8(hw, Q_ADDR(rxqaddr[port], Q_CSR), CSR_STOP);
2271 skge_write32(hw, RB_ADDR(port ? Q_R2 : Q_R1, RB_CTRL),
2272 RB_RST_SET|RB_DIS_OP_MD);
2273 skge_write32(hw, Q_ADDR(rxqaddr[port], Q_CSR), CSR_SET_RESET);
2274
2275 if (hw->chip_id == CHIP_ID_GENESIS) {
6b0c1480
SH
2276 skge_write8(hw, SK_REG(port, TX_MFF_CTRL2), MFF_RST_SET);
2277 skge_write8(hw, SK_REG(port, RX_MFF_CTRL2), MFF_RST_SET);
baef58b1 2278 } else {
6b0c1480
SH
2279 skge_write8(hw, SK_REG(port, RX_GMF_CTRL_T), GMF_RST_SET);
2280 skge_write8(hw, SK_REG(port, TX_GMF_CTRL_T), GMF_RST_SET);
baef58b1
SH
2281 }
2282
6abebb53 2283 skge_led(skge, LED_MODE_OFF);
baef58b1
SH
2284
2285 skge_tx_clean(skge);
2286 skge_rx_clean(skge);
2287
2288 kfree(skge->rx_ring.start);
2289 kfree(skge->tx_ring.start);
2290 pci_free_consistent(hw->pdev, skge->mem_size, skge->mem, skge->dma);
7731a4ea 2291 skge->mem = NULL;
baef58b1
SH
2292 return 0;
2293}
2294
2295static int skge_xmit_frame(struct sk_buff *skb, struct net_device *dev)
2296{
2297 struct skge_port *skge = netdev_priv(dev);
2298 struct skge_hw *hw = skge->hw;
2299 struct skge_ring *ring = &skge->tx_ring;
2300 struct skge_element *e;
2301 struct skge_tx_desc *td;
2302 int i;
2303 u32 control, len;
2304 u64 map;
baef58b1
SH
2305
2306 skb = skb_padto(skb, ETH_ZLEN);
2307 if (!skb)
2308 return NETDEV_TX_OK;
2309
baef58b1 2310 if (!spin_trylock(&skge->tx_lock)) {
95566065 2311 /* Collision - tell upper layer to requeue */
95566065
SH
2312 return NETDEV_TX_LOCKED;
2313 }
baef58b1
SH
2314
2315 if (unlikely(skge->tx_avail < skb_shinfo(skb)->nr_frags +1)) {
98684a9d 2316 if (!netif_queue_stopped(dev)) {
ee1c8191 2317 netif_stop_queue(dev);
baef58b1 2318
ee1c8191
SH
2319 printk(KERN_WARNING PFX "%s: ring full when queue awake!\n",
2320 dev->name);
2321 }
00a6cae2 2322 spin_unlock(&skge->tx_lock);
baef58b1
SH
2323 return NETDEV_TX_BUSY;
2324 }
2325
2326 e = ring->to_use;
2327 td = e->desc;
2328 e->skb = skb;
2329 len = skb_headlen(skb);
2330 map = pci_map_single(hw->pdev, skb->data, len, PCI_DMA_TODEVICE);
2331 pci_unmap_addr_set(e, mapaddr, map);
2332 pci_unmap_len_set(e, maplen, len);
2333
2334 td->dma_lo = map;
2335 td->dma_hi = map >> 32;
2336
2337 if (skb->ip_summed == CHECKSUM_HW) {
baef58b1
SH
2338 int offset = skb->h.raw - skb->data;
2339
2340 /* This seems backwards, but it is what the sk98lin
2341 * does. Looks like hardware is wrong?
2342 */
ea182d4a 2343 if (skb->h.ipiph->protocol == IPPROTO_UDP
981d0377 2344 && hw->chip_rev == 0 && hw->chip_id == CHIP_ID_YUKON)
baef58b1
SH
2345 control = BMU_TCP_CHECK;
2346 else
2347 control = BMU_UDP_CHECK;
2348
2349 td->csum_offs = 0;
2350 td->csum_start = offset;
2351 td->csum_write = offset + skb->csum;
2352 } else
2353 control = BMU_CHECK;
2354
2355 if (!skb_shinfo(skb)->nr_frags) /* single buffer i.e. no fragments */
2356 control |= BMU_EOF| BMU_IRQ_EOF;
2357 else {
2358 struct skge_tx_desc *tf = td;
2359
2360 control |= BMU_STFWD;
2361 for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
2362 skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
2363
2364 map = pci_map_page(hw->pdev, frag->page, frag->page_offset,
2365 frag->size, PCI_DMA_TODEVICE);
2366
2367 e = e->next;
2368 e->skb = NULL;
2369 tf = e->desc;
2370 tf->dma_lo = map;
2371 tf->dma_hi = (u64) map >> 32;
2372 pci_unmap_addr_set(e, mapaddr, map);
2373 pci_unmap_len_set(e, maplen, frag->size);
2374
2375 tf->control = BMU_OWN | BMU_SW | control | frag->size;
2376 }
2377 tf->control |= BMU_EOF | BMU_IRQ_EOF;
2378 }
2379 /* Make sure all the descriptors written */
2380 wmb();
2381 td->control = BMU_OWN | BMU_SW | BMU_STF | control | len;
2382 wmb();
2383
2384 skge_write8(hw, Q_ADDR(txqaddr[skge->port], Q_CSR), CSR_START);
2385
2386 if (netif_msg_tx_queued(skge))
0b2d7fea 2387 printk(KERN_DEBUG "%s: tx queued, slot %td, len %d\n",
baef58b1
SH
2388 dev->name, e - ring->start, skb->len);
2389
2390 ring->to_use = e->next;
2391 skge->tx_avail -= skb_shinfo(skb)->nr_frags + 1;
2392 if (skge->tx_avail <= MAX_SKB_FRAGS + 1) {
2393 pr_debug("%s: transmit queue full\n", dev->name);
2394 netif_stop_queue(dev);
2395 }
2396
c68ce71a 2397 mmiowb();
00a6cae2 2398 spin_unlock(&skge->tx_lock);
baef58b1 2399
c68ce71a
SH
2400 dev->trans_start = jiffies;
2401
baef58b1
SH
2402 return NETDEV_TX_OK;
2403}
2404
2405static inline void skge_tx_free(struct skge_hw *hw, struct skge_element *e)
2406{
19a33d4e 2407 /* This ring element can be skb or fragment */
baef58b1
SH
2408 if (e->skb) {
2409 pci_unmap_single(hw->pdev,
2410 pci_unmap_addr(e, mapaddr),
2411 pci_unmap_len(e, maplen),
2412 PCI_DMA_TODEVICE);
