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Linus Torvalds1da177e2005-04-16 15:20:36 -07001#ifndef _ASM_IA64_SN_SN_SAL_H
2#define _ASM_IA64_SN_SN_SAL_H
3
4/*
5 * System Abstraction Layer definitions for IA64
6 *
7 * This file is subject to the terms and conditions of the GNU General Public
8 * License. See the file "COPYING" in the main directory of this archive
9 * for more details.
10 *
Russ Anderson308a8782006-04-18 11:26:34 -050011 * Copyright (c) 2000-2006 Silicon Graphics, Inc. All rights reserved.
Linus Torvalds1da177e2005-04-16 15:20:36 -070012 */
13
14
15#include <linux/config.h>
16#include <asm/sal.h>
17#include <asm/sn/sn_cpuid.h>
18#include <asm/sn/arch.h>
19#include <asm/sn/geo.h>
20#include <asm/sn/nodepda.h>
21#include <asm/sn/shub_mmr.h>
22
23// SGI Specific Calls
24#define SN_SAL_POD_MODE 0x02000001
25#define SN_SAL_SYSTEM_RESET 0x02000002
26#define SN_SAL_PROBE 0x02000003
27#define SN_SAL_GET_MASTER_NASID 0x02000004
28#define SN_SAL_GET_KLCONFIG_ADDR 0x02000005
29#define SN_SAL_LOG_CE 0x02000006
30#define SN_SAL_REGISTER_CE 0x02000007
31#define SN_SAL_GET_PARTITION_ADDR 0x02000009
32#define SN_SAL_XP_ADDR_REGION 0x0200000f
33#define SN_SAL_NO_FAULT_ZONE_VIRTUAL 0x02000010
34#define SN_SAL_NO_FAULT_ZONE_PHYSICAL 0x02000011
35#define SN_SAL_PRINT_ERROR 0x02000012
36#define SN_SAL_SET_ERROR_HANDLING_FEATURES 0x0200001a // reentrant
37#define SN_SAL_GET_FIT_COMPT 0x0200001b // reentrant
Linus Torvalds1da177e2005-04-16 15:20:36 -070038#define SN_SAL_GET_SAPIC_INFO 0x0200001d
Jack Steinerbf1cf98f2005-04-25 11:42:39 -070039#define SN_SAL_GET_SN_INFO 0x0200001e
Linus Torvalds1da177e2005-04-16 15:20:36 -070040#define SN_SAL_CONSOLE_PUTC 0x02000021
41#define SN_SAL_CONSOLE_GETC 0x02000022
42#define SN_SAL_CONSOLE_PUTS 0x02000023
43#define SN_SAL_CONSOLE_GETS 0x02000024
44#define SN_SAL_CONSOLE_GETS_TIMEOUT 0x02000025
45#define SN_SAL_CONSOLE_POLL 0x02000026
46#define SN_SAL_CONSOLE_INTR 0x02000027
47#define SN_SAL_CONSOLE_PUTB 0x02000028
48#define SN_SAL_CONSOLE_XMIT_CHARS 0x0200002a
49#define SN_SAL_CONSOLE_READC 0x0200002b
Bruce Losure25732ad2005-09-02 15:16:35 -050050#define SN_SAL_SYSCTL_OP 0x02000030
Linus Torvalds1da177e2005-04-16 15:20:36 -070051#define SN_SAL_SYSCTL_MODID_GET 0x02000031
52#define SN_SAL_SYSCTL_GET 0x02000032
53#define SN_SAL_SYSCTL_IOBRICK_MODULE_GET 0x02000033
54#define SN_SAL_SYSCTL_IO_PORTSPEED_GET 0x02000035
55#define SN_SAL_SYSCTL_SLAB_GET 0x02000036
56#define SN_SAL_BUS_CONFIG 0x02000037
57#define SN_SAL_SYS_SERIAL_GET 0x02000038
58#define SN_SAL_PARTITION_SERIAL_GET 0x02000039
Jack Steiner771388d2005-11-18 16:11:27 -060059#define SN_SAL_SYSCTL_PARTITION_GET 0x0200003a
Linus Torvalds1da177e2005-04-16 15:20:36 -070060#define SN_SAL_SYSTEM_POWER_DOWN 0x0200003b
61#define SN_SAL_GET_MASTER_BASEIO_NASID 0x0200003c
62#define SN_SAL_COHERENCE 0x0200003d
63#define SN_SAL_MEMPROTECT 0x0200003e
64#define SN_SAL_SYSCTL_FRU_CAPTURE 0x0200003f
65
66#define SN_SAL_SYSCTL_IOBRICK_PCI_OP 0x02000042 // reentrant
67#define SN_SAL_IROUTER_OP 0x02000043
Greg Howard67639de2005-04-25 13:28:52 -070068#define SN_SAL_SYSCTL_EVENT 0x02000044
