source: trunk/src/os2ahci/pci.c@ 153

Last change on this file since 153 was 153, checked in by David Azarewicz, 12 years ago

Makefile updates
Debug output improvements
Support for ACPI suspend/resume added

File size: 43.2 KB
Line 
1/******************************************************************************
2 * PCI.c - PCI constants and detection code for os2ahci driver
3 *
4 * Copyright (c) 2011 thi.guten Software Development
5 * Copyright (c) 2011 Mensys B.V.
6 *
7 * Authors: Christian Mueller, Markus Thielen
8 *
9 * Parts copied from/inspired by the Linux AHCI driver;
10 * those parts are (c) Linux AHCI/ATA maintainers
11 *
12 * This program is free software; you can redistribute it and/or modify
13 * it under the terms of the GNU General Public License as published by
14 * the Free Software Foundation; either version 2 of the License, or
15 * (at your option) any later version.
16 *
17 * This program is distributed in the hope that it will be useful,
18 * but WITHOUT ANY WARRANTY; without even the implied warranty of
19 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
20 * GNU General Public License for more details.
21 *
22 * You should have received a copy of the GNU General Public License
23 * along with this program; if not, write to the Free Software
24 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
25 */
26
27#include "os2ahci.h"
28
29/* -------------------------- macros and constants ------------------------- */
30
31/* offset of PCI base address register (BAR) in the PCI config space */
32#define PCI_BAR(reg) (UCHAR) (0x10 + (reg) * sizeof(u32))
33
34/******************************************************************************
35 * OEMHLP constants for PCI access
36 */
37#define GENERIC_IOCTL 0x10
38#define OH_CATEGORY 0x00
39#define OH_FUNC_PCI 0x0b
40
41/* subfunctions */
42#define OH_BIOS_INFO 0x00
43#define OH_FIND_DEVICE 0x01
44#define OH_FIND_CLASS 0x02
45#define OH_READ_CONFIG 0x03
46#define OH_WRITE_CONFIG 0x04
47
48/* return codes */
49#define OH_SUCCESS 0x00
50#define OH_NOT_SUPPORTED 0x81
51#define OH_BAD_VENDOR 0x83
52#define OH_NOT_FOUND 0x86
53#define OH_BAD_REGISTER 0x87
54
55/* ------------------------ typedefs and structures ------------------------ */
56
57/******************************************************************************
58 * OEMHLP IOCtl parameter union. The parameter area is generally used as input
59 * to the OEMHLP IOCtl calls.
60 */
61typedef union {
62
63 /* query PCI BIOS information" */
64 struct {
65 UCHAR subfunction;
66 } bios_info;
67
68 /* find PCI device */
69 struct {
70 UCHAR subfunction;
71 USHORT device;
72 USHORT vendor;
73 UCHAR index;
74 } find_device;
75
76 /* find PCI class code */
77 struct {
78 UCHAR subfunction;
79 ULONG class;
80 UCHAR index;
81 } find_class;
82
83 /* read PCI configuration space */
84 struct {
85 UCHAR subfunction;
86 UCHAR bus;
87 UCHAR dev_func;
88 UCHAR reg;
89 UCHAR size;
90 } read_config;
91
92 /* write PCI configuration space */
93 struct {
94 UCHAR subfunction;
95 UCHAR bus;
96 UCHAR dev_func;
97 UCHAR reg;
98 UCHAR size;
99 ULONG data;
100 } write_config;
101
102} OH_PARM;
103
104/******************************************************************************
105 * OEMHLP IOCtl data union. The data area is generally used as output from the
106 * OEMHLP IOCtl calls.
107 */
108typedef union {
109
110 /* query PCI BIOS information" */
111 struct {
112 UCHAR rc;
113 UCHAR hw_mech;
114 UCHAR major_version;
115 UCHAR minor_version;
116 UCHAR last_bus;
117 } bios_info;
118
119 /* find PCI device */
120 struct {
121 UCHAR rc;
122 UCHAR bus;
123 UCHAR dev_func;
124 } find_device;
125
126 /* find PCI class code */
127 struct {
128 UCHAR rc;
129 UCHAR bus;
130 UCHAR dev_func;
131 } find_class;
132
133 /* read PCI confguration space */
134 struct {
135 UCHAR rc;
136 ULONG data;
137 } read_config;
138
139 /* write PCI confguration space */
140 struct {
141 UCHAR rc;
142 } write_config;
143
144} OH_DATA;
145
146/* -------------------------- function prototypes -------------------------- */
147
148static void add_pci_device (PCI_ID *pci_id, OH_DATA _far *data);
149static int oemhlp_call (UCHAR subfunction, OH_PARM _far *parm,
150 OH_DATA _far *data);
151static long bar_resource (UCHAR bus, UCHAR dev_func,
152 RESOURCESTRUCT _far *resource, int i);
153static char *rmerr (APIRET ret);
154
155/* ------------------------ global/static variables ------------------------ */
156
157/******************************************************************************
158 * chipset/controller name strings
159 */
160static char chip_esb2[] = "ESB2";
161static char chip_ich8[] = "ICH8";
162static char chip_ich8m[] = "ICH8M";
163static char chip_ich9[] = "ICH9";
164static char chip_ich9m[] = "ICH9M";
165static char chip_ich10[] = "ICH10";
166static char chip_pchahci[] = "PCH AHCI";
167static char chip_pchraid[] = "PCH RAID";
168static char chip_tolapai[] = "Tolapai";
169static char chip_sb600[] = "SB600";
170static char chip_sb700[] = "SB700/800";
171static char chip_vt8251[] = "VT8251";
172static char chip_mcp65[] = "MCP65";
173static char chip_mcp67[] = "MCP67";
174static char chip_mcp73[] = "MCP73";
175static char chip_mcp77[] = "MCP77";
176static char chip_mcp79[] = "MCP79";
177static char chip_mcp89[] = "MCP689";
178static char chip_sis968[] = "968";
179
180static char s_generic[] = "Generic";
181
182
183
184/******************************************************************************
185 * PCI vendor and device IDs for known AHCI adapters. Copied from the Linux
186 * AHCI driver.