00a6cae2 2413 dev_kfree_skb(e->skb);
baef58b1
SH
2414 e->skb = NULL;
2415 } else {
2416 pci_unmap_page(hw->pdev,
2417 pci_unmap_addr(e, mapaddr),
2418 pci_unmap_len(e, maplen),
2419 PCI_DMA_TODEVICE);
2420 }
2421}
2422
2423static void skge_tx_clean(struct skge_port *skge)
2424{
2425 struct skge_ring *ring = &skge->tx_ring;
2426 struct skge_element *e;
baef58b1 2427
00a6cae2 2428 spin_lock_bh(&skge->tx_lock);
baef58b1
SH
2429 for (e = ring->to_clean; e != ring->to_use; e = e->next) {
2430 ++skge->tx_avail;
2431 skge_tx_free(skge->hw, e);
2432 }
2433 ring->to_clean = e;
00a6cae2 2434 spin_unlock_bh(&skge->tx_lock);
baef58b1
SH
2435}
2436
2437static void skge_tx_timeout(struct net_device *dev)
2438{
2439 struct skge_port *skge = netdev_priv(dev);
2440
2441 if (netif_msg_timer(skge))
2442 printk(KERN_DEBUG PFX "%s: tx timeout\n", dev->name);
2443
2444 skge_write8(skge->hw, Q_ADDR(txqaddr[skge->port], Q_CSR), CSR_STOP);
2445 skge_tx_clean(skge);
2446}
2447
2448static int skge_change_mtu(struct net_device *dev, int new_mtu)
2449{
7731a4ea 2450 int err;
baef58b1 2451
95566065 2452 if (new_mtu < ETH_ZLEN || new_mtu > ETH_JUMBO_MTU)
baef58b1
SH
2453 return -EINVAL;
2454
7731a4ea
SH
2455 if (!netif_running(dev)) {
2456 dev->mtu = new_mtu;
2457 return 0;
2458 }
2459
2460 skge_down(dev);
baef58b1 2461
19a33d4e 2462 dev->mtu = new_mtu;
7731a4ea
SH
2463
2464 err = skge_up(dev);
2465 if (err)
2466 dev_close(dev);
baef58b1
SH
2467
2468 return err;
2469}
2470
2471static void genesis_set_multicast(struct net_device *dev)
2472{
2473 struct skge_port *skge = netdev_priv(dev);
2474 struct skge_hw *hw = skge->hw;
2475 int port = skge->port;
2476 int i, count = dev->mc_count;
2477 struct dev_mc_list *list = dev->mc_list;
2478 u32 mode;
2479 u8 filter[8];
2480
6b0c1480 2481 mode = xm_read32(hw, port, XM_MODE);
baef58b1
SH
2482 mode |= XM_MD_ENA_HASH;
2483 if (dev->flags & IFF_PROMISC)
2484 mode |= XM_MD_ENA_PROM;
2485 else
2486 mode &= ~XM_MD_ENA_PROM;
2487
2488 if (dev->flags & IFF_ALLMULTI)
2489 memset(filter, 0xff, sizeof(filter));
2490 else {
2491 memset(filter, 0, sizeof(filter));
95566065 2492 for (i = 0; list && i < count; i++, list = list->next) {
45bada65
SH
2493 u32 crc, bit;
2494 crc = ether_crc_le(ETH_ALEN, list->dmi_addr);
2495 bit = ~crc & 0x3f;
baef58b1
SH
2496 filter[bit/8] |= 1 << (bit%8);
2497 }
2498 }
2499
6b0c1480 2500 xm_write32(hw, port, XM_MODE, mode);
45bada65 2501 xm_outhash(hw, port, XM_HSM, filter);
baef58b1
SH
2502}
2503
2504static void yukon_set_multicast(struct net_device *dev)
2505{
2506 struct skge_port *skge = netdev_priv(dev);
2507 struct skge_hw *hw = skge->hw;
2508 int port = skge->port;
2509 struct dev_mc_list *list = dev->mc_list;
2510 u16 reg;
2511 u8 filter[8];
2512
2513 memset(filter, 0, sizeof(filter));
2514
6b0c1480 2515 reg = gma_read16(hw, port, GM_RX_CTRL);
baef58b1
SH
2516 reg |= GM_RXCR_UCF_ENA;
2517
8f3f8193 2518 if (dev->flags & IFF_PROMISC) /* promiscuous */
baef58b1
SH
2519 reg &= ~(GM_RXCR_UCF_ENA | GM_RXCR_MCF_ENA);
2520 else if (dev->flags & IFF_ALLMULTI) /* all multicast */
2521 memset(filter, 0xff, sizeof(filter));
2522 else if (dev->mc_count == 0) /* no multicast */
2523 reg &= ~GM_RXCR_MCF_ENA;
2524 else {
2525 int i;
2526 reg |= GM_RXCR_MCF_ENA;
2527
95566065 2528 for (i = 0; list && i < dev->mc_count; i++, list = list->next) {
baef58b1
SH
2529 u32 bit = ether_crc(ETH_ALEN, list->dmi_addr) & 0x3f;
2530 filter[bit/8] |= 1 << (bit%8);
2531 }
2532 }
2533
2534
6b0c1480 2535 gma_write16(hw, port, GM_MC_ADDR_H1,
baef58b1 2536 (u16)filter[0] | ((u16)filter[1] << 8));
6b0c1480 2537 gma_write16(hw, port, GM_MC_ADDR_H2,
baef58b1 2538 (u16)filter[2] | ((u16)filter[3] << 8));
6b0c1480 2539 gma_write16(hw, port, GM_MC_ADDR_H3,
baef58b1 2540 (u16)filter[4] | ((u16)filter[5] << 8));
6b0c1480 2541 gma_write16(hw, port, GM_MC_ADDR_H4,
baef58b1
SH
2542 (u16)filter[6] | ((u16)filter[7] << 8));
2543
6b0c1480 2544 gma_write16(hw, port, GM_RX_CTRL, reg);
baef58b1
SH
2545}
2546
383181ac
SH
2547static inline u16 phy_length(const struct skge_hw *hw, u32 status)
2548{
2549 if (hw->chip_id == CHIP_ID_GENESIS)
2550 return status >> XMR_FS_LEN_SHIFT;
2551 else
2552 return status >> GMR_FS_LEN_SHIFT;
2553}
2554
baef58b1
SH
2555static inline int bad_phy_status(const struct skge_hw *hw, u32 status)
2556{
2557 if (hw->chip_id == CHIP_ID_GENESIS)
2558 return (status & (XMR_FS_ERR | XMR_FS_2L_VLAN)) != 0;
2559 else
2560 return (status & GMR_FS_ANY_ERR) ||
2561 (status & GMR_FS_RX_OK) == 0;
2562}
2563
19a33d4e
SH
2564
2565/* Get receive buffer from descriptor.
