blob: 49ef8b310a7db8fe024d779a1967fd7b1e9b1859 [file] [log] [blame]
wdenk7152b1d2003-09-05 23:19:14 +00001/******************************************************************************
2 *
3 * Name: skge.c
4 * Project: GEnesis, PCI Gigabit Ethernet Adapter
5 * Version: $Revision: 1.46 $
6 * Date: $Date: 2003/02/25 14:16:36 $
7 * Purpose: The main driver source module
8 *
9 ******************************************************************************/
10
11/******************************************************************************
12 *
13 * (C)Copyright 1998-2003 SysKonnect GmbH.
14 *
15 * Driver for SysKonnect Gigabit Ethernet Server Adapters:
16 *
17 * SK-9871 (single link 1000Base-ZX)
18 * SK-9872 (dual link 1000Base-ZX)
19 * SK-9861 (single link 1000Base-SX, VF45 Volition Plug)
20 * SK-9862 (dual link 1000Base-SX, VF45 Volition Plug)
21 * SK-9841 (single link 1000Base-LX)
22 * SK-9842 (dual link 1000Base-LX)
23 * SK-9843 (single link 1000Base-SX)
24 * SK-9844 (dual link 1000Base-SX)
25 * SK-9821 (single link 1000Base-T)
26 * SK-9822 (dual link 1000Base-T)
27 * SK-9881 (single link 1000Base-SX V2 LC)
28 * SK-9871 (single link 1000Base-ZX V2)
29 * SK-9861 (single link 1000Base-SX V2, VF45 Volition Plug)
30 * SK-9841 (single link 1000Base-LX V2)
31 * SK-9843 (single link 1000Base-SX V2)
32 * SK-9821 (single link 1000Base-T V2)
33 *
34 * Created 10-Feb-1999, based on Linux' acenic.c, 3c59x.c and
35 * SysKonnects GEnesis Solaris driver
36 * Author: Christoph Goos (cgoos@syskonnect.de)
37 * Mirko Lindner (mlindner@syskonnect.de)
38 *
39 * Address all question to: linux@syskonnect.de
40 *
41 * The technical manual for the adapters is available from SysKonnect's
42 * web pages: www.syskonnect.com
43 * Goto "Support" and search Knowledge Base for "manual".
44 *
45 * This program is free software; you can redistribute it and/or modify
46 * it under the terms of the GNU General Public License as published by
47 * the Free Software Foundation; either version 2 of the License, or
48 * (at your option) any later version.
49 *
50 * The information in this file is provided "AS IS" without warranty.
51 *
52 ******************************************************************************/
53
54/******************************************************************************
55 *
56 * History:
57 *
58 * $Log: skge.c,v $
59 * Revision 1.46 2003/02/25 14:16:36 mlindner
60 * Fix: Copyright statement
61 *
62 * Revision 1.45 2003/02/25 13:25:55 mlindner
63 * Add: Performance improvements
64 * Add: Support for various vendors
65 * Fix: Init function
66 *
67 * Revision 1.44 2003/01/09 09:25:26 mlindner
68 * Fix: Remove useless init_module/cleanup_module forward declarations
69 *
70 * Revision 1.43 2002/11/29 08:42:41 mlindner
71 * Fix: Boot message
72 *
73 * Revision 1.42 2002/11/28 13:30:23 mlindner
74 * Add: New frame check
75 *
76 * Revision 1.41 2002/11/27 13:55:18 mlindner
77 * Fix: Drop wrong csum packets
78 * Fix: Initialize proc_entry after hw check
79 *
80 * Revision 1.40 2002/10/31 07:50:37 tschilli
81 * Function SkGeInitAssignRamToQueues() from common module inserted.
82 * Autonegotiation is set to ON for all adapters.
83 * LinkSpeedUsed is used in link up status report.
84 * Role parameter will show up for 1000 Mbps links only.
85 * GetConfiguration() inserted after init level 1 in SkGeChangeMtu().
86 * All return values of SkGeInit() and SkGeInitPort() are checked.
87 *
88 * Revision 1.39 2002/10/02 12:56:05 mlindner
89 * Add: Support for Yukon
90 * Add: Support for ZEROCOPY, scatter-gather and hw checksum
91 * Add: New transmit ring function (use SG and TCP/UDP hardware checksumming)
92 * Add: New init function
93 * Add: Speed check and setup
94 * Add: Merge source for kernel 2.2.x and 2.4.x
95 * Add: Opcode check for tcp
96 * Add: Frame length check
97 * Fix: Transmit complete interrupt
98 * Fix: Interrupt moderation
99 *
100 * Revision 1.29.2.13 2002/01/14 12:44:52 mlindner
101 * Fix: Rlmt modes
102 *
103 * Revision 1.29.2.12 2001/12/07 12:06:18 mlindner
104 * Fix: malloc -> slab changes
105 *
106 * Revision 1.29.2.11 2001/12/06 15:19:20 mlindner
107 * Add: DMA attributes
108 * Fix: Module initialisation
109 * Fix: pci_map_single and pci_unmap_single replaced
110 *
111 * Revision 1.29.2.10 2001/12/06 09:56:50 mlindner
112 * Corrected some printk's
113 *
114 * Revision 1.29.2.9 2001/09/05 12:15:34 mlindner
115 * Add: LBFO Changes
116 * Fix: Counter Errors (Jumbo == to long errors)
117 * Fix: Changed pAC->PciDev declaration
118 * Fix: too short counters
119 *
120 * Revision 1.29.2.8 2001/06/25 12:10:44 mlindner
121 * fix: ReceiveIrq() changed.
122 *
123 * Revision 1.29.2.7 2001/06/25 08:07:05 mlindner
124 * fix: RLMT locking in ReceiveIrq() changed.
125 *
126 * Revision 1.29.2.6 2001/05/21 07:59:29 mlindner
127 * fix: MTU init problems
128 *
129 * Revision 1.29.2.5 2001/05/08 11:25:08 mlindner
130 * fix: removed VLAN error message
131 *
132 * Revision 1.29.2.4 2001/05/04 13:31:43 gklug
133 * fix: do not handle eth_copy on bad fragments received.
134 *
135 * Revision 1.29.2.3 2001/04/23 08:06:43 mlindner
136 * Fix: error handling
137 *
138 * Revision 1.29.2.2 2001/03/15 12:04:54 mlindner
139 * Fixed memory problem
140 *
141 * Revision 1.29.2.1 2001/03/12 16:41:44 mlindner
142 * add: procfs function
143 * add: dual-net function
144 * add: RLMT networks
145 * add: extended PNMI features
146 *
147 * Kernel 2.4.x specific:
148 * Revision 1.xx 2000/09/12 13:31:56 cgoos
149 * Fixed missign "dev=NULL in skge_probe.
150 * Added counting for jumbo frames (corrects error statistic).
151 * Removed VLAN tag check (enables VLAN support).
152 *
153 * Kernel 2.2.x specific:
154 * Revision 1.29 2000/02/21 13:31:56 cgoos
155 * Fixed "unused" warning for UltraSPARC change.
156 *
157 * Partially kernel 2.2.x specific:
158 * Revision 1.28 2000/02/21 10:32:36 cgoos
159 * Added fixes for UltraSPARC.
160 * Now printing RlmtMode and PrefPort setting at startup.
161 * Changed XmitFrame return value.
162 * Fixed rx checksum calculation for BIG ENDIAN systems.
163 * Fixed rx jumbo frames counted as ierrors.
164 *
165 *
166 * Revision 1.27 1999/11/25 09:06:28 cgoos
167 * Changed base_addr to unsigned long.
168 *
169 * Revision 1.26 1999/11/22 13:29:16 cgoos
170 * Changed license header to GPL.
171 * Changes for inclusion in linux kernel (2.2.13).
172 * Removed 2.0.x defines.
173 * Changed SkGeProbe to skge_probe.
174 * Added checks in SkGeIoctl.
175 *
176 * Revision 1.25 1999/10/07 14:47:52 cgoos
177 * Changed 984x to 98xx.
178 *
179 * Revision 1.24 1999/09/30 07:21:01 cgoos
180 * Removed SK_RLMT_SLOW_LOOKAHEAD option.
181 * Giving spanning tree packets also to OS now.
182 *
183 * Revision 1.23 1999/09/29 07:36:50 cgoos
184 * Changed assignment for IsBc/IsMc.
185 *
186 * Revision 1.22 1999/09/28 12:57:09 cgoos
187 * Added CheckQueue also to Single-Port-ISR.
188 *
189 * Revision 1.21 1999/09/28 12:42:41 cgoos
190 * Changed parameter strings for RlmtMode.
191 *
192 * Revision 1.20 1999/09/28 12:37:57 cgoos
193 * Added CheckQueue for fast delivery of RLMT frames.
194 *
195 * Revision 1.19 1999/09/16 07:57:25 cgoos
196 * Copperfield changes.
197 *
198 * Revision 1.18 1999/09/03 13:06:30 cgoos
199 * Fixed RlmtMode=CheckSeg bug: wrong DEV_KFREE_SKB in RLMT_SEND caused
200 * double allocated skb's.
201 * FrameStat in ReceiveIrq was accessed via wrong Rxd.
202 * Queue size for async. standby Tx queue was zero.
203 * FillRxLimit of 0 could cause problems with ReQueue, changed to 1.
204 * Removed debug output of checksum statistic.
205 *
206 * Revision 1.17 1999/08/11 13:55:27 cgoos
207 * Transmit descriptor polling was not reenabled after SkGePortInit.
208 *
209 * Revision 1.16 1999/07/27 15:17:29 cgoos
210 * Added some "\n" in output strings (removed while debuging...).
211 *
212 * Revision 1.15 1999/07/23 12:09:30 cgoos
213 * Performance optimization, rx checksumming, large frame support.
214 *
215 * Revision 1.14 1999/07/14 11:26:27 cgoos
216 * Removed Link LED settings (now in RLMT).
217 * Added status output at NET UP.
218 * Fixed SMP problems with Tx and SWITCH running in parallel.
219 * Fixed return code problem at RLMT_SEND event.
220 *
221 * Revision 1.13 1999/04/07 10:11:42 cgoos
222 * Fixed Single Port problems.
223 * Fixed Multi-Adapter problems.
224 * Always display startup string.
225 *
226 * Revision 1.12 1999/03/29 12:26:37 cgoos
227 * Reversed locking to fine granularity.
228 * Fixed skb double alloc problem (caused by incorrect xmit return code).
229 * Enhanced function descriptions.
230 *
231 * Revision 1.11 1999/03/15 13:10:51 cgoos
232 * Changed device identifier in output string to ethX.
233 *
234 * Revision 1.10 1999/03/15 12:12:34 cgoos
235 * Changed copyright notice.
236 *
237 * Revision 1.9 1999/03/15 12:10:17 cgoos
238 * Changed locking to one driver lock.
239 * Added check of SK_AC-size (for consistency with library).
240 *
241 * Revision 1.8 1999/03/08 11:44:02 cgoos
242 * Fixed missing dev->tbusy in SkGeXmit.
243 * Changed large frame (jumbo) buffer number.
244 * Added copying of short frames.
245 *
246 * Revision 1.7 1999/03/04 13:26:57 cgoos
247 * Fixed spinlock calls for SMP.
248 *
249 * Revision 1.6 1999/03/02 09:53:51 cgoos
250 * Added descriptor revertion for big endian machines.
251 *
252 * Revision 1.5 1999/03/01 08:50:59 cgoos
253 * Fixed SkGeChangeMtu.
254 * Fixed pci config space accesses.
255 *
256 * Revision 1.4 1999/02/18 15:48:44 cgoos
257 * Corrected some printk's.
258 *
259 * Revision 1.3 1999/02/18 12:45:55 cgoos
260 * Changed SK_MAX_CARD_PARAM to default 16
261 *
262 * Revision 1.2 1999/02/18 10:55:32 cgoos
263 * Removed SkGeDrvTimeStamp function.
264 * Printing "ethX:" before adapter type at adapter init.
265 *
266 *
267 * 10-Feb-1999 cg Created, based on Linux' acenic.c, 3c59x.c and
268 * SysKonnects GEnesis Solaris driver
269 *
270 ******************************************************************************/
271
272/******************************************************************************
273 *
274 * Possible compiler options (#define xxx / -Dxxx):
275 *
276 * debugging can be enable by changing SK_DEBUG_CHKMOD and
277 * SK_DEBUG_CHKCAT in makefile (described there).
278 *
279 ******************************************************************************/
280
281/******************************************************************************
282 *
283 * Description:
284 *
285 * This is the main module of the Linux GE driver.
286 *
287 * All source files except skge.c, skdrv1st.h, skdrv2nd.h and sktypes.h
288 * are part of SysKonnect's COMMON MODULES for the SK-98xx adapters.
289 * Those are used for drivers on multiple OS', so some thing may seem
290 * unnecessary complicated on Linux. Please do not try to 'clean up'
291 * them without VERY good reasons, because this will make it more
292 * difficult to keep the Linux driver in synchronisation with the
293 * other versions.
294 *
295 * Include file hierarchy:
296 *
297 * <linux/module.h>
298 *
299 * "h/skdrv1st.h"
300 * <linux/version.h>
301 * <linux/types.h>
302 * <linux/kernel.h>
303 * <linux/string.h>
304 * <linux/errno.h>
305 * <linux/ioport.h>
306 * <linux/slab.h>
307 * <linux/interrupt.h>
308 * <linux/pci.h>
309 * <asm/byteorder.h>
310 * <asm/bitops.h>
311 * <asm/io.h>
312 * <linux/netdevice.h>
313 * <linux/etherdevice.h>
314 * <linux/skbuff.h>
315 * those three depending on kernel version used:
316 * <linux/bios32.h>
317 * <linux/init.h>
318 * <asm/uaccess.h>
319 * <net/checksum.h>
320 *
321 * "h/skerror.h"
322 * "h/skdebug.h"
323 * "h/sktypes.h"
324 * "h/lm80.h"
325 * "h/xmac_ii.h"
326 *
327 * "h/skdrv2nd.h"
328 * "h/skqueue.h"
329 * "h/skgehwt.h"
330 * "h/sktimer.h"
331 * "h/ski2c.h"
332 * "h/skgepnmi.h"
333 * "h/skvpd.h"
334 * "h/skgehw.h"
335 * "h/skgeinit.h"
336 * "h/skaddr.h"
337 * "h/skgesirq.h"
338 * "h/skcsum.h"
339 * "h/skrlmt.h"
340 *
341 ******************************************************************************/
342
343#include "h/skversion.h"
344#if 0
345#include <linux/module.h>
346#include <linux/init.h>
347#include <linux/proc_fs.h>
348#endif
349#include "h/skdrv1st.h"
350#include "h/skdrv2nd.h"
351
352
353/* defines ******************************************************************/
354/* for debuging on x86 only */
355/* #define BREAKPOINT() asm(" int $3"); */
356
357/* use the scatter-gather functionality with sendfile() */
358#if 0
359#define SK_ZEROCOPY
360#endif
361
362/* use of a transmit complete interrupt */
363#define USE_TX_COMPLETE
364
365/* use interrupt moderation (for tx complete only) */
366#define USE_INT_MOD
367#define INTS_PER_SEC 1000
368
369/*
370 * threshold for copying small receive frames
371 * set to 0 to avoid copying, set to 9001 to copy all frames
372 */
373#define SK_COPY_THRESHOLD 50
374
375/* number of adapters that can be configured via command line params */
376#define SK_MAX_CARD_PARAM 16
377
378
379/*
380 * use those defines for a compile-in version of the driver instead
381 * of command line parameters
382 */
383// #define LINK_SPEED_A {"Auto", }
384// #define LINK_SPEED_B {"Auto", }
385// #define AUTO_NEG_A {"Sense", }
386// #define AUTO_NEG_B {"Sense", }
387// #define DUP_CAP_A {"Both", }
388// #define DUP_CAP_B {"Both", }
389// #define FLOW_CTRL_A {"SymOrRem", }
390// #define FLOW_CTRL_B {"SymOrRem", }
391// #define ROLE_A {"Auto", }
392// #define ROLE_B {"Auto", }
393// #define PREF_PORT {"A", }
394// #define RLMT_MODE {"CheckLinkState", }
395
396#define DEV_KFREE_SKB(skb) dev_kfree_skb(skb)
397#define DEV_KFREE_SKB_IRQ(skb) dev_kfree_skb_irq(skb)
398#define DEV_KFREE_SKB_ANY(skb) dev_kfree_skb_any(skb)
399
400/* function prototypes ******************************************************/
401static void FreeResources(struct SK_NET_DEVICE *dev);
402static int SkGeBoardInit(struct SK_NET_DEVICE *dev, SK_AC *pAC);
403static SK_BOOL BoardAllocMem(SK_AC *pAC);
404static void BoardFreeMem(SK_AC *pAC);
405static void BoardInitMem(SK_AC *pAC);
406static void SetupRing(SK_AC*, void*, uintptr_t, RXD**, RXD**, RXD**,
407 int*, SK_BOOL);
408
409#if 0
410static void SkGeIsr(int irq, void *dev_id, struct pt_regs *ptregs);
411static void SkGeIsrOnePort(int irq, void *dev_id, struct pt_regs *ptregs);
412static int SkGeOpen(struct SK_NET_DEVICE *dev);
413static int SkGeClose(struct SK_NET_DEVICE *dev);
414static int SkGeXmit(struct sk_buff *skb, struct SK_NET_DEVICE *dev);
415static int SkGeSetMacAddr(struct SK_NET_DEVICE *dev, void *p);
416static void SkGeSetRxMode(struct SK_NET_DEVICE *dev);
417static struct net_device_stats *SkGeStats(struct SK_NET_DEVICE *dev);
418static int SkGeIoctl(struct SK_NET_DEVICE *dev, struct ifreq *rq, int cmd);
419#else
420void SkGeIsr(int irq, void *dev_id, struct pt_regs *ptregs);
421void SkGeIsrOnePort(int irq, void *dev_id, struct pt_regs *ptregs);
422int SkGeOpen(struct SK_NET_DEVICE *dev);
423int SkGeClose(struct SK_NET_DEVICE *dev);
424int SkGeXmit(struct sk_buff *skb, struct SK_NET_DEVICE *dev);
425#endif
426static void GetConfiguration(SK_AC*);
427static void ProductStr(SK_AC*);
428static int XmitFrame(SK_AC*, TX_PORT*, struct sk_buff*);
429static void FreeTxDescriptors(SK_AC*pAC, TX_PORT*);
430static void FillRxRing(SK_AC*, RX_PORT*);
431static SK_BOOL FillRxDescriptor(SK_AC*, RX_PORT*);
432#if 0
433static void ReceiveIrq(SK_AC*, RX_PORT*, SK_BOOL);
434#else
435void ReceiveIrq(SK_AC*, RX_PORT*, SK_BOOL);
436#endif
437static void ClearAndStartRx(SK_AC*, int);
438static void ClearTxIrq(SK_AC*, int, int);
439static void ClearRxRing(SK_AC*, RX_PORT*);
440static void ClearTxRing(SK_AC*, TX_PORT*);
441#if 0
442static void SetQueueSizes(SK_AC *pAC);
443
444static int SkGeChangeMtu(struct SK_NET_DEVICE *dev, int new_mtu);
445#endif
446static void PortReInitBmu(SK_AC*, int);
447#if 0
448static int SkGeIocMib(DEV_NET*, unsigned int, int);
449static int XmitFrameSG(SK_AC*, TX_PORT*, struct sk_buff*);
450#endif
451
452/*Extern */
453
454/* external Proc function */
455extern int proc_read(
456 char *buffer,
457 char **buffer_location,
458 off_t offset,
459 int buffer_length,
460 int *eof,
461 void *data);
462
463#ifdef DEBUG
464static void DumpMsg(struct sk_buff*, char*);
465static void DumpData(char*, int);
466static void DumpLong(char*, int);
467#endif
468void dump_frag( SK_U8 *data, int length);
469
470/* global variables *********************************************************/
471#if 0
472static const char *BootString = BOOT_STRING;
473#endif
474struct SK_NET_DEVICE *SkGeRootDev = NULL;
475static int probed __initdata = 0;
476
477/* local variables **********************************************************/
478static uintptr_t TxQueueAddr[SK_MAX_MACS][2] = {{0x680, 0x600},{0x780, 0x700}};
479static uintptr_t RxQueueAddr[SK_MAX_MACS] = {0x400, 0x480};
480
481
482/* local variables **********************************************************/
483const char SK_Root_Dir_entry[8];
484
485#if 0
486static struct proc_dir_entry *pSkRootDir;
487#endif
488
489
490static struct pci_device_id supported[] = {
491 {PCI_VENDOR_ID_3COM, 0x1700},
492 {PCI_VENDOR_ID_SYSKONNECT, PCI_DEVICE_ID_SYSKONNECT_GE},
493 {PCI_VENDOR_ID_SYSKONNECT, PCI_DEVICE_ID_SYSKONNECT_GE_SA},
494 {}
495};
496
497
498/*****************************************************************************
499 *
500 * skge_probe - find all SK-98xx adapters
501 *
502 * Description:
503 * This function scans the PCI bus for SK-98xx adapters. Resources for
504 * each adapter are allocated and the adapter is brought into Init 1
505 * state.
506 *
507 * Returns:
508 * 0, if everything is ok
509 * !=0, on error
510 */
511#if 0
512static int __init skge_probe (void)
513#else
514int skge_probe (struct eth_device ** ret_dev)
515#endif
516{
517#if 0
518 int proc_root_initialized = 0;
519#endif
520 int boards_found = 0;
521#if 0
522 int vendor_flag = SK_FALSE;
523#endif
524 SK_AC *pAC;
525 DEV_NET *pNet = NULL;
526#if 0
527 struct proc_dir_entry *pProcFile;
528 struct pci_dev *pdev = NULL;
529 unsigned long base_address;
530#else
531 u32 base_address;
532#endif
533 struct SK_NET_DEVICE *dev = NULL;
534#if 0
535 SK_BOOL DeviceFound = SK_FALSE;
536#endif
537 SK_BOOL BootStringCount = SK_FALSE;
538#if 1
539 pci_dev_t devno;
540#endif
541
542 if (probed)
543 return -ENODEV;
544 probed++;
545
546 if (!pci_present()) /* is PCI support present? */
547 return -ENODEV;
548
549#if 0
550 while((pdev = pci_find_class(PCI_CLASS_NETWORK_ETHERNET << 8, pdev)))
551#else
552 while((devno = pci_find_devices (supported, boards_found)) >= 0)
553#endif
554 {
555
556 dev = NULL;
557 pNet = NULL;
558
559
560#if 0
561 SK_PCI_ISCOMPLIANT(vendor_flag, pdev);
562 if (!vendor_flag)
563 continue;
564#endif
565
566/* if ((pdev->vendor != PCI_VENDOR_ID_SYSKONNECT) &&
567 ((pdev->device != PCI_DEVICE_ID_SYSKONNECT_GE) ||
568 (pdev->device != PCI_DEVICE_ID_SYSKONNECT_YU))){
569 continue;
570 }
571*/
572#if 0
573 /* Configure DMA attributes. */
574 if (pci_set_dma_mask(pdev, (u64) 0xffffffffffffffff) &&
575 pci_set_dma_mask(pdev, (u64) 0xffffffff))
576 continue;
577#endif
578
579
580#if 0
581 if ((dev = init_etherdev(dev, sizeof(DEV_NET))) == NULL) {
582 printk(KERN_ERR "Unable to allocate etherdev "
583 "structure!\n");
584 break;
585 }
586#else
587 dev = malloc (sizeof *dev);
588 memset(dev, 0, sizeof(*dev));
589 dev->priv = malloc(sizeof(DEV_NET));
590#endif
591
592 if (dev->priv == NULL) {
593 printk(KERN_ERR "Unable to allocate adapter "
594 "structure!\n");
595 break;
596 }
597
598 pNet = dev->priv;
599 pNet->pAC = kmalloc(sizeof(SK_AC), GFP_KERNEL);
600 if (pNet->pAC == NULL){
601 kfree(dev->priv);
602 printk(KERN_ERR "Unable to allocate adapter "
603 "structure!\n");
604 break;
605 }
606
607 /* Print message */
608 if (!BootStringCount) {
609 /* set display flag to TRUE so that */
610 /* we only display this string ONCE */
611 BootStringCount = SK_TRUE;
612#ifdef SK98_INFO
613 printk("%s\n", BootString);
614#endif
615 }
616
617 memset(pNet->pAC, 0, sizeof(SK_AC));
618 pAC = pNet->pAC;
619#if 0
620 pAC->PciDev = pdev;
621 pAC->PciDevId = pdev->device;
622 pAC->dev[0] = dev;
623 pAC->dev[1] = dev;
624#else
625 pAC->PciDev = devno;
626 ret_dev[0] = pAC->dev[0] = dev;
627 ret_dev[1] = pAC->dev[1] = dev;
628#endif
629 sprintf(pAC->Name, "SysKonnect SK-98xx");
630 pAC->CheckQueue = SK_FALSE;
631
632 pNet->Mtu = 1500;
633 pNet->Up = 0;
634#if 0
635 dev->irq = pdev->irq;
636
637 dev->open = &SkGeOpen;
638 dev->stop = &SkGeClose;
639 dev->hard_start_xmit = &SkGeXmit;
640 dev->get_stats = &SkGeStats;
641 dev->set_multicast_list = &SkGeSetRxMode;
642 dev->set_mac_address = &SkGeSetMacAddr;
643 dev->do_ioctl = &SkGeIoctl;
644 dev->change_mtu = &SkGeChangeMtu;
645 dev->flags &= ~IFF_RUNNING;
646#endif
647
648#ifdef SK_ZEROCOPY
649 if (pAC->GIni.GIChipId == CHIP_ID_YUKON) {
650 /* Use only if yukon hardware */
651 /* SK and ZEROCOPY - fly baby... */
652 dev->features |= NETIF_F_SG | NETIF_F_IP_CSUM;
653 }
654#endif
655
656#if 0
657 /*
658 * Dummy value.