Linus Torvalds1da177e2005-04-16 15:20:36 -070069#define SN_SAL_IOIF_INTERRUPT 0x0200004a
70#define SN_SAL_HWPERF_OP 0x02000050 // lock
71#define SN_SAL_IOIF_ERROR_INTERRUPT 0x02000051
Mark Maule61b9cf72005-09-23 12:31:53 -050072#define SN_SAL_IOIF_PCI_SAFE 0x02000052
Linus Torvalds1da177e2005-04-16 15:20:36 -070073#define SN_SAL_IOIF_SLOT_ENABLE 0x02000053
74#define SN_SAL_IOIF_SLOT_DISABLE 0x02000054
75#define SN_SAL_IOIF_GET_HUBDEV_INFO 0x02000055
76#define SN_SAL_IOIF_GET_PCIBUS_INFO 0x02000056
77#define SN_SAL_IOIF_GET_PCIDEV_INFO 0x02000057
Prarit Bhargava6d6e4202005-12-23 13:33:25 -050078#define SN_SAL_IOIF_GET_WIDGET_DMAFLUSH_LIST 0x02000058 // deprecated
79#define SN_SAL_IOIF_GET_DEVICE_DMAFLUSH_LIST 0x0200005a
Linus Torvalds1da177e2005-04-16 15:20:36 -070080
81#define SN_SAL_HUB_ERROR_INTERRUPT 0x02000060
Russ Anderson93a07d02005-04-25 13:19:52 -070082#define SN_SAL_BTE_RECOVER 0x02000061
Mark Goodwinecc3c302005-08-16 00:50:00 -070083#define SN_SAL_RESERVED_DO_NOT_USE 0x02000062
84#define SN_SAL_IOIF_GET_PCI_TOPOLOGY 0x02000064
Linus Torvalds1da177e2005-04-16 15:20:36 -070085
Jack Steinera1cddb82005-08-31 08:05:00 -070086#define SN_SAL_GET_PROM_FEATURE_SET 0x02000065
87#define SN_SAL_SET_OS_FEATURE_SET 0x02000066
Russ Anderson86db2f42006-04-20 17:05:43 -070088#define SN_SAL_INJECT_ERROR 0x02000067
Jack Steinera1cddb82005-08-31 08:05:00 -070089
Linus Torvalds1da177e2005-04-16 15:20:36 -070090/*
91 * Service-specific constants
92 */
93
94/* Console interrupt manipulation */
95 /* action codes */
96#define SAL_CONSOLE_INTR_OFF 0 /* turn the interrupt off */
97#define SAL_CONSOLE_INTR_ON 1 /* turn the interrupt on */
98#define SAL_CONSOLE_INTR_STATUS 2 /* retrieve the interrupt status */
99 /* interrupt specification & status return codes */
100#define SAL_CONSOLE_INTR_XMIT 1 /* output interrupt */
101#define SAL_CONSOLE_INTR_RECV 2 /* input interrupt */
102
103/* interrupt handling */
104#define SAL_INTR_ALLOC 1
105#define SAL_INTR_FREE 2
106
107/*
Bruce Losure25732ad2005-09-02 15:16:35 -0500108 * operations available on the generic SN_SAL_SYSCTL_OP
109 * runtime service
110 */
111#define SAL_SYSCTL_OP_IOBOARD 0x0001 /* retrieve board type */
112#define SAL_SYSCTL_OP_TIO_JLCK_RST 0x0002 /* issue TIO clock reset */
113
114/*
Linus Torvalds1da177e2005-04-16 15:20:36 -0700115 * IRouter (i.e. generalized system controller) operations
116 */
117#define SAL_IROUTER_OPEN 0 /* open a subchannel */
118#define SAL_IROUTER_CLOSE 1 /* close a subchannel */
119#define SAL_IROUTER_SEND 2 /* send part of an IRouter packet */
120#define SAL_IROUTER_RECV 3 /* receive part of an IRouter packet */
121#define SAL_IROUTER_INTR_STATUS 4 /* check the interrupt status for
122 * an open subchannel
123 */
124#define SAL_IROUTER_INTR_ON 5 /* enable an interrupt */
125#define SAL_IROUTER_INTR_OFF 6 /* disable an interrupt */
126#define SAL_IROUTER_INIT 7 /* initialize IRouter driver */
127
128/* IRouter interrupt mask bits */
129#define SAL_IROUTER_INTR_XMIT SAL_CONSOLE_INTR_XMIT
130#define SAL_IROUTER_INTR_RECV SAL_CONSOLE_INTR_RECV
131
Russ Anderson6872ec52005-05-16 15:30:00 -0700132/*
133 * Error Handling Features
134 */