2566 * Handles copy of small buffers and reallocation failures
2567 */
2568static inline struct sk_buff *skge_rx_get(struct skge_port *skge,
2569 struct skge_element *e,
383181ac 2570 u32 control, u32 status, u16 csum)
19a33d4e 2571{
383181ac
SH
2572 struct sk_buff *skb;
2573 u16 len = control & BMU_BBC;
2574
2575 if (unlikely(netif_msg_rx_status(skge)))
2576 printk(KERN_DEBUG PFX "%s: rx slot %td status 0x%x len %d\n",
2577 skge->netdev->name, e - skge->rx_ring.start,
2578 status, len);
2579
2580 if (len > skge->rx_buf_size)
2581 goto error;
2582
2583 if ((control & (BMU_EOF|BMU_STF)) != (BMU_STF|BMU_EOF))
2584 goto error;
2585
2586 if (bad_phy_status(skge->hw, status))
2587 goto error;
2588
2589 if (phy_length(skge->hw, status) != len)
2590 goto error;
19a33d4e
SH
2591
2592 if (len < RX_COPY_THRESHOLD) {
383181ac
SH
2593 skb = dev_alloc_skb(len + 2);
2594 if (!skb)
2595 goto resubmit;
19a33d4e 2596
383181ac 2597 skb_reserve(skb, 2);
19a33d4e
SH
2598 pci_dma_sync_single_for_cpu(skge->hw->pdev,
2599 pci_unmap_addr(e, mapaddr),
2600 len, PCI_DMA_FROMDEVICE);
383181ac 2601 memcpy(skb->data, e->skb->data, len);
19a33d4e
SH
2602 pci_dma_sync_single_for_device(skge->hw->pdev,
2603 pci_unmap_addr(e, mapaddr),
2604 len, PCI_DMA_FROMDEVICE);
19a33d4e 2605 skge_rx_reuse(e, skge->rx_buf_size);
19a33d4e 2606 } else {
383181ac
SH
2607 struct sk_buff *nskb;
2608 nskb = dev_alloc_skb(skge->rx_buf_size + NET_IP_ALIGN);
2609 if (!nskb)
2610 goto resubmit;
19a33d4e
SH
2611
2612 pci_unmap_single(skge->hw->pdev,
2613 pci_unmap_addr(e, mapaddr),
2614 pci_unmap_len(e, maplen),
2615 PCI_DMA_FROMDEVICE);
2616 skb = e->skb;
383181ac 2617 prefetch(skb->data);
19a33d4e 2618 skge_rx_setup(skge, e, nskb, skge->rx_buf_size);
baef58b1 2619 }
383181ac
SH
2620
2621 skb_put(skb, len);
2622 skb->dev = skge->netdev;
2623 if (skge->rx_csum) {
2624 skb->csum = csum;
2625 skb->ip_summed = CHECKSUM_HW;
2626 }
2627
2628 skb->protocol = eth_type_trans(skb, skge->netdev);
2629
2630 return skb;
2631error:
2632
2633 if (netif_msg_rx_err(skge))
2634 printk(KERN_DEBUG PFX "%s: rx err, slot %td control 0x%x status 0x%x\n",
2635 skge->netdev->name, e - skge->rx_ring.start,
2636 control, status);
2637
2638 if (skge->hw->chip_id == CHIP_ID_GENESIS) {
2639 if (status & (XMR_FS_RUNT|XMR_FS_LNG_ERR))
2640 skge->net_stats.rx_length_errors++;
2641 if (status & XMR_FS_FRA_ERR)
2642 skge->net_stats.rx_frame_errors++;
2643 if (status & XMR_FS_FCS_ERR)
2644 skge->net_stats.rx_crc_errors++;
2645 } else {
2646 if (status & (GMR_FS_LONG_ERR|GMR_FS_UN_SIZE))
2647 skge->net_stats.rx_length_errors++;
2648 if (status & GMR_FS_FRAGMENT)
2649 skge->net_stats.rx_frame_errors++;
2650 if (status & GMR_FS_CRC_ERR)
2651 skge->net_stats.rx_crc_errors++;
2652 }
2653
2654resubmit:
2655 skge_rx_reuse(e, skge->rx_buf_size);
2656 return NULL;
baef58b1
SH
2657}
2658
00a6cae2
SH
2659static void skge_tx_done(struct skge_port *skge)
2660{
2661 struct skge_ring *ring = &skge->tx_ring;
2662 struct skge_element *e;
2663
2664 spin_lock(&skge->tx_lock);
2665 for (e = ring->to_clean; prefetch(e->next), e != ring->to_use; e = e->next) {
2666 struct skge_tx_desc *td = e->desc;
2667 u32 control;
2668
2669 rmb();
2670 control = td->control;
2671 if (control & BMU_OWN)
2672 break;
2673
2674 if (unlikely(netif_msg_tx_done(skge)))
2675 printk(KERN_DEBUG PFX "%s: tx done slot %td status 0x%x\n",
2676 skge->netdev->name, e - ring->start, td->status);
2677
2678 skge_tx_free(skge->hw, e);
2679 e->skb = NULL;
2680 ++skge->tx_avail;
2681 }
2682 ring->to_clean = e;
2683 skge_write8(skge->hw, Q_ADDR(txqaddr[skge->port], Q_CSR), CSR_IRQ_CL_F);
2684
2685 if (skge->tx_avail > MAX_SKB_FRAGS + 1)
2686 netif_wake_queue(skge->netdev);
2687
2688 spin_unlock(&skge->tx_lock);
2689}
19a33d4e 2690
baef58b1
SH
2691static int skge_poll(struct net_device *dev, int *budget)
2692{
2693 struct skge_port *skge = netdev_priv(dev);
2694 struct skge_hw *hw = skge->hw;
2695 struct skge_ring *ring = &skge->rx_ring;
2696 struct skge_element *e;
00a6cae2
SH
2697 int to_do = min(dev->quota, *budget);
2698 int work_done = 0;
2699
2700 skge_tx_done(skge);
7e676d91 2701
1631aef1 2702 for (e = ring->to_clean; prefetch(e->next), work_done < to_do; e = e->next) {
baef58b1 2703 struct skge_rx_desc *rd = e->desc;
19a33d4e 2704 struct sk_buff *skb;
383181ac 2705 u32 control;
baef58b1
SH
2706
2707 rmb();
2708 control = rd->control;
2709 if (control & BMU_OWN)
2710 break;
2711
383181ac
SH
2712 skb = skge_rx_get(skge, e, control, rd->status,
2713 le16_to_cpu(rd->csum2));
19a33d4e 2714 if (likely(skb)) {
19a33d4e
SH
2715 dev->last_rx = jiffies;
2716 netif_receive_skb(skb);
baef58b1 2717
19a33d4e
SH
2718 ++work_done;
2719 } else
2720 skge_rx_reuse(e, skge->rx_buf_size);
baef58b1
SH
2721 }
2722 ring->to_clean = e;
2723
baef58b1
SH
2724 /* restart receiver */
2725 wmb();
a9cdab86 2726 skge_write8(hw, Q_ADDR(rxqaddr[skge->port], Q_CSR), CSR_START);
baef58b1 2727
19a33d4e
SH
2728 *budget -= work_done;
2729 dev->quota -= work_done;
2730
2731 if (work_done >= to_do)
2732 return 1; /* not done */
baef58b1 2733
cfc3ed79 2734 netif_rx_complete(dev);
c68ce71a
SH
2735 mmiowb();
2736
cfc3ed79 2737 hw->intr_mask |= skge->port == 0 ? (IS_R1_F|IS_XA1_F) : (IS_R2_F|IS_XA2_F);
80dd857d 2738 skge_write32(hw, B0_IMSK, hw->intr_mask);
1631aef1 2739
19a33d4e 2740 return 0;
baef58b1
SH
2741}
2742
f6620cab
SH
2743/* Parity errors seem to happen when Genesis is connected to a switch
2744 * with no other ports present. Heartbeat error??