659 */
660 dev->base_addr = 42;
661 pci_set_master(pdev);
662
663 pci_set_master(pdev);
664 base_address = pci_resource_start (pdev, 0);
665#else
666 pci_write_config_dword(devno,
667 PCI_COMMAND,
668 PCI_COMMAND_MEMORY | PCI_COMMAND_MASTER);
669 pci_read_config_dword (devno, PCI_BASE_ADDRESS_0,
670 &base_address);
671#endif
672
673#ifdef SK_BIG_ENDIAN
674 /*
675 * On big endian machines, we use the adapter's aibility of
676 * reading the descriptors as big endian.
677 */
678 {
679 SK_U32 our2;
680 SkPciReadCfgDWord(pAC, PCI_OUR_REG_2, &our2);
681 our2 |= PCI_REV_DESC;
682 SkPciWriteCfgDWord(pAC, PCI_OUR_REG_2, our2);
683 }
684#endif
685
686 /*
687 * Remap the regs into kernel space.
688 */
689#if 0
690 pAC->IoBase = (char*)ioremap(base_address, 0x4000);
691#else
692 pAC->IoBase = (char*)pci_mem_to_phys(devno, base_address);
693#endif
694
695 if (!pAC->IoBase){
696 printk(KERN_ERR "%s: Unable to map I/O register, "
697 "SK 98xx No. %i will be disabled.\n",
698 dev->name, boards_found);
699 kfree(dev);
700 break;
701 }
702
703 pAC->Index = boards_found;
704 if (SkGeBoardInit(dev, pAC)) {
705 FreeResources(dev);
706 kfree(dev);
707 continue;
708 }
709
710#if 0
711 memcpy((caddr_t) &dev->dev_addr,
712 (caddr_t) &pAC->Addr.Net[0].CurrentMacAddress, 6);
713#else
714 memcpy((caddr_t) &dev->enetaddr,
715 (caddr_t) &pAC->Addr.Net[0].CurrentMacAddress, 6);
716#endif
717
718#if 0
719 /* First adapter... Create proc and print message */
720 if (!DeviceFound) {
721 DeviceFound = SK_TRUE;
722 SK_MEMCPY(&SK_Root_Dir_entry, BootString,
723 sizeof(SK_Root_Dir_entry) - 1);
724
725 /*Create proc (directory)*/
726 if(!proc_root_initialized) {
727 pSkRootDir = create_proc_entry(SK_Root_Dir_entry,
728 S_IFDIR | S_IWUSR | S_IRUGO | S_IXUGO, proc_net);
729 proc_root_initialized = 1;
730 }
731
732 pSkRootDir->owner = THIS_MODULE;
733 }
734
735
736
737 /* Create proc file */
738 pProcFile = create_proc_entry(dev->name,
739 S_IFREG | S_IXUSR | S_IWGRP | S_IROTH,
740 pSkRootDir);
741
742
743 pProcFile->read_proc = proc_read;
744 pProcFile->write_proc = NULL;
745 pProcFile->nlink = 1;
746 pProcFile->size = sizeof(dev->name + 1);
747 pProcFile->data = (void *)pProcFile;
748#endif
749
750 pNet->PortNr = 0;
751 pNet->NetNr = 0;
752
753#ifdef SK_ZEROCOPY
754 if (pAC->GIni.GIChipId == CHIP_ID_YUKON) {
755 /* SG and ZEROCOPY - fly baby... */
756 dev->features |= NETIF_F_SG | NETIF_F_IP_CSUM;
757 }
758#endif
759
760 boards_found++;
761
762 /* More then one port found */
763 if ((pAC->GIni.GIMacsFound == 2 ) && (pAC->RlmtNets == 2)) {
764#if 0
765 if ((dev = init_etherdev(NULL, sizeof(DEV_NET))) == 0) {
766 printk(KERN_ERR "Unable to allocate etherdev "
767 "structure!\n");
768 break;
769 }
770#else
771 dev = malloc (sizeof *dev);
772 memset(dev, 0, sizeof(*dev));
773 dev->priv = malloc(sizeof(DEV_NET));
774#endif
775
776 pAC->dev[1] = dev;
777 pNet = dev->priv;
778 pNet->PortNr = 1;
779 pNet->NetNr = 1;
780 pNet->pAC = pAC;
781 pNet->Mtu = 1500;
782 pNet->Up = 0;
783
784#if 0
785 dev->open = &SkGeOpen;
786 dev->stop = &SkGeClose;
787 dev->hard_start_xmit = &SkGeXmit;
788 dev->get_stats = &SkGeStats;
789 dev->set_multicast_list = &SkGeSetRxMode;
790 dev->set_mac_address = &SkGeSetMacAddr;
791 dev->do_ioctl = &SkGeIoctl;
792 dev->change_mtu = &SkGeChangeMtu;
793 dev->flags &= ~IFF_RUNNING;
794#endif
795
796#ifdef SK_ZEROCOPY
797 if (pAC->GIni.GIChipId == CHIP_ID_YUKON) {
798 /* SG and ZEROCOPY - fly baby... */
799 dev->features |= NETIF_F_SG | NETIF_F_IP_CSUM;
800 }
801#endif
802
803#if 0
804 pProcFile = create_proc_entry(dev->name,
805 S_IFREG | S_IXUSR | S_IWGRP | S_IROTH,
806 pSkRootDir);
807
808
809 pProcFile->read_proc = proc_read;
810 pProcFile->write_proc = NULL;
811 pProcFile->nlink = 1;
812 pProcFile->size = sizeof(dev->name + 1);
813 pProcFile->data = (void *)pProcFile;
814#endif
815
816#if 0
817 memcpy((caddr_t) &dev->dev_addr,
818 (caddr_t) &pAC->Addr.Net[1].CurrentMacAddress, 6);
819#else
820 memcpy((caddr_t) &dev->enetaddr,
821 (caddr_t) &pAC->Addr.Net[1].CurrentMacAddress, 6);
822#endif
823
824 printk("%s: %s\n", dev->name, pAC->DeviceStr);
825 printk(" PrefPort:B RlmtMode:Dual Check Link State\n");
826
827 }
828
829
830 /* Save the hardware revision */
831 pAC->HWRevision = (((pAC->GIni.GIPciHwRev >> 4) & 0x0F)*10) +
832 (pAC->GIni.GIPciHwRev & 0x0F);
833
834 /*
835 * This is bollocks, but we need to tell the net-init
836 * code that it shall go for the next device.
837 */
838#if 0
839#ifndef MODULE
840 dev->base_addr = 0;
841#endif
842#endif
843 }
844
845 /*
846 * If we're at this point we're going through skge_probe() for
847 * the first time. Return success (0) if we've initialized 1
848 * or more boards. Otherwise, return failure (-ENODEV).
849 */
850
851 return boards_found;
852} /* skge_probe */
853
854
855/*****************************************************************************
856 *
857 * FreeResources - release resources allocated for adapter
858 *
859 * Description:
860 * This function releases the IRQ, unmaps the IO and
861 * frees the desriptor ring.
862 *
863 * Returns: N/A
864 *
865 */
866static void FreeResources(struct SK_NET_DEVICE *dev)
867{
868SK_U32 AllocFlag;
869DEV_NET *pNet;
870SK_AC *pAC;
871
872 if (dev->priv) {
873 pNet = (DEV_NET*) dev->priv;
874 pAC = pNet->pAC;
875 AllocFlag = pAC->AllocFlag;
876#if 0
877 if (AllocFlag & SK_ALLOC_IRQ) {
878 free_irq(dev->irq, dev);
879 }
880 if (pAC->IoBase) {
881 iounmap(pAC->IoBase);
882 }
883#endif
884 if (pAC->pDescrMem) {
885 BoardFreeMem(pAC);
886 }
887 }
888
889} /* FreeResources */
890
891#if 0
892MODULE_AUTHOR("Mirko Lindner <mlindner@syskonnect.de>");
893MODULE_DESCRIPTION("SysKonnect SK-NET Gigabit Ethernet SK-98xx driver");
894MODULE_LICENSE("GPL");
895MODULE_PARM(Speed_A, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
896MODULE_PARM(Speed_B, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
897MODULE_PARM(AutoNeg_A, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
898MODULE_PARM(AutoNeg_B, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
899MODULE_PARM(DupCap_A, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
900MODULE_PARM(DupCap_B, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
901MODULE_PARM(FlowCtrl_A, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
902MODULE_PARM(FlowCtrl_B, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
903MODULE_PARM(Role_A, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
904MODULE_PARM(Role_B, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
905MODULE_PARM(PrefPort, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
906MODULE_PARM(RlmtMode, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "s");
907/* not used, just there because every driver should have them: */
908MODULE_PARM(options, "1-" __MODULE_STRING(SK_MAX_CARD_PARAM) "i");
909MODULE_PARM(debug, "i");
910#endif
911
912
913#ifdef LINK_SPEED_A
914static char *Speed_A[SK_MAX_CARD_PARAM] = LINK_SPEED_A;
915#else
916static char *Speed_A[SK_MAX_CARD_PARAM] = {"", };
917#endif
918
919#ifdef LINK_SPEED_B
920static char *Speed_B[SK_MAX_CARD_PARAM] = LINK_SPEED_B;
921#else
922static char *Speed_B[SK_MAX_CARD_PARAM] = {"", };
923#endif
924
925#ifdef AUTO_NEG_A
926static char *AutoNeg_A[SK_MAX_CARD_PARAM] = AUTO_NEG_A;
927#else
928static char *AutoNeg_A[SK_MAX_CARD_PARAM] = {"", };
929#endif
930
931#ifdef DUP_CAP_A
932static char *DupCap_A[SK_MAX_CARD_PARAM] = DUP_CAP_A;
933#else
934static char *DupCap_A[SK_MAX_CARD_PARAM] = {"", };
935#endif
936
937#ifdef FLOW_CTRL_A
938static char *FlowCtrl_A[SK_MAX_CARD_PARAM] = FLOW_CTRL_A;
939#else
940static char *FlowCtrl_A[SK_MAX_CARD_PARAM] = {"", };
941#endif
942
943#ifdef ROLE_A
944static char *Role_A[SK_MAX_CARD_PARAM] = ROLE_A;
945#else
946static char *Role_A[SK_MAX_CARD_PARAM] = {"", };
947#endif
948
949#ifdef AUTO_NEG_B
950static char *AutoNeg_B[SK_MAX_CARD_PARAM] = AUTO_NEG_B;
951#else
952static char *AutoNeg_B[SK_MAX_CARD_PARAM] = {"", };
953#endif
954
955#ifdef DUP_CAP_B
956static char *DupCap_B[SK_MAX_CARD_PARAM] = DUP_CAP_B;
957#else
958static char *DupCap_B[SK_MAX_CARD_PARAM] = {"", };
959#endif
960
961#ifdef FLOW_CTRL_B
962static char *FlowCtrl_B[SK_MAX_CARD_PARAM] = FLOW_CTRL_B;
963#else
964static char *FlowCtrl_B[SK_MAX_CARD_PARAM] = {"", };
965#endif
966
967#ifdef ROLE_B
968static char *Role_B[SK_MAX_CARD_PARAM] = ROLE_B;
969#else
970static char *Role_B[SK_MAX_CARD_PARAM] = {"", };
971#endif
972
973#ifdef PREF_PORT
974static char *PrefPort[SK_MAX_CARD_PARAM] = PREF_PORT;
975#else
976static char *PrefPort[SK_MAX_CARD_PARAM] = {"", };
977#endif
978
979#ifdef RLMT_MODE
980static char *RlmtMode[SK_MAX_CARD_PARAM] = RLMT_MODE;
981#else
982static char *RlmtMode[SK_MAX_CARD_PARAM] = {"", };
983#endif
984
985#if 0
986static int debug = 0; /* not used */
987static int options[SK_MAX_CARD_PARAM] = {0, }; /* not used */
988
989
990/*****************************************************************************
991 *
992 * skge_init_module - module initialization function
993 *
994 * Description:
995 * Very simple, only call skge_probe and return approriate result.
996 *
997 * Returns:
998 * 0, if everything is ok
999 * !=0, on error
1000 */
1001static int __init skge_init_module(void)
1002{
1003 int cards;
1004 SkGeRootDev = NULL;
1005
1006 /* just to avoid warnings ... */
1007 debug = 0;
1008 options[0] = 0;
1009
1010 cards = skge_probe();
1011 if (cards == 0) {
1012 printk("sk98lin: No adapter found.\n");
1013 }
1014 return cards ? 0 : -ENODEV;
1015} /* skge_init_module */
1016
1017
1018/*****************************************************************************
1019 *
1020 * skge_cleanup_module - module unload function
1021 *
1022 * Description:
1023 * Disable adapter if it is still running, free resources,
1024 * free device struct.
1025 *
1026 * Returns: N/A
1027 */
1028static void __exit skge_cleanup_module(void)
1029{
1030DEV_NET *pNet;
1031SK_AC *pAC;
1032struct SK_NET_DEVICE *next;
1033unsigned long Flags;
1034SK_EVPARA EvPara;
1035
1036 while (SkGeRootDev) {
1037 pNet = (DEV_NET*) SkGeRootDev->priv;
1038 pAC = pNet->pAC;
1039 next = pAC->Next;
1040
1041 netif_stop_queue(SkGeRootDev);
1042 SkGeYellowLED(pAC, pAC->IoBase, 0);
1043
1044 if(pAC->BoardLevel == 2) {
1045 /* board is still alive */
1046 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
1047 EvPara.Para32[0] = 0;
1048 EvPara.Para32[1] = -1;
1049 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_STOP, EvPara);
1050 EvPara.Para32[0] = 1;
1051 EvPara.Para32[1] = -1;
1052 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_STOP, EvPara);
1053 SkEventDispatcher(pAC, pAC->IoBase);
1054 /* disable interrupts */
1055 SK_OUT32(pAC->IoBase, B0_IMSK, 0);
1056 SkGeDeInit(pAC, pAC->IoBase);
1057 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
1058 pAC->BoardLevel = 0;
1059 /* We do NOT check here, if IRQ was pending, of course*/
1060 }
1061
1062 if(pAC->BoardLevel == 1) {
1063 /* board is still alive */
1064 SkGeDeInit(pAC, pAC->IoBase);
1065 pAC->BoardLevel = 0;
1066 }
1067
1068 if ((pAC->GIni.GIMacsFound == 2) && pAC->RlmtNets == 2){
1069 unregister_netdev(pAC->dev[1]);
1070 kfree(pAC->dev[1]);
1071 }
1072
1073 FreeResources(SkGeRootDev);
1074
1075 SkGeRootDev->get_stats = NULL;
1076 /*
1077 * otherwise unregister_netdev calls get_stats with
1078 * invalid IO ... :-(
1079 */
1080 unregister_netdev(SkGeRootDev);
1081 kfree(SkGeRootDev);
1082 kfree(pAC);
1083 SkGeRootDev = next;
1084 }
1085
1086 /* clear proc-dir */
1087 remove_proc_entry(pSkRootDir->name, proc_net);
1088
1089} /* skge_cleanup_module */
1090
1091module_init(skge_init_module);
1092module_exit(skge_cleanup_module);
1093#endif
1094
1095
1096/*****************************************************************************
1097 *
1098 * SkGeBoardInit - do level 0 and 1 initialization
1099 *
1100 * Description:
1101 * This function prepares the board hardware for running. The desriptor
1102 * ring is set up, the IRQ is allocated and the configuration settings
1103 * are examined.
1104 *
1105 * Returns:
1106 * 0, if everything is ok
1107 * !=0, on error
1108 */
1109static int __init SkGeBoardInit(struct SK_NET_DEVICE *dev, SK_AC *pAC)
1110{
1111short i;
1112unsigned long Flags;
1113char *DescrString = "sk98lin: Driver for Linux"; /* this is given to PNMI */
1114char *VerStr = VER_STRING;
1115#if 0
1116int Ret; /* return code of request_irq */
1117#endif
1118SK_BOOL DualNet;
1119
1120 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
1121 ("IoBase: %08lX\n", (unsigned long)pAC->IoBase));
1122 for (i=0; i<SK_MAX_MACS; i++) {
1123 pAC->TxPort[i][0].HwAddr = pAC->IoBase + TxQueueAddr[i][0];
1124 pAC->TxPort[i][0].PortIndex = i;
1125 pAC->RxPort[i].HwAddr = pAC->IoBase + RxQueueAddr[i];
1126 pAC->RxPort[i].PortIndex = i;
1127 }
1128
1129 /* Initialize the mutexes */
1130 for (i=0; i<SK_MAX_MACS; i++) {
1131 spin_lock_init(&pAC->TxPort[i][0].TxDesRingLock);
1132 spin_lock_init(&pAC->RxPort[i].RxDesRingLock);
1133 }
1134 spin_lock_init(&pAC->SlowPathLock);
1135
1136 /* level 0 init common modules here */
1137
1138 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
1139 /* Does a RESET on board ...*/
1140 if (SkGeInit(pAC, pAC->IoBase, 0) != 0) {
1141 printk("HWInit (0) failed.\n");
1142 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
1143 return(-EAGAIN);
1144 }
1145 SkI2cInit( pAC, pAC->IoBase, 0);
1146 SkEventInit(pAC, pAC->IoBase, 0);
1147 SkPnmiInit( pAC, pAC->IoBase, 0);
1148 SkAddrInit( pAC, pAC->IoBase, 0);
1149 SkRlmtInit( pAC, pAC->IoBase, 0);
1150 SkTimerInit(pAC, pAC->IoBase, 0);
1151
1152 pAC->BoardLevel = 0;
1153 pAC->RxBufSize = ETH_BUF_SIZE;
1154
1155 SK_PNMI_SET_DRIVER_DESCR(pAC, DescrString);
1156 SK_PNMI_SET_DRIVER_VER(pAC, VerStr);
1157
1158 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
1159
1160 /* level 1 init common modules here (HW init) */
1161 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
1162 if (SkGeInit(pAC, pAC->IoBase, 1) != 0) {
1163 printk("HWInit (1) failed.\n");
1164 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
1165 return(-EAGAIN);
1166 }
1167 SkI2cInit( pAC, pAC->IoBase, 1);
1168 SkEventInit(pAC, pAC->IoBase, 1);
1169 SkPnmiInit( pAC, pAC->IoBase, 1);
1170 SkAddrInit( pAC, pAC->IoBase, 1);
1171 SkRlmtInit( pAC, pAC->IoBase, 1);
1172 SkTimerInit(pAC, pAC->IoBase, 1);
1173
1174 GetConfiguration(pAC);
1175 if (pAC->RlmtNets == 2) {
1176 pAC->GIni.GIPortUsage = SK_MUL_LINK;
1177 }
1178
1179 pAC->BoardLevel = 1;
1180 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
1181
1182#if 0
1183 if (pAC->GIni.GIMacsFound == 2) {
1184 Ret = request_irq(dev->irq, SkGeIsr, SA_SHIRQ, pAC->Name, dev);
1185 } else if (pAC->GIni.GIMacsFound == 1) {
1186 Ret = request_irq(dev->irq, SkGeIsrOnePort, SA_SHIRQ,
1187 pAC->Name, dev);
1188 } else {
1189 printk(KERN_WARNING "%s: Illegal number of ports: %d\n",
1190 dev->name, pAC->GIni.GIMacsFound);
1191 return -EAGAIN;
1192 }
1193
1194 if (Ret) {
1195 printk(KERN_WARNING "%s: Requested IRQ %d is busy.\n",
1196 dev->name, dev->irq);
1197 return -EAGAIN;
1198 }
1199#endif
1200 pAC->AllocFlag |= SK_ALLOC_IRQ;
1201
1202 /* Alloc memory for this board (Mem for RxD/TxD) : */
1203 if(!BoardAllocMem(pAC)) {
1204 printk("No memory for descriptor rings.\n");
1205 return(-EAGAIN);
1206 }
1207
1208 SkCsSetReceiveFlags(pAC,
1209 SKCS_PROTO_IP | SKCS_PROTO_TCP | SKCS_PROTO_UDP,
1210 &pAC->CsOfs1, &pAC->CsOfs2, 0);
1211 pAC->CsOfs = (pAC->CsOfs2 << 16) | pAC->CsOfs1;
1212
1213 BoardInitMem(pAC);
1214#if 0
1215 SetQueueSizes(pAC);
1216#else
1217 /* tschilling: New common function with minimum size check. */
1218 DualNet = SK_FALSE;
1219 if (pAC->RlmtNets == 2) {
1220 DualNet = SK_TRUE;
1221 }
1222
1223 if (SkGeInitAssignRamToQueues(
1224 pAC,
1225 pAC->ActivePort,
1226 DualNet)) {
1227 BoardFreeMem(pAC);
1228 printk("SkGeInitAssignRamToQueues failed.\n");
1229 return(-EAGAIN);
1230 }
1231#endif
1232
1233 /* Print adapter specific string from vpd */
1234 ProductStr(pAC);
1235#ifdef SK98_INFO
1236 printk("%s: %s\n", dev->name, pAC->DeviceStr);
1237
1238 /* Print configuration settings */
1239 printk(" PrefPort:%c RlmtMode:%s\n",
1240 'A' + pAC->Rlmt.Net[0].Port[pAC->Rlmt.Net[0].PrefPort]->PortNumber,
1241 (pAC->RlmtMode==0) ? "Check Link State" :
1242 ((pAC->RlmtMode==1) ? "Check Link State" :
1243 ((pAC->RlmtMode==3) ? "Check Local Port" :
1244 ((pAC->RlmtMode==7) ? "Check Segmentation" :
1245 ((pAC->RlmtMode==17) ? "Dual Check Link State" :"Error")))));
1246#endif
1247
1248 SkGeYellowLED(pAC, pAC->IoBase, 1);
1249
1250 /*
1251 * Register the device here
1252 */
1253 pAC->Next = SkGeRootDev;
1254 SkGeRootDev = dev;
1255
1256 return (0);
1257} /* SkGeBoardInit */
1258
1259
1260/*****************************************************************************
1261 *
1262 * BoardAllocMem - allocate the memory for the descriptor rings
1263 *
1264 * Description:
1265 * This function allocates the memory for all descriptor rings.
1266 * Each ring is aligned for the desriptor alignment and no ring
1267 * has a 4 GByte boundary in it (because the upper 32 bit must
1268 * be constant for all descriptiors in one rings).
1269 *
1270 * Returns:
1271 * SK_TRUE, if all memory could be allocated
1272 * SK_FALSE, if not
1273 */
1274static SK_BOOL BoardAllocMem(
1275SK_AC *pAC)
1276{
1277caddr_t pDescrMem; /* pointer to descriptor memory area */
1278size_t AllocLength; /* length of complete descriptor area */
1279int i; /* loop counter */
1280unsigned long BusAddr;
1281
1282
1283 /* rings plus one for alignment (do not cross 4 GB boundary) */
1284 /* RX_RING_SIZE is assumed bigger than TX_RING_SIZE */
1285#if (BITS_PER_LONG == 32)
1286 AllocLength = (RX_RING_SIZE + TX_RING_SIZE) * pAC->GIni.GIMacsFound + 8;
1287#else
1288 AllocLength = (RX_RING_SIZE + TX_RING_SIZE) * pAC->GIni.GIMacsFound
1289 + RX_RING_SIZE + 8;
1290#endif
1291
1292 pDescrMem = pci_alloc_consistent(pAC->PciDev, AllocLength,
1293 &pAC->pDescrMemDMA);
1294
1295 if (pDescrMem == NULL) {
1296 return (SK_FALSE);
1297 }
1298 pAC->pDescrMem = pDescrMem;
1299 BusAddr = (unsigned long) pAC->pDescrMemDMA;
1300
1301 /* Descriptors need 8 byte alignment, and this is ensured
1302 * by pci_alloc_consistent.
