if_bnx.c revision 1.75 1 1.75 msaitoh /* $NetBSD: if_bnx.c,v 1.75 2019/04/01 06:12:51 msaitoh Exp $ */
2 1.73 msaitoh /* $OpenBSD: if_bnx.c,v 1.101 2013/03/28 17:21:44 brad Exp $ */
3 1.1 bouyer
4 1.1 bouyer /*-
5 1.56 msaitoh * Copyright (c) 2006-2010 Broadcom Corporation
6 1.1 bouyer * David Christensen <davidch (at) broadcom.com>. All rights reserved.
7 1.1 bouyer *
8 1.1 bouyer * Redistribution and use in source and binary forms, with or without
9 1.1 bouyer * modification, are permitted provided that the following conditions
10 1.1 bouyer * are met:
11 1.1 bouyer *
12 1.1 bouyer * 1. Redistributions of source code must retain the above copyright
13 1.1 bouyer * notice, this list of conditions and the following disclaimer.
14 1.1 bouyer * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 bouyer * notice, this list of conditions and the following disclaimer in the
16 1.1 bouyer * documentation and/or other materials provided with the distribution.
17 1.1 bouyer * 3. Neither the name of Broadcom Corporation nor the name of its contributors
18 1.1 bouyer * may be used to endorse or promote products derived from this software
19 1.1 bouyer * without specific prior written consent.
20 1.1 bouyer *
21 1.1 bouyer * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS'
22 1.1 bouyer * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 1.1 bouyer * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 1.1 bouyer * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS
25 1.1 bouyer * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
26 1.1 bouyer * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
27 1.1 bouyer * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
28 1.1 bouyer * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
29 1.1 bouyer * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
30 1.1 bouyer * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
31 1.1 bouyer * THE POSSIBILITY OF SUCH DAMAGE.
32 1.1 bouyer */
33 1.1 bouyer
34 1.1 bouyer #include <sys/cdefs.h>
35 1.1 bouyer #if 0
36 1.1 bouyer __FBSDID("$FreeBSD: src/sys/dev/bce/if_bce.c,v 1.3 2006/04/13 14:12:26 ru Exp $");
37 1.1 bouyer #endif
38 1.75 msaitoh __KERNEL_RCSID(0, "$NetBSD: if_bnx.c,v 1.75 2019/04/01 06:12:51 msaitoh Exp $");
39 1.1 bouyer
40 1.1 bouyer /*
41 1.1 bouyer * The following controllers are supported by this driver:
42 1.1 bouyer * BCM5706C A2, A3
43 1.29 bouyer * BCM5706S A2, A3
44 1.20 mhitch * BCM5708C B1, B2
45 1.29 bouyer * BCM5708S B1, B2
46 1.29 bouyer * BCM5709C A1, C0
47 1.40 jym * BCM5709S A1, C0
48 1.29 bouyer * BCM5716 C0
49 1.1 bouyer *
50 1.1 bouyer * The following controllers are not supported by this driver:
51 1.1 bouyer * BCM5706C A0, A1
52 1.29 bouyer * BCM5706S A0, A1
53 1.1 bouyer * BCM5708C A0, B0
54 1.29 bouyer * BCM5708S A0, B0
55 1.29 bouyer * BCM5709C A0 B0, B1, B2 (pre-production)
56 1.40 jym * BCM5709S A0, B0, B1, B2 (pre-production)
57 1.1 bouyer */
58 1.1 bouyer
59 1.1 bouyer #include <sys/callout.h>
60 1.29 bouyer #include <sys/mutex.h>
61 1.1 bouyer
62 1.1 bouyer #include <dev/pci/if_bnxreg.h>
63 1.36 jym #include <dev/pci/if_bnxvar.h>
64 1.36 jym
65 1.1 bouyer #include <dev/microcode/bnx/bnxfw.h>
66 1.1 bouyer
67 1.1 bouyer /****************************************************************************/
68 1.1 bouyer /* BNX Driver Version */
69 1.1 bouyer /****************************************************************************/
70 1.29 bouyer #define BNX_DRIVER_VERSION "v0.9.6"
71 1.1 bouyer
72 1.1 bouyer /****************************************************************************/
73 1.1 bouyer /* BNX Debug Options */
74 1.1 bouyer /****************************************************************************/
75 1.1 bouyer #ifdef BNX_DEBUG
76 1.55 msaitoh uint32_t bnx_debug = /*BNX_WARN*/ BNX_VERBOSE_SEND;
77 1.1 bouyer
78 1.1 bouyer /* 0 = Never */
79 1.1 bouyer /* 1 = 1 in 2,147,483,648 */
80 1.1 bouyer /* 256 = 1 in 8,388,608 */
81 1.1 bouyer /* 2048 = 1 in 1,048,576 */
82 1.1 bouyer /* 65536 = 1 in 32,768 */
83 1.1 bouyer /* 1048576 = 1 in 2,048 */
84 1.1 bouyer /* 268435456 = 1 in 8 */
85 1.1 bouyer /* 536870912 = 1 in 4 */
86 1.1 bouyer /* 1073741824 = 1 in 2 */
87 1.1 bouyer
88 1.1 bouyer /* Controls how often the l2_fhdr frame error check will fail. */
89 1.1 bouyer int bnx_debug_l2fhdr_status_check = 0;
90 1.1 bouyer
91 1.1 bouyer /* Controls how often the unexpected attention check will fail. */
92 1.1 bouyer int bnx_debug_unexpected_attention = 0;
93 1.1 bouyer
94 1.1 bouyer /* Controls how often to simulate an mbuf allocation failure. */
95 1.1 bouyer int bnx_debug_mbuf_allocation_failure = 0;
96 1.1 bouyer
97 1.1 bouyer /* Controls how often to simulate a DMA mapping failure. */
98 1.1 bouyer int bnx_debug_dma_map_addr_failure = 0;
99 1.1 bouyer
100 1.1 bouyer /* Controls how often to simulate a bootcode failure. */
101 1.1 bouyer int bnx_debug_bootcode_running_failure = 0;
102 1.1 bouyer #endif
103 1.1 bouyer
104 1.1 bouyer /****************************************************************************/
105 1.1 bouyer /* PCI Device ID Table */
106 1.1 bouyer /* */
107 1.1 bouyer /* Used by bnx_probe() to identify the devices supported by this driver. */
108 1.1 bouyer /****************************************************************************/
109 1.1 bouyer static const struct bnx_product {
110 1.1 bouyer pci_vendor_id_t bp_vendor;
111 1.1 bouyer pci_product_id_t bp_product;
112 1.1 bouyer pci_vendor_id_t bp_subvendor;
113 1.1 bouyer pci_product_id_t bp_subproduct;
114 1.1 bouyer const char *bp_name;
115 1.1 bouyer } bnx_devices[] = {
116 1.1 bouyer #ifdef PCI_SUBPRODUCT_HP_NC370T
117 1.1 bouyer {
118 1.1 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706,
119 1.1 bouyer PCI_VENDOR_HP, PCI_SUBPRODUCT_HP_NC370T,
120 1.1 bouyer "HP NC370T Multifunction Gigabit Server Adapter"
121 1.1 bouyer },
122 1.1 bouyer #endif
123 1.1 bouyer #ifdef PCI_SUBPRODUCT_HP_NC370i
124 1.1 bouyer {
125 1.1 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706,
126 1.1 bouyer PCI_VENDOR_HP, PCI_SUBPRODUCT_HP_NC370i,
127 1.1 bouyer "HP NC370i Multifunction Gigabit Server Adapter"
128 1.1 bouyer },
129 1.1 bouyer #endif
130 1.1 bouyer {
131 1.1 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706,
132 1.1 bouyer 0, 0,
133 1.1 bouyer "Broadcom NetXtreme II BCM5706 1000Base-T"
134 1.1 bouyer },
135 1.1 bouyer #ifdef PCI_SUBPRODUCT_HP_NC370F
136 1.1 bouyer {
137 1.1 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706S,
138 1.1 bouyer PCI_VENDOR_HP, PCI_SUBPRODUCT_HP_NC370F,
139 1.1 bouyer "HP NC370F Multifunction Gigabit Server Adapter"
140 1.1 bouyer },
141 1.1 bouyer #endif
142 1.1 bouyer {
143 1.1 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706S,
144 1.1 bouyer 0, 0,
145 1.1 bouyer "Broadcom NetXtreme II BCM5706 1000Base-SX"
146 1.1 bouyer },
147 1.1 bouyer {
148 1.1 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5708,
149 1.1 bouyer 0, 0,
150 1.1 bouyer "Broadcom NetXtreme II BCM5708 1000Base-T"
151 1.1 bouyer },
152 1.1 bouyer {
153 1.1 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5708S,
154 1.1 bouyer 0, 0,
155 1.1 bouyer "Broadcom NetXtreme II BCM5708 1000Base-SX"
156 1.1 bouyer },
157 1.27 cegger {
158 1.27 cegger PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5709,
159 1.27 cegger 0, 0,
160 1.29 bouyer "Broadcom NetXtreme II BCM5709 1000Base-T"
161 1.29 bouyer },
162 1.29 bouyer {
163 1.29 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5709S,
164 1.29 bouyer 0, 0,
165 1.29 bouyer "Broadcom NetXtreme II BCM5709 1000Base-SX"
166 1.29 bouyer },
167 1.29 bouyer {
168 1.29 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5716,
169 1.29 bouyer 0, 0,
170 1.29 bouyer "Broadcom NetXtreme II BCM5716 1000Base-T"
171 1.29 bouyer },
172 1.29 bouyer {
173 1.29 bouyer PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5716S,
174 1.29 bouyer 0, 0,
175 1.29 bouyer "Broadcom NetXtreme II BCM5716 1000Base-SX"
176 1.29 bouyer },
177 1.1 bouyer };
178 1.1 bouyer
179 1.74 msaitoh
180 1.1 bouyer /****************************************************************************/
181 1.1 bouyer /* Supported Flash NVRAM device data. */
182 1.1 bouyer /****************************************************************************/
183 1.1 bouyer static struct flash_spec flash_table[] =
184 1.1 bouyer {
185 1.29 bouyer #define BUFFERED_FLAGS (BNX_NV_BUFFERED | BNX_NV_TRANSLATE)
186 1.29 bouyer #define NONBUFFERED_FLAGS (BNX_NV_WREN)
187 1.74 msaitoh
188 1.1 bouyer /* Slow EEPROM */
189 1.1 bouyer {0x00000000, 0x40830380, 0x009f0081, 0xa184a053, 0xaf000400,
190 1.29 bouyer BUFFERED_FLAGS, SEEPROM_PAGE_BITS, SEEPROM_PAGE_SIZE,
191 1.1 bouyer SEEPROM_BYTE_ADDR_MASK, SEEPROM_TOTAL_SIZE,
192 1.1 bouyer "EEPROM - slow"},
193 1.1 bouyer /* Expansion entry 0001 */
194 1.1 bouyer {0x08000002, 0x4b808201, 0x00050081, 0x03840253, 0xaf020406,
195 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
196 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
197 1.1 bouyer "Entry 0001"},
198 1.1 bouyer /* Saifun SA25F010 (non-buffered flash) */
199 1.1 bouyer /* strap, cfg1, & write1 need updates */
200 1.1 bouyer {0x04000001, 0x47808201, 0x00050081, 0x03840253, 0xaf020406,
201 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
202 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE*2,
203 1.1 bouyer "Non-buffered flash (128kB)"},
204 1.1 bouyer /* Saifun SA25F020 (non-buffered flash) */
205 1.1 bouyer /* strap, cfg1, & write1 need updates */
206 1.1 bouyer {0x0c000003, 0x4f808201, 0x00050081, 0x03840253, 0xaf020406,
207 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
208 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE*4,
209 1.1 bouyer "Non-buffered flash (256kB)"},
210 1.1 bouyer /* Expansion entry 0100 */
211 1.1 bouyer {0x11000000, 0x53808201, 0x00050081, 0x03840253, 0xaf020406,
212 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
213 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
214 1.1 bouyer "Entry 0100"},
215 1.1 bouyer /* Entry 0101: ST M45PE10 (non-buffered flash, TetonII B0) */
216 1.1 bouyer {0x19000002, 0x5b808201, 0x000500db, 0x03840253, 0xaf020406,
217 1.29 bouyer NONBUFFERED_FLAGS, ST_MICRO_FLASH_PAGE_BITS, ST_MICRO_FLASH_PAGE_SIZE,
218 1.1 bouyer ST_MICRO_FLASH_BYTE_ADDR_MASK, ST_MICRO_FLASH_BASE_TOTAL_SIZE*2,
219 1.1 bouyer "Entry 0101: ST M45PE10 (128kB non-bufferred)"},
220 1.1 bouyer /* Entry 0110: ST M45PE20 (non-buffered flash)*/
221 1.1 bouyer {0x15000001, 0x57808201, 0x000500db, 0x03840253, 0xaf020406,
222 1.29 bouyer NONBUFFERED_FLAGS, ST_MICRO_FLASH_PAGE_BITS, ST_MICRO_FLASH_PAGE_SIZE,
223 1.1 bouyer ST_MICRO_FLASH_BYTE_ADDR_MASK, ST_MICRO_FLASH_BASE_TOTAL_SIZE*4,
224 1.1 bouyer "Entry 0110: ST M45PE20 (256kB non-bufferred)"},
225 1.1 bouyer /* Saifun SA25F005 (non-buffered flash) */
226 1.1 bouyer /* strap, cfg1, & write1 need updates */
227 1.1 bouyer {0x1d000003, 0x5f808201, 0x00050081, 0x03840253, 0xaf020406,
228 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
229 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE,
230 1.1 bouyer "Non-buffered flash (64kB)"},
231 1.1 bouyer /* Fast EEPROM */
232 1.1 bouyer {0x22000000, 0x62808380, 0x009f0081, 0xa184a053, 0xaf000400,
233 1.29 bouyer BUFFERED_FLAGS, SEEPROM_PAGE_BITS, SEEPROM_PAGE_SIZE,
234 1.1 bouyer SEEPROM_BYTE_ADDR_MASK, SEEPROM_TOTAL_SIZE,
235 1.1 bouyer "EEPROM - fast"},
236 1.1 bouyer /* Expansion entry 1001 */
237 1.1 bouyer {0x2a000002, 0x6b808201, 0x00050081, 0x03840253, 0xaf020406,
238 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
239 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
240 1.1 bouyer "Entry 1001"},
241 1.1 bouyer /* Expansion entry 1010 */
242 1.1 bouyer {0x26000001, 0x67808201, 0x00050081, 0x03840253, 0xaf020406,
243 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
244 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
245 1.1 bouyer "Entry 1010"},
246 1.1 bouyer /* ATMEL AT45DB011B (buffered flash) */
247 1.1 bouyer {0x2e000003, 0x6e808273, 0x00570081, 0x68848353, 0xaf000400,
248 1.29 bouyer BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
249 1.1 bouyer BUFFERED_FLASH_BYTE_ADDR_MASK, BUFFERED_FLASH_TOTAL_SIZE,
250 1.1 bouyer "Buffered flash (128kB)"},
251 1.1 bouyer /* Expansion entry 1100 */
252 1.1 bouyer {0x33000000, 0x73808201, 0x00050081, 0x03840253, 0xaf020406,
253 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
254 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
255 1.1 bouyer "Entry 1100"},
256 1.1 bouyer /* Expansion entry 1101 */
257 1.1 bouyer {0x3b000002, 0x7b808201, 0x00050081, 0x03840253, 0xaf020406,
258 1.29 bouyer NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
259 1.1 bouyer SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
260 1.1 bouyer "Entry 1101"},
261 1.1 bouyer /* Ateml Expansion entry 1110 */
262 1.1 bouyer {0x37000001, 0x76808273, 0x00570081, 0x68848353, 0xaf000400,
263 1.29 bouyer BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
264 1.1 bouyer BUFFERED_FLASH_BYTE_ADDR_MASK, 0,
265 1.1 bouyer "Entry 1110 (Atmel)"},
266 1.1 bouyer /* ATMEL AT45DB021B (buffered flash) */
267 1.1 bouyer {0x3f000003, 0x7e808273, 0x00570081, 0x68848353, 0xaf000400,
268 1.29 bouyer BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
269 1.1 bouyer BUFFERED_FLASH_BYTE_ADDR_MASK, BUFFERED_FLASH_TOTAL_SIZE*2,
270 1.1 bouyer "Buffered flash (256kB)"},
271 1.1 bouyer };
272 1.1 bouyer
273 1.29 bouyer /*
274 1.29 bouyer * The BCM5709 controllers transparently handle the
275 1.29 bouyer * differences between Atmel 264 byte pages and all
276 1.29 bouyer * flash devices which use 256 byte pages, so no
277 1.29 bouyer * logical-to-physical mapping is required in the
278 1.29 bouyer * driver.
279 1.29 bouyer */
280 1.29 bouyer static struct flash_spec flash_5709 = {
281 1.29 bouyer .flags = BNX_NV_BUFFERED,
282 1.29 bouyer .page_bits = BCM5709_FLASH_PAGE_BITS,
283 1.29 bouyer .page_size = BCM5709_FLASH_PAGE_SIZE,
284 1.29 bouyer .addr_mask = BCM5709_FLASH_BYTE_ADDR_MASK,
285 1.29 bouyer .total_size = BUFFERED_FLASH_TOTAL_SIZE * 2,
286 1.29 bouyer .name = "5709 buffered flash (256kB)",
287 1.29 bouyer };
288 1.29 bouyer
289 1.1 bouyer /****************************************************************************/
290 1.1 bouyer /* OpenBSD device entry points. */
291 1.1 bouyer /****************************************************************************/
292 1.1 bouyer static int bnx_probe(device_t, cfdata_t, void *);
293 1.13 dyoung void bnx_attach(device_t, device_t, void *);
294 1.13 dyoung int bnx_detach(device_t, int);
295 1.1 bouyer
296 1.1 bouyer /****************************************************************************/
297 1.1 bouyer /* BNX Debug Data Structure Dump Routines */
298 1.1 bouyer /****************************************************************************/
299 1.1 bouyer #ifdef BNX_DEBUG
300 1.1 bouyer void bnx_dump_mbuf(struct bnx_softc *, struct mbuf *);
301 1.1 bouyer void bnx_dump_tx_mbuf_chain(struct bnx_softc *, int, int);
302 1.1 bouyer void bnx_dump_rx_mbuf_chain(struct bnx_softc *, int, int);
303 1.1 bouyer void bnx_dump_txbd(struct bnx_softc *, int, struct tx_bd *);
304 1.1 bouyer void bnx_dump_rxbd(struct bnx_softc *, int, struct rx_bd *);
305 1.1 bouyer void bnx_dump_l2fhdr(struct bnx_softc *, int, struct l2_fhdr *);
306 1.1 bouyer void bnx_dump_tx_chain(struct bnx_softc *, int, int);
307 1.1 bouyer void bnx_dump_rx_chain(struct bnx_softc *, int, int);
308 1.1 bouyer void bnx_dump_status_block(struct bnx_softc *);
309 1.1 bouyer void bnx_dump_stats_block(struct bnx_softc *);
310 1.1 bouyer void bnx_dump_driver_state(struct bnx_softc *);
311 1.1 bouyer void bnx_dump_hw_state(struct bnx_softc *);
312 1.1 bouyer void bnx_breakpoint(struct bnx_softc *);
313 1.1 bouyer #endif
314 1.1 bouyer
315 1.1 bouyer /****************************************************************************/
316 1.1 bouyer /* BNX Register/Memory Access Routines */
317 1.1 bouyer /****************************************************************************/
318 1.55 msaitoh uint32_t bnx_reg_rd_ind(struct bnx_softc *, uint32_t);
319 1.55 msaitoh void bnx_reg_wr_ind(struct bnx_softc *, uint32_t, uint32_t);
320 1.55 msaitoh void bnx_ctx_wr(struct bnx_softc *, uint32_t, uint32_t, uint32_t);
321 1.68 msaitoh int bnx_miibus_read_reg(device_t, int, int, uint16_t *);
322 1.68 msaitoh int bnx_miibus_write_reg(device_t, int, int, uint16_t);
323 1.47 matt void bnx_miibus_statchg(struct ifnet *);
324 1.1 bouyer
325 1.1 bouyer /****************************************************************************/
326 1.1 bouyer /* BNX NVRAM Access Routines */
327 1.1 bouyer /****************************************************************************/
328 1.1 bouyer int bnx_acquire_nvram_lock(struct bnx_softc *);
329 1.1 bouyer int bnx_release_nvram_lock(struct bnx_softc *);
330 1.1 bouyer void bnx_enable_nvram_access(struct bnx_softc *);
331 1.1 bouyer void bnx_disable_nvram_access(struct bnx_softc *);
332 1.55 msaitoh int bnx_nvram_read_dword(struct bnx_softc *, uint32_t, uint8_t *,
333 1.55 msaitoh uint32_t);
334 1.1 bouyer int bnx_init_nvram(struct bnx_softc *);
335 1.55 msaitoh int bnx_nvram_read(struct bnx_softc *, uint32_t, uint8_t *, int);
336 1.1 bouyer int bnx_nvram_test(struct bnx_softc *);
337 1.1 bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
338 1.1 bouyer int bnx_enable_nvram_write(struct bnx_softc *);
339 1.1 bouyer void bnx_disable_nvram_write(struct bnx_softc *);
340 1.55 msaitoh int bnx_nvram_erase_page(struct bnx_softc *, uint32_t);
341 1.55 msaitoh int bnx_nvram_write_dword(struct bnx_softc *, uint32_t, uint8_t *,
342 1.55 msaitoh uint32_t);
343 1.55 msaitoh int bnx_nvram_write(struct bnx_softc *, uint32_t, uint8_t *, int);
344 1.1 bouyer #endif
345 1.1 bouyer
346 1.1 bouyer /****************************************************************************/
347 1.1 bouyer /* */
348 1.1 bouyer /****************************************************************************/
349 1.29 bouyer void bnx_get_media(struct bnx_softc *);
350 1.41 jym void bnx_init_media(struct bnx_softc *);
351 1.1 bouyer int bnx_dma_alloc(struct bnx_softc *);
352 1.1 bouyer void bnx_dma_free(struct bnx_softc *);
353 1.1 bouyer void bnx_release_resources(struct bnx_softc *);
354 1.1 bouyer
355 1.1 bouyer /****************************************************************************/
356 1.1 bouyer /* BNX Firmware Synchronization and Load */
357 1.1 bouyer /****************************************************************************/
358 1.55 msaitoh int bnx_fw_sync(struct bnx_softc *, uint32_t);
359 1.66 msaitoh void bnx_load_rv2p_fw(struct bnx_softc *, uint32_t *, uint32_t, uint32_t);
360 1.1 bouyer void bnx_load_cpu_fw(struct bnx_softc *, struct cpu_reg *,
361 1.1 bouyer struct fw_info *);
362 1.1 bouyer void bnx_init_cpus(struct bnx_softc *);
363 1.1 bouyer
364 1.56 msaitoh static void bnx_print_adapter_info(struct bnx_softc *);
365 1.56 msaitoh static void bnx_probe_pci_caps(struct bnx_softc *);
366 1.14 dyoung void bnx_stop(struct ifnet *, int);
367 1.55 msaitoh int bnx_reset(struct bnx_softc *, uint32_t);
368 1.1 bouyer int bnx_chipinit(struct bnx_softc *);
369 1.1 bouyer int bnx_blockinit(struct bnx_softc *);
370 1.55 msaitoh static int bnx_add_buf(struct bnx_softc *, struct mbuf *, uint16_t *,
371 1.55 msaitoh uint16_t *, uint32_t *);
372 1.55 msaitoh int bnx_get_buf(struct bnx_softc *, uint16_t *, uint16_t *, uint32_t *);
373 1.1 bouyer
374 1.1 bouyer int bnx_init_tx_chain(struct bnx_softc *);
375 1.29 bouyer void bnx_init_tx_context(struct bnx_softc *);
376 1.1 bouyer int bnx_init_rx_chain(struct bnx_softc *);
377 1.29 bouyer void bnx_init_rx_context(struct bnx_softc *);
378 1.1 bouyer void bnx_free_rx_chain(struct bnx_softc *);
379 1.1 bouyer void bnx_free_tx_chain(struct bnx_softc *);
380 1.1 bouyer
381 1.29 bouyer int bnx_tx_encap(struct bnx_softc *, struct mbuf *);
382 1.1 bouyer void bnx_start(struct ifnet *);
383 1.3 christos int bnx_ioctl(struct ifnet *, u_long, void *);
384 1.1 bouyer void bnx_watchdog(struct ifnet *);
385 1.73 msaitoh int bnx_ifmedia_upd(struct ifnet *);
386 1.72 msaitoh void bnx_ifmedia_sts(struct ifnet *, struct ifmediareq *);
387 1.1 bouyer int bnx_init(struct ifnet *);
388 1.73 msaitoh static void bnx_mgmt_init(struct bnx_softc *);
389 1.1 bouyer
390 1.1 bouyer void bnx_init_context(struct bnx_softc *);
391 1.1 bouyer void bnx_get_mac_addr(struct bnx_softc *);
392 1.1 bouyer void bnx_set_mac_addr(struct bnx_softc *);
393 1.1 bouyer void bnx_phy_intr(struct bnx_softc *);
394 1.1 bouyer void bnx_rx_intr(struct bnx_softc *);
395 1.1 bouyer void bnx_tx_intr(struct bnx_softc *);
396 1.1 bouyer void bnx_disable_intr(struct bnx_softc *);
397 1.1 bouyer void bnx_enable_intr(struct bnx_softc *);
398 1.1 bouyer
399 1.1 bouyer int bnx_intr(void *);
400 1.29 bouyer void bnx_iff(struct bnx_softc *);
401 1.1 bouyer void bnx_stats_update(struct bnx_softc *);
402 1.1 bouyer void bnx_tick(void *);
403 1.1 bouyer
404 1.29 bouyer struct pool *bnx_tx_pool = NULL;
405 1.44 jym void bnx_alloc_pkts(struct work *, void *);
406 1.29 bouyer
407 1.1 bouyer /****************************************************************************/
408 1.1 bouyer /* OpenBSD device dispatch table. */
409 1.1 bouyer /****************************************************************************/
410 1.24 dyoung CFATTACH_DECL3_NEW(bnx, sizeof(struct bnx_softc),
411 1.24 dyoung bnx_probe, bnx_attach, bnx_detach, NULL, NULL, NULL, DVF_DETACH_SHUTDOWN);
412 1.1 bouyer
413 1.1 bouyer /****************************************************************************/
414 1.1 bouyer /* Device probe function. */
415 1.1 bouyer /* */
416 1.1 bouyer /* Compares the device to the driver's list of supported devices and */
417 1.1 bouyer /* reports back to the OS whether this is the right driver for the device. */
418 1.1 bouyer /* */
419 1.1 bouyer /* Returns: */
420 1.1 bouyer /* BUS_PROBE_DEFAULT on success, positive value on failure. */
421 1.1 bouyer /****************************************************************************/
422 1.1 bouyer static const struct bnx_product *
423 1.1 bouyer bnx_lookup(const struct pci_attach_args *pa)
424 1.1 bouyer {
425 1.1 bouyer int i;
426 1.1 bouyer pcireg_t subid;
427 1.1 bouyer
428 1.13 dyoung for (i = 0; i < __arraycount(bnx_devices); i++) {
429 1.1 bouyer if (PCI_VENDOR(pa->pa_id) != bnx_devices[i].bp_vendor ||
430 1.1 bouyer PCI_PRODUCT(pa->pa_id) != bnx_devices[i].bp_product)
431 1.1 bouyer continue;
432 1.1 bouyer if (!bnx_devices[i].bp_subvendor)
433 1.1 bouyer return &bnx_devices[i];
434 1.1 bouyer subid = pci_conf_read(pa->pa_pc, pa->pa_tag, PCI_SUBSYS_ID_REG);
435 1.1 bouyer if (PCI_VENDOR(subid) == bnx_devices[i].bp_subvendor &&
436 1.1 bouyer PCI_PRODUCT(subid) == bnx_devices[i].bp_subproduct)
437 1.1 bouyer return &bnx_devices[i];
438 1.1 bouyer }
439 1.1 bouyer
440 1.1 bouyer return NULL;
441 1.1 bouyer }
442 1.1 bouyer static int
443 1.1 bouyer bnx_probe(device_t parent, cfdata_t match, void *aux)
444 1.1 bouyer {
445 1.1 bouyer struct pci_attach_args *pa = (struct pci_attach_args *)aux;
446 1.1 bouyer
447 1.1 bouyer if (bnx_lookup(pa) != NULL)
448 1.52 msaitoh return 1;
449 1.1 bouyer
450 1.52 msaitoh return 0;
451 1.1 bouyer }
452 1.1 bouyer
453 1.1 bouyer /****************************************************************************/
454 1.56 msaitoh /* PCI Capabilities Probe Function. */
455 1.56 msaitoh /* */
456 1.56 msaitoh /* Walks the PCI capabiites list for the device to find what features are */
457 1.56 msaitoh /* supported. */
458 1.56 msaitoh /* */
459 1.56 msaitoh /* Returns: */
460 1.56 msaitoh /* None. */
461 1.56 msaitoh /****************************************************************************/
462 1.56 msaitoh static void
463 1.56 msaitoh bnx_print_adapter_info(struct bnx_softc *sc)
464 1.56 msaitoh {
465 1.56 msaitoh
466 1.56 msaitoh aprint_normal_dev(sc->bnx_dev, "ASIC BCM%x %c%d %s(0x%08x)\n",
467 1.56 msaitoh BNXNUM(sc), 'A' + BNXREV(sc), BNXMETAL(sc),
468 1.56 msaitoh (BNX_CHIP_BOND_ID(sc) == BNX_CHIP_BOND_ID_SERDES_BIT)
469 1.56 msaitoh ? "Serdes " : "", sc->bnx_chipid);
470 1.66 msaitoh
471 1.56 msaitoh /* Bus info. */
472 1.56 msaitoh if (sc->bnx_flags & BNX_PCIE_FLAG) {
473 1.56 msaitoh aprint_normal_dev(sc->bnx_dev, "PCIe x%d ",
474 1.56 msaitoh sc->link_width);
475 1.56 msaitoh switch (sc->link_speed) {
476 1.56 msaitoh case 1: aprint_normal("2.5Gbps\n"); break;
477 1.56 msaitoh case 2: aprint_normal("5Gbps\n"); break;
478 1.56 msaitoh default: aprint_normal("Unknown link speed\n");
479 1.56 msaitoh }
480 1.56 msaitoh } else {
481 1.56 msaitoh aprint_normal_dev(sc->bnx_dev, "PCI%s %dbit %dMHz\n",
482 1.56 msaitoh ((sc->bnx_flags & BNX_PCIX_FLAG) ? "-X" : ""),
483 1.56 msaitoh (sc->bnx_flags & BNX_PCI_32BIT_FLAG) ? 32 : 64,
484 1.56 msaitoh sc->bus_speed_mhz);
485 1.56 msaitoh }
486 1.56 msaitoh
487 1.56 msaitoh aprint_normal_dev(sc->bnx_dev,
488 1.56 msaitoh "Coal (RX:%d,%d,%d,%d; TX:%d,%d,%d,%d)\n",
489 1.56 msaitoh sc->bnx_rx_quick_cons_trip_int,
490 1.56 msaitoh sc->bnx_rx_quick_cons_trip,
491 1.56 msaitoh sc->bnx_rx_ticks_int,
492 1.56 msaitoh sc->bnx_rx_ticks,
493 1.56 msaitoh sc->bnx_tx_quick_cons_trip_int,
494 1.56 msaitoh sc->bnx_tx_quick_cons_trip,
495 1.56 msaitoh sc->bnx_tx_ticks_int,
496 1.56 msaitoh sc->bnx_tx_ticks);
497 1.56 msaitoh }
498 1.56 msaitoh
499 1.56 msaitoh
500 1.56 msaitoh /****************************************************************************/
501 1.56 msaitoh /* PCI Capabilities Probe Function. */
502 1.56 msaitoh /* */
503 1.56 msaitoh /* Walks the PCI capabiites list for the device to find what features are */
504 1.56 msaitoh /* supported. */
505 1.56 msaitoh /* */
506 1.56 msaitoh /* Returns: */
507 1.56 msaitoh /* None. */
508 1.56 msaitoh /****************************************************************************/
509 1.56 msaitoh static void
510 1.56 msaitoh bnx_probe_pci_caps(struct bnx_softc *sc)
511 1.56 msaitoh {
512 1.56 msaitoh struct pci_attach_args *pa = &(sc->bnx_pa);
513 1.56 msaitoh pcireg_t reg;
514 1.56 msaitoh
515 1.56 msaitoh /* Check if PCI-X capability is enabled. */
516 1.56 msaitoh if (pci_get_capability(pa->pa_pc, pa->pa_tag, PCI_CAP_PCIX, ®,
517 1.56 msaitoh NULL) != 0) {
518 1.56 msaitoh sc->bnx_cap_flags |= BNX_PCIX_CAPABLE_FLAG;
519 1.56 msaitoh }
520 1.56 msaitoh
521 1.56 msaitoh /* Check if PCIe capability is enabled. */
522 1.56 msaitoh if (pci_get_capability(pa->pa_pc, pa->pa_tag, PCI_CAP_PCIEXPRESS, ®,
523 1.56 msaitoh NULL) != 0) {
524 1.56 msaitoh pcireg_t link_status = pci_conf_read(pa->pa_pc, pa->pa_tag,
525 1.56 msaitoh reg + PCIE_LCSR);
526 1.56 msaitoh DBPRINT(sc, BNX_INFO_LOAD, "PCIe link_status = "
527 1.56 msaitoh "0x%08X\n", link_status);
528 1.56 msaitoh sc->link_speed = (link_status & PCIE_LCSR_LINKSPEED) >> 16;
529 1.56 msaitoh sc->link_width = (link_status & PCIE_LCSR_NLW) >> 20;
530 1.56 msaitoh sc->bnx_cap_flags |= BNX_PCIE_CAPABLE_FLAG;
531 1.56 msaitoh sc->bnx_flags |= BNX_PCIE_FLAG;
532 1.56 msaitoh }
533 1.56 msaitoh
534 1.56 msaitoh /* Check if MSI capability is enabled. */
535 1.56 msaitoh if (pci_get_capability(pa->pa_pc, pa->pa_tag, PCI_CAP_MSI, ®,
536 1.56 msaitoh NULL) != 0)
537 1.56 msaitoh sc->bnx_cap_flags |= BNX_MSI_CAPABLE_FLAG;
538 1.56 msaitoh
539 1.56 msaitoh /* Check if MSI-X capability is enabled. */
540 1.56 msaitoh if (pci_get_capability(pa->pa_pc, pa->pa_tag, PCI_CAP_MSIX, ®,
541 1.56 msaitoh NULL) != 0)
542 1.56 msaitoh sc->bnx_cap_flags |= BNX_MSIX_CAPABLE_FLAG;
543 1.56 msaitoh }
544 1.56 msaitoh
545 1.56 msaitoh
546 1.56 msaitoh /****************************************************************************/
547 1.1 bouyer /* Device attach function. */
548 1.1 bouyer /* */
549 1.1 bouyer /* Allocates device resources, performs secondary chip identification, */
550 1.1 bouyer /* resets and initializes the hardware, and initializes driver instance */
551 1.1 bouyer /* variables. */
552 1.1 bouyer /* */
553 1.1 bouyer /* Returns: */
554 1.1 bouyer /* 0 on success, positive value on failure. */
555 1.1 bouyer /****************************************************************************/
556 1.1 bouyer void
557 1.13 dyoung bnx_attach(device_t parent, device_t self, void *aux)
558 1.1 bouyer {
559 1.1 bouyer const struct bnx_product *bp;
560 1.13 dyoung struct bnx_softc *sc = device_private(self);
561 1.41 jym prop_dictionary_t dict;
562 1.1 bouyer struct pci_attach_args *pa = aux;
563 1.1 bouyer pci_chipset_tag_t pc = pa->pa_pc;
564 1.1 bouyer pci_intr_handle_t ih;
565 1.1 bouyer const char *intrstr = NULL;
566 1.55 msaitoh uint32_t command;
567 1.1 bouyer struct ifnet *ifp;
568 1.55 msaitoh uint32_t val;
569 1.20 mhitch int mii_flags = MIIF_FORCEANEG;
570 1.1 bouyer pcireg_t memtype;
571 1.51 christos char intrbuf[PCI_INTRSTR_LEN];
572 1.1 bouyer
573 1.29 bouyer if (bnx_tx_pool == NULL) {
574 1.29 bouyer bnx_tx_pool = malloc(sizeof(*bnx_tx_pool), M_DEVBUF, M_NOWAIT);
575 1.29 bouyer if (bnx_tx_pool != NULL) {
576 1.29 bouyer pool_init(bnx_tx_pool, sizeof(struct bnx_pkt),
577 1.29 bouyer 0, 0, 0, "bnxpkts", NULL, IPL_NET);
578 1.29 bouyer } else {
579 1.29 bouyer aprint_error(": can't alloc bnx_tx_pool\n");
580 1.29 bouyer return;
581 1.29 bouyer }
582 1.29 bouyer }
583 1.29 bouyer
584 1.1 bouyer bp = bnx_lookup(pa);
585 1.1 bouyer if (bp == NULL)
586 1.1 bouyer panic("unknown device");
587 1.1 bouyer
588 1.13 dyoung sc->bnx_dev = self;
589 1.13 dyoung
590 1.1 bouyer aprint_naive("\n");
591 1.10 martti aprint_normal(": %s\n", bp->bp_name);
592 1.1 bouyer
593 1.1 bouyer sc->bnx_pa = *pa;
594 1.1 bouyer
595 1.1 bouyer /*
596 1.1 bouyer * Map control/status registers.
597 1.1 bouyer */
598 1.1 bouyer command = pci_conf_read(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
599 1.1 bouyer command |= PCI_COMMAND_MEM_ENABLE | PCI_COMMAND_MASTER_ENABLE;
600 1.1 bouyer pci_conf_write(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG, command);
601 1.1 bouyer command = pci_conf_read(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
602 1.1 bouyer
603 1.1 bouyer if (!(command & PCI_COMMAND_MEM_ENABLE)) {
604 1.13 dyoung aprint_error_dev(sc->bnx_dev,
605 1.13 dyoung "failed to enable memory mapping!\n");
606 1.1 bouyer return;
607 1.1 bouyer }
608 1.1 bouyer
609 1.52 msaitoh memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag, BNX_PCI_BAR0);
610 1.29 bouyer if (pci_mapreg_map(pa, BNX_PCI_BAR0, memtype, 0, &sc->bnx_btag,
611 1.29 bouyer &sc->bnx_bhandle, NULL, &sc->bnx_size)) {
612 1.13 dyoung aprint_error_dev(sc->bnx_dev, "can't find mem space\n");
613 1.1 bouyer return;
614 1.1 bouyer }
615 1.1 bouyer
616 1.1 bouyer if (pci_intr_map(pa, &ih)) {
617 1.13 dyoung aprint_error_dev(sc->bnx_dev, "couldn't map interrupt\n");
618 1.1 bouyer goto bnx_attach_fail;
619 1.1 bouyer }
620 1.51 christos intrstr = pci_intr_string(pc, ih, intrbuf, sizeof(intrbuf));
621 1.1 bouyer
622 1.1 bouyer /*
623 1.1 bouyer * Configure byte swap and enable indirect register access.
624 1.1 bouyer * Rely on CPU to do target byte swapping on big endian systems.
625 1.1 bouyer * Access to registers outside of PCI configurtion space are not
626 1.1 bouyer * valid until this is done.
627 1.1 bouyer */
628 1.1 bouyer pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_MISC_CONFIG,
629 1.1 bouyer BNX_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
630 1.1 bouyer BNX_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP);
631 1.1 bouyer
632 1.1 bouyer /* Save ASIC revsion info. */
633 1.1 bouyer sc->bnx_chipid = REG_RD(sc, BNX_MISC_ID);
634 1.1 bouyer
635 1.1 bouyer /*
636 1.1 bouyer * Find the base address for shared memory access.
637 1.1 bouyer * Newer versions of bootcode use a signature and offset
638 1.1 bouyer * while older versions use a fixed address.
639 1.1 bouyer */
640 1.1 bouyer val = REG_RD_IND(sc, BNX_SHM_HDR_SIGNATURE);
641 1.1 bouyer if ((val & BNX_SHM_HDR_SIGNATURE_SIG_MASK) == BNX_SHM_HDR_SIGNATURE_SIG)
642 1.29 bouyer sc->bnx_shmem_base = REG_RD_IND(sc, BNX_SHM_HDR_ADDR_0 +
643 1.29 bouyer (sc->bnx_pa.pa_function << 2));
644 1.1 bouyer else
645 1.1 bouyer sc->bnx_shmem_base = HOST_VIEW_SHMEM_BASE;
646 1.1 bouyer
647 1.1 bouyer DBPRINT(sc, BNX_INFO, "bnx_shmem_base = 0x%08X\n", sc->bnx_shmem_base);
648 1.1 bouyer
649 1.1 bouyer /* Set initial device and PHY flags */
650 1.1 bouyer sc->bnx_flags = 0;
651 1.1 bouyer sc->bnx_phy_flags = 0;
652 1.1 bouyer
653 1.56 msaitoh bnx_probe_pci_caps(sc);
654 1.56 msaitoh
655 1.1 bouyer /* Get PCI bus information (speed and type). */
656 1.1 bouyer val = REG_RD(sc, BNX_PCICFG_MISC_STATUS);
657 1.1 bouyer if (val & BNX_PCICFG_MISC_STATUS_PCIX_DET) {
658 1.55 msaitoh uint32_t clkreg;
659 1.1 bouyer
660 1.1 bouyer sc->bnx_flags |= BNX_PCIX_FLAG;
661 1.1 bouyer
662 1.1 bouyer clkreg = REG_RD(sc, BNX_PCICFG_PCI_CLOCK_CONTROL_BITS);
663 1.1 bouyer
664 1.1 bouyer clkreg &= BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET;
665 1.1 bouyer switch (clkreg) {
666 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_133MHZ:
667 1.1 bouyer sc->bus_speed_mhz = 133;
668 1.1 bouyer break;
669 1.1 bouyer
670 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_95MHZ:
671 1.1 bouyer sc->bus_speed_mhz = 100;
672 1.1 bouyer break;
673 1.1 bouyer
674 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_66MHZ:
675 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_80MHZ:
676 1.1 bouyer sc->bus_speed_mhz = 66;
677 1.1 bouyer break;
678 1.1 bouyer
679 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_48MHZ:
680 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_55MHZ:
681 1.1 bouyer sc->bus_speed_mhz = 50;
682 1.1 bouyer break;
683 1.1 bouyer
684 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_LOW:
685 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_32MHZ:
686 1.1 bouyer case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_38MHZ:
687 1.1 bouyer sc->bus_speed_mhz = 33;
688 1.1 bouyer break;
689 1.1 bouyer }
690 1.1 bouyer } else if (val & BNX_PCICFG_MISC_STATUS_M66EN)
691 1.1 bouyer sc->bus_speed_mhz = 66;
692 1.1 bouyer else
693 1.1 bouyer sc->bus_speed_mhz = 33;
694 1.1 bouyer
695 1.1 bouyer if (val & BNX_PCICFG_MISC_STATUS_32BIT_DET)
696 1.1 bouyer sc->bnx_flags |= BNX_PCI_32BIT_FLAG;
697 1.1 bouyer
698 1.1 bouyer /* Reset the controller. */
699 1.1 bouyer if (bnx_reset(sc, BNX_DRV_MSG_CODE_RESET))
700 1.1 bouyer goto bnx_attach_fail;
701 1.1 bouyer
702 1.1 bouyer /* Initialize the controller. */
703 1.1 bouyer if (bnx_chipinit(sc)) {
704 1.13 dyoung aprint_error_dev(sc->bnx_dev,
705 1.13 dyoung "Controller initialization failed!\n");
706 1.1 bouyer goto bnx_attach_fail;
707 1.1 bouyer }
708 1.1 bouyer
709 1.1 bouyer /* Perform NVRAM test. */
710 1.1 bouyer if (bnx_nvram_test(sc)) {
711 1.13 dyoung aprint_error_dev(sc->bnx_dev, "NVRAM test failed!\n");
712 1.1 bouyer goto bnx_attach_fail;
713 1.1 bouyer }
714 1.1 bouyer
715 1.1 bouyer /* Fetch the permanent Ethernet MAC address. */
716 1.1 bouyer bnx_get_mac_addr(sc);
717 1.13 dyoung aprint_normal_dev(sc->bnx_dev, "Ethernet address %s\n",
718 1.1 bouyer ether_sprintf(sc->eaddr));
719 1.1 bouyer
720 1.1 bouyer /*
721 1.1 bouyer * Trip points control how many BDs
722 1.1 bouyer * should be ready before generating an
723 1.1 bouyer * interrupt while ticks control how long
724 1.1 bouyer * a BD can sit in the chain before
725 1.48 christos * generating an interrupt. Set the default
726 1.1 bouyer * values for the RX and TX rings.