2745 */
baef58b1
SH
2746static void skge_mac_parity(struct skge_hw *hw, int port)
2747{
f6620cab
SH
2748 struct net_device *dev = hw->dev[port];
2749
2750 if (dev) {
2751 struct skge_port *skge = netdev_priv(dev);
2752 ++skge->net_stats.tx_heartbeat_errors;
2753 }
baef58b1
SH
2754
2755 if (hw->chip_id == CHIP_ID_GENESIS)
6b0c1480 2756 skge_write16(hw, SK_REG(port, TX_MFF_CTRL1),
baef58b1
SH
2757 MFF_CLR_PERR);
2758 else
2759 /* HW-Bug #8: cleared by GMF_CLI_TX_FC instead of GMF_CLI_TX_PE */
6b0c1480 2760 skge_write8(hw, SK_REG(port, TX_GMF_CTRL_T),
981d0377 2761 (hw->chip_id == CHIP_ID_YUKON && hw->chip_rev == 0)
baef58b1
SH
2762 ? GMF_CLI_TX_FC : GMF_CLI_TX_PE);
2763}
2764
2765static void skge_pci_clear(struct skge_hw *hw)
2766{
2767 u16 status;
2768
467b3417 2769 pci_read_config_word(hw->pdev, PCI_STATUS, &status);
baef58b1 2770 skge_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_ON);
467b3417
SH
2771 pci_write_config_word(hw->pdev, PCI_STATUS,
2772 status | PCI_STATUS_ERROR_BITS);
baef58b1
SH
2773 skge_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_OFF);
2774}
2775
2776static void skge_mac_intr(struct skge_hw *hw, int port)
2777{
95566065 2778 if (hw->chip_id == CHIP_ID_GENESIS)
baef58b1
SH
2779 genesis_mac_intr(hw, port);
2780 else
2781 yukon_mac_intr(hw, port);
2782}
2783
2784/* Handle device specific framing and timeout interrupts */
2785static void skge_error_irq(struct skge_hw *hw)
2786{
2787 u32 hwstatus = skge_read32(hw, B0_HWE_ISRC);
2788
2789 if (hw->chip_id == CHIP_ID_GENESIS) {
2790 /* clear xmac errors */
2791 if (hwstatus & (IS_NO_STAT_M1|IS_NO_TIST_M1))
46a60f2d 2792 skge_write16(hw, RX_MFF_CTRL1, MFF_CLR_INSTAT);
baef58b1 2793 if (hwstatus & (IS_NO_STAT_M2|IS_NO_TIST_M2))
46a60f2d 2794 skge_write16(hw, RX_MFF_CTRL2, MFF_CLR_INSTAT);
baef58b1
SH
2795 } else {
2796 /* Timestamp (unused) overflow */
2797 if (hwstatus & IS_IRQ_TIST_OV)
2798 skge_write8(hw, GMAC_TI_ST_CTRL, GMT_ST_CLR_IRQ);
baef58b1
SH
2799 }
2800
2801 if (hwstatus & IS_RAM_RD_PAR) {
2802 printk(KERN_ERR PFX "Ram read data parity error\n");
2803 skge_write16(hw, B3_RI_CTRL, RI_CLR_RD_PERR);
2804 }
2805
2806 if (hwstatus & IS_RAM_WR_PAR) {
2807 printk(KERN_ERR PFX "Ram write data parity error\n");
2808 skge_write16(hw, B3_RI_CTRL, RI_CLR_WR_PERR);
2809 }
2810
2811 if (hwstatus & IS_M1_PAR_ERR)
2812 skge_mac_parity(hw, 0);
2813
2814 if (hwstatus & IS_M2_PAR_ERR)
2815 skge_mac_parity(hw, 1);
2816
2817 if (hwstatus & IS_R1_PAR_ERR)
2818 skge_write32(hw, B0_R1_CSR, CSR_IRQ_CL_P);
2819
2820 if (hwstatus & IS_R2_PAR_ERR)
2821 skge_write32(hw, B0_R2_CSR, CSR_IRQ_CL_P);
2822
2823 if (hwstatus & (IS_IRQ_MST_ERR|IS_IRQ_STAT)) {
2824 printk(KERN_ERR PFX "hardware error detected (status 0x%x)\n",
2825 hwstatus);
2826
2827 skge_pci_clear(hw);
2828
050ec18a 2829 /* if error still set then just ignore it */
baef58b1
SH
2830 hwstatus = skge_read32(hw, B0_HWE_ISRC);
2831 if (hwstatus & IS_IRQ_STAT) {
050ec18a 2832 pr_debug("IRQ status %x: still set ignoring hardware errors\n",
baef58b1
SH
2833 hwstatus);
2834 hw->intr_mask &= ~IS_HW_ERR;
2835 }
2836 }
2837}
2838
2839/*
8f3f8193 2840 * Interrupt from PHY are handled in tasklet (soft irq)
baef58b1
SH
2841 * because accessing phy registers requires spin wait which might
2842 * cause excess interrupt latency.