1303 */
1304 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
1305 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_TX_PROGRESS,
1306 ("TX%d/A: pDescrMem: %lX, PhysDescrMem: %lX\n",
1307 i, (unsigned long) pDescrMem,
1308 BusAddr));
1309 pAC->TxPort[i][0].pTxDescrRing = pDescrMem;
1310 pAC->TxPort[i][0].VTxDescrRing = BusAddr;
1311 pDescrMem += TX_RING_SIZE;
1312 BusAddr += TX_RING_SIZE;
1313
1314 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_TX_PROGRESS,
1315 ("RX%d: pDescrMem: %lX, PhysDescrMem: %lX\n",
1316 i, (unsigned long) pDescrMem,
1317 (unsigned long)BusAddr));
1318 pAC->RxPort[i].pRxDescrRing = pDescrMem;
1319 pAC->RxPort[i].VRxDescrRing = BusAddr;
1320 pDescrMem += RX_RING_SIZE;
1321 BusAddr += RX_RING_SIZE;
1322 } /* for */
1323
1324 return (SK_TRUE);
1325} /* BoardAllocMem */
1326
1327
1328/****************************************************************************
1329 *
1330 * BoardFreeMem - reverse of BoardAllocMem
1331 *
1332 * Description:
1333 * Free all memory allocated in BoardAllocMem: adapter context,
1334 * descriptor rings, locks.
1335 *
1336 * Returns: N/A
1337 */
1338static void BoardFreeMem(
1339SK_AC *pAC)
1340{
1341size_t AllocLength; /* length of complete descriptor area */
1342
1343 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
1344 ("BoardFreeMem\n"));
1345#if (BITS_PER_LONG == 32)
1346 AllocLength = (RX_RING_SIZE + TX_RING_SIZE) * pAC->GIni.GIMacsFound + 8;
1347#else
1348 AllocLength = (RX_RING_SIZE + TX_RING_SIZE) * pAC->GIni.GIMacsFound
1349 + RX_RING_SIZE + 8;
1350#endif
1351
1352 pci_free_consistent(pAC->PciDev, AllocLength,
1353 pAC->pDescrMem, pAC->pDescrMemDMA);
1354 pAC->pDescrMem = NULL;
1355} /* BoardFreeMem */
1356
1357
1358/*****************************************************************************
1359 *
1360 * BoardInitMem - initiate the descriptor rings
1361 *
1362 * Description:
1363 * This function sets the descriptor rings up in memory.
1364 * The adapter is initialized with the descriptor start addresses.
1365 *
1366 * Returns: N/A
1367 */
1368static void BoardInitMem(
1369SK_AC *pAC) /* pointer to adapter context */
1370{
1371int i; /* loop counter */
1372int RxDescrSize; /* the size of a rx descriptor rounded up to alignment*/
1373int TxDescrSize; /* the size of a tx descriptor rounded up to alignment*/
1374
1375 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
1376 ("BoardInitMem\n"));
1377
1378 RxDescrSize = (((sizeof(RXD) - 1) / DESCR_ALIGN) + 1) * DESCR_ALIGN;
1379 pAC->RxDescrPerRing = RX_RING_SIZE / RxDescrSize;
1380 TxDescrSize = (((sizeof(TXD) - 1) / DESCR_ALIGN) + 1) * DESCR_ALIGN;
1381 pAC->TxDescrPerRing = TX_RING_SIZE / RxDescrSize;
1382
1383 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
1384 SetupRing(
1385 pAC,
1386 pAC->TxPort[i][0].pTxDescrRing,
1387 pAC->TxPort[i][0].VTxDescrRing,
1388 (RXD**)&pAC->TxPort[i][0].pTxdRingHead,
1389 (RXD**)&pAC->TxPort[i][0].pTxdRingTail,
1390 (RXD**)&pAC->TxPort[i][0].pTxdRingPrev,
1391 &pAC->TxPort[i][0].TxdRingFree,
1392 SK_TRUE);
1393 SetupRing(
1394 pAC,
1395 pAC->RxPort[i].pRxDescrRing,
1396 pAC->RxPort[i].VRxDescrRing,
1397 &pAC->RxPort[i].pRxdRingHead,
1398 &pAC->RxPort[i].pRxdRingTail,
1399 &pAC->RxPort[i].pRxdRingPrev,
1400 &pAC->RxPort[i].RxdRingFree,
1401 SK_FALSE);
1402 }
1403} /* BoardInitMem */
1404
1405
1406/*****************************************************************************
1407 *
1408 * SetupRing - create one descriptor ring
1409 *
1410 * Description:
1411 * This function creates one descriptor ring in the given memory area.
1412 * The head, tail and number of free descriptors in the ring are set.
1413 *
1414 * Returns:
1415 * none
1416 */
1417static void SetupRing(
1418SK_AC *pAC,
1419void *pMemArea, /* a pointer to the memory area for the ring */
1420uintptr_t VMemArea, /* the virtual bus address of the memory area */
1421RXD **ppRingHead, /* address where the head should be written */
1422RXD **ppRingTail, /* address where the tail should be written */
1423RXD **ppRingPrev, /* address where the tail should be written */
1424int *pRingFree, /* address where the # of free descr. goes */
1425SK_BOOL IsTx) /* flag: is this a tx ring */
1426{
1427int i; /* loop counter */
1428int DescrSize; /* the size of a descriptor rounded up to alignment*/
1429int DescrNum; /* number of descriptors per ring */
1430RXD *pDescr; /* pointer to a descriptor (receive or transmit) */
1431RXD *pNextDescr; /* pointer to the next descriptor */
1432RXD *pPrevDescr; /* pointer to the previous descriptor */
1433uintptr_t VNextDescr; /* the virtual bus address of the next descriptor */
1434
1435 if (IsTx == SK_TRUE) {
1436 DescrSize = (((sizeof(TXD) - 1) / DESCR_ALIGN) + 1) *
1437 DESCR_ALIGN;
1438 DescrNum = TX_RING_SIZE / DescrSize;
1439 } else {
1440 DescrSize = (((sizeof(RXD) - 1) / DESCR_ALIGN) + 1) *
1441 DESCR_ALIGN;
1442 DescrNum = RX_RING_SIZE / DescrSize;
1443 }
1444
1445 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_TX_PROGRESS,
1446 ("Descriptor size: %d Descriptor Number: %d\n",
1447 DescrSize,DescrNum));
1448
1449 pDescr = (RXD*) pMemArea;
1450 pPrevDescr = NULL;
1451 pNextDescr = (RXD*) (((char*)pDescr) + DescrSize);
1452 VNextDescr = VMemArea + DescrSize;
1453 for(i=0; i<DescrNum; i++) {
1454 /* set the pointers right */
1455 pDescr->VNextRxd = VNextDescr & 0xffffffffULL;
1456 pDescr->pNextRxd = pNextDescr;
1457 pDescr->TcpSumStarts = pAC->CsOfs;
1458
1459 /* advance one step */
1460 pPrevDescr = pDescr;
1461 pDescr = pNextDescr;
1462 pNextDescr = (RXD*) (((char*)pDescr) + DescrSize);
1463 VNextDescr += DescrSize;
1464 }
1465 pPrevDescr->pNextRxd = (RXD*) pMemArea;
1466 pPrevDescr->VNextRxd = VMemArea;
1467 pDescr = (RXD*) pMemArea;
1468 *ppRingHead = (RXD*) pMemArea;
1469 *ppRingTail = *ppRingHead;
1470 *ppRingPrev = pPrevDescr;
1471 *pRingFree = DescrNum;
1472} /* SetupRing */
1473
1474
1475/*****************************************************************************
1476 *
1477 * PortReInitBmu - re-initiate the descriptor rings for one port
1478 *
1479 * Description:
1480 * This function reinitializes the descriptor rings of one port
1481 * in memory. The port must be stopped before.
1482 * The HW is initialized with the descriptor start addresses.
1483 *
1484 * Returns:
1485 * none
1486 */
1487static void PortReInitBmu(
1488SK_AC *pAC, /* pointer to adapter context */
1489int PortIndex) /* index of the port for which to re-init */
1490{
1491 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
1492 ("PortReInitBmu "));
1493
1494 /* set address of first descriptor of ring in BMU */
1495 SK_OUT32(pAC->IoBase, TxQueueAddr[PortIndex][TX_PRIO_LOW]+
1496 TX_Q_CUR_DESCR_LOW,
1497 (uint32_t)(((caddr_t)
1498 (pAC->TxPort[PortIndex][TX_PRIO_LOW].pTxdRingHead) -
1499 pAC->TxPort[PortIndex][TX_PRIO_LOW].pTxDescrRing +
1500 pAC->TxPort[PortIndex][TX_PRIO_LOW].VTxDescrRing) &
1501 0xFFFFFFFF));
1502 SK_OUT32(pAC->IoBase, TxQueueAddr[PortIndex][TX_PRIO_LOW]+
1503 TX_Q_DESCR_HIGH,
1504 (uint32_t)(((caddr_t)
1505 (pAC->TxPort[PortIndex][TX_PRIO_LOW].pTxdRingHead) -
1506 pAC->TxPort[PortIndex][TX_PRIO_LOW].pTxDescrRing +
1507 pAC->TxPort[PortIndex][TX_PRIO_LOW].VTxDescrRing) >> 32));
1508 SK_OUT32(pAC->IoBase, RxQueueAddr[PortIndex]+RX_Q_CUR_DESCR_LOW,
1509 (uint32_t)(((caddr_t)(pAC->RxPort[PortIndex].pRxdRingHead) -
1510 pAC->RxPort[PortIndex].pRxDescrRing +
1511 pAC->RxPort[PortIndex].VRxDescrRing) & 0xFFFFFFFF));
1512 SK_OUT32(pAC->IoBase, RxQueueAddr[PortIndex]+RX_Q_DESCR_HIGH,
1513 (uint32_t)(((caddr_t)(pAC->RxPort[PortIndex].pRxdRingHead) -
1514 pAC->RxPort[PortIndex].pRxDescrRing +
1515 pAC->RxPort[PortIndex].VRxDescrRing) >> 32));
1516} /* PortReInitBmu */
1517
1518
1519/****************************************************************************
1520 *
1521 * SkGeIsr - handle adapter interrupts
1522 *
1523 * Description:
1524 * The interrupt routine is called when the network adapter
1525 * generates an interrupt. It may also be called if another device
1526 * shares this interrupt vector with the driver.
1527 *
1528 * Returns: N/A
1529 *
1530 */
1531#if 0
1532static void SkGeIsr(int irq, void *dev_id, struct pt_regs *ptregs)
1533#else
1534void SkGeIsr(int irq, void *dev_id, struct pt_regs *ptregs)
1535#endif
1536{
1537struct SK_NET_DEVICE *dev = (struct SK_NET_DEVICE *)dev_id;
1538DEV_NET *pNet;
1539SK_AC *pAC;
1540SK_U32 IntSrc; /* interrupts source register contents */
1541
1542 pNet = (DEV_NET*) dev->priv;
1543 pAC = pNet->pAC;
1544
1545 /*
1546 * Check and process if its our interrupt
1547 */
1548 SK_IN32(pAC->IoBase, B0_SP_ISRC, &IntSrc);
1549 if (IntSrc == 0) {
1550 return;
1551 }
1552
1553 while (((IntSrc & IRQ_MASK) & ~SPECIAL_IRQS) != 0) {
1554#if 0 /* software irq currently not used */
1555 if (IntSrc & IRQ_SW) {
1556 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1557 SK_DBGCAT_DRV_INT_SRC,
1558 ("Software IRQ\n"));
1559 }
1560#endif
1561 if (IntSrc & IRQ_EOF_RX1) {
1562 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1563 SK_DBGCAT_DRV_INT_SRC,
1564 ("EOF RX1 IRQ\n"));
1565 ReceiveIrq(pAC, &pAC->RxPort[0], SK_TRUE);
1566 SK_PNMI_CNT_RX_INTR(pAC, 0);
1567 }
1568 if (IntSrc & IRQ_EOF_RX2) {
1569 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1570 SK_DBGCAT_DRV_INT_SRC,
1571 ("EOF RX2 IRQ\n"));
1572 ReceiveIrq(pAC, &pAC->RxPort[1], SK_TRUE);
1573 SK_PNMI_CNT_RX_INTR(pAC, 1);
1574 }
1575#ifdef USE_TX_COMPLETE /* only if tx complete interrupt used */
1576 if (IntSrc & IRQ_EOF_AS_TX1) {
1577 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1578 SK_DBGCAT_DRV_INT_SRC,
1579 ("EOF AS TX1 IRQ\n"));
1580 SK_PNMI_CNT_TX_INTR(pAC, 0);
1581 spin_lock(&pAC->TxPort[0][TX_PRIO_LOW].TxDesRingLock);
1582 FreeTxDescriptors(pAC, &pAC->TxPort[0][TX_PRIO_LOW]);
1583 spin_unlock(&pAC->TxPort[0][TX_PRIO_LOW].TxDesRingLock);
1584 }
1585 if (IntSrc & IRQ_EOF_AS_TX2) {
1586 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1587 SK_DBGCAT_DRV_INT_SRC,
1588 ("EOF AS TX2 IRQ\n"));
1589 SK_PNMI_CNT_TX_INTR(pAC, 1);
1590 spin_lock(&pAC->TxPort[1][TX_PRIO_LOW].TxDesRingLock);
1591 FreeTxDescriptors(pAC, &pAC->TxPort[1][TX_PRIO_LOW]);
1592 spin_unlock(&pAC->TxPort[1][TX_PRIO_LOW].TxDesRingLock);
1593 }
1594#if 0 /* only if sync. queues used */
1595 if (IntSrc & IRQ_EOF_SY_TX1) {
1596 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1597 SK_DBGCAT_DRV_INT_SRC,
1598 ("EOF SY TX1 IRQ\n"));
1599 SK_PNMI_CNT_TX_INTR(pAC, 1);
1600 spin_lock(&pAC->TxPort[0][TX_PRIO_HIGH].TxDesRingLock);
1601 FreeTxDescriptors(pAC, 0, TX_PRIO_HIGH);
1602 spin_unlock(&pAC->TxPort[0][TX_PRIO_HIGH].TxDesRingLock);
1603 ClearTxIrq(pAC, 0, TX_PRIO_HIGH);
1604 }
1605 if (IntSrc & IRQ_EOF_SY_TX2) {
1606 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1607 SK_DBGCAT_DRV_INT_SRC,
1608 ("EOF SY TX2 IRQ\n"));
1609 SK_PNMI_CNT_TX_INTR(pAC, 1);
1610 spin_lock(&pAC->TxPort[1][TX_PRIO_HIGH].TxDesRingLock);
1611 FreeTxDescriptors(pAC, 1, TX_PRIO_HIGH);
1612 spin_unlock(&pAC->TxPort[1][TX_PRIO_HIGH].TxDesRingLock);
1613 ClearTxIrq(pAC, 1, TX_PRIO_HIGH);
1614 }
1615#endif
1616#endif
1617
1618 /* do all IO at once */
1619 if (IntSrc & IRQ_EOF_RX1)
1620 ClearAndStartRx(pAC, 0);
1621 if (IntSrc & IRQ_EOF_RX2)
1622 ClearAndStartRx(pAC, 1);
1623#ifdef USE_TX_COMPLETE /* only if tx complete interrupt used */
1624 if (IntSrc & IRQ_EOF_AS_TX1)
1625 ClearTxIrq(pAC, 0, TX_PRIO_LOW);
1626 if (IntSrc & IRQ_EOF_AS_TX2)
1627 ClearTxIrq(pAC, 1, TX_PRIO_LOW);
1628#endif
1629 SK_IN32(pAC->IoBase, B0_ISRC, &IntSrc);
1630 } /* while (IntSrc & IRQ_MASK != 0) */
1631
1632 if ((IntSrc & SPECIAL_IRQS) || pAC->CheckQueue) {
1633 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_INT_SRC,
1634 ("SPECIAL IRQ DP-Cards => %x\n", IntSrc));
1635 pAC->CheckQueue = SK_FALSE;
1636 spin_lock(&pAC->SlowPathLock);
1637 if (IntSrc & SPECIAL_IRQS)
1638 SkGeSirqIsr(pAC, pAC->IoBase, IntSrc);
1639
1640 SkEventDispatcher(pAC, pAC->IoBase);
1641 spin_unlock(&pAC->SlowPathLock);
1642 }
1643 /*
1644 * do it all again is case we cleared an interrupt that
1645 * came in after handling the ring (OUTs may be delayed
1646 * in hardware buffers, but are through after IN)
1647 */
1648
1649 ReceiveIrq(pAC, &pAC->RxPort[0], SK_TRUE);
1650 ReceiveIrq(pAC, &pAC->RxPort[1], SK_TRUE);
1651
1652 if (pAC->CheckQueue) {
1653 pAC->CheckQueue = SK_FALSE;
1654 spin_lock(&pAC->SlowPathLock);
1655 SkEventDispatcher(pAC, pAC->IoBase);
1656 spin_unlock(&pAC->SlowPathLock);
1657 }
1658
1659
1660 /* IRQ is processed - Enable IRQs again*/
1661 SK_OUT32(pAC->IoBase, B0_IMSK, IRQ_MASK);
1662
1663 return;
1664} /* SkGeIsr */
1665
1666
1667/****************************************************************************
1668 *
1669 * SkGeIsrOnePort - handle adapter interrupts for single port adapter
1670 *
1671 * Description:
1672 * The interrupt routine is called when the network adapter
1673 * generates an interrupt. It may also be called if another device
1674 * shares this interrupt vector with the driver.
1675 * This is the same as above, but handles only one port.
1676 *
1677 * Returns: N/A
1678 *
1679 */
1680#if 0
1681static void SkGeIsrOnePort(int irq, void *dev_id, struct pt_regs *ptregs)
1682#else
1683void SkGeIsrOnePort(int irq, void *dev_id, struct pt_regs *ptregs)
1684#endif
1685{
1686struct SK_NET_DEVICE *dev = (struct SK_NET_DEVICE *)dev_id;
1687DEV_NET *pNet;
1688SK_AC *pAC;
1689SK_U32 IntSrc; /* interrupts source register contents */
1690
1691 pNet = (DEV_NET*) dev->priv;
1692 pAC = pNet->pAC;
1693
1694 /*
1695 * Check and process if its our interrupt
1696 */
1697 SK_IN32(pAC->IoBase, B0_SP_ISRC, &IntSrc);
1698 if (IntSrc == 0) {
1699 return;
1700 }
1701
1702 while (((IntSrc & IRQ_MASK) & ~SPECIAL_IRQS) != 0) {
1703#if 0 /* software irq currently not used */
1704 if (IntSrc & IRQ_SW) {
1705 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1706 SK_DBGCAT_DRV_INT_SRC,
1707 ("Software IRQ\n"));
1708 }
1709#endif
1710 if (IntSrc & IRQ_EOF_RX1) {
1711 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1712 SK_DBGCAT_DRV_INT_SRC,
1713 ("EOF RX1 IRQ\n"));
1714 ReceiveIrq(pAC, &pAC->RxPort[0], SK_TRUE);
1715 SK_PNMI_CNT_RX_INTR(pAC, 0);
1716 }
1717#ifdef USE_TX_COMPLETE /* only if tx complete interrupt used */
1718 if (IntSrc & IRQ_EOF_AS_TX1) {
1719 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1720 SK_DBGCAT_DRV_INT_SRC,
1721 ("EOF AS TX1 IRQ\n"));
1722 SK_PNMI_CNT_TX_INTR(pAC, 0);
1723 spin_lock(&pAC->TxPort[0][TX_PRIO_LOW].TxDesRingLock);
1724 FreeTxDescriptors(pAC, &pAC->TxPort[0][TX_PRIO_LOW]);
1725 spin_unlock(&pAC->TxPort[0][TX_PRIO_LOW].TxDesRingLock);
1726 }
1727#if 0 /* only if sync. queues used */
1728 if (IntSrc & IRQ_EOF_SY_TX1) {
1729 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
1730 SK_DBGCAT_DRV_INT_SRC,
1731 ("EOF SY TX1 IRQ\n"));
1732 SK_PNMI_CNT_TX_INTR(pAC, 0);
1733 spin_lock(&pAC->TxPort[0][TX_PRIO_HIGH].TxDesRingLock);
1734 FreeTxDescriptors(pAC, 0, TX_PRIO_HIGH);
1735 spin_unlock(&pAC->TxPort[0][TX_PRIO_HIGH].TxDesRingLock);
1736 ClearTxIrq(pAC, 0, TX_PRIO_HIGH);
1737 }
1738#endif
1739#endif
1740
1741 /* do all IO at once */
1742 if (IntSrc & IRQ_EOF_RX1)
1743 ClearAndStartRx(pAC, 0);
1744#ifdef USE_TX_COMPLETE /* only if tx complete interrupt used */
1745 if (IntSrc & IRQ_EOF_AS_TX1)
1746 ClearTxIrq(pAC, 0, TX_PRIO_LOW);
1747#endif
1748 SK_IN32(pAC->IoBase, B0_ISRC, &IntSrc);
1749 } /* while (IntSrc & IRQ_MASK != 0) */
1750
1751 if ((IntSrc & SPECIAL_IRQS) || pAC->CheckQueue) {
1752 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_INT_SRC,
1753 ("SPECIAL IRQ SP-Cards => %x\n", IntSrc));
1754 pAC->CheckQueue = SK_FALSE;
1755 spin_lock(&pAC->SlowPathLock);
1756 if (IntSrc & SPECIAL_IRQS)
1757 SkGeSirqIsr(pAC, pAC->IoBase, IntSrc);
1758
1759 SkEventDispatcher(pAC, pAC->IoBase);
1760 spin_unlock(&pAC->SlowPathLock);
1761 }
1762 /*
1763 * do it all again is case we cleared an interrupt that
1764 * came in after handling the ring (OUTs may be delayed
1765 * in hardware buffers, but are through after IN)
1766 */
1767 ReceiveIrq(pAC, &pAC->RxPort[0], SK_TRUE);
1768
1769 /* IRQ is processed - Enable IRQs again*/
1770 SK_OUT32(pAC->IoBase, B0_IMSK, IRQ_MASK);
1771
1772 return;
1773} /* SkGeIsrOnePort */
1774
1775
1776/****************************************************************************
1777 *
1778 * SkGeOpen - handle start of initialized adapter
1779 *
1780 * Description:
1781 * This function starts the initialized adapter.
1782 * The board level variable is set and the adapter is
1783 * brought to full functionality.
1784 * The device flags are set for operation.
1785 * Do all necessary level 2 initialization, enable interrupts and
1786 * give start command to RLMT.
1787 *
1788 * Returns:
1789 * 0 on success
1790 * != 0 on error
1791 */
1792#if 0
1793static int SkGeOpen(
1794#else
1795int SkGeOpen(
1796#endif
1797struct SK_NET_DEVICE *dev)
1798{
1799 DEV_NET *pNet;
1800 SK_AC *pAC;
1801 unsigned long Flags; /* for spin lock */
1802 int i;
1803 SK_EVPARA EvPara; /* an event parameter union */
1804
1805 pNet = (DEV_NET*) dev->priv;
1806 pAC = pNet->pAC;
1807
1808 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
1809 ("SkGeOpen: pAC=0x%lX:\n", (unsigned long)pAC));
1810
1811 if (pAC->BoardLevel == 0) {
1812 /* level 1 init common modules here */
1813 if (SkGeInit(pAC, pAC->IoBase, 1) != 0) {
1814 printk("%s: HWInit (1) failed.\n", pAC->dev[pNet->PortNr]->name);
1815 return (-1);
1816 }
1817 SkI2cInit (pAC, pAC->IoBase, 1);
1818 SkEventInit (pAC, pAC->IoBase, 1);
1819 SkPnmiInit (pAC, pAC->IoBase, 1);
1820 SkAddrInit (pAC, pAC->IoBase, 1);
1821 SkRlmtInit (pAC, pAC->IoBase, 1);
1822 SkTimerInit (pAC, pAC->IoBase, 1);
1823 pAC->BoardLevel = 1;
1824 }
1825
1826 if (pAC->BoardLevel != 2) {
1827 /* tschilling: Level 2 init modules here, check return value. */
1828 if (SkGeInit(pAC, pAC->IoBase, 2) != 0) {
1829 printk("%s: HWInit (2) failed.\n", pAC->dev[pNet->PortNr]->name);
1830 return (-1);
1831 }
1832 SkI2cInit (pAC, pAC->IoBase, 2);
1833 SkEventInit (pAC, pAC->IoBase, 2);
1834 SkPnmiInit (pAC, pAC->IoBase, 2);
1835 SkAddrInit (pAC, pAC->IoBase, 2);
1836 SkRlmtInit (pAC, pAC->IoBase, 2);
1837 SkTimerInit (pAC, pAC->IoBase, 2);
1838 pAC->BoardLevel = 2;
1839 }
1840
1841 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
1842 /* Enable transmit descriptor polling. */
1843 SkGePollTxD(pAC, pAC->IoBase, i, SK_TRUE);
1844 FillRxRing(pAC, &pAC->RxPort[i]);
1845 }
1846 SkGeYellowLED(pAC, pAC->IoBase, 1);
1847
1848#ifdef USE_INT_MOD
1849/* moderate only TX complete interrupts (these are not time critical) */
1850#define IRQ_MOD_MASK (IRQ_EOF_AS_TX1 | IRQ_EOF_AS_TX2)
1851 {
1852 unsigned long ModBase;
1853 ModBase = 53125000 / INTS_PER_SEC;
1854 SK_OUT32(pAC->IoBase, B2_IRQM_INI, ModBase);
1855 SK_OUT32(pAC->IoBase, B2_IRQM_MSK, IRQ_MOD_MASK);
1856 SK_OUT32(pAC->IoBase, B2_IRQM_CTRL, TIM_START);
1857 }
1858#endif
1859
1860 /* enable Interrupts */
1861 SK_OUT32(pAC->IoBase, B0_IMSK, IRQ_MASK);
1862 SK_OUT32(pAC->IoBase, B0_HWE_IMSK, IRQ_HWE_MASK);
1863
1864 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
1865
1866 if ((pAC->RlmtMode != 0) && (pAC->MaxPorts == 0)) {
1867 EvPara.Para32[0] = pAC->RlmtNets;
1868 EvPara.Para32[1] = -1;
1869 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_SET_NETS,
1870 EvPara);
1871 EvPara.Para32[0] = pAC->RlmtMode;
1872 EvPara.Para32[1] = 0;
1873 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_MODE_CHANGE,
1874 EvPara);
1875 }
1876
1877 EvPara.Para32[0] = pNet->NetNr;
1878 EvPara.Para32[1] = -1;
1879 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_START, EvPara);
1880 SkEventDispatcher(pAC, pAC->IoBase);
1881 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
1882
1883 pAC->MaxPorts++;
1884 pNet->Up = 1;
1885
1886 MOD_INC_USE_COUNT;
1887
1888 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
1889 ("SkGeOpen suceeded\n"));
1890
1891 return (0);
1892} /* SkGeOpen */
1893
1894
1895/****************************************************************************
1896 *
1897 * SkGeClose - Stop initialized adapter
1898 *
1899 * Description:
1900 * Close initialized adapter.