Jack Steinera1cddb82005-08-31 08:05:00 -0700135#define SAL_ERR_FEAT_MCA_SLV_TO_OS_INIT_SLV 0x1 // obsolete
136#define SAL_ERR_FEAT_LOG_SBES 0x2 // obsolete
Russ Anderson6872ec52005-05-16 15:30:00 -0700137#define SAL_ERR_FEAT_MFR_OVERRIDE 0x4
138#define SAL_ERR_FEAT_SBE_THRESHOLD 0xffff0000
Linus Torvalds1da177e2005-04-16 15:20:36 -0700139
140/*
141 * SAL Error Codes
142 */
143#define SALRET_MORE_PASSES 1
144#define SALRET_OK 0
145#define SALRET_NOT_IMPLEMENTED (-1)
146#define SALRET_INVALID_ARG (-2)
147#define SALRET_ERROR (-3)
148
Jack Steiner71a5d022005-05-10 08:01:00 -0700149#define SN_SAL_FAKE_PROM 0x02009999
150
Linus Torvalds1da177e2005-04-16 15:20:36 -0700151/**
Prarit Bhargava283c7f62005-07-06 15:29:13 -0700152 * sn_sal_revision - get the SGI SAL revision number
153 *
154 * The SGI PROM stores its version in the sal_[ab]_rev_(major|minor).
155 * This routine simply extracts the major and minor values and
156 * presents them in a u32 format.
157 *
158 * For example, version 4.05 would be represented at 0x0405.
159 */
160static inline u32
161sn_sal_rev(void)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700162{
Bjorn Helgaasb2c99e32006-03-26 01:37:08 -0800163 struct ia64_sal_systab *systab = __va(efi.sal_systab);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700164
Prarit Bhargava283c7f62005-07-06 15:29:13 -0700165 return (u32)(systab->sal_b_rev_major << 8 | systab->sal_b_rev_minor);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700166}
167
168/*
Linus Torvalds1da177e2005-04-16 15:20:36 -0700169 * Returns the master console nasid, if the call fails, return an illegal
170 * value.
171 */
172static inline u64
173ia64_sn_get_console_nasid(void)
174{
175 struct ia64_sal_retval ret_stuff;
176
177 ret_stuff.status = 0;
178 ret_stuff.v0 = 0;
179 ret_stuff.v1 = 0;
180 ret_stuff.v2 = 0;
181 SAL_CALL(ret_stuff, SN_SAL_GET_MASTER_NASID, 0, 0, 0, 0, 0, 0, 0);
182
183 if (ret_stuff.status < 0)
184 return ret_stuff.status;
185
186 /* Master console nasid is in 'v0' */
187 return ret_stuff.v0;
188}
189
190/*
191 * Returns the master baseio nasid, if the call fails, return an illegal
192 * value.
193 */
194static inline u64
195ia64_sn_get_master_baseio_nasid(void)
196{
197 struct ia64_sal_retval ret_stuff;
198
199 ret_stuff.status = 0;
200 ret_stuff.v0 = 0;
201 ret_stuff.v1 = 0;
202 ret_stuff.v2 = 0;
203 SAL_CALL(ret_stuff, SN_SAL_GET_MASTER_BASEIO_NASID, 0, 0, 0, 0, 0, 0, 0);
204
205 if (ret_stuff.status < 0)
206 return ret_stuff.status;
207
208 /* Master baseio nasid is in 'v0' */
209 return ret_stuff.v0;
210}
211
Jack Steiner24ee0a62005-09-12 12:15:43 -0500212static inline void *
Linus Torvalds1da177e2005-04-16 15:20:36 -0700213ia64_sn_get_klconfig_addr(nasid_t nasid)
214{
215 struct ia64_sal_retval ret_stuff;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700216
Linus Torvalds1da177e2005-04-16 15:20:36 -0700217 ret_stuff.status = 0;
218 ret_stuff.v0 = 0;
219 ret_stuff.v1 = 0;
220 ret_stuff.v2 = 0;
221 SAL_CALL(ret_stuff, SN_SAL_GET_KLCONFIG_ADDR, (u64)nasid, 0, 0, 0, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700222 return ret_stuff.v0 ? __va(ret_stuff.v0) : NULL;
223}
224
225/*
226 * Returns the next console character.
