xref: /freebsd/sys/dev/bge/if_bge.c (revision 142cba958b7a6dd11e4257740db03d335475ede8)
1 /*-
2  * SPDX-License-Identifier: BSD-4-Clause
3  *
4  * Copyright (c) 2001 Wind River Systems
5  * Copyright (c) 1997, 1998, 1999, 2001
6  *	Bill Paul <wpaul@windriver.com>.  All rights reserved.
7  *
8  * Redistribution and use in source and binary forms, with or without
9  * modification, are permitted provided that the following conditions
10  * are met:
11  * 1. Redistributions of source code must retain the above copyright
12  *    notice, this list of conditions and the following disclaimer.
13  * 2. Redistributions in binary form must reproduce the above copyright
14  *    notice, this list of conditions and the following disclaimer in the
15  *    documentation and/or other materials provided with the distribution.
16  * 3. All advertising materials mentioning features or use of this software
17  *    must display the following acknowledgement:
18  *	This product includes software developed by Bill Paul.
19  * 4. Neither the name of the author nor the names of any co-contributors
20  *    may be used to endorse or promote products derived from this software
21  *    without specific prior written permission.
22  *
23  * THIS SOFTWARE IS PROVIDED BY Bill Paul AND CONTRIBUTORS ``AS IS'' AND
24  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26  * ARE DISCLAIMED.  IN NO EVENT SHALL Bill Paul OR THE VOICES IN HIS HEAD
27  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
28  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
29  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
30  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
31  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
32  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
33  * THE POSSIBILITY OF SUCH DAMAGE.
34  */
35 
36 #include <sys/cdefs.h>
37 /*
38  * Broadcom BCM57xx(x)/BCM590x NetXtreme and NetLink family Ethernet driver
39  *
40  * The Broadcom BCM5700 is based on technology originally developed by
41  * Alteon Networks as part of the Tigon I and Tigon II Gigabit Ethernet
42  * MAC chips. The BCM5700, sometimes referred to as the Tigon III, has
43  * two on-board MIPS R4000 CPUs and can have as much as 16MB of external
44  * SSRAM. The BCM5700 supports TCP, UDP and IP checksum offload, jumbo
45  * frames, highly configurable RX filtering, and 16 RX and TX queues
46  * (which, along with RX filter rules, can be used for QOS applications).
47  * Other features, such as TCP segmentation, may be available as part
48  * of value-added firmware updates. Unlike the Tigon I and Tigon II,
49  * firmware images can be stored in hardware and need not be compiled
50  * into the driver.
51  *
52  * The BCM5700 supports the PCI v2.2 and PCI-X v1.0 standards, and will
53  * function in a 32-bit/64-bit 33/66Mhz bus, or a 64-bit/133Mhz bus.
54  *
55  * The BCM5701 is a single-chip solution incorporating both the BCM5700
56  * MAC and a BCM5401 10/100/1000 PHY. Unlike the BCM5700, the BCM5701
57  * does not support external SSRAM.
58  *
59  * Broadcom also produces a variation of the BCM5700 under the "Altima"
60  * brand name, which is functionally similar but lacks PCI-X support.
61  *
62  * Without external SSRAM, you can only have at most 4 TX rings,
63  * and the use of the mini RX ring is disabled. This seems to imply
64  * that these features are simply not available on the BCM5701. As a
65  * result, this driver does not implement any support for the mini RX
66  * ring.
67  */
68 
69 #ifdef HAVE_KERNEL_OPTION_HEADERS
70 #include "opt_device_polling.h"
71 #endif
72 
73 #include <sys/param.h>
74 #include <sys/endian.h>
75 #include <sys/systm.h>
76 #include <sys/sockio.h>
77 #include <sys/mbuf.h>
78 #include <sys/malloc.h>
79 #include <sys/kernel.h>
80 #include <sys/module.h>
81 #include <sys/socket.h>
82 #include <sys/sysctl.h>
83 #include <sys/taskqueue.h>
84 
85 #include <net/debugnet.h>
86 #include <net/if.h>
87 #include <net/if_var.h>
88 #include <net/if_arp.h>
89 #include <net/ethernet.h>
90 #include <net/if_dl.h>
91 #include <net/if_media.h>
92 
93 #include <net/bpf.h>
94 
95 #include <net/if_types.h>
96 #include <net/if_vlan_var.h>
97 
98 #include <netinet/in_systm.h>
99 #include <netinet/in.h>
100 #include <netinet/ip.h>
101 #include <netinet/tcp.h>
102 
103 #include <machine/bus.h>
104 #include <machine/resource.h>
105 #include <sys/bus.h>
106 #include <sys/rman.h>
107 
108 #include <dev/mii/mii.h>
109 #include <dev/mii/miivar.h>
110 #include "miidevs.h"
111 #include <dev/mii/brgphyreg.h>
112 
113 #include <dev/pci/pcireg.h>
114 #include <dev/pci/pcivar.h>
115 
116 #include <dev/bge/if_bgereg.h>
117 
118 #define	BGE_CSUM_FEATURES	(CSUM_IP | CSUM_TCP)
119 #define	ETHER_MIN_NOPAD		(ETHER_MIN_LEN - ETHER_CRC_LEN) /* i.e., 60 */
120 
121 MODULE_DEPEND(bge, pci, 1, 1, 1);
122 MODULE_DEPEND(bge, ether, 1, 1, 1);
123 MODULE_DEPEND(bge, miibus, 1, 1, 1);
124 
125 /* "device miibus" required.  See GENERIC if you get errors here. */
126 #include "miibus_if.h"
127 
128 /*
129  * Various supported device vendors/types and their names. Note: the
130  * spec seems to indicate that the hardware still has Alteon's vendor
131  * ID burned into it, though it will always be overridden by the vendor
132  * ID in the EEPROM. Just to be safe, we cover all possibilities.
133  */
134 static const struct bge_type {
135 	uint16_t	bge_vid;
136 	uint16_t	bge_did;
137 } bge_devs[] = {
138 	{ ALTEON_VENDORID,	ALTEON_DEVICEID_BCM5700 },
139 	{ ALTEON_VENDORID,	ALTEON_DEVICEID_BCM5701 },
140 
141 	{ ALTIMA_VENDORID,	ALTIMA_DEVICE_AC1000 },
142 	{ ALTIMA_VENDORID,	ALTIMA_DEVICE_AC1002 },
143 	{ ALTIMA_VENDORID,	ALTIMA_DEVICE_AC9100 },
144 
145 	{ APPLE_VENDORID,	APPLE_DEVICE_BCM5701 },
146 
147 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5700 },
148 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5701 },
149 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5702 },
150 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5702_ALT },
151 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5702X },
152 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5703 },
153 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5703_ALT },
154 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5703X },
155 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5704C },
156 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5704S },
157 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5704S_ALT },
158 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5705 },
159 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5705F },
160 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5705K },
161 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5705M },
162 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5705M_ALT },
163 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5714C },
164 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5714S },
165 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5715 },
166 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5715S },
167 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5717 },
168 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5717C },
169 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5718 },
170 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5719 },
171 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5720 },
172 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5721 },
173 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5722 },
174 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5723 },
175 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5725 },
176 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5727 },
177 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5750 },
178 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5750M },
179 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5751 },
180 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5751F },
181 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5751M },
182 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5752 },
183 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5752M },
184 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5753 },
185 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5753F },
186 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5753M },
187 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5754 },
188 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5754M },
189 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5755 },
190 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5755M },
191 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5756 },
192 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5761 },
193 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5761E },
194 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5761S },
195 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5761SE },
196 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5762 },
197 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5764 },
198 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5780 },
199 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5780S },
200 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5781 },
201 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5782 },
202 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5784 },
203 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5785F },
204 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5785G },
205 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5786 },
206 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5787 },
207 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5787F },
208 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5787M },
209 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5788 },
210 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5789 },
211 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5901 },
212 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5901A2 },
213 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5903M },
214 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5906 },
215 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM5906M },
216 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57760 },
217 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57761 },
218 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57762 },
219 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57764 },
220 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57765 },
221 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57766 },
222 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57767 },
223 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57780 },
224 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57781 },
225 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57782 },
226 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57785 },
227 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57786 },
228 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57787 },
229 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57788 },
230 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57790 },
231 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57791 },
232 	{ BCOM_VENDORID,	BCOM_DEVICEID_BCM57795 },
233 
234 	{ SK_VENDORID,		SK_DEVICEID_ALTIMA },
235 
236 	{ TC_VENDORID,		TC_DEVICEID_3C996 },
237 
238 	{ FJTSU_VENDORID,	FJTSU_DEVICEID_PW008GE4 },
239 	{ FJTSU_VENDORID,	FJTSU_DEVICEID_PW008GE5 },
240 	{ 0, 0 }
241 };
242 
243 static const struct bge_vendor {
244 	uint16_t	v_id;
245 	const char	*v_name;
246 } bge_vendors[] = {
247 	{ ALTEON_VENDORID,	"Alteon" },
248 	{ ALTIMA_VENDORID,	"Altima" },
249 	{ APPLE_VENDORID,	"Apple" },
250 	{ BCOM_VENDORID,	"Broadcom" },
251 	{ SK_VENDORID,		"SysKonnect" },
252 	{ TC_VENDORID,		"3Com" },
253 	{ FJTSU_VENDORID,	"Fujitsu" },
254 	{ 0, NULL }
255 };
256 
257 static const struct bge_revision {
258 	uint32_t	br_chipid;
259 	const char	*br_name;
260 } bge_revisions[] = {
261 	{ BGE_CHIPID_BCM5700_A0,	"BCM5700 A0" },
262 	{ BGE_CHIPID_BCM5700_A1,	"BCM5700 A1" },
263 	{ BGE_CHIPID_BCM5700_B0,	"BCM5700 B0" },
264 	{ BGE_CHIPID_BCM5700_B1,	"BCM5700 B1" },
265 	{ BGE_CHIPID_BCM5700_B2,	"BCM5700 B2" },
266 	{ BGE_CHIPID_BCM5700_B3,	"BCM5700 B3" },
267 	{ BGE_CHIPID_BCM5700_ALTIMA,	"BCM5700 Altima" },
268 	{ BGE_CHIPID_BCM5700_C0,	"BCM5700 C0" },
269 	{ BGE_CHIPID_BCM5701_A0,	"BCM5701 A0" },
270 	{ BGE_CHIPID_BCM5701_B0,	"BCM5701 B0" },
271 	{ BGE_CHIPID_BCM5701_B2,	"BCM5701 B2" },
272 	{ BGE_CHIPID_BCM5701_B5,	"BCM5701 B5" },
273 	{ BGE_CHIPID_BCM5703_A0,	"BCM5703 A0" },
274 	{ BGE_CHIPID_BCM5703_A1,	"BCM5703 A1" },
275 	{ BGE_CHIPID_BCM5703_A2,	"BCM5703 A2" },
276 	{ BGE_CHIPID_BCM5703_A3,	"BCM5703 A3" },
277 	{ BGE_CHIPID_BCM5703_B0,	"BCM5703 B0" },
278 	{ BGE_CHIPID_BCM5704_A0,	"BCM5704 A0" },
279 	{ BGE_CHIPID_BCM5704_A1,	"BCM5704 A1" },
280 	{ BGE_CHIPID_BCM5704_A2,	"BCM5704 A2" },
281 	{ BGE_CHIPID_BCM5704_A3,	"BCM5704 A3" },
282 	{ BGE_CHIPID_BCM5704_B0,	"BCM5704 B0" },
283 	{ BGE_CHIPID_BCM5705_A0,	"BCM5705 A0" },
284 	{ BGE_CHIPID_BCM5705_A1,	"BCM5705 A1" },
285 	{ BGE_CHIPID_BCM5705_A2,	"BCM5705 A2" },
286 	{ BGE_CHIPID_BCM5705_A3,	"BCM5705 A3" },
287 	{ BGE_CHIPID_BCM5750_A0,	"BCM5750 A0" },
288 	{ BGE_CHIPID_BCM5750_A1,	"BCM5750 A1" },
289 	{ BGE_CHIPID_BCM5750_A3,	"BCM5750 A3" },
290 	{ BGE_CHIPID_BCM5750_B0,	"BCM5750 B0" },
291 	{ BGE_CHIPID_BCM5750_B1,	"BCM5750 B1" },
292 	{ BGE_CHIPID_BCM5750_C0,	"BCM5750 C0" },
293 	{ BGE_CHIPID_BCM5750_C1,	"BCM5750 C1" },
294 	{ BGE_CHIPID_BCM5750_C2,	"BCM5750 C2" },
295 	{ BGE_CHIPID_BCM5714_A0,	"BCM5714 A0" },
296 	{ BGE_CHIPID_BCM5752_A0,	"BCM5752 A0" },
297 	{ BGE_CHIPID_BCM5752_A1,	"BCM5752 A1" },
298 	{ BGE_CHIPID_BCM5752_A2,	"BCM5752 A2" },
299 	{ BGE_CHIPID_BCM5714_B0,	"BCM5714 B0" },
300 	{ BGE_CHIPID_BCM5714_B3,	"BCM5714 B3" },
301 	{ BGE_CHIPID_BCM5715_A0,	"BCM5715 A0" },
302 	{ BGE_CHIPID_BCM5715_A1,	"BCM5715 A1" },
303 	{ BGE_CHIPID_BCM5715_A3,	"BCM5715 A3" },
304 	{ BGE_CHIPID_BCM5717_A0,	"BCM5717 A0" },
305 	{ BGE_CHIPID_BCM5717_B0,	"BCM5717 B0" },
306 	{ BGE_CHIPID_BCM5717_C0,	"BCM5717 C0" },
307 	{ BGE_CHIPID_BCM5719_A0,	"BCM5719 A0" },
308 	{ BGE_CHIPID_BCM5720_A0,	"BCM5720 A0" },
309 	{ BGE_CHIPID_BCM5755_A0,	"BCM5755 A0" },
310 	{ BGE_CHIPID_BCM5755_A1,	"BCM5755 A1" },
311 	{ BGE_CHIPID_BCM5755_A2,	"BCM5755 A2" },
312 	{ BGE_CHIPID_BCM5722_A0,	"BCM5722 A0" },
313 	{ BGE_CHIPID_BCM5761_A0,	"BCM5761 A0" },
314 	{ BGE_CHIPID_BCM5761_A1,	"BCM5761 A1" },
315 	{ BGE_CHIPID_BCM5762_A0,	"BCM5762 A0" },
316 	{ BGE_CHIPID_BCM5784_A0,	"BCM5784 A0" },
317 	{ BGE_CHIPID_BCM5784_A1,	"BCM5784 A1" },
318 	/* 5754 and 5787 share the same ASIC ID */
319 	{ BGE_CHIPID_BCM5787_A0,	"BCM5754/5787 A0" },
320 	{ BGE_CHIPID_BCM5787_A1,	"BCM5754/5787 A1" },
321 	{ BGE_CHIPID_BCM5787_A2,	"BCM5754/5787 A2" },
322 	{ BGE_CHIPID_BCM5906_A1,	"BCM5906 A1" },
323 	{ BGE_CHIPID_BCM5906_A2,	"BCM5906 A2" },
324 	{ BGE_CHIPID_BCM57765_A0,	"BCM57765 A0" },
325 	{ BGE_CHIPID_BCM57765_B0,	"BCM57765 B0" },
326 	{ BGE_CHIPID_BCM57780_A0,	"BCM57780 A0" },
327 	{ BGE_CHIPID_BCM57780_A1,	"BCM57780 A1" },
328 	{ 0, NULL }
329 };
330 
331 /*
332  * Some defaults for major revisions, so that newer steppings
333  * that we don't know about have a shot at working.
334  */
335 static const struct bge_revision bge_majorrevs[] = {
336 	{ BGE_ASICREV_BCM5700,		"unknown BCM5700" },
337 	{ BGE_ASICREV_BCM5701,		"unknown BCM5701" },
338 	{ BGE_ASICREV_BCM5703,		"unknown BCM5703" },
339 	{ BGE_ASICREV_BCM5704,		"unknown BCM5704" },
340 	{ BGE_ASICREV_BCM5705,		"unknown BCM5705" },
341 	{ BGE_ASICREV_BCM5750,		"unknown BCM5750" },
342 	{ BGE_ASICREV_BCM5714_A0,	"unknown BCM5714" },
343 	{ BGE_ASICREV_BCM5752,		"unknown BCM5752" },
344 	{ BGE_ASICREV_BCM5780,		"unknown BCM5780" },
345 	{ BGE_ASICREV_BCM5714,		"unknown BCM5714" },
346 	{ BGE_ASICREV_BCM5755,		"unknown BCM5755" },
347 	{ BGE_ASICREV_BCM5761,		"unknown BCM5761" },
348 	{ BGE_ASICREV_BCM5784,		"unknown BCM5784" },
349 	{ BGE_ASICREV_BCM5785,		"unknown BCM5785" },
350 	/* 5754 and 5787 share the same ASIC ID */
351 	{ BGE_ASICREV_BCM5787,		"unknown BCM5754/5787" },
352 	{ BGE_ASICREV_BCM5906,		"unknown BCM5906" },
353 	{ BGE_ASICREV_BCM57765,		"unknown BCM57765" },
354 	{ BGE_ASICREV_BCM57766,		"unknown BCM57766" },
355 	{ BGE_ASICREV_BCM57780,		"unknown BCM57780" },
356 	{ BGE_ASICREV_BCM5717,		"unknown BCM5717" },
357 	{ BGE_ASICREV_BCM5719,		"unknown BCM5719" },
358 	{ BGE_ASICREV_BCM5720,		"unknown BCM5720" },
359 	{ BGE_ASICREV_BCM5762,		"unknown BCM5762" },
360 	{ 0, NULL }
361 };
362 
363 #define	BGE_IS_JUMBO_CAPABLE(sc)	((sc)->bge_flags & BGE_FLAG_JUMBO)
364 #define	BGE_IS_5700_FAMILY(sc)		((sc)->bge_flags & BGE_FLAG_5700_FAMILY)
365 #define	BGE_IS_5705_PLUS(sc)		((sc)->bge_flags & BGE_FLAG_5705_PLUS)
366 #define	BGE_IS_5714_FAMILY(sc)		((sc)->bge_flags & BGE_FLAG_5714_FAMILY)
367 #define	BGE_IS_575X_PLUS(sc)		((sc)->bge_flags & BGE_FLAG_575X_PLUS)
368 #define	BGE_IS_5755_PLUS(sc)		((sc)->bge_flags & BGE_FLAG_5755_PLUS)
369 #define	BGE_IS_5717_PLUS(sc)		((sc)->bge_flags & BGE_FLAG_5717_PLUS)
370 #define	BGE_IS_57765_PLUS(sc)		((sc)->bge_flags & BGE_FLAG_57765_PLUS)
371 
372 static uint32_t bge_chipid(device_t);
373 static const struct bge_vendor * bge_lookup_vendor(uint16_t);
374 static const struct bge_revision * bge_lookup_rev(uint32_t);
375 
376 typedef int	(*bge_eaddr_fcn_t)(struct bge_softc *, uint8_t[]);
377 
378 static int bge_probe(device_t);
379 static int bge_attach(device_t);
380 static int bge_detach(device_t);
381 static int bge_suspend(device_t);
382 static int bge_resume(device_t);
383 static void bge_release_resources(struct bge_softc *);
384 static void bge_dma_map_addr(void *, bus_dma_segment_t *, int, int);
385 static int bge_dma_alloc(struct bge_softc *);
386 static void bge_dma_free(struct bge_softc *);
387 static int bge_dma_ring_alloc(struct bge_softc *, bus_size_t, bus_size_t,
388     bus_dma_tag_t *, uint8_t **, bus_dmamap_t *, bus_addr_t *, const char *);
389 
390 static void bge_devinfo(struct bge_softc *);
391 static int bge_mbox_reorder(struct bge_softc *);
392 
393 static int bge_get_eaddr_fw(struct bge_softc *sc, uint8_t ether_addr[]);
394 static int bge_get_eaddr_mem(struct bge_softc *, uint8_t[]);
395 static int bge_get_eaddr_nvram(struct bge_softc *, uint8_t[]);
396 static int bge_get_eaddr_eeprom(struct bge_softc *, uint8_t[]);
397 static int bge_get_eaddr(struct bge_softc *, uint8_t[]);
398 
399 static void bge_txeof(struct bge_softc *, uint16_t);
400 static void bge_rxcsum(struct bge_softc *, struct bge_rx_bd *, struct mbuf *);
401 static int bge_rxeof(struct bge_softc *, uint16_t, int);
402 
403 static void bge_asf_driver_up (struct bge_softc *);
404 static void bge_tick(void *);
405 static void bge_stats_clear_regs(struct bge_softc *);
406 static void bge_stats_update(struct bge_softc *);
407 static void bge_stats_update_regs(struct bge_softc *);
408 static struct mbuf *bge_check_short_dma(struct mbuf *);
409 static struct mbuf *bge_setup_tso(struct bge_softc *, struct mbuf *,
410     uint16_t *, uint16_t *);
411 static int bge_encap(struct bge_softc *, struct mbuf **, uint32_t *);
412 
413 static void bge_intr(void *);
414 static int bge_msi_intr(void *);
415 static void bge_intr_task(void *, int);
416 static void bge_start(if_t);
417 static void bge_start_locked(if_t);
418 static void bge_start_tx(struct bge_softc *, uint32_t);
419 static int bge_ioctl(if_t, u_long, caddr_t);
420 static void bge_init_locked(struct bge_softc *);
421 static void bge_init(void *);
422 static void bge_stop_block(struct bge_softc *, bus_size_t, uint32_t);
423 static void bge_stop(struct bge_softc *);
424 static void bge_watchdog(struct bge_softc *);
425 static int bge_shutdown(device_t);
426 static int bge_ifmedia_upd_locked(if_t);
427 static int bge_ifmedia_upd(if_t);
428 static void bge_ifmedia_sts(if_t, struct ifmediareq *);
429 static uint64_t bge_get_counter(if_t, ift_counter);
430 
431 static uint8_t bge_nvram_getbyte(struct bge_softc *, int, uint8_t *);
432 static int bge_read_nvram(struct bge_softc *, caddr_t, int, int);
433 
434 static uint8_t bge_eeprom_getbyte(struct bge_softc *, int, uint8_t *);
435 static int bge_read_eeprom(struct bge_softc *, caddr_t, int, int);
436 
437 static void bge_setpromisc(struct bge_softc *);
438 static void bge_setmulti(struct bge_softc *);
439 static void bge_setvlan(struct bge_softc *);
440 
441 static __inline void bge_rxreuse_std(struct bge_softc *, int);
442 static __inline void bge_rxreuse_jumbo(struct bge_softc *, int);
443 static int bge_newbuf_std(struct bge_softc *, int);
444 static int bge_newbuf_jumbo(struct bge_softc *, int);
445 static int bge_init_rx_ring_std(struct bge_softc *);
446 static void bge_free_rx_ring_std(struct bge_softc *);
447 static int bge_init_rx_ring_jumbo(struct bge_softc *);
448 static void bge_free_rx_ring_jumbo(struct bge_softc *);
449 static void bge_free_tx_ring(struct bge_softc *);
450 static int bge_init_tx_ring(struct bge_softc *);
451 
452 static int bge_chipinit(struct bge_softc *);
453 static int bge_blockinit(struct bge_softc *);
454 static uint32_t bge_dma_swap_options(struct bge_softc *);
455 
456 static int bge_has_eaddr(struct bge_softc *);
457 static uint32_t bge_readmem_ind(struct bge_softc *, int);
458 static void bge_writemem_ind(struct bge_softc *, int, int);
459 static void bge_writembx(struct bge_softc *, int, int);
460 #ifdef notdef
461 static uint32_t bge_readreg_ind(struct bge_softc *, int);
462 #endif
463 static void bge_writemem_direct(struct bge_softc *, int, int);
464 static void bge_writereg_ind(struct bge_softc *, int, int);
465 
466 static int bge_miibus_readreg(device_t, int, int);
467 static int bge_miibus_writereg(device_t, int, int, int);
468 static void bge_miibus_statchg(device_t);
469 #ifdef DEVICE_POLLING
470 static int bge_poll(if_t ifp, enum poll_cmd cmd, int count);
471 #endif
472 
473 #define	BGE_RESET_SHUTDOWN	0
474 #define	BGE_RESET_START		1
475 #define	BGE_RESET_SUSPEND	2
476 static void bge_sig_post_reset(struct bge_softc *, int);
477 static void bge_sig_legacy(struct bge_softc *, int);
478 static void bge_sig_pre_reset(struct bge_softc *, int);
479 static void bge_stop_fw(struct bge_softc *);
480 static int bge_reset(struct bge_softc *);
481 static void bge_link_upd(struct bge_softc *);
482 
483 static void bge_ape_lock_init(struct bge_softc *);
484 static void bge_ape_read_fw_ver(struct bge_softc *);
485 static int bge_ape_lock(struct bge_softc *, int);
486 static void bge_ape_unlock(struct bge_softc *, int);
487 static void bge_ape_send_event(struct bge_softc *, uint32_t);
488 static void bge_ape_driver_state_change(struct bge_softc *, int);
489 
490 /*
491  * The BGE_REGISTER_DEBUG option is only for low-level debugging.  It may
492  * leak information to untrusted users.  It is also known to cause alignment
493  * traps on certain architectures.
494  */
495 #ifdef BGE_REGISTER_DEBUG
496 static int bge_sysctl_debug_info(SYSCTL_HANDLER_ARGS);
497 static int bge_sysctl_reg_read(SYSCTL_HANDLER_ARGS);
498 static int bge_sysctl_ape_read(SYSCTL_HANDLER_ARGS);
499 static int bge_sysctl_mem_read(SYSCTL_HANDLER_ARGS);
500 #endif
501 static void bge_add_sysctls(struct bge_softc *);
502 static void bge_add_sysctl_stats_regs(struct bge_softc *,
503     struct sysctl_ctx_list *, struct sysctl_oid_list *);
504 static void bge_add_sysctl_stats(struct bge_softc *, struct sysctl_ctx_list *,
505     struct sysctl_oid_list *);
506 static int bge_sysctl_stats(SYSCTL_HANDLER_ARGS);
507 
508 DEBUGNET_DEFINE(bge);
509 
510 static device_method_t bge_methods[] = {
511 	/* Device interface */
512 	DEVMETHOD(device_probe,		bge_probe),
513 	DEVMETHOD(device_attach,	bge_attach),
514 	DEVMETHOD(device_detach,	bge_detach),
515 	DEVMETHOD(device_shutdown,	bge_shutdown),
516 	DEVMETHOD(device_suspend,	bge_suspend),
517 	DEVMETHOD(device_resume,	bge_resume),
518 
519 	/* MII interface */
520 	DEVMETHOD(miibus_readreg,	bge_miibus_readreg),
521 	DEVMETHOD(miibus_writereg,	bge_miibus_writereg),
522 	DEVMETHOD(miibus_statchg,	bge_miibus_statchg),
523 
524 	DEVMETHOD_END
525 };
526 
527 static driver_t bge_driver = {
528 	"bge",
529 	bge_methods,
530 	sizeof(struct bge_softc)
531 };
532 
533 DRIVER_MODULE(bge, pci, bge_driver, 0, 0);
534 MODULE_PNP_INFO("U16:vendor;U16:device", pci, bge, bge_devs,
535     nitems(bge_devs) - 1);
536 DRIVER_MODULE(miibus, bge, miibus_driver, 0, 0);
537 
538 static int bge_allow_asf = 1;
539 
540 static SYSCTL_NODE(_hw, OID_AUTO, bge, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
541     "BGE driver parameters");
542 SYSCTL_INT(_hw_bge, OID_AUTO, allow_asf, CTLFLAG_RDTUN, &bge_allow_asf, 0,
543 	"Allow ASF mode if available");
544 
545 static int
546 bge_has_eaddr(struct bge_softc *sc)
547 {
548 	return (1);
549 }
550 
551 static uint32_t
552 bge_readmem_ind(struct bge_softc *sc, int off)
553 {
554 	device_t dev;
555 	uint32_t val;
556 
557 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906 &&
558 	    off >= BGE_STATS_BLOCK && off < BGE_SEND_RING_1_TO_4)
559 		return (0);
560 
561 	dev = sc->bge_dev;
562 
563 	pci_write_config(dev, BGE_PCI_MEMWIN_BASEADDR, off, 4);
564 	val = pci_read_config(dev, BGE_PCI_MEMWIN_DATA, 4);
565 	pci_write_config(dev, BGE_PCI_MEMWIN_BASEADDR, 0, 4);
566 	return (val);
567 }
568 
569 static void
570 bge_writemem_ind(struct bge_softc *sc, int off, int val)
571 {
572 	device_t dev;
573 
574 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906 &&
575 	    off >= BGE_STATS_BLOCK && off < BGE_SEND_RING_1_TO_4)
576 		return;
577 
578 	dev = sc->bge_dev;
579 
580 	pci_write_config(dev, BGE_PCI_MEMWIN_BASEADDR, off, 4);
581 	pci_write_config(dev, BGE_PCI_MEMWIN_DATA, val, 4);
582 	pci_write_config(dev, BGE_PCI_MEMWIN_BASEADDR, 0, 4);
583 }
584 
585 #ifdef notdef
586 static uint32_t
587 bge_readreg_ind(struct bge_softc *sc, int off)
588 {
589 	device_t dev;
590 
591 	dev = sc->bge_dev;
592 
593 	pci_write_config(dev, BGE_PCI_REG_BASEADDR, off, 4);
594 	return (pci_read_config(dev, BGE_PCI_REG_DATA, 4));
595 }
596 #endif
597 
598 static void
599 bge_writereg_ind(struct bge_softc *sc, int off, int val)
600 {
601 	device_t dev;
602 
603 	dev = sc->bge_dev;
604 
605 	pci_write_config(dev, BGE_PCI_REG_BASEADDR, off, 4);
606 	pci_write_config(dev, BGE_PCI_REG_DATA, val, 4);
607 }
608 
609 static void
610 bge_writemem_direct(struct bge_softc *sc, int off, int val)
611 {
612 	CSR_WRITE_4(sc, off, val);
613 }
614 
615 static void
616 bge_writembx(struct bge_softc *sc, int off, int val)
617 {
618 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906)
619 		off += BGE_LPMBX_IRQ0_HI - BGE_MBX_IRQ0_HI;
620 
621 	CSR_WRITE_4(sc, off, val);
622 	if ((sc->bge_flags & BGE_FLAG_MBOX_REORDER) != 0)
623 		CSR_READ_4(sc, off);
624 }
625 
626 /*
627  * Clear all stale locks and select the lock for this driver instance.
628  */
629 static void
630 bge_ape_lock_init(struct bge_softc *sc)
631 {
632 	uint32_t bit, regbase;
633 	int i;
634 
635 	if (sc->bge_asicrev == BGE_ASICREV_BCM5761)
636 		regbase = BGE_APE_LOCK_GRANT;
637 	else
638 		regbase = BGE_APE_PER_LOCK_GRANT;
639 
640 	/* Clear any stale locks. */
641 	for (i = BGE_APE_LOCK_PHY0; i <= BGE_APE_LOCK_GPIO; i++) {
642 		switch (i) {
643 		case BGE_APE_LOCK_PHY0:
644 		case BGE_APE_LOCK_PHY1:
645 		case BGE_APE_LOCK_PHY2:
646 		case BGE_APE_LOCK_PHY3:
647 			bit = BGE_APE_LOCK_GRANT_DRIVER0;
648 			break;
649 		default:
650 			if (sc->bge_func_addr == 0)
651 				bit = BGE_APE_LOCK_GRANT_DRIVER0;
652 			else
653 				bit = (1 << sc->bge_func_addr);
654 		}
655 		APE_WRITE_4(sc, regbase + 4 * i, bit);
656 	}
657 
658 	/* Select the PHY lock based on the device's function number. */
659 	switch (sc->bge_func_addr) {
660 	case 0:
661 		sc->bge_phy_ape_lock = BGE_APE_LOCK_PHY0;
662 		break;
663 	case 1:
664 		sc->bge_phy_ape_lock = BGE_APE_LOCK_PHY1;
665 		break;
666 	case 2:
667 		sc->bge_phy_ape_lock = BGE_APE_LOCK_PHY2;
668 		break;
669 	case 3:
670 		sc->bge_phy_ape_lock = BGE_APE_LOCK_PHY3;
671 		break;
672 	default:
673 		device_printf(sc->bge_dev,
674 		    "PHY lock not supported on this function\n");
675 	}
676 }
677 
678 /*
679  * Check for APE firmware, set flags, and print version info.
680  */
681 static void
682 bge_ape_read_fw_ver(struct bge_softc *sc)
683 {
684 	const char *fwtype;
685 	uint32_t apedata, features;
686 
687 	/* Check for a valid APE signature in shared memory. */
688 	apedata = APE_READ_4(sc, BGE_APE_SEG_SIG);
689 	if (apedata != BGE_APE_SEG_SIG_MAGIC) {
690 		sc->bge_mfw_flags &= ~ BGE_MFW_ON_APE;
691 		return;
692 	}
693 
694 	/* Check if APE firmware is running. */
695 	apedata = APE_READ_4(sc, BGE_APE_FW_STATUS);
696 	if ((apedata & BGE_APE_FW_STATUS_READY) == 0) {
697 		device_printf(sc->bge_dev, "APE signature found "
698 		    "but FW status not ready! 0x%08x\n", apedata);
699 		return;
700 	}
701 
702 	sc->bge_mfw_flags |= BGE_MFW_ON_APE;
703 
704 	/* Fetch the APE firmware type and version. */
705 	apedata = APE_READ_4(sc, BGE_APE_FW_VERSION);
706 	features = APE_READ_4(sc, BGE_APE_FW_FEATURES);
707 	if ((features & BGE_APE_FW_FEATURE_NCSI) != 0) {
708 		sc->bge_mfw_flags |= BGE_MFW_TYPE_NCSI;
709 		fwtype = "NCSI";
710 	} else if ((features & BGE_APE_FW_FEATURE_DASH) != 0) {
711 		sc->bge_mfw_flags |= BGE_MFW_TYPE_DASH;
712 		fwtype = "DASH";
713 	} else
714 		fwtype = "UNKN";
715 
716 	/* Print the APE firmware version. */
717 	device_printf(sc->bge_dev, "APE FW version: %s v%d.%d.%d.%d\n",
718 	    fwtype,
719 	    (apedata & BGE_APE_FW_VERSION_MAJMSK) >> BGE_APE_FW_VERSION_MAJSFT,
720 	    (apedata & BGE_APE_FW_VERSION_MINMSK) >> BGE_APE_FW_VERSION_MINSFT,
721 	    (apedata & BGE_APE_FW_VERSION_REVMSK) >> BGE_APE_FW_VERSION_REVSFT,
722 	    (apedata & BGE_APE_FW_VERSION_BLDMSK));
723 }
724 
725 static int
726 bge_ape_lock(struct bge_softc *sc, int locknum)
727 {
728 	uint32_t bit, gnt, req, status;
729 	int i, off;
730 
731 	if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) == 0)
732 		return (0);
733 
734 	/* Lock request/grant registers have different bases. */
735 	if (sc->bge_asicrev == BGE_ASICREV_BCM5761) {
736 		req = BGE_APE_LOCK_REQ;
737 		gnt = BGE_APE_LOCK_GRANT;
738 	} else {
739 		req = BGE_APE_PER_LOCK_REQ;
740 		gnt = BGE_APE_PER_LOCK_GRANT;
741 	}
742 
743 	off = 4 * locknum;
744 
745 	switch (locknum) {
746 	case BGE_APE_LOCK_GPIO:
747 		/* Lock required when using GPIO. */
748 		if (sc->bge_asicrev == BGE_ASICREV_BCM5761)
749 			return (0);
750 		if (sc->bge_func_addr == 0)
751 			bit = BGE_APE_LOCK_REQ_DRIVER0;
752 		else
753 			bit = (1 << sc->bge_func_addr);
754 		break;
755 	case BGE_APE_LOCK_GRC:
756 		/* Lock required to reset the device. */
757 		if (sc->bge_func_addr == 0)
758 			bit = BGE_APE_LOCK_REQ_DRIVER0;
759 		else
760 			bit = (1 << sc->bge_func_addr);
761 		break;
762 	case BGE_APE_LOCK_MEM:
763 		/* Lock required when accessing certain APE memory. */
764 		if (sc->bge_func_addr == 0)
765 			bit = BGE_APE_LOCK_REQ_DRIVER0;
766 		else
767 			bit = (1 << sc->bge_func_addr);
768 		break;
769 	case BGE_APE_LOCK_PHY0:
770 	case BGE_APE_LOCK_PHY1:
771 	case BGE_APE_LOCK_PHY2:
772 	case BGE_APE_LOCK_PHY3:
773 		/* Lock required when accessing PHYs. */
774 		bit = BGE_APE_LOCK_REQ_DRIVER0;
775 		break;
776 	default:
777 		return (EINVAL);
778 	}
779 
780 	/* Request a lock. */
781 	APE_WRITE_4(sc, req + off, bit);
782 
783 	/* Wait up to 1 second to acquire lock. */
784 	for (i = 0; i < 20000; i++) {
785 		status = APE_READ_4(sc, gnt + off);
786 		if (status == bit)
787 			break;
788 		DELAY(50);
789 	}
790 
791 	/* Handle any errors. */
792 	if (status != bit) {
793 		device_printf(sc->bge_dev, "APE lock %d request failed! "
794 		    "request = 0x%04x[0x%04x], status = 0x%04x[0x%04x]\n",
795 		    locknum, req + off, bit & 0xFFFF, gnt + off,
796 		    status & 0xFFFF);
797 		/* Revoke the lock request. */
798 		APE_WRITE_4(sc, gnt + off, bit);
799 		return (EBUSY);
800 	}
801 
802 	return (0);
803 }
804 
805 static void
806 bge_ape_unlock(struct bge_softc *sc, int locknum)
807 {
808 	uint32_t bit, gnt;
809 	int off;
810 
811 	if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) == 0)
812 		return;
813 
814 	if (sc->bge_asicrev == BGE_ASICREV_BCM5761)
815 		gnt = BGE_APE_LOCK_GRANT;
816 	else
817 		gnt = BGE_APE_PER_LOCK_GRANT;
818 
819 	off = 4 * locknum;
820 
821 	switch (locknum) {
822 	case BGE_APE_LOCK_GPIO:
823 		if (sc->bge_asicrev == BGE_ASICREV_BCM5761)
824 			return;
825 		if (sc->bge_func_addr == 0)
826 			bit = BGE_APE_LOCK_GRANT_DRIVER0;
827 		else
828 			bit = (1 << sc->bge_func_addr);
829 		break;
830 	case BGE_APE_LOCK_GRC:
831 		if (sc->bge_func_addr == 0)
832 			bit = BGE_APE_LOCK_GRANT_DRIVER0;
833 		else
834 			bit = (1 << sc->bge_func_addr);
835 		break;
836 	case BGE_APE_LOCK_MEM:
837 		if (sc->bge_func_addr == 0)
838 			bit = BGE_APE_LOCK_GRANT_DRIVER0;
839 		else
840 			bit = (1 << sc->bge_func_addr);
841 		break;
842 	case BGE_APE_LOCK_PHY0:
843 	case BGE_APE_LOCK_PHY1:
844 	case BGE_APE_LOCK_PHY2:
845 	case BGE_APE_LOCK_PHY3:
846 		bit = BGE_APE_LOCK_GRANT_DRIVER0;
847 		break;
848 	default:
849 		return;
850 	}
851 
852 	APE_WRITE_4(sc, gnt + off, bit);
853 }
854 
855 /*
856  * Send an event to the APE firmware.
857  */
858 static void
859 bge_ape_send_event(struct bge_softc *sc, uint32_t event)
860 {
861 	uint32_t apedata;
862 	int i;
863 
864 	/* NCSI does not support APE events. */
865 	if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) == 0)
866 		return;
867 
868 	/* Wait up to 1ms for APE to service previous event. */
869 	for (i = 10; i > 0; i--) {
870 		if (bge_ape_lock(sc, BGE_APE_LOCK_MEM) != 0)
871 			break;
872 		apedata = APE_READ_4(sc, BGE_APE_EVENT_STATUS);
873 		if ((apedata & BGE_APE_EVENT_STATUS_EVENT_PENDING) == 0) {
874 			APE_WRITE_4(sc, BGE_APE_EVENT_STATUS, event |
875 			    BGE_APE_EVENT_STATUS_EVENT_PENDING);
876 			bge_ape_unlock(sc, BGE_APE_LOCK_MEM);
877 			APE_WRITE_4(sc, BGE_APE_EVENT, BGE_APE_EVENT_1);
878 			break;
879 		}
880 		bge_ape_unlock(sc, BGE_APE_LOCK_MEM);
881 		DELAY(100);
882 	}
883 	if (i == 0)
884 		device_printf(sc->bge_dev, "APE event 0x%08x send timed out\n",
885 		    event);
886 }
887 
888 static void
889 bge_ape_driver_state_change(struct bge_softc *sc, int kind)
890 {
891 	uint32_t apedata, event;
892 
893 	if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) == 0)
894 		return;
895 
896 	switch (kind) {
897 	case BGE_RESET_START:
898 		/* If this is the first load, clear the load counter. */
899 		apedata = APE_READ_4(sc, BGE_APE_HOST_SEG_SIG);
900 		if (apedata != BGE_APE_HOST_SEG_SIG_MAGIC)
901 			APE_WRITE_4(sc, BGE_APE_HOST_INIT_COUNT, 0);
902 		else {
903 			apedata = APE_READ_4(sc, BGE_APE_HOST_INIT_COUNT);
904 			APE_WRITE_4(sc, BGE_APE_HOST_INIT_COUNT, ++apedata);
905 		}
906 		APE_WRITE_4(sc, BGE_APE_HOST_SEG_SIG,
907 		    BGE_APE_HOST_SEG_SIG_MAGIC);
908 		APE_WRITE_4(sc, BGE_APE_HOST_SEG_LEN,
909 		    BGE_APE_HOST_SEG_LEN_MAGIC);
910 
911 		/* Add some version info if bge(4) supports it. */
912 		APE_WRITE_4(sc, BGE_APE_HOST_DRIVER_ID,
913 		    BGE_APE_HOST_DRIVER_ID_MAGIC(1, 0));
914 		APE_WRITE_4(sc, BGE_APE_HOST_BEHAVIOR,
915 		    BGE_APE_HOST_BEHAV_NO_PHYLOCK);
916 		APE_WRITE_4(sc, BGE_APE_HOST_HEARTBEAT_INT_MS,
917 		    BGE_APE_HOST_HEARTBEAT_INT_DISABLE);
918 		APE_WRITE_4(sc, BGE_APE_HOST_DRVR_STATE,
919 		    BGE_APE_HOST_DRVR_STATE_START);
920 		event = BGE_APE_EVENT_STATUS_STATE_START;
921 		break;
922 	case BGE_RESET_SHUTDOWN:
923 		APE_WRITE_4(sc, BGE_APE_HOST_DRVR_STATE,
924 		    BGE_APE_HOST_DRVR_STATE_UNLOAD);
925 		event = BGE_APE_EVENT_STATUS_STATE_UNLOAD;
926 		break;
927 	case BGE_RESET_SUSPEND:
928 		event = BGE_APE_EVENT_STATUS_STATE_SUSPEND;
929 		break;
930 	default:
931 		return;
932 	}
933 
934 	bge_ape_send_event(sc, event | BGE_APE_EVENT_STATUS_DRIVER_EVNT |
935 	    BGE_APE_EVENT_STATUS_STATE_CHNGE);
936 }
937 
938 /*
939  * Map a single buffer address.