1901 *
1902 * Returns:
1903 * 0 - on success
1904 * error code - on error
1905 */
1906#if 0
1907static int SkGeClose(
1908#else
1909int SkGeClose(
1910#endif
1911struct SK_NET_DEVICE *dev)
1912{
1913 DEV_NET *pNet;
1914 SK_AC *pAC;
1915
1916 unsigned long Flags; /* for spin lock */
1917 int i;
1918 int PortIdx;
1919 SK_EVPARA EvPara;
1920
1921 netif_stop_queue(dev);
1922 pNet = (DEV_NET*) dev->priv;
1923 pAC = pNet->pAC;
1924
1925 if (pAC->RlmtNets == 1)
1926 PortIdx = pAC->ActivePort;
1927 else
1928 PortIdx = pNet->NetNr;
1929
1930 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
1931 ("SkGeClose: pAC=0x%lX ", (unsigned long)pAC));
1932
1933 /*
1934 * Clear multicast table, promiscuous mode ....
1935 */
1936 SkAddrMcClear(pAC, pAC->IoBase, PortIdx, 0);
1937 SkAddrPromiscuousChange(pAC, pAC->IoBase, PortIdx,
1938 SK_PROM_MODE_NONE);
1939
1940 if (pAC->MaxPorts == 1) {
1941 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
1942 /* disable interrupts */
1943 SK_OUT32(pAC->IoBase, B0_IMSK, 0);
1944 EvPara.Para32[0] = pNet->NetNr;
1945 EvPara.Para32[1] = -1;
1946 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_STOP, EvPara);
1947 SkEventDispatcher(pAC, pAC->IoBase);
1948 SK_OUT32(pAC->IoBase, B0_IMSK, 0);
1949 /* stop the hardware */
1950 SkGeDeInit(pAC, pAC->IoBase);
1951 pAC->BoardLevel = 0;
1952 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
1953 } else {
1954
1955 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
1956 EvPara.Para32[0] = pNet->NetNr;
1957 EvPara.Para32[1] = -1;
1958 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_STOP, EvPara);
1959 SkEventDispatcher(pAC, pAC->IoBase);
1960 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
1961
1962 /* Stop port */
1963 spin_lock_irqsave(&pAC->TxPort[pNet->PortNr]
1964 [TX_PRIO_LOW].TxDesRingLock, Flags);
1965 SkGeStopPort(pAC, pAC->IoBase, pNet->PortNr,
1966 SK_STOP_ALL, SK_HARD_RST);
1967 spin_unlock_irqrestore(&pAC->TxPort[pNet->PortNr]
1968 [TX_PRIO_LOW].TxDesRingLock, Flags);
1969 }
1970
1971 if (pAC->RlmtNets == 1) {
1972 /* clear all descriptor rings */
1973 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
1974 ReceiveIrq(pAC, &pAC->RxPort[i], SK_TRUE);
1975 ClearRxRing(pAC, &pAC->RxPort[i]);
1976 ClearTxRing(pAC, &pAC->TxPort[i][TX_PRIO_LOW]);
1977 }
1978 } else {
1979 /* clear port descriptor rings */
1980 ReceiveIrq(pAC, &pAC->RxPort[pNet->PortNr], SK_TRUE);
1981 ClearRxRing(pAC, &pAC->RxPort[pNet->PortNr]);
1982 ClearTxRing(pAC, &pAC->TxPort[pNet->PortNr][TX_PRIO_LOW]);
1983 }
1984
1985 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
1986 ("SkGeClose: done "));
1987
1988 pAC->MaxPorts--;
1989 pNet->Up = 0;
1990 MOD_DEC_USE_COUNT;
1991
1992 return (0);
1993} /* SkGeClose */
1994
1995
1996/*****************************************************************************
1997 *
1998 * SkGeXmit - Linux frame transmit function
1999 *
2000 * Description:
2001 * The system calls this function to send frames onto the wire.
2002 * It puts the frame in the tx descriptor ring. If the ring is
2003 * full then, the 'tbusy' flag is set.
2004 *
2005 * Returns:
2006 * 0, if everything is ok
2007 * !=0, on error
2008 * WARNING: returning 1 in 'tbusy' case caused system crashes (double
2009 * allocated skb's) !!!
2010 */
2011#if 0
2012static int SkGeXmit(struct sk_buff *skb, struct SK_NET_DEVICE *dev)
2013#else
2014int SkGeXmit(struct sk_buff *skb, struct SK_NET_DEVICE *dev)
2015#endif
2016{
2017DEV_NET *pNet;
2018SK_AC *pAC;
2019int Rc; /* return code of XmitFrame */
2020
2021 pNet = (DEV_NET*) dev->priv;
2022 pAC = pNet->pAC;
2023
2024#if 0
2025 if ((!skb_shinfo(skb)->nr_frags) ||
2026#else
2027 if (1 ||
2028#endif
2029 (pAC->GIni.GIChipId == CHIP_ID_GENESIS)) {
2030 /* Don't activate scatter-gather and hardware checksum */
2031
2032 if (pAC->RlmtNets == 2)
2033 Rc = XmitFrame(
2034 pAC,
2035 &pAC->TxPort[pNet->PortNr][TX_PRIO_LOW],
2036 skb);
2037 else
2038 Rc = XmitFrame(
2039 pAC,
2040 &pAC->TxPort[pAC->ActivePort][TX_PRIO_LOW],
2041 skb);
2042 } else {
2043#if 0
2044 /* scatter-gather and hardware TCP checksumming anabled*/
2045 if (pAC->RlmtNets == 2)
2046 Rc = XmitFrameSG(
2047 pAC,
2048 &pAC->TxPort[pNet->PortNr][TX_PRIO_LOW],
2049 skb);
2050 else
2051 Rc = XmitFrameSG(
2052 pAC,
2053 &pAC->TxPort[pAC->ActivePort][TX_PRIO_LOW],
2054 skb);
2055#endif
2056 }
2057
2058 /* Transmitter out of resources? */
2059 if (Rc <= 0) {
2060 netif_stop_queue(dev);
2061 }
2062
2063 /* If not taken, give buffer ownership back to the
2064 * queueing layer.
2065 */
2066 if (Rc < 0)
2067 return (1);
2068
2069#if 0
2070 dev->trans_start = jiffies;
2071#endif
2072 return (0);
2073} /* SkGeXmit */
2074
2075
2076/*****************************************************************************
2077 *
2078 * XmitFrame - fill one socket buffer into the transmit ring
2079 *
2080 * Description:
2081 * This function puts a message into the transmit descriptor ring
2082 * if there is a descriptors left.
2083 * Linux skb's consist of only one continuous buffer.
2084 * The first step locks the ring. It is held locked
2085 * all time to avoid problems with SWITCH_../PORT_RESET.
2086 * Then the descriptoris allocated.
2087 * The second part is linking the buffer to the descriptor.
2088 * At the very last, the Control field of the descriptor
2089 * is made valid for the BMU and a start TX command is given
2090 * if necessary.
2091 *
2092 * Returns:
2093 * > 0 - on succes: the number of bytes in the message
2094 * = 0 - on resource shortage: this frame sent or dropped, now
2095 * the ring is full ( -> set tbusy)
2096 * < 0 - on failure: other problems ( -> return failure to upper layers)
2097 */
2098static int XmitFrame(
2099SK_AC *pAC, /* pointer to adapter context */
2100TX_PORT *pTxPort, /* pointer to struct of port to send to */
2101struct sk_buff *pMessage) /* pointer to send-message */
2102{
2103TXD *pTxd; /* the rxd to fill */
2104unsigned long Flags;
2105SK_U64 PhysAddr;
2106int BytesSend;
2107
2108 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_TX_PROGRESS,
2109 ("X"));
2110
2111 spin_lock_irqsave(&pTxPort->TxDesRingLock, Flags);
2112#ifndef USE_TX_COMPLETE
2113 FreeTxDescriptors(pAC, pTxPort);
2114#endif
2115 if (pTxPort->TxdRingFree == 0) {
2116 /* no enough free descriptors in ring at the moment */
2117 FreeTxDescriptors(pAC, pTxPort);
2118 if (pTxPort->TxdRingFree == 0) {
2119 spin_unlock_irqrestore(&pTxPort->TxDesRingLock, Flags);
2120 SK_PNMI_CNT_NO_TX_BUF(pAC, pTxPort->PortIndex);
2121 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2122 SK_DBGCAT_DRV_TX_PROGRESS,
2123 ("XmitFrame failed\n"));
2124 /* this message can not be sent now */
2125 /* Because tbusy seems to be set, the message should not be freed here */
2126 /* It will be used by the scheduler of the ethernet handler */
2127 return (-1);
2128 }
2129 }
2130 /* advance head counter behind descriptor needed for this frame */
2131 pTxd = pTxPort->pTxdRingHead;
2132 pTxPort->pTxdRingHead = pTxd->pNextTxd;
2133 pTxPort->TxdRingFree--;
2134 /* the needed descriptor is reserved now */
2135
2136 /*
2137 * everything allocated ok, so add buffer to descriptor
2138 */
2139
2140#ifdef SK_DUMP_TX
2141 DumpMsg(pMessage, "XmitFrame");
2142#endif
2143
2144 /* set up descriptor and CONTROL dword */
2145#if 0
2146 PhysAddr = (SK_U64) pci_map_page(pAC->PciDev,
2147 virt_to_page(pMessage->data),
2148 ((unsigned long) pMessage->data &
2149 ~PAGE_MASK),
2150 pMessage->len,
2151 PCI_DMA_TODEVICE);
2152#else
2153 PhysAddr = (SK_U64) pci_phys_to_mem(pAC->PciDev, (u32) pMessage->data);
2154#endif
2155 pTxd->VDataLow = (SK_U32) (PhysAddr & 0xffffffff);
2156 pTxd->VDataHigh = (SK_U32) (PhysAddr >> 32);
2157 pTxd->pMBuf = pMessage;
2158 pTxd->TBControl = TX_CTRL_OWN_BMU | TX_CTRL_STF |
2159 TX_CTRL_CHECK_DEFAULT | TX_CTRL_SOFTWARE |
2160#ifdef USE_TX_COMPLETE
2161 TX_CTRL_EOF | TX_CTRL_EOF_IRQ | pMessage->len;
2162#else
2163 TX_CTRL_EOF | pMessage->len;
2164#endif
2165
2166 if ((pTxPort->pTxdRingPrev->TBControl & TX_CTRL_OWN_BMU) == 0) {
2167 /* previous descriptor already done, so give tx start cmd */
2168 /* StartTx(pAC, pTxPort->HwAddr); */
2169 SK_OUT8(pTxPort->HwAddr, TX_Q_CTRL, TX_Q_CTRL_START);
2170 }
2171 pTxPort->pTxdRingPrev = pTxd;
2172
2173
2174 BytesSend = pMessage->len;
2175 spin_unlock_irqrestore(&pTxPort->TxDesRingLock, Flags);
2176 /* after releasing the lock, the skb may be immidiately freed */
2177 if (pTxPort->TxdRingFree != 0)
2178 return (BytesSend);
2179 else
2180 return (0);
2181
2182} /* XmitFrame */
2183
2184/*****************************************************************************
2185 *
2186 * XmitFrameSG - fill one socket buffer into the transmit ring
2187 * (use SG and TCP/UDP hardware checksumming)
2188 *
2189 * Description:
2190 * This function puts a message into the transmit descriptor ring
2191 * if there is a descriptors left.
2192 *
2193 * Returns:
2194 * > 0 - on succes: the number of bytes in the message
2195 * = 0 - on resource shortage: this frame sent or dropped, now
2196 * the ring is full ( -> set tbusy)
2197 * < 0 - on failure: other problems ( -> return failure to upper layers)
2198 */
2199#if 0
2200static int XmitFrameSG(
2201SK_AC *pAC, /* pointer to adapter context */
2202TX_PORT *pTxPort, /* pointer to struct of port to send to */
2203struct sk_buff *pMessage) /* pointer to send-message */
2204{
2205
2206 int i;
2207 int BytesSend;
2208 int hlength;
2209 int protocol;
2210 skb_frag_t *sk_frag;
2211 TXD *pTxd;
2212 TXD *pTxdFst;
2213 TXD *pTxdLst;
2214 SK_U64 PhysAddr;
2215 unsigned long Flags;
2216
2217 spin_lock_irqsave(&pTxPort->TxDesRingLock, Flags);
2218#ifndef USE_TX_COMPLETE
2219 FreeTxDescriptors(pAC, pTxPort);
2220#endif
2221 if ((skb_shinfo(pMessage)->nr_frags +1) > pTxPort->TxdRingFree) {
2222 FreeTxDescriptors(pAC, pTxPort);
2223 if ((skb_shinfo(pMessage)->nr_frags + 1) > pTxPort->TxdRingFree) {
2224 spin_unlock_irqrestore(&pTxPort->TxDesRingLock, Flags);
2225 SK_PNMI_CNT_NO_TX_BUF(pAC, pTxPort->PortIndex);
2226 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2227 SK_DBGCAT_DRV_TX_PROGRESS,
2228 ("XmitFrameSG failed - Ring full\n"));
2229 /* this message can not be sent now */
2230 return(-1);
2231 }
2232 }
2233
2234
2235 pTxd = pTxPort->pTxdRingHead;
2236 pTxdFst = pTxd;
2237 pTxdLst = pTxd;
2238 BytesSend = 0;
2239 protocol = 0;
2240
2241 /* map first fragment (header) */
2242 PhysAddr = (SK_U64) pci_map_page(pAC->PciDev,
2243 virt_to_page(pMessage->data),
2244 ((unsigned long) pMessage->data & ~PAGE_MASK),
2245 skb_headlen(pMessage),
2246 PCI_DMA_TODEVICE);
2247
2248 pTxd->VDataLow = (SK_U32) (PhysAddr & 0xffffffff);
2249 pTxd->VDataHigh = (SK_U32) (PhysAddr >> 32);
2250
2251 /* HW checksum? */
2252 if (pMessage->ip_summed == CHECKSUM_HW) {
2253 pTxd->TBControl = TX_CTRL_STF |
2254 TX_CTRL_ST_FWD |
2255 skb_headlen(pMessage);
2256
2257 /* We have to use the opcode for tcp here because the opcode for
2258 udp is not working in the hardware yet (revision 2.0)*/
2259 protocol = ((SK_U8)pMessage->data[23] & 0xf);
2260 if ((protocol == 17) && (pAC->GIni.GIChipRev != 0))
2261 pTxd->TBControl |= BMU_UDP_CHECK;
2262 else
2263 pTxd->TBControl |= BMU_TCP_CHECK ;
2264
2265 hlength = ((SK_U8)pMessage->data[14] & 0xf) * 4;
2266 pTxd->TcpSumOfs = 0; /* PH-Checksum already claculated */
2267 pTxd->TcpSumSt = 14+hlength+16;
2268 pTxd->TcpSumWr = 14+hlength;
2269
2270 } else {
2271 pTxd->TBControl = TX_CTRL_CHECK_DEFAULT |
2272 TX_CTRL_SOFTWARE |
2273 TX_CTRL_STF |
2274 skb_headlen(pMessage);
2275 }
2276
2277 pTxd = pTxd->pNextTxd;
2278 pTxPort->TxdRingFree--;
2279 BytesSend += skb_headlen(pMessage);
2280
2281
2282 /* Map SG fragments */
2283 for (i = 0; i < skb_shinfo(pMessage)->nr_frags; i++) {
2284 sk_frag = &skb_shinfo(pMessage)->frags[i];
2285
2286 /* we already have the proper value in entry */
2287 PhysAddr = (SK_U64) pci_map_page(pAC->PciDev,
2288 sk_frag->page,
2289 sk_frag->page_offset,
2290 sk_frag->size,
2291 PCI_DMA_TODEVICE);
2292
2293 pTxd->VDataLow = (SK_U32) (PhysAddr & 0xffffffff);
2294 pTxd->VDataHigh = (SK_U32) (PhysAddr >> 32);
2295 pTxd->pMBuf = pMessage;
2296
2297 /* HW checksum */
2298 if (pMessage->ip_summed == CHECKSUM_HW) {
2299 pTxd->TBControl = TX_CTRL_OWN_BMU |
2300 TX_CTRL_SOFTWARE |
2301 TX_CTRL_ST_FWD;
2302
2303 /* We have to use the opcode for tcp here because the opcode for
2304 udp is not working in the hardware yet (revision 2.0)*/
2305 if ((protocol == 17) && (pAC->GIni.GIChipRev != 0))
2306 pTxd->TBControl |= BMU_UDP_CHECK ;
2307 else
2308 pTxd->TBControl |= BMU_TCP_CHECK ;
2309
2310 } else {
2311 pTxd->TBControl = TX_CTRL_CHECK_DEFAULT |
2312 TX_CTRL_SOFTWARE |
2313 TX_CTRL_OWN_BMU;
2314 }
2315
2316 /* Last fragment */
2317 if( (i+1) == skb_shinfo(pMessage)->nr_frags ) {
2318#ifdef USE_TX_COMPLETE
2319 pTxd->TBControl |= TX_CTRL_EOF |
2320 TX_CTRL_EOF_IRQ |
2321 sk_frag->size;
2322#else
2323 pTxd->TBControl |= TX_CTRL_EOF |
2324 sk_frag->size;
2325#endif
2326 pTxdFst->TBControl |= TX_CTRL_OWN_BMU |
2327 TX_CTRL_SOFTWARE;
2328
2329 } else {
2330 pTxd->TBControl |= sk_frag->size;
2331 }
2332 pTxdLst = pTxd;
2333 pTxd = pTxd->pNextTxd;
2334 pTxPort->TxdRingFree--;
2335 BytesSend += sk_frag->size;
2336 }
2337
2338 if ((pTxPort->pTxdRingPrev->TBControl & TX_CTRL_OWN_BMU) == 0) {
2339 /* previous descriptor already done, so give tx start cmd */
2340 /* StartTx(pAC, pTxPort->HwAddr); */
2341 SK_OUT8(pTxPort->HwAddr, TX_Q_CTRL, TX_Q_CTRL_START);
2342 }
2343
2344 pTxPort->pTxdRingPrev = pTxdLst;
2345 pTxPort->pTxdRingHead = pTxd;
2346
2347 spin_unlock_irqrestore(&pTxPort->TxDesRingLock, Flags);
2348
2349 if (pTxPort->TxdRingFree > 0)
2350 return (BytesSend);
2351 else
2352 return (0);
2353}
2354#endif
2355
2356
2357void dump_frag( SK_U8 *data, int length)
2358{
2359 int i;
2360
2361 printk("Length: %d\n", length);
2362 for( i=0; i < length; i++ ) {
2363 printk(" %02x", (SK_U8)*(data + i) );
2364 if( !((i+1) % 20) )
2365 printk("\n");
2366 }
2367 printk("\n\n");
2368
2369}
2370
2371
2372/*****************************************************************************
2373 *
2374 * FreeTxDescriptors - release descriptors from the descriptor ring
2375 *
2376 * Description:
2377 * This function releases descriptors from a transmit ring if they
2378 * have been sent by the BMU.
2379 * If a descriptors is sent, it can be freed and the message can
2380 * be freed, too.
2381 * The SOFTWARE controllable bit is used to prevent running around a
2382 * completely free ring for ever. If this bit is no set in the
2383 * frame (by XmitFrame), this frame has never been sent or is
2384 * already freed.
2385 * The Tx descriptor ring lock must be held while calling this function !!!
2386 *
2387 * Returns:
2388 * none
2389 */
2390static void FreeTxDescriptors(
2391SK_AC *pAC, /* pointer to the adapter context */
2392TX_PORT *pTxPort) /* pointer to destination port structure */
2393{
2394TXD *pTxd; /* pointer to the checked descriptor */
2395TXD *pNewTail; /* pointer to 'end' of the ring */
2396SK_U32 Control; /* TBControl field of descriptor */
2397SK_U64 PhysAddr; /* address of DMA mapping */
2398
2399 pNewTail = pTxPort->pTxdRingTail;
2400 pTxd = pNewTail;
2401 /*
2402 * loop forever; exits if TX_CTRL_SOFTWARE bit not set in start frame
2403 * or TX_CTRL_OWN_BMU bit set in any frame
2404 */
2405 while (1) {
2406 Control = pTxd->TBControl;
2407 if ((Control & TX_CTRL_SOFTWARE) == 0) {
2408 /*
2409 * software controllable bit is set in first
2410 * fragment when given to BMU. Not set means that
2411 * this fragment was never sent or is already
2412 * freed ( -> ring completely free now).
2413 */
2414 pTxPort->pTxdRingTail = pTxd;
2415 netif_wake_queue(pAC->dev[pTxPort->PortIndex]);
2416 return;
2417 }
2418 if (Control & TX_CTRL_OWN_BMU) {
2419 pTxPort->pTxdRingTail = pTxd;
2420 if (pTxPort->TxdRingFree > 0) {
2421 netif_wake_queue(pAC->dev[pTxPort->PortIndex]);
2422 }
2423 return;
2424 }
2425
2426 /* release the DMA mapping */
2427 PhysAddr = ((SK_U64) pTxd->VDataHigh) << (SK_U64) 32;
2428 PhysAddr |= (SK_U64) pTxd->VDataLow;
2429 pci_unmap_page(pAC->PciDev, PhysAddr,
2430 pTxd->pMBuf->len,
2431 PCI_DMA_TODEVICE);
2432
2433 if (Control & TX_CTRL_EOF)
2434 DEV_KFREE_SKB_ANY(pTxd->pMBuf); /* free message */
2435
2436 pTxPort->TxdRingFree++;
2437 pTxd->TBControl &= ~TX_CTRL_SOFTWARE;
2438 pTxd = pTxd->pNextTxd; /* point behind fragment with EOF */
2439 } /* while(forever) */
2440} /* FreeTxDescriptors */
2441
2442/*****************************************************************************
2443 *
2444 * FillRxRing - fill the receive ring with valid descriptors
2445 *
2446 * Description:
2447 * This function fills the receive ring descriptors with data
2448 * segments and makes them valid for the BMU.
2449 * The active ring is filled completely, if possible.
2450 * The non-active ring is filled only partial to save memory.
2451 *
2452 * Description of rx ring structure:
2453 * head - points to the descriptor which will be used next by the BMU
2454 * tail - points to the next descriptor to give to the BMU
2455 *
2456 * Returns: N/A
2457 */
2458static void FillRxRing(
2459SK_AC *pAC, /* pointer to the adapter context */
2460RX_PORT *pRxPort) /* ptr to port struct for which the ring
2461 should be filled */
2462{
2463unsigned long Flags;
2464
2465 spin_lock_irqsave(&pRxPort->RxDesRingLock, Flags);
2466 while (pRxPort->RxdRingFree > pRxPort->RxFillLimit) {
2467 if(!FillRxDescriptor(pAC, pRxPort))
2468 break;
2469 }
2470 spin_unlock_irqrestore(&pRxPort->RxDesRingLock, Flags);
2471} /* FillRxRing */
2472
2473
2474/*****************************************************************************
2475 *
2476 * FillRxDescriptor - fill one buffer into the receive ring
2477 *
2478 * Description:
2479 * The function allocates a new receive buffer and
2480 * puts it into the next descriptor.