187 */
188
189PCI_ID pci_ids[] = {
190
191 /* Intel
192 * NOTE: ICH5 controller does NOT support AHCI, so we do
193 * not add it here! */
194 { PCI_VDEVICE(INTEL, 0x2652), board_ahci, "ICH6" }, /* ICH6 */
195 { PCI_VDEVICE(INTEL, 0x2653), board_ahci, "ICH6M" }, /* ICH6M */
196 { PCI_VDEVICE(INTEL, 0x27c1), board_ahci, "ICH7" }, /* ICH7 */
197 { PCI_VDEVICE(INTEL, 0x27c5), board_ahci, "ICH7M" }, /* ICH7M */
198 { PCI_VDEVICE(INTEL, 0x27c3), board_ahci, "ICH7R" }, /* ICH7R */
199 { PCI_VDEVICE(AL, 0x5288), board_ahci_ign_iferr, "ULiM5288" }, /* ULi M5288 */
200 { PCI_VDEVICE(INTEL, 0x2681), board_ahci, chip_esb2 }, /* ESB2 */
201 { PCI_VDEVICE(INTEL, 0x2682), board_ahci, chip_esb2 }, /* ESB2 */
202 { PCI_VDEVICE(INTEL, 0x2683), board_ahci, chip_esb2 }, /* ESB2 */
203 { PCI_VDEVICE(INTEL, 0x27c6), board_ahci, "ICH7MDH" }, /* ICH7-M DH */
204 { PCI_VDEVICE(INTEL, 0x2821), board_ahci, chip_ich8 }, /* ICH8 */
205 { PCI_VDEVICE(INTEL, 0x2822), board_ahci_nosntf, chip_ich8 }, /* ICH8 */
206 { PCI_VDEVICE(INTEL, 0x2824), board_ahci, chip_ich8 }, /* ICH8 */
207 { PCI_VDEVICE(INTEL, 0x2829), board_ahci, chip_ich8m }, /* ICH8M */
208 { PCI_VDEVICE(INTEL, 0x282a), board_ahci, chip_ich8m }, /* ICH8M */
209 { PCI_VDEVICE(INTEL, 0x2922), board_ahci, chip_ich9 }, /* ICH9 */
210 { PCI_VDEVICE(INTEL, 0x2923), board_ahci, chip_ich9 }, /* ICH9 */
211 { PCI_VDEVICE(INTEL, 0x2924), board_ahci, chip_ich9 }, /* ICH9 */
212 { PCI_VDEVICE(INTEL, 0x2925), board_ahci, chip_ich9 }, /* ICH9 */
213 { PCI_VDEVICE(INTEL, 0x2927), board_ahci, chip_ich9 }, /* ICH9 */
214 { PCI_VDEVICE(INTEL, 0x2929), board_ahci, chip_ich9m }, /* ICH9M */
215 { PCI_VDEVICE(INTEL, 0x292a), board_ahci, chip_ich9m }, /* ICH9M */
216 { PCI_VDEVICE(INTEL, 0x292b), board_ahci, chip_ich9m }, /* ICH9M */
217 { PCI_VDEVICE(INTEL, 0x292c), board_ahci, chip_ich9m }, /* ICH9M */
218 { PCI_VDEVICE(INTEL, 0x292f), board_ahci, chip_ich9m }, /* ICH9M */
219 { PCI_VDEVICE(INTEL, 0x294d), board_ahci, chip_ich9 }, /* ICH9 */
220 { PCI_VDEVICE(INTEL, 0x294e), board_ahci, chip_ich9m }, /* ICH9M */
221 { PCI_VDEVICE(INTEL, 0x502a), board_ahci, chip_tolapai }, /* Tolapai */
222 { PCI_VDEVICE(INTEL, 0x502b), board_ahci, chip_tolapai }, /* Tolapai */
223 { PCI_VDEVICE(INTEL, 0x3a05), board_ahci, chip_ich10 }, /* ICH10 */
224 { PCI_VDEVICE(INTEL, 0x3a22), board_ahci, chip_ich10 }, /* ICH10 */
225 { PCI_VDEVICE(INTEL, 0x3a25), board_ahci, chip_ich10 }, /* ICH10 */
226 { PCI_VDEVICE(INTEL, 0x3b22), board_ahci, chip_pchahci }, /* PCH AHCI */
227 { PCI_VDEVICE(INTEL, 0x3b23), board_ahci, chip_pchahci }, /* PCH AHCI */
228 { PCI_VDEVICE(INTEL, 0x3b24), board_ahci, chip_pchraid }, /* PCH RAID */
229 { PCI_VDEVICE(INTEL, 0x3b25), board_ahci, chip_pchraid }, /* PCH RAID */
230 { PCI_VDEVICE(INTEL, 0x3b29), board_ahci, chip_pchahci }, /* PCH AHCI */
231 { PCI_VDEVICE(INTEL, 0x3b2b), board_ahci, chip_pchraid }, /* PCH RAID */
232 { PCI_VDEVICE(INTEL, 0x3b2c), board_ahci, chip_pchraid }, /* PCH RAID */
233 { PCI_VDEVICE(INTEL, 0x3b2f), board_ahci, chip_pchahci }, /* PCH AHCI */
234
235 /* JMicron 360/1/3/5/6, match class to avoid IDE function */
236 { PCI_VENDOR_ID_JMICRON, PCI_ANY_ID, PCI_ANY_ID, PCI_ANY_ID,
237 PCI_CLASS_STORAGE_SATA_AHCI, 0xffffffL, board_ahci_ign_iferr, "360" },
238
239 /* ATI */
240 { PCI_VDEVICE(ATI, 0x4380), board_ahci_sb600, chip_sb600 }, /* ATI SB600 */
241 { PCI_VDEVICE(ATI, 0x4390), board_ahci_sb700, chip_sb700 }, /* ATI SB700/800 */
242 { PCI_VDEVICE(ATI, 0x4391), board_ahci_sb700, chip_sb700 }, /* ATI SB700/800 */
243 { PCI_VDEVICE(ATI, 0x4392), board_ahci_sb700, chip_sb700 }, /* ATI SB700/800 */
244 { PCI_VDEVICE(ATI, 0x4393), board_ahci_sb700, chip_sb700 }, /* ATI SB700/800 */
245 { PCI_VDEVICE(ATI, 0x4394), board_ahci_sb700, chip_sb700 }, /* ATI SB700/800 */
246 { PCI_VDEVICE(ATI, 0x4395), board_ahci_sb700, chip_sb700 }, /* ATI SB700/800 */
247
248 /* AMD */
249 { PCI_VDEVICE(AMD, 0x7800), board_ahci }, /* AMD Hudson-2 */
250 /* AMD is using RAID class only for ahci controllers */
251 { PCI_VENDOR_ID_AMD, PCI_ANY_ID, PCI_ANY_ID, PCI_ANY_ID,
252 PCI_CLASS_STORAGE_RAID << 8, 0xffffffL, board_ahci, "Hudson2" },
253
254 /* VIA */
255 { PCI_VDEVICE(VIA, 0x3349), board_ahci_vt8251, chip_vt8251 }, /* VIA VT8251 */
256 { PCI_VDEVICE(VIA, 0x6287), board_ahci_vt8251, chip_vt8251 }, /* VIA VT8251 */
257
258 /* NVIDIA */
259 { PCI_VDEVICE(NVIDIA, 0x044c), board_ahci_mcp65, chip_mcp65 }, /* MCP65 */
260 { PCI_VDEVICE(NVIDIA, 0x044d), board_ahci_mcp65, chip_mcp65 }, /* MCP65 */
261 { PCI_VDEVICE(NVIDIA, 0x044e), board_ahci_mcp65, chip_mcp65 }, /* MCP65 */
262 { PCI_VDEVICE(NVIDIA, 0x044f), board_ahci_mcp65, chip_mcp65 }, /* MCP65 */
263 { PCI_VDEVICE(NVIDIA, 0x045c), board_ahci_mcp65, chip_mcp65 }, /* MCP65 */
264 { PCI_VDEVICE(NVIDIA, 0x045d), board_ahci_mcp65, chip_mcp65 }, /* MCP65 */
265 { PCI_VDEVICE(NVIDIA, 0x045e), board_ahci_mcp65, chip_mcp65 }, /* MCP65 */
266 { PCI_VDEVICE(NVIDIA, 0x045f), board_ahci_mcp65, chip_mcp65 }, /* MCP65 */
267 { PCI_VDEVICE(NVIDIA, 0x0550), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
268 { PCI_VDEVICE(NVIDIA, 0x0551), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
269 { PCI_VDEVICE(NVIDIA, 0x0552), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