727 1.1 bouyer */
728 1.1 bouyer
729 1.1 bouyer #ifdef BNX_DEBUG
730 1.1 bouyer /* Force more frequent interrupts. */
731 1.1 bouyer sc->bnx_tx_quick_cons_trip_int = 1;
732 1.1 bouyer sc->bnx_tx_quick_cons_trip = 1;
733 1.1 bouyer sc->bnx_tx_ticks_int = 0;
734 1.1 bouyer sc->bnx_tx_ticks = 0;
735 1.1 bouyer
736 1.1 bouyer sc->bnx_rx_quick_cons_trip_int = 1;
737 1.1 bouyer sc->bnx_rx_quick_cons_trip = 1;
738 1.1 bouyer sc->bnx_rx_ticks_int = 0;
739 1.1 bouyer sc->bnx_rx_ticks = 0;
740 1.1 bouyer #else
741 1.1 bouyer sc->bnx_tx_quick_cons_trip_int = 20;
742 1.1 bouyer sc->bnx_tx_quick_cons_trip = 20;
743 1.1 bouyer sc->bnx_tx_ticks_int = 80;
744 1.1 bouyer sc->bnx_tx_ticks = 80;
745 1.1 bouyer
746 1.1 bouyer sc->bnx_rx_quick_cons_trip_int = 6;
747 1.1 bouyer sc->bnx_rx_quick_cons_trip = 6;
748 1.1 bouyer sc->bnx_rx_ticks_int = 18;
749 1.1 bouyer sc->bnx_rx_ticks = 18;
750 1.1 bouyer #endif
751 1.1 bouyer
752 1.1 bouyer /* Update statistics once every second. */
753 1.1 bouyer sc->bnx_stats_ticks = 1000000 & 0xffff00;
754 1.1 bouyer
755 1.29 bouyer /* Find the media type for the adapter. */
756 1.29 bouyer bnx_get_media(sc);
757 1.29 bouyer
758 1.1 bouyer /*
759 1.29 bouyer * Store config data needed by the PHY driver for
760 1.29 bouyer * backplane applications
761 1.1 bouyer */
762 1.29 bouyer sc->bnx_shared_hw_cfg = REG_RD_IND(sc, sc->bnx_shmem_base +
763 1.29 bouyer BNX_SHARED_HW_CFG_CONFIG);
764 1.29 bouyer sc->bnx_port_hw_cfg = REG_RD_IND(sc, sc->bnx_shmem_base +
765 1.29 bouyer BNX_PORT_HW_CFG_CONFIG);
766 1.1 bouyer
767 1.1 bouyer /* Allocate DMA memory resources. */
768 1.1 bouyer sc->bnx_dmatag = pa->pa_dmat;
769 1.1 bouyer if (bnx_dma_alloc(sc)) {
770 1.13 dyoung aprint_error_dev(sc->bnx_dev,
771 1.13 dyoung "DMA resource allocation failed!\n");
772 1.1 bouyer goto bnx_attach_fail;
773 1.1 bouyer }
774 1.1 bouyer
775 1.1 bouyer /* Initialize the ifnet interface. */
776 1.15 dyoung ifp = &sc->bnx_ec.ec_if;
777 1.1 bouyer ifp->if_softc = sc;
778 1.1 bouyer ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
779 1.1 bouyer ifp->if_ioctl = bnx_ioctl;
780 1.14 dyoung ifp->if_stop = bnx_stop;
781 1.1 bouyer ifp->if_start = bnx_start;
782 1.1 bouyer ifp->if_init = bnx_init;
783 1.1 bouyer ifp->if_watchdog = bnx_watchdog;
784 1.4 bouyer IFQ_SET_MAXLEN(&ifp->if_snd, USABLE_TX_BD - 1);
785 1.1 bouyer IFQ_SET_READY(&ifp->if_snd);
786 1.13 dyoung memcpy(ifp->if_xname, device_xname(self), IFNAMSIZ);
787 1.1 bouyer
788 1.15 dyoung sc->bnx_ec.ec_capabilities |= ETHERCAP_JUMBO_MTU |
789 1.1 bouyer ETHERCAP_VLAN_MTU | ETHERCAP_VLAN_HWTAGGING;
790 1.1 bouyer
791 1.1 bouyer ifp->if_capabilities |=
792 1.1 bouyer IFCAP_CSUM_IPv4_Tx | IFCAP_CSUM_IPv4_Rx |
793 1.1 bouyer IFCAP_CSUM_TCPv4_Tx | IFCAP_CSUM_TCPv4_Rx |
794 1.1 bouyer IFCAP_CSUM_UDPv4_Tx | IFCAP_CSUM_UDPv4_Rx;
795 1.1 bouyer
796 1.44 jym /* create workqueue to handle packet allocations */
797 1.44 jym if (workqueue_create(&sc->bnx_wq, device_xname(self),
798 1.46 bouyer bnx_alloc_pkts, sc, PRI_NONE, IPL_NET, 0) != 0) {
799 1.44 jym aprint_error_dev(self, "failed to create workqueue\n");
800 1.44 jym goto bnx_attach_fail;
801 1.44 jym }
802 1.44 jym
803 1.1 bouyer sc->bnx_mii.mii_ifp = ifp;
804 1.1 bouyer sc->bnx_mii.mii_readreg = bnx_miibus_read_reg;
805 1.1 bouyer sc->bnx_mii.mii_writereg = bnx_miibus_write_reg;
806 1.1 bouyer sc->bnx_mii.mii_statchg = bnx_miibus_statchg;
807 1.1 bouyer
808 1.41 jym /* Handle any special PHY initialization for SerDes PHYs. */
809 1.41 jym bnx_init_media(sc);
810 1.41 jym
811 1.16 dyoung sc->bnx_ec.ec_mii = &sc->bnx_mii;
812 1.73 msaitoh ifmedia_init(&sc->bnx_mii.mii_media, 0, bnx_ifmedia_upd,
813 1.72 msaitoh bnx_ifmedia_sts);
814 1.41 jym
815 1.43 jym /* set phyflags and chipid before mii_attach() */
816 1.41 jym dict = device_properties(self);
817 1.41 jym prop_dictionary_set_uint32(dict, "phyflags", sc->bnx_phy_flags);
818 1.43 jym prop_dictionary_set_uint32(dict, "chipid", sc->bnx_chipid);
819 1.53 msaitoh prop_dictionary_set_uint32(dict, "shared_hwcfg",sc->bnx_shared_hw_cfg);
820 1.53 msaitoh prop_dictionary_set_uint32(dict, "port_hwcfg", sc->bnx_port_hw_cfg);
821 1.41 jym
822 1.57 msaitoh /* Print some useful adapter info */
823 1.57 msaitoh bnx_print_adapter_info(sc);
824 1.57 msaitoh
825 1.72 msaitoh mii_flags |= MIIF_DOPAUSE;
826 1.20 mhitch if (sc->bnx_phy_flags & BNX_PHY_SERDES_FLAG)
827 1.20 mhitch mii_flags |= MIIF_HAVEFIBER;
828 1.13 dyoung mii_attach(self, &sc->bnx_mii, 0xffffffff,
829 1.73 msaitoh sc->bnx_phy_addr, MII_OFFSET_ANY, mii_flags);
830 1.1 bouyer
831 1.14 dyoung if (LIST_EMPTY(&sc->bnx_mii.mii_phys)) {
832 1.13 dyoung aprint_error_dev(self, "no PHY found!\n");
833 1.1 bouyer ifmedia_add(&sc->bnx_mii.mii_media,
834 1.1 bouyer IFM_ETHER|IFM_MANUAL, 0, NULL);
835 1.52 msaitoh ifmedia_set(&sc->bnx_mii.mii_media, IFM_ETHER | IFM_MANUAL);
836 1.52 msaitoh } else
837 1.52 msaitoh ifmedia_set(&sc->bnx_mii.mii_media, IFM_ETHER | IFM_AUTO);
838 1.1 bouyer
839 1.1 bouyer /* Attach to the Ethernet interface list. */
840 1.1 bouyer if_attach(ifp);
841 1.60 ozaki if_deferred_start_init(ifp, NULL);
842 1.1 bouyer ether_ifattach(ifp,sc->eaddr);
843 1.1 bouyer
844 1.7 ad callout_init(&sc->bnx_timeout, 0);
845 1.1 bouyer
846 1.73 msaitoh /* Hookup IRQ last. */
847 1.73 msaitoh sc->bnx_intrhand = pci_intr_establish_xname(pc, ih, IPL_NET, bnx_intr,
848 1.73 msaitoh sc, device_xname(self));
849 1.73 msaitoh if (sc->bnx_intrhand == NULL) {
850 1.73 msaitoh aprint_error_dev(self, "couldn't establish interrupt");
851 1.73 msaitoh if (intrstr != NULL)
852 1.73 msaitoh aprint_error(" at %s", intrstr);
853 1.73 msaitoh aprint_error("\n");
854 1.73 msaitoh goto bnx_attach_fail;
855 1.73 msaitoh }
856 1.73 msaitoh aprint_normal_dev(sc->bnx_dev, "interrupting at %s\n", intrstr);
857 1.73 msaitoh
858 1.28 tsutsui if (pmf_device_register(self, NULL, NULL))
859 1.28 tsutsui pmf_class_network_register(self, ifp);
860 1.28 tsutsui else
861 1.13 dyoung aprint_error_dev(self, "couldn't establish power handler\n");
862 1.13 dyoung
863 1.1 bouyer /* Print some important debugging info. */
864 1.1 bouyer DBRUN(BNX_INFO, bnx_dump_driver_state(sc));
865 1.1 bouyer
866 1.73 msaitoh /* Get the firmware running so ASF still works. */
867 1.73 msaitoh bnx_mgmt_init(sc);
868 1.73 msaitoh
869 1.1 bouyer goto bnx_attach_exit;
870 1.1 bouyer
871 1.1 bouyer bnx_attach_fail:
872 1.1 bouyer bnx_release_resources(sc);
873 1.1 bouyer
874 1.1 bouyer bnx_attach_exit:
875 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
876 1.1 bouyer }
877 1.1 bouyer
878 1.1 bouyer /****************************************************************************/
879 1.1 bouyer /* Device detach function. */
880 1.1 bouyer /* */
881 1.1 bouyer /* Stops the controller, resets the controller, and releases resources. */
882 1.1 bouyer /* */
883 1.1 bouyer /* Returns: */
884 1.1 bouyer /* 0 on success, positive value on failure. */
885 1.1 bouyer /****************************************************************************/
886 1.13 dyoung int
887 1.13 dyoung bnx_detach(device_t dev, int flags)
888 1.1 bouyer {
889 1.14 dyoung int s;
890 1.1 bouyer struct bnx_softc *sc;
891 1.13 dyoung struct ifnet *ifp;
892 1.1 bouyer
893 1.13 dyoung sc = device_private(dev);
894 1.15 dyoung ifp = &sc->bnx_ec.ec_if;
895 1.1 bouyer
896 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
897 1.1 bouyer
898 1.1 bouyer /* Stop and reset the controller. */
899 1.14 dyoung s = splnet();
900 1.64 msaitoh bnx_stop(ifp, 1);
901 1.14 dyoung splx(s);
902 1.1 bouyer
903 1.13 dyoung pmf_device_deregister(dev);
904 1.25 dyoung callout_destroy(&sc->bnx_timeout);
905 1.1 bouyer ether_ifdetach(ifp);
906 1.44 jym workqueue_destroy(sc->bnx_wq);
907 1.32 msaitoh
908 1.32 msaitoh /* Delete all remaining media. */
909 1.32 msaitoh ifmedia_delete_instance(&sc->bnx_mii.mii_media, IFM_INST_ANY);
910 1.32 msaitoh
911 1.13 dyoung if_detach(ifp);
912 1.13 dyoung mii_detach(&sc->bnx_mii, MII_PHY_ANY, MII_OFFSET_ANY);
913 1.1 bouyer
914 1.1 bouyer /* Release all remaining resources. */
915 1.1 bouyer bnx_release_resources(sc);
916 1.1 bouyer
917 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
918 1.1 bouyer
919 1.52 msaitoh return 0;
920 1.1 bouyer }
921 1.1 bouyer
922 1.1 bouyer /****************************************************************************/
923 1.1 bouyer /* Indirect register read. */
924 1.1 bouyer /* */
925 1.1 bouyer /* Reads NetXtreme II registers using an index/data register pair in PCI */
926 1.1 bouyer /* configuration space. Using this mechanism avoids issues with posted */
927 1.1 bouyer /* reads but is much slower than memory-mapped I/O. */
928 1.1 bouyer /* */
929 1.1 bouyer /* Returns: */
930 1.1 bouyer /* The value of the register. */
931 1.1 bouyer /****************************************************************************/
932 1.55 msaitoh uint32_t
933 1.55 msaitoh bnx_reg_rd_ind(struct bnx_softc *sc, uint32_t offset)
934 1.1 bouyer {
935 1.1 bouyer struct pci_attach_args *pa = &(sc->bnx_pa);
936 1.1 bouyer
937 1.1 bouyer pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_REG_WINDOW_ADDRESS,
938 1.1 bouyer offset);
939 1.1 bouyer #ifdef BNX_DEBUG
940 1.1 bouyer {
941 1.55 msaitoh uint32_t val;
942 1.1 bouyer val = pci_conf_read(pa->pa_pc, pa->pa_tag,
943 1.1 bouyer BNX_PCICFG_REG_WINDOW);
944 1.1 bouyer DBPRINT(sc, BNX_EXCESSIVE, "%s(); offset = 0x%08X, "
945 1.12 perry "val = 0x%08X\n", __func__, offset, val);
946 1.52 msaitoh return val;
947 1.1 bouyer }
948 1.1 bouyer #else
949 1.1 bouyer return pci_conf_read(pa->pa_pc, pa->pa_tag, BNX_PCICFG_REG_WINDOW);
950 1.1 bouyer #endif
951 1.1 bouyer }
952 1.1 bouyer
953 1.1 bouyer /****************************************************************************/
954 1.1 bouyer /* Indirect register write. */
955 1.1 bouyer /* */
956 1.1 bouyer /* Writes NetXtreme II registers using an index/data register pair in PCI */
957 1.1 bouyer /* configuration space. Using this mechanism avoids issues with posted */
958 1.1 bouyer /* writes but is muchh slower than memory-mapped I/O. */
959 1.1 bouyer /* */
960 1.1 bouyer /* Returns: */
961 1.1 bouyer /* Nothing. */
962 1.1 bouyer /****************************************************************************/
963 1.1 bouyer void
964 1.55 msaitoh bnx_reg_wr_ind(struct bnx_softc *sc, uint32_t offset, uint32_t val)
965 1.1 bouyer {
966 1.1 bouyer struct pci_attach_args *pa = &(sc->bnx_pa);
967 1.1 bouyer
968 1.1 bouyer DBPRINT(sc, BNX_EXCESSIVE, "%s(); offset = 0x%08X, val = 0x%08X\n",
969 1.12 perry __func__, offset, val);
970 1.1 bouyer
971 1.1 bouyer pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_REG_WINDOW_ADDRESS,
972 1.1 bouyer offset);
973 1.1 bouyer pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_REG_WINDOW, val);
974 1.1 bouyer }
975 1.1 bouyer
976 1.1 bouyer /****************************************************************************/
977 1.1 bouyer /* Context memory write. */
978 1.1 bouyer /* */
979 1.1 bouyer /* The NetXtreme II controller uses context memory to track connection */
980 1.1 bouyer /* information for L2 and higher network protocols. */
981 1.1 bouyer /* */
982 1.1 bouyer /* Returns: */
983 1.1 bouyer /* Nothing. */
984 1.1 bouyer /****************************************************************************/
985 1.1 bouyer void
986 1.55 msaitoh bnx_ctx_wr(struct bnx_softc *sc, uint32_t cid_addr, uint32_t ctx_offset,
987 1.55 msaitoh uint32_t ctx_val)
988 1.1 bouyer {
989 1.55 msaitoh uint32_t idx, offset = ctx_offset + cid_addr;
990 1.55 msaitoh uint32_t val, retry_cnt = 5;
991 1.29 bouyer
992 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
993 1.29 bouyer REG_WR(sc, BNX_CTX_CTX_DATA, ctx_val);
994 1.29 bouyer REG_WR(sc, BNX_CTX_CTX_CTRL,
995 1.29 bouyer (offset | BNX_CTX_CTX_CTRL_WRITE_REQ));
996 1.29 bouyer
997 1.29 bouyer for (idx = 0; idx < retry_cnt; idx++) {
998 1.29 bouyer val = REG_RD(sc, BNX_CTX_CTX_CTRL);
999 1.29 bouyer if ((val & BNX_CTX_CTX_CTRL_WRITE_REQ) == 0)
1000 1.29 bouyer break;
1001 1.29 bouyer DELAY(5);
1002 1.29 bouyer }
1003 1.1 bouyer
1004 1.29 bouyer #if 0
1005 1.29 bouyer if (val & BNX_CTX_CTX_CTRL_WRITE_REQ)
1006 1.29 bouyer BNX_PRINTF("%s(%d); Unable to write CTX memory: "
1007 1.29 bouyer "cid_addr = 0x%08X, offset = 0x%08X!\n",
1008 1.29 bouyer __FILE__, __LINE__, cid_addr, ctx_offset);
1009 1.29 bouyer #endif
1010 1.1 bouyer
1011 1.29 bouyer } else {
1012 1.29 bouyer REG_WR(sc, BNX_CTX_DATA_ADR, offset);
1013 1.29 bouyer REG_WR(sc, BNX_CTX_DATA, ctx_val);
1014 1.29 bouyer }
1015 1.1 bouyer }
1016 1.1 bouyer
1017 1.1 bouyer /****************************************************************************/
1018 1.1 bouyer /* PHY register read. */
1019 1.1 bouyer /* */
1020 1.1 bouyer /* Implements register reads on the MII bus. */
1021 1.1 bouyer /* */
1022 1.1 bouyer /* Returns: */
1023 1.1 bouyer /* The value of the register. */
1024 1.1 bouyer /****************************************************************************/
1025 1.1 bouyer int
1026 1.68 msaitoh bnx_miibus_read_reg(device_t dev, int phy, int reg, uint16_t *val)
1027 1.1 bouyer {
1028 1.13 dyoung struct bnx_softc *sc = device_private(dev);
1029 1.68 msaitoh uint32_t data;
1030 1.68 msaitoh int i, rv = 0;
1031 1.1 bouyer
1032 1.41 jym /*
1033 1.41 jym * The BCM5709S PHY is an IEEE Clause 45 PHY
1034 1.41 jym * with special mappings to work with IEEE
1035 1.41 jym * Clause 22 register accesses.
1036 1.41 jym */
1037 1.41 jym if ((sc->bnx_phy_flags & BNX_PHY_IEEE_CLAUSE_45_FLAG) != 0) {
1038 1.41 jym if (reg >= MII_BMCR && reg <= MII_ANLPRNP)
1039 1.41 jym reg += 0x10;
1040 1.41 jym }
1041 1.41 jym
1042 1.1 bouyer if (sc->bnx_phy_flags & BNX_PHY_INT_MODE_AUTO_POLLING_FLAG) {
1043 1.67 msaitoh data = REG_RD(sc, BNX_EMAC_MDIO_MODE);
1044 1.67 msaitoh data &= ~BNX_EMAC_MDIO_MODE_AUTO_POLL;
1045 1.1 bouyer
1046 1.67 msaitoh REG_WR(sc, BNX_EMAC_MDIO_MODE, data);
1047 1.1 bouyer REG_RD(sc, BNX_EMAC_MDIO_MODE);
1048 1.1 bouyer
1049 1.1 bouyer DELAY(40);
1050 1.1 bouyer }
1051 1.1 bouyer
1052 1.67 msaitoh data = BNX_MIPHY(phy) | BNX_MIREG(reg) |
1053 1.1 bouyer BNX_EMAC_MDIO_COMM_COMMAND_READ | BNX_EMAC_MDIO_COMM_DISEXT |
1054 1.1 bouyer BNX_EMAC_MDIO_COMM_START_BUSY;
1055 1.67 msaitoh REG_WR(sc, BNX_EMAC_MDIO_COMM, data);
1056 1.1 bouyer
1057 1.1 bouyer for (i = 0; i < BNX_PHY_TIMEOUT; i++) {
1058 1.1 bouyer DELAY(10);
1059 1.1 bouyer
1060 1.67 msaitoh data = REG_RD(sc, BNX_EMAC_MDIO_COMM);
1061 1.67 msaitoh if (!(data & BNX_EMAC_MDIO_COMM_START_BUSY)) {
1062 1.1 bouyer DELAY(5);
1063 1.1 bouyer
1064 1.67 msaitoh data = REG_RD(sc, BNX_EMAC_MDIO_COMM);
1065 1.67 msaitoh data &= BNX_EMAC_MDIO_COMM_DATA;
1066 1.1 bouyer
1067 1.1 bouyer break;
1068 1.1 bouyer }
1069 1.1 bouyer }
1070 1.1 bouyer
1071 1.67 msaitoh if (data & BNX_EMAC_MDIO_COMM_START_BUSY) {
1072 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Error: PHY read timeout! phy = %d, "
1073 1.1 bouyer "reg = 0x%04X\n", __FILE__, __LINE__, phy, reg);
1074 1.68 msaitoh rv = ETIMEDOUT;
1075 1.68 msaitoh } else {
1076 1.68 msaitoh data = REG_RD(sc, BNX_EMAC_MDIO_COMM);
1077 1.68 msaitoh *val = data & 0xffff;
1078 1.1 bouyer
1079 1.68 msaitoh DBPRINT(sc, BNX_EXCESSIVE,
1080 1.68 msaitoh "%s(): phy = %d, reg = 0x%04X, val = 0x%04hX\n", __func__,
1081 1.68 msaitoh phy, (uint16_t) reg & 0xffff, *val);
1082 1.68 msaitoh }
1083 1.1 bouyer
1084 1.1 bouyer if (sc->bnx_phy_flags & BNX_PHY_INT_MODE_AUTO_POLLING_FLAG) {
1085 1.67 msaitoh data = REG_RD(sc, BNX_EMAC_MDIO_MODE);
1086 1.67 msaitoh data |= BNX_EMAC_MDIO_MODE_AUTO_POLL;
1087 1.1 bouyer
1088 1.67 msaitoh REG_WR(sc, BNX_EMAC_MDIO_MODE, data);
1089 1.1 bouyer REG_RD(sc, BNX_EMAC_MDIO_MODE);
1090 1.1 bouyer
1091 1.1 bouyer DELAY(40);
1092 1.1 bouyer }
1093 1.1 bouyer
1094 1.68 msaitoh return rv;
1095 1.1 bouyer }
1096 1.1 bouyer
1097 1.1 bouyer /****************************************************************************/
1098 1.1 bouyer /* PHY register write. */
1099 1.1 bouyer /* */
1100 1.1 bouyer /* Implements register writes on the MII bus. */
1101 1.1 bouyer /* */
1102 1.1 bouyer /* Returns: */
1103 1.1 bouyer /* The value of the register. */
1104 1.1 bouyer /****************************************************************************/
1105 1.68 msaitoh int
1106 1.68 msaitoh bnx_miibus_write_reg(device_t dev, int phy, int reg, uint16_t val)
1107 1.1 bouyer {
1108 1.13 dyoung struct bnx_softc *sc = device_private(dev);
1109 1.55 msaitoh uint32_t val1;
1110 1.68 msaitoh int i, rv = 0;
1111 1.1 bouyer
1112 1.1 bouyer DBPRINT(sc, BNX_EXCESSIVE, "%s(): phy = %d, reg = 0x%04X, "
1113 1.68 msaitoh "val = 0x%04hX\n", __func__,
1114 1.68 msaitoh phy, (uint16_t) reg & 0xffff, val);
1115 1.1 bouyer
1116 1.41 jym /*
1117 1.41 jym * The BCM5709S PHY is an IEEE Clause 45 PHY
1118 1.41 jym * with special mappings to work with IEEE
1119 1.41 jym * Clause 22 register accesses.
1120 1.41 jym */
1121 1.41 jym if ((sc->bnx_phy_flags & BNX_PHY_IEEE_CLAUSE_45_FLAG) != 0) {
1122 1.41 jym if (reg >= MII_BMCR && reg <= MII_ANLPRNP)
1123 1.41 jym reg += 0x10;
1124 1.41 jym }
1125 1.41 jym
1126 1.1 bouyer if (sc->bnx_phy_flags & BNX_PHY_INT_MODE_AUTO_POLLING_FLAG) {
1127 1.1 bouyer val1 = REG_RD(sc, BNX_EMAC_MDIO_MODE);
1128 1.1 bouyer val1 &= ~BNX_EMAC_MDIO_MODE_AUTO_POLL;
1129 1.1 bouyer
1130 1.1 bouyer REG_WR(sc, BNX_EMAC_MDIO_MODE, val1);
1131 1.1 bouyer REG_RD(sc, BNX_EMAC_MDIO_MODE);
1132 1.1 bouyer
1133 1.1 bouyer DELAY(40);
1134 1.1 bouyer }
1135 1.1 bouyer
1136 1.1 bouyer val1 = BNX_MIPHY(phy) | BNX_MIREG(reg) | val |
1137 1.1 bouyer BNX_EMAC_MDIO_COMM_COMMAND_WRITE |
1138 1.1 bouyer BNX_EMAC_MDIO_COMM_START_BUSY | BNX_EMAC_MDIO_COMM_DISEXT;
1139 1.1 bouyer REG_WR(sc, BNX_EMAC_MDIO_COMM, val1);
1140 1.1 bouyer
1141 1.1 bouyer for (i = 0; i < BNX_PHY_TIMEOUT; i++) {
1142 1.1 bouyer DELAY(10);
1143 1.1 bouyer
1144 1.1 bouyer val1 = REG_RD(sc, BNX_EMAC_MDIO_COMM);
1145 1.1 bouyer if (!(val1 & BNX_EMAC_MDIO_COMM_START_BUSY)) {
1146 1.1 bouyer DELAY(5);
1147 1.1 bouyer break;
1148 1.1 bouyer }
1149 1.1 bouyer }
1150 1.1 bouyer
1151 1.1 bouyer if (val1 & BNX_EMAC_MDIO_COMM_START_BUSY) {
1152 1.1 bouyer BNX_PRINTF(sc, "%s(%d): PHY write timeout!\n", __FILE__,
1153 1.1 bouyer __LINE__);
1154 1.68 msaitoh rv = ETIMEDOUT;
1155 1.1 bouyer }
1156 1.1 bouyer
1157 1.1 bouyer if (sc->bnx_phy_flags & BNX_PHY_INT_MODE_AUTO_POLLING_FLAG) {
1158 1.1 bouyer val1 = REG_RD(sc, BNX_EMAC_MDIO_MODE);
1159 1.1 bouyer val1 |= BNX_EMAC_MDIO_MODE_AUTO_POLL;
1160 1.1 bouyer
1161 1.1 bouyer REG_WR(sc, BNX_EMAC_MDIO_MODE, val1);
1162 1.1 bouyer REG_RD(sc, BNX_EMAC_MDIO_MODE);
1163 1.1 bouyer
1164 1.1 bouyer DELAY(40);
1165 1.1 bouyer }
1166 1.68 msaitoh
1167 1.68 msaitoh return rv;
1168 1.1 bouyer }
1169 1.1 bouyer
1170 1.1 bouyer /****************************************************************************/
1171 1.1 bouyer /* MII bus status change. */
1172 1.1 bouyer /* */
1173 1.1 bouyer /* Called by the MII bus driver when the PHY establishes link to set the */
1174 1.1 bouyer /* MAC interface registers. */
1175 1.1 bouyer /* */
1176 1.1 bouyer /* Returns: */
1177 1.1 bouyer /* Nothing. */
1178 1.1 bouyer /****************************************************************************/
1179 1.1 bouyer void
1180 1.47 matt bnx_miibus_statchg(struct ifnet *ifp)
1181 1.1 bouyer {
1182 1.47 matt struct bnx_softc *sc = ifp->if_softc;
1183 1.1 bouyer struct mii_data *mii = &sc->bnx_mii;
1184 1.72 msaitoh uint32_t rx_mode = sc->rx_mode;
1185 1.20 mhitch int val;
1186 1.1 bouyer
1187 1.20 mhitch val = REG_RD(sc, BNX_EMAC_MODE);
1188 1.20 mhitch val &= ~(BNX_EMAC_MODE_PORT | BNX_EMAC_MODE_HALF_DUPLEX |
1189 1.20 mhitch BNX_EMAC_MODE_MAC_LOOP | BNX_EMAC_MODE_FORCE_LINK |
1190 1.20 mhitch BNX_EMAC_MODE_25G);
1191 1.1 bouyer
1192 1.72 msaitoh /*
1193 1.72 msaitoh * Get flow control negotiation result.
1194 1.72 msaitoh */
1195 1.72 msaitoh if (IFM_SUBTYPE(mii->mii_media.ifm_cur->ifm_media) == IFM_AUTO &&
1196 1.72 msaitoh (mii->mii_media_active & IFM_ETH_FMASK) != sc->bnx_flowflags) {
1197 1.72 msaitoh sc->bnx_flowflags = mii->mii_media_active & IFM_ETH_FMASK;
1198 1.72 msaitoh mii->mii_media_active &= ~IFM_ETH_FMASK;
1199 1.72 msaitoh }
1200 1.72 msaitoh
1201 1.20 mhitch /* Set MII or GMII interface based on the speed
1202 1.20 mhitch * negotiated by the PHY.
1203 1.20 mhitch */
1204 1.20 mhitch switch (IFM_SUBTYPE(mii->mii_media_active)) {
1205 1.20 mhitch case IFM_10_T:
1206 1.20 mhitch if (BNX_CHIP_NUM(sc) != BNX_CHIP_NUM_5706) {
1207 1.20 mhitch DBPRINT(sc, BNX_INFO, "Enabling 10Mb interface.\n");
1208 1.20 mhitch val |= BNX_EMAC_MODE_PORT_MII_10;
1209 1.20 mhitch break;
1210 1.20 mhitch }
1211 1.20 mhitch /* FALLTHROUGH */
1212 1.20 mhitch case IFM_100_TX:
1213 1.20 mhitch DBPRINT(sc, BNX_INFO, "Enabling MII interface.\n");
1214 1.20 mhitch val |= BNX_EMAC_MODE_PORT_MII;
1215 1.20 mhitch break;
1216 1.20 mhitch case IFM_2500_SX:
1217 1.20 mhitch DBPRINT(sc, BNX_INFO, "Enabling 2.5G MAC mode.\n");
1218 1.20 mhitch val |= BNX_EMAC_MODE_25G;
1219 1.20 mhitch /* FALLTHROUGH */
1220 1.20 mhitch case IFM_1000_T:
1221 1.20 mhitch case IFM_1000_SX:
1222 1.20 mhitch DBPRINT(sc, BNX_INFO, "Enabling GMII interface.\n");
1223 1.20 mhitch val |= BNX_EMAC_MODE_PORT_GMII;
1224 1.20 mhitch break;
1225 1.20 mhitch default:
1226 1.20 mhitch val |= BNX_EMAC_MODE_PORT_GMII;
1227 1.20 mhitch break;
1228 1.1 bouyer }
1229 1.1 bouyer
1230 1.1 bouyer /* Set half or full duplex based on the duplicity
1231 1.1 bouyer * negotiated by the PHY.
1232 1.1 bouyer */
1233 1.20 mhitch if ((mii->mii_media_active & IFM_GMASK) == IFM_HDX) {
1234 1.20 mhitch DBPRINT(sc, BNX_INFO, "Setting Half-Duplex interface.\n");
1235 1.20 mhitch val |= BNX_EMAC_MODE_HALF_DUPLEX;
1236 1.74 msaitoh } else
1237 1.1 bouyer DBPRINT(sc, BNX_INFO, "Setting Full-Duplex interface.\n");
1238 1.20 mhitch
1239 1.20 mhitch REG_WR(sc, BNX_EMAC_MODE, val);
1240 1.72 msaitoh
1241 1.72 msaitoh /*
1242 1.72 msaitoh * 802.3x flow control
1243 1.72 msaitoh */
1244 1.72 msaitoh if (sc->bnx_flowflags & IFM_ETH_RXPAUSE) {
1245 1.72 msaitoh DBPRINT(sc, BNX_INFO, "Enabling RX mode flow control.\n");
1246 1.72 msaitoh rx_mode |= BNX_EMAC_RX_MODE_FLOW_EN;
1247 1.72 msaitoh } else {
1248 1.72 msaitoh DBPRINT(sc, BNX_INFO, "Disabling RX mode flow control.\n");
1249 1.72 msaitoh rx_mode &= ~BNX_EMAC_RX_MODE_FLOW_EN;
1250 1.72 msaitoh }
1251 1.72 msaitoh
1252 1.72 msaitoh if (sc->bnx_flowflags & IFM_ETH_TXPAUSE) {
1253 1.72 msaitoh DBPRINT(sc, BNX_INFO, "Enabling TX mode flow control.\n");
1254 1.72 msaitoh BNX_SETBIT(sc, BNX_EMAC_TX_MODE, BNX_EMAC_TX_MODE_FLOW_EN);
1255 1.72 msaitoh } else {
1256 1.72 msaitoh DBPRINT(sc, BNX_INFO, "Disabling TX mode flow control.\n");
1257 1.72 msaitoh BNX_CLRBIT(sc, BNX_EMAC_TX_MODE, BNX_EMAC_TX_MODE_FLOW_EN);
1258 1.72 msaitoh }
1259 1.72 msaitoh
1260 1.72 msaitoh /* Only make changes if the recive mode has actually changed. */
1261 1.72 msaitoh if (rx_mode != sc->rx_mode) {
1262 1.72 msaitoh DBPRINT(sc, BNX_VERBOSE, "Enabling new receive mode: 0x%08X\n",
1263 1.72 msaitoh rx_mode);
1264 1.72 msaitoh
1265 1.72 msaitoh sc->rx_mode = rx_mode;
1266 1.72 msaitoh REG_WR(sc, BNX_EMAC_RX_MODE, rx_mode);
1267 1.72 msaitoh
1268 1.72 msaitoh bnx_init_rx_context(sc);
1269 1.72 msaitoh }
1270 1.1 bouyer }
1271 1.1 bouyer
1272 1.1 bouyer /****************************************************************************/
1273 1.1 bouyer /* Acquire NVRAM lock. */
1274 1.1 bouyer /* */
1275 1.1 bouyer /* Before the NVRAM can be accessed the caller must acquire an NVRAM lock. */
1276 1.1 bouyer /* Locks 0 and 2 are reserved, lock 1 is used by firmware and lock 2 is */
1277 1.1 bouyer /* for use by the driver. */
1278 1.1 bouyer /* */
1279 1.1 bouyer /* Returns: */
1280 1.1 bouyer /* 0 on success, positive value on failure. */
1281 1.1 bouyer /****************************************************************************/
1282 1.1 bouyer int
1283 1.1 bouyer bnx_acquire_nvram_lock(struct bnx_softc *sc)
1284 1.1 bouyer {
1285 1.55 msaitoh uint32_t val;
1286 1.1 bouyer int j;
1287 1.1 bouyer
1288 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "Acquiring NVRAM lock.\n");
1289 1.1 bouyer
1290 1.1 bouyer /* Request access to the flash interface. */
1291 1.1 bouyer REG_WR(sc, BNX_NVM_SW_ARB, BNX_NVM_SW_ARB_ARB_REQ_SET2);
1292 1.1 bouyer for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
1293 1.1 bouyer val = REG_RD(sc, BNX_NVM_SW_ARB);
1294 1.1 bouyer if (val & BNX_NVM_SW_ARB_ARB_ARB2)
1295 1.1 bouyer break;
1296 1.1 bouyer
1297 1.1 bouyer DELAY(5);
1298 1.1 bouyer }
1299 1.1 bouyer
1300 1.1 bouyer if (j >= NVRAM_TIMEOUT_COUNT) {
1301 1.1 bouyer DBPRINT(sc, BNX_WARN, "Timeout acquiring NVRAM lock!\n");
1302 1.52 msaitoh return EBUSY;
1303 1.1 bouyer }
1304 1.1 bouyer
1305 1.52 msaitoh return 0;
1306 1.1 bouyer }
1307 1.1 bouyer
1308 1.1 bouyer /****************************************************************************/
1309 1.1 bouyer /* Release NVRAM lock. */
1310 1.1 bouyer /* */
1311 1.1 bouyer /* When the caller is finished accessing NVRAM the lock must be released. */
1312 1.1 bouyer /* Locks 0 and 2 are reserved, lock 1 is used by firmware and lock 2 is */
1313 1.1 bouyer /* for use by the driver. */
1314 1.1 bouyer /* */
1315 1.1 bouyer /* Returns: */
1316 1.1 bouyer /* 0 on success, positive value on failure. */
1317 1.1 bouyer /****************************************************************************/
1318 1.1 bouyer int
1319 1.1 bouyer bnx_release_nvram_lock(struct bnx_softc *sc)
1320 1.1 bouyer {
1321 1.1 bouyer int j;
1322 1.55 msaitoh uint32_t val;
1323 1.1 bouyer
1324 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "Releasing NVRAM lock.\n");
1325 1.1 bouyer
1326 1.1 bouyer /* Relinquish nvram interface. */
1327 1.1 bouyer REG_WR(sc, BNX_NVM_SW_ARB, BNX_NVM_SW_ARB_ARB_REQ_CLR2);
1328 1.1 bouyer
1329 1.1 bouyer for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
1330 1.1 bouyer val = REG_RD(sc, BNX_NVM_SW_ARB);
1331 1.1 bouyer if (!(val & BNX_NVM_SW_ARB_ARB_ARB2))
1332 1.1 bouyer break;
1333 1.1 bouyer
1334 1.1 bouyer DELAY(5);
1335 1.1 bouyer }
1336 1.1 bouyer
1337 1.1 bouyer if (j >= NVRAM_TIMEOUT_COUNT) {
1338 1.1 bouyer DBPRINT(sc, BNX_WARN, "Timeout reeasing NVRAM lock!\n");
1339 1.52 msaitoh return EBUSY;
1340 1.1 bouyer }
1341 1.1 bouyer
1342 1.52 msaitoh return 0;
1343 1.1 bouyer }
1344 1.1 bouyer
1345 1.1 bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
1346 1.1 bouyer /****************************************************************************/
1347 1.1 bouyer /* Enable NVRAM write access. */
1348 1.1 bouyer /* */
1349 1.1 bouyer /* Before writing to NVRAM the caller must enable NVRAM writes. */
1350 1.1 bouyer /* */
1351 1.1 bouyer /* Returns: */
1352 1.1 bouyer /* 0 on success, positive value on failure. */
1353 1.1 bouyer /****************************************************************************/
1354 1.1 bouyer int
1355 1.1 bouyer bnx_enable_nvram_write(struct bnx_softc *sc)
1356 1.1 bouyer {
1357 1.55 msaitoh uint32_t val;
1358 1.1 bouyer
1359 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "Enabling NVRAM write.\n");
1360 1.1 bouyer
1361 1.1 bouyer val = REG_RD(sc, BNX_MISC_CFG);
1362 1.1 bouyer REG_WR(sc, BNX_MISC_CFG, val | BNX_MISC_CFG_NVM_WR_EN_PCI);
1363 1.1 bouyer
1364 1.29 bouyer if (!ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)) {
1365 1.1 bouyer int j;
1366 1.1 bouyer
1367 1.1 bouyer REG_WR(sc, BNX_NVM_COMMAND, BNX_NVM_COMMAND_DONE);
1368 1.1 bouyer REG_WR(sc, BNX_NVM_COMMAND,
1369 1.1 bouyer BNX_NVM_COMMAND_WREN | BNX_NVM_COMMAND_DOIT);
1370 1.1 bouyer
1371 1.1 bouyer for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
1372 1.1 bouyer DELAY(5);
1373 1.1 bouyer
1374 1.1 bouyer val = REG_RD(sc, BNX_NVM_COMMAND);
1375 1.1 bouyer if (val & BNX_NVM_COMMAND_DONE)
1376 1.1 bouyer break;
1377 1.1 bouyer }
1378 1.1 bouyer
1379 1.1 bouyer if (j >= NVRAM_TIMEOUT_COUNT) {
1380 1.1 bouyer DBPRINT(sc, BNX_WARN, "Timeout writing NVRAM!\n");
1381 1.52 msaitoh return EBUSY;
1382 1.1 bouyer }
1383 1.1 bouyer }
1384 1.1 bouyer
1385 1.52 msaitoh return 0;
1386 1.1 bouyer }
1387 1.1 bouyer
1388 1.1 bouyer /****************************************************************************/
1389 1.1 bouyer /* Disable NVRAM write access. */
1390 1.1 bouyer /* */
1391 1.1 bouyer /* When the caller is finished writing to NVRAM write access must be */
1392 1.1 bouyer /* disabled. */
1393 1.1 bouyer /* */
1394 1.1 bouyer /* Returns: */
1395 1.1 bouyer /* Nothing. */
1396 1.1 bouyer /****************************************************************************/
1397 1.1 bouyer void
1398 1.1 bouyer bnx_disable_nvram_write(struct bnx_softc *sc)
1399 1.1 bouyer {
1400 1.55 msaitoh uint32_t val;
1401 1.1 bouyer
1402 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "Disabling NVRAM write.\n");
1403 1.1 bouyer
1404 1.1 bouyer val = REG_RD(sc, BNX_MISC_CFG);
1405 1.1 bouyer REG_WR(sc, BNX_MISC_CFG, val & ~BNX_MISC_CFG_NVM_WR_EN);
1406 1.1 bouyer }
1407 1.1 bouyer #endif
1408 1.1 bouyer
1409 1.1 bouyer /****************************************************************************/
1410 1.1 bouyer /* Enable NVRAM access. */
1411 1.1 bouyer /* */
1412 1.1 bouyer /* Before accessing NVRAM for read or write operations the caller must */
1413 1.1 bouyer /* enabled NVRAM access. */
1414 1.1 bouyer /* */
1415 1.1 bouyer /* Returns: */
1416 1.1 bouyer /* Nothing. */
1417 1.1 bouyer /****************************************************************************/
1418 1.1 bouyer void
1419 1.1 bouyer bnx_enable_nvram_access(struct bnx_softc *sc)
1420 1.1 bouyer {
1421 1.55 msaitoh uint32_t val;
1422 1.1 bouyer
1423 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "Enabling NVRAM access.\n");
1424 1.1 bouyer
1425 1.1 bouyer val = REG_RD(sc, BNX_NVM_ACCESS_ENABLE);
1426 1.1 bouyer /* Enable both bits, even on read. */
1427 1.1 bouyer REG_WR(sc, BNX_NVM_ACCESS_ENABLE,
1428 1.1 bouyer val | BNX_NVM_ACCESS_ENABLE_EN | BNX_NVM_ACCESS_ENABLE_WR_EN);
1429 1.1 bouyer }
1430 1.1 bouyer
1431 1.1 bouyer /****************************************************************************/
1432 1.1 bouyer /* Disable NVRAM access. */
1433 1.1 bouyer /* */
1434 1.1 bouyer /* When the caller is finished accessing NVRAM access must be disabled. */
1435 1.1 bouyer /* */
1436 1.1 bouyer /* Returns: */
1437 1.1 bouyer /* Nothing. */
1438 1.1 bouyer /****************************************************************************/
1439 1.1 bouyer void
1440 1.1 bouyer bnx_disable_nvram_access(struct bnx_softc *sc)
1441 1.1 bouyer {
1442 1.55 msaitoh uint32_t val;
1443 1.1 bouyer
1444 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "Disabling NVRAM access.\n");
1445 1.1 bouyer
1446 1.1 bouyer val = REG_RD(sc, BNX_NVM_ACCESS_ENABLE);
1447 1.1 bouyer
1448 1.1 bouyer /* Disable both bits, even after read. */
1449 1.1 bouyer REG_WR(sc, BNX_NVM_ACCESS_ENABLE,
1450 1.1 bouyer val & ~(BNX_NVM_ACCESS_ENABLE_EN | BNX_NVM_ACCESS_ENABLE_WR_EN));
1451 1.1 bouyer }
1452 1.1 bouyer
1453 1.1 bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
1454 1.1 bouyer /****************************************************************************/
1455 1.1 bouyer /* Erase NVRAM page before writing. */
1456 1.1 bouyer /* */
1457 1.1 bouyer /* Non-buffered flash parts require that a page be erased before it is */
1458 1.1 bouyer /* written. */
1459 1.1 bouyer /* */
1460 1.1 bouyer /* Returns: */
1461 1.1 bouyer /* 0 on success, positive value on failure. */
1462 1.1 bouyer /****************************************************************************/
1463 1.1 bouyer int
1464 1.55 msaitoh bnx_nvram_erase_page(struct bnx_softc *sc, uint32_t offset)
1465 1.1 bouyer {
1466 1.55 msaitoh uint32_t cmd;
1467 1.1 bouyer int j;
1468 1.1 bouyer
1469 1.1 bouyer /* Buffered flash doesn't require an erase. */
1470 1.29 bouyer if (ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED))
1471 1.52 msaitoh return 0;
1472 1.1 bouyer
1473 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "Erasing NVRAM page.\n");
1474 1.1 bouyer
1475 1.1 bouyer /* Build an erase command. */
1476 1.1 bouyer cmd = BNX_NVM_COMMAND_ERASE | BNX_NVM_COMMAND_WR |
1477 1.1 bouyer BNX_NVM_COMMAND_DOIT;
1478 1.1 bouyer
1479 1.1 bouyer /*
1480 1.52 msaitoh * Clear the DONE bit separately, set the NVRAM address to erase,
1481 1.1 bouyer * and issue the erase command.
1482 1.1 bouyer */
1483 1.1 bouyer REG_WR(sc, BNX_NVM_COMMAND, BNX_NVM_COMMAND_DONE);
1484 1.1 bouyer REG_WR(sc, BNX_NVM_ADDR, offset & BNX_NVM_ADDR_NVM_ADDR_VALUE);
1485 1.1 bouyer REG_WR(sc, BNX_NVM_COMMAND, cmd);
1486 1.1 bouyer
1487 1.1 bouyer /* Wait for completion. */
1488 1.1 bouyer for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
1489 1.55 msaitoh uint32_t val;
1490 1.1 bouyer
1491 1.1 bouyer DELAY(5);
1492 1.1 bouyer
1493 1.1 bouyer val = REG_RD(sc, BNX_NVM_COMMAND);
1494 1.1 bouyer if (val & BNX_NVM_COMMAND_DONE)
1495 1.1 bouyer break;
1496 1.1 bouyer }
1497 1.1 bouyer
1498 1.1 bouyer if (j >= NVRAM_TIMEOUT_COUNT) {
1499 1.1 bouyer DBPRINT(sc, BNX_WARN, "Timeout erasing NVRAM.\n");
1500 1.52 msaitoh return EBUSY;
1501 1.1 bouyer }
1502 1.1 bouyer
1503 1.52 msaitoh return 0;
1504 1.1 bouyer }
1505 1.1 bouyer #endif /* BNX_NVRAM_WRITE_SUPPORT */
1506 1.1 bouyer
1507 1.1 bouyer /****************************************************************************/
1508 1.1 bouyer /* Read a dword (32 bits) from NVRAM. */
1509 1.1 bouyer /* */
1510 1.1 bouyer /* Read a 32 bit word from NVRAM. The caller is assumed to have already */
1511 1.1 bouyer /* obtained the NVRAM lock and enabled the controller for NVRAM access. */
1512 1.1 bouyer /* */
1513 1.1 bouyer /* Returns: */
1514 1.1 bouyer /* 0 on success and the 32 bit value read, positive value on failure. */
1515 1.1 bouyer /****************************************************************************/
1516 1.1 bouyer int
1517 1.55 msaitoh bnx_nvram_read_dword(struct bnx_softc *sc, uint32_t offset,
1518 1.55 msaitoh uint8_t *ret_val, uint32_t cmd_flags)
1519 1.1 bouyer {
1520 1.55 msaitoh uint32_t cmd;
1521 1.1 bouyer int i, rc = 0;
1522 1.1 bouyer
1523 1.1 bouyer /* Build the command word. */
1524 1.1 bouyer cmd = BNX_NVM_COMMAND_DOIT | cmd_flags;
1525 1.1 bouyer
1526 1.29 bouyer /* Calculate the offset for buffered flash if translation is used. */
1527 1.29 bouyer if (ISSET(sc->bnx_flash_info->flags, BNX_NV_TRANSLATE)) {
1528 1.1 bouyer offset = ((offset / sc->bnx_flash_info->page_size) <<
1529 1.1 bouyer sc->bnx_flash_info->page_bits) +
1530 1.1 bouyer (offset % sc->bnx_flash_info->page_size);
1531 1.29 bouyer }
1532 1.1 bouyer
1533 1.1 bouyer /*
1534 1.1 bouyer * Clear the DONE bit separately, set the address to read,
1535 1.1 bouyer * and issue the read.
1536 1.1 bouyer */
1537 1.1 bouyer REG_WR(sc, BNX_NVM_COMMAND, BNX_NVM_COMMAND_DONE);
1538 1.1 bouyer REG_WR(sc, BNX_NVM_ADDR, offset & BNX_NVM_ADDR_NVM_ADDR_VALUE);
1539 1.1 bouyer REG_WR(sc, BNX_NVM_COMMAND, cmd);
1540 1.1 bouyer
1541 1.1 bouyer /* Wait for completion. */
1542 1.1 bouyer for (i = 0; i < NVRAM_TIMEOUT_COUNT; i++) {
1543 1.55 msaitoh uint32_t val;
1544 1.1 bouyer
1545 1.1 bouyer DELAY(5);
1546 1.1 bouyer
1547 1.1 bouyer val = REG_RD(sc, BNX_NVM_COMMAND);
1548 1.1 bouyer if (val & BNX_NVM_COMMAND_DONE) {
1549 1.1 bouyer val = REG_RD(sc, BNX_NVM_READ);
1550 1.1 bouyer
1551 1.1 bouyer val = bnx_be32toh(val);
1552 1.1 bouyer memcpy(ret_val, &val, 4);
1553 1.1 bouyer break;
1554 1.1 bouyer }
1555 1.1 bouyer }
1556 1.1 bouyer
1557 1.1 bouyer /* Check for errors. */
1558 1.1 bouyer if (i >= NVRAM_TIMEOUT_COUNT) {
1559 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Timeout error reading NVRAM at "
1560 1.1 bouyer "offset 0x%08X!\n", __FILE__, __LINE__, offset);
1561 1.1 bouyer rc = EBUSY;
1562 1.1 bouyer }
1563 1.1 bouyer
1564 1.52 msaitoh return rc;
1565 1.1 bouyer }
1566 1.1 bouyer
1567 1.1 bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
1568 1.1 bouyer /****************************************************************************/
1569 1.1 bouyer /* Write a dword (32 bits) to NVRAM. */
1570 1.1 bouyer /* */
1571 1.1 bouyer /* Write a 32 bit word to NVRAM. The caller is assumed to have already */
1572 1.1 bouyer /* obtained the NVRAM lock, enabled the controller for NVRAM access, and */
1573 1.1 bouyer /* enabled NVRAM write access. */
1574 1.1 bouyer /* */
1575 1.1 bouyer /* Returns: */
1576 1.1 bouyer /* 0 on success, positive value on failure. */
1577 1.1 bouyer /****************************************************************************/
1578 1.1 bouyer int
1579 1.55 msaitoh bnx_nvram_write_dword(struct bnx_softc *sc, uint32_t offset, uint8_t *val,
1580 1.55 msaitoh uint32_t cmd_flags)
1581 1.1 bouyer {
1582 1.55 msaitoh uint32_t cmd, val32;
1583 1.1 bouyer int j;
1584 1.1 bouyer
1585 1.1 bouyer /* Build the command word. */
1586 1.1 bouyer cmd = BNX_NVM_COMMAND_DOIT | BNX_NVM_COMMAND_WR | cmd_flags;
1587 1.1 bouyer
1588 1.29 bouyer /* Calculate the offset for buffered flash if translation is used. */
1589 1.29 bouyer if (ISSET(sc->bnx_flash_info->flags, BNX_NV_TRANSLATE)) {
1590 1.1 bouyer offset = ((offset / sc->bnx_flash_info->page_size) <<
1591 1.1 bouyer sc->bnx_flash_info->page_bits) +
1592 1.1 bouyer (offset % sc->bnx_flash_info->page_size);
1593 1.29 bouyer }
1594 1.1 bouyer
1595 1.1 bouyer /*
1596 1.1 bouyer * Clear the DONE bit separately, convert NVRAM data to big-endian,
1597 1.1 bouyer * set the NVRAM address to write, and issue the write command
1598 1.1 bouyer */
1599 1.1 bouyer REG_WR(sc, BNX_NVM_COMMAND, BNX_NVM_COMMAND_DONE);
1600 1.1 bouyer memcpy(&val32, val, 4);
1601 1.1 bouyer val32 = htobe32(val32);
1602 1.1 bouyer REG_WR(sc, BNX_NVM_WRITE, val32);
1603 1.1 bouyer REG_WR(sc, BNX_NVM_ADDR, offset & BNX_NVM_ADDR_NVM_ADDR_VALUE);
1604 1.1 bouyer REG_WR(sc, BNX_NVM_COMMAND, cmd);
1605 1.1 bouyer
1606 1.1 bouyer /* Wait for completion. */
1607 1.1 bouyer for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
1608 1.1 bouyer DELAY(5);
1609 1.1 bouyer
1610 1.1 bouyer if (REG_RD(sc, BNX_NVM_COMMAND) & BNX_NVM_COMMAND_DONE)
1611 1.1 bouyer break;
1612 1.1 bouyer }
1613 1.1 bouyer if (j >= NVRAM_TIMEOUT_COUNT) {
1614 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Timeout error writing NVRAM at "
1615 1.1 bouyer "offset 0x%08X\n", __FILE__, __LINE__, offset);
1616 1.52 msaitoh return EBUSY;
1617 1.1 bouyer }
1618 1.1 bouyer
1619 1.52 msaitoh return 0;
1620 1.1 bouyer }
1621 1.1 bouyer #endif /* BNX_NVRAM_WRITE_SUPPORT */
1622 1.1 bouyer
1623 1.1 bouyer /****************************************************************************/
1624 1.1 bouyer /* Initialize NVRAM access. */
1625 1.1 bouyer /* */
1626 1.1 bouyer /* Identify the NVRAM device in use and prepare the NVRAM interface to */
1627 1.1 bouyer /* access that device. */
1628 1.1 bouyer /* */
1629 1.1 bouyer /* Returns: */
1630 1.1 bouyer /* 0 on success, positive value on failure. */
1631 1.1 bouyer /****************************************************************************/
1632 1.1 bouyer int
1633 1.1 bouyer bnx_init_nvram(struct bnx_softc *sc)
1634 1.1 bouyer {
1635 1.55 msaitoh uint32_t val;
1636 1.29 bouyer int j, entry_count, rc = 0;
1637 1.1 bouyer struct flash_spec *flash;
1638 1.1 bouyer
1639 1.12 perry DBPRINT(sc,BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
1640 1.1 bouyer
1641 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
1642 1.29 bouyer sc->bnx_flash_info = &flash_5709;
1643 1.29 bouyer goto bnx_init_nvram_get_flash_size;
1644 1.29 bouyer }
1645 1.29 bouyer
1646 1.1 bouyer /* Determine the selected interface. */
1647 1.1 bouyer val = REG_RD(sc, BNX_NVM_CFG1);
1648 1.1 bouyer
1649 1.1 bouyer entry_count = sizeof(flash_table) / sizeof(struct flash_spec);
1650 1.1 bouyer
1651 1.1 bouyer /*
1652 1.1 bouyer * Flash reconfiguration is required to support additional
1653 1.1 bouyer * NVRAM devices not directly supported in hardware.
1654 1.1 bouyer * Check if the flash interface was reconfigured
1655 1.1 bouyer * by the bootcode.