2481 *
2482 * Returns:
2483 * SK_TRUE - a buffer was added to the ring
2484 * SK_FALSE - a buffer could not be added
2485 */
2486static SK_BOOL FillRxDescriptor(
2487SK_AC *pAC, /* pointer to the adapter context struct */
2488RX_PORT *pRxPort) /* ptr to port struct of ring to fill */
2489{
2490struct sk_buff *pMsgBlock; /* pointer to a new message block */
2491RXD *pRxd; /* the rxd to fill */
2492SK_U16 Length; /* data fragment length */
2493SK_U64 PhysAddr; /* physical address of a rx buffer */
2494
2495 pMsgBlock = alloc_skb(pAC->RxBufSize, GFP_ATOMIC);
2496 if (pMsgBlock == NULL) {
2497 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2498 SK_DBGCAT_DRV_ENTRY,
2499 ("%s: Allocation of rx buffer failed !\n",
2500 pAC->dev[pRxPort->PortIndex]->name));
2501 SK_PNMI_CNT_NO_RX_BUF(pAC, pRxPort->PortIndex);
2502 return(SK_FALSE);
2503 }
2504 skb_reserve(pMsgBlock, 2); /* to align IP frames */
2505 /* skb allocated ok, so add buffer */
2506 pRxd = pRxPort->pRxdRingTail;
2507 pRxPort->pRxdRingTail = pRxd->pNextRxd;
2508 pRxPort->RxdRingFree--;
2509 Length = pAC->RxBufSize;
2510#if 0
2511 PhysAddr = (SK_U64) pci_map_page(pAC->PciDev,
2512 virt_to_page(pMsgBlock->data),
2513 ((unsigned long) pMsgBlock->data &
2514 ~PAGE_MASK),
2515 pAC->RxBufSize - 2,
2516 PCI_DMA_FROMDEVICE);
2517#else
2518 PhysAddr = (SK_U64) pci_phys_to_mem(pAC->PciDev, (u32)pMsgBlock->data);
2519#endif
2520 pRxd->VDataLow = (SK_U32) (PhysAddr & 0xffffffff);
2521 pRxd->VDataHigh = (SK_U32) (PhysAddr >> 32);
2522 pRxd->pMBuf = pMsgBlock;
2523 pRxd->RBControl = RX_CTRL_OWN_BMU | RX_CTRL_STF |
2524 RX_CTRL_EOF_IRQ | RX_CTRL_CHECK_CSUM | Length;
2525 return (SK_TRUE);
2526
2527} /* FillRxDescriptor */
2528
2529
2530/*****************************************************************************
2531 *
2532 * ReQueueRxBuffer - fill one buffer back into the receive ring
2533 *
2534 * Description:
2535 * Fill a given buffer back into the rx ring. The buffer
2536 * has been previously allocated and aligned, and its phys.
2537 * address calculated, so this is no more necessary.
2538 *
2539 * Returns: N/A
2540 */
2541static void ReQueueRxBuffer(
2542SK_AC *pAC, /* pointer to the adapter context struct */
2543RX_PORT *pRxPort, /* ptr to port struct of ring to fill */
2544struct sk_buff *pMsg, /* pointer to the buffer */
2545SK_U32 PhysHigh, /* phys address high dword */
2546SK_U32 PhysLow) /* phys address low dword */
2547{
2548RXD *pRxd; /* the rxd to fill */
2549SK_U16 Length; /* data fragment length */
2550
2551 pRxd = pRxPort->pRxdRingTail;
2552 pRxPort->pRxdRingTail = pRxd->pNextRxd;
2553 pRxPort->RxdRingFree--;
2554 Length = pAC->RxBufSize;
2555 pRxd->VDataLow = PhysLow;
2556 pRxd->VDataHigh = PhysHigh;
2557 pRxd->pMBuf = pMsg;
2558 pRxd->RBControl = RX_CTRL_OWN_BMU | RX_CTRL_STF |
2559 RX_CTRL_EOF_IRQ | RX_CTRL_CHECK_CSUM | Length;
2560 return;
2561} /* ReQueueRxBuffer */
2562
2563
2564/*****************************************************************************
2565 *
2566 * ReceiveIrq - handle a receive IRQ
2567 *
2568 * Description:
2569 * This function is called when a receive IRQ is set.
2570 * It walks the receive descriptor ring and sends up all
2571 * frames that are complete.
2572 *
2573 * Returns: N/A
2574 */
2575#if 0
2576static void ReceiveIrq(
2577#else
2578void ReceiveIrq(
2579#endif
2580 SK_AC *pAC, /* pointer to adapter context */
2581 RX_PORT *pRxPort, /* pointer to receive port struct */
2582 SK_BOOL SlowPathLock) /* indicates if SlowPathLock is needed */
2583{
2584RXD *pRxd; /* pointer to receive descriptors */
2585SK_U32 Control; /* control field of descriptor */
2586struct sk_buff *pMsg; /* pointer to message holding frame */
2587struct sk_buff *pNewMsg; /* pointer to a new message for copying frame */
2588int FrameLength; /* total length of received frame */
2589SK_MBUF *pRlmtMbuf; /* ptr to a buffer for giving a frame to rlmt */
2590SK_EVPARA EvPara; /* an event parameter union */
2591unsigned long Flags; /* for spin lock */
2592int PortIndex = pRxPort->PortIndex;
2593unsigned int Offset;
2594unsigned int NumBytes;
2595unsigned int ForRlmt;
2596SK_BOOL IsBc;
2597SK_BOOL IsMc;
2598SK_BOOL IsBadFrame; /* Bad frame */
2599
2600SK_U32 FrameStat;
2601unsigned short Csum1;
2602unsigned short Csum2;
2603unsigned short Type;
2604#if 0
2605int Result;
2606#endif
2607SK_U64 PhysAddr;
2608
2609rx_start:
2610 /* do forever; exit if RX_CTRL_OWN_BMU found */
2611 for ( pRxd = pRxPort->pRxdRingHead ;
2612 pRxPort->RxdRingFree < pAC->RxDescrPerRing ;
2613 pRxd = pRxd->pNextRxd,
2614 pRxPort->pRxdRingHead = pRxd,
2615 pRxPort->RxdRingFree ++) {
2616
2617 /*
2618 * For a better understanding of this loop
2619 * Go through every descriptor beginning at the head
2620 * Please note: the ring might be completely received so the OWN bit
2621 * set is not a good crirteria to leave that loop.
2622 * Therefore the RingFree counter is used.
2623 * On entry of this loop pRxd is a pointer to the Rxd that needs
2624 * to be checked next.
2625 */
2626
2627 Control = pRxd->RBControl;
2628
2629 /* check if this descriptor is ready */
2630 if ((Control & RX_CTRL_OWN_BMU) != 0) {
2631 /* this descriptor is not yet ready */
2632 /* This is the usual end of the loop */
2633 /* We don't need to start the ring again */
2634 FillRxRing(pAC, pRxPort);
2635 return;
2636 }
2637
2638 /* get length of frame and check it */
2639 FrameLength = Control & RX_CTRL_LEN_MASK;
2640 if (FrameLength > pAC->RxBufSize) {
2641 goto rx_failed;
2642 }
2643
2644 /* check for STF and EOF */
2645 if ((Control & (RX_CTRL_STF | RX_CTRL_EOF)) !=
2646 (RX_CTRL_STF | RX_CTRL_EOF)) {
2647 goto rx_failed;
2648 }
2649
2650 /* here we have a complete frame in the ring */
2651 pMsg = pRxd->pMBuf;
2652
2653 FrameStat = pRxd->FrameStat;
2654
2655 /* check for frame length mismatch */
2656#define XMR_FS_LEN_SHIFT 18
2657#define GMR_FS_LEN_SHIFT 16
2658 if (pAC->GIni.GIChipId == CHIP_ID_GENESIS) {
2659 if (FrameLength != (SK_U32) (FrameStat >> XMR_FS_LEN_SHIFT)) {
2660 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2661 SK_DBGCAT_DRV_RX_PROGRESS,
2662 ("skge: Frame length mismatch (%u/%u).\n",
2663 FrameLength,
2664 (SK_U32) (FrameStat >> XMR_FS_LEN_SHIFT)));
2665 goto rx_failed;
2666 }
2667 }
2668 else {
2669 if (FrameLength != (SK_U32) (FrameStat >> GMR_FS_LEN_SHIFT)) {
2670 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2671 SK_DBGCAT_DRV_RX_PROGRESS,
2672 ("skge: Frame length mismatch (%u/%u).\n",
2673 FrameLength,
2674 (SK_U32) (FrameStat >> XMR_FS_LEN_SHIFT)));
2675 goto rx_failed;
2676 }
2677 }
2678
2679 /* Set Rx Status */
2680 if (pAC->GIni.GIChipId == CHIP_ID_GENESIS) {
2681 IsBc = (FrameStat & XMR_FS_BC) != 0;
2682 IsMc = (FrameStat & XMR_FS_MC) != 0;
2683 IsBadFrame = (FrameStat &
2684 (XMR_FS_ANY_ERR | XMR_FS_2L_VLAN)) != 0;
2685 } else {
2686 IsBc = (FrameStat & GMR_FS_BC) != 0;
2687 IsMc = (FrameStat & GMR_FS_MC) != 0;
2688 IsBadFrame = (((FrameStat & GMR_FS_ANY_ERR) != 0) ||
2689 ((FrameStat & GMR_FS_RX_OK) == 0));
2690 }
2691
2692 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, 0,
2693 ("Received frame of length %d on port %d\n",
2694 FrameLength, PortIndex));
2695 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, 0,
2696 ("Number of free rx descriptors: %d\n",
2697 pRxPort->RxdRingFree));
2698/* DumpMsg(pMsg, "Rx"); */
2699
2700 if ((Control & RX_CTRL_STAT_VALID) != RX_CTRL_STAT_VALID ||
2701 (IsBadFrame)) {
2702#if 0
2703 (FrameStat & (XMR_FS_ANY_ERR | XMR_FS_2L_VLAN)) != 0) {
2704#endif
2705 /* there is a receive error in this frame */
2706 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2707 SK_DBGCAT_DRV_RX_PROGRESS,
2708 ("skge: Error in received frame, dropped!\n"
2709 "Control: %x\nRxStat: %x\n",
2710 Control, FrameStat));
2711
2712 PhysAddr = ((SK_U64) pRxd->VDataHigh) << (SK_U64)32;
2713 PhysAddr |= (SK_U64) pRxd->VDataLow;
2714 pci_dma_sync_single(pAC->PciDev,
2715 (dma_addr_t) PhysAddr,
2716 FrameLength,
2717 PCI_DMA_FROMDEVICE);
2718 ReQueueRxBuffer(pAC, pRxPort, pMsg,
2719 pRxd->VDataHigh, pRxd->VDataLow);
2720
2721 continue;
2722 }
2723
2724 /*
2725 * if short frame then copy data to reduce memory waste
2726 */
2727 if ((FrameLength < SK_COPY_THRESHOLD) &&
2728 ((pNewMsg = alloc_skb(FrameLength+2, GFP_ATOMIC)) != NULL)) {
2729 /*
2730 * Short frame detected and allocation successfull
2731 */
2732 /* use new skb and copy data */
2733 skb_reserve(pNewMsg, 2);
2734 skb_put(pNewMsg, FrameLength);
2735 PhysAddr = ((SK_U64) pRxd->VDataHigh) << (SK_U64)32;
2736 PhysAddr |= (SK_U64) pRxd->VDataLow;
2737
2738 pci_dma_sync_single(pAC->PciDev,
2739 (dma_addr_t) PhysAddr,
2740 FrameLength,
2741 PCI_DMA_FROMDEVICE);
2742 eth_copy_and_sum(pNewMsg, pMsg->data,
2743 FrameLength, 0);
2744 ReQueueRxBuffer(pAC, pRxPort, pMsg,
2745 pRxd->VDataHigh, pRxd->VDataLow);
2746 pMsg = pNewMsg;
2747
2748 }
2749 else {
2750 /*
2751 * if large frame, or SKB allocation failed, pass
2752 * the SKB directly to the networking
2753 */
2754
2755 PhysAddr = ((SK_U64) pRxd->VDataHigh) << (SK_U64)32;
2756 PhysAddr |= (SK_U64) pRxd->VDataLow;
2757
2758 /* release the DMA mapping */
2759 pci_unmap_single(pAC->PciDev,
2760 PhysAddr,
2761 pAC->RxBufSize - 2,
2762 PCI_DMA_FROMDEVICE);
2763
2764 /* set length in message */
2765 skb_put(pMsg, FrameLength);
2766 /* hardware checksum */
2767 Type = ntohs(*((short*)&pMsg->data[12]));
2768 if (Type == 0x800) {
2769 Csum1=le16_to_cpu(pRxd->TcpSums & 0xffff);
2770 Csum2=le16_to_cpu((pRxd->TcpSums >> 16) & 0xffff);
2771#if 0
2772 if ((((Csum1 & 0xfffe) && (Csum2 & 0xfffe)) &&
2773 (pAC->GIni.GIChipId == CHIP_ID_GENESIS)) ||
2774 (pAC->GIni.GIChipId == CHIP_ID_YUKON)) {
2775 Result = SkCsGetReceiveInfo(pAC,
2776 &pMsg->data[14],
2777 Csum1, Csum2, pRxPort->PortIndex);
2778 if (Result ==
2779 SKCS_STATUS_IP_FRAGMENT ||
2780 Result ==
2781 SKCS_STATUS_IP_CSUM_OK ||
2782 Result ==
2783 SKCS_STATUS_TCP_CSUM_OK ||
2784 Result ==
2785 SKCS_STATUS_UDP_CSUM_OK) {
2786 pMsg->ip_summed =
2787 CHECKSUM_UNNECESSARY;
2788 } else {
2789 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2790 SK_DBGCAT_DRV_RX_PROGRESS,
2791 ("skge: CRC error. Frame dropped!\n"));
2792 goto rx_failed;
2793 }
2794 }/* checksumControl calculation valid */
2795#endif
2796 } /* IP frame */
2797 } /* frame > SK_COPY_TRESHOLD */
2798
2799 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, 1,("V"));
2800 ForRlmt = SK_RLMT_RX_PROTOCOL;
2801#if 0
2802 IsBc = (FrameStat & XMR_FS_BC)==XMR_FS_BC;
2803#endif
2804 SK_RLMT_PRE_LOOKAHEAD(pAC, PortIndex, FrameLength,
2805 IsBc, &Offset, &NumBytes);
2806 if (NumBytes != 0) {
2807#if 0
2808 IsMc = (FrameStat & XMR_FS_MC)==XMR_FS_MC;
2809#endif
2810 SK_RLMT_LOOKAHEAD(pAC, PortIndex,
2811 &pMsg->data[Offset],
2812 IsBc, IsMc, &ForRlmt);
2813 }
2814 if (ForRlmt == SK_RLMT_RX_PROTOCOL) {
2815 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, 1,("W"));
2816 /* send up only frames from active port */
2817 if ((PortIndex == pAC->ActivePort) ||
2818 (pAC->RlmtNets == 2)) {
2819 /* frame for upper layer */
2820 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, 1,("U"));
2821#ifdef xDEBUG
2822 DumpMsg(pMsg, "Rx");
2823#endif
2824 SK_PNMI_CNT_RX_OCTETS_DELIVERED(pAC,
2825 FrameLength, pRxPort->PortIndex);
2826
2827#if 0
2828 pMsg->dev = pAC->dev[pRxPort->PortIndex];
2829 pMsg->protocol = eth_type_trans(pMsg,
2830 pAC->dev[pRxPort->PortIndex]);
2831 netif_rx(pMsg);
2832 pAC->dev[pRxPort->PortIndex]->last_rx = jiffies;
2833#else
2834 NetReceive(pMsg->data, pMsg->len);
2835 dev_kfree_skb_any(pMsg);
2836#endif
2837 }
2838 else {
2839 /* drop frame */
2840 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2841 SK_DBGCAT_DRV_RX_PROGRESS,
2842 ("D"));
2843 DEV_KFREE_SKB(pMsg);
2844 }
2845
2846 } /* if not for rlmt */
2847 else {
2848 /* packet for rlmt */
2849 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2850 SK_DBGCAT_DRV_RX_PROGRESS, ("R"));
2851 pRlmtMbuf = SkDrvAllocRlmtMbuf(pAC,
2852 pAC->IoBase, FrameLength);
2853 if (pRlmtMbuf != NULL) {
2854 pRlmtMbuf->pNext = NULL;
2855 pRlmtMbuf->Length = FrameLength;
2856 pRlmtMbuf->PortIdx = PortIndex;
2857 EvPara.pParaPtr = pRlmtMbuf;
2858 memcpy((char*)(pRlmtMbuf->pData),
2859 (char*)(pMsg->data),
2860 FrameLength);
2861
2862 /* SlowPathLock needed? */
2863 if (SlowPathLock == SK_TRUE) {
2864 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
2865 SkEventQueue(pAC, SKGE_RLMT,
2866 SK_RLMT_PACKET_RECEIVED,
2867 EvPara);
2868 pAC->CheckQueue = SK_TRUE;
2869 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
2870 } else {
2871 SkEventQueue(pAC, SKGE_RLMT,
2872 SK_RLMT_PACKET_RECEIVED,
2873 EvPara);
2874 pAC->CheckQueue = SK_TRUE;
2875 }
2876
2877 SK_DBG_MSG(NULL, SK_DBGMOD_DRV,
2878 SK_DBGCAT_DRV_RX_PROGRESS,
2879 ("Q"));
2880 }
2881#if 0
2882 if ((pAC->dev[pRxPort->PortIndex]->flags &
2883 (IFF_PROMISC | IFF_ALLMULTI)) != 0 ||
2884 (ForRlmt & SK_RLMT_RX_PROTOCOL) ==
2885 SK_RLMT_RX_PROTOCOL) {
2886 pMsg->dev = pAC->dev[pRxPort->PortIndex];
2887 pMsg->protocol = eth_type_trans(pMsg,
2888 pAC->dev[pRxPort->PortIndex]);
2889 netif_rx(pMsg);
2890 pAC->dev[pRxPort->PortIndex]->last_rx = jiffies;
2891 }
2892#else
2893 if (0) {
2894 }
2895#endif
2896 else {
2897 DEV_KFREE_SKB(pMsg);
2898 }
2899
2900 } /* if packet for rlmt */
2901 } /* for ... scanning the RXD ring */
2902
2903 /* RXD ring is empty -> fill and restart */
2904 FillRxRing(pAC, pRxPort);
2905 /* do not start if called from Close */
2906 if (pAC->BoardLevel > 0) {
2907 ClearAndStartRx(pAC, PortIndex);
2908 }
2909 return;
2910
2911rx_failed:
2912 /* remove error frame */
2913 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ERROR,
2914 ("Schrottdescriptor, length: 0x%x\n", FrameLength));
2915
2916 /* release the DMA mapping */
2917
2918 PhysAddr = ((SK_U64) pRxd->VDataHigh) << (SK_U64)32;
2919 PhysAddr |= (SK_U64) pRxd->VDataLow;
2920 pci_unmap_page(pAC->PciDev,
2921 PhysAddr,
2922 pAC->RxBufSize - 2,
2923 PCI_DMA_FROMDEVICE);
2924 DEV_KFREE_SKB_IRQ(pRxd->pMBuf);
2925 pRxd->pMBuf = NULL;
2926 pRxPort->RxdRingFree++;
2927 pRxPort->pRxdRingHead = pRxd->pNextRxd;
2928 goto rx_start;
2929
2930} /* ReceiveIrq */
2931
2932
2933/*****************************************************************************
2934 *
2935 * ClearAndStartRx - give a start receive command to BMU, clear IRQ
2936 *
2937 * Description:
2938 * This function sends a start command and a clear interrupt
2939 * command for one receive queue to the BMU.
2940 *
2941 * Returns: N/A
2942 * none
2943 */
2944static void ClearAndStartRx(
2945SK_AC *pAC, /* pointer to the adapter context */
2946int PortIndex) /* index of the receive port (XMAC) */
2947{
2948 SK_OUT8(pAC->IoBase, RxQueueAddr[PortIndex]+RX_Q_CTRL,
2949 RX_Q_CTRL_START | RX_Q_CTRL_CLR_I_EOF);
2950} /* ClearAndStartRx */
2951
2952
2953/*****************************************************************************
2954 *
2955 * ClearTxIrq - give a clear transmit IRQ command to BMU
2956 *
2957 * Description:
2958 * This function sends a clear tx IRQ command for one
2959 * transmit queue to the BMU.
2960 *
2961 * Returns: N/A
2962 */
2963static void ClearTxIrq(
2964SK_AC *pAC, /* pointer to the adapter context */
2965int PortIndex, /* index of the transmit port (XMAC) */
2966int Prio) /* priority or normal queue */
2967{
2968 SK_OUT8(pAC->IoBase, TxQueueAddr[PortIndex][Prio]+TX_Q_CTRL,
2969 TX_Q_CTRL_CLR_I_EOF);
2970} /* ClearTxIrq */
2971
2972
2973/*****************************************************************************
2974 *
2975 * ClearRxRing - remove all buffers from the receive ring
2976 *
2977 * Description:
2978 * This function removes all receive buffers from the ring.
2979 * The receive BMU must be stopped before calling this function.
2980 *
2981 * Returns: N/A
2982 */
2983static void ClearRxRing(
2984SK_AC *pAC, /* pointer to adapter context */
2985RX_PORT *pRxPort) /* pointer to rx port struct */
2986{
2987RXD *pRxd; /* pointer to the current descriptor */
2988unsigned long Flags;
2989SK_U64 PhysAddr;
2990
2991 if (pRxPort->RxdRingFree == pAC->RxDescrPerRing) {
2992 return;
2993 }
2994 spin_lock_irqsave(&pRxPort->RxDesRingLock, Flags);
2995 pRxd = pRxPort->pRxdRingHead;
2996 do {
2997 if (pRxd->pMBuf != NULL) {
2998
2999 PhysAddr = ((SK_U64) pRxd->VDataHigh) << (SK_U64)32;
3000 PhysAddr |= (SK_U64) pRxd->VDataLow;
3001 pci_unmap_page(pAC->PciDev,
3002 PhysAddr,
3003 pAC->RxBufSize - 2,
3004 PCI_DMA_FROMDEVICE);
3005 DEV_KFREE_SKB(pRxd->pMBuf);
3006 pRxd->pMBuf = NULL;
3007 }
3008 pRxd->RBControl &= RX_CTRL_OWN_BMU;
3009 pRxd = pRxd->pNextRxd;
3010 pRxPort->RxdRingFree++;
3011 } while (pRxd != pRxPort->pRxdRingTail);
3012 pRxPort->pRxdRingTail = pRxPort->pRxdRingHead;
3013 spin_unlock_irqrestore(&pRxPort->RxDesRingLock, Flags);
3014} /* ClearRxRing */
3015
3016
3017/*****************************************************************************
3018 *
3019 * ClearTxRing - remove all buffers from the transmit ring
3020 *
3021 * Description:
3022 * This function removes all transmit buffers from the ring.
3023 * The transmit BMU must be stopped before calling this function
3024 * and transmitting at the upper level must be disabled.
3025 * The BMU own bit of all descriptors is cleared, the rest is
3026 * done by calling FreeTxDescriptors.
3027 *
3028 * Returns: N/A
3029 */
3030static void ClearTxRing(
3031SK_AC *pAC, /* pointer to adapter context */
3032TX_PORT *pTxPort) /* pointer to tx prt struct */
3033{
3034TXD *pTxd; /* pointer to the current descriptor */
3035int i;
3036unsigned long Flags;
3037
3038 spin_lock_irqsave(&pTxPort->TxDesRingLock, Flags);
3039 pTxd = pTxPort->pTxdRingHead;
3040 for (i=0; i<pAC->TxDescrPerRing; i++) {
3041 pTxd->TBControl &= ~TX_CTRL_OWN_BMU;
3042 pTxd = pTxd->pNextTxd;
3043 }
3044 FreeTxDescriptors(pAC, pTxPort);
3045 spin_unlock_irqrestore(&pTxPort->TxDesRingLock, Flags);
3046} /* ClearTxRing */
3047
3048
3049#if 0
3050/*****************************************************************************
3051 *
3052 * SetQueueSizes - configure the sizes of rx and tx queues
3053 *
3054 * Description:
3055 * This function assigns the sizes for active and passive port
3056 * to the appropriate HWinit structure variables.
3057 * The passive port(s) get standard values, all remaining RAM
3058 * is given to the active port.
3059 * The queue sizes are in kbyte and must be multiple of 8.
3060 * The limits for the number of buffers filled into the rx rings
3061 * is also set in this routine.