940  */
941 
942 static void
943 bge_dma_map_addr(void *arg, bus_dma_segment_t *segs, int nseg, int error)
944 {
945 	struct bge_dmamap_arg *ctx;
946 
947 	if (error)
948 		return;
949 
950 	KASSERT(nseg == 1, ("%s: %d segments returned!", __func__, nseg));
951 
952 	ctx = arg;
953 	ctx->bge_busaddr = segs->ds_addr;
954 }
955 
956 static uint8_t
957 bge_nvram_getbyte(struct bge_softc *sc, int addr, uint8_t *dest)
958 {
959 	uint32_t access, byte = 0;
960 	int i;
961 
962 	/* Lock. */
963 	CSR_WRITE_4(sc, BGE_NVRAM_SWARB, BGE_NVRAMSWARB_SET1);
964 	for (i = 0; i < 8000; i++) {
965 		if (CSR_READ_4(sc, BGE_NVRAM_SWARB) & BGE_NVRAMSWARB_GNT1)
966 			break;
967 		DELAY(20);
968 	}
969 	if (i == 8000)
970 		return (1);
971 
972 	/* Enable access. */
973 	access = CSR_READ_4(sc, BGE_NVRAM_ACCESS);
974 	CSR_WRITE_4(sc, BGE_NVRAM_ACCESS, access | BGE_NVRAMACC_ENABLE);
975 
976 	CSR_WRITE_4(sc, BGE_NVRAM_ADDR, addr & 0xfffffffc);
977 	CSR_WRITE_4(sc, BGE_NVRAM_CMD, BGE_NVRAM_READCMD);
978 	for (i = 0; i < BGE_TIMEOUT * 10; i++) {
979 		DELAY(10);
980 		if (CSR_READ_4(sc, BGE_NVRAM_CMD) & BGE_NVRAMCMD_DONE) {
981 			DELAY(10);
982 			break;
983 		}
984 	}
985 
986 	if (i == BGE_TIMEOUT * 10) {
987 		if_printf(sc->bge_ifp, "nvram read timed out\n");
988 		return (1);
989 	}
990 
991 	/* Get result. */
992 	byte = CSR_READ_4(sc, BGE_NVRAM_RDDATA);
993 
994 	*dest = (bswap32(byte) >> ((addr % 4) * 8)) & 0xFF;
995 
996 	/* Disable access. */
997 	CSR_WRITE_4(sc, BGE_NVRAM_ACCESS, access);
998 
999 	/* Unlock. */
1000 	CSR_WRITE_4(sc, BGE_NVRAM_SWARB, BGE_NVRAMSWARB_CLR1);
1001 	CSR_READ_4(sc, BGE_NVRAM_SWARB);
1002 
1003 	return (0);
1004 }
1005 
1006 /*
1007  * Read a sequence of bytes from NVRAM.
1008  */
1009 static int
1010 bge_read_nvram(struct bge_softc *sc, caddr_t dest, int off, int cnt)
1011 {
1012 	int err = 0, i;
1013 	uint8_t byte = 0;
1014 
1015 	if (sc->bge_asicrev != BGE_ASICREV_BCM5906)
1016 		return (1);
1017 
1018 	for (i = 0; i < cnt; i++) {
1019 		err = bge_nvram_getbyte(sc, off + i, &byte);
1020 		if (err)
1021 			break;
1022 		*(dest + i) = byte;
1023 	}
1024 
1025 	return (err ? 1 : 0);
1026 }
1027 
1028 /*
1029  * Read a byte of data stored in the EEPROM at address 'addr.' The
1030  * BCM570x supports both the traditional bitbang interface and an
1031  * auto access interface for reading the EEPROM. We use the auto
1032  * access method.
1033  */
1034 static uint8_t
1035 bge_eeprom_getbyte(struct bge_softc *sc, int addr, uint8_t *dest)
1036 {
1037 	int i;
1038 	uint32_t byte = 0;
1039 
1040 	/*
1041 	 * Enable use of auto EEPROM access so we can avoid
1042 	 * having to use the bitbang method.
1043 	 */
1044 	BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_AUTO_EEPROM);
1045 
1046 	/* Reset the EEPROM, load the clock period. */
1047 	CSR_WRITE_4(sc, BGE_EE_ADDR,
1048 	    BGE_EEADDR_RESET | BGE_EEHALFCLK(BGE_HALFCLK_384SCL));
1049 	DELAY(20);
1050 
1051 	/* Issue the read EEPROM command. */
1052 	CSR_WRITE_4(sc, BGE_EE_ADDR, BGE_EE_READCMD | addr);
1053 
1054 	/* Wait for completion */
1055 	for(i = 0; i < BGE_TIMEOUT * 10; i++) {
1056 		DELAY(10);
1057 		if (CSR_READ_4(sc, BGE_EE_ADDR) & BGE_EEADDR_DONE)
1058 			break;
1059 	}
1060 
1061 	if (i == BGE_TIMEOUT * 10) {
1062 		device_printf(sc->bge_dev, "EEPROM read timed out\n");
1063 		return (1);
1064 	}
1065 
1066 	/* Get result. */
1067 	byte = CSR_READ_4(sc, BGE_EE_DATA);
1068 
1069 	*dest = (byte >> ((addr % 4) * 8)) & 0xFF;
1070 
1071 	return (0);
1072 }
1073 
1074 /*
1075  * Read a sequence of bytes from the EEPROM.
1076  */
1077 static int
1078 bge_read_eeprom(struct bge_softc *sc, caddr_t dest, int off, int cnt)
1079 {
1080 	int i, error = 0;
1081 	uint8_t byte = 0;
1082 
1083 	for (i = 0; i < cnt; i++) {
1084 		error = bge_eeprom_getbyte(sc, off + i, &byte);
1085 		if (error)
1086 			break;
1087 		*(dest + i) = byte;
1088 	}
1089 
1090 	return (error ? 1 : 0);
1091 }
1092 
1093 static int
1094 bge_miibus_readreg(device_t dev, int phy, int reg)
1095 {
1096 	struct bge_softc *sc;
1097 	uint32_t val;
1098 	int i;
1099 
1100 	sc = device_get_softc(dev);
1101 
1102 	if (bge_ape_lock(sc, sc->bge_phy_ape_lock) != 0)
1103 		return (0);
1104 
1105 	/* Clear the autopoll bit if set, otherwise may trigger PCI errors. */
1106 	if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) {
1107 		CSR_WRITE_4(sc, BGE_MI_MODE,
1108 		    sc->bge_mi_mode & ~BGE_MIMODE_AUTOPOLL);
1109 		DELAY(80);
1110 	}
1111 
1112 	CSR_WRITE_4(sc, BGE_MI_COMM, BGE_MICMD_READ | BGE_MICOMM_BUSY |
1113 	    BGE_MIPHY(phy) | BGE_MIREG(reg));
1114 
1115 	/* Poll for the PHY register access to complete. */
1116 	for (i = 0; i < BGE_TIMEOUT; i++) {
1117 		DELAY(10);
1118 		val = CSR_READ_4(sc, BGE_MI_COMM);
1119 		if ((val & BGE_MICOMM_BUSY) == 0) {
1120 			DELAY(5);
1121 			val = CSR_READ_4(sc, BGE_MI_COMM);
1122 			break;
1123 		}
1124 	}
1125 
1126 	if (i == BGE_TIMEOUT) {
1127 		device_printf(sc->bge_dev,
1128 		    "PHY read timed out (phy %d, reg %d, val 0x%08x)\n",
1129 		    phy, reg, val);
1130 		val = 0;
1131 	}
1132 
1133 	/* Restore the autopoll bit if necessary. */
1134 	if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) {
1135 		CSR_WRITE_4(sc, BGE_MI_MODE, sc->bge_mi_mode);
1136 		DELAY(80);
1137 	}
1138 
1139 	bge_ape_unlock(sc, sc->bge_phy_ape_lock);
1140 
1141 	if (val & BGE_MICOMM_READFAIL)
1142 		return (0);
1143 
1144 	return (val & 0xFFFF);
1145 }
1146 
1147 static int
1148 bge_miibus_writereg(device_t dev, int phy, int reg, int val)
1149 {
1150 	struct bge_softc *sc;
1151 	int i;
1152 
1153 	sc = device_get_softc(dev);
1154 
1155 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906 &&
1156 	    (reg == BRGPHY_MII_1000CTL || reg == BRGPHY_MII_AUXCTL))
1157 		return (0);
1158 
1159 	if (bge_ape_lock(sc, sc->bge_phy_ape_lock) != 0)
1160 		return (0);
1161 
1162 	/* Clear the autopoll bit if set, otherwise may trigger PCI errors. */
1163 	if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) {
1164 		CSR_WRITE_4(sc, BGE_MI_MODE,
1165 		    sc->bge_mi_mode & ~BGE_MIMODE_AUTOPOLL);
1166 		DELAY(80);
1167 	}
1168 
1169 	CSR_WRITE_4(sc, BGE_MI_COMM, BGE_MICMD_WRITE | BGE_MICOMM_BUSY |
1170 	    BGE_MIPHY(phy) | BGE_MIREG(reg) | val);
1171 
1172 	for (i = 0; i < BGE_TIMEOUT; i++) {
1173 		DELAY(10);
1174 		if (!(CSR_READ_4(sc, BGE_MI_COMM) & BGE_MICOMM_BUSY)) {
1175 			DELAY(5);
1176 			CSR_READ_4(sc, BGE_MI_COMM); /* dummy read */
1177 			break;
1178 		}
1179 	}
1180 
1181 	/* Restore the autopoll bit if necessary. */
1182 	if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) {
1183 		CSR_WRITE_4(sc, BGE_MI_MODE, sc->bge_mi_mode);
1184 		DELAY(80);
1185 	}
1186 
1187 	bge_ape_unlock(sc, sc->bge_phy_ape_lock);
1188 
1189 	if (i == BGE_TIMEOUT)
1190 		device_printf(sc->bge_dev,
1191 		    "PHY write timed out (phy %d, reg %d, val 0x%04x)\n",
1192 		    phy, reg, val);
1193 
1194 	return (0);
1195 }
1196 
1197 static void
1198 bge_miibus_statchg(device_t dev)
1199 {
1200 	struct bge_softc *sc;
1201 	struct mii_data *mii;
1202 	uint32_t mac_mode, rx_mode, tx_mode;
1203 
1204 	sc = device_get_softc(dev);
1205 	if ((if_getdrvflags(sc->bge_ifp) & IFF_DRV_RUNNING) == 0)
1206 		return;
1207 	mii = device_get_softc(sc->bge_miibus);
1208 
1209 	if ((mii->mii_media_status & (IFM_ACTIVE | IFM_AVALID)) ==
1210 	    (IFM_ACTIVE | IFM_AVALID)) {
1211 		switch (IFM_SUBTYPE(mii->mii_media_active)) {
1212 		case IFM_10_T:
1213 		case IFM_100_TX:
1214 			sc->bge_link = 1;
1215 			break;
1216 		case IFM_1000_T:
1217 		case IFM_1000_SX:
1218 		case IFM_2500_SX:
1219 			if (sc->bge_asicrev != BGE_ASICREV_BCM5906)
1220 				sc->bge_link = 1;
1221 			else
1222 				sc->bge_link = 0;
1223 			break;
1224 		default:
1225 			sc->bge_link = 0;
1226 			break;
1227 		}
1228 	} else
1229 		sc->bge_link = 0;
1230 	if (sc->bge_link == 0)
1231 		return;
1232 
1233 	/*
1234 	 * APE firmware touches these registers to keep the MAC
1235 	 * connected to the outside world.  Try to keep the
1236 	 * accesses atomic.
1237 	 */
1238 
1239 	/* Set the port mode (MII/GMII) to match the link speed. */
1240 	mac_mode = CSR_READ_4(sc, BGE_MAC_MODE) &
1241 	    ~(BGE_MACMODE_PORTMODE | BGE_MACMODE_HALF_DUPLEX);
1242 	tx_mode = CSR_READ_4(sc, BGE_TX_MODE);
1243 	rx_mode = CSR_READ_4(sc, BGE_RX_MODE);
1244 
1245 	if (IFM_SUBTYPE(mii->mii_media_active) == IFM_1000_T ||
1246 	    IFM_SUBTYPE(mii->mii_media_active) == IFM_1000_SX)
1247 		mac_mode |= BGE_PORTMODE_GMII;
1248 	else
1249 		mac_mode |= BGE_PORTMODE_MII;
1250 
1251 	/* Set MAC flow control behavior to match link flow control settings. */
1252 	tx_mode &= ~BGE_TXMODE_FLOWCTL_ENABLE;
1253 	rx_mode &= ~BGE_RXMODE_FLOWCTL_ENABLE;
1254 	if ((IFM_OPTIONS(mii->mii_media_active) & IFM_FDX) != 0) {
1255 		if ((IFM_OPTIONS(mii->mii_media_active) & IFM_ETH_TXPAUSE) != 0)
1256 			tx_mode |= BGE_TXMODE_FLOWCTL_ENABLE;
1257 		if ((IFM_OPTIONS(mii->mii_media_active) & IFM_ETH_RXPAUSE) != 0)
1258 			rx_mode |= BGE_RXMODE_FLOWCTL_ENABLE;
1259 	} else
1260 		mac_mode |= BGE_MACMODE_HALF_DUPLEX;
1261 
1262 	CSR_WRITE_4(sc, BGE_MAC_MODE, mac_mode);
1263 	DELAY(40);
1264 	CSR_WRITE_4(sc, BGE_TX_MODE, tx_mode);
1265 	CSR_WRITE_4(sc, BGE_RX_MODE, rx_mode);
1266 }
1267 
1268 /*
1269  * Intialize a standard receive ring descriptor.
1270  */
1271 static int
1272 bge_newbuf_std(struct bge_softc *sc, int i)
1273 {
1274 	struct mbuf *m;
1275 	struct bge_rx_bd *r;
1276 	bus_dma_segment_t segs[1];
1277 	bus_dmamap_t map;
1278 	int error, nsegs;
1279 
1280 	if (sc->bge_flags & BGE_FLAG_JUMBO_STD &&
1281 	    (if_getmtu(sc->bge_ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN +
1282 	    ETHER_VLAN_ENCAP_LEN > (MCLBYTES - ETHER_ALIGN))) {
1283 		m = m_getjcl(M_NOWAIT, MT_DATA, M_PKTHDR, MJUM9BYTES);
1284 		if (m == NULL)
1285 			return (ENOBUFS);
1286 		m->m_len = m->m_pkthdr.len = MJUM9BYTES;
1287 	} else {
1288 		m = m_getcl(M_NOWAIT, MT_DATA, M_PKTHDR);
1289 		if (m == NULL)
1290 			return (ENOBUFS);
1291 		m->m_len = m->m_pkthdr.len = MCLBYTES;
1292 	}
1293 	if ((sc->bge_flags & BGE_FLAG_RX_ALIGNBUG) == 0)
1294 		m_adj(m, ETHER_ALIGN);
1295 
1296 	error = bus_dmamap_load_mbuf_sg(sc->bge_cdata.bge_rx_mtag,
1297 	    sc->bge_cdata.bge_rx_std_sparemap, m, segs, &nsegs, 0);
1298 	if (error != 0) {
1299 		m_freem(m);
1300 		return (error);
1301 	}
1302 	if (sc->bge_cdata.bge_rx_std_chain[i] != NULL) {
1303 		bus_dmamap_sync(sc->bge_cdata.bge_rx_mtag,
1304 		    sc->bge_cdata.bge_rx_std_dmamap[i], BUS_DMASYNC_POSTREAD);
1305 		bus_dmamap_unload(sc->bge_cdata.bge_rx_mtag,
1306 		    sc->bge_cdata.bge_rx_std_dmamap[i]);
1307 	}
1308 	map = sc->bge_cdata.bge_rx_std_dmamap[i];
1309 	sc->bge_cdata.bge_rx_std_dmamap[i] = sc->bge_cdata.bge_rx_std_sparemap;
1310 	sc->bge_cdata.bge_rx_std_sparemap = map;
1311 	sc->bge_cdata.bge_rx_std_chain[i] = m;
1312 	sc->bge_cdata.bge_rx_std_seglen[i] = segs[0].ds_len;
1313 	r = &sc->bge_ldata.bge_rx_std_ring[sc->bge_std];
1314 	r->bge_addr.bge_addr_lo = BGE_ADDR_LO(segs[0].ds_addr);
1315 	r->bge_addr.bge_addr_hi = BGE_ADDR_HI(segs[0].ds_addr);
1316 	r->bge_flags = BGE_RXBDFLAG_END;
1317 	r->bge_len = segs[0].ds_len;
1318 	r->bge_idx = i;
1319 
1320 	bus_dmamap_sync(sc->bge_cdata.bge_rx_mtag,
1321 	    sc->bge_cdata.bge_rx_std_dmamap[i], BUS_DMASYNC_PREREAD);
1322 
1323 	return (0);
1324 }
1325 
1326 /*
1327  * Initialize a jumbo receive ring descriptor. This allocates
1328  * a jumbo buffer from the pool managed internally by the driver.
1329  */
1330 static int
1331 bge_newbuf_jumbo(struct bge_softc *sc, int i)
1332 {
1333 	bus_dma_segment_t segs[BGE_NSEG_JUMBO];
1334 	bus_dmamap_t map;
1335 	struct bge_extrx_bd *r;
1336 	struct mbuf *m;
1337 	int error, nsegs;
1338 
1339 	MGETHDR(m, M_NOWAIT, MT_DATA);
1340 	if (m == NULL)
1341 		return (ENOBUFS);
1342 
1343 	if (m_cljget(m, M_NOWAIT, MJUM9BYTES) == NULL) {
1344 		m_freem(m);
1345 		return (ENOBUFS);
1346 	}
1347 	m->m_len = m->m_pkthdr.len = MJUM9BYTES;
1348 	if ((sc->bge_flags & BGE_FLAG_RX_ALIGNBUG) == 0)
1349 		m_adj(m, ETHER_ALIGN);
1350 
1351 	error = bus_dmamap_load_mbuf_sg(sc->bge_cdata.bge_mtag_jumbo,
1352 	    sc->bge_cdata.bge_rx_jumbo_sparemap, m, segs, &nsegs, 0);
1353 	if (error != 0) {
1354 		m_freem(m);
1355 		return (error);
1356 	}
1357 
1358 	if (sc->bge_cdata.bge_rx_jumbo_chain[i] != NULL) {
1359 		bus_dmamap_sync(sc->bge_cdata.bge_mtag_jumbo,
1360 		    sc->bge_cdata.bge_rx_jumbo_dmamap[i], BUS_DMASYNC_POSTREAD);
1361 		bus_dmamap_unload(sc->bge_cdata.bge_mtag_jumbo,
1362 		    sc->bge_cdata.bge_rx_jumbo_dmamap[i]);
1363 	}
1364 	map = sc->bge_cdata.bge_rx_jumbo_dmamap[i];
1365 	sc->bge_cdata.bge_rx_jumbo_dmamap[i] =
1366 	    sc->bge_cdata.bge_rx_jumbo_sparemap;
1367 	sc->bge_cdata.bge_rx_jumbo_sparemap = map;
1368 	sc->bge_cdata.bge_rx_jumbo_chain[i] = m;
1369 	sc->bge_cdata.bge_rx_jumbo_seglen[i][0] = 0;
1370 	sc->bge_cdata.bge_rx_jumbo_seglen[i][1] = 0;
1371 	sc->bge_cdata.bge_rx_jumbo_seglen[i][2] = 0;
1372 	sc->bge_cdata.bge_rx_jumbo_seglen[i][3] = 0;
1373 
1374 	/*
1375 	 * Fill in the extended RX buffer descriptor.
1376 	 */
1377 	r = &sc->bge_ldata.bge_rx_jumbo_ring[sc->bge_jumbo];
1378 	r->bge_flags = BGE_RXBDFLAG_JUMBO_RING | BGE_RXBDFLAG_END;
1379 	r->bge_idx = i;
1380 	r->bge_len3 = r->bge_len2 = r->bge_len1 = 0;
1381 	switch (nsegs) {
1382 	case 4:
1383 		r->bge_addr3.bge_addr_lo = BGE_ADDR_LO(segs[3].ds_addr);
1384 		r->bge_addr3.bge_addr_hi = BGE_ADDR_HI(segs[3].ds_addr);
1385 		r->bge_len3 = segs[3].ds_len;
1386 		sc->bge_cdata.bge_rx_jumbo_seglen[i][3] = segs[3].ds_len;
1387 	case 3:
1388 		r->bge_addr2.bge_addr_lo = BGE_ADDR_LO(segs[2].ds_addr);
1389 		r->bge_addr2.bge_addr_hi = BGE_ADDR_HI(segs[2].ds_addr);
1390 		r->bge_len2 = segs[2].ds_len;
1391 		sc->bge_cdata.bge_rx_jumbo_seglen[i][2] = segs[2].ds_len;
1392 	case 2:
1393 		r->bge_addr1.bge_addr_lo = BGE_ADDR_LO(segs[1].ds_addr);
1394 		r->bge_addr1.bge_addr_hi = BGE_ADDR_HI(segs[1].ds_addr);
1395 		r->bge_len1 = segs[1].ds_len;
1396 		sc->bge_cdata.bge_rx_jumbo_seglen[i][1] = segs[1].ds_len;
1397 	case 1:
1398 		r->bge_addr0.bge_addr_lo = BGE_ADDR_LO(segs[0].ds_addr);
1399 		r->bge_addr0.bge_addr_hi = BGE_ADDR_HI(segs[0].ds_addr);
1400 		r->bge_len0 = segs[0].ds_len;
1401 		sc->bge_cdata.bge_rx_jumbo_seglen[i][0] = segs[0].ds_len;
1402 		break;
1403 	default:
1404 		panic("%s: %d segments\n", __func__, nsegs);
1405 	}
1406 
1407 	bus_dmamap_sync(sc->bge_cdata.bge_mtag_jumbo,
1408 	    sc->bge_cdata.bge_rx_jumbo_dmamap[i], BUS_DMASYNC_PREREAD);
1409 
1410 	return (0);
1411 }
1412 
1413 static int
1414 bge_init_rx_ring_std(struct bge_softc *sc)
1415 {
1416 	int error, i;
1417 
1418 	bzero(sc->bge_ldata.bge_rx_std_ring, BGE_STD_RX_RING_SZ);
1419 	sc->bge_std = 0;
1420 	for (i = 0; i < BGE_STD_RX_RING_CNT; i++) {
1421 		if ((error = bge_newbuf_std(sc, i)) != 0)
1422 			return (error);
1423 		BGE_INC(sc->bge_std, BGE_STD_RX_RING_CNT);
1424 	}
1425 
1426 	bus_dmamap_sync(sc->bge_cdata.bge_rx_std_ring_tag,
1427 	    sc->bge_cdata.bge_rx_std_ring_map, BUS_DMASYNC_PREWRITE);
1428 
1429 	sc->bge_std = 0;
1430 	bge_writembx(sc, BGE_MBX_RX_STD_PROD_LO, BGE_STD_RX_RING_CNT - 1);
1431 
1432 	return (0);
1433 }
1434 
1435 static void
1436 bge_free_rx_ring_std(struct bge_softc *sc)
1437 {
1438 	int i;
1439 
1440 	for (i = 0; i < BGE_STD_RX_RING_CNT; i++) {
1441 		if (sc->bge_cdata.bge_rx_std_chain[i] != NULL) {
1442 			bus_dmamap_sync(sc->bge_cdata.bge_rx_mtag,
1443 			    sc->bge_cdata.bge_rx_std_dmamap[i],
1444 			    BUS_DMASYNC_POSTREAD);
1445 			bus_dmamap_unload(sc->bge_cdata.bge_rx_mtag,
1446 			    sc->bge_cdata.bge_rx_std_dmamap[i]);
1447 			m_freem(sc->bge_cdata.bge_rx_std_chain[i]);
1448 			sc->bge_cdata.bge_rx_std_chain[i] = NULL;
1449 		}
1450 		bzero((char *)&sc->bge_ldata.bge_rx_std_ring[i],
1451 		    sizeof(struct bge_rx_bd));
1452 	}
1453 }
1454 
1455 static int
1456 bge_init_rx_ring_jumbo(struct bge_softc *sc)
1457 {
1458 	struct bge_rcb *rcb;
1459 	int error, i;
1460 
1461 	bzero(sc->bge_ldata.bge_rx_jumbo_ring, BGE_JUMBO_RX_RING_SZ);
1462 	sc->bge_jumbo = 0;
1463 	for (i = 0; i < BGE_JUMBO_RX_RING_CNT; i++) {
1464 		if ((error = bge_newbuf_jumbo(sc, i)) != 0)
1465 			return (error);
1466 		BGE_INC(sc->bge_jumbo, BGE_JUMBO_RX_RING_CNT);
1467 	}
1468 
1469 	bus_dmamap_sync(sc->bge_cdata.bge_rx_jumbo_ring_tag,
1470 	    sc->bge_cdata.bge_rx_jumbo_ring_map, BUS_DMASYNC_PREWRITE);
1471 
1472 	sc->bge_jumbo = 0;
1473 
1474 	/* Enable the jumbo receive producer ring. */
1475 	rcb = &sc->bge_ldata.bge_info.bge_jumbo_rx_rcb;
1476 	rcb->bge_maxlen_flags =
1477 	    BGE_RCB_MAXLEN_FLAGS(0, BGE_RCB_FLAG_USE_EXT_RX_BD);
1478 	CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_MAXLEN_FLAGS, rcb->bge_maxlen_flags);
1479 
1480 	bge_writembx(sc, BGE_MBX_RX_JUMBO_PROD_LO, BGE_JUMBO_RX_RING_CNT - 1);
1481 
1482 	return (0);
1483 }
1484 
1485 static void
1486 bge_free_rx_ring_jumbo(struct bge_softc *sc)
1487 {
1488 	int i;
1489 
1490 	for (i = 0; i < BGE_JUMBO_RX_RING_CNT; i++) {
1491 		if (sc->bge_cdata.bge_rx_jumbo_chain[i] != NULL) {
1492 			bus_dmamap_sync(sc->bge_cdata.bge_mtag_jumbo,
1493 			    sc->bge_cdata.bge_rx_jumbo_dmamap[i],
1494 			    BUS_DMASYNC_POSTREAD);
1495 			bus_dmamap_unload(sc->bge_cdata.bge_mtag_jumbo,
1496 			    sc->bge_cdata.bge_rx_jumbo_dmamap[i]);
1497 			m_freem(sc->bge_cdata.bge_rx_jumbo_chain[i]);
1498 			sc->bge_cdata.bge_rx_jumbo_chain[i] = NULL;
1499 		}
1500 		bzero((char *)&sc->bge_ldata.bge_rx_jumbo_ring[i],
1501 		    sizeof(struct bge_extrx_bd));
1502 	}
1503 }
1504 
1505 static void
1506 bge_free_tx_ring(struct bge_softc *sc)
1507 {
1508 	int i;
1509 
1510 	if (sc->bge_ldata.bge_tx_ring == NULL)
1511 		return;
1512 
1513 	for (i = 0; i < BGE_TX_RING_CNT; i++) {
1514 		if (sc->bge_cdata.bge_tx_chain[i] != NULL) {
1515 			bus_dmamap_sync(sc->bge_cdata.bge_tx_mtag,
1516 			    sc->bge_cdata.bge_tx_dmamap[i],
1517 			    BUS_DMASYNC_POSTWRITE);
1518 			bus_dmamap_unload(sc->bge_cdata.bge_tx_mtag,
1519 			    sc->bge_cdata.bge_tx_dmamap[i]);
1520 			m_freem(sc->bge_cdata.bge_tx_chain[i]);
1521 			sc->bge_cdata.bge_tx_chain[i] = NULL;
1522 		}
1523 		bzero((char *)&sc->bge_ldata.bge_tx_ring[i],
1524 		    sizeof(struct bge_tx_bd));
1525 	}
1526 }
1527 
1528 static int
1529 bge_init_tx_ring(struct bge_softc *sc)
1530 {
1531 	sc->bge_txcnt = 0;
1532 	sc->bge_tx_saved_considx = 0;
1533 
1534 	bzero(sc->bge_ldata.bge_tx_ring, BGE_TX_RING_SZ);
1535 	bus_dmamap_sync(sc->bge_cdata.bge_tx_ring_tag,
1536 	    sc->bge_cdata.bge_tx_ring_map, BUS_DMASYNC_PREWRITE);
1537 
1538 	/* Initialize transmit producer index for host-memory send ring. */
1539 	sc->bge_tx_prodidx = 0;
1540 	bge_writembx(sc, BGE_MBX_TX_HOST_PROD0_LO, sc->bge_tx_prodidx);
1541 
1542 	/* 5700 b2 errata */
1543 	if (sc->bge_chiprev == BGE_CHIPREV_5700_BX)
1544 		bge_writembx(sc, BGE_MBX_TX_HOST_PROD0_LO, sc->bge_tx_prodidx);
1545 
1546 	/* NIC-memory send ring not used; initialize to zero. */
1547 	bge_writembx(sc, BGE_MBX_TX_NIC_PROD0_LO, 0);
1548 	/* 5700 b2 errata */
1549 	if (sc->bge_chiprev == BGE_CHIPREV_5700_BX)
1550 		bge_writembx(sc, BGE_MBX_TX_NIC_PROD0_LO, 0);
1551 
1552 	return (0);
1553 }
1554 
1555 static void
1556 bge_setpromisc(struct bge_softc *sc)
1557 {
1558 	if_t ifp;
1559 
1560 	BGE_LOCK_ASSERT(sc);
1561 
1562 	ifp = sc->bge_ifp;
1563 
1564 	/* Enable or disable promiscuous mode as needed. */
1565 	if (if_getflags(ifp) & IFF_PROMISC)
1566 		BGE_SETBIT(sc, BGE_RX_MODE, BGE_RXMODE_RX_PROMISC);
1567 	else
1568 		BGE_CLRBIT(sc, BGE_RX_MODE, BGE_RXMODE_RX_PROMISC);
1569 }
1570 
1571 static u_int
1572 bge_hash_maddr(void *arg, struct sockaddr_dl *sdl, u_int cnt)
1573 {
1574 	uint32_t *hashes = arg;
1575 	int h;
1576 
1577 	h = ether_crc32_le(LLADDR(sdl), ETHER_ADDR_LEN) & 0x7F;
1578 	hashes[(h & 0x60) >> 5] |= 1 << (h & 0x1F);
1579 
1580 	return (1);
1581 }
1582 
1583 static void
1584 bge_setmulti(struct bge_softc *sc)
1585 {
1586 	if_t ifp;
1587 	uint32_t hashes[4] = { 0, 0, 0, 0 };
1588 	int i;
1589 
1590 	BGE_LOCK_ASSERT(sc);
1591 
1592 	ifp = sc->bge_ifp;
1593 
1594 	if (if_getflags(ifp) & IFF_ALLMULTI || if_getflags(ifp) & IFF_PROMISC) {
1595 		for (i = 0; i < 4; i++)
1596 			CSR_WRITE_4(sc, BGE_MAR0 + (i * 4), 0xFFFFFFFF);
1597 		return;
1598 	}
1599 
1600 	/* First, zot all the existing filters. */
1601 	for (i = 0; i < 4; i++)
1602 		CSR_WRITE_4(sc, BGE_MAR0 + (i * 4), 0);
1603 
1604 	if_foreach_llmaddr(ifp, bge_hash_maddr, hashes);
1605 
1606 	for (i = 0; i < 4; i++)
1607 		CSR_WRITE_4(sc, BGE_MAR0 + (i * 4), hashes[i]);
1608 }
1609 
1610 static void
1611 bge_setvlan(struct bge_softc *sc)
1612 {
1613 	if_t ifp;
1614 
1615 	BGE_LOCK_ASSERT(sc);
1616 
1617 	ifp = sc->bge_ifp;
1618 
1619 	/* Enable or disable VLAN tag stripping as needed. */
1620 	if (if_getcapenable(ifp) & IFCAP_VLAN_HWTAGGING)
1621 		BGE_CLRBIT(sc, BGE_RX_MODE, BGE_RXMODE_RX_KEEP_VLAN_DIAG);
1622 	else
1623 		BGE_SETBIT(sc, BGE_RX_MODE, BGE_RXMODE_RX_KEEP_VLAN_DIAG);
1624 }
1625 
1626 static void
1627 bge_sig_pre_reset(struct bge_softc *sc, int type)
1628 {
1629 
1630 	/*
1631 	 * Some chips don't like this so only do this if ASF is enabled
1632 	 */
1633 	if (sc->bge_asf_mode)
1634 		bge_writemem_ind(sc, BGE_SRAM_FW_MB, BGE_SRAM_FW_MB_MAGIC);
1635 
1636 	if (sc->bge_asf_mode & ASF_NEW_HANDSHAKE) {
1637 		switch (type) {
1638 		case BGE_RESET_START:
1639 			bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB,
1640 			    BGE_FW_DRV_STATE_START);
1641 			break;
1642 		case BGE_RESET_SHUTDOWN:
1643 			bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB,
1644 			    BGE_FW_DRV_STATE_UNLOAD);
1645 			break;
1646 		case BGE_RESET_SUSPEND:
1647 			bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB,
1648 			    BGE_FW_DRV_STATE_SUSPEND);
1649 			break;
1650 		}
1651 	}
1652 
1653 	if (type == BGE_RESET_START || type == BGE_RESET_SUSPEND)
1654 		bge_ape_driver_state_change(sc, type);
1655 }
1656 
1657 static void
1658 bge_sig_post_reset(struct bge_softc *sc, int type)
1659 {
1660 
1661 	if (sc->bge_asf_mode & ASF_NEW_HANDSHAKE) {
1662 		switch (type) {
1663 		case BGE_RESET_START:
1664 			bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB,
1665 			    BGE_FW_DRV_STATE_START_DONE);
1666 			/* START DONE */
1667 			break;
1668 		case BGE_RESET_SHUTDOWN:
1669 			bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB,
1670 			    BGE_FW_DRV_STATE_UNLOAD_DONE);
1671 			break;
1672 		}
1673 	}
1674 	if (type == BGE_RESET_SHUTDOWN)
1675 		bge_ape_driver_state_change(sc, type);
1676 }
1677 
1678 static void
1679 bge_sig_legacy(struct bge_softc *sc, int type)
1680 {
1681 
1682 	if (sc->bge_asf_mode) {
1683 		switch (type) {
1684 		case BGE_RESET_START:
1685 			bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB,
1686 			    BGE_FW_DRV_STATE_START);
1687 			break;
1688 		case BGE_RESET_SHUTDOWN:
1689 			bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB,
1690 			    BGE_FW_DRV_STATE_UNLOAD);
1691 			break;
1692 		}
1693 	}
1694 }
1695 
1696 static void
1697 bge_stop_fw(struct bge_softc *sc)
1698 {
1699 	int i;
1700 
1701 	if (sc->bge_asf_mode) {
1702 		bge_writemem_ind(sc, BGE_SRAM_FW_CMD_MB, BGE_FW_CMD_PAUSE);
1703 		CSR_WRITE_4(sc, BGE_RX_CPU_EVENT,
1704 		    CSR_READ_4(sc, BGE_RX_CPU_EVENT) | BGE_RX_CPU_DRV_EVENT);
1705 
1706 		for (i = 0; i < 100; i++ ) {
1707 			if (!(CSR_READ_4(sc, BGE_RX_CPU_EVENT) &
1708 			    BGE_RX_CPU_DRV_EVENT))
1709 				break;
1710 			DELAY(10);
1711 		}
1712 	}
1713 }
1714 
1715 static uint32_t
1716 bge_dma_swap_options(struct bge_softc *sc)
1717 {
1718 	uint32_t dma_options;
1719 
1720 	dma_options = BGE_MODECTL_WORDSWAP_NONFRAME |
1721 	    BGE_MODECTL_BYTESWAP_DATA | BGE_MODECTL_WORDSWAP_DATA;
1722 #if BYTE_ORDER == BIG_ENDIAN
1723 	dma_options |= BGE_MODECTL_BYTESWAP_NONFRAME;
1724 #endif
1725 	return (dma_options);
1726 }
1727 
1728 /*
1729  * Do endian, PCI and DMA initialization.
1730  */
1731 static int
1732 bge_chipinit(struct bge_softc *sc)
1733 {
1734 	uint32_t dma_rw_ctl, misc_ctl, mode_ctl;
1735 	uint16_t val;
1736 	int i;
1737 
1738 	/* Set endianness before we access any non-PCI registers. */
1739 	misc_ctl = BGE_INIT;
1740 	if (sc->bge_flags & BGE_FLAG_TAGGED_STATUS)
1741 		misc_ctl |= BGE_PCIMISCCTL_TAGGED_STATUS;
1742 	pci_write_config(sc->bge_dev, BGE_PCI_MISC_CTL, misc_ctl, 4);
1743 
1744 	/*
1745 	 * Clear the MAC statistics block in the NIC's
1746 	 * internal memory.
1747 	 */
1748 	for (i = BGE_STATS_BLOCK;
1749 	    i < BGE_STATS_BLOCK_END + 1; i += sizeof(uint32_t))
1750 		BGE_MEMWIN_WRITE(sc, i, 0);
1751 
1752 	for (i = BGE_STATUS_BLOCK;
1753 	    i < BGE_STATUS_BLOCK_END + 1; i += sizeof(uint32_t))
1754 		BGE_MEMWIN_WRITE(sc, i, 0);
1755 
1756 	if (sc->bge_chiprev == BGE_CHIPREV_5704_BX) {
1757 		/*
1758 		 *  Fix data corruption caused by non-qword write with WB.
1759 		 *  Fix master abort in PCI mode.
1760 		 *  Fix PCI latency timer.
1761 		 */
1762 		val = pci_read_config(sc->bge_dev, BGE_PCI_MSI_DATA + 2, 2);
1763 		val |= (1 << 10) | (1 << 12) | (1 << 13);
1764 		pci_write_config(sc->bge_dev, BGE_PCI_MSI_DATA + 2, val, 2);
1765 	}
1766 
1767 	if (sc->bge_asicrev == BGE_ASICREV_BCM57765 ||
1768 	    sc->bge_asicrev == BGE_ASICREV_BCM57766) {
1769 		/*
1770 		 * For the 57766 and non Ax versions of 57765, bootcode
1771 		 * needs to setup the PCIE Fast Training Sequence (FTS)
1772 		 * value to prevent transmit hangs.
1773 		 */
1774 		if (sc->bge_chiprev != BGE_CHIPREV_57765_AX) {
1775 			CSR_WRITE_4(sc, BGE_CPMU_PADRNG_CTL,
1776 			    CSR_READ_4(sc, BGE_CPMU_PADRNG_CTL) |
1777 			    BGE_CPMU_PADRNG_CTL_RDIV2);
1778 		}
1779 	}
1780 
1781 	/*
1782 	 * Set up the PCI DMA control register.
1783 	 */
1784 	dma_rw_ctl = BGE_PCIDMARWCTL_RD_CMD_SHIFT(6) |
1785 	    BGE_PCIDMARWCTL_WR_CMD_SHIFT(7);
1786 	if (sc->bge_flags & BGE_FLAG_PCIE) {
1787 		if (sc->bge_mps >= 256)
1788 			dma_rw_ctl |= BGE_PCIDMARWCTL_WR_WAT_SHIFT(7);
1789 		else
1790 			dma_rw_ctl |= BGE_PCIDMARWCTL_WR_WAT_SHIFT(3);
1791 	} else if (sc->bge_flags & BGE_FLAG_PCIX) {
1792 		if (BGE_IS_5714_FAMILY(sc)) {
1793 			/* 256 bytes for read and write. */
1794 			dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(2) |
1795 			    BGE_PCIDMARWCTL_WR_WAT_SHIFT(2);
1796 			dma_rw_ctl |= (sc->bge_asicrev == BGE_ASICREV_BCM5780) ?
1797 			    BGE_PCIDMARWCTL_ONEDMA_ATONCE_GLOBAL :
1798 			    BGE_PCIDMARWCTL_ONEDMA_ATONCE_LOCAL;
1799 		} else if (sc->bge_asicrev == BGE_ASICREV_BCM5703) {
1800 			/*
1801 			 * In the BCM5703, the DMA read watermark should
1802 			 * be set to less than or equal to the maximum
1803 			 * memory read byte count of the PCI-X command
1804 			 * register.