2843 */
2844static void skge_extirq(unsigned long data)
2845{
2846 struct skge_hw *hw = (struct skge_hw *) data;
2847 int port;
2848
2849 spin_lock(&hw->phy_lock);
cfc3ed79 2850 for (port = 0; port < hw->ports; port++) {
baef58b1 2851 struct net_device *dev = hw->dev[port];
cfc3ed79 2852 struct skge_port *skge = netdev_priv(dev);
baef58b1 2853
cfc3ed79 2854 if (netif_running(dev)) {
baef58b1
SH
2855 if (hw->chip_id != CHIP_ID_GENESIS)
2856 yukon_phy_intr(skge);
89bf5f23 2857 else
45bada65 2858 bcom_phy_intr(skge);
baef58b1
SH
2859 }
2860 }
2861 spin_unlock(&hw->phy_lock);
2862
baef58b1
SH
2863 hw->intr_mask |= IS_EXT_REG;
2864 skge_write32(hw, B0_IMSK, hw->intr_mask);
baef58b1
SH
2865}
2866
2867static irqreturn_t skge_intr(int irq, void *dev_id, struct pt_regs *regs)
2868{
2869 struct skge_hw *hw = dev_id;
cfc3ed79 2870 u32 status;
baef58b1 2871
cfc3ed79
SH
2872 /* Reading this register masks IRQ */
2873 status = skge_read32(hw, B0_SP_ISRC);
2874 if (status == 0)
baef58b1
SH
2875 return IRQ_NONE;
2876
cfc3ed79
SH
2877 if (status & IS_EXT_REG) {
2878 hw->intr_mask &= ~IS_EXT_REG;
2879 tasklet_schedule(&hw->ext_tasklet);
2880 }
2881
00a6cae2 2882 if (status & (IS_R1_F|IS_XA1_F)) {
a9cdab86 2883 skge_write8(hw, Q_ADDR(Q_R1, Q_CSR), CSR_IRQ_CL_F);
00a6cae2 2884 hw->intr_mask &= ~(IS_R1_F|IS_XA1_F);
a9cdab86 2885 netif_rx_schedule(hw->dev[0]);
baef58b1
SH
2886 }
2887
00a6cae2 2888 if (status & (IS_R2_F|IS_XA2_F)) {
a9cdab86 2889 skge_write8(hw, Q_ADDR(Q_R2, Q_CSR), CSR_IRQ_CL_F);
00a6cae2 2890 hw->intr_mask &= ~(IS_R2_F|IS_XA2_F);
a9cdab86 2891 netif_rx_schedule(hw->dev[1]);
baef58b1
SH
2892 }
2893
cfc3ed79
SH
2894 if (likely((status & hw->intr_mask) == 0))
2895 return IRQ_HANDLED;
2896
d25f5a67
SH
2897 if (status & IS_PA_TO_RX1) {
2898 struct skge_port *skge = netdev_priv(hw->dev[0]);
2899 ++skge->net_stats.rx_over_errors;
2900 skge_write16(hw, B3_PA_CTRL, PA_CLR_TO_RX1);
2901 }
2902
2903 if (status & IS_PA_TO_RX2) {
2904 struct skge_port *skge = netdev_priv(hw->dev[1]);
2905 ++skge->net_stats.rx_over_errors;
2906 skge_write16(hw, B3_PA_CTRL, PA_CLR_TO_RX2);
2907 }
2908
2909 if (status & IS_PA_TO_TX1)
2910 skge_write16(hw, B3_PA_CTRL, PA_CLR_TO_TX1);
2911
2912 if (status & IS_PA_TO_TX2)
2913 skge_write16(hw, B3_PA_CTRL, PA_CLR_TO_TX2);
2914
baef58b1
SH
2915 if (status & IS_MAC1)
2916 skge_mac_intr(hw, 0);
95566065 2917
baef58b1
SH
2918 if (status & IS_MAC2)
2919 skge_mac_intr(hw, 1);
2920
2921 if (status & IS_HW_ERR)
2922 skge_error_irq(hw);
2923
7e676d91 2924 skge_write32(hw, B0_IMSK, hw->intr_mask);
baef58b1
SH
2925
2926 return IRQ_HANDLED;
2927}
2928
2929#ifdef CONFIG_NET_POLL_CONTROLLER
2930static void skge_netpoll(struct net_device *dev)
2931{
2932 struct skge_port *skge = netdev_priv(dev);
2933
2934 disable_irq(dev->irq);
2935 skge_intr(dev->irq, skge->hw, NULL);
2936 enable_irq(dev->irq);
2937}
2938#endif
2939
2940static int skge_set_mac_address(struct net_device *dev, void *p)
2941{
2942 struct skge_port *skge = netdev_priv(dev);
c2681dd8
SH
2943 struct skge_hw *hw = skge->hw;
2944 unsigned port = skge->port;
2945 const struct sockaddr *addr = p;
baef58b1
SH
2946
2947 if (!is_valid_ether_addr(addr->sa_data))
2948 return -EADDRNOTAVAIL;
2949
c2681dd8 2950 spin_lock_bh(&hw->phy_lock);
baef58b1 2951 memcpy(dev->dev_addr, addr->sa_data, ETH_ALEN);
c2681dd8 2952 memcpy_toio(hw->regs + B2_MAC_1 + port*8,
baef58b1 2953 dev->dev_addr, ETH_ALEN);
c2681dd8 2954 memcpy_toio(hw->regs + B2_MAC_2 + port*8,
baef58b1 2955 dev->dev_addr, ETH_ALEN);
c2681dd8
SH
2956
2957 if (hw->chip_id == CHIP_ID_GENESIS)
2958 xm_outaddr(hw, port, XM_SA, dev->dev_addr);
2959 else {
2960 gma_set_addr(hw, port, GM_SRC_ADDR_1L, dev->dev_addr);
2961 gma_set_addr(hw, port, GM_SRC_ADDR_2L, dev->dev_addr);
2962 }
2963 spin_unlock_bh(&hw->phy_lock);
2964
2965 return 0;
baef58b1
SH
2966}
2967
2968static const struct {
2969 u8 id;
2970 const char *name;
2971} skge_chips[] = {
2972 { CHIP_ID_GENESIS, "Genesis" },
2973 { CHIP_ID_YUKON, "Yukon" },
2974 { CHIP_ID_YUKON_LITE, "Yukon-Lite"},
2975 { CHIP_ID_YUKON_LP, "Yukon-LP"},
baef58b1
SH
2976};
2977
2978static const char *skge_board_name(const struct skge_hw *hw)
2979{
2980 int i;
2981 static char buf[16];
2982
2983 for (i = 0; i < ARRAY_SIZE(skge_chips); i++)
2984 if (skge_chips[i].id == hw->chip_id)
2985 return skge_chips[i].name;
2986
2987 snprintf(buf, sizeof buf, "chipid 0x%x", hw->chip_id);
2988 return buf;
2989}
2990
2991
2992/*
2993 * Setup the board data structure, but don't bring up
2994 * the port(s)
2995 */
2996static int skge_reset(struct skge_hw *hw)
2997{
adba9e23 2998 u32 reg;
baef58b1 2999 u16 ctst;
5e1705dd 3000 u8 t8, mac_cfg, pmd_type, phy_type;
981d0377 3001 int i;