3062 *
3063 * Returns:
3064 * none
3065 */
3066static void SetQueueSizes(
3067SK_AC *pAC) /* pointer to the adapter context */
3068{
3069int StandbyRam; /* adapter RAM used for a standby port */
3070int RemainingRam; /* adapter RAM available for the active port */
3071int RxRam; /* RAM used for the active port receive queue */
3072int i; /* loop counter */
3073
3074if (pAC->RlmtNets == 1) {
3075 StandbyRam = SK_RLMT_STANDBY_QRXSIZE + SK_RLMT_STANDBY_QXASIZE +
3076 SK_RLMT_STANDBY_QXSSIZE;
3077 RemainingRam = pAC->GIni.GIRamSize -
3078 (pAC->GIni.GIMacsFound-1) * StandbyRam;
3079 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3080 pAC->GIni.GP[i].PRxQSize = SK_RLMT_STANDBY_QRXSIZE;
3081 pAC->GIni.GP[i].PXSQSize = SK_RLMT_STANDBY_QXSSIZE;
3082 pAC->GIni.GP[i].PXAQSize = SK_RLMT_STANDBY_QXASIZE;
3083 }
3084 RxRam = (RemainingRam * 8 / 10) & ~7;
3085 pAC->GIni.GP[pAC->ActivePort].PRxQSize = RxRam;
3086 pAC->GIni.GP[pAC->ActivePort].PXSQSize = 0;
3087 pAC->GIni.GP[pAC->ActivePort].PXAQSize =
3088 (RemainingRam - RxRam) & ~7;
3089 pAC->RxQueueSize = RxRam;
3090 pAC->TxSQueueSize = 0;
3091 pAC->TxAQueueSize = (RemainingRam - RxRam) & ~7;
3092 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3093 ("queue sizes settings - rx:%d txA:%d txS:%d\n",
3094 pAC->RxQueueSize,pAC->TxAQueueSize, pAC->TxSQueueSize));
3095} else {
3096 RemainingRam = pAC->GIni.GIRamSize/pAC->GIni.GIMacsFound;
3097 RxRam = (RemainingRam * 8 / 10) & ~7;
3098 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3099 pAC->GIni.GP[i].PRxQSize = RxRam;
3100 pAC->GIni.GP[i].PXSQSize = 0;
3101 pAC->GIni.GP[i].PXAQSize = (RemainingRam - RxRam) & ~7;
3102 }
3103
3104 pAC->RxQueueSize = RxRam;
3105 pAC->TxSQueueSize = 0;
3106 pAC->TxAQueueSize = (RemainingRam - RxRam) & ~7;
3107}
3108 for (i=0; i<SK_MAX_MACS; i++) {
3109 pAC->RxPort[i].RxFillLimit = pAC->RxDescrPerRing;
3110 }
3111
3112 if (pAC->RlmtNets == 2) {
3113 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3114 pAC->RxPort[i].RxFillLimit = pAC->RxDescrPerRing - 100;
3115 }
3116 } else {
3117 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3118 pAC->RxPort[i].RxFillLimit = pAC->RxDescrPerRing - 100;
3119 }
3120 /*
3121 * Do not set the Limit to 0, because this could cause
3122 * wrap around with ReQueue'ed buffers (a buffer could
3123 * be requeued in the same position, made accessable to
3124 * the hardware, and the hardware could change its
3125 * contents!
3126 */
3127 pAC->RxPort[pAC->ActivePort].RxFillLimit = 1;
3128 }
3129
3130#ifdef DEBUG
3131 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3132 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_TX_PROGRESS,
3133 ("i: %d, RxQSize: %d, PXSQsize: %d, PXAQSize: %d\n",
3134 i,
3135 pAC->GIni.GP[i].PRxQSize,
3136 pAC->GIni.GP[i].PXSQSize,
3137 pAC->GIni.GP[i].PXAQSize));
3138 }
3139#endif
3140} /* SetQueueSizes */
3141
3142
3143/*****************************************************************************
3144 *
3145 * SkGeSetMacAddr - Set the hardware MAC address
3146 *
3147 * Description:
3148 * This function sets the MAC address used by the adapter.
3149 *
3150 * Returns:
3151 * 0, if everything is ok
3152 * !=0, on error
3153 */
3154static int SkGeSetMacAddr(struct SK_NET_DEVICE *dev, void *p)
3155{
3156
3157DEV_NET *pNet = (DEV_NET*) dev->priv;
3158SK_AC *pAC = pNet->pAC;
3159
3160struct sockaddr *addr = p;
3161unsigned long Flags;
3162
3163 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3164 ("SkGeSetMacAddr starts now...\n"));
3165 if(netif_running(dev))
3166 return -EBUSY;
3167
3168 memcpy(dev->dev_addr, addr->sa_data,dev->addr_len);
3169
3170 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
3171
3172 if (pAC->RlmtNets == 2)
3173 SkAddrOverride(pAC, pAC->IoBase, pNet->NetNr,
3174 (SK_MAC_ADDR*)dev->dev_addr, SK_ADDR_VIRTUAL_ADDRESS);
3175 else
3176 SkAddrOverride(pAC, pAC->IoBase, pAC->ActivePort,
3177 (SK_MAC_ADDR*)dev->dev_addr, SK_ADDR_VIRTUAL_ADDRESS);
3178
3179
3180
3181 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
3182 return 0;
3183} /* SkGeSetMacAddr */
3184#endif
3185
3186
3187/*****************************************************************************
3188 *
3189 * SkGeSetRxMode - set receive mode
3190 *
3191 * Description:
3192 * This function sets the receive mode of an adapter. The adapter
3193 * supports promiscuous mode, allmulticast mode and a number of
3194 * multicast addresses. If more multicast addresses the available
3195 * are selected, a hash function in the hardware is used.
3196 *
3197 * Returns:
3198 * 0, if everything is ok
3199 * !=0, on error
3200 */
3201#if 0
3202static void SkGeSetRxMode(struct SK_NET_DEVICE *dev)
3203{
3204
3205DEV_NET *pNet;
3206SK_AC *pAC;
3207
3208struct dev_mc_list *pMcList;
3209int i;
3210int PortIdx;
3211unsigned long Flags;
3212
3213 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3214 ("SkGeSetRxMode starts now... "));
3215
3216 pNet = (DEV_NET*) dev->priv;
3217 pAC = pNet->pAC;
3218 if (pAC->RlmtNets == 1)
3219 PortIdx = pAC->ActivePort;
3220 else
3221 PortIdx = pNet->NetNr;
3222
3223 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
3224 if (dev->flags & IFF_PROMISC) {
3225 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3226 ("PROMISCUOUS mode\n"));
3227 SkAddrPromiscuousChange(pAC, pAC->IoBase, PortIdx,
3228 SK_PROM_MODE_LLC);
3229 } else if (dev->flags & IFF_ALLMULTI) {
3230 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3231 ("ALLMULTI mode\n"));
3232 SkAddrPromiscuousChange(pAC, pAC->IoBase, PortIdx,
3233 SK_PROM_MODE_ALL_MC);
3234 } else {
3235 SkAddrPromiscuousChange(pAC, pAC->IoBase, PortIdx,
3236 SK_PROM_MODE_NONE);
3237 SkAddrMcClear(pAC, pAC->IoBase, PortIdx, 0);
3238
3239 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3240 ("Number of MC entries: %d ", dev->mc_count));
3241
3242 pMcList = dev->mc_list;
3243 for (i=0; i<dev->mc_count; i++, pMcList = pMcList->next) {
3244 SkAddrMcAdd(pAC, pAC->IoBase, PortIdx,
3245 (SK_MAC_ADDR*)pMcList->dmi_addr, 0);
3246 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_MCA,
3247 ("%02x:%02x:%02x:%02x:%02x:%02x\n",
3248 pMcList->dmi_addr[0],
3249 pMcList->dmi_addr[1],
3250 pMcList->dmi_addr[2],
3251 pMcList->dmi_addr[3],
3252 pMcList->dmi_addr[4],
3253 pMcList->dmi_addr[5]));
3254 }
3255 SkAddrMcUpdate(pAC, pAC->IoBase, PortIdx);
3256 }
3257 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
3258
3259 return;
3260} /* SkGeSetRxMode */
3261
3262
3263/*****************************************************************************
3264 *
3265 * SkGeChangeMtu - set the MTU to another value
3266 *
3267 * Description:
3268 * This function sets is called whenever the MTU size is changed
3269 * (ifconfig mtu xxx dev ethX). If the MTU is bigger than standard
3270 * ethernet MTU size, long frame support is activated.
3271 *
3272 * Returns:
3273 * 0, if everything is ok
3274 * !=0, on error
3275 */
3276static int SkGeChangeMtu(struct SK_NET_DEVICE *dev, int NewMtu)
3277{
3278DEV_NET *pNet;
3279DEV_NET *pOtherNet;
3280SK_AC *pAC;
3281unsigned long Flags;
3282int i;
3283SK_EVPARA EvPara;
3284
3285 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3286 ("SkGeChangeMtu starts now...\n"));
3287
3288 pNet = (DEV_NET*) dev->priv;
3289 pAC = pNet->pAC;
3290
3291 if ((NewMtu < 68) || (NewMtu > SK_JUMBO_MTU)) {
3292 return -EINVAL;
3293 }
3294
3295 if(pAC->BoardLevel != 2) {
3296 return -EINVAL;
3297 }
3298
3299 pNet->Mtu = NewMtu;
3300 pOtherNet = (DEV_NET*)pAC->dev[1 - pNet->NetNr]->priv;
3301 if ((pOtherNet->Mtu > 1500) && (NewMtu <= 1500) && (pOtherNet->Up==1)) {
3302 return(0);
3303 }
3304
3305 EvPara.Para32[0] = pNet->NetNr;
3306 EvPara.Para32[1] = -1;
3307
3308 pAC->RxBufSize = NewMtu + 32;
3309 dev->mtu = NewMtu;
3310
3311 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3312 ("New MTU: %d\n", NewMtu));
3313
3314 /* prevent reconfiguration while changing the MTU */
3315
3316 /* disable interrupts */
3317 SK_OUT32(pAC->IoBase, B0_IMSK, 0);
3318 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
3319
3320 /* Found more than one port */
3321 if ((pAC->GIni.GIMacsFound == 2 ) &&
3322 (pAC->RlmtNets == 2)) {
3323 /* Stop both ports */
3324 EvPara.Para32[0] = 0;
3325 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_STOP, EvPara);
3326 EvPara.Para32[0] = 1;
3327 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_STOP, EvPara);
3328 } else {
3329 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_STOP, EvPara);
3330 }
3331
3332 SkEventDispatcher(pAC, pAC->IoBase);
3333
3334 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3335 spin_lock_irqsave(
3336 &pAC->TxPort[i][TX_PRIO_LOW].TxDesRingLock, Flags);
3337 netif_stop_queue(pAC->dev[i]);
3338
3339 }
3340
3341 /*
3342 * adjust number of rx buffers allocated
3343 */
3344 if (NewMtu > 1500) {
3345 /* use less rx buffers */
3346 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3347 /* Found more than one port */
3348 if ((pAC->GIni.GIMacsFound == 2 ) &&
3349 (pAC->RlmtNets == 2)) {
3350 pAC->RxPort[i].RxFillLimit =
3351 pAC->RxDescrPerRing - 100;
3352 } else {
3353 if (i == pAC->ActivePort)
3354 pAC->RxPort[i].RxFillLimit =
3355 pAC->RxDescrPerRing - 100;
3356 else
3357 pAC->RxPort[i].RxFillLimit =
3358 pAC->RxDescrPerRing - 10;
3359 }
3360 }
3361 }
3362 else {
3363 /* use normal amount of rx buffers */
3364 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3365 /* Found more than one port */
3366 if ((pAC->GIni.GIMacsFound == 2 ) &&
3367 (pAC->RlmtNets == 2)) {
3368 pAC->RxPort[i].RxFillLimit = 1;
3369 } else {
3370 if (i == pAC->ActivePort)
3371 pAC->RxPort[i].RxFillLimit = 1;
3372 else
3373 pAC->RxPort[i].RxFillLimit =
3374 pAC->RxDescrPerRing - 100;
3375 }
3376 }
3377 }
3378
3379 SkGeDeInit(pAC, pAC->IoBase);
3380
3381 /*
3382 * enable/disable hardware support for long frames
3383 */
3384 if (NewMtu > 1500) {
3385// pAC->JumboActivated = SK_TRUE; /* is never set back !!! */
3386 pAC->GIni.GIPortUsage = SK_JUMBO_LINK;
3387 }
3388 else {
3389 if ((pAC->GIni.GIMacsFound == 2 ) &&
3390 (pAC->RlmtNets == 2)) {
3391 pAC->GIni.GIPortUsage = SK_MUL_LINK;
3392 } else {
3393 pAC->GIni.GIPortUsage = SK_RED_LINK;
3394 }
3395 }
3396
3397 SkGeInit( pAC, pAC->IoBase, 1);
3398 SkI2cInit( pAC, pAC->IoBase, 1);
3399 SkEventInit(pAC, pAC->IoBase, 1);
3400 SkPnmiInit( pAC, pAC->IoBase, 1);
3401 SkAddrInit( pAC, pAC->IoBase, 1);
3402 SkRlmtInit( pAC, pAC->IoBase, 1);
3403 SkTimerInit(pAC, pAC->IoBase, 1);
3404
3405 /*
3406 * tschilling:
3407 * Speed and others are set back to default in level 1 init!
3408 */
3409 GetConfiguration(pAC);
3410
3411 SkGeInit( pAC, pAC->IoBase, 2);
3412 SkI2cInit( pAC, pAC->IoBase, 2);
3413 SkEventInit(pAC, pAC->IoBase, 2);
3414 SkPnmiInit( pAC, pAC->IoBase, 2);
3415 SkAddrInit( pAC, pAC->IoBase, 2);
3416 SkRlmtInit( pAC, pAC->IoBase, 2);
3417 SkTimerInit(pAC, pAC->IoBase, 2);
3418
3419 /*
3420 * clear and reinit the rx rings here
3421 */
3422 for (i=0; i<pAC->GIni.GIMacsFound; i++) {
3423 ReceiveIrq(pAC, &pAC->RxPort[i], SK_TRUE);
3424 ClearRxRing(pAC, &pAC->RxPort[i]);
3425 FillRxRing(pAC, &pAC->RxPort[i]);
3426
3427 /* Enable transmit descriptor polling. */
3428 SkGePollTxD(pAC, pAC->IoBase, i, SK_TRUE);
3429 FillRxRing(pAC, &pAC->RxPort[i]);
3430 };
3431
3432 SkGeYellowLED(pAC, pAC->IoBase, 1);
3433
3434#ifdef USE_INT_MOD
3435 {
3436 unsigned long ModBase;
3437 ModBase = 53125000 / INTS_PER_SEC;
3438 SK_OUT32(pAC->IoBase, B2_IRQM_INI, ModBase);
3439 SK_OUT32(pAC->IoBase, B2_IRQM_MSK, IRQ_MOD_MASK);
3440 SK_OUT32(pAC->IoBase, B2_IRQM_CTRL, TIM_START);
3441 }
3442#endif
3443
3444 netif_start_queue(pAC->dev[pNet->PortNr]);
3445 for (i=pAC->GIni.GIMacsFound-1; i>=0; i--) {
3446 spin_unlock(&pAC->TxPort[i][TX_PRIO_LOW].TxDesRingLock);
3447 }
3448
3449 /* enable Interrupts */
3450 SK_OUT32(pAC->IoBase, B0_IMSK, IRQ_MASK);
3451 SK_OUT32(pAC->IoBase, B0_HWE_IMSK, IRQ_HWE_MASK);
3452
3453 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_START, EvPara);
3454 SkEventDispatcher(pAC, pAC->IoBase);
3455
3456 /* Found more than one port */
3457 if ((pAC->GIni.GIMacsFound == 2 ) &&
3458 (pAC->RlmtNets == 2)) {
3459 /* Start both ports */
3460 EvPara.Para32[0] = pAC->RlmtNets;
3461 EvPara.Para32[1] = -1;
3462 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_SET_NETS,
3463 EvPara);
3464
3465
3466 EvPara.Para32[1] = -1;
3467 EvPara.Para32[0] = pNet->PortNr;
3468 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_START, EvPara);
3469
3470 if (pOtherNet->Up) {
3471 EvPara.Para32[0] = pOtherNet->PortNr;
3472 SkEventQueue(pAC, SKGE_RLMT,
3473 SK_RLMT_START, EvPara);
3474 }
3475 } else {
3476 SkEventQueue(pAC, SKGE_RLMT, SK_RLMT_START, EvPara);
3477 }
3478
3479 SkEventDispatcher(pAC, pAC->IoBase);
3480 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
3481
3482 return 0;
3483} /* SkGeChangeMtu */
3484
3485
3486/*****************************************************************************
3487 *
3488 * SkGeStats - return ethernet device statistics
3489 *
3490 * Description:
3491 * This function return statistic data about the ethernet device
3492 * to the operating system.
3493 *
3494 * Returns:
3495 * pointer to the statistic structure.
3496 */
3497static struct net_device_stats *SkGeStats(struct SK_NET_DEVICE *dev)
3498{
3499DEV_NET *pNet = (DEV_NET*) dev->priv;
3500SK_AC *pAC = pNet->pAC;
3501SK_PNMI_STRUCT_DATA *pPnmiStruct; /* structure for all Pnmi-Data */
3502SK_PNMI_STAT *pPnmiStat; /* pointer to virtual XMAC stat. data */
3503SK_PNMI_CONF *pPnmiConf; /* pointer to virtual link config. */
3504unsigned int Size; /* size of pnmi struct */
3505unsigned long Flags; /* for spin lock */
3506
3507 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3508 ("SkGeStats starts now...\n"));
3509 pPnmiStruct = &pAC->PnmiStruct;
3510 memset(pPnmiStruct, 0, sizeof(SK_PNMI_STRUCT_DATA));
3511 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
3512 Size = SK_PNMI_STRUCT_SIZE;
3513 SkPnmiGetStruct(pAC, pAC->IoBase, pPnmiStruct, &Size, pNet->NetNr);
3514 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
3515 pPnmiStat = &pPnmiStruct->Stat[0];
3516 pPnmiConf = &pPnmiStruct->Conf[0];
3517
3518 pAC->stats.rx_packets = (SK_U32) pPnmiStruct->RxDeliveredCts & 0xFFFFFFFF;
3519 pAC->stats.tx_packets = (SK_U32) pPnmiStat->StatTxOkCts & 0xFFFFFFFF;
3520 pAC->stats.rx_bytes = (SK_U32) pPnmiStruct->RxOctetsDeliveredCts;
3521 pAC->stats.tx_bytes = (SK_U32) pPnmiStat->StatTxOctetsOkCts;
3522
3523 if (pNet->Mtu <= 1500) {
3524 pAC->stats.rx_errors = (SK_U32) pPnmiStruct->InErrorsCts & 0xFFFFFFFF;
3525 } else {
3526 pAC->stats.rx_errors = (SK_U32) ((pPnmiStruct->InErrorsCts -
3527 pPnmiStat->StatRxTooLongCts) & 0xFFFFFFFF);
3528 }
3529
3530
3531 if (pAC->GIni.GP[0].PhyType == SK_PHY_XMAC && pAC->HWRevision < 12)
3532 pAC->stats.rx_errors = pAC->stats.rx_errors - pPnmiStat->StatRxShortsCts;
3533
3534 pAC->stats.tx_errors = (SK_U32) pPnmiStat->StatTxSingleCollisionCts & 0xFFFFFFFF;
3535 pAC->stats.rx_dropped = (SK_U32) pPnmiStruct->RxNoBufCts & 0xFFFFFFFF;
3536 pAC->stats.tx_dropped = (SK_U32) pPnmiStruct->TxNoBufCts & 0xFFFFFFFF;
3537 pAC->stats.multicast = (SK_U32) pPnmiStat->StatRxMulticastOkCts & 0xFFFFFFFF;
3538 pAC->stats.collisions = (SK_U32) pPnmiStat->StatTxSingleCollisionCts & 0xFFFFFFFF;
3539
3540 /* detailed rx_errors: */
3541 pAC->stats.rx_length_errors = (SK_U32) pPnmiStat->StatRxRuntCts & 0xFFFFFFFF;
3542 pAC->stats.rx_over_errors = (SK_U32) pPnmiStat->StatRxFifoOverflowCts & 0xFFFFFFFF;
3543 pAC->stats.rx_crc_errors = (SK_U32) pPnmiStat->StatRxFcsCts & 0xFFFFFFFF;
3544 pAC->stats.rx_frame_errors = (SK_U32) pPnmiStat->StatRxFramingCts & 0xFFFFFFFF;
3545 pAC->stats.rx_fifo_errors = (SK_U32) pPnmiStat->StatRxFifoOverflowCts & 0xFFFFFFFF;
3546 pAC->stats.rx_missed_errors = (SK_U32) pPnmiStat->StatRxMissedCts & 0xFFFFFFFF;
3547
3548 /* detailed tx_errors */
3549 pAC->stats.tx_aborted_errors = (SK_U32) 0;
3550 pAC->stats.tx_carrier_errors = (SK_U32) pPnmiStat->StatTxCarrierCts & 0xFFFFFFFF;
3551 pAC->stats.tx_fifo_errors = (SK_U32) pPnmiStat->StatTxFifoUnderrunCts & 0xFFFFFFFF;
3552 pAC->stats.tx_heartbeat_errors = (SK_U32) pPnmiStat->StatTxCarrierCts & 0xFFFFFFFF;
3553 pAC->stats.tx_window_errors = (SK_U32) 0;
3554
3555 return(&pAC->stats);
3556} /* SkGeStats */
3557
3558
3559/*****************************************************************************
3560 *
3561 * SkGeIoctl - IO-control function
3562 *
3563 * Description:
3564 * This function is called if an ioctl is issued on the device.
3565 * There are three subfunction for reading, writing and test-writing
3566 * the private MIB data structure (usefull for SysKonnect-internal tools).
3567 *
3568 * Returns:
3569 * 0, if everything is ok
3570 * !=0, on error
3571 */
3572static int SkGeIoctl(struct SK_NET_DEVICE *dev, struct ifreq *rq, int cmd)
3573{
3574DEV_NET *pNet;
3575SK_AC *pAC;
3576
3577SK_GE_IOCTL Ioctl;
3578unsigned int Err = 0;
3579int Size;
3580
3581 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3582 ("SkGeIoctl starts now...\n"));
3583
3584 pNet = (DEV_NET*) dev->priv;
3585 pAC = pNet->pAC;
3586
3587 if(copy_from_user(&Ioctl, rq->ifr_data, sizeof(SK_GE_IOCTL))) {
3588 return -EFAULT;
3589 }
3590
3591 switch(cmd) {
3592 case SK_IOCTL_SETMIB:
3593 case SK_IOCTL_PRESETMIB:
3594 if (!capable(CAP_NET_ADMIN)) return -EPERM;
3595 case SK_IOCTL_GETMIB:
3596 if(copy_from_user(&pAC->PnmiStruct, Ioctl.pData,
3597 Ioctl.Len<sizeof(pAC->PnmiStruct)?
3598 Ioctl.Len : sizeof(pAC->PnmiStruct))) {
3599 return -EFAULT;
3600 }
3601 Size = SkGeIocMib(pNet, Ioctl.Len, cmd);
3602 if(copy_to_user(Ioctl.pData, &pAC->PnmiStruct,
3603 Ioctl.Len<Size? Ioctl.Len : Size)) {
3604 return -EFAULT;
3605 }
3606 Ioctl.Len = Size;
3607 if(copy_to_user(rq->ifr_data, &Ioctl, sizeof(SK_GE_IOCTL))) {
3608 return -EFAULT;
3609 }
3610 break;
3611 default:
3612 Err = -EOPNOTSUPP;
3613 }
3614 return(Err);
3615} /* SkGeIoctl */
3616
3617
3618/*****************************************************************************
3619 *
3620 * SkGeIocMib - handle a GetMib, SetMib- or PresetMib-ioctl message
3621 *
3622 * Description:
3623 * This function reads/writes the MIB data using PNMI (Private Network
3624 * Management Interface).
3625 * The destination for the data must be provided with the
3626 * ioctl call and is given to the driver in the form of
3627 * a user space address.
3628 * Copying from the user-provided data area into kernel messages
3629 * and back is done by copy_from_user and copy_to_user calls in
3630 * SkGeIoctl.
