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Linus Torvalds1da177e2005-04-16 15:20:36 -07001/*
2 * File Name:
3 * defxx.c
4 *
5 * Copyright Information:
6 * Copyright Digital Equipment Corporation 1996.
7 *
8 * This software may be used and distributed according to the terms of
9 * the GNU General Public License, incorporated herein by reference.
10 *
11 * Abstract:
12 * A Linux device driver supporting the Digital Equipment Corporation
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -080013 * FDDI TURBOchannel, EISA and PCI controller families. Supported
14 * adapters include:
Linus Torvalds1da177e2005-04-16 15:20:36 -070015 *
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -080016 * DEC FDDIcontroller/TURBOchannel (DEFTA)
17 * DEC FDDIcontroller/EISA (DEFEA)
18 * DEC FDDIcontroller/PCI (DEFPA)
Linus Torvalds1da177e2005-04-16 15:20:36 -070019 *
20 * The original author:
21 * LVS Lawrence V. Stefani <lstefani@yahoo.com>
22 *
23 * Maintainers:
24 * macro Maciej W. Rozycki <macro@linux-mips.org>
25 *
26 * Credits:
27 * I'd like to thank Patricia Cross for helping me get started with
28 * Linux, David Davies for a lot of help upgrading and configuring
29 * my development system and for answering many OS and driver
30 * development questions, and Alan Cox for recommendations and
31 * integration help on getting FDDI support into Linux. LVS
32 *
33 * Driver Architecture:
34 * The driver architecture is largely based on previous driver work
35 * for other operating systems. The upper edge interface and
36 * functions were largely taken from existing Linux device drivers
37 * such as David Davies' DE4X5.C driver and Donald Becker's TULIP.C
38 * driver.
39 *
40 * Adapter Probe -
41 * The driver scans for supported EISA adapters by reading the
42 * SLOT ID register for each EISA slot and making a match
43 * against the expected value.
44 *
45 * Bus-Specific Initialization -
46 * This driver currently supports both EISA and PCI controller
47 * families. While the custom DMA chip and FDDI logic is similar
48 * or identical, the bus logic is very different. After
49 * initialization, the only bus-specific differences is in how the
50 * driver enables and disables interrupts. Other than that, the
51 * run-time critical code behaves the same on both families.
52 * It's important to note that both adapter families are configured
53 * to I/O map, rather than memory map, the adapter registers.
54 *
55 * Driver Open/Close -
56 * In the driver open routine, the driver ISR (interrupt service
57 * routine) is registered and the adapter is brought to an
58 * operational state. In the driver close routine, the opposite
59 * occurs; the driver ISR is deregistered and the adapter is
60 * brought to a safe, but closed state. Users may use consecutive
61 * commands to bring the adapter up and down as in the following
62 * example:
63 * ifconfig fddi0 up
64 * ifconfig fddi0 down
65 * ifconfig fddi0 up
66 *
67 * Driver Shutdown -
68 * Apparently, there is no shutdown or halt routine support under
69 * Linux. This routine would be called during "reboot" or
70 * "shutdown" to allow the driver to place the adapter in a safe
71 * state before a warm reboot occurs. To be really safe, the user
72 * should close the adapter before shutdown (eg. ifconfig fddi0 down)
73 * to ensure that the adapter DMA engine is taken off-line. However,
74 * the current driver code anticipates this problem and always issues
75 * a soft reset of the adapter at the beginning of driver initialization.
76 * A future driver enhancement in this area may occur in 2.1.X where
77 * Alan indicated that a shutdown handler may be implemented.
78 *
79 * Interrupt Service Routine -
80 * The driver supports shared interrupts, so the ISR is registered for
81 * each board with the appropriate flag and the pointer to that board's
82 * device structure. This provides the context during interrupt
83 * processing to support shared interrupts and multiple boards.
84 *
85 * Interrupt enabling/disabling can occur at many levels. At the host
86 * end, you can disable system interrupts, or disable interrupts at the
87 * PIC (on Intel systems). Across the bus, both EISA and PCI adapters
88 * have a bus-logic chip interrupt enable/disable as well as a DMA
89 * controller interrupt enable/disable.
90 *
91 * The driver currently enables and disables adapter interrupts at the
92 * bus-logic chip and assumes that Linux will take care of clearing or
93 * acknowledging any host-based interrupt chips.
94 *
95 * Control Functions -
96 * Control functions are those used to support functions such as adding
97 * or deleting multicast addresses, enabling or disabling packet
98 * reception filters, or other custom/proprietary commands. Presently,
99 * the driver supports the "get statistics", "set multicast list", and
100 * "set mac address" functions defined by Linux. A list of possible
101 * enhancements include:
102 *
103 * - Custom ioctl interface for executing port interface commands
104 * - Custom ioctl interface for adding unicast addresses to
105 * adapter CAM (to support bridge functions).
106 * - Custom ioctl interface for supporting firmware upgrades.
107 *
108 * Hardware (port interface) Support Routines -
109 * The driver function names that start with "dfx_hw_" represent
110 * low-level port interface routines that are called frequently. They
111 * include issuing a DMA or port control command to the adapter,
112 * resetting the adapter, or reading the adapter state. Since the
113 * driver initialization and run-time code must make calls into the
114 * port interface, these routines were written to be as generic and
115 * usable as possible.
116 *
117 * Receive Path -
118 * The adapter DMA engine supports a 256 entry receive descriptor block
119 * of which up to 255 entries can be used at any given time. The
120 * architecture is a standard producer, consumer, completion model in
121 * which the driver "produces" receive buffers to the adapter, the
122 * adapter "consumes" the receive buffers by DMAing incoming packet data,
123 * and the driver "completes" the receive buffers by servicing the
124 * incoming packet, then "produces" a new buffer and starts the cycle
125 * again. Receive buffers can be fragmented in up to 16 fragments
126 * (descriptor entries). For simplicity, this driver posts
127 * single-fragment receive buffers of 4608 bytes, then allocates a
128 * sk_buff, copies the data, then reposts the buffer. To reduce CPU
129 * utilization, a better approach would be to pass up the receive
130 * buffer (no extra copy) then allocate and post a replacement buffer.
131 * This is a performance enhancement that should be looked into at
132 * some point.
133 *
134 * Transmit Path -
135 * Like the receive path, the adapter DMA engine supports a 256 entry
136 * transmit descriptor block of which up to 255 entries can be used at
137 * any given time. Transmit buffers can be fragmented in up to 255
138 * fragments (descriptor entries). This driver always posts one
139 * fragment per transmit packet request.
140 *
141 * The fragment contains the entire packet from FC to end of data.
142 * Before posting the buffer to the adapter, the driver sets a three-byte
143 * packet request header (PRH) which is required by the Motorola MAC chip
144 * used on the adapters. The PRH tells the MAC the type of token to
145 * receive/send, whether or not to generate and append the CRC, whether
146 * synchronous or asynchronous framing is used, etc. Since the PRH
147 * definition is not necessarily consistent across all FDDI chipsets,
148 * the driver, rather than the common FDDI packet handler routines,
149 * sets these bytes.
150 *
151 * To reduce the amount of descriptor fetches needed per transmit request,
152 * the driver takes advantage of the fact that there are at least three
153 * bytes available before the skb->data field on the outgoing transmit
154 * request. This is guaranteed by having fddi_setup() in net_init.c set
155 * dev->hard_header_len to 24 bytes. 21 bytes accounts for the largest
156 * header in an 802.2 SNAP frame. The other 3 bytes are the extra "pad"
157 * bytes which we'll use to store the PRH.
158 *
159 * There's a subtle advantage to adding these pad bytes to the
160 * hard_header_len, it ensures that the data portion of the packet for
161 * an 802.2 SNAP frame is longword aligned. Other FDDI driver
162 * implementations may not need the extra padding and can start copying
163 * or DMAing directly from the FC byte which starts at skb->data. Should
164 * another driver implementation need ADDITIONAL padding, the net_init.c
165 * module should be updated and dev->hard_header_len should be increased.
166 * NOTE: To maintain the alignment on the data portion of the packet,
167 * dev->hard_header_len should always be evenly divisible by 4 and at
168 * least 24 bytes in size.
169 *
170 * Modification History:
171 * Date Name Description
172 * 16-Aug-96 LVS Created.
173 * 20-Aug-96 LVS Updated dfx_probe so that version information
174 * string is only displayed if 1 or more cards are
175 * found. Changed dfx_rcv_queue_process to copy
176 * 3 NULL bytes before FC to ensure that data is
177 * longword aligned in receive buffer.
178 * 09-Sep-96 LVS Updated dfx_ctl_set_multicast_list to enable
179 * LLC group promiscuous mode if multicast list
180 * is too large. LLC individual/group promiscuous
181 * mode is now disabled if IFF_PROMISC flag not set.
182 * dfx_xmt_queue_pkt no longer checks for NULL skb
183 * on Alan Cox recommendation. Added node address
184 * override support.
185 * 12-Sep-96 LVS Reset current address to factory address during
186 * device open. Updated transmit path to post a
187 * single fragment which includes PRH->end of data.
188 * Mar 2000 AC Did various cleanups for 2.3.x
189 * Jun 2000 jgarzik PCI and resource alloc cleanups
190 * Jul 2000 tjeerd Much cleanup and some bug fixes
191 * Sep 2000 tjeerd Fix leak on unload, cosmetic code cleanup
192 * Feb 2001 Skb allocation fixes
193 * Feb 2001 davej PCI enable cleanups.
194 * 04 Aug 2003 macro Converted to the DMA API.
195 * 14 Aug 2004 macro Fix device names reported.
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -0700196 * 14 Jun 2005 macro Use irqreturn_t.
Maciej W. Rozyckib2e68aa2006-10-23 13:53:17 +0100197 * 23 Oct 2006 macro Big-endian host support.
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800198 * 14 Dec 2006 macro TURBOchannel support.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700199 */
200
201/* Include files */
Linus Torvalds1da177e2005-04-16 15:20:36 -0700202#include <linux/bitops.h>
Maciej W. Rozyckifcdff132007-07-20 13:14:07 +0100203#include <linux/compiler.h>
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800204#include <linux/delay.h>
205#include <linux/dma-mapping.h>
206#include <linux/eisa.h>
207#include <linux/errno.h>
208#include <linux/fddidevice.h>
209#include <linux/init.h>
210#include <linux/interrupt.h>
211#include <linux/ioport.h>
212#include <linux/kernel.h>
213#include <linux/module.h>
214#include <linux/netdevice.h>
215#include <linux/pci.h>
216#include <linux/skbuff.h>
217#include <linux/slab.h>
218#include <linux/string.h>
219#include <linux/tc.h>
Linus Torvalds1da177e2005-04-16 15:20:36 -0700220
221#include <asm/byteorder.h>
222#include <asm/io.h>
223
224#include "defxx.h"
225
226/* Version information string should be updated prior to each new release! */
227#define DRV_NAME "defxx"
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800228#define DRV_VERSION "v1.10"
229#define DRV_RELDATE "2006/12/14"
Linus Torvalds1da177e2005-04-16 15:20:36 -0700230
Bill Pembertonc354dfc2012-12-03 09:24:10 -0500231static char version[] =
Linus Torvalds1da177e2005-04-16 15:20:36 -0700232 DRV_NAME ": " DRV_VERSION " " DRV_RELDATE
233 " Lawrence V. Stefani and others\n";
234
235#define DYNAMIC_BUFFERS 1
236
237#define SKBUFF_RX_COPYBREAK 200
238/*
239 * NEW_SKB_SIZE = PI_RCV_DATA_K_SIZE_MAX+128 to allow 128 byte
240 * alignment for compatibility with old EISA boards.
241 */
242#define NEW_SKB_SIZE (PI_RCV_DATA_K_SIZE_MAX+128)
243
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800244#ifdef CONFIG_EISA
245#define DFX_BUS_EISA(dev) (dev->bus == &eisa_bus_type)
246#else
247#define DFX_BUS_EISA(dev) 0
248#endif
249
250#ifdef CONFIG_TC
251#define DFX_BUS_TC(dev) (dev->bus == &tc_bus_type)
252#else
253#define DFX_BUS_TC(dev) 0
254#endif
255
256#ifdef CONFIG_DEFXX_MMIO
257#define DFX_MMIO 1
258#else
259#define DFX_MMIO 0
260#endif
261
Linus Torvalds1da177e2005-04-16 15:20:36 -0700262/* Define module-wide (static) routines */
263
264static void dfx_bus_init(struct net_device *dev);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800265static void dfx_bus_uninit(struct net_device *dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700266static void dfx_bus_config_check(DFX_board_t *bp);
267
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800268static int dfx_driver_init(struct net_device *dev,
269 const char *print_name,
270 resource_size_t bar_start);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700271static int dfx_adap_init(DFX_board_t *bp, int get_buffers);
272
273static int dfx_open(struct net_device *dev);
274static int dfx_close(struct net_device *dev);
275
276static void dfx_int_pr_halt_id(DFX_board_t *bp);
277static void dfx_int_type_0_process(DFX_board_t *bp);
278static void dfx_int_common(struct net_device *dev);
David Howells7d12e782006-10-05 14:55:46 +0100279static irqreturn_t dfx_interrupt(int irq, void *dev_id);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700280
281static struct net_device_stats *dfx_ctl_get_stats(struct net_device *dev);
282static void dfx_ctl_set_multicast_list(struct net_device *dev);
283static int dfx_ctl_set_mac_address(struct net_device *dev, void *addr);
284static int dfx_ctl_update_cam(DFX_board_t *bp);
285static int dfx_ctl_update_filters(DFX_board_t *bp);
286
287static int dfx_hw_dma_cmd_req(DFX_board_t *bp);
288static int dfx_hw_port_ctrl_req(DFX_board_t *bp, PI_UINT32 command, PI_UINT32 data_a, PI_UINT32 data_b, PI_UINT32 *host_data);
289static void dfx_hw_adap_reset(DFX_board_t *bp, PI_UINT32 type);
290static int dfx_hw_adap_state_rd(DFX_board_t *bp);
291static int dfx_hw_dma_uninit(DFX_board_t *bp, PI_UINT32 type);
292
293static int dfx_rcv_init(DFX_board_t *bp, int get_buffers);
294static void dfx_rcv_queue_process(DFX_board_t *bp);
295static void dfx_rcv_flush(DFX_board_t *bp);
296
Stephen Hemminger613573252009-08-31 19:50:58 +0000297static netdev_tx_t dfx_xmt_queue_pkt(struct sk_buff *skb,
298 struct net_device *dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700299static int dfx_xmt_done(DFX_board_t *bp);
300static void dfx_xmt_flush(DFX_board_t *bp);
301
302/* Define module-wide (static) variables */
303
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800304static struct pci_driver dfx_pci_driver;
305static struct eisa_driver dfx_eisa_driver;
306static struct tc_driver dfx_tc_driver;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700307
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400308
Linus Torvalds1da177e2005-04-16 15:20:36 -0700309/*
310 * =======================
Linus Torvalds1da177e2005-04-16 15:20:36 -0700311 * = dfx_port_write_long =
312 * = dfx_port_read_long =
313 * =======================
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400314 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700315 * Overview:
316 * Routines for reading and writing values from/to adapter
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400317 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700318 * Returns:
319 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400320 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700321 * Arguments:
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800322 * bp - pointer to board information
323 * offset - register offset from base I/O address
324 * data - for dfx_port_write_long, this is a value to write;
325 * for dfx_port_read_long, this is a pointer to store
326 * the read value
Linus Torvalds1da177e2005-04-16 15:20:36 -0700327 *
328 * Functional Description:
329 * These routines perform the correct operation to read or write
330 * the adapter register.
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400331 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700332 * EISA port block base addresses are based on the slot number in which the
333 * controller is installed. For example, if the EISA controller is installed
334 * in slot 4, the port block base address is 0x4000. If the controller is
335 * installed in slot 2, the port block base address is 0x2000, and so on.
336 * This port block can be used to access PDQ, ESIC, and DEFEA on-board
337 * registers using the register offsets defined in DEFXX.H.
338 *
339 * PCI port block base addresses are assigned by the PCI BIOS or system
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800340 * firmware. There is one 128 byte port block which can be accessed. It
Linus Torvalds1da177e2005-04-16 15:20:36 -0700341 * allows for I/O mapping of both PDQ and PFI registers using the register
342 * offsets defined in DEFXX.H.
343 *
344 * Return Codes:
345 * None
346 *
347 * Assumptions:
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800348 * bp->base is a valid base I/O address for this adapter.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700349 * offset is a valid register offset for this adapter.
350 *
351 * Side Effects:
352 * Rather than produce macros for these functions, these routines
353 * are defined using "inline" to ensure that the compiler will
354 * generate inline code and not waste a procedure call and return.
355 * This provides all the benefits of macros, but with the
356 * advantage of strict data type checking.
357 */
358
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800359static inline void dfx_writel(DFX_board_t *bp, int offset, u32 data)
360{
361 writel(data, bp->base.mem + offset);
362 mb();
363}
Linus Torvalds1da177e2005-04-16 15:20:36 -0700364
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800365static inline void dfx_outl(DFX_board_t *bp, int offset, u32 data)
366{
367 outl(data, bp->base.port + offset);
368}
Linus Torvalds1da177e2005-04-16 15:20:36 -0700369
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800370static void dfx_port_write_long(DFX_board_t *bp, int offset, u32 data)
371{
Maciej W. Rozyckifcdff132007-07-20 13:14:07 +0100372 struct device __maybe_unused *bdev = bp->bus_dev;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800373 int dfx_bus_tc = DFX_BUS_TC(bdev);
374 int dfx_use_mmio = DFX_MMIO || dfx_bus_tc;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700375
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800376 if (dfx_use_mmio)
377 dfx_writel(bp, offset, data);
378 else
379 dfx_outl(bp, offset, data);
380}
Linus Torvalds1da177e2005-04-16 15:20:36 -0700381
Linus Torvalds1da177e2005-04-16 15:20:36 -0700382
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800383static inline void dfx_readl(DFX_board_t *bp, int offset, u32 *data)
384{
385 mb();
386 *data = readl(bp->base.mem + offset);
387}
Linus Torvalds1da177e2005-04-16 15:20:36 -0700388
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800389static inline void dfx_inl(DFX_board_t *bp, int offset, u32 *data)
390{
391 *data = inl(bp->base.port + offset);
392}
Linus Torvalds1da177e2005-04-16 15:20:36 -0700393
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800394static void dfx_port_read_long(DFX_board_t *bp, int offset, u32 *data)
395{
Maciej W. Rozyckifcdff132007-07-20 13:14:07 +0100396 struct device __maybe_unused *bdev = bp->bus_dev;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800397 int dfx_bus_tc = DFX_BUS_TC(bdev);
398 int dfx_use_mmio = DFX_MMIO || dfx_bus_tc;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700399
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800400 if (dfx_use_mmio)
401 dfx_readl(bp, offset, data);
402 else
403 dfx_inl(bp, offset, data);
404}
Linus Torvalds1da177e2005-04-16 15:20:36 -0700405
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400406
Linus Torvalds1da177e2005-04-16 15:20:36 -0700407/*
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800408 * ================
409 * = dfx_get_bars =
410 * ================
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400411 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700412 * Overview:
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800413 * Retrieves the address range used to access control and status
414 * registers.
415 *
416 * Returns:
417 * None
418 *
419 * Arguments:
420 * bdev - pointer to device information
421 * bar_start - pointer to store the start address
422 * bar_len - pointer to store the length of the area
423 *
424 * Assumptions:
425 * I am sure there are some.