1805 			 */
1806 			dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(4) |
1807 			    BGE_PCIDMARWCTL_WR_WAT_SHIFT(3);
1808 		} else if (sc->bge_asicrev == BGE_ASICREV_BCM5704) {
1809 			/* 1536 bytes for read, 384 bytes for write. */
1810 			dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(7) |
1811 			    BGE_PCIDMARWCTL_WR_WAT_SHIFT(3);
1812 		} else {
1813 			/* 384 bytes for read and write. */
1814 			dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(3) |
1815 			    BGE_PCIDMARWCTL_WR_WAT_SHIFT(3) |
1816 			    0x0F;
1817 		}
1818 		if (sc->bge_asicrev == BGE_ASICREV_BCM5703 ||
1819 		    sc->bge_asicrev == BGE_ASICREV_BCM5704) {
1820 			uint32_t tmp;
1821 
1822 			/* Set ONE_DMA_AT_ONCE for hardware workaround. */
1823 			tmp = CSR_READ_4(sc, BGE_PCI_CLKCTL) & 0x1F;
1824 			if (tmp == 6 || tmp == 7)
1825 				dma_rw_ctl |=
1826 				    BGE_PCIDMARWCTL_ONEDMA_ATONCE_GLOBAL;
1827 
1828 			/* Set PCI-X DMA write workaround. */
1829 			dma_rw_ctl |= BGE_PCIDMARWCTL_ASRT_ALL_BE;
1830 		}
1831 	} else {
1832 		/* Conventional PCI bus: 256 bytes for read and write. */
1833 		dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(7) |
1834 		    BGE_PCIDMARWCTL_WR_WAT_SHIFT(7);
1835 
1836 		if (sc->bge_asicrev != BGE_ASICREV_BCM5705 &&
1837 		    sc->bge_asicrev != BGE_ASICREV_BCM5750)
1838 			dma_rw_ctl |= 0x0F;
1839 	}
1840 	if (sc->bge_asicrev == BGE_ASICREV_BCM5700 ||
1841 	    sc->bge_asicrev == BGE_ASICREV_BCM5701)
1842 		dma_rw_ctl |= BGE_PCIDMARWCTL_USE_MRM |
1843 		    BGE_PCIDMARWCTL_ASRT_ALL_BE;
1844 	if (sc->bge_asicrev == BGE_ASICREV_BCM5703 ||
1845 	    sc->bge_asicrev == BGE_ASICREV_BCM5704)
1846 		dma_rw_ctl &= ~BGE_PCIDMARWCTL_MINDMA;
1847 	if (BGE_IS_5717_PLUS(sc)) {
1848 		dma_rw_ctl &= ~BGE_PCIDMARWCTL_DIS_CACHE_ALIGNMENT;
1849 		if (sc->bge_chipid == BGE_CHIPID_BCM57765_A0)
1850 			dma_rw_ctl &= ~BGE_PCIDMARWCTL_CRDRDR_RDMA_MRRS_MSK;
1851 		/*
1852 		 * Enable HW workaround for controllers that misinterpret
1853 		 * a status tag update and leave interrupts permanently
1854 		 * disabled.
1855 		 */
1856 		if (!BGE_IS_57765_PLUS(sc) &&
1857 		    sc->bge_asicrev != BGE_ASICREV_BCM5717 &&
1858 		    sc->bge_asicrev != BGE_ASICREV_BCM5762)
1859 			dma_rw_ctl |= BGE_PCIDMARWCTL_TAGGED_STATUS_WA;
1860 	}
1861 	pci_write_config(sc->bge_dev, BGE_PCI_DMA_RW_CTL, dma_rw_ctl, 4);
1862 
1863 	/*
1864 	 * Set up general mode register.
1865 	 */
1866 	mode_ctl = bge_dma_swap_options(sc);
1867 	if (sc->bge_asicrev == BGE_ASICREV_BCM5720 ||
1868 	    sc->bge_asicrev == BGE_ASICREV_BCM5762) {
1869 		/* Retain Host-2-BMC settings written by APE firmware. */
1870 		mode_ctl |= CSR_READ_4(sc, BGE_MODE_CTL) &
1871 		    (BGE_MODECTL_BYTESWAP_B2HRX_DATA |
1872 		    BGE_MODECTL_WORDSWAP_B2HRX_DATA |
1873 		    BGE_MODECTL_B2HRX_ENABLE | BGE_MODECTL_HTX2B_ENABLE);
1874 	}
1875 	mode_ctl |= BGE_MODECTL_MAC_ATTN_INTR | BGE_MODECTL_HOST_SEND_BDS |
1876 	    BGE_MODECTL_TX_NO_PHDR_CSUM;
1877 
1878 	/*
1879 	 * BCM5701 B5 have a bug causing data corruption when using
1880 	 * 64-bit DMA reads, which can be terminated early and then
1881 	 * completed later as 32-bit accesses, in combination with
1882 	 * certain bridges.
1883 	 */
1884 	if (sc->bge_asicrev == BGE_ASICREV_BCM5701 &&
1885 	    sc->bge_chipid == BGE_CHIPID_BCM5701_B5)
1886 		mode_ctl |= BGE_MODECTL_FORCE_PCI32;
1887 
1888 	/*
1889 	 * Tell the firmware the driver is running
1890 	 */
1891 	if (sc->bge_asf_mode & ASF_STACKUP)
1892 		mode_ctl |= BGE_MODECTL_STACKUP;
1893 
1894 	CSR_WRITE_4(sc, BGE_MODE_CTL, mode_ctl);
1895 
1896 	/*
1897 	 * Disable memory write invalidate.  Apparently it is not supported
1898 	 * properly by these devices.
1899 	 */
1900 	PCI_CLRBIT(sc->bge_dev, BGE_PCI_CMD, PCIM_CMD_MWIEN, 4);
1901 
1902 	/* Set the timer prescaler (always 66 MHz). */
1903 	CSR_WRITE_4(sc, BGE_MISC_CFG, BGE_32BITTIME_66MHZ);
1904 
1905 	/* XXX: The Linux tg3 driver does this at the start of brgphy_reset. */
1906 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906) {
1907 		DELAY(40);	/* XXX */
1908 
1909 		/* Put PHY into ready state */
1910 		BGE_CLRBIT(sc, BGE_MISC_CFG, BGE_MISCCFG_EPHY_IDDQ);
1911 		CSR_READ_4(sc, BGE_MISC_CFG); /* Flush */
1912 		DELAY(40);
1913 	}
1914 
1915 	return (0);
1916 }
1917 
1918 static int
1919 bge_blockinit(struct bge_softc *sc)
1920 {
1921 	struct bge_rcb *rcb;
1922 	bus_size_t vrcb;
1923 	caddr_t	lladdr;
1924 	bge_hostaddr taddr;
1925 	uint32_t dmactl, rdmareg, val;
1926 	int i, limit;
1927 
1928 	/*
1929 	 * Initialize the memory window pointer register so that
1930 	 * we can access the first 32K of internal NIC RAM. This will
1931 	 * allow us to set up the TX send ring RCBs and the RX return
1932 	 * ring RCBs, plus other things which live in NIC memory.
1933 	 */
1934 	CSR_WRITE_4(sc, BGE_PCI_MEMWIN_BASEADDR, 0);
1935 
1936 	/* Note: the BCM5704 has a smaller mbuf space than other chips. */
1937 
1938 	if (!(BGE_IS_5705_PLUS(sc))) {
1939 		/* Configure mbuf memory pool */
1940 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_BASEADDR, BGE_BUFFPOOL_1);
1941 		if (sc->bge_asicrev == BGE_ASICREV_BCM5704)
1942 			CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_LEN, 0x10000);
1943 		else
1944 			CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_LEN, 0x18000);
1945 
1946 		/* Configure DMA resource pool */
1947 		CSR_WRITE_4(sc, BGE_BMAN_DMA_DESCPOOL_BASEADDR,
1948 		    BGE_DMA_DESCRIPTORS);
1949 		CSR_WRITE_4(sc, BGE_BMAN_DMA_DESCPOOL_LEN, 0x2000);
1950 	}
1951 
1952 	/* Configure mbuf pool watermarks */
1953 	if (BGE_IS_5717_PLUS(sc)) {
1954 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_READDMA_LOWAT, 0x0);
1955 		if (if_getmtu(sc->bge_ifp) > ETHERMTU) {
1956 			CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x7e);
1957 			CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0xea);
1958 		} else {
1959 			CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x2a);
1960 			CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0xa0);
1961 		}
1962 	} else if (!BGE_IS_5705_PLUS(sc)) {
1963 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_READDMA_LOWAT, 0x50);
1964 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x20);
1965 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0x60);
1966 	} else if (sc->bge_asicrev == BGE_ASICREV_BCM5906) {
1967 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_READDMA_LOWAT, 0x0);
1968 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x04);
1969 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0x10);
1970 	} else {
1971 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_READDMA_LOWAT, 0x0);
1972 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x10);
1973 		CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0x60);
1974 	}
1975 
1976 	/* Configure DMA resource watermarks */
1977 	CSR_WRITE_4(sc, BGE_BMAN_DMA_DESCPOOL_LOWAT, 5);
1978 	CSR_WRITE_4(sc, BGE_BMAN_DMA_DESCPOOL_HIWAT, 10);
1979 
1980 	/* Enable buffer manager */
1981 	val = BGE_BMANMODE_ENABLE | BGE_BMANMODE_LOMBUF_ATTN;
1982 	/*
1983 	 * Change the arbitration algorithm of TXMBUF read request to
1984 	 * round-robin instead of priority based for BCM5719.  When
1985 	 * TXFIFO is almost empty, RDMA will hold its request until
1986 	 * TXFIFO is not almost empty.
1987 	 */
1988 	if (sc->bge_asicrev == BGE_ASICREV_BCM5719)
1989 		val |= BGE_BMANMODE_NO_TX_UNDERRUN;
1990 	CSR_WRITE_4(sc, BGE_BMAN_MODE, val);
1991 
1992 	/* Poll for buffer manager start indication */
1993 	for (i = 0; i < BGE_TIMEOUT; i++) {
1994 		DELAY(10);
1995 		if (CSR_READ_4(sc, BGE_BMAN_MODE) & BGE_BMANMODE_ENABLE)
1996 			break;
1997 	}
1998 
1999 	if (i == BGE_TIMEOUT) {
2000 		device_printf(sc->bge_dev, "buffer manager failed to start\n");
2001 		return (ENXIO);
2002 	}
2003 
2004 	/* Enable flow-through queues */
2005 	CSR_WRITE_4(sc, BGE_FTQ_RESET, 0xFFFFFFFF);
2006 	CSR_WRITE_4(sc, BGE_FTQ_RESET, 0);
2007 
2008 	/* Wait until queue initialization is complete */
2009 	for (i = 0; i < BGE_TIMEOUT; i++) {
2010 		DELAY(10);
2011 		if (CSR_READ_4(sc, BGE_FTQ_RESET) == 0)
2012 			break;
2013 	}
2014 
2015 	if (i == BGE_TIMEOUT) {
2016 		device_printf(sc->bge_dev, "flow-through queue init failed\n");
2017 		return (ENXIO);
2018 	}
2019 
2020 	/*
2021 	 * Summary of rings supported by the controller:
2022 	 *
2023 	 * Standard Receive Producer Ring
2024 	 * - This ring is used to feed receive buffers for "standard"
2025 	 *   sized frames (typically 1536 bytes) to the controller.
2026 	 *
2027 	 * Jumbo Receive Producer Ring
2028 	 * - This ring is used to feed receive buffers for jumbo sized
2029 	 *   frames (i.e. anything bigger than the "standard" frames)
2030 	 *   to the controller.
2031 	 *
2032 	 * Mini Receive Producer Ring
2033 	 * - This ring is used to feed receive buffers for "mini"
2034 	 *   sized frames to the controller.
2035 	 * - This feature required external memory for the controller
2036 	 *   but was never used in a production system.  Should always
2037 	 *   be disabled.
2038 	 *
2039 	 * Receive Return Ring
2040 	 * - After the controller has placed an incoming frame into a
2041 	 *   receive buffer that buffer is moved into a receive return
2042 	 *   ring.  The driver is then responsible to passing the
2043 	 *   buffer up to the stack.  Many versions of the controller
2044 	 *   support multiple RR rings.
2045 	 *
2046 	 * Send Ring
2047 	 * - This ring is used for outgoing frames.  Many versions of
2048 	 *   the controller support multiple send rings.
2049 	 */
2050 
2051 	/* Initialize the standard receive producer ring control block. */
2052 	rcb = &sc->bge_ldata.bge_info.bge_std_rx_rcb;
2053 	rcb->bge_hostaddr.bge_addr_lo =
2054 	    BGE_ADDR_LO(sc->bge_ldata.bge_rx_std_ring_paddr);
2055 	rcb->bge_hostaddr.bge_addr_hi =
2056 	    BGE_ADDR_HI(sc->bge_ldata.bge_rx_std_ring_paddr);
2057 	bus_dmamap_sync(sc->bge_cdata.bge_rx_std_ring_tag,
2058 	    sc->bge_cdata.bge_rx_std_ring_map, BUS_DMASYNC_PREREAD);
2059 	if (BGE_IS_5717_PLUS(sc)) {
2060 		/*
2061 		 * Bits 31-16: Programmable ring size (2048, 1024, 512, .., 32)
2062 		 * Bits 15-2 : Maximum RX frame size
2063 		 * Bit 1     : 1 = Ring Disabled, 0 = Ring ENabled
2064 		 * Bit 0     : Reserved
2065 		 */
2066 		rcb->bge_maxlen_flags =
2067 		    BGE_RCB_MAXLEN_FLAGS(512, BGE_MAX_FRAMELEN << 2);
2068 	} else if (BGE_IS_5705_PLUS(sc)) {
2069 		/*
2070 		 * Bits 31-16: Programmable ring size (512, 256, 128, 64, 32)
2071 		 * Bits 15-2 : Reserved (should be 0)
2072 		 * Bit 1     : 1 = Ring Disabled, 0 = Ring Enabled
2073 		 * Bit 0     : Reserved
2074 		 */
2075 		rcb->bge_maxlen_flags = BGE_RCB_MAXLEN_FLAGS(512, 0);
2076 	} else {
2077 		/*
2078 		 * Ring size is always XXX entries
2079 		 * Bits 31-16: Maximum RX frame size
2080 		 * Bits 15-2 : Reserved (should be 0)
2081 		 * Bit 1     : 1 = Ring Disabled, 0 = Ring Enabled
2082 		 * Bit 0     : Reserved
2083 		 */
2084 		rcb->bge_maxlen_flags =
2085 		    BGE_RCB_MAXLEN_FLAGS(BGE_MAX_FRAMELEN, 0);
2086 	}
2087 	if (sc->bge_asicrev == BGE_ASICREV_BCM5717 ||
2088 	    sc->bge_asicrev == BGE_ASICREV_BCM5719 ||
2089 	    sc->bge_asicrev == BGE_ASICREV_BCM5720)
2090 		rcb->bge_nicaddr = BGE_STD_RX_RINGS_5717;
2091 	else
2092 		rcb->bge_nicaddr = BGE_STD_RX_RINGS;
2093 	/* Write the standard receive producer ring control block. */
2094 	CSR_WRITE_4(sc, BGE_RX_STD_RCB_HADDR_HI, rcb->bge_hostaddr.bge_addr_hi);
2095 	CSR_WRITE_4(sc, BGE_RX_STD_RCB_HADDR_LO, rcb->bge_hostaddr.bge_addr_lo);
2096 	CSR_WRITE_4(sc, BGE_RX_STD_RCB_MAXLEN_FLAGS, rcb->bge_maxlen_flags);
2097 	CSR_WRITE_4(sc, BGE_RX_STD_RCB_NICADDR, rcb->bge_nicaddr);
2098 
2099 	/* Reset the standard receive producer ring producer index. */
2100 	bge_writembx(sc, BGE_MBX_RX_STD_PROD_LO, 0);
2101 
2102 	/*
2103 	 * Initialize the jumbo RX producer ring control
2104 	 * block.  We set the 'ring disabled' bit in the
2105 	 * flags field until we're actually ready to start
2106 	 * using this ring (i.e. once we set the MTU
2107 	 * high enough to require it).
2108 	 */
2109 	if (BGE_IS_JUMBO_CAPABLE(sc)) {
2110 		rcb = &sc->bge_ldata.bge_info.bge_jumbo_rx_rcb;
2111 		/* Get the jumbo receive producer ring RCB parameters. */
2112 		rcb->bge_hostaddr.bge_addr_lo =
2113 		    BGE_ADDR_LO(sc->bge_ldata.bge_rx_jumbo_ring_paddr);
2114 		rcb->bge_hostaddr.bge_addr_hi =
2115 		    BGE_ADDR_HI(sc->bge_ldata.bge_rx_jumbo_ring_paddr);
2116 		bus_dmamap_sync(sc->bge_cdata.bge_rx_jumbo_ring_tag,
2117 		    sc->bge_cdata.bge_rx_jumbo_ring_map,
2118 		    BUS_DMASYNC_PREREAD);
2119 		rcb->bge_maxlen_flags = BGE_RCB_MAXLEN_FLAGS(0,
2120 		    BGE_RCB_FLAG_USE_EXT_RX_BD | BGE_RCB_FLAG_RING_DISABLED);
2121 		if (sc->bge_asicrev == BGE_ASICREV_BCM5717 ||
2122 		    sc->bge_asicrev == BGE_ASICREV_BCM5719 ||
2123 		    sc->bge_asicrev == BGE_ASICREV_BCM5720)
2124 			rcb->bge_nicaddr = BGE_JUMBO_RX_RINGS_5717;
2125 		else
2126 			rcb->bge_nicaddr = BGE_JUMBO_RX_RINGS;
2127 		CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_HADDR_HI,
2128 		    rcb->bge_hostaddr.bge_addr_hi);
2129 		CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_HADDR_LO,
2130 		    rcb->bge_hostaddr.bge_addr_lo);
2131 		/* Program the jumbo receive producer ring RCB parameters. */
2132 		CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_MAXLEN_FLAGS,
2133 		    rcb->bge_maxlen_flags);
2134 		CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_NICADDR, rcb->bge_nicaddr);
2135 		/* Reset the jumbo receive producer ring producer index. */
2136 		bge_writembx(sc, BGE_MBX_RX_JUMBO_PROD_LO, 0);
2137 	}
2138 
2139 	/* Disable the mini receive producer ring RCB. */
2140 	if (BGE_IS_5700_FAMILY(sc)) {
2141 		rcb = &sc->bge_ldata.bge_info.bge_mini_rx_rcb;
2142 		rcb->bge_maxlen_flags =
2143 		    BGE_RCB_MAXLEN_FLAGS(0, BGE_RCB_FLAG_RING_DISABLED);
2144 		CSR_WRITE_4(sc, BGE_RX_MINI_RCB_MAXLEN_FLAGS,
2145 		    rcb->bge_maxlen_flags);
2146 		/* Reset the mini receive producer ring producer index. */
2147 		bge_writembx(sc, BGE_MBX_RX_MINI_PROD_LO, 0);
2148 	}
2149 
2150 	/* Choose de-pipeline mode for BCM5906 A0, A1 and A2. */
2151 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906) {
2152 		if (sc->bge_chipid == BGE_CHIPID_BCM5906_A0 ||
2153 		    sc->bge_chipid == BGE_CHIPID_BCM5906_A1 ||
2154 		    sc->bge_chipid == BGE_CHIPID_BCM5906_A2)
2155 			CSR_WRITE_4(sc, BGE_ISO_PKT_TX,
2156 			    (CSR_READ_4(sc, BGE_ISO_PKT_TX) & ~3) | 2);
2157 	}
2158 	/*
2159 	 * The BD ring replenish thresholds control how often the
2160 	 * hardware fetches new BD's from the producer rings in host
2161 	 * memory.  Setting the value too low on a busy system can
2162 	 * starve the hardware and reduce the throughput.
2163 	 *
2164 	 * Set the BD ring replentish thresholds. The recommended
2165 	 * values are 1/8th the number of descriptors allocated to
2166 	 * each ring.
2167 	 * XXX The 5754 requires a lower threshold, so it might be a
2168 	 * requirement of all 575x family chips.  The Linux driver sets
2169 	 * the lower threshold for all 5705 family chips as well, but there
2170 	 * are reports that it might not need to be so strict.
2171 	 *
2172 	 * XXX Linux does some extra fiddling here for the 5906 parts as
2173 	 * well.
2174 	 */
2175 	if (BGE_IS_5705_PLUS(sc))
2176 		val = 8;
2177 	else
2178 		val = BGE_STD_RX_RING_CNT / 8;
2179 	CSR_WRITE_4(sc, BGE_RBDI_STD_REPL_THRESH, val);
2180 	if (BGE_IS_JUMBO_CAPABLE(sc))
2181 		CSR_WRITE_4(sc, BGE_RBDI_JUMBO_REPL_THRESH,
2182 		    BGE_JUMBO_RX_RING_CNT/8);
2183 	if (BGE_IS_5717_PLUS(sc)) {
2184 		CSR_WRITE_4(sc, BGE_STD_REPLENISH_LWM, 32);
2185 		CSR_WRITE_4(sc, BGE_JMB_REPLENISH_LWM, 16);
2186 	}
2187 
2188 	/*
2189 	 * Disable all send rings by setting the 'ring disabled' bit
2190 	 * in the flags field of all the TX send ring control blocks,
2191 	 * located in NIC memory.
2192 	 */
2193 	if (!BGE_IS_5705_PLUS(sc))
2194 		/* 5700 to 5704 had 16 send rings. */
2195 		limit = BGE_TX_RINGS_EXTSSRAM_MAX;
2196 	else if (BGE_IS_57765_PLUS(sc) ||
2197 	    sc->bge_asicrev == BGE_ASICREV_BCM5762)
2198 		limit = 2;
2199 	else if (BGE_IS_5717_PLUS(sc))
2200 		limit = 4;
2201 	else
2202 		limit = 1;
2203 	vrcb = BGE_MEMWIN_START + BGE_SEND_RING_RCB;
2204 	for (i = 0; i < limit; i++) {
2205 		RCB_WRITE_4(sc, vrcb, bge_maxlen_flags,
2206 		    BGE_RCB_MAXLEN_FLAGS(0, BGE_RCB_FLAG_RING_DISABLED));
2207 		RCB_WRITE_4(sc, vrcb, bge_nicaddr, 0);
2208 		vrcb += sizeof(struct bge_rcb);
2209 	}
2210 
2211 	/* Configure send ring RCB 0 (we use only the first ring) */
2212 	vrcb = BGE_MEMWIN_START + BGE_SEND_RING_RCB;
2213 	BGE_HOSTADDR(taddr, sc->bge_ldata.bge_tx_ring_paddr);
2214 	RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_hi, taddr.bge_addr_hi);
2215 	RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_lo, taddr.bge_addr_lo);
2216 	if (sc->bge_asicrev == BGE_ASICREV_BCM5717 ||
2217 	    sc->bge_asicrev == BGE_ASICREV_BCM5719 ||
2218 	    sc->bge_asicrev == BGE_ASICREV_BCM5720)
2219 		RCB_WRITE_4(sc, vrcb, bge_nicaddr, BGE_SEND_RING_5717);
2220 	else
2221 		RCB_WRITE_4(sc, vrcb, bge_nicaddr,
2222 		    BGE_NIC_TXRING_ADDR(0, BGE_TX_RING_CNT));
2223 	RCB_WRITE_4(sc, vrcb, bge_maxlen_flags,
2224 	    BGE_RCB_MAXLEN_FLAGS(BGE_TX_RING_CNT, 0));
2225 
2226 	/*
2227 	 * Disable all receive return rings by setting the
2228 	 * 'ring diabled' bit in the flags field of all the receive
2229 	 * return ring control blocks, located in NIC memory.
2230 	 */
2231 	if (sc->bge_asicrev == BGE_ASICREV_BCM5717 ||
2232 	    sc->bge_asicrev == BGE_ASICREV_BCM5719 ||
2233 	    sc->bge_asicrev == BGE_ASICREV_BCM5720) {
2234 		/* Should be 17, use 16 until we get an SRAM map. */
2235 		limit = 16;
2236 	} else if (!BGE_IS_5705_PLUS(sc))
2237 		limit = BGE_RX_RINGS_MAX;
2238 	else if (sc->bge_asicrev == BGE_ASICREV_BCM5755 ||
2239 	    sc->bge_asicrev == BGE_ASICREV_BCM5762 ||
2240 	    BGE_IS_57765_PLUS(sc))
2241 		limit = 4;
2242 	else
2243 		limit = 1;
2244 	/* Disable all receive return rings. */
2245 	vrcb = BGE_MEMWIN_START + BGE_RX_RETURN_RING_RCB;
2246 	for (i = 0; i < limit; i++) {
2247 		RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_hi, 0);
2248 		RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_lo, 0);
2249 		RCB_WRITE_4(sc, vrcb, bge_maxlen_flags,
2250 		    BGE_RCB_FLAG_RING_DISABLED);
2251 		RCB_WRITE_4(sc, vrcb, bge_nicaddr, 0);
2252 		bge_writembx(sc, BGE_MBX_RX_CONS0_LO +
2253 		    (i * (sizeof(uint64_t))), 0);
2254 		vrcb += sizeof(struct bge_rcb);
2255 	}
2256 
2257 	/*
2258 	 * Set up receive return ring 0.  Note that the NIC address
2259 	 * for RX return rings is 0x0.  The return rings live entirely
2260 	 * within the host, so the nicaddr field in the RCB isn't used.
2261 	 */
2262 	vrcb = BGE_MEMWIN_START + BGE_RX_RETURN_RING_RCB;
2263 	BGE_HOSTADDR(taddr, sc->bge_ldata.bge_rx_return_ring_paddr);
2264 	RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_hi, taddr.bge_addr_hi);
2265 	RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_lo, taddr.bge_addr_lo);
2266 	RCB_WRITE_4(sc, vrcb, bge_nicaddr, 0);
2267 	RCB_WRITE_4(sc, vrcb, bge_maxlen_flags,
2268 	    BGE_RCB_MAXLEN_FLAGS(sc->bge_return_ring_cnt, 0));
2269 
2270 	lladdr = if_getlladdr(sc->bge_ifp);
2271 	/* Set random backoff seed for TX */
2272 	CSR_WRITE_4(sc, BGE_TX_RANDOM_BACKOFF,
2273 	    (lladdr[0] + lladdr[1] +
2274 	    lladdr[2] + lladdr[3] +
2275 	    lladdr[4] + lladdr[5]) &
2276 	    BGE_TX_BACKOFF_SEED_MASK);
2277 
2278 	/* Set inter-packet gap */
2279 	val = 0x2620;
2280 	if (sc->bge_asicrev == BGE_ASICREV_BCM5720 ||
2281 	    sc->bge_asicrev == BGE_ASICREV_BCM5762)
2282 		val |= CSR_READ_4(sc, BGE_TX_LENGTHS) &
2283 		    (BGE_TXLEN_JMB_FRM_LEN_MSK | BGE_TXLEN_CNT_DN_VAL_MSK);
2284 	CSR_WRITE_4(sc, BGE_TX_LENGTHS, val);
2285 
2286 	/*
2287 	 * Specify which ring to use for packets that don't match
2288 	 * any RX rules.
2289 	 */
2290 	CSR_WRITE_4(sc, BGE_RX_RULES_CFG, 0x08);
2291 
2292 	/*
2293 	 * Configure number of RX lists. One interrupt distribution
2294 	 * list, sixteen active lists, one bad frames class.
2295 	 */
2296 	CSR_WRITE_4(sc, BGE_RXLP_CFG, 0x181);
2297 
2298 	/* Initialize RX list placement stats mask. */
2299 	CSR_WRITE_4(sc, BGE_RXLP_STATS_ENABLE_MASK, 0x007FFFFF);
2300 	CSR_WRITE_4(sc, BGE_RXLP_STATS_CTL, 0x1);
2301 
2302 	/* Disable host coalescing until we get it set up */
2303 	CSR_WRITE_4(sc, BGE_HCC_MODE, 0x00000000);
2304 
2305 	/* Poll to make sure it's shut down. */
2306 	for (i = 0; i < BGE_TIMEOUT; i++) {
2307 		DELAY(10);
2308 		if (!(CSR_READ_4(sc, BGE_HCC_MODE) & BGE_HCCMODE_ENABLE))
2309 			break;
2310 	}
2311 
2312 	if (i == BGE_TIMEOUT) {
2313 		device_printf(sc->bge_dev,
2314 		    "host coalescing engine failed to idle\n");
2315 		return (ENXIO);
2316 	}
2317 
2318 	/* Set up host coalescing defaults */
2319 	CSR_WRITE_4(sc, BGE_HCC_RX_COAL_TICKS, sc->bge_rx_coal_ticks);
2320 	CSR_WRITE_4(sc, BGE_HCC_TX_COAL_TICKS, sc->bge_tx_coal_ticks);
2321 	CSR_WRITE_4(sc, BGE_HCC_RX_MAX_COAL_BDS, sc->bge_rx_max_coal_bds);
2322 	CSR_WRITE_4(sc, BGE_HCC_TX_MAX_COAL_BDS, sc->bge_tx_max_coal_bds);
2323 	if (!(BGE_IS_5705_PLUS(sc))) {
2324 		CSR_WRITE_4(sc, BGE_HCC_RX_COAL_TICKS_INT, 0);
2325 		CSR_WRITE_4(sc, BGE_HCC_TX_COAL_TICKS_INT, 0);
2326 	}
2327 	CSR_WRITE_4(sc, BGE_HCC_RX_MAX_COAL_BDS_INT, 1);
2328 	CSR_WRITE_4(sc, BGE_HCC_TX_MAX_COAL_BDS_INT, 1);
2329 
2330 	/* Set up address of statistics block */
2331 	if (!(BGE_IS_5705_PLUS(sc))) {
2332 		CSR_WRITE_4(sc, BGE_HCC_STATS_ADDR_HI,
2333 		    BGE_ADDR_HI(sc->bge_ldata.bge_stats_paddr));
2334 		CSR_WRITE_4(sc, BGE_HCC_STATS_ADDR_LO,
2335 		    BGE_ADDR_LO(sc->bge_ldata.bge_stats_paddr));
2336 		CSR_WRITE_4(sc, BGE_HCC_STATS_BASEADDR, BGE_STATS_BLOCK);
2337 		CSR_WRITE_4(sc, BGE_HCC_STATUSBLK_BASEADDR, BGE_STATUS_BLOCK);
2338 		CSR_WRITE_4(sc, BGE_HCC_STATS_TICKS, sc->bge_stat_ticks);
2339 	}
2340 
2341 	/* Set up address of status block */
2342 	CSR_WRITE_4(sc, BGE_HCC_STATUSBLK_ADDR_HI,
2343 	    BGE_ADDR_HI(sc->bge_ldata.bge_status_block_paddr));
2344 	CSR_WRITE_4(sc, BGE_HCC_STATUSBLK_ADDR_LO,
2345 	    BGE_ADDR_LO(sc->bge_ldata.bge_status_block_paddr));
2346 
2347 	/* Set up status block size. */
2348 	if (sc->bge_asicrev == BGE_ASICREV_BCM5700 &&
2349 	    sc->bge_chipid != BGE_CHIPID_BCM5700_C0) {
2350 		val = BGE_STATBLKSZ_FULL;
2351 		bzero(sc->bge_ldata.bge_status_block, BGE_STATUS_BLK_SZ);
2352 	} else {
2353 		val = BGE_STATBLKSZ_32BYTE;
2354 		bzero(sc->bge_ldata.bge_status_block, 32);
2355 	}
2356 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
2357 	    sc->bge_cdata.bge_status_map,
2358 	    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
2359 
2360 	/* Turn on host coalescing state machine */
2361 	CSR_WRITE_4(sc, BGE_HCC_MODE, val | BGE_HCCMODE_ENABLE);
2362 
2363 	/* Turn on RX BD completion state machine and enable attentions */
2364 	CSR_WRITE_4(sc, BGE_RBDC_MODE,
2365 	    BGE_RBDCMODE_ENABLE | BGE_RBDCMODE_ATTN);
2366 
2367 	/* Turn on RX list placement state machine */
2368 	CSR_WRITE_4(sc, BGE_RXLP_MODE, BGE_RXLPMODE_ENABLE);
2369 
2370 	/* Turn on RX list selector state machine. */
2371 	if (!(BGE_IS_5705_PLUS(sc)))
2372 		CSR_WRITE_4(sc, BGE_RXLS_MODE, BGE_RXLSMODE_ENABLE);
2373 
2374 	/* Turn on DMA, clear stats. */
2375 	val = BGE_MACMODE_TXDMA_ENB | BGE_MACMODE_RXDMA_ENB |
2376 	    BGE_MACMODE_RX_STATS_CLEAR | BGE_MACMODE_TX_STATS_CLEAR |
2377 	    BGE_MACMODE_RX_STATS_ENB | BGE_MACMODE_TX_STATS_ENB |
2378 	    BGE_MACMODE_FRMHDR_DMA_ENB;
2379 
2380 	if (sc->bge_flags & BGE_FLAG_TBI)
2381 		val |= BGE_PORTMODE_TBI;
2382 	else if (sc->bge_flags & BGE_FLAG_MII_SERDES)
2383 		val |= BGE_PORTMODE_GMII;
2384 	else
2385 		val |= BGE_PORTMODE_MII;
2386 
2387 	/* Allow APE to send/receive frames. */
2388 	if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) != 0)
2389 		val |= BGE_MACMODE_APE_RX_EN | BGE_MACMODE_APE_TX_EN;
2390 
2391 	CSR_WRITE_4(sc, BGE_MAC_MODE, val);
2392 	DELAY(40);
2393 
2394 	/* Set misc. local control, enable interrupts on attentions */
2395 	BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_INTR_ONATTN);
2396 
2397 #ifdef notdef
2398 	/* Assert GPIO pins for PHY reset */
2399 	BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_MISCIO_OUT0 |
2400 	    BGE_MLC_MISCIO_OUT1 | BGE_MLC_MISCIO_OUT2);
2401 	BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_MISCIO_OUTEN0 |
2402 	    BGE_MLC_MISCIO_OUTEN1 | BGE_MLC_MISCIO_OUTEN2);
2403 #endif
2404 
2405 	/* Turn on DMA completion state machine */
2406 	if (!(BGE_IS_5705_PLUS(sc)))
2407 		CSR_WRITE_4(sc, BGE_DMAC_MODE, BGE_DMACMODE_ENABLE);
2408 
2409 	val = BGE_WDMAMODE_ENABLE | BGE_WDMAMODE_ALL_ATTNS;
2410 
2411 	/* Enable host coalescing bug fix. */
2412 	if (BGE_IS_5755_PLUS(sc))
2413 		val |= BGE_WDMAMODE_STATUS_TAG_FIX;
2414 
2415 	/* Request larger DMA burst size to get better performance. */
2416 	if (sc->bge_asicrev == BGE_ASICREV_BCM5785)
2417 		val |= BGE_WDMAMODE_BURST_ALL_DATA;
2418 
2419 	/* Turn on write DMA state machine */
2420 	CSR_WRITE_4(sc, BGE_WDMA_MODE, val);
2421 	DELAY(40);
2422 
2423 	/* Turn on read DMA state machine */
2424 	val = BGE_RDMAMODE_ENABLE | BGE_RDMAMODE_ALL_ATTNS;
2425 
2426 	if (sc->bge_asicrev == BGE_ASICREV_BCM5717)
2427 		val |= BGE_RDMAMODE_MULT_DMA_RD_DIS;
2428 
2429 	if (sc->bge_asicrev == BGE_ASICREV_BCM5784 ||
2430 	    sc->bge_asicrev == BGE_ASICREV_BCM5785 ||
2431 	    sc->bge_asicrev == BGE_ASICREV_BCM57780)
2432 		val |= BGE_RDMAMODE_BD_SBD_CRPT_ATTN |
2433 		    BGE_RDMAMODE_MBUF_RBD_CRPT_ATTN |
2434 		    BGE_RDMAMODE_MBUF_SBD_CRPT_ATTN;
2435 	if (sc->bge_flags & BGE_FLAG_PCIE)
2436 		val |= BGE_RDMAMODE_FIFO_LONG_BURST;
2437 	if (sc->bge_flags & (BGE_FLAG_TSO | BGE_FLAG_TSO3)) {
2438 		val |= BGE_RDMAMODE_TSO4_ENABLE;
2439 		if (sc->bge_flags & BGE_FLAG_TSO3 ||
2440 		    sc->bge_asicrev == BGE_ASICREV_BCM5785 ||
2441 		    sc->bge_asicrev == BGE_ASICREV_BCM57780)
2442 			val |= BGE_RDMAMODE_TSO6_ENABLE;
2443 	}
2444 
2445 	if (sc->bge_asicrev == BGE_ASICREV_BCM5720 ||
2446 	    sc->bge_asicrev == BGE_ASICREV_BCM5762) {
2447 		val |= CSR_READ_4(sc, BGE_RDMA_MODE) &
2448 			BGE_RDMAMODE_H2BNC_VLAN_DET;
2449 		/*
2450 		 * Allow multiple outstanding read requests from
2451 		 * non-LSO read DMA engine.
2452 		 */
2453 		val &= ~BGE_RDMAMODE_MULT_DMA_RD_DIS;
2454 	}
2455 
2456 	if (sc->bge_asicrev == BGE_ASICREV_BCM5761 ||
2457 	    sc->bge_asicrev == BGE_ASICREV_BCM5784 ||
2458 	    sc->bge_asicrev == BGE_ASICREV_BCM5785 ||
2459 	    sc->bge_asicrev == BGE_ASICREV_BCM57780 ||
2460 	    BGE_IS_5717_PLUS(sc) || BGE_IS_57765_PLUS(sc)) {
2461 		if (sc->bge_asicrev == BGE_ASICREV_BCM5762)
2462 			rdmareg = BGE_RDMA_RSRVCTRL_REG2;
2463 		else
2464 			rdmareg = BGE_RDMA_RSRVCTRL;
2465 		dmactl = CSR_READ_4(sc, rdmareg);
2466 		/*
2467 		 * Adjust tx margin to prevent TX data corruption and
2468 		 * fix internal FIFO overflow.
2469 		 */
2470 		if (sc->bge_chipid == BGE_CHIPID_BCM5719_A0 ||
2471 		    sc->bge_asicrev == BGE_ASICREV_BCM5762) {
2472 			dmactl &= ~(BGE_RDMA_RSRVCTRL_FIFO_LWM_MASK |
2473 			    BGE_RDMA_RSRVCTRL_FIFO_HWM_MASK |
2474 			    BGE_RDMA_RSRVCTRL_TXMRGN_MASK);
2475 			dmactl |= BGE_RDMA_RSRVCTRL_FIFO_LWM_1_5K |
2476 			    BGE_RDMA_RSRVCTRL_FIFO_HWM_1_5K |
2477 			    BGE_RDMA_RSRVCTRL_TXMRGN_320B;
2478 		}
2479 		/*
2480 		 * Enable fix for read DMA FIFO overruns.
2481 		 * The fix is to limit the number of RX BDs
2482 		 * the hardware would fetch at a fime.
2483 		 */
2484 		CSR_WRITE_4(sc, rdmareg, dmactl |
2485 		    BGE_RDMA_RSRVCTRL_FIFO_OFLW_FIX);
2486 	}
2487 
2488 	if (sc->bge_asicrev == BGE_ASICREV_BCM5719) {
2489 		CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL,
2490 		    CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL) |
2491 		    BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_BD_4K |
2492 		    BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_LSO_4K);
2493 	} else if (sc->bge_asicrev == BGE_ASICREV_BCM5720) {
2494 		/*
2495 		 * Allow 4KB burst length reads for non-LSO frames.
2496 		 * Enable 512B burst length reads for buffer descriptors.
2497 		 */
2498 		CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL,
2499 		    CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL) |
2500 		    BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_BD_512 |
2501 		    BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_LSO_4K);
2502 	} else if (sc->bge_asicrev == BGE_ASICREV_BCM5762) {
2503 		CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL_REG2,
2504 		    CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL_REG2) |
2505 		    BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_BD_4K |
2506 		    BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_LSO_4K);
2507 	}
2508 
2509 	CSR_WRITE_4(sc, BGE_RDMA_MODE, val);
2510 	DELAY(40);
2511 
2512 	if (sc->bge_flags & BGE_FLAG_RDMA_BUG) {
2513 		for (i = 0; i < BGE_NUM_RDMA_CHANNELS / 2; i++) {
2514 			val = CSR_READ_4(sc, BGE_RDMA_LENGTH + i * 4);
2515 			if ((val & 0xFFFF) > BGE_FRAMELEN)
2516 				break;
2517 			if (((val >> 16) & 0xFFFF) > BGE_FRAMELEN)
2518 				break;
2519 		}
2520 		if (i != BGE_NUM_RDMA_CHANNELS / 2) {
2521 			val = CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL);
2522 			if (sc->bge_asicrev == BGE_ASICREV_BCM5719)
2523 				val |= BGE_RDMA_TX_LENGTH_WA_5719;
2524 			else
2525 				val |= BGE_RDMA_TX_LENGTH_WA_5720;
2526 			CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL, val);
2527 		}
2528 	}
2529 
2530 	/* Turn on RX data completion state machine */
2531 	CSR_WRITE_4(sc, BGE_RDC_MODE, BGE_RDCMODE_ENABLE);
2532 
2533 	/* Turn on RX BD initiator state machine */
2534 	CSR_WRITE_4(sc, BGE_RBDI_MODE, BGE_RBDIMODE_ENABLE);
2535 
2536 	/* Turn on RX data and RX BD initiator state machine */
2537 	CSR_WRITE_4(sc, BGE_RDBDI_MODE, BGE_RDBDIMODE_ENABLE);
2538 
2539 	/* Turn on Mbuf cluster free state machine */
2540 	if (!(BGE_IS_5705_PLUS(sc)))
2541 		CSR_WRITE_4(sc, BGE_MBCF_MODE, BGE_MBCFMODE_ENABLE);
2542 
2543 	/* Turn on send BD completion state machine */
2544 	CSR_WRITE_4(sc, BGE_SBDC_MODE, BGE_SBDCMODE_ENABLE);
2545 
2546 	/* Turn on send data completion state machine */
2547 	val = BGE_SDCMODE_ENABLE;
2548 	if (sc->bge_asicrev == BGE_ASICREV_BCM5761)
2549 		val |= BGE_SDCMODE_CDELAY;
2550 	CSR_WRITE_4(sc, BGE_SDC_MODE, val);
2551 
2552 	/* Turn on send data initiator state machine */
2553 	if (sc->bge_flags & (BGE_FLAG_TSO | BGE_FLAG_TSO3))
2554 		CSR_WRITE_4(sc, BGE_SDI_MODE, BGE_SDIMODE_ENABLE |
2555 		    BGE_SDIMODE_HW_LSO_PRE_DMA);
2556 	else
2557 		CSR_WRITE_4(sc, BGE_SDI_MODE, BGE_SDIMODE_ENABLE);
2558 
2559 	/* Turn on send BD initiator state machine */
2560 	CSR_WRITE_4(sc, BGE_SBDI_MODE, BGE_SBDIMODE_ENABLE);
2561 
2562 	/* Turn on send BD selector state machine */
2563 	CSR_WRITE_4(sc, BGE_SRS_MODE, BGE_SRSMODE_ENABLE);
2564 
2565 	CSR_WRITE_4(sc, BGE_SDI_STATS_ENABLE_MASK, 0x007FFFFF);
2566 	CSR_WRITE_4(sc, BGE_SDI_STATS_CTL,
2567 	    BGE_SDISTATSCTL_ENABLE | BGE_SDISTATSCTL_FASTER);
2568 
2569 	/* ack/clear link change events */
2570 	CSR_WRITE_4(sc, BGE_MAC_STS, BGE_MACSTAT_SYNC_CHANGED |
2571 	    BGE_MACSTAT_CFG_CHANGED | BGE_MACSTAT_MI_COMPLETE |
2572 	    BGE_MACSTAT_LINK_CHANGED);
2573 	CSR_WRITE_4(sc, BGE_MI_STS, 0);
2574 
2575 	/*
2576 	 * Enable attention when the link has changed state for
2577 	 * devices that use auto polling.