1656 1.1 bouyer */
1657 1.1 bouyer
1658 1.1 bouyer if (val & 0x40000000) {
1659 1.1 bouyer /* Flash interface reconfigured by bootcode. */
1660 1.1 bouyer
1661 1.48 christos DBPRINT(sc,BNX_INFO_LOAD,
1662 1.1 bouyer "bnx_init_nvram(): Flash WAS reconfigured.\n");
1663 1.1 bouyer
1664 1.1 bouyer for (j = 0, flash = &flash_table[0]; j < entry_count;
1665 1.1 bouyer j++, flash++) {
1666 1.1 bouyer if ((val & FLASH_BACKUP_STRAP_MASK) ==
1667 1.1 bouyer (flash->config1 & FLASH_BACKUP_STRAP_MASK)) {
1668 1.1 bouyer sc->bnx_flash_info = flash;
1669 1.1 bouyer break;
1670 1.1 bouyer }
1671 1.1 bouyer }
1672 1.1 bouyer } else {
1673 1.1 bouyer /* Flash interface not yet reconfigured. */
1674 1.55 msaitoh uint32_t mask;
1675 1.1 bouyer
1676 1.48 christos DBPRINT(sc,BNX_INFO_LOAD,
1677 1.1 bouyer "bnx_init_nvram(): Flash was NOT reconfigured.\n");
1678 1.1 bouyer
1679 1.1 bouyer if (val & (1 << 23))
1680 1.1 bouyer mask = FLASH_BACKUP_STRAP_MASK;
1681 1.1 bouyer else
1682 1.1 bouyer mask = FLASH_STRAP_MASK;
1683 1.1 bouyer
1684 1.1 bouyer /* Look for the matching NVRAM device configuration data. */
1685 1.1 bouyer for (j = 0, flash = &flash_table[0]; j < entry_count;
1686 1.1 bouyer j++, flash++) {
1687 1.1 bouyer /* Check if the dev matches any of the known devices. */
1688 1.1 bouyer if ((val & mask) == (flash->strapping & mask)) {
1689 1.1 bouyer /* Found a device match. */
1690 1.1 bouyer sc->bnx_flash_info = flash;
1691 1.1 bouyer
1692 1.1 bouyer /* Request access to the flash interface. */
1693 1.1 bouyer if ((rc = bnx_acquire_nvram_lock(sc)) != 0)
1694 1.52 msaitoh return rc;
1695 1.1 bouyer
1696 1.1 bouyer /* Reconfigure the flash interface. */
1697 1.1 bouyer bnx_enable_nvram_access(sc);
1698 1.1 bouyer REG_WR(sc, BNX_NVM_CFG1, flash->config1);
1699 1.1 bouyer REG_WR(sc, BNX_NVM_CFG2, flash->config2);
1700 1.1 bouyer REG_WR(sc, BNX_NVM_CFG3, flash->config3);
1701 1.1 bouyer REG_WR(sc, BNX_NVM_WRITE1, flash->write1);
1702 1.1 bouyer bnx_disable_nvram_access(sc);
1703 1.1 bouyer bnx_release_nvram_lock(sc);
1704 1.1 bouyer
1705 1.1 bouyer break;
1706 1.1 bouyer }
1707 1.1 bouyer }
1708 1.1 bouyer }
1709 1.1 bouyer
1710 1.1 bouyer /* Check if a matching device was found. */
1711 1.1 bouyer if (j == entry_count) {
1712 1.1 bouyer sc->bnx_flash_info = NULL;
1713 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Unknown Flash NVRAM found!\n",
1714 1.1 bouyer __FILE__, __LINE__);
1715 1.1 bouyer rc = ENODEV;
1716 1.1 bouyer }
1717 1.1 bouyer
1718 1.29 bouyer bnx_init_nvram_get_flash_size:
1719 1.1 bouyer /* Write the flash config data to the shared memory interface. */
1720 1.1 bouyer val = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_SHARED_HW_CFG_CONFIG2);
1721 1.1 bouyer val &= BNX_SHARED_HW_CFG2_NVM_SIZE_MASK;
1722 1.1 bouyer if (val)
1723 1.1 bouyer sc->bnx_flash_size = val;
1724 1.1 bouyer else
1725 1.1 bouyer sc->bnx_flash_size = sc->bnx_flash_info->total_size;
1726 1.1 bouyer
1727 1.1 bouyer DBPRINT(sc, BNX_INFO_LOAD, "bnx_init_nvram() flash->total_size = "
1728 1.1 bouyer "0x%08X\n", sc->bnx_flash_info->total_size);
1729 1.1 bouyer
1730 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
1731 1.1 bouyer
1732 1.52 msaitoh return rc;
1733 1.1 bouyer }
1734 1.1 bouyer
1735 1.1 bouyer /****************************************************************************/
1736 1.1 bouyer /* Read an arbitrary range of data from NVRAM. */
1737 1.1 bouyer /* */
1738 1.1 bouyer /* Prepares the NVRAM interface for access and reads the requested data */
1739 1.1 bouyer /* into the supplied buffer. */
1740 1.1 bouyer /* */
1741 1.1 bouyer /* Returns: */
1742 1.1 bouyer /* 0 on success and the data read, positive value on failure. */
1743 1.1 bouyer /****************************************************************************/
1744 1.1 bouyer int
1745 1.55 msaitoh bnx_nvram_read(struct bnx_softc *sc, uint32_t offset, uint8_t *ret_buf,
1746 1.1 bouyer int buf_size)
1747 1.1 bouyer {
1748 1.1 bouyer int rc = 0;
1749 1.55 msaitoh uint32_t cmd_flags, offset32, len32, extra;
1750 1.1 bouyer
1751 1.1 bouyer if (buf_size == 0)
1752 1.52 msaitoh return 0;
1753 1.1 bouyer
1754 1.1 bouyer /* Request access to the flash interface. */
1755 1.1 bouyer if ((rc = bnx_acquire_nvram_lock(sc)) != 0)
1756 1.52 msaitoh return rc;
1757 1.1 bouyer
1758 1.1 bouyer /* Enable access to flash interface */
1759 1.1 bouyer bnx_enable_nvram_access(sc);
1760 1.1 bouyer
1761 1.1 bouyer len32 = buf_size;
1762 1.1 bouyer offset32 = offset;
1763 1.1 bouyer extra = 0;
1764 1.1 bouyer
1765 1.1 bouyer cmd_flags = 0;
1766 1.1 bouyer
1767 1.1 bouyer if (offset32 & 3) {
1768 1.55 msaitoh uint8_t buf[4];
1769 1.55 msaitoh uint32_t pre_len;
1770 1.1 bouyer
1771 1.1 bouyer offset32 &= ~3;
1772 1.1 bouyer pre_len = 4 - (offset & 3);
1773 1.1 bouyer
1774 1.1 bouyer if (pre_len >= len32) {
1775 1.1 bouyer pre_len = len32;
1776 1.1 bouyer cmd_flags =
1777 1.1 bouyer BNX_NVM_COMMAND_FIRST | BNX_NVM_COMMAND_LAST;
1778 1.1 bouyer } else
1779 1.1 bouyer cmd_flags = BNX_NVM_COMMAND_FIRST;
1780 1.1 bouyer
1781 1.1 bouyer rc = bnx_nvram_read_dword(sc, offset32, buf, cmd_flags);
1782 1.1 bouyer
1783 1.1 bouyer if (rc)
1784 1.52 msaitoh return rc;
1785 1.1 bouyer
1786 1.1 bouyer memcpy(ret_buf, buf + (offset & 3), pre_len);
1787 1.1 bouyer
1788 1.1 bouyer offset32 += 4;
1789 1.1 bouyer ret_buf += pre_len;
1790 1.1 bouyer len32 -= pre_len;
1791 1.1 bouyer }
1792 1.1 bouyer
1793 1.1 bouyer if (len32 & 3) {
1794 1.1 bouyer extra = 4 - (len32 & 3);
1795 1.1 bouyer len32 = (len32 + 4) & ~3;
1796 1.1 bouyer }
1797 1.1 bouyer
1798 1.1 bouyer if (len32 == 4) {
1799 1.55 msaitoh uint8_t buf[4];
1800 1.1 bouyer
1801 1.1 bouyer if (cmd_flags)
1802 1.1 bouyer cmd_flags = BNX_NVM_COMMAND_LAST;
1803 1.1 bouyer else
1804 1.1 bouyer cmd_flags =
1805 1.1 bouyer BNX_NVM_COMMAND_FIRST | BNX_NVM_COMMAND_LAST;
1806 1.1 bouyer
1807 1.1 bouyer rc = bnx_nvram_read_dword(sc, offset32, buf, cmd_flags);
1808 1.1 bouyer
1809 1.1 bouyer memcpy(ret_buf, buf, 4 - extra);
1810 1.1 bouyer } else if (len32 > 0) {
1811 1.55 msaitoh uint8_t buf[4];
1812 1.1 bouyer
1813 1.1 bouyer /* Read the first word. */
1814 1.1 bouyer if (cmd_flags)
1815 1.1 bouyer cmd_flags = 0;
1816 1.1 bouyer else
1817 1.1 bouyer cmd_flags = BNX_NVM_COMMAND_FIRST;
1818 1.1 bouyer
1819 1.1 bouyer rc = bnx_nvram_read_dword(sc, offset32, ret_buf, cmd_flags);
1820 1.1 bouyer
1821 1.1 bouyer /* Advance to the next dword. */
1822 1.1 bouyer offset32 += 4;
1823 1.1 bouyer ret_buf += 4;
1824 1.1 bouyer len32 -= 4;
1825 1.1 bouyer
1826 1.1 bouyer while (len32 > 4 && rc == 0) {
1827 1.1 bouyer rc = bnx_nvram_read_dword(sc, offset32, ret_buf, 0);
1828 1.1 bouyer
1829 1.1 bouyer /* Advance to the next dword. */
1830 1.1 bouyer offset32 += 4;
1831 1.1 bouyer ret_buf += 4;
1832 1.1 bouyer len32 -= 4;
1833 1.1 bouyer }
1834 1.1 bouyer
1835 1.1 bouyer if (rc)
1836 1.52 msaitoh return rc;
1837 1.1 bouyer
1838 1.1 bouyer cmd_flags = BNX_NVM_COMMAND_LAST;
1839 1.1 bouyer rc = bnx_nvram_read_dword(sc, offset32, buf, cmd_flags);
1840 1.1 bouyer
1841 1.1 bouyer memcpy(ret_buf, buf, 4 - extra);
1842 1.1 bouyer }
1843 1.1 bouyer
1844 1.1 bouyer /* Disable access to flash interface and release the lock. */
1845 1.1 bouyer bnx_disable_nvram_access(sc);
1846 1.1 bouyer bnx_release_nvram_lock(sc);
1847 1.1 bouyer
1848 1.52 msaitoh return rc;
1849 1.1 bouyer }
1850 1.1 bouyer
1851 1.1 bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
1852 1.1 bouyer /****************************************************************************/
1853 1.1 bouyer /* Write an arbitrary range of data from NVRAM. */
1854 1.1 bouyer /* */
1855 1.1 bouyer /* Prepares the NVRAM interface for write access and writes the requested */
1856 1.1 bouyer /* data from the supplied buffer. The caller is responsible for */
1857 1.1 bouyer /* calculating any appropriate CRCs. */
1858 1.1 bouyer /* */
1859 1.1 bouyer /* Returns: */
1860 1.1 bouyer /* 0 on success, positive value on failure. */
1861 1.1 bouyer /****************************************************************************/
1862 1.1 bouyer int
1863 1.55 msaitoh bnx_nvram_write(struct bnx_softc *sc, uint32_t offset, uint8_t *data_buf,
1864 1.1 bouyer int buf_size)
1865 1.1 bouyer {
1866 1.55 msaitoh uint32_t written, offset32, len32;
1867 1.55 msaitoh uint8_t *buf, start[4], end[4];
1868 1.1 bouyer int rc = 0;
1869 1.1 bouyer int align_start, align_end;
1870 1.1 bouyer
1871 1.1 bouyer buf = data_buf;
1872 1.1 bouyer offset32 = offset;
1873 1.1 bouyer len32 = buf_size;
1874 1.1 bouyer align_start = align_end = 0;
1875 1.1 bouyer
1876 1.1 bouyer if ((align_start = (offset32 & 3))) {
1877 1.1 bouyer offset32 &= ~3;
1878 1.1 bouyer len32 += align_start;
1879 1.1 bouyer if ((rc = bnx_nvram_read(sc, offset32, start, 4)))
1880 1.52 msaitoh return rc;
1881 1.1 bouyer }
1882 1.1 bouyer
1883 1.1 bouyer if (len32 & 3) {
1884 1.54 msaitoh if ((len32 > 4) || !align_start) {
1885 1.1 bouyer align_end = 4 - (len32 & 3);
1886 1.1 bouyer len32 += align_end;
1887 1.1 bouyer if ((rc = bnx_nvram_read(sc, offset32 + len32 - 4,
1888 1.52 msaitoh end, 4)))
1889 1.52 msaitoh return rc;
1890 1.1 bouyer }
1891 1.1 bouyer }
1892 1.1 bouyer
1893 1.1 bouyer if (align_start || align_end) {
1894 1.1 bouyer buf = malloc(len32, M_DEVBUF, M_NOWAIT);
1895 1.1 bouyer if (buf == 0)
1896 1.52 msaitoh return ENOMEM;
1897 1.1 bouyer
1898 1.1 bouyer if (align_start)
1899 1.1 bouyer memcpy(buf, start, 4);
1900 1.1 bouyer
1901 1.1 bouyer if (align_end)
1902 1.1 bouyer memcpy(buf + len32 - 4, end, 4);
1903 1.1 bouyer
1904 1.1 bouyer memcpy(buf + align_start, data_buf, buf_size);
1905 1.1 bouyer }
1906 1.1 bouyer
1907 1.1 bouyer written = 0;
1908 1.1 bouyer while ((written < len32) && (rc == 0)) {
1909 1.55 msaitoh uint32_t page_start, page_end, data_start, data_end;
1910 1.55 msaitoh uint32_t addr, cmd_flags;
1911 1.1 bouyer int i;
1912 1.55 msaitoh uint8_t flash_buffer[264];
1913 1.1 bouyer
1914 1.1 bouyer /* Find the page_start addr */
1915 1.1 bouyer page_start = offset32 + written;
1916 1.1 bouyer page_start -= (page_start % sc->bnx_flash_info->page_size);
1917 1.1 bouyer /* Find the page_end addr */
1918 1.1 bouyer page_end = page_start + sc->bnx_flash_info->page_size;
1919 1.1 bouyer /* Find the data_start addr */
1920 1.1 bouyer data_start = (written == 0) ? offset32 : page_start;
1921 1.1 bouyer /* Find the data_end addr */
1922 1.1 bouyer data_end = (page_end > offset32 + len32) ?
1923 1.1 bouyer (offset32 + len32) : page_end;
1924 1.1 bouyer
1925 1.1 bouyer /* Request access to the flash interface. */
1926 1.1 bouyer if ((rc = bnx_acquire_nvram_lock(sc)) != 0)
1927 1.1 bouyer goto nvram_write_end;
1928 1.1 bouyer
1929 1.1 bouyer /* Enable access to flash interface */
1930 1.1 bouyer bnx_enable_nvram_access(sc);
1931 1.1 bouyer
1932 1.1 bouyer cmd_flags = BNX_NVM_COMMAND_FIRST;
1933 1.29 bouyer if (!ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)) {
1934 1.1 bouyer int j;
1935 1.1 bouyer
1936 1.1 bouyer /* Read the whole page into the buffer
1937 1.1 bouyer * (non-buffer flash only) */
1938 1.1 bouyer for (j = 0; j < sc->bnx_flash_info->page_size; j += 4) {
1939 1.1 bouyer if (j == (sc->bnx_flash_info->page_size - 4))
1940 1.1 bouyer cmd_flags |= BNX_NVM_COMMAND_LAST;
1941 1.1 bouyer
1942 1.1 bouyer rc = bnx_nvram_read_dword(sc,
1943 1.1 bouyer page_start + j,
1944 1.1 bouyer &flash_buffer[j],
1945 1.1 bouyer cmd_flags);
1946 1.1 bouyer
1947 1.1 bouyer if (rc)
1948 1.1 bouyer goto nvram_write_end;
1949 1.1 bouyer
1950 1.1 bouyer cmd_flags = 0;
1951 1.1 bouyer }
1952 1.1 bouyer }
1953 1.1 bouyer
1954 1.1 bouyer /* Enable writes to flash interface (unlock write-protect) */
1955 1.1 bouyer if ((rc = bnx_enable_nvram_write(sc)) != 0)
1956 1.1 bouyer goto nvram_write_end;
1957 1.1 bouyer
1958 1.1 bouyer /* Erase the page */
1959 1.1 bouyer if ((rc = bnx_nvram_erase_page(sc, page_start)) != 0)
1960 1.1 bouyer goto nvram_write_end;
1961 1.1 bouyer
1962 1.1 bouyer /* Re-enable the write again for the actual write */
1963 1.1 bouyer bnx_enable_nvram_write(sc);
1964 1.1 bouyer
1965 1.1 bouyer /* Loop to write back the buffer data from page_start to
1966 1.1 bouyer * data_start */
1967 1.1 bouyer i = 0;
1968 1.29 bouyer if (!ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)) {
1969 1.1 bouyer for (addr = page_start; addr < data_start;
1970 1.1 bouyer addr += 4, i += 4) {
1971 1.1 bouyer
1972 1.1 bouyer rc = bnx_nvram_write_dword(sc, addr,
1973 1.1 bouyer &flash_buffer[i], cmd_flags);
1974 1.1 bouyer
1975 1.1 bouyer if (rc != 0)
1976 1.1 bouyer goto nvram_write_end;
1977 1.1 bouyer
1978 1.1 bouyer cmd_flags = 0;
1979 1.1 bouyer }
1980 1.1 bouyer }
1981 1.1 bouyer
1982 1.1 bouyer /* Loop to write the new data from data_start to data_end */
1983 1.1 bouyer for (addr = data_start; addr < data_end; addr += 4, i++) {
1984 1.1 bouyer if ((addr == page_end - 4) ||
1985 1.29 bouyer (ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)
1986 1.29 bouyer && (addr == data_end - 4))) {
1987 1.1 bouyer
1988 1.1 bouyer cmd_flags |= BNX_NVM_COMMAND_LAST;
1989 1.1 bouyer }
1990 1.1 bouyer
1991 1.1 bouyer rc = bnx_nvram_write_dword(sc, addr, buf, cmd_flags);
1992 1.1 bouyer
1993 1.1 bouyer if (rc != 0)
1994 1.1 bouyer goto nvram_write_end;
1995 1.1 bouyer
1996 1.1 bouyer cmd_flags = 0;
1997 1.1 bouyer buf += 4;
1998 1.1 bouyer }
1999 1.1 bouyer
2000 1.1 bouyer /* Loop to write back the buffer data from data_end
2001 1.1 bouyer * to page_end */
2002 1.29 bouyer if (!ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)) {
2003 1.1 bouyer for (addr = data_end; addr < page_end;
2004 1.1 bouyer addr += 4, i += 4) {
2005 1.1 bouyer
2006 1.1 bouyer if (addr == page_end-4)
2007 1.1 bouyer cmd_flags = BNX_NVM_COMMAND_LAST;
2008 1.1 bouyer
2009 1.1 bouyer rc = bnx_nvram_write_dword(sc, addr,
2010 1.1 bouyer &flash_buffer[i], cmd_flags);
2011 1.1 bouyer
2012 1.1 bouyer if (rc != 0)
2013 1.1 bouyer goto nvram_write_end;
2014 1.1 bouyer
2015 1.1 bouyer cmd_flags = 0;
2016 1.1 bouyer }
2017 1.1 bouyer }
2018 1.1 bouyer
2019 1.1 bouyer /* Disable writes to flash interface (lock write-protect) */
2020 1.1 bouyer bnx_disable_nvram_write(sc);
2021 1.1 bouyer
2022 1.1 bouyer /* Disable access to flash interface */
2023 1.1 bouyer bnx_disable_nvram_access(sc);
2024 1.1 bouyer bnx_release_nvram_lock(sc);
2025 1.1 bouyer
2026 1.1 bouyer /* Increment written */
2027 1.1 bouyer written += data_end - data_start;
2028 1.1 bouyer }
2029 1.1 bouyer
2030 1.1 bouyer nvram_write_end:
2031 1.1 bouyer if (align_start || align_end)
2032 1.1 bouyer free(buf, M_DEVBUF);
2033 1.1 bouyer
2034 1.52 msaitoh return rc;
2035 1.1 bouyer }
2036 1.1 bouyer #endif /* BNX_NVRAM_WRITE_SUPPORT */
2037 1.1 bouyer
2038 1.1 bouyer /****************************************************************************/
2039 1.1 bouyer /* Verifies that NVRAM is accessible and contains valid data. */
2040 1.1 bouyer /* */
2041 1.1 bouyer /* Reads the configuration data from NVRAM and verifies that the CRC is */
2042 1.1 bouyer /* correct. */
2043 1.1 bouyer /* */
2044 1.1 bouyer /* Returns: */
2045 1.1 bouyer /* 0 on success, positive value on failure. */
2046 1.1 bouyer /****************************************************************************/
2047 1.1 bouyer int
2048 1.1 bouyer bnx_nvram_test(struct bnx_softc *sc)
2049 1.1 bouyer {
2050 1.55 msaitoh uint32_t buf[BNX_NVRAM_SIZE / 4];
2051 1.55 msaitoh uint8_t *data = (uint8_t *) buf;
2052 1.1 bouyer int rc = 0;
2053 1.55 msaitoh uint32_t magic, csum;
2054 1.1 bouyer
2055 1.1 bouyer /*
2056 1.1 bouyer * Check that the device NVRAM is valid by reading
2057 1.1 bouyer * the magic value at offset 0.
2058 1.1 bouyer */
2059 1.1 bouyer if ((rc = bnx_nvram_read(sc, 0, data, 4)) != 0)
2060 1.1 bouyer goto bnx_nvram_test_done;
2061 1.1 bouyer
2062 1.1 bouyer magic = bnx_be32toh(buf[0]);
2063 1.1 bouyer if (magic != BNX_NVRAM_MAGIC) {
2064 1.1 bouyer rc = ENODEV;
2065 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Invalid NVRAM magic value! "
2066 1.1 bouyer "Expected: 0x%08X, Found: 0x%08X\n",
2067 1.1 bouyer __FILE__, __LINE__, BNX_NVRAM_MAGIC, magic);
2068 1.1 bouyer goto bnx_nvram_test_done;
2069 1.1 bouyer }
2070 1.1 bouyer
2071 1.1 bouyer /*
2072 1.1 bouyer * Verify that the device NVRAM includes valid
2073 1.1 bouyer * configuration data.
2074 1.1 bouyer */
2075 1.1 bouyer if ((rc = bnx_nvram_read(sc, 0x100, data, BNX_NVRAM_SIZE)) != 0)
2076 1.1 bouyer goto bnx_nvram_test_done;
2077 1.1 bouyer
2078 1.1 bouyer csum = ether_crc32_le(data, 0x100);
2079 1.1 bouyer if (csum != BNX_CRC32_RESIDUAL) {
2080 1.1 bouyer rc = ENODEV;
2081 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Invalid Manufacturing Information "
2082 1.1 bouyer "NVRAM CRC! Expected: 0x%08X, Found: 0x%08X\n",
2083 1.1 bouyer __FILE__, __LINE__, BNX_CRC32_RESIDUAL, csum);
2084 1.1 bouyer goto bnx_nvram_test_done;
2085 1.1 bouyer }
2086 1.1 bouyer
2087 1.1 bouyer csum = ether_crc32_le(data + 0x100, 0x100);
2088 1.1 bouyer if (csum != BNX_CRC32_RESIDUAL) {
2089 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Invalid Feature Configuration "
2090 1.1 bouyer "Information NVRAM CRC! Expected: 0x%08X, Found: 08%08X\n",
2091 1.1 bouyer __FILE__, __LINE__, BNX_CRC32_RESIDUAL, csum);
2092 1.1 bouyer rc = ENODEV;
2093 1.1 bouyer }
2094 1.1 bouyer
2095 1.1 bouyer bnx_nvram_test_done:
2096 1.52 msaitoh return rc;
2097 1.1 bouyer }
2098 1.1 bouyer
2099 1.1 bouyer /****************************************************************************/
2100 1.29 bouyer /* Identifies the current media type of the controller and sets the PHY */
2101 1.29 bouyer /* address. */
2102 1.29 bouyer /* */
2103 1.29 bouyer /* Returns: */
2104 1.29 bouyer /* Nothing. */
2105 1.29 bouyer /****************************************************************************/
2106 1.29 bouyer void
2107 1.29 bouyer bnx_get_media(struct bnx_softc *sc)
2108 1.29 bouyer {
2109 1.29 bouyer sc->bnx_phy_addr = 1;
2110 1.48 christos
2111 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
2112 1.55 msaitoh uint32_t val = REG_RD(sc, BNX_MISC_DUAL_MEDIA_CTRL);
2113 1.55 msaitoh uint32_t bond_id = val & BNX_MISC_DUAL_MEDIA_CTRL_BOND_ID;
2114 1.55 msaitoh uint32_t strap;
2115 1.29 bouyer
2116 1.29 bouyer /*
2117 1.29 bouyer * The BCM5709S is software configurable
2118 1.29 bouyer * for Copper or SerDes operation.
2119 1.29 bouyer */
2120 1.29 bouyer if (bond_id == BNX_MISC_DUAL_MEDIA_CTRL_BOND_ID_C) {
2121 1.29 bouyer DBPRINT(sc, BNX_INFO_LOAD,
2122 1.29 bouyer "5709 bonded for copper.\n");
2123 1.29 bouyer goto bnx_get_media_exit;
2124 1.29 bouyer } else if (bond_id == BNX_MISC_DUAL_MEDIA_CTRL_BOND_ID_S) {
2125 1.29 bouyer DBPRINT(sc, BNX_INFO_LOAD,
2126 1.29 bouyer "5709 bonded for dual media.\n");
2127 1.29 bouyer sc->bnx_phy_flags |= BNX_PHY_SERDES_FLAG;
2128 1.29 bouyer goto bnx_get_media_exit;
2129 1.29 bouyer }
2130 1.29 bouyer
2131 1.29 bouyer if (val & BNX_MISC_DUAL_MEDIA_CTRL_STRAP_OVERRIDE)
2132 1.29 bouyer strap = (val & BNX_MISC_DUAL_MEDIA_CTRL_PHY_CTRL) >> 21;
2133 1.29 bouyer else {
2134 1.29 bouyer strap = (val & BNX_MISC_DUAL_MEDIA_CTRL_PHY_CTRL_STRAP)
2135 1.29 bouyer >> 8;
2136 1.29 bouyer }
2137 1.29 bouyer
2138 1.29 bouyer if (sc->bnx_pa.pa_function == 0) {
2139 1.29 bouyer switch (strap) {
2140 1.29 bouyer case 0x4:
2141 1.29 bouyer case 0x5:
2142 1.29 bouyer case 0x6:
2143 1.48 christos DBPRINT(sc, BNX_INFO_LOAD,
2144 1.29 bouyer "BCM5709 s/w configured for SerDes.\n");
2145 1.29 bouyer sc->bnx_phy_flags |= BNX_PHY_SERDES_FLAG;
2146 1.35 jym break;
2147 1.29 bouyer default:
2148 1.48 christos DBPRINT(sc, BNX_INFO_LOAD,
2149 1.29 bouyer "BCM5709 s/w configured for Copper.\n");
2150 1.29 bouyer }
2151 1.29 bouyer } else {
2152 1.29 bouyer switch (strap) {
2153 1.29 bouyer case 0x1:
2154 1.29 bouyer case 0x2:
2155 1.29 bouyer case 0x4:
2156 1.48 christos DBPRINT(sc, BNX_INFO_LOAD,
2157 1.29 bouyer "BCM5709 s/w configured for SerDes.\n");
2158 1.29 bouyer sc->bnx_phy_flags |= BNX_PHY_SERDES_FLAG;
2159 1.35 jym break;
2160 1.29 bouyer default:
2161 1.48 christos DBPRINT(sc, BNX_INFO_LOAD,
2162 1.29 bouyer "BCM5709 s/w configured for Copper.\n");
2163 1.29 bouyer }
2164 1.29 bouyer }
2165 1.29 bouyer
2166 1.29 bouyer } else if (BNX_CHIP_BOND_ID(sc) & BNX_CHIP_BOND_ID_SERDES_BIT)
2167 1.29 bouyer sc->bnx_phy_flags |= BNX_PHY_SERDES_FLAG;
2168 1.29 bouyer
2169 1.34 dholland if (sc->bnx_phy_flags & BNX_PHY_SERDES_FLAG) {
2170 1.55 msaitoh uint32_t val;
2171 1.48 christos
2172 1.29 bouyer sc->bnx_flags |= BNX_NO_WOL_FLAG;
2173 1.41 jym
2174 1.41 jym if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709)
2175 1.41 jym sc->bnx_phy_flags |= BNX_PHY_IEEE_CLAUSE_45_FLAG;
2176 1.41 jym
2177 1.41 jym /*
2178 1.41 jym * The BCM5708S, BCM5709S, and BCM5716S controllers use a
2179 1.41 jym * separate PHY for SerDes.
2180 1.41 jym */
2181 1.29 bouyer if (BNX_CHIP_NUM(sc) != BNX_CHIP_NUM_5706) {
2182 1.29 bouyer sc->bnx_phy_addr = 2;
2183 1.29 bouyer val = REG_RD_IND(sc, sc->bnx_shmem_base +
2184 1.29 bouyer BNX_SHARED_HW_CFG_CONFIG);
2185 1.29 bouyer if (val & BNX_SHARED_HW_CFG_PHY_2_5G) {
2186 1.29 bouyer sc->bnx_phy_flags |= BNX_PHY_2_5G_CAPABLE_FLAG;
2187 1.29 bouyer DBPRINT(sc, BNX_INFO_LOAD,
2188 1.29 bouyer "Found 2.5Gb capable adapter\n");
2189 1.29 bouyer }
2190 1.29 bouyer }
2191 1.29 bouyer } else if ((BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5706) ||
2192 1.29 bouyer (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5708))
2193 1.29 bouyer sc->bnx_phy_flags |= BNX_PHY_CRC_FIX_FLAG;
2194 1.29 bouyer
2195 1.29 bouyer bnx_get_media_exit:
2196 1.74 msaitoh DBPRINT(sc, (BNX_INFO_LOAD | BNX_INFO_PHY),
2197 1.29 bouyer "Using PHY address %d.\n", sc->bnx_phy_addr);
2198 1.29 bouyer }
2199 1.29 bouyer
2200 1.29 bouyer /****************************************************************************/
2201 1.41 jym /* Performs PHY initialization required before MII drivers access the */
2202 1.41 jym /* device. */
2203 1.41 jym /* */
2204 1.41 jym /* Returns: */
2205 1.41 jym /* Nothing. */
2206 1.41 jym /****************************************************************************/
2207 1.41 jym void
2208 1.41 jym bnx_init_media(struct bnx_softc *sc)
2209 1.41 jym {
2210 1.41 jym if (sc->bnx_phy_flags & BNX_PHY_IEEE_CLAUSE_45_FLAG) {
2211 1.41 jym /*
2212 1.41 jym * Configure the BCM5709S / BCM5716S PHYs to use traditional
2213 1.41 jym * IEEE Clause 22 method. Otherwise we have no way to attach
2214 1.41 jym * the PHY to the mii(4) layer. PHY specific configuration
2215 1.41 jym * is done by the mii(4) layer.
2216 1.41 jym */
2217 1.41 jym
2218 1.41 jym /* Select auto-negotiation MMD of the PHY. */
2219 1.41 jym bnx_miibus_write_reg(sc->bnx_dev, sc->bnx_phy_addr,
2220 1.41 jym BRGPHY_BLOCK_ADDR, BRGPHY_BLOCK_ADDR_ADDR_EXT);
2221 1.41 jym
2222 1.41 jym bnx_miibus_write_reg(sc->bnx_dev, sc->bnx_phy_addr,
2223 1.41 jym BRGPHY_ADDR_EXT, BRGPHY_ADDR_EXT_AN_MMD);
2224 1.41 jym
2225 1.41 jym bnx_miibus_write_reg(sc->bnx_dev, sc->bnx_phy_addr,
2226 1.41 jym BRGPHY_BLOCK_ADDR, BRGPHY_BLOCK_ADDR_COMBO_IEEE0);
2227 1.41 jym }
2228 1.41 jym }
2229 1.41 jym
2230 1.41 jym /****************************************************************************/
2231 1.1 bouyer /* Free any DMA memory owned by the driver. */
2232 1.1 bouyer /* */
2233 1.1 bouyer /* Scans through each data structre that requires DMA memory and frees */
2234 1.1 bouyer /* the memory if allocated. */
2235 1.1 bouyer /* */
2236 1.1 bouyer /* Returns: */
2237 1.1 bouyer /* Nothing. */
2238 1.1 bouyer /****************************************************************************/
2239 1.1 bouyer void
2240 1.1 bouyer bnx_dma_free(struct bnx_softc *sc)
2241 1.1 bouyer {
2242 1.1 bouyer int i;
2243 1.1 bouyer
2244 1.12 perry DBPRINT(sc,BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
2245 1.1 bouyer
2246 1.1 bouyer /* Destroy the status block. */
2247 1.1 bouyer if (sc->status_block != NULL && sc->status_map != NULL) {
2248 1.69 msaitoh bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0,
2249 1.69 msaitoh sc->status_map->dm_mapsize, BUS_DMASYNC_POSTREAD);
2250 1.1 bouyer bus_dmamap_unload(sc->bnx_dmatag, sc->status_map);
2251 1.3 christos bus_dmamem_unmap(sc->bnx_dmatag, (void *)sc->status_block,
2252 1.52 msaitoh BNX_STATUS_BLK_SZ);
2253 1.1 bouyer bus_dmamem_free(sc->bnx_dmatag, &sc->status_seg,
2254 1.1 bouyer sc->status_rseg);
2255 1.1 bouyer bus_dmamap_destroy(sc->bnx_dmatag, sc->status_map);
2256 1.1 bouyer sc->status_block = NULL;
2257 1.1 bouyer sc->status_map = NULL;
2258 1.1 bouyer }
2259 1.1 bouyer
2260 1.1 bouyer /* Destroy the statistics block. */
2261 1.1 bouyer if (sc->stats_block != NULL && sc->stats_map != NULL) {
2262 1.1 bouyer bus_dmamap_unload(sc->bnx_dmatag, sc->stats_map);
2263 1.3 christos bus_dmamem_unmap(sc->bnx_dmatag, (void *)sc->stats_block,
2264 1.52 msaitoh BNX_STATS_BLK_SZ);
2265 1.1 bouyer bus_dmamem_free(sc->bnx_dmatag, &sc->stats_seg,
2266 1.1 bouyer sc->stats_rseg);
2267 1.1 bouyer bus_dmamap_destroy(sc->bnx_dmatag, sc->stats_map);
2268 1.1 bouyer sc->stats_block = NULL;
2269 1.1 bouyer sc->stats_map = NULL;
2270 1.1 bouyer }
2271 1.1 bouyer
2272 1.29 bouyer /* Free, unmap and destroy all context memory pages. */
2273 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
2274 1.29 bouyer for (i = 0; i < sc->ctx_pages; i++) {
2275 1.29 bouyer if (sc->ctx_block[i] != NULL) {
2276 1.29 bouyer bus_dmamap_unload(sc->bnx_dmatag,
2277 1.29 bouyer sc->ctx_map[i]);
2278 1.29 bouyer bus_dmamem_unmap(sc->bnx_dmatag,
2279 1.29 bouyer (void *)sc->ctx_block[i],
2280 1.29 bouyer BCM_PAGE_SIZE);
2281 1.29 bouyer bus_dmamem_free(sc->bnx_dmatag,
2282 1.29 bouyer &sc->ctx_segs[i], sc->ctx_rsegs[i]);
2283 1.29 bouyer bus_dmamap_destroy(sc->bnx_dmatag,
2284 1.29 bouyer sc->ctx_map[i]);
2285 1.29 bouyer sc->ctx_block[i] = NULL;
2286 1.29 bouyer }
2287 1.29 bouyer }
2288 1.29 bouyer }
2289 1.29 bouyer
2290 1.1 bouyer /* Free, unmap and destroy all TX buffer descriptor chain pages. */
2291 1.1 bouyer for (i = 0; i < TX_PAGES; i++ ) {
2292 1.1 bouyer if (sc->tx_bd_chain[i] != NULL &&
2293 1.1 bouyer sc->tx_bd_chain_map[i] != NULL) {
2294 1.1 bouyer bus_dmamap_unload(sc->bnx_dmatag,
2295 1.1 bouyer sc->tx_bd_chain_map[i]);
2296 1.1 bouyer bus_dmamem_unmap(sc->bnx_dmatag,
2297 1.3 christos (void *)sc->tx_bd_chain[i], BNX_TX_CHAIN_PAGE_SZ);
2298 1.1 bouyer bus_dmamem_free(sc->bnx_dmatag, &sc->tx_bd_chain_seg[i],
2299 1.1 bouyer sc->tx_bd_chain_rseg[i]);
2300 1.1 bouyer bus_dmamap_destroy(sc->bnx_dmatag,
2301 1.1 bouyer sc->tx_bd_chain_map[i]);
2302 1.1 bouyer sc->tx_bd_chain[i] = NULL;
2303 1.1 bouyer sc->tx_bd_chain_map[i] = NULL;
2304 1.1 bouyer }
2305 1.1 bouyer }
2306 1.1 bouyer
2307 1.29 bouyer /* Destroy the TX dmamaps. */
2308 1.29 bouyer /* This isn't necessary since we dont allocate them up front */
2309 1.1 bouyer
2310 1.1 bouyer /* Free, unmap and destroy all RX buffer descriptor chain pages. */
2311 1.1 bouyer for (i = 0; i < RX_PAGES; i++ ) {
2312 1.1 bouyer if (sc->rx_bd_chain[i] != NULL &&
2313 1.1 bouyer sc->rx_bd_chain_map[i] != NULL) {
2314 1.1 bouyer bus_dmamap_unload(sc->bnx_dmatag,
2315 1.1 bouyer sc->rx_bd_chain_map[i]);
2316 1.1 bouyer bus_dmamem_unmap(sc->bnx_dmatag,
2317 1.3 christos (void *)sc->rx_bd_chain[i], BNX_RX_CHAIN_PAGE_SZ);
2318 1.1 bouyer bus_dmamem_free(sc->bnx_dmatag, &sc->rx_bd_chain_seg[i],
2319 1.1 bouyer sc->rx_bd_chain_rseg[i]);
2320 1.1 bouyer
2321 1.1 bouyer bus_dmamap_destroy(sc->bnx_dmatag,
2322 1.1 bouyer sc->rx_bd_chain_map[i]);
2323 1.1 bouyer sc->rx_bd_chain[i] = NULL;
2324 1.1 bouyer sc->rx_bd_chain_map[i] = NULL;
2325 1.1 bouyer }
2326 1.1 bouyer }
2327 1.1 bouyer
2328 1.1 bouyer /* Unload and destroy the RX mbuf maps. */
2329 1.1 bouyer for (i = 0; i < TOTAL_RX_BD; i++) {
2330 1.1 bouyer if (sc->rx_mbuf_map[i] != NULL) {
2331 1.1 bouyer bus_dmamap_unload(sc->bnx_dmatag, sc->rx_mbuf_map[i]);
2332 1.1 bouyer bus_dmamap_destroy(sc->bnx_dmatag, sc->rx_mbuf_map[i]);
2333 1.1 bouyer }
2334 1.1 bouyer }
2335 1.1 bouyer
2336 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
2337 1.1 bouyer }
2338 1.1 bouyer
2339 1.1 bouyer /****************************************************************************/
2340 1.1 bouyer /* Allocate any DMA memory needed by the driver. */
2341 1.1 bouyer /* */
2342 1.1 bouyer /* Allocates DMA memory needed for the various global structures needed by */
2343 1.1 bouyer /* hardware. */
2344 1.1 bouyer /* */
2345 1.1 bouyer /* Returns: */
2346 1.1 bouyer /* 0 for success, positive value for failure. */
2347 1.1 bouyer /****************************************************************************/
2348 1.1 bouyer int
2349 1.1 bouyer bnx_dma_alloc(struct bnx_softc *sc)
2350 1.1 bouyer {
2351 1.1 bouyer int i, rc = 0;
2352 1.1 bouyer
2353 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
2354 1.1 bouyer
2355 1.1 bouyer /*
2356 1.1 bouyer * Allocate DMA memory for the status block, map the memory into DMA
2357 1.1 bouyer * space, and fetch the physical address of the block.
2358 1.1 bouyer */
2359 1.1 bouyer if (bus_dmamap_create(sc->bnx_dmatag, BNX_STATUS_BLK_SZ, 1,
2360 1.1 bouyer BNX_STATUS_BLK_SZ, 0, BUS_DMA_NOWAIT, &sc->status_map)) {
2361 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2362 1.13 dyoung "Could not create status block DMA map!\n");
2363 1.1 bouyer rc = ENOMEM;
2364 1.1 bouyer goto bnx_dma_alloc_exit;
2365 1.1 bouyer }
2366 1.1 bouyer
2367 1.1 bouyer if (bus_dmamem_alloc(sc->bnx_dmatag, BNX_STATUS_BLK_SZ,
2368 1.1 bouyer BNX_DMA_ALIGN, BNX_DMA_BOUNDARY, &sc->status_seg, 1,
2369 1.1 bouyer &sc->status_rseg, BUS_DMA_NOWAIT)) {
2370 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2371 1.13 dyoung "Could not allocate status block DMA memory!\n");
2372 1.1 bouyer rc = ENOMEM;
2373 1.1 bouyer goto bnx_dma_alloc_exit;
2374 1.1 bouyer }
2375 1.1 bouyer
2376 1.1 bouyer if (bus_dmamem_map(sc->bnx_dmatag, &sc->status_seg, sc->status_rseg,
2377 1.3 christos BNX_STATUS_BLK_SZ, (void **)&sc->status_block, BUS_DMA_NOWAIT)) {
2378 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2379 1.13 dyoung "Could not map status block DMA memory!\n");
2380 1.1 bouyer rc = ENOMEM;
2381 1.1 bouyer goto bnx_dma_alloc_exit;
2382 1.1 bouyer }
2383 1.1 bouyer
2384 1.1 bouyer if (bus_dmamap_load(sc->bnx_dmatag, sc->status_map,
2385 1.1 bouyer sc->status_block, BNX_STATUS_BLK_SZ, NULL, BUS_DMA_NOWAIT)) {
2386 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2387 1.13 dyoung "Could not load status block DMA memory!\n");
2388 1.1 bouyer rc = ENOMEM;
2389 1.1 bouyer goto bnx_dma_alloc_exit;
2390 1.1 bouyer }
2391 1.1 bouyer
2392 1.69 msaitoh bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0,
2393 1.69 msaitoh sc->status_map->dm_mapsize, BUS_DMASYNC_PREREAD);
2394 1.69 msaitoh
2395 1.1 bouyer sc->status_block_paddr = sc->status_map->dm_segs[0].ds_addr;
2396 1.23 cegger memset(sc->status_block, 0, BNX_STATUS_BLK_SZ);
2397 1.1 bouyer
2398 1.1 bouyer /* DRC - Fix for 64 bit addresses. */
2399 1.1 bouyer DBPRINT(sc, BNX_INFO, "status_block_paddr = 0x%08X\n",
2400 1.55 msaitoh (uint32_t) sc->status_block_paddr);
2401 1.1 bouyer
2402 1.29 bouyer /* BCM5709 uses host memory as cache for context memory. */
2403 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
2404 1.29 bouyer sc->ctx_pages = 0x2000 / BCM_PAGE_SIZE;
2405 1.29 bouyer if (sc->ctx_pages == 0)
2406 1.29 bouyer sc->ctx_pages = 1;
2407 1.29 bouyer if (sc->ctx_pages > 4) /* XXX */
2408 1.29 bouyer sc->ctx_pages = 4;
2409 1.29 bouyer
2410 1.29 bouyer DBRUNIF((sc->ctx_pages > 512),
2411 1.29 bouyer BNX_PRINTF(sc, "%s(%d): Too many CTX pages! %d > 512\n",
2412 1.29 bouyer __FILE__, __LINE__, sc->ctx_pages));
2413 1.29 bouyer
2414 1.29 bouyer
2415 1.29 bouyer for (i = 0; i < sc->ctx_pages; i++) {
2416 1.29 bouyer if (bus_dmamap_create(sc->bnx_dmatag, BCM_PAGE_SIZE,
2417 1.29 bouyer 1, BCM_PAGE_SIZE, BNX_DMA_BOUNDARY,
2418 1.29 bouyer BUS_DMA_NOWAIT | BUS_DMA_ALLOCNOW,
2419 1.29 bouyer &sc->ctx_map[i]) != 0) {
2420 1.29 bouyer rc = ENOMEM;
2421 1.29 bouyer goto bnx_dma_alloc_exit;
2422 1.29 bouyer }
2423 1.29 bouyer
2424 1.29 bouyer if (bus_dmamem_alloc(sc->bnx_dmatag, BCM_PAGE_SIZE,
2425 1.29 bouyer BCM_PAGE_SIZE, BNX_DMA_BOUNDARY, &sc->ctx_segs[i],
2426 1.29 bouyer 1, &sc->ctx_rsegs[i], BUS_DMA_NOWAIT) != 0) {
2427 1.29 bouyer rc = ENOMEM;
2428 1.29 bouyer goto bnx_dma_alloc_exit;
2429 1.29 bouyer }
2430 1.29 bouyer
2431 1.29 bouyer if (bus_dmamem_map(sc->bnx_dmatag, &sc->ctx_segs[i],
2432 1.29 bouyer sc->ctx_rsegs[i], BCM_PAGE_SIZE,
2433 1.29 bouyer &sc->ctx_block[i], BUS_DMA_NOWAIT) != 0) {
2434 1.29 bouyer rc = ENOMEM;
2435 1.29 bouyer goto bnx_dma_alloc_exit;
2436 1.29 bouyer }
2437 1.29 bouyer
2438 1.29 bouyer if (bus_dmamap_load(sc->bnx_dmatag, sc->ctx_map[i],
2439 1.29 bouyer sc->ctx_block[i], BCM_PAGE_SIZE, NULL,
2440 1.29 bouyer BUS_DMA_NOWAIT) != 0) {
2441 1.29 bouyer rc = ENOMEM;
2442 1.29 bouyer goto bnx_dma_alloc_exit;
2443 1.29 bouyer }
2444 1.29 bouyer
2445 1.29 bouyer bzero(sc->ctx_block[i], BCM_PAGE_SIZE);
2446 1.29 bouyer }
2447 1.29 bouyer }
2448 1.29 bouyer
2449 1.1 bouyer /*
2450 1.1 bouyer * Allocate DMA memory for the statistics block, map the memory into
2451 1.1 bouyer * DMA space, and fetch the physical address of the block.
2452 1.1 bouyer */
2453 1.1 bouyer if (bus_dmamap_create(sc->bnx_dmatag, BNX_STATS_BLK_SZ, 1,
2454 1.1 bouyer BNX_STATS_BLK_SZ, 0, BUS_DMA_NOWAIT, &sc->stats_map)) {
2455 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2456 1.13 dyoung "Could not create stats block DMA map!\n");
2457 1.1 bouyer rc = ENOMEM;
2458 1.1 bouyer goto bnx_dma_alloc_exit;
2459 1.1 bouyer }
2460 1.1 bouyer
2461 1.1 bouyer if (bus_dmamem_alloc(sc->bnx_dmatag, BNX_STATS_BLK_SZ,
2462 1.1 bouyer BNX_DMA_ALIGN, BNX_DMA_BOUNDARY, &sc->stats_seg, 1,
2463 1.1 bouyer &sc->stats_rseg, BUS_DMA_NOWAIT)) {
2464 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2465 1.13 dyoung "Could not allocate stats block DMA memory!\n");
2466 1.1 bouyer rc = ENOMEM;
2467 1.1 bouyer goto bnx_dma_alloc_exit;
2468 1.1 bouyer }
2469 1.1 bouyer
2470 1.1 bouyer if (bus_dmamem_map(sc->bnx_dmatag, &sc->stats_seg, sc->stats_rseg,
2471 1.3 christos BNX_STATS_BLK_SZ, (void **)&sc->stats_block, BUS_DMA_NOWAIT)) {
2472 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2473 1.13 dyoung "Could not map stats block DMA memory!\n");
2474 1.1 bouyer rc = ENOMEM;
2475 1.1 bouyer goto bnx_dma_alloc_exit;
2476 1.1 bouyer }
2477 1.1 bouyer
2478 1.1 bouyer if (bus_dmamap_load(sc->bnx_dmatag, sc->stats_map,
2479 1.1 bouyer sc->stats_block, BNX_STATS_BLK_SZ, NULL, BUS_DMA_NOWAIT)) {
2480 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2481 1.13 dyoung "Could not load status block DMA memory!\n");
2482 1.1 bouyer rc = ENOMEM;
2483 1.1 bouyer goto bnx_dma_alloc_exit;
2484 1.1 bouyer }
2485 1.1 bouyer
2486 1.1 bouyer sc->stats_block_paddr = sc->stats_map->dm_segs[0].ds_addr;
2487 1.23 cegger memset(sc->stats_block, 0, BNX_STATS_BLK_SZ);
2488 1.1 bouyer
2489 1.1 bouyer /* DRC - Fix for 64 bit address. */
2490 1.48 christos DBPRINT(sc,BNX_INFO, "stats_block_paddr = 0x%08X\n",
2491 1.55 msaitoh (uint32_t) sc->stats_block_paddr);
2492 1.1 bouyer
2493 1.1 bouyer /*
2494 1.1 bouyer * Allocate DMA memory for the TX buffer descriptor chain,
2495 1.1 bouyer * and fetch the physical address of the block.
2496 1.1 bouyer */
2497 1.1 bouyer for (i = 0; i < TX_PAGES; i++) {
2498 1.1 bouyer if (bus_dmamap_create(sc->bnx_dmatag, BNX_TX_CHAIN_PAGE_SZ, 1,
2499 1.1 bouyer BNX_TX_CHAIN_PAGE_SZ, 0, BUS_DMA_NOWAIT,
2500 1.1 bouyer &sc->tx_bd_chain_map[i])) {
2501 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2502 1.13 dyoung "Could not create Tx desc %d DMA map!\n", i);
2503 1.1 bouyer rc = ENOMEM;
2504 1.1 bouyer goto bnx_dma_alloc_exit;
2505 1.1 bouyer }
2506 1.1 bouyer
2507 1.1 bouyer if (bus_dmamem_alloc(sc->bnx_dmatag, BNX_TX_CHAIN_PAGE_SZ,
2508 1.1 bouyer BCM_PAGE_SIZE, BNX_DMA_BOUNDARY, &sc->tx_bd_chain_seg[i], 1,
2509 1.1 bouyer &sc->tx_bd_chain_rseg[i], BUS_DMA_NOWAIT)) {
2510 1.48 christos aprint_error_dev(sc->bnx_dev,
2511 1.13 dyoung "Could not allocate TX desc %d DMA memory!\n",
2512 1.13 dyoung i);
2513 1.1 bouyer rc = ENOMEM;
2514 1.1 bouyer goto bnx_dma_alloc_exit;
2515 1.1 bouyer }
2516 1.1 bouyer
2517 1.1 bouyer if (bus_dmamem_map(sc->bnx_dmatag, &sc->tx_bd_chain_seg[i],
2518 1.1 bouyer sc->tx_bd_chain_rseg[i], BNX_TX_CHAIN_PAGE_SZ,
2519 1.3 christos (void **)&sc->tx_bd_chain[i], BUS_DMA_NOWAIT)) {
2520 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2521 1.13 dyoung "Could not map TX desc %d DMA memory!\n", i);
2522 1.1 bouyer rc = ENOMEM;
2523 1.1 bouyer goto bnx_dma_alloc_exit;
2524 1.1 bouyer }
2525 1.1 bouyer
2526 1.1 bouyer if (bus_dmamap_load(sc->bnx_dmatag, sc->tx_bd_chain_map[i],
2527 1.3 christos (void *)sc->tx_bd_chain[i], BNX_TX_CHAIN_PAGE_SZ, NULL,
2528 1.1 bouyer BUS_DMA_NOWAIT)) {
2529 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2530 1.13 dyoung "Could not load TX desc %d DMA memory!\n", i);
2531 1.1 bouyer rc = ENOMEM;
2532 1.1 bouyer goto bnx_dma_alloc_exit;
2533 1.1 bouyer }
2534 1.1 bouyer
2535 1.1 bouyer sc->tx_bd_chain_paddr[i] =
2536 1.1 bouyer sc->tx_bd_chain_map[i]->dm_segs[0].ds_addr;
2537 1.1 bouyer
2538 1.1 bouyer /* DRC - Fix for 64 bit systems. */
2539 1.48 christos DBPRINT(sc, BNX_INFO, "tx_bd_chain_paddr[%d] = 0x%08X\n",
2540 1.55 msaitoh i, (uint32_t) sc->tx_bd_chain_paddr[i]);
2541 1.1 bouyer }
2542 1.1 bouyer
2543 1.1 bouyer /*
2544 1.29 bouyer * Create lists to hold TX mbufs.
2545 1.1 bouyer */
2546 1.29 bouyer TAILQ_INIT(&sc->tx_free_pkts);
2547 1.29 bouyer TAILQ_INIT(&sc->tx_used_pkts);
2548 1.29 bouyer sc->tx_pkt_count = 0;
2549 1.29 bouyer mutex_init(&sc->tx_pkt_mtx, MUTEX_DEFAULT, IPL_NET);
2550 1.1 bouyer
2551 1.1 bouyer /*
2552 1.1 bouyer * Allocate DMA memory for the Rx buffer descriptor chain,
2553 1.1 bouyer * and fetch the physical address of the block.
2554 1.1 bouyer */
2555 1.1 bouyer for (i = 0; i < RX_PAGES; i++) {
2556 1.1 bouyer if (bus_dmamap_create(sc->bnx_dmatag, BNX_RX_CHAIN_PAGE_SZ, 1,
2557 1.1 bouyer BNX_RX_CHAIN_PAGE_SZ, 0, BUS_DMA_NOWAIT,
2558 1.1 bouyer &sc->rx_bd_chain_map[i])) {
2559 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2560 1.13 dyoung "Could not create Rx desc %d DMA map!\n", i);
2561 1.1 bouyer rc = ENOMEM;
2562 1.1 bouyer goto bnx_dma_alloc_exit;
2563 1.1 bouyer }
2564 1.1 bouyer
2565 1.1 bouyer if (bus_dmamem_alloc(sc->bnx_dmatag, BNX_RX_CHAIN_PAGE_SZ,
2566 1.1 bouyer BCM_PAGE_SIZE, BNX_DMA_BOUNDARY, &sc->rx_bd_chain_seg[i], 1,
2567 1.1 bouyer &sc->rx_bd_chain_rseg[i], BUS_DMA_NOWAIT)) {
2568 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2569 1.13 dyoung "Could not allocate Rx desc %d DMA memory!\n", i);
2570 1.1 bouyer rc = ENOMEM;
2571 1.1 bouyer goto bnx_dma_alloc_exit;
2572 1.1 bouyer }
2573 1.1 bouyer
2574 1.1 bouyer if (bus_dmamem_map(sc->bnx_dmatag, &sc->rx_bd_chain_seg[i],
2575 1.1 bouyer sc->rx_bd_chain_rseg[i], BNX_RX_CHAIN_PAGE_SZ,
2576 1.3 christos (void **)&sc->rx_bd_chain[i], BUS_DMA_NOWAIT)) {
2577 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2578 1.13 dyoung "Could not map Rx desc %d DMA memory!\n", i);
2579 1.1 bouyer rc = ENOMEM;
2580 1.1 bouyer goto bnx_dma_alloc_exit;
2581 1.1 bouyer }
2582 1.1 bouyer
2583 1.1 bouyer if (bus_dmamap_load(sc->bnx_dmatag, sc->rx_bd_chain_map[i],
2584 1.3 christos (void *)sc->rx_bd_chain[i], BNX_RX_CHAIN_PAGE_SZ, NULL,
2585 1.1 bouyer BUS_DMA_NOWAIT)) {
2586 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2587 1.13 dyoung "Could not load Rx desc %d DMA memory!\n", i);
2588 1.1 bouyer rc = ENOMEM;
2589 1.1 bouyer goto bnx_dma_alloc_exit;
2590 1.1 bouyer }
2591 1.1 bouyer
2592 1.23 cegger memset(sc->rx_bd_chain[i], 0, BNX_RX_CHAIN_PAGE_SZ);
2593 1.1 bouyer sc->rx_bd_chain_paddr[i] =
2594 1.1 bouyer sc->rx_bd_chain_map[i]->dm_segs[0].ds_addr;
2595 1.1 bouyer
2596 1.1 bouyer /* DRC - Fix for 64 bit systems. */
2597 1.48 christos DBPRINT(sc, BNX_INFO, "rx_bd_chain_paddr[%d] = 0x%08X\n",
2598 1.55 msaitoh i, (uint32_t) sc->rx_bd_chain_paddr[i]);
2599 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->rx_bd_chain_map[i],
2600 1.1 bouyer 0, BNX_RX_CHAIN_PAGE_SZ,
2601 1.1 bouyer BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
2602 1.1 bouyer }
2603 1.1 bouyer
2604 1.1 bouyer /*
2605 1.1 bouyer * Create DMA maps for the Rx buffer mbufs.