270 { PCI_VDEVICE(NVIDIA, 0x0553), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
271 { PCI_VDEVICE(NVIDIA, 0x0554), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
272 { PCI_VDEVICE(NVIDIA, 0x0555), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
273 { PCI_VDEVICE(NVIDIA, 0x0556), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
274 { PCI_VDEVICE(NVIDIA, 0x0557), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
275 { PCI_VDEVICE(NVIDIA, 0x0558), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
276 { PCI_VDEVICE(NVIDIA, 0x0559), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
277 { PCI_VDEVICE(NVIDIA, 0x055a), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
278 { PCI_VDEVICE(NVIDIA, 0x055b), board_ahci_yesncq, chip_mcp67 }, /* MCP67 */
279 { PCI_VDEVICE(NVIDIA, 0x0580), board_ahci_yesncq, chip_mcp67 }, /* Linux ID */
280 { PCI_VDEVICE(NVIDIA, 0x07f0), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
281 { PCI_VDEVICE(NVIDIA, 0x07f1), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
282 { PCI_VDEVICE(NVIDIA, 0x07f2), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
283 { PCI_VDEVICE(NVIDIA, 0x07f3), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
284 { PCI_VDEVICE(NVIDIA, 0x07f4), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
285 { PCI_VDEVICE(NVIDIA, 0x07f5), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
286 { PCI_VDEVICE(NVIDIA, 0x07f6), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
287 { PCI_VDEVICE(NVIDIA, 0x07f7), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
288 { PCI_VDEVICE(NVIDIA, 0x07f8), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
289 { PCI_VDEVICE(NVIDIA, 0x07f9), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
290 { PCI_VDEVICE(NVIDIA, 0x07fa), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
291 { PCI_VDEVICE(NVIDIA, 0x07fb), board_ahci_yesncq, chip_mcp73 }, /* MCP73 */
292 { PCI_VDEVICE(NVIDIA, 0x0ad0), board_ahci, chip_mcp77 }, /* MCP77 */
293 { PCI_VDEVICE(NVIDIA, 0x0ad1), board_ahci, chip_mcp77 }, /* MCP77 */
294 { PCI_VDEVICE(NVIDIA, 0x0ad2), board_ahci, chip_mcp77 }, /* MCP77 */
295 { PCI_VDEVICE(NVIDIA, 0x0ad3), board_ahci, chip_mcp77 }, /* MCP77 */
296 { PCI_VDEVICE(NVIDIA, 0x0ad4), board_ahci, chip_mcp77 }, /* MCP77 */
297 { PCI_VDEVICE(NVIDIA, 0x0ad5), board_ahci, chip_mcp77 }, /* MCP77 */
298 { PCI_VDEVICE(NVIDIA, 0x0ad6), board_ahci, chip_mcp77 }, /* MCP77 */
299 { PCI_VDEVICE(NVIDIA, 0x0ad7), board_ahci, chip_mcp77 }, /* MCP77 */
300 { PCI_VDEVICE(NVIDIA, 0x0ad8), board_ahci, chip_mcp77 }, /* MCP77 */
301 { PCI_VDEVICE(NVIDIA, 0x0ad9), board_ahci, chip_mcp77 }, /* MCP77 */
302 { PCI_VDEVICE(NVIDIA, 0x0ada), board_ahci, chip_mcp77 }, /* MCP77 */
303 { PCI_VDEVICE(NVIDIA, 0x0adb), board_ahci, chip_mcp77 }, /* MCP77 */
304 { PCI_VDEVICE(NVIDIA, 0x0ab4), board_ahci, chip_mcp79 }, /* MCP79 */
305 { PCI_VDEVICE(NVIDIA, 0x0ab5), board_ahci, chip_mcp79 }, /* MCP79 */
306 { PCI_VDEVICE(NVIDIA, 0x0ab6), board_ahci, chip_mcp79 }, /* MCP79 */
307 { PCI_VDEVICE(NVIDIA, 0x0ab7), board_ahci, chip_mcp79 }, /* MCP79 */
308 { PCI_VDEVICE(NVIDIA, 0x0ab8), board_ahci, chip_mcp79 }, /* MCP79 */
309 { PCI_VDEVICE(NVIDIA, 0x0ab9), board_ahci, chip_mcp79 }, /* MCP79 */
310 { PCI_VDEVICE(NVIDIA, 0x0aba), board_ahci, chip_mcp79 }, /* MCP79 */
311 { PCI_VDEVICE(NVIDIA, 0x0abb), board_ahci, chip_mcp79 }, /* MCP79 */
312 { PCI_VDEVICE(NVIDIA, 0x0abc), board_ahci, chip_mcp79 }, /* MCP79 */
313 { PCI_VDEVICE(NVIDIA, 0x0abd), board_ahci, chip_mcp79 }, /* MCP79 */
314 { PCI_VDEVICE(NVIDIA, 0x0abe), board_ahci, chip_mcp79 }, /* MCP79 */
315 { PCI_VDEVICE(NVIDIA, 0x0abf), board_ahci, chip_mcp79 }, /* MCP79 */
316 { PCI_VDEVICE(NVIDIA, 0x0d84), board_ahci, chip_mcp89 }, /* MCP89 */
317 { PCI_VDEVICE(NVIDIA, 0x0d85), board_ahci, chip_mcp89 }, /* MCP89 */
318 { PCI_VDEVICE(NVIDIA, 0x0d86), board_ahci, chip_mcp89 }, /* MCP89 */
319 { PCI_VDEVICE(NVIDIA, 0x0d87), board_ahci, chip_mcp89 }, /* MCP89 */
320 { PCI_VDEVICE(NVIDIA, 0x0d88), board_ahci, chip_mcp89 }, /* MCP89 */
321 { PCI_VDEVICE(NVIDIA, 0x0d89), board_ahci, chip_mcp89 }, /* MCP89 */
322 { PCI_VDEVICE(NVIDIA, 0x0d8a), board_ahci, chip_mcp89 }, /* MCP89 */
323 { PCI_VDEVICE(NVIDIA, 0x0d8b), board_ahci, chip_mcp89 }, /* MCP89 */
324 { PCI_VDEVICE(NVIDIA, 0x0d8c), board_ahci, chip_mcp89 }, /* MCP89 */
325 { PCI_VDEVICE(NVIDIA, 0x0d8d), board_ahci, chip_mcp89 }, /* MCP89 */
326 { PCI_VDEVICE(NVIDIA, 0x0d8e), board_ahci, chip_mcp89 }, /* MCP89 */
327 { PCI_VDEVICE(NVIDIA, 0x0d8f), board_ahci, chip_mcp89 }, /* MCP89 */
328
329 /* SiS */
330 { PCI_VDEVICE(SI, 0x1184), board_ahci, "966" }, /* SiS 966 */
331 { PCI_VDEVICE(SI, 0x1185), board_ahci, chip_sis968 }, /* SiS 968 */
332 { PCI_VDEVICE(SI, 0x0186), board_ahci, chip_sis968 }, /* SiS 968 */
333
334 /* Marvell */
335 { PCI_VDEVICE(MARVELL, 0x6145), board_ahci_mv, "6145" }, /* 6145 */
336 { PCI_VDEVICE(MARVELL, 0x6121), board_ahci_mv, "6121" }, /* 6121 */
337
338 /* Promise */
339 { PCI_VDEVICE(PROMISE, 0x3f20), board_ahci, "PDC42819" }, /* PDC42819 */
340
341 /* Generic, PCI class code for AHCI */
342 { PCI_ANY_ID, PCI_ANY_ID, PCI_ANY_ID, PCI_ANY_ID,
343 PCI_CLASS_STORAGE_SATA_AHCI, 0xffffffL, board_ahci, s_generic },