baef58b1
SH
3002
3003 ctst = skge_read16(hw, B0_CTST);
3004
3005 /* do a SW reset */
3006 skge_write8(hw, B0_CTST, CS_RST_SET);
3007 skge_write8(hw, B0_CTST, CS_RST_CLR);
3008
3009 /* clear PCI errors, if any */
3010 skge_pci_clear(hw);
3011
3012 skge_write8(hw, B0_CTST, CS_MRST_CLR);
3013
3014 /* restore CLK_RUN bits (for Yukon-Lite) */
3015 skge_write16(hw, B0_CTST,
3016 ctst & (CS_CLK_RUN_HOT|CS_CLK_RUN_RST|CS_CLK_RUN_ENA));
3017
3018 hw->chip_id = skge_read8(hw, B2_CHIP_ID);
5e1705dd
SH
3019 phy_type = skge_read8(hw, B2_E_1) & 0xf;
3020 pmd_type = skge_read8(hw, B2_PMD_TYP);
3021 hw->copper = (pmd_type == 'T' || pmd_type == '1');
baef58b1 3022
95566065 3023 switch (hw->chip_id) {
baef58b1 3024 case CHIP_ID_GENESIS:
5e1705dd 3025 switch (phy_type) {
baef58b1
SH
3026 case SK_PHY_BCOM:
3027 hw->phy_addr = PHY_ADDR_BCOM;
3028 break;
3029 default:
3030 printk(KERN_ERR PFX "%s: unsupported phy type 0x%x\n",
5e1705dd 3031 pci_name(hw->pdev), phy_type);
baef58b1
SH
3032 return -EOPNOTSUPP;
3033 }
3034 break;
3035
3036 case CHIP_ID_YUKON:
3037 case CHIP_ID_YUKON_LITE:
3038 case CHIP_ID_YUKON_LP:
5e1705dd
SH
3039 if (phy_type < SK_PHY_MARV_COPPER && pmd_type != 'S')
3040 hw->copper = 1;
baef58b1
SH
3041
3042 hw->phy_addr = PHY_ADDR_MARV;
baef58b1
SH
3043 break;
3044
3045 default:
3046 printk(KERN_ERR PFX "%s: unsupported chip type 0x%x\n",
3047 pci_name(hw->pdev), hw->chip_id);
3048 return -EOPNOTSUPP;
3049 }
3050
981d0377
SH
3051 mac_cfg = skge_read8(hw, B2_MAC_CFG);
3052 hw->ports = (mac_cfg & CFG_SNG_MAC) ? 1 : 2;
3053 hw->chip_rev = (mac_cfg & CFG_CHIP_R_MSK) >> 4;
baef58b1
SH
3054
3055 /* read the adapters RAM size */
3056 t8 = skge_read8(hw, B2_E_0);
3057 if (hw->chip_id == CHIP_ID_GENESIS) {
3058 if (t8 == 3) {
3059 /* special case: 4 x 64k x 36, offset = 0x80000 */
3060 hw->ram_size = 0x100000;
3061 hw->ram_offset = 0x80000;
3062 } else
3063 hw->ram_size = t8 * 512;
3064 }
3065 else if (t8 == 0)
3066 hw->ram_size = 0x20000;
3067 else
3068 hw->ram_size = t8 * 4096;
3069
cfc3ed79
SH
3070 hw->intr_mask = IS_HW_ERR | IS_EXT_REG | IS_PORT_1;
3071 if (hw->ports > 1)
3072 hw->intr_mask |= IS_PORT_2;
3073
baef58b1
SH
3074 if (hw->chip_id == CHIP_ID_GENESIS)
3075 genesis_init(hw);
3076 else {
3077 /* switch power to VCC (WA for VAUX problem) */
3078 skge_write8(hw, B0_POWER_CTRL,
3079 PC_VAUX_ENA | PC_VCC_ENA | PC_VAUX_OFF | PC_VCC_ON);
adba9e23 3080
050ec18a
SH
3081 /* avoid boards with stuck Hardware error bits */
3082 if ((skge_read32(hw, B0_ISRC) & IS_HW_ERR) &&
3083 (skge_read32(hw, B0_HWE_ISRC) & IS_IRQ_SENSOR)) {
3084 printk(KERN_WARNING PFX "stuck hardware sensor bit\n");
3085 hw->intr_mask &= ~IS_HW_ERR;
3086 }
3087
adba9e23
SH
3088 /* Clear PHY COMA */
3089 skge_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_ON);
3090 pci_read_config_dword(hw->pdev, PCI_DEV_REG1, &reg);
3091 reg &= ~PCI_PHY_COMA;
3092 pci_write_config_dword(hw->pdev, PCI_DEV_REG1, reg);
3093 skge_write8(hw, B2_TST_CTRL1, TST_CFG_WRITE_OFF);
3094
3095
981d0377 3096 for (i = 0; i < hw->ports; i++) {
6b0c1480
SH
3097 skge_write16(hw, SK_REG(i, GMAC_LINK_CTRL), GMLC_RST_SET);
3098 skge_write16(hw, SK_REG(i, GMAC_LINK_CTRL), GMLC_RST_CLR);
baef58b1
SH
3099 }
3100 }
3101
3102 /* turn off hardware timer (unused) */
3103 skge_write8(hw, B2_TI_CTRL, TIM_STOP);
3104 skge_write8(hw, B2_TI_CTRL, TIM_CLR_IRQ);
3105 skge_write8(hw, B0_LED, LED_STAT_ON);
3106
3107 /* enable the Tx Arbiters */
981d0377 3108 for (i = 0; i < hw->ports; i++)
6b0c1480 3109 skge_write8(hw, SK_REG(i, TXA_CTRL), TXA_ENA_ARB);
baef58b1
SH
3110
3111 /* Initialize ram interface */
3112 skge_write16(hw, B3_RI_CTRL, RI_RST_CLR);
3113
3114 skge_write8(hw, B3_RI_WTO_R1, SK_RI_TO_53);
3115 skge_write8(hw, B3_RI_WTO_XA1, SK_RI_TO_53);
3116 skge_write8(hw, B3_RI_WTO_XS1, SK_RI_TO_53);
3117 skge_write8(hw, B3_RI_RTO_R1, SK_RI_TO_53);
3118 skge_write8(hw, B3_RI_RTO_XA1, SK_RI_TO_53);
3119 skge_write8(hw, B3_RI_RTO_XS1, SK_RI_TO_53);
3120 skge_write8(hw, B3_RI_WTO_R2, SK_RI_TO_53);
3121 skge_write8(hw, B3_RI_WTO_XA2, SK_RI_TO_53);
3122 skge_write8(hw, B3_RI_WTO_XS2, SK_RI_TO_53);
3123 skge_write8(hw, B3_RI_RTO_R2, SK_RI_TO_53);
3124 skge_write8(hw, B3_RI_RTO_XA2, SK_RI_TO_53);
3125 skge_write8(hw, B3_RI_RTO_XS2, SK_RI_TO_53);
3126
3127 skge_write32(hw, B0_HWE_IMSK, IS_ERR_MSK);
3128
3129 /* Set interrupt moderation for Transmit only
3130 * Receive interrupts avoided by NAPI
3131 */
3132 skge_write32(hw, B2_IRQM_MSK, IS_XA1_F|IS_XA2_F);
3133 skge_write32(hw, B2_IRQM_INI, skge_usecs2clk(hw, 100));
3134 skge_write32(hw, B2_IRQM_CTRL, TIM_START);
3135
baef58b1
SH
3136 skge_write32(hw, B0_IMSK, hw->intr_mask);
3137
baef58b1 3138 spin_lock_bh(&hw->phy_lock);