227 */
228static inline u64
229ia64_sn_console_getc(int *ch)
230{
231 struct ia64_sal_retval ret_stuff;
232
233 ret_stuff.status = 0;
234 ret_stuff.v0 = 0;
235 ret_stuff.v1 = 0;
236 ret_stuff.v2 = 0;
237 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_GETC, 0, 0, 0, 0, 0, 0, 0);
238
239 /* character is in 'v0' */
240 *ch = (int)ret_stuff.v0;
241
242 return ret_stuff.status;
243}
244
245/*
246 * Read a character from the SAL console device, after a previous interrupt
247 * or poll operation has given us to know that a character is available
248 * to be read.
249 */
250static inline u64
251ia64_sn_console_readc(void)
252{
253 struct ia64_sal_retval ret_stuff;
254
255 ret_stuff.status = 0;
256 ret_stuff.v0 = 0;
257 ret_stuff.v1 = 0;
258 ret_stuff.v2 = 0;
259 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_READC, 0, 0, 0, 0, 0, 0, 0);
260
261 /* character is in 'v0' */
262 return ret_stuff.v0;
263}
264
265/*
266 * Sends the given character to the console.
267 */
268static inline u64
269ia64_sn_console_putc(char ch)
270{
271 struct ia64_sal_retval ret_stuff;
272
273 ret_stuff.status = 0;
274 ret_stuff.v0 = 0;
275 ret_stuff.v1 = 0;
276 ret_stuff.v2 = 0;
Prarit Bhargava53493dc2006-01-16 19:54:40 -0800277 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_PUTC, (u64)ch, 0, 0, 0, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700278
279 return ret_stuff.status;
280}
281
282/*
283 * Sends the given buffer to the console.
284 */
285static inline u64
286ia64_sn_console_putb(const char *buf, int len)
287{
288 struct ia64_sal_retval ret_stuff;
289
290 ret_stuff.status = 0;
291 ret_stuff.v0 = 0;
292 ret_stuff.v1 = 0;
293 ret_stuff.v2 = 0;
Prarit Bhargava53493dc2006-01-16 19:54:40 -0800294 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_PUTB, (u64)buf, (u64)len, 0, 0, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700295
296 if ( ret_stuff.status == 0 ) {
297 return ret_stuff.v0;
298 }
299 return (u64)0;
300}
301
302/*
303 * Print a platform error record
304 */
305static inline u64
306ia64_sn_plat_specific_err_print(int (*hook)(const char*, ...), char *rec)
307{
308 struct ia64_sal_retval ret_stuff;
309
310 ret_stuff.status = 0;
311 ret_stuff.v0 = 0;
312 ret_stuff.v1 = 0;
313 ret_stuff.v2 = 0;
Prarit Bhargava53493dc2006-01-16 19:54:40 -0800314 SAL_CALL_REENTRANT(ret_stuff, SN_SAL_PRINT_ERROR, (u64)hook, (u64)rec, 0, 0, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700315
316 return ret_stuff.status;
317}
318
319/*
320 * Check for Platform errors
321 */
322static inline u64
323ia64_sn_plat_cpei_handler(void)
324{
325 struct ia64_sal_retval ret_stuff;
326
327 ret_stuff.status = 0;
328 ret_stuff.v0 = 0;
329 ret_stuff.v1 = 0;
330 ret_stuff.v2 = 0;
331 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_LOG_CE, 0, 0, 0, 0, 0, 0, 0);
332
333 return ret_stuff.status;
334}
335
336/*
Jack Steinera1cddb82005-08-31 08:05:00 -0700337 * Set Error Handling Features (Obsolete)
Russ Anderson6872ec52005-05-16 15:30:00 -0700338 */
339static inline u64
340ia64_sn_plat_set_error_handling_features(void)
341{
342 struct ia64_sal_retval ret_stuff;
343
344 ret_stuff.status = 0;
345 ret_stuff.v0 = 0;
346 ret_stuff.v1 = 0;
347 ret_stuff.v2 = 0;
348 SAL_CALL_REENTRANT(ret_stuff, SN_SAL_SET_ERROR_HANDLING_FEATURES,
349 (SAL_ERR_FEAT_MCA_SLV_TO_OS_INIT_SLV | SAL_ERR_FEAT_LOG_SBES),
350 0, 0, 0, 0, 0, 0);
351
352 return ret_stuff.status;
353}
354
355/*
Linus Torvalds1da177e2005-04-16 15:20:36 -0700356 * Checks for console input.