344
345 /* end of list, including a few slots to define custom adapters (10) */
346 { 0, 0, 0, 0, 0, 0, 0, NULL },
347 { 0, 0, 0, 0, 0, 0, 0, NULL },
348 { 0, 0, 0, 0, 0, 0, 0, NULL },
349 { 0, 0, 0, 0, 0, 0, 0, NULL },
350 { 0, 0, 0, 0, 0, 0, 0, NULL },
351 { 0, 0, 0, 0, 0, 0, 0, NULL },
352 { 0, 0, 0, 0, 0, 0, 0, NULL },
353 { 0, 0, 0, 0, 0, 0, 0, NULL },
354 { 0, 0, 0, 0, 0, 0, 0, NULL },
355 { 0, 0, 0, 0, 0, 0, 0, NULL },
356
357 { 0, 0, 0, 0, 0, 0, 0, NULL }
358};
359
360/******************************************************************************
361 * OEMHLP$ is used by OS/2 to provide access to OEM-specific machine resources
362 * like PCI BIOS access. We're using this to enumerate the PCI bus. Due to
363 * BIOS bugs, it may be necessary to use I/O operations for this purpose but
364 * so far I think this is only relevant for rather old PCs and SATA is not
365 * expected to be a priority on those machines.
366 */
367static IDCTABLE oemhlp; /* OEMHLP$ IDC entry point */
368
369/* ----------------------------- start of code ----------------------------- */
370
371/******************************************************************************
372 * Add specified PCI vendor and device ID to the list of supported AHCI
373 * controllers. Please note that the last slot in pci_ids needs to remain
374 * empty because it's used as end marker.
375 */
376int add_pci_id(u16 vendor, u16 device)
377{
378 int max_slot = sizeof(pci_ids) / sizeof(*pci_ids) - 2;
379 int i;
380
381 /* search for last used slot in 'pci_ids' */
382 for (i = max_slot; i >= 0 && pci_ids[i].vendor == 0; i--);
383 if (i >= max_slot) {
384 /* all slots in use */
385 return(-1);
386 }
387
388 /* use slot after the last used slot */
389 i++;
390 pci_ids[i].vendor = vendor;
391 pci_ids[i].device = device;
392 pci_ids[i].board = board_ahci;
393 pci_ids[i].chipname = s_generic;
394 return(0);
395}
396
397/******************************************************************************
398 * Scan PCI bus using OEMHLP$ IOCTLs and build adapter list.
399 */
400void scan_pci_bus(void)
401{
402 OH_PARM parm;
403 OH_DATA data;
404 UCHAR index;
405 UCHAR rc;
406 int ad_indx = 0;
407 int i;
408 int n;
409
410 ddprintf("scanning PCI bus...\n");
411
412 /* verify that we have a PCI system */
413 memset(&parm, 0x00, sizeof(parm));
414 if (oemhlp_call(OH_BIOS_INFO, &parm, &data) != OH_SUCCESS) {
415 cprintf("%s: couldn't get PCI BIOS information\n", drv_name);
416 return;
417 }
418
419 /* Go through the list of PCI IDs and search for each device
420 *
421 * NOTES:
422 *
423 * - When searching via class code, the OEMHLP$ interface doesn't allow
424 * setting a bitmask to look for individual portions of class code,
425 * subclass code and programming interface. However, all bitmasks in the
426 * PCI list currently use 0xffffff, thus this should not be a problem at
427 * this point in time.
428 *
429 * - Scanning via OEMHLP$ seems rather slow, at least in the virtual
430 * machine I'm currenly using to test this driver. Thus, class code
431 * scans are preferred unless the option "-t" (thorough_scan) has been
432 * specified. The assumption is that most, if not all, modern AHCI
433 * adapters have the correct class code (PCI_CLASS_STORAGE_SATA_AHCI).
434 */
435 for (i = 0; pci_ids[i].vendor != 0; i++) {
436 index = 0;
437 do {
438 if (pci_ids[i].device == PCI_ANY_ID || pci_ids[i].vendor == PCI_ANY_ID) {
439 /* look for class code */
440 memset(&parm, 0x00, sizeof(parm));
441 parm.find_class.class = pci_ids[i].class;
442 parm.find_class.index = index;
443 rc = oemhlp_call(OH_FIND_CLASS, &parm, &data);
444
445 } else if (thorough_scan) {
446 /* look for this specific vendor and device ID */
447 memset(&parm, 0x00, sizeof(parm));
448 parm.find_device.device = pci_ids[i].device;
449 parm.find_device.vendor = pci_ids[i].vendor;
450 parm.find_device.index = index;
451 rc = oemhlp_call(OH_FIND_DEVICE, &parm, &data);
452
453 } else {
454 rc = OH_NOT_FOUND;
455 }
456
457 if (rc == OH_SUCCESS) {
458 /* found a device */
459 int already_found = 0;
460
461 /* increment index for next loop */
462 if (++index > 180) {
463 /* something's wrong here... */
464 return;
465 }
466
467 /* check whether we already found this device */
468 for (n = 0; n < ad_info_cnt; n++) {
469 if (ad_infos[n].bus == data.find_device.bus &&
470 ad_infos[n].dev_func == data.find_device.dev_func) {
471 /* this device has already been found (e.g. via thorough scan) */
472 already_found = 1;
473 break;
474 }
475 }
476
477 if (already_found || (ad_ignore & (1U << ad_indx++))) {
478 /* ignore this device; it has either already been found via a
479 * thorough scan or has been specified to be ignored via command
480 * line option */
481 continue;
482 }
483
484 /* add this PCI device to ad_infos[] */
485 add_pci_device(pci_ids + i, &data);
486 }
487
488 } while (rc == OH_SUCCESS);
489 }
490}
491
492/******************************************************************************
493 * Enable interrupt generation. PCI 2.3 added a bit which allows disabling
494 * interrupt generation for a device. This function clears the corresponding
495 * bit in the configuration space command register.