2606 1.1 bouyer */
2607 1.1 bouyer for (i = 0; i < TOTAL_RX_BD; i++) {
2608 1.30 bouyer if (bus_dmamap_create(sc->bnx_dmatag, BNX_MAX_JUMBO_MRU,
2609 1.30 bouyer BNX_MAX_SEGMENTS, BNX_MAX_JUMBO_MRU, 0, BUS_DMA_NOWAIT,
2610 1.1 bouyer &sc->rx_mbuf_map[i])) {
2611 1.13 dyoung aprint_error_dev(sc->bnx_dev,
2612 1.13 dyoung "Could not create Rx mbuf %d DMA map!\n", i);
2613 1.1 bouyer rc = ENOMEM;
2614 1.1 bouyer goto bnx_dma_alloc_exit;
2615 1.1 bouyer }
2616 1.1 bouyer }
2617 1.1 bouyer
2618 1.1 bouyer bnx_dma_alloc_exit:
2619 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
2620 1.1 bouyer
2621 1.52 msaitoh return rc;
2622 1.1 bouyer }
2623 1.1 bouyer
2624 1.1 bouyer /****************************************************************************/
2625 1.1 bouyer /* Release all resources used by the driver. */
2626 1.1 bouyer /* */
2627 1.1 bouyer /* Releases all resources acquired by the driver including interrupts, */
2628 1.1 bouyer /* interrupt handler, interfaces, mutexes, and DMA memory. */
2629 1.1 bouyer /* */
2630 1.1 bouyer /* Returns: */
2631 1.1 bouyer /* Nothing. */
2632 1.1 bouyer /****************************************************************************/
2633 1.1 bouyer void
2634 1.1 bouyer bnx_release_resources(struct bnx_softc *sc)
2635 1.1 bouyer {
2636 1.1 bouyer struct pci_attach_args *pa = &(sc->bnx_pa);
2637 1.1 bouyer
2638 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
2639 1.1 bouyer
2640 1.1 bouyer bnx_dma_free(sc);
2641 1.1 bouyer
2642 1.1 bouyer if (sc->bnx_intrhand != NULL)
2643 1.1 bouyer pci_intr_disestablish(pa->pa_pc, sc->bnx_intrhand);
2644 1.1 bouyer
2645 1.1 bouyer if (sc->bnx_size)
2646 1.1 bouyer bus_space_unmap(sc->bnx_btag, sc->bnx_bhandle, sc->bnx_size);
2647 1.1 bouyer
2648 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
2649 1.1 bouyer }
2650 1.1 bouyer
2651 1.1 bouyer /****************************************************************************/
2652 1.1 bouyer /* Firmware synchronization. */
2653 1.1 bouyer /* */
2654 1.1 bouyer /* Before performing certain events such as a chip reset, synchronize with */
2655 1.1 bouyer /* the firmware first. */
2656 1.1 bouyer /* */
2657 1.1 bouyer /* Returns: */
2658 1.1 bouyer /* 0 for success, positive value for failure. */
2659 1.1 bouyer /****************************************************************************/
2660 1.1 bouyer int
2661 1.55 msaitoh bnx_fw_sync(struct bnx_softc *sc, uint32_t msg_data)
2662 1.1 bouyer {
2663 1.1 bouyer int i, rc = 0;
2664 1.55 msaitoh uint32_t val;
2665 1.1 bouyer
2666 1.1 bouyer /* Don't waste any time if we've timed out before. */
2667 1.1 bouyer if (sc->bnx_fw_timed_out) {
2668 1.1 bouyer rc = EBUSY;
2669 1.1 bouyer goto bnx_fw_sync_exit;
2670 1.1 bouyer }
2671 1.1 bouyer
2672 1.1 bouyer /* Increment the message sequence number. */
2673 1.1 bouyer sc->bnx_fw_wr_seq++;
2674 1.1 bouyer msg_data |= sc->bnx_fw_wr_seq;
2675 1.1 bouyer
2676 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "bnx_fw_sync(): msg_data = 0x%08X\n",
2677 1.1 bouyer msg_data);
2678 1.1 bouyer
2679 1.1 bouyer /* Send the message to the bootcode driver mailbox. */
2680 1.1 bouyer REG_WR_IND(sc, sc->bnx_shmem_base + BNX_DRV_MB, msg_data);
2681 1.1 bouyer
2682 1.1 bouyer /* Wait for the bootcode to acknowledge the message. */
2683 1.1 bouyer for (i = 0; i < FW_ACK_TIME_OUT_MS; i++) {
2684 1.1 bouyer /* Check for a response in the bootcode firmware mailbox. */
2685 1.1 bouyer val = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_FW_MB);
2686 1.1 bouyer if ((val & BNX_FW_MSG_ACK) == (msg_data & BNX_DRV_MSG_SEQ))
2687 1.1 bouyer break;
2688 1.1 bouyer DELAY(1000);
2689 1.1 bouyer }
2690 1.1 bouyer
2691 1.1 bouyer /* If we've timed out, tell the bootcode that we've stopped waiting. */
2692 1.1 bouyer if (((val & BNX_FW_MSG_ACK) != (msg_data & BNX_DRV_MSG_SEQ)) &&
2693 1.1 bouyer ((msg_data & BNX_DRV_MSG_DATA) != BNX_DRV_MSG_DATA_WAIT0)) {
2694 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Firmware synchronization timeout! "
2695 1.1 bouyer "msg_data = 0x%08X\n", __FILE__, __LINE__, msg_data);
2696 1.1 bouyer
2697 1.1 bouyer msg_data &= ~BNX_DRV_MSG_CODE;
2698 1.1 bouyer msg_data |= BNX_DRV_MSG_CODE_FW_TIMEOUT;
2699 1.1 bouyer
2700 1.1 bouyer REG_WR_IND(sc, sc->bnx_shmem_base + BNX_DRV_MB, msg_data);
2701 1.1 bouyer
2702 1.1 bouyer sc->bnx_fw_timed_out = 1;
2703 1.1 bouyer rc = EBUSY;
2704 1.1 bouyer }
2705 1.1 bouyer
2706 1.1 bouyer bnx_fw_sync_exit:
2707 1.52 msaitoh return rc;
2708 1.1 bouyer }
2709 1.1 bouyer
2710 1.1 bouyer /****************************************************************************/
2711 1.1 bouyer /* Load Receive Virtual 2 Physical (RV2P) processor firmware. */
2712 1.1 bouyer /* */
2713 1.1 bouyer /* Returns: */
2714 1.1 bouyer /* Nothing. */
2715 1.1 bouyer /****************************************************************************/
2716 1.1 bouyer void
2717 1.55 msaitoh bnx_load_rv2p_fw(struct bnx_softc *sc, uint32_t *rv2p_code,
2718 1.55 msaitoh uint32_t rv2p_code_len, uint32_t rv2p_proc)
2719 1.1 bouyer {
2720 1.1 bouyer int i;
2721 1.55 msaitoh uint32_t val;
2722 1.1 bouyer
2723 1.29 bouyer /* Set the page size used by RV2P. */
2724 1.29 bouyer if (rv2p_proc == RV2P_PROC2) {
2725 1.29 bouyer BNX_RV2P_PROC2_CHG_MAX_BD_PAGE(rv2p_code,
2726 1.29 bouyer USABLE_RX_BD_PER_PAGE);
2727 1.29 bouyer }
2728 1.29 bouyer
2729 1.1 bouyer for (i = 0; i < rv2p_code_len; i += 8) {
2730 1.1 bouyer REG_WR(sc, BNX_RV2P_INSTR_HIGH, *rv2p_code);
2731 1.1 bouyer rv2p_code++;
2732 1.1 bouyer REG_WR(sc, BNX_RV2P_INSTR_LOW, *rv2p_code);
2733 1.1 bouyer rv2p_code++;
2734 1.1 bouyer
2735 1.1 bouyer if (rv2p_proc == RV2P_PROC1) {
2736 1.1 bouyer val = (i / 8) | BNX_RV2P_PROC1_ADDR_CMD_RDWR;
2737 1.1 bouyer REG_WR(sc, BNX_RV2P_PROC1_ADDR_CMD, val);
2738 1.29 bouyer } else {
2739 1.1 bouyer val = (i / 8) | BNX_RV2P_PROC2_ADDR_CMD_RDWR;
2740 1.1 bouyer REG_WR(sc, BNX_RV2P_PROC2_ADDR_CMD, val);
2741 1.1 bouyer }
2742 1.1 bouyer }
2743 1.1 bouyer
2744 1.1 bouyer /* Reset the processor, un-stall is done later. */
2745 1.1 bouyer if (rv2p_proc == RV2P_PROC1)
2746 1.1 bouyer REG_WR(sc, BNX_RV2P_COMMAND, BNX_RV2P_COMMAND_PROC1_RESET);
2747 1.1 bouyer else
2748 1.1 bouyer REG_WR(sc, BNX_RV2P_COMMAND, BNX_RV2P_COMMAND_PROC2_RESET);
2749 1.1 bouyer }
2750 1.1 bouyer
2751 1.1 bouyer /****************************************************************************/
2752 1.1 bouyer /* Load RISC processor firmware. */
2753 1.1 bouyer /* */
2754 1.1 bouyer /* Loads firmware from the file if_bnxfw.h into the scratchpad memory */
2755 1.1 bouyer /* associated with a particular processor. */
2756 1.1 bouyer /* */
2757 1.1 bouyer /* Returns: */
2758 1.1 bouyer /* Nothing. */
2759 1.1 bouyer /****************************************************************************/
2760 1.1 bouyer void
2761 1.1 bouyer bnx_load_cpu_fw(struct bnx_softc *sc, struct cpu_reg *cpu_reg,
2762 1.1 bouyer struct fw_info *fw)
2763 1.1 bouyer {
2764 1.55 msaitoh uint32_t offset;
2765 1.55 msaitoh uint32_t val;
2766 1.1 bouyer
2767 1.1 bouyer /* Halt the CPU. */
2768 1.1 bouyer val = REG_RD_IND(sc, cpu_reg->mode);
2769 1.1 bouyer val |= cpu_reg->mode_value_halt;
2770 1.1 bouyer REG_WR_IND(sc, cpu_reg->mode, val);
2771 1.1 bouyer REG_WR_IND(sc, cpu_reg->state, cpu_reg->state_value_clear);
2772 1.1 bouyer
2773 1.1 bouyer /* Load the Text area. */
2774 1.1 bouyer offset = cpu_reg->spad_base + (fw->text_addr - cpu_reg->mips_view_base);
2775 1.1 bouyer if (fw->text) {
2776 1.1 bouyer int j;
2777 1.1 bouyer
2778 1.1 bouyer for (j = 0; j < (fw->text_len / 4); j++, offset += 4)
2779 1.1 bouyer REG_WR_IND(sc, offset, fw->text[j]);
2780 1.1 bouyer }
2781 1.1 bouyer
2782 1.1 bouyer /* Load the Data area. */
2783 1.1 bouyer offset = cpu_reg->spad_base + (fw->data_addr - cpu_reg->mips_view_base);
2784 1.1 bouyer if (fw->data) {
2785 1.1 bouyer int j;
2786 1.1 bouyer
2787 1.1 bouyer for (j = 0; j < (fw->data_len / 4); j++, offset += 4)
2788 1.1 bouyer REG_WR_IND(sc, offset, fw->data[j]);
2789 1.1 bouyer }
2790 1.1 bouyer
2791 1.1 bouyer /* Load the SBSS area. */
2792 1.1 bouyer offset = cpu_reg->spad_base + (fw->sbss_addr - cpu_reg->mips_view_base);
2793 1.1 bouyer if (fw->sbss) {
2794 1.1 bouyer int j;
2795 1.1 bouyer
2796 1.1 bouyer for (j = 0; j < (fw->sbss_len / 4); j++, offset += 4)
2797 1.1 bouyer REG_WR_IND(sc, offset, fw->sbss[j]);
2798 1.1 bouyer }
2799 1.1 bouyer
2800 1.1 bouyer /* Load the BSS area. */
2801 1.1 bouyer offset = cpu_reg->spad_base + (fw->bss_addr - cpu_reg->mips_view_base);
2802 1.1 bouyer if (fw->bss) {
2803 1.1 bouyer int j;
2804 1.1 bouyer
2805 1.1 bouyer for (j = 0; j < (fw->bss_len/4); j++, offset += 4)
2806 1.1 bouyer REG_WR_IND(sc, offset, fw->bss[j]);
2807 1.1 bouyer }
2808 1.1 bouyer
2809 1.1 bouyer /* Load the Read-Only area. */
2810 1.1 bouyer offset = cpu_reg->spad_base +
2811 1.1 bouyer (fw->rodata_addr - cpu_reg->mips_view_base);
2812 1.1 bouyer if (fw->rodata) {
2813 1.1 bouyer int j;
2814 1.1 bouyer
2815 1.1 bouyer for (j = 0; j < (fw->rodata_len / 4); j++, offset += 4)
2816 1.1 bouyer REG_WR_IND(sc, offset, fw->rodata[j]);
2817 1.1 bouyer }
2818 1.1 bouyer
2819 1.1 bouyer /* Clear the pre-fetch instruction. */
2820 1.1 bouyer REG_WR_IND(sc, cpu_reg->inst, 0);
2821 1.1 bouyer REG_WR_IND(sc, cpu_reg->pc, fw->start_addr);
2822 1.1 bouyer
2823 1.1 bouyer /* Start the CPU. */
2824 1.1 bouyer val = REG_RD_IND(sc, cpu_reg->mode);
2825 1.1 bouyer val &= ~cpu_reg->mode_value_halt;
2826 1.1 bouyer REG_WR_IND(sc, cpu_reg->state, cpu_reg->state_value_clear);
2827 1.1 bouyer REG_WR_IND(sc, cpu_reg->mode, val);
2828 1.1 bouyer }
2829 1.1 bouyer
2830 1.1 bouyer /****************************************************************************/
2831 1.1 bouyer /* Initialize the RV2P, RX, TX, TPAT, and COM CPUs. */
2832 1.1 bouyer /* */
2833 1.1 bouyer /* Loads the firmware for each CPU and starts the CPU. */
2834 1.1 bouyer /* */
2835 1.1 bouyer /* Returns: */
2836 1.1 bouyer /* Nothing. */
2837 1.1 bouyer /****************************************************************************/
2838 1.1 bouyer void
2839 1.1 bouyer bnx_init_cpus(struct bnx_softc *sc)
2840 1.1 bouyer {
2841 1.1 bouyer struct cpu_reg cpu_reg;
2842 1.1 bouyer struct fw_info fw;
2843 1.1 bouyer
2844 1.29 bouyer switch(BNX_CHIP_NUM(sc)) {
2845 1.29 bouyer case BNX_CHIP_NUM_5709:
2846 1.29 bouyer /* Initialize the RV2P processor. */
2847 1.29 bouyer if (BNX_CHIP_REV(sc) == BNX_CHIP_REV_Ax) {
2848 1.29 bouyer bnx_load_rv2p_fw(sc, bnx_xi90_rv2p_proc1,
2849 1.29 bouyer sizeof(bnx_xi90_rv2p_proc1), RV2P_PROC1);
2850 1.29 bouyer bnx_load_rv2p_fw(sc, bnx_xi90_rv2p_proc2,
2851 1.29 bouyer sizeof(bnx_xi90_rv2p_proc2), RV2P_PROC2);
2852 1.29 bouyer } else {
2853 1.29 bouyer bnx_load_rv2p_fw(sc, bnx_xi_rv2p_proc1,
2854 1.29 bouyer sizeof(bnx_xi_rv2p_proc1), RV2P_PROC1);
2855 1.29 bouyer bnx_load_rv2p_fw(sc, bnx_xi_rv2p_proc2,
2856 1.29 bouyer sizeof(bnx_xi_rv2p_proc2), RV2P_PROC2);
2857 1.29 bouyer }
2858 1.29 bouyer
2859 1.29 bouyer /* Initialize the RX Processor. */
2860 1.29 bouyer cpu_reg.mode = BNX_RXP_CPU_MODE;
2861 1.29 bouyer cpu_reg.mode_value_halt = BNX_RXP_CPU_MODE_SOFT_HALT;
2862 1.29 bouyer cpu_reg.mode_value_sstep = BNX_RXP_CPU_MODE_STEP_ENA;
2863 1.29 bouyer cpu_reg.state = BNX_RXP_CPU_STATE;
2864 1.29 bouyer cpu_reg.state_value_clear = 0xffffff;
2865 1.29 bouyer cpu_reg.gpr0 = BNX_RXP_CPU_REG_FILE;
2866 1.29 bouyer cpu_reg.evmask = BNX_RXP_CPU_EVENT_MASK;
2867 1.29 bouyer cpu_reg.pc = BNX_RXP_CPU_PROGRAM_COUNTER;
2868 1.29 bouyer cpu_reg.inst = BNX_RXP_CPU_INSTRUCTION;
2869 1.29 bouyer cpu_reg.bp = BNX_RXP_CPU_HW_BREAKPOINT;
2870 1.29 bouyer cpu_reg.spad_base = BNX_RXP_SCRATCH;
2871 1.29 bouyer cpu_reg.mips_view_base = 0x8000000;
2872 1.29 bouyer
2873 1.29 bouyer fw.ver_major = bnx_RXP_b09FwReleaseMajor;
2874 1.29 bouyer fw.ver_minor = bnx_RXP_b09FwReleaseMinor;
2875 1.29 bouyer fw.ver_fix = bnx_RXP_b09FwReleaseFix;
2876 1.29 bouyer fw.start_addr = bnx_RXP_b09FwStartAddr;
2877 1.29 bouyer
2878 1.29 bouyer fw.text_addr = bnx_RXP_b09FwTextAddr;
2879 1.29 bouyer fw.text_len = bnx_RXP_b09FwTextLen;
2880 1.29 bouyer fw.text_index = 0;
2881 1.29 bouyer fw.text = bnx_RXP_b09FwText;
2882 1.29 bouyer
2883 1.29 bouyer fw.data_addr = bnx_RXP_b09FwDataAddr;
2884 1.29 bouyer fw.data_len = bnx_RXP_b09FwDataLen;
2885 1.29 bouyer fw.data_index = 0;
2886 1.29 bouyer fw.data = bnx_RXP_b09FwData;
2887 1.29 bouyer
2888 1.29 bouyer fw.sbss_addr = bnx_RXP_b09FwSbssAddr;
2889 1.29 bouyer fw.sbss_len = bnx_RXP_b09FwSbssLen;
2890 1.29 bouyer fw.sbss_index = 0;
2891 1.29 bouyer fw.sbss = bnx_RXP_b09FwSbss;
2892 1.29 bouyer
2893 1.29 bouyer fw.bss_addr = bnx_RXP_b09FwBssAddr;
2894 1.29 bouyer fw.bss_len = bnx_RXP_b09FwBssLen;
2895 1.29 bouyer fw.bss_index = 0;
2896 1.29 bouyer fw.bss = bnx_RXP_b09FwBss;
2897 1.29 bouyer
2898 1.29 bouyer fw.rodata_addr = bnx_RXP_b09FwRodataAddr;
2899 1.29 bouyer fw.rodata_len = bnx_RXP_b09FwRodataLen;
2900 1.29 bouyer fw.rodata_index = 0;
2901 1.29 bouyer fw.rodata = bnx_RXP_b09FwRodata;
2902 1.29 bouyer
2903 1.29 bouyer DBPRINT(sc, BNX_INFO_RESET, "Loading RX firmware.\n");
2904 1.29 bouyer bnx_load_cpu_fw(sc, &cpu_reg, &fw);
2905 1.29 bouyer
2906 1.29 bouyer /* Initialize the TX Processor. */
2907 1.29 bouyer cpu_reg.mode = BNX_TXP_CPU_MODE;
2908 1.29 bouyer cpu_reg.mode_value_halt = BNX_TXP_CPU_MODE_SOFT_HALT;
2909 1.29 bouyer cpu_reg.mode_value_sstep = BNX_TXP_CPU_MODE_STEP_ENA;
2910 1.29 bouyer cpu_reg.state = BNX_TXP_CPU_STATE;
2911 1.29 bouyer cpu_reg.state_value_clear = 0xffffff;
2912 1.29 bouyer cpu_reg.gpr0 = BNX_TXP_CPU_REG_FILE;
2913 1.29 bouyer cpu_reg.evmask = BNX_TXP_CPU_EVENT_MASK;
2914 1.29 bouyer cpu_reg.pc = BNX_TXP_CPU_PROGRAM_COUNTER;
2915 1.29 bouyer cpu_reg.inst = BNX_TXP_CPU_INSTRUCTION;
2916 1.29 bouyer cpu_reg.bp = BNX_TXP_CPU_HW_BREAKPOINT;
2917 1.29 bouyer cpu_reg.spad_base = BNX_TXP_SCRATCH;
2918 1.29 bouyer cpu_reg.mips_view_base = 0x8000000;
2919 1.29 bouyer
2920 1.29 bouyer fw.ver_major = bnx_TXP_b09FwReleaseMajor;
2921 1.29 bouyer fw.ver_minor = bnx_TXP_b09FwReleaseMinor;
2922 1.29 bouyer fw.ver_fix = bnx_TXP_b09FwReleaseFix;
2923 1.29 bouyer fw.start_addr = bnx_TXP_b09FwStartAddr;
2924 1.29 bouyer
2925 1.29 bouyer fw.text_addr = bnx_TXP_b09FwTextAddr;
2926 1.29 bouyer fw.text_len = bnx_TXP_b09FwTextLen;
2927 1.29 bouyer fw.text_index = 0;
2928 1.29 bouyer fw.text = bnx_TXP_b09FwText;
2929 1.29 bouyer
2930 1.29 bouyer fw.data_addr = bnx_TXP_b09FwDataAddr;
2931 1.29 bouyer fw.data_len = bnx_TXP_b09FwDataLen;
2932 1.29 bouyer fw.data_index = 0;
2933 1.29 bouyer fw.data = bnx_TXP_b09FwData;
2934 1.29 bouyer
2935 1.29 bouyer fw.sbss_addr = bnx_TXP_b09FwSbssAddr;
2936 1.29 bouyer fw.sbss_len = bnx_TXP_b09FwSbssLen;
2937 1.29 bouyer fw.sbss_index = 0;
2938 1.29 bouyer fw.sbss = bnx_TXP_b09FwSbss;
2939 1.29 bouyer
2940 1.29 bouyer fw.bss_addr = bnx_TXP_b09FwBssAddr;
2941 1.29 bouyer fw.bss_len = bnx_TXP_b09FwBssLen;
2942 1.29 bouyer fw.bss_index = 0;
2943 1.29 bouyer fw.bss = bnx_TXP_b09FwBss;
2944 1.29 bouyer
2945 1.29 bouyer fw.rodata_addr = bnx_TXP_b09FwRodataAddr;
2946 1.29 bouyer fw.rodata_len = bnx_TXP_b09FwRodataLen;
2947 1.29 bouyer fw.rodata_index = 0;
2948 1.29 bouyer fw.rodata = bnx_TXP_b09FwRodata;
2949 1.29 bouyer
2950 1.29 bouyer DBPRINT(sc, BNX_INFO_RESET, "Loading TX firmware.\n");
2951 1.29 bouyer bnx_load_cpu_fw(sc, &cpu_reg, &fw);
2952 1.29 bouyer
2953 1.29 bouyer /* Initialize the TX Patch-up Processor. */
2954 1.29 bouyer cpu_reg.mode = BNX_TPAT_CPU_MODE;
2955 1.29 bouyer cpu_reg.mode_value_halt = BNX_TPAT_CPU_MODE_SOFT_HALT;
2956 1.29 bouyer cpu_reg.mode_value_sstep = BNX_TPAT_CPU_MODE_STEP_ENA;
2957 1.29 bouyer cpu_reg.state = BNX_TPAT_CPU_STATE;
2958 1.29 bouyer cpu_reg.state_value_clear = 0xffffff;
2959 1.29 bouyer cpu_reg.gpr0 = BNX_TPAT_CPU_REG_FILE;
2960 1.29 bouyer cpu_reg.evmask = BNX_TPAT_CPU_EVENT_MASK;
2961 1.29 bouyer cpu_reg.pc = BNX_TPAT_CPU_PROGRAM_COUNTER;
2962 1.29 bouyer cpu_reg.inst = BNX_TPAT_CPU_INSTRUCTION;
2963 1.29 bouyer cpu_reg.bp = BNX_TPAT_CPU_HW_BREAKPOINT;
2964 1.29 bouyer cpu_reg.spad_base = BNX_TPAT_SCRATCH;
2965 1.29 bouyer cpu_reg.mips_view_base = 0x8000000;
2966 1.29 bouyer
2967 1.29 bouyer fw.ver_major = bnx_TPAT_b09FwReleaseMajor;
2968 1.29 bouyer fw.ver_minor = bnx_TPAT_b09FwReleaseMinor;
2969 1.29 bouyer fw.ver_fix = bnx_TPAT_b09FwReleaseFix;
2970 1.29 bouyer fw.start_addr = bnx_TPAT_b09FwStartAddr;
2971 1.29 bouyer
2972 1.29 bouyer fw.text_addr = bnx_TPAT_b09FwTextAddr;
2973 1.29 bouyer fw.text_len = bnx_TPAT_b09FwTextLen;
2974 1.29 bouyer fw.text_index = 0;
2975 1.29 bouyer fw.text = bnx_TPAT_b09FwText;
2976 1.29 bouyer
2977 1.29 bouyer fw.data_addr = bnx_TPAT_b09FwDataAddr;
2978 1.29 bouyer fw.data_len = bnx_TPAT_b09FwDataLen;
2979 1.29 bouyer fw.data_index = 0;
2980 1.29 bouyer fw.data = bnx_TPAT_b09FwData;
2981 1.29 bouyer
2982 1.29 bouyer fw.sbss_addr = bnx_TPAT_b09FwSbssAddr;
2983 1.29 bouyer fw.sbss_len = bnx_TPAT_b09FwSbssLen;
2984 1.29 bouyer fw.sbss_index = 0;
2985 1.29 bouyer fw.sbss = bnx_TPAT_b09FwSbss;
2986 1.29 bouyer
2987 1.29 bouyer fw.bss_addr = bnx_TPAT_b09FwBssAddr;
2988 1.29 bouyer fw.bss_len = bnx_TPAT_b09FwBssLen;
2989 1.29 bouyer fw.bss_index = 0;
2990 1.29 bouyer fw.bss = bnx_TPAT_b09FwBss;
2991 1.29 bouyer
2992 1.29 bouyer fw.rodata_addr = bnx_TPAT_b09FwRodataAddr;
2993 1.29 bouyer fw.rodata_len = bnx_TPAT_b09FwRodataLen;
2994 1.29 bouyer fw.rodata_index = 0;
2995 1.29 bouyer fw.rodata = bnx_TPAT_b09FwRodata;
2996 1.29 bouyer
2997 1.29 bouyer DBPRINT(sc, BNX_INFO_RESET, "Loading TPAT firmware.\n");
2998 1.29 bouyer bnx_load_cpu_fw(sc, &cpu_reg, &fw);
2999 1.29 bouyer
3000 1.29 bouyer /* Initialize the Completion Processor. */
3001 1.29 bouyer cpu_reg.mode = BNX_COM_CPU_MODE;
3002 1.29 bouyer cpu_reg.mode_value_halt = BNX_COM_CPU_MODE_SOFT_HALT;
3003 1.29 bouyer cpu_reg.mode_value_sstep = BNX_COM_CPU_MODE_STEP_ENA;
3004 1.29 bouyer cpu_reg.state = BNX_COM_CPU_STATE;
3005 1.29 bouyer cpu_reg.state_value_clear = 0xffffff;
3006 1.29 bouyer cpu_reg.gpr0 = BNX_COM_CPU_REG_FILE;
3007 1.29 bouyer cpu_reg.evmask = BNX_COM_CPU_EVENT_MASK;
3008 1.29 bouyer cpu_reg.pc = BNX_COM_CPU_PROGRAM_COUNTER;
3009 1.29 bouyer cpu_reg.inst = BNX_COM_CPU_INSTRUCTION;
3010 1.29 bouyer cpu_reg.bp = BNX_COM_CPU_HW_BREAKPOINT;
3011 1.29 bouyer cpu_reg.spad_base = BNX_COM_SCRATCH;
3012 1.29 bouyer cpu_reg.mips_view_base = 0x8000000;
3013 1.29 bouyer
3014 1.29 bouyer fw.ver_major = bnx_COM_b09FwReleaseMajor;
3015 1.29 bouyer fw.ver_minor = bnx_COM_b09FwReleaseMinor;
3016 1.29 bouyer fw.ver_fix = bnx_COM_b09FwReleaseFix;
3017 1.29 bouyer fw.start_addr = bnx_COM_b09FwStartAddr;
3018 1.29 bouyer
3019 1.29 bouyer fw.text_addr = bnx_COM_b09FwTextAddr;
3020 1.29 bouyer fw.text_len = bnx_COM_b09FwTextLen;
3021 1.29 bouyer fw.text_index = 0;
3022 1.29 bouyer fw.text = bnx_COM_b09FwText;
3023 1.29 bouyer
3024 1.29 bouyer fw.data_addr = bnx_COM_b09FwDataAddr;
3025 1.29 bouyer fw.data_len = bnx_COM_b09FwDataLen;
3026 1.29 bouyer fw.data_index = 0;
3027 1.29 bouyer fw.data = bnx_COM_b09FwData;
3028 1.29 bouyer
3029 1.29 bouyer fw.sbss_addr = bnx_COM_b09FwSbssAddr;
3030 1.29 bouyer fw.sbss_len = bnx_COM_b09FwSbssLen;
3031 1.29 bouyer fw.sbss_index = 0;
3032 1.29 bouyer fw.sbss = bnx_COM_b09FwSbss;
3033 1.29 bouyer
3034 1.29 bouyer fw.bss_addr = bnx_COM_b09FwBssAddr;
3035 1.29 bouyer fw.bss_len = bnx_COM_b09FwBssLen;
3036 1.29 bouyer fw.bss_index = 0;
3037 1.29 bouyer fw.bss = bnx_COM_b09FwBss;
3038 1.29 bouyer
3039 1.29 bouyer fw.rodata_addr = bnx_COM_b09FwRodataAddr;
3040 1.29 bouyer fw.rodata_len = bnx_COM_b09FwRodataLen;
3041 1.29 bouyer fw.rodata_index = 0;
3042 1.29 bouyer fw.rodata = bnx_COM_b09FwRodata;
3043 1.29 bouyer DBPRINT(sc, BNX_INFO_RESET, "Loading COM firmware.\n");
3044 1.29 bouyer bnx_load_cpu_fw(sc, &cpu_reg, &fw);
3045 1.29 bouyer break;
3046 1.29 bouyer default:
3047 1.29 bouyer /* Initialize the RV2P processor. */
3048 1.29 bouyer bnx_load_rv2p_fw(sc, bnx_rv2p_proc1, sizeof(bnx_rv2p_proc1),
3049 1.29 bouyer RV2P_PROC1);
3050 1.29 bouyer bnx_load_rv2p_fw(sc, bnx_rv2p_proc2, sizeof(bnx_rv2p_proc2),
3051 1.29 bouyer RV2P_PROC2);
3052 1.29 bouyer
3053 1.29 bouyer /* Initialize the RX Processor. */
3054 1.29 bouyer cpu_reg.mode = BNX_RXP_CPU_MODE;
3055 1.29 bouyer cpu_reg.mode_value_halt = BNX_RXP_CPU_MODE_SOFT_HALT;
3056 1.29 bouyer cpu_reg.mode_value_sstep = BNX_RXP_CPU_MODE_STEP_ENA;
3057 1.29 bouyer cpu_reg.state = BNX_RXP_CPU_STATE;
3058 1.29 bouyer cpu_reg.state_value_clear = 0xffffff;
3059 1.29 bouyer cpu_reg.gpr0 = BNX_RXP_CPU_REG_FILE;
3060 1.29 bouyer cpu_reg.evmask = BNX_RXP_CPU_EVENT_MASK;
3061 1.29 bouyer cpu_reg.pc = BNX_RXP_CPU_PROGRAM_COUNTER;
3062 1.29 bouyer cpu_reg.inst = BNX_RXP_CPU_INSTRUCTION;
3063 1.29 bouyer cpu_reg.bp = BNX_RXP_CPU_HW_BREAKPOINT;
3064 1.29 bouyer cpu_reg.spad_base = BNX_RXP_SCRATCH;
3065 1.29 bouyer cpu_reg.mips_view_base = 0x8000000;
3066 1.29 bouyer
3067 1.29 bouyer fw.ver_major = bnx_RXP_b06FwReleaseMajor;
3068 1.29 bouyer fw.ver_minor = bnx_RXP_b06FwReleaseMinor;
3069 1.29 bouyer fw.ver_fix = bnx_RXP_b06FwReleaseFix;
3070 1.29 bouyer fw.start_addr = bnx_RXP_b06FwStartAddr;
3071 1.29 bouyer
3072 1.29 bouyer fw.text_addr = bnx_RXP_b06FwTextAddr;
3073 1.29 bouyer fw.text_len = bnx_RXP_b06FwTextLen;
3074 1.29 bouyer fw.text_index = 0;
3075 1.29 bouyer fw.text = bnx_RXP_b06FwText;
3076 1.29 bouyer
3077 1.29 bouyer fw.data_addr = bnx_RXP_b06FwDataAddr;
3078 1.29 bouyer fw.data_len = bnx_RXP_b06FwDataLen;
3079 1.29 bouyer fw.data_index = 0;
3080 1.29 bouyer fw.data = bnx_RXP_b06FwData;
3081 1.29 bouyer
3082 1.29 bouyer fw.sbss_addr = bnx_RXP_b06FwSbssAddr;
3083 1.29 bouyer fw.sbss_len = bnx_RXP_b06FwSbssLen;
3084 1.29 bouyer fw.sbss_index = 0;
3085 1.29 bouyer fw.sbss = bnx_RXP_b06FwSbss;
3086 1.29 bouyer
3087 1.29 bouyer fw.bss_addr = bnx_RXP_b06FwBssAddr;
3088 1.29 bouyer fw.bss_len = bnx_RXP_b06FwBssLen;
3089 1.29 bouyer fw.bss_index = 0;
3090 1.29 bouyer fw.bss = bnx_RXP_b06FwBss;
3091 1.29 bouyer
3092 1.29 bouyer fw.rodata_addr = bnx_RXP_b06FwRodataAddr;
3093 1.29 bouyer fw.rodata_len = bnx_RXP_b06FwRodataLen;
3094 1.29 bouyer fw.rodata_index = 0;
3095 1.29 bouyer fw.rodata = bnx_RXP_b06FwRodata;
3096 1.29 bouyer
3097 1.29 bouyer DBPRINT(sc, BNX_INFO_RESET, "Loading RX firmware.\n");
3098 1.29 bouyer bnx_load_cpu_fw(sc, &cpu_reg, &fw);
3099 1.29 bouyer
3100 1.29 bouyer /* Initialize the TX Processor. */
3101 1.29 bouyer cpu_reg.mode = BNX_TXP_CPU_MODE;
3102 1.29 bouyer cpu_reg.mode_value_halt = BNX_TXP_CPU_MODE_SOFT_HALT;
3103 1.29 bouyer cpu_reg.mode_value_sstep = BNX_TXP_CPU_MODE_STEP_ENA;
3104 1.29 bouyer cpu_reg.state = BNX_TXP_CPU_STATE;
3105 1.29 bouyer cpu_reg.state_value_clear = 0xffffff;
3106 1.29 bouyer cpu_reg.gpr0 = BNX_TXP_CPU_REG_FILE;
3107 1.29 bouyer cpu_reg.evmask = BNX_TXP_CPU_EVENT_MASK;
3108 1.29 bouyer cpu_reg.pc = BNX_TXP_CPU_PROGRAM_COUNTER;
3109 1.29 bouyer cpu_reg.inst = BNX_TXP_CPU_INSTRUCTION;
3110 1.29 bouyer cpu_reg.bp = BNX_TXP_CPU_HW_BREAKPOINT;
3111 1.29 bouyer cpu_reg.spad_base = BNX_TXP_SCRATCH;
3112 1.29 bouyer cpu_reg.mips_view_base = 0x8000000;
3113 1.29 bouyer
3114 1.29 bouyer fw.ver_major = bnx_TXP_b06FwReleaseMajor;
3115 1.29 bouyer fw.ver_minor = bnx_TXP_b06FwReleaseMinor;
3116 1.29 bouyer fw.ver_fix = bnx_TXP_b06FwReleaseFix;
3117 1.29 bouyer fw.start_addr = bnx_TXP_b06FwStartAddr;
3118 1.29 bouyer
3119 1.29 bouyer fw.text_addr = bnx_TXP_b06FwTextAddr;
3120 1.29 bouyer fw.text_len = bnx_TXP_b06FwTextLen;
3121 1.29 bouyer fw.text_index = 0;
3122 1.29 bouyer fw.text = bnx_TXP_b06FwText;
3123 1.29 bouyer
3124 1.29 bouyer fw.data_addr = bnx_TXP_b06FwDataAddr;
3125 1.29 bouyer fw.data_len = bnx_TXP_b06FwDataLen;
3126 1.29 bouyer fw.data_index = 0;
3127 1.29 bouyer fw.data = bnx_TXP_b06FwData;
3128 1.29 bouyer
3129 1.29 bouyer fw.sbss_addr = bnx_TXP_b06FwSbssAddr;
3130 1.29 bouyer fw.sbss_len = bnx_TXP_b06FwSbssLen;
3131 1.29 bouyer fw.sbss_index = 0;
3132 1.29 bouyer fw.sbss = bnx_TXP_b06FwSbss;
3133 1.29 bouyer
3134 1.29 bouyer fw.bss_addr = bnx_TXP_b06FwBssAddr;
3135 1.29 bouyer fw.bss_len = bnx_TXP_b06FwBssLen;
3136 1.29 bouyer fw.bss_index = 0;
3137 1.29 bouyer fw.bss = bnx_TXP_b06FwBss;
3138 1.29 bouyer
3139 1.29 bouyer fw.rodata_addr = bnx_TXP_b06FwRodataAddr;
3140 1.29 bouyer fw.rodata_len = bnx_TXP_b06FwRodataLen;
3141 1.29 bouyer fw.rodata_index = 0;
3142 1.29 bouyer fw.rodata = bnx_TXP_b06FwRodata;
3143 1.29 bouyer
3144 1.29 bouyer DBPRINT(sc, BNX_INFO_RESET, "Loading TX firmware.\n");
3145 1.29 bouyer bnx_load_cpu_fw(sc, &cpu_reg, &fw);
3146 1.29 bouyer
3147 1.29 bouyer /* Initialize the TX Patch-up Processor. */
3148 1.29 bouyer cpu_reg.mode = BNX_TPAT_CPU_MODE;
3149 1.29 bouyer cpu_reg.mode_value_halt = BNX_TPAT_CPU_MODE_SOFT_HALT;
3150 1.29 bouyer cpu_reg.mode_value_sstep = BNX_TPAT_CPU_MODE_STEP_ENA;
3151 1.29 bouyer cpu_reg.state = BNX_TPAT_CPU_STATE;
3152 1.29 bouyer cpu_reg.state_value_clear = 0xffffff;
3153 1.29 bouyer cpu_reg.gpr0 = BNX_TPAT_CPU_REG_FILE;
3154 1.29 bouyer cpu_reg.evmask = BNX_TPAT_CPU_EVENT_MASK;
3155 1.29 bouyer cpu_reg.pc = BNX_TPAT_CPU_PROGRAM_COUNTER;
3156 1.29 bouyer cpu_reg.inst = BNX_TPAT_CPU_INSTRUCTION;
3157 1.29 bouyer cpu_reg.bp = BNX_TPAT_CPU_HW_BREAKPOINT;
3158 1.29 bouyer cpu_reg.spad_base = BNX_TPAT_SCRATCH;
3159 1.29 bouyer cpu_reg.mips_view_base = 0x8000000;
3160 1.29 bouyer
3161 1.29 bouyer fw.ver_major = bnx_TPAT_b06FwReleaseMajor;
3162 1.29 bouyer fw.ver_minor = bnx_TPAT_b06FwReleaseMinor;
3163 1.29 bouyer fw.ver_fix = bnx_TPAT_b06FwReleaseFix;
3164 1.29 bouyer fw.start_addr = bnx_TPAT_b06FwStartAddr;
3165 1.29 bouyer
3166 1.29 bouyer fw.text_addr = bnx_TPAT_b06FwTextAddr;
3167 1.29 bouyer fw.text_len = bnx_TPAT_b06FwTextLen;
3168 1.29 bouyer fw.text_index = 0;
3169 1.29 bouyer fw.text = bnx_TPAT_b06FwText;
3170 1.29 bouyer
3171 1.29 bouyer fw.data_addr = bnx_TPAT_b06FwDataAddr;
3172 1.29 bouyer fw.data_len = bnx_TPAT_b06FwDataLen;
3173 1.29 bouyer fw.data_index = 0;
3174 1.29 bouyer fw.data = bnx_TPAT_b06FwData;
3175 1.29 bouyer
3176 1.29 bouyer fw.sbss_addr = bnx_TPAT_b06FwSbssAddr;
3177 1.29 bouyer fw.sbss_len = bnx_TPAT_b06FwSbssLen;
3178 1.29 bouyer fw.sbss_index = 0;
3179 1.29 bouyer fw.sbss = bnx_TPAT_b06FwSbss;
3180 1.29 bouyer
3181 1.29 bouyer fw.bss_addr = bnx_TPAT_b06FwBssAddr;
3182 1.29 bouyer fw.bss_len = bnx_TPAT_b06FwBssLen;
3183 1.29 bouyer fw.bss_index = 0;
3184 1.29 bouyer fw.bss = bnx_TPAT_b06FwBss;
3185 1.29 bouyer
3186 1.29 bouyer fw.rodata_addr = bnx_TPAT_b06FwRodataAddr;
3187 1.29 bouyer fw.rodata_len = bnx_TPAT_b06FwRodataLen;
3188 1.29 bouyer fw.rodata_index = 0;
3189 1.29 bouyer fw.rodata = bnx_TPAT_b06FwRodata;
3190 1.29 bouyer
3191 1.29 bouyer DBPRINT(sc, BNX_INFO_RESET, "Loading TPAT firmware.\n");
3192 1.29 bouyer bnx_load_cpu_fw(sc, &cpu_reg, &fw);
3193 1.29 bouyer
3194 1.29 bouyer /* Initialize the Completion Processor. */
3195 1.29 bouyer cpu_reg.mode = BNX_COM_CPU_MODE;
3196 1.29 bouyer cpu_reg.mode_value_halt = BNX_COM_CPU_MODE_SOFT_HALT;
3197 1.29 bouyer cpu_reg.mode_value_sstep = BNX_COM_CPU_MODE_STEP_ENA;
3198 1.29 bouyer cpu_reg.state = BNX_COM_CPU_STATE;
3199 1.29 bouyer cpu_reg.state_value_clear = 0xffffff;
3200 1.29 bouyer cpu_reg.gpr0 = BNX_COM_CPU_REG_FILE;
3201 1.29 bouyer cpu_reg.evmask = BNX_COM_CPU_EVENT_MASK;
3202 1.29 bouyer cpu_reg.pc = BNX_COM_CPU_PROGRAM_COUNTER;
3203 1.29 bouyer cpu_reg.inst = BNX_COM_CPU_INSTRUCTION;
3204 1.29 bouyer cpu_reg.bp = BNX_COM_CPU_HW_BREAKPOINT;
3205 1.29 bouyer cpu_reg.spad_base = BNX_COM_SCRATCH;
3206 1.29 bouyer cpu_reg.mips_view_base = 0x8000000;
3207 1.29 bouyer
3208 1.29 bouyer fw.ver_major = bnx_COM_b06FwReleaseMajor;
3209 1.29 bouyer fw.ver_minor = bnx_COM_b06FwReleaseMinor;
3210 1.29 bouyer fw.ver_fix = bnx_COM_b06FwReleaseFix;
3211 1.29 bouyer fw.start_addr = bnx_COM_b06FwStartAddr;
3212 1.29 bouyer
3213 1.29 bouyer fw.text_addr = bnx_COM_b06FwTextAddr;
3214 1.29 bouyer fw.text_len = bnx_COM_b06FwTextLen;
3215 1.29 bouyer fw.text_index = 0;
3216 1.29 bouyer fw.text = bnx_COM_b06FwText;
3217 1.29 bouyer
3218 1.29 bouyer fw.data_addr = bnx_COM_b06FwDataAddr;
3219 1.29 bouyer fw.data_len = bnx_COM_b06FwDataLen;
3220 1.29 bouyer fw.data_index = 0;
3221 1.29 bouyer fw.data = bnx_COM_b06FwData;
3222 1.29 bouyer
3223 1.29 bouyer fw.sbss_addr = bnx_COM_b06FwSbssAddr;
3224 1.29 bouyer fw.sbss_len = bnx_COM_b06FwSbssLen;
3225 1.29 bouyer fw.sbss_index = 0;
3226 1.29 bouyer fw.sbss = bnx_COM_b06FwSbss;
3227 1.29 bouyer
3228 1.29 bouyer fw.bss_addr = bnx_COM_b06FwBssAddr;
3229 1.29 bouyer fw.bss_len = bnx_COM_b06FwBssLen;
3230 1.29 bouyer fw.bss_index = 0;
3231 1.29 bouyer fw.bss = bnx_COM_b06FwBss;
3232 1.29 bouyer
3233 1.29 bouyer fw.rodata_addr = bnx_COM_b06FwRodataAddr;
3234 1.29 bouyer fw.rodata_len = bnx_COM_b06FwRodataLen;
3235 1.29 bouyer fw.rodata_index = 0;
3236 1.29 bouyer fw.rodata = bnx_COM_b06FwRodata;
3237 1.29 bouyer DBPRINT(sc, BNX_INFO_RESET, "Loading COM firmware.\n");
3238 1.29 bouyer bnx_load_cpu_fw(sc, &cpu_reg, &fw);
3239 1.29 bouyer break;
3240 1.29 bouyer }
3241 1.1 bouyer }
3242 1.1 bouyer
3243 1.1 bouyer /****************************************************************************/
3244 1.1 bouyer /* Initialize context memory. */
3245 1.1 bouyer /* */
3246 1.1 bouyer /* Clears the memory associated with each Context ID (CID). */
3247 1.1 bouyer /* */
3248 1.1 bouyer /* Returns: */
3249 1.1 bouyer /* Nothing. */
3250 1.1 bouyer /****************************************************************************/
3251 1.1 bouyer void
3252 1.1 bouyer bnx_init_context(struct bnx_softc *sc)
3253 1.1 bouyer {
3254 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
3255 1.29 bouyer /* DRC: Replace this constant value with a #define. */
3256 1.29 bouyer int i, retry_cnt = 10;
3257 1.55 msaitoh uint32_t val;
3258 1.1 bouyer
3259 1.29 bouyer /*
3260 1.29 bouyer * BCM5709 context memory may be cached
3261 1.29 bouyer * in host memory so prepare the host memory
3262 1.29 bouyer * for access.
3263 1.29 bouyer */
3264 1.29 bouyer val = BNX_CTX_COMMAND_ENABLED | BNX_CTX_COMMAND_MEM_INIT
3265 1.29 bouyer | (1 << 12);
3266 1.29 bouyer val |= (BCM_PAGE_BITS - 8) << 16;
3267 1.29 bouyer REG_WR(sc, BNX_CTX_COMMAND, val);
3268 1.29 bouyer
3269 1.29 bouyer /* Wait for mem init command to complete. */
3270 1.29 bouyer for (i = 0; i < retry_cnt; i++) {
3271 1.29 bouyer val = REG_RD(sc, BNX_CTX_COMMAND);
3272 1.29 bouyer if (!(val & BNX_CTX_COMMAND_MEM_INIT))
3273 1.29 bouyer break;
3274 1.29 bouyer DELAY(2);
3275 1.29 bouyer }
3276 1.1 bouyer
3277 1.29 bouyer /* ToDo: Consider returning an error here. */
3278 1.29 bouyer
3279 1.29 bouyer for (i = 0; i < sc->ctx_pages; i++) {
3280 1.29 bouyer int j;
3281 1.1 bouyer
3282 1.29 bouyer /* Set the physaddr of the context memory cache. */
3283 1.55 msaitoh val = (uint32_t)(sc->ctx_segs[i].ds_addr);
3284 1.29 bouyer REG_WR(sc, BNX_CTX_HOST_PAGE_TBL_DATA0, val |
3285 1.29 bouyer BNX_CTX_HOST_PAGE_TBL_DATA0_VALID);
3286 1.55 msaitoh val = (uint32_t)
3287 1.55 msaitoh ((uint64_t)sc->ctx_segs[i].ds_addr >> 32);
3288 1.29 bouyer REG_WR(sc, BNX_CTX_HOST_PAGE_TBL_DATA1, val);
3289 1.29 bouyer REG_WR(sc, BNX_CTX_HOST_PAGE_TBL_CTRL, i |
3290 1.29 bouyer BNX_CTX_HOST_PAGE_TBL_CTRL_WRITE_REQ);
3291 1.29 bouyer
3292 1.29 bouyer /* Verify that the context memory write was successful. */
3293 1.29 bouyer for (j = 0; j < retry_cnt; j++) {
3294 1.29 bouyer val = REG_RD(sc, BNX_CTX_HOST_PAGE_TBL_CTRL);
3295 1.29 bouyer if ((val & BNX_CTX_HOST_PAGE_TBL_CTRL_WRITE_REQ) == 0)
3296 1.29 bouyer break;
3297 1.29 bouyer DELAY(5);
3298 1.29 bouyer }
3299 1.1 bouyer
3300 1.29 bouyer /* ToDo: Consider returning an error here. */
3301 1.29 bouyer }
3302 1.29 bouyer } else {
3303 1.55 msaitoh uint32_t vcid_addr, offset;
3304 1.29 bouyer
3305 1.29 bouyer /*
3306 1.66 msaitoh * For the 5706/5708, context memory is local to the
3307 1.66 msaitoh * controller, so initialize the controller context memory.
3308 1.29 bouyer */
3309 1.29 bouyer
3310 1.29 bouyer vcid_addr = GET_CID_ADDR(96);
3311 1.29 bouyer while (vcid_addr) {
3312 1.29 bouyer
3313 1.39 martin vcid_addr -= BNX_PHY_CTX_SIZE;
3314 1.29 bouyer
3315 1.29 bouyer REG_WR(sc, BNX_CTX_VIRT_ADDR, 0);
3316 1.29 bouyer REG_WR(sc, BNX_CTX_PAGE_TBL, vcid_addr);
3317 1.29 bouyer
3318 1.66 msaitoh for (offset = 0; offset < BNX_PHY_CTX_SIZE;
3319 1.66 msaitoh offset += 4)
3320 1.29 bouyer CTX_WR(sc, 0x00, offset, 0);
3321 1.29 bouyer
3322 1.29 bouyer REG_WR(sc, BNX_CTX_VIRT_ADDR, vcid_addr);
3323 1.29 bouyer REG_WR(sc, BNX_CTX_PAGE_TBL, vcid_addr);
3324 1.29 bouyer }
3325 1.1 bouyer }
3326 1.1 bouyer }
3327 1.1 bouyer
3328 1.1 bouyer /****************************************************************************/
3329 1.1 bouyer /* Fetch the permanent MAC address of the controller. */
3330 1.1 bouyer /* */
3331 1.1 bouyer /* Returns: */
3332 1.1 bouyer /* Nothing. */
3333 1.1 bouyer /****************************************************************************/
3334 1.1 bouyer void
3335 1.1 bouyer bnx_get_mac_addr(struct bnx_softc *sc)
3336 1.1 bouyer {
3337 1.55 msaitoh uint32_t mac_lo = 0, mac_hi = 0;
3338 1.1 bouyer
3339 1.1 bouyer /*
3340 1.1 bouyer * The NetXtreme II bootcode populates various NIC
3341 1.1 bouyer * power-on and runtime configuration items in a
3342 1.1 bouyer * shared memory area. The factory configured MAC
3343 1.1 bouyer * address is available from both NVRAM and the
3344 1.1 bouyer * shared memory area so we'll read the value from
3345 1.1 bouyer * shared memory for speed.