357 */
358static inline u64
359ia64_sn_console_check(int *result)
360{
361 struct ia64_sal_retval ret_stuff;
362
363 ret_stuff.status = 0;
364 ret_stuff.v0 = 0;
365 ret_stuff.v1 = 0;
366 ret_stuff.v2 = 0;
367 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_POLL, 0, 0, 0, 0, 0, 0, 0);
368
369 /* result is in 'v0' */
370 *result = (int)ret_stuff.v0;
371
372 return ret_stuff.status;
373}
374
375/*
376 * Checks console interrupt status
377 */
378static inline u64
379ia64_sn_console_intr_status(void)
380{
381 struct ia64_sal_retval ret_stuff;
382
383 ret_stuff.status = 0;
384 ret_stuff.v0 = 0;
385 ret_stuff.v1 = 0;
386 ret_stuff.v2 = 0;
387 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_INTR,
388 0, SAL_CONSOLE_INTR_STATUS,
389 0, 0, 0, 0, 0);
390
391 if (ret_stuff.status == 0) {
392 return ret_stuff.v0;
393 }
394
395 return 0;
396}
397
398/*
399 * Enable an interrupt on the SAL console device.
400 */
401static inline void
Prarit Bhargava53493dc2006-01-16 19:54:40 -0800402ia64_sn_console_intr_enable(u64 intr)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700403{
404 struct ia64_sal_retval ret_stuff;
405
406 ret_stuff.status = 0;
407 ret_stuff.v0 = 0;
408 ret_stuff.v1 = 0;
409 ret_stuff.v2 = 0;
410 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_INTR,
411 intr, SAL_CONSOLE_INTR_ON,
412 0, 0, 0, 0, 0);
413}
414
415/*
416 * Disable an interrupt on the SAL console device.
417 */
418static inline void
Prarit Bhargava53493dc2006-01-16 19:54:40 -0800419ia64_sn_console_intr_disable(u64 intr)
Linus Torvalds1da177e2005-04-16 15:20:36 -0700420{
421 struct ia64_sal_retval ret_stuff;
422
423 ret_stuff.status = 0;
424 ret_stuff.v0 = 0;
425 ret_stuff.v1 = 0;
426 ret_stuff.v2 = 0;
427 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_INTR,
428 intr, SAL_CONSOLE_INTR_OFF,
429 0, 0, 0, 0, 0);
430}
431
432/*
433 * Sends a character buffer to the console asynchronously.
434 */
435static inline u64
436ia64_sn_console_xmit_chars(char *buf, int len)
437{
438 struct ia64_sal_retval ret_stuff;
439
440 ret_stuff.status = 0;
441 ret_stuff.v0 = 0;
442 ret_stuff.v1 = 0;
443 ret_stuff.v2 = 0;
444 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_CONSOLE_XMIT_CHARS,
Prarit Bhargava53493dc2006-01-16 19:54:40 -0800445 (u64)buf, (u64)len,
Linus Torvalds1da177e2005-04-16 15:20:36 -0700446 0, 0, 0, 0, 0);
447
448 if (ret_stuff.status == 0) {
449 return ret_stuff.v0;
450 }
451
452 return 0;
453}
454
455/*
456 * Returns the iobrick module Id
457 */
458static inline u64
459ia64_sn_sysctl_iobrick_module_get(nasid_t nasid, int *result)
460{
461 struct ia64_sal_retval ret_stuff;
462
463 ret_stuff.status = 0;
464 ret_stuff.v0 = 0;
465 ret_stuff.v1 = 0;
466 ret_stuff.v2 = 0;
467 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_SYSCTL_IOBRICK_MODULE_GET, nasid, 0, 0, 0, 0, 0, 0);
468
469 /* result is in 'v0' */
470 *result = (int)ret_stuff.v0;
471
472 return ret_stuff.status;
473}
474
475/**
476 * ia64_sn_pod_mode - call the SN_SAL_POD_MODE function
477 *
478 * SN_SAL_POD_MODE actually takes an argument, but it's always
479 * 0 when we call it from the kernel, so we don't have to expose
480 * it to the caller.
481 */
482static inline u64
483ia64_sn_pod_mode(void)
484{
485 struct ia64_sal_retval isrv;
Russ Anderson8eac37572005-05-16 15:19:00 -0700486 SAL_CALL_REENTRANT(isrv, SN_SAL_POD_MODE, 0, 0, 0, 0, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700487 if (isrv.status)
488 return 0;
489 return isrv.v0;
490}
491
492/**
493 * ia64_sn_probe_mem - read from memory safely
494 * @addr: address to probe
495 * @size: number bytes to read (1,2,4,8)
496 * @data_ptr: address to store value read by probe (-1 returned if probe fails)
497 *
498 * Call into the SAL to do a memory read. If the read generates a machine
499 * check, this routine will recover gracefully and return -1 to the caller.