2578 	 */
2579 	if (sc->bge_flags & BGE_FLAG_TBI) {
2580 		CSR_WRITE_4(sc, BGE_MI_STS, BGE_MISTS_LINK);
2581 	} else {
2582 		if (sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) {
2583 			CSR_WRITE_4(sc, BGE_MI_MODE, sc->bge_mi_mode);
2584 			DELAY(80);
2585 		}
2586 		if (sc->bge_asicrev == BGE_ASICREV_BCM5700 &&
2587 		    sc->bge_chipid != BGE_CHIPID_BCM5700_B2)
2588 			CSR_WRITE_4(sc, BGE_MAC_EVT_ENB,
2589 			    BGE_EVTENB_MI_INTERRUPT);
2590 	}
2591 
2592 	/*
2593 	 * Clear any pending link state attention.
2594 	 * Otherwise some link state change events may be lost until attention
2595 	 * is cleared by bge_intr() -> bge_link_upd() sequence.
2596 	 * It's not necessary on newer BCM chips - perhaps enabling link
2597 	 * state change attentions implies clearing pending attention.
2598 	 */
2599 	CSR_WRITE_4(sc, BGE_MAC_STS, BGE_MACSTAT_SYNC_CHANGED |
2600 	    BGE_MACSTAT_CFG_CHANGED | BGE_MACSTAT_MI_COMPLETE |
2601 	    BGE_MACSTAT_LINK_CHANGED);
2602 
2603 	/* Enable link state change attentions. */
2604 	BGE_SETBIT(sc, BGE_MAC_EVT_ENB, BGE_EVTENB_LINK_CHANGED);
2605 
2606 	return (0);
2607 }
2608 
2609 static const struct bge_revision *
2610 bge_lookup_rev(uint32_t chipid)
2611 {
2612 	const struct bge_revision *br;
2613 
2614 	for (br = bge_revisions; br->br_name != NULL; br++) {
2615 		if (br->br_chipid == chipid)
2616 			return (br);
2617 	}
2618 
2619 	for (br = bge_majorrevs; br->br_name != NULL; br++) {
2620 		if (br->br_chipid == BGE_ASICREV(chipid))
2621 			return (br);
2622 	}
2623 
2624 	return (NULL);
2625 }
2626 
2627 static const struct bge_vendor *
2628 bge_lookup_vendor(uint16_t vid)
2629 {
2630 	const struct bge_vendor *v;
2631 
2632 	for (v = bge_vendors; v->v_name != NULL; v++)
2633 		if (v->v_id == vid)
2634 			return (v);
2635 
2636 	return (NULL);
2637 }
2638 
2639 static uint32_t
2640 bge_chipid(device_t dev)
2641 {
2642 	uint32_t id;
2643 
2644 	id = pci_read_config(dev, BGE_PCI_MISC_CTL, 4) >>
2645 	    BGE_PCIMISCCTL_ASICREV_SHIFT;
2646 	if (BGE_ASICREV(id) == BGE_ASICREV_USE_PRODID_REG) {
2647 		/*
2648 		 * Find the ASCI revision.  Different chips use different
2649 		 * registers.
2650 		 */
2651 		switch (pci_get_device(dev)) {
2652 		case BCOM_DEVICEID_BCM5717C:
2653 			/* 5717 C0 seems to belong to 5720 line. */
2654 			id = BGE_CHIPID_BCM5720_A0;
2655 			break;
2656 		case BCOM_DEVICEID_BCM5717:
2657 		case BCOM_DEVICEID_BCM5718:
2658 		case BCOM_DEVICEID_BCM5719:
2659 		case BCOM_DEVICEID_BCM5720:
2660 		case BCOM_DEVICEID_BCM5725:
2661 		case BCOM_DEVICEID_BCM5727:
2662 		case BCOM_DEVICEID_BCM5762:
2663 		case BCOM_DEVICEID_BCM57764:
2664 		case BCOM_DEVICEID_BCM57767:
2665 		case BCOM_DEVICEID_BCM57787:
2666 			id = pci_read_config(dev,
2667 			    BGE_PCI_GEN2_PRODID_ASICREV, 4);
2668 			break;
2669 		case BCOM_DEVICEID_BCM57761:
2670 		case BCOM_DEVICEID_BCM57762:
2671 		case BCOM_DEVICEID_BCM57765:
2672 		case BCOM_DEVICEID_BCM57766:
2673 		case BCOM_DEVICEID_BCM57781:
2674 		case BCOM_DEVICEID_BCM57782:
2675 		case BCOM_DEVICEID_BCM57785:
2676 		case BCOM_DEVICEID_BCM57786:
2677 		case BCOM_DEVICEID_BCM57791:
2678 		case BCOM_DEVICEID_BCM57795:
2679 			id = pci_read_config(dev,
2680 			    BGE_PCI_GEN15_PRODID_ASICREV, 4);
2681 			break;
2682 		default:
2683 			id = pci_read_config(dev, BGE_PCI_PRODID_ASICREV, 4);
2684 		}
2685 	}
2686 	return (id);
2687 }
2688 
2689 /*
2690  * Probe for a Broadcom chip. Check the PCI vendor and device IDs
2691  * against our list and return its name if we find a match.
2692  *
2693  * Note that since the Broadcom controller contains VPD support, we
2694  * try to get the device name string from the controller itself instead
2695  * of the compiled-in string. It guarantees we'll always announce the
2696  * right product name. We fall back to the compiled-in string when
2697  * VPD is unavailable or corrupt.
2698  */
2699 static int
2700 bge_probe(device_t dev)
2701 {
2702 	char model[64];
2703 	const struct bge_revision *br;
2704 	const char *pname;
2705 	struct bge_softc *sc;
2706 	const struct bge_type *t = bge_devs;
2707 	const struct bge_vendor *v;
2708 	uint32_t id;
2709 	uint16_t did, vid;
2710 
2711 	sc = device_get_softc(dev);
2712 	sc->bge_dev = dev;
2713 	vid = pci_get_vendor(dev);
2714 	did = pci_get_device(dev);
2715 	while(t->bge_vid != 0) {
2716 		if ((vid == t->bge_vid) && (did == t->bge_did)) {
2717 			id = bge_chipid(dev);
2718 			br = bge_lookup_rev(id);
2719 			if (bge_has_eaddr(sc) &&
2720 			    pci_get_vpd_ident(dev, &pname) == 0)
2721 				snprintf(model, sizeof(model), "%s", pname);
2722 			else {
2723 				v = bge_lookup_vendor(vid);
2724 				snprintf(model, sizeof(model), "%s %s",
2725 				    v != NULL ? v->v_name : "Unknown",
2726 				    br != NULL ? br->br_name :
2727 				    "NetXtreme/NetLink Ethernet Controller");
2728 			}
2729 			device_set_descf(dev, "%s, %sASIC rev. %#08x",
2730 			    model, br != NULL ? "" : "unknown ", id);
2731 			return (BUS_PROBE_DEFAULT);
2732 		}
2733 		t++;
2734 	}
2735 
2736 	return (ENXIO);
2737 }
2738 
2739 static void
2740 bge_dma_free(struct bge_softc *sc)
2741 {
2742 	int i;
2743 
2744 	/* Destroy DMA maps for RX buffers. */
2745 	for (i = 0; i < BGE_STD_RX_RING_CNT; i++) {
2746 		if (sc->bge_cdata.bge_rx_std_dmamap[i])
2747 			bus_dmamap_destroy(sc->bge_cdata.bge_rx_mtag,
2748 			    sc->bge_cdata.bge_rx_std_dmamap[i]);
2749 	}
2750 	if (sc->bge_cdata.bge_rx_std_sparemap)
2751 		bus_dmamap_destroy(sc->bge_cdata.bge_rx_mtag,
2752 		    sc->bge_cdata.bge_rx_std_sparemap);
2753 
2754 	/* Destroy DMA maps for jumbo RX buffers. */
2755 	for (i = 0; i < BGE_JUMBO_RX_RING_CNT; i++) {
2756 		if (sc->bge_cdata.bge_rx_jumbo_dmamap[i])
2757 			bus_dmamap_destroy(sc->bge_cdata.bge_mtag_jumbo,
2758 			    sc->bge_cdata.bge_rx_jumbo_dmamap[i]);
2759 	}
2760 	if (sc->bge_cdata.bge_rx_jumbo_sparemap)
2761 		bus_dmamap_destroy(sc->bge_cdata.bge_mtag_jumbo,
2762 		    sc->bge_cdata.bge_rx_jumbo_sparemap);
2763 
2764 	/* Destroy DMA maps for TX buffers. */
2765 	for (i = 0; i < BGE_TX_RING_CNT; i++) {
2766 		if (sc->bge_cdata.bge_tx_dmamap[i])
2767 			bus_dmamap_destroy(sc->bge_cdata.bge_tx_mtag,
2768 			    sc->bge_cdata.bge_tx_dmamap[i]);
2769 	}
2770 
2771 	if (sc->bge_cdata.bge_rx_mtag)
2772 		bus_dma_tag_destroy(sc->bge_cdata.bge_rx_mtag);
2773 	if (sc->bge_cdata.bge_mtag_jumbo)
2774 		bus_dma_tag_destroy(sc->bge_cdata.bge_mtag_jumbo);
2775 	if (sc->bge_cdata.bge_tx_mtag)
2776 		bus_dma_tag_destroy(sc->bge_cdata.bge_tx_mtag);
2777 
2778 	/* Destroy standard RX ring. */
2779 	if (sc->bge_ldata.bge_rx_std_ring_paddr)
2780 		bus_dmamap_unload(sc->bge_cdata.bge_rx_std_ring_tag,
2781 		    sc->bge_cdata.bge_rx_std_ring_map);
2782 	if (sc->bge_ldata.bge_rx_std_ring)
2783 		bus_dmamem_free(sc->bge_cdata.bge_rx_std_ring_tag,
2784 		    sc->bge_ldata.bge_rx_std_ring,
2785 		    sc->bge_cdata.bge_rx_std_ring_map);
2786 
2787 	if (sc->bge_cdata.bge_rx_std_ring_tag)
2788 		bus_dma_tag_destroy(sc->bge_cdata.bge_rx_std_ring_tag);
2789 
2790 	/* Destroy jumbo RX ring. */
2791 	if (sc->bge_ldata.bge_rx_jumbo_ring_paddr)
2792 		bus_dmamap_unload(sc->bge_cdata.bge_rx_jumbo_ring_tag,
2793 		    sc->bge_cdata.bge_rx_jumbo_ring_map);
2794 
2795 	if (sc->bge_ldata.bge_rx_jumbo_ring)
2796 		bus_dmamem_free(sc->bge_cdata.bge_rx_jumbo_ring_tag,
2797 		    sc->bge_ldata.bge_rx_jumbo_ring,
2798 		    sc->bge_cdata.bge_rx_jumbo_ring_map);
2799 
2800 	if (sc->bge_cdata.bge_rx_jumbo_ring_tag)
2801 		bus_dma_tag_destroy(sc->bge_cdata.bge_rx_jumbo_ring_tag);
2802 
2803 	/* Destroy RX return ring. */
2804 	if (sc->bge_ldata.bge_rx_return_ring_paddr)
2805 		bus_dmamap_unload(sc->bge_cdata.bge_rx_return_ring_tag,
2806 		    sc->bge_cdata.bge_rx_return_ring_map);
2807 
2808 	if (sc->bge_ldata.bge_rx_return_ring)
2809 		bus_dmamem_free(sc->bge_cdata.bge_rx_return_ring_tag,
2810 		    sc->bge_ldata.bge_rx_return_ring,
2811 		    sc->bge_cdata.bge_rx_return_ring_map);
2812 
2813 	if (sc->bge_cdata.bge_rx_return_ring_tag)
2814 		bus_dma_tag_destroy(sc->bge_cdata.bge_rx_return_ring_tag);
2815 
2816 	/* Destroy TX ring. */
2817 	if (sc->bge_ldata.bge_tx_ring_paddr)
2818 		bus_dmamap_unload(sc->bge_cdata.bge_tx_ring_tag,
2819 		    sc->bge_cdata.bge_tx_ring_map);
2820 
2821 	if (sc->bge_ldata.bge_tx_ring)
2822 		bus_dmamem_free(sc->bge_cdata.bge_tx_ring_tag,
2823 		    sc->bge_ldata.bge_tx_ring,
2824 		    sc->bge_cdata.bge_tx_ring_map);
2825 
2826 	if (sc->bge_cdata.bge_tx_ring_tag)
2827 		bus_dma_tag_destroy(sc->bge_cdata.bge_tx_ring_tag);
2828 
2829 	/* Destroy status block. */
2830 	if (sc->bge_ldata.bge_status_block_paddr)
2831 		bus_dmamap_unload(sc->bge_cdata.bge_status_tag,
2832 		    sc->bge_cdata.bge_status_map);
2833 
2834 	if (sc->bge_ldata.bge_status_block)
2835 		bus_dmamem_free(sc->bge_cdata.bge_status_tag,
2836 		    sc->bge_ldata.bge_status_block,
2837 		    sc->bge_cdata.bge_status_map);
2838 
2839 	if (sc->bge_cdata.bge_status_tag)
2840 		bus_dma_tag_destroy(sc->bge_cdata.bge_status_tag);
2841 
2842 	/* Destroy statistics block. */
2843 	if (sc->bge_ldata.bge_stats_paddr)
2844 		bus_dmamap_unload(sc->bge_cdata.bge_stats_tag,
2845 		    sc->bge_cdata.bge_stats_map);
2846 
2847 	if (sc->bge_ldata.bge_stats)
2848 		bus_dmamem_free(sc->bge_cdata.bge_stats_tag,
2849 		    sc->bge_ldata.bge_stats,
2850 		    sc->bge_cdata.bge_stats_map);
2851 
2852 	if (sc->bge_cdata.bge_stats_tag)
2853 		bus_dma_tag_destroy(sc->bge_cdata.bge_stats_tag);
2854 
2855 	if (sc->bge_cdata.bge_buffer_tag)
2856 		bus_dma_tag_destroy(sc->bge_cdata.bge_buffer_tag);
2857 
2858 	/* Destroy the parent tag. */
2859 	if (sc->bge_cdata.bge_parent_tag)
2860 		bus_dma_tag_destroy(sc->bge_cdata.bge_parent_tag);
2861 }
2862 
2863 static int
2864 bge_dma_ring_alloc(struct bge_softc *sc, bus_size_t alignment,
2865     bus_size_t maxsize, bus_dma_tag_t *tag, uint8_t **ring, bus_dmamap_t *map,
2866     bus_addr_t *paddr, const char *msg)
2867 {
2868 	struct bge_dmamap_arg ctx;
2869 	bus_addr_t lowaddr;
2870 	bus_size_t ring_end;
2871 	int error;
2872 
2873 	lowaddr = BUS_SPACE_MAXADDR;
2874 again:
2875 	error = bus_dma_tag_create(sc->bge_cdata.bge_parent_tag,
2876 	    alignment, 0, lowaddr, BUS_SPACE_MAXADDR, NULL,
2877 	    NULL, maxsize, 1, maxsize, 0, NULL, NULL, tag);
2878 	if (error != 0) {
2879 		device_printf(sc->bge_dev,
2880 		    "could not create %s dma tag\n", msg);
2881 		return (ENOMEM);
2882 	}
2883 	/* Allocate DMA'able memory for ring. */
2884 	error = bus_dmamem_alloc(*tag, (void **)ring,
2885 	    BUS_DMA_NOWAIT | BUS_DMA_ZERO | BUS_DMA_COHERENT, map);
2886 	if (error != 0) {
2887 		device_printf(sc->bge_dev,
2888 		    "could not allocate DMA'able memory for %s\n", msg);
2889 		return (ENOMEM);
2890 	}
2891 	/* Load the address of the ring. */
2892 	ctx.bge_busaddr = 0;
2893 	error = bus_dmamap_load(*tag, *map, *ring, maxsize, bge_dma_map_addr,
2894 	    &ctx, BUS_DMA_NOWAIT);
2895 	if (error != 0) {
2896 		device_printf(sc->bge_dev,
2897 		    "could not load DMA'able memory for %s\n", msg);
2898 		return (ENOMEM);
2899 	}
2900 	*paddr = ctx.bge_busaddr;
2901 	ring_end = *paddr + maxsize;
2902 	if ((sc->bge_flags & BGE_FLAG_4G_BNDRY_BUG) != 0 &&
2903 	    BGE_ADDR_HI(*paddr) != BGE_ADDR_HI(ring_end)) {
2904 		/*
2905 		 * 4GB boundary crossed.  Limit maximum allowable DMA
2906 		 * address space to 32bit and try again.
2907 		 */
2908 		bus_dmamap_unload(*tag, *map);
2909 		bus_dmamem_free(*tag, *ring, *map);
2910 		bus_dma_tag_destroy(*tag);
2911 		if (bootverbose)
2912 			device_printf(sc->bge_dev, "4GB boundary crossed, "
2913 			    "limit DMA address space to 32bit for %s\n", msg);
2914 		*ring = NULL;
2915 		*tag = NULL;
2916 		*map = NULL;
2917 		lowaddr = BUS_SPACE_MAXADDR_32BIT;
2918 		goto again;
2919 	}
2920 	return (0);
2921 }
2922 
2923 static int
2924 bge_dma_alloc(struct bge_softc *sc)
2925 {
2926 	bus_addr_t lowaddr;
2927 	bus_size_t boundary, sbsz, rxmaxsegsz, txsegsz, txmaxsegsz;
2928 	int i, error;
2929 
2930 	lowaddr = BUS_SPACE_MAXADDR;
2931 	if ((sc->bge_flags & BGE_FLAG_40BIT_BUG) != 0)
2932 		lowaddr = BGE_DMA_MAXADDR;
2933 	/*
2934 	 * Allocate the parent bus DMA tag appropriate for PCI.
2935 	 */
2936 	error = bus_dma_tag_create(bus_get_dma_tag(sc->bge_dev),
2937 	    1, 0, lowaddr, BUS_SPACE_MAXADDR, NULL,
2938 	    NULL, BUS_SPACE_MAXSIZE_32BIT, 0, BUS_SPACE_MAXSIZE_32BIT,
2939 	    0, NULL, NULL, &sc->bge_cdata.bge_parent_tag);
2940 	if (error != 0) {
2941 		device_printf(sc->bge_dev,
2942 		    "could not allocate parent dma tag\n");
2943 		return (ENOMEM);
2944 	}
2945 
2946 	/* Create tag for standard RX ring. */
2947 	error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_STD_RX_RING_SZ,
2948 	    &sc->bge_cdata.bge_rx_std_ring_tag,
2949 	    (uint8_t **)&sc->bge_ldata.bge_rx_std_ring,
2950 	    &sc->bge_cdata.bge_rx_std_ring_map,
2951 	    &sc->bge_ldata.bge_rx_std_ring_paddr, "RX ring");
2952 	if (error)
2953 		return (error);
2954 
2955 	/* Create tag for RX return ring. */
2956 	error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_RX_RTN_RING_SZ(sc),
2957 	    &sc->bge_cdata.bge_rx_return_ring_tag,
2958 	    (uint8_t **)&sc->bge_ldata.bge_rx_return_ring,
2959 	    &sc->bge_cdata.bge_rx_return_ring_map,
2960 	    &sc->bge_ldata.bge_rx_return_ring_paddr, "RX return ring");
2961 	if (error)
2962 		return (error);
2963 
2964 	/* Create tag for TX ring. */
2965 	error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_TX_RING_SZ,
2966 	    &sc->bge_cdata.bge_tx_ring_tag,
2967 	    (uint8_t **)&sc->bge_ldata.bge_tx_ring,
2968 	    &sc->bge_cdata.bge_tx_ring_map,
2969 	    &sc->bge_ldata.bge_tx_ring_paddr, "TX ring");
2970 	if (error)
2971 		return (error);
2972 
2973 	/*
2974 	 * Create tag for status block.
2975 	 * Because we only use single Tx/Rx/Rx return ring, use
2976 	 * minimum status block size except BCM5700 AX/BX which
2977 	 * seems to want to see full status block size regardless
2978 	 * of configured number of ring.
2979 	 */
2980 	if (sc->bge_asicrev == BGE_ASICREV_BCM5700 &&
2981 	    sc->bge_chipid != BGE_CHIPID_BCM5700_C0)
2982 		sbsz = BGE_STATUS_BLK_SZ;
2983 	else
2984 		sbsz = 32;
2985 	error = bge_dma_ring_alloc(sc, PAGE_SIZE, sbsz,
2986 	    &sc->bge_cdata.bge_status_tag,
2987 	    (uint8_t **)&sc->bge_ldata.bge_status_block,
2988 	    &sc->bge_cdata.bge_status_map,
2989 	    &sc->bge_ldata.bge_status_block_paddr, "status block");
2990 	if (error)
2991 		return (error);
2992 
2993 	/* Create tag for statistics block. */
2994 	error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_STATS_SZ,
2995 	    &sc->bge_cdata.bge_stats_tag,
2996 	    (uint8_t **)&sc->bge_ldata.bge_stats,
2997 	    &sc->bge_cdata.bge_stats_map,
2998 	    &sc->bge_ldata.bge_stats_paddr, "statistics block");
2999 	if (error)
3000 		return (error);
3001 
3002 	/* Create tag for jumbo RX ring. */
3003 	if (BGE_IS_JUMBO_CAPABLE(sc)) {
3004 		error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_JUMBO_RX_RING_SZ,
3005 		    &sc->bge_cdata.bge_rx_jumbo_ring_tag,
3006 		    (uint8_t **)&sc->bge_ldata.bge_rx_jumbo_ring,
3007 		    &sc->bge_cdata.bge_rx_jumbo_ring_map,
3008 		    &sc->bge_ldata.bge_rx_jumbo_ring_paddr, "jumbo RX ring");
3009 		if (error)
3010 			return (error);
3011 	}
3012 
3013 	/* Create parent tag for buffers. */
3014 	boundary = 0;
3015 	if ((sc->bge_flags & BGE_FLAG_4G_BNDRY_BUG) != 0) {
3016 		boundary = BGE_DMA_BNDRY;
3017 		/*
3018 		 * XXX
3019 		 * watchdog timeout issue was observed on BCM5704 which
3020 		 * lives behind PCI-X bridge(e.g AMD 8131 PCI-X bridge).
3021 		 * Both limiting DMA address space to 32bits and flushing
3022 		 * mailbox write seem to address the issue.
3023 		 */
3024 		if (sc->bge_pcixcap != 0)
3025 			lowaddr = BUS_SPACE_MAXADDR_32BIT;
3026 	}
3027 	error = bus_dma_tag_create(bus_get_dma_tag(sc->bge_dev),
3028 	    1, boundary, lowaddr, BUS_SPACE_MAXADDR, NULL,
3029 	    NULL, BUS_SPACE_MAXSIZE_32BIT, 0, BUS_SPACE_MAXSIZE_32BIT,
3030 	    0, NULL, NULL, &sc->bge_cdata.bge_buffer_tag);
3031 	if (error != 0) {
3032 		device_printf(sc->bge_dev,
3033 		    "could not allocate buffer dma tag\n");
3034 		return (ENOMEM);
3035 	}
3036 	/* Create tag for Tx mbufs. */
3037 	if (sc->bge_flags & (BGE_FLAG_TSO | BGE_FLAG_TSO3)) {
3038 		txsegsz = BGE_TSOSEG_SZ;
3039 		txmaxsegsz = 65535 + sizeof(struct ether_vlan_header);
3040 	} else {
3041 		txsegsz = MCLBYTES;
3042 		txmaxsegsz = MCLBYTES * BGE_NSEG_NEW;
3043 	}
3044 	error = bus_dma_tag_create(sc->bge_cdata.bge_buffer_tag, 1,
3045 	    0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL,
3046 	    txmaxsegsz, BGE_NSEG_NEW, txsegsz, 0, NULL, NULL,
3047 	    &sc->bge_cdata.bge_tx_mtag);
3048 
3049 	if (error) {
3050 		device_printf(sc->bge_dev, "could not allocate TX dma tag\n");
3051 		return (ENOMEM);
3052 	}
3053 
3054 	/* Create tag for Rx mbufs. */
3055 	if (sc->bge_flags & BGE_FLAG_JUMBO_STD)
3056 		rxmaxsegsz = MJUM9BYTES;
3057 	else
3058 		rxmaxsegsz = MCLBYTES;
3059 	error = bus_dma_tag_create(sc->bge_cdata.bge_buffer_tag, 1, 0,
3060 	    BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, rxmaxsegsz, 1,
3061 	    rxmaxsegsz, 0, NULL, NULL, &sc->bge_cdata.bge_rx_mtag);
3062 
3063 	if (error) {
3064 		device_printf(sc->bge_dev, "could not allocate RX dma tag\n");
3065 		return (ENOMEM);
3066 	}
3067 
3068 	/* Create DMA maps for RX buffers. */
3069 	error = bus_dmamap_create(sc->bge_cdata.bge_rx_mtag, 0,
3070 	    &sc->bge_cdata.bge_rx_std_sparemap);
3071 	if (error) {
3072 		device_printf(sc->bge_dev,
3073 		    "can't create spare DMA map for RX\n");
3074 		return (ENOMEM);
3075 	}
3076 	for (i = 0; i < BGE_STD_RX_RING_CNT; i++) {
3077 		error = bus_dmamap_create(sc->bge_cdata.bge_rx_mtag, 0,
3078 			    &sc->bge_cdata.bge_rx_std_dmamap[i]);
3079 		if (error) {
3080 			device_printf(sc->bge_dev,
3081 			    "can't create DMA map for RX\n");
3082 			return (ENOMEM);
3083 		}
3084 	}
3085 
3086 	/* Create DMA maps for TX buffers. */
3087 	for (i = 0; i < BGE_TX_RING_CNT; i++) {
3088 		error = bus_dmamap_create(sc->bge_cdata.bge_tx_mtag, 0,
3089 			    &sc->bge_cdata.bge_tx_dmamap[i]);
3090 		if (error) {
3091 			device_printf(sc->bge_dev,
3092 			    "can't create DMA map for TX\n");
3093 			return (ENOMEM);
3094 		}
3095 	}
3096 
3097 	/* Create tags for jumbo RX buffers. */
3098 	if (BGE_IS_JUMBO_CAPABLE(sc)) {
3099 		error = bus_dma_tag_create(sc->bge_cdata.bge_buffer_tag,
3100 		    1, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL,
3101 		    NULL, MJUM9BYTES, BGE_NSEG_JUMBO, PAGE_SIZE,
3102 		    0, NULL, NULL, &sc->bge_cdata.bge_mtag_jumbo);
3103 		if (error) {
3104 			device_printf(sc->bge_dev,
3105 			    "could not allocate jumbo dma tag\n");
3106 			return (ENOMEM);
3107 		}
3108 		/* Create DMA maps for jumbo RX buffers. */
3109 		error = bus_dmamap_create(sc->bge_cdata.bge_mtag_jumbo,
3110 		    0, &sc->bge_cdata.bge_rx_jumbo_sparemap);
3111 		if (error) {
3112 			device_printf(sc->bge_dev,
3113 			    "can't create spare DMA map for jumbo RX\n");
3114 			return (ENOMEM);
3115 		}
3116 		for (i = 0; i < BGE_JUMBO_RX_RING_CNT; i++) {
3117 			error = bus_dmamap_create(sc->bge_cdata.bge_mtag_jumbo,
3118 				    0, &sc->bge_cdata.bge_rx_jumbo_dmamap[i]);
3119 			if (error) {
3120 				device_printf(sc->bge_dev,
3121 				    "can't create DMA map for jumbo RX\n");
3122 				return (ENOMEM);
3123 			}
3124 		}
3125 	}
3126 
3127 	return (0);
3128 }
3129 
3130 /*
3131  * Return true if this device has more than one port.
3132  */
3133 static int
3134 bge_has_multiple_ports(struct bge_softc *sc)
3135 {
3136 	device_t dev = sc->bge_dev;
3137 	u_int b, d, f, fscan, s;
3138 
3139 	d = pci_get_domain(dev);
3140 	b = pci_get_bus(dev);
3141 	s = pci_get_slot(dev);
3142 	f = pci_get_function(dev);
3143 	for (fscan = 0; fscan <= PCI_FUNCMAX; fscan++)
3144 		if (fscan != f && pci_find_dbsf(d, b, s, fscan) != NULL)
3145 			return (1);
3146 	return (0);
3147 }
3148 
3149 /*
3150  * Return true if MSI can be used with this device.
3151  */
3152 static int
3153 bge_can_use_msi(struct bge_softc *sc)
3154 {
3155 	int can_use_msi = 0;
3156 
3157 	if (sc->bge_msi == 0)
3158 		return (0);
3159 
3160 	/* Disable MSI for polling(4). */
3161 #ifdef DEVICE_POLLING
3162 	return (0);
3163 #endif
3164 	switch (sc->bge_asicrev) {
3165 	case BGE_ASICREV_BCM5714_A0:
3166 	case BGE_ASICREV_BCM5714:
3167 		/*
3168 		 * Apparently, MSI doesn't work when these chips are
3169 		 * configured in single-port mode.
3170 		 */
3171 		if (bge_has_multiple_ports(sc))
3172 			can_use_msi = 1;
3173 		break;
3174 	case BGE_ASICREV_BCM5750:
3175 		if (sc->bge_chiprev != BGE_CHIPREV_5750_AX &&
3176 		    sc->bge_chiprev != BGE_CHIPREV_5750_BX)
3177 			can_use_msi = 1;
3178 		break;
3179 	case BGE_ASICREV_BCM5784:
3180 		/*
3181 		 * Prevent infinite "watchdog timeout" errors
3182 		 * in some MacBook Pro and make it work out-of-the-box.
3183 		 */
3184 		if (sc->bge_chiprev == BGE_CHIPREV_5784_AX)
3185 			break;
3186 		/* FALLTHROUGH */
3187 	default:
3188 		if (BGE_IS_575X_PLUS(sc))
3189 			can_use_msi = 1;
3190 	}
3191 	return (can_use_msi);
3192 }
3193 
3194 static int
3195 bge_mbox_reorder(struct bge_softc *sc)
3196 {
3197 	/* Lists of PCI bridges that are known to reorder mailbox writes. */
3198 	static const struct mbox_reorder {
3199 		const uint16_t vendor;
3200 		const uint16_t device;
3201 		const char *desc;
3202 	} mbox_reorder_lists[] = {
3203 		{ 0x1022, 0x7450, "AMD-8131 PCI-X Bridge" },
3204 	};
3205 	device_t dev;
3206 	int i;
3207 
3208 	dev = sc->bge_dev;
3209 	for (;;) {
3210 		dev = device_get_parent(device_get_parent(dev));
3211 		if (!is_pci_device(dev))
3212 			break;
3213 		for (i = 0; i < nitems(mbox_reorder_lists); i++) {
3214 			if (pci_get_vendor(dev) ==
3215 			    mbox_reorder_lists[i].vendor &&
3216 			    pci_get_device(dev) ==
3217 			    mbox_reorder_lists[i].device) {
3218 				device_printf(sc->bge_dev,
3219 				    "enabling MBOX workaround for %s\n",
3220 				    mbox_reorder_lists[i].desc);
3221 				return (1);
3222 			}
3223 		}
3224 	}
3225 	return (0);
3226 }
3227 
3228 static void
3229 bge_devinfo(struct bge_softc *sc)
3230 {
3231 	uint32_t cfg, clk;
3232 
3233 	device_printf(sc->bge_dev,
3234 	    "CHIP ID 0x%08x; ASIC REV 0x%02x; CHIP REV 0x%02x; ",
3235 	    sc->bge_chipid, sc->bge_asicrev, sc->bge_chiprev);
3236 	if (sc->bge_flags & BGE_FLAG_PCIE)
3237 		printf("PCI-E\n");
3238 	else if (sc->bge_flags & BGE_FLAG_PCIX) {
3239 		printf("PCI-X ");
3240 		cfg = CSR_READ_4(sc, BGE_MISC_CFG) & BGE_MISCCFG_BOARD_ID_MASK;
3241 		if (cfg == BGE_MISCCFG_BOARD_ID_5704CIOBE)
3242 			clk = 133;
3243 		else {
3244 			clk = CSR_READ_4(sc, BGE_PCI_CLKCTL) & 0x1F;
3245 			switch (clk) {
3246 			case 0:
3247 				clk = 33;
3248 				break;
3249 			case 2:
3250 				clk = 50;
3251 				break;
3252 			case 4:
3253 				clk = 66;
3254 				break;
3255 			case 6:
3256 				clk = 100;
3257 				break;
3258 			case 7:
3259 				clk = 133;
3260 				break;
3261 			}
3262 		}
3263 		printf("%u MHz\n", clk);
3264 	} else {
3265 		if (sc->bge_pcixcap != 0)
3266 			printf("PCI on PCI-X ");
3267 		else
3268 			printf("PCI ");
3269 		cfg = pci_read_config(sc->bge_dev, BGE_PCI_PCISTATE, 4);
3270 		if (cfg & BGE_PCISTATE_PCI_BUSSPEED)
3271 			clk = 66;
3272 		else
3273 			clk = 33;
3274 		if (cfg & BGE_PCISTATE_32BIT_BUS)
3275 			printf("%u MHz; 32bit\n", clk);
3276 		else
3277 			printf("%u MHz; 64bit\n", clk);
3278 	}
3279 }
3280 
3281 static int
3282 bge_attach(device_t dev)
3283 {
3284 	if_t ifp;
3285 	struct bge_softc *sc;
3286 	uint32_t hwcfg = 0, misccfg, pcistate;
3287 	u_char eaddr[ETHER_ADDR_LEN];
3288 	int capmask, error, reg, rid, trys;
3289 
3290 	sc = device_get_softc(dev);
3291 	sc->bge_dev = dev;
3292 
3293 	BGE_LOCK_INIT(sc, device_get_nameunit(dev));
3294 	NET_TASK_INIT(&sc->bge_intr_task, 0, bge_intr_task, sc);
3295 	callout_init_mtx(&sc->bge_stat_ch, &sc->bge_mtx, 0);
3296 
3297 	pci_enable_busmaster(dev);
3298 
3299 	/*
3300 	 * Allocate control/status registers.
3301 	 */
3302 	rid = PCIR_BAR(0);
3303 	sc->bge_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid,
3304 	    RF_ACTIVE);
3305 
3306 	if (sc->bge_res == NULL) {
3307 		device_printf (sc->bge_dev, "couldn't map BAR0 memory\n");
3308 		error = ENXIO;
3309 		goto fail;
3310 	}
3311 
3312 	/* Save various chip information. */
3313 	sc->bge_func_addr = pci_get_function(dev);
3314 	sc->bge_chipid = bge_chipid(dev);
3315 	sc->bge_asicrev = BGE_ASICREV(sc->bge_chipid);
3316 	sc->bge_chiprev = BGE_CHIPREV(sc->bge_chipid);
3317 
3318 	/* Set default PHY address. */
3319 	sc->bge_phy_addr = 1;
3320 	 /*
3321 	  * PHY address mapping for various devices.
3322 	  *
3323 	  *          | F0 Cu | F0 Sr | F1 Cu | F1 Sr |
3324 	  * ---------+-------+-------+-------+-------+
3325 	  * BCM57XX  |   1   |   X   |   X   |   X   |
3326 	  * BCM5704  |   1   |   X   |   1   |   X   |
3327 	  * BCM5717  |   1   |   8   |   2   |   9   |
3328 	  * BCM5719  |   1   |   8   |   2   |   9   |
3329 	  * BCM5720  |   1   |   8   |   2   |   9   |
3330 	  *
3331 	  *          | F2 Cu | F2 Sr | F3 Cu | F3 Sr |
3332 	  * ---------+-------+-------+-------+-------+
3333 	  * BCM57XX  |   X   |   X   |   X   |   X   |
3334 	  * BCM5704  |   X   |   X   |   X   |   X   |
3335 	  * BCM5717  |   X   |   X   |   X   |   X   |
3336 	  * BCM5719  |   3   |   10  |   4   |   11  |
3337 	  * BCM5720  |   X   |   X   |   X   |   X   |
3338 	  *
3339 	  * Other addresses may respond but they are not
3340 	  * IEEE compliant PHYs and should be ignored.
3341 	  */
3342 	if (sc->bge_asicrev == BGE_ASICREV_BCM5717 ||
3343 	    sc->bge_asicrev == BGE_ASICREV_BCM5719 ||
3344 	    sc->bge_asicrev == BGE_ASICREV_BCM5720) {
3345 		if (sc->bge_chipid != BGE_CHIPID_BCM5717_A0) {
3346 			if (CSR_READ_4(sc, BGE_SGDIG_STS) &
3347 			    BGE_SGDIGSTS_IS_SERDES)
3348 				sc->bge_phy_addr = sc->bge_func_addr + 8;
3349 			else
3350 				sc->bge_phy_addr = sc->bge_func_addr + 1;
3351 		} else {
3352 			if (CSR_READ_4(sc, BGE_CPMU_PHY_STRAP) &
3353 			    BGE_CPMU_PHY_STRAP_IS_SERDES)
3354 				sc->bge_phy_addr = sc->bge_func_addr + 8;
3355 			else
3356 				sc->bge_phy_addr = sc->bge_func_addr + 1;
3357 		}
3358 	}
3359 
3360 	if (bge_has_eaddr(sc))
3361 		sc->bge_flags |= BGE_FLAG_EADDR;
3362 
3363 	/* Save chipset family. */
3364 	switch (sc->bge_asicrev) {
3365 	case BGE_ASICREV_BCM5762:
3366 	case BGE_ASICREV_BCM57765:
3367 	case BGE_ASICREV_BCM57766:
3368 		sc->bge_flags |= BGE_FLAG_57765_PLUS;
3369 		/* FALLTHROUGH */
3370 	case BGE_ASICREV_BCM5717:
3371 	case BGE_ASICREV_BCM5719:
3372 	case BGE_ASICREV_BCM5720:
3373 		sc->bge_flags |= BGE_FLAG_5717_PLUS | BGE_FLAG_5755_PLUS |
3374 		    BGE_FLAG_575X_PLUS | BGE_FLAG_5705_PLUS | BGE_FLAG_JUMBO |
3375 		    BGE_FLAG_JUMBO_FRAME;
3376 		if (sc->bge_asicrev == BGE_ASICREV_BCM5719 ||
3377 		    sc->bge_asicrev == BGE_ASICREV_BCM5720) {
3378 			/*
3379 			 * Enable work around for DMA engine miscalculation
3380 			 * of TXMBUF available space.
3381 			 */
3382 			sc->bge_flags |= BGE_FLAG_RDMA_BUG;
3383 			if (sc->bge_asicrev == BGE_ASICREV_BCM5719 &&
3384 			    sc->bge_chipid == BGE_CHIPID_BCM5719_A0) {
3385 				/* Jumbo frame on BCM5719 A0 does not work. */
3386 				sc->bge_flags &= ~BGE_FLAG_JUMBO;
3387 			}
3388 		}
3389 		break;
3390 	case BGE_ASICREV_BCM5755:
3391 	case BGE_ASICREV_BCM5761:
3392 	case BGE_ASICREV_BCM5784:
3393 	case BGE_ASICREV_BCM5785:
3394 	case BGE_ASICREV_BCM5787:
3395 	case BGE_ASICREV_BCM57780:
3396 		sc->bge_flags |= BGE_FLAG_5755_PLUS | BGE_FLAG_575X_PLUS |
3397 		    BGE_FLAG_5705_PLUS;
3398 		break;
3399 	case BGE_ASICREV_BCM5700:
3400 	case BGE_ASICREV_BCM5701:
3401 	case BGE_ASICREV_BCM5703:
3402 	case BGE_ASICREV_BCM5704:
3403 		sc->bge_flags |= BGE_FLAG_5700_FAMILY | BGE_FLAG_JUMBO;
3404 		break;
3405 	case BGE_ASICREV_BCM5714_A0:
3406 	case BGE_ASICREV_BCM5780:
3407 	case BGE_ASICREV_BCM5714:
3408 		sc->bge_flags |= BGE_FLAG_5714_FAMILY | BGE_FLAG_JUMBO_STD;
3409 		/* FALLTHROUGH */
3410 	case BGE_ASICREV_BCM5750:
3411 	case BGE_ASICREV_BCM5752:
3412 	case BGE_ASICREV_BCM5906:
3413 		sc->bge_flags |= BGE_FLAG_575X_PLUS;
3414 		/* FALLTHROUGH */
3415 	case BGE_ASICREV_BCM5705:
3416 		sc->bge_flags |= BGE_FLAG_5705_PLUS;
3417 		break;
3418 	}
3419 
3420 	/* Identify chips with APE processor. */
3421 	switch (sc->bge_asicrev) {
3422 	case BGE_ASICREV_BCM5717:
3423 	case BGE_ASICREV_BCM5719:
3424 	case BGE_ASICREV_BCM5720:
3425 	case BGE_ASICREV_BCM5761:
3426 	case BGE_ASICREV_BCM5762:
3427 		sc->bge_flags |= BGE_FLAG_APE;
3428 		break;
3429 	}
3430 
3431 	/* Chips with APE need BAR2 access for APE registers/memory. */
3432 	if ((sc->bge_flags & BGE_FLAG_APE) != 0) {
3433 		rid = PCIR_BAR(2);
3434 		sc->bge_res2 = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid,
3435 		    RF_ACTIVE);
3436 		if (sc->bge_res2 == NULL) {
3437 			device_printf (sc->bge_dev,
3438 			    "couldn't map BAR2 memory\n");
3439 			error = ENXIO;
3440 			goto fail;
3441 		}
3442 
3443 		/* Enable APE register/memory access by host driver. */
3444 		pcistate = pci_read_config(dev, BGE_PCI_PCISTATE, 4);
3445 		pcistate |= BGE_PCISTATE_ALLOW_APE_CTLSPC_WR |
3446 		    BGE_PCISTATE_ALLOW_APE_SHMEM_WR |
3447 		    BGE_PCISTATE_ALLOW_APE_PSPACE_WR;
3448 		pci_write_config(dev, BGE_PCI_PCISTATE, pcistate, 4);
3449 
3450 		bge_ape_lock_init(sc);
3451 		bge_ape_read_fw_ver(sc);
3452 	}
3453 
3454 	/* Add SYSCTLs, requires the chipset family to be set. */
3455 	bge_add_sysctls(sc);
3456 
3457 	/* Identify the chips that use an CPMU. */
3458 	if (BGE_IS_5717_PLUS(sc) ||
3459 	    sc->bge_asicrev == BGE_ASICREV_BCM5784 ||
3460 	    sc->bge_asicrev == BGE_ASICREV_BCM5761 ||
3461 	    sc->bge_asicrev == BGE_ASICREV_BCM5785 ||
3462 	    sc->bge_asicrev == BGE_ASICREV_BCM57780)
3463 		sc->bge_flags |= BGE_FLAG_CPMU_PRESENT;
3464 	if ((sc->bge_flags & BGE_FLAG_CPMU_PRESENT) != 0)
3465 		sc->bge_mi_mode = BGE_MIMODE_500KHZ_CONST;
3466 	else
3467 		sc->bge_mi_mode = BGE_MIMODE_BASE;
3468 	/* Enable auto polling for BCM570[0-5]. */
3469 	if (BGE_IS_5700_FAMILY(sc) || sc->bge_asicrev == BGE_ASICREV_BCM5705)
3470 		sc->bge_mi_mode |= BGE_MIMODE_AUTOPOLL;
3471 
3472 	/*
3473 	 * All Broadcom controllers have 4GB boundary DMA bug.