426 *
427 * Side Effects:
428 * None
429 */
430static void dfx_get_bars(struct device *bdev,
431 resource_size_t *bar_start, resource_size_t *bar_len)
432{
Yijing Wang5349d932013-12-06 14:34:19 +0800433 int dfx_bus_pci = dev_is_pci(bdev);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800434 int dfx_bus_eisa = DFX_BUS_EISA(bdev);
435 int dfx_bus_tc = DFX_BUS_TC(bdev);
436 int dfx_use_mmio = DFX_MMIO || dfx_bus_tc;
437
438 if (dfx_bus_pci) {
439 int num = dfx_use_mmio ? 0 : 1;
440
441 *bar_start = pci_resource_start(to_pci_dev(bdev), num);
442 *bar_len = pci_resource_len(to_pci_dev(bdev), num);
443 }
444 if (dfx_bus_eisa) {
445 unsigned long base_addr = to_eisa_device(bdev)->base_addr;
446 resource_size_t bar;
447
448 if (dfx_use_mmio) {
449 bar = inb(base_addr + PI_ESIC_K_MEM_ADD_CMP_2);
450 bar <<= 8;
451 bar |= inb(base_addr + PI_ESIC_K_MEM_ADD_CMP_1);
452 bar <<= 8;
453 bar |= inb(base_addr + PI_ESIC_K_MEM_ADD_CMP_0);
454 bar <<= 16;
455 *bar_start = bar;
456 bar = inb(base_addr + PI_ESIC_K_MEM_ADD_MASK_2);
457 bar <<= 8;
458 bar |= inb(base_addr + PI_ESIC_K_MEM_ADD_MASK_1);
459 bar <<= 8;
460 bar |= inb(base_addr + PI_ESIC_K_MEM_ADD_MASK_0);
461 bar <<= 16;
462 *bar_len = (bar | PI_MEM_ADD_MASK_M) + 1;
463 } else {
464 *bar_start = base_addr;
465 *bar_len = PI_ESIC_K_CSR_IO_LEN;
466 }
467 }
468 if (dfx_bus_tc) {
469 *bar_start = to_tc_dev(bdev)->resource.start +
470 PI_TC_K_CSR_OFFSET;
471 *bar_len = PI_TC_K_CSR_LEN;
472 }
473}
474
Stephen Hemmingerfd8f4992008-11-20 20:31:40 -0800475static const struct net_device_ops dfx_netdev_ops = {
476 .ndo_open = dfx_open,
477 .ndo_stop = dfx_close,
478 .ndo_start_xmit = dfx_xmt_queue_pkt,
479 .ndo_get_stats = dfx_ctl_get_stats,
Jiri Pirkoafc4b132011-08-16 06:29:01 +0000480 .ndo_set_rx_mode = dfx_ctl_set_multicast_list,
Stephen Hemmingerfd8f4992008-11-20 20:31:40 -0800481 .ndo_set_mac_address = dfx_ctl_set_mac_address,
482};
483
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800484/*
485 * ================
486 * = dfx_register =
487 * ================
488 *
489 * Overview:
490 * Initializes a supported FDDI controller
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400491 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700492 * Returns:
493 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400494 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700495 * Arguments:
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800496 * bdev - pointer to device information
Linus Torvalds1da177e2005-04-16 15:20:36 -0700497 *
498 * Functional Description:
499 *
500 * Return Codes:
501 * 0 - This device (fddi0, fddi1, etc) configured successfully
502 * -EBUSY - Failed to get resources, or dfx_driver_init failed.
503 *
504 * Assumptions:
505 * It compiles so it should work :-( (PCI cards do :-)
506 *
507 * Side Effects:
508 * Device structures for FDDI adapters (fddi0, fddi1, etc) are
509 * initialized and the board resources are read and stored in
510 * the device structure.
511 */
Bill Pembertonc354dfc2012-12-03 09:24:10 -0500512static int dfx_register(struct device *bdev)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700513{
514 static int version_disp;
Yijing Wang5349d932013-12-06 14:34:19 +0800515 int dfx_bus_pci = dev_is_pci(bdev);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800516 int dfx_bus_tc = DFX_BUS_TC(bdev);
517 int dfx_use_mmio = DFX_MMIO || dfx_bus_tc;
Kay Sieversfb28ad32008-11-10 13:55:14 -0800518 const char *print_name = dev_name(bdev);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700519 struct net_device *dev;
520 DFX_board_t *bp; /* board pointer */
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800521 resource_size_t bar_start = 0; /* pointer to port */
522 resource_size_t bar_len = 0; /* resource length */
Linus Torvalds1da177e2005-04-16 15:20:36 -0700523 int alloc_size; /* total buffer size used */
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800524 struct resource *region;
525 int err = 0;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700526
527 if (!version_disp) { /* display version info if adapter is found */
528 version_disp = 1; /* set display flag to TRUE so that */
529 printk(version); /* we only display this string ONCE */
530 }
531
Linus Torvalds1da177e2005-04-16 15:20:36 -0700532 dev = alloc_fddidev(sizeof(*bp));
533 if (!dev) {
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800534 printk(KERN_ERR "%s: Unable to allocate fddidev, aborting\n",
Linus Torvalds1da177e2005-04-16 15:20:36 -0700535 print_name);
536 return -ENOMEM;
537 }
538
539 /* Enable PCI device. */
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800540 if (dfx_bus_pci && pci_enable_device(to_pci_dev(bdev))) {
541 printk(KERN_ERR "%s: Cannot enable PCI device, aborting\n",
542 print_name);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700543 goto err_out;
544 }
545
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800546 SET_NETDEV_DEV(dev, bdev);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700547
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800548 bp = netdev_priv(dev);
549 bp->bus_dev = bdev;
550 dev_set_drvdata(bdev, dev);
551
552 dfx_get_bars(bdev, &bar_start, &bar_len);
553
554 if (dfx_use_mmio)
555 region = request_mem_region(bar_start, bar_len, print_name);
556 else
557 region = request_region(bar_start, bar_len, print_name);
558 if (!region) {
559 printk(KERN_ERR "%s: Cannot reserve I/O resource "
560 "0x%lx @ 0x%lx, aborting\n",
561 print_name, (long)bar_len, (long)bar_start);
562 err = -EBUSY;
563 goto err_out_disable;
564 }
565
566 /* Set up I/O base address. */
567 if (dfx_use_mmio) {
568 bp->base.mem = ioremap_nocache(bar_start, bar_len);
569 if (!bp->base.mem) {
570 printk(KERN_ERR "%s: Cannot map MMIO\n", print_name);
Maciej W. Rozycki8a323522007-05-29 16:12:22 +0100571 err = -ENOMEM;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800572 goto err_out_region;
573 }
574 } else {
575 bp->base.port = bar_start;
576 dev->base_addr = bar_start;
577 }
578
579 /* Initialize new device structure */
Stephen Hemmingerfd8f4992008-11-20 20:31:40 -0800580 dev->netdev_ops = &dfx_netdev_ops;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700581
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800582 if (dfx_bus_pci)
583 pci_set_master(to_pci_dev(bdev));
Linus Torvalds1da177e2005-04-16 15:20:36 -0700584
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800585 if (dfx_driver_init(dev, print_name, bar_start) != DFX_K_SUCCESS) {
Linus Torvalds1da177e2005-04-16 15:20:36 -0700586 err = -ENODEV;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800587 goto err_out_unmap;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700588 }
589
590 err = register_netdev(dev);
591 if (err)
592 goto err_out_kfree;
593
594 printk("%s: registered as %s\n", print_name, dev->name);
595 return 0;
596
597err_out_kfree:
598 alloc_size = sizeof(PI_DESCR_BLOCK) +
599 PI_CMD_REQ_K_SIZE_MAX + PI_CMD_RSP_K_SIZE_MAX +
600#ifndef DYNAMIC_BUFFERS
601 (bp->rcv_bufs_to_post * PI_RCV_DATA_K_SIZE_MAX) +
602#endif
603 sizeof(PI_CONSUMER_BLOCK) +
604 (PI_ALIGN_K_DESC_BLK - 1);
605 if (bp->kmalloced)
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800606 dma_free_coherent(bdev, alloc_size,
607 bp->kmalloced, bp->kmalloced_dma);
608
609err_out_unmap:
610 if (dfx_use_mmio)
611 iounmap(bp->base.mem);
612
Linus Torvalds1da177e2005-04-16 15:20:36 -0700613err_out_region:
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800614 if (dfx_use_mmio)
615 release_mem_region(bar_start, bar_len);
616 else
617 release_region(bar_start, bar_len);
618
619err_out_disable:
620 if (dfx_bus_pci)
621 pci_disable_device(to_pci_dev(bdev));
622
Linus Torvalds1da177e2005-04-16 15:20:36 -0700623err_out:
624 free_netdev(dev);
625 return err;
626}
627
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400628
Linus Torvalds1da177e2005-04-16 15:20:36 -0700629/*
630 * ================
631 * = dfx_bus_init =
632 * ================
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400633 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700634 * Overview:
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800635 * Initializes the bus-specific controller logic.
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400636 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700637 * Returns:
638 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400639 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700640 * Arguments:
641 * dev - pointer to device information
642 *
643 * Functional Description:
644 * Determine and save adapter IRQ in device table,
645 * then perform bus-specific logic initialization.
646 *
647 * Return Codes:
648 * None
649 *
650 * Assumptions:
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800651 * bp->base has already been set with the proper
Linus Torvalds1da177e2005-04-16 15:20:36 -0700652 * base I/O address for this device.
653 *
654 * Side Effects:
655 * Interrupts are enabled at the adapter bus-specific logic.
656 * Note: Interrupts at the DMA engine (PDQ chip) are not
657 * enabled yet.
658 */
659
Bill Pembertonc354dfc2012-12-03 09:24:10 -0500660static void dfx_bus_init(struct net_device *dev)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700661{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800662 DFX_board_t *bp = netdev_priv(dev);
663 struct device *bdev = bp->bus_dev;
Yijing Wang5349d932013-12-06 14:34:19 +0800664 int dfx_bus_pci = dev_is_pci(bdev);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800665 int dfx_bus_eisa = DFX_BUS_EISA(bdev);
666 int dfx_bus_tc = DFX_BUS_TC(bdev);
667 int dfx_use_mmio = DFX_MMIO || dfx_bus_tc;
668 u8 val;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700669
670 DBG_printk("In dfx_bus_init...\n");
671
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800672 /* Initialize a pointer back to the net_device struct */
Linus Torvalds1da177e2005-04-16 15:20:36 -0700673 bp->dev = dev;
674
675 /* Initialize adapter based on bus type */
676
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800677 if (dfx_bus_tc)
678 dev->irq = to_tc_dev(bdev)->interrupt;
679 if (dfx_bus_eisa) {
680 unsigned long base_addr = to_eisa_device(bdev)->base_addr;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700681
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800682 /* Get the interrupt level from the ESIC chip. */
683 val = inb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0);
684 val &= PI_CONFIG_STAT_0_M_IRQ;
685 val >>= PI_CONFIG_STAT_0_V_IRQ;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700686
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800687 switch (val) {
688 case PI_CONFIG_STAT_0_IRQ_K_9:
689 dev->irq = 9;
690 break;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700691
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800692 case PI_CONFIG_STAT_0_IRQ_K_10:
693 dev->irq = 10;
694 break;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700695
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800696 case PI_CONFIG_STAT_0_IRQ_K_11:
697 dev->irq = 11;
698 break;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700699
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800700 case PI_CONFIG_STAT_0_IRQ_K_15:
701 dev->irq = 15;
702 break;
703 }
Linus Torvalds1da177e2005-04-16 15:20:36 -0700704
705 /*
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800706 * Enable memory decoding (MEMCS0) and/or port decoding
707 * (IOCS1/IOCS0) as appropriate in Function Control
708 * Register. One of the port chip selects seems to be
709 * used for the Burst Holdoff register, but this bit of
710 * documentation is missing and as yet it has not been
711 * determined which of the two. This is also the reason
712 * the size of the decoded port range is twice as large
713 * as one required by the PDQ.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700714 */
715
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800716 /* Set the decode range of the board. */
717 val = ((bp->base.port >> 12) << PI_IO_CMP_V_SLOT);
718 outb(base_addr + PI_ESIC_K_IO_ADD_CMP_0_1, val);
719 outb(base_addr + PI_ESIC_K_IO_ADD_CMP_0_0, 0);
720 outb(base_addr + PI_ESIC_K_IO_ADD_CMP_1_1, val);
721 outb(base_addr + PI_ESIC_K_IO_ADD_CMP_1_0, 0);
722 val = PI_ESIC_K_CSR_IO_LEN - 1;
723 outb(base_addr + PI_ESIC_K_IO_ADD_MASK_0_1, (val >> 8) & 0xff);
724 outb(base_addr + PI_ESIC_K_IO_ADD_MASK_0_0, val & 0xff);
725 outb(base_addr + PI_ESIC_K_IO_ADD_MASK_1_1, (val >> 8) & 0xff);
726 outb(base_addr + PI_ESIC_K_IO_ADD_MASK_1_0, val & 0xff);
727
728 /* Enable the decoders. */
729 val = PI_FUNCTION_CNTRL_M_IOCS1 | PI_FUNCTION_CNTRL_M_IOCS0;
730 if (dfx_use_mmio)
731 val |= PI_FUNCTION_CNTRL_M_MEMCS0;
732 outb(base_addr + PI_ESIC_K_FUNCTION_CNTRL, val);
733
734 /*
735 * Enable access to the rest of the module
736 * (including PDQ and packet memory).
737 */
738 val = PI_SLOT_CNTRL_M_ENB;
739 outb(base_addr + PI_ESIC_K_SLOT_CNTRL, val);
740
741 /*
742 * Map PDQ registers into memory or port space. This is
743 * done with a bit in the Burst Holdoff register.
744 */
745 val = inb(base_addr + PI_DEFEA_K_BURST_HOLDOFF);
746 if (dfx_use_mmio)
747 val |= PI_BURST_HOLDOFF_V_MEM_MAP;
748 else
749 val &= ~PI_BURST_HOLDOFF_V_MEM_MAP;
750 outb(base_addr + PI_DEFEA_K_BURST_HOLDOFF, val);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700751
752 /* Enable interrupts at EISA bus interface chip (ESIC) */
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800753 val = inb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0);
754 val |= PI_CONFIG_STAT_0_M_INT_ENB;
755 outb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0, val);
756 }
757 if (dfx_bus_pci) {
758 struct pci_dev *pdev = to_pci_dev(bdev);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700759
760 /* Get the interrupt level from the PCI Configuration Table */
761
762 dev->irq = pdev->irq;
763
764 /* Check Latency Timer and set if less than minimal */
765
766 pci_read_config_byte(pdev, PCI_LATENCY_TIMER, &val);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800767 if (val < PFI_K_LAT_TIMER_MIN) {
Linus Torvalds1da177e2005-04-16 15:20:36 -0700768 val = PFI_K_LAT_TIMER_DEF;
769 pci_write_config_byte(pdev, PCI_LATENCY_TIMER, val);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800770 }
Linus Torvalds1da177e2005-04-16 15:20:36 -0700771
772 /* Enable interrupts at PCI bus interface chip (PFI) */
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800773 val = PFI_MODE_M_PDQ_INT_ENB | PFI_MODE_M_DMA_ENB;
774 dfx_port_write_long(bp, PFI_K_REG_MODE_CTRL, val);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700775 }
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800776}
777
778/*
779 * ==================
780 * = dfx_bus_uninit =
781 * ==================
782 *
783 * Overview:
784 * Uninitializes the bus-specific controller logic.
785 *
786 * Returns:
787 * None
788 *
789 * Arguments:
790 * dev - pointer to device information
791 *
792 * Functional Description:
793 * Perform bus-specific logic uninitialization.
794 *
795 * Return Codes:
796 * None
797 *
798 * Assumptions:
799 * bp->base has already been set with the proper
800 * base I/O address for this device.
801 *
802 * Side Effects:
803 * Interrupts are disabled at the adapter bus-specific logic.
804 */
805
Bill Pembertonc354dfc2012-12-03 09:24:10 -0500806static void dfx_bus_uninit(struct net_device *dev)
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800807{
808 DFX_board_t *bp = netdev_priv(dev);
809 struct device *bdev = bp->bus_dev;
Yijing Wang5349d932013-12-06 14:34:19 +0800810 int dfx_bus_pci = dev_is_pci(bdev);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800811 int dfx_bus_eisa = DFX_BUS_EISA(bdev);
812 u8 val;
813
814 DBG_printk("In dfx_bus_uninit...\n");
815
816 /* Uninitialize adapter based on bus type */
817
818 if (dfx_bus_eisa) {
819 unsigned long base_addr = to_eisa_device(bdev)->base_addr;
820
821 /* Disable interrupts at EISA bus interface chip (ESIC) */
822 val = inb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0);
823 val &= ~PI_CONFIG_STAT_0_M_INT_ENB;
824 outb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0, val);
825 }
826 if (dfx_bus_pci) {
827 /* Disable interrupts at PCI bus interface chip (PFI) */
828 dfx_port_write_long(bp, PFI_K_REG_MODE_CTRL, 0);
829 }
830}
Linus Torvalds1da177e2005-04-16 15:20:36 -0700831
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400832
Linus Torvalds1da177e2005-04-16 15:20:36 -0700833/*
834 * ========================
835 * = dfx_bus_config_check =
836 * ========================
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400837 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700838 * Overview:
839 * Checks the configuration (burst size, full-duplex, etc.) If any parameters
840 * are illegal, then this routine will set new defaults.
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400841 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700842 * Returns:
843 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400844 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700845 * Arguments:
846 * bp - pointer to board information
847 *
848 * Functional Description:
849 * For Revision 1 FDDI EISA, Revision 2 or later FDDI EISA with rev E or later
850 * PDQ, and all FDDI PCI controllers, all values are legal.
851 *
852 * Return Codes:
853 * None
854 *
855 * Assumptions:
856 * dfx_adap_init has NOT been called yet so burst size and other items have
857 * not been set.
858 *
859 * Side Effects:
860 * None
861 */
862
Bill Pembertonc354dfc2012-12-03 09:24:10 -0500863static void dfx_bus_config_check(DFX_board_t *bp)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700864{
Maciej W. Rozyckifcdff132007-07-20 13:14:07 +0100865 struct device __maybe_unused *bdev = bp->bus_dev;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800866 int dfx_bus_eisa = DFX_BUS_EISA(bdev);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700867 int status; /* return code from adapter port control call */
Linus Torvalds1da177e2005-04-16 15:20:36 -0700868 u32 host_data; /* LW data returned from port control call */
869
870 DBG_printk("In dfx_bus_config_check...\n");
871
872 /* Configuration check only valid for EISA adapter */
873
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800874 if (dfx_bus_eisa) {
Linus Torvalds1da177e2005-04-16 15:20:36 -0700875 /*
876 * First check if revision 2 EISA controller. Rev. 1 cards used
877 * PDQ revision B, so no workaround needed in this case. Rev. 3
878 * cards used PDQ revision E, so no workaround needed in this
879 * case, either. Only Rev. 2 cards used either Rev. D or E
880 * chips, so we must verify the chip revision on Rev. 2 cards.
881 */
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800882 if (to_eisa_device(bdev)->id.driver_data == DEFEA_PROD_ID_2) {
Linus Torvalds1da177e2005-04-16 15:20:36 -0700883 /*
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800884 * Revision 2 FDDI EISA controller found,
885 * so let's check PDQ revision of adapter.
Linus Torvalds1da177e2005-04-16 15:20:36 -0700886 */
Linus Torvalds1da177e2005-04-16 15:20:36 -0700887 status = dfx_hw_port_ctrl_req(bp,
888 PI_PCTRL_M_SUB_CMD,
889 PI_SUB_CMD_K_PDQ_REV_GET,
890 0,
891 &host_data);
892 if ((status != DFX_K_SUCCESS) || (host_data == 2))
893 {
894 /*
895 * Either we couldn't determine the PDQ revision, or
896 * we determined that it is at revision D. In either case,
897 * we need to implement the workaround.
898 */
899
900 /* Ensure that the burst size is set to 8 longwords or less */
901
902 switch (bp->burst_size)
903 {
904 case PI_PDATA_B_DMA_BURST_SIZE_32:
905 case PI_PDATA_B_DMA_BURST_SIZE_16:
906 bp->burst_size = PI_PDATA_B_DMA_BURST_SIZE_8;
907 break;
908
909 default:
910 break;
911 }
912
913 /* Ensure that full-duplex mode is not enabled */
914
915 bp->full_duplex_enb = PI_SNMP_K_FALSE;
916 }
917 }
918 }
919 }
920
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400921
Linus Torvalds1da177e2005-04-16 15:20:36 -0700922/*
923 * ===================
924 * = dfx_driver_init =
925 * ===================
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400926 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700927 * Overview:
928 * Initializes remaining adapter board structure information
929 * and makes sure adapter is in a safe state prior to dfx_open().
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400930 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700931 * Returns:
932 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -0400933 *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700934 * Arguments:
935 * dev - pointer to device information
936 * print_name - printable device name
937 *
938 * Functional Description:
939 * This function allocates additional resources such as the host memory
940 * blocks needed by the adapter (eg. descriptor and consumer blocks).
941 * Remaining bus initialization steps are also completed. The adapter
942 * is also reset so that it is in the DMA_UNAVAILABLE state. The OS
943 * must call dfx_open() to open the adapter and bring it on-line.
944 *
945 * Return Codes:
946 * DFX_K_SUCCESS - initialization succeeded
947 * DFX_K_FAILURE - initialization failed - could not allocate memory
948 * or read adapter MAC address
949 *
950 * Assumptions:
951 * Memory allocated from pci_alloc_consistent() call is physically
952 * contiguous, locked memory.
953 *
954 * Side Effects:
955 * Adapter is reset and should be in DMA_UNAVAILABLE state before
956 * returning from this routine.