3631 *
3632 * Returns:
3633 * returned size from PNMI call
3634 */
3635static int SkGeIocMib(
3636DEV_NET *pNet, /* pointer to the adapter context */
3637unsigned int Size, /* length of ioctl data */
3638int mode) /* flag for set/preset */
3639{
3640unsigned long Flags; /* for spin lock */
3641SK_AC *pAC;
3642
3643 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3644 ("SkGeIocMib starts now...\n"));
3645 pAC = pNet->pAC;
3646 /* access MIB */
3647 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
3648 switch(mode) {
3649 case SK_IOCTL_GETMIB:
3650 SkPnmiGetStruct(pAC, pAC->IoBase, &pAC->PnmiStruct, &Size,
3651 pNet->NetNr);
3652 break;
3653 case SK_IOCTL_PRESETMIB:
3654 SkPnmiPreSetStruct(pAC, pAC->IoBase, &pAC->PnmiStruct, &Size,
3655 pNet->NetNr);
3656 break;
3657 case SK_IOCTL_SETMIB:
3658 SkPnmiSetStruct(pAC, pAC->IoBase, &pAC->PnmiStruct, &Size,
3659 pNet->NetNr);
3660 break;
3661 default:
3662 break;
3663 }
3664 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
3665 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ENTRY,
3666 ("MIB data access succeeded\n"));
3667 return (Size);
3668} /* SkGeIocMib */
3669#endif
3670
3671
3672/*****************************************************************************
3673 *
3674 * GetConfiguration - read configuration information
3675 *
3676 * Description:
3677 * This function reads per-adapter configuration information from
3678 * the options provided on the command line.
3679 *
3680 * Returns:
3681 * none
3682 */
3683static void GetConfiguration(
3684SK_AC *pAC) /* pointer to the adapter context structure */
3685{
3686SK_I32 Port; /* preferred port */
3687int LinkSpeed; /* Link speed */
3688int AutoNeg; /* auto negotiation off (0) or on (1) */
3689int DuplexCap; /* duplex capabilities (0=both, 1=full, 2=half */
3690int MSMode; /* master / slave mode selection */
3691SK_BOOL AutoSet;
3692SK_BOOL DupSet;
3693/*
3694 * The two parameters AutoNeg. and DuplexCap. map to one configuration
3695 * parameter. The mapping is described by this table:
3696 * DuplexCap -> | both | full | half |
3697 * AutoNeg | | | |
3698 * -----------------------------------------------------------------
3699 * Off | illegal | Full | Half |
3700 * -----------------------------------------------------------------
3701 * On | AutoBoth | AutoFull | AutoHalf |
3702 * -----------------------------------------------------------------
3703 * Sense | AutoSense | AutoSense | AutoSense |
3704 */
3705int Capabilities[3][3] =
3706 { { -1, SK_LMODE_FULL, SK_LMODE_HALF},
3707 {SK_LMODE_AUTOBOTH, SK_LMODE_AUTOFULL, SK_LMODE_AUTOHALF},
3708 {SK_LMODE_AUTOSENSE, SK_LMODE_AUTOSENSE, SK_LMODE_AUTOSENSE} };
3709#define DC_BOTH 0
3710#define DC_FULL 1
3711#define DC_HALF 2
3712#define AN_OFF 0
3713#define AN_ON 1
3714#define AN_SENS 2
3715
3716 /* settings for port A */
3717 /* settings link speed */
3718 LinkSpeed = SK_LSPEED_AUTO; /* default: do auto select */
3719 if (Speed_A != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3720 Speed_A[pAC->Index] != NULL) {
3721 if (strcmp(Speed_A[pAC->Index],"")==0) {
3722 LinkSpeed = SK_LSPEED_AUTO;
3723 }
3724 else if (strcmp(Speed_A[pAC->Index],"Auto")==0) {
3725 LinkSpeed = SK_LSPEED_AUTO;
3726 }
3727 else if (strcmp(Speed_A[pAC->Index],"10")==0) {
3728 LinkSpeed = SK_LSPEED_10MBPS;
3729 }
3730 else if (strcmp(Speed_A[pAC->Index],"100")==0) {
3731 LinkSpeed = SK_LSPEED_100MBPS;
3732 }
3733 else if (strcmp(Speed_A[pAC->Index],"1000")==0) {
3734 LinkSpeed = SK_LSPEED_1000MBPS;
3735 }
3736 else printk("%s: Illegal value for Speed_A\n",
3737 pAC->dev[0]->name);
3738 }
3739
3740 /* Check speed parameter */
3741 /* Only copper type adapter and GE V2 cards */
3742 if (((pAC->GIni.GIChipId != CHIP_ID_YUKON) ||
3743 (pAC->GIni.GICopperType != SK_TRUE)) &&
3744 ((LinkSpeed != SK_LSPEED_AUTO) &&
3745 (LinkSpeed != SK_LSPEED_1000MBPS))) {
3746 printk("%s: Illegal value for Speed_A. "
3747 "Not a copper card or GE V2 card\n Using "
3748 "speed 1000\n", pAC->dev[0]->name);
3749 LinkSpeed = SK_LSPEED_1000MBPS;
3750 }
3751 pAC->GIni.GP[0].PLinkSpeed = LinkSpeed;
3752
3753 /* Autonegotiation */
3754 AutoNeg = AN_ON; /* tschilling: Default: Autonegotiation on! */
3755 AutoSet = SK_FALSE;
3756 if (AutoNeg_A != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3757 AutoNeg_A[pAC->Index] != NULL) {
3758 AutoSet = SK_TRUE;
3759 if (strcmp(AutoNeg_A[pAC->Index],"")==0) {
3760 AutoSet = SK_FALSE;
3761 }
3762 else if (strcmp(AutoNeg_A[pAC->Index],"On")==0) {
3763 AutoNeg = AN_ON;
3764 }
3765 else if (strcmp(AutoNeg_A[pAC->Index],"Off")==0) {
3766 AutoNeg = AN_OFF;
3767 }
3768 else if (strcmp(AutoNeg_A[pAC->Index],"Sense")==0) {
3769 AutoNeg = AN_SENS;
3770 }
3771 else printk("%s: Illegal value for AutoNeg_A\n",
3772 pAC->dev[0]->name);
3773 }
3774
3775 DuplexCap = DC_BOTH;
3776 DupSet = SK_FALSE;
3777 if (DupCap_A != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3778 DupCap_A[pAC->Index] != NULL) {
3779 DupSet = SK_TRUE;
3780 if (strcmp(DupCap_A[pAC->Index],"")==0) {
3781 DupSet = SK_FALSE;
3782 }
3783 else if (strcmp(DupCap_A[pAC->Index],"Both")==0) {
3784 DuplexCap = DC_BOTH;
3785 }
3786 else if (strcmp(DupCap_A[pAC->Index],"Full")==0) {
3787 DuplexCap = DC_FULL;
3788 }
3789 else if (strcmp(DupCap_A[pAC->Index],"Half")==0) {
3790 DuplexCap = DC_HALF;
3791 }
3792 else printk("%s: Illegal value for DupCap_A\n",
3793 pAC->dev[0]->name);
3794 }
3795
3796 /* check for illegal combinations */
3797 if (AutoSet && AutoNeg==AN_SENS && DupSet) {
3798 printk("%s, Port A: DuplexCapabilities"
3799 " ignored using Sense mode\n", pAC->dev[0]->name);
3800 }
3801 if (AutoSet && AutoNeg==AN_OFF && DupSet && DuplexCap==DC_BOTH){
3802 printk("%s, Port A: Illegal combination"
3803 " of values AutoNeg. and DuplexCap.\n Using "
3804 "Full Duplex\n", pAC->dev[0]->name);
3805
3806 DuplexCap = DC_FULL;
3807 }
3808 if (AutoSet && AutoNeg==AN_OFF && !DupSet) {
3809 DuplexCap = DC_FULL;
3810 }
3811
3812 if (!AutoSet && DupSet) {
3813 printk("%s, Port A: Duplex setting not"
3814 " possible in\n default AutoNegotiation mode"
3815 " (Sense).\n Using AutoNegotiation On\n",
3816 pAC->dev[0]->name);
3817 AutoNeg = AN_ON;
3818 }
3819
3820 /* set the desired mode */
3821 pAC->GIni.GP[0].PLinkModeConf =
3822 Capabilities[AutoNeg][DuplexCap];
3823
3824 pAC->GIni.GP[0].PFlowCtrlMode = SK_FLOW_MODE_SYM_OR_REM;
3825 if (FlowCtrl_A != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3826 FlowCtrl_A[pAC->Index] != NULL) {
3827 if (strcmp(FlowCtrl_A[pAC->Index],"") == 0) {
3828 }
3829 else if (strcmp(FlowCtrl_A[pAC->Index],"SymOrRem") == 0) {
3830 pAC->GIni.GP[0].PFlowCtrlMode =
3831 SK_FLOW_MODE_SYM_OR_REM;
3832 }
3833 else if (strcmp(FlowCtrl_A[pAC->Index],"Sym")==0) {
3834 pAC->GIni.GP[0].PFlowCtrlMode =
3835 SK_FLOW_MODE_SYMMETRIC;
3836 }
3837 else if (strcmp(FlowCtrl_A[pAC->Index],"LocSend")==0) {
3838 pAC->GIni.GP[0].PFlowCtrlMode =
3839 SK_FLOW_MODE_LOC_SEND;
3840 }
3841 else if (strcmp(FlowCtrl_A[pAC->Index],"None")==0) {
3842 pAC->GIni.GP[0].PFlowCtrlMode =
3843 SK_FLOW_MODE_NONE;
3844 }
3845 else printk("Illegal value for FlowCtrl_A\n");
3846 }
3847 if (AutoNeg==AN_OFF && pAC->GIni.GP[0].PFlowCtrlMode!=
3848 SK_FLOW_MODE_NONE) {
3849 printk("%s, Port A: FlowControl"
3850 " impossible without AutoNegotiation,"
3851 " disabled\n", pAC->dev[0]->name);
3852 pAC->GIni.GP[0].PFlowCtrlMode = SK_FLOW_MODE_NONE;
3853 }
3854
3855 MSMode = SK_MS_MODE_AUTO; /* default: do auto select */
3856 if (Role_A != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3857 Role_A[pAC->Index] != NULL) {
3858 if (strcmp(Role_A[pAC->Index],"")==0) {
3859 }
3860 else if (strcmp(Role_A[pAC->Index],"Auto")==0) {
3861 MSMode = SK_MS_MODE_AUTO;
3862 }
3863 else if (strcmp(Role_A[pAC->Index],"Master")==0) {
3864 MSMode = SK_MS_MODE_MASTER;
3865 }
3866 else if (strcmp(Role_A[pAC->Index],"Slave")==0) {
3867 MSMode = SK_MS_MODE_SLAVE;
3868 }
3869 else printk("%s: Illegal value for Role_A\n",
3870 pAC->dev[0]->name);
3871 }
3872 pAC->GIni.GP[0].PMSMode = MSMode;
3873
3874
3875 /* settings for port B */
3876 /* settings link speed */
3877 LinkSpeed = SK_LSPEED_AUTO; /* default: do auto select */
3878 if (Speed_B != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3879 Speed_B[pAC->Index] != NULL) {
3880 if (strcmp(Speed_B[pAC->Index],"")==0) {
3881 LinkSpeed = SK_LSPEED_AUTO;
3882 }
3883 else if (strcmp(Speed_B[pAC->Index],"Auto")==0) {
3884 LinkSpeed = SK_LSPEED_AUTO;
3885 }
3886 else if (strcmp(Speed_B[pAC->Index],"10")==0) {
3887 LinkSpeed = SK_LSPEED_10MBPS;
3888 }
3889 else if (strcmp(Speed_B[pAC->Index],"100")==0) {
3890 LinkSpeed = SK_LSPEED_100MBPS;
3891 }
3892 else if (strcmp(Speed_B[pAC->Index],"1000")==0) {
3893 LinkSpeed = SK_LSPEED_1000MBPS;
3894 }
3895 else printk("%s: Illegal value for Speed_B\n",
3896 pAC->dev[1]->name);
3897 }
3898
3899 /* Check speed parameter */
3900 /* Only copper type adapter and GE V2 cards */
3901 if (((pAC->GIni.GIChipId != CHIP_ID_YUKON) ||
3902 (pAC->GIni.GICopperType != SK_TRUE)) &&
3903 ((LinkSpeed != SK_LSPEED_AUTO) &&
3904 (LinkSpeed != SK_LSPEED_1000MBPS))) {
3905 printk("%s: Illegal value for Speed_B. "
3906 "Not a copper card or GE V2 card\n Using "
3907 "speed 1000\n", pAC->dev[1]->name);
3908 LinkSpeed = SK_LSPEED_1000MBPS;
3909 }
3910 pAC->GIni.GP[1].PLinkSpeed = LinkSpeed;
3911
3912 /* Auto negotiation */
3913 AutoNeg = AN_SENS; /* default: do auto Sense */
3914 AutoSet = SK_FALSE;
3915 if (AutoNeg_B != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3916 AutoNeg_B[pAC->Index] != NULL) {
3917 AutoSet = SK_TRUE;
3918 if (strcmp(AutoNeg_B[pAC->Index],"")==0) {
3919 AutoSet = SK_FALSE;
3920 }
3921 else if (strcmp(AutoNeg_B[pAC->Index],"On")==0) {
3922 AutoNeg = AN_ON;
3923 }
3924 else if (strcmp(AutoNeg_B[pAC->Index],"Off")==0) {
3925 AutoNeg = AN_OFF;
3926 }
3927 else if (strcmp(AutoNeg_B[pAC->Index],"Sense")==0) {
3928 AutoNeg = AN_SENS;
3929 }
3930 else printk("Illegal value for AutoNeg_B\n");
3931 }
3932
3933 DuplexCap = DC_BOTH;
3934 DupSet = SK_FALSE;
3935 if (DupCap_B != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3936 DupCap_B[pAC->Index] != NULL) {
3937 DupSet = SK_TRUE;
3938 if (strcmp(DupCap_B[pAC->Index],"")==0) {
3939 DupSet = SK_FALSE;
3940 }
3941 else if (strcmp(DupCap_B[pAC->Index],"Both")==0) {
3942 DuplexCap = DC_BOTH;
3943 }
3944 else if (strcmp(DupCap_B[pAC->Index],"Full")==0) {
3945 DuplexCap = DC_FULL;
3946 }
3947 else if (strcmp(DupCap_B[pAC->Index],"Half")==0) {
3948 DuplexCap = DC_HALF;
3949 }
3950 else printk("Illegal value for DupCap_B\n");
3951 }
3952
3953 /* check for illegal combinations */
3954 if (AutoSet && AutoNeg==AN_SENS && DupSet) {
3955 printk("%s, Port B: DuplexCapabilities"
3956 " ignored using Sense mode\n", pAC->dev[1]->name);
3957 }
3958 if (AutoSet && AutoNeg==AN_OFF && DupSet && DuplexCap==DC_BOTH){
3959 printk("%s, Port B: Illegal combination"
3960 " of values AutoNeg. and DuplexCap.\n Using "
3961 "Full Duplex\n", pAC->dev[1]->name);
3962
3963 DuplexCap = DC_FULL;
3964 }
3965 if (AutoSet && AutoNeg==AN_OFF && !DupSet) {
3966 DuplexCap = DC_FULL;
3967 }
3968
3969 if (!AutoSet && DupSet) {
3970 printk("%s, Port B: Duplex setting not"
3971 " possible in\n default AutoNegotiation mode"
3972 " (Sense).\n Using AutoNegotiation On\n",
3973 pAC->dev[1]->name);
3974 AutoNeg = AN_ON;
3975 }
3976
3977 /* set the desired mode */
3978 pAC->GIni.GP[1].PLinkModeConf =
3979 Capabilities[AutoNeg][DuplexCap];
3980
3981 pAC->GIni.GP[1].PFlowCtrlMode = SK_FLOW_MODE_SYM_OR_REM;
3982 if (FlowCtrl_B != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
3983 FlowCtrl_B[pAC->Index] != NULL) {
3984 if (strcmp(FlowCtrl_B[pAC->Index],"") == 0) {
3985 }
3986 else if (strcmp(FlowCtrl_B[pAC->Index],"SymOrRem") == 0) {
3987 pAC->GIni.GP[1].PFlowCtrlMode =
3988 SK_FLOW_MODE_SYM_OR_REM;
3989 }
3990 else if (strcmp(FlowCtrl_B[pAC->Index],"Sym")==0) {
3991 pAC->GIni.GP[1].PFlowCtrlMode =
3992 SK_FLOW_MODE_SYMMETRIC;
3993 }
3994 else if (strcmp(FlowCtrl_B[pAC->Index],"LocSend")==0) {
3995 pAC->GIni.GP[1].PFlowCtrlMode =
3996 SK_FLOW_MODE_LOC_SEND;
3997 }
3998 else if (strcmp(FlowCtrl_B[pAC->Index],"None")==0) {
3999 pAC->GIni.GP[1].PFlowCtrlMode =
4000 SK_FLOW_MODE_NONE;
4001 }
4002 else printk("Illegal value for FlowCtrl_B\n");
4003 }
4004 if (AutoNeg==AN_OFF && pAC->GIni.GP[1].PFlowCtrlMode!=
4005 SK_FLOW_MODE_NONE) {
4006 printk("%s, Port B: FlowControl"
4007 " impossible without AutoNegotiation,"
4008 " disabled\n", pAC->dev[1]->name);
4009 pAC->GIni.GP[1].PFlowCtrlMode = SK_FLOW_MODE_NONE;
4010 }
4011
4012 MSMode = SK_MS_MODE_AUTO; /* default: do auto select */
4013 if (Role_B != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
4014 Role_B[pAC->Index] != NULL) {
4015 if (strcmp(Role_B[pAC->Index],"")==0) {
4016 }
4017 else if (strcmp(Role_B[pAC->Index],"Auto")==0) {
4018 MSMode = SK_MS_MODE_AUTO;
4019 }
4020 else if (strcmp(Role_B[pAC->Index],"Master")==0) {
4021 MSMode = SK_MS_MODE_MASTER;
4022 }
4023 else if (strcmp(Role_B[pAC->Index],"Slave")==0) {
4024 MSMode = SK_MS_MODE_SLAVE;
4025 }
4026 else printk("%s: Illegal value for Role_B\n",
4027 pAC->dev[1]->name);
4028 }
4029 pAC->GIni.GP[1].PMSMode = MSMode;
4030
4031
4032 /* settings for both ports */
4033 pAC->ActivePort = 0;
4034 if (PrefPort != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
4035 PrefPort[pAC->Index] != NULL) {
4036 if (strcmp(PrefPort[pAC->Index],"") == 0) { /* Auto */
4037 pAC->ActivePort = 0;
4038 pAC->Rlmt.Net[0].Preference = -1; /* auto */
4039 pAC->Rlmt.Net[0].PrefPort = 0;
4040 }
4041 else if (strcmp(PrefPort[pAC->Index],"A") == 0) {
4042 /*
4043 * do not set ActivePort here, thus a port
4044 * switch is issued after net up.
4045 */
4046 Port = 0;
4047 pAC->Rlmt.Net[0].Preference = Port;
4048 pAC->Rlmt.Net[0].PrefPort = Port;
4049 }
4050 else if (strcmp(PrefPort[pAC->Index],"B") == 0) {
4051 /*
4052 * do not set ActivePort here, thus a port
4053 * switch is issued after net up.
4054 */
4055 Port = 1;
4056 pAC->Rlmt.Net[0].Preference = Port;
4057 pAC->Rlmt.Net[0].PrefPort = Port;
4058 }
4059 else printk("%s: Illegal value for PrefPort\n",
4060 pAC->dev[0]->name);
4061 }
4062
4063 pAC->RlmtNets = 1;
4064
4065 if (RlmtMode != NULL && pAC->Index<SK_MAX_CARD_PARAM &&
4066 RlmtMode[pAC->Index] != NULL) {
4067 if (strcmp(RlmtMode[pAC->Index], "") == 0) {
4068 pAC->RlmtMode = 0;
4069 }
4070 else if (strcmp(RlmtMode[pAC->Index], "CheckLinkState") == 0) {
4071 pAC->RlmtMode = SK_RLMT_CHECK_LINK;
4072 }
4073 else if (strcmp(RlmtMode[pAC->Index], "CheckLocalPort") == 0) {
4074 pAC->RlmtMode = SK_RLMT_CHECK_LINK |
4075 SK_RLMT_CHECK_LOC_LINK;
4076 }
4077 else if (strcmp(RlmtMode[pAC->Index], "CheckSeg") == 0) {
4078 pAC->RlmtMode = SK_RLMT_CHECK_LINK |
4079 SK_RLMT_CHECK_LOC_LINK |
4080 SK_RLMT_CHECK_SEG;
4081 }
4082 else if ((strcmp(RlmtMode[pAC->Index], "DualNet") == 0) &&
4083 (pAC->GIni.GIMacsFound == 2)) {
4084 pAC->RlmtMode = SK_RLMT_CHECK_LINK;
4085 pAC->RlmtNets = 2;
4086 }
4087 else {
4088 printk("%s: Illegal value for"
4089 " RlmtMode, using default\n", pAC->dev[0]->name);
4090 pAC->RlmtMode = 0;
4091 }
4092 }
4093 else {
4094 pAC->RlmtMode = 0;
4095 }
4096} /* GetConfiguration */
4097
4098
4099/*****************************************************************************
4100 *
4101 * ProductStr - return a adapter identification string from vpd
4102 *
4103 * Description:
4104 * This function reads the product name string from the vpd area
4105 * and puts it the field pAC->DeviceString.
4106 *
4107 * Returns: N/A
4108 */
4109static void ProductStr(
4110SK_AC *pAC /* pointer to adapter context */
4111)
4112{
4113int StrLen = 80; /* length of the string, defined in SK_AC */
4114char Keyword[] = VPD_NAME; /* vpd productname identifier */
4115int ReturnCode; /* return code from vpd_read */
4116unsigned long Flags;
4117
4118 spin_lock_irqsave(&pAC->SlowPathLock, Flags);
4119 ReturnCode = VpdRead(pAC, pAC->IoBase, Keyword, pAC->DeviceStr,
4120 &StrLen);
4121 spin_unlock_irqrestore(&pAC->SlowPathLock, Flags);
4122 if (ReturnCode != 0) {
4123 /* there was an error reading the vpd data */
4124 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_ERROR,
4125 ("Error reading VPD data: %d\n", ReturnCode));
4126 pAC->DeviceStr[0] = '\0';
4127 }
4128} /* ProductStr */
4129
4130
4131
4132
4133/****************************************************************************/
4134/* functions for common modules *********************************************/
4135/****************************************************************************/
4136
4137
4138/*****************************************************************************
4139 *
4140 * SkDrvAllocRlmtMbuf - allocate an RLMT mbuf
4141 *
4142 * Description:
4143 * This routine returns an RLMT mbuf or NULL. The RLMT Mbuf structure
4144 * is embedded into a socket buff data area.
4145 *
4146 * Context:
4147 * runtime
4148 *
4149 * Returns:
4150 * NULL or pointer to Mbuf.
4151 */
4152SK_MBUF *SkDrvAllocRlmtMbuf(
4153SK_AC *pAC, /* pointer to adapter context */
4154SK_IOC IoC, /* the IO-context */
4155unsigned BufferSize) /* size of the requested buffer */
4156{
4157SK_MBUF *pRlmtMbuf; /* pointer to a new rlmt-mbuf structure */
4158struct sk_buff *pMsgBlock; /* pointer to a new message block */
4159
4160 pMsgBlock = alloc_skb(BufferSize + sizeof(SK_MBUF), GFP_ATOMIC);
4161 if (pMsgBlock == NULL) {
4162 return (NULL);
4163 }
4164 pRlmtMbuf = (SK_MBUF*) pMsgBlock->data;
4165 skb_reserve(pMsgBlock, sizeof(SK_MBUF));
4166 pRlmtMbuf->pNext = NULL;
4167 pRlmtMbuf->pOs = pMsgBlock;
4168 pRlmtMbuf->pData = pMsgBlock->data; /* Data buffer. */
4169 pRlmtMbuf->Size = BufferSize; /* Data buffer size. */
4170 pRlmtMbuf->Length = 0; /* Length of packet (<= Size). */
4171 return (pRlmtMbuf);
4172
4173} /* SkDrvAllocRlmtMbuf */
4174
4175
4176/*****************************************************************************
4177 *
4178 * SkDrvFreeRlmtMbuf - free an RLMT mbuf
4179 *
4180 * Description:
4181 * This routine frees one or more RLMT mbuf(s).
4182 *
4183 * Context:
4184 * runtime
4185 *
4186 * Returns:
4187 * Nothing
4188 */
4189void SkDrvFreeRlmtMbuf(
4190SK_AC *pAC, /* pointer to adapter context */
4191SK_IOC IoC, /* the IO-context */
4192SK_MBUF *pMbuf) /* size of the requested buffer */
4193{
4194SK_MBUF *pFreeMbuf;
4195SK_MBUF *pNextMbuf;
4196
4197 pFreeMbuf = pMbuf;
4198 do {
4199 pNextMbuf = pFreeMbuf->pNext;
4200 DEV_KFREE_SKB_ANY(pFreeMbuf->pOs);
4201 pFreeMbuf = pNextMbuf;
4202 } while ( pFreeMbuf != NULL );
4203} /* SkDrvFreeRlmtMbuf */
4204
4205
4206/*****************************************************************************
4207 *
4208 * SkOsGetTime - provide a time value
4209 *
4210 * Description:
4211 * This routine provides a time value. The unit is 1/HZ (defined by Linux).