500 * @addr is usually a kernel virtual address in uncached space (i.e. the
501 * address starts with 0xc), but if called in physical mode, @addr should
502 * be a physical address.
503 *
504 * Return values:
505 * 0 - probe successful
506 * 1 - probe failed (generated MCA)
507 * 2 - Bad arg
508 * <0 - PAL error
509 */
510static inline u64
511ia64_sn_probe_mem(long addr, long size, void *data_ptr)
512{
513 struct ia64_sal_retval isrv;
514
515 SAL_CALL(isrv, SN_SAL_PROBE, addr, size, 0, 0, 0, 0, 0);
516
517 if (data_ptr) {
518 switch (size) {
519 case 1:
520 *((u8*)data_ptr) = (u8)isrv.v0;
521 break;
522 case 2:
523 *((u16*)data_ptr) = (u16)isrv.v0;
524 break;
525 case 4:
526 *((u32*)data_ptr) = (u32)isrv.v0;
527 break;
528 case 8:
529 *((u64*)data_ptr) = (u64)isrv.v0;
530 break;
531 default:
532 isrv.status = 2;
533 }
534 }
535 return isrv.status;
536}
537
538/*
539 * Retrieve the system serial number as an ASCII string.
540 */
541static inline u64
542ia64_sn_sys_serial_get(char *buf)
543{
544 struct ia64_sal_retval ret_stuff;
545 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_SYS_SERIAL_GET, buf, 0, 0, 0, 0, 0, 0);
546 return ret_stuff.status;
547}
548
549extern char sn_system_serial_number_string[];
550extern u64 sn_partition_serial_number;
551
552static inline char *
553sn_system_serial_number(void) {
554 if (sn_system_serial_number_string[0]) {
555 return(sn_system_serial_number_string);
556 } else {
557 ia64_sn_sys_serial_get(sn_system_serial_number_string);
558 return(sn_system_serial_number_string);
559 }
560}
561
562
563/*
564 * Returns a unique id number for this system and partition (suitable for
565 * use with license managers), based in part on the system serial number.
566 */
567static inline u64
568ia64_sn_partition_serial_get(void)
569{
570 struct ia64_sal_retval ret_stuff;
Dean Nelsonb48fc7b2005-03-23 19:05:00 -0700571 ia64_sal_oemcall_reentrant(&ret_stuff, SN_SAL_PARTITION_SERIAL_GET, 0,
572 0, 0, 0, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700573 if (ret_stuff.status != 0)
574 return 0;
575 return ret_stuff.v0;
576}
577
578static inline u64
579sn_partition_serial_number_val(void) {
Dean Nelsonb48fc7b2005-03-23 19:05:00 -0700580 if (unlikely(sn_partition_serial_number == 0)) {
581 sn_partition_serial_number = ia64_sn_partition_serial_get();
Linus Torvalds1da177e2005-04-16 15:20:36 -0700582 }
Dean Nelsonb48fc7b2005-03-23 19:05:00 -0700583 return sn_partition_serial_number;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700584}
585
586/*
Jack Steiner771388d2005-11-18 16:11:27 -0600587 * Returns the partition id of the nasid passed in as an argument,
588 * or INVALID_PARTID if the partition id cannot be retrieved.
589 */
590static inline partid_t
591ia64_sn_sysctl_partition_get(nasid_t nasid)
592{
593 struct ia64_sal_retval ret_stuff;
594 SAL_CALL(ret_stuff, SN_SAL_SYSCTL_PARTITION_GET, nasid,
595 0, 0, 0, 0, 0, 0);
596 if (ret_stuff.status != 0)
597 return -1;
598 return ((partid_t)ret_stuff.v0);
599}
600
601/*
Dean Nelsonb48fc7b2005-03-23 19:05:00 -0700602 * Returns the physical address of the partition's reserved page through
603 * an iterative number of calls.
604 *
605 * On first call, 'cookie' and 'len' should be set to 0, and 'addr'
606 * set to the nasid of the partition whose reserved page's address is
607 * being sought.
608 * On subsequent calls, pass the values, that were passed back on the
609 * previous call.
610 *
611 * While the return status equals SALRET_MORE_PASSES, keep calling
612 * this function after first copying 'len' bytes starting at 'addr'
613 * into 'buf'. Once the return status equals SALRET_OK, 'addr' will
614 * be the physical address of the partition's reserved page. If the
615 * return status equals neither of these, an error as occurred.