957 */
958
Greg Kroah-Hartman1dd06ae2012-12-06 14:30:56 +0000959static int dfx_driver_init(struct net_device *dev, const char *print_name,
960 resource_size_t bar_start)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700961{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800962 DFX_board_t *bp = netdev_priv(dev);
963 struct device *bdev = bp->bus_dev;
Yijing Wang5349d932013-12-06 14:34:19 +0800964 int dfx_bus_pci = dev_is_pci(bdev);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800965 int dfx_bus_eisa = DFX_BUS_EISA(bdev);
966 int dfx_bus_tc = DFX_BUS_TC(bdev);
967 int dfx_use_mmio = DFX_MMIO || dfx_bus_tc;
968 int alloc_size; /* total buffer size needed */
969 char *top_v, *curr_v; /* virtual addrs into memory block */
970 dma_addr_t top_p, curr_p; /* physical addrs into memory block */
Al Viroeca1ad82008-03-16 22:21:54 +0000971 u32 data; /* host data register value */
972 __le32 le32;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -0800973 char *board_name = NULL;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700974
975 DBG_printk("In dfx_driver_init...\n");
976
977 /* Initialize bus-specific hardware registers */
978
979 dfx_bus_init(dev);
980
981 /*
982 * Initialize default values for configurable parameters
983 *
984 * Note: All of these parameters are ones that a user may
985 * want to customize. It'd be nice to break these
986 * out into Space.c or someplace else that's more
987 * accessible/understandable than this file.
988 */
989
990 bp->full_duplex_enb = PI_SNMP_K_FALSE;
991 bp->req_ttrt = 8 * 12500; /* 8ms in 80 nanosec units */
992 bp->burst_size = PI_PDATA_B_DMA_BURST_SIZE_DEF;
993 bp->rcv_bufs_to_post = RCV_BUFS_DEF;
994
995 /*
996 * Ensure that HW configuration is OK
997 *
998 * Note: Depending on the hardware revision, we may need to modify
999 * some of the configurable parameters to workaround hardware
1000 * limitations. We'll perform this configuration check AFTER
1001 * setting the parameters to their default values.
1002 */
1003
1004 dfx_bus_config_check(bp);
1005
1006 /* Disable PDQ interrupts first */
1007
1008 dfx_port_write_long(bp, PI_PDQ_K_REG_HOST_INT_ENB, PI_HOST_INT_K_DISABLE_ALL_INTS);
1009
1010 /* Place adapter in DMA_UNAVAILABLE state by resetting adapter */
1011
1012 (void) dfx_hw_dma_uninit(bp, PI_PDATA_A_RESET_M_SKIP_ST);
1013
1014 /* Read the factory MAC address from the adapter then save it */
1015
1016 if (dfx_hw_port_ctrl_req(bp, PI_PCTRL_M_MLA, PI_PDATA_A_MLA_K_LO, 0,
1017 &data) != DFX_K_SUCCESS) {
1018 printk("%s: Could not read adapter factory MAC address!\n",
1019 print_name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001020 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001021 }
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001022 le32 = cpu_to_le32(data);
1023 memcpy(&bp->factory_mac_addr[0], &le32, sizeof(u32));
Linus Torvalds1da177e2005-04-16 15:20:36 -07001024
1025 if (dfx_hw_port_ctrl_req(bp, PI_PCTRL_M_MLA, PI_PDATA_A_MLA_K_HI, 0,
1026 &data) != DFX_K_SUCCESS) {
1027 printk("%s: Could not read adapter factory MAC address!\n",
1028 print_name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001029 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001030 }
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001031 le32 = cpu_to_le32(data);
1032 memcpy(&bp->factory_mac_addr[4], &le32, sizeof(u16));
Linus Torvalds1da177e2005-04-16 15:20:36 -07001033
1034 /*
1035 * Set current address to factory address
1036 *
1037 * Note: Node address override support is handled through
1038 * dfx_ctl_set_mac_address.
1039 */
1040
1041 memcpy(dev->dev_addr, bp->factory_mac_addr, FDDI_K_ALEN);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001042 if (dfx_bus_tc)
1043 board_name = "DEFTA";
1044 if (dfx_bus_eisa)
1045 board_name = "DEFEA";
1046 if (dfx_bus_pci)
1047 board_name = "DEFPA";
hartleys69d279e2010-01-07 13:24:19 +00001048 pr_info("%s: %s at %saddr = 0x%llx, IRQ = %d, Hardware addr = %pMF\n",
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001049 print_name, board_name, dfx_use_mmio ? "" : "I/O ",
hartleys69d279e2010-01-07 13:24:19 +00001050 (long long)bar_start, dev->irq, dev->dev_addr);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001051
1052 /*
1053 * Get memory for descriptor block, consumer block, and other buffers
1054 * that need to be DMA read or written to by the adapter.
1055 */
1056
1057 alloc_size = sizeof(PI_DESCR_BLOCK) +
1058 PI_CMD_REQ_K_SIZE_MAX +
1059 PI_CMD_RSP_K_SIZE_MAX +
1060#ifndef DYNAMIC_BUFFERS
1061 (bp->rcv_bufs_to_post * PI_RCV_DATA_K_SIZE_MAX) +
1062#endif
1063 sizeof(PI_CONSUMER_BLOCK) +
1064 (PI_ALIGN_K_DESC_BLK - 1);
Joe Perchesede23fa2013-08-26 22:45:23 -07001065 bp->kmalloced = top_v = dma_zalloc_coherent(bp->bus_dev, alloc_size,
1066 &bp->kmalloced_dma,
1067 GFP_ATOMIC);
Joe Perchesd0320f72013-03-14 13:07:21 +00001068 if (top_v == NULL)
Eric Dumazet807540b2010-09-23 05:40:09 +00001069 return DFX_K_FAILURE;
Joe Perchesd0320f72013-03-14 13:07:21 +00001070
Linus Torvalds1da177e2005-04-16 15:20:36 -07001071 top_p = bp->kmalloced_dma; /* get physical address of buffer */
1072
1073 /*
1074 * To guarantee the 8K alignment required for the descriptor block, 8K - 1
1075 * plus the amount of memory needed was allocated. The physical address
1076 * is now 8K aligned. By carving up the memory in a specific order,
1077 * we'll guarantee the alignment requirements for all other structures.
1078 *
1079 * Note: If the assumptions change regarding the non-paged, non-cached,
1080 * physically contiguous nature of the memory block or the address
1081 * alignments, then we'll need to implement a different algorithm
1082 * for allocating the needed memory.
1083 */
1084
1085 curr_p = ALIGN(top_p, PI_ALIGN_K_DESC_BLK);
1086 curr_v = top_v + (curr_p - top_p);
1087
1088 /* Reserve space for descriptor block */
1089
1090 bp->descr_block_virt = (PI_DESCR_BLOCK *) curr_v;
1091 bp->descr_block_phys = curr_p;
1092 curr_v += sizeof(PI_DESCR_BLOCK);
1093 curr_p += sizeof(PI_DESCR_BLOCK);
1094
1095 /* Reserve space for command request buffer */
1096
1097 bp->cmd_req_virt = (PI_DMA_CMD_REQ *) curr_v;
1098 bp->cmd_req_phys = curr_p;
1099 curr_v += PI_CMD_REQ_K_SIZE_MAX;
1100 curr_p += PI_CMD_REQ_K_SIZE_MAX;
1101
1102 /* Reserve space for command response buffer */
1103
1104 bp->cmd_rsp_virt = (PI_DMA_CMD_RSP *) curr_v;
1105 bp->cmd_rsp_phys = curr_p;
1106 curr_v += PI_CMD_RSP_K_SIZE_MAX;
1107 curr_p += PI_CMD_RSP_K_SIZE_MAX;
1108
1109 /* Reserve space for the LLC host receive queue buffers */
1110
1111 bp->rcv_block_virt = curr_v;
1112 bp->rcv_block_phys = curr_p;
1113
1114#ifndef DYNAMIC_BUFFERS
1115 curr_v += (bp->rcv_bufs_to_post * PI_RCV_DATA_K_SIZE_MAX);
1116 curr_p += (bp->rcv_bufs_to_post * PI_RCV_DATA_K_SIZE_MAX);
1117#endif
1118
1119 /* Reserve space for the consumer block */
1120
1121 bp->cons_block_virt = (PI_CONSUMER_BLOCK *) curr_v;
1122 bp->cons_block_phys = curr_p;
1123
1124 /* Display virtual and physical addresses if debug driver */
1125
1126 DBG_printk("%s: Descriptor block virt = %0lX, phys = %0X\n",
1127 print_name,
1128 (long)bp->descr_block_virt, bp->descr_block_phys);
1129 DBG_printk("%s: Command Request buffer virt = %0lX, phys = %0X\n",
1130 print_name, (long)bp->cmd_req_virt, bp->cmd_req_phys);
1131 DBG_printk("%s: Command Response buffer virt = %0lX, phys = %0X\n",
1132 print_name, (long)bp->cmd_rsp_virt, bp->cmd_rsp_phys);
1133 DBG_printk("%s: Receive buffer block virt = %0lX, phys = %0X\n",
1134 print_name, (long)bp->rcv_block_virt, bp->rcv_block_phys);
1135 DBG_printk("%s: Consumer block virt = %0lX, phys = %0X\n",
1136 print_name, (long)bp->cons_block_virt, bp->cons_block_phys);
1137
Eric Dumazet807540b2010-09-23 05:40:09 +00001138 return DFX_K_SUCCESS;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001139}
1140
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001141
Linus Torvalds1da177e2005-04-16 15:20:36 -07001142/*
1143 * =================
1144 * = dfx_adap_init =
1145 * =================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001146 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001147 * Overview:
1148 * Brings the adapter to the link avail/link unavailable state.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001149 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001150 * Returns:
1151 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001152 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001153 * Arguments:
1154 * bp - pointer to board information
1155 * get_buffers - non-zero if buffers to be allocated
1156 *
1157 * Functional Description:
1158 * Issues the low-level firmware/hardware calls necessary to bring
1159 * the adapter up, or to properly reset and restore adapter during
1160 * run-time.
1161 *
1162 * Return Codes:
1163 * DFX_K_SUCCESS - Adapter brought up successfully
1164 * DFX_K_FAILURE - Adapter initialization failed
1165 *
1166 * Assumptions:
1167 * bp->reset_type should be set to a valid reset type value before
1168 * calling this routine.
1169 *
1170 * Side Effects:
1171 * Adapter should be in LINK_AVAILABLE or LINK_UNAVAILABLE state
1172 * upon a successful return of this routine.
1173 */
1174
1175static int dfx_adap_init(DFX_board_t *bp, int get_buffers)
1176 {
1177 DBG_printk("In dfx_adap_init...\n");
1178
1179 /* Disable PDQ interrupts first */
1180
1181 dfx_port_write_long(bp, PI_PDQ_K_REG_HOST_INT_ENB, PI_HOST_INT_K_DISABLE_ALL_INTS);
1182
1183 /* Place adapter in DMA_UNAVAILABLE state by resetting adapter */
1184
1185 if (dfx_hw_dma_uninit(bp, bp->reset_type) != DFX_K_SUCCESS)
1186 {
1187 printk("%s: Could not uninitialize/reset adapter!\n", bp->dev->name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001188 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001189 }
1190
1191 /*
1192 * When the PDQ is reset, some false Type 0 interrupts may be pending,
1193 * so we'll acknowledge all Type 0 interrupts now before continuing.
1194 */
1195
1196 dfx_port_write_long(bp, PI_PDQ_K_REG_TYPE_0_STATUS, PI_HOST_INT_K_ACK_ALL_TYPE_0);
1197
1198 /*
1199 * Clear Type 1 and Type 2 registers before going to DMA_AVAILABLE state
1200 *
1201 * Note: We only need to clear host copies of these registers. The PDQ reset
1202 * takes care of the on-board register values.
1203 */
1204
1205 bp->cmd_req_reg.lword = 0;
1206 bp->cmd_rsp_reg.lword = 0;
1207 bp->rcv_xmt_reg.lword = 0;
1208
1209 /* Clear consumer block before going to DMA_AVAILABLE state */
1210
1211 memset(bp->cons_block_virt, 0, sizeof(PI_CONSUMER_BLOCK));
1212
1213 /* Initialize the DMA Burst Size */
1214
1215 if (dfx_hw_port_ctrl_req(bp,
1216 PI_PCTRL_M_SUB_CMD,
1217 PI_SUB_CMD_K_BURST_SIZE_SET,
1218 bp->burst_size,
1219 NULL) != DFX_K_SUCCESS)
1220 {
1221 printk("%s: Could not set adapter burst size!\n", bp->dev->name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001222 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001223 }
1224
1225 /*
1226 * Set base address of Consumer Block
1227 *
1228 * Assumption: 32-bit physical address of consumer block is 64 byte
1229 * aligned. That is, bits 0-5 of the address must be zero.
1230 */
1231
1232 if (dfx_hw_port_ctrl_req(bp,
1233 PI_PCTRL_M_CONS_BLOCK,
1234 bp->cons_block_phys,
1235 0,
1236 NULL) != DFX_K_SUCCESS)
1237 {
1238 printk("%s: Could not set consumer block address!\n", bp->dev->name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001239 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001240 }
1241
1242 /*
Maciej W. Rozyckib2e68aa2006-10-23 13:53:17 +01001243 * Set the base address of Descriptor Block and bring adapter
1244 * to DMA_AVAILABLE state.
Linus Torvalds1da177e2005-04-16 15:20:36 -07001245 *
Maciej W. Rozyckib2e68aa2006-10-23 13:53:17 +01001246 * Note: We also set the literal and data swapping requirements
1247 * in this command.
Linus Torvalds1da177e2005-04-16 15:20:36 -07001248 *
Maciej W. Rozyckib2e68aa2006-10-23 13:53:17 +01001249 * Assumption: 32-bit physical address of descriptor block
1250 * is 8Kbyte aligned.
Linus Torvalds1da177e2005-04-16 15:20:36 -07001251 */
Maciej W. Rozyckib2e68aa2006-10-23 13:53:17 +01001252 if (dfx_hw_port_ctrl_req(bp, PI_PCTRL_M_INIT,
1253 (u32)(bp->descr_block_phys |
1254 PI_PDATA_A_INIT_M_BSWAP_INIT),
1255 0, NULL) != DFX_K_SUCCESS) {
1256 printk("%s: Could not set descriptor block address!\n",
1257 bp->dev->name);
1258 return DFX_K_FAILURE;
1259 }
Linus Torvalds1da177e2005-04-16 15:20:36 -07001260
1261 /* Set transmit flush timeout value */
1262
1263 bp->cmd_req_virt->cmd_type = PI_CMD_K_CHARS_SET;
1264 bp->cmd_req_virt->char_set.item[0].item_code = PI_ITEM_K_FLUSH_TIME;
1265 bp->cmd_req_virt->char_set.item[0].value = 3; /* 3 seconds */
1266 bp->cmd_req_virt->char_set.item[0].item_index = 0;
1267 bp->cmd_req_virt->char_set.item[1].item_code = PI_ITEM_K_EOL;
1268 if (dfx_hw_dma_cmd_req(bp) != DFX_K_SUCCESS)
1269 {
1270 printk("%s: DMA command request failed!\n", bp->dev->name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001271 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001272 }
1273
1274 /* Set the initial values for eFDXEnable and MACTReq MIB objects */
1275
1276 bp->cmd_req_virt->cmd_type = PI_CMD_K_SNMP_SET;
1277 bp->cmd_req_virt->snmp_set.item[0].item_code = PI_ITEM_K_FDX_ENB_DIS;
1278 bp->cmd_req_virt->snmp_set.item[0].value = bp->full_duplex_enb;
1279 bp->cmd_req_virt->snmp_set.item[0].item_index = 0;
1280 bp->cmd_req_virt->snmp_set.item[1].item_code = PI_ITEM_K_MAC_T_REQ;
1281 bp->cmd_req_virt->snmp_set.item[1].value = bp->req_ttrt;
1282 bp->cmd_req_virt->snmp_set.item[1].item_index = 0;
1283 bp->cmd_req_virt->snmp_set.item[2].item_code = PI_ITEM_K_EOL;
1284 if (dfx_hw_dma_cmd_req(bp) != DFX_K_SUCCESS)
1285 {
1286 printk("%s: DMA command request failed!\n", bp->dev->name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001287 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001288 }
1289
1290 /* Initialize adapter CAM */
1291
1292 if (dfx_ctl_update_cam(bp) != DFX_K_SUCCESS)
1293 {
1294 printk("%s: Adapter CAM update failed!\n", bp->dev->name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001295 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001296 }
1297
1298 /* Initialize adapter filters */
1299
1300 if (dfx_ctl_update_filters(bp) != DFX_K_SUCCESS)
1301 {
1302 printk("%s: Adapter filters update failed!\n", bp->dev->name);
Eric Dumazet807540b2010-09-23 05:40:09 +00001303 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001304 }
1305
1306 /*
1307 * Remove any existing dynamic buffers (i.e. if the adapter is being
1308 * reinitialized)
1309 */
1310
1311 if (get_buffers)
1312 dfx_rcv_flush(bp);
1313
1314 /* Initialize receive descriptor block and produce buffers */
1315
1316 if (dfx_rcv_init(bp, get_buffers))
1317 {
1318 printk("%s: Receive buffer allocation failed\n", bp->dev->name);
1319 if (get_buffers)
1320 dfx_rcv_flush(bp);
Eric Dumazet807540b2010-09-23 05:40:09 +00001321 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001322 }
1323
1324 /* Issue START command and bring adapter to LINK_(UN)AVAILABLE state */
1325
1326 bp->cmd_req_virt->cmd_type = PI_CMD_K_START;
1327 if (dfx_hw_dma_cmd_req(bp) != DFX_K_SUCCESS)
1328 {
1329 printk("%s: Start command failed\n", bp->dev->name);
1330 if (get_buffers)
1331 dfx_rcv_flush(bp);
Eric Dumazet807540b2010-09-23 05:40:09 +00001332 return DFX_K_FAILURE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001333 }
1334
1335 /* Initialization succeeded, reenable PDQ interrupts */
1336
1337 dfx_port_write_long(bp, PI_PDQ_K_REG_HOST_INT_ENB, PI_HOST_INT_K_ENABLE_DEF_INTS);
Eric Dumazet807540b2010-09-23 05:40:09 +00001338 return DFX_K_SUCCESS;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001339 }
1340
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001341
Linus Torvalds1da177e2005-04-16 15:20:36 -07001342/*
1343 * ============
1344 * = dfx_open =
1345 * ============
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001346 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001347 * Overview:
1348 * Opens the adapter
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001349 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001350 * Returns:
1351 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001352 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001353 * Arguments:
1354 * dev - pointer to device information
1355 *
1356 * Functional Description:
1357 * This function brings the adapter to an operational state.
1358 *
1359 * Return Codes:
1360 * 0 - Adapter was successfully opened
1361 * -EAGAIN - Could not register IRQ or adapter initialization failed
1362 *
1363 * Assumptions:
1364 * This routine should only be called for a device that was
1365 * initialized successfully.
1366 *
1367 * Side Effects:
1368 * Adapter should be in LINK_AVAILABLE or LINK_UNAVAILABLE state
1369 * if the open is successful.
1370 */
1371
1372static int dfx_open(struct net_device *dev)
1373{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001374 DFX_board_t *bp = netdev_priv(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001375 int ret;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001376
1377 DBG_printk("In dfx_open...\n");
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001378
Linus Torvalds1da177e2005-04-16 15:20:36 -07001379 /* Register IRQ - support shared interrupts by passing device ptr */
1380
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001381 ret = request_irq(dev->irq, dfx_interrupt, IRQF_SHARED, dev->name,
1382 dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001383 if (ret) {
1384 printk(KERN_ERR "%s: Requested IRQ %d is busy\n", dev->name, dev->irq);
1385 return ret;
1386 }
1387
1388 /*
1389 * Set current address to factory MAC address
1390 *
1391 * Note: We've already done this step in dfx_driver_init.
1392 * However, it's possible that a user has set a node
1393 * address override, then closed and reopened the
1394 * adapter. Unless we reset the device address field
1395 * now, we'll continue to use the existing modified
1396 * address.
1397 */
1398
1399 memcpy(dev->dev_addr, bp->factory_mac_addr, FDDI_K_ALEN);
1400
1401 /* Clear local unicast/multicast address tables and counts */
1402
1403 memset(bp->uc_table, 0, sizeof(bp->uc_table));
1404 memset(bp->mc_table, 0, sizeof(bp->mc_table));
1405 bp->uc_count = 0;
1406 bp->mc_count = 0;
1407
1408 /* Disable promiscuous filter settings */
1409
1410 bp->ind_group_prom = PI_FSTATE_K_BLOCK;
1411 bp->group_prom = PI_FSTATE_K_BLOCK;
1412
1413 spin_lock_init(&bp->lock);
1414
1415 /* Reset and initialize adapter */
1416
1417 bp->reset_type = PI_PDATA_A_RESET_M_SKIP_ST; /* skip self-test */
1418 if (dfx_adap_init(bp, 1) != DFX_K_SUCCESS)
1419 {
1420 printk(KERN_ERR "%s: Adapter open failed!\n", dev->name);
1421 free_irq(dev->irq, dev);
1422 return -EAGAIN;
1423 }
1424
1425 /* Set device structure info */
1426 netif_start_queue(dev);
Eric Dumazet807540b2010-09-23 05:40:09 +00001427 return 0;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001428}
1429
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001430
Linus Torvalds1da177e2005-04-16 15:20:36 -07001431/*
1432 * =============
1433 * = dfx_close =
1434 * =============
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001435 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001436 * Overview:
1437 * Closes the device/module.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001438 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001439 * Returns:
1440 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001441 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001442 * Arguments:
1443 * dev - pointer to device information
1444 *
1445 * Functional Description:
1446 * This routine closes the adapter and brings it to a safe state.