981d0377 3139 for (i = 0; i < hw->ports; i++) {
baef58b1
SH
3140 if (hw->chip_id == CHIP_ID_GENESIS)
3141 genesis_reset(hw, i);
3142 else
3143 yukon_reset(hw, i);
3144 }
3145 spin_unlock_bh(&hw->phy_lock);
3146
3147 return 0;
3148}
3149
3150/* Initialize network device */
981d0377
SH
3151static struct net_device *skge_devinit(struct skge_hw *hw, int port,
3152 int highmem)
baef58b1
SH
3153{
3154 struct skge_port *skge;
3155 struct net_device *dev = alloc_etherdev(sizeof(*skge));
3156
3157 if (!dev) {
3158 printk(KERN_ERR "skge etherdev alloc failed");
3159 return NULL;
3160 }
3161
3162 SET_MODULE_OWNER(dev);
3163 SET_NETDEV_DEV(dev, &hw->pdev->dev);
3164 dev->open = skge_up;
3165 dev->stop = skge_down;
2cd8e5d3 3166 dev->do_ioctl = skge_ioctl;
baef58b1
SH
3167 dev->hard_start_xmit = skge_xmit_frame;
3168 dev->get_stats = skge_get_stats;
3169 if (hw->chip_id == CHIP_ID_GENESIS)
3170 dev->set_multicast_list = genesis_set_multicast;
3171 else
3172 dev->set_multicast_list = yukon_set_multicast;
3173
3174 dev->set_mac_address = skge_set_mac_address;
3175 dev->change_mtu = skge_change_mtu;
3176 SET_ETHTOOL_OPS(dev, &skge_ethtool_ops);
3177 dev->tx_timeout = skge_tx_timeout;
3178 dev->watchdog_timeo = TX_WATCHDOG;
3179 dev->poll = skge_poll;
3180 dev->weight = NAPI_WEIGHT;
3181#ifdef CONFIG_NET_POLL_CONTROLLER
3182 dev->poll_controller = skge_netpoll;
3183#endif
3184 dev->irq = hw->pdev->irq;
3185 dev->features = NETIF_F_LLTX;
981d0377
SH
3186 if (highmem)
3187 dev->features |= NETIF_F_HIGHDMA;
baef58b1
SH
3188
3189 skge = netdev_priv(dev);
3190 skge->netdev = dev;
3191 skge->hw = hw;
3192 skge->msg_enable = netif_msg_init(debug, default_msg);
3193 skge->tx_ring.count = DEFAULT_TX_RING_SIZE;
3194 skge->rx_ring.count = DEFAULT_RX_RING_SIZE;
3195
3196 /* Auto speed and flow control */
3197 skge->autoneg = AUTONEG_ENABLE;
3198 skge->flow_control = FLOW_MODE_SYMMETRIC;
3199 skge->duplex = -1;
3200 skge->speed = -1;
31b619c5 3201 skge->advertising = skge_supported_modes(hw);
baef58b1
SH
3202
3203 hw->dev[port] = dev;
3204
3205 skge->port = port;
3206
3207 spin_lock_init(&skge->tx_lock);
3208
baef58b1
SH
3209 if (hw->chip_id != CHIP_ID_GENESIS) {
3210 dev->features |= NETIF_F_IP_CSUM | NETIF_F_SG;
3211 skge->rx_csum = 1;
3212 }
3213
3214 /* read the mac address */
3215 memcpy_fromio(dev->dev_addr, hw->regs + B2_MAC_1 + port*8, ETH_ALEN);
56230d53 3216 memcpy(dev->perm_addr, dev->dev_addr, dev->addr_len);
baef58b1
SH
3217
3218 /* device is off until link detection */
3219 netif_carrier_off(dev);
3220 netif_stop_queue(dev);
3221
3222 return dev;
3223}
3224
3225static void __devinit skge_show_addr(struct net_device *dev)
3226{
3227 const struct skge_port *skge = netdev_priv(dev);
3228
3229 if (netif_msg_probe(skge))
3230 printk(KERN_INFO PFX "%s: addr %02x:%02x:%02x:%02x:%02x:%02x\n",
3231 dev->name,
3232 dev->dev_addr[0], dev->dev_addr[1], dev->dev_addr[2],
3233 dev->dev_addr[3], dev->dev_addr[4], dev->dev_addr[5]);
3234}
3235
3236static int __devinit skge_probe(struct pci_dev *pdev,
3237 const struct pci_device_id *ent)
3238{
3239 struct net_device *dev, *dev1;
3240 struct skge_hw *hw;
3241 int err, using_dac = 0;
3242
3243 if ((err = pci_enable_device(pdev))) {
3244 printk(KERN_ERR PFX "%s cannot enable PCI device\n",
3245 pci_name(pdev));
3246 goto err_out;
3247 }
3248
3249 if ((err = pci_request_regions(pdev, DRV_NAME))) {
3250 printk(KERN_ERR PFX "%s cannot obtain PCI resources\n",
3251 pci_name(pdev));
3252 goto err_out_disable_pdev;
3253 }
3254
3255 pci_set_master(pdev);
3256
93aea718 3257 if (!pci_set_dma_mask(pdev, DMA_64BIT_MASK)) {
baef58b1 3258 using_dac = 1;
77783a78 3259 err = pci_set_consistent_dma_mask(pdev, DMA_64BIT_MASK);
93aea718
SH
3260 } else if (!(err = pci_set_dma_mask(pdev, DMA_32BIT_MASK))) {
3261 using_dac = 0;
3262 err = pci_set_consistent_dma_mask(pdev, DMA_32BIT_MASK);
3263 }
3264
3265 if (err) {
3266 printk(KERN_ERR PFX "%s no usable DMA configuration\n",
3267 pci_name(pdev));
3268 goto err_out_free_regions;
baef58b1
SH
3269 }
3270
3271#ifdef __BIG_ENDIAN
8f3f8193 3272 /* byte swap descriptors in hardware */
baef58b1
SH
3273 {
3274 u32 reg;
3275
3276 pci_read_config_dword(pdev, PCI_DEV_REG2, &reg);
3277 reg |= PCI_REV_DESC;
3278 pci_write_config_dword(pdev, PCI_DEV_REG2, reg);
3279 }
3280#endif
3281
3282 err = -ENOMEM;
7e863061 3283 hw = kzalloc(sizeof(*hw), GFP_KERNEL);
baef58b1
SH
3284 if (!hw) {
3285 printk(KERN_ERR PFX "%s: cannot allocate hardware struct\n",
3286 pci_name(pdev));
3287 goto err_out_free_regions;
3288 }
3289
baef58b1
SH
3290 hw->pdev = pdev;
3291 spin_lock_init(&hw->phy_lock);
3292 tasklet_init(&hw->ext_tasklet, skge_extirq, (unsigned long) hw);
3293