496 */
497int pci_enable_int(UCHAR bus, UCHAR dev_func)
498{
499 ULONG tmp;
500
501 if (pci_read_conf (bus, dev_func, 4, sizeof(u32), &tmp) != OH_SUCCESS ||
502 pci_write_conf(bus, dev_func, 4, sizeof(u32), tmp & ~(1UL << 10)) != OH_SUCCESS) {
503 return(-1);
504 }
505 return(0);
506}
507
508/******************************************************************************
509 * Hack to set up proper IRQ mappings in the emulated PIIX3 ISA bridge in
510 * VirtualBox (for some reason, the first mapped IRQ is 0x80 without this
511 * hack).
512 */
513void pci_hack_virtualbox(void)
514{
515 ULONG irq = 0;
516
517 if (pci_read_conf(0, 0x08, 0x60, 1, &irq) == OH_SUCCESS && irq == 0x80) {
518 /* set IRQ for first device/func to 11 */
519 dprintf("hacking virtualbox PIIX3 PCI to ISA bridge IRQ mapping\n");
520 irq = ad_infos[0].irq;
521 pci_write_conf(0, 0x08, 0x60, 1, irq);
522 }
523}
524
525/******************************************************************************
526 * Add a single PCI device to the list of adapters.
527 */
528static void add_pci_device(PCI_ID *pci_id, OH_DATA _far *data)
529{
530 char rc_list_buf[sizeof(AHRESOURCE) + sizeof(HRESOURCE) * 15];
531 AHRESOURCE _far *rc_list = (AHRESOURCE _far *) rc_list_buf;
532 RESOURCESTRUCT resource;
533 ADAPTERSTRUCT adapter;
534 ADJUNCT adj;
535 AD_INFO *ad_info;
536 APIRET ret;
537 UCHAR bus = data->find_class.bus;
538 UCHAR dev_func = data->find_class.dev_func;
539 ULONG val;
540 SEL gdt[PORT_DMA_BUF_SEGS + 1];
541 char tmp[40];
542 u16 device;
543 u16 vendor;
544 u32 class;
545 int irq;
546 int pin;
547 int i;
548
549 /*****************************************************************************
550 * Part 1: Get further information about the device to be added; PCI ID...
551 */
552 if (pci_read_conf(bus, dev_func, 0x00, sizeof(ULONG), &val) != OH_SUCCESS) {
553 return;
554 }
555 device = (u16) (val >> 16);
556 vendor = (u16) (val & 0xffff);
557
558 /* ... and class code */
559 if (pci_read_conf(bus, dev_func, 0x08, sizeof(ULONG), &val) != OH_SUCCESS) {
560 return;
561 }
562 class = (u32) (val >> 8);
563
564 if (pci_id->device == PCI_ANY_ID) {
565 /* We found this device in a wildcard search. There are two possible
566 * reasons which require a different handling:
567 *
568 * 1) This device uses a non-standard PCI class and has been identified
569 * with the corresponding class in pci_ids[] (e.g. the entry
570 * PCI_VENDOR_ID_JMICRON), but there is a vendor ID in pci_ids[]. In
571 * this case, we need to verify that the vendor is correct (see
572 * comments regarding OEMHLP limitations in 'scan_pci_bus()')
573 *
574 * 2) This device was identified using a generic PCI class for AHCI
575 * adapters such as PCI_CLASS_STORAGE_SATA_AHCI and we need to map
576 * the device and vendor ID to the corresponding index in pci_ids[]
577 * if there is such an entry; the index passed to this function will
578 * be the generic class-based index which is fine as long as there's
579 * not special treatment required as indicated by the board_*
580 * constants in pci_ids[]...
581 *
582 * The main reason for this kludge is that it seems as if OEMHLP$
583 * is rather slow searching for PCI devices, adding around 30s
584 * to the boot time when scanning for individual AHCI PCI IDs. Thus,
585 * the OS2AHCI driver avoids this kind of scan in favor of a class-
586 * based scan (unless overridden with the "/T" option).
587 */
588 if (pci_id->vendor != PCI_ANY_ID) {
589 /* case 1: the vendor is known but we found the PCI device using a class
590 * search; verify vendor matches the one in pci_ids[]
591 */
592 if (pci_id->vendor != vendor) {
593 /* vendor doesn't match */
594 return;
595 }
596
597 } else {
598 /* case 2: we found this device using a generic class search; if the
599 * device/vendor is listed in pci_ids[], use this entry in favor of the
600 * one passed in 'pci_id'
601 */
602 for (i = 0; pci_ids[i].vendor != 0; i++) {
603 if (pci_ids[i].device == device && pci_ids[i].vendor == vendor) {
604 pci_id = pci_ids + i;
605 break;
606 }
607 }
608 }
609 }
610
611 /* found a supported AHCI device */
612 ciiprintf("found AHCI device: %s %s (%04x:%04x) class:0x%06lx bus:%d devfunc:0x%02x\n",
613 vendor_from_id(vendor), device_from_id(device),
614 vendor, device,
615 class, bus, dev_func);
616
617 /* make sure we got room in the adapter information array */
618 if (ad_info_cnt >= MAX_AD - 1) {
619 cprintf("%s: too many AHCI devices\n", drv_name);
620 return;
621 }
622
623 /****************************************************************************
624 * Part 2: Determine resource requirements and allocate resources with the
625 * OS/2 resource manager. While doing so, some of the entries of the
626 * corresponding slot in the AD_INFO array, namely resource manager
627 * handles, are initialized so we need prepare the slot.
628 *
629 * NOTE: While registering resources with the resource manager, each new
630 * resource is added to the corresponding rc_list.hResource[] slot.
631 * rc_list is used further down to associate resources to adapters
632 * when the adapter itself is registered with the OS/2 resource
633 * manager.
634 */
635 ad_info = ad_infos + ad_info_cnt;
636 memset(ad_info, 0x00, sizeof(*ad_info));
637 rc_list->NumResource = 0;
638
639 /* Register IRQ with resource manager
640 *
641 * NOTE: We rely on the IRQ number saved in the PCI config space by the PCI
642 * BIOS. There's no reliable way to find out the IRQ number in any
643 * other way unless we start using message-driven interrupts (which
644 * is out of scope for the time being).