1447 * The interrupt service routine is deregistered with the OS.
1448 * The adapter can be opened again with another call to dfx_open().
1449 *
1450 * Return Codes:
1451 * Always return 0.
1452 *
1453 * Assumptions:
1454 * No further requests for this adapter are made after this routine is
1455 * called. dfx_open() can be called to reset and reinitialize the
1456 * adapter.
1457 *
1458 * Side Effects:
1459 * Adapter should be in DMA_UNAVAILABLE state upon completion of this
1460 * routine.
1461 */
1462
1463static int dfx_close(struct net_device *dev)
1464{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001465 DFX_board_t *bp = netdev_priv(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001466
1467 DBG_printk("In dfx_close...\n");
1468
1469 /* Disable PDQ interrupts first */
1470
1471 dfx_port_write_long(bp, PI_PDQ_K_REG_HOST_INT_ENB, PI_HOST_INT_K_DISABLE_ALL_INTS);
1472
1473 /* Place adapter in DMA_UNAVAILABLE state by resetting adapter */
1474
1475 (void) dfx_hw_dma_uninit(bp, PI_PDATA_A_RESET_M_SKIP_ST);
1476
1477 /*
1478 * Flush any pending transmit buffers
1479 *
1480 * Note: It's important that we flush the transmit buffers
1481 * BEFORE we clear our copy of the Type 2 register.
1482 * Otherwise, we'll have no idea how many buffers
1483 * we need to free.
1484 */
1485
1486 dfx_xmt_flush(bp);
1487
1488 /*
1489 * Clear Type 1 and Type 2 registers after adapter reset
1490 *
1491 * Note: Even though we're closing the adapter, it's
1492 * possible that an interrupt will occur after
1493 * dfx_close is called. Without some assurance to
1494 * the contrary we want to make sure that we don't
1495 * process receive and transmit LLC frames and update
1496 * the Type 2 register with bad information.
1497 */
1498
1499 bp->cmd_req_reg.lword = 0;
1500 bp->cmd_rsp_reg.lword = 0;
1501 bp->rcv_xmt_reg.lword = 0;
1502
1503 /* Clear consumer block for the same reason given above */
1504
1505 memset(bp->cons_block_virt, 0, sizeof(PI_CONSUMER_BLOCK));
1506
1507 /* Release all dynamically allocate skb in the receive ring. */
1508
1509 dfx_rcv_flush(bp);
1510
1511 /* Clear device structure flags */
1512
1513 netif_stop_queue(dev);
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001514
Linus Torvalds1da177e2005-04-16 15:20:36 -07001515 /* Deregister (free) IRQ */
1516
1517 free_irq(dev->irq, dev);
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001518
Eric Dumazet807540b2010-09-23 05:40:09 +00001519 return 0;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001520}
1521
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001522
Linus Torvalds1da177e2005-04-16 15:20:36 -07001523/*
1524 * ======================
1525 * = dfx_int_pr_halt_id =
1526 * ======================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001527 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001528 * Overview:
1529 * Displays halt id's in string form.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001530 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001531 * Returns:
1532 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001533 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001534 * Arguments:
1535 * bp - pointer to board information
1536 *
1537 * Functional Description:
1538 * Determine current halt id and display appropriate string.
1539 *
1540 * Return Codes:
1541 * None
1542 *
1543 * Assumptions:
1544 * None
1545 *
1546 * Side Effects:
1547 * None
1548 */
1549
1550static void dfx_int_pr_halt_id(DFX_board_t *bp)
1551 {
1552 PI_UINT32 port_status; /* PDQ port status register value */
1553 PI_UINT32 halt_id; /* PDQ port status halt ID */
1554
1555 /* Read the latest port status */
1556
1557 dfx_port_read_long(bp, PI_PDQ_K_REG_PORT_STATUS, &port_status);
1558
1559 /* Display halt state transition information */
1560
1561 halt_id = (port_status & PI_PSTATUS_M_HALT_ID) >> PI_PSTATUS_V_HALT_ID;
1562 switch (halt_id)
1563 {
1564 case PI_HALT_ID_K_SELFTEST_TIMEOUT:
1565 printk("%s: Halt ID: Selftest Timeout\n", bp->dev->name);
1566 break;
1567
1568 case PI_HALT_ID_K_PARITY_ERROR:
1569 printk("%s: Halt ID: Host Bus Parity Error\n", bp->dev->name);
1570 break;
1571
1572 case PI_HALT_ID_K_HOST_DIR_HALT:
1573 printk("%s: Halt ID: Host-Directed Halt\n", bp->dev->name);
1574 break;
1575
1576 case PI_HALT_ID_K_SW_FAULT:
1577 printk("%s: Halt ID: Adapter Software Fault\n", bp->dev->name);
1578 break;
1579
1580 case PI_HALT_ID_K_HW_FAULT:
1581 printk("%s: Halt ID: Adapter Hardware Fault\n", bp->dev->name);
1582 break;
1583
1584 case PI_HALT_ID_K_PC_TRACE:
1585 printk("%s: Halt ID: FDDI Network PC Trace Path Test\n", bp->dev->name);
1586 break;
1587
1588 case PI_HALT_ID_K_DMA_ERROR:
1589 printk("%s: Halt ID: Adapter DMA Error\n", bp->dev->name);
1590 break;
1591
1592 case PI_HALT_ID_K_IMAGE_CRC_ERROR:
1593 printk("%s: Halt ID: Firmware Image CRC Error\n", bp->dev->name);
1594 break;
1595
1596 case PI_HALT_ID_K_BUS_EXCEPTION:
1597 printk("%s: Halt ID: 68000 Bus Exception\n", bp->dev->name);
1598 break;
1599
1600 default:
1601 printk("%s: Halt ID: Unknown (code = %X)\n", bp->dev->name, halt_id);
1602 break;
1603 }
1604 }
1605
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001606
Linus Torvalds1da177e2005-04-16 15:20:36 -07001607/*
1608 * ==========================
1609 * = dfx_int_type_0_process =
1610 * ==========================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001611 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001612 * Overview:
1613 * Processes Type 0 interrupts.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001614 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001615 * Returns:
1616 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001617 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001618 * Arguments:
1619 * bp - pointer to board information
1620 *
1621 * Functional Description:
1622 * Processes all enabled Type 0 interrupts. If the reason for the interrupt
1623 * is a serious fault on the adapter, then an error message is displayed
1624 * and the adapter is reset.
1625 *
1626 * One tricky potential timing window is the rapid succession of "link avail"
1627 * "link unavail" state change interrupts. The acknowledgement of the Type 0
1628 * interrupt must be done before reading the state from the Port Status
1629 * register. This is true because a state change could occur after reading
1630 * the data, but before acknowledging the interrupt. If this state change
1631 * does happen, it would be lost because the driver is using the old state,
1632 * and it will never know about the new state because it subsequently
1633 * acknowledges the state change interrupt.
1634 *
1635 * INCORRECT CORRECT
1636 * read type 0 int reasons read type 0 int reasons
1637 * read adapter state ack type 0 interrupts
1638 * ack type 0 interrupts read adapter state
1639 * ... process interrupt ... ... process interrupt ...
1640 *
1641 * Return Codes:
1642 * None
1643 *
1644 * Assumptions:
1645 * None
1646 *
1647 * Side Effects:
1648 * An adapter reset may occur if the adapter has any Type 0 error interrupts
1649 * or if the port status indicates that the adapter is halted. The driver
1650 * is responsible for reinitializing the adapter with the current CAM
1651 * contents and adapter filter settings.
1652 */
1653
1654static void dfx_int_type_0_process(DFX_board_t *bp)
1655
1656 {
1657 PI_UINT32 type_0_status; /* Host Interrupt Type 0 register */
1658 PI_UINT32 state; /* current adap state (from port status) */
1659
1660 /*
1661 * Read host interrupt Type 0 register to determine which Type 0
1662 * interrupts are pending. Immediately write it back out to clear
1663 * those interrupts.
1664 */
1665
1666 dfx_port_read_long(bp, PI_PDQ_K_REG_TYPE_0_STATUS, &type_0_status);
1667 dfx_port_write_long(bp, PI_PDQ_K_REG_TYPE_0_STATUS, type_0_status);
1668
1669 /* Check for Type 0 error interrupts */
1670
1671 if (type_0_status & (PI_TYPE_0_STAT_M_NXM |
1672 PI_TYPE_0_STAT_M_PM_PAR_ERR |
1673 PI_TYPE_0_STAT_M_BUS_PAR_ERR))
1674 {
1675 /* Check for Non-Existent Memory error */
1676
1677 if (type_0_status & PI_TYPE_0_STAT_M_NXM)
1678 printk("%s: Non-Existent Memory Access Error\n", bp->dev->name);
1679
1680 /* Check for Packet Memory Parity error */
1681
1682 if (type_0_status & PI_TYPE_0_STAT_M_PM_PAR_ERR)
1683 printk("%s: Packet Memory Parity Error\n", bp->dev->name);
1684
1685 /* Check for Host Bus Parity error */
1686
1687 if (type_0_status & PI_TYPE_0_STAT_M_BUS_PAR_ERR)
1688 printk("%s: Host Bus Parity Error\n", bp->dev->name);
1689
1690 /* Reset adapter and bring it back on-line */
1691
1692 bp->link_available = PI_K_FALSE; /* link is no longer available */
1693 bp->reset_type = 0; /* rerun on-board diagnostics */
1694 printk("%s: Resetting adapter...\n", bp->dev->name);
1695 if (dfx_adap_init(bp, 0) != DFX_K_SUCCESS)
1696 {
1697 printk("%s: Adapter reset failed! Disabling adapter interrupts.\n", bp->dev->name);
1698 dfx_port_write_long(bp, PI_PDQ_K_REG_HOST_INT_ENB, PI_HOST_INT_K_DISABLE_ALL_INTS);
1699 return;
1700 }
1701 printk("%s: Adapter reset successful!\n", bp->dev->name);
1702 return;
1703 }
1704
1705 /* Check for transmit flush interrupt */
1706
1707 if (type_0_status & PI_TYPE_0_STAT_M_XMT_FLUSH)
1708 {
1709 /* Flush any pending xmt's and acknowledge the flush interrupt */
1710
1711 bp->link_available = PI_K_FALSE; /* link is no longer available */
1712 dfx_xmt_flush(bp); /* flush any outstanding packets */
1713 (void) dfx_hw_port_ctrl_req(bp,
1714 PI_PCTRL_M_XMT_DATA_FLUSH_DONE,
1715 0,
1716 0,
1717 NULL);
1718 }
1719
1720 /* Check for adapter state change */
1721
1722 if (type_0_status & PI_TYPE_0_STAT_M_STATE_CHANGE)
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001723 {
Linus Torvalds1da177e2005-04-16 15:20:36 -07001724 /* Get latest adapter state */
1725
1726 state = dfx_hw_adap_state_rd(bp); /* get adapter state */
1727 if (state == PI_STATE_K_HALTED)
1728 {
1729 /*
1730 * Adapter has transitioned to HALTED state, try to reset
1731 * adapter to bring it back on-line. If reset fails,
1732 * leave the adapter in the broken state.
1733 */
1734
1735 printk("%s: Controller has transitioned to HALTED state!\n", bp->dev->name);
1736 dfx_int_pr_halt_id(bp); /* display halt id as string */
1737
1738 /* Reset adapter and bring it back on-line */
1739
1740 bp->link_available = PI_K_FALSE; /* link is no longer available */
1741 bp->reset_type = 0; /* rerun on-board diagnostics */
1742 printk("%s: Resetting adapter...\n", bp->dev->name);
1743 if (dfx_adap_init(bp, 0) != DFX_K_SUCCESS)
1744 {
1745 printk("%s: Adapter reset failed! Disabling adapter interrupts.\n", bp->dev->name);
1746 dfx_port_write_long(bp, PI_PDQ_K_REG_HOST_INT_ENB, PI_HOST_INT_K_DISABLE_ALL_INTS);
1747 return;
1748 }
1749 printk("%s: Adapter reset successful!\n", bp->dev->name);
1750 }
1751 else if (state == PI_STATE_K_LINK_AVAIL)
1752 {
1753 bp->link_available = PI_K_TRUE; /* set link available flag */
1754 }
1755 }
1756 }
1757
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001758
Linus Torvalds1da177e2005-04-16 15:20:36 -07001759/*
1760 * ==================
1761 * = dfx_int_common =
1762 * ==================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001763 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001764 * Overview:
1765 * Interrupt service routine (ISR)
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001766 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001767 * Returns:
1768 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001769 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001770 * Arguments:
1771 * bp - pointer to board information
1772 *
1773 * Functional Description:
1774 * This is the ISR which processes incoming adapter interrupts.
1775 *
1776 * Return Codes:
1777 * None
1778 *
1779 * Assumptions:
1780 * This routine assumes PDQ interrupts have not been disabled.
1781 * When interrupts are disabled at the PDQ, the Port Status register
1782 * is automatically cleared. This routine uses the Port Status
1783 * register value to determine whether a Type 0 interrupt occurred,
1784 * so it's important that adapter interrupts are not normally
1785 * enabled/disabled at the PDQ.
1786 *
1787 * It's vital that this routine is NOT reentered for the
1788 * same board and that the OS is not in another section of
1789 * code (eg. dfx_xmt_queue_pkt) for the same board on a
1790 * different thread.
1791 *
1792 * Side Effects:
1793 * Pending interrupts are serviced. Depending on the type of
1794 * interrupt, acknowledging and clearing the interrupt at the
1795 * PDQ involves writing a register to clear the interrupt bit
1796 * or updating completion indices.
1797 */
1798
1799static void dfx_int_common(struct net_device *dev)
1800{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001801 DFX_board_t *bp = netdev_priv(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001802 PI_UINT32 port_status; /* Port Status register */
1803
1804 /* Process xmt interrupts - frequent case, so always call this routine */
1805
1806 if(dfx_xmt_done(bp)) /* free consumed xmt packets */
1807 netif_wake_queue(dev);
1808
1809 /* Process rcv interrupts - frequent case, so always call this routine */
1810
1811 dfx_rcv_queue_process(bp); /* service received LLC frames */
1812
1813 /*
1814 * Transmit and receive producer and completion indices are updated on the
1815 * adapter by writing to the Type 2 Producer register. Since the frequent
1816 * case is that we'll be processing either LLC transmit or receive buffers,
1817 * we'll optimize I/O writes by doing a single register write here.
1818 */
1819
1820 dfx_port_write_long(bp, PI_PDQ_K_REG_TYPE_2_PROD, bp->rcv_xmt_reg.lword);
1821
1822 /* Read PDQ Port Status register to find out which interrupts need processing */
1823
1824 dfx_port_read_long(bp, PI_PDQ_K_REG_PORT_STATUS, &port_status);
1825
1826 /* Process Type 0 interrupts (if any) - infrequent, so only call when needed */
1827
1828 if (port_status & PI_PSTATUS_M_TYPE_0_PENDING)
1829 dfx_int_type_0_process(bp); /* process Type 0 interrupts */
1830 }
1831
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001832
Linus Torvalds1da177e2005-04-16 15:20:36 -07001833/*
1834 * =================
1835 * = dfx_interrupt =
1836 * =================
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001837 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001838 * Overview:
1839 * Interrupt processing routine
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001840 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001841 * Returns:
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001842 * Whether a valid interrupt was seen.
1843 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001844 * Arguments:
1845 * irq - interrupt vector
1846 * dev_id - pointer to device information
Linus Torvalds1da177e2005-04-16 15:20:36 -07001847 *
1848 * Functional Description:
1849 * This routine calls the interrupt processing routine for this adapter. It
1850 * disables and reenables adapter interrupts, as appropriate. We can support
1851 * shared interrupts since the incoming dev_id pointer provides our device
1852 * structure context.
1853 *
1854 * Return Codes:
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001855 * IRQ_HANDLED - an IRQ was handled.
1856 * IRQ_NONE - no IRQ was handled.
Linus Torvalds1da177e2005-04-16 15:20:36 -07001857 *
1858 * Assumptions:
1859 * The interrupt acknowledgement at the hardware level (eg. ACKing the PIC
1860 * on Intel-based systems) is done by the operating system outside this
1861 * routine.
1862 *
1863 * System interrupts are enabled through this call.
1864 *
1865 * Side Effects:
1866 * Interrupts are disabled, then reenabled at the adapter.
1867 */
1868
David Howells7d12e782006-10-05 14:55:46 +01001869static irqreturn_t dfx_interrupt(int irq, void *dev_id)
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001870{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001871 struct net_device *dev = dev_id;
1872 DFX_board_t *bp = netdev_priv(dev);
1873 struct device *bdev = bp->bus_dev;
Yijing Wang5349d932013-12-06 14:34:19 +08001874 int dfx_bus_pci = dev_is_pci(bdev);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001875 int dfx_bus_eisa = DFX_BUS_EISA(bdev);
1876 int dfx_bus_tc = DFX_BUS_TC(bdev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001877
1878 /* Service adapter interrupts */
1879
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001880 if (dfx_bus_pci) {
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001881 u32 status;
Linus Torvalds1da177e2005-04-16 15:20:36 -07001882
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001883 dfx_port_read_long(bp, PFI_K_REG_STATUS, &status);
1884 if (!(status & PFI_STATUS_M_PDQ_INT))
1885 return IRQ_NONE;
1886
1887 spin_lock(&bp->lock);
1888
1889 /* Disable PDQ-PFI interrupts at PFI */
1890 dfx_port_write_long(bp, PFI_K_REG_MODE_CTRL,
1891 PFI_MODE_M_DMA_ENB);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001892
1893 /* Call interrupt service routine for this adapter */
Linus Torvalds1da177e2005-04-16 15:20:36 -07001894 dfx_int_common(dev);
1895
1896 /* Clear PDQ interrupt status bit and reenable interrupts */
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001897 dfx_port_write_long(bp, PFI_K_REG_STATUS,
1898 PFI_STATUS_M_PDQ_INT);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001899 dfx_port_write_long(bp, PFI_K_REG_MODE_CTRL,
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001900 (PFI_MODE_M_PDQ_INT_ENB |
1901 PFI_MODE_M_DMA_ENB));
Linus Torvalds1da177e2005-04-16 15:20:36 -07001902
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001903 spin_unlock(&bp->lock);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001904 }
1905 if (dfx_bus_eisa) {
1906 unsigned long base_addr = to_eisa_device(bdev)->base_addr;
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001907 u8 status;
1908
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001909 status = inb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0);
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001910 if (!(status & PI_CONFIG_STAT_0_M_PEND))
1911 return IRQ_NONE;
1912
1913 spin_lock(&bp->lock);
1914
1915 /* Disable interrupts at the ESIC */
1916 status &= ~PI_CONFIG_STAT_0_M_INT_ENB;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001917 outb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0, status);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001918
1919 /* Call interrupt service routine for this adapter */
Linus Torvalds1da177e2005-04-16 15:20:36 -07001920 dfx_int_common(dev);
1921
1922 /* Reenable interrupts at the ESIC */
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001923 status = inb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0);
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001924 status |= PI_CONFIG_STAT_0_M_INT_ENB;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001925 outb(base_addr + PI_ESIC_K_IO_CONFIG_STAT_0, status);
1926
1927 spin_unlock(&bp->lock);
1928 }
1929 if (dfx_bus_tc) {
1930 u32 status;
1931
1932 dfx_port_read_long(bp, PI_PDQ_K_REG_PORT_STATUS, &status);
1933 if (!(status & (PI_PSTATUS_M_RCV_DATA_PENDING |
1934 PI_PSTATUS_M_XMT_DATA_PENDING |
1935 PI_PSTATUS_M_SMT_HOST_PENDING |
1936 PI_PSTATUS_M_UNSOL_PENDING |
1937 PI_PSTATUS_M_CMD_RSP_PENDING |
1938 PI_PSTATUS_M_CMD_REQ_PENDING |
1939 PI_PSTATUS_M_TYPE_0_PENDING)))
1940 return IRQ_NONE;
1941
1942 spin_lock(&bp->lock);
1943
1944 /* Call interrupt service routine for this adapter */
1945 dfx_int_common(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001946
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001947 spin_unlock(&bp->lock);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001948 }
1949
Maciej W. Rozyckifeea1db2005-06-20 15:33:03 -07001950 return IRQ_HANDLED;
1951}
1952
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001953
Linus Torvalds1da177e2005-04-16 15:20:36 -07001954/*
1955 * =====================
1956 * = dfx_ctl_get_stats =
1957 * =====================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001958 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001959 * Overview:
1960 * Get statistics for FDDI adapter
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001961 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001962 * Returns:
1963 * Pointer to FDDI statistics structure
Jeff Garzik6aa20a22006-09-13 13:24:59 -04001964 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07001965 * Arguments:
1966 * dev - pointer to device information
1967 *
1968 * Functional Description:
1969 * Gets current MIB objects from adapter, then
1970 * returns FDDI statistics structure as defined
1971 * in if_fddi.h.