3346 1.1 bouyer */
3347 1.1 bouyer
3348 1.1 bouyer mac_hi = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_PORT_HW_CFG_MAC_UPPER);
3349 1.1 bouyer mac_lo = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_PORT_HW_CFG_MAC_LOWER);
3350 1.1 bouyer
3351 1.1 bouyer if ((mac_lo == 0) && (mac_hi == 0)) {
3352 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Invalid Ethernet address!\n",
3353 1.1 bouyer __FILE__, __LINE__);
3354 1.1 bouyer } else {
3355 1.1 bouyer sc->eaddr[0] = (u_char)(mac_hi >> 8);
3356 1.1 bouyer sc->eaddr[1] = (u_char)(mac_hi >> 0);
3357 1.1 bouyer sc->eaddr[2] = (u_char)(mac_lo >> 24);
3358 1.1 bouyer sc->eaddr[3] = (u_char)(mac_lo >> 16);
3359 1.1 bouyer sc->eaddr[4] = (u_char)(mac_lo >> 8);
3360 1.1 bouyer sc->eaddr[5] = (u_char)(mac_lo >> 0);
3361 1.1 bouyer }
3362 1.1 bouyer
3363 1.1 bouyer DBPRINT(sc, BNX_INFO, "Permanent Ethernet address = "
3364 1.1 bouyer "%s\n", ether_sprintf(sc->eaddr));
3365 1.1 bouyer }
3366 1.1 bouyer
3367 1.1 bouyer /****************************************************************************/
3368 1.1 bouyer /* Program the MAC address. */
3369 1.1 bouyer /* */
3370 1.1 bouyer /* Returns: */
3371 1.1 bouyer /* Nothing. */
3372 1.1 bouyer /****************************************************************************/
3373 1.1 bouyer void
3374 1.1 bouyer bnx_set_mac_addr(struct bnx_softc *sc)
3375 1.1 bouyer {
3376 1.55 msaitoh uint32_t val;
3377 1.55 msaitoh const uint8_t *mac_addr = CLLADDR(sc->bnx_ec.ec_if.if_sadl);
3378 1.1 bouyer
3379 1.1 bouyer DBPRINT(sc, BNX_INFO, "Setting Ethernet address = "
3380 1.1 bouyer "%s\n", ether_sprintf(sc->eaddr));
3381 1.1 bouyer
3382 1.1 bouyer val = (mac_addr[0] << 8) | mac_addr[1];
3383 1.1 bouyer
3384 1.1 bouyer REG_WR(sc, BNX_EMAC_MAC_MATCH0, val);
3385 1.1 bouyer
3386 1.1 bouyer val = (mac_addr[2] << 24) | (mac_addr[3] << 16) |
3387 1.1 bouyer (mac_addr[4] << 8) | mac_addr[5];
3388 1.1 bouyer
3389 1.1 bouyer REG_WR(sc, BNX_EMAC_MAC_MATCH1, val);
3390 1.1 bouyer }
3391 1.1 bouyer
3392 1.1 bouyer /****************************************************************************/
3393 1.1 bouyer /* Stop the controller. */
3394 1.1 bouyer /* */
3395 1.1 bouyer /* Returns: */
3396 1.1 bouyer /* Nothing. */
3397 1.1 bouyer /****************************************************************************/
3398 1.1 bouyer void
3399 1.14 dyoung bnx_stop(struct ifnet *ifp, int disable)
3400 1.1 bouyer {
3401 1.14 dyoung struct bnx_softc *sc = ifp->if_softc;
3402 1.1 bouyer
3403 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
3404 1.1 bouyer
3405 1.64 msaitoh if (disable) {
3406 1.64 msaitoh sc->bnx_detaching = 1;
3407 1.64 msaitoh callout_halt(&sc->bnx_timeout, NULL);
3408 1.64 msaitoh } else
3409 1.64 msaitoh callout_stop(&sc->bnx_timeout);
3410 1.1 bouyer
3411 1.14 dyoung mii_down(&sc->bnx_mii);
3412 1.14 dyoung
3413 1.1 bouyer ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
3414 1.1 bouyer
3415 1.1 bouyer /* Disable the transmit/receive blocks. */
3416 1.1 bouyer REG_WR(sc, BNX_MISC_ENABLE_CLR_BITS, 0x5ffffff);
3417 1.1 bouyer REG_RD(sc, BNX_MISC_ENABLE_CLR_BITS);
3418 1.1 bouyer DELAY(20);
3419 1.1 bouyer
3420 1.1 bouyer bnx_disable_intr(sc);
3421 1.1 bouyer
3422 1.1 bouyer /* Tell firmware that the driver is going away. */
3423 1.14 dyoung if (disable)
3424 1.14 dyoung bnx_reset(sc, BNX_DRV_MSG_CODE_RESET);
3425 1.14 dyoung else
3426 1.14 dyoung bnx_reset(sc, BNX_DRV_MSG_CODE_SUSPEND_NO_WOL);
3427 1.1 bouyer
3428 1.29 bouyer /* Free RX buffers. */
3429 1.1 bouyer bnx_free_rx_chain(sc);
3430 1.1 bouyer
3431 1.1 bouyer /* Free TX buffers. */
3432 1.1 bouyer bnx_free_tx_chain(sc);
3433 1.1 bouyer
3434 1.1 bouyer ifp->if_timer = 0;
3435 1.1 bouyer
3436 1.73 msaitoh sc->bnx_link = 0;
3437 1.73 msaitoh
3438 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
3439 1.1 bouyer
3440 1.73 msaitoh bnx_mgmt_init(sc);
3441 1.1 bouyer }
3442 1.1 bouyer
3443 1.1 bouyer int
3444 1.55 msaitoh bnx_reset(struct bnx_softc *sc, uint32_t reset_code)
3445 1.1 bouyer {
3446 1.29 bouyer struct pci_attach_args *pa = &(sc->bnx_pa);
3447 1.55 msaitoh uint32_t val;
3448 1.1 bouyer int i, rc = 0;
3449 1.1 bouyer
3450 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
3451 1.1 bouyer
3452 1.1 bouyer /* Wait for pending PCI transactions to complete. */
3453 1.1 bouyer REG_WR(sc, BNX_MISC_ENABLE_CLR_BITS,
3454 1.1 bouyer BNX_MISC_ENABLE_CLR_BITS_TX_DMA_ENABLE |
3455 1.1 bouyer BNX_MISC_ENABLE_CLR_BITS_DMA_ENGINE_ENABLE |
3456 1.1 bouyer BNX_MISC_ENABLE_CLR_BITS_RX_DMA_ENABLE |
3457 1.1 bouyer BNX_MISC_ENABLE_CLR_BITS_HOST_COALESCE_ENABLE);
3458 1.1 bouyer val = REG_RD(sc, BNX_MISC_ENABLE_CLR_BITS);
3459 1.1 bouyer DELAY(5);
3460 1.1 bouyer
3461 1.29 bouyer /* Disable DMA */
3462 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
3463 1.29 bouyer val = REG_RD(sc, BNX_MISC_NEW_CORE_CTL);
3464 1.29 bouyer val &= ~BNX_MISC_NEW_CORE_CTL_DMA_ENABLE;
3465 1.29 bouyer REG_WR(sc, BNX_MISC_NEW_CORE_CTL, val);
3466 1.29 bouyer }
3467 1.29 bouyer
3468 1.1 bouyer /* Assume bootcode is running. */
3469 1.1 bouyer sc->bnx_fw_timed_out = 0;
3470 1.1 bouyer
3471 1.1 bouyer /* Give the firmware a chance to prepare for the reset. */
3472 1.1 bouyer rc = bnx_fw_sync(sc, BNX_DRV_MSG_DATA_WAIT0 | reset_code);
3473 1.1 bouyer if (rc)
3474 1.1 bouyer goto bnx_reset_exit;
3475 1.1 bouyer
3476 1.1 bouyer /* Set a firmware reminder that this is a soft reset. */
3477 1.1 bouyer REG_WR_IND(sc, sc->bnx_shmem_base + BNX_DRV_RESET_SIGNATURE,
3478 1.1 bouyer BNX_DRV_RESET_SIGNATURE_MAGIC);
3479 1.1 bouyer
3480 1.1 bouyer /* Dummy read to force the chip to complete all current transactions. */
3481 1.1 bouyer val = REG_RD(sc, BNX_MISC_ID);
3482 1.1 bouyer
3483 1.1 bouyer /* Chip reset. */
3484 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
3485 1.29 bouyer REG_WR(sc, BNX_MISC_COMMAND, BNX_MISC_COMMAND_SW_RESET);
3486 1.29 bouyer REG_RD(sc, BNX_MISC_COMMAND);
3487 1.29 bouyer DELAY(5);
3488 1.1 bouyer
3489 1.29 bouyer val = BNX_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
3490 1.29 bouyer BNX_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP;
3491 1.1 bouyer
3492 1.29 bouyer pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_MISC_CONFIG,
3493 1.29 bouyer val);
3494 1.29 bouyer } else {
3495 1.29 bouyer val = BNX_PCICFG_MISC_CONFIG_CORE_RST_REQ |
3496 1.29 bouyer BNX_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
3497 1.29 bouyer BNX_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP;
3498 1.29 bouyer REG_WR(sc, BNX_PCICFG_MISC_CONFIG, val);
3499 1.29 bouyer
3500 1.29 bouyer /* Allow up to 30us for reset to complete. */
3501 1.29 bouyer for (i = 0; i < 10; i++) {
3502 1.29 bouyer val = REG_RD(sc, BNX_PCICFG_MISC_CONFIG);
3503 1.29 bouyer if ((val & (BNX_PCICFG_MISC_CONFIG_CORE_RST_REQ |
3504 1.29 bouyer BNX_PCICFG_MISC_CONFIG_CORE_RST_BSY)) == 0) {
3505 1.29 bouyer break;
3506 1.29 bouyer }
3507 1.29 bouyer DELAY(10);
3508 1.29 bouyer }
3509 1.1 bouyer
3510 1.29 bouyer /* Check that reset completed successfully. */
3511 1.29 bouyer if (val & (BNX_PCICFG_MISC_CONFIG_CORE_RST_REQ |
3512 1.29 bouyer BNX_PCICFG_MISC_CONFIG_CORE_RST_BSY)) {
3513 1.29 bouyer BNX_PRINTF(sc, "%s(%d): Reset failed!\n",
3514 1.29 bouyer __FILE__, __LINE__);
3515 1.29 bouyer rc = EBUSY;
3516 1.29 bouyer goto bnx_reset_exit;
3517 1.29 bouyer }
3518 1.1 bouyer }
3519 1.1 bouyer
3520 1.1 bouyer /* Make sure byte swapping is properly configured. */
3521 1.1 bouyer val = REG_RD(sc, BNX_PCI_SWAP_DIAG0);
3522 1.1 bouyer if (val != 0x01020304) {
3523 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Byte swap is incorrect!\n",
3524 1.1 bouyer __FILE__, __LINE__);
3525 1.1 bouyer rc = ENODEV;
3526 1.1 bouyer goto bnx_reset_exit;
3527 1.1 bouyer }
3528 1.1 bouyer
3529 1.1 bouyer /* Just completed a reset, assume that firmware is running again. */
3530 1.1 bouyer sc->bnx_fw_timed_out = 0;
3531 1.1 bouyer
3532 1.1 bouyer /* Wait for the firmware to finish its initialization. */
3533 1.1 bouyer rc = bnx_fw_sync(sc, BNX_DRV_MSG_DATA_WAIT1 | reset_code);
3534 1.1 bouyer if (rc)
3535 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Firmware did not complete "
3536 1.1 bouyer "initialization!\n", __FILE__, __LINE__);
3537 1.1 bouyer
3538 1.1 bouyer bnx_reset_exit:
3539 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
3540 1.1 bouyer
3541 1.52 msaitoh return rc;
3542 1.1 bouyer }
3543 1.1 bouyer
3544 1.1 bouyer int
3545 1.1 bouyer bnx_chipinit(struct bnx_softc *sc)
3546 1.1 bouyer {
3547 1.1 bouyer struct pci_attach_args *pa = &(sc->bnx_pa);
3548 1.55 msaitoh uint32_t val;
3549 1.1 bouyer int rc = 0;
3550 1.1 bouyer
3551 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
3552 1.1 bouyer
3553 1.1 bouyer /* Make sure the interrupt is not active. */
3554 1.1 bouyer REG_WR(sc, BNX_PCICFG_INT_ACK_CMD, BNX_PCICFG_INT_ACK_CMD_MASK_INT);
3555 1.1 bouyer
3556 1.1 bouyer /* Initialize DMA byte/word swapping, configure the number of DMA */
3557 1.1 bouyer /* channels and PCI clock compensation delay. */
3558 1.1 bouyer val = BNX_DMA_CONFIG_DATA_BYTE_SWAP |
3559 1.1 bouyer BNX_DMA_CONFIG_DATA_WORD_SWAP |
3560 1.1 bouyer #if BYTE_ORDER == BIG_ENDIAN
3561 1.1 bouyer BNX_DMA_CONFIG_CNTL_BYTE_SWAP |
3562 1.1 bouyer #endif
3563 1.1 bouyer BNX_DMA_CONFIG_CNTL_WORD_SWAP |
3564 1.1 bouyer DMA_READ_CHANS << 12 |
3565 1.1 bouyer DMA_WRITE_CHANS << 16;
3566 1.1 bouyer
3567 1.1 bouyer val |= (0x2 << 20) | BNX_DMA_CONFIG_CNTL_PCI_COMP_DLY;
3568 1.1 bouyer
3569 1.1 bouyer if ((sc->bnx_flags & BNX_PCIX_FLAG) && (sc->bus_speed_mhz == 133))
3570 1.1 bouyer val |= BNX_DMA_CONFIG_PCI_FAST_CLK_CMP;
3571 1.1 bouyer
3572 1.1 bouyer /*
3573 1.1 bouyer * This setting resolves a problem observed on certain Intel PCI
3574 1.1 bouyer * chipsets that cannot handle multiple outstanding DMA operations.
3575 1.1 bouyer * See errata E9_5706A1_65.
3576 1.1 bouyer */
3577 1.1 bouyer if ((BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5706) &&
3578 1.1 bouyer (BNX_CHIP_ID(sc) != BNX_CHIP_ID_5706_A0) &&
3579 1.1 bouyer !(sc->bnx_flags & BNX_PCIX_FLAG))
3580 1.1 bouyer val |= BNX_DMA_CONFIG_CNTL_PING_PONG_DMA;
3581 1.1 bouyer
3582 1.1 bouyer REG_WR(sc, BNX_DMA_CONFIG, val);
3583 1.1 bouyer
3584 1.1 bouyer /* Clear the PCI-X relaxed ordering bit. See errata E3_5708CA0_570. */
3585 1.1 bouyer if (sc->bnx_flags & BNX_PCIX_FLAG) {
3586 1.29 bouyer val = pci_conf_read(pa->pa_pc, pa->pa_tag, BNX_PCI_PCIX_CMD);
3587 1.1 bouyer pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCI_PCIX_CMD,
3588 1.29 bouyer val & ~0x20000);
3589 1.1 bouyer }
3590 1.1 bouyer
3591 1.1 bouyer /* Enable the RX_V2P and Context state machines before access. */
3592 1.1 bouyer REG_WR(sc, BNX_MISC_ENABLE_SET_BITS,
3593 1.1 bouyer BNX_MISC_ENABLE_SET_BITS_HOST_COALESCE_ENABLE |
3594 1.1 bouyer BNX_MISC_ENABLE_STATUS_BITS_RX_V2P_ENABLE |
3595 1.1 bouyer BNX_MISC_ENABLE_STATUS_BITS_CONTEXT_ENABLE);
3596 1.1 bouyer
3597 1.1 bouyer /* Initialize context mapping and zero out the quick contexts. */
3598 1.1 bouyer bnx_init_context(sc);
3599 1.1 bouyer
3600 1.1 bouyer /* Initialize the on-boards CPUs */
3601 1.1 bouyer bnx_init_cpus(sc);
3602 1.1 bouyer
3603 1.1 bouyer /* Prepare NVRAM for access. */
3604 1.1 bouyer if (bnx_init_nvram(sc)) {
3605 1.1 bouyer rc = ENODEV;
3606 1.1 bouyer goto bnx_chipinit_exit;
3607 1.1 bouyer }
3608 1.1 bouyer
3609 1.1 bouyer /* Set the kernel bypass block size */
3610 1.1 bouyer val = REG_RD(sc, BNX_MQ_CONFIG);
3611 1.1 bouyer val &= ~BNX_MQ_CONFIG_KNL_BYP_BLK_SIZE;
3612 1.1 bouyer val |= BNX_MQ_CONFIG_KNL_BYP_BLK_SIZE_256;
3613 1.29 bouyer
3614 1.29 bouyer /* Enable bins used on the 5709. */
3615 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
3616 1.29 bouyer val |= BNX_MQ_CONFIG_BIN_MQ_MODE;
3617 1.29 bouyer if (BNX_CHIP_ID(sc) == BNX_CHIP_ID_5709_A1)
3618 1.29 bouyer val |= BNX_MQ_CONFIG_HALT_DIS;
3619 1.29 bouyer }
3620 1.29 bouyer
3621 1.1 bouyer REG_WR(sc, BNX_MQ_CONFIG, val);
3622 1.1 bouyer
3623 1.39 martin val = 0x10000 + (MAX_CID_CNT * BNX_MB_KERNEL_CTX_SIZE);
3624 1.1 bouyer REG_WR(sc, BNX_MQ_KNL_BYP_WIND_START, val);
3625 1.1 bouyer REG_WR(sc, BNX_MQ_KNL_WIND_END, val);
3626 1.1 bouyer
3627 1.1 bouyer val = (BCM_PAGE_BITS - 8) << 24;
3628 1.1 bouyer REG_WR(sc, BNX_RV2P_CONFIG, val);
3629 1.1 bouyer
3630 1.1 bouyer /* Configure page size. */
3631 1.1 bouyer val = REG_RD(sc, BNX_TBDR_CONFIG);
3632 1.1 bouyer val &= ~BNX_TBDR_CONFIG_PAGE_SIZE;
3633 1.1 bouyer val |= (BCM_PAGE_BITS - 8) << 24 | 0x40;
3634 1.1 bouyer REG_WR(sc, BNX_TBDR_CONFIG, val);
3635 1.1 bouyer
3636 1.29 bouyer #if 0
3637 1.29 bouyer /* Set the perfect match control register to default. */
3638 1.29 bouyer REG_WR_IND(sc, BNX_RXP_PM_CTRL, 0);
3639 1.29 bouyer #endif
3640 1.29 bouyer
3641 1.1 bouyer bnx_chipinit_exit:
3642 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
3643 1.1 bouyer
3644 1.52 msaitoh return rc;
3645 1.1 bouyer }
3646 1.1 bouyer
3647 1.1 bouyer /****************************************************************************/
3648 1.1 bouyer /* Initialize the controller in preparation to send/receive traffic. */
3649 1.1 bouyer /* */
3650 1.1 bouyer /* Returns: */
3651 1.1 bouyer /* 0 for success, positive value for failure. */
3652 1.1 bouyer /****************************************************************************/
3653 1.1 bouyer int
3654 1.1 bouyer bnx_blockinit(struct bnx_softc *sc)
3655 1.1 bouyer {
3656 1.55 msaitoh uint32_t reg, val;
3657 1.1 bouyer int rc = 0;
3658 1.1 bouyer
3659 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
3660 1.1 bouyer
3661 1.1 bouyer /* Load the hardware default MAC address. */
3662 1.1 bouyer bnx_set_mac_addr(sc);
3663 1.1 bouyer
3664 1.1 bouyer /* Set the Ethernet backoff seed value */
3665 1.1 bouyer val = sc->eaddr[0] + (sc->eaddr[1] << 8) + (sc->eaddr[2] << 16) +
3666 1.1 bouyer (sc->eaddr[3]) + (sc->eaddr[4] << 8) + (sc->eaddr[5] << 16);
3667 1.1 bouyer REG_WR(sc, BNX_EMAC_BACKOFF_SEED, val);
3668 1.1 bouyer
3669 1.1 bouyer sc->last_status_idx = 0;
3670 1.1 bouyer sc->rx_mode = BNX_EMAC_RX_MODE_SORT_MODE;
3671 1.1 bouyer
3672 1.1 bouyer /* Set up link change interrupt generation. */
3673 1.1 bouyer REG_WR(sc, BNX_EMAC_ATTENTION_ENA, BNX_EMAC_ATTENTION_ENA_LINK);
3674 1.29 bouyer REG_WR(sc, BNX_HC_ATTN_BITS_ENABLE, STATUS_ATTN_BITS_LINK_STATE);
3675 1.1 bouyer
3676 1.1 bouyer /* Program the physical address of the status block. */
3677 1.55 msaitoh REG_WR(sc, BNX_HC_STATUS_ADDR_L, (uint32_t)(sc->status_block_paddr));
3678 1.1 bouyer REG_WR(sc, BNX_HC_STATUS_ADDR_H,
3679 1.55 msaitoh (uint32_t)((uint64_t)sc->status_block_paddr >> 32));
3680 1.1 bouyer
3681 1.1 bouyer /* Program the physical address of the statistics block. */
3682 1.1 bouyer REG_WR(sc, BNX_HC_STATISTICS_ADDR_L,
3683 1.55 msaitoh (uint32_t)(sc->stats_block_paddr));
3684 1.1 bouyer REG_WR(sc, BNX_HC_STATISTICS_ADDR_H,
3685 1.55 msaitoh (uint32_t)((uint64_t)sc->stats_block_paddr >> 32));
3686 1.1 bouyer
3687 1.1 bouyer /* Program various host coalescing parameters. */
3688 1.1 bouyer REG_WR(sc, BNX_HC_TX_QUICK_CONS_TRIP, (sc->bnx_tx_quick_cons_trip_int
3689 1.1 bouyer << 16) | sc->bnx_tx_quick_cons_trip);
3690 1.1 bouyer REG_WR(sc, BNX_HC_RX_QUICK_CONS_TRIP, (sc->bnx_rx_quick_cons_trip_int
3691 1.1 bouyer << 16) | sc->bnx_rx_quick_cons_trip);
3692 1.1 bouyer REG_WR(sc, BNX_HC_COMP_PROD_TRIP, (sc->bnx_comp_prod_trip_int << 16) |
3693 1.1 bouyer sc->bnx_comp_prod_trip);
3694 1.1 bouyer REG_WR(sc, BNX_HC_TX_TICKS, (sc->bnx_tx_ticks_int << 16) |
3695 1.1 bouyer sc->bnx_tx_ticks);
3696 1.1 bouyer REG_WR(sc, BNX_HC_RX_TICKS, (sc->bnx_rx_ticks_int << 16) |
3697 1.1 bouyer sc->bnx_rx_ticks);
3698 1.1 bouyer REG_WR(sc, BNX_HC_COM_TICKS, (sc->bnx_com_ticks_int << 16) |
3699 1.1 bouyer sc->bnx_com_ticks);
3700 1.1 bouyer REG_WR(sc, BNX_HC_CMD_TICKS, (sc->bnx_cmd_ticks_int << 16) |
3701 1.1 bouyer sc->bnx_cmd_ticks);
3702 1.1 bouyer REG_WR(sc, BNX_HC_STATS_TICKS, (sc->bnx_stats_ticks & 0xffff00));
3703 1.1 bouyer REG_WR(sc, BNX_HC_STAT_COLLECT_TICKS, 0xbb8); /* 3ms */
3704 1.1 bouyer REG_WR(sc, BNX_HC_CONFIG,
3705 1.1 bouyer (BNX_HC_CONFIG_RX_TMR_MODE | BNX_HC_CONFIG_TX_TMR_MODE |
3706 1.1 bouyer BNX_HC_CONFIG_COLLECT_STATS));
3707 1.1 bouyer
3708 1.1 bouyer /* Clear the internal statistics counters. */
3709 1.1 bouyer REG_WR(sc, BNX_HC_COMMAND, BNX_HC_COMMAND_CLR_STAT_NOW);
3710 1.1 bouyer
3711 1.1 bouyer /* Verify that bootcode is running. */
3712 1.1 bouyer reg = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_DEV_INFO_SIGNATURE);
3713 1.1 bouyer
3714 1.1 bouyer DBRUNIF(DB_RANDOMTRUE(bnx_debug_bootcode_running_failure),
3715 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Simulating bootcode failure.\n",
3716 1.1 bouyer __FILE__, __LINE__); reg = 0);
3717 1.1 bouyer
3718 1.1 bouyer if ((reg & BNX_DEV_INFO_SIGNATURE_MAGIC_MASK) !=
3719 1.1 bouyer BNX_DEV_INFO_SIGNATURE_MAGIC) {
3720 1.1 bouyer BNX_PRINTF(sc, "%s(%d): Bootcode not running! Found: 0x%08X, "
3721 1.1 bouyer "Expected: 08%08X\n", __FILE__, __LINE__,
3722 1.1 bouyer (reg & BNX_DEV_INFO_SIGNATURE_MAGIC_MASK),
3723 1.1 bouyer BNX_DEV_INFO_SIGNATURE_MAGIC);
3724 1.1 bouyer rc = ENODEV;
3725 1.1 bouyer goto bnx_blockinit_exit;
3726 1.1 bouyer }
3727 1.1 bouyer
3728 1.1 bouyer /* Check if any management firmware is running. */
3729 1.1 bouyer reg = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_PORT_FEATURE);
3730 1.1 bouyer if (reg & (BNX_PORT_FEATURE_ASF_ENABLED |
3731 1.1 bouyer BNX_PORT_FEATURE_IMD_ENABLED)) {
3732 1.1 bouyer DBPRINT(sc, BNX_INFO, "Management F/W Enabled.\n");
3733 1.1 bouyer sc->bnx_flags |= BNX_MFW_ENABLE_FLAG;
3734 1.1 bouyer }
3735 1.1 bouyer
3736 1.1 bouyer sc->bnx_fw_ver = REG_RD_IND(sc, sc->bnx_shmem_base +
3737 1.1 bouyer BNX_DEV_INFO_BC_REV);
3738 1.1 bouyer
3739 1.1 bouyer DBPRINT(sc, BNX_INFO, "bootcode rev = 0x%08X\n", sc->bnx_fw_ver);
3740 1.1 bouyer
3741 1.29 bouyer /* Enable DMA */
3742 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
3743 1.29 bouyer val = REG_RD(sc, BNX_MISC_NEW_CORE_CTL);
3744 1.29 bouyer val |= BNX_MISC_NEW_CORE_CTL_DMA_ENABLE;
3745 1.29 bouyer REG_WR(sc, BNX_MISC_NEW_CORE_CTL, val);
3746 1.29 bouyer }
3747 1.29 bouyer
3748 1.1 bouyer /* Allow bootcode to apply any additional fixes before enabling MAC. */
3749 1.1 bouyer rc = bnx_fw_sync(sc, BNX_DRV_MSG_DATA_WAIT2 | BNX_DRV_MSG_CODE_RESET);
3750 1.1 bouyer
3751 1.1 bouyer /* Enable link state change interrupt generation. */
3752 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
3753 1.29 bouyer REG_WR(sc, BNX_MISC_ENABLE_SET_BITS,
3754 1.29 bouyer BNX_MISC_ENABLE_DEFAULT_XI);
3755 1.29 bouyer } else
3756 1.29 bouyer REG_WR(sc, BNX_MISC_ENABLE_SET_BITS, BNX_MISC_ENABLE_DEFAULT);
3757 1.1 bouyer
3758 1.1 bouyer /* Enable all remaining blocks in the MAC. */
3759 1.1 bouyer REG_WR(sc, BNX_MISC_ENABLE_SET_BITS, 0x5ffffff);
3760 1.1 bouyer REG_RD(sc, BNX_MISC_ENABLE_SET_BITS);
3761 1.1 bouyer DELAY(20);
3762 1.1 bouyer
3763 1.1 bouyer bnx_blockinit_exit:
3764 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
3765 1.1 bouyer
3766 1.52 msaitoh return rc;
3767 1.1 bouyer }
3768 1.1 bouyer
3769 1.21 dyoung static int
3770 1.55 msaitoh bnx_add_buf(struct bnx_softc *sc, struct mbuf *m_new, uint16_t *prod,
3771 1.55 msaitoh uint16_t *chain_prod, uint32_t *prod_bseq)
3772 1.21 dyoung {
3773 1.21 dyoung bus_dmamap_t map;
3774 1.21 dyoung struct rx_bd *rxbd;
3775 1.55 msaitoh uint32_t addr;
3776 1.21 dyoung int i;
3777 1.21 dyoung #ifdef BNX_DEBUG
3778 1.55 msaitoh uint16_t debug_chain_prod = *chain_prod;
3779 1.21 dyoung #endif
3780 1.55 msaitoh uint16_t first_chain_prod;
3781 1.21 dyoung
3782 1.21 dyoung m_new->m_len = m_new->m_pkthdr.len = sc->mbuf_alloc_size;
3783 1.21 dyoung
3784 1.21 dyoung /* Map the mbuf cluster into device memory. */
3785 1.21 dyoung map = sc->rx_mbuf_map[*chain_prod];
3786 1.21 dyoung first_chain_prod = *chain_prod;
3787 1.21 dyoung if (bus_dmamap_load_mbuf(sc->bnx_dmatag, map, m_new, BUS_DMA_NOWAIT)) {
3788 1.21 dyoung BNX_PRINTF(sc, "%s(%d): Error mapping mbuf into RX chain!\n",
3789 1.21 dyoung __FILE__, __LINE__);
3790 1.21 dyoung
3791 1.21 dyoung m_freem(m_new);
3792 1.21 dyoung
3793 1.21 dyoung DBRUNIF(1, sc->rx_mbuf_alloc--);
3794 1.21 dyoung
3795 1.21 dyoung return ENOBUFS;
3796 1.21 dyoung }
3797 1.29 bouyer /* Make sure there is room in the receive chain. */
3798 1.29 bouyer if (map->dm_nsegs > sc->free_rx_bd) {
3799 1.29 bouyer bus_dmamap_unload(sc->bnx_dmatag, map);
3800 1.29 bouyer m_freem(m_new);
3801 1.29 bouyer return EFBIG;
3802 1.29 bouyer }
3803 1.29 bouyer #ifdef BNX_DEBUG
3804 1.29 bouyer /* Track the distribution of buffer segments. */
3805 1.29 bouyer sc->rx_mbuf_segs[map->dm_nsegs]++;
3806 1.29 bouyer #endif
3807 1.29 bouyer
3808 1.21 dyoung bus_dmamap_sync(sc->bnx_dmatag, map, 0, map->dm_mapsize,
3809 1.21 dyoung BUS_DMASYNC_PREREAD);
3810 1.21 dyoung
3811 1.29 bouyer /* Update some debug statistics counters */
3812 1.48 christos DBRUNIF((sc->free_rx_bd < sc->rx_low_watermark),
3813 1.21 dyoung sc->rx_low_watermark = sc->free_rx_bd);
3814 1.29 bouyer DBRUNIF((sc->free_rx_bd == sc->max_rx_bd), sc->rx_empty_count++);
3815 1.21 dyoung
3816 1.21 dyoung /*
3817 1.21 dyoung * Setup the rx_bd for the first segment
3818 1.21 dyoung */
3819 1.21 dyoung rxbd = &sc->rx_bd_chain[RX_PAGE(*chain_prod)][RX_IDX(*chain_prod)];
3820 1.21 dyoung
3821 1.55 msaitoh addr = (uint32_t)map->dm_segs[0].ds_addr;
3822 1.37 jym rxbd->rx_bd_haddr_lo = addr;
3823 1.55 msaitoh addr = (uint32_t)((uint64_t)map->dm_segs[0].ds_addr >> 32);
3824 1.37 jym rxbd->rx_bd_haddr_hi = addr;
3825 1.37 jym rxbd->rx_bd_len = map->dm_segs[0].ds_len;
3826 1.37 jym rxbd->rx_bd_flags = RX_BD_FLAGS_START;
3827 1.21 dyoung *prod_bseq += map->dm_segs[0].ds_len;
3828 1.21 dyoung bus_dmamap_sync(sc->bnx_dmatag,
3829 1.21 dyoung sc->rx_bd_chain_map[RX_PAGE(*chain_prod)],
3830 1.21 dyoung sizeof(struct rx_bd) * RX_IDX(*chain_prod), sizeof(struct rx_bd),
3831 1.21 dyoung BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
3832 1.21 dyoung
3833 1.21 dyoung for (i = 1; i < map->dm_nsegs; i++) {
3834 1.21 dyoung *prod = NEXT_RX_BD(*prod);
3835 1.48 christos *chain_prod = RX_CHAIN_IDX(*prod);
3836 1.21 dyoung
3837 1.21 dyoung rxbd =
3838 1.21 dyoung &sc->rx_bd_chain[RX_PAGE(*chain_prod)][RX_IDX(*chain_prod)];
3839 1.21 dyoung
3840 1.55 msaitoh addr = (uint32_t)map->dm_segs[i].ds_addr;
3841 1.37 jym rxbd->rx_bd_haddr_lo = addr;
3842 1.55 msaitoh addr = (uint32_t)((uint64_t)map->dm_segs[i].ds_addr >> 32);
3843 1.37 jym rxbd->rx_bd_haddr_hi = addr;
3844 1.37 jym rxbd->rx_bd_len = map->dm_segs[i].ds_len;
3845 1.21 dyoung rxbd->rx_bd_flags = 0;
3846 1.21 dyoung *prod_bseq += map->dm_segs[i].ds_len;
3847 1.21 dyoung bus_dmamap_sync(sc->bnx_dmatag,
3848 1.21 dyoung sc->rx_bd_chain_map[RX_PAGE(*chain_prod)],
3849 1.21 dyoung sizeof(struct rx_bd) * RX_IDX(*chain_prod),
3850 1.21 dyoung sizeof(struct rx_bd), BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
3851 1.21 dyoung }
3852 1.21 dyoung
3853 1.37 jym rxbd->rx_bd_flags |= RX_BD_FLAGS_END;
3854 1.21 dyoung bus_dmamap_sync(sc->bnx_dmatag,
3855 1.21 dyoung sc->rx_bd_chain_map[RX_PAGE(*chain_prod)],
3856 1.21 dyoung sizeof(struct rx_bd) * RX_IDX(*chain_prod),
3857 1.21 dyoung sizeof(struct rx_bd), BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
3858 1.21 dyoung
3859 1.21 dyoung /*
3860 1.54 msaitoh * Save the mbuf, adjust the map pointer (swap map for first and
3861 1.55 msaitoh * last rx_bd entry so that rx_mbuf_ptr and rx_mbuf_map matches)
3862 1.55 msaitoh * and update our counter.
3863 1.21 dyoung */
3864 1.21 dyoung sc->rx_mbuf_ptr[*chain_prod] = m_new;
3865 1.21 dyoung sc->rx_mbuf_map[first_chain_prod] = sc->rx_mbuf_map[*chain_prod];
3866 1.21 dyoung sc->rx_mbuf_map[*chain_prod] = map;
3867 1.21 dyoung sc->free_rx_bd -= map->dm_nsegs;
3868 1.21 dyoung
3869 1.48 christos DBRUN(BNX_VERBOSE_RECV, bnx_dump_rx_mbuf_chain(sc, debug_chain_prod,
3870 1.21 dyoung map->dm_nsegs));
3871 1.21 dyoung *prod = NEXT_RX_BD(*prod);
3872 1.48 christos *chain_prod = RX_CHAIN_IDX(*prod);
3873 1.21 dyoung
3874 1.21 dyoung return 0;
3875 1.21 dyoung }
3876 1.21 dyoung
3877 1.1 bouyer /****************************************************************************/
3878 1.1 bouyer /* Encapsulate an mbuf cluster into the rx_bd chain. */
3879 1.1 bouyer /* */
3880 1.1 bouyer /* The NetXtreme II can support Jumbo frames by using multiple rx_bd's. */
3881 1.1 bouyer /* This routine will map an mbuf cluster into 1 or more rx_bd's as */
3882 1.1 bouyer /* necessary. */
3883 1.1 bouyer /* */
3884 1.1 bouyer /* Returns: */
3885 1.1 bouyer /* 0 for success, positive value for failure. */
3886 1.1 bouyer /****************************************************************************/
3887 1.1 bouyer int
3888 1.55 msaitoh bnx_get_buf(struct bnx_softc *sc, uint16_t *prod,
3889 1.55 msaitoh uint16_t *chain_prod, uint32_t *prod_bseq)
3890 1.1 bouyer {
3891 1.1 bouyer struct mbuf *m_new = NULL;
3892 1.21 dyoung int rc = 0;
3893 1.55 msaitoh uint16_t min_free_bd;
3894 1.1 bouyer
3895 1.48 christos DBPRINT(sc, (BNX_VERBOSE_RESET | BNX_VERBOSE_RECV), "Entering %s()\n",
3896 1.12 perry __func__);
3897 1.1 bouyer
3898 1.1 bouyer /* Make sure the inputs are valid. */
3899 1.1 bouyer DBRUNIF((*chain_prod > MAX_RX_BD),
3900 1.13 dyoung aprint_error_dev(sc->bnx_dev,
3901 1.13 dyoung "RX producer out of range: 0x%04X > 0x%04X\n",
3902 1.55 msaitoh *chain_prod, (uint16_t)MAX_RX_BD));
3903 1.1 bouyer
3904 1.1 bouyer DBPRINT(sc, BNX_VERBOSE_RECV, "%s(enter): prod = 0x%04X, chain_prod = "
3905 1.12 perry "0x%04X, prod_bseq = 0x%08X\n", __func__, *prod, *chain_prod,
3906 1.1 bouyer *prod_bseq);
3907 1.1 bouyer
3908 1.5 bouyer /* try to get in as many mbufs as possible */
3909 1.5 bouyer if (sc->mbuf_alloc_size == MCLBYTES)
3910 1.5 bouyer min_free_bd = (MCLBYTES + PAGE_SIZE - 1) / PAGE_SIZE;
3911 1.5 bouyer else
3912 1.30 bouyer min_free_bd = (BNX_MAX_JUMBO_MRU + PAGE_SIZE - 1) / PAGE_SIZE;
3913 1.5 bouyer while (sc->free_rx_bd >= min_free_bd) {
3914 1.29 bouyer /* Simulate an mbuf allocation failure. */
3915 1.21 dyoung DBRUNIF(DB_RANDOMTRUE(bnx_debug_mbuf_allocation_failure),
3916 1.29 bouyer aprint_error_dev(sc->bnx_dev,
3917 1.29 bouyer "Simulating mbuf allocation failure.\n");
3918 1.29 bouyer sc->mbuf_sim_alloc_failed++;
3919 1.21 dyoung rc = ENOBUFS;
3920 1.21 dyoung goto bnx_get_buf_exit);
3921 1.1 bouyer
3922 1.21 dyoung /* This is a new mbuf allocation. */
3923 1.21 dyoung MGETHDR(m_new, M_DONTWAIT, MT_DATA);
3924 1.21 dyoung if (m_new == NULL) {
3925 1.21 dyoung DBPRINT(sc, BNX_WARN,
3926 1.48 christos "%s(%d): RX mbuf header allocation failed!\n",
3927 1.21 dyoung __FILE__, __LINE__);
3928 1.1 bouyer
3929 1.29 bouyer sc->mbuf_alloc_failed++;
3930 1.1 bouyer
3931 1.21 dyoung rc = ENOBUFS;
3932 1.21 dyoung goto bnx_get_buf_exit;
3933 1.21 dyoung }
3934 1.1 bouyer
3935 1.21 dyoung DBRUNIF(1, sc->rx_mbuf_alloc++);
3936 1.29 bouyer
3937 1.29 bouyer /* Simulate an mbuf cluster allocation failure. */
3938 1.29 bouyer DBRUNIF(DB_RANDOMTRUE(bnx_debug_mbuf_allocation_failure),
3939 1.29 bouyer m_freem(m_new);
3940 1.29 bouyer sc->rx_mbuf_alloc--;
3941 1.48 christos sc->mbuf_alloc_failed++;
3942 1.29 bouyer sc->mbuf_sim_alloc_failed++;
3943 1.29 bouyer rc = ENOBUFS;
3944 1.29 bouyer goto bnx_get_buf_exit);
3945 1.29 bouyer
3946 1.21 dyoung if (sc->mbuf_alloc_size == MCLBYTES)
3947 1.21 dyoung MCLGET(m_new, M_DONTWAIT);
3948 1.21 dyoung else
3949 1.21 dyoung MEXTMALLOC(m_new, sc->mbuf_alloc_size,
3950 1.21 dyoung M_DONTWAIT);
3951 1.21 dyoung if (!(m_new->m_flags & M_EXT)) {
3952 1.21 dyoung DBPRINT(sc, BNX_WARN,
3953 1.48 christos "%s(%d): RX mbuf chain allocation failed!\n",
3954 1.1 bouyer __FILE__, __LINE__);
3955 1.52 msaitoh
3956 1.1 bouyer m_freem(m_new);
3957 1.1 bouyer
3958 1.1 bouyer DBRUNIF(1, sc->rx_mbuf_alloc--);
3959 1.29 bouyer sc->mbuf_alloc_failed++;
3960 1.1 bouyer
3961 1.1 bouyer rc = ENOBUFS;
3962 1.1 bouyer goto bnx_get_buf_exit;
3963 1.1 bouyer }
3964 1.52 msaitoh
3965 1.21 dyoung rc = bnx_add_buf(sc, m_new, prod, chain_prod, prod_bseq);
3966 1.21 dyoung if (rc != 0)
3967 1.21 dyoung goto bnx_get_buf_exit;
3968 1.5 bouyer }
3969 1.1 bouyer
3970 1.5 bouyer bnx_get_buf_exit:
3971 1.1 bouyer DBPRINT(sc, BNX_VERBOSE_RECV, "%s(exit): prod = 0x%04X, chain_prod "
3972 1.12 perry "= 0x%04X, prod_bseq = 0x%08X\n", __func__, *prod,
3973 1.1 bouyer *chain_prod, *prod_bseq);
3974 1.1 bouyer
3975 1.48 christos DBPRINT(sc, (BNX_VERBOSE_RESET | BNX_VERBOSE_RECV), "Exiting %s()\n",
3976 1.12 perry __func__);
3977 1.1 bouyer
3978 1.52 msaitoh return rc;
3979 1.1 bouyer }
3980 1.1 bouyer
3981 1.44 jym void
3982 1.44 jym bnx_alloc_pkts(struct work * unused, void * arg)
3983 1.29 bouyer {
3984 1.44 jym struct bnx_softc *sc = arg;
3985 1.29 bouyer struct ifnet *ifp = &sc->bnx_ec.ec_if;
3986 1.29 bouyer struct bnx_pkt *pkt;
3987 1.44 jym int i, s;
3988 1.29 bouyer
3989 1.29 bouyer for (i = 0; i < 4; i++) { /* magic! */
3990 1.44 jym pkt = pool_get(bnx_tx_pool, PR_WAITOK);
3991 1.29 bouyer if (pkt == NULL)
3992 1.29 bouyer break;
3993 1.29 bouyer
3994 1.29 bouyer if (bus_dmamap_create(sc->bnx_dmatag,
3995 1.29 bouyer MCLBYTES * BNX_MAX_SEGMENTS, USABLE_TX_BD,
3996 1.44 jym MCLBYTES, 0, BUS_DMA_WAITOK | BUS_DMA_ALLOCNOW,
3997 1.29 bouyer &pkt->pkt_dmamap) != 0)
3998 1.29 bouyer goto put;
3999 1.29 bouyer
4000 1.29 bouyer if (!ISSET(ifp->if_flags, IFF_UP))
4001 1.29 bouyer goto stopping;
4002 1.29 bouyer
4003 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
4004 1.29 bouyer TAILQ_INSERT_TAIL(&sc->tx_free_pkts, pkt, pkt_entry);
4005 1.29 bouyer sc->tx_pkt_count++;
4006 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
4007 1.29 bouyer }
4008 1.29 bouyer
4009 1.44 jym mutex_enter(&sc->tx_pkt_mtx);
4010 1.44 jym CLR(sc->bnx_flags, BNX_ALLOC_PKTS_FLAG);
4011 1.44 jym mutex_exit(&sc->tx_pkt_mtx);
4012 1.44 jym
4013 1.44 jym /* fire-up TX now that allocations have been done */
4014 1.44 jym s = splnet();
4015 1.44 jym if (!IFQ_IS_EMPTY(&ifp->if_snd))
4016 1.44 jym bnx_start(ifp);
4017 1.44 jym splx(s);
4018 1.44 jym
4019 1.44 jym return;
4020 1.29 bouyer
4021 1.29 bouyer stopping:
4022 1.29 bouyer bus_dmamap_destroy(sc->bnx_dmatag, pkt->pkt_dmamap);
4023 1.29 bouyer put:
4024 1.29 bouyer pool_put(bnx_tx_pool, pkt);
4025 1.44 jym return;
4026 1.29 bouyer }
4027 1.29 bouyer
4028 1.29 bouyer /****************************************************************************/
4029 1.29 bouyer /* Initialize the TX context memory. */
4030 1.29 bouyer /* */
4031 1.29 bouyer /* Returns: */
4032 1.29 bouyer /* Nothing */
4033 1.29 bouyer /****************************************************************************/
4034 1.29 bouyer void
4035 1.29 bouyer bnx_init_tx_context(struct bnx_softc *sc)
4036 1.29 bouyer {
4037 1.55 msaitoh uint32_t val;
4038 1.29 bouyer
4039 1.29 bouyer /* Initialize the context ID for an L2 TX chain. */
4040 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
4041 1.29 bouyer /* Set the CID type to support an L2 connection. */
4042 1.29 bouyer val = BNX_L2CTX_TYPE_TYPE_L2 | BNX_L2CTX_TYPE_SIZE_L2;
4043 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_TYPE_XI, val);
4044 1.29 bouyer val = BNX_L2CTX_CMD_TYPE_TYPE_L2 | (8 << 16);
4045 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_CMD_TYPE_XI, val);
4046 1.29 bouyer
4047 1.29 bouyer /* Point the hardware to the first page in the chain. */
4048 1.55 msaitoh val = (uint32_t)((uint64_t)sc->tx_bd_chain_paddr[0] >> 32);
4049 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(TX_CID),
4050 1.29 bouyer BNX_L2CTX_TBDR_BHADDR_HI_XI, val);
4051 1.55 msaitoh val = (uint32_t)(sc->tx_bd_chain_paddr[0]);
4052 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(TX_CID),
4053 1.29 bouyer BNX_L2CTX_TBDR_BHADDR_LO_XI, val);
4054 1.29 bouyer } else {
4055 1.29 bouyer /* Set the CID type to support an L2 connection. */
4056 1.29 bouyer val = BNX_L2CTX_TYPE_TYPE_L2 | BNX_L2CTX_TYPE_SIZE_L2;
4057 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_TYPE, val);
4058 1.29 bouyer val = BNX_L2CTX_CMD_TYPE_TYPE_L2 | (8 << 16);
4059 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_CMD_TYPE, val);
4060 1.29 bouyer
4061 1.29 bouyer /* Point the hardware to the first page in the chain. */
4062 1.55 msaitoh val = (uint32_t)((uint64_t)sc->tx_bd_chain_paddr[0] >> 32);
4063 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_TBDR_BHADDR_HI, val);
4064 1.55 msaitoh val = (uint32_t)(sc->tx_bd_chain_paddr[0]);
4065 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_TBDR_BHADDR_LO, val);
4066 1.29 bouyer }
4067 1.29 bouyer }
4068 1.29 bouyer
4069 1.29 bouyer
4070 1.1 bouyer /****************************************************************************/
4071 1.1 bouyer /* Allocate memory and initialize the TX data structures. */
4072 1.1 bouyer /* */
4073 1.1 bouyer /* Returns: */
4074 1.1 bouyer /* 0 for success, positive value for failure. */
4075 1.1 bouyer /****************************************************************************/
4076 1.1 bouyer int
4077 1.1 bouyer bnx_init_tx_chain(struct bnx_softc *sc)
4078 1.1 bouyer {
4079 1.1 bouyer struct tx_bd *txbd;
4080 1.55 msaitoh uint32_t addr;
4081 1.1 bouyer int i, rc = 0;
4082 1.1 bouyer
4083 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
4084 1.1 bouyer
4085 1.29 bouyer /* Force an allocation of some dmamaps for tx up front */
4086 1.44 jym bnx_alloc_pkts(NULL, sc);
4087 1.29 bouyer
4088 1.1 bouyer /* Set the initial TX producer/consumer indices. */
4089 1.1 bouyer sc->tx_prod = 0;
4090 1.1 bouyer sc->tx_cons = 0;
4091 1.1 bouyer sc->tx_prod_bseq = 0;
4092 1.1 bouyer sc->used_tx_bd = 0;
4093 1.29 bouyer sc->max_tx_bd = USABLE_TX_BD;
4094 1.1 bouyer DBRUNIF(1, sc->tx_hi_watermark = USABLE_TX_BD);
4095 1.29 bouyer DBRUNIF(1, sc->tx_full_count = 0);
4096 1.1 bouyer
4097 1.1 bouyer /*
4098 1.1 bouyer * The NetXtreme II supports a linked-list structure called
4099 1.1 bouyer * a Buffer Descriptor Chain (or BD chain). A BD chain
4100 1.1 bouyer * consists of a series of 1 or more chain pages, each of which
4101 1.1 bouyer * consists of a fixed number of BD entries.
4102 1.1 bouyer * The last BD entry on each page is a pointer to the next page
4103 1.1 bouyer * in the chain, and the last pointer in the BD chain
4104 1.1 bouyer * points back to the beginning of the chain.
4105 1.1 bouyer */
4106 1.1 bouyer
4107 1.1 bouyer /* Set the TX next pointer chain entries. */
4108 1.1 bouyer for (i = 0; i < TX_PAGES; i++) {
4109 1.1 bouyer int j;
4110 1.1 bouyer
4111 1.1 bouyer txbd = &sc->tx_bd_chain[i][USABLE_TX_BD_PER_PAGE];
4112 1.1 bouyer
4113 1.1 bouyer /* Check if we've reached the last page. */
4114 1.1 bouyer if (i == (TX_PAGES - 1))
4115 1.1 bouyer j = 0;
4116 1.1 bouyer else
4117 1.1 bouyer j = i + 1;
4118 1.1 bouyer
4119 1.55 msaitoh addr = (uint32_t)sc->tx_bd_chain_paddr[j];
4120 1.37 jym txbd->tx_bd_haddr_lo = addr;
4121 1.55 msaitoh addr = (uint32_t)((uint64_t)sc->tx_bd_chain_paddr[j] >> 32);
4122 1.37 jym txbd->tx_bd_haddr_hi = addr;
4123 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->tx_bd_chain_map[i], 0,
4124 1.1 bouyer BNX_TX_CHAIN_PAGE_SZ, BUS_DMASYNC_PREWRITE);
4125 1.1 bouyer }
4126 1.1 bouyer
4127 1.1 bouyer /*
4128 1.1 bouyer * Initialize the context ID for an L2 TX chain.