645 */
646 if (pci_read_conf(bus, dev_func, 0x3c, sizeof(u32), &val) != OH_SUCCESS) {
647 return;
648 }
649 irq = (int) (val & 0xff);
650 pin = (int) ((val >> 8) & 0xff);
651
652 memset(&resource, 0x00, sizeof(resource));
653 resource.ResourceType = RS_TYPE_IRQ;
654 resource.IRQResource.IRQLevel = irq;
655 resource.IRQResource.PCIIrqPin = pin;
656 resource.IRQResource.IRQFlags = RS_IRQ_SHARED;
657
658 ret = RMAllocResource(rm_drvh, &ad_info->rm_irq, &resource);
659 if (ret != RMRC_SUCCESS) {
660 cprintf("%s: couldn't register IRQ %d (rc = %s)\n", drv_name, irq, rmerr(ret));
661 return;
662 }
663 rc_list->hResource[rc_list->NumResource++] = ad_info->rm_irq;
664
665 /* Allocate all I/O and MMIO addresses offered by this device. In theory,
666 * we need only BAR #5, the AHCI MMIO BAR, but in order to prevent any
667 * other driver from hijacking our device and accessing it via legacy
668 * registers we'll reserve anything we can find.
669 */
670 for (i = 0; i < sizeof(ad_info->rm_bars) / sizeof(*ad_info->rm_bars); i++) {
671 long len = bar_resource(bus, dev_func, &resource, i);
672
673 if (len < 0) {
674 /* something went wrong */
675 goto add_pci_fail;
676 }
677 if (len == 0) {
678 /* this BAR is unused */
679 continue;
680 }
681
682 if (i == AHCI_PCI_BAR) {
683 if (resource.ResourceType != RS_TYPE_MEM) {
684 cprintf("%s: BAR #5 must be an MMIO region\n", drv_name);
685 goto add_pci_fail;
686 }
687 /* save this BAR's address as MMIO address */
688 ad_info->mmio_phys = resource.MEMResource.MemBase;
689 ad_info->mmio_size = resource.MEMResource.MemSize;
690 }
691
692 /* register [MM]IO region with resource manager */
693 ret = RMAllocResource(rm_drvh, ad_info->rm_bars + i, &resource);
694 if (ret != RMRC_SUCCESS) {
695 cprintf("%s: couldn't register [MM]IO region (rc = %s)\n",
696 drv_name, rmerr(ret));
697 goto add_pci_fail;
698 }
699 rc_list->hResource[rc_list->NumResource++] = ad_info->rm_bars[i];
700 }
701
702 if (ad_info->mmio_phys == 0) {
703 cprintf("%s: couldn't determine MMIO base address\n", drv_name);
704 goto add_pci_fail;
705 }
706
707 /****************************************************************************
708 * Part 3: Fill in the remaining fields in the AD_INFO slot and allocate
709 * memory and GDT selectors for the adapter. Finally, register the adapter
710 * itself with the OS/2 resource manager
711 */
712 ad_info->pci = pci_ids + i;
713 ad_info->bus = bus;
714 ad_info->dev_func = dev_func;
715 ad_info->irq = irq;
716
717 /* allocate memory for port-specific DMA scratch buffers */
718 if (DevHelp_AllocPhys((long) AHCI_PORT_PRIV_DMA_SZ * AHCI_MAX_PORTS,
719 MEMTYPE_ABOVE_1M, &ad_info->dma_buf_phys) != 0) {
720 cprintf("%s: couldn't allocate DMA scratch buffers for AHCI ports\n", drv_name);
721 ad_info->dma_buf_phys = 0;
722 goto add_pci_fail;
723 }
724
725 /* allocate GDT selectors for memory-mapped I/O and DMA scratch buffers */
726 if (DevHelp_AllocGDTSelector(gdt, PORT_DMA_BUF_SEGS + 1) != 0) {
727 cprintf("%s: couldn't allocate GDT selectors\n", drv_name);
728 memset(gdt, 0x00, sizeof(gdt));
729 goto add_pci_fail;
730 }
731
732 /* map MMIO address to first GDT selector */
733 if (DevHelp_PhysToGDTSelector(ad_info->mmio_phys,
734 (USHORT) ad_info->mmio_size, gdt[0]) != 0) {
735 cprintf("%s: couldn't map MMIO address to GDT selector\n", drv_name);
736 goto add_pci_fail;
737 }
738
739 /* map DMA scratch buffers to remaining GDT selectors */
740 for (i = 0; i < PORT_DMA_BUF_SEGS; i++) {
741 ULONG addr = ad_info->dma_buf_phys + i * PORT_DMA_SEG_SIZE;
742 USHORT len = AHCI_PORT_PRIV_DMA_SZ * PORT_DMA_BUFS_PER_SEG;
743
744 if (DevHelp_PhysToGDTSelector(addr, len, gdt[i+1]) != 0) {
745 cprintf("%s: couldn't map DMA scratch buffer to GDT selector\n", drv_name);
746 goto add_pci_fail;
747 }
748 }
749
750 /* fill in MMIO and DMA scratch buffer addresses in adapter info */
751 ad_info->mmio = (u8 _far *) ((u32) gdt[0] << 16);
752 for (i = 0; i < PORT_DMA_BUF_SEGS; i++) {
753 ad_info->dma_buf[i] = (u8 _far *) ((u32) gdt[i+1] << 16);
754 }
755
756 /* register adapter with resource manager */
757 memset(&adj, 0x00, sizeof(adj));
758 adj.pNextAdj = NULL;
759 adj.AdjLength = sizeof(adj);
760 adj.AdjType = ADJ_ADAPTER_NUMBER;
761 adj.Adapter_Number = ad_info_cnt;
762
763 memset(&adapter, 0x00, sizeof(adapter));
764 sprintf(tmp, "AHCI_%d Controller", ad_info_cnt);
765 adapter.AdaptDescriptName = tmp;
766 adapter.AdaptFlags = 0;
767 adapter.BaseType = AS_BASE_MSD;
768 adapter.SubType = AS_SUB_IDE;
769 adapter.InterfaceType = AS_INTF_GENERIC;
770 adapter.HostBusType = AS_HOSTBUS_PCI;
771 adapter.HostBusWidth = AS_BUSWIDTH_32BIT;
772 adapter.pAdjunctList = &adj;
773
774 ret = RMCreateAdapter(rm_drvh, &ad_info->rm_adh, &adapter, NULL, rc_list);
775 if (ret != RMRC_SUCCESS) {
776 cprintf("%s: couldn't register adapter (rc = %s)\n", drv_name, rmerr(ret));
777 goto add_pci_fail;
778 }
779
780 /* Successfully added the adapter and reserved its resources; the adapter
781 * is still under BIOS control so we're not going to do anything else at
782 * this point.