4212 * It is not used for absolute time, but only for time differences.
4213 *
4214 *
4215 * Returns:
4216 * Time value
4217 */
4218SK_U64 SkOsGetTime(SK_AC *pAC)
4219{
4220#if 0
4221 return jiffies;
4222#else
4223 return get_timer(0);
4224#endif
4225} /* SkOsGetTime */
4226
4227
4228/*****************************************************************************
4229 *
4230 * SkPciReadCfgDWord - read a 32 bit value from pci config space
4231 *
4232 * Description:
4233 * This routine reads a 32 bit value from the pci configuration
4234 * space.
4235 *
4236 * Returns:
4237 * 0 - indicate everything worked ok.
4238 * != 0 - error indication
4239 */
4240int SkPciReadCfgDWord(
4241SK_AC *pAC, /* Adapter Control structure pointer */
4242int PciAddr, /* PCI register address */
4243SK_U32 *pVal) /* pointer to store the read value */
4244{
4245 pci_read_config_dword(pAC->PciDev, PciAddr, pVal);
4246 return(0);
4247} /* SkPciReadCfgDWord */
4248
4249
4250/*****************************************************************************
4251 *
4252 * SkPciReadCfgWord - read a 16 bit value from pci config space
4253 *
4254 * Description:
4255 * This routine reads a 16 bit value from the pci configuration
4256 * space.
4257 *
4258 * Returns:
4259 * 0 - indicate everything worked ok.
4260 * != 0 - error indication
4261 */
4262int SkPciReadCfgWord(
4263SK_AC *pAC, /* Adapter Control structure pointer */
4264int PciAddr, /* PCI register address */
4265SK_U16 *pVal) /* pointer to store the read value */
4266{
4267 pci_read_config_word(pAC->PciDev, PciAddr, pVal);
4268 return(0);
4269} /* SkPciReadCfgWord */
4270
4271
4272/*****************************************************************************
4273 *
4274 * SkPciReadCfgByte - read a 8 bit value from pci config space
4275 *
4276 * Description:
4277 * This routine reads a 8 bit value from the pci configuration
4278 * space.
4279 *
4280 * Returns:
4281 * 0 - indicate everything worked ok.
4282 * != 0 - error indication
4283 */
4284int SkPciReadCfgByte(
4285SK_AC *pAC, /* Adapter Control structure pointer */
4286int PciAddr, /* PCI register address */
4287SK_U8 *pVal) /* pointer to store the read value */
4288{
4289 pci_read_config_byte(pAC->PciDev, PciAddr, pVal);
4290 return(0);
4291} /* SkPciReadCfgByte */
4292
4293
4294/*****************************************************************************
4295 *
4296 * SkPciWriteCfgDWord - write a 32 bit value to pci config space
4297 *
4298 * Description:
4299 * This routine writes a 32 bit value to the pci configuration
4300 * space.
4301 *
4302 * Returns:
4303 * 0 - indicate everything worked ok.
4304 * != 0 - error indication
4305 */
4306int SkPciWriteCfgDWord(
4307SK_AC *pAC, /* Adapter Control structure pointer */
4308int PciAddr, /* PCI register address */
4309SK_U32 Val) /* pointer to store the read value */
4310{
4311 pci_write_config_dword(pAC->PciDev, PciAddr, Val);
4312 return(0);
4313} /* SkPciWriteCfgDWord */
4314
4315
4316/*****************************************************************************
4317 *
4318 * SkPciWriteCfgWord - write a 16 bit value to pci config space
4319 *
4320 * Description:
4321 * This routine writes a 16 bit value to the pci configuration
4322 * space. The flag PciConfigUp indicates whether the config space
4323 * is accesible or must be set up first.
4324 *
4325 * Returns:
4326 * 0 - indicate everything worked ok.
4327 * != 0 - error indication
4328 */
4329int SkPciWriteCfgWord(
4330SK_AC *pAC, /* Adapter Control structure pointer */
4331int PciAddr, /* PCI register address */
4332SK_U16 Val) /* pointer to store the read value */
4333{
4334 pci_write_config_word(pAC->PciDev, PciAddr, Val);
4335 return(0);
4336} /* SkPciWriteCfgWord */
4337
4338
4339/*****************************************************************************
4340 *
4341 * SkPciWriteCfgWord - write a 8 bit value to pci config space
4342 *
4343 * Description:
4344 * This routine writes a 8 bit value to the pci configuration
4345 * space. The flag PciConfigUp indicates whether the config space
4346 * is accesible or must be set up first.
4347 *
4348 * Returns:
4349 * 0 - indicate everything worked ok.
4350 * != 0 - error indication
4351 */
4352int SkPciWriteCfgByte(
4353SK_AC *pAC, /* Adapter Control structure pointer */
4354int PciAddr, /* PCI register address */
4355SK_U8 Val) /* pointer to store the read value */
4356{
4357 pci_write_config_byte(pAC->PciDev, PciAddr, Val);
4358 return(0);
4359} /* SkPciWriteCfgByte */
4360
4361
4362/*****************************************************************************
4363 *
4364 * SkDrvEvent - handle driver events
4365 *
4366 * Description:
4367 * This function handles events from all modules directed to the driver
4368 *
4369 * Context:
4370 * Is called under protection of slow path lock.
4371 *
4372 * Returns:
4373 * 0 if everything ok
4374 * < 0 on error
4375 *
4376 */
4377int SkDrvEvent(
4378SK_AC *pAC, /* pointer to adapter context */
4379SK_IOC IoC, /* io-context */
4380SK_U32 Event, /* event-id */
4381SK_EVPARA Param) /* event-parameter */
4382{
4383SK_MBUF *pRlmtMbuf; /* pointer to a rlmt-mbuf structure */
4384struct sk_buff *pMsg; /* pointer to a message block */
4385int FromPort; /* the port from which we switch away */
4386int ToPort; /* the port we switch to */
4387SK_EVPARA NewPara; /* parameter for further events */
4388#if 0
4389int Stat;
4390#endif
4391unsigned long Flags;
4392SK_BOOL DualNet;
4393
4394 switch (Event) {
4395 case SK_DRV_ADAP_FAIL:
4396 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4397 ("ADAPTER FAIL EVENT\n"));
4398 printk("%s: Adapter failed.\n", pAC->dev[0]->name);
4399 /* disable interrupts */
4400 SK_OUT32(pAC->IoBase, B0_IMSK, 0);
4401 /* cgoos */
4402 break;
4403 case SK_DRV_PORT_FAIL:
4404 FromPort = Param.Para32[0];
4405 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4406 ("PORT FAIL EVENT, Port: %d\n", FromPort));
4407 if (FromPort == 0) {
4408 printk("%s: Port A failed.\n", pAC->dev[0]->name);
4409 } else {
4410 printk("%s: Port B failed.\n", pAC->dev[1]->name);
4411 }
4412 /* cgoos */
4413 break;
4414 case SK_DRV_PORT_RESET: /* SK_U32 PortIdx */
4415 /* action list 4 */
4416 FromPort = Param.Para32[0];
4417 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4418 ("PORT RESET EVENT, Port: %d ", FromPort));
4419 NewPara.Para64 = FromPort;
4420 SkPnmiEvent(pAC, IoC, SK_PNMI_EVT_XMAC_RESET, NewPara);
4421 spin_lock_irqsave(
4422 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4423 Flags);
4424 SkGeStopPort(pAC, IoC, FromPort, SK_STOP_ALL, SK_HARD_RST);
4425#if 0
4426 pAC->dev[Param.Para32[0]]->flags &= ~IFF_RUNNING;
4427#endif
4428 spin_unlock_irqrestore(
4429 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4430 Flags);
4431
4432 /* clear rx ring from received frames */
4433 ReceiveIrq(pAC, &pAC->RxPort[FromPort], SK_FALSE);
4434
4435 ClearTxRing(pAC, &pAC->TxPort[FromPort][TX_PRIO_LOW]);
4436 spin_lock_irqsave(
4437 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4438 Flags);
4439
4440 /* tschilling: Handling of return value inserted. */
4441 if (SkGeInitPort(pAC, IoC, FromPort)) {
4442 if (FromPort == 0) {
4443 printk("%s: SkGeInitPort A failed.\n", pAC->dev[0]->name);
4444 } else {
4445 printk("%s: SkGeInitPort B failed.\n", pAC->dev[1]->name);
4446 }
4447 }
4448 SkAddrMcUpdate(pAC,IoC, FromPort);
4449 PortReInitBmu(pAC, FromPort);
4450 SkGePollTxD(pAC, IoC, FromPort, SK_TRUE);
4451 ClearAndStartRx(pAC, FromPort);
4452 spin_unlock_irqrestore(
4453 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4454 Flags);
4455 break;
4456 case SK_DRV_NET_UP: /* SK_U32 PortIdx */
4457 /* action list 5 */
4458 FromPort = Param.Para32[0];
4459 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4460 ("NET UP EVENT, Port: %d ", Param.Para32[0]));
4461#ifdef SK98_INFO
4462 printk("%s: network connection up using"
4463 " port %c\n", pAC->dev[Param.Para32[0]]->name, 'A'+Param.Para32[0]);
4464
4465 /* tschilling: Values changed according to LinkSpeedUsed. */
4466 Stat = pAC->GIni.GP[FromPort].PLinkSpeedUsed;
4467 if (Stat == SK_LSPEED_STAT_10MBPS) {
4468 printk(" speed: 10\n");
4469 } else if (Stat == SK_LSPEED_STAT_100MBPS) {
4470 printk(" speed: 100\n");
4471 } else if (Stat == SK_LSPEED_STAT_1000MBPS) {
4472 printk(" speed: 1000\n");
4473 } else {
4474 printk(" speed: unknown\n");
4475 }
4476
4477 Stat = pAC->GIni.GP[FromPort].PLinkModeStatus;
4478 if (Stat == SK_LMODE_STAT_AUTOHALF ||
4479 Stat == SK_LMODE_STAT_AUTOFULL) {
4480 printk(" autonegotiation: yes\n");
4481 }
4482 else {
4483 printk(" autonegotiation: no\n");
4484 }
4485 if (Stat == SK_LMODE_STAT_AUTOHALF ||
4486 Stat == SK_LMODE_STAT_HALF) {
4487 printk(" duplex mode: half\n");
4488 }
4489 else {
4490 printk(" duplex mode: full\n");
4491 }
4492 Stat = pAC->GIni.GP[FromPort].PFlowCtrlStatus;
4493 if (Stat == SK_FLOW_STAT_REM_SEND ) {
4494 printk(" flowctrl: remote send\n");
4495 }
4496 else if (Stat == SK_FLOW_STAT_LOC_SEND ){
4497 printk(" flowctrl: local send\n");
4498 }
4499 else if (Stat == SK_FLOW_STAT_SYMMETRIC ){
4500 printk(" flowctrl: symmetric\n");
4501 }
4502 else {
4503 printk(" flowctrl: none\n");
4504 }
4505
4506 /* tschilling: Check against CopperType now. */
4507 if ((pAC->GIni.GICopperType == SK_TRUE) &&
4508 (pAC->GIni.GP[FromPort].PLinkSpeedUsed ==
4509 SK_LSPEED_STAT_1000MBPS)) {
4510 Stat = pAC->GIni.GP[FromPort].PMSStatus;
4511 if (Stat == SK_MS_STAT_MASTER ) {
4512 printk(" role: master\n");
4513 }
4514 else if (Stat == SK_MS_STAT_SLAVE ) {
4515 printk(" role: slave\n");
4516 }
4517 else {
4518 printk(" role: ???\n");
4519 }
4520 }
4521
4522#ifdef SK_ZEROCOPY
4523 if (pAC->GIni.GIChipId == CHIP_ID_YUKON)
4524 printk(" scatter-gather: enabled\n");
4525 else
4526 printk(" scatter-gather: disabled\n");
4527
4528#else
4529 printk(" scatter-gather: disabled\n");
4530#endif
4531#endif /* SK98_INFO */
4532
4533 if ((Param.Para32[0] != pAC->ActivePort) &&
4534 (pAC->RlmtNets == 1)) {
4535 NewPara.Para32[0] = pAC->ActivePort;
4536 NewPara.Para32[1] = Param.Para32[0];
4537 SkEventQueue(pAC, SKGE_DRV, SK_DRV_SWITCH_INTERN,
4538 NewPara);
4539 }
4540
4541 /* Inform the world that link protocol is up. */
4542#if 0
4543 pAC->dev[Param.Para32[0]]->flags |= IFF_RUNNING;
4544#endif
4545
4546 break;
4547 case SK_DRV_NET_DOWN: /* SK_U32 Reason */
4548 /* action list 7 */
4549 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4550 ("NET DOWN EVENT "));
4551#ifdef SK98_INFO
4552 printk("%s: network connection down\n", pAC->dev[Param.Para32[1]]->name);
4553#endif
4554#if 0
4555 pAC->dev[Param.Para32[1]]->flags &= ~IFF_RUNNING;
4556#endif
4557 break;
4558 case SK_DRV_SWITCH_HARD: /* SK_U32 FromPortIdx SK_U32 ToPortIdx */
4559 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4560 ("PORT SWITCH HARD "));
4561 case SK_DRV_SWITCH_SOFT: /* SK_U32 FromPortIdx SK_U32 ToPortIdx */
4562 /* action list 6 */
4563 printk("%s: switching to port %c\n", pAC->dev[0]->name,
4564 'A'+Param.Para32[1]);
4565 case SK_DRV_SWITCH_INTERN: /* SK_U32 FromPortIdx SK_U32 ToPortIdx */
4566 FromPort = Param.Para32[0];
4567 ToPort = Param.Para32[1];
4568 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4569 ("PORT SWITCH EVENT, From: %d To: %d (Pref %d) ",
4570 FromPort, ToPort, pAC->Rlmt.Net[0].PrefPort));
4571 NewPara.Para64 = FromPort;
4572 SkPnmiEvent(pAC, IoC, SK_PNMI_EVT_XMAC_RESET, NewPara);
4573 NewPara.Para64 = ToPort;
4574 SkPnmiEvent(pAC, IoC, SK_PNMI_EVT_XMAC_RESET, NewPara);
4575 spin_lock_irqsave(
4576 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4577 Flags);
4578 spin_lock_irqsave(
4579 &pAC->TxPort[ToPort][TX_PRIO_LOW].TxDesRingLock, Flags);
4580 SkGeStopPort(pAC, IoC, FromPort, SK_STOP_ALL, SK_SOFT_RST);
4581 SkGeStopPort(pAC, IoC, ToPort, SK_STOP_ALL, SK_SOFT_RST);
4582 spin_unlock_irqrestore(
4583 &pAC->TxPort[ToPort][TX_PRIO_LOW].TxDesRingLock, Flags);
4584 spin_unlock_irqrestore(
4585 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4586 Flags);
4587
4588 ReceiveIrq(pAC, &pAC->RxPort[FromPort], SK_FALSE); /* clears rx ring */
4589 ReceiveIrq(pAC, &pAC->RxPort[ToPort], SK_FALSE); /* clears rx ring */
4590
4591 ClearTxRing(pAC, &pAC->TxPort[FromPort][TX_PRIO_LOW]);
4592 ClearTxRing(pAC, &pAC->TxPort[ToPort][TX_PRIO_LOW]);
4593 spin_lock_irqsave(
4594 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4595 Flags);
4596 spin_lock_irqsave(
4597 &pAC->TxPort[ToPort][TX_PRIO_LOW].TxDesRingLock, Flags);
4598 pAC->ActivePort = ToPort;
4599#if 0
4600 SetQueueSizes(pAC);
4601#else
4602 /* tschilling: New common function with minimum size check. */
4603 DualNet = SK_FALSE;
4604 if (pAC->RlmtNets == 2) {
4605 DualNet = SK_TRUE;
4606 }
4607
4608 if (SkGeInitAssignRamToQueues(
4609 pAC,
4610 pAC->ActivePort,
4611 DualNet)) {
4612 spin_unlock_irqrestore(
4613 &pAC->TxPort[ToPort][TX_PRIO_LOW].TxDesRingLock, Flags);
4614 spin_unlock_irqrestore(
4615 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4616 Flags);
4617 printk("SkGeInitAssignRamToQueues failed.\n");
4618 break;
4619 }
4620#endif
4621 /* tschilling: Handling of return values inserted. */
4622 if (SkGeInitPort(pAC, IoC, FromPort) ||
4623 SkGeInitPort(pAC, IoC, ToPort)) {
4624 printk("%s: SkGeInitPort failed.\n", pAC->dev[0]->name);
4625 }
4626 if (Event == SK_DRV_SWITCH_SOFT) {
4627 SkMacRxTxEnable(pAC, IoC, FromPort);
4628 }
4629 SkMacRxTxEnable(pAC, IoC, ToPort);
4630 SkAddrSwap(pAC, IoC, FromPort, ToPort);
4631 SkAddrMcUpdate(pAC, IoC, FromPort);
4632 SkAddrMcUpdate(pAC, IoC, ToPort);
4633 PortReInitBmu(pAC, FromPort);
4634 PortReInitBmu(pAC, ToPort);
4635 SkGePollTxD(pAC, IoC, FromPort, SK_TRUE);
4636 SkGePollTxD(pAC, IoC, ToPort, SK_TRUE);
4637 ClearAndStartRx(pAC, FromPort);
4638 ClearAndStartRx(pAC, ToPort);
4639 spin_unlock_irqrestore(
4640 &pAC->TxPort[ToPort][TX_PRIO_LOW].TxDesRingLock, Flags);
4641 spin_unlock_irqrestore(
4642 &pAC->TxPort[FromPort][TX_PRIO_LOW].TxDesRingLock,
4643 Flags);
4644 break;
4645 case SK_DRV_RLMT_SEND: /* SK_MBUF *pMb */
4646 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4647 ("RLS "));
4648 pRlmtMbuf = (SK_MBUF*) Param.pParaPtr;
4649 pMsg = (struct sk_buff*) pRlmtMbuf->pOs;
4650 skb_put(pMsg, pRlmtMbuf->Length);
4651 if (XmitFrame(pAC, &pAC->TxPort[pRlmtMbuf->PortIdx][TX_PRIO_LOW],
4652 pMsg) < 0)
4653
4654 DEV_KFREE_SKB_ANY(pMsg);
4655 break;
4656 default:
4657 break;
4658 }
4659 SK_DBG_MSG(NULL, SK_DBGMOD_DRV, SK_DBGCAT_DRV_EVENT,
4660 ("END EVENT "));
4661
4662 return (0);
4663} /* SkDrvEvent */
4664
4665
4666/*****************************************************************************
4667 *
4668 * SkErrorLog - log errors
4669 *
4670 * Description:
4671 * This function logs errors to the system buffer and to the console
4672 *
4673 * Returns:
4674 * 0 if everything ok
4675 * < 0 on error
4676 *
4677 */
4678void SkErrorLog(
4679SK_AC *pAC,
4680int ErrClass,
4681int ErrNum,
4682char *pErrorMsg)
4683{
4684char ClassStr[80];
4685
4686 switch (ErrClass) {
4687 case SK_ERRCL_OTHER:
4688 strcpy(ClassStr, "Other error");
4689 break;
4690 case SK_ERRCL_CONFIG:
4691 strcpy(ClassStr, "Configuration error");
4692 break;
4693 case SK_ERRCL_INIT:
4694 strcpy(ClassStr, "Initialization error");
4695 break;
4696 case SK_ERRCL_NORES:
4697 strcpy(ClassStr, "Out of resources error");
4698 break;
4699 case SK_ERRCL_SW:
4700 strcpy(ClassStr, "internal Software error");
4701 break;
4702 case SK_ERRCL_HW:
4703 strcpy(ClassStr, "Hardware failure");
4704 break;
4705 case SK_ERRCL_COMM:
4706 strcpy(ClassStr, "Communication error");
4707 break;
4708 }
4709 printk(KERN_INFO "%s: -- ERROR --\n Class: %s\n"
4710 " Nr: 0x%x\n Msg: %s\n", pAC->dev[0]->name,
4711 ClassStr, ErrNum, pErrorMsg);
4712
4713} /* SkErrorLog */
4714
4715#ifdef DEBUG
4716/****************************************************************************/
4717/* "debug only" section *****************************************************/
4718/****************************************************************************/
4719
4720
4721/*****************************************************************************
4722 *
4723 * DumpMsg - print a frame
4724 *
4725 * Description:
4726 * This function prints frames to the system logfile/to the console.
4727 *
4728 * Returns: N/A
4729 *
4730 */
4731static void DumpMsg(struct sk_buff *skb, char *str)
4732{
4733 int msglen;
4734
4735 if (skb == NULL) {
4736 printk("DumpMsg(): NULL-Message\n");
4737 return;
4738 }
4739
4740 if (skb->data == NULL) {
4741 printk("DumpMsg(): Message empty\n");
4742 return;
4743 }
4744
4745 msglen = skb->len;
4746 if (msglen > 64)
4747 msglen = 64;
4748
4749 printk("--- Begin of message from %s , len %d (from %d) ----\n", str, msglen, skb->len);
4750
4751 DumpData((char *)skb->data, msglen);
4752
4753 printk("------- End of message ---------\n");
4754} /* DumpMsg */
4755
4756
4757
4758/*****************************************************************************
4759 *
4760 * DumpData - print a data area
4761 *
4762 * Description:
4763 * This function prints a area of data to the system logfile/to the
4764 * console.
4765 *
4766 * Returns: N/A
4767 *
4768 */
4769static void DumpData(char *p, int size)
4770{
4771register int i;
4772int haddr, addr;
4773char hex_buffer[180];
4774char asc_buffer[180];
4775char HEXCHAR[] = "0123456789ABCDEF";
4776
4777 addr = 0;
4778 haddr = 0;
4779 hex_buffer[0] = 0;
4780 asc_buffer[0] = 0;
4781 for (i=0; i < size; ) {
4782 if (*p >= '0' && *p <='z')
4783 asc_buffer[addr] = *p;
4784 else
4785 asc_buffer[addr] = '.';
4786 addr++;
4787 asc_buffer[addr] = 0;
4788 hex_buffer[haddr] = HEXCHAR[(*p & 0xf0) >> 4];
4789 haddr++;
4790 hex_buffer[haddr] = HEXCHAR[*p & 0x0f];
4791 haddr++;
4792 hex_buffer[haddr] = ' ';
4793 haddr++;
4794 hex_buffer[haddr] = 0;
4795 p++;
4796 i++;
4797 if (i%16 == 0) {
4798 printk("%s %s\n", hex_buffer, asc_buffer);
4799 addr = 0;
4800 haddr = 0;
4801 }
4802 }
4803} /* DumpData */
4804
4805
4806/*****************************************************************************
4807 *
4808 * DumpLong - print a data area as long values
4809 *
4810 * Description:
4811 * This function prints a area of data to the system logfile/to the
4812 * console.
4813 *
4814 * Returns: N/A
4815 *
4816 */
4817static void DumpLong(char *pc, int size)
4818{
4819register int i;
4820int haddr, addr;
4821char hex_buffer[180];
4822char asc_buffer[180];
4823char HEXCHAR[] = "0123456789ABCDEF";
4824long *p;
4825int l;
4826
4827 addr = 0;
4828 haddr = 0;
4829 hex_buffer[0] = 0;
4830 asc_buffer[0] = 0;
4831 p = (long*) pc;
4832 for (i=0; i < size; ) {
4833 l = (long) *p;
4834 hex_buffer[haddr] = HEXCHAR[(l >> 28) & 0xf];
4835 haddr++;
4836 hex_buffer[haddr] = HEXCHAR[(l >> 24) & 0xf];
4837 haddr++;
4838 hex_buffer[haddr] = HEXCHAR[(l >> 20) & 0xf];
4839 haddr++;
4840 hex_buffer[haddr] = HEXCHAR[(l >> 16) & 0xf];
4841 haddr++;
4842 hex_buffer[haddr] = HEXCHAR[(l >> 12) & 0xf];
4843 haddr++;
4844 hex_buffer[haddr] = HEXCHAR[(l >> 8) & 0xf];
4845 haddr++;
4846 hex_buffer[haddr] = HEXCHAR[(l >> 4) & 0xf];
4847 haddr++;
4848 hex_buffer[haddr] = HEXCHAR[l & 0x0f];
4849 haddr++;
4850 hex_buffer[haddr] = ' ';
4851 haddr++;
4852 hex_buffer[haddr] = 0;
4853 p++;
4854 i++;
4855 if (i%8 == 0) {
4856 printk("%4x %s\n", (i-8)*4, hex_buffer);
4857 haddr = 0;
4858 }
4859 }
4860 printk("------------------------\n");
4861} /* DumpLong */
4862
4863#endif
4864
4865/*
4866 * Local variables:
4867 * compile-command: "make"
4868 * End:
4869 */
4870