4129 1.1 bouyer */
4130 1.29 bouyer bnx_init_tx_context(sc);
4131 1.1 bouyer
4132 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
4133 1.1 bouyer
4134 1.52 msaitoh return rc;
4135 1.1 bouyer }
4136 1.1 bouyer
4137 1.1 bouyer /****************************************************************************/
4138 1.1 bouyer /* Free memory and clear the TX data structures. */
4139 1.1 bouyer /* */
4140 1.1 bouyer /* Returns: */
4141 1.1 bouyer /* Nothing. */
4142 1.1 bouyer /****************************************************************************/
4143 1.1 bouyer void
4144 1.1 bouyer bnx_free_tx_chain(struct bnx_softc *sc)
4145 1.1 bouyer {
4146 1.29 bouyer struct bnx_pkt *pkt;
4147 1.1 bouyer int i;
4148 1.1 bouyer
4149 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
4150 1.1 bouyer
4151 1.1 bouyer /* Unmap, unload, and free any mbufs still in the TX mbuf chain. */
4152 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
4153 1.29 bouyer while ((pkt = TAILQ_FIRST(&sc->tx_used_pkts)) != NULL) {
4154 1.29 bouyer TAILQ_REMOVE(&sc->tx_used_pkts, pkt, pkt_entry);
4155 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
4156 1.29 bouyer
4157 1.29 bouyer bus_dmamap_sync(sc->bnx_dmatag, pkt->pkt_dmamap, 0,
4158 1.29 bouyer pkt->pkt_dmamap->dm_mapsize, BUS_DMASYNC_POSTWRITE);
4159 1.29 bouyer bus_dmamap_unload(sc->bnx_dmatag, pkt->pkt_dmamap);
4160 1.29 bouyer
4161 1.29 bouyer m_freem(pkt->pkt_mbuf);
4162 1.29 bouyer DBRUNIF(1, sc->tx_mbuf_alloc--);
4163 1.29 bouyer
4164 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
4165 1.29 bouyer TAILQ_INSERT_TAIL(&sc->tx_free_pkts, pkt, pkt_entry);
4166 1.54 msaitoh }
4167 1.29 bouyer
4168 1.29 bouyer /* Destroy all the dmamaps we allocated for TX */
4169 1.29 bouyer while ((pkt = TAILQ_FIRST(&sc->tx_free_pkts)) != NULL) {
4170 1.29 bouyer TAILQ_REMOVE(&sc->tx_free_pkts, pkt, pkt_entry);
4171 1.29 bouyer sc->tx_pkt_count--;
4172 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
4173 1.29 bouyer
4174 1.29 bouyer bus_dmamap_destroy(sc->bnx_dmatag, pkt->pkt_dmamap);
4175 1.29 bouyer pool_put(bnx_tx_pool, pkt);
4176 1.29 bouyer
4177 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
4178 1.1 bouyer }
4179 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
4180 1.29 bouyer
4181 1.29 bouyer
4182 1.1 bouyer
4183 1.1 bouyer /* Clear each TX chain page. */
4184 1.1 bouyer for (i = 0; i < TX_PAGES; i++) {
4185 1.72 msaitoh memset(sc->tx_bd_chain[i], 0, BNX_TX_CHAIN_PAGE_SZ);
4186 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->tx_bd_chain_map[i], 0,
4187 1.1 bouyer BNX_TX_CHAIN_PAGE_SZ, BUS_DMASYNC_PREWRITE);
4188 1.1 bouyer }
4189 1.1 bouyer
4190 1.29 bouyer sc->used_tx_bd = 0;
4191 1.29 bouyer
4192 1.1 bouyer /* Check if we lost any mbufs in the process. */
4193 1.1 bouyer DBRUNIF((sc->tx_mbuf_alloc),
4194 1.13 dyoung aprint_error_dev(sc->bnx_dev,
4195 1.13 dyoung "Memory leak! Lost %d mbufs from tx chain!\n",
4196 1.13 dyoung sc->tx_mbuf_alloc));
4197 1.1 bouyer
4198 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
4199 1.1 bouyer }
4200 1.1 bouyer
4201 1.1 bouyer /****************************************************************************/
4202 1.29 bouyer /* Initialize the RX context memory. */
4203 1.29 bouyer /* */
4204 1.29 bouyer /* Returns: */
4205 1.29 bouyer /* Nothing */
4206 1.29 bouyer /****************************************************************************/
4207 1.29 bouyer void
4208 1.29 bouyer bnx_init_rx_context(struct bnx_softc *sc)
4209 1.29 bouyer {
4210 1.55 msaitoh uint32_t val;
4211 1.29 bouyer
4212 1.29 bouyer /* Initialize the context ID for an L2 RX chain. */
4213 1.29 bouyer val = BNX_L2CTX_CTX_TYPE_CTX_BD_CHN_TYPE_VALUE |
4214 1.29 bouyer BNX_L2CTX_CTX_TYPE_SIZE_L2 | (0x02 << 8);
4215 1.29 bouyer
4216 1.72 msaitoh if (sc->bnx_flowflags & IFM_ETH_TXPAUSE)
4217 1.72 msaitoh val |= 0x000000ff;
4218 1.29 bouyer
4219 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(RX_CID), BNX_L2CTX_CTX_TYPE, val);
4220 1.29 bouyer
4221 1.29 bouyer /* Setup the MQ BIN mapping for l2_ctx_host_bseq. */
4222 1.29 bouyer if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
4223 1.29 bouyer val = REG_RD(sc, BNX_MQ_MAP_L2_5);
4224 1.29 bouyer REG_WR(sc, BNX_MQ_MAP_L2_5, val | BNX_MQ_MAP_L2_5_ARM);
4225 1.29 bouyer }
4226 1.29 bouyer
4227 1.29 bouyer /* Point the hardware to the first page in the chain. */
4228 1.55 msaitoh val = (uint32_t)((uint64_t)sc->rx_bd_chain_paddr[0] >> 32);
4229 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(RX_CID), BNX_L2CTX_NX_BDHADDR_HI, val);
4230 1.55 msaitoh val = (uint32_t)(sc->rx_bd_chain_paddr[0]);
4231 1.29 bouyer CTX_WR(sc, GET_CID_ADDR(RX_CID), BNX_L2CTX_NX_BDHADDR_LO, val);
4232 1.29 bouyer }
4233 1.29 bouyer
4234 1.29 bouyer /****************************************************************************/
4235 1.1 bouyer /* Allocate memory and initialize the RX data structures. */
4236 1.1 bouyer /* */
4237 1.1 bouyer /* Returns: */
4238 1.1 bouyer /* 0 for success, positive value for failure. */
4239 1.1 bouyer /****************************************************************************/
4240 1.1 bouyer int
4241 1.1 bouyer bnx_init_rx_chain(struct bnx_softc *sc)
4242 1.1 bouyer {
4243 1.1 bouyer struct rx_bd *rxbd;
4244 1.1 bouyer int i, rc = 0;
4245 1.55 msaitoh uint16_t prod, chain_prod;
4246 1.55 msaitoh uint32_t prod_bseq, addr;
4247 1.1 bouyer
4248 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
4249 1.1 bouyer
4250 1.1 bouyer /* Initialize the RX producer and consumer indices. */
4251 1.1 bouyer sc->rx_prod = 0;
4252 1.1 bouyer sc->rx_cons = 0;
4253 1.1 bouyer sc->rx_prod_bseq = 0;
4254 1.29 bouyer sc->free_rx_bd = USABLE_RX_BD;
4255 1.29 bouyer sc->max_rx_bd = USABLE_RX_BD;
4256 1.1 bouyer DBRUNIF(1, sc->rx_low_watermark = USABLE_RX_BD);
4257 1.29 bouyer DBRUNIF(1, sc->rx_empty_count = 0);
4258 1.1 bouyer
4259 1.1 bouyer /* Initialize the RX next pointer chain entries. */
4260 1.1 bouyer for (i = 0; i < RX_PAGES; i++) {
4261 1.1 bouyer int j;
4262 1.1 bouyer
4263 1.1 bouyer rxbd = &sc->rx_bd_chain[i][USABLE_RX_BD_PER_PAGE];
4264 1.1 bouyer
4265 1.1 bouyer /* Check if we've reached the last page. */
4266 1.1 bouyer if (i == (RX_PAGES - 1))
4267 1.1 bouyer j = 0;
4268 1.1 bouyer else
4269 1.1 bouyer j = i + 1;
4270 1.1 bouyer
4271 1.1 bouyer /* Setup the chain page pointers. */
4272 1.55 msaitoh addr = (uint32_t)((uint64_t)sc->rx_bd_chain_paddr[j] >> 32);
4273 1.37 jym rxbd->rx_bd_haddr_hi = addr;
4274 1.55 msaitoh addr = (uint32_t)sc->rx_bd_chain_paddr[j];
4275 1.37 jym rxbd->rx_bd_haddr_lo = addr;
4276 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->rx_bd_chain_map[i],
4277 1.1 bouyer 0, BNX_RX_CHAIN_PAGE_SZ,
4278 1.1 bouyer BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
4279 1.1 bouyer }
4280 1.1 bouyer
4281 1.1 bouyer /* Allocate mbuf clusters for the rx_bd chain. */
4282 1.1 bouyer prod = prod_bseq = 0;
4283 1.5 bouyer chain_prod = RX_CHAIN_IDX(prod);
4284 1.21 dyoung if (bnx_get_buf(sc, &prod, &chain_prod, &prod_bseq)) {
4285 1.5 bouyer BNX_PRINTF(sc,
4286 1.5 bouyer "Error filling RX chain: rx_bd[0x%04X]!\n", chain_prod);
4287 1.1 bouyer }
4288 1.1 bouyer
4289 1.1 bouyer /* Save the RX chain producer index. */
4290 1.1 bouyer sc->rx_prod = prod;
4291 1.1 bouyer sc->rx_prod_bseq = prod_bseq;
4292 1.1 bouyer
4293 1.1 bouyer for (i = 0; i < RX_PAGES; i++)
4294 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->rx_bd_chain_map[i], 0,
4295 1.1 bouyer sc->rx_bd_chain_map[i]->dm_mapsize,
4296 1.1 bouyer BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
4297 1.1 bouyer
4298 1.1 bouyer /* Tell the chip about the waiting rx_bd's. */
4299 1.1 bouyer REG_WR16(sc, MB_RX_CID_ADDR + BNX_L2CTX_HOST_BDIDX, sc->rx_prod);
4300 1.1 bouyer REG_WR(sc, MB_RX_CID_ADDR + BNX_L2CTX_HOST_BSEQ, sc->rx_prod_bseq);
4301 1.1 bouyer
4302 1.29 bouyer bnx_init_rx_context(sc);
4303 1.29 bouyer
4304 1.1 bouyer DBRUN(BNX_VERBOSE_RECV, bnx_dump_rx_chain(sc, 0, TOTAL_RX_BD));
4305 1.1 bouyer
4306 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
4307 1.1 bouyer
4308 1.52 msaitoh return rc;
4309 1.1 bouyer }
4310 1.1 bouyer
4311 1.1 bouyer /****************************************************************************/
4312 1.1 bouyer /* Free memory and clear the RX data structures. */
4313 1.1 bouyer /* */
4314 1.1 bouyer /* Returns: */
4315 1.1 bouyer /* Nothing. */
4316 1.1 bouyer /****************************************************************************/
4317 1.1 bouyer void
4318 1.1 bouyer bnx_free_rx_chain(struct bnx_softc *sc)
4319 1.1 bouyer {
4320 1.1 bouyer int i;
4321 1.1 bouyer
4322 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
4323 1.1 bouyer
4324 1.1 bouyer /* Free any mbufs still in the RX mbuf chain. */
4325 1.1 bouyer for (i = 0; i < TOTAL_RX_BD; i++) {
4326 1.1 bouyer if (sc->rx_mbuf_ptr[i] != NULL) {
4327 1.29 bouyer if (sc->rx_mbuf_map[i] != NULL) {
4328 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag,
4329 1.1 bouyer sc->rx_mbuf_map[i], 0,
4330 1.1 bouyer sc->rx_mbuf_map[i]->dm_mapsize,
4331 1.1 bouyer BUS_DMASYNC_POSTREAD);
4332 1.29 bouyer bus_dmamap_unload(sc->bnx_dmatag,
4333 1.29 bouyer sc->rx_mbuf_map[i]);
4334 1.29 bouyer }
4335 1.1 bouyer m_freem(sc->rx_mbuf_ptr[i]);
4336 1.1 bouyer sc->rx_mbuf_ptr[i] = NULL;
4337 1.1 bouyer DBRUNIF(1, sc->rx_mbuf_alloc--);
4338 1.1 bouyer }
4339 1.1 bouyer }
4340 1.1 bouyer
4341 1.1 bouyer /* Clear each RX chain page. */
4342 1.1 bouyer for (i = 0; i < RX_PAGES; i++)
4343 1.72 msaitoh memset(sc->rx_bd_chain[i], 0, BNX_RX_CHAIN_PAGE_SZ);
4344 1.1 bouyer
4345 1.29 bouyer sc->free_rx_bd = sc->max_rx_bd;
4346 1.29 bouyer
4347 1.1 bouyer /* Check if we lost any mbufs in the process. */
4348 1.1 bouyer DBRUNIF((sc->rx_mbuf_alloc),
4349 1.13 dyoung aprint_error_dev(sc->bnx_dev,
4350 1.13 dyoung "Memory leak! Lost %d mbufs from rx chain!\n",
4351 1.13 dyoung sc->rx_mbuf_alloc));
4352 1.1 bouyer
4353 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
4354 1.1 bouyer }
4355 1.1 bouyer
4356 1.1 bouyer /****************************************************************************/
4357 1.73 msaitoh /* Set media options. */
4358 1.73 msaitoh /* */
4359 1.73 msaitoh /* Returns: */
4360 1.73 msaitoh /* 0 for success, positive value for failure. */
4361 1.73 msaitoh /****************************************************************************/
4362 1.73 msaitoh int
4363 1.73 msaitoh bnx_ifmedia_upd(struct ifnet *ifp)
4364 1.73 msaitoh {
4365 1.73 msaitoh struct bnx_softc *sc;
4366 1.73 msaitoh struct mii_data *mii;
4367 1.73 msaitoh int rc = 0;
4368 1.73 msaitoh
4369 1.73 msaitoh sc = ifp->if_softc;
4370 1.73 msaitoh
4371 1.73 msaitoh mii = &sc->bnx_mii;
4372 1.73 msaitoh sc->bnx_link = 0;
4373 1.73 msaitoh if (mii->mii_instance) {
4374 1.73 msaitoh struct mii_softc *miisc;
4375 1.73 msaitoh LIST_FOREACH(miisc, &mii->mii_phys, mii_list)
4376 1.73 msaitoh mii_phy_reset(miisc);
4377 1.73 msaitoh }
4378 1.73 msaitoh mii_mediachg(mii);
4379 1.73 msaitoh
4380 1.73 msaitoh return rc;
4381 1.73 msaitoh }
4382 1.73 msaitoh
4383 1.73 msaitoh /****************************************************************************/
4384 1.72 msaitoh /* Reports current media status. */
4385 1.72 msaitoh /* */
4386 1.72 msaitoh /* Returns: */
4387 1.72 msaitoh /* Nothing. */
4388 1.72 msaitoh /****************************************************************************/
4389 1.72 msaitoh void
4390 1.72 msaitoh bnx_ifmedia_sts(struct ifnet *ifp, struct ifmediareq *ifmr)
4391 1.72 msaitoh {
4392 1.72 msaitoh struct bnx_softc *sc;
4393 1.72 msaitoh struct mii_data *mii;
4394 1.72 msaitoh int s;
4395 1.72 msaitoh
4396 1.72 msaitoh sc = ifp->if_softc;
4397 1.72 msaitoh
4398 1.72 msaitoh s = splnet();
4399 1.72 msaitoh
4400 1.72 msaitoh mii = &sc->bnx_mii;
4401 1.72 msaitoh
4402 1.72 msaitoh mii_pollstat(mii);
4403 1.72 msaitoh ifmr->ifm_status = mii->mii_media_status;
4404 1.72 msaitoh ifmr->ifm_active = (mii->mii_media_active & ~IFM_ETH_FMASK) |
4405 1.72 msaitoh sc->bnx_flowflags;
4406 1.72 msaitoh
4407 1.72 msaitoh splx(s);
4408 1.72 msaitoh }
4409 1.72 msaitoh
4410 1.72 msaitoh /****************************************************************************/
4411 1.1 bouyer /* Handles PHY generated interrupt events. */
4412 1.1 bouyer /* */
4413 1.1 bouyer /* Returns: */
4414 1.1 bouyer /* Nothing. */
4415 1.1 bouyer /****************************************************************************/
4416 1.1 bouyer void
4417 1.1 bouyer bnx_phy_intr(struct bnx_softc *sc)
4418 1.1 bouyer {
4419 1.55 msaitoh uint32_t new_link_state, old_link_state;
4420 1.1 bouyer
4421 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
4422 1.1 bouyer BUS_DMASYNC_POSTREAD);
4423 1.1 bouyer new_link_state = sc->status_block->status_attn_bits &
4424 1.1 bouyer STATUS_ATTN_BITS_LINK_STATE;
4425 1.1 bouyer old_link_state = sc->status_block->status_attn_bits_ack &
4426 1.1 bouyer STATUS_ATTN_BITS_LINK_STATE;
4427 1.1 bouyer
4428 1.1 bouyer /* Handle any changes if the link state has changed. */
4429 1.1 bouyer if (new_link_state != old_link_state) {
4430 1.1 bouyer DBRUN(BNX_VERBOSE_INTR, bnx_dump_status_block(sc));
4431 1.1 bouyer
4432 1.73 msaitoh sc->bnx_link = 0;
4433 1.1 bouyer callout_stop(&sc->bnx_timeout);
4434 1.1 bouyer bnx_tick(sc);
4435 1.1 bouyer
4436 1.1 bouyer /* Update the status_attn_bits_ack field in the status block. */
4437 1.1 bouyer if (new_link_state) {
4438 1.1 bouyer REG_WR(sc, BNX_PCICFG_STATUS_BIT_SET_CMD,
4439 1.1 bouyer STATUS_ATTN_BITS_LINK_STATE);
4440 1.1 bouyer DBPRINT(sc, BNX_INFO, "Link is now UP.\n");
4441 1.1 bouyer } else {
4442 1.1 bouyer REG_WR(sc, BNX_PCICFG_STATUS_BIT_CLEAR_CMD,
4443 1.1 bouyer STATUS_ATTN_BITS_LINK_STATE);
4444 1.1 bouyer DBPRINT(sc, BNX_INFO, "Link is now DOWN.\n");
4445 1.1 bouyer }
4446 1.1 bouyer }
4447 1.1 bouyer
4448 1.1 bouyer /* Acknowledge the link change interrupt. */
4449 1.1 bouyer REG_WR(sc, BNX_EMAC_STATUS, BNX_EMAC_STATUS_LINK_CHANGE);
4450 1.1 bouyer }
4451 1.1 bouyer
4452 1.1 bouyer /****************************************************************************/
4453 1.1 bouyer /* Handles received frame interrupt events. */
4454 1.1 bouyer /* */
4455 1.1 bouyer /* Returns: */
4456 1.1 bouyer /* Nothing. */
4457 1.1 bouyer /****************************************************************************/
4458 1.1 bouyer void
4459 1.1 bouyer bnx_rx_intr(struct bnx_softc *sc)
4460 1.1 bouyer {
4461 1.1 bouyer struct status_block *sblk = sc->status_block;
4462 1.15 dyoung struct ifnet *ifp = &sc->bnx_ec.ec_if;
4463 1.55 msaitoh uint16_t hw_cons, sw_cons, sw_chain_cons;
4464 1.55 msaitoh uint16_t sw_prod, sw_chain_prod;
4465 1.55 msaitoh uint32_t sw_prod_bseq;
4466 1.1 bouyer struct l2_fhdr *l2fhdr;
4467 1.1 bouyer int i;
4468 1.1 bouyer
4469 1.1 bouyer DBRUNIF(1, sc->rx_interrupts++);
4470 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
4471 1.1 bouyer BUS_DMASYNC_POSTREAD);
4472 1.1 bouyer
4473 1.1 bouyer /* Prepare the RX chain pages to be accessed by the host CPU. */
4474 1.1 bouyer for (i = 0; i < RX_PAGES; i++)
4475 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag,
4476 1.1 bouyer sc->rx_bd_chain_map[i], 0,
4477 1.1 bouyer sc->rx_bd_chain_map[i]->dm_mapsize,
4478 1.1 bouyer BUS_DMASYNC_POSTWRITE);
4479 1.1 bouyer
4480 1.1 bouyer /* Get the hardware's view of the RX consumer index. */
4481 1.1 bouyer hw_cons = sc->hw_rx_cons = sblk->status_rx_quick_consumer_index0;
4482 1.1 bouyer if ((hw_cons & USABLE_RX_BD_PER_PAGE) == USABLE_RX_BD_PER_PAGE)
4483 1.1 bouyer hw_cons++;
4484 1.1 bouyer
4485 1.1 bouyer /* Get working copies of the driver's view of the RX indices. */
4486 1.1 bouyer sw_cons = sc->rx_cons;
4487 1.1 bouyer sw_prod = sc->rx_prod;
4488 1.1 bouyer sw_prod_bseq = sc->rx_prod_bseq;
4489 1.1 bouyer
4490 1.1 bouyer DBPRINT(sc, BNX_INFO_RECV, "%s(enter): sw_prod = 0x%04X, "
4491 1.1 bouyer "sw_cons = 0x%04X, sw_prod_bseq = 0x%08X\n",
4492 1.12 perry __func__, sw_prod, sw_cons, sw_prod_bseq);
4493 1.1 bouyer
4494 1.1 bouyer /* Prevent speculative reads from getting ahead of the status block. */
4495 1.1 bouyer bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
4496 1.1 bouyer BUS_SPACE_BARRIER_READ);
4497 1.1 bouyer
4498 1.29 bouyer /* Update some debug statistics counters */
4499 1.1 bouyer DBRUNIF((sc->free_rx_bd < sc->rx_low_watermark),
4500 1.1 bouyer sc->rx_low_watermark = sc->free_rx_bd);
4501 1.29 bouyer DBRUNIF((sc->free_rx_bd == USABLE_RX_BD), sc->rx_empty_count++);
4502 1.1 bouyer
4503 1.48 christos /*
4504 1.48 christos * Scan through the receive chain as long
4505 1.1 bouyer * as there is work to do.
4506 1.1 bouyer */
4507 1.1 bouyer while (sw_cons != hw_cons) {
4508 1.1 bouyer struct mbuf *m;
4509 1.50 hannken struct rx_bd *rxbd __diagused;
4510 1.1 bouyer unsigned int len;
4511 1.55 msaitoh uint32_t status;
4512 1.1 bouyer
4513 1.1 bouyer /* Convert the producer/consumer indices to an actual
4514 1.1 bouyer * rx_bd index.
4515 1.1 bouyer */
4516 1.1 bouyer sw_chain_cons = RX_CHAIN_IDX(sw_cons);
4517 1.1 bouyer sw_chain_prod = RX_CHAIN_IDX(sw_prod);
4518 1.1 bouyer
4519 1.1 bouyer /* Get the used rx_bd. */
4520 1.1 bouyer rxbd = &sc->rx_bd_chain[RX_PAGE(sw_chain_cons)][RX_IDX(sw_chain_cons)];
4521 1.1 bouyer sc->free_rx_bd++;
4522 1.48 christos
4523 1.48 christos DBRUN(BNX_VERBOSE_RECV, aprint_error("%s(): ", __func__);
4524 1.1 bouyer bnx_dump_rxbd(sc, sw_chain_cons, rxbd));
4525 1.1 bouyer
4526 1.1 bouyer /* The mbuf is stored with the last rx_bd entry of a packet. */
4527 1.1 bouyer if (sc->rx_mbuf_ptr[sw_chain_cons] != NULL) {
4528 1.5 bouyer #ifdef DIAGNOSTIC
4529 1.1 bouyer /* Validate that this is the last rx_bd. */
4530 1.5 bouyer if ((rxbd->rx_bd_flags & RX_BD_FLAGS_END) == 0) {
4531 1.5 bouyer printf("%s: Unexpected mbuf found in "
4532 1.13 dyoung "rx_bd[0x%04X]!\n", device_xname(sc->bnx_dev),
4533 1.1 bouyer sw_chain_cons);
4534 1.5 bouyer }
4535 1.5 bouyer #endif
4536 1.1 bouyer
4537 1.66 msaitoh /* DRC - ToDo: If the received packet is small, say
4538 1.66 msaitoh * less than 128 bytes, allocate a new mbuf
4539 1.66 msaitoh * here, copy the data to that mbuf, and
4540 1.66 msaitoh * recycle the mapped jumbo frame.
4541 1.1 bouyer */
4542 1.1 bouyer
4543 1.1 bouyer /* Unmap the mbuf from DMA space. */
4544 1.5 bouyer #ifdef DIAGNOSTIC
4545 1.5 bouyer if (sc->rx_mbuf_map[sw_chain_cons]->dm_mapsize == 0) {
4546 1.5 bouyer printf("invalid map sw_cons 0x%x "
4547 1.5 bouyer "sw_prod 0x%x "
4548 1.5 bouyer "sw_chain_cons 0x%x "
4549 1.5 bouyer "sw_chain_prod 0x%x "
4550 1.5 bouyer "hw_cons 0x%x "
4551 1.6 bouyer "TOTAL_RX_BD_PER_PAGE 0x%x "
4552 1.6 bouyer "TOTAL_RX_BD 0x%x\n",
4553 1.5 bouyer sw_cons, sw_prod, sw_chain_cons, sw_chain_prod,
4554 1.6 bouyer hw_cons,
4555 1.6 bouyer (int)TOTAL_RX_BD_PER_PAGE, (int)TOTAL_RX_BD);
4556 1.5 bouyer }
4557 1.5 bouyer #endif
4558 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag,
4559 1.1 bouyer sc->rx_mbuf_map[sw_chain_cons], 0,
4560 1.1 bouyer sc->rx_mbuf_map[sw_chain_cons]->dm_mapsize,
4561 1.1 bouyer BUS_DMASYNC_POSTREAD);
4562 1.1 bouyer bus_dmamap_unload(sc->bnx_dmatag,
4563 1.1 bouyer sc->rx_mbuf_map[sw_chain_cons]);
4564 1.1 bouyer
4565 1.1 bouyer /* Remove the mbuf from the driver's chain. */
4566 1.1 bouyer m = sc->rx_mbuf_ptr[sw_chain_cons];
4567 1.1 bouyer sc->rx_mbuf_ptr[sw_chain_cons] = NULL;
4568 1.1 bouyer
4569 1.1 bouyer /*
4570 1.48 christos * Frames received on the NetXteme II are prepended
4571 1.1 bouyer * with the l2_fhdr structure which provides status
4572 1.1 bouyer * information about the received frame (including
4573 1.1 bouyer * VLAN tags and checksum info) and are also
4574 1.1 bouyer * automatically adjusted to align the IP header
4575 1.48 christos * (i.e. two null bytes are inserted before the
4576 1.1 bouyer * Ethernet header).
4577 1.1 bouyer */
4578 1.1 bouyer l2fhdr = mtod(m, struct l2_fhdr *);
4579 1.1 bouyer
4580 1.1 bouyer len = l2fhdr->l2_fhdr_pkt_len;
4581 1.1 bouyer status = l2fhdr->l2_fhdr_status;
4582 1.1 bouyer
4583 1.1 bouyer DBRUNIF(DB_RANDOMTRUE(bnx_debug_l2fhdr_status_check),
4584 1.1 bouyer aprint_error("Simulating l2_fhdr status error.\n");
4585 1.1 bouyer status = status | L2_FHDR_ERRORS_PHY_DECODE);
4586 1.1 bouyer
4587 1.1 bouyer /* Watch for unusual sized frames. */
4588 1.1 bouyer DBRUNIF(((len < BNX_MIN_MTU) ||
4589 1.1 bouyer (len > BNX_MAX_JUMBO_ETHER_MTU_VLAN)),
4590 1.13 dyoung aprint_error_dev(sc->bnx_dev,
4591 1.13 dyoung "Unusual frame size found. "
4592 1.13 dyoung "Min(%d), Actual(%d), Max(%d)\n",
4593 1.13 dyoung (int)BNX_MIN_MTU, len,
4594 1.13 dyoung (int)BNX_MAX_JUMBO_ETHER_MTU_VLAN);
4595 1.1 bouyer
4596 1.1 bouyer bnx_dump_mbuf(sc, m);
4597 1.1 bouyer bnx_breakpoint(sc));
4598 1.1 bouyer
4599 1.1 bouyer len -= ETHER_CRC_LEN;
4600 1.1 bouyer
4601 1.1 bouyer /* Check the received frame for errors. */
4602 1.48 christos if ((status & (L2_FHDR_ERRORS_BAD_CRC |
4603 1.1 bouyer L2_FHDR_ERRORS_PHY_DECODE |
4604 1.48 christos L2_FHDR_ERRORS_ALIGNMENT |
4605 1.1 bouyer L2_FHDR_ERRORS_TOO_SHORT |
4606 1.1 bouyer L2_FHDR_ERRORS_GIANT_FRAME)) ||
4607 1.1 bouyer len < (BNX_MIN_MTU - ETHER_CRC_LEN) ||
4608 1.1 bouyer len >
4609 1.1 bouyer (BNX_MAX_JUMBO_ETHER_MTU_VLAN - ETHER_CRC_LEN)) {
4610 1.1 bouyer ifp->if_ierrors++;
4611 1.1 bouyer DBRUNIF(1, sc->l2fhdr_status_errors++);
4612 1.1 bouyer
4613 1.1 bouyer /* Reuse the mbuf for a new frame. */
4614 1.21 dyoung if (bnx_add_buf(sc, m, &sw_prod,
4615 1.1 bouyer &sw_chain_prod, &sw_prod_bseq)) {
4616 1.1 bouyer DBRUNIF(1, bnx_breakpoint(sc));
4617 1.1 bouyer panic("%s: Can't reuse RX mbuf!\n",
4618 1.13 dyoung device_xname(sc->bnx_dev));
4619 1.1 bouyer }
4620 1.5 bouyer continue;
4621 1.1 bouyer }
4622 1.1 bouyer
4623 1.48 christos /*
4624 1.1 bouyer * Get a new mbuf for the rx_bd. If no new
4625 1.1 bouyer * mbufs are available then reuse the current mbuf,
4626 1.1 bouyer * log an ierror on the interface, and generate
4627 1.1 bouyer * an error in the system log.
4628 1.1 bouyer */
4629 1.21 dyoung if (bnx_get_buf(sc, &sw_prod, &sw_chain_prod,
4630 1.1 bouyer &sw_prod_bseq)) {
4631 1.29 bouyer DBRUN(BNX_WARN, aprint_debug_dev(sc->bnx_dev,
4632 1.29 bouyer "Failed to allocate "
4633 1.29 bouyer "new mbuf, incoming frame dropped!\n"));
4634 1.1 bouyer
4635 1.1 bouyer ifp->if_ierrors++;
4636 1.1 bouyer
4637 1.1 bouyer /* Try and reuse the exisitng mbuf. */
4638 1.21 dyoung if (bnx_add_buf(sc, m, &sw_prod,
4639 1.1 bouyer &sw_chain_prod, &sw_prod_bseq)) {
4640 1.1 bouyer DBRUNIF(1, bnx_breakpoint(sc));
4641 1.1 bouyer panic("%s: Double mbuf allocation "
4642 1.13 dyoung "failure!",
4643 1.13 dyoung device_xname(sc->bnx_dev));
4644 1.1 bouyer }
4645 1.5 bouyer continue;
4646 1.1 bouyer }
4647 1.1 bouyer
4648 1.1 bouyer /* Skip over the l2_fhdr when passing the data up
4649 1.1 bouyer * the stack.
4650 1.1 bouyer */
4651 1.1 bouyer m_adj(m, sizeof(struct l2_fhdr) + ETHER_ALIGN);
4652 1.1 bouyer
4653 1.1 bouyer /* Adjust the pckt length to match the received data. */
4654 1.1 bouyer m->m_pkthdr.len = m->m_len = len;
4655 1.1 bouyer
4656 1.1 bouyer /* Send the packet to the appropriate interface. */
4657 1.59 ozaki m_set_rcvif(m, ifp);
4658 1.1 bouyer
4659 1.1 bouyer DBRUN(BNX_VERBOSE_RECV,
4660 1.1 bouyer struct ether_header *eh;
4661 1.1 bouyer eh = mtod(m, struct ether_header *);
4662 1.1 bouyer aprint_error("%s: to: %s, from: %s, type: 0x%04X\n",
4663 1.12 perry __func__, ether_sprintf(eh->ether_dhost),
4664 1.1 bouyer ether_sprintf(eh->ether_shost),
4665 1.1 bouyer htons(eh->ether_type)));
4666 1.1 bouyer
4667 1.1 bouyer /* Validate the checksum. */
4668 1.1 bouyer
4669 1.1 bouyer /* Check for an IP datagram. */
4670 1.1 bouyer if (status & L2_FHDR_STATUS_IP_DATAGRAM) {
4671 1.1 bouyer /* Check if the IP checksum is valid. */
4672 1.66 msaitoh if ((l2fhdr->l2_fhdr_ip_xsum ^ 0xffff) == 0)
4673 1.66 msaitoh m->m_pkthdr.csum_flags |= M_CSUM_IPv4;
4674 1.1 bouyer #ifdef BNX_DEBUG
4675 1.1 bouyer else
4676 1.48 christos DBPRINT(sc, BNX_WARN_SEND,
4677 1.1 bouyer "%s(): Invalid IP checksum "
4678 1.1 bouyer "= 0x%04X!\n",
4679 1.12 perry __func__,
4680 1.1 bouyer l2fhdr->l2_fhdr_ip_xsum
4681 1.1 bouyer );
4682 1.1 bouyer #endif
4683 1.1 bouyer }
4684 1.1 bouyer
4685 1.1 bouyer /* Check for a valid TCP/UDP frame. */
4686 1.1 bouyer if (status & (L2_FHDR_STATUS_TCP_SEGMENT |
4687 1.1 bouyer L2_FHDR_STATUS_UDP_DATAGRAM)) {
4688 1.1 bouyer /* Check for a good TCP/UDP checksum. */
4689 1.1 bouyer if ((status &
4690 1.1 bouyer (L2_FHDR_ERRORS_TCP_XSUM |
4691 1.1 bouyer L2_FHDR_ERRORS_UDP_XSUM)) == 0) {
4692 1.1 bouyer m->m_pkthdr.csum_flags |=
4693 1.1 bouyer M_CSUM_TCPv4 |
4694 1.1 bouyer M_CSUM_UDPv4;
4695 1.1 bouyer } else {
4696 1.48 christos DBPRINT(sc, BNX_WARN_SEND,
4697 1.1 bouyer "%s(): Invalid TCP/UDP "
4698 1.1 bouyer "checksum = 0x%04X!\n",
4699 1.12 perry __func__,
4700 1.1 bouyer l2fhdr->l2_fhdr_tcp_udp_xsum);
4701 1.1 bouyer }
4702 1.1 bouyer }
4703 1.1 bouyer
4704 1.1 bouyer /*
4705 1.1 bouyer * If we received a packet with a vlan tag,
4706 1.1 bouyer * attach that information to the packet.
4707 1.1 bouyer */
4708 1.29 bouyer if ((status & L2_FHDR_STATUS_L2_VLAN_TAG) &&
4709 1.29 bouyer !(sc->rx_mode & BNX_EMAC_RX_MODE_KEEP_VLAN_TAG)) {
4710 1.62 knakahar vlan_set_tag(m, l2fhdr->l2_fhdr_vlan_tag);
4711 1.1 bouyer }
4712 1.1 bouyer
4713 1.61 ozaki /* Pass the mbuf off to the upper layers. */
4714 1.1 bouyer
4715 1.1 bouyer DBPRINT(sc, BNX_VERBOSE_RECV,
4716 1.12 perry "%s(): Passing received frame up.\n", __func__);
4717 1.58 ozaki if_percpuq_enqueue(ifp->if_percpuq, m);
4718 1.1 bouyer DBRUNIF(1, sc->rx_mbuf_alloc--);
4719 1.1 bouyer
4720 1.1 bouyer }
4721 1.1 bouyer
4722 1.1 bouyer sw_cons = NEXT_RX_BD(sw_cons);
4723 1.1 bouyer
4724 1.1 bouyer /* Refresh hw_cons to see if there's new work */
4725 1.1 bouyer if (sw_cons == hw_cons) {
4726 1.1 bouyer hw_cons = sc->hw_rx_cons =
4727 1.1 bouyer sblk->status_rx_quick_consumer_index0;
4728 1.1 bouyer if ((hw_cons & USABLE_RX_BD_PER_PAGE) ==
4729 1.1 bouyer USABLE_RX_BD_PER_PAGE)
4730 1.1 bouyer hw_cons++;
4731 1.1 bouyer }
4732 1.1 bouyer
4733 1.1 bouyer /* Prevent speculative reads from getting ahead of
4734 1.1 bouyer * the status block.
4735 1.1 bouyer */
4736 1.48 christos bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
4737 1.1 bouyer BUS_SPACE_BARRIER_READ);
4738 1.1 bouyer }
4739 1.1 bouyer
4740 1.1 bouyer for (i = 0; i < RX_PAGES; i++)
4741 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag,
4742 1.1 bouyer sc->rx_bd_chain_map[i], 0,
4743 1.1 bouyer sc->rx_bd_chain_map[i]->dm_mapsize,
4744 1.1 bouyer BUS_DMASYNC_PREWRITE);
4745 1.1 bouyer
4746 1.1 bouyer sc->rx_cons = sw_cons;
4747 1.1 bouyer sc->rx_prod = sw_prod;
4748 1.1 bouyer sc->rx_prod_bseq = sw_prod_bseq;
4749 1.1 bouyer
4750 1.1 bouyer REG_WR16(sc, MB_RX_CID_ADDR + BNX_L2CTX_HOST_BDIDX, sc->rx_prod);
4751 1.1 bouyer REG_WR(sc, MB_RX_CID_ADDR + BNX_L2CTX_HOST_BSEQ, sc->rx_prod_bseq);
4752 1.1 bouyer
4753 1.1 bouyer DBPRINT(sc, BNX_INFO_RECV, "%s(exit): rx_prod = 0x%04X, "
4754 1.1 bouyer "rx_cons = 0x%04X, rx_prod_bseq = 0x%08X\n",
4755 1.12 perry __func__, sc->rx_prod, sc->rx_cons, sc->rx_prod_bseq);
4756 1.1 bouyer }
4757 1.1 bouyer
4758 1.1 bouyer /****************************************************************************/
4759 1.1 bouyer /* Handles transmit completion interrupt events. */
4760 1.1 bouyer /* */
4761 1.1 bouyer /* Returns: */
4762 1.1 bouyer /* Nothing. */
4763 1.1 bouyer /****************************************************************************/
4764 1.1 bouyer void
4765 1.1 bouyer bnx_tx_intr(struct bnx_softc *sc)
4766 1.1 bouyer {
4767 1.1 bouyer struct status_block *sblk = sc->status_block;
4768 1.15 dyoung struct ifnet *ifp = &sc->bnx_ec.ec_if;
4769 1.29 bouyer struct bnx_pkt *pkt;
4770 1.29 bouyer bus_dmamap_t map;
4771 1.55 msaitoh uint16_t hw_tx_cons, sw_tx_cons, sw_tx_chain_cons;
4772 1.1 bouyer
4773 1.1 bouyer DBRUNIF(1, sc->tx_interrupts++);
4774 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
4775 1.1 bouyer BUS_DMASYNC_POSTREAD);
4776 1.1 bouyer
4777 1.1 bouyer /* Get the hardware's view of the TX consumer index. */
4778 1.1 bouyer hw_tx_cons = sc->hw_tx_cons = sblk->status_tx_quick_consumer_index0;
4779 1.1 bouyer
4780 1.1 bouyer /* Skip to the next entry if this is a chain page pointer. */
4781 1.1 bouyer if ((hw_tx_cons & USABLE_TX_BD_PER_PAGE) == USABLE_TX_BD_PER_PAGE)
4782 1.1 bouyer hw_tx_cons++;
4783 1.1 bouyer
4784 1.1 bouyer sw_tx_cons = sc->tx_cons;
4785 1.1 bouyer
4786 1.1 bouyer /* Prevent speculative reads from getting ahead of the status block. */
4787 1.48 christos bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
4788 1.1 bouyer BUS_SPACE_BARRIER_READ);
4789 1.1 bouyer
4790 1.1 bouyer /* Cycle through any completed TX chain page entries. */
4791 1.1 bouyer while (sw_tx_cons != hw_tx_cons) {
4792 1.1 bouyer #ifdef BNX_DEBUG
4793 1.1 bouyer struct tx_bd *txbd = NULL;
4794 1.1 bouyer #endif
4795 1.1 bouyer sw_tx_chain_cons = TX_CHAIN_IDX(sw_tx_cons);
4796 1.1 bouyer
4797 1.1 bouyer DBPRINT(sc, BNX_INFO_SEND, "%s(): hw_tx_cons = 0x%04X, "
4798 1.1 bouyer "sw_tx_cons = 0x%04X, sw_tx_chain_cons = 0x%04X\n",
4799 1.12 perry __func__, hw_tx_cons, sw_tx_cons, sw_tx_chain_cons);
4800 1.1 bouyer
4801 1.1 bouyer DBRUNIF((sw_tx_chain_cons > MAX_TX_BD),
4802 1.13 dyoung aprint_error_dev(sc->bnx_dev,
4803 1.13 dyoung "TX chain consumer out of range! 0x%04X > 0x%04X\n",
4804 1.13 dyoung sw_tx_chain_cons, (int)MAX_TX_BD); bnx_breakpoint(sc));
4805 1.1 bouyer
4806 1.1 bouyer DBRUNIF(1, txbd = &sc->tx_bd_chain
4807 1.1 bouyer [TX_PAGE(sw_tx_chain_cons)][TX_IDX(sw_tx_chain_cons)]);
4808 1.52 msaitoh
4809 1.1 bouyer DBRUNIF((txbd == NULL),
4810 1.13 dyoung aprint_error_dev(sc->bnx_dev,
4811 1.13 dyoung "Unexpected NULL tx_bd[0x%04X]!\n", sw_tx_chain_cons);
4812 1.1 bouyer bnx_breakpoint(sc));
4813 1.1 bouyer
4814 1.12 perry DBRUN(BNX_INFO_SEND, aprint_debug("%s: ", __func__);
4815 1.1 bouyer bnx_dump_txbd(sc, sw_tx_chain_cons, txbd));
4816 1.1 bouyer
4817 1.1 bouyer
4818 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
4819 1.29 bouyer pkt = TAILQ_FIRST(&sc->tx_used_pkts);
4820 1.29 bouyer if (pkt != NULL && pkt->pkt_end_desc == sw_tx_chain_cons) {
4821 1.29 bouyer TAILQ_REMOVE(&sc->tx_used_pkts, pkt, pkt_entry);
4822 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
4823 1.29 bouyer /*
4824 1.29 bouyer * Free the associated mbuf. Remember
4825 1.29 bouyer * that only the last tx_bd of a packet
4826 1.29 bouyer * has an mbuf pointer and DMA map.
4827 1.29 bouyer */
4828 1.29 bouyer map = pkt->pkt_dmamap;
4829 1.29 bouyer bus_dmamap_sync(sc->bnx_dmatag, map, 0,
4830 1.29 bouyer map->dm_mapsize, BUS_DMASYNC_POSTWRITE);
4831 1.29 bouyer bus_dmamap_unload(sc->bnx_dmatag, map);
4832 1.1 bouyer
4833 1.29 bouyer m_freem(pkt->pkt_mbuf);
4834 1.1 bouyer DBRUNIF(1, sc->tx_mbuf_alloc--);
4835 1.1 bouyer
4836 1.1 bouyer ifp->if_opackets++;
4837 1.29 bouyer
4838 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
4839 1.29 bouyer TAILQ_INSERT_TAIL(&sc->tx_free_pkts, pkt, pkt_entry);
4840 1.1 bouyer }
4841 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
4842 1.1 bouyer
4843 1.1 bouyer sc->used_tx_bd--;
4844 1.29 bouyer DBPRINT(sc, BNX_INFO_SEND, "%s(%d) used_tx_bd %d\n",
4845 1.29 bouyer __FILE__, __LINE__, sc->used_tx_bd);
4846 1.29 bouyer
4847 1.1 bouyer sw_tx_cons = NEXT_TX_BD(sw_tx_cons);
4848 1.1 bouyer
4849 1.1 bouyer /* Refresh hw_cons to see if there's new work. */
4850 1.1 bouyer hw_tx_cons = sc->hw_tx_cons =
4851 1.1 bouyer sblk->status_tx_quick_consumer_index0;
4852 1.1 bouyer if ((hw_tx_cons & USABLE_TX_BD_PER_PAGE) ==
4853 1.1 bouyer USABLE_TX_BD_PER_PAGE)
4854 1.1 bouyer hw_tx_cons++;
4855 1.1 bouyer
4856 1.1 bouyer /* Prevent speculative reads from getting ahead of
4857 1.1 bouyer * the status block.
4858 1.1 bouyer */
4859 1.48 christos bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
4860 1.1 bouyer BUS_SPACE_BARRIER_READ);
4861 1.1 bouyer }
4862 1.1 bouyer
4863 1.1 bouyer /* Clear the TX timeout timer. */
4864 1.1 bouyer ifp->if_timer = 0;
4865 1.1 bouyer
4866 1.1 bouyer /* Clear the tx hardware queue full flag. */
4867 1.29 bouyer if (sc->used_tx_bd < sc->max_tx_bd) {
4868 1.1 bouyer DBRUNIF((ifp->if_flags & IFF_OACTIVE),
4869 1.13 dyoung aprint_debug_dev(sc->bnx_dev,
4870 1.29 bouyer "Open TX chain! %d/%d (used/total)\n",
4871 1.29 bouyer sc->used_tx_bd, sc->max_tx_bd));
4872 1.1 bouyer ifp->if_flags &= ~IFF_OACTIVE;
4873 1.1 bouyer }
4874 1.1 bouyer
4875 1.1 bouyer sc->tx_cons = sw_tx_cons;
4876 1.1 bouyer }
4877 1.1 bouyer
4878 1.1 bouyer /****************************************************************************/
4879 1.1 bouyer /* Disables interrupt generation. */
4880 1.1 bouyer /* */
4881 1.1 bouyer /* Returns: */
4882 1.1 bouyer /* Nothing. */
4883 1.1 bouyer /****************************************************************************/
4884 1.1 bouyer void
4885 1.1 bouyer bnx_disable_intr(struct bnx_softc *sc)
4886 1.1 bouyer {
4887 1.1 bouyer REG_WR(sc, BNX_PCICFG_INT_ACK_CMD, BNX_PCICFG_INT_ACK_CMD_MASK_INT);
4888 1.1 bouyer REG_RD(sc, BNX_PCICFG_INT_ACK_CMD);
4889 1.1 bouyer }
4890 1.1 bouyer
4891 1.1 bouyer /****************************************************************************/
4892 1.1 bouyer /* Enables interrupt generation. */
4893 1.1 bouyer /* */
4894 1.1 bouyer /* Returns: */
4895 1.1 bouyer /* Nothing. */
4896 1.1 bouyer /****************************************************************************/
4897 1.1 bouyer void
4898 1.1 bouyer bnx_enable_intr(struct bnx_softc *sc)
4899 1.1 bouyer {
4900 1.55 msaitoh uint32_t val;
4901 1.1 bouyer
4902 1.1 bouyer REG_WR(sc, BNX_PCICFG_INT_ACK_CMD, BNX_PCICFG_INT_ACK_CMD_INDEX_VALID |
4903 1.1 bouyer BNX_PCICFG_INT_ACK_CMD_MASK_INT | sc->last_status_idx);
4904 1.1 bouyer
4905 1.48 christos REG_WR(sc, BNX_PCICFG_INT_ACK_CMD, BNX_PCICFG_INT_ACK_CMD_INDEX_VALID |
4906 1.1 bouyer sc->last_status_idx);
4907 1.1 bouyer
4908 1.1 bouyer val = REG_RD(sc, BNX_HC_COMMAND);
4909 1.1 bouyer REG_WR(sc, BNX_HC_COMMAND, val | BNX_HC_COMMAND_COAL_NOW);
4910 1.1 bouyer }
4911 1.1 bouyer
4912 1.1 bouyer /****************************************************************************/
4913 1.1 bouyer /* Handles controller initialization. */
4914 1.1 bouyer /* */
4915 1.1 bouyer /****************************************************************************/
4916 1.1 bouyer int
4917 1.1 bouyer bnx_init(struct ifnet *ifp)
4918 1.1 bouyer {
4919 1.1 bouyer struct bnx_softc *sc = ifp->if_softc;
4920 1.55 msaitoh uint32_t ether_mtu;
4921 1.1 bouyer int s, error = 0;
4922 1.1 bouyer
4923 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
4924 1.1 bouyer
4925 1.1 bouyer s = splnet();
4926 1.1 bouyer
4927 1.14 dyoung bnx_stop(ifp, 0);
4928 1.1 bouyer
4929 1.1 bouyer if ((error = bnx_reset(sc, BNX_DRV_MSG_CODE_RESET)) != 0) {
4930 1.29 bouyer aprint_error_dev(sc->bnx_dev,
4931 1.29 bouyer "Controller reset failed!\n");
4932 1.4 bouyer goto bnx_init_exit;
4933 1.1 bouyer }
4934 1.1 bouyer
4935 1.1 bouyer if ((error = bnx_chipinit(sc)) != 0) {
4936 1.29 bouyer aprint_error_dev(sc->bnx_dev,
4937 1.29 bouyer "Controller initialization failed!\n");
4938 1.4 bouyer goto bnx_init_exit;
4939 1.1 bouyer }
4940 1.1 bouyer
4941 1.1 bouyer if ((error = bnx_blockinit(sc)) != 0) {
4942 1.29 bouyer aprint_error_dev(sc->bnx_dev,
4943 1.29 bouyer "Block initialization failed!\n");
4944 1.4 bouyer goto bnx_init_exit;
4945 1.1 bouyer }
4946 1.1 bouyer
4947 1.1 bouyer /* Calculate and program the Ethernet MRU size. */
4948 1.5 bouyer if (ifp->if_mtu <= ETHERMTU) {
4949 1.5 bouyer ether_mtu = BNX_MAX_STD_ETHER_MTU_VLAN;
4950 1.5 bouyer sc->mbuf_alloc_size = MCLBYTES;
4951 1.5 bouyer } else {
4952 1.5 bouyer ether_mtu = BNX_MAX_JUMBO_ETHER_MTU_VLAN;
4953 1.30 bouyer sc->mbuf_alloc_size = BNX_MAX_JUMBO_MRU;
4954 1.5 bouyer }
4955 1.5 bouyer
4956 1.1 bouyer
4957 1.66 msaitoh DBPRINT(sc, BNX_INFO, "%s(): setting MRU = %d\n", __func__, ether_mtu);
4958 1.1 bouyer
4959 1.1 bouyer /*
4960 1.1 bouyer * Program the MRU and enable Jumbo frame
4961 1.1 bouyer * support.