783 */
784 ad_info_cnt++;
785 return;
786
787add_pci_fail:
788 /* something went wrong; try to clean up as far as possible */
789 for (i = 0; i < sizeof(ad_info->rm_bars) / sizeof(*ad_info->rm_bars); i++) {
790 if (ad_info->rm_bars[i] != 0) {
791 RMDeallocResource(rm_drvh, ad_info->rm_bars[i]);
792 }
793 }
794 if (ad_info->rm_irq != 0) {
795 RMDeallocResource(rm_drvh, ad_info->rm_irq);
796 }
797 for (i = 0; i < sizeof(gdt) / sizeof(*gdt); i++) {
798 if (gdt[i] != 0) {
799 DevHelp_FreeGDTSelector(gdt[i]);
800 }
801 }
802 if (ad_info->dma_buf_phys != 0) {
803 DevHelp_FreePhys(ad_info->dma_buf_phys);
804 }
805}
806
807/******************************************************************************
808 * Read PCI configuration space register
809 */
810UCHAR pci_read_conf(UCHAR bus, UCHAR dev_func, UCHAR indx, UCHAR size,
811 ULONG _far *val)
812{
813 OH_PARM parm;
814 OH_DATA data;
815 UCHAR rc;
816
817 memset(&parm, 0x00, sizeof(parm));
818 parm.read_config.bus = bus;
819 parm.read_config.dev_func = dev_func;
820 parm.read_config.reg = indx;
821 parm.read_config.size = size;
822 if ((rc = oemhlp_call(OH_READ_CONFIG, &parm, &data) != OH_SUCCESS)) {
823 cprintf("%s: couldn't read config space (bus = %d, dev_func = 0x%02x, indx = 0x%02x, rc = %d)\n",
824 drv_name, bus, dev_func, indx, rc);
825 return(rc);
826 }
827
828 *val = data.read_config.data;
829 return(OH_SUCCESS);
830}
831
832/******************************************************************************
833 * Write PCI configuration space register
834 */
835UCHAR pci_write_conf(UCHAR bus, UCHAR dev_func, UCHAR indx, UCHAR size,
836 ULONG val)
837{
838 OH_PARM parm;
839 OH_DATA data;
840 UCHAR rc;
841
842 memset(&parm, 0x00, sizeof(parm));
843 parm.write_config.bus = bus;
844 parm.write_config.dev_func = dev_func;
845 parm.write_config.reg = indx;
846 parm.write_config.size = size;
847 parm.write_config.data = val;
848
849 if ((rc = oemhlp_call(OH_WRITE_CONFIG, &parm, &data) != OH_SUCCESS)) {
850 cprintf("%s: couldn't write config space (bus = %d, dev_func = 0x%02x, indx = 0x%02x, rc = %d)\n",
851 drv_name, bus, dev_func, indx, rc);
852 return(rc);
853 }
854
855 return(OH_SUCCESS);
856}
857/******************************************************************************
858 * Call OEMHLP$ IDC entry point with the specified IOCtl parameter and data
859 * packets.
860 */
861static int oemhlp_call(UCHAR subfunction, OH_PARM _far *parm,
862 OH_DATA _far *data)
863{
864 void (_far *func)(void);
865 RP_GENIOCTL ioctl;
866 unsigned short prot_idc_ds;
867
868 if (oemhlp.ProtIDCEntry == NULL || oemhlp.ProtIDC_DS == 0) {
869 /* attach to OEMHLP$ device driver */
870 if (DevHelp_AttachDD("OEMHLP$ ", (NPBYTE) &oemhlp) ||
871 oemhlp.ProtIDCEntry == NULL ||
872 oemhlp.ProtIDC_DS == 0) {
873 cprintf("%s: couldn't attach to OEMHLP$\n", drv_name);
874 return(OH_NOT_SUPPORTED);
875 }
876 }
877
878 /* store subfuntion in first byte of pararameter packet */
879 parm->bios_info.subfunction = subfunction;
880 memset(data, 0x00, sizeof(*data));
881
882 /* assemble IOCtl request */
883 memset(&ioctl, 0x00, sizeof(ioctl));
884 ioctl.rph.Len = sizeof(ioctl);
885 ioctl.rph.Unit = 0;
886 ioctl.rph.Cmd = GENERIC_IOCTL;
887 ioctl.rph.Status = 0;
888
889 ioctl.Category = OH_CATEGORY;
890 ioctl.Function = OH_FUNC_PCI;
891 ioctl.ParmPacket = (PUCHAR) parm;
892 ioctl.DataPacket = (PUCHAR) data;
893 ioctl.ParmLen = sizeof(*parm);
894 ioctl.DataLen = sizeof(*data);
895
896 /* Call OEMHLP's IDC routine. Before doing so, we need to assign the address
897 * to be called to a stack variable because the inter-device driver calling
898 * convention forces us to set DS to the device driver's data segment and ES
899 * to the segment of the request packet.
900 */
901 func = oemhlp.ProtIDCEntry;
902
903 /* The WATCOM compiler does not support struct references in inline
904 * assembler code, so we pass it in a stack variable
905 */
906 prot_idc_ds = oemhlp.ProtIDC_DS;
907
908 _asm {
909 push ds;
910 push es;
911 push bx;
912 push si;
913 push di;
914
915 push ss
916 pop es
917 lea bx, ioctl;
918 mov ds, prot_idc_ds;
919 call dword ptr [func];
920
921 pop di;
922 pop si;
923 pop bx;
924 pop es;
925 pop ds;
926 }
927
928 dddphex(parm, sizeof(*parm), "oemhlp_parm: ");
929 dddphex(data, sizeof(*data), "oemhlp_data: ");
930
931 if (ioctl.rph.Status & STERR) {
932 return(OH_NOT_SUPPORTED);
933 }
934 return(data->bios_info.rc);
935}
936
937/******************************************************************************
938 * Prepare a resource structure for a PCI Base Address Register (BAR). This
939 * basically means the type, address and range of the I/O address space. It
940 * returns the length of the address range as a signed long to allow the caller
941 * to differentiate between error conditions (< 0), unused BARs (0) or valid
942 * bars (> 0).
943 *
944 * NOTE: In order to do this, we need to temporarily write 0xffffffff to
945 * the MMIO base address register (BAR), read back the resulting value
946 * and check the 0 bits from the right end, masking the lower 2 (I/O) or
947 * 4 (MMIO) bits. After doing this, we must restore the original value
948 * set up by the BIOS.