3474 	 * Whenever an address crosses a multiple of the 4GB boundary
3475 	 * (including 4GB, 8Gb, 12Gb, etc.) and makes the transition
3476 	 * from 0xX_FFFF_FFFF to 0x(X+1)_0000_0000 an internal DMA
3477 	 * state machine will lockup and cause the device to hang.
3478 	 */
3479 	sc->bge_flags |= BGE_FLAG_4G_BNDRY_BUG;
3480 
3481 	/* BCM5755 or higher and BCM5906 have short DMA bug. */
3482 	if (BGE_IS_5755_PLUS(sc) || sc->bge_asicrev == BGE_ASICREV_BCM5906)
3483 		sc->bge_flags |= BGE_FLAG_SHORT_DMA_BUG;
3484 
3485 	/*
3486 	 * BCM5719 cannot handle DMA requests for DMA segments that
3487 	 * have larger than 4KB in size.  However the maximum DMA
3488 	 * segment size created in DMA tag is 4KB for TSO, so we
3489 	 * wouldn't encounter the issue here.
3490 	 */
3491 	if (sc->bge_asicrev == BGE_ASICREV_BCM5719)
3492 		sc->bge_flags |= BGE_FLAG_4K_RDMA_BUG;
3493 
3494 	misccfg = CSR_READ_4(sc, BGE_MISC_CFG) & BGE_MISCCFG_BOARD_ID_MASK;
3495 	if (sc->bge_asicrev == BGE_ASICREV_BCM5705) {
3496 		if (misccfg == BGE_MISCCFG_BOARD_ID_5788 ||
3497 		    misccfg == BGE_MISCCFG_BOARD_ID_5788M)
3498 			sc->bge_flags |= BGE_FLAG_5788;
3499 	}
3500 
3501 	capmask = BMSR_DEFCAPMASK;
3502 	if ((sc->bge_asicrev == BGE_ASICREV_BCM5703 &&
3503 	    (misccfg == 0x4000 || misccfg == 0x8000)) ||
3504 	    (sc->bge_asicrev == BGE_ASICREV_BCM5705 &&
3505 	    pci_get_vendor(dev) == BCOM_VENDORID &&
3506 	    (pci_get_device(dev) == BCOM_DEVICEID_BCM5901 ||
3507 	    pci_get_device(dev) == BCOM_DEVICEID_BCM5901A2 ||
3508 	    pci_get_device(dev) == BCOM_DEVICEID_BCM5705F)) ||
3509 	    (pci_get_vendor(dev) == BCOM_VENDORID &&
3510 	    (pci_get_device(dev) == BCOM_DEVICEID_BCM5751F ||
3511 	    pci_get_device(dev) == BCOM_DEVICEID_BCM5753F ||
3512 	    pci_get_device(dev) == BCOM_DEVICEID_BCM5787F)) ||
3513 	    pci_get_device(dev) == BCOM_DEVICEID_BCM57790 ||
3514 	    pci_get_device(dev) == BCOM_DEVICEID_BCM57791 ||
3515 	    pci_get_device(dev) == BCOM_DEVICEID_BCM57795 ||
3516 	    sc->bge_asicrev == BGE_ASICREV_BCM5906) {
3517 		/* These chips are 10/100 only. */
3518 		capmask &= ~BMSR_EXTSTAT;
3519 		sc->bge_phy_flags |= BGE_PHY_NO_WIRESPEED;
3520 	}
3521 
3522 	/*
3523 	 * Some controllers seem to require a special firmware to use
3524 	 * TSO. But the firmware is not available to FreeBSD and Linux
3525 	 * claims that the TSO performed by the firmware is slower than
3526 	 * hardware based TSO. Moreover the firmware based TSO has one
3527 	 * known bug which can't handle TSO if Ethernet header + IP/TCP
3528 	 * header is greater than 80 bytes. A workaround for the TSO
3529 	 * bug exist but it seems it's too expensive than not using
3530 	 * TSO at all. Some hardware also have the TSO bug so limit
3531 	 * the TSO to the controllers that are not affected TSO issues
3532 	 * (e.g. 5755 or higher).
3533 	 */
3534 	if (BGE_IS_5717_PLUS(sc)) {
3535 		/* BCM5717 requires different TSO configuration. */
3536 		sc->bge_flags |= BGE_FLAG_TSO3;
3537 		if (sc->bge_asicrev == BGE_ASICREV_BCM5719 &&
3538 		    sc->bge_chipid == BGE_CHIPID_BCM5719_A0) {
3539 			/* TSO on BCM5719 A0 does not work. */
3540 			sc->bge_flags &= ~BGE_FLAG_TSO3;
3541 		}
3542 	} else if (BGE_IS_5755_PLUS(sc)) {
3543 		/*
3544 		 * BCM5754 and BCM5787 shares the same ASIC id so
3545 		 * explicit device id check is required.
3546 		 * Due to unknown reason TSO does not work on BCM5755M.
3547 		 */
3548 		if (pci_get_device(dev) != BCOM_DEVICEID_BCM5754 &&
3549 		    pci_get_device(dev) != BCOM_DEVICEID_BCM5754M &&
3550 		    pci_get_device(dev) != BCOM_DEVICEID_BCM5755M)
3551 			sc->bge_flags |= BGE_FLAG_TSO;
3552 	}
3553 
3554 	/*
3555 	 * Check if this is a PCI-X or PCI Express device.
3556 	 */
3557 	if (pci_find_cap(dev, PCIY_EXPRESS, &reg) == 0) {
3558 		/*
3559 		 * Found a PCI Express capabilities register, this
3560 		 * must be a PCI Express device.
3561 		 */
3562 		sc->bge_flags |= BGE_FLAG_PCIE;
3563 		sc->bge_expcap = reg;
3564 		/* Extract supported maximum payload size. */
3565 		sc->bge_mps = pci_read_config(dev, sc->bge_expcap +
3566 		    PCIER_DEVICE_CAP, 2);
3567 		sc->bge_mps = 128 << (sc->bge_mps & PCIEM_CAP_MAX_PAYLOAD);
3568 		if (sc->bge_asicrev == BGE_ASICREV_BCM5719 ||
3569 		    sc->bge_asicrev == BGE_ASICREV_BCM5720)
3570 			sc->bge_expmrq = 2048;
3571 		else
3572 			sc->bge_expmrq = 4096;
3573 		pci_set_max_read_req(dev, sc->bge_expmrq);
3574 	} else {
3575 		/*
3576 		 * Check if the device is in PCI-X Mode.
3577 		 * (This bit is not valid on PCI Express controllers.)
3578 		 */
3579 		if (pci_find_cap(dev, PCIY_PCIX, &reg) == 0)
3580 			sc->bge_pcixcap = reg;
3581 		if ((pci_read_config(dev, BGE_PCI_PCISTATE, 4) &
3582 		    BGE_PCISTATE_PCI_BUSMODE) == 0)
3583 			sc->bge_flags |= BGE_FLAG_PCIX;
3584 	}
3585 
3586 	/*
3587 	 * The 40bit DMA bug applies to the 5714/5715 controllers and is
3588 	 * not actually a MAC controller bug but an issue with the embedded
3589 	 * PCIe to PCI-X bridge in the device. Use 40bit DMA workaround.
3590 	 */
3591 	if (BGE_IS_5714_FAMILY(sc) && (sc->bge_flags & BGE_FLAG_PCIX))
3592 		sc->bge_flags |= BGE_FLAG_40BIT_BUG;
3593 	/*
3594 	 * Some PCI-X bridges are known to trigger write reordering to
3595 	 * the mailbox registers. Typical phenomena is watchdog timeouts
3596 	 * caused by out-of-order TX completions.  Enable workaround for
3597 	 * PCI-X devices that live behind these bridges.
3598 	 * Note, PCI-X controllers can run in PCI mode so we can't use
3599 	 * BGE_FLAG_PCIX flag to detect PCI-X controllers.
3600 	 */
3601 	if (sc->bge_pcixcap != 0 && bge_mbox_reorder(sc) != 0)
3602 		sc->bge_flags |= BGE_FLAG_MBOX_REORDER;
3603 	/*
3604 	 * Allocate the interrupt, using MSI if possible.  These devices
3605 	 * support 8 MSI messages, but only the first one is used in
3606 	 * normal operation.
3607 	 */
3608 	rid = 0;
3609 	if (pci_find_cap(sc->bge_dev, PCIY_MSI, &reg) == 0) {
3610 		sc->bge_msicap = reg;
3611 		reg = 1;
3612 		if (bge_can_use_msi(sc) && pci_alloc_msi(dev, &reg) == 0) {
3613 			rid = 1;
3614 			sc->bge_flags |= BGE_FLAG_MSI;
3615 		}
3616 	}
3617 
3618 	/*
3619 	 * All controllers except BCM5700 supports tagged status but
3620 	 * we use tagged status only for MSI case on BCM5717. Otherwise
3621 	 * MSI on BCM5717 does not work.
3622 	 */
3623 #ifndef DEVICE_POLLING
3624 	if (sc->bge_flags & BGE_FLAG_MSI && BGE_IS_5717_PLUS(sc))
3625 		sc->bge_flags |= BGE_FLAG_TAGGED_STATUS;
3626 #endif
3627 
3628 	sc->bge_irq = bus_alloc_resource_any(dev, SYS_RES_IRQ, &rid,
3629 	    RF_ACTIVE | (rid != 0 ? 0 : RF_SHAREABLE));
3630 
3631 	if (sc->bge_irq == NULL) {
3632 		device_printf(sc->bge_dev, "couldn't map interrupt\n");
3633 		error = ENXIO;
3634 		goto fail;
3635 	}
3636 
3637 	bge_devinfo(sc);
3638 
3639 	sc->bge_asf_mode = 0;
3640 	/* No ASF if APE present. */
3641 	if ((sc->bge_flags & BGE_FLAG_APE) == 0) {
3642 		if (bge_allow_asf && (bge_readmem_ind(sc, BGE_SRAM_DATA_SIG) ==
3643 		    BGE_SRAM_DATA_SIG_MAGIC)) {
3644 			if (bge_readmem_ind(sc, BGE_SRAM_DATA_CFG) &
3645 			    BGE_HWCFG_ASF) {
3646 				sc->bge_asf_mode |= ASF_ENABLE;
3647 				sc->bge_asf_mode |= ASF_STACKUP;
3648 				if (BGE_IS_575X_PLUS(sc))
3649 					sc->bge_asf_mode |= ASF_NEW_HANDSHAKE;
3650 			}
3651 		}
3652 	}
3653 
3654 	bge_stop_fw(sc);
3655 	bge_sig_pre_reset(sc, BGE_RESET_SHUTDOWN);
3656 	if (bge_reset(sc)) {
3657 		device_printf(sc->bge_dev, "chip reset failed\n");
3658 		error = ENXIO;
3659 		goto fail;
3660 	}
3661 
3662 	bge_sig_legacy(sc, BGE_RESET_SHUTDOWN);
3663 	bge_sig_post_reset(sc, BGE_RESET_SHUTDOWN);
3664 
3665 	if (bge_chipinit(sc)) {
3666 		device_printf(sc->bge_dev, "chip initialization failed\n");
3667 		error = ENXIO;
3668 		goto fail;
3669 	}
3670 
3671 	error = bge_get_eaddr(sc, eaddr);
3672 	if (error) {
3673 		device_printf(sc->bge_dev,
3674 		    "failed to read station address\n");
3675 		error = ENXIO;
3676 		goto fail;
3677 	}
3678 
3679 	/* 5705 limits RX return ring to 512 entries. */
3680 	if (BGE_IS_5717_PLUS(sc))
3681 		sc->bge_return_ring_cnt = BGE_RETURN_RING_CNT;
3682 	else if (BGE_IS_5705_PLUS(sc))
3683 		sc->bge_return_ring_cnt = BGE_RETURN_RING_CNT_5705;
3684 	else
3685 		sc->bge_return_ring_cnt = BGE_RETURN_RING_CNT;
3686 
3687 	if (bge_dma_alloc(sc)) {
3688 		device_printf(sc->bge_dev,
3689 		    "failed to allocate DMA resources\n");
3690 		error = ENXIO;
3691 		goto fail;
3692 	}
3693 
3694 	/* Set default tuneable values. */
3695 	sc->bge_stat_ticks = BGE_TICKS_PER_SEC;
3696 	sc->bge_rx_coal_ticks = 150;
3697 	sc->bge_tx_coal_ticks = 150;
3698 	sc->bge_rx_max_coal_bds = 10;
3699 	sc->bge_tx_max_coal_bds = 10;
3700 
3701 	/* Initialize checksum features to use. */
3702 	sc->bge_csum_features = BGE_CSUM_FEATURES;
3703 	if (sc->bge_forced_udpcsum != 0)
3704 		sc->bge_csum_features |= CSUM_UDP;
3705 
3706 	/* Set up ifnet structure */
3707 	ifp = sc->bge_ifp = if_alloc(IFT_ETHER);
3708 	if_setsoftc(ifp, sc);
3709 	if_initname(ifp, device_get_name(dev), device_get_unit(dev));
3710 	if_setflags(ifp, IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST);
3711 	if_setioctlfn(ifp, bge_ioctl);
3712 	if_setstartfn(ifp, bge_start);
3713 	if_setinitfn(ifp, bge_init);
3714 	if_setgetcounterfn(ifp, bge_get_counter);
3715 	if_setsendqlen(ifp, BGE_TX_RING_CNT - 1);
3716 	if_setsendqready(ifp);
3717 	/* Initially enable checksum offloading either for all of IPv4, TCP/IPv4
3718 	 * and UDP/IPv4, or for none. This avoids problems when the interface
3719 	 * is added to a bridge.
3720 	 */
3721 	if (sc->bge_csum_features & CSUM_UDP)
3722 		if_sethwassist(ifp, sc->bge_csum_features);
3723 	if_setcapabilities(ifp, IFCAP_HWCSUM | IFCAP_VLAN_HWTAGGING |
3724 	    IFCAP_VLAN_MTU);
3725 	if ((sc->bge_flags & (BGE_FLAG_TSO | BGE_FLAG_TSO3)) != 0) {
3726 		if_sethwassistbits(ifp, CSUM_TSO, 0);
3727 		if_setcapabilitiesbit(ifp, IFCAP_TSO4 | IFCAP_VLAN_HWTSO, 0);
3728 	}
3729 #ifdef IFCAP_VLAN_HWCSUM
3730 	if_setcapabilitiesbit(ifp, IFCAP_VLAN_HWCSUM, 0);
3731 #endif
3732 	if_setcapenable(ifp, if_getcapabilities(ifp));
3733 	/*
3734 	 * Disable TXCSUM capability initially, if UDP checksum offloading is
3735 	 * not enabled. This avoids problems when the interface is added to a
3736 	 * bridge.
3737 	 */
3738 	if ((sc->bge_csum_features & CSUM_UDP) == 0)
3739 		if_setcapenablebit(ifp, 0, IFCAP_TXCSUM);
3740 #ifdef DEVICE_POLLING
3741 	if_setcapabilitiesbit(ifp, IFCAP_POLLING, 0);
3742 #endif
3743 
3744 	/*
3745 	 * 5700 B0 chips do not support checksumming correctly due
3746 	 * to hardware bugs.
3747 	 */
3748 	if (sc->bge_chipid == BGE_CHIPID_BCM5700_B0) {
3749 		if_setcapabilitiesbit(ifp, 0, IFCAP_HWCSUM);
3750 		if_setcapenablebit(ifp, 0, IFCAP_HWCSUM);
3751 		if_sethwassist(ifp, 0);
3752 	}
3753 
3754 	/*
3755 	 * Figure out what sort of media we have by checking the
3756 	 * hardware config word in the first 32k of NIC internal memory,
3757 	 * or fall back to examining the EEPROM if necessary.
3758 	 * Note: on some BCM5700 cards, this value appears to be unset.
3759 	 * If that's the case, we have to rely on identifying the NIC
3760 	 * by its PCI subsystem ID, as we do below for the SysKonnect
3761 	 * SK-9D41.
3762 	 */
3763 	if (bge_readmem_ind(sc, BGE_SRAM_DATA_SIG) == BGE_SRAM_DATA_SIG_MAGIC)
3764 		hwcfg = bge_readmem_ind(sc, BGE_SRAM_DATA_CFG);
3765 	else if ((sc->bge_flags & BGE_FLAG_EADDR) &&
3766 	    (sc->bge_asicrev != BGE_ASICREV_BCM5906)) {
3767 		if (bge_read_eeprom(sc, (caddr_t)&hwcfg, BGE_EE_HWCFG_OFFSET,
3768 		    sizeof(hwcfg))) {
3769 			/*
3770 			 * BCM57766 on Apple T2 Macs has no dedicated EEPROM;
3771 			 * the chip is copper-only so hwcfg=0 is correct.
3772 			 */
3773 			if (sc->bge_asicrev != BGE_ASICREV_BCM57766) {
3774 				device_printf(sc->bge_dev,
3775 				    "failed to read EEPROM\n");
3776 				error = ENXIO;
3777 				goto fail;
3778 			}
3779 			hwcfg = 0;
3780 		} else
3781 			hwcfg = ntohl(hwcfg);
3782 	}
3783 
3784 	/* The SysKonnect SK-9D41 is a 1000baseSX card. */
3785 	if ((pci_read_config(dev, BGE_PCI_SUBSYS, 4) >> 16) ==
3786 	    SK_SUBSYSID_9D41 || (hwcfg & BGE_HWCFG_MEDIA) == BGE_MEDIA_FIBER) {
3787 		if (BGE_IS_5705_PLUS(sc)) {
3788 			sc->bge_flags |= BGE_FLAG_MII_SERDES;
3789 			sc->bge_phy_flags |= BGE_PHY_NO_WIRESPEED;
3790 		} else
3791 			sc->bge_flags |= BGE_FLAG_TBI;
3792 	}
3793 
3794 	/* Set various PHY bug flags. */
3795 	if (sc->bge_chipid == BGE_CHIPID_BCM5701_A0 ||
3796 	    sc->bge_chipid == BGE_CHIPID_BCM5701_B0)
3797 		sc->bge_phy_flags |= BGE_PHY_CRC_BUG;
3798 	if (sc->bge_chiprev == BGE_CHIPREV_5703_AX ||
3799 	    sc->bge_chiprev == BGE_CHIPREV_5704_AX)
3800 		sc->bge_phy_flags |= BGE_PHY_ADC_BUG;
3801 	if (sc->bge_chipid == BGE_CHIPID_BCM5704_A0)
3802 		sc->bge_phy_flags |= BGE_PHY_5704_A0_BUG;
3803 	if (pci_get_subvendor(dev) == DELL_VENDORID)
3804 		sc->bge_phy_flags |= BGE_PHY_NO_3LED;
3805 	if ((BGE_IS_5705_PLUS(sc)) &&
3806 	    sc->bge_asicrev != BGE_ASICREV_BCM5906 &&
3807 	    sc->bge_asicrev != BGE_ASICREV_BCM5785 &&
3808 	    sc->bge_asicrev != BGE_ASICREV_BCM57780 &&
3809 	    !BGE_IS_5717_PLUS(sc)) {
3810 		if (sc->bge_asicrev == BGE_ASICREV_BCM5755 ||
3811 		    sc->bge_asicrev == BGE_ASICREV_BCM5761 ||
3812 		    sc->bge_asicrev == BGE_ASICREV_BCM5784 ||
3813 		    sc->bge_asicrev == BGE_ASICREV_BCM5787) {
3814 			if (pci_get_device(dev) != BCOM_DEVICEID_BCM5722 &&
3815 			    pci_get_device(dev) != BCOM_DEVICEID_BCM5756)
3816 				sc->bge_phy_flags |= BGE_PHY_JITTER_BUG;
3817 			if (pci_get_device(dev) == BCOM_DEVICEID_BCM5755M)
3818 				sc->bge_phy_flags |= BGE_PHY_ADJUST_TRIM;
3819 		} else
3820 			sc->bge_phy_flags |= BGE_PHY_BER_BUG;
3821 	}
3822 
3823 	/*
3824 	 * Don't enable Ethernet@WireSpeed for the 5700 or the
3825 	 * 5705 A0 and A1 chips.
3826 	 */
3827 	if (sc->bge_asicrev == BGE_ASICREV_BCM5700 ||
3828 	    (sc->bge_asicrev == BGE_ASICREV_BCM5705 &&
3829 	    (sc->bge_chipid != BGE_CHIPID_BCM5705_A0 &&
3830 	    sc->bge_chipid != BGE_CHIPID_BCM5705_A1)))
3831 		sc->bge_phy_flags |= BGE_PHY_NO_WIRESPEED;
3832 
3833 	if (sc->bge_flags & BGE_FLAG_TBI) {
3834 		ifmedia_init(&sc->bge_ifmedia, IFM_IMASK, bge_ifmedia_upd,
3835 		    bge_ifmedia_sts);
3836 		ifmedia_add(&sc->bge_ifmedia, IFM_ETHER | IFM_1000_SX, 0, NULL);
3837 		ifmedia_add(&sc->bge_ifmedia, IFM_ETHER | IFM_1000_SX | IFM_FDX,
3838 		    0, NULL);
3839 		ifmedia_add(&sc->bge_ifmedia, IFM_ETHER | IFM_AUTO, 0, NULL);
3840 		ifmedia_set(&sc->bge_ifmedia, IFM_ETHER | IFM_AUTO);
3841 		sc->bge_ifmedia.ifm_media = sc->bge_ifmedia.ifm_cur->ifm_media;
3842 	} else {
3843 		/*
3844 		 * Do transceiver setup and tell the firmware the
3845 		 * driver is down so we can try to get access the
3846 		 * probe if ASF is running.  Retry a couple of times
3847 		 * if we get a conflict with the ASF firmware accessing
3848 		 * the PHY.
3849 		 */
3850 		trys = 0;
3851 		BGE_CLRBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP);
3852 again:
3853 		bge_asf_driver_up(sc);
3854 
3855 		error = mii_attach(dev, &sc->bge_miibus, ifp,
3856 		    (ifm_change_cb_t)bge_ifmedia_upd,
3857 		    (ifm_stat_cb_t)bge_ifmedia_sts, capmask, sc->bge_phy_addr,
3858 		    MII_OFFSET_ANY, MIIF_DOPAUSE);
3859 		if (error != 0) {
3860 			if (trys++ < 4) {
3861 				device_printf(sc->bge_dev, "Try again\n");
3862 				bge_miibus_writereg(sc->bge_dev,
3863 				    sc->bge_phy_addr, MII_BMCR, BMCR_RESET);
3864 				goto again;
3865 			}
3866 			device_printf(sc->bge_dev, "attaching PHYs failed\n");
3867 			goto fail;
3868 		}
3869 
3870 		/*
3871 		 * Now tell the firmware we are going up after probing the PHY
3872 		 */
3873 		if (sc->bge_asf_mode & ASF_STACKUP)
3874 			BGE_SETBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP);
3875 	}
3876 
3877 	/*
3878 	 * When using the BCM5701 in PCI-X mode, data corruption has
3879 	 * been observed in the first few bytes of some received packets.
3880 	 * Aligning the packet buffer in memory eliminates the corruption.
3881 	 * Unfortunately, this misaligns the packet payloads.  On platforms
3882 	 * which do not support unaligned accesses, we will realign the
3883 	 * payloads by copying the received packets.
3884 	 */
3885 	if (sc->bge_asicrev == BGE_ASICREV_BCM5701 &&
3886 	    sc->bge_flags & BGE_FLAG_PCIX)
3887                 sc->bge_flags |= BGE_FLAG_RX_ALIGNBUG;
3888 
3889 	/*
3890 	 * Call MI attach routine.
3891 	 */
3892 	ether_ifattach(ifp, eaddr);
3893 
3894 	/* Tell upper layer we support long frames. */
3895 	if_setifheaderlen(ifp, sizeof(struct ether_vlan_header));
3896 
3897 	/*
3898 	 * Hookup IRQ last.
3899 	 */
3900 	if (BGE_IS_5755_PLUS(sc) && sc->bge_flags & BGE_FLAG_MSI) {
3901 		/* Take advantage of single-shot MSI. */
3902 		CSR_WRITE_4(sc, BGE_MSI_MODE, CSR_READ_4(sc, BGE_MSI_MODE) &
3903 		    ~BGE_MSIMODE_ONE_SHOT_DISABLE);
3904 		sc->bge_tq = taskqueue_create_fast("bge_taskq", M_WAITOK,
3905 		    taskqueue_thread_enqueue, &sc->bge_tq);
3906 		error = taskqueue_start_threads(&sc->bge_tq, 1, PI_NET,
3907 		    "%s taskq", device_get_nameunit(sc->bge_dev));
3908 		if (error != 0) {
3909 			device_printf(dev, "could not start threads.\n");
3910 			ether_ifdetach(ifp);
3911 			goto fail;
3912 		}
3913 		error = bus_setup_intr(dev, sc->bge_irq,
3914 		    INTR_TYPE_NET | INTR_MPSAFE, bge_msi_intr, NULL, sc,
3915 		    &sc->bge_intrhand);
3916 	} else
3917 		error = bus_setup_intr(dev, sc->bge_irq,
3918 		    INTR_TYPE_NET | INTR_MPSAFE, NULL, bge_intr, sc,
3919 		    &sc->bge_intrhand);
3920 
3921 	if (error) {
3922 		ether_ifdetach(ifp);
3923 		device_printf(sc->bge_dev, "couldn't set up irq\n");
3924 		goto fail;
3925 	}
3926 
3927 	/* Attach driver debugnet methods. */
3928 	DEBUGNET_SET(ifp, bge);
3929 
3930 fail:
3931 	if (error)
3932 		bge_detach(dev);
3933 	return (error);
3934 }
3935 
3936 static int
3937 bge_detach(device_t dev)
3938 {
3939 	struct bge_softc *sc;
3940 	if_t ifp;
3941 
3942 	sc = device_get_softc(dev);
3943 	ifp = sc->bge_ifp;
3944 
3945 #ifdef DEVICE_POLLING
3946 	if (if_getcapenable(ifp) & IFCAP_POLLING)
3947 		ether_poll_deregister(ifp);
3948 #endif
3949 
3950 	if (device_is_attached(dev)) {
3951 		ether_ifdetach(ifp);
3952 		BGE_LOCK(sc);
3953 		bge_stop(sc);
3954 		BGE_UNLOCK(sc);
3955 		callout_drain(&sc->bge_stat_ch);
3956 	}
3957 
3958 	if (sc->bge_tq)
3959 		taskqueue_drain(sc->bge_tq, &sc->bge_intr_task);
3960 
3961 	if (sc->bge_flags & BGE_FLAG_TBI)
3962 		ifmedia_removeall(&sc->bge_ifmedia);
3963 	else if (sc->bge_miibus != NULL) {
3964 		bus_generic_detach(dev);
3965 	}
3966 
3967 	bge_release_resources(sc);
3968 
3969 	return (0);
3970 }
3971 
3972 static void
3973 bge_release_resources(struct bge_softc *sc)
3974 {
3975 	device_t dev;
3976 
3977 	dev = sc->bge_dev;
3978 
3979 	if (sc->bge_tq != NULL)
3980 		taskqueue_free(sc->bge_tq);
3981 
3982 	if (sc->bge_intrhand != NULL)
3983 		bus_teardown_intr(dev, sc->bge_irq, sc->bge_intrhand);
3984 
3985 	if (sc->bge_irq != NULL) {
3986 		bus_release_resource(dev, SYS_RES_IRQ,
3987 		    rman_get_rid(sc->bge_irq), sc->bge_irq);
3988 		pci_release_msi(dev);
3989 	}
3990 
3991 	if (sc->bge_res != NULL)
3992 		bus_release_resource(dev, SYS_RES_MEMORY,
3993 		    rman_get_rid(sc->bge_res), sc->bge_res);
3994 
3995 	if (sc->bge_res2 != NULL)
3996 		bus_release_resource(dev, SYS_RES_MEMORY,
3997 		    rman_get_rid(sc->bge_res2), sc->bge_res2);
3998 
3999 	if (sc->bge_ifp != NULL)
4000 		if_free(sc->bge_ifp);
4001 
4002 	bge_dma_free(sc);
4003 
4004 	if (mtx_initialized(&sc->bge_mtx))	/* XXX */
4005 		BGE_LOCK_DESTROY(sc);
4006 }
4007 
4008 static int
4009 bge_reset(struct bge_softc *sc)
4010 {
4011 	device_t dev;
4012 	uint32_t cachesize, command, mac_mode, mac_mode_mask, reset, val;
4013 	void (*write_op)(struct bge_softc *, int, int);
4014 	uint16_t devctl;
4015 	int i;
4016 
4017 	dev = sc->bge_dev;
4018 
4019 	mac_mode_mask = BGE_MACMODE_HALF_DUPLEX | BGE_MACMODE_PORTMODE;
4020 	if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) != 0)
4021 		mac_mode_mask |= BGE_MACMODE_APE_RX_EN | BGE_MACMODE_APE_TX_EN;
4022 	mac_mode = CSR_READ_4(sc, BGE_MAC_MODE) & mac_mode_mask;
4023 
4024 	if (BGE_IS_575X_PLUS(sc) && !BGE_IS_5714_FAMILY(sc) &&
4025 	    (sc->bge_asicrev != BGE_ASICREV_BCM5906)) {
4026 		if (sc->bge_flags & BGE_FLAG_PCIE)
4027 			write_op = bge_writemem_direct;
4028 		else
4029 			write_op = bge_writemem_ind;
4030 	} else
4031 		write_op = bge_writereg_ind;
4032 
4033 	if (sc->bge_asicrev != BGE_ASICREV_BCM5700 &&
4034 	    sc->bge_asicrev != BGE_ASICREV_BCM5701) {
4035 		CSR_WRITE_4(sc, BGE_NVRAM_SWARB, BGE_NVRAMSWARB_SET1);
4036 		for (i = 0; i < 8000; i++) {
4037 			if (CSR_READ_4(sc, BGE_NVRAM_SWARB) &
4038 			    BGE_NVRAMSWARB_GNT1)
4039 				break;
4040 			DELAY(20);
4041 		}
4042 		if (i == 8000) {
4043 			if (bootverbose)
4044 				device_printf(dev, "NVRAM lock timedout!\n");
4045 		}
4046 	}
4047 	/* Take APE lock when performing reset. */
4048 	bge_ape_lock(sc, BGE_APE_LOCK_GRC);
4049 
4050 	/* Save some important PCI state. */
4051 	cachesize = pci_read_config(dev, BGE_PCI_CACHESZ, 4);
4052 	command = pci_read_config(dev, BGE_PCI_CMD, 4);
4053 
4054 	pci_write_config(dev, BGE_PCI_MISC_CTL,
4055 	    BGE_PCIMISCCTL_INDIRECT_ACCESS | BGE_PCIMISCCTL_MASK_PCI_INTR |
4056 	    BGE_HIF_SWAP_OPTIONS | BGE_PCIMISCCTL_PCISTATE_RW, 4);
4057 
4058 	/* Disable fastboot on controllers that support it. */
4059 	if (sc->bge_asicrev == BGE_ASICREV_BCM5752 ||
4060 	    BGE_IS_5755_PLUS(sc)) {
4061 		if (bootverbose)
4062 			device_printf(dev, "Disabling fastboot\n");
4063 		CSR_WRITE_4(sc, BGE_FASTBOOT_PC, 0x0);
4064 	}
4065 
4066 	/*
4067 	 * Write the magic number to SRAM at offset 0xB50.
4068 	 * When firmware finishes its initialization it will
4069 	 * write ~BGE_SRAM_FW_MB_MAGIC to the same location.
4070 	 */
4071 	bge_writemem_ind(sc, BGE_SRAM_FW_MB, BGE_SRAM_FW_MB_MAGIC);
4072 
4073 	reset = BGE_MISCCFG_RESET_CORE_CLOCKS | BGE_32BITTIME_66MHZ;
4074 
4075 	/* XXX: Broadcom Linux driver. */
4076 	if (sc->bge_flags & BGE_FLAG_PCIE) {
4077 		if (sc->bge_asicrev != BGE_ASICREV_BCM5785 &&
4078 		    (sc->bge_flags & BGE_FLAG_5717_PLUS) == 0) {
4079 			if (CSR_READ_4(sc, 0x7E2C) == 0x60)	/* PCIE 1.0 */
4080 				CSR_WRITE_4(sc, 0x7E2C, 0x20);
4081 		}
4082 		if (sc->bge_chipid != BGE_CHIPID_BCM5750_A0) {
4083 			/* Prevent PCIE link training during global reset */
4084 			CSR_WRITE_4(sc, BGE_MISC_CFG, 1 << 29);
4085 			reset |= 1 << 29;
4086 		}
4087 	}
4088 
4089 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906) {
4090 		val = CSR_READ_4(sc, BGE_VCPU_STATUS);
4091 		CSR_WRITE_4(sc, BGE_VCPU_STATUS,
4092 		    val | BGE_VCPU_STATUS_DRV_RESET);
4093 		val = CSR_READ_4(sc, BGE_VCPU_EXT_CTRL);
4094 		CSR_WRITE_4(sc, BGE_VCPU_EXT_CTRL,
4095 		    val & ~BGE_VCPU_EXT_CTRL_HALT_CPU);
4096 	}
4097 
4098 	/*
4099 	 * Set GPHY Power Down Override to leave GPHY
4100 	 * powered up in D0 uninitialized.
4101 	 */
4102 	if (BGE_IS_5705_PLUS(sc) &&
4103 	    (sc->bge_flags & BGE_FLAG_CPMU_PRESENT) == 0)
4104 		reset |= BGE_MISCCFG_GPHY_PD_OVERRIDE;
4105 
4106 	/* Issue global reset */
4107 	write_op(sc, BGE_MISC_CFG, reset);
4108 
4109 	if (sc->bge_flags & BGE_FLAG_PCIE)
4110 		DELAY(100 * 1000);
4111 	else
4112 		DELAY(1000);
4113 
4114 	/* XXX: Broadcom Linux driver. */
4115 	if (sc->bge_flags & BGE_FLAG_PCIE) {
4116 		if (sc->bge_chipid == BGE_CHIPID_BCM5750_A0) {
4117 			DELAY(500000); /* wait for link training to complete */
4118 			val = pci_read_config(dev, 0xC4, 4);
4119 			pci_write_config(dev, 0xC4, val | (1 << 15), 4);
4120 		}
4121 		devctl = pci_read_config(dev,
4122 		    sc->bge_expcap + PCIER_DEVICE_CTL, 2);
4123 		/* Clear enable no snoop and disable relaxed ordering. */
4124 		devctl &= ~(PCIEM_CTL_RELAXED_ORD_ENABLE |
4125 		    PCIEM_CTL_NOSNOOP_ENABLE);
4126 		pci_write_config(dev, sc->bge_expcap + PCIER_DEVICE_CTL,
4127 		    devctl, 2);
4128 		pci_set_max_read_req(dev, sc->bge_expmrq);
4129 		/* Clear error status. */
4130 		pci_write_config(dev, sc->bge_expcap + PCIER_DEVICE_STA,
4131 		    PCIEM_STA_CORRECTABLE_ERROR |
4132 		    PCIEM_STA_NON_FATAL_ERROR | PCIEM_STA_FATAL_ERROR |
4133 		    PCIEM_STA_UNSUPPORTED_REQ, 2);
4134 	}
4135 
4136 	/* Reset some of the PCI state that got zapped by reset. */
4137 	pci_write_config(dev, BGE_PCI_MISC_CTL,
4138 	    BGE_PCIMISCCTL_INDIRECT_ACCESS | BGE_PCIMISCCTL_MASK_PCI_INTR |
4139 	    BGE_HIF_SWAP_OPTIONS | BGE_PCIMISCCTL_PCISTATE_RW, 4);
4140 	val = BGE_PCISTATE_ROM_ENABLE | BGE_PCISTATE_ROM_RETRY_ENABLE;
4141 	if (sc->bge_chipid == BGE_CHIPID_BCM5704_A0 &&
4142 	    (sc->bge_flags & BGE_FLAG_PCIX) != 0)
4143 		val |= BGE_PCISTATE_RETRY_SAME_DMA;
4144 	if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) != 0)
4145 		val |= BGE_PCISTATE_ALLOW_APE_CTLSPC_WR |
4146 		    BGE_PCISTATE_ALLOW_APE_SHMEM_WR |
4147 		    BGE_PCISTATE_ALLOW_APE_PSPACE_WR;
4148 	pci_write_config(dev, BGE_PCI_PCISTATE, val, 4);
4149 	pci_write_config(dev, BGE_PCI_CACHESZ, cachesize, 4);
4150 	pci_write_config(dev, BGE_PCI_CMD, command, 4);
4151 	/*
4152 	 * Disable PCI-X relaxed ordering to ensure status block update
4153 	 * comes first then packet buffer DMA. Otherwise driver may
4154 	 * read stale status block.
4155 	 */
4156 	if (sc->bge_flags & BGE_FLAG_PCIX) {
4157 		devctl = pci_read_config(dev,
4158 		    sc->bge_pcixcap + PCIXR_COMMAND, 2);
4159 		devctl &= ~PCIXM_COMMAND_ERO;
4160 		if (sc->bge_asicrev == BGE_ASICREV_BCM5703) {
4161 			devctl &= ~PCIXM_COMMAND_MAX_READ;
4162 			devctl |= PCIXM_COMMAND_MAX_READ_2048;
4163 		} else if (sc->bge_asicrev == BGE_ASICREV_BCM5704) {
4164 			devctl &= ~(PCIXM_COMMAND_MAX_SPLITS |
4165 			    PCIXM_COMMAND_MAX_READ);
4166 			devctl |= PCIXM_COMMAND_MAX_READ_2048;
4167 		}
4168 		pci_write_config(dev, sc->bge_pcixcap + PCIXR_COMMAND,
4169 		    devctl, 2);
4170 	}
4171 	/* Re-enable MSI, if necessary, and enable the memory arbiter. */
4172 	if (BGE_IS_5714_FAMILY(sc)) {
4173 		/* This chip disables MSI on reset. */
4174 		if (sc->bge_flags & BGE_FLAG_MSI) {
4175 			val = pci_read_config(dev,
4176 			    sc->bge_msicap + PCIR_MSI_CTRL, 2);
4177 			pci_write_config(dev,
4178 			    sc->bge_msicap + PCIR_MSI_CTRL,
4179 			    val | PCIM_MSICTRL_MSI_ENABLE, 2);
4180 			val = CSR_READ_4(sc, BGE_MSI_MODE);
4181 			CSR_WRITE_4(sc, BGE_MSI_MODE,
4182 			    val | BGE_MSIMODE_ENABLE);
4183 		}
4184 		val = CSR_READ_4(sc, BGE_MARB_MODE);
4185 		CSR_WRITE_4(sc, BGE_MARB_MODE, BGE_MARBMODE_ENABLE | val);
4186 	} else
4187 		CSR_WRITE_4(sc, BGE_MARB_MODE, BGE_MARBMODE_ENABLE);
4188 
4189 	/* Fix up byte swapping. */
4190 	CSR_WRITE_4(sc, BGE_MODE_CTL, bge_dma_swap_options(sc));
4191 
4192 	val = CSR_READ_4(sc, BGE_MAC_MODE);
4193 	val = (val & ~mac_mode_mask) | mac_mode;
4194 	CSR_WRITE_4(sc, BGE_MAC_MODE, val);
4195 	DELAY(40);
4196 
4197 	bge_ape_unlock(sc, BGE_APE_LOCK_GRC);
4198 
4199 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906) {
4200 		for (i = 0; i < BGE_TIMEOUT; i++) {
4201 			val = CSR_READ_4(sc, BGE_VCPU_STATUS);
4202 			if (val & BGE_VCPU_STATUS_INIT_DONE)
4203 				break;
4204 			DELAY(100);
4205 		}
4206 		if (i == BGE_TIMEOUT) {
4207 			device_printf(dev, "reset timed out\n");
4208 			return (1);
4209 		}
4210 	} else {
4211 		/*
4212 		 * Poll until we see the 1's complement of the magic number.
4213 		 * This indicates that the firmware initialization is complete.
4214 		 * We expect this to fail if no chip containing the Ethernet
4215 		 * address is fitted though.
4216 		 */
4217 		for (i = 0; i < BGE_TIMEOUT; i++) {
4218 			DELAY(10);
4219 			val = bge_readmem_ind(sc, BGE_SRAM_FW_MB);
4220 			if (val == ~BGE_SRAM_FW_MB_MAGIC)
4221 				break;
4222 		}
4223 
4224 		if ((sc->bge_flags & BGE_FLAG_EADDR) && i == BGE_TIMEOUT)
4225 			device_printf(dev,
4226 			    "firmware handshake timed out, found 0x%08x\n",
4227 			    val);
4228 		/* BCM57765 A0 needs additional time before accessing. */
4229 		if (sc->bge_chipid == BGE_CHIPID_BCM57765_A0)
4230 			DELAY(10 * 1000);	/* XXX */
4231 	}
4232 
4233 	/*
4234 	 * The 5704 in TBI mode apparently needs some special
4235 	 * adjustment to insure the SERDES drive level is set
4236 	 * to 1.2V.