4962 1.1 bouyer */
4963 1.1 bouyer REG_WR(sc, BNX_EMAC_RX_MTU_SIZE, ether_mtu |
4964 1.1 bouyer BNX_EMAC_RX_MTU_SIZE_JUMBO_ENA);
4965 1.1 bouyer
4966 1.1 bouyer /* Calculate the RX Ethernet frame size for rx_bd's. */
4967 1.1 bouyer sc->max_frame_size = sizeof(struct l2_fhdr) + 2 + ether_mtu + 8;
4968 1.1 bouyer
4969 1.1 bouyer DBPRINT(sc, BNX_INFO, "%s(): mclbytes = %d, mbuf_alloc_size = %d, "
4970 1.12 perry "max_frame_size = %d\n", __func__, (int)MCLBYTES,
4971 1.1 bouyer sc->mbuf_alloc_size, sc->max_frame_size);
4972 1.1 bouyer
4973 1.1 bouyer /* Program appropriate promiscuous/multicast filtering. */
4974 1.29 bouyer bnx_iff(sc);
4975 1.1 bouyer
4976 1.1 bouyer /* Init RX buffer descriptor chain. */
4977 1.1 bouyer bnx_init_rx_chain(sc);
4978 1.1 bouyer
4979 1.1 bouyer /* Init TX buffer descriptor chain. */
4980 1.1 bouyer bnx_init_tx_chain(sc);
4981 1.1 bouyer
4982 1.1 bouyer /* Enable host interrupts. */
4983 1.1 bouyer bnx_enable_intr(sc);
4984 1.1 bouyer
4985 1.73 msaitoh bnx_ifmedia_upd(ifp);
4986 1.1 bouyer
4987 1.44 jym SET(ifp->if_flags, IFF_RUNNING);
4988 1.44 jym CLR(ifp->if_flags, IFF_OACTIVE);
4989 1.1 bouyer
4990 1.1 bouyer callout_reset(&sc->bnx_timeout, hz, bnx_tick, sc);
4991 1.1 bouyer
4992 1.4 bouyer bnx_init_exit:
4993 1.12 perry DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
4994 1.1 bouyer
4995 1.1 bouyer splx(s);
4996 1.1 bouyer
4997 1.52 msaitoh return error;
4998 1.1 bouyer }
4999 1.1 bouyer
5000 1.73 msaitoh void
5001 1.73 msaitoh bnx_mgmt_init(struct bnx_softc *sc)
5002 1.73 msaitoh {
5003 1.73 msaitoh struct ifnet *ifp = &sc->bnx_ec.ec_if;
5004 1.74 msaitoh uint32_t val;
5005 1.73 msaitoh
5006 1.73 msaitoh /* Check if the driver is still running and bail out if it is. */
5007 1.73 msaitoh if (ifp->if_flags & IFF_RUNNING)
5008 1.73 msaitoh goto bnx_mgmt_init_exit;
5009 1.73 msaitoh
5010 1.73 msaitoh /* Initialize the on-boards CPUs */
5011 1.73 msaitoh bnx_init_cpus(sc);
5012 1.73 msaitoh
5013 1.73 msaitoh val = (BCM_PAGE_BITS - 8) << 24;
5014 1.73 msaitoh REG_WR(sc, BNX_RV2P_CONFIG, val);
5015 1.73 msaitoh
5016 1.73 msaitoh /* Enable all critical blocks in the MAC. */
5017 1.73 msaitoh REG_WR(sc, BNX_MISC_ENABLE_SET_BITS,
5018 1.73 msaitoh BNX_MISC_ENABLE_SET_BITS_RX_V2P_ENABLE |
5019 1.73 msaitoh BNX_MISC_ENABLE_SET_BITS_RX_DMA_ENABLE |
5020 1.73 msaitoh BNX_MISC_ENABLE_SET_BITS_COMPLETION_ENABLE);
5021 1.73 msaitoh REG_RD(sc, BNX_MISC_ENABLE_SET_BITS);
5022 1.73 msaitoh DELAY(20);
5023 1.73 msaitoh
5024 1.73 msaitoh bnx_ifmedia_upd(ifp);
5025 1.73 msaitoh
5026 1.73 msaitoh bnx_mgmt_init_exit:
5027 1.74 msaitoh DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
5028 1.73 msaitoh }
5029 1.73 msaitoh
5030 1.1 bouyer /****************************************************************************/
5031 1.1 bouyer /* Encapsultes an mbuf cluster into the tx_bd chain structure and makes the */
5032 1.1 bouyer /* memory visible to the controller. */
5033 1.1 bouyer /* */
5034 1.1 bouyer /* Returns: */
5035 1.1 bouyer /* 0 for success, positive value for failure. */
5036 1.1 bouyer /****************************************************************************/
5037 1.1 bouyer int
5038 1.29 bouyer bnx_tx_encap(struct bnx_softc *sc, struct mbuf *m)
5039 1.1 bouyer {
5040 1.29 bouyer struct bnx_pkt *pkt;
5041 1.1 bouyer bus_dmamap_t map;
5042 1.4 bouyer struct tx_bd *txbd = NULL;
5043 1.55 msaitoh uint16_t vlan_tag = 0, flags = 0;
5044 1.55 msaitoh uint16_t chain_prod, prod;
5045 1.4 bouyer #ifdef BNX_DEBUG
5046 1.55 msaitoh uint16_t debug_prod;
5047 1.4 bouyer #endif
5048 1.55 msaitoh uint32_t addr, prod_bseq;
5049 1.29 bouyer int i, error;
5050 1.44 jym static struct work bnx_wk; /* Dummy work. Statically allocated. */
5051 1.74 msaitoh bool remap = true;
5052 1.1 bouyer
5053 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
5054 1.29 bouyer pkt = TAILQ_FIRST(&sc->tx_free_pkts);
5055 1.29 bouyer if (pkt == NULL) {
5056 1.29 bouyer if (!ISSET(sc->bnx_ec.ec_if.if_flags, IFF_UP)) {
5057 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
5058 1.29 bouyer return ENETDOWN;
5059 1.29 bouyer }
5060 1.44 jym
5061 1.44 jym if (sc->tx_pkt_count <= TOTAL_TX_BD &&
5062 1.44 jym !ISSET(sc->bnx_flags, BNX_ALLOC_PKTS_FLAG)) {
5063 1.44 jym workqueue_enqueue(sc->bnx_wq, &bnx_wk, NULL);
5064 1.44 jym SET(sc->bnx_flags, BNX_ALLOC_PKTS_FLAG);
5065 1.29 bouyer }
5066 1.44 jym
5067 1.44 jym mutex_exit(&sc->tx_pkt_mtx);
5068 1.44 jym return ENOMEM;
5069 1.29 bouyer }
5070 1.29 bouyer TAILQ_REMOVE(&sc->tx_free_pkts, pkt, pkt_entry);
5071 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
5072 1.4 bouyer
5073 1.1 bouyer /* Transfer any checksum offload flags to the bd. */
5074 1.29 bouyer if (m->m_pkthdr.csum_flags) {
5075 1.29 bouyer if (m->m_pkthdr.csum_flags & M_CSUM_IPv4)
5076 1.4 bouyer flags |= TX_BD_FLAGS_IP_CKSUM;
5077 1.29 bouyer if (m->m_pkthdr.csum_flags &
5078 1.1 bouyer (M_CSUM_TCPv4 | M_CSUM_UDPv4))
5079 1.4 bouyer flags |= TX_BD_FLAGS_TCP_UDP_CKSUM;
5080 1.1 bouyer }
5081 1.1 bouyer
5082 1.1 bouyer /* Transfer any VLAN tags to the bd. */
5083 1.62 knakahar if (vlan_has_tag(m)) {
5084 1.4 bouyer flags |= TX_BD_FLAGS_VLAN_TAG;
5085 1.62 knakahar vlan_tag = vlan_get_tag(m);
5086 1.4 bouyer }
5087 1.1 bouyer
5088 1.1 bouyer /* Map the mbuf into DMAable memory. */
5089 1.4 bouyer prod = sc->tx_prod;
5090 1.4 bouyer chain_prod = TX_CHAIN_IDX(prod);
5091 1.29 bouyer map = pkt->pkt_dmamap;
5092 1.48 christos
5093 1.1 bouyer /* Map the mbuf into our DMA address space. */
5094 1.74 msaitoh retry:
5095 1.29 bouyer error = bus_dmamap_load_mbuf(sc->bnx_dmatag, map, m, BUS_DMA_NOWAIT);
5096 1.74 msaitoh if (__predict_false(error)) {
5097 1.74 msaitoh if (error == EFBIG) {
5098 1.74 msaitoh if (remap == true) {
5099 1.74 msaitoh struct mbuf *newm;
5100 1.74 msaitoh
5101 1.74 msaitoh remap = false;
5102 1.74 msaitoh newm = m_defrag(m, M_NOWAIT);
5103 1.74 msaitoh if (newm != NULL) {
5104 1.74 msaitoh m = newm;
5105 1.74 msaitoh goto retry;
5106 1.74 msaitoh }
5107 1.74 msaitoh }
5108 1.74 msaitoh }
5109 1.29 bouyer sc->tx_dma_map_failures++;
5110 1.29 bouyer goto maperr;
5111 1.1 bouyer }
5112 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, map, 0, map->dm_mapsize,
5113 1.1 bouyer BUS_DMASYNC_PREWRITE);
5114 1.66 msaitoh /* Make sure there's room in the chain */
5115 1.29 bouyer if (map->dm_nsegs > (sc->max_tx_bd - sc->used_tx_bd))
5116 1.66 msaitoh goto nospace;
5117 1.4 bouyer
5118 1.4 bouyer /* prod points to an empty tx_bd at this point. */
5119 1.4 bouyer prod_bseq = sc->tx_prod_bseq;
5120 1.4 bouyer #ifdef BNX_DEBUG
5121 1.4 bouyer debug_prod = chain_prod;
5122 1.4 bouyer #endif
5123 1.4 bouyer DBPRINT(sc, BNX_INFO_SEND,
5124 1.4 bouyer "%s(): Start: prod = 0x%04X, chain_prod = %04X, "
5125 1.4 bouyer "prod_bseq = 0x%08X\n",
5126 1.29 bouyer __func__, prod, chain_prod, prod_bseq);
5127 1.1 bouyer
5128 1.1 bouyer /*
5129 1.4 bouyer * Cycle through each mbuf segment that makes up
5130 1.4 bouyer * the outgoing frame, gathering the mapping info
5131 1.4 bouyer * for that segment and creating a tx_bd for the
5132 1.4 bouyer * mbuf.
5133 1.4 bouyer */
5134 1.4 bouyer for (i = 0; i < map->dm_nsegs ; i++) {
5135 1.4 bouyer chain_prod = TX_CHAIN_IDX(prod);
5136 1.4 bouyer txbd = &sc->tx_bd_chain[TX_PAGE(chain_prod)][TX_IDX(chain_prod)];
5137 1.48 christos
5138 1.55 msaitoh addr = (uint32_t)map->dm_segs[i].ds_addr;
5139 1.37 jym txbd->tx_bd_haddr_lo = addr;
5140 1.55 msaitoh addr = (uint32_t)((uint64_t)map->dm_segs[i].ds_addr >> 32);
5141 1.37 jym txbd->tx_bd_haddr_hi = addr;
5142 1.37 jym txbd->tx_bd_mss_nbytes = map->dm_segs[i].ds_len;
5143 1.37 jym txbd->tx_bd_vlan_tag = vlan_tag;
5144 1.37 jym txbd->tx_bd_flags = flags;
5145 1.4 bouyer prod_bseq += map->dm_segs[i].ds_len;
5146 1.4 bouyer if (i == 0)
5147 1.37 jym txbd->tx_bd_flags |= TX_BD_FLAGS_START;
5148 1.4 bouyer prod = NEXT_TX_BD(prod);
5149 1.4 bouyer }
5150 1.74 msaitoh
5151 1.4 bouyer /* Set the END flag on the last TX buffer descriptor. */
5152 1.37 jym txbd->tx_bd_flags |= TX_BD_FLAGS_END;
5153 1.48 christos
5154 1.29 bouyer DBRUN(BNX_INFO_SEND, bnx_dump_tx_chain(sc, debug_prod, map->dm_nsegs));
5155 1.48 christos
5156 1.4 bouyer DBPRINT(sc, BNX_INFO_SEND,
5157 1.4 bouyer "%s(): End: prod = 0x%04X, chain_prod = %04X, "
5158 1.4 bouyer "prod_bseq = 0x%08X\n",
5159 1.12 perry __func__, prod, chain_prod, prod_bseq);
5160 1.4 bouyer
5161 1.29 bouyer pkt->pkt_mbuf = m;
5162 1.29 bouyer pkt->pkt_end_desc = chain_prod;
5163 1.29 bouyer
5164 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
5165 1.29 bouyer TAILQ_INSERT_TAIL(&sc->tx_used_pkts, pkt, pkt_entry);
5166 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
5167 1.29 bouyer
5168 1.4 bouyer sc->used_tx_bd += map->dm_nsegs;
5169 1.29 bouyer DBPRINT(sc, BNX_INFO_SEND, "%s(%d) used_tx_bd %d\n",
5170 1.29 bouyer __FILE__, __LINE__, sc->used_tx_bd);
5171 1.1 bouyer
5172 1.29 bouyer /* Update some debug statistics counters */
5173 1.1 bouyer DBRUNIF((sc->used_tx_bd > sc->tx_hi_watermark),
5174 1.1 bouyer sc->tx_hi_watermark = sc->used_tx_bd);
5175 1.29 bouyer DBRUNIF(sc->used_tx_bd == sc->max_tx_bd, sc->tx_full_count++);
5176 1.1 bouyer DBRUNIF(1, sc->tx_mbuf_alloc++);
5177 1.1 bouyer
5178 1.48 christos DBRUN(BNX_VERBOSE_SEND, bnx_dump_tx_mbuf_chain(sc, chain_prod,
5179 1.29 bouyer map->dm_nsegs));
5180 1.1 bouyer
5181 1.4 bouyer /* prod points to the next free tx_bd at this point. */
5182 1.4 bouyer sc->tx_prod = prod;
5183 1.4 bouyer sc->tx_prod_bseq = prod_bseq;
5184 1.1 bouyer
5185 1.52 msaitoh return 0;
5186 1.29 bouyer
5187 1.29 bouyer
5188 1.29 bouyer nospace:
5189 1.29 bouyer bus_dmamap_unload(sc->bnx_dmatag, map);
5190 1.29 bouyer maperr:
5191 1.29 bouyer mutex_enter(&sc->tx_pkt_mtx);
5192 1.29 bouyer TAILQ_INSERT_TAIL(&sc->tx_free_pkts, pkt, pkt_entry);
5193 1.29 bouyer mutex_exit(&sc->tx_pkt_mtx);
5194 1.29 bouyer
5195 1.52 msaitoh return ENOMEM;
5196 1.1 bouyer }
5197 1.1 bouyer
5198 1.1 bouyer /****************************************************************************/
5199 1.1 bouyer /* Main transmit routine. */
5200 1.1 bouyer /* */
5201 1.1 bouyer /* Returns: */
5202 1.1 bouyer /* Nothing. */
5203 1.1 bouyer /****************************************************************************/
5204 1.1 bouyer void
5205 1.1 bouyer bnx_start(struct ifnet *ifp)
5206 1.1 bouyer {
5207 1.1 bouyer struct bnx_softc *sc = ifp->if_softc;
5208 1.1 bouyer struct mbuf *m_head = NULL;
5209 1.1 bouyer int count = 0;
5210 1.49 martin #ifdef BNX_DEBUG
5211 1.55 msaitoh uint16_t tx_chain_prod;
5212 1.49 martin #endif
5213 1.1 bouyer
5214 1.1 bouyer /* If there's no link or the transmit queue is empty then just exit. */
5215 1.73 msaitoh if (!sc->bnx_link
5216 1.73 msaitoh ||(ifp->if_flags & (IFF_OACTIVE|IFF_RUNNING)) != IFF_RUNNING) {
5217 1.1 bouyer DBPRINT(sc, BNX_INFO_SEND,
5218 1.16 dyoung "%s(): output active or device not running.\n", __func__);
5219 1.4 bouyer goto bnx_start_exit;
5220 1.1 bouyer }
5221 1.1 bouyer
5222 1.1 bouyer /* prod points to the next free tx_bd. */
5223 1.49 martin #ifdef BNX_DEBUG
5224 1.49 martin tx_chain_prod = TX_CHAIN_IDX(sc->tx_prod);
5225 1.49 martin #endif
5226 1.1 bouyer
5227 1.1 bouyer DBPRINT(sc, BNX_INFO_SEND, "%s(): Start: tx_prod = 0x%04X, "
5228 1.29 bouyer "tx_chain_prod = %04X, tx_prod_bseq = 0x%08X, "
5229 1.29 bouyer "used_tx %d max_tx %d\n",
5230 1.49 martin __func__, sc->tx_prod, tx_chain_prod, sc->tx_prod_bseq,
5231 1.29 bouyer sc->used_tx_bd, sc->max_tx_bd);
5232 1.1 bouyer
5233 1.4 bouyer /*
5234 1.29 bouyer * Keep adding entries while there is space in the ring.
5235 1.4 bouyer */
5236 1.29 bouyer while (sc->used_tx_bd < sc->max_tx_bd) {
5237 1.1 bouyer /* Check for any frames to send. */
5238 1.1 bouyer IFQ_POLL(&ifp->if_snd, m_head);
5239 1.1 bouyer if (m_head == NULL)
5240 1.1 bouyer break;
5241 1.1 bouyer
5242 1.1 bouyer /*
5243 1.1 bouyer * Pack the data into the transmit ring. If we
5244 1.4 bouyer * don't have room, set the OACTIVE flag to wait
5245 1.4 bouyer * for the NIC to drain the chain.
5246 1.1 bouyer */
5247 1.29 bouyer if (bnx_tx_encap(sc, m_head)) {
5248 1.1 bouyer ifp->if_flags |= IFF_OACTIVE;
5249 1.1 bouyer DBPRINT(sc, BNX_INFO_SEND, "TX chain is closed for "
5250 1.1 bouyer "business! Total tx_bd used = %d\n",
5251 1.1 bouyer sc->used_tx_bd);
5252 1.1 bouyer break;
5253 1.1 bouyer }
5254 1.1 bouyer
5255 1.1 bouyer IFQ_DEQUEUE(&ifp->if_snd, m_head);
5256 1.1 bouyer count++;
5257 1.1 bouyer
5258 1.1 bouyer /* Send a copy of the frame to any BPF listeners. */
5259 1.65 msaitoh bpf_mtap(ifp, m_head, BPF_D_OUT);
5260 1.1 bouyer }
5261 1.1 bouyer
5262 1.1 bouyer if (count == 0) {
5263 1.1 bouyer /* no packets were dequeued */
5264 1.1 bouyer DBPRINT(sc, BNX_VERBOSE_SEND,
5265 1.12 perry "%s(): No packets were dequeued\n", __func__);
5266 1.4 bouyer goto bnx_start_exit;
5267 1.1 bouyer }
5268 1.1 bouyer
5269 1.1 bouyer /* Update the driver's counters. */
5270 1.49 martin #ifdef BNX_DEBUG
5271 1.4 bouyer tx_chain_prod = TX_CHAIN_IDX(sc->tx_prod);
5272 1.49 martin #endif
5273 1.1 bouyer
5274 1.66 msaitoh DBPRINT(sc, BNX_INFO_SEND, "%s(): End: tx_prod = 0x%04X, "
5275 1.66 msaitoh "tx_chain_prod = 0x%04X, tx_prod_bseq = 0x%08X\n",
5276 1.66 msaitoh __func__, sc->tx_prod, tx_chain_prod, sc->tx_prod_bseq);
5277 1.1 bouyer
5278 1.1 bouyer /* Start the transmit. */
5279 1.1 bouyer REG_WR16(sc, MB_TX_CID_ADDR + BNX_L2CTX_TX_HOST_BIDX, sc->tx_prod);
5280 1.1 bouyer REG_WR(sc, MB_TX_CID_ADDR + BNX_L2CTX_TX_HOST_BSEQ, sc->tx_prod_bseq);
5281 1.1 bouyer
5282 1.1 bouyer /* Set the tx timeout. */
5283 1.1 bouyer ifp->if_timer = BNX_TX_TIMEOUT;
5284 1.1 bouyer
5285 1.4 bouyer bnx_start_exit:
5286 1.1 bouyer return;
5287 1.1 bouyer }
5288 1.1 bouyer
5289 1.1 bouyer /****************************************************************************/
5290 1.1 bouyer /* Handles any IOCTL calls from the operating system. */
5291 1.1 bouyer /* */
5292 1.1 bouyer /* Returns: */
5293 1.1 bouyer /* 0 for success, positive value for failure. */
5294 1.1 bouyer /****************************************************************************/
5295 1.1 bouyer int
5296 1.3 christos bnx_ioctl(struct ifnet *ifp, u_long command, void *data)
5297 1.1 bouyer {
5298 1.1 bouyer struct bnx_softc *sc = ifp->if_softc;
5299 1.1 bouyer struct ifreq *ifr = (struct ifreq *) data;
5300 1.20 mhitch struct mii_data *mii = &sc->bnx_mii;
5301 1.1 bouyer int s, error = 0;
5302 1.1 bouyer
5303 1.1 bouyer s = splnet();
5304 1.1 bouyer
5305 1.1 bouyer switch (command) {
5306 1.1 bouyer case SIOCSIFFLAGS:
5307 1.24 dyoung if ((error = ifioctl_common(ifp, command, data)) != 0)
5308 1.24 dyoung break;
5309 1.24 dyoung /* XXX set an ifflags callback and let ether_ioctl
5310 1.24 dyoung * handle all of this.
5311 1.24 dyoung */
5312 1.44 jym if (ISSET(ifp->if_flags, IFF_UP)) {
5313 1.29 bouyer if (ifp->if_flags & IFF_RUNNING)
5314 1.29 bouyer error = ENETRESET;
5315 1.29 bouyer else
5316 1.29 bouyer bnx_init(ifp);
5317 1.29 bouyer } else if (ifp->if_flags & IFF_RUNNING)
5318 1.14 dyoung bnx_stop(ifp, 1);
5319 1.1 bouyer break;
5320 1.1 bouyer
5321 1.1 bouyer case SIOCSIFMEDIA:
5322 1.72 msaitoh /* Flow control requires full-duplex mode. */
5323 1.72 msaitoh if (IFM_SUBTYPE(ifr->ifr_media) == IFM_AUTO ||
5324 1.72 msaitoh (ifr->ifr_media & IFM_FDX) == 0)
5325 1.72 msaitoh ifr->ifr_media &= ~IFM_ETH_FMASK;
5326 1.72 msaitoh
5327 1.72 msaitoh if (IFM_SUBTYPE(ifr->ifr_media) != IFM_AUTO) {
5328 1.72 msaitoh if ((ifr->ifr_media & IFM_ETH_FMASK) == IFM_FLOW) {
5329 1.72 msaitoh /* We can do both TXPAUSE and RXPAUSE. */
5330 1.72 msaitoh ifr->ifr_media |=
5331 1.72 msaitoh IFM_ETH_TXPAUSE | IFM_ETH_RXPAUSE;
5332 1.72 msaitoh }
5333 1.72 msaitoh sc->bnx_flowflags = ifr->ifr_media & IFM_ETH_FMASK;
5334 1.72 msaitoh }
5335 1.72 msaitoh /* FALLTHROUGH */
5336 1.1 bouyer case SIOCGIFMEDIA:
5337 1.1 bouyer DBPRINT(sc, BNX_VERBOSE, "bnx_phy_flags = 0x%08X\n",
5338 1.1 bouyer sc->bnx_phy_flags);
5339 1.1 bouyer
5340 1.20 mhitch error = ifmedia_ioctl(ifp, ifr, &mii->mii_media, command);
5341 1.1 bouyer break;
5342 1.1 bouyer
5343 1.1 bouyer default:
5344 1.29 bouyer error = ether_ioctl(ifp, command, data);
5345 1.29 bouyer }
5346 1.18 dyoung
5347 1.29 bouyer if (error == ENETRESET) {
5348 1.29 bouyer if (ifp->if_flags & IFF_RUNNING)
5349 1.29 bouyer bnx_iff(sc);
5350 1.52 msaitoh error = 0;
5351 1.1 bouyer }
5352 1.1 bouyer
5353 1.1 bouyer splx(s);
5354 1.52 msaitoh return error;
5355 1.1 bouyer }
5356 1.1 bouyer
5357 1.1 bouyer /****************************************************************************/
5358 1.1 bouyer /* Transmit timeout handler. */
5359 1.1 bouyer /* */
5360 1.1 bouyer /* Returns: */
5361 1.1 bouyer /* Nothing. */
5362 1.1 bouyer /****************************************************************************/
5363 1.1 bouyer void
5364 1.1 bouyer bnx_watchdog(struct ifnet *ifp)
5365 1.1 bouyer {
5366 1.1 bouyer struct bnx_softc *sc = ifp->if_softc;
5367 1.1 bouyer
5368 1.1 bouyer DBRUN(BNX_WARN_SEND, bnx_dump_driver_state(sc);
5369 1.1 bouyer bnx_dump_status_block(sc));
5370 1.29 bouyer /*
5371 1.29 bouyer * If we are in this routine because of pause frames, then
5372 1.29 bouyer * don't reset the hardware.
5373 1.29 bouyer */
5374 1.48 christos if (REG_RD(sc, BNX_EMAC_TX_STATUS) & BNX_EMAC_TX_STATUS_XOFFED)
5375 1.29 bouyer return;
5376 1.1 bouyer
5377 1.13 dyoung aprint_error_dev(sc->bnx_dev, "Watchdog timeout -- resetting!\n");
5378 1.1 bouyer
5379 1.1 bouyer /* DBRUN(BNX_FATAL, bnx_breakpoint(sc)); */
5380 1.1 bouyer
5381 1.1 bouyer bnx_init(ifp);
5382 1.1 bouyer
5383 1.1 bouyer ifp->if_oerrors++;
5384 1.1 bouyer }
5385 1.1 bouyer
5386 1.1 bouyer /*
5387 1.1 bouyer * Interrupt handler.
5388 1.1 bouyer */
5389 1.1 bouyer /****************************************************************************/
5390 1.1 bouyer /* Main interrupt entry point. Verifies that the controller generated the */
5391 1.1 bouyer /* interrupt and then calls a separate routine for handle the various */
5392 1.1 bouyer /* interrupt causes (PHY, TX, RX). */
5393 1.1 bouyer /* */
5394 1.1 bouyer /* Returns: */
5395 1.1 bouyer /* 0 for success, positive value for failure. */
5396 1.1 bouyer /****************************************************************************/
5397 1.1 bouyer int
5398 1.1 bouyer bnx_intr(void *xsc)
5399 1.1 bouyer {
5400 1.70 msaitoh struct bnx_softc *sc = xsc;
5401 1.70 msaitoh struct ifnet *ifp = &sc->bnx_ec.ec_if;
5402 1.55 msaitoh uint32_t status_attn_bits;
5403 1.70 msaitoh uint16_t status_idx;
5404 1.14 dyoung const struct status_block *sblk;
5405 1.70 msaitoh int rv = 0;
5406 1.1 bouyer
5407 1.42 dyoung if (!device_is_active(sc->bnx_dev) ||
5408 1.42 dyoung (ifp->if_flags & IFF_RUNNING) == 0)
5409 1.42 dyoung return 0;
5410 1.42 dyoung
5411 1.1 bouyer DBRUNIF(1, sc->interrupts_generated++);
5412 1.1 bouyer
5413 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0,
5414 1.69 msaitoh sc->status_map->dm_mapsize, BUS_DMASYNC_POSTREAD);
5415 1.1 bouyer
5416 1.70 msaitoh sblk = sc->status_block;
5417 1.1 bouyer /*
5418 1.1 bouyer * If the hardware status block index
5419 1.1 bouyer * matches the last value read by the
5420 1.1 bouyer * driver and we haven't asserted our
5421 1.1 bouyer * interrupt then there's nothing to do.
5422 1.1 bouyer */
5423 1.70 msaitoh status_idx = sblk->status_idx;
5424 1.70 msaitoh if ((status_idx != sc->last_status_idx) ||
5425 1.70 msaitoh !ISSET(REG_RD(sc, BNX_PCICFG_MISC_STATUS),
5426 1.70 msaitoh BNX_PCICFG_MISC_STATUS_INTA_VALUE)) {
5427 1.70 msaitoh rv = 1;
5428 1.70 msaitoh
5429 1.70 msaitoh /* Ack the interrupt */
5430 1.70 msaitoh REG_WR(sc, BNX_PCICFG_INT_ACK_CMD,
5431 1.70 msaitoh BNX_PCICFG_INT_ACK_CMD_INDEX_VALID | status_idx);
5432 1.1 bouyer
5433 1.14 dyoung status_attn_bits = sblk->status_attn_bits;
5434 1.1 bouyer
5435 1.1 bouyer DBRUNIF(DB_RANDOMTRUE(bnx_debug_unexpected_attention),
5436 1.1 bouyer aprint_debug("Simulating unexpected status attention bit set.");
5437 1.1 bouyer status_attn_bits = status_attn_bits |
5438 1.1 bouyer STATUS_ATTN_BITS_PARITY_ERROR);
5439 1.1 bouyer
5440 1.1 bouyer /* Was it a link change interrupt? */
5441 1.1 bouyer if ((status_attn_bits & STATUS_ATTN_BITS_LINK_STATE) !=
5442 1.14 dyoung (sblk->status_attn_bits_ack &
5443 1.1 bouyer STATUS_ATTN_BITS_LINK_STATE))
5444 1.1 bouyer bnx_phy_intr(sc);
5445 1.1 bouyer
5446 1.1 bouyer /* If any other attention is asserted then the chip is toast. */
5447 1.1 bouyer if (((status_attn_bits & ~STATUS_ATTN_BITS_LINK_STATE) !=
5448 1.48 christos (sblk->status_attn_bits_ack &
5449 1.1 bouyer ~STATUS_ATTN_BITS_LINK_STATE))) {
5450 1.74 msaitoh DBRUN(sc->unexpected_attentions++);
5451 1.1 bouyer
5452 1.66 msaitoh BNX_PRINTF(sc, "Fatal attention detected: 0x%08X\n",
5453 1.14 dyoung sblk->status_attn_bits);
5454 1.1 bouyer
5455 1.74 msaitoh DBRUNIF((bnx_debug_unexpected_attention == 0),
5456 1.70 msaitoh bnx_breakpoint(sc));
5457 1.1 bouyer
5458 1.1 bouyer bnx_init(ifp);
5459 1.70 msaitoh goto out;
5460 1.1 bouyer }
5461 1.1 bouyer
5462 1.1 bouyer /* Check for any completed RX frames. */
5463 1.66 msaitoh if (sblk->status_rx_quick_consumer_index0 != sc->hw_rx_cons)
5464 1.1 bouyer bnx_rx_intr(sc);
5465 1.1 bouyer
5466 1.1 bouyer /* Check for any completed TX frames. */
5467 1.66 msaitoh if (sblk->status_tx_quick_consumer_index0 != sc->hw_tx_cons)
5468 1.1 bouyer bnx_tx_intr(sc);
5469 1.1 bouyer
5470 1.54 msaitoh /*
5471 1.54 msaitoh * Save the status block index value for use during the
5472 1.1 bouyer * next interrupt.
5473 1.1 bouyer */
5474 1.70 msaitoh sc->last_status_idx = status_idx;
5475 1.1 bouyer
5476 1.70 msaitoh /* Start moving packets again */
5477 1.71 msaitoh if (ifp->if_flags & IFF_RUNNING)
5478 1.70 msaitoh if_schedule_deferred_start(ifp);
5479 1.1 bouyer }
5480 1.1 bouyer
5481 1.70 msaitoh out:
5482 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0,
5483 1.69 msaitoh sc->status_map->dm_mapsize, BUS_DMASYNC_PREREAD);
5484 1.1 bouyer
5485 1.70 msaitoh return rv;
5486 1.1 bouyer }
5487 1.1 bouyer
5488 1.1 bouyer /****************************************************************************/
5489 1.1 bouyer /* Programs the various packet receive modes (broadcast and multicast). */
5490 1.1 bouyer /* */
5491 1.1 bouyer /* Returns: */
5492 1.1 bouyer /* Nothing. */
5493 1.1 bouyer /****************************************************************************/
5494 1.1 bouyer void
5495 1.29 bouyer bnx_iff(struct bnx_softc *sc)
5496 1.1 bouyer {
5497 1.15 dyoung struct ethercom *ec = &sc->bnx_ec;
5498 1.1 bouyer struct ifnet *ifp = &ec->ec_if;
5499 1.1 bouyer struct ether_multi *enm;
5500 1.1 bouyer struct ether_multistep step;
5501 1.55 msaitoh uint32_t hashes[NUM_MC_HASH_REGISTERS] = { 0, 0, 0, 0, 0, 0, 0, 0 };
5502 1.55 msaitoh uint32_t rx_mode, sort_mode;
5503 1.1 bouyer int h, i;
5504 1.1 bouyer
5505 1.1 bouyer /* Initialize receive mode default settings. */
5506 1.1 bouyer rx_mode = sc->rx_mode & ~(BNX_EMAC_RX_MODE_PROMISCUOUS |
5507 1.1 bouyer BNX_EMAC_RX_MODE_KEEP_VLAN_TAG);
5508 1.1 bouyer sort_mode = 1 | BNX_RPM_SORT_USER0_BC_EN;
5509 1.29 bouyer ifp->if_flags &= ~IFF_ALLMULTI;
5510 1.1 bouyer
5511 1.1 bouyer /*
5512 1.1 bouyer * ASF/IPMI/UMP firmware requires that VLAN tag stripping
5513 1.1 bouyer * be enbled.
5514 1.1 bouyer */
5515 1.1 bouyer if (!(sc->bnx_flags & BNX_MFW_ENABLE_FLAG))
5516 1.1 bouyer rx_mode |= BNX_EMAC_RX_MODE_KEEP_VLAN_TAG;
5517 1.1 bouyer
5518 1.1 bouyer /*
5519 1.1 bouyer * Check for promiscuous, all multicast, or selected
5520 1.1 bouyer * multicast address filtering.
5521 1.1 bouyer */
5522 1.1 bouyer if (ifp->if_flags & IFF_PROMISC) {
5523 1.1 bouyer DBPRINT(sc, BNX_INFO, "Enabling promiscuous mode.\n");
5524 1.1 bouyer
5525 1.29 bouyer ifp->if_flags |= IFF_ALLMULTI;
5526 1.1 bouyer /* Enable promiscuous mode. */
5527 1.1 bouyer rx_mode |= BNX_EMAC_RX_MODE_PROMISCUOUS;
5528 1.1 bouyer sort_mode |= BNX_RPM_SORT_USER0_PROM_EN;
5529 1.1 bouyer } else if (ifp->if_flags & IFF_ALLMULTI) {
5530 1.1 bouyer allmulti:
5531 1.1 bouyer DBPRINT(sc, BNX_INFO, "Enabling all multicast mode.\n");
5532 1.1 bouyer
5533 1.29 bouyer ifp->if_flags |= IFF_ALLMULTI;
5534 1.1 bouyer /* Enable all multicast addresses. */
5535 1.1 bouyer for (i = 0; i < NUM_MC_HASH_REGISTERS; i++)
5536 1.1 bouyer REG_WR(sc, BNX_EMAC_MULTICAST_HASH0 + (i * 4),
5537 1.1 bouyer 0xffffffff);
5538 1.1 bouyer sort_mode |= BNX_RPM_SORT_USER0_MC_EN;
5539 1.1 bouyer } else {
5540 1.1 bouyer /* Accept one or more multicast(s). */
5541 1.1 bouyer DBPRINT(sc, BNX_INFO, "Enabling selective multicast mode.\n");
5542 1.1 bouyer
5543 1.1 bouyer ETHER_FIRST_MULTI(step, ec, enm);
5544 1.1 bouyer while (enm != NULL) {
5545 1.22 cegger if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
5546 1.1 bouyer ETHER_ADDR_LEN)) {
5547 1.1 bouyer goto allmulti;
5548 1.1 bouyer }
5549 1.1 bouyer h = ether_crc32_le(enm->enm_addrlo, ETHER_ADDR_LEN) &
5550 1.4 bouyer 0xFF;
5551 1.4 bouyer hashes[(h & 0xE0) >> 5] |= 1 << (h & 0x1F);
5552 1.1 bouyer ETHER_NEXT_MULTI(step, enm);
5553 1.1 bouyer }
5554 1.1 bouyer
5555 1.4 bouyer for (i = 0; i < NUM_MC_HASH_REGISTERS; i++)
5556 1.1 bouyer REG_WR(sc, BNX_EMAC_MULTICAST_HASH0 + (i * 4),
5557 1.1 bouyer hashes[i]);
5558 1.1 bouyer
5559 1.1 bouyer sort_mode |= BNX_RPM_SORT_USER0_MC_HSH_EN;
5560 1.1 bouyer }
5561 1.1 bouyer
5562 1.1 bouyer /* Only make changes if the recive mode has actually changed. */
5563 1.1 bouyer if (rx_mode != sc->rx_mode) {
5564 1.48 christos DBPRINT(sc, BNX_VERBOSE, "Enabling new receive mode: 0x%08X\n",
5565 1.1 bouyer rx_mode);
5566 1.1 bouyer
5567 1.1 bouyer sc->rx_mode = rx_mode;
5568 1.1 bouyer REG_WR(sc, BNX_EMAC_RX_MODE, rx_mode);
5569 1.1 bouyer }
5570 1.1 bouyer
5571 1.1 bouyer /* Disable and clear the exisitng sort before enabling a new sort. */
5572 1.1 bouyer REG_WR(sc, BNX_RPM_SORT_USER0, 0x0);
5573 1.1 bouyer REG_WR(sc, BNX_RPM_SORT_USER0, sort_mode);
5574 1.1 bouyer REG_WR(sc, BNX_RPM_SORT_USER0, sort_mode | BNX_RPM_SORT_USER0_ENA);
5575 1.1 bouyer }
5576 1.1 bouyer
5577 1.1 bouyer /****************************************************************************/
5578 1.1 bouyer /* Called periodically to updates statistics from the controllers */
5579 1.1 bouyer /* statistics block. */
5580 1.1 bouyer /* */
5581 1.1 bouyer /* Returns: */
5582 1.1 bouyer /* Nothing. */
5583 1.1 bouyer /****************************************************************************/
5584 1.1 bouyer void
5585 1.1 bouyer bnx_stats_update(struct bnx_softc *sc)
5586 1.1 bouyer {
5587 1.15 dyoung struct ifnet *ifp = &sc->bnx_ec.ec_if;
5588 1.1 bouyer struct statistics_block *stats;
5589 1.1 bouyer
5590 1.12 perry DBPRINT(sc, BNX_EXCESSIVE, "Entering %s()\n", __func__);
5591 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
5592 1.1 bouyer BUS_DMASYNC_POSTREAD);
5593 1.1 bouyer
5594 1.1 bouyer stats = (struct statistics_block *)sc->stats_block;
5595 1.1 bouyer
5596 1.48 christos /*
5597 1.1 bouyer * Update the interface statistics from the
5598 1.1 bouyer * hardware statistics.
5599 1.1 bouyer */
5600 1.1 bouyer ifp->if_collisions = (u_long)stats->stat_EtherStatsCollisions;
5601 1.1 bouyer
5602 1.1 bouyer ifp->if_ierrors = (u_long)stats->stat_EtherStatsUndersizePkts +
5603 1.1 bouyer (u_long)stats->stat_EtherStatsOverrsizePkts +
5604 1.1 bouyer (u_long)stats->stat_IfInMBUFDiscards +
5605 1.1 bouyer (u_long)stats->stat_Dot3StatsAlignmentErrors +
5606 1.1 bouyer (u_long)stats->stat_Dot3StatsFCSErrors;
5607 1.1 bouyer
5608 1.1 bouyer ifp->if_oerrors = (u_long)
5609 1.1 bouyer stats->stat_emac_tx_stat_dot3statsinternalmactransmiterrors +
5610 1.1 bouyer (u_long)stats->stat_Dot3StatsExcessiveCollisions +
5611 1.1 bouyer (u_long)stats->stat_Dot3StatsLateCollisions;
5612 1.1 bouyer
5613 1.48 christos /*
5614 1.48 christos * Certain controllers don't report
5615 1.1 bouyer * carrier sense errors correctly.
5616 1.48 christos * See errata E11_5708CA0_1165.
5617 1.1 bouyer */
5618 1.1 bouyer if (!(BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5706) &&
5619 1.1 bouyer !(BNX_CHIP_ID(sc) == BNX_CHIP_ID_5708_A0))
5620 1.1 bouyer ifp->if_oerrors += (u_long) stats->stat_Dot3StatsCarrierSenseErrors;
5621 1.1 bouyer
5622 1.1 bouyer /*
5623 1.1 bouyer * Update the sysctl statistics from the
5624 1.1 bouyer * hardware statistics.
5625 1.1 bouyer */
5626 1.55 msaitoh sc->stat_IfHCInOctets = ((uint64_t)stats->stat_IfHCInOctets_hi << 32) +
5627 1.55 msaitoh (uint64_t) stats->stat_IfHCInOctets_lo;
5628 1.1 bouyer
5629 1.1 bouyer sc->stat_IfHCInBadOctets =
5630 1.55 msaitoh ((uint64_t) stats->stat_IfHCInBadOctets_hi << 32) +
5631 1.55 msaitoh (uint64_t) stats->stat_IfHCInBadOctets_lo;
5632 1.1 bouyer
5633 1.1 bouyer sc->stat_IfHCOutOctets =
5634 1.55 msaitoh ((uint64_t) stats->stat_IfHCOutOctets_hi << 32) +
5635 1.55 msaitoh (uint64_t) stats->stat_IfHCOutOctets_lo;
5636 1.1 bouyer
5637 1.1 bouyer sc->stat_IfHCOutBadOctets =
5638 1.55 msaitoh ((uint64_t) stats->stat_IfHCOutBadOctets_hi << 32) +
5639 1.55 msaitoh (uint64_t) stats->stat_IfHCOutBadOctets_lo;
5640 1.1 bouyer
5641 1.1 bouyer sc->stat_IfHCInUcastPkts =
5642 1.55 msaitoh ((uint64_t) stats->stat_IfHCInUcastPkts_hi << 32) +
5643 1.55 msaitoh (uint64_t) stats->stat_IfHCInUcastPkts_lo;
5644 1.1 bouyer
5645 1.1 bouyer sc->stat_IfHCInMulticastPkts =
5646 1.55 msaitoh ((uint64_t) stats->stat_IfHCInMulticastPkts_hi << 32) +
5647 1.55 msaitoh (uint64_t) stats->stat_IfHCInMulticastPkts_lo;
5648 1.1 bouyer
5649 1.1 bouyer sc->stat_IfHCInBroadcastPkts =
5650 1.55 msaitoh ((uint64_t) stats->stat_IfHCInBroadcastPkts_hi << 32) +
5651 1.55 msaitoh (uint64_t) stats->stat_IfHCInBroadcastPkts_lo;
5652 1.1 bouyer
5653 1.1 bouyer sc->stat_IfHCOutUcastPkts =
5654 1.55 msaitoh ((uint64_t) stats->stat_IfHCOutUcastPkts_hi << 32) +
5655 1.55 msaitoh (uint64_t) stats->stat_IfHCOutUcastPkts_lo;
5656 1.1 bouyer
5657 1.1 bouyer sc->stat_IfHCOutMulticastPkts =
5658 1.55 msaitoh ((uint64_t) stats->stat_IfHCOutMulticastPkts_hi << 32) +
5659 1.55 msaitoh (uint64_t) stats->stat_IfHCOutMulticastPkts_lo;
5660 1.1 bouyer
5661 1.1 bouyer sc->stat_IfHCOutBroadcastPkts =
5662 1.55 msaitoh ((uint64_t) stats->stat_IfHCOutBroadcastPkts_hi << 32) +
5663 1.55 msaitoh (uint64_t) stats->stat_IfHCOutBroadcastPkts_lo;
5664 1.1 bouyer
5665 1.1 bouyer sc->stat_emac_tx_stat_dot3statsinternalmactransmiterrors =
5666 1.1 bouyer stats->stat_emac_tx_stat_dot3statsinternalmactransmiterrors;
5667 1.1 bouyer
5668 1.1 bouyer sc->stat_Dot3StatsCarrierSenseErrors =
5669 1.1 bouyer stats->stat_Dot3StatsCarrierSenseErrors;
5670 1.1 bouyer
5671 1.1 bouyer sc->stat_Dot3StatsFCSErrors = stats->stat_Dot3StatsFCSErrors;
5672 1.1 bouyer
5673 1.1 bouyer sc->stat_Dot3StatsAlignmentErrors =
5674 1.1 bouyer stats->stat_Dot3StatsAlignmentErrors;
5675 1.1 bouyer
5676 1.1 bouyer sc->stat_Dot3StatsSingleCollisionFrames =
5677 1.1 bouyer stats->stat_Dot3StatsSingleCollisionFrames;
5678 1.1 bouyer
5679 1.1 bouyer sc->stat_Dot3StatsMultipleCollisionFrames =
5680 1.1 bouyer stats->stat_Dot3StatsMultipleCollisionFrames;
5681 1.1 bouyer
5682 1.1 bouyer sc->stat_Dot3StatsDeferredTransmissions =
5683 1.1 bouyer stats->stat_Dot3StatsDeferredTransmissions;
5684 1.1 bouyer
5685 1.1 bouyer sc->stat_Dot3StatsExcessiveCollisions =
5686 1.1 bouyer stats->stat_Dot3StatsExcessiveCollisions;
5687 1.1 bouyer
5688 1.1 bouyer sc->stat_Dot3StatsLateCollisions = stats->stat_Dot3StatsLateCollisions;
5689 1.1 bouyer
5690 1.1 bouyer sc->stat_EtherStatsCollisions = stats->stat_EtherStatsCollisions;
5691 1.1 bouyer
5692 1.1 bouyer sc->stat_EtherStatsFragments = stats->stat_EtherStatsFragments;
5693 1.1 bouyer
5694 1.1 bouyer sc->stat_EtherStatsJabbers = stats->stat_EtherStatsJabbers;
5695 1.1 bouyer
5696 1.1 bouyer sc->stat_EtherStatsUndersizePkts = stats->stat_EtherStatsUndersizePkts;
5697 1.1 bouyer
5698 1.1 bouyer sc->stat_EtherStatsOverrsizePkts = stats->stat_EtherStatsOverrsizePkts;
5699 1.1 bouyer
5700 1.1 bouyer sc->stat_EtherStatsPktsRx64Octets =
5701 1.1 bouyer stats->stat_EtherStatsPktsRx64Octets;
5702 1.1 bouyer
5703 1.1 bouyer sc->stat_EtherStatsPktsRx65Octetsto127Octets =
5704 1.1 bouyer stats->stat_EtherStatsPktsRx65Octetsto127Octets;
5705 1.1 bouyer
5706 1.1 bouyer sc->stat_EtherStatsPktsRx128Octetsto255Octets =
5707 1.1 bouyer stats->stat_EtherStatsPktsRx128Octetsto255Octets;
5708 1.1 bouyer
5709 1.1 bouyer sc->stat_EtherStatsPktsRx256Octetsto511Octets =
5710 1.1 bouyer stats->stat_EtherStatsPktsRx256Octetsto511Octets;
5711 1.1 bouyer
5712 1.1 bouyer sc->stat_EtherStatsPktsRx512Octetsto1023Octets =
5713 1.1 bouyer stats->stat_EtherStatsPktsRx512Octetsto1023Octets;
5714 1.1 bouyer
5715 1.1 bouyer sc->stat_EtherStatsPktsRx1024Octetsto1522Octets =
5716 1.1 bouyer stats->stat_EtherStatsPktsRx1024Octetsto1522Octets;
5717 1.1 bouyer
5718 1.1 bouyer sc->stat_EtherStatsPktsRx1523Octetsto9022Octets =
5719 1.1 bouyer stats->stat_EtherStatsPktsRx1523Octetsto9022Octets;
5720 1.1 bouyer
5721 1.1 bouyer sc->stat_EtherStatsPktsTx64Octets =
5722 1.1 bouyer stats->stat_EtherStatsPktsTx64Octets;
5723 1.1 bouyer
5724 1.1 bouyer sc->stat_EtherStatsPktsTx65Octetsto127Octets =
5725 1.1 bouyer stats->stat_EtherStatsPktsTx65Octetsto127Octets;
5726 1.1 bouyer
5727 1.1 bouyer sc->stat_EtherStatsPktsTx128Octetsto255Octets =
5728 1.1 bouyer stats->stat_EtherStatsPktsTx128Octetsto255Octets;
5729 1.1 bouyer
5730 1.1 bouyer sc->stat_EtherStatsPktsTx256Octetsto511Octets =
5731 1.1 bouyer stats->stat_EtherStatsPktsTx256Octetsto511Octets;
5732 1.1 bouyer
5733 1.1 bouyer sc->stat_EtherStatsPktsTx512Octetsto1023Octets =
5734 1.1 bouyer stats->stat_EtherStatsPktsTx512Octetsto1023Octets;
5735 1.1 bouyer
5736 1.1 bouyer sc->stat_EtherStatsPktsTx1024Octetsto1522Octets =
5737 1.1 bouyer stats->stat_EtherStatsPktsTx1024Octetsto1522Octets;
5738 1.1 bouyer
5739 1.1 bouyer sc->stat_EtherStatsPktsTx1523Octetsto9022Octets =
5740 1.1 bouyer stats->stat_EtherStatsPktsTx1523Octetsto9022Octets;
5741 1.1 bouyer
5742 1.1 bouyer sc->stat_XonPauseFramesReceived = stats->stat_XonPauseFramesReceived;
5743 1.1 bouyer
5744 1.1 bouyer sc->stat_XoffPauseFramesReceived = stats->stat_XoffPauseFramesReceived;
5745 1.1 bouyer
5746 1.1 bouyer sc->stat_OutXonSent = stats->stat_OutXonSent;
5747 1.1 bouyer
5748 1.1 bouyer sc->stat_OutXoffSent = stats->stat_OutXoffSent;
5749 1.1 bouyer
5750 1.1 bouyer sc->stat_FlowControlDone = stats->stat_FlowControlDone;
5751 1.1 bouyer
5752 1.1 bouyer sc->stat_MacControlFramesReceived =
5753 1.1 bouyer stats->stat_MacControlFramesReceived;
5754 1.1 bouyer
5755 1.1 bouyer sc->stat_XoffStateEntered = stats->stat_XoffStateEntered;
5756 1.1 bouyer
5757 1.1 bouyer sc->stat_IfInFramesL2FilterDiscards =
5758 1.1 bouyer stats->stat_IfInFramesL2FilterDiscards;
5759 1.1 bouyer
5760 1.1 bouyer sc->stat_IfInRuleCheckerDiscards = stats->stat_IfInRuleCheckerDiscards;
5761 1.1 bouyer
5762 1.1 bouyer sc->stat_IfInFTQDiscards = stats->stat_IfInFTQDiscards;
5763 1.1 bouyer
5764 1.1 bouyer sc->stat_IfInMBUFDiscards = stats->stat_IfInMBUFDiscards;
5765 1.1 bouyer
5766 1.1 bouyer sc->stat_IfInRuleCheckerP4Hit = stats->stat_IfInRuleCheckerP4Hit;
5767 1.1 bouyer
5768 1.1 bouyer sc->stat_CatchupInRuleCheckerDiscards =
5769 1.1 bouyer stats->stat_CatchupInRuleCheckerDiscards;
5770 1.1 bouyer
5771 1.1 bouyer sc->stat_CatchupInFTQDiscards = stats->stat_CatchupInFTQDiscards;
5772 1.1 bouyer
5773 1.1 bouyer sc->stat_CatchupInMBUFDiscards = stats->stat_CatchupInMBUFDiscards;
5774 1.1 bouyer
5775 1.1 bouyer sc->stat_CatchupInRuleCheckerP4Hit =
5776 1.1 bouyer stats->stat_CatchupInRuleCheckerP4Hit;
5777 1.1 bouyer
5778 1.12 perry DBPRINT(sc, BNX_EXCESSIVE, "Exiting %s()\n", __func__);
5779 1.1 bouyer }
5780 1.1 bouyer
5781 1.1 bouyer void
5782 1.1 bouyer bnx_tick(void *xsc)
5783 1.1 bouyer {
5784 1.1 bouyer struct bnx_softc *sc = xsc;
5785 1.73 msaitoh struct ifnet *ifp = &sc->bnx_ec.ec_if;
5786 1.14 dyoung struct mii_data *mii;
5787 1.55 msaitoh uint32_t msg;
5788 1.55 msaitoh uint16_t prod, chain_prod;
5789 1.55 msaitoh uint32_t prod_bseq;
5790 1.4 bouyer int s = splnet();
5791 1.1 bouyer
5792 1.1 bouyer /* Tell the firmware that the driver is still running. */
5793 1.1 bouyer #ifdef BNX_DEBUG
5794 1.55 msaitoh msg = (uint32_t)BNX_DRV_MSG_DATA_PULSE_CODE_ALWAYS_ALIVE;
5795 1.1 bouyer #else
5796 1.55 msaitoh msg = (uint32_t)++sc->bnx_fw_drv_pulse_wr_seq;
5797 1.1 bouyer #endif
5798 1.1 bouyer REG_WR_IND(sc, sc->bnx_shmem_base + BNX_DRV_PULSE_MB, msg);
5799 1.1 bouyer
5800 1.1 bouyer /* Update the statistics from the hardware statistics block. */
5801 1.1 bouyer bnx_stats_update(sc);
5802 1.1 bouyer
5803 1.73 msaitoh /* Schedule the next tick. */
5804 1.73 msaitoh if (!sc->bnx_detaching)
5805 1.73 msaitoh callout_reset(&sc->bnx_timeout, hz, bnx_tick, sc);
5806 1.73 msaitoh
5807 1.73 msaitoh if (sc->bnx_link)
5808 1.73 msaitoh goto bnx_tick_exit;
5809 1.73 msaitoh
5810 1.1 bouyer mii = &sc->bnx_mii;
5811 1.1 bouyer mii_tick(mii);
5812 1.1 bouyer
5813 1.73 msaitoh /* Check if the link has come up. */
5814 1.73 msaitoh if (!sc->bnx_link && mii->mii_media_status & IFM_ACTIVE &&
5815 1.73 msaitoh IFM_SUBTYPE(mii->mii_media_active) != IFM_NONE) {
5816 1.73 msaitoh sc->bnx_link++;
5817 1.73 msaitoh /* Now that link is up, handle any outstanding TX traffic. */
5818 1.73 msaitoh if_schedule_deferred_start(ifp);
5819 1.73 msaitoh }
5820 1.73 msaitoh
5821 1.73 msaitoh bnx_tick_exit:
5822 1.5 bouyer /* try to get more RX buffers, just in case */
5823 1.5 bouyer prod = sc->rx_prod;
5824 1.5 bouyer prod_bseq = sc->rx_prod_bseq;
5825 1.5 bouyer chain_prod = RX_CHAIN_IDX(prod);
5826 1.21 dyoung bnx_get_buf(sc, &prod, &chain_prod, &prod_bseq);
5827 1.5 bouyer sc->rx_prod = prod;
5828 1.5 bouyer sc->rx_prod_bseq = prod_bseq;
5829 1.64 msaitoh
5830 1.4 bouyer splx(s);
5831 1.1 bouyer return;
5832 1.1 bouyer }
5833 1.1 bouyer
5834 1.1 bouyer /****************************************************************************/
5835 1.1 bouyer /* BNX Debug Routines */
5836 1.1 bouyer /****************************************************************************/
5837 1.1 bouyer #ifdef BNX_DEBUG
5838 1.1 bouyer
5839 1.1 bouyer /****************************************************************************/
5840 1.1 bouyer /* Prints out information about an mbuf. */
5841 1.1 bouyer /* */
5842 1.1 bouyer /* Returns: */
5843 1.1 bouyer /* Nothing. */
5844 1.1 bouyer /****************************************************************************/
5845 1.1 bouyer void
5846 1.1 bouyer bnx_dump_mbuf(struct bnx_softc *sc, struct mbuf *m)
5847 1.1 bouyer {
5848 1.1 bouyer struct mbuf *mp = m;
5849 1.1 bouyer
5850 1.1 bouyer if (m == NULL) {
5851 1.1 bouyer /* Index out of range. */
5852 1.1 bouyer aprint_error("mbuf ptr is null!\n");
5853 1.1 bouyer return;
5854 1.1 bouyer }
5855 1.1 bouyer
5856 1.1 bouyer while (mp) {
5857 1.48 christos aprint_debug("mbuf: vaddr = %p, m_len = %d, m_flags = ",
5858 1.1 bouyer mp, mp->m_len);
5859 1.1 bouyer
5860 1.1 bouyer if (mp->m_flags & M_EXT)
5861 1.1 bouyer aprint_debug("M_EXT ");
5862 1.1 bouyer if (mp->m_flags & M_PKTHDR)
5863 1.1 bouyer aprint_debug("M_PKTHDR ");
5864 1.1 bouyer aprint_debug("\n");
5865 1.1 bouyer
5866 1.1 bouyer if (mp->m_flags & M_EXT)
5867 1.66 msaitoh aprint_debug("- m_ext: vaddr = %p, "
5868 1.66 msaitoh "ext_size = 0x%04zX\n", mp, mp->m_ext.ext_size);
5869 1.1 bouyer
5870 1.1 bouyer mp = mp->m_next;
5871 1.1 bouyer }
5872 1.1 bouyer }
5873 1.1 bouyer
5874 1.1 bouyer /****************************************************************************/
5875 1.1 bouyer /* Prints out the mbufs in the TX mbuf chain. */
5876 1.1 bouyer /* */
5877 1.1 bouyer /* Returns: */
5878 1.1 bouyer /* Nothing. */
5879 1.1 bouyer /****************************************************************************/
5880 1.1 bouyer void
5881 1.1 bouyer bnx_dump_tx_mbuf_chain(struct bnx_softc *sc, int chain_prod, int count)
5882 1.1 bouyer {
5883 1.29 bouyer #if 0
5884 1.1 bouyer struct mbuf *m;
5885 1.1 bouyer int i;
5886 1.1 bouyer
5887 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
5888 1.1 bouyer "----------------------------"
5889 1.1 bouyer " tx mbuf data "
5890 1.1 bouyer "----------------------------\n");
5891 1.1 bouyer
5892 1.1 bouyer for (i = 0; i < count; i++) {
5893 1.1 bouyer m = sc->tx_mbuf_ptr[chain_prod];
5894 1.1 bouyer BNX_PRINTF(sc, "txmbuf[%d]\n", chain_prod);
5895 1.1 bouyer bnx_dump_mbuf(sc, m);
5896 1.1 bouyer chain_prod = TX_CHAIN_IDX(NEXT_TX_BD(chain_prod));
5897 1.1 bouyer }
5898 1.1 bouyer
5899 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
5900 1.1 bouyer "--------------------------------------------"
5901 1.1 bouyer "----------------------------\n");
5902 1.29 bouyer #endif
5903 1.1 bouyer }
5904 1.1 bouyer
5905 1.1 bouyer /*
5906 1.1 bouyer * This routine prints the RX mbuf chain.