1972 *
1973 * Note: Since the FDDI statistics structure is
1974 * still new and the device structure doesn't
1975 * have an FDDI-specific get statistics handler,
1976 * we'll return the FDDI statistics structure as
1977 * a pointer to an Ethernet statistics structure.
1978 * That way, at least the first part of the statistics
1979 * structure can be decoded properly, and it allows
1980 * "smart" applications to perform a second cast to
1981 * decode the FDDI-specific statistics.
1982 *
1983 * We'll have to pay attention to this routine as the
1984 * device structure becomes more mature and LAN media
1985 * independent.
1986 *
1987 * Return Codes:
1988 * None
1989 *
1990 * Assumptions:
1991 * None
1992 *
1993 * Side Effects:
1994 * None
1995 */
1996
1997static struct net_device_stats *dfx_ctl_get_stats(struct net_device *dev)
1998 {
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08001999 DFX_board_t *bp = netdev_priv(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002000
2001 /* Fill the bp->stats structure with driver-maintained counters */
2002
2003 bp->stats.gen.rx_packets = bp->rcv_total_frames;
2004 bp->stats.gen.tx_packets = bp->xmt_total_frames;
2005 bp->stats.gen.rx_bytes = bp->rcv_total_bytes;
2006 bp->stats.gen.tx_bytes = bp->xmt_total_bytes;
2007 bp->stats.gen.rx_errors = bp->rcv_crc_errors +
2008 bp->rcv_frame_status_errors +
2009 bp->rcv_length_errors;
2010 bp->stats.gen.tx_errors = bp->xmt_length_errors;
2011 bp->stats.gen.rx_dropped = bp->rcv_discards;
2012 bp->stats.gen.tx_dropped = bp->xmt_discards;
2013 bp->stats.gen.multicast = bp->rcv_multicast_frames;
2014 bp->stats.gen.collisions = 0; /* always zero (0) for FDDI */
2015
2016 /* Get FDDI SMT MIB objects */
2017
2018 bp->cmd_req_virt->cmd_type = PI_CMD_K_SMT_MIB_GET;
2019 if (dfx_hw_dma_cmd_req(bp) != DFX_K_SUCCESS)
Eric Dumazet807540b2010-09-23 05:40:09 +00002020 return (struct net_device_stats *)&bp->stats;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002021
2022 /* Fill the bp->stats structure with the SMT MIB object values */
2023
2024 memcpy(bp->stats.smt_station_id, &bp->cmd_rsp_virt->smt_mib_get.smt_station_id, sizeof(bp->cmd_rsp_virt->smt_mib_get.smt_station_id));
2025 bp->stats.smt_op_version_id = bp->cmd_rsp_virt->smt_mib_get.smt_op_version_id;
2026 bp->stats.smt_hi_version_id = bp->cmd_rsp_virt->smt_mib_get.smt_hi_version_id;
2027 bp->stats.smt_lo_version_id = bp->cmd_rsp_virt->smt_mib_get.smt_lo_version_id;
2028 memcpy(bp->stats.smt_user_data, &bp->cmd_rsp_virt->smt_mib_get.smt_user_data, sizeof(bp->cmd_rsp_virt->smt_mib_get.smt_user_data));
2029 bp->stats.smt_mib_version_id = bp->cmd_rsp_virt->smt_mib_get.smt_mib_version_id;
2030 bp->stats.smt_mac_cts = bp->cmd_rsp_virt->smt_mib_get.smt_mac_ct;
2031 bp->stats.smt_non_master_cts = bp->cmd_rsp_virt->smt_mib_get.smt_non_master_ct;
2032 bp->stats.smt_master_cts = bp->cmd_rsp_virt->smt_mib_get.smt_master_ct;
2033 bp->stats.smt_available_paths = bp->cmd_rsp_virt->smt_mib_get.smt_available_paths;
2034 bp->stats.smt_config_capabilities = bp->cmd_rsp_virt->smt_mib_get.smt_config_capabilities;
2035 bp->stats.smt_config_policy = bp->cmd_rsp_virt->smt_mib_get.smt_config_policy;
2036 bp->stats.smt_connection_policy = bp->cmd_rsp_virt->smt_mib_get.smt_connection_policy;
2037 bp->stats.smt_t_notify = bp->cmd_rsp_virt->smt_mib_get.smt_t_notify;
2038 bp->stats.smt_stat_rpt_policy = bp->cmd_rsp_virt->smt_mib_get.smt_stat_rpt_policy;
2039 bp->stats.smt_trace_max_expiration = bp->cmd_rsp_virt->smt_mib_get.smt_trace_max_expiration;
2040 bp->stats.smt_bypass_present = bp->cmd_rsp_virt->smt_mib_get.smt_bypass_present;
2041 bp->stats.smt_ecm_state = bp->cmd_rsp_virt->smt_mib_get.smt_ecm_state;
2042 bp->stats.smt_cf_state = bp->cmd_rsp_virt->smt_mib_get.smt_cf_state;
2043 bp->stats.smt_remote_disconnect_flag = bp->cmd_rsp_virt->smt_mib_get.smt_remote_disconnect_flag;
2044 bp->stats.smt_station_status = bp->cmd_rsp_virt->smt_mib_get.smt_station_status;
2045 bp->stats.smt_peer_wrap_flag = bp->cmd_rsp_virt->smt_mib_get.smt_peer_wrap_flag;
2046 bp->stats.smt_time_stamp = bp->cmd_rsp_virt->smt_mib_get.smt_msg_time_stamp.ls;
2047 bp->stats.smt_transition_time_stamp = bp->cmd_rsp_virt->smt_mib_get.smt_transition_time_stamp.ls;
2048 bp->stats.mac_frame_status_functions = bp->cmd_rsp_virt->smt_mib_get.mac_frame_status_functions;
2049 bp->stats.mac_t_max_capability = bp->cmd_rsp_virt->smt_mib_get.mac_t_max_capability;
2050 bp->stats.mac_tvx_capability = bp->cmd_rsp_virt->smt_mib_get.mac_tvx_capability;
2051 bp->stats.mac_available_paths = bp->cmd_rsp_virt->smt_mib_get.mac_available_paths;
2052 bp->stats.mac_current_path = bp->cmd_rsp_virt->smt_mib_get.mac_current_path;
2053 memcpy(bp->stats.mac_upstream_nbr, &bp->cmd_rsp_virt->smt_mib_get.mac_upstream_nbr, FDDI_K_ALEN);
2054 memcpy(bp->stats.mac_downstream_nbr, &bp->cmd_rsp_virt->smt_mib_get.mac_downstream_nbr, FDDI_K_ALEN);
2055 memcpy(bp->stats.mac_old_upstream_nbr, &bp->cmd_rsp_virt->smt_mib_get.mac_old_upstream_nbr, FDDI_K_ALEN);
2056 memcpy(bp->stats.mac_old_downstream_nbr, &bp->cmd_rsp_virt->smt_mib_get.mac_old_downstream_nbr, FDDI_K_ALEN);
2057 bp->stats.mac_dup_address_test = bp->cmd_rsp_virt->smt_mib_get.mac_dup_address_test;
2058 bp->stats.mac_requested_paths = bp->cmd_rsp_virt->smt_mib_get.mac_requested_paths;
2059 bp->stats.mac_downstream_port_type = bp->cmd_rsp_virt->smt_mib_get.mac_downstream_port_type;
2060 memcpy(bp->stats.mac_smt_address, &bp->cmd_rsp_virt->smt_mib_get.mac_smt_address, FDDI_K_ALEN);
2061 bp->stats.mac_t_req = bp->cmd_rsp_virt->smt_mib_get.mac_t_req;
2062 bp->stats.mac_t_neg = bp->cmd_rsp_virt->smt_mib_get.mac_t_neg;
2063 bp->stats.mac_t_max = bp->cmd_rsp_virt->smt_mib_get.mac_t_max;
2064 bp->stats.mac_tvx_value = bp->cmd_rsp_virt->smt_mib_get.mac_tvx_value;
2065 bp->stats.mac_frame_error_threshold = bp->cmd_rsp_virt->smt_mib_get.mac_frame_error_threshold;
2066 bp->stats.mac_frame_error_ratio = bp->cmd_rsp_virt->smt_mib_get.mac_frame_error_ratio;
2067 bp->stats.mac_rmt_state = bp->cmd_rsp_virt->smt_mib_get.mac_rmt_state;
2068 bp->stats.mac_da_flag = bp->cmd_rsp_virt->smt_mib_get.mac_da_flag;
2069 bp->stats.mac_una_da_flag = bp->cmd_rsp_virt->smt_mib_get.mac_unda_flag;
2070 bp->stats.mac_frame_error_flag = bp->cmd_rsp_virt->smt_mib_get.mac_frame_error_flag;
2071 bp->stats.mac_ma_unitdata_available = bp->cmd_rsp_virt->smt_mib_get.mac_ma_unitdata_available;
2072 bp->stats.mac_hardware_present = bp->cmd_rsp_virt->smt_mib_get.mac_hardware_present;
2073 bp->stats.mac_ma_unitdata_enable = bp->cmd_rsp_virt->smt_mib_get.mac_ma_unitdata_enable;
2074 bp->stats.path_tvx_lower_bound = bp->cmd_rsp_virt->smt_mib_get.path_tvx_lower_bound;
2075 bp->stats.path_t_max_lower_bound = bp->cmd_rsp_virt->smt_mib_get.path_t_max_lower_bound;
2076 bp->stats.path_max_t_req = bp->cmd_rsp_virt->smt_mib_get.path_max_t_req;
2077 memcpy(bp->stats.path_configuration, &bp->cmd_rsp_virt->smt_mib_get.path_configuration, sizeof(bp->cmd_rsp_virt->smt_mib_get.path_configuration));
2078 bp->stats.port_my_type[0] = bp->cmd_rsp_virt->smt_mib_get.port_my_type[0];
2079 bp->stats.port_my_type[1] = bp->cmd_rsp_virt->smt_mib_get.port_my_type[1];
2080 bp->stats.port_neighbor_type[0] = bp->cmd_rsp_virt->smt_mib_get.port_neighbor_type[0];
2081 bp->stats.port_neighbor_type[1] = bp->cmd_rsp_virt->smt_mib_get.port_neighbor_type[1];
2082 bp->stats.port_connection_policies[0] = bp->cmd_rsp_virt->smt_mib_get.port_connection_policies[0];
2083 bp->stats.port_connection_policies[1] = bp->cmd_rsp_virt->smt_mib_get.port_connection_policies[1];
2084 bp->stats.port_mac_indicated[0] = bp->cmd_rsp_virt->smt_mib_get.port_mac_indicated[0];
2085 bp->stats.port_mac_indicated[1] = bp->cmd_rsp_virt->smt_mib_get.port_mac_indicated[1];
2086 bp->stats.port_current_path[0] = bp->cmd_rsp_virt->smt_mib_get.port_current_path[0];
2087 bp->stats.port_current_path[1] = bp->cmd_rsp_virt->smt_mib_get.port_current_path[1];
2088 memcpy(&bp->stats.port_requested_paths[0*3], &bp->cmd_rsp_virt->smt_mib_get.port_requested_paths[0], 3);
2089 memcpy(&bp->stats.port_requested_paths[1*3], &bp->cmd_rsp_virt->smt_mib_get.port_requested_paths[1], 3);
2090 bp->stats.port_mac_placement[0] = bp->cmd_rsp_virt->smt_mib_get.port_mac_placement[0];
2091 bp->stats.port_mac_placement[1] = bp->cmd_rsp_virt->smt_mib_get.port_mac_placement[1];
2092 bp->stats.port_available_paths[0] = bp->cmd_rsp_virt->smt_mib_get.port_available_paths[0];
2093 bp->stats.port_available_paths[1] = bp->cmd_rsp_virt->smt_mib_get.port_available_paths[1];
2094 bp->stats.port_pmd_class[0] = bp->cmd_rsp_virt->smt_mib_get.port_pmd_class[0];
2095 bp->stats.port_pmd_class[1] = bp->cmd_rsp_virt->smt_mib_get.port_pmd_class[1];
2096 bp->stats.port_connection_capabilities[0] = bp->cmd_rsp_virt->smt_mib_get.port_connection_capabilities[0];
2097 bp->stats.port_connection_capabilities[1] = bp->cmd_rsp_virt->smt_mib_get.port_connection_capabilities[1];
2098 bp->stats.port_bs_flag[0] = bp->cmd_rsp_virt->smt_mib_get.port_bs_flag[0];
2099 bp->stats.port_bs_flag[1] = bp->cmd_rsp_virt->smt_mib_get.port_bs_flag[1];
2100 bp->stats.port_ler_estimate[0] = bp->cmd_rsp_virt->smt_mib_get.port_ler_estimate[0];
2101 bp->stats.port_ler_estimate[1] = bp->cmd_rsp_virt->smt_mib_get.port_ler_estimate[1];
2102 bp->stats.port_ler_cutoff[0] = bp->cmd_rsp_virt->smt_mib_get.port_ler_cutoff[0];
2103 bp->stats.port_ler_cutoff[1] = bp->cmd_rsp_virt->smt_mib_get.port_ler_cutoff[1];
2104 bp->stats.port_ler_alarm[0] = bp->cmd_rsp_virt->smt_mib_get.port_ler_alarm[0];
2105 bp->stats.port_ler_alarm[1] = bp->cmd_rsp_virt->smt_mib_get.port_ler_alarm[1];
2106 bp->stats.port_connect_state[0] = bp->cmd_rsp_virt->smt_mib_get.port_connect_state[0];
2107 bp->stats.port_connect_state[1] = bp->cmd_rsp_virt->smt_mib_get.port_connect_state[1];
2108 bp->stats.port_pcm_state[0] = bp->cmd_rsp_virt->smt_mib_get.port_pcm_state[0];
2109 bp->stats.port_pcm_state[1] = bp->cmd_rsp_virt->smt_mib_get.port_pcm_state[1];
2110 bp->stats.port_pc_withhold[0] = bp->cmd_rsp_virt->smt_mib_get.port_pc_withhold[0];
2111 bp->stats.port_pc_withhold[1] = bp->cmd_rsp_virt->smt_mib_get.port_pc_withhold[1];
2112 bp->stats.port_ler_flag[0] = bp->cmd_rsp_virt->smt_mib_get.port_ler_flag[0];
2113 bp->stats.port_ler_flag[1] = bp->cmd_rsp_virt->smt_mib_get.port_ler_flag[1];
2114 bp->stats.port_hardware_present[0] = bp->cmd_rsp_virt->smt_mib_get.port_hardware_present[0];
2115 bp->stats.port_hardware_present[1] = bp->cmd_rsp_virt->smt_mib_get.port_hardware_present[1];
2116
2117 /* Get FDDI counters */
2118
2119 bp->cmd_req_virt->cmd_type = PI_CMD_K_CNTRS_GET;
2120 if (dfx_hw_dma_cmd_req(bp) != DFX_K_SUCCESS)
Eric Dumazet807540b2010-09-23 05:40:09 +00002121 return (struct net_device_stats *)&bp->stats;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002122
2123 /* Fill the bp->stats structure with the FDDI counter values */
2124
2125 bp->stats.mac_frame_cts = bp->cmd_rsp_virt->cntrs_get.cntrs.frame_cnt.ls;
2126 bp->stats.mac_copied_cts = bp->cmd_rsp_virt->cntrs_get.cntrs.copied_cnt.ls;
2127 bp->stats.mac_transmit_cts = bp->cmd_rsp_virt->cntrs_get.cntrs.transmit_cnt.ls;
2128 bp->stats.mac_error_cts = bp->cmd_rsp_virt->cntrs_get.cntrs.error_cnt.ls;
2129 bp->stats.mac_lost_cts = bp->cmd_rsp_virt->cntrs_get.cntrs.lost_cnt.ls;
2130 bp->stats.port_lct_fail_cts[0] = bp->cmd_rsp_virt->cntrs_get.cntrs.lct_rejects[0].ls;
2131 bp->stats.port_lct_fail_cts[1] = bp->cmd_rsp_virt->cntrs_get.cntrs.lct_rejects[1].ls;
2132 bp->stats.port_lem_reject_cts[0] = bp->cmd_rsp_virt->cntrs_get.cntrs.lem_rejects[0].ls;
2133 bp->stats.port_lem_reject_cts[1] = bp->cmd_rsp_virt->cntrs_get.cntrs.lem_rejects[1].ls;
2134 bp->stats.port_lem_cts[0] = bp->cmd_rsp_virt->cntrs_get.cntrs.link_errors[0].ls;
2135 bp->stats.port_lem_cts[1] = bp->cmd_rsp_virt->cntrs_get.cntrs.link_errors[1].ls;
2136
Eric Dumazet807540b2010-09-23 05:40:09 +00002137 return (struct net_device_stats *)&bp->stats;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002138 }
2139
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002140
Linus Torvalds1da177e2005-04-16 15:20:36 -07002141/*
2142 * ==============================
2143 * = dfx_ctl_set_multicast_list =
2144 * ==============================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002145 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002146 * Overview:
2147 * Enable/Disable LLC frame promiscuous mode reception
2148 * on the adapter and/or update multicast address table.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002149 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002150 * Returns:
2151 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002152 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002153 * Arguments:
2154 * dev - pointer to device information
2155 *
2156 * Functional Description:
2157 * This routine follows a fairly simple algorithm for setting the
2158 * adapter filters and CAM:
2159 *
2160 * if IFF_PROMISC flag is set
2161 * enable LLC individual/group promiscuous mode
2162 * else
2163 * disable LLC individual/group promiscuous mode
2164 * if number of incoming multicast addresses >
2165 * (CAM max size - number of unicast addresses in CAM)
2166 * enable LLC group promiscuous mode
2167 * set driver-maintained multicast address count to zero
2168 * else
2169 * disable LLC group promiscuous mode
2170 * set driver-maintained multicast address count to incoming count
2171 * update adapter CAM
2172 * update adapter filters
2173 *
2174 * Return Codes:
2175 * None
2176 *
2177 * Assumptions:
2178 * Multicast addresses are presented in canonical (LSB) format.
2179 *
2180 * Side Effects:
2181 * On-board adapter CAM and filters are updated.
2182 */
2183
2184static void dfx_ctl_set_multicast_list(struct net_device *dev)
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08002185{
2186 DFX_board_t *bp = netdev_priv(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002187 int i; /* used as index in for loop */
Jiri Pirko22bedad32010-04-01 21:22:57 +00002188 struct netdev_hw_addr *ha;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002189
2190 /* Enable LLC frame promiscuous mode, if necessary */
2191
2192 if (dev->flags & IFF_PROMISC)
2193 bp->ind_group_prom = PI_FSTATE_K_PASS; /* Enable LLC ind/group prom mode */
2194
2195 /* Else, update multicast address table */
2196
2197 else
2198 {
2199 bp->ind_group_prom = PI_FSTATE_K_BLOCK; /* Disable LLC ind/group prom mode */
2200 /*
2201 * Check whether incoming multicast address count exceeds table size
2202 *
2203 * Note: The adapters utilize an on-board 64 entry CAM for
2204 * supporting perfect filtering of multicast packets
2205 * and bridge functions when adding unicast addresses.
2206 * There is no hash function available. To support
2207 * additional multicast addresses, the all multicast
2208 * filter (LLC group promiscuous mode) must be enabled.
2209 *
2210 * The firmware reserves two CAM entries for SMT-related
2211 * multicast addresses, which leaves 62 entries available.
2212 * The following code ensures that we're not being asked
2213 * to add more than 62 addresses to the CAM. If we are,
2214 * the driver will enable the all multicast filter.
2215 * Should the number of multicast addresses drop below
2216 * the high water mark, the filter will be disabled and
2217 * perfect filtering will be used.