3294 hw->regs = ioremap_nocache(pci_resource_start(pdev, 0), 0x4000);
3295 if (!hw->regs) {
3296 printk(KERN_ERR PFX "%s: cannot map device registers\n",
3297 pci_name(pdev));
3298 goto err_out_free_hw;
3299 }
3300
3301 if ((err = request_irq(pdev->irq, skge_intr, SA_SHIRQ, DRV_NAME, hw))) {
3302 printk(KERN_ERR PFX "%s: cannot assign irq %d\n",
3303 pci_name(pdev), pdev->irq);
3304 goto err_out_iounmap;
3305 }
3306 pci_set_drvdata(pdev, hw);
3307
3308 err = skge_reset(hw);
3309 if (err)
3310 goto err_out_free_irq;
3311
d7eaee08 3312 printk(KERN_INFO PFX DRV_VERSION " addr 0x%lx irq %d chip %s rev %d\n",
baef58b1 3313 pci_resource_start(pdev, 0), pdev->irq,
981d0377 3314 skge_board_name(hw), hw->chip_rev);
baef58b1 3315
981d0377 3316 if ((dev = skge_devinit(hw, 0, using_dac)) == NULL)
baef58b1
SH
3317 goto err_out_led_off;
3318
baef58b1
SH
3319 if ((err = register_netdev(dev))) {
3320 printk(KERN_ERR PFX "%s: cannot register net device\n",
3321 pci_name(pdev));
3322 goto err_out_free_netdev;
3323 }
3324
3325 skge_show_addr(dev);
3326
981d0377 3327 if (hw->ports > 1 && (dev1 = skge_devinit(hw, 1, using_dac))) {
baef58b1
SH
3328 if (register_netdev(dev1) == 0)
3329 skge_show_addr(dev1);
3330 else {
3331 /* Failure to register second port need not be fatal */
3332 printk(KERN_WARNING PFX "register of second port failed\n");
3333 hw->dev[1] = NULL;
3334 free_netdev(dev1);
3335 }
3336 }
3337
3338 return 0;
3339
3340err_out_free_netdev:
3341 free_netdev(dev);
3342err_out_led_off:
3343 skge_write16(hw, B0_LED, LED_STAT_OFF);
3344err_out_free_irq:
3345 free_irq(pdev->irq, hw);
3346err_out_iounmap:
3347 iounmap(hw->regs);
3348err_out_free_hw:
3349 kfree(hw);
3350err_out_free_regions:
3351 pci_release_regions(pdev);
3352err_out_disable_pdev:
3353 pci_disable_device(pdev);
3354 pci_set_drvdata(pdev, NULL);
3355err_out:
3356 return err;
3357}
3358
3359static void __devexit skge_remove(struct pci_dev *pdev)
3360{
3361 struct skge_hw *hw = pci_get_drvdata(pdev);
3362 struct net_device *dev0, *dev1;
3363
95566065 3364 if (!hw)
baef58b1
SH
3365 return;
3366
3367 if ((dev1 = hw->dev[1]))
3368 unregister_netdev(dev1);
3369 dev0 = hw->dev[0];
3370 unregister_netdev(dev0);
3371
46a60f2d
SH
3372 skge_write32(hw, B0_IMSK, 0);
3373 skge_write16(hw, B0_LED, LED_STAT_OFF);
3374 skge_pci_clear(hw);
3375 skge_write8(hw, B0_CTST, CS_RST_SET);
3376
baef58b1
SH
3377 tasklet_kill(&hw->ext_tasklet);
3378
3379 free_irq(pdev->irq, hw);
3380 pci_release_regions(pdev);
3381 pci_disable_device(pdev);
3382 if (dev1)
3383 free_netdev(dev1);
3384 free_netdev(dev0);
46a60f2d 3385
baef58b1
SH
3386 iounmap(hw->regs);
3387 kfree(hw);
3388 pci_set_drvdata(pdev, NULL);
3389}
3390
3391#ifdef CONFIG_PM
2a569579 3392static int skge_suspend(struct pci_dev *pdev, pm_message_t state)
baef58b1
SH
3393{
3394 struct skge_hw *hw = pci_get_drvdata(pdev);
3395 int i, wol = 0;
3396
95566065 3397 for (i = 0; i < 2; i++) {
baef58b1
SH
3398 struct net_device *dev = hw->dev[i];
3399
3400 if (dev) {
3401 struct skge_port *skge = netdev_priv(dev);
3402 if (netif_running(dev)) {
3403 netif_carrier_off(dev);
46a60f2d
SH
3404 if (skge->wol)
3405 netif_stop_queue(dev);
3406 else
3407 skge_down(dev);
baef58b1
SH
3408 }
3409 netif_device_detach(dev);
3410 wol |= skge->wol;
3411 }
3412 }
3413
3414 pci_save_state(pdev);
2a569579 3415 pci_enable_wake(pdev, pci_choose_state(pdev, state), wol);
baef58b1
SH
3416 pci_disable_device(pdev);
3417 pci_set_power_state(pdev, pci_choose_state(pdev, state));
3418
3419 return 0;
3420}
3421
3422static int skge_resume(struct pci_dev *pdev)
3423{
3424 struct skge_hw *hw = pci_get_drvdata(pdev);
3425 int i;
3426
3427 pci_set_power_state(pdev, PCI_D0);
3428 pci_restore_state(pdev);
3429 pci_enable_wake(pdev, PCI_D0, 0);
3430
3431 skge_reset(hw);
3432
95566065 3433 for (i = 0; i < 2; i++) {
baef58b1
SH
3434 struct net_device *dev = hw->dev[i];
3435 if (dev) {
3436 netif_device_attach(dev);
edd702e8
SH
3437 if (netif_running(dev) && skge_up(dev))
3438 dev_close(dev);
baef58b1
SH
3439 }
3440 }
3441 return 0;
3442}
3443#endif
3444
3445static struct pci_driver skge_driver = {
3446 .name = DRV_NAME,
3447 .id_table = skge_id_table,
3448 .probe = skge_probe,
3449 .remove = __devexit_p(skge_remove),
3450#ifdef CONFIG_PM
3451 .suspend = skge_suspend,
3452 .resume = skge_resume,
3453#endif
3454};
3455
3456static int __init skge_init_module(void)
3457{
3458 return pci_module_init(&skge_driver);
3459}
3460
3461static void __exit skge_cleanup_module(void)
3462{
3463 pci_unregister_driver(&skge_driver);
3464}
3465
3466module_init(skge_init_module);
3467module_exit(skge_cleanup_module);
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