949 *
950 * 31 4 3 2 1 0
951 * -------------------------------------------------------------------
952 * base address P T T I
953 * P = prefetchable
954 * T = type (0 = any 32 bit, 1 = <1M, 2 = 64 bit)
955 * I = I/O (1) or memory (0)
956 */
957static long bar_resource(UCHAR bus, UCHAR dev_func,
958 RESOURCESTRUCT _far *resource, int i)
959{
960 u32 bar_addr = 0;
961 u32 bar_size = 0;
962
963 /* temporarily write 1s to this BAR to determine the address range */
964 if (pci_read_conf (bus, dev_func, PCI_BAR(i), sizeof(u32), &bar_addr) != OH_SUCCESS ||
965 pci_write_conf(bus, dev_func, PCI_BAR(i), sizeof(u32), ~(0UL)) != OH_SUCCESS ||
966 pci_read_conf (bus, dev_func, PCI_BAR(i), sizeof(u32), &bar_size) != OH_SUCCESS ||
967 pci_write_conf(bus, dev_func, PCI_BAR(i), sizeof(u32), bar_addr) != OH_SUCCESS) {
968
969 cprintf("%s: couldn't determine [MM]IO size\n", drv_name);
970 if (bar_addr != 0) {
971 pci_write_conf(bus, dev_func, PCI_BAR(i), sizeof(u32), bar_addr);
972 }
973 return(-1);
974 }
975
976 if (bar_size == 0 || bar_size == 0xffffffffUL) {
977 /* bar not implemented or device not working properly */
978 return(0);
979 }
980
981 /* prepare resource allocation structure */
982 memset(resource, 0x00, sizeof(*resource));
983 if (bar_addr & 1) {
984 bar_size = ~(bar_size & 0xfffffffcUL) + 1;
985 bar_size &= 0xffffUL; /* I/O address space is 16 bits on x86 */
986 bar_addr &= 0xfffcUL;
987
988 resource->ResourceType = RS_TYPE_IO;
989 resource->IOResource.BaseIOPort = bar_addr;
990 resource->IOResource.NumIOPorts = bar_size;
991 resource->IOResource.IOFlags = RS_IO_EXCLUSIVE;
992 resource->IOResource.IOAddressLines = 16;
993
994 } else {
995 bar_size = ~(bar_size & 0xfffffff0UL) + 1;
996 bar_addr &= 0xfffffff0UL;
997
998 resource->ResourceType = RS_TYPE_MEM;
999 resource->MEMResource.MemBase = bar_addr;
1000 resource->MEMResource.MemSize = bar_size;
1001 resource->MEMResource.MemFlags = RS_MEM_EXCLUSIVE;
1002 }
1003
1004 ddprintf("BAR #%d: type = %s, addr = 0x%08lx, size = %ld\n", i,
1005 (resource->ResourceType == RS_TYPE_IO) ? "I/O" : "MEM",
1006 bar_addr, bar_size);
1007
1008 return((long) bar_size);
1009}
1010
1011/******************************************************************************
1012 * return vendor name for PCI vendor ID
1013 */
1014char *vendor_from_id(u16 id)
1015{
1016
1017 switch(id) {
1018
1019 case PCI_VENDOR_ID_AL:
1020 return "Ali";
1021 case PCI_VENDOR_ID_AMD:
1022 case PCI_VENDOR_ID_ATI:
1023 return "AMD";
1024 case PCI_VENDOR_ID_AT:
1025 return "Allied Telesyn";
1026 case PCI_VENDOR_ID_ATT:
1027 return "ATT";
1028 case PCI_VENDOR_ID_CMD:
1029 return "CMD";
1030 case PCI_VENDOR_ID_CT:
1031 return "CT";
1032 case PCI_VENDOR_ID_INTEL:
1033 return "Intel";
1034 case PCI_VENDOR_ID_INITIO:
1035 return "Initio";
1036 case PCI_VENDOR_ID_JMICRON:
1037 return "JMicron";
1038 case PCI_VENDOR_ID_MARVELL:
1039 return "Marvell";
1040 case PCI_VENDOR_ID_NVIDIA:
1041 return "NVIDIA";
1042 case PCI_VENDOR_ID_PROMISE:
1043 return "PROMISE";
1044 case PCI_VENDOR_ID_SI:
1045 return "SiS";
1046 case PCI_VENDOR_ID_VIA:
1047 return "VIA";
1048 default:
1049 break;
1050 }
1051
1052 return "Generic";
1053
1054}
1055
1056/******************************************************************************
1057 * return a device name for a PCI device id
1058 * NOTE: this is as simple as can be, so don't call it twice in one statement.
1059 */
1060char *device_from_id(u16 device)
1061{
1062 int i;
1063
1064 for (i = 0; pci_ids[i].vendor != 0; i++) {
1065
1066 if (pci_ids[i].device == device) {
1067 return pci_ids[i].chipname;
1068 }
1069
1070 }
1071
1072 return s_generic;
1073}
1074
1075/******************************************************************************
1076 * Return textual version of a resource manager error
1077 */
1078static char *rmerr(APIRET ret)
1079{
1080 switch (ret) {
1081 case RMRC_SUCCESS:
1082 return("RMRC_SUCCESS");
1083 case RMRC_NOTINITIALIZED:
1084 return("RMRC_NOTINITIALIZED");
1085 case RMRC_BAD_DRIVERHANDLE:
1086 return("RMRC_BAD_DRIVERHANDLE");
1087 case RMRC_BAD_ADAPTERHANDLE:
1088 return("RMRC_BAD_ADAPTERHANDLE");
1089 case RMRC_BAD_DEVICEHANDLE:
1090 return("RMRC_BAD_DEVICEHANDLE");
1091 case RMRC_BAD_RESOURCEHANDLE:
1092 return("RMRC_BAD_RESOURCEHANDLE");
1093 case RMRC_BAD_LDEVHANDLE:
1094 return("RMRC_BAD_LDEVHANDLE");
1095 case RMRC_BAD_SYSNAMEHANDLE:
1096 return("RMRC_BAD_SYSNAMEHANDLE");
1097 case RMRC_BAD_DEVHELP:
1098 return("RMRC_BAD_DEVHELP");
1099 case RMRC_NULL_POINTER:
1100 return("RMRC_NULL_POINTER");
1101 case RMRC_NULL_STRINGS:
1102 return("RMRC_NULL_STRINGS");
1103 case RMRC_BAD_VERSION:
1104 return("RMRC_BAD_VERSION");
1105 case RMRC_RES_ALREADY_CLAIMED:
1106 return("RMRC_RES_ALREADY_CLAIMED");
1107 case RMRC_DEV_ALREADY_CLAIMED:
1108 return("RMRC_DEV_ALREADY_CLAIMED");
1109 case RMRC_INVALID_PARM_VALUE:
1110 return("RMRC_INVALID_PARM_VALUE");
1111 case RMRC_OUT_OF_MEMORY:
1112 return("RMRC_OUT_OF_MEMORY");
1113 case RMRC_SEARCH_FAILED:
1114 return("RMRC_SEARCH_FAILED");
1115 case RMRC_BUFFER_TOO_SMALL:
1116 return("RMRC_BUFFER_TOO_SMALL");
1117 case RMRC_GENERAL_FAILURE:
1118 return("RMRC_GENERAL_FAILURE");
1119 case RMRC_IRQ_ENTRY_ILLEGAL:
1120 return("RMRC_IRQ_ENTRY_ILLEGAL");
1121 case RMRC_NOT_IMPLEMENTED:
1122 return("RMRC_NOT_IMPLEMENTED");
1123 case RMRC_NOT_INSTALLED:
1124 return("RMRC_NOT_INSTALLED");
1125 case RMRC_BAD_DETECTHANDLE:
1126 return("RMRC_BAD_DETECTHANDLE");
1127 case RMRC_BAD_RMHANDLE:
1128 return("RMRC_BAD_RMHANDLE");
1129 case RMRC_BAD_FLAGS:
1130 return("RMRC_BAD_FLAGS");
1131 case RMRC_NO_DETECTED_DATA:
1132 return("RMRC_NO_DETECTED_DATA");
1133 default:
1134 return("RMRC_UNKOWN");
1135 }
1136}
Note: See TracBrowser for help on using the repository browser.