2218 */
2219
Jiri Pirko4cd24ea2010-02-08 04:30:35 +00002220 if (netdev_mc_count(dev) > (PI_CMD_ADDR_FILTER_K_SIZE - bp->uc_count))
Linus Torvalds1da177e2005-04-16 15:20:36 -07002221 {
2222 bp->group_prom = PI_FSTATE_K_PASS; /* Enable LLC group prom mode */
2223 bp->mc_count = 0; /* Don't add mc addrs to CAM */
2224 }
2225 else
2226 {
2227 bp->group_prom = PI_FSTATE_K_BLOCK; /* Disable LLC group prom mode */
Jiri Pirko4cd24ea2010-02-08 04:30:35 +00002228 bp->mc_count = netdev_mc_count(dev); /* Add mc addrs to CAM */
Linus Torvalds1da177e2005-04-16 15:20:36 -07002229 }
2230
2231 /* Copy addresses to multicast address table, then update adapter CAM */
2232
Jiri Pirkoe1d44472010-02-17 11:09:31 +00002233 i = 0;
Jiri Pirko22bedad32010-04-01 21:22:57 +00002234 netdev_for_each_mc_addr(ha, dev)
Jiri Pirkoe1d44472010-02-17 11:09:31 +00002235 memcpy(&bp->mc_table[i++ * FDDI_K_ALEN],
Jiri Pirko22bedad32010-04-01 21:22:57 +00002236 ha->addr, FDDI_K_ALEN);
Jiri Pirkoe1d44472010-02-17 11:09:31 +00002237
Linus Torvalds1da177e2005-04-16 15:20:36 -07002238 if (dfx_ctl_update_cam(bp) != DFX_K_SUCCESS)
2239 {
2240 DBG_printk("%s: Could not update multicast address table!\n", dev->name);
2241 }
2242 else
2243 {
2244 DBG_printk("%s: Multicast address table updated! Added %d addresses.\n", dev->name, bp->mc_count);
2245 }
2246 }
2247
2248 /* Update adapter filters */
2249
2250 if (dfx_ctl_update_filters(bp) != DFX_K_SUCCESS)
2251 {
2252 DBG_printk("%s: Could not update adapter filters!\n", dev->name);
2253 }
2254 else
2255 {
2256 DBG_printk("%s: Adapter filters updated!\n", dev->name);
2257 }
2258 }
2259
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002260
Linus Torvalds1da177e2005-04-16 15:20:36 -07002261/*
2262 * ===========================
2263 * = dfx_ctl_set_mac_address =
2264 * ===========================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002265 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002266 * Overview:
2267 * Add node address override (unicast address) to adapter
2268 * CAM and update dev_addr field in device table.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002269 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002270 * Returns:
2271 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002272 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002273 * Arguments:
2274 * dev - pointer to device information
2275 * addr - pointer to sockaddr structure containing unicast address to add
2276 *
2277 * Functional Description:
2278 * The adapter supports node address overrides by adding one or more
2279 * unicast addresses to the adapter CAM. This is similar to adding
2280 * multicast addresses. In this routine we'll update the driver and
2281 * device structures with the new address, then update the adapter CAM
2282 * to ensure that the adapter will copy and strip frames destined and
2283 * sourced by that address.
2284 *
2285 * Return Codes:
2286 * Always returns zero.
2287 *
2288 * Assumptions:
2289 * The address pointed to by addr->sa_data is a valid unicast
2290 * address and is presented in canonical (LSB) format.
2291 *
2292 * Side Effects:
2293 * On-board adapter CAM is updated. On-board adapter filters
2294 * may be updated.
2295 */
2296
2297static int dfx_ctl_set_mac_address(struct net_device *dev, void *addr)
2298 {
Linus Torvalds1da177e2005-04-16 15:20:36 -07002299 struct sockaddr *p_sockaddr = (struct sockaddr *)addr;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08002300 DFX_board_t *bp = netdev_priv(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002301
2302 /* Copy unicast address to driver-maintained structs and update count */
2303
2304 memcpy(dev->dev_addr, p_sockaddr->sa_data, FDDI_K_ALEN); /* update device struct */
2305 memcpy(&bp->uc_table[0], p_sockaddr->sa_data, FDDI_K_ALEN); /* update driver struct */
2306 bp->uc_count = 1;
2307
2308 /*
2309 * Verify we're not exceeding the CAM size by adding unicast address
2310 *
2311 * Note: It's possible that before entering this routine we've
2312 * already filled the CAM with 62 multicast addresses.
2313 * Since we need to place the node address override into
2314 * the CAM, we have to check to see that we're not
2315 * exceeding the CAM size. If we are, we have to enable
2316 * the LLC group (multicast) promiscuous mode filter as
2317 * in dfx_ctl_set_multicast_list.
2318 */
2319
2320 if ((bp->uc_count + bp->mc_count) > PI_CMD_ADDR_FILTER_K_SIZE)
2321 {
2322 bp->group_prom = PI_FSTATE_K_PASS; /* Enable LLC group prom mode */
2323 bp->mc_count = 0; /* Don't add mc addrs to CAM */
2324
2325 /* Update adapter filters */
2326
2327 if (dfx_ctl_update_filters(bp) != DFX_K_SUCCESS)
2328 {
2329 DBG_printk("%s: Could not update adapter filters!\n", dev->name);
2330 }
2331 else
2332 {
2333 DBG_printk("%s: Adapter filters updated!\n", dev->name);
2334 }
2335 }
2336
2337 /* Update adapter CAM with new unicast address */
2338
2339 if (dfx_ctl_update_cam(bp) != DFX_K_SUCCESS)
2340 {
2341 DBG_printk("%s: Could not set new MAC address!\n", dev->name);
2342 }
2343 else
2344 {
2345 DBG_printk("%s: Adapter CAM updated with new MAC address\n", dev->name);
2346 }
Eric Dumazet807540b2010-09-23 05:40:09 +00002347 return 0; /* always return zero */
Linus Torvalds1da177e2005-04-16 15:20:36 -07002348 }
2349
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002350
Linus Torvalds1da177e2005-04-16 15:20:36 -07002351/*
2352 * ======================
2353 * = dfx_ctl_update_cam =
2354 * ======================
2355 *
2356 * Overview:
2357 * Procedure to update adapter CAM (Content Addressable Memory)
2358 * with desired unicast and multicast address entries.
2359 *
2360 * Returns:
2361 * Condition code
2362 *
2363 * Arguments:
2364 * bp - pointer to board information
2365 *
2366 * Functional Description:
2367 * Updates adapter CAM with current contents of board structure
2368 * unicast and multicast address tables. Since there are only 62
2369 * free entries in CAM, this routine ensures that the command
2370 * request buffer is not overrun.
2371 *
2372 * Return Codes:
2373 * DFX_K_SUCCESS - Request succeeded
2374 * DFX_K_FAILURE - Request failed
2375 *
2376 * Assumptions:
2377 * All addresses being added (unicast and multicast) are in canonical
2378 * order.
2379 *
2380 * Side Effects:
2381 * On-board adapter CAM is updated.
2382 */
2383
2384static int dfx_ctl_update_cam(DFX_board_t *bp)
2385 {
2386 int i; /* used as index */
2387 PI_LAN_ADDR *p_addr; /* pointer to CAM entry */
2388
2389 /*
2390 * Fill in command request information
2391 *
2392 * Note: Even though both the unicast and multicast address
2393 * table entries are stored as contiguous 6 byte entries,
2394 * the firmware address filter set command expects each
2395 * entry to be two longwords (8 bytes total). We must be
2396 * careful to only copy the six bytes of each unicast and
2397 * multicast table entry into each command entry. This
2398 * is also why we must first clear the entire command
2399 * request buffer.
2400 */
2401
2402 memset(bp->cmd_req_virt, 0, PI_CMD_REQ_K_SIZE_MAX); /* first clear buffer */
2403 bp->cmd_req_virt->cmd_type = PI_CMD_K_ADDR_FILTER_SET;
2404 p_addr = &bp->cmd_req_virt->addr_filter_set.entry[0];
2405
2406 /* Now add unicast addresses to command request buffer, if any */
2407
2408 for (i=0; i < (int)bp->uc_count; i++)
2409 {
2410 if (i < PI_CMD_ADDR_FILTER_K_SIZE)
2411 {
2412 memcpy(p_addr, &bp->uc_table[i*FDDI_K_ALEN], FDDI_K_ALEN);
2413 p_addr++; /* point to next command entry */
2414 }
2415 }
2416
2417 /* Now add multicast addresses to command request buffer, if any */
2418
2419 for (i=0; i < (int)bp->mc_count; i++)
2420 {
2421 if ((i + bp->uc_count) < PI_CMD_ADDR_FILTER_K_SIZE)
2422 {
2423 memcpy(p_addr, &bp->mc_table[i*FDDI_K_ALEN], FDDI_K_ALEN);
2424 p_addr++; /* point to next command entry */
2425 }
2426 }
2427
2428 /* Issue command to update adapter CAM, then return */
2429
2430 if (dfx_hw_dma_cmd_req(bp) != DFX_K_SUCCESS)
Eric Dumazet807540b2010-09-23 05:40:09 +00002431 return DFX_K_FAILURE;
2432 return DFX_K_SUCCESS;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002433 }
2434
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002435
Linus Torvalds1da177e2005-04-16 15:20:36 -07002436/*
2437 * ==========================
2438 * = dfx_ctl_update_filters =
2439 * ==========================
2440 *
2441 * Overview:
2442 * Procedure to update adapter filters with desired
2443 * filter settings.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002444 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002445 * Returns:
2446 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002447 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002448 * Arguments:
2449 * bp - pointer to board information
2450 *
2451 * Functional Description:
2452 * Enables or disables filter using current filter settings.
2453 *
2454 * Return Codes:
2455 * DFX_K_SUCCESS - Request succeeded.
2456 * DFX_K_FAILURE - Request failed.
2457 *
2458 * Assumptions:
2459 * We must always pass up packets destined to the broadcast
2460 * address (FF-FF-FF-FF-FF-FF), so we'll always keep the
2461 * broadcast filter enabled.
2462 *
2463 * Side Effects:
2464 * On-board adapter filters are updated.
2465 */
2466
2467static int dfx_ctl_update_filters(DFX_board_t *bp)
2468 {
2469 int i = 0; /* used as index */
2470
2471 /* Fill in command request information */
2472
2473 bp->cmd_req_virt->cmd_type = PI_CMD_K_FILTERS_SET;
2474
2475 /* Initialize Broadcast filter - * ALWAYS ENABLED * */
2476
2477 bp->cmd_req_virt->filter_set.item[i].item_code = PI_ITEM_K_BROADCAST;
2478 bp->cmd_req_virt->filter_set.item[i++].value = PI_FSTATE_K_PASS;
2479
2480 /* Initialize LLC Individual/Group Promiscuous filter */
2481
2482 bp->cmd_req_virt->filter_set.item[i].item_code = PI_ITEM_K_IND_GROUP_PROM;
2483 bp->cmd_req_virt->filter_set.item[i++].value = bp->ind_group_prom;
2484
2485 /* Initialize LLC Group Promiscuous filter */
2486
2487 bp->cmd_req_virt->filter_set.item[i].item_code = PI_ITEM_K_GROUP_PROM;
2488 bp->cmd_req_virt->filter_set.item[i++].value = bp->group_prom;
2489
2490 /* Terminate the item code list */
2491
2492 bp->cmd_req_virt->filter_set.item[i].item_code = PI_ITEM_K_EOL;
2493
2494 /* Issue command to update adapter filters, then return */
2495
2496 if (dfx_hw_dma_cmd_req(bp) != DFX_K_SUCCESS)
Eric Dumazet807540b2010-09-23 05:40:09 +00002497 return DFX_K_FAILURE;
2498 return DFX_K_SUCCESS;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002499 }
2500
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002501
Linus Torvalds1da177e2005-04-16 15:20:36 -07002502/*
2503 * ======================
2504 * = dfx_hw_dma_cmd_req =
2505 * ======================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002506 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002507 * Overview:
2508 * Sends PDQ DMA command to adapter firmware
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002509 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002510 * Returns:
2511 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002512 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002513 * Arguments:
2514 * bp - pointer to board information
2515 *
2516 * Functional Description:
2517 * The command request and response buffers are posted to the adapter in the manner
2518 * described in the PDQ Port Specification:
2519 *
2520 * 1. Command Response Buffer is posted to adapter.
2521 * 2. Command Request Buffer is posted to adapter.
2522 * 3. Command Request consumer index is polled until it indicates that request
2523 * buffer has been DMA'd to adapter.
2524 * 4. Command Response consumer index is polled until it indicates that response
2525 * buffer has been DMA'd from adapter.
2526 *
2527 * This ordering ensures that a response buffer is already available for the firmware
2528 * to use once it's done processing the request buffer.
2529 *
2530 * Return Codes:
2531 * DFX_K_SUCCESS - DMA command succeeded
2532 * DFX_K_OUTSTATE - Adapter is NOT in proper state
2533 * DFX_K_HW_TIMEOUT - DMA command timed out
2534 *
2535 * Assumptions:
2536 * Command request buffer has already been filled with desired DMA command.
2537 *
2538 * Side Effects:
2539 * None
2540 */
2541
2542static int dfx_hw_dma_cmd_req(DFX_board_t *bp)
2543 {
2544 int status; /* adapter status */
2545 int timeout_cnt; /* used in for loops */
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002546
Linus Torvalds1da177e2005-04-16 15:20:36 -07002547 /* Make sure the adapter is in a state that we can issue the DMA command in */
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002548
Linus Torvalds1da177e2005-04-16 15:20:36 -07002549 status = dfx_hw_adap_state_rd(bp);
2550 if ((status == PI_STATE_K_RESET) ||
2551 (status == PI_STATE_K_HALTED) ||
2552 (status == PI_STATE_K_DMA_UNAVAIL) ||
2553 (status == PI_STATE_K_UPGRADE))
Eric Dumazet807540b2010-09-23 05:40:09 +00002554 return DFX_K_OUTSTATE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002555
2556 /* Put response buffer on the command response queue */
2557
2558 bp->descr_block_virt->cmd_rsp[bp->cmd_rsp_reg.index.prod].long_0 = (u32) (PI_RCV_DESCR_M_SOP |
2559 ((PI_CMD_RSP_K_SIZE_MAX / PI_ALIGN_K_CMD_RSP_BUFF) << PI_RCV_DESCR_V_SEG_LEN));
2560 bp->descr_block_virt->cmd_rsp[bp->cmd_rsp_reg.index.prod].long_1 = bp->cmd_rsp_phys;
2561
2562 /* Bump (and wrap) the producer index and write out to register */
2563
2564 bp->cmd_rsp_reg.index.prod += 1;
2565 bp->cmd_rsp_reg.index.prod &= PI_CMD_RSP_K_NUM_ENTRIES-1;
2566 dfx_port_write_long(bp, PI_PDQ_K_REG_CMD_RSP_PROD, bp->cmd_rsp_reg.lword);
2567
2568 /* Put request buffer on the command request queue */
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002569
Linus Torvalds1da177e2005-04-16 15:20:36 -07002570 bp->descr_block_virt->cmd_req[bp->cmd_req_reg.index.prod].long_0 = (u32) (PI_XMT_DESCR_M_SOP |
2571 PI_XMT_DESCR_M_EOP | (PI_CMD_REQ_K_SIZE_MAX << PI_XMT_DESCR_V_SEG_LEN));
2572 bp->descr_block_virt->cmd_req[bp->cmd_req_reg.index.prod].long_1 = bp->cmd_req_phys;
2573
2574 /* Bump (and wrap) the producer index and write out to register */
2575
2576 bp->cmd_req_reg.index.prod += 1;
2577 bp->cmd_req_reg.index.prod &= PI_CMD_REQ_K_NUM_ENTRIES-1;
2578 dfx_port_write_long(bp, PI_PDQ_K_REG_CMD_REQ_PROD, bp->cmd_req_reg.lword);
2579
2580 /*
2581 * Here we wait for the command request consumer index to be equal
2582 * to the producer, indicating that the adapter has DMAed the request.
2583 */
2584
2585 for (timeout_cnt = 20000; timeout_cnt > 0; timeout_cnt--)
2586 {
2587 if (bp->cmd_req_reg.index.prod == (u8)(bp->cons_block_virt->cmd_req))
2588 break;
2589 udelay(100); /* wait for 100 microseconds */
2590 }
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002591 if (timeout_cnt == 0)
Eric Dumazet807540b2010-09-23 05:40:09 +00002592 return DFX_K_HW_TIMEOUT;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002593
2594 /* Bump (and wrap) the completion index and write out to register */
2595
2596 bp->cmd_req_reg.index.comp += 1;
2597 bp->cmd_req_reg.index.comp &= PI_CMD_REQ_K_NUM_ENTRIES-1;
2598 dfx_port_write_long(bp, PI_PDQ_K_REG_CMD_REQ_PROD, bp->cmd_req_reg.lword);
2599
2600 /*
2601 * Here we wait for the command response consumer index to be equal
2602 * to the producer, indicating that the adapter has DMAed the response.
2603 */
2604
2605 for (timeout_cnt = 20000; timeout_cnt > 0; timeout_cnt--)
2606 {
2607 if (bp->cmd_rsp_reg.index.prod == (u8)(bp->cons_block_virt->cmd_rsp))
2608 break;
2609 udelay(100); /* wait for 100 microseconds */
2610 }
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002611 if (timeout_cnt == 0)
Eric Dumazet807540b2010-09-23 05:40:09 +00002612 return DFX_K_HW_TIMEOUT;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002613
2614 /* Bump (and wrap) the completion index and write out to register */
2615
2616 bp->cmd_rsp_reg.index.comp += 1;
2617 bp->cmd_rsp_reg.index.comp &= PI_CMD_RSP_K_NUM_ENTRIES-1;
2618 dfx_port_write_long(bp, PI_PDQ_K_REG_CMD_RSP_PROD, bp->cmd_rsp_reg.lword);
Eric Dumazet807540b2010-09-23 05:40:09 +00002619 return DFX_K_SUCCESS;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002620 }
2621
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002622
Linus Torvalds1da177e2005-04-16 15:20:36 -07002623/*
2624 * ========================
2625 * = dfx_hw_port_ctrl_req =
2626 * ========================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002627 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002628 * Overview:
2629 * Sends PDQ port control command to adapter firmware
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002630 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002631 * Returns:
2632 * Host data register value in host_data if ptr is not NULL
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002633 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002634 * Arguments:
2635 * bp - pointer to board information
2636 * command - port control command
2637 * data_a - port data A register value
2638 * data_b - port data B register value
2639 * host_data - ptr to host data register value
2640 *
2641 * Functional Description:
2642 * Send generic port control command to adapter by writing
2643 * to various PDQ port registers, then polling for completion.
2644 *
2645 * Return Codes:
2646 * DFX_K_SUCCESS - port control command succeeded
2647 * DFX_K_HW_TIMEOUT - port control command timed out
2648 *
2649 * Assumptions:
2650 * None
2651 *
2652 * Side Effects:
2653 * None
2654 */
2655
2656static int dfx_hw_port_ctrl_req(
2657 DFX_board_t *bp,
2658 PI_UINT32 command,
2659 PI_UINT32 data_a,
2660 PI_UINT32 data_b,
2661 PI_UINT32 *host_data
2662 )
2663
2664 {
2665 PI_UINT32 port_cmd; /* Port Control command register value */
2666 int timeout_cnt; /* used in for loops */
2667
2668 /* Set Command Error bit in command longword */
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002669
Linus Torvalds1da177e2005-04-16 15:20:36 -07002670 port_cmd = (PI_UINT32) (command | PI_PCTRL_M_CMD_ERROR);
2671
2672 /* Issue port command to the adapter */
2673
2674 dfx_port_write_long(bp, PI_PDQ_K_REG_PORT_DATA_A, data_a);
2675 dfx_port_write_long(bp, PI_PDQ_K_REG_PORT_DATA_B, data_b);
2676 dfx_port_write_long(bp, PI_PDQ_K_REG_PORT_CTRL, port_cmd);
2677
2678 /* Now wait for command to complete */
2679
2680 if (command == PI_PCTRL_M_BLAST_FLASH)
2681 timeout_cnt = 600000; /* set command timeout count to 60 seconds */
2682 else
2683 timeout_cnt = 20000; /* set command timeout count to 2 seconds */
2684
2685 for (; timeout_cnt > 0; timeout_cnt--)
2686 {
2687 dfx_port_read_long(bp, PI_PDQ_K_REG_PORT_CTRL, &port_cmd);
2688 if (!(port_cmd & PI_PCTRL_M_CMD_ERROR))
2689 break;
2690 udelay(100); /* wait for 100 microseconds */
2691 }
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002692 if (timeout_cnt == 0)
Eric Dumazet807540b2010-09-23 05:40:09 +00002693 return DFX_K_HW_TIMEOUT;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002694
2695 /*
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002696 * If the address of host_data is non-zero, assume caller has supplied a
2697 * non NULL pointer, and return the contents of the HOST_DATA register in
Linus Torvalds1da177e2005-04-16 15:20:36 -07002698 * it.
2699 */
2700
2701 if (host_data != NULL)
2702 dfx_port_read_long(bp, PI_PDQ_K_REG_HOST_DATA, host_data);
Eric Dumazet807540b2010-09-23 05:40:09 +00002703 return DFX_K_SUCCESS;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002704 }
2705
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002706
Linus Torvalds1da177e2005-04-16 15:20:36 -07002707/*
2708 * =====================
2709 * = dfx_hw_adap_reset =
2710 * =====================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002711 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002712 * Overview:
2713 * Resets adapter
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002714 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002715 * Returns:
2716 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002717 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002718 * Arguments:
2719 * bp - pointer to board information
2720 * type - type of reset to perform
2721 *
2722 * Functional Description:
2723 * Issue soft reset to adapter by writing to PDQ Port Reset
2724 * register. Use incoming reset type to tell adapter what
2725 * kind of reset operation to perform.