4237 	 */
4238 	if (sc->bge_asicrev == BGE_ASICREV_BCM5704 &&
4239 	    sc->bge_flags & BGE_FLAG_TBI) {
4240 		val = CSR_READ_4(sc, BGE_SERDES_CFG);
4241 		val = (val & ~0xFFF) | 0x880;
4242 		CSR_WRITE_4(sc, BGE_SERDES_CFG, val);
4243 	}
4244 
4245 	/* XXX: Broadcom Linux driver. */
4246 	if (sc->bge_flags & BGE_FLAG_PCIE &&
4247 	    !BGE_IS_5717_PLUS(sc) &&
4248 	    sc->bge_chipid != BGE_CHIPID_BCM5750_A0 &&
4249 	    sc->bge_asicrev != BGE_ASICREV_BCM5785) {
4250 		/* Enable Data FIFO protection. */
4251 		val = CSR_READ_4(sc, 0x7C00);
4252 		CSR_WRITE_4(sc, 0x7C00, val | (1 << 25));
4253 	}
4254 
4255 	if (sc->bge_asicrev == BGE_ASICREV_BCM5720)
4256 		BGE_CLRBIT(sc, BGE_CPMU_CLCK_ORIDE,
4257 		    CPMU_CLCK_ORIDE_MAC_ORIDE_EN);
4258 
4259 	return (0);
4260 }
4261 
4262 static __inline void
4263 bge_rxreuse_std(struct bge_softc *sc, int i)
4264 {
4265 	struct bge_rx_bd *r;
4266 
4267 	r = &sc->bge_ldata.bge_rx_std_ring[sc->bge_std];
4268 	r->bge_flags = BGE_RXBDFLAG_END;
4269 	r->bge_len = sc->bge_cdata.bge_rx_std_seglen[i];
4270 	r->bge_idx = i;
4271 	BGE_INC(sc->bge_std, BGE_STD_RX_RING_CNT);
4272 }
4273 
4274 static __inline void
4275 bge_rxreuse_jumbo(struct bge_softc *sc, int i)
4276 {
4277 	struct bge_extrx_bd *r;
4278 
4279 	r = &sc->bge_ldata.bge_rx_jumbo_ring[sc->bge_jumbo];
4280 	r->bge_flags = BGE_RXBDFLAG_JUMBO_RING | BGE_RXBDFLAG_END;
4281 	r->bge_len0 = sc->bge_cdata.bge_rx_jumbo_seglen[i][0];
4282 	r->bge_len1 = sc->bge_cdata.bge_rx_jumbo_seglen[i][1];
4283 	r->bge_len2 = sc->bge_cdata.bge_rx_jumbo_seglen[i][2];
4284 	r->bge_len3 = sc->bge_cdata.bge_rx_jumbo_seglen[i][3];
4285 	r->bge_idx = i;
4286 	BGE_INC(sc->bge_jumbo, BGE_JUMBO_RX_RING_CNT);
4287 }
4288 
4289 /*
4290  * Frame reception handling. This is called if there's a frame
4291  * on the receive return list.
4292  *
4293  * Note: we have to be able to handle two possibilities here:
4294  * 1) the frame is from the jumbo receive ring
4295  * 2) the frame is from the standard receive ring
4296  */
4297 
4298 static int
4299 bge_rxeof(struct bge_softc *sc, uint16_t rx_prod, int holdlck)
4300 {
4301 	if_t ifp;
4302 	int rx_npkts = 0, stdcnt = 0, jumbocnt = 0;
4303 	uint16_t rx_cons;
4304 
4305 	rx_cons = sc->bge_rx_saved_considx;
4306 
4307 	/* Nothing to do. */
4308 	if (rx_cons == rx_prod)
4309 		return (rx_npkts);
4310 
4311 	ifp = sc->bge_ifp;
4312 
4313 	bus_dmamap_sync(sc->bge_cdata.bge_rx_return_ring_tag,
4314 	    sc->bge_cdata.bge_rx_return_ring_map, BUS_DMASYNC_POSTREAD);
4315 	bus_dmamap_sync(sc->bge_cdata.bge_rx_std_ring_tag,
4316 	    sc->bge_cdata.bge_rx_std_ring_map, BUS_DMASYNC_POSTWRITE);
4317 	if (BGE_IS_JUMBO_CAPABLE(sc) &&
4318 	    if_getmtu(ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN +
4319 	    ETHER_VLAN_ENCAP_LEN > (MCLBYTES - ETHER_ALIGN))
4320 		bus_dmamap_sync(sc->bge_cdata.bge_rx_jumbo_ring_tag,
4321 		    sc->bge_cdata.bge_rx_jumbo_ring_map, BUS_DMASYNC_POSTWRITE);
4322 
4323 	while (rx_cons != rx_prod) {
4324 		struct bge_rx_bd	*cur_rx;
4325 		uint32_t		rxidx;
4326 		struct mbuf		*m = NULL;
4327 		uint16_t		vlan_tag = 0;
4328 		int			have_tag = 0;
4329 
4330 #ifdef DEVICE_POLLING
4331 		if (if_getcapenable(ifp) & IFCAP_POLLING) {
4332 			if (sc->rxcycles <= 0)
4333 				break;
4334 			sc->rxcycles--;
4335 		}
4336 #endif
4337 
4338 		cur_rx = &sc->bge_ldata.bge_rx_return_ring[rx_cons];
4339 
4340 		rxidx = cur_rx->bge_idx;
4341 		BGE_INC(rx_cons, sc->bge_return_ring_cnt);
4342 
4343 		if (if_getcapenable(ifp) & IFCAP_VLAN_HWTAGGING &&
4344 		    cur_rx->bge_flags & BGE_RXBDFLAG_VLAN_TAG) {
4345 			have_tag = 1;
4346 			vlan_tag = cur_rx->bge_vlan_tag;
4347 		}
4348 
4349 		if (cur_rx->bge_flags & BGE_RXBDFLAG_JUMBO_RING) {
4350 			jumbocnt++;
4351 			m = sc->bge_cdata.bge_rx_jumbo_chain[rxidx];
4352 			if (cur_rx->bge_flags & BGE_RXBDFLAG_ERROR) {
4353 				bge_rxreuse_jumbo(sc, rxidx);
4354 				continue;
4355 			}
4356 			if (bge_newbuf_jumbo(sc, rxidx) != 0) {
4357 				bge_rxreuse_jumbo(sc, rxidx);
4358 				if_inc_counter(ifp, IFCOUNTER_IQDROPS, 1);
4359 				continue;
4360 			}
4361 			BGE_INC(sc->bge_jumbo, BGE_JUMBO_RX_RING_CNT);
4362 		} else {
4363 			stdcnt++;
4364 			m = sc->bge_cdata.bge_rx_std_chain[rxidx];
4365 			if (cur_rx->bge_flags & BGE_RXBDFLAG_ERROR) {
4366 				bge_rxreuse_std(sc, rxidx);
4367 				continue;
4368 			}
4369 			if (bge_newbuf_std(sc, rxidx) != 0) {
4370 				bge_rxreuse_std(sc, rxidx);
4371 				if_inc_counter(ifp, IFCOUNTER_IQDROPS, 1);
4372 				continue;
4373 			}
4374 			BGE_INC(sc->bge_std, BGE_STD_RX_RING_CNT);
4375 		}
4376 
4377 		if_inc_counter(ifp, IFCOUNTER_IPACKETS, 1);
4378 #ifndef __NO_STRICT_ALIGNMENT
4379 		/*
4380 		 * For architectures with strict alignment we must make sure
4381 		 * the payload is aligned.
4382 		 */
4383 		if (sc->bge_flags & BGE_FLAG_RX_ALIGNBUG) {
4384 			bcopy(m->m_data, m->m_data + ETHER_ALIGN,
4385 			    cur_rx->bge_len);
4386 			m->m_data += ETHER_ALIGN;
4387 		}
4388 #endif
4389 		m->m_pkthdr.len = m->m_len = cur_rx->bge_len - ETHER_CRC_LEN;
4390 		m->m_pkthdr.rcvif = ifp;
4391 
4392 		if (if_getcapenable(ifp) & IFCAP_RXCSUM)
4393 			bge_rxcsum(sc, cur_rx, m);
4394 
4395 		/*
4396 		 * If we received a packet with a vlan tag,
4397 		 * attach that information to the packet.
4398 		 */
4399 		if (have_tag) {
4400 			m->m_pkthdr.ether_vtag = vlan_tag;
4401 			m->m_flags |= M_VLANTAG;
4402 		}
4403 
4404 		if (holdlck != 0) {
4405 			BGE_UNLOCK(sc);
4406 			if_input(ifp, m);
4407 			BGE_LOCK(sc);
4408 		} else
4409 			if_input(ifp, m);
4410 		rx_npkts++;
4411 
4412 		if (!(if_getdrvflags(ifp) & IFF_DRV_RUNNING))
4413 			return (rx_npkts);
4414 	}
4415 
4416 	bus_dmamap_sync(sc->bge_cdata.bge_rx_return_ring_tag,
4417 	    sc->bge_cdata.bge_rx_return_ring_map, BUS_DMASYNC_PREREAD);
4418 	if (stdcnt > 0)
4419 		bus_dmamap_sync(sc->bge_cdata.bge_rx_std_ring_tag,
4420 		    sc->bge_cdata.bge_rx_std_ring_map, BUS_DMASYNC_PREWRITE);
4421 
4422 	if (jumbocnt > 0)
4423 		bus_dmamap_sync(sc->bge_cdata.bge_rx_jumbo_ring_tag,
4424 		    sc->bge_cdata.bge_rx_jumbo_ring_map, BUS_DMASYNC_PREWRITE);
4425 
4426 	sc->bge_rx_saved_considx = rx_cons;
4427 	bge_writembx(sc, BGE_MBX_RX_CONS0_LO, sc->bge_rx_saved_considx);
4428 	if (stdcnt)
4429 		bge_writembx(sc, BGE_MBX_RX_STD_PROD_LO, (sc->bge_std +
4430 		    BGE_STD_RX_RING_CNT - 1) % BGE_STD_RX_RING_CNT);
4431 	if (jumbocnt)
4432 		bge_writembx(sc, BGE_MBX_RX_JUMBO_PROD_LO, (sc->bge_jumbo +
4433 		    BGE_JUMBO_RX_RING_CNT - 1) % BGE_JUMBO_RX_RING_CNT);
4434 #ifdef notyet
4435 	/*
4436 	 * This register wraps very quickly under heavy packet drops.
4437 	 * If you need correct statistics, you can enable this check.
4438 	 */
4439 	if (BGE_IS_5705_PLUS(sc))
4440 		if_incierrors(ifp, CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_DROPS));
4441 #endif
4442 	return (rx_npkts);
4443 }
4444 
4445 static void
4446 bge_rxcsum(struct bge_softc *sc, struct bge_rx_bd *cur_rx, struct mbuf *m)
4447 {
4448 
4449 	if (BGE_IS_5717_PLUS(sc)) {
4450 		if ((cur_rx->bge_flags & BGE_RXBDFLAG_IPV6) == 0) {
4451 			if (cur_rx->bge_flags & BGE_RXBDFLAG_IP_CSUM) {
4452 				m->m_pkthdr.csum_flags |= CSUM_IP_CHECKED;
4453 				if ((cur_rx->bge_error_flag &
4454 				    BGE_RXERRFLAG_IP_CSUM_NOK) == 0)
4455 					m->m_pkthdr.csum_flags |= CSUM_IP_VALID;
4456 			}
4457 			if (cur_rx->bge_flags & BGE_RXBDFLAG_TCP_UDP_CSUM) {
4458 				m->m_pkthdr.csum_data =
4459 				    cur_rx->bge_tcp_udp_csum;
4460 				m->m_pkthdr.csum_flags |= CSUM_DATA_VALID |
4461 				    CSUM_PSEUDO_HDR;
4462 			}
4463 		}
4464 	} else {
4465 		if (cur_rx->bge_flags & BGE_RXBDFLAG_IP_CSUM) {
4466 			m->m_pkthdr.csum_flags |= CSUM_IP_CHECKED;
4467 			if ((cur_rx->bge_ip_csum ^ 0xFFFF) == 0)
4468 				m->m_pkthdr.csum_flags |= CSUM_IP_VALID;
4469 		}
4470 		if (cur_rx->bge_flags & BGE_RXBDFLAG_TCP_UDP_CSUM &&
4471 		    m->m_pkthdr.len >= ETHER_MIN_NOPAD) {
4472 			m->m_pkthdr.csum_data =
4473 			    cur_rx->bge_tcp_udp_csum;
4474 			m->m_pkthdr.csum_flags |= CSUM_DATA_VALID |
4475 			    CSUM_PSEUDO_HDR;
4476 		}
4477 	}
4478 }
4479 
4480 static void
4481 bge_txeof(struct bge_softc *sc, uint16_t tx_cons)
4482 {
4483 	struct bge_tx_bd *cur_tx;
4484 	if_t ifp;
4485 
4486 	BGE_LOCK_ASSERT(sc);
4487 
4488 	/* Nothing to do. */
4489 	if (sc->bge_tx_saved_considx == tx_cons)
4490 		return;
4491 
4492 	ifp = sc->bge_ifp;
4493 
4494 	bus_dmamap_sync(sc->bge_cdata.bge_tx_ring_tag,
4495 	    sc->bge_cdata.bge_tx_ring_map, BUS_DMASYNC_POSTWRITE);
4496 	/*
4497 	 * Go through our tx ring and free mbufs for those
4498 	 * frames that have been sent.
4499 	 */
4500 	while (sc->bge_tx_saved_considx != tx_cons) {
4501 		uint32_t		idx;
4502 
4503 		idx = sc->bge_tx_saved_considx;
4504 		cur_tx = &sc->bge_ldata.bge_tx_ring[idx];
4505 		if (cur_tx->bge_flags & BGE_TXBDFLAG_END)
4506 			if_inc_counter(ifp, IFCOUNTER_OPACKETS, 1);
4507 		if (sc->bge_cdata.bge_tx_chain[idx] != NULL) {
4508 			bus_dmamap_sync(sc->bge_cdata.bge_tx_mtag,
4509 			    sc->bge_cdata.bge_tx_dmamap[idx],
4510 			    BUS_DMASYNC_POSTWRITE);
4511 			bus_dmamap_unload(sc->bge_cdata.bge_tx_mtag,
4512 			    sc->bge_cdata.bge_tx_dmamap[idx]);
4513 			m_freem(sc->bge_cdata.bge_tx_chain[idx]);
4514 			sc->bge_cdata.bge_tx_chain[idx] = NULL;
4515 		}
4516 		sc->bge_txcnt--;
4517 		BGE_INC(sc->bge_tx_saved_considx, BGE_TX_RING_CNT);
4518 	}
4519 
4520 	if_setdrvflagbits(ifp, 0, IFF_DRV_OACTIVE);
4521 	if (sc->bge_txcnt == 0)
4522 		sc->bge_timer = 0;
4523 }
4524 
4525 #ifdef DEVICE_POLLING
4526 static int
4527 bge_poll(if_t ifp, enum poll_cmd cmd, int count)
4528 {
4529 	struct bge_softc *sc = if_getsoftc(ifp);
4530 	uint16_t rx_prod, tx_cons;
4531 	uint32_t statusword;
4532 	int rx_npkts = 0;
4533 
4534 	BGE_LOCK(sc);
4535 	if (!(if_getdrvflags(ifp) & IFF_DRV_RUNNING)) {
4536 		BGE_UNLOCK(sc);
4537 		return (rx_npkts);
4538 	}
4539 
4540 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
4541 	    sc->bge_cdata.bge_status_map,
4542 	    BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
4543 	/* Fetch updates from the status block. */
4544 	rx_prod = sc->bge_ldata.bge_status_block->bge_idx[0].bge_rx_prod_idx;
4545 	tx_cons = sc->bge_ldata.bge_status_block->bge_idx[0].bge_tx_cons_idx;
4546 
4547 	statusword = sc->bge_ldata.bge_status_block->bge_status;
4548 	/* Clear the status so the next pass only sees the changes. */
4549 	sc->bge_ldata.bge_status_block->bge_status = 0;
4550 
4551 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
4552 	    sc->bge_cdata.bge_status_map,
4553 	    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
4554 
4555 	/* Note link event. It will be processed by POLL_AND_CHECK_STATUS. */
4556 	if (statusword & BGE_STATFLAG_LINKSTATE_CHANGED)
4557 		sc->bge_link_evt++;
4558 
4559 	if (cmd == POLL_AND_CHECK_STATUS)
4560 		if ((sc->bge_asicrev == BGE_ASICREV_BCM5700 &&
4561 		    sc->bge_chipid != BGE_CHIPID_BCM5700_B2) ||
4562 		    sc->bge_link_evt || (sc->bge_flags & BGE_FLAG_TBI))
4563 			bge_link_upd(sc);
4564 
4565 	sc->rxcycles = count;
4566 	rx_npkts = bge_rxeof(sc, rx_prod, 1);
4567 	if (!(if_getdrvflags(ifp) & IFF_DRV_RUNNING)) {
4568 		BGE_UNLOCK(sc);
4569 		return (rx_npkts);
4570 	}
4571 	bge_txeof(sc, tx_cons);
4572 	if (!if_sendq_empty(ifp))
4573 		bge_start_locked(ifp);
4574 
4575 	BGE_UNLOCK(sc);
4576 	return (rx_npkts);
4577 }
4578 #endif /* DEVICE_POLLING */
4579 
4580 static int
4581 bge_msi_intr(void *arg)
4582 {
4583 	struct bge_softc *sc;
4584 
4585 	sc = (struct bge_softc *)arg;
4586 	/*
4587 	 * This interrupt is not shared and controller already
4588 	 * disabled further interrupt.
4589 	 */
4590 	taskqueue_enqueue(sc->bge_tq, &sc->bge_intr_task);
4591 	return (FILTER_HANDLED);
4592 }
4593 
4594 static void
4595 bge_intr_task(void *arg, int pending)
4596 {
4597 	struct bge_softc *sc;
4598 	if_t ifp;
4599 	uint32_t status, status_tag;
4600 	uint16_t rx_prod, tx_cons;
4601 
4602 	sc = (struct bge_softc *)arg;
4603 	ifp = sc->bge_ifp;
4604 
4605 	BGE_LOCK(sc);
4606 	if ((if_getdrvflags(ifp) & IFF_DRV_RUNNING) == 0) {
4607 		BGE_UNLOCK(sc);
4608 		return;
4609 	}
4610 
4611 	/* Get updated status block. */
4612 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
4613 	    sc->bge_cdata.bge_status_map,
4614 	    BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
4615 
4616 	/* Save producer/consumer indices. */
4617 	rx_prod = sc->bge_ldata.bge_status_block->bge_idx[0].bge_rx_prod_idx;
4618 	tx_cons = sc->bge_ldata.bge_status_block->bge_idx[0].bge_tx_cons_idx;
4619 	status = sc->bge_ldata.bge_status_block->bge_status;
4620 	status_tag = sc->bge_ldata.bge_status_block->bge_status_tag << 24;
4621 	/* Dirty the status flag. */
4622 	sc->bge_ldata.bge_status_block->bge_status = 0;
4623 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
4624 	    sc->bge_cdata.bge_status_map,
4625 	    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
4626 	if ((sc->bge_flags & BGE_FLAG_TAGGED_STATUS) == 0)
4627 		status_tag = 0;
4628 
4629 	if ((status & BGE_STATFLAG_LINKSTATE_CHANGED) != 0)
4630 		bge_link_upd(sc);
4631 
4632 	/* Let controller work. */
4633 	bge_writembx(sc, BGE_MBX_IRQ0_LO, status_tag);
4634 
4635 	if (if_getdrvflags(ifp) & IFF_DRV_RUNNING &&
4636 	    sc->bge_rx_saved_considx != rx_prod) {
4637 		/* Check RX return ring producer/consumer. */
4638 		BGE_UNLOCK(sc);
4639 		bge_rxeof(sc, rx_prod, 0);
4640 		BGE_LOCK(sc);
4641 	}
4642 	if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) {
4643 		/* Check TX ring producer/consumer. */
4644 		bge_txeof(sc, tx_cons);
4645 		if (!if_sendq_empty(ifp))
4646 			bge_start_locked(ifp);
4647 	}
4648 	BGE_UNLOCK(sc);
4649 }
4650 
4651 static void
4652 bge_intr(void *xsc)
4653 {
4654 	struct bge_softc *sc;
4655 	if_t ifp;
4656 	uint32_t statusword;
4657 	uint16_t rx_prod, tx_cons;
4658 
4659 	sc = xsc;
4660 
4661 	BGE_LOCK(sc);
4662 
4663 	ifp = sc->bge_ifp;
4664 
4665 #ifdef DEVICE_POLLING
4666 	if (if_getcapenable(ifp) & IFCAP_POLLING) {
4667 		BGE_UNLOCK(sc);
4668 		return;
4669 	}
4670 #endif
4671 
4672 	/*
4673 	 * Ack the interrupt by writing something to BGE_MBX_IRQ0_LO.  Don't
4674 	 * disable interrupts by writing nonzero like we used to, since with
4675 	 * our current organization this just gives complications and
4676 	 * pessimizations for re-enabling interrupts.  We used to have races
4677 	 * instead of the necessary complications.  Disabling interrupts
4678 	 * would just reduce the chance of a status update while we are
4679 	 * running (by switching to the interrupt-mode coalescence
4680 	 * parameters), but this chance is already very low so it is more
4681 	 * efficient to get another interrupt than prevent it.
4682 	 *
4683 	 * We do the ack first to ensure another interrupt if there is a
4684 	 * status update after the ack.  We don't check for the status
4685 	 * changing later because it is more efficient to get another
4686 	 * interrupt than prevent it, not quite as above (not checking is
4687 	 * a smaller optimization than not toggling the interrupt enable,
4688 	 * since checking doesn't involve PCI accesses and toggling require
4689 	 * the status check).  So toggling would probably be a pessimization
4690 	 * even with MSI.  It would only be needed for using a task queue.
4691 	 */
4692 	bge_writembx(sc, BGE_MBX_IRQ0_LO, 0);
4693 
4694 	/*
4695 	 * Do the mandatory PCI flush as well as get the link status.
4696 	 */
4697 	statusword = CSR_READ_4(sc, BGE_MAC_STS) & BGE_MACSTAT_LINK_CHANGED;
4698 
4699 	/* Make sure the descriptor ring indexes are coherent. */
4700 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
4701 	    sc->bge_cdata.bge_status_map,
4702 	    BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
4703 	rx_prod = sc->bge_ldata.bge_status_block->bge_idx[0].bge_rx_prod_idx;
4704 	tx_cons = sc->bge_ldata.bge_status_block->bge_idx[0].bge_tx_cons_idx;
4705 	sc->bge_ldata.bge_status_block->bge_status = 0;
4706 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
4707 	    sc->bge_cdata.bge_status_map,
4708 	    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
4709 
4710 	if ((sc->bge_asicrev == BGE_ASICREV_BCM5700 &&
4711 	    sc->bge_chipid != BGE_CHIPID_BCM5700_B2) ||
4712 	    statusword || sc->bge_link_evt)
4713 		bge_link_upd(sc);
4714 
4715 	if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) {
4716 		/* Check RX return ring producer/consumer. */
4717 		bge_rxeof(sc, rx_prod, 1);
4718 	}
4719 
4720 	if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) {
4721 		/* Check TX ring producer/consumer. */
4722 		bge_txeof(sc, tx_cons);
4723 	}
4724 
4725 	if (if_getdrvflags(ifp) & IFF_DRV_RUNNING &&
4726 	    !if_sendq_empty(ifp))
4727 		bge_start_locked(ifp);
4728 
4729 	BGE_UNLOCK(sc);
4730 }
4731 
4732 static void
4733 bge_asf_driver_up(struct bge_softc *sc)
4734 {
4735 	if (sc->bge_asf_mode & ASF_STACKUP) {
4736 		/* Send ASF heartbeat aprox. every 2s */
4737 		if (sc->bge_asf_count)
4738 			sc->bge_asf_count --;
4739 		else {
4740 			sc->bge_asf_count = 2;
4741 			bge_writemem_ind(sc, BGE_SRAM_FW_CMD_MB,
4742 			    BGE_FW_CMD_DRV_ALIVE);
4743 			bge_writemem_ind(sc, BGE_SRAM_FW_CMD_LEN_MB, 4);
4744 			bge_writemem_ind(sc, BGE_SRAM_FW_CMD_DATA_MB,
4745 			    BGE_FW_HB_TIMEOUT_SEC);
4746 			CSR_WRITE_4(sc, BGE_RX_CPU_EVENT,
4747 			    CSR_READ_4(sc, BGE_RX_CPU_EVENT) |
4748 			    BGE_RX_CPU_DRV_EVENT);
4749 		}
4750 	}
4751 }
4752 
4753 static void
4754 bge_tick(void *xsc)
4755 {
4756 	struct bge_softc *sc = xsc;
4757 	struct mii_data *mii = NULL;
4758 
4759 	BGE_LOCK_ASSERT(sc);
4760 
4761 	/* Synchronize with possible callout reset/stop. */
4762 	if (callout_pending(&sc->bge_stat_ch) ||
4763 	    !callout_active(&sc->bge_stat_ch))
4764 		return;
4765 
4766 	if (BGE_IS_5705_PLUS(sc))
4767 		bge_stats_update_regs(sc);
4768 	else
4769 		bge_stats_update(sc);
4770 
4771 	/* XXX Add APE heartbeat check here? */
4772 
4773 	if ((sc->bge_flags & BGE_FLAG_TBI) == 0) {
4774 		mii = device_get_softc(sc->bge_miibus);
4775 		/*
4776 		 * Do not touch PHY if we have link up. This could break
4777 		 * IPMI/ASF mode or produce extra input errors
4778 		 * (extra errors was reported for bcm5701 & bcm5704).
4779 		 */
4780 		if (!sc->bge_link)
4781 			mii_tick(mii);
4782 	} else {
4783 		/*
4784 		 * Since in TBI mode auto-polling can't be used we should poll
4785 		 * link status manually. Here we register pending link event
4786 		 * and trigger interrupt.
4787 		 */
4788 #ifdef DEVICE_POLLING
4789 		/* In polling mode we poll link state in bge_poll(). */
4790 		if (!(if_getcapenable(sc->bge_ifp) & IFCAP_POLLING))
4791 #endif
4792 		{
4793 		sc->bge_link_evt++;
4794 		if (sc->bge_asicrev == BGE_ASICREV_BCM5700 ||
4795 		    sc->bge_flags & BGE_FLAG_5788)
4796 			BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_INTR_SET);
4797 		else
4798 			BGE_SETBIT(sc, BGE_HCC_MODE, BGE_HCCMODE_COAL_NOW);
4799 		}
4800 	}
4801 
4802 	bge_asf_driver_up(sc);
4803 	bge_watchdog(sc);
4804 
4805 	callout_reset(&sc->bge_stat_ch, hz, bge_tick, sc);
4806 }
4807 
4808 static void
4809 bge_stats_update_regs(struct bge_softc *sc)
4810 {
4811 	struct bge_mac_stats *stats;
4812 	uint32_t val;
4813 
4814 	stats = &sc->bge_mac_stats;
4815 
4816 	stats->ifHCOutOctets +=
4817 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_OCTETS);
4818 	stats->etherStatsCollisions +=
4819 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_COLLS);
4820 	stats->outXonSent +=
4821 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_XON_SENT);
4822 	stats->outXoffSent +=
4823 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_XOFF_SENT);
4824 	stats->dot3StatsInternalMacTransmitErrors +=
4825 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_ERRORS);
4826 	stats->dot3StatsSingleCollisionFrames +=
4827 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_SINGLE_COLL);
4828 	stats->dot3StatsMultipleCollisionFrames +=
4829 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_MULTI_COLL);
4830 	stats->dot3StatsDeferredTransmissions +=
4831 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_DEFERRED);
4832 	stats->dot3StatsExcessiveCollisions +=
4833 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_EXCESS_COLL);
4834 	stats->dot3StatsLateCollisions +=
4835 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_LATE_COLL);
4836 	stats->ifHCOutUcastPkts +=
4837 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_UCAST);
4838 	stats->ifHCOutMulticastPkts +=
4839 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_MCAST);
4840 	stats->ifHCOutBroadcastPkts +=
4841 	    CSR_READ_4(sc, BGE_TX_MAC_STATS_BCAST);
4842 
4843 	stats->ifHCInOctets +=
4844 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_OCTESTS);
4845 	stats->etherStatsFragments +=
4846 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_FRAGMENTS);
4847 	stats->ifHCInUcastPkts +=
4848 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_UCAST);
4849 	stats->ifHCInMulticastPkts +=
4850 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_MCAST);
4851 	stats->ifHCInBroadcastPkts +=
4852 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_BCAST);
4853 	stats->dot3StatsFCSErrors +=
4854 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_FCS_ERRORS);
4855 	stats->dot3StatsAlignmentErrors +=
4856 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_ALGIN_ERRORS);
4857 	stats->xonPauseFramesReceived +=
4858 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_XON_RCVD);
4859 	stats->xoffPauseFramesReceived +=
4860 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_XOFF_RCVD);
4861 	stats->macControlFramesReceived +=
4862 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_CTRL_RCVD);
4863 	stats->xoffStateEntered +=
4864 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_XOFF_ENTERED);
4865 	stats->dot3StatsFramesTooLong +=
4866 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_FRAME_TOO_LONG);
4867 	stats->etherStatsJabbers +=
4868 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_JABBERS);
4869 	stats->etherStatsUndersizePkts +=
4870 	    CSR_READ_4(sc, BGE_RX_MAC_STATS_UNDERSIZE);
4871 
4872 	stats->FramesDroppedDueToFilters +=
4873 	    CSR_READ_4(sc, BGE_RXLP_LOCSTAT_FILTDROP);
4874 	stats->DmaWriteQueueFull +=
4875 	    CSR_READ_4(sc, BGE_RXLP_LOCSTAT_DMA_WRQ_FULL);
4876 	stats->DmaWriteHighPriQueueFull +=
4877 	    CSR_READ_4(sc, BGE_RXLP_LOCSTAT_DMA_HPWRQ_FULL);
4878 	stats->NoMoreRxBDs +=
4879 	    CSR_READ_4(sc, BGE_RXLP_LOCSTAT_OUT_OF_BDS);
4880 	/*
4881 	 * XXX
4882 	 * Unlike other controllers, BGE_RXLP_LOCSTAT_IFIN_DROPS
4883 	 * counter of BCM5717, BCM5718, BCM5719 A0 and BCM5720 A0
4884 	 * includes number of unwanted multicast frames.  This comes
4885 	 * from silicon bug and known workaround to get rough(not
4886 	 * exact) counter is to enable interrupt on MBUF low water
4887 	 * attention.  This can be accomplished by setting
4888 	 * BGE_HCCMODE_ATTN bit of BGE_HCC_MODE,
4889 	 * BGE_BMANMODE_LOMBUF_ATTN bit of BGE_BMAN_MODE and
4890 	 * BGE_MODECTL_FLOWCTL_ATTN_INTR bit of BGE_MODE_CTL.
4891 	 * However that change would generate more interrupts and
4892 	 * there are still possibilities of losing multiple frames
4893 	 * during BGE_MODECTL_FLOWCTL_ATTN_INTR interrupt handling.
4894 	 * Given that the workaround still would not get correct
4895 	 * counter I don't think it's worth to implement it.  So
4896 	 * ignore reading the counter on controllers that have the
4897 	 * silicon bug.
4898 	 */
4899 	if (sc->bge_asicrev != BGE_ASICREV_BCM5717 &&
4900 	    sc->bge_chipid != BGE_CHIPID_BCM5719_A0 &&
4901 	    sc->bge_chipid != BGE_CHIPID_BCM5720_A0)
4902 		stats->InputDiscards +=
4903 		    CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_DROPS);
4904 	stats->InputErrors +=
4905 	    CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_ERRORS);
4906 	stats->RecvThresholdHit +=
4907 	    CSR_READ_4(sc, BGE_RXLP_LOCSTAT_RXTHRESH_HIT);
4908 
4909 	if (sc->bge_flags & BGE_FLAG_RDMA_BUG) {
4910 		/*
4911 		 * If controller transmitted more than BGE_NUM_RDMA_CHANNELS
4912 		 * frames, it's safe to disable workaround for DMA engine's
4913 		 * miscalculation of TXMBUF space.
4914 		 */
4915 		if (stats->ifHCOutUcastPkts + stats->ifHCOutMulticastPkts +
4916 		    stats->ifHCOutBroadcastPkts > BGE_NUM_RDMA_CHANNELS) {
4917 			val = CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL);
4918 			if (sc->bge_asicrev == BGE_ASICREV_BCM5719)
4919 				val &= ~BGE_RDMA_TX_LENGTH_WA_5719;
4920 			else
4921 				val &= ~BGE_RDMA_TX_LENGTH_WA_5720;
4922 			CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL, val);
4923 			sc->bge_flags &= ~BGE_FLAG_RDMA_BUG;
4924 		}
4925 	}
4926 }
4927 
4928 static void
4929 bge_stats_clear_regs(struct bge_softc *sc)
4930 {
4931 
4932 	CSR_READ_4(sc, BGE_TX_MAC_STATS_OCTETS);
4933 	CSR_READ_4(sc, BGE_TX_MAC_STATS_COLLS);
4934 	CSR_READ_4(sc, BGE_TX_MAC_STATS_XON_SENT);
4935 	CSR_READ_4(sc, BGE_TX_MAC_STATS_XOFF_SENT);
4936 	CSR_READ_4(sc, BGE_TX_MAC_STATS_ERRORS);
4937 	CSR_READ_4(sc, BGE_TX_MAC_STATS_SINGLE_COLL);
4938 	CSR_READ_4(sc, BGE_TX_MAC_STATS_MULTI_COLL);
4939 	CSR_READ_4(sc, BGE_TX_MAC_STATS_DEFERRED);
4940 	CSR_READ_4(sc, BGE_TX_MAC_STATS_EXCESS_COLL);
4941 	CSR_READ_4(sc, BGE_TX_MAC_STATS_LATE_COLL);
4942 	CSR_READ_4(sc, BGE_TX_MAC_STATS_UCAST);
4943 	CSR_READ_4(sc, BGE_TX_MAC_STATS_MCAST);
4944 	CSR_READ_4(sc, BGE_TX_MAC_STATS_BCAST);
4945 
4946 	CSR_READ_4(sc, BGE_RX_MAC_STATS_OCTESTS);
4947 	CSR_READ_4(sc, BGE_RX_MAC_STATS_FRAGMENTS);
4948 	CSR_READ_4(sc, BGE_RX_MAC_STATS_UCAST);
4949 	CSR_READ_4(sc, BGE_RX_MAC_STATS_MCAST);
4950 	CSR_READ_4(sc, BGE_RX_MAC_STATS_BCAST);
4951 	CSR_READ_4(sc, BGE_RX_MAC_STATS_FCS_ERRORS);
4952 	CSR_READ_4(sc, BGE_RX_MAC_STATS_ALGIN_ERRORS);
4953 	CSR_READ_4(sc, BGE_RX_MAC_STATS_XON_RCVD);
4954 	CSR_READ_4(sc, BGE_RX_MAC_STATS_XOFF_RCVD);
4955 	CSR_READ_4(sc, BGE_RX_MAC_STATS_CTRL_RCVD);
4956 	CSR_READ_4(sc, BGE_RX_MAC_STATS_XOFF_ENTERED);
4957 	CSR_READ_4(sc, BGE_RX_MAC_STATS_FRAME_TOO_LONG);
4958 	CSR_READ_4(sc, BGE_RX_MAC_STATS_JABBERS);
4959 	CSR_READ_4(sc, BGE_RX_MAC_STATS_UNDERSIZE);
4960 
4961 	CSR_READ_4(sc, BGE_RXLP_LOCSTAT_FILTDROP);
4962 	CSR_READ_4(sc, BGE_RXLP_LOCSTAT_DMA_WRQ_FULL);
4963 	CSR_READ_4(sc, BGE_RXLP_LOCSTAT_DMA_HPWRQ_FULL);
4964 	CSR_READ_4(sc, BGE_RXLP_LOCSTAT_OUT_OF_BDS);
4965 	CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_DROPS);
4966 	CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_ERRORS);
4967 	CSR_READ_4(sc, BGE_RXLP_LOCSTAT_RXTHRESH_HIT);
4968 }
4969 
4970 static void
4971 bge_stats_update(struct bge_softc *sc)
4972 {
4973 	if_t ifp;
4974 	bus_size_t stats;
4975 	uint32_t cnt;	/* current register value */
4976 
4977 	ifp = sc->bge_ifp;
4978 
4979 	stats = BGE_MEMWIN_START + BGE_STATS_BLOCK;
4980 
4981 #define	READ_STAT(sc, stats, stat) \
4982 	CSR_READ_4(sc, stats + offsetof(struct bge_stats, stat))
4983 
4984 	cnt = READ_STAT(sc, stats, txstats.etherStatsCollisions.bge_addr_lo);
4985 	if_inc_counter(ifp, IFCOUNTER_COLLISIONS, cnt - sc->bge_tx_collisions);
4986 	sc->bge_tx_collisions = cnt;
4987 
4988 	cnt = READ_STAT(sc, stats, nicNoMoreRxBDs.bge_addr_lo);
4989 	if_inc_counter(ifp, IFCOUNTER_IERRORS, cnt - sc->bge_rx_nobds);
4990 	sc->bge_rx_nobds = cnt;
4991 	cnt = READ_STAT(sc, stats, ifInErrors.bge_addr_lo);
4992 	if_inc_counter(ifp, IFCOUNTER_IERRORS, cnt - sc->bge_rx_inerrs);
4993 	sc->bge_rx_inerrs = cnt;
4994 	cnt = READ_STAT(sc, stats, ifInDiscards.bge_addr_lo);
4995 	if_inc_counter(ifp, IFCOUNTER_IERRORS, cnt - sc->bge_rx_discards);
4996 	sc->bge_rx_discards = cnt;
4997 
4998 	cnt = READ_STAT(sc, stats, txstats.ifOutDiscards.bge_addr_lo);
4999 	if_inc_counter(ifp, IFCOUNTER_OERRORS, cnt - sc->bge_tx_discards);
5000 	sc->bge_tx_discards = cnt;
5001 
5002 #undef	READ_STAT
5003 }
5004 
5005 /*
5006  * Pad outbound frame to ETHER_MIN_NOPAD for an unusual reason.
5007  * The bge hardware will pad out Tx runts to ETHER_MIN_NOPAD,
5008  * but when such padded frames employ the bge IP/TCP checksum offload,
5009  * the hardware checksum assist gives incorrect results (possibly
5010  * from incorporating its own padding into the UDP/TCP checksum; who knows).
5011  * If we pad such runts with zeros, the onboard checksum comes out correct.
5012  */
5013 static __inline int
5014 bge_cksum_pad(struct mbuf *m)
5015 {
5016 	int padlen = ETHER_MIN_NOPAD - m->m_pkthdr.len;
5017 	struct mbuf *last;
5018 
5019 	/* If there's only the packet-header and we can pad there, use it. */
5020 	if (m->m_pkthdr.len == m->m_len && M_WRITABLE(m) &&
5021 	    M_TRAILINGSPACE(m) >= padlen) {
5022 		last = m;
5023 	} else {
5024 		/*
5025 		 * Walk packet chain to find last mbuf. We will either
5026 		 * pad there, or append a new mbuf and pad it.
5027 		 */
5028 		for (last = m; last->m_next != NULL; last = last->m_next);
5029 		if (!(M_WRITABLE(last) && M_TRAILINGSPACE(last) >= padlen)) {
5030 			/* Allocate new empty mbuf, pad it. Compact later. */
5031 			struct mbuf *n;
5032 
5033 			MGET(n, M_NOWAIT, MT_DATA);
5034 			if (n == NULL)
5035 				return (ENOBUFS);
5036 			n->m_len = 0;
5037 			last->m_next = n;
5038 			last = n;
5039 		}
5040 	}
5041 
5042 	/* Now zero the pad area, to avoid the bge cksum-assist bug. */
5043 	memset(mtod(last, caddr_t) + last->m_len, 0, padlen);
5044 	last->m_len += padlen;
5045 	m->m_pkthdr.len += padlen;
5046 
5047 	return (0);
5048 }
5049 
5050 static struct mbuf *
5051 bge_check_short_dma(struct mbuf *m)
5052 {
5053 	struct mbuf *n;
5054 	int found;
5055 
5056 	/*
5057 	 * If device receive two back-to-back send BDs with less than
5058 	 * or equal to 8 total bytes then the device may hang.  The two
5059 	 * back-to-back send BDs must in the same frame for this failure
5060 	 * to occur.  Scan mbuf chains and see whether two back-to-back
5061 	 * send BDs are there. If this is the case, allocate new mbuf
5062 	 * and copy the frame to workaround the silicon bug.
5063 	 */
5064 	for (n = m, found = 0; n != NULL; n = n->m_next) {
5065 		if (n->m_len < 8) {
5066 			found++;
5067 			if (found > 1)
5068 				break;
5069 			continue;
5070 		}
5071 		found = 0;
5072 	}
5073 
5074 	if (found > 1) {
5075 		n = m_defrag(m, M_NOWAIT);
5076 		if (n == NULL)
5077 			m_freem(m);
5078 	} else
5079 		n = m;
5080 	return (n);
5081 }
5082 
5083 static struct mbuf *
5084 bge_setup_tso(struct bge_softc *sc, struct mbuf *m, uint16_t *mss,
5085     uint16_t *flags)
5086 {
5087 	struct ip *ip;
5088 	struct tcphdr *tcp;
5089 	struct mbuf *n;
5090 	uint16_t hlen;
5091 	uint32_t poff;
5092 
5093 	if (M_WRITABLE(m) == 0) {
5094 		/* Get a writable copy. */
5095 		n = m_dup(m, M_NOWAIT);
5096 		m_freem(m);
5097 		if (n == NULL)
5098 			return (NULL);
5099 		m = n;
5100 	}
5101 	m = m_pullup(m, sizeof(struct ether_header) + sizeof(struct ip));
5102 	if (m == NULL)
5103 		return (NULL);
5104 	ip = (struct ip *)(mtod(m, char *) + sizeof(struct ether_header));
5105 	poff = sizeof(struct ether_header) + (ip->ip_hl << 2);
5106 	m = m_pullup(m, poff + sizeof(struct tcphdr));
5107 	if (m == NULL)
5108 		return (NULL);
5109 	tcp = (struct tcphdr *)(mtod(m, char *) + poff);
5110 	m = m_pullup(m, poff + (tcp->th_off << 2));
5111 	if (m == NULL)
5112 		return (NULL);
5113 	/*
5114 	 * It seems controller doesn't modify IP length and TCP pseudo
5115 	 * checksum. These checksum computed by upper stack should be 0.