5907 1.1 bouyer */
5908 1.1 bouyer void
5909 1.1 bouyer bnx_dump_rx_mbuf_chain(struct bnx_softc *sc, int chain_prod, int count)
5910 1.1 bouyer {
5911 1.1 bouyer struct mbuf *m;
5912 1.1 bouyer int i;
5913 1.1 bouyer
5914 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
5915 1.1 bouyer "----------------------------"
5916 1.1 bouyer " rx mbuf data "
5917 1.1 bouyer "----------------------------\n");
5918 1.1 bouyer
5919 1.1 bouyer for (i = 0; i < count; i++) {
5920 1.1 bouyer m = sc->rx_mbuf_ptr[chain_prod];
5921 1.1 bouyer BNX_PRINTF(sc, "rxmbuf[0x%04X]\n", chain_prod);
5922 1.1 bouyer bnx_dump_mbuf(sc, m);
5923 1.1 bouyer chain_prod = RX_CHAIN_IDX(NEXT_RX_BD(chain_prod));
5924 1.1 bouyer }
5925 1.1 bouyer
5926 1.1 bouyer
5927 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
5928 1.1 bouyer "--------------------------------------------"
5929 1.1 bouyer "----------------------------\n");
5930 1.1 bouyer }
5931 1.1 bouyer
5932 1.1 bouyer void
5933 1.1 bouyer bnx_dump_txbd(struct bnx_softc *sc, int idx, struct tx_bd *txbd)
5934 1.1 bouyer {
5935 1.1 bouyer if (idx > MAX_TX_BD)
5936 1.1 bouyer /* Index out of range. */
5937 1.1 bouyer BNX_PRINTF(sc, "tx_bd[0x%04X]: Invalid tx_bd index!\n", idx);
5938 1.1 bouyer else if ((idx & USABLE_TX_BD_PER_PAGE) == USABLE_TX_BD_PER_PAGE)
5939 1.1 bouyer /* TX Chain page pointer. */
5940 1.1 bouyer BNX_PRINTF(sc, "tx_bd[0x%04X]: haddr = 0x%08X:%08X, chain "
5941 1.1 bouyer "page pointer\n", idx, txbd->tx_bd_haddr_hi,
5942 1.1 bouyer txbd->tx_bd_haddr_lo);
5943 1.1 bouyer else
5944 1.1 bouyer /* Normal tx_bd entry. */
5945 1.1 bouyer BNX_PRINTF(sc, "tx_bd[0x%04X]: haddr = 0x%08X:%08X, nbytes = "
5946 1.48 christos "0x%08X, vlan tag = 0x%4X, flags = 0x%08X\n", idx,
5947 1.1 bouyer txbd->tx_bd_haddr_hi, txbd->tx_bd_haddr_lo,
5948 1.4 bouyer txbd->tx_bd_mss_nbytes, txbd->tx_bd_vlan_tag,
5949 1.4 bouyer txbd->tx_bd_flags);
5950 1.1 bouyer }
5951 1.1 bouyer
5952 1.1 bouyer void
5953 1.1 bouyer bnx_dump_rxbd(struct bnx_softc *sc, int idx, struct rx_bd *rxbd)
5954 1.1 bouyer {
5955 1.1 bouyer if (idx > MAX_RX_BD)
5956 1.1 bouyer /* Index out of range. */
5957 1.1 bouyer BNX_PRINTF(sc, "rx_bd[0x%04X]: Invalid rx_bd index!\n", idx);
5958 1.1 bouyer else if ((idx & USABLE_RX_BD_PER_PAGE) == USABLE_RX_BD_PER_PAGE)
5959 1.1 bouyer /* TX Chain page pointer. */
5960 1.1 bouyer BNX_PRINTF(sc, "rx_bd[0x%04X]: haddr = 0x%08X:%08X, chain page "
5961 1.1 bouyer "pointer\n", idx, rxbd->rx_bd_haddr_hi,
5962 1.1 bouyer rxbd->rx_bd_haddr_lo);
5963 1.1 bouyer else
5964 1.1 bouyer /* Normal tx_bd entry. */
5965 1.1 bouyer BNX_PRINTF(sc, "rx_bd[0x%04X]: haddr = 0x%08X:%08X, nbytes = "
5966 1.48 christos "0x%08X, flags = 0x%08X\n", idx,
5967 1.1 bouyer rxbd->rx_bd_haddr_hi, rxbd->rx_bd_haddr_lo,
5968 1.1 bouyer rxbd->rx_bd_len, rxbd->rx_bd_flags);
5969 1.1 bouyer }
5970 1.1 bouyer
5971 1.1 bouyer void
5972 1.1 bouyer bnx_dump_l2fhdr(struct bnx_softc *sc, int idx, struct l2_fhdr *l2fhdr)
5973 1.1 bouyer {
5974 1.1 bouyer BNX_PRINTF(sc, "l2_fhdr[0x%04X]: status = 0x%08X, "
5975 1.1 bouyer "pkt_len = 0x%04X, vlan = 0x%04x, ip_xsum = 0x%04X, "
5976 1.1 bouyer "tcp_udp_xsum = 0x%04X\n", idx,
5977 1.1 bouyer l2fhdr->l2_fhdr_status, l2fhdr->l2_fhdr_pkt_len,
5978 1.1 bouyer l2fhdr->l2_fhdr_vlan_tag, l2fhdr->l2_fhdr_ip_xsum,
5979 1.1 bouyer l2fhdr->l2_fhdr_tcp_udp_xsum);
5980 1.1 bouyer }
5981 1.1 bouyer
5982 1.1 bouyer /*
5983 1.1 bouyer * This routine prints the TX chain.
5984 1.1 bouyer */
5985 1.1 bouyer void
5986 1.1 bouyer bnx_dump_tx_chain(struct bnx_softc *sc, int tx_prod, int count)
5987 1.1 bouyer {
5988 1.1 bouyer struct tx_bd *txbd;
5989 1.1 bouyer int i;
5990 1.1 bouyer
5991 1.1 bouyer /* First some info about the tx_bd chain structure. */
5992 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
5993 1.1 bouyer "----------------------------"
5994 1.1 bouyer " tx_bd chain "
5995 1.1 bouyer "----------------------------\n");
5996 1.1 bouyer
5997 1.1 bouyer BNX_PRINTF(sc,
5998 1.1 bouyer "page size = 0x%08X, tx chain pages = 0x%08X\n",
5999 1.55 msaitoh (uint32_t)BCM_PAGE_SIZE, (uint32_t) TX_PAGES);
6000 1.1 bouyer
6001 1.1 bouyer BNX_PRINTF(sc,
6002 1.1 bouyer "tx_bd per page = 0x%08X, usable tx_bd per page = 0x%08X\n",
6003 1.55 msaitoh (uint32_t)TOTAL_TX_BD_PER_PAGE, (uint32_t)USABLE_TX_BD_PER_PAGE);
6004 1.1 bouyer
6005 1.74 msaitoh BNX_PRINTF(sc, "total tx_bd = 0x%08X\n", (uint32_t)TOTAL_TX_BD);
6006 1.1 bouyer
6007 1.29 bouyer aprint_error_dev(sc->bnx_dev, ""
6008 1.1 bouyer "-----------------------------"
6009 1.1 bouyer " tx_bd data "
6010 1.1 bouyer "-----------------------------\n");
6011 1.1 bouyer
6012 1.1 bouyer /* Now print out the tx_bd's themselves. */
6013 1.1 bouyer for (i = 0; i < count; i++) {
6014 1.1 bouyer txbd = &sc->tx_bd_chain[TX_PAGE(tx_prod)][TX_IDX(tx_prod)];
6015 1.1 bouyer bnx_dump_txbd(sc, tx_prod, txbd);
6016 1.1 bouyer tx_prod = TX_CHAIN_IDX(NEXT_TX_BD(tx_prod));
6017 1.1 bouyer }
6018 1.1 bouyer
6019 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
6020 1.1 bouyer "-----------------------------"
6021 1.1 bouyer "--------------"
6022 1.1 bouyer "-----------------------------\n");
6023 1.1 bouyer }
6024 1.1 bouyer
6025 1.1 bouyer /*
6026 1.1 bouyer * This routine prints the RX chain.
6027 1.1 bouyer */
6028 1.1 bouyer void
6029 1.1 bouyer bnx_dump_rx_chain(struct bnx_softc *sc, int rx_prod, int count)
6030 1.1 bouyer {
6031 1.1 bouyer struct rx_bd *rxbd;
6032 1.1 bouyer int i;
6033 1.1 bouyer
6034 1.1 bouyer /* First some info about the tx_bd chain structure. */
6035 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
6036 1.1 bouyer "----------------------------"
6037 1.1 bouyer " rx_bd chain "
6038 1.1 bouyer "----------------------------\n");
6039 1.1 bouyer
6040 1.29 bouyer aprint_debug_dev(sc->bnx_dev, "----- RX_BD Chain -----\n");
6041 1.1 bouyer
6042 1.1 bouyer BNX_PRINTF(sc,
6043 1.1 bouyer "page size = 0x%08X, rx chain pages = 0x%08X\n",
6044 1.55 msaitoh (uint32_t)BCM_PAGE_SIZE, (uint32_t)RX_PAGES);
6045 1.1 bouyer
6046 1.1 bouyer BNX_PRINTF(sc,
6047 1.1 bouyer "rx_bd per page = 0x%08X, usable rx_bd per page = 0x%08X\n",
6048 1.55 msaitoh (uint32_t)TOTAL_RX_BD_PER_PAGE, (uint32_t)USABLE_RX_BD_PER_PAGE);
6049 1.1 bouyer
6050 1.74 msaitoh BNX_PRINTF(sc, "total rx_bd = 0x%08X\n", (uint32_t)TOTAL_RX_BD);
6051 1.1 bouyer
6052 1.29 bouyer aprint_error_dev(sc->bnx_dev,
6053 1.1 bouyer "----------------------------"
6054 1.1 bouyer " rx_bd data "
6055 1.1 bouyer "----------------------------\n");
6056 1.1 bouyer
6057 1.1 bouyer /* Now print out the rx_bd's themselves. */
6058 1.1 bouyer for (i = 0; i < count; i++) {
6059 1.1 bouyer rxbd = &sc->rx_bd_chain[RX_PAGE(rx_prod)][RX_IDX(rx_prod)];
6060 1.1 bouyer bnx_dump_rxbd(sc, rx_prod, rxbd);
6061 1.1 bouyer rx_prod = RX_CHAIN_IDX(NEXT_RX_BD(rx_prod));
6062 1.1 bouyer }
6063 1.1 bouyer
6064 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
6065 1.1 bouyer "----------------------------"
6066 1.1 bouyer "--------------"
6067 1.1 bouyer "----------------------------\n");
6068 1.1 bouyer }
6069 1.1 bouyer
6070 1.1 bouyer /*
6071 1.1 bouyer * This routine prints the status block.
6072 1.1 bouyer */
6073 1.1 bouyer void
6074 1.1 bouyer bnx_dump_status_block(struct bnx_softc *sc)
6075 1.1 bouyer {
6076 1.1 bouyer struct status_block *sblk;
6077 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
6078 1.1 bouyer BUS_DMASYNC_POSTREAD);
6079 1.1 bouyer
6080 1.1 bouyer sblk = sc->status_block;
6081 1.1 bouyer
6082 1.66 msaitoh aprint_debug_dev(sc->bnx_dev, "----------------------------- "
6083 1.66 msaitoh "Status Block -----------------------------\n");
6084 1.1 bouyer
6085 1.1 bouyer BNX_PRINTF(sc,
6086 1.1 bouyer "attn_bits = 0x%08X, attn_bits_ack = 0x%08X, index = 0x%04X\n",
6087 1.1 bouyer sblk->status_attn_bits, sblk->status_attn_bits_ack,
6088 1.1 bouyer sblk->status_idx);
6089 1.1 bouyer
6090 1.1 bouyer BNX_PRINTF(sc, "rx_cons0 = 0x%08X, tx_cons0 = 0x%08X\n",
6091 1.1 bouyer sblk->status_rx_quick_consumer_index0,
6092 1.1 bouyer sblk->status_tx_quick_consumer_index0);
6093 1.1 bouyer
6094 1.1 bouyer BNX_PRINTF(sc, "status_idx = 0x%04X\n", sblk->status_idx);
6095 1.1 bouyer
6096 1.1 bouyer /* Theses indices are not used for normal L2 drivers. */
6097 1.48 christos if (sblk->status_rx_quick_consumer_index1 ||
6098 1.1 bouyer sblk->status_tx_quick_consumer_index1)
6099 1.1 bouyer BNX_PRINTF(sc, "rx_cons1 = 0x%08X, tx_cons1 = 0x%08X\n",
6100 1.1 bouyer sblk->status_rx_quick_consumer_index1,
6101 1.1 bouyer sblk->status_tx_quick_consumer_index1);
6102 1.1 bouyer
6103 1.48 christos if (sblk->status_rx_quick_consumer_index2 ||
6104 1.1 bouyer sblk->status_tx_quick_consumer_index2)
6105 1.1 bouyer BNX_PRINTF(sc, "rx_cons2 = 0x%08X, tx_cons2 = 0x%08X\n",
6106 1.1 bouyer sblk->status_rx_quick_consumer_index2,
6107 1.1 bouyer sblk->status_tx_quick_consumer_index2);
6108 1.1 bouyer
6109 1.48 christos if (sblk->status_rx_quick_consumer_index3 ||
6110 1.1 bouyer sblk->status_tx_quick_consumer_index3)
6111 1.1 bouyer BNX_PRINTF(sc, "rx_cons3 = 0x%08X, tx_cons3 = 0x%08X\n",
6112 1.1 bouyer sblk->status_rx_quick_consumer_index3,
6113 1.1 bouyer sblk->status_tx_quick_consumer_index3);
6114 1.1 bouyer
6115 1.48 christos if (sblk->status_rx_quick_consumer_index4 ||
6116 1.1 bouyer sblk->status_rx_quick_consumer_index5)
6117 1.1 bouyer BNX_PRINTF(sc, "rx_cons4 = 0x%08X, rx_cons5 = 0x%08X\n",
6118 1.1 bouyer sblk->status_rx_quick_consumer_index4,
6119 1.1 bouyer sblk->status_rx_quick_consumer_index5);
6120 1.1 bouyer
6121 1.48 christos if (sblk->status_rx_quick_consumer_index6 ||
6122 1.1 bouyer sblk->status_rx_quick_consumer_index7)
6123 1.1 bouyer BNX_PRINTF(sc, "rx_cons6 = 0x%08X, rx_cons7 = 0x%08X\n",
6124 1.1 bouyer sblk->status_rx_quick_consumer_index6,
6125 1.1 bouyer sblk->status_rx_quick_consumer_index7);
6126 1.1 bouyer
6127 1.48 christos if (sblk->status_rx_quick_consumer_index8 ||
6128 1.1 bouyer sblk->status_rx_quick_consumer_index9)
6129 1.1 bouyer BNX_PRINTF(sc, "rx_cons8 = 0x%08X, rx_cons9 = 0x%08X\n",
6130 1.1 bouyer sblk->status_rx_quick_consumer_index8,
6131 1.1 bouyer sblk->status_rx_quick_consumer_index9);
6132 1.1 bouyer
6133 1.48 christos if (sblk->status_rx_quick_consumer_index10 ||
6134 1.1 bouyer sblk->status_rx_quick_consumer_index11)
6135 1.1 bouyer BNX_PRINTF(sc, "rx_cons10 = 0x%08X, rx_cons11 = 0x%08X\n",
6136 1.1 bouyer sblk->status_rx_quick_consumer_index10,
6137 1.1 bouyer sblk->status_rx_quick_consumer_index11);
6138 1.1 bouyer
6139 1.48 christos if (sblk->status_rx_quick_consumer_index12 ||
6140 1.1 bouyer sblk->status_rx_quick_consumer_index13)
6141 1.1 bouyer BNX_PRINTF(sc, "rx_cons12 = 0x%08X, rx_cons13 = 0x%08X\n",
6142 1.1 bouyer sblk->status_rx_quick_consumer_index12,
6143 1.1 bouyer sblk->status_rx_quick_consumer_index13);
6144 1.1 bouyer
6145 1.48 christos if (sblk->status_rx_quick_consumer_index14 ||
6146 1.1 bouyer sblk->status_rx_quick_consumer_index15)
6147 1.1 bouyer BNX_PRINTF(sc, "rx_cons14 = 0x%08X, rx_cons15 = 0x%08X\n",
6148 1.1 bouyer sblk->status_rx_quick_consumer_index14,
6149 1.1 bouyer sblk->status_rx_quick_consumer_index15);
6150 1.1 bouyer
6151 1.48 christos if (sblk->status_completion_producer_index ||
6152 1.1 bouyer sblk->status_cmd_consumer_index)
6153 1.1 bouyer BNX_PRINTF(sc, "com_prod = 0x%08X, cmd_cons = 0x%08X\n",
6154 1.1 bouyer sblk->status_completion_producer_index,
6155 1.1 bouyer sblk->status_cmd_consumer_index);
6156 1.1 bouyer
6157 1.29 bouyer aprint_debug_dev(sc->bnx_dev, "-------------------------------------------"
6158 1.1 bouyer "-----------------------------\n");
6159 1.1 bouyer }
6160 1.1 bouyer
6161 1.1 bouyer /*
6162 1.1 bouyer * This routine prints the statistics block.
6163 1.1 bouyer */
6164 1.1 bouyer void
6165 1.1 bouyer bnx_dump_stats_block(struct bnx_softc *sc)
6166 1.1 bouyer {
6167 1.1 bouyer struct statistics_block *sblk;
6168 1.1 bouyer bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
6169 1.1 bouyer BUS_DMASYNC_POSTREAD);
6170 1.1 bouyer
6171 1.1 bouyer sblk = sc->stats_block;
6172 1.1 bouyer
6173 1.29 bouyer aprint_debug_dev(sc->bnx_dev, ""
6174 1.1 bouyer "-----------------------------"
6175 1.1 bouyer " Stats Block "
6176 1.1 bouyer "-----------------------------\n");
6177 1.1 bouyer
6178 1.1 bouyer BNX_PRINTF(sc, "IfHcInOctets = 0x%08X:%08X, "
6179 1.1 bouyer "IfHcInBadOctets = 0x%08X:%08X\n",
6180 1.1 bouyer sblk->stat_IfHCInOctets_hi, sblk->stat_IfHCInOctets_lo,
6181 1.1 bouyer sblk->stat_IfHCInBadOctets_hi, sblk->stat_IfHCInBadOctets_lo);
6182 1.1 bouyer
6183 1.1 bouyer BNX_PRINTF(sc, "IfHcOutOctets = 0x%08X:%08X, "
6184 1.1 bouyer "IfHcOutBadOctets = 0x%08X:%08X\n",
6185 1.1 bouyer sblk->stat_IfHCOutOctets_hi, sblk->stat_IfHCOutOctets_lo,
6186 1.1 bouyer sblk->stat_IfHCOutBadOctets_hi, sblk->stat_IfHCOutBadOctets_lo);
6187 1.1 bouyer
6188 1.1 bouyer BNX_PRINTF(sc, "IfHcInUcastPkts = 0x%08X:%08X, "
6189 1.1 bouyer "IfHcInMulticastPkts = 0x%08X:%08X\n",
6190 1.1 bouyer sblk->stat_IfHCInUcastPkts_hi, sblk->stat_IfHCInUcastPkts_lo,
6191 1.1 bouyer sblk->stat_IfHCInMulticastPkts_hi,
6192 1.1 bouyer sblk->stat_IfHCInMulticastPkts_lo);
6193 1.1 bouyer
6194 1.1 bouyer BNX_PRINTF(sc, "IfHcInBroadcastPkts = 0x%08X:%08X, "
6195 1.1 bouyer "IfHcOutUcastPkts = 0x%08X:%08X\n",
6196 1.1 bouyer sblk->stat_IfHCInBroadcastPkts_hi,
6197 1.1 bouyer sblk->stat_IfHCInBroadcastPkts_lo,
6198 1.1 bouyer sblk->stat_IfHCOutUcastPkts_hi,
6199 1.1 bouyer sblk->stat_IfHCOutUcastPkts_lo);
6200 1.1 bouyer
6201 1.1 bouyer BNX_PRINTF(sc, "IfHcOutMulticastPkts = 0x%08X:%08X, "
6202 1.1 bouyer "IfHcOutBroadcastPkts = 0x%08X:%08X\n",
6203 1.1 bouyer sblk->stat_IfHCOutMulticastPkts_hi,
6204 1.1 bouyer sblk->stat_IfHCOutMulticastPkts_lo,
6205 1.1 bouyer sblk->stat_IfHCOutBroadcastPkts_hi,
6206 1.1 bouyer sblk->stat_IfHCOutBroadcastPkts_lo);
6207 1.1 bouyer
6208 1.1 bouyer if (sblk->stat_emac_tx_stat_dot3statsinternalmactransmiterrors)
6209 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6210 1.48 christos "emac_tx_stat_dot3statsinternalmactransmiterrors\n",
6211 1.1 bouyer sblk->stat_emac_tx_stat_dot3statsinternalmactransmiterrors);
6212 1.1 bouyer
6213 1.1 bouyer if (sblk->stat_Dot3StatsCarrierSenseErrors)
6214 1.1 bouyer BNX_PRINTF(sc, "0x%08X : Dot3StatsCarrierSenseErrors\n",
6215 1.1 bouyer sblk->stat_Dot3StatsCarrierSenseErrors);
6216 1.1 bouyer
6217 1.1 bouyer if (sblk->stat_Dot3StatsFCSErrors)
6218 1.1 bouyer BNX_PRINTF(sc, "0x%08X : Dot3StatsFCSErrors\n",
6219 1.1 bouyer sblk->stat_Dot3StatsFCSErrors);
6220 1.1 bouyer
6221 1.1 bouyer if (sblk->stat_Dot3StatsAlignmentErrors)
6222 1.1 bouyer BNX_PRINTF(sc, "0x%08X : Dot3StatsAlignmentErrors\n",
6223 1.1 bouyer sblk->stat_Dot3StatsAlignmentErrors);
6224 1.1 bouyer
6225 1.1 bouyer if (sblk->stat_Dot3StatsSingleCollisionFrames)
6226 1.1 bouyer BNX_PRINTF(sc, "0x%08X : Dot3StatsSingleCollisionFrames\n",
6227 1.1 bouyer sblk->stat_Dot3StatsSingleCollisionFrames);
6228 1.1 bouyer
6229 1.1 bouyer if (sblk->stat_Dot3StatsMultipleCollisionFrames)
6230 1.1 bouyer BNX_PRINTF(sc, "0x%08X : Dot3StatsMultipleCollisionFrames\n",
6231 1.1 bouyer sblk->stat_Dot3StatsMultipleCollisionFrames);
6232 1.48 christos
6233 1.1 bouyer if (sblk->stat_Dot3StatsDeferredTransmissions)
6234 1.1 bouyer BNX_PRINTF(sc, "0x%08X : Dot3StatsDeferredTransmissions\n",
6235 1.1 bouyer sblk->stat_Dot3StatsDeferredTransmissions);
6236 1.1 bouyer
6237 1.1 bouyer if (sblk->stat_Dot3StatsExcessiveCollisions)
6238 1.1 bouyer BNX_PRINTF(sc, "0x%08X : Dot3StatsExcessiveCollisions\n",
6239 1.1 bouyer sblk->stat_Dot3StatsExcessiveCollisions);
6240 1.1 bouyer
6241 1.1 bouyer if (sblk->stat_Dot3StatsLateCollisions)
6242 1.1 bouyer BNX_PRINTF(sc, "0x%08X : Dot3StatsLateCollisions\n",
6243 1.1 bouyer sblk->stat_Dot3StatsLateCollisions);
6244 1.1 bouyer
6245 1.1 bouyer if (sblk->stat_EtherStatsCollisions)
6246 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsCollisions\n",
6247 1.1 bouyer sblk->stat_EtherStatsCollisions);
6248 1.1 bouyer
6249 1.48 christos if (sblk->stat_EtherStatsFragments)
6250 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsFragments\n",
6251 1.1 bouyer sblk->stat_EtherStatsFragments);
6252 1.1 bouyer
6253 1.1 bouyer if (sblk->stat_EtherStatsJabbers)
6254 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsJabbers\n",
6255 1.1 bouyer sblk->stat_EtherStatsJabbers);
6256 1.1 bouyer
6257 1.1 bouyer if (sblk->stat_EtherStatsUndersizePkts)
6258 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsUndersizePkts\n",
6259 1.1 bouyer sblk->stat_EtherStatsUndersizePkts);
6260 1.1 bouyer
6261 1.1 bouyer if (sblk->stat_EtherStatsOverrsizePkts)
6262 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsOverrsizePkts\n",
6263 1.1 bouyer sblk->stat_EtherStatsOverrsizePkts);
6264 1.1 bouyer
6265 1.1 bouyer if (sblk->stat_EtherStatsPktsRx64Octets)
6266 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsPktsRx64Octets\n",
6267 1.1 bouyer sblk->stat_EtherStatsPktsRx64Octets);
6268 1.1 bouyer
6269 1.1 bouyer if (sblk->stat_EtherStatsPktsRx65Octetsto127Octets)
6270 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsPktsRx65Octetsto127Octets\n",
6271 1.1 bouyer sblk->stat_EtherStatsPktsRx65Octetsto127Octets);
6272 1.1 bouyer
6273 1.1 bouyer if (sblk->stat_EtherStatsPktsRx128Octetsto255Octets)
6274 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6275 1.1 bouyer "EtherStatsPktsRx128Octetsto255Octets\n",
6276 1.1 bouyer sblk->stat_EtherStatsPktsRx128Octetsto255Octets);
6277 1.1 bouyer
6278 1.1 bouyer if (sblk->stat_EtherStatsPktsRx256Octetsto511Octets)
6279 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6280 1.1 bouyer "EtherStatsPktsRx256Octetsto511Octets\n",
6281 1.1 bouyer sblk->stat_EtherStatsPktsRx256Octetsto511Octets);
6282 1.1 bouyer
6283 1.1 bouyer if (sblk->stat_EtherStatsPktsRx512Octetsto1023Octets)
6284 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6285 1.1 bouyer "EtherStatsPktsRx512Octetsto1023Octets\n",
6286 1.1 bouyer sblk->stat_EtherStatsPktsRx512Octetsto1023Octets);
6287 1.1 bouyer
6288 1.1 bouyer if (sblk->stat_EtherStatsPktsRx1024Octetsto1522Octets)
6289 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6290 1.1 bouyer "EtherStatsPktsRx1024Octetsto1522Octets\n",
6291 1.1 bouyer sblk->stat_EtherStatsPktsRx1024Octetsto1522Octets);
6292 1.1 bouyer
6293 1.1 bouyer if (sblk->stat_EtherStatsPktsRx1523Octetsto9022Octets)
6294 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6295 1.1 bouyer "EtherStatsPktsRx1523Octetsto9022Octets\n",
6296 1.1 bouyer sblk->stat_EtherStatsPktsRx1523Octetsto9022Octets);
6297 1.1 bouyer
6298 1.1 bouyer if (sblk->stat_EtherStatsPktsTx64Octets)
6299 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsPktsTx64Octets\n",
6300 1.1 bouyer sblk->stat_EtherStatsPktsTx64Octets);
6301 1.1 bouyer
6302 1.1 bouyer if (sblk->stat_EtherStatsPktsTx65Octetsto127Octets)
6303 1.1 bouyer BNX_PRINTF(sc, "0x%08X : EtherStatsPktsTx65Octetsto127Octets\n",
6304 1.1 bouyer sblk->stat_EtherStatsPktsTx65Octetsto127Octets);
6305 1.1 bouyer
6306 1.1 bouyer if (sblk->stat_EtherStatsPktsTx128Octetsto255Octets)
6307 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6308 1.1 bouyer "EtherStatsPktsTx128Octetsto255Octets\n",
6309 1.1 bouyer sblk->stat_EtherStatsPktsTx128Octetsto255Octets);
6310 1.1 bouyer
6311 1.1 bouyer if (sblk->stat_EtherStatsPktsTx256Octetsto511Octets)
6312 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6313 1.1 bouyer "EtherStatsPktsTx256Octetsto511Octets\n",
6314 1.1 bouyer sblk->stat_EtherStatsPktsTx256Octetsto511Octets);
6315 1.1 bouyer
6316 1.1 bouyer if (sblk->stat_EtherStatsPktsTx512Octetsto1023Octets)
6317 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6318 1.1 bouyer "EtherStatsPktsTx512Octetsto1023Octets\n",
6319 1.1 bouyer sblk->stat_EtherStatsPktsTx512Octetsto1023Octets);
6320 1.1 bouyer
6321 1.1 bouyer if (sblk->stat_EtherStatsPktsTx1024Octetsto1522Octets)
6322 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6323 1.1 bouyer "EtherStatsPktsTx1024Octetsto1522Octets\n",
6324 1.1 bouyer sblk->stat_EtherStatsPktsTx1024Octetsto1522Octets);
6325 1.1 bouyer
6326 1.1 bouyer if (sblk->stat_EtherStatsPktsTx1523Octetsto9022Octets)
6327 1.1 bouyer BNX_PRINTF(sc, "0x%08X : "
6328 1.1 bouyer "EtherStatsPktsTx1523Octetsto9022Octets\n",
6329 1.1 bouyer sblk->stat_EtherStatsPktsTx1523Octetsto9022Octets);
6330 1.1 bouyer
6331 1.1 bouyer if (sblk->stat_XonPauseFramesReceived)
6332 1.1 bouyer BNX_PRINTF(sc, "0x%08X : XonPauseFramesReceived\n",
6333 1.1 bouyer sblk->stat_XonPauseFramesReceived);
6334 1.1 bouyer
6335 1.1 bouyer if (sblk->stat_XoffPauseFramesReceived)
6336 1.1 bouyer BNX_PRINTF(sc, "0x%08X : XoffPauseFramesReceived\n",
6337 1.1 bouyer sblk->stat_XoffPauseFramesReceived);
6338 1.1 bouyer
6339 1.1 bouyer if (sblk->stat_OutXonSent)
6340 1.1 bouyer BNX_PRINTF(sc, "0x%08X : OutXonSent\n",
6341 1.1 bouyer sblk->stat_OutXonSent);
6342 1.1 bouyer
6343 1.1 bouyer if (sblk->stat_OutXoffSent)
6344 1.1 bouyer BNX_PRINTF(sc, "0x%08X : OutXoffSent\n",
6345 1.1 bouyer sblk->stat_OutXoffSent);
6346 1.1 bouyer
6347 1.1 bouyer if (sblk->stat_FlowControlDone)
6348 1.1 bouyer BNX_PRINTF(sc, "0x%08X : FlowControlDone\n",
6349 1.1 bouyer sblk->stat_FlowControlDone);
6350 1.1 bouyer
6351 1.1 bouyer if (sblk->stat_MacControlFramesReceived)
6352 1.1 bouyer BNX_PRINTF(sc, "0x%08X : MacControlFramesReceived\n",
6353 1.1 bouyer sblk->stat_MacControlFramesReceived);
6354 1.1 bouyer
6355 1.1 bouyer if (sblk->stat_XoffStateEntered)
6356 1.1 bouyer BNX_PRINTF(sc, "0x%08X : XoffStateEntered\n",
6357 1.1 bouyer sblk->stat_XoffStateEntered);
6358 1.1 bouyer
6359 1.1 bouyer if (sblk->stat_IfInFramesL2FilterDiscards)
6360 1.1 bouyer BNX_PRINTF(sc, "0x%08X : IfInFramesL2FilterDiscards\n",
6361 1.1 bouyer sblk->stat_IfInFramesL2FilterDiscards);
6362 1.1 bouyer
6363 1.1 bouyer if (sblk->stat_IfInRuleCheckerDiscards)
6364 1.1 bouyer BNX_PRINTF(sc, "0x%08X : IfInRuleCheckerDiscards\n",
6365 1.1 bouyer sblk->stat_IfInRuleCheckerDiscards);
6366 1.1 bouyer
6367 1.1 bouyer if (sblk->stat_IfInFTQDiscards)
6368 1.1 bouyer BNX_PRINTF(sc, "0x%08X : IfInFTQDiscards\n",
6369 1.1 bouyer sblk->stat_IfInFTQDiscards);
6370 1.1 bouyer
6371 1.1 bouyer if (sblk->stat_IfInMBUFDiscards)
6372 1.1 bouyer BNX_PRINTF(sc, "0x%08X : IfInMBUFDiscards\n",
6373 1.1 bouyer sblk->stat_IfInMBUFDiscards);
6374 1.1 bouyer
6375 1.1 bouyer if (sblk->stat_IfInRuleCheckerP4Hit)
6376 1.1 bouyer BNX_PRINTF(sc, "0x%08X : IfInRuleCheckerP4Hit\n",
6377 1.1 bouyer sblk->stat_IfInRuleCheckerP4Hit);
6378 1.1 bouyer
6379 1.1 bouyer if (sblk->stat_CatchupInRuleCheckerDiscards)
6380 1.1 bouyer BNX_PRINTF(sc, "0x%08X : CatchupInRuleCheckerDiscards\n",
6381 1.1 bouyer sblk->stat_CatchupInRuleCheckerDiscards);
6382 1.1 bouyer
6383 1.1 bouyer if (sblk->stat_CatchupInFTQDiscards)
6384 1.1 bouyer BNX_PRINTF(sc, "0x%08X : CatchupInFTQDiscards\n",
6385 1.1 bouyer sblk->stat_CatchupInFTQDiscards);
6386 1.1 bouyer
6387 1.1 bouyer if (sblk->stat_CatchupInMBUFDiscards)
6388 1.1 bouyer BNX_PRINTF(sc, "0x%08X : CatchupInMBUFDiscards\n",
6389 1.1 bouyer sblk->stat_CatchupInMBUFDiscards);
6390 1.1 bouyer
6391 1.1 bouyer if (sblk->stat_CatchupInRuleCheckerP4Hit)
6392 1.1 bouyer BNX_PRINTF(sc, "0x%08X : CatchupInRuleCheckerP4Hit\n",
6393 1.1 bouyer sblk->stat_CatchupInRuleCheckerP4Hit);
6394 1.1 bouyer
6395 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
6396 1.1 bouyer "-----------------------------"
6397 1.1 bouyer "--------------"
6398 1.1 bouyer "-----------------------------\n");
6399 1.1 bouyer }
6400 1.1 bouyer
6401 1.1 bouyer void
6402 1.1 bouyer bnx_dump_driver_state(struct bnx_softc *sc)
6403 1.1 bouyer {
6404 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
6405 1.1 bouyer "-----------------------------"
6406 1.1 bouyer " Driver State "
6407 1.1 bouyer "-----------------------------\n");
6408 1.1 bouyer
6409 1.1 bouyer BNX_PRINTF(sc, "%p - (sc) driver softc structure virtual "
6410 1.1 bouyer "address\n", sc);
6411 1.1 bouyer
6412 1.1 bouyer BNX_PRINTF(sc, "%p - (sc->status_block) status block virtual address\n",
6413 1.1 bouyer sc->status_block);
6414 1.1 bouyer
6415 1.1 bouyer BNX_PRINTF(sc, "%p - (sc->stats_block) statistics block virtual "
6416 1.1 bouyer "address\n", sc->stats_block);
6417 1.1 bouyer
6418 1.1 bouyer BNX_PRINTF(sc, "%p - (sc->tx_bd_chain) tx_bd chain virtual "
6419 1.75 msaitoh "address\n", sc->tx_bd_chain);
6420 1.1 bouyer
6421 1.29 bouyer #if 0
6422 1.1 bouyer BNX_PRINTF(sc, "%p - (sc->rx_bd_chain) rx_bd chain virtual address\n",
6423 1.1 bouyer sc->rx_bd_chain);
6424 1.1 bouyer
6425 1.1 bouyer BNX_PRINTF(sc, "%p - (sc->tx_mbuf_ptr) tx mbuf chain virtual address\n",
6426 1.1 bouyer sc->tx_mbuf_ptr);
6427 1.29 bouyer #endif
6428 1.1 bouyer
6429 1.1 bouyer BNX_PRINTF(sc, "%p - (sc->rx_mbuf_ptr) rx mbuf chain virtual address\n",
6430 1.1 bouyer sc->rx_mbuf_ptr);
6431 1.1 bouyer
6432 1.1 bouyer BNX_PRINTF(sc,
6433 1.1 bouyer " 0x%08X - (sc->interrupts_generated) h/w intrs\n",
6434 1.1 bouyer sc->interrupts_generated);
6435 1.48 christos
6436 1.1 bouyer BNX_PRINTF(sc,
6437 1.1 bouyer " 0x%08X - (sc->rx_interrupts) rx interrupts handled\n",
6438 1.1 bouyer sc->rx_interrupts);
6439 1.1 bouyer
6440 1.1 bouyer BNX_PRINTF(sc,
6441 1.1 bouyer " 0x%08X - (sc->tx_interrupts) tx interrupts handled\n",
6442 1.1 bouyer sc->tx_interrupts);
6443 1.1 bouyer
6444 1.1 bouyer BNX_PRINTF(sc,
6445 1.1 bouyer " 0x%08X - (sc->last_status_idx) status block index\n",
6446 1.1 bouyer sc->last_status_idx);
6447 1.1 bouyer
6448 1.1 bouyer BNX_PRINTF(sc, " 0x%08X - (sc->tx_prod) tx producer index\n",
6449 1.1 bouyer sc->tx_prod);
6450 1.1 bouyer
6451 1.1 bouyer BNX_PRINTF(sc, " 0x%08X - (sc->tx_cons) tx consumer index\n",
6452 1.1 bouyer sc->tx_cons);
6453 1.1 bouyer
6454 1.1 bouyer BNX_PRINTF(sc,
6455 1.1 bouyer " 0x%08X - (sc->tx_prod_bseq) tx producer bseq index\n",
6456 1.1 bouyer sc->tx_prod_bseq);
6457 1.29 bouyer BNX_PRINTF(sc,
6458 1.29 bouyer " 0x%08X - (sc->tx_mbuf_alloc) tx mbufs allocated\n",
6459 1.29 bouyer sc->tx_mbuf_alloc);
6460 1.29 bouyer
6461 1.29 bouyer BNX_PRINTF(sc,
6462 1.29 bouyer " 0x%08X - (sc->used_tx_bd) used tx_bd's\n",
6463 1.29 bouyer sc->used_tx_bd);
6464 1.29 bouyer
6465 1.29 bouyer BNX_PRINTF(sc,
6466 1.29 bouyer " 0x%08X/%08X - (sc->tx_hi_watermark) tx hi watermark\n",
6467 1.29 bouyer sc->tx_hi_watermark, sc->max_tx_bd);
6468 1.29 bouyer
6469 1.1 bouyer
6470 1.1 bouyer BNX_PRINTF(sc, " 0x%08X - (sc->rx_prod) rx producer index\n",
6471 1.1 bouyer sc->rx_prod);
6472 1.1 bouyer
6473 1.1 bouyer BNX_PRINTF(sc, " 0x%08X - (sc->rx_cons) rx consumer index\n",
6474 1.1 bouyer sc->rx_cons);
6475 1.1 bouyer
6476 1.1 bouyer BNX_PRINTF(sc,
6477 1.1 bouyer " 0x%08X - (sc->rx_prod_bseq) rx producer bseq index\n",
6478 1.1 bouyer sc->rx_prod_bseq);
6479 1.1 bouyer
6480 1.1 bouyer BNX_PRINTF(sc,
6481 1.1 bouyer " 0x%08X - (sc->rx_mbuf_alloc) rx mbufs allocated\n",
6482 1.1 bouyer sc->rx_mbuf_alloc);
6483 1.1 bouyer
6484 1.1 bouyer BNX_PRINTF(sc, " 0x%08X - (sc->free_rx_bd) free rx_bd's\n",
6485 1.1 bouyer sc->free_rx_bd);
6486 1.1 bouyer
6487 1.1 bouyer BNX_PRINTF(sc,
6488 1.1 bouyer "0x%08X/%08X - (sc->rx_low_watermark) rx low watermark\n",
6489 1.29 bouyer sc->rx_low_watermark, sc->max_rx_bd);
6490 1.1 bouyer
6491 1.1 bouyer BNX_PRINTF(sc,
6492 1.29 bouyer " 0x%08X - (sc->mbuf_alloc_failed) "
6493 1.29 bouyer "mbuf alloc failures\n",
6494 1.29 bouyer sc->mbuf_alloc_failed);
6495 1.1 bouyer
6496 1.1 bouyer BNX_PRINTF(sc,
6497 1.29 bouyer " 0x%0X - (sc->mbuf_sim_allocated_failed) "
6498 1.29 bouyer "simulated mbuf alloc failures\n",
6499 1.29 bouyer sc->mbuf_sim_alloc_failed);
6500 1.1 bouyer
6501 1.29 bouyer aprint_debug_dev(sc->bnx_dev, "-------------------------------------------"
6502 1.1 bouyer "-----------------------------\n");
6503 1.1 bouyer }
6504 1.1 bouyer
6505 1.1 bouyer void
6506 1.1 bouyer bnx_dump_hw_state(struct bnx_softc *sc)
6507 1.1 bouyer {
6508 1.55 msaitoh uint32_t val1;
6509 1.1 bouyer int i;
6510 1.1 bouyer
6511 1.29 bouyer aprint_debug_dev(sc->bnx_dev,
6512 1.1 bouyer "----------------------------"
6513 1.1 bouyer " Hardware State "
6514 1.1 bouyer "----------------------------\n");
6515 1.1 bouyer
6516 1.1 bouyer BNX_PRINTF(sc, "0x%08X : bootcode version\n", sc->bnx_fw_ver);
6517 1.1 bouyer
6518 1.1 bouyer val1 = REG_RD(sc, BNX_MISC_ENABLE_STATUS_BITS);
6519 1.1 bouyer BNX_PRINTF(sc, "0x%08X : (0x%04X) misc_enable_status_bits\n",
6520 1.1 bouyer val1, BNX_MISC_ENABLE_STATUS_BITS);
6521 1.1 bouyer
6522 1.1 bouyer val1 = REG_RD(sc, BNX_DMA_STATUS);
6523 1.1 bouyer BNX_PRINTF(sc, "0x%08X : (0x%04X) dma_status\n", val1, BNX_DMA_STATUS);
6524 1.1 bouyer
6525 1.1 bouyer val1 = REG_RD(sc, BNX_CTX_STATUS);
6526 1.1 bouyer BNX_PRINTF(sc, "0x%08X : (0x%04X) ctx_status\n", val1, BNX_CTX_STATUS);
6527 1.1 bouyer
6528 1.1 bouyer val1 = REG_RD(sc, BNX_EMAC_STATUS);
6529 1.1 bouyer BNX_PRINTF(sc, "0x%08X : (0x%04X) emac_status\n", val1,
6530 1.1 bouyer BNX_EMAC_STATUS);
6531 1.1 bouyer
6532 1.1 bouyer val1 = REG_RD(sc, BNX_RPM_STATUS);
6533 1.1 bouyer BNX_PRINTF(sc, "0x%08X : (0x%04X) rpm_status\n", val1, BNX_RPM_STATUS);
6534 1.1 bouyer
6535 1.1 bouyer val1 = REG_RD(sc, BNX_TBDR_STATUS);
6536 1.1 bouyer BNX_PRINTF(sc, "0x%08X : (0x%04X) tbdr_status\n", val1,
6537 1.1 bouyer BNX_TBDR_STATUS);
6538 1.1 bouyer
6539 1.1 bouyer val1 = REG_RD(sc, BNX_TDMA_STATUS);
6540 1.1 bouyer BNX_PRINTF(sc, "0x%08X : (0x%04X) tdma_status\n", val1,
6541 1.1 bouyer BNX_TDMA_STATUS);
6542 1.1 bouyer
6543 1.1 bouyer val1 = REG_RD(sc, BNX_HC_STATUS);
6544 1.1 bouyer BNX_PRINTF(sc, "0x%08X : (0x%04X) hc_status\n", val1, BNX_HC_STATUS);
6545 1.1 bouyer
6546 1.48 christos aprint_debug_dev(sc->bnx_dev,
6547 1.1 bouyer "----------------------------"
6548 1.1 bouyer "----------------"
6549 1.1 bouyer "----------------------------\n");
6550 1.1 bouyer
6551 1.48 christos aprint_debug_dev(sc->bnx_dev,
6552 1.1 bouyer "----------------------------"
6553 1.1 bouyer " Register Dump "
6554 1.1 bouyer "----------------------------\n");
6555 1.1 bouyer
6556 1.1 bouyer for (i = 0x400; i < 0x8000; i += 0x10)
6557 1.1 bouyer BNX_PRINTF(sc, "0x%04X: 0x%08X 0x%08X 0x%08X 0x%08X\n",
6558 1.1 bouyer i, REG_RD(sc, i), REG_RD(sc, i + 0x4),
6559 1.1 bouyer REG_RD(sc, i + 0x8), REG_RD(sc, i + 0xC));
6560 1.1 bouyer
6561 1.48 christos aprint_debug_dev(sc->bnx_dev,
6562 1.1 bouyer "----------------------------"
6563 1.1 bouyer "----------------"
6564 1.1 bouyer "----------------------------\n");
6565 1.1 bouyer }
6566 1.1 bouyer
6567 1.1 bouyer void
6568 1.1 bouyer bnx_breakpoint(struct bnx_softc *sc)
6569 1.1 bouyer {
6570 1.1 bouyer /* Unreachable code to shut the compiler up about unused functions. */
6571 1.1 bouyer if (0) {
6572 1.1 bouyer bnx_dump_txbd(sc, 0, NULL);
6573 1.1 bouyer bnx_dump_rxbd(sc, 0, NULL);
6574 1.1 bouyer bnx_dump_tx_mbuf_chain(sc, 0, USABLE_TX_BD);
6575 1.29 bouyer bnx_dump_rx_mbuf_chain(sc, 0, sc->max_rx_bd);
6576 1.1 bouyer bnx_dump_l2fhdr(sc, 0, NULL);
6577 1.1 bouyer bnx_dump_tx_chain(sc, 0, USABLE_TX_BD);
6578 1.29 bouyer bnx_dump_rx_chain(sc, 0, sc->max_rx_bd);
6579 1.1 bouyer bnx_dump_status_block(sc);
6580 1.1 bouyer bnx_dump_stats_block(sc);
6581 1.1 bouyer bnx_dump_driver_state(sc);
6582 1.1 bouyer bnx_dump_hw_state(sc);
6583 1.1 bouyer }
6584 1.1 bouyer
6585 1.1 bouyer bnx_dump_driver_state(sc);
6586 1.1 bouyer /* Print the important status block fields. */
6587 1.1 bouyer bnx_dump_status_block(sc);
6588 1.1 bouyer
6589 1.1 bouyer #if 0
6590 1.1 bouyer /* Call the debugger. */
6591 1.1 bouyer breakpoint();
6592 1.1 bouyer #endif
6593 1.1 bouyer
6594 1.1 bouyer return;
6595 1.1 bouyer }
6596 1.1 bouyer #endif
6597