2726 *
2727 * Return Codes:
2728 * None
2729 *
2730 * Assumptions:
2731 * This routine merely issues a soft reset to the adapter.
2732 * It is expected that after this routine returns, the caller
2733 * will appropriately poll the Port Status register for the
2734 * adapter to enter the proper state.
2735 *
2736 * Side Effects:
2737 * Internal adapter registers are cleared.
2738 */
2739
2740static void dfx_hw_adap_reset(
2741 DFX_board_t *bp,
2742 PI_UINT32 type
2743 )
2744
2745 {
2746 /* Set Reset type and assert reset */
2747
2748 dfx_port_write_long(bp, PI_PDQ_K_REG_PORT_DATA_A, type); /* tell adapter type of reset */
2749 dfx_port_write_long(bp, PI_PDQ_K_REG_PORT_RESET, PI_RESET_M_ASSERT_RESET);
2750
2751 /* Wait for at least 1 Microsecond according to the spec. We wait 20 just to be safe */
2752
2753 udelay(20);
2754
2755 /* Deassert reset */
2756
2757 dfx_port_write_long(bp, PI_PDQ_K_REG_PORT_RESET, 0);
2758 }
2759
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002760
Linus Torvalds1da177e2005-04-16 15:20:36 -07002761/*
2762 * ========================
2763 * = dfx_hw_adap_state_rd =
2764 * ========================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002765 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002766 * Overview:
2767 * Returns current adapter state
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002768 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002769 * Returns:
2770 * Adapter state per PDQ Port Specification
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002771 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002772 * Arguments:
2773 * bp - pointer to board information
2774 *
2775 * Functional Description:
2776 * Reads PDQ Port Status register and returns adapter state.
2777 *
2778 * Return Codes:
2779 * None
2780 *
2781 * Assumptions:
2782 * None
2783 *
2784 * Side Effects:
2785 * None
2786 */
2787
2788static int dfx_hw_adap_state_rd(DFX_board_t *bp)
2789 {
2790 PI_UINT32 port_status; /* Port Status register value */
2791
2792 dfx_port_read_long(bp, PI_PDQ_K_REG_PORT_STATUS, &port_status);
Eric Dumazet807540b2010-09-23 05:40:09 +00002793 return (port_status & PI_PSTATUS_M_STATE) >> PI_PSTATUS_V_STATE;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002794 }
2795
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002796
Linus Torvalds1da177e2005-04-16 15:20:36 -07002797/*
2798 * =====================
2799 * = dfx_hw_dma_uninit =
2800 * =====================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002801 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002802 * Overview:
2803 * Brings adapter to DMA_UNAVAILABLE state
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002804 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002805 * Returns:
2806 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002807 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002808 * Arguments:
2809 * bp - pointer to board information
2810 * type - type of reset to perform
2811 *
2812 * Functional Description:
2813 * Bring adapter to DMA_UNAVAILABLE state by performing the following:
2814 * 1. Set reset type bit in Port Data A Register then reset adapter.
2815 * 2. Check that adapter is in DMA_UNAVAILABLE state.
2816 *
2817 * Return Codes:
2818 * DFX_K_SUCCESS - adapter is in DMA_UNAVAILABLE state
2819 * DFX_K_HW_TIMEOUT - adapter did not reset properly
2820 *
2821 * Assumptions:
2822 * None
2823 *
2824 * Side Effects:
2825 * Internal adapter registers are cleared.
2826 */
2827
2828static int dfx_hw_dma_uninit(DFX_board_t *bp, PI_UINT32 type)
2829 {
2830 int timeout_cnt; /* used in for loops */
2831
2832 /* Set reset type bit and reset adapter */
2833
2834 dfx_hw_adap_reset(bp, type);
2835
2836 /* Now wait for adapter to enter DMA_UNAVAILABLE state */
2837
2838 for (timeout_cnt = 100000; timeout_cnt > 0; timeout_cnt--)
2839 {
2840 if (dfx_hw_adap_state_rd(bp) == PI_STATE_K_DMA_UNAVAIL)
2841 break;
2842 udelay(100); /* wait for 100 microseconds */
2843 }
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002844 if (timeout_cnt == 0)
Eric Dumazet807540b2010-09-23 05:40:09 +00002845 return DFX_K_HW_TIMEOUT;
2846 return DFX_K_SUCCESS;
Linus Torvalds1da177e2005-04-16 15:20:36 -07002847 }
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002848
Linus Torvalds1da177e2005-04-16 15:20:36 -07002849/*
2850 * Align an sk_buff to a boundary power of 2
2851 *
2852 */
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002853
Linus Torvalds1da177e2005-04-16 15:20:36 -07002854static void my_skb_align(struct sk_buff *skb, int n)
2855{
2856 unsigned long x = (unsigned long)skb->data;
2857 unsigned long v;
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002858
Linus Torvalds1da177e2005-04-16 15:20:36 -07002859 v = ALIGN(x, n); /* Where we want to be */
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002860
Linus Torvalds1da177e2005-04-16 15:20:36 -07002861 skb_reserve(skb, v - x);
2862}
2863
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002864
Linus Torvalds1da177e2005-04-16 15:20:36 -07002865/*
2866 * ================
2867 * = dfx_rcv_init =
2868 * ================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002869 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002870 * Overview:
2871 * Produces buffers to adapter LLC Host receive descriptor block
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002872 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002873 * Returns:
2874 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002875 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002876 * Arguments:
2877 * bp - pointer to board information
2878 * get_buffers - non-zero if buffers to be allocated
2879 *
2880 * Functional Description:
2881 * This routine can be called during dfx_adap_init() or during an adapter
2882 * reset. It initializes the descriptor block and produces all allocated
2883 * LLC Host queue receive buffers.
2884 *
2885 * Return Codes:
2886 * Return 0 on success or -ENOMEM if buffer allocation failed (when using
2887 * dynamic buffer allocation). If the buffer allocation failed, the
2888 * already allocated buffers will not be released and the caller should do
2889 * this.
2890 *
2891 * Assumptions:
2892 * The PDQ has been reset and the adapter and driver maintained Type 2
2893 * register indices are cleared.
2894 *
2895 * Side Effects:
2896 * Receive buffers are posted to the adapter LLC queue and the adapter
2897 * is notified.
2898 */
2899
2900static int dfx_rcv_init(DFX_board_t *bp, int get_buffers)
2901 {
2902 int i, j; /* used in for loop */
2903
2904 /*
2905 * Since each receive buffer is a single fragment of same length, initialize
2906 * first longword in each receive descriptor for entire LLC Host descriptor
2907 * block. Also initialize second longword in each receive descriptor with
2908 * physical address of receive buffer. We'll always allocate receive
2909 * buffers in powers of 2 so that we can easily fill the 256 entry descriptor
2910 * block and produce new receive buffers by simply updating the receive
2911 * producer index.
2912 *
2913 * Assumptions:
2914 * To support all shipping versions of PDQ, the receive buffer size
2915 * must be mod 128 in length and the physical address must be 128 byte
2916 * aligned. In other words, bits 0-6 of the length and address must
2917 * be zero for the following descriptor field entries to be correct on
2918 * all PDQ-based boards. We guaranteed both requirements during
2919 * driver initialization when we allocated memory for the receive buffers.
2920 */
2921
2922 if (get_buffers) {
2923#ifdef DYNAMIC_BUFFERS
2924 for (i = 0; i < (int)(bp->rcv_bufs_to_post); i++)
2925 for (j = 0; (i + j) < (int)PI_RCV_DATA_K_NUM_ENTRIES; j += bp->rcv_bufs_to_post)
2926 {
David S. Miller9034f772009-02-10 01:56:45 -08002927 struct sk_buff *newskb = __netdev_alloc_skb(bp->dev, NEW_SKB_SIZE, GFP_NOIO);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002928 if (!newskb)
2929 return -ENOMEM;
2930 bp->descr_block_virt->rcv_data[i+j].long_0 = (u32) (PI_RCV_DESCR_M_SOP |
2931 ((PI_RCV_DATA_K_SIZE_MAX / PI_ALIGN_K_RCV_DATA_BUFF) << PI_RCV_DESCR_V_SEG_LEN));
2932 /*
2933 * align to 128 bytes for compatibility with
2934 * the old EISA boards.
2935 */
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002936
Linus Torvalds1da177e2005-04-16 15:20:36 -07002937 my_skb_align(newskb, 128);
2938 bp->descr_block_virt->rcv_data[i + j].long_1 =
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08002939 (u32)dma_map_single(bp->bus_dev, newskb->data,
Linus Torvalds1da177e2005-04-16 15:20:36 -07002940 NEW_SKB_SIZE,
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08002941 DMA_FROM_DEVICE);
Linus Torvalds1da177e2005-04-16 15:20:36 -07002942 /*
2943 * p_rcv_buff_va is only used inside the
2944 * kernel so we put the skb pointer here.
2945 */
2946 bp->p_rcv_buff_va[i+j] = (char *) newskb;
2947 }
2948#else
2949 for (i=0; i < (int)(bp->rcv_bufs_to_post); i++)
2950 for (j=0; (i + j) < (int)PI_RCV_DATA_K_NUM_ENTRIES; j += bp->rcv_bufs_to_post)
2951 {
2952 bp->descr_block_virt->rcv_data[i+j].long_0 = (u32) (PI_RCV_DESCR_M_SOP |
2953 ((PI_RCV_DATA_K_SIZE_MAX / PI_ALIGN_K_RCV_DATA_BUFF) << PI_RCV_DESCR_V_SEG_LEN));
2954 bp->descr_block_virt->rcv_data[i+j].long_1 = (u32) (bp->rcv_block_phys + (i * PI_RCV_DATA_K_SIZE_MAX));
Joe Perchesc2fd03a2012-06-04 12:44:18 +00002955 bp->p_rcv_buff_va[i+j] = (bp->rcv_block_virt + (i * PI_RCV_DATA_K_SIZE_MAX));
Linus Torvalds1da177e2005-04-16 15:20:36 -07002956 }
2957#endif
2958 }
2959
2960 /* Update receive producer and Type 2 register */
2961
2962 bp->rcv_xmt_reg.index.rcv_prod = bp->rcv_bufs_to_post;
2963 dfx_port_write_long(bp, PI_PDQ_K_REG_TYPE_2_PROD, bp->rcv_xmt_reg.lword);
2964 return 0;
2965 }
2966
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002967
Linus Torvalds1da177e2005-04-16 15:20:36 -07002968/*
2969 * =========================
2970 * = dfx_rcv_queue_process =
2971 * =========================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002972 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002973 * Overview:
2974 * Process received LLC frames.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002975 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002976 * Returns:
2977 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04002978 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07002979 * Arguments:
2980 * bp - pointer to board information
2981 *
2982 * Functional Description:
2983 * Received LLC frames are processed until there are no more consumed frames.
2984 * Once all frames are processed, the receive buffers are returned to the
2985 * adapter. Note that this algorithm fixes the length of time that can be spent
2986 * in this routine, because there are a fixed number of receive buffers to
2987 * process and buffers are not produced until this routine exits and returns
2988 * to the ISR.
2989 *
2990 * Return Codes:
2991 * None
2992 *
2993 * Assumptions:
2994 * None
2995 *
2996 * Side Effects:
2997 * None
2998 */
2999
3000static void dfx_rcv_queue_process(
3001 DFX_board_t *bp
3002 )
3003
3004 {
3005 PI_TYPE_2_CONSUMER *p_type_2_cons; /* ptr to rcv/xmt consumer block register */
3006 char *p_buff; /* ptr to start of packet receive buffer (FMC descriptor) */
3007 u32 descr, pkt_len; /* FMC descriptor field and packet length */
3008 struct sk_buff *skb; /* pointer to a sk_buff to hold incoming packet data */
3009
3010 /* Service all consumed LLC receive frames */
3011
3012 p_type_2_cons = (PI_TYPE_2_CONSUMER *)(&bp->cons_block_virt->xmt_rcv_data);
3013 while (bp->rcv_xmt_reg.index.rcv_comp != p_type_2_cons->index.rcv_cons)
3014 {
3015 /* Process any errors */
3016
3017 int entry;
3018
3019 entry = bp->rcv_xmt_reg.index.rcv_comp;
3020#ifdef DYNAMIC_BUFFERS
3021 p_buff = (char *) (((struct sk_buff *)bp->p_rcv_buff_va[entry])->data);
3022#else
Joe Perchesc2fd03a2012-06-04 12:44:18 +00003023 p_buff = bp->p_rcv_buff_va[entry];
Linus Torvalds1da177e2005-04-16 15:20:36 -07003024#endif
3025 memcpy(&descr, p_buff + RCV_BUFF_K_DESCR, sizeof(u32));
3026
3027 if (descr & PI_FMC_DESCR_M_RCC_FLUSH)
3028 {
3029 if (descr & PI_FMC_DESCR_M_RCC_CRC)
3030 bp->rcv_crc_errors++;
3031 else
3032 bp->rcv_frame_status_errors++;
3033 }
3034 else
3035 {
3036 int rx_in_place = 0;
3037
3038 /* The frame was received without errors - verify packet length */
3039
3040 pkt_len = (u32)((descr & PI_FMC_DESCR_M_LEN) >> PI_FMC_DESCR_V_LEN);
3041 pkt_len -= 4; /* subtract 4 byte CRC */
3042 if (!IN_RANGE(pkt_len, FDDI_K_LLC_ZLEN, FDDI_K_LLC_LEN))
3043 bp->rcv_length_errors++;
3044 else{
3045#ifdef DYNAMIC_BUFFERS
3046 if (pkt_len > SKBUFF_RX_COPYBREAK) {
3047 struct sk_buff *newskb;
3048
3049 newskb = dev_alloc_skb(NEW_SKB_SIZE);
3050 if (newskb){
3051 rx_in_place = 1;
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003052
Linus Torvalds1da177e2005-04-16 15:20:36 -07003053 my_skb_align(newskb, 128);
3054 skb = (struct sk_buff *)bp->p_rcv_buff_va[entry];
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003055 dma_unmap_single(bp->bus_dev,
Linus Torvalds1da177e2005-04-16 15:20:36 -07003056 bp->descr_block_virt->rcv_data[entry].long_1,
3057 NEW_SKB_SIZE,
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003058 DMA_FROM_DEVICE);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003059 skb_reserve(skb, RCV_BUFF_K_PADDING);
3060 bp->p_rcv_buff_va[entry] = (char *)newskb;
3061 bp->descr_block_virt->rcv_data[entry].long_1 =
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003062 (u32)dma_map_single(bp->bus_dev,
Linus Torvalds1da177e2005-04-16 15:20:36 -07003063 newskb->data,
3064 NEW_SKB_SIZE,
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003065 DMA_FROM_DEVICE);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003066 } else
3067 skb = NULL;
3068 } else
3069#endif
3070 skb = dev_alloc_skb(pkt_len+3); /* alloc new buffer to pass up, add room for PRH */
3071 if (skb == NULL)
3072 {
3073 printk("%s: Could not allocate receive buffer. Dropping packet.\n", bp->dev->name);
3074 bp->rcv_discards++;
3075 break;
3076 }
3077 else {
3078#ifndef DYNAMIC_BUFFERS
3079 if (! rx_in_place)
3080#endif
3081 {
3082 /* Receive buffer allocated, pass receive packet up */
3083
Arnaldo Carvalho de Melo27d7ff42007-03-31 11:55:19 -03003084 skb_copy_to_linear_data(skb,
3085 p_buff + RCV_BUFF_K_PADDING,
3086 pkt_len + 3);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003087 }
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003088
Linus Torvalds1da177e2005-04-16 15:20:36 -07003089 skb_reserve(skb,3); /* adjust data field so that it points to FC byte */
3090 skb_put(skb, pkt_len); /* pass up packet length, NOT including CRC */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003091 skb->protocol = fddi_type_trans(skb, bp->dev);
3092 bp->rcv_total_bytes += skb->len;
3093 netif_rx(skb);
3094
3095 /* Update the rcv counters */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003096 bp->rcv_total_frames++;
3097 if (*(p_buff + RCV_BUFF_K_DA) & 0x01)
3098 bp->rcv_multicast_frames++;
3099 }
3100 }
3101 }
3102
3103 /*
3104 * Advance the producer (for recycling) and advance the completion
3105 * (for servicing received frames). Note that it is okay to
3106 * advance the producer without checking that it passes the
3107 * completion index because they are both advanced at the same
3108 * rate.
3109 */
3110
3111 bp->rcv_xmt_reg.index.rcv_prod += 1;
3112 bp->rcv_xmt_reg.index.rcv_comp += 1;
3113 }
3114 }
3115
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003116
Linus Torvalds1da177e2005-04-16 15:20:36 -07003117/*
3118 * =====================
3119 * = dfx_xmt_queue_pkt =
3120 * =====================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003121 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003122 * Overview:
3123 * Queues packets for transmission
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003124 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003125 * Returns:
3126 * Condition code
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003127 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003128 * Arguments:
3129 * skb - pointer to sk_buff to queue for transmission
3130 * dev - pointer to device information
3131 *
3132 * Functional Description:
3133 * Here we assume that an incoming skb transmit request
3134 * is contained in a single physically contiguous buffer
3135 * in which the virtual address of the start of packet
3136 * (skb->data) can be converted to a physical address
3137 * by using pci_map_single().
3138 *
3139 * Since the adapter architecture requires a three byte
3140 * packet request header to prepend the start of packet,
3141 * we'll write the three byte field immediately prior to
3142 * the FC byte. This assumption is valid because we've
3143 * ensured that dev->hard_header_len includes three pad
3144 * bytes. By posting a single fragment to the adapter,
3145 * we'll reduce the number of descriptor fetches and
3146 * bus traffic needed to send the request.
3147 *
3148 * Also, we can't free the skb until after it's been DMA'd
3149 * out by the adapter, so we'll queue it in the driver and
3150 * return it in dfx_xmt_done.
3151 *
3152 * Return Codes:
3153 * 0 - driver queued packet, link is unavailable, or skbuff was bad
3154 * 1 - caller should requeue the sk_buff for later transmission
3155 *
3156 * Assumptions:
3157 * First and foremost, we assume the incoming skb pointer
3158 * is NOT NULL and is pointing to a valid sk_buff structure.
3159 *
3160 * The outgoing packet is complete, starting with the
3161 * frame control byte including the last byte of data,
3162 * but NOT including the 4 byte CRC. We'll let the
3163 * adapter hardware generate and append the CRC.
3164 *
3165 * The entire packet is stored in one physically
3166 * contiguous buffer which is not cached and whose
3167 * 32-bit physical address can be determined.
3168 *
3169 * It's vital that this routine is NOT reentered for the
3170 * same board and that the OS is not in another section of
3171 * code (eg. dfx_int_common) for the same board on a
3172 * different thread.
3173 *
3174 * Side Effects:
3175 * None
3176 */
3177
Stephen Hemminger613573252009-08-31 19:50:58 +00003178static netdev_tx_t dfx_xmt_queue_pkt(struct sk_buff *skb,
3179 struct net_device *dev)
Linus Torvalds1da177e2005-04-16 15:20:36 -07003180 {
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003181 DFX_board_t *bp = netdev_priv(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003182 u8 prod; /* local transmit producer index */
3183 PI_XMT_DESCR *p_xmt_descr; /* ptr to transmit descriptor block entry */
3184 XMT_DRIVER_DESCR *p_xmt_drv_descr; /* ptr to transmit driver descriptor */
3185 unsigned long flags;
3186
3187 netif_stop_queue(dev);
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003188
Linus Torvalds1da177e2005-04-16 15:20:36 -07003189 /*
3190 * Verify that incoming transmit request is OK
3191 *
3192 * Note: The packet size check is consistent with other
3193 * Linux device drivers, although the correct packet
3194 * size should be verified before calling the
3195 * transmit routine.
3196 */
3197
3198 if (!IN_RANGE(skb->len, FDDI_K_LLC_ZLEN, FDDI_K_LLC_LEN))
3199 {
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003200 printk("%s: Invalid packet length - %u bytes\n",
Linus Torvalds1da177e2005-04-16 15:20:36 -07003201 dev->name, skb->len);
3202 bp->xmt_length_errors++; /* bump error counter */
3203 netif_wake_queue(dev);
3204 dev_kfree_skb(skb);
Patrick McHardyec634fe2009-07-05 19:23:38 -07003205 return NETDEV_TX_OK; /* return "success" */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003206 }
3207 /*
3208 * See if adapter link is available, if not, free buffer
3209 *
3210 * Note: If the link isn't available, free buffer and return 0
3211 * rather than tell the upper layer to requeue the packet.
3212 * The methodology here is that by the time the link
3213 * becomes available, the packet to be sent will be
3214 * fairly stale. By simply dropping the packet, the
3215 * higher layer protocols will eventually time out
3216 * waiting for response packets which it won't receive.