5116 	 */
5117 	*mss = m->m_pkthdr.tso_segsz;
5118 	ip = (struct ip *)(mtod(m, char *) + sizeof(struct ether_header));
5119 	ip->ip_sum = 0;
5120 	ip->ip_len = htons(*mss + (ip->ip_hl << 2) + (tcp->th_off << 2));
5121 	/* Clear pseudo checksum computed by TCP stack. */
5122 	tcp = (struct tcphdr *)(mtod(m, char *) + poff);
5123 	tcp->th_sum = 0;
5124 	/*
5125 	 * Broadcom controllers uses different descriptor format for
5126 	 * TSO depending on ASIC revision. Due to TSO-capable firmware
5127 	 * license issue and lower performance of firmware based TSO
5128 	 * we only support hardware based TSO.
5129 	 */
5130 	/* Calculate header length, incl. TCP/IP options, in 32 bit units. */
5131 	hlen = ((ip->ip_hl << 2) + (tcp->th_off << 2)) >> 2;
5132 	if (sc->bge_flags & BGE_FLAG_TSO3) {
5133 		/*
5134 		 * For BCM5717 and newer controllers, hardware based TSO
5135 		 * uses the 14 lower bits of the bge_mss field to store the
5136 		 * MSS and the upper 2 bits to store the lowest 2 bits of
5137 		 * the IP/TCP header length.  The upper 6 bits of the header
5138 		 * length are stored in the bge_flags[14:10,4] field.  Jumbo
5139 		 * frames are supported.
5140 		 */
5141 		*mss |= ((hlen & 0x3) << 14);
5142 		*flags |= ((hlen & 0xF8) << 7) | ((hlen & 0x4) << 2);
5143 	} else {
5144 		/*
5145 		 * For BCM5755 and newer controllers, hardware based TSO uses
5146 		 * the lower 11	bits to store the MSS and the upper 5 bits to
5147 		 * store the IP/TCP header length. Jumbo frames are not
5148 		 * supported.
5149 		 */
5150 		*mss |= (hlen << 11);
5151 	}
5152 	return (m);
5153 }
5154 
5155 /*
5156  * Encapsulate an mbuf chain in the tx ring  by coupling the mbuf data
5157  * pointers to descriptors.
5158  */
5159 static int
5160 bge_encap(struct bge_softc *sc, struct mbuf **m_head, uint32_t *txidx)
5161 {
5162 	bus_dma_segment_t	segs[BGE_NSEG_NEW];
5163 	bus_dmamap_t		map;
5164 	struct bge_tx_bd	*d;
5165 	struct mbuf		*m = *m_head;
5166 	uint32_t		idx = *txidx;
5167 	uint16_t		csum_flags, mss, vlan_tag;
5168 	int			nsegs, i, error;
5169 
5170 	csum_flags = 0;
5171 	mss = 0;
5172 	vlan_tag = 0;
5173 	if ((sc->bge_flags & BGE_FLAG_SHORT_DMA_BUG) != 0 &&
5174 	    m->m_next != NULL) {
5175 		*m_head = bge_check_short_dma(m);
5176 		if (*m_head == NULL)
5177 			return (ENOBUFS);
5178 		m = *m_head;
5179 	}
5180 	if ((m->m_pkthdr.csum_flags & CSUM_TSO) != 0) {
5181 		*m_head = m = bge_setup_tso(sc, m, &mss, &csum_flags);
5182 		if (*m_head == NULL)
5183 			return (ENOBUFS);
5184 		csum_flags |= BGE_TXBDFLAG_CPU_PRE_DMA |
5185 		    BGE_TXBDFLAG_CPU_POST_DMA;
5186 	} else if ((m->m_pkthdr.csum_flags & sc->bge_csum_features) != 0) {
5187 		if (m->m_pkthdr.csum_flags & CSUM_IP)
5188 			csum_flags |= BGE_TXBDFLAG_IP_CSUM;
5189 		if (m->m_pkthdr.csum_flags & (CSUM_TCP | CSUM_UDP)) {
5190 			csum_flags |= BGE_TXBDFLAG_TCP_UDP_CSUM;
5191 			if (m->m_pkthdr.len < ETHER_MIN_NOPAD &&
5192 			    (error = bge_cksum_pad(m)) != 0) {
5193 				m_freem(m);
5194 				*m_head = NULL;
5195 				return (error);
5196 			}
5197 		}
5198 	}
5199 
5200 	if ((m->m_pkthdr.csum_flags & CSUM_TSO) == 0) {
5201 		if (sc->bge_flags & BGE_FLAG_JUMBO_FRAME &&
5202 		    m->m_pkthdr.len > ETHER_MAX_LEN)
5203 			csum_flags |= BGE_TXBDFLAG_JUMBO_FRAME;
5204 		if (sc->bge_forced_collapse > 0 &&
5205 		    (sc->bge_flags & BGE_FLAG_PCIE) != 0 && m->m_next != NULL) {
5206 			/*
5207 			 * Forcedly collapse mbuf chains to overcome hardware
5208 			 * limitation which only support a single outstanding
5209 			 * DMA read operation.
5210 			 */
5211 			if (sc->bge_forced_collapse == 1)
5212 				m = m_defrag(m, M_NOWAIT);
5213 			else
5214 				m = m_collapse(m, M_NOWAIT,
5215 				    sc->bge_forced_collapse);
5216 			if (m == NULL)
5217 				m = *m_head;
5218 			*m_head = m;
5219 		}
5220 	}
5221 
5222 	map = sc->bge_cdata.bge_tx_dmamap[idx];
5223 	error = bus_dmamap_load_mbuf_sg(sc->bge_cdata.bge_tx_mtag, map, m, segs,
5224 	    &nsegs, BUS_DMA_NOWAIT);
5225 	if (error == EFBIG) {
5226 		m = m_collapse(m, M_NOWAIT, BGE_NSEG_NEW);
5227 		if (m == NULL) {
5228 			m_freem(*m_head);
5229 			*m_head = NULL;
5230 			return (ENOBUFS);
5231 		}
5232 		*m_head = m;
5233 		error = bus_dmamap_load_mbuf_sg(sc->bge_cdata.bge_tx_mtag, map,
5234 		    m, segs, &nsegs, BUS_DMA_NOWAIT);
5235 		if (error) {
5236 			m_freem(m);
5237 			*m_head = NULL;
5238 			return (error);
5239 		}
5240 	} else if (error != 0)
5241 		return (error);
5242 
5243 	/* Check if we have enough free send BDs. */
5244 	if (sc->bge_txcnt + nsegs >= BGE_TX_RING_CNT) {
5245 		bus_dmamap_unload(sc->bge_cdata.bge_tx_mtag, map);
5246 		return (ENOBUFS);
5247 	}
5248 
5249 	bus_dmamap_sync(sc->bge_cdata.bge_tx_mtag, map, BUS_DMASYNC_PREWRITE);
5250 
5251 	if (m->m_flags & M_VLANTAG) {
5252 		csum_flags |= BGE_TXBDFLAG_VLAN_TAG;
5253 		vlan_tag = m->m_pkthdr.ether_vtag;
5254 	}
5255 
5256 	if (sc->bge_asicrev == BGE_ASICREV_BCM5762 &&
5257 	    (m->m_pkthdr.csum_flags & CSUM_TSO) != 0) {
5258 		/*
5259 		 * 5725 family of devices corrupts TSO packets when TSO DMA
5260 		 * buffers cross into regions which are within MSS bytes of
5261 		 * a 4GB boundary.  If we encounter the condition, drop the
5262 		 * packet.
5263 		 */
5264 		for (i = 0; ; i++) {
5265 			d = &sc->bge_ldata.bge_tx_ring[idx];
5266 			d->bge_addr.bge_addr_lo = BGE_ADDR_LO(segs[i].ds_addr);
5267 			d->bge_addr.bge_addr_hi = BGE_ADDR_HI(segs[i].ds_addr);
5268 			d->bge_len = segs[i].ds_len;
5269 			if (d->bge_addr.bge_addr_lo + segs[i].ds_len + mss <
5270 			    d->bge_addr.bge_addr_lo)
5271 				break;
5272 			d->bge_flags = csum_flags;
5273 			d->bge_vlan_tag = vlan_tag;
5274 			d->bge_mss = mss;
5275 			if (i == nsegs - 1)
5276 				break;
5277 			BGE_INC(idx, BGE_TX_RING_CNT);
5278 		}
5279 		if (i != nsegs - 1) {
5280 			bus_dmamap_sync(sc->bge_cdata.bge_tx_mtag, map,
5281 			    BUS_DMASYNC_POSTWRITE);
5282 			bus_dmamap_unload(sc->bge_cdata.bge_tx_mtag, map);
5283 			m_freem(*m_head);
5284 			*m_head = NULL;
5285 			return (EIO);
5286 		}
5287 	} else {
5288 		for (i = 0; ; i++) {
5289 			d = &sc->bge_ldata.bge_tx_ring[idx];
5290 			d->bge_addr.bge_addr_lo = BGE_ADDR_LO(segs[i].ds_addr);
5291 			d->bge_addr.bge_addr_hi = BGE_ADDR_HI(segs[i].ds_addr);
5292 			d->bge_len = segs[i].ds_len;
5293 			d->bge_flags = csum_flags;
5294 			d->bge_vlan_tag = vlan_tag;
5295 			d->bge_mss = mss;
5296 			if (i == nsegs - 1)
5297 				break;
5298 			BGE_INC(idx, BGE_TX_RING_CNT);
5299 		}
5300 	}
5301 
5302 	/* Mark the last segment as end of packet... */
5303 	d->bge_flags |= BGE_TXBDFLAG_END;
5304 
5305 	/*
5306 	 * Insure that the map for this transmission
5307 	 * is placed at the array index of the last descriptor
5308 	 * in this chain.
5309 	 */
5310 	sc->bge_cdata.bge_tx_dmamap[*txidx] = sc->bge_cdata.bge_tx_dmamap[idx];
5311 	sc->bge_cdata.bge_tx_dmamap[idx] = map;
5312 	sc->bge_cdata.bge_tx_chain[idx] = m;
5313 	sc->bge_txcnt += nsegs;
5314 
5315 	BGE_INC(idx, BGE_TX_RING_CNT);
5316 	*txidx = idx;
5317 
5318 	return (0);
5319 }
5320 
5321 /*
5322  * Main transmit routine. To avoid having to do mbuf copies, we put pointers
5323  * to the mbuf data regions directly in the transmit descriptors.
5324  */
5325 static void
5326 bge_start_locked(if_t ifp)
5327 {
5328 	struct bge_softc *sc;
5329 	struct mbuf *m_head;
5330 	uint32_t prodidx;
5331 	int count;
5332 
5333 	sc = if_getsoftc(ifp);
5334 	BGE_LOCK_ASSERT(sc);
5335 
5336 	if (!sc->bge_link ||
5337 	    (if_getdrvflags(ifp) & (IFF_DRV_RUNNING | IFF_DRV_OACTIVE)) !=
5338 	    IFF_DRV_RUNNING)
5339 		return;
5340 
5341 	prodidx = sc->bge_tx_prodidx;
5342 
5343 	for (count = 0; !if_sendq_empty(ifp);) {
5344 		if (sc->bge_txcnt > BGE_TX_RING_CNT - 16) {
5345 			if_setdrvflagbits(ifp, IFF_DRV_OACTIVE, 0);
5346 			break;
5347 		}
5348 		m_head = if_dequeue(ifp);
5349 		if (m_head == NULL)
5350 			break;
5351 
5352 		/*
5353 		 * Pack the data into the transmit ring. If we
5354 		 * don't have room, set the OACTIVE flag and wait
5355 		 * for the NIC to drain the ring.
5356 		 */
5357 		if (bge_encap(sc, &m_head, &prodidx)) {
5358 			if (m_head == NULL)
5359 				break;
5360 			if_sendq_prepend(ifp, m_head);
5361 			if_setdrvflagbits(ifp, IFF_DRV_OACTIVE, 0);
5362 			break;
5363 		}
5364 		++count;
5365 
5366 		/*
5367 		 * If there's a BPF listener, bounce a copy of this frame
5368 		 * to him.
5369 		 */
5370 		bpf_mtap_if(ifp, m_head);
5371 	}
5372 
5373 	if (count > 0)
5374 		bge_start_tx(sc, prodidx);
5375 }
5376 
5377 static void
5378 bge_start_tx(struct bge_softc *sc, uint32_t prodidx)
5379 {
5380 
5381 	bus_dmamap_sync(sc->bge_cdata.bge_tx_ring_tag,
5382 	    sc->bge_cdata.bge_tx_ring_map, BUS_DMASYNC_PREWRITE);
5383 	/* Transmit. */
5384 	bge_writembx(sc, BGE_MBX_TX_HOST_PROD0_LO, prodidx);
5385 	/* 5700 b2 errata */
5386 	if (sc->bge_chiprev == BGE_CHIPREV_5700_BX)
5387 		bge_writembx(sc, BGE_MBX_TX_HOST_PROD0_LO, prodidx);
5388 
5389 	sc->bge_tx_prodidx = prodidx;
5390 
5391 	/* Set a timeout in case the chip goes out to lunch. */
5392 	sc->bge_timer = BGE_TX_TIMEOUT;
5393 }
5394 
5395 /*
5396  * Main transmit routine. To avoid having to do mbuf copies, we put pointers
5397  * to the mbuf data regions directly in the transmit descriptors.
5398  */
5399 static void
5400 bge_start(if_t ifp)
5401 {
5402 	struct bge_softc *sc;
5403 
5404 	sc = if_getsoftc(ifp);
5405 	BGE_LOCK(sc);
5406 	bge_start_locked(ifp);
5407 	BGE_UNLOCK(sc);
5408 }
5409 
5410 static void
5411 bge_init_locked(struct bge_softc *sc)
5412 {
5413 	if_t ifp;
5414 	uint16_t *m;
5415 	uint32_t mode;
5416 
5417 	BGE_LOCK_ASSERT(sc);
5418 
5419 	ifp = sc->bge_ifp;
5420 
5421 	if (if_getdrvflags(ifp) & IFF_DRV_RUNNING)
5422 		return;
5423 
5424 	/* Cancel pending I/O and flush buffers. */
5425 	bge_stop(sc);
5426 
5427 	bge_stop_fw(sc);
5428 	bge_sig_pre_reset(sc, BGE_RESET_START);
5429 	bge_reset(sc);
5430 	bge_sig_legacy(sc, BGE_RESET_START);
5431 	bge_sig_post_reset(sc, BGE_RESET_START);
5432 
5433 	bge_chipinit(sc);
5434 
5435 	/*
5436 	 * Init the various state machines, ring
5437 	 * control blocks and firmware.
5438 	 */
5439 	if (bge_blockinit(sc)) {
5440 		device_printf(sc->bge_dev, "initialization failure\n");
5441 		return;
5442 	}
5443 
5444 	ifp = sc->bge_ifp;
5445 
5446 	/* Specify MTU. */
5447 	CSR_WRITE_4(sc, BGE_RX_MTU, if_getmtu(ifp) +
5448 	    ETHER_HDR_LEN + ETHER_CRC_LEN +
5449 	    (if_getcapenable(ifp) & IFCAP_VLAN_MTU ? ETHER_VLAN_ENCAP_LEN : 0));
5450 
5451 	/* Load our MAC address. */
5452 	m = (uint16_t *)if_getlladdr(sc->bge_ifp);
5453 	CSR_WRITE_4(sc, BGE_MAC_ADDR1_LO, htons(m[0]));
5454 	CSR_WRITE_4(sc, BGE_MAC_ADDR1_HI, (htons(m[1]) << 16) | htons(m[2]));
5455 
5456 	/* Program promiscuous mode. */
5457 	bge_setpromisc(sc);
5458 
5459 	/* Program multicast filter. */
5460 	bge_setmulti(sc);
5461 
5462 	/* Program VLAN tag stripping. */
5463 	bge_setvlan(sc);
5464 
5465 	/* Override UDP checksum offloading. */
5466 	if (sc->bge_forced_udpcsum == 0)
5467 		sc->bge_csum_features &= ~CSUM_UDP;
5468 	else
5469 		sc->bge_csum_features |= CSUM_UDP;
5470 	if (if_getcapabilities(ifp) & IFCAP_TXCSUM &&
5471 	    if_getcapenable(ifp) & IFCAP_TXCSUM) {
5472 		if_sethwassistbits(ifp, 0, (BGE_CSUM_FEATURES | CSUM_UDP));
5473 		if_sethwassistbits(ifp, sc->bge_csum_features, 0);
5474 	}
5475 
5476 	/* Init RX ring. */
5477 	if (bge_init_rx_ring_std(sc) != 0) {
5478 		device_printf(sc->bge_dev, "no memory for std Rx buffers.\n");
5479 		bge_stop(sc);
5480 		return;
5481 	}
5482 
5483 	/*
5484 	 * Workaround for a bug in 5705 ASIC rev A0. Poll the NIC's
5485 	 * memory to insure that the chip has in fact read the first
5486 	 * entry of the ring.
5487 	 */
5488 	if (sc->bge_chipid == BGE_CHIPID_BCM5705_A0) {
5489 		uint32_t		v, i;
5490 		for (i = 0; i < 10; i++) {
5491 			DELAY(20);
5492 			v = bge_readmem_ind(sc, BGE_STD_RX_RINGS + 8);
5493 			if (v == (MCLBYTES - ETHER_ALIGN))
5494 				break;
5495 		}
5496 		if (i == 10)
5497 			device_printf (sc->bge_dev,
5498 			    "5705 A0 chip failed to load RX ring\n");
5499 	}
5500 
5501 	/* Init jumbo RX ring. */
5502 	if (BGE_IS_JUMBO_CAPABLE(sc) &&
5503 	    if_getmtu(ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN +
5504      	    ETHER_VLAN_ENCAP_LEN > (MCLBYTES - ETHER_ALIGN)) {
5505 		if (bge_init_rx_ring_jumbo(sc) != 0) {
5506 			device_printf(sc->bge_dev,
5507 			    "no memory for jumbo Rx buffers.\n");
5508 			bge_stop(sc);
5509 			return;
5510 		}
5511 	}
5512 
5513 	/* Init our RX return ring index. */
5514 	sc->bge_rx_saved_considx = 0;
5515 
5516 	/* Init our RX/TX stat counters. */
5517 	sc->bge_rx_discards = sc->bge_tx_discards = sc->bge_tx_collisions = 0;
5518 
5519 	/* Init TX ring. */
5520 	bge_init_tx_ring(sc);
5521 
5522 	/* Enable TX MAC state machine lockup fix. */
5523 	mode = CSR_READ_4(sc, BGE_TX_MODE);
5524 	if (BGE_IS_5755_PLUS(sc) || sc->bge_asicrev == BGE_ASICREV_BCM5906)
5525 		mode |= BGE_TXMODE_MBUF_LOCKUP_FIX;
5526 	if (sc->bge_asicrev == BGE_ASICREV_BCM5720 ||
5527 	    sc->bge_asicrev == BGE_ASICREV_BCM5762) {
5528 		mode &= ~(BGE_TXMODE_JMB_FRM_LEN | BGE_TXMODE_CNT_DN_MODE);
5529 		mode |= CSR_READ_4(sc, BGE_TX_MODE) &
5530 		    (BGE_TXMODE_JMB_FRM_LEN | BGE_TXMODE_CNT_DN_MODE);
5531 	}
5532 	/* Turn on transmitter. */
5533 	CSR_WRITE_4(sc, BGE_TX_MODE, mode | BGE_TXMODE_ENABLE);
5534 	DELAY(100);
5535 
5536 	/* Turn on receiver. */
5537 	mode = CSR_READ_4(sc, BGE_RX_MODE);
5538 	if (BGE_IS_5755_PLUS(sc))
5539 		mode |= BGE_RXMODE_IPV6_ENABLE;
5540 	if (sc->bge_asicrev == BGE_ASICREV_BCM5762)
5541 		mode |= BGE_RXMODE_IPV4_FRAG_FIX;
5542 	CSR_WRITE_4(sc,BGE_RX_MODE, mode | BGE_RXMODE_ENABLE);
5543 	DELAY(10);
5544 
5545 	/*
5546 	 * Set the number of good frames to receive after RX MBUF
5547 	 * Low Watermark has been reached. After the RX MAC receives
5548 	 * this number of frames, it will drop subsequent incoming
5549 	 * frames until the MBUF High Watermark is reached.
5550 	 */
5551 	if (BGE_IS_57765_PLUS(sc))
5552 		CSR_WRITE_4(sc, BGE_MAX_RX_FRAME_LOWAT, 1);
5553 	else
5554 		CSR_WRITE_4(sc, BGE_MAX_RX_FRAME_LOWAT, 2);
5555 
5556 	/* Clear MAC statistics. */
5557 	if (BGE_IS_5705_PLUS(sc))
5558 		bge_stats_clear_regs(sc);
5559 
5560 	/* Tell firmware we're alive. */
5561 	BGE_SETBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP);
5562 
5563 #ifdef DEVICE_POLLING
5564 	/* Disable interrupts if we are polling. */
5565 	if (if_getcapenable(ifp) & IFCAP_POLLING) {
5566 		BGE_SETBIT(sc, BGE_PCI_MISC_CTL,
5567 		    BGE_PCIMISCCTL_MASK_PCI_INTR);
5568 		bge_writembx(sc, BGE_MBX_IRQ0_LO, 1);
5569 	} else
5570 #endif
5571 
5572 	/* Enable host interrupts. */
5573 	{
5574 	BGE_SETBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_CLEAR_INTA);
5575 	BGE_CLRBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_MASK_PCI_INTR);
5576 	bge_writembx(sc, BGE_MBX_IRQ0_LO, 0);
5577 	}
5578 
5579 	if_setdrvflagbits(ifp, IFF_DRV_RUNNING, 0);
5580 	if_setdrvflagbits(ifp, 0, IFF_DRV_OACTIVE);
5581 
5582 	bge_ifmedia_upd_locked(ifp);
5583 
5584 	callout_reset(&sc->bge_stat_ch, hz, bge_tick, sc);
5585 }
5586 
5587 static void
5588 bge_init(void *xsc)
5589 {
5590 	struct bge_softc *sc = xsc;
5591 
5592 	BGE_LOCK(sc);
5593 	bge_init_locked(sc);
5594 	BGE_UNLOCK(sc);
5595 }
5596 
5597 /*
5598  * Set media options.
5599  */
5600 static int
5601 bge_ifmedia_upd(if_t ifp)
5602 {
5603 	struct bge_softc *sc = if_getsoftc(ifp);
5604 	int res;
5605 
5606 	BGE_LOCK(sc);
5607 	res = bge_ifmedia_upd_locked(ifp);
5608 	BGE_UNLOCK(sc);
5609 
5610 	return (res);
5611 }
5612 
5613 static int
5614 bge_ifmedia_upd_locked(if_t ifp)
5615 {
5616 	struct bge_softc *sc = if_getsoftc(ifp);
5617 	struct mii_data *mii;
5618 	struct mii_softc *miisc;
5619 	struct ifmedia *ifm;
5620 
5621 	BGE_LOCK_ASSERT(sc);
5622 
5623 	ifm = &sc->bge_ifmedia;
5624 
5625 	/* If this is a 1000baseX NIC, enable the TBI port. */
5626 	if (sc->bge_flags & BGE_FLAG_TBI) {
5627 		if (IFM_TYPE(ifm->ifm_media) != IFM_ETHER)
5628 			return (EINVAL);
5629 		switch(IFM_SUBTYPE(ifm->ifm_media)) {
5630 		case IFM_AUTO:
5631 			/*
5632 			 * The BCM5704 ASIC appears to have a special
5633 			 * mechanism for programming the autoneg
5634 			 * advertisement registers in TBI mode.
5635 			 */
5636 			if (sc->bge_asicrev == BGE_ASICREV_BCM5704) {
5637 				uint32_t sgdig;
5638 				sgdig = CSR_READ_4(sc, BGE_SGDIG_STS);
5639 				if (sgdig & BGE_SGDIGSTS_DONE) {
5640 					CSR_WRITE_4(sc, BGE_TX_TBI_AUTONEG, 0);
5641 					sgdig = CSR_READ_4(sc, BGE_SGDIG_CFG);
5642 					sgdig |= BGE_SGDIGCFG_AUTO |
5643 					    BGE_SGDIGCFG_PAUSE_CAP |
5644 					    BGE_SGDIGCFG_ASYM_PAUSE;
5645 					CSR_WRITE_4(sc, BGE_SGDIG_CFG,
5646 					    sgdig | BGE_SGDIGCFG_SEND);
5647 					DELAY(5);
5648 					CSR_WRITE_4(sc, BGE_SGDIG_CFG, sgdig);
5649 				}
5650 			}
5651 			break;
5652 		case IFM_1000_SX:
5653 			if ((ifm->ifm_media & IFM_GMASK) == IFM_FDX) {
5654 				BGE_CLRBIT(sc, BGE_MAC_MODE,
5655 				    BGE_MACMODE_HALF_DUPLEX);
5656 			} else {
5657 				BGE_SETBIT(sc, BGE_MAC_MODE,
5658 				    BGE_MACMODE_HALF_DUPLEX);
5659 			}
5660 			DELAY(40);
5661 			break;
5662 		default:
5663 			return (EINVAL);
5664 		}
5665 		return (0);
5666 	}
5667 
5668 	sc->bge_link_evt++;
5669 	mii = device_get_softc(sc->bge_miibus);
5670 	LIST_FOREACH(miisc, &mii->mii_phys, mii_list)
5671 		PHY_RESET(miisc);
5672 	mii_mediachg(mii);
5673 
5674 	/*
5675 	 * Force an interrupt so that we will call bge_link_upd
5676 	 * if needed and clear any pending link state attention.
5677 	 * Without this we are not getting any further interrupts
5678 	 * for link state changes and thus will not UP the link and
5679 	 * not be able to send in bge_start_locked. The only
5680 	 * way to get things working was to receive a packet and
5681 	 * get an RX intr.
5682 	 * bge_tick should help for fiber cards and we might not
5683 	 * need to do this here if BGE_FLAG_TBI is set but as
5684 	 * we poll for fiber anyway it should not harm.
5685 	 */
5686 	if (sc->bge_asicrev == BGE_ASICREV_BCM5700 ||
5687 	    sc->bge_flags & BGE_FLAG_5788)
5688 		BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_INTR_SET);
5689 	else
5690 		BGE_SETBIT(sc, BGE_HCC_MODE, BGE_HCCMODE_COAL_NOW);
5691 
5692 	return (0);
5693 }
5694 
5695 /*
5696  * Report current media status.
5697  */
5698 static void
5699 bge_ifmedia_sts(if_t ifp, struct ifmediareq *ifmr)
5700 {
5701 	struct bge_softc *sc = if_getsoftc(ifp);
5702 	struct mii_data *mii;
5703 
5704 	BGE_LOCK(sc);
5705 
5706 	if ((if_getflags(ifp) & IFF_UP) == 0) {
5707 		BGE_UNLOCK(sc);
5708 		return;
5709 	}
5710 	if (sc->bge_flags & BGE_FLAG_TBI) {
5711 		ifmr->ifm_status = IFM_AVALID;
5712 		ifmr->ifm_active = IFM_ETHER;
5713 		if (CSR_READ_4(sc, BGE_MAC_STS) &
5714 		    BGE_MACSTAT_TBI_PCS_SYNCHED)
5715 			ifmr->ifm_status |= IFM_ACTIVE;
5716 		else {
5717 			ifmr->ifm_active |= IFM_NONE;
5718 			BGE_UNLOCK(sc);
5719 			return;
5720 		}
5721 		ifmr->ifm_active |= IFM_1000_SX;
5722 		if (CSR_READ_4(sc, BGE_MAC_MODE) & BGE_MACMODE_HALF_DUPLEX)
5723 			ifmr->ifm_active |= IFM_HDX;
5724 		else
5725 			ifmr->ifm_active |= IFM_FDX;
5726 		BGE_UNLOCK(sc);
5727 		return;
5728 	}
5729 
5730 	mii = device_get_softc(sc->bge_miibus);
5731 	mii_pollstat(mii);
5732 	ifmr->ifm_active = mii->mii_media_active;
5733 	ifmr->ifm_status = mii->mii_media_status;
5734 
5735 	BGE_UNLOCK(sc);
5736 }
5737 
5738 static int
5739 bge_ioctl(if_t ifp, u_long command, caddr_t data)
5740 {
5741 	struct bge_softc *sc = if_getsoftc(ifp);
5742 	struct ifreq *ifr = (struct ifreq *) data;
5743 	struct mii_data *mii;
5744 	int flags, mask, error = 0;
5745 
5746 	switch (command) {
5747 	case SIOCSIFMTU:
5748 		if (BGE_IS_JUMBO_CAPABLE(sc) ||
5749 		    (sc->bge_flags & BGE_FLAG_JUMBO_STD)) {
5750 			if (ifr->ifr_mtu < ETHERMIN ||
5751 			    ifr->ifr_mtu > BGE_JUMBO_MTU) {
5752 				error = EINVAL;
5753 				break;
5754 			}
5755 		} else if (ifr->ifr_mtu < ETHERMIN || ifr->ifr_mtu > ETHERMTU) {
5756 			error = EINVAL;
5757 			break;
5758 		}
5759 		BGE_LOCK(sc);
5760 		if (if_getmtu(ifp) != ifr->ifr_mtu) {
5761 			if_setmtu(ifp, ifr->ifr_mtu);
5762 			if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) {
5763 				if_setdrvflagbits(ifp, 0, IFF_DRV_RUNNING);
5764 				bge_init_locked(sc);
5765 			}
5766 		}
5767 		BGE_UNLOCK(sc);
5768 		break;
5769 	case SIOCSIFFLAGS:
5770 		BGE_LOCK(sc);
5771 		if (if_getflags(ifp) & IFF_UP) {
5772 			/*
5773 			 * If only the state of the PROMISC flag changed,
5774 			 * then just use the 'set promisc mode' command
5775 			 * instead of reinitializing the entire NIC. Doing
5776 			 * a full re-init means reloading the firmware and
5777 			 * waiting for it to start up, which may take a
5778 			 * second or two.  Similarly for ALLMULTI.
5779 			 */
5780 			if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) {
5781 				flags = if_getflags(ifp) ^ sc->bge_if_flags;
5782 				if (flags & IFF_PROMISC)
5783 					bge_setpromisc(sc);
5784 				if (flags & IFF_ALLMULTI)
5785 					bge_setmulti(sc);
5786 			} else
5787 				bge_init_locked(sc);
5788 		} else {
5789 			if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) {
5790 				bge_stop(sc);
5791 			}
5792 		}
5793 		sc->bge_if_flags = if_getflags(ifp);
5794 		BGE_UNLOCK(sc);
5795 		error = 0;
5796 		break;
5797 	case SIOCADDMULTI:
5798 	case SIOCDELMULTI:
5799 		if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) {
5800 			BGE_LOCK(sc);
5801 			bge_setmulti(sc);
5802 			BGE_UNLOCK(sc);
5803 			error = 0;
5804 		}
5805 		break;
5806 	case SIOCSIFMEDIA:
5807 	case SIOCGIFMEDIA:
5808 		if (sc->bge_flags & BGE_FLAG_TBI) {
5809 			error = ifmedia_ioctl(ifp, ifr,
5810 			    &sc->bge_ifmedia, command);
5811 		} else {
5812 			mii = device_get_softc(sc->bge_miibus);
5813 			error = ifmedia_ioctl(ifp, ifr,
5814 			    &mii->mii_media, command);
5815 		}
5816 		break;
5817 	case SIOCSIFCAP:
5818 		mask = ifr->ifr_reqcap ^ if_getcapenable(ifp);
5819 #ifdef DEVICE_POLLING
5820 		if (mask & IFCAP_POLLING) {
5821 			if (ifr->ifr_reqcap & IFCAP_POLLING) {
5822 				error = ether_poll_register(bge_poll, ifp);
5823 				if (error)
5824 					return (error);
5825 				BGE_LOCK(sc);
5826 				BGE_SETBIT(sc, BGE_PCI_MISC_CTL,
5827 				    BGE_PCIMISCCTL_MASK_PCI_INTR);
5828 				bge_writembx(sc, BGE_MBX_IRQ0_LO, 1);
5829 				if_setcapenablebit(ifp, IFCAP_POLLING, 0);
5830 				BGE_UNLOCK(sc);
5831 			} else {
5832 				error = ether_poll_deregister(ifp);
5833 				/* Enable interrupt even in error case */
5834 				BGE_LOCK(sc);
5835 				BGE_CLRBIT(sc, BGE_PCI_MISC_CTL,
5836 				    BGE_PCIMISCCTL_MASK_PCI_INTR);
5837 				bge_writembx(sc, BGE_MBX_IRQ0_LO, 0);
5838 				if_setcapenablebit(ifp, 0, IFCAP_POLLING);
5839 				BGE_UNLOCK(sc);
5840 			}
5841 		}
5842 #endif
5843 		if ((mask & IFCAP_TXCSUM) != 0 &&
5844 		    (if_getcapabilities(ifp) & IFCAP_TXCSUM) != 0) {
5845 			if_togglecapenable(ifp, IFCAP_TXCSUM);
5846 			if ((if_getcapenable(ifp) & IFCAP_TXCSUM) != 0)
5847 				if_sethwassistbits(ifp,
5848 				    sc->bge_csum_features, 0);
5849 			else
5850 				if_sethwassistbits(ifp, 0,
5851 				    sc->bge_csum_features);
5852 		}
5853 
5854 		if ((mask & IFCAP_RXCSUM) != 0 &&
5855 		    (if_getcapabilities(ifp) & IFCAP_RXCSUM) != 0)
5856 			if_togglecapenable(ifp, IFCAP_RXCSUM);
5857 
5858 		if ((mask & IFCAP_TSO4) != 0 &&
5859 		    (if_getcapabilities(ifp) & IFCAP_TSO4) != 0) {
5860 			if_togglecapenable(ifp, IFCAP_TSO4);
5861 			if ((if_getcapenable(ifp) & IFCAP_TSO4) != 0)
5862 				if_sethwassistbits(ifp, CSUM_TSO, 0);
5863 			else
5864 				if_sethwassistbits(ifp, 0, CSUM_TSO);
5865 		}
5866 
5867 		if (mask & IFCAP_VLAN_MTU) {
5868 			if_togglecapenable(ifp, IFCAP_VLAN_MTU);
5869 			if_setdrvflagbits(ifp, 0, IFF_DRV_RUNNING);
5870 			bge_init(sc);
5871 		}
5872 
5873 		if ((mask & IFCAP_VLAN_HWTSO) != 0 &&
5874 		    (if_getcapabilities(ifp) & IFCAP_VLAN_HWTSO) != 0)
5875 			if_togglecapenable(ifp, IFCAP_VLAN_HWTSO);
5876 		if ((mask & IFCAP_VLAN_HWTAGGING) != 0 &&
5877 		    (if_getcapabilities(ifp) & IFCAP_VLAN_HWTAGGING) != 0) {
5878 			if_togglecapenable(ifp, IFCAP_VLAN_HWTAGGING);
5879 			if ((if_getcapenable(ifp) & IFCAP_VLAN_HWTAGGING) == 0)
5880 				if_setcapenablebit(ifp, 0, IFCAP_VLAN_HWTSO);
5881 			BGE_LOCK(sc);
5882 			bge_setvlan(sc);
5883 			BGE_UNLOCK(sc);
5884 		}
5885 #ifdef VLAN_CAPABILITIES
5886 		if_vlancap(ifp);
5887 #endif
5888 		break;
5889 	default:
5890 		error = ether_ioctl(ifp, command, data);
5891 		break;
5892 	}
5893 
5894 	return (error);
5895 }
5896 
5897 static void
5898 bge_watchdog(struct bge_softc *sc)
5899 {
5900 	if_t ifp;
5901 	uint32_t status;
5902 
5903 	BGE_LOCK_ASSERT(sc);
5904 
5905 	if (sc->bge_timer == 0 || --sc->bge_timer)
5906 		return;
5907 
5908 	/* If pause frames are active then don't reset the hardware. */
5909 	if ((CSR_READ_4(sc, BGE_RX_MODE) & BGE_RXMODE_FLOWCTL_ENABLE) != 0) {
5910 		status = CSR_READ_4(sc, BGE_RX_STS);
5911 		if ((status & BGE_RXSTAT_REMOTE_XOFFED) != 0) {
5912 			/*
5913 			 * If link partner has us in XOFF state then wait for
5914 			 * the condition to clear.
5915 			 */
5916 			CSR_WRITE_4(sc, BGE_RX_STS, status);
5917 			sc->bge_timer = BGE_TX_TIMEOUT;
5918 			return;
5919 		} else if ((status & BGE_RXSTAT_RCVD_XOFF) != 0 &&
5920 		    (status & BGE_RXSTAT_RCVD_XON) != 0) {
5921 			/*
5922 			 * If link partner has us in XOFF state then wait for
5923 			 * the condition to clear.
5924 			 */
5925 			CSR_WRITE_4(sc, BGE_RX_STS, status);
5926 			sc->bge_timer = BGE_TX_TIMEOUT;
5927 			return;
5928 		}
5929 		/*
5930 		 * Any other condition is unexpected and the controller
5931 		 * should be reset.
5932 		 */
5933 	}
5934 
5935 	ifp = sc->bge_ifp;
5936 
5937 	if_printf(ifp, "watchdog timeout -- resetting\n");
5938 
5939 	if_setdrvflagbits(ifp, 0, IFF_DRV_RUNNING);
5940 	bge_init_locked(sc);
5941 
5942 	if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
5943 }
5944 
5945 static void
5946 bge_stop_block(struct bge_softc *sc, bus_size_t reg, uint32_t bit)
5947 {
5948 	int i;
5949 
5950 	BGE_CLRBIT(sc, reg, bit);
5951 
5952 	for (i = 0; i < BGE_TIMEOUT; i++) {
5953 		if ((CSR_READ_4(sc, reg) & bit) == 0)
5954 			return;
5955 		DELAY(100);
5956         }
5957 }
5958 
5959 /*
5960  * Stop the adapter and free any mbufs allocated to the
5961  * RX and TX lists.
5962  */
5963 static void
5964 bge_stop(struct bge_softc *sc)
5965 {
5966 	if_t ifp;
5967 
5968 	BGE_LOCK_ASSERT(sc);
5969 
5970 	ifp = sc->bge_ifp;
5971 
5972 	callout_stop(&sc->bge_stat_ch);
5973 
5974 	/* Disable host interrupts. */
5975 	BGE_SETBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_MASK_PCI_INTR);
5976 	bge_writembx(sc, BGE_MBX_IRQ0_LO, 1);
5977 
5978 	/*
5979 	 * Tell firmware we're shutting down.
5980 	 */
5981 	bge_stop_fw(sc);
5982 	bge_sig_pre_reset(sc, BGE_RESET_SHUTDOWN);
5983 
5984 	/*
5985 	 * Disable all of the receiver blocks.
5986 	 */
5987 	bge_stop_block(sc, BGE_RX_MODE, BGE_RXMODE_ENABLE);
5988 	bge_stop_block(sc, BGE_RBDI_MODE, BGE_RBDIMODE_ENABLE);
5989 	bge_stop_block(sc, BGE_RXLP_MODE, BGE_RXLPMODE_ENABLE);
5990 	if (BGE_IS_5700_FAMILY(sc))
5991 		bge_stop_block(sc, BGE_RXLS_MODE, BGE_RXLSMODE_ENABLE);
5992 	bge_stop_block(sc, BGE_RDBDI_MODE, BGE_RBDIMODE_ENABLE);
5993 	bge_stop_block(sc, BGE_RDC_MODE, BGE_RDCMODE_ENABLE);
5994 	bge_stop_block(sc, BGE_RBDC_MODE, BGE_RBDCMODE_ENABLE);
5995 
5996 	/*
5997 	 * Disable all of the transmit blocks.
5998 	 */
5999 	bge_stop_block(sc, BGE_SRS_MODE, BGE_SRSMODE_ENABLE);
6000 	bge_stop_block(sc, BGE_SBDI_MODE, BGE_SBDIMODE_ENABLE);
6001 	bge_stop_block(sc, BGE_SDI_MODE, BGE_SDIMODE_ENABLE);
6002 	bge_stop_block(sc, BGE_RDMA_MODE, BGE_RDMAMODE_ENABLE);
6003 	bge_stop_block(sc, BGE_SDC_MODE, BGE_SDCMODE_ENABLE);
6004 	if (BGE_IS_5700_FAMILY(sc))
6005 		bge_stop_block(sc, BGE_DMAC_MODE, BGE_DMACMODE_ENABLE);
6006 	bge_stop_block(sc, BGE_SBDC_MODE, BGE_SBDCMODE_ENABLE);
6007 
6008 	/*
6009 	 * Shut down all of the memory managers and related
6010 	 * state machines.
6011 	 */
6012 	bge_stop_block(sc, BGE_HCC_MODE, BGE_HCCMODE_ENABLE);
6013 	bge_stop_block(sc, BGE_WDMA_MODE, BGE_WDMAMODE_ENABLE);
6014 	if (BGE_IS_5700_FAMILY(sc))
6015 		bge_stop_block(sc, BGE_MBCF_MODE, BGE_MBCFMODE_ENABLE);
6016 
6017 	CSR_WRITE_4(sc, BGE_FTQ_RESET, 0xFFFFFFFF);
6018 	CSR_WRITE_4(sc, BGE_FTQ_RESET, 0);
6019 	if (!(BGE_IS_5705_PLUS(sc))) {
6020 		BGE_CLRBIT(sc, BGE_BMAN_MODE, BGE_BMANMODE_ENABLE);
6021 		BGE_CLRBIT(sc, BGE_MARB_MODE, BGE_MARBMODE_ENABLE);
6022 	}
6023 	/* Update MAC statistics. */
6024 	if (BGE_IS_5705_PLUS(sc))
6025 		bge_stats_update_regs(sc);
6026 
6027 	bge_reset(sc);
6028 	bge_sig_legacy(sc, BGE_RESET_SHUTDOWN);
6029 	bge_sig_post_reset(sc, BGE_RESET_SHUTDOWN);
6030 
6031 	/*
6032 	 * Keep the ASF firmware running if up.