616 */
617static inline s64
618sn_partition_reserved_page_pa(u64 buf, u64 *cookie, u64 *addr, u64 *len)
619{
620 struct ia64_sal_retval rv;
621 ia64_sal_oemcall_reentrant(&rv, SN_SAL_GET_PARTITION_ADDR, *cookie,
622 *addr, buf, *len, 0, 0, 0);
623 *cookie = rv.v0;
624 *addr = rv.v1;
625 *len = rv.v2;
626 return rv.status;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700627}
628
629/*
630 * Register or unregister a physical address range being referenced across
631 * a partition boundary for which certain SAL errors should be scanned for,
632 * cleaned up and ignored. This is of value for kernel partitioning code only.
633 * Values for the operation argument:
634 * 1 = register this address range with SAL
635 * 0 = unregister this address range with SAL
636 *
637 * SAL maintains a reference count on an address range in case it is registered
638 * multiple times.
639 *
640 * On success, returns the reference count of the address range after the SAL
641 * call has performed the current registration/unregistration. Returns a
642 * negative value if an error occurred.
643 */
644static inline int
645sn_register_xp_addr_region(u64 paddr, u64 len, int operation)
646{
647 struct ia64_sal_retval ret_stuff;
Dean Nelsonb48fc7b2005-03-23 19:05:00 -0700648 ia64_sal_oemcall(&ret_stuff, SN_SAL_XP_ADDR_REGION, paddr, len,
649 (u64)operation, 0, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700650 return ret_stuff.status;
651}
652
653/*
654 * Register or unregister an instruction range for which SAL errors should
655 * be ignored. If an error occurs while in the registered range, SAL jumps
656 * to return_addr after ignoring the error. Values for the operation argument:
657 * 1 = register this instruction range with SAL
658 * 0 = unregister this instruction range with SAL
659 *
660 * Returns 0 on success, or a negative value if an error occurred.
661 */
662static inline int
663sn_register_nofault_code(u64 start_addr, u64 end_addr, u64 return_addr,
664 int virtual, int operation)
665{
666 struct ia64_sal_retval ret_stuff;
667 u64 call;
668 if (virtual) {
669 call = SN_SAL_NO_FAULT_ZONE_VIRTUAL;
670 } else {
671 call = SN_SAL_NO_FAULT_ZONE_PHYSICAL;
672 }
Dean Nelsonb48fc7b2005-03-23 19:05:00 -0700673 ia64_sal_oemcall(&ret_stuff, call, start_addr, end_addr, return_addr,
674 (u64)1, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700675 return ret_stuff.status;
676}
677
678/*
679 * Change or query the coherence domain for this partition. Each cpu-based
680 * nasid is represented by a bit in an array of 64-bit words:
681 * 0 = not in this partition's coherency domain
682 * 1 = in this partition's coherency domain
683 *
684 * It is not possible for the local system's nasids to be removed from
685 * the coherency domain. Purpose of the domain arguments:
686 * new_domain = set the coherence domain to the given nasids
687 * old_domain = return the current coherence domain
688 *
689 * Returns 0 on success, or a negative value if an error occurred.
690 */
691static inline int
692sn_change_coherence(u64 *new_domain, u64 *old_domain)
693{
694 struct ia64_sal_retval ret_stuff;
Dean Nelsonb48fc7b2005-03-23 19:05:00 -0700695 ia64_sal_oemcall(&ret_stuff, SN_SAL_COHERENCE, (u64)new_domain,
696 (u64)old_domain, 0, 0, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700697 return ret_stuff.status;
698}
699
700/*
701 * Change memory access protections for a physical address range.
702 * nasid_array is not used on Altix, but may be in future architectures.
703 * Available memory protection access classes are defined after the function.
704 */
705static inline int
706sn_change_memprotect(u64 paddr, u64 len, u64 perms, u64 *nasid_array)
707{
708 struct ia64_sal_retval ret_stuff;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700709 unsigned long irq_flags;
710
Linus Torvalds1da177e2005-04-16 15:20:36 -0700711 local_irq_save(irq_flags);
Dean Nelsonb48fc7b2005-03-23 19:05:00 -0700712 ia64_sal_oemcall_nolock(&ret_stuff, SN_SAL_MEMPROTECT, paddr, len,
713 (u64)nasid_array, perms, 0, 0, 0);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700714 local_irq_restore(irq_flags);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700715 return ret_stuff.status;
716}
717#define SN_MEMPROT_ACCESS_CLASS_0 0x14a080
718#define SN_MEMPROT_ACCESS_CLASS_1 0x2520c2
719#define SN_MEMPROT_ACCESS_CLASS_2 0x14a1ca
720#define SN_MEMPROT_ACCESS_CLASS_3 0x14a290
721#define SN_MEMPROT_ACCESS_CLASS_6 0x084080
722#define SN_MEMPROT_ACCESS_CLASS_7 0x021080
723
724/*
725 * Turns off system power.