3217 */
3218
3219 if (bp->link_available == PI_K_FALSE)
3220 {
3221 if (dfx_hw_adap_state_rd(bp) == PI_STATE_K_LINK_AVAIL) /* is link really available? */
3222 bp->link_available = PI_K_TRUE; /* if so, set flag and continue */
3223 else
3224 {
3225 bp->xmt_discards++; /* bump error counter */
3226 dev_kfree_skb(skb); /* free sk_buff now */
3227 netif_wake_queue(dev);
Patrick McHardyec634fe2009-07-05 19:23:38 -07003228 return NETDEV_TX_OK; /* return "success" */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003229 }
3230 }
3231
3232 spin_lock_irqsave(&bp->lock, flags);
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003233
Linus Torvalds1da177e2005-04-16 15:20:36 -07003234 /* Get the current producer and the next free xmt data descriptor */
3235
3236 prod = bp->rcv_xmt_reg.index.xmt_prod;
3237 p_xmt_descr = &(bp->descr_block_virt->xmt_data[prod]);
3238
3239 /*
3240 * Get pointer to auxiliary queue entry to contain information
3241 * for this packet.
3242 *
3243 * Note: The current xmt producer index will become the
3244 * current xmt completion index when we complete this
3245 * packet later on. So, we'll get the pointer to the
3246 * next auxiliary queue entry now before we bump the
3247 * producer index.
3248 */
3249
3250 p_xmt_drv_descr = &(bp->xmt_drv_descr_blk[prod++]); /* also bump producer index */
3251
3252 /* Write the three PRH bytes immediately before the FC byte */
3253
3254 skb_push(skb,3);
3255 skb->data[0] = DFX_PRH0_BYTE; /* these byte values are defined */
3256 skb->data[1] = DFX_PRH1_BYTE; /* in the Motorola FDDI MAC chip */
3257 skb->data[2] = DFX_PRH2_BYTE; /* specification */
3258
3259 /*
3260 * Write the descriptor with buffer info and bump producer
3261 *
3262 * Note: Since we need to start DMA from the packet request
3263 * header, we'll add 3 bytes to the DMA buffer length,
3264 * and we'll determine the physical address of the
3265 * buffer from the PRH, not skb->data.
3266 *
3267 * Assumptions:
3268 * 1. Packet starts with the frame control (FC) byte
3269 * at skb->data.
3270 * 2. The 4-byte CRC is not appended to the buffer or
3271 * included in the length.
3272 * 3. Packet length (skb->len) is from FC to end of
3273 * data, inclusive.
3274 * 4. The packet length does not exceed the maximum
3275 * FDDI LLC frame length of 4491 bytes.
3276 * 5. The entire packet is contained in a physically
3277 * contiguous, non-cached, locked memory space
3278 * comprised of a single buffer pointed to by
3279 * skb->data.
3280 * 6. The physical address of the start of packet
3281 * can be determined from the virtual address
3282 * by using pci_map_single() and is only 32-bits
3283 * wide.
3284 */
3285
3286 p_xmt_descr->long_0 = (u32) (PI_XMT_DESCR_M_SOP | PI_XMT_DESCR_M_EOP | ((skb->len) << PI_XMT_DESCR_V_SEG_LEN));
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003287 p_xmt_descr->long_1 = (u32)dma_map_single(bp->bus_dev, skb->data,
3288 skb->len, DMA_TO_DEVICE);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003289
3290 /*
3291 * Verify that descriptor is actually available
3292 *
3293 * Note: If descriptor isn't available, return 1 which tells
3294 * the upper layer to requeue the packet for later
3295 * transmission.
3296 *
3297 * We need to ensure that the producer never reaches the
3298 * completion, except to indicate that the queue is empty.
3299 */
3300
3301 if (prod == bp->rcv_xmt_reg.index.xmt_comp)
3302 {
3303 skb_pull(skb,3);
3304 spin_unlock_irqrestore(&bp->lock, flags);
Patrick McHardy5b548142009-06-12 06:22:29 +00003305 return NETDEV_TX_BUSY; /* requeue packet for later */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003306 }
3307
3308 /*
3309 * Save info for this packet for xmt done indication routine
3310 *
3311 * Normally, we'd save the producer index in the p_xmt_drv_descr
3312 * structure so that we'd have it handy when we complete this
3313 * packet later (in dfx_xmt_done). However, since the current
3314 * transmit architecture guarantees a single fragment for the
3315 * entire packet, we can simply bump the completion index by
3316 * one (1) for each completed packet.
3317 *
3318 * Note: If this assumption changes and we're presented with
3319 * an inconsistent number of transmit fragments for packet
3320 * data, we'll need to modify this code to save the current
3321 * transmit producer index.
3322 */
3323
3324 p_xmt_drv_descr->p_skb = skb;
3325
3326 /* Update Type 2 register */
3327
3328 bp->rcv_xmt_reg.index.xmt_prod = prod;
3329 dfx_port_write_long(bp, PI_PDQ_K_REG_TYPE_2_PROD, bp->rcv_xmt_reg.lword);
3330 spin_unlock_irqrestore(&bp->lock, flags);
3331 netif_wake_queue(dev);
Patrick McHardyec634fe2009-07-05 19:23:38 -07003332 return NETDEV_TX_OK; /* packet queued to adapter */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003333 }
3334
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003335
Linus Torvalds1da177e2005-04-16 15:20:36 -07003336/*
3337 * ================
3338 * = dfx_xmt_done =
3339 * ================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003340 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003341 * Overview:
3342 * Processes all frames that have been transmitted.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003343 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003344 * Returns:
3345 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003346 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003347 * Arguments:
3348 * bp - pointer to board information
3349 *
3350 * Functional Description:
3351 * For all consumed transmit descriptors that have not
3352 * yet been completed, we'll free the skb we were holding
3353 * onto using dev_kfree_skb and bump the appropriate
3354 * counters.
3355 *
3356 * Return Codes:
3357 * None
3358 *
3359 * Assumptions:
3360 * The Type 2 register is not updated in this routine. It is
3361 * assumed that it will be updated in the ISR when dfx_xmt_done
3362 * returns.
3363 *
3364 * Side Effects:
3365 * None
3366 */
3367
3368static int dfx_xmt_done(DFX_board_t *bp)
3369 {
3370 XMT_DRIVER_DESCR *p_xmt_drv_descr; /* ptr to transmit driver descriptor */
3371 PI_TYPE_2_CONSUMER *p_type_2_cons; /* ptr to rcv/xmt consumer block register */
3372 u8 comp; /* local transmit completion index */
3373 int freed = 0; /* buffers freed */
3374
3375 /* Service all consumed transmit frames */
3376
3377 p_type_2_cons = (PI_TYPE_2_CONSUMER *)(&bp->cons_block_virt->xmt_rcv_data);
3378 while (bp->rcv_xmt_reg.index.xmt_comp != p_type_2_cons->index.xmt_cons)
3379 {
3380 /* Get pointer to the transmit driver descriptor block information */
3381
3382 p_xmt_drv_descr = &(bp->xmt_drv_descr_blk[bp->rcv_xmt_reg.index.xmt_comp]);
3383
3384 /* Increment transmit counters */
3385
3386 bp->xmt_total_frames++;
3387 bp->xmt_total_bytes += p_xmt_drv_descr->p_skb->len;
3388
3389 /* Return skb to operating system */
3390 comp = bp->rcv_xmt_reg.index.xmt_comp;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003391 dma_unmap_single(bp->bus_dev,
Linus Torvalds1da177e2005-04-16 15:20:36 -07003392 bp->descr_block_virt->xmt_data[comp].long_1,
3393 p_xmt_drv_descr->p_skb->len,
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003394 DMA_TO_DEVICE);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003395 dev_kfree_skb_irq(p_xmt_drv_descr->p_skb);
3396
3397 /*
3398 * Move to start of next packet by updating completion index
3399 *
3400 * Here we assume that a transmit packet request is always
3401 * serviced by posting one fragment. We can therefore
3402 * simplify the completion code by incrementing the
3403 * completion index by one. This code will need to be
3404 * modified if this assumption changes. See comments
3405 * in dfx_xmt_queue_pkt for more details.
3406 */
3407
3408 bp->rcv_xmt_reg.index.xmt_comp += 1;
3409 freed++;
3410 }
3411 return freed;
3412 }
3413
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003414
Linus Torvalds1da177e2005-04-16 15:20:36 -07003415/*
3416 * =================
3417 * = dfx_rcv_flush =
3418 * =================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003419 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003420 * Overview:
3421 * Remove all skb's in the receive ring.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003422 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003423 * Returns:
3424 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003425 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003426 * Arguments:
3427 * bp - pointer to board information
3428 *
3429 * Functional Description:
3430 * Free's all the dynamically allocated skb's that are
3431 * currently attached to the device receive ring. This
3432 * function is typically only used when the device is
3433 * initialized or reinitialized.
3434 *
3435 * Return Codes:
3436 * None
3437 *
3438 * Side Effects:
3439 * None
3440 */
3441#ifdef DYNAMIC_BUFFERS
3442static void dfx_rcv_flush( DFX_board_t *bp )
3443 {
3444 int i, j;
3445
3446 for (i = 0; i < (int)(bp->rcv_bufs_to_post); i++)
3447 for (j = 0; (i + j) < (int)PI_RCV_DATA_K_NUM_ENTRIES; j += bp->rcv_bufs_to_post)
3448 {
3449 struct sk_buff *skb;
3450 skb = (struct sk_buff *)bp->p_rcv_buff_va[i+j];
3451 if (skb)
3452 dev_kfree_skb(skb);
3453 bp->p_rcv_buff_va[i+j] = NULL;
3454 }
3455
3456 }
3457#else
3458static inline void dfx_rcv_flush( DFX_board_t *bp )
3459{
3460}
3461#endif /* DYNAMIC_BUFFERS */
3462
3463/*
3464 * =================
3465 * = dfx_xmt_flush =
3466 * =================
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003467 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003468 * Overview:
3469 * Processes all frames whether they've been transmitted
3470 * or not.
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003471 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003472 * Returns:
3473 * None
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003474 *
Linus Torvalds1da177e2005-04-16 15:20:36 -07003475 * Arguments:
3476 * bp - pointer to board information
3477 *
3478 * Functional Description:
3479 * For all produced transmit descriptors that have not
3480 * yet been completed, we'll free the skb we were holding
3481 * onto using dev_kfree_skb and bump the appropriate
3482 * counters. Of course, it's possible that some of
3483 * these transmit requests actually did go out, but we
3484 * won't make that distinction here. Finally, we'll
3485 * update the consumer index to match the producer.
3486 *
3487 * Return Codes:
3488 * None
3489 *
3490 * Assumptions:
3491 * This routine does NOT update the Type 2 register. It
3492 * is assumed that this routine is being called during a
3493 * transmit flush interrupt, or a shutdown or close routine.
3494 *
3495 * Side Effects:
3496 * None
3497 */
3498
3499static void dfx_xmt_flush( DFX_board_t *bp )
3500 {
3501 u32 prod_cons; /* rcv/xmt consumer block longword */
3502 XMT_DRIVER_DESCR *p_xmt_drv_descr; /* ptr to transmit driver descriptor */
3503 u8 comp; /* local transmit completion index */
3504
3505 /* Flush all outstanding transmit frames */
3506
3507 while (bp->rcv_xmt_reg.index.xmt_comp != bp->rcv_xmt_reg.index.xmt_prod)
3508 {
3509 /* Get pointer to the transmit driver descriptor block information */
3510
3511 p_xmt_drv_descr = &(bp->xmt_drv_descr_blk[bp->rcv_xmt_reg.index.xmt_comp]);
3512
3513 /* Return skb to operating system */
3514 comp = bp->rcv_xmt_reg.index.xmt_comp;
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003515 dma_unmap_single(bp->bus_dev,
Linus Torvalds1da177e2005-04-16 15:20:36 -07003516 bp->descr_block_virt->xmt_data[comp].long_1,
3517 p_xmt_drv_descr->p_skb->len,
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003518 DMA_TO_DEVICE);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003519 dev_kfree_skb(p_xmt_drv_descr->p_skb);
3520
3521 /* Increment transmit error counter */
3522
3523 bp->xmt_discards++;
3524
3525 /*
3526 * Move to start of next packet by updating completion index
3527 *
3528 * Here we assume that a transmit packet request is always
3529 * serviced by posting one fragment. We can therefore
3530 * simplify the completion code by incrementing the
3531 * completion index by one. This code will need to be
3532 * modified if this assumption changes. See comments
3533 * in dfx_xmt_queue_pkt for more details.
3534 */
3535
3536 bp->rcv_xmt_reg.index.xmt_comp += 1;
3537 }
3538
3539 /* Update the transmit consumer index in the consumer block */
3540
3541 prod_cons = (u32)(bp->cons_block_virt->xmt_rcv_data & ~PI_CONS_M_XMT_INDEX);
3542 prod_cons |= (u32)(bp->rcv_xmt_reg.index.xmt_prod << PI_CONS_V_XMT_INDEX);
3543 bp->cons_block_virt->xmt_rcv_data = prod_cons;
3544 }
3545
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003546/*
3547 * ==================
3548 * = dfx_unregister =
3549 * ==================
3550 *
3551 * Overview:
3552 * Shuts down an FDDI controller
3553 *
3554 * Returns:
3555 * Condition code
3556 *
3557 * Arguments:
3558 * bdev - pointer to device information
3559 *
3560 * Functional Description:
3561 *
3562 * Return Codes:
3563 * None
3564 *
3565 * Assumptions:
3566 * It compiles so it should work :-( (PCI cards do :-)
3567 *
3568 * Side Effects:
3569 * Device structures for FDDI adapters (fddi0, fddi1, etc) are
3570 * freed.
3571 */
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003572static void dfx_unregister(struct device *bdev)
Linus Torvalds1da177e2005-04-16 15:20:36 -07003573{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003574 struct net_device *dev = dev_get_drvdata(bdev);
3575 DFX_board_t *bp = netdev_priv(dev);
Yijing Wang5349d932013-12-06 14:34:19 +08003576 int dfx_bus_pci = dev_is_pci(bdev);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003577 int dfx_bus_tc = DFX_BUS_TC(bdev);
3578 int dfx_use_mmio = DFX_MMIO || dfx_bus_tc;
3579 resource_size_t bar_start = 0; /* pointer to port */
3580 resource_size_t bar_len = 0; /* resource length */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003581 int alloc_size; /* total buffer size used */
3582
3583 unregister_netdev(dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003584
3585 alloc_size = sizeof(PI_DESCR_BLOCK) +
3586 PI_CMD_REQ_K_SIZE_MAX + PI_CMD_RSP_K_SIZE_MAX +
3587#ifndef DYNAMIC_BUFFERS
3588 (bp->rcv_bufs_to_post * PI_RCV_DATA_K_SIZE_MAX) +
3589#endif
3590 sizeof(PI_CONSUMER_BLOCK) +
3591 (PI_ALIGN_K_DESC_BLK - 1);
3592 if (bp->kmalloced)
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003593 dma_free_coherent(bdev, alloc_size,
3594 bp->kmalloced, bp->kmalloced_dma);
3595
3596 dfx_bus_uninit(dev);
3597
3598 dfx_get_bars(bdev, &bar_start, &bar_len);
3599 if (dfx_use_mmio) {
3600 iounmap(bp->base.mem);
3601 release_mem_region(bar_start, bar_len);
3602 } else
3603 release_region(bar_start, bar_len);
3604
3605 if (dfx_bus_pci)
3606 pci_disable_device(to_pci_dev(bdev));
3607
Linus Torvalds1da177e2005-04-16 15:20:36 -07003608 free_netdev(dev);
3609}
3610
Linus Torvalds1da177e2005-04-16 15:20:36 -07003611
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003612static int __maybe_unused dfx_dev_register(struct device *);
3613static int __maybe_unused dfx_dev_unregister(struct device *);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003614
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003615#ifdef CONFIG_PCI
Greg Kroah-Hartman1dd06ae2012-12-06 14:30:56 +00003616static int dfx_pci_register(struct pci_dev *, const struct pci_device_id *);
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003617static void dfx_pci_unregister(struct pci_dev *);
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003618
Alexey Dobriyana3aa1882010-01-07 11:58:11 +00003619static DEFINE_PCI_DEVICE_TABLE(dfx_pci_table) = {
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003620 { PCI_DEVICE(PCI_VENDOR_ID_DEC, PCI_DEVICE_ID_DEC_FDDI) },
3621 { }
Linus Torvalds1da177e2005-04-16 15:20:36 -07003622};
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003623MODULE_DEVICE_TABLE(pci, dfx_pci_table);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003624
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003625static struct pci_driver dfx_pci_driver = {
Linus Torvalds1da177e2005-04-16 15:20:36 -07003626 .name = "defxx",
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003627 .id_table = dfx_pci_table,
3628 .probe = dfx_pci_register,
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003629 .remove = dfx_pci_unregister,
Linus Torvalds1da177e2005-04-16 15:20:36 -07003630};
3631
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003632static int dfx_pci_register(struct pci_dev *pdev,
Greg Kroah-Hartman1dd06ae2012-12-06 14:30:56 +00003633 const struct pci_device_id *ent)
Linus Torvalds1da177e2005-04-16 15:20:36 -07003634{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003635 return dfx_register(&pdev->dev);
Linus Torvalds1da177e2005-04-16 15:20:36 -07003636}
3637
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003638static void dfx_pci_unregister(struct pci_dev *pdev)
Linus Torvalds1da177e2005-04-16 15:20:36 -07003639{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003640 dfx_unregister(&pdev->dev);
3641}
3642#endif /* CONFIG_PCI */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003643
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003644#ifdef CONFIG_EISA
3645static struct eisa_device_id dfx_eisa_table[] = {
3646 { "DEC3001", DEFEA_PROD_ID_1 },
3647 { "DEC3002", DEFEA_PROD_ID_2 },
3648 { "DEC3003", DEFEA_PROD_ID_3 },
3649 { "DEC3004", DEFEA_PROD_ID_4 },
3650 { }
3651};
3652MODULE_DEVICE_TABLE(eisa, dfx_eisa_table);
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003653
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003654static struct eisa_driver dfx_eisa_driver = {
3655 .id_table = dfx_eisa_table,
3656 .driver = {
3657 .name = "defxx",
3658 .bus = &eisa_bus_type,
3659 .probe = dfx_dev_register,
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003660 .remove = dfx_dev_unregister,
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003661 },
3662};
3663#endif /* CONFIG_EISA */
Linus Torvalds1da177e2005-04-16 15:20:36 -07003664
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003665#ifdef CONFIG_TC
3666static struct tc_device_id const dfx_tc_table[] = {
3667 { "DEC ", "PMAF-FA " },
3668 { "DEC ", "PMAF-FD " },
3669 { "DEC ", "PMAF-FS " },
3670 { "DEC ", "PMAF-FU " },
3671 { }
3672};
3673MODULE_DEVICE_TABLE(tc, dfx_tc_table);
3674
3675static struct tc_driver dfx_tc_driver = {
3676 .id_table = dfx_tc_table,
3677 .driver = {
3678 .name = "defxx",
3679 .bus = &tc_bus_type,
3680 .probe = dfx_dev_register,
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003681 .remove = dfx_dev_unregister,
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003682 },
3683};
3684#endif /* CONFIG_TC */
3685
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003686static int __maybe_unused dfx_dev_register(struct device *dev)
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003687{
3688 int status;
3689
3690 status = dfx_register(dev);
3691 if (!status)
3692 get_device(dev);
3693 return status;
Linus Torvalds1da177e2005-04-16 15:20:36 -07003694}
3695
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003696static int __maybe_unused dfx_dev_unregister(struct device *dev)
Linus Torvalds1da177e2005-04-16 15:20:36 -07003697{
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003698 put_device(dev);
3699 dfx_unregister(dev);
3700 return 0;
3701}
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003702
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003703
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003704static int dfx_init(void)
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003705{
3706 int status;
3707
3708 status = pci_register_driver(&dfx_pci_driver);
3709 if (!status)
3710 status = eisa_driver_register(&dfx_eisa_driver);
3711 if (!status)
3712 status = tc_register_driver(&dfx_tc_driver);
3713 return status;
3714}
3715
Bill Pembertonc354dfc2012-12-03 09:24:10 -05003716static void dfx_cleanup(void)
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003717{
3718 tc_unregister_driver(&dfx_tc_driver);
3719 eisa_driver_unregister(&dfx_eisa_driver);
3720 pci_unregister_driver(&dfx_pci_driver);
Jeff Garzik6aa20a22006-09-13 13:24:59 -04003721}
Linus Torvalds1da177e2005-04-16 15:20:36 -07003722
3723module_init(dfx_init);
3724module_exit(dfx_cleanup);
3725MODULE_AUTHOR("Lawrence V. Stefani");
Maciej W. Rozyckie89a2cf2007-02-05 16:28:27 -08003726MODULE_DESCRIPTION("DEC FDDIcontroller TC/EISA/PCI (DEFTA/DEFEA/DEFPA) driver "
Linus Torvalds1da177e2005-04-16 15:20:36 -07003727 DRV_VERSION " " DRV_RELDATE);
3728MODULE_LICENSE("GPL");