6033 	 */
6034 	if (sc->bge_asf_mode & ASF_STACKUP)
6035 		BGE_SETBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP);
6036 	else
6037 		BGE_CLRBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP);
6038 
6039 	/* Free the RX lists. */
6040 	bge_free_rx_ring_std(sc);
6041 
6042 	/* Free jumbo RX list. */
6043 	if (BGE_IS_JUMBO_CAPABLE(sc))
6044 		bge_free_rx_ring_jumbo(sc);
6045 
6046 	/* Free TX buffers. */
6047 	bge_free_tx_ring(sc);
6048 
6049 	sc->bge_tx_saved_considx = BGE_TXCONS_UNSET;
6050 
6051 	/* Clear MAC's link state (PHY may still have link UP). */
6052 	if (bootverbose && sc->bge_link)
6053 		if_printf(sc->bge_ifp, "link DOWN\n");
6054 	sc->bge_link = 0;
6055 
6056 	if_setdrvflagbits(ifp, 0, (IFF_DRV_RUNNING | IFF_DRV_OACTIVE));
6057 }
6058 
6059 /*
6060  * Stop all chip I/O so that the kernel's probe routines don't
6061  * get confused by errant DMAs when rebooting.
6062  */
6063 static int
6064 bge_shutdown(device_t dev)
6065 {
6066 	struct bge_softc *sc;
6067 
6068 	sc = device_get_softc(dev);
6069 	BGE_LOCK(sc);
6070 	bge_stop(sc);
6071 	BGE_UNLOCK(sc);
6072 
6073 	return (0);
6074 }
6075 
6076 static int
6077 bge_suspend(device_t dev)
6078 {
6079 	struct bge_softc *sc;
6080 
6081 	sc = device_get_softc(dev);
6082 	BGE_LOCK(sc);
6083 	bge_stop(sc);
6084 	BGE_UNLOCK(sc);
6085 
6086 	return (0);
6087 }
6088 
6089 static int
6090 bge_resume(device_t dev)
6091 {
6092 	struct bge_softc *sc;
6093 	if_t ifp;
6094 
6095 	sc = device_get_softc(dev);
6096 	BGE_LOCK(sc);
6097 	ifp = sc->bge_ifp;
6098 	if (if_getflags(ifp) & IFF_UP) {
6099 		bge_init_locked(sc);
6100 		if (if_getdrvflags(ifp) & IFF_DRV_RUNNING)
6101 			bge_start_locked(ifp);
6102 	}
6103 	BGE_UNLOCK(sc);
6104 
6105 	return (0);
6106 }
6107 
6108 static void
6109 bge_link_upd(struct bge_softc *sc)
6110 {
6111 	struct mii_data *mii;
6112 	uint32_t link, status;
6113 
6114 	BGE_LOCK_ASSERT(sc);
6115 
6116 	/* Clear 'pending link event' flag. */
6117 	sc->bge_link_evt = 0;
6118 
6119 	/*
6120 	 * Process link state changes.
6121 	 * Grrr. The link status word in the status block does
6122 	 * not work correctly on the BCM5700 rev AX and BX chips,
6123 	 * according to all available information. Hence, we have
6124 	 * to enable MII interrupts in order to properly obtain
6125 	 * async link changes. Unfortunately, this also means that
6126 	 * we have to read the MAC status register to detect link
6127 	 * changes, thereby adding an additional register access to
6128 	 * the interrupt handler.
6129 	 *
6130 	 * XXX: perhaps link state detection procedure used for
6131 	 * BGE_CHIPID_BCM5700_B2 can be used for others BCM5700 revisions.
6132 	 */
6133 
6134 	if (sc->bge_asicrev == BGE_ASICREV_BCM5700 &&
6135 	    sc->bge_chipid != BGE_CHIPID_BCM5700_B2) {
6136 		status = CSR_READ_4(sc, BGE_MAC_STS);
6137 		if (status & BGE_MACSTAT_MI_INTERRUPT) {
6138 			mii = device_get_softc(sc->bge_miibus);
6139 			mii_pollstat(mii);
6140 			if (!sc->bge_link &&
6141 			    mii->mii_media_status & IFM_ACTIVE &&
6142 			    IFM_SUBTYPE(mii->mii_media_active) != IFM_NONE) {
6143 				sc->bge_link++;
6144 				if (bootverbose)
6145 					if_printf(sc->bge_ifp, "link UP\n");
6146 			} else if (sc->bge_link &&
6147 			    (!(mii->mii_media_status & IFM_ACTIVE) ||
6148 			    IFM_SUBTYPE(mii->mii_media_active) == IFM_NONE)) {
6149 				sc->bge_link = 0;
6150 				if (bootverbose)
6151 					if_printf(sc->bge_ifp, "link DOWN\n");
6152 			}
6153 
6154 			/* Clear the interrupt. */
6155 			CSR_WRITE_4(sc, BGE_MAC_EVT_ENB,
6156 			    BGE_EVTENB_MI_INTERRUPT);
6157 			bge_miibus_readreg(sc->bge_dev, sc->bge_phy_addr,
6158 			    BRGPHY_MII_ISR);
6159 			bge_miibus_writereg(sc->bge_dev, sc->bge_phy_addr,
6160 			    BRGPHY_MII_IMR, BRGPHY_INTRS);
6161 		}
6162 		return;
6163 	}
6164 
6165 	if (sc->bge_flags & BGE_FLAG_TBI) {
6166 		status = CSR_READ_4(sc, BGE_MAC_STS);
6167 		if (status & BGE_MACSTAT_TBI_PCS_SYNCHED) {
6168 			if (!sc->bge_link) {
6169 				sc->bge_link++;
6170 				if (sc->bge_asicrev == BGE_ASICREV_BCM5704) {
6171 					BGE_CLRBIT(sc, BGE_MAC_MODE,
6172 					    BGE_MACMODE_TBI_SEND_CFGS);
6173 					DELAY(40);
6174 				}
6175 				CSR_WRITE_4(sc, BGE_MAC_STS, 0xFFFFFFFF);
6176 				if (bootverbose)
6177 					if_printf(sc->bge_ifp, "link UP\n");
6178 				if_link_state_change(sc->bge_ifp,
6179 				    LINK_STATE_UP);
6180 			}
6181 		} else if (sc->bge_link) {
6182 			sc->bge_link = 0;
6183 			if (bootverbose)
6184 				if_printf(sc->bge_ifp, "link DOWN\n");
6185 			if_link_state_change(sc->bge_ifp, LINK_STATE_DOWN);
6186 		}
6187 	} else if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) {
6188 		/*
6189 		 * Some broken BCM chips have BGE_STATFLAG_LINKSTATE_CHANGED bit
6190 		 * in status word always set. Workaround this bug by reading
6191 		 * PHY link status directly.
6192 		 */
6193 		link = (CSR_READ_4(sc, BGE_MI_STS) & BGE_MISTS_LINK) ? 1 : 0;
6194 
6195 		if (link != sc->bge_link ||
6196 		    sc->bge_asicrev == BGE_ASICREV_BCM5700) {
6197 			mii = device_get_softc(sc->bge_miibus);
6198 			mii_pollstat(mii);
6199 			if (!sc->bge_link &&
6200 			    mii->mii_media_status & IFM_ACTIVE &&
6201 			    IFM_SUBTYPE(mii->mii_media_active) != IFM_NONE) {
6202 				sc->bge_link++;
6203 				if (bootverbose)
6204 					if_printf(sc->bge_ifp, "link UP\n");
6205 			} else if (sc->bge_link &&
6206 			    (!(mii->mii_media_status & IFM_ACTIVE) ||
6207 			    IFM_SUBTYPE(mii->mii_media_active) == IFM_NONE)) {
6208 				sc->bge_link = 0;
6209 				if (bootverbose)
6210 					if_printf(sc->bge_ifp, "link DOWN\n");
6211 			}
6212 		}
6213 	} else {
6214 		/*
6215 		 * For controllers that call mii_tick, we have to poll
6216 		 * link status.
6217 		 */
6218 		mii = device_get_softc(sc->bge_miibus);
6219 		mii_pollstat(mii);
6220 		bge_miibus_statchg(sc->bge_dev);
6221 	}
6222 
6223 	/* Disable MAC attention when link is up. */
6224 	CSR_WRITE_4(sc, BGE_MAC_STS, BGE_MACSTAT_SYNC_CHANGED |
6225 	    BGE_MACSTAT_CFG_CHANGED | BGE_MACSTAT_MI_COMPLETE |
6226 	    BGE_MACSTAT_LINK_CHANGED);
6227 }
6228 
6229 static void
6230 bge_add_sysctls(struct bge_softc *sc)
6231 {
6232 	struct sysctl_ctx_list *ctx;
6233 	struct sysctl_oid_list *children;
6234 
6235 	ctx = device_get_sysctl_ctx(sc->bge_dev);
6236 	children = SYSCTL_CHILDREN(device_get_sysctl_tree(sc->bge_dev));
6237 
6238 #ifdef BGE_REGISTER_DEBUG
6239 	SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "debug_info",
6240 	    CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT, sc, 0,
6241 	    bge_sysctl_debug_info, "I", "Debug Information");
6242 
6243 	SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "reg_read",
6244 	    CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT, sc, 0,
6245 	    bge_sysctl_reg_read, "I", "MAC Register Read");
6246 
6247 	SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "ape_read",
6248 	    CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT, sc, 0,
6249 	    bge_sysctl_ape_read, "I", "APE Register Read");
6250 
6251 	SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "mem_read",
6252 	    CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_NEEDGIANT, sc, 0,
6253 	    bge_sysctl_mem_read, "I", "Memory Read");
6254 
6255 #endif
6256 
6257 	/*
6258 	 * A common design characteristic for many Broadcom client controllers
6259 	 * is that they only support a single outstanding DMA read operation
6260 	 * on the PCIe bus. This means that it will take twice as long to fetch
6261 	 * a TX frame that is split into header and payload buffers as it does
6262 	 * to fetch a single, contiguous TX frame (2 reads vs. 1 read). For
6263 	 * these controllers, coalescing buffers to reduce the number of memory
6264 	 * reads is effective way to get maximum performance(about 940Mbps).
6265 	 * Without collapsing TX buffers the maximum TCP bulk transfer
6266 	 * performance is about 850Mbps. However forcing coalescing mbufs
6267 	 * consumes a lot of CPU cycles, so leave it off by default.
6268 	 */
6269 	sc->bge_forced_collapse = 0;
6270 	SYSCTL_ADD_INT(ctx, children, OID_AUTO, "forced_collapse",
6271 	    CTLFLAG_RWTUN, &sc->bge_forced_collapse, 0,
6272 	    "Number of fragmented TX buffers of a frame allowed before "
6273 	    "forced collapsing");
6274 
6275 	sc->bge_msi = 1;
6276 	SYSCTL_ADD_INT(ctx, children, OID_AUTO, "msi",
6277 	    CTLFLAG_RDTUN, &sc->bge_msi, 0, "Enable MSI");
6278 
6279 	/*
6280 	 * It seems all Broadcom controllers have a bug that can generate UDP
6281 	 * datagrams with checksum value 0 when TX UDP checksum offloading is
6282 	 * enabled.  Generating UDP checksum value 0 is RFC 768 violation.
6283 	 * Even though the probability of generating such UDP datagrams is
6284 	 * low, I don't want to see FreeBSD boxes to inject such datagrams
6285 	 * into network so disable UDP checksum offloading by default.  Users
6286 	 * still override this behavior by setting a sysctl variable,
6287 	 * dev.bge.0.forced_udpcsum.
6288 	 */
6289 	sc->bge_forced_udpcsum = 0;
6290 	SYSCTL_ADD_INT(ctx, children, OID_AUTO, "forced_udpcsum",
6291 	    CTLFLAG_RWTUN, &sc->bge_forced_udpcsum, 0,
6292 	    "Enable UDP checksum offloading even if controller can "
6293 	    "generate UDP checksum value 0");
6294 
6295 	if (BGE_IS_5705_PLUS(sc))
6296 		bge_add_sysctl_stats_regs(sc, ctx, children);
6297 	else
6298 		bge_add_sysctl_stats(sc, ctx, children);
6299 }
6300 
6301 #define BGE_SYSCTL_STAT(sc, ctx, desc, parent, node, oid) \
6302     SYSCTL_ADD_PROC(ctx, parent, OID_AUTO, oid, \
6303         CTLTYPE_UINT | CTLFLAG_RD | CTLFLAG_NEEDGIANT, sc, \
6304 	offsetof(struct bge_stats, node), bge_sysctl_stats, "IU", desc)
6305 
6306 static void
6307 bge_add_sysctl_stats(struct bge_softc *sc, struct sysctl_ctx_list *ctx,
6308     struct sysctl_oid_list *parent)
6309 {
6310 	struct sysctl_oid *tree;
6311 	struct sysctl_oid_list *children, *schildren;
6312 
6313 	tree = SYSCTL_ADD_NODE(ctx, parent, OID_AUTO, "stats",
6314 	    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "BGE Statistics");
6315 	schildren = children = SYSCTL_CHILDREN(tree);
6316 	BGE_SYSCTL_STAT(sc, ctx, "Frames Dropped Due To Filters",
6317 	    children, COSFramesDroppedDueToFilters,
6318 	    "FramesDroppedDueToFilters");
6319 	BGE_SYSCTL_STAT(sc, ctx, "NIC DMA Write Queue Full",
6320 	    children, nicDmaWriteQueueFull, "DmaWriteQueueFull");
6321 	BGE_SYSCTL_STAT(sc, ctx, "NIC DMA Write High Priority Queue Full",
6322 	    children, nicDmaWriteHighPriQueueFull, "DmaWriteHighPriQueueFull");
6323 	BGE_SYSCTL_STAT(sc, ctx, "NIC No More RX Buffer Descriptors",
6324 	    children, nicNoMoreRxBDs, "NoMoreRxBDs");
6325 	BGE_SYSCTL_STAT(sc, ctx, "Discarded Input Frames",
6326 	    children, ifInDiscards, "InputDiscards");
6327 	BGE_SYSCTL_STAT(sc, ctx, "Input Errors",
6328 	    children, ifInErrors, "InputErrors");
6329 	BGE_SYSCTL_STAT(sc, ctx, "NIC Recv Threshold Hit",
6330 	    children, nicRecvThresholdHit, "RecvThresholdHit");
6331 	BGE_SYSCTL_STAT(sc, ctx, "NIC DMA Read Queue Full",
6332 	    children, nicDmaReadQueueFull, "DmaReadQueueFull");
6333 	BGE_SYSCTL_STAT(sc, ctx, "NIC DMA Read High Priority Queue Full",
6334 	    children, nicDmaReadHighPriQueueFull, "DmaReadHighPriQueueFull");
6335 	BGE_SYSCTL_STAT(sc, ctx, "NIC Send Data Complete Queue Full",
6336 	    children, nicSendDataCompQueueFull, "SendDataCompQueueFull");
6337 	BGE_SYSCTL_STAT(sc, ctx, "NIC Ring Set Send Producer Index",
6338 	    children, nicRingSetSendProdIndex, "RingSetSendProdIndex");
6339 	BGE_SYSCTL_STAT(sc, ctx, "NIC Ring Status Update",
6340 	    children, nicRingStatusUpdate, "RingStatusUpdate");
6341 	BGE_SYSCTL_STAT(sc, ctx, "NIC Interrupts",
6342 	    children, nicInterrupts, "Interrupts");
6343 	BGE_SYSCTL_STAT(sc, ctx, "NIC Avoided Interrupts",
6344 	    children, nicAvoidedInterrupts, "AvoidedInterrupts");
6345 	BGE_SYSCTL_STAT(sc, ctx, "NIC Send Threshold Hit",
6346 	    children, nicSendThresholdHit, "SendThresholdHit");
6347 
6348 	tree = SYSCTL_ADD_NODE(ctx, schildren, OID_AUTO, "rx",
6349 	    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "BGE RX Statistics");
6350 	children = SYSCTL_CHILDREN(tree);
6351 	BGE_SYSCTL_STAT(sc, ctx, "Inbound Octets",
6352 	    children, rxstats.ifHCInOctets, "ifHCInOctets");
6353 	BGE_SYSCTL_STAT(sc, ctx, "Fragments",
6354 	    children, rxstats.etherStatsFragments, "Fragments");
6355 	BGE_SYSCTL_STAT(sc, ctx, "Inbound Unicast Packets",
6356 	    children, rxstats.ifHCInUcastPkts, "UnicastPkts");
6357 	BGE_SYSCTL_STAT(sc, ctx, "Inbound Multicast Packets",
6358 	    children, rxstats.ifHCInMulticastPkts, "MulticastPkts");
6359 	BGE_SYSCTL_STAT(sc, ctx, "FCS Errors",
6360 	    children, rxstats.dot3StatsFCSErrors, "FCSErrors");
6361 	BGE_SYSCTL_STAT(sc, ctx, "Alignment Errors",
6362 	    children, rxstats.dot3StatsAlignmentErrors, "AlignmentErrors");
6363 	BGE_SYSCTL_STAT(sc, ctx, "XON Pause Frames Received",
6364 	    children, rxstats.xonPauseFramesReceived, "xonPauseFramesReceived");
6365 	BGE_SYSCTL_STAT(sc, ctx, "XOFF Pause Frames Received",
6366 	    children, rxstats.xoffPauseFramesReceived,
6367 	    "xoffPauseFramesReceived");
6368 	BGE_SYSCTL_STAT(sc, ctx, "MAC Control Frames Received",
6369 	    children, rxstats.macControlFramesReceived,
6370 	    "ControlFramesReceived");
6371 	BGE_SYSCTL_STAT(sc, ctx, "XOFF State Entered",
6372 	    children, rxstats.xoffStateEntered, "xoffStateEntered");
6373 	BGE_SYSCTL_STAT(sc, ctx, "Frames Too Long",
6374 	    children, rxstats.dot3StatsFramesTooLong, "FramesTooLong");
6375 	BGE_SYSCTL_STAT(sc, ctx, "Jabbers",
6376 	    children, rxstats.etherStatsJabbers, "Jabbers");
6377 	BGE_SYSCTL_STAT(sc, ctx, "Undersized Packets",
6378 	    children, rxstats.etherStatsUndersizePkts, "UndersizePkts");
6379 	BGE_SYSCTL_STAT(sc, ctx, "Inbound Range Length Errors",
6380 	    children, rxstats.inRangeLengthError, "inRangeLengthError");
6381 	BGE_SYSCTL_STAT(sc, ctx, "Outbound Range Length Errors",
6382 	    children, rxstats.outRangeLengthError, "outRangeLengthError");
6383 
6384 	tree = SYSCTL_ADD_NODE(ctx, schildren, OID_AUTO, "tx",
6385 	    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "BGE TX Statistics");
6386 	children = SYSCTL_CHILDREN(tree);
6387 	BGE_SYSCTL_STAT(sc, ctx, "Outbound Octets",
6388 	    children, txstats.ifHCOutOctets, "ifHCOutOctets");
6389 	BGE_SYSCTL_STAT(sc, ctx, "TX Collisions",
6390 	    children, txstats.etherStatsCollisions, "Collisions");
6391 	BGE_SYSCTL_STAT(sc, ctx, "XON Sent",
6392 	    children, txstats.outXonSent, "XonSent");
6393 	BGE_SYSCTL_STAT(sc, ctx, "XOFF Sent",
6394 	    children, txstats.outXoffSent, "XoffSent");
6395 	BGE_SYSCTL_STAT(sc, ctx, "Flow Control Done",
6396 	    children, txstats.flowControlDone, "flowControlDone");
6397 	BGE_SYSCTL_STAT(sc, ctx, "Internal MAC TX errors",
6398 	    children, txstats.dot3StatsInternalMacTransmitErrors,
6399 	    "InternalMacTransmitErrors");
6400 	BGE_SYSCTL_STAT(sc, ctx, "Single Collision Frames",
6401 	    children, txstats.dot3StatsSingleCollisionFrames,
6402 	    "SingleCollisionFrames");
6403 	BGE_SYSCTL_STAT(sc, ctx, "Multiple Collision Frames",
6404 	    children, txstats.dot3StatsMultipleCollisionFrames,
6405 	    "MultipleCollisionFrames");
6406 	BGE_SYSCTL_STAT(sc, ctx, "Deferred Transmissions",
6407 	    children, txstats.dot3StatsDeferredTransmissions,
6408 	    "DeferredTransmissions");
6409 	BGE_SYSCTL_STAT(sc, ctx, "Excessive Collisions",
6410 	    children, txstats.dot3StatsExcessiveCollisions,
6411 	    "ExcessiveCollisions");
6412 	BGE_SYSCTL_STAT(sc, ctx, "Late Collisions",
6413 	    children, txstats.dot3StatsLateCollisions,
6414 	    "LateCollisions");
6415 	BGE_SYSCTL_STAT(sc, ctx, "Outbound Unicast Packets",
6416 	    children, txstats.ifHCOutUcastPkts, "UnicastPkts");
6417 	BGE_SYSCTL_STAT(sc, ctx, "Outbound Multicast Packets",
6418 	    children, txstats.ifHCOutMulticastPkts, "MulticastPkts");
6419 	BGE_SYSCTL_STAT(sc, ctx, "Outbound Broadcast Packets",
6420 	    children, txstats.ifHCOutBroadcastPkts, "BroadcastPkts");
6421 	BGE_SYSCTL_STAT(sc, ctx, "Carrier Sense Errors",
6422 	    children, txstats.dot3StatsCarrierSenseErrors,
6423 	    "CarrierSenseErrors");
6424 	BGE_SYSCTL_STAT(sc, ctx, "Outbound Discards",
6425 	    children, txstats.ifOutDiscards, "Discards");
6426 	BGE_SYSCTL_STAT(sc, ctx, "Outbound Errors",
6427 	    children, txstats.ifOutErrors, "Errors");
6428 }
6429 
6430 #undef BGE_SYSCTL_STAT
6431 
6432 #define	BGE_SYSCTL_STAT_ADD64(c, h, n, p, d)	\
6433 	    SYSCTL_ADD_UQUAD(c, h, OID_AUTO, n, CTLFLAG_RD, p, d)
6434 
6435 static void
6436 bge_add_sysctl_stats_regs(struct bge_softc *sc, struct sysctl_ctx_list *ctx,
6437     struct sysctl_oid_list *parent)
6438 {
6439 	struct sysctl_oid *tree;
6440 	struct sysctl_oid_list *child, *schild;
6441 	struct bge_mac_stats *stats;
6442 
6443 	stats = &sc->bge_mac_stats;
6444 	tree = SYSCTL_ADD_NODE(ctx, parent, OID_AUTO, "stats",
6445 	    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "BGE Statistics");
6446 	schild = child = SYSCTL_CHILDREN(tree);
6447 	BGE_SYSCTL_STAT_ADD64(ctx, child, "FramesDroppedDueToFilters",
6448 	    &stats->FramesDroppedDueToFilters, "Frames Dropped Due to Filters");
6449 	BGE_SYSCTL_STAT_ADD64(ctx, child, "DmaWriteQueueFull",
6450 	    &stats->DmaWriteQueueFull, "NIC DMA Write Queue Full");
6451 	BGE_SYSCTL_STAT_ADD64(ctx, child, "DmaWriteHighPriQueueFull",
6452 	    &stats->DmaWriteHighPriQueueFull,
6453 	    "NIC DMA Write High Priority Queue Full");
6454 	BGE_SYSCTL_STAT_ADD64(ctx, child, "NoMoreRxBDs",
6455 	    &stats->NoMoreRxBDs, "NIC No More RX Buffer Descriptors");
6456 	BGE_SYSCTL_STAT_ADD64(ctx, child, "InputDiscards",
6457 	    &stats->InputDiscards, "Discarded Input Frames");
6458 	BGE_SYSCTL_STAT_ADD64(ctx, child, "InputErrors",
6459 	    &stats->InputErrors, "Input Errors");
6460 	BGE_SYSCTL_STAT_ADD64(ctx, child, "RecvThresholdHit",
6461 	    &stats->RecvThresholdHit, "NIC Recv Threshold Hit");
6462 
6463 	tree = SYSCTL_ADD_NODE(ctx, schild, OID_AUTO, "rx",
6464 	    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "BGE RX Statistics");
6465 	child = SYSCTL_CHILDREN(tree);
6466 	BGE_SYSCTL_STAT_ADD64(ctx, child, "ifHCInOctets",
6467 	    &stats->ifHCInOctets, "Inbound Octets");
6468 	BGE_SYSCTL_STAT_ADD64(ctx, child, "Fragments",
6469 	    &stats->etherStatsFragments, "Fragments");
6470 	BGE_SYSCTL_STAT_ADD64(ctx, child, "UnicastPkts",
6471 	    &stats->ifHCInUcastPkts, "Inbound Unicast Packets");
6472 	BGE_SYSCTL_STAT_ADD64(ctx, child, "MulticastPkts",
6473 	    &stats->ifHCInMulticastPkts, "Inbound Multicast Packets");
6474 	BGE_SYSCTL_STAT_ADD64(ctx, child, "BroadcastPkts",
6475 	    &stats->ifHCInBroadcastPkts, "Inbound Broadcast Packets");
6476 	BGE_SYSCTL_STAT_ADD64(ctx, child, "FCSErrors",
6477 	    &stats->dot3StatsFCSErrors, "FCS Errors");
6478 	BGE_SYSCTL_STAT_ADD64(ctx, child, "AlignmentErrors",
6479 	    &stats->dot3StatsAlignmentErrors, "Alignment Errors");
6480 	BGE_SYSCTL_STAT_ADD64(ctx, child, "xonPauseFramesReceived",
6481 	    &stats->xonPauseFramesReceived, "XON Pause Frames Received");
6482 	BGE_SYSCTL_STAT_ADD64(ctx, child, "xoffPauseFramesReceived",
6483 	    &stats->xoffPauseFramesReceived, "XOFF Pause Frames Received");
6484 	BGE_SYSCTL_STAT_ADD64(ctx, child, "ControlFramesReceived",
6485 	    &stats->macControlFramesReceived, "MAC Control Frames Received");
6486 	BGE_SYSCTL_STAT_ADD64(ctx, child, "xoffStateEntered",
6487 	    &stats->xoffStateEntered, "XOFF State Entered");
6488 	BGE_SYSCTL_STAT_ADD64(ctx, child, "FramesTooLong",
6489 	    &stats->dot3StatsFramesTooLong, "Frames Too Long");
6490 	BGE_SYSCTL_STAT_ADD64(ctx, child, "Jabbers",
6491 	    &stats->etherStatsJabbers, "Jabbers");
6492 	BGE_SYSCTL_STAT_ADD64(ctx, child, "UndersizePkts",
6493 	    &stats->etherStatsUndersizePkts, "Undersized Packets");
6494 
6495 	tree = SYSCTL_ADD_NODE(ctx, schild, OID_AUTO, "tx",
6496 	    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "BGE TX Statistics");
6497 	child = SYSCTL_CHILDREN(tree);
6498 	BGE_SYSCTL_STAT_ADD64(ctx, child, "ifHCOutOctets",
6499 	    &stats->ifHCOutOctets, "Outbound Octets");
6500 	BGE_SYSCTL_STAT_ADD64(ctx, child, "Collisions",
6501 	    &stats->etherStatsCollisions, "TX Collisions");
6502 	BGE_SYSCTL_STAT_ADD64(ctx, child, "XonSent",
6503 	    &stats->outXonSent, "XON Sent");
6504 	BGE_SYSCTL_STAT_ADD64(ctx, child, "XoffSent",
6505 	    &stats->outXoffSent, "XOFF Sent");
6506 	BGE_SYSCTL_STAT_ADD64(ctx, child, "InternalMacTransmitErrors",
6507 	    &stats->dot3StatsInternalMacTransmitErrors,
6508 	    "Internal MAC TX Errors");
6509 	BGE_SYSCTL_STAT_ADD64(ctx, child, "SingleCollisionFrames",
6510 	    &stats->dot3StatsSingleCollisionFrames, "Single Collision Frames");
6511 	BGE_SYSCTL_STAT_ADD64(ctx, child, "MultipleCollisionFrames",
6512 	    &stats->dot3StatsMultipleCollisionFrames,
6513 	    "Multiple Collision Frames");
6514 	BGE_SYSCTL_STAT_ADD64(ctx, child, "DeferredTransmissions",
6515 	    &stats->dot3StatsDeferredTransmissions, "Deferred Transmissions");
6516 	BGE_SYSCTL_STAT_ADD64(ctx, child, "ExcessiveCollisions",
6517 	    &stats->dot3StatsExcessiveCollisions, "Excessive Collisions");
6518 	BGE_SYSCTL_STAT_ADD64(ctx, child, "LateCollisions",
6519 	    &stats->dot3StatsLateCollisions, "Late Collisions");
6520 	BGE_SYSCTL_STAT_ADD64(ctx, child, "UnicastPkts",
6521 	    &stats->ifHCOutUcastPkts, "Outbound Unicast Packets");
6522 	BGE_SYSCTL_STAT_ADD64(ctx, child, "MulticastPkts",
6523 	    &stats->ifHCOutMulticastPkts, "Outbound Multicast Packets");
6524 	BGE_SYSCTL_STAT_ADD64(ctx, child, "BroadcastPkts",
6525 	    &stats->ifHCOutBroadcastPkts, "Outbound Broadcast Packets");
6526 }
6527 
6528 #undef	BGE_SYSCTL_STAT_ADD64
6529 
6530 static int
6531 bge_sysctl_stats(SYSCTL_HANDLER_ARGS)
6532 {
6533 	struct bge_softc *sc;
6534 	uint32_t result;
6535 	int offset;
6536 
6537 	sc = (struct bge_softc *)arg1;
6538 	offset = arg2;
6539 	result = CSR_READ_4(sc, BGE_MEMWIN_START + BGE_STATS_BLOCK + offset +
6540 	    offsetof(bge_hostaddr, bge_addr_lo));
6541 	return (sysctl_handle_int(oidp, &result, 0, req));
6542 }
6543 
6544 #ifdef BGE_REGISTER_DEBUG
6545 static int
6546 bge_sysctl_debug_info(SYSCTL_HANDLER_ARGS)
6547 {
6548 	struct bge_softc *sc;
6549 	uint16_t *sbdata;
6550 	int error, result, sbsz;
6551 	int i, j;
6552 
6553 	result = -1;
6554 	error = sysctl_handle_int(oidp, &result, 0, req);
6555 	if (error || (req->newptr == NULL))
6556 		return (error);
6557 
6558 	if (result == 1) {
6559 		sc = (struct bge_softc *)arg1;
6560 
6561 		if (sc->bge_asicrev == BGE_ASICREV_BCM5700 &&
6562 		    sc->bge_chipid != BGE_CHIPID_BCM5700_C0)
6563 			sbsz = BGE_STATUS_BLK_SZ;
6564 		else
6565 			sbsz = 32;
6566 		sbdata = (uint16_t *)sc->bge_ldata.bge_status_block;
6567 		printf("Status Block:\n");
6568 		BGE_LOCK(sc);
6569 		bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
6570 		    sc->bge_cdata.bge_status_map,
6571 		    BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
6572 		for (i = 0x0; i < sbsz / sizeof(uint16_t); ) {
6573 			printf("%06x:", i);
6574 			for (j = 0; j < 8; j++)
6575 				printf(" %04x", sbdata[i++]);
6576 			printf("\n");
6577 		}
6578 
6579 		printf("Registers:\n");
6580 		for (i = 0x800; i < 0xA00; ) {
6581 			printf("%06x:", i);
6582 			for (j = 0; j < 8; j++) {
6583 				printf(" %08x", CSR_READ_4(sc, i));
6584 				i += 4;
6585 			}
6586 			printf("\n");
6587 		}
6588 		BGE_UNLOCK(sc);
6589 
6590 		printf("Hardware Flags:\n");
6591 		if (BGE_IS_5717_PLUS(sc))
6592 			printf(" - 5717 Plus\n");
6593 		if (BGE_IS_5755_PLUS(sc))
6594 			printf(" - 5755 Plus\n");
6595 		if (BGE_IS_575X_PLUS(sc))
6596 			printf(" - 575X Plus\n");
6597 		if (BGE_IS_5705_PLUS(sc))
6598 			printf(" - 5705 Plus\n");
6599 		if (BGE_IS_5714_FAMILY(sc))
6600 			printf(" - 5714 Family\n");
6601 		if (BGE_IS_5700_FAMILY(sc))
6602 			printf(" - 5700 Family\n");
6603 		if (sc->bge_flags & BGE_FLAG_JUMBO)
6604 			printf(" - Supports Jumbo Frames\n");
6605 		if (sc->bge_flags & BGE_FLAG_PCIX)
6606 			printf(" - PCI-X Bus\n");
6607 		if (sc->bge_flags & BGE_FLAG_PCIE)
6608 			printf(" - PCI Express Bus\n");
6609 		if (sc->bge_phy_flags & BGE_PHY_NO_3LED)
6610 			printf(" - No 3 LEDs\n");
6611 		if (sc->bge_flags & BGE_FLAG_RX_ALIGNBUG)
6612 			printf(" - RX Alignment Bug\n");
6613 	}
6614 
6615 	return (error);
6616 }
6617 
6618 static int
6619 bge_sysctl_reg_read(SYSCTL_HANDLER_ARGS)
6620 {
6621 	struct bge_softc *sc;
6622 	int error;
6623 	uint16_t result;
6624 	uint32_t val;
6625 
6626 	result = -1;
6627 	error = sysctl_handle_int(oidp, &result, 0, req);
6628 	if (error || (req->newptr == NULL))
6629 		return (error);
6630 
6631 	if (result < 0x8000) {
6632 		sc = (struct bge_softc *)arg1;
6633 		val = CSR_READ_4(sc, result);
6634 		printf("reg 0x%06X = 0x%08X\n", result, val);
6635 	}
6636 
6637 	return (error);
6638 }
6639 
6640 static int
6641 bge_sysctl_ape_read(SYSCTL_HANDLER_ARGS)
6642 {
6643 	struct bge_softc *sc;
6644 	int error;
6645 	uint16_t result;
6646 	uint32_t val;
6647 
6648 	result = -1;
6649 	error = sysctl_handle_int(oidp, &result, 0, req);
6650 	if (error || (req->newptr == NULL))
6651 		return (error);
6652 
6653 	if (result < 0x8000) {
6654 		sc = (struct bge_softc *)arg1;
6655 		val = APE_READ_4(sc, result);
6656 		printf("reg 0x%06X = 0x%08X\n", result, val);
6657 	}
6658 
6659 	return (error);
6660 }
6661 
6662 static int
6663 bge_sysctl_mem_read(SYSCTL_HANDLER_ARGS)
6664 {
6665 	struct bge_softc *sc;
6666 	int error;
6667 	uint16_t result;
6668 	uint32_t val;
6669 
6670 	result = -1;
6671 	error = sysctl_handle_int(oidp, &result, 0, req);
6672 	if (error || (req->newptr == NULL))
6673 		return (error);
6674 
6675 	if (result < 0x8000) {
6676 		sc = (struct bge_softc *)arg1;
6677 		val = bge_readmem_ind(sc, result);
6678 		printf("mem 0x%06X = 0x%08X\n", result, val);
6679 	}
6680 
6681 	return (error);
6682 }
6683 #endif
6684 
6685 static int
6686 bge_get_eaddr_fw(struct bge_softc *sc, uint8_t ether_addr[])
6687 {
6688 	const char *mac_str;
6689 	unsigned int o[ETHER_ADDR_LEN];
6690 	char trail;
6691 	int i, n, unit;
6692 
6693 	unit = device_get_unit(sc->bge_dev);
6694 	if (resource_string_value("bge", unit, "mac", &mac_str) != 0)
6695 		return (1);
6696 
6697 	/* Parse and validate; trailing-char check rejects garbage. */
6698 	n = sscanf(mac_str, "%x:%x:%x:%x:%x:%x%c",
6699 	    &o[0], &o[1], &o[2], &o[3], &o[4], &o[5], &trail);
6700 	if (n != 6)
6701 		return (1);
6702 	for (i = 0; i < ETHER_ADDR_LEN; i++) {
6703 		if (o[i] > 0xff)
6704 			return (1);
6705 		ether_addr[i] = (uint8_t)o[i];
6706 	}
6707 	if (ETHER_IS_MULTICAST(ether_addr) ||
6708 	    ETHER_IS_ZERO(ether_addr))
6709 		return (1);
6710 	return (0);
6711 }
6712 
6713 static int
6714 bge_get_eaddr_mem(struct bge_softc *sc, uint8_t ether_addr[])
6715 {
6716 	uint32_t mac_addr;
6717 
6718 	mac_addr = bge_readmem_ind(sc, BGE_SRAM_MAC_ADDR_HIGH_MB);
6719 	if ((mac_addr >> 16) == 0x484b) {
6720 		ether_addr[0] = (uint8_t)(mac_addr >> 8);
6721 		ether_addr[1] = (uint8_t)mac_addr;
6722 		mac_addr = bge_readmem_ind(sc, BGE_SRAM_MAC_ADDR_LOW_MB);
6723 		ether_addr[2] = (uint8_t)(mac_addr >> 24);
6724 		ether_addr[3] = (uint8_t)(mac_addr >> 16);
6725 		ether_addr[4] = (uint8_t)(mac_addr >> 8);
6726 		ether_addr[5] = (uint8_t)mac_addr;
6727 		return (0);
6728 	}
6729 	return (1);
6730 }
6731 
6732 static int
6733 bge_get_eaddr_nvram(struct bge_softc *sc, uint8_t ether_addr[])
6734 {
6735 	int mac_offset = BGE_EE_MAC_OFFSET;
6736 
6737 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906)
6738 		mac_offset = BGE_EE_MAC_OFFSET_5906;
6739 
6740 	return (bge_read_nvram(sc, ether_addr, mac_offset + 2,
6741 	    ETHER_ADDR_LEN));
6742 }
6743 
6744 static int
6745 bge_get_eaddr_eeprom(struct bge_softc *sc, uint8_t ether_addr[])
6746 {
6747 
6748 	if (sc->bge_asicrev == BGE_ASICREV_BCM5906)
6749 		return (1);
6750 
6751 	return (bge_read_eeprom(sc, ether_addr, BGE_EE_MAC_OFFSET + 2,
6752 	   ETHER_ADDR_LEN));
6753 }
6754 
6755 static int
6756 bge_get_eaddr(struct bge_softc *sc, uint8_t eaddr[])
6757 {
6758 	static const bge_eaddr_fcn_t bge_eaddr_funcs[] = {
6759 		/* NOTE: Order is critical */
6760 		bge_get_eaddr_fw,
6761 		bge_get_eaddr_mem,
6762 		bge_get_eaddr_nvram,
6763 		bge_get_eaddr_eeprom,
6764 		NULL
6765 	};
6766 	const bge_eaddr_fcn_t *func;
6767 
6768 	for (func = bge_eaddr_funcs; *func != NULL; ++func) {
6769 		if ((*func)(sc, eaddr) == 0)
6770 			break;
6771 	}
6772 	return (*func == NULL ? ENXIO : 0);
6773 }
6774 
6775 static uint64_t
6776 bge_get_counter(if_t ifp, ift_counter cnt)
6777 {
6778 	struct bge_softc *sc;
6779 	struct bge_mac_stats *stats;
6780 
6781 	sc = if_getsoftc(ifp);
6782 	if (!BGE_IS_5705_PLUS(sc))
6783 		return (if_get_counter_default(ifp, cnt));
6784 	stats = &sc->bge_mac_stats;
6785 
6786 	switch (cnt) {
6787 	case IFCOUNTER_IERRORS:
6788 		return (stats->NoMoreRxBDs + stats->InputDiscards +
6789 		    stats->InputErrors);
6790 	case IFCOUNTER_COLLISIONS:
6791 		return (stats->etherStatsCollisions);
6792 	default:
6793 		return (if_get_counter_default(ifp, cnt));
6794 	}
6795 }
6796 
6797 #ifdef DEBUGNET
6798 static void
6799 bge_debugnet_init(if_t ifp, int *nrxr, int *ncl, int *clsize)
6800 {
6801 	struct bge_softc *sc;
6802 
6803 	sc = if_getsoftc(ifp);
6804 	BGE_LOCK(sc);
6805 	/*
6806 	 * There is only one logical receive ring, but it is backed
6807 	 * by two actual rings, for cluster- and jumbo-sized mbufs.
6808 	 * Debugnet expects only one size, so if jumbo is in use,
6809 	 * this says we have two rings of jumbo mbufs, but that's
6810 	 * only a little wasteful.
6811 	 */
6812 	*nrxr = 2;
6813 	*ncl = DEBUGNET_MAX_IN_FLIGHT;
6814 	if ((sc->bge_flags & BGE_FLAG_JUMBO_STD) != 0 &&
6815 	    (if_getmtu(sc->bge_ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN +
6816 	    ETHER_VLAN_ENCAP_LEN > (MCLBYTES - ETHER_ALIGN)))
6817 		*clsize = MJUM9BYTES;
6818 	else
6819 		*clsize = MCLBYTES;
6820 	BGE_UNLOCK(sc);
6821 }
6822 
6823 static void
6824 bge_debugnet_event(if_t ifp __unused, enum debugnet_ev event __unused)
6825 {
6826 }
6827 
6828 static int
6829 bge_debugnet_transmit(if_t ifp, struct mbuf *m)
6830 {
6831 	struct bge_softc *sc;
6832 	uint32_t prodidx;
6833 	int error;
6834 
6835 	sc = if_getsoftc(ifp);
6836 	if ((if_getdrvflags(ifp) & (IFF_DRV_RUNNING | IFF_DRV_OACTIVE)) !=
6837 	    IFF_DRV_RUNNING)
6838 		return (1);
6839 
6840 	prodidx = sc->bge_tx_prodidx;
6841 	error = bge_encap(sc, &m, &prodidx);
6842 	if (error == 0)
6843 		bge_start_tx(sc, prodidx);
6844 	return (error);
6845 }
6846 
6847 static int
6848 bge_debugnet_poll(if_t ifp, int count)
6849 {
6850 	struct bge_softc *sc;
6851 	uint32_t rx_prod, tx_cons;
6852 
6853 	sc = if_getsoftc(ifp);
6854 	if ((if_getdrvflags(ifp) & (IFF_DRV_RUNNING | IFF_DRV_OACTIVE)) !=
6855 	    IFF_DRV_RUNNING)
6856 		return (1);
6857 
6858 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
6859 	    sc->bge_cdata.bge_status_map,
6860 	    BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
6861 
6862 	rx_prod = sc->bge_ldata.bge_status_block->bge_idx[0].bge_rx_prod_idx;
6863 	tx_cons = sc->bge_ldata.bge_status_block->bge_idx[0].bge_tx_cons_idx;
6864 
6865 	bus_dmamap_sync(sc->bge_cdata.bge_status_tag,
6866 	    sc->bge_cdata.bge_status_map,
6867 	    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
6868 
6869 	(void)bge_rxeof(sc, rx_prod, 0);
6870 	bge_txeof(sc, tx_cons);
6871 	return (0);
6872 }
6873 #endif /* DEBUGNET */
6874