726 */
727static inline void
728ia64_sn_power_down(void)
729{
730 struct ia64_sal_retval ret_stuff;
731 SAL_CALL(ret_stuff, SN_SAL_SYSTEM_POWER_DOWN, 0, 0, 0, 0, 0, 0, 0);
Jack Steiner68b97532005-08-11 10:28:00 -0700732 while(1)
733 cpu_relax();
Linus Torvalds1da177e2005-04-16 15:20:36 -0700734 /* never returns */
735}
736
737/**
738 * ia64_sn_fru_capture - tell the system controller to capture hw state
739 *
740 * This routine will call the SAL which will tell the system controller(s)
741 * to capture hw mmr information from each SHub in the system.
742 */
743static inline u64
744ia64_sn_fru_capture(void)
745{
746 struct ia64_sal_retval isrv;
747 SAL_CALL(isrv, SN_SAL_SYSCTL_FRU_CAPTURE, 0, 0, 0, 0, 0, 0, 0);
748 if (isrv.status)
749 return 0;
750 return isrv.v0;
751}
752
753/*
754 * Performs an operation on a PCI bus or slot -- power up, power down
755 * or reset.
756 */
757static inline u64
758ia64_sn_sysctl_iobrick_pci_op(nasid_t n, u64 connection_type,
759 u64 bus, char slot,
760 u64 action)
761{
762 struct ia64_sal_retval rv = {0, 0, 0, 0};
763
764 SAL_CALL_NOLOCK(rv, SN_SAL_SYSCTL_IOBRICK_PCI_OP, connection_type, n, action,
765 bus, (u64) slot, 0, 0);
766 if (rv.status)
767 return rv.v0;
768 return 0;
769}
770
771
772/*
773 * Open a subchannel for sending arbitrary data to the system
774 * controller network via the system controller device associated with
775 * 'nasid'. Return the subchannel number or a negative error code.
776 */
777static inline int
778ia64_sn_irtr_open(nasid_t nasid)
779{
780 struct ia64_sal_retval rv;
781 SAL_CALL_REENTRANT(rv, SN_SAL_IROUTER_OP, SAL_IROUTER_OPEN, nasid,
782 0, 0, 0, 0, 0);
783 return (int) rv.v0;
784}
785
786/*
787 * Close system controller subchannel 'subch' previously opened on 'nasid'.
788 */
789static inline int
790ia64_sn_irtr_close(nasid_t nasid, int subch)
791{
792 struct ia64_sal_retval rv;
793 SAL_CALL_REENTRANT(rv, SN_SAL_IROUTER_OP, SAL_IROUTER_CLOSE,
794 (u64) nasid, (u64) subch, 0, 0, 0, 0);
795 return (int) rv.status;
796}
797
798/*
799 * Read data from system controller associated with 'nasid' on
800 * subchannel 'subch'. The buffer to be filled is pointed to by
801 * 'buf', and its capacity is in the integer pointed to by 'len'. The
802 * referent of 'len' is set to the number of bytes read by the SAL
803 * call. The return value is either SALRET_OK (for bytes read) or
804 * SALRET_ERROR (for error or "no data available").
805 */
806static inline int
807ia64_sn_irtr_recv(nasid_t nasid, int subch, char *buf, int *len)
808{
809 struct ia64_sal_retval rv;
810 SAL_CALL_REENTRANT(rv, SN_SAL_IROUTER_OP, SAL_IROUTER_RECV,
811 (u64) nasid, (u64) subch, (u64) buf, (u64) len,
812 0, 0);
813 return (int) rv.status;
814}
815
816/*
817 * Write data to the system controller network via the system
818 * controller associated with 'nasid' on suchannel 'subch'. The
819 * buffer to be written out is pointed to by 'buf', and 'len' is the
820 * number of bytes to be written. The return value is either the
821 * number of bytes written (which could be zero) or a negative error
822 * code.
823 */
824static inline int
825ia64_sn_irtr_send(nasid_t nasid, int subch, char *buf, int len)
826{
827 struct ia64_sal_retval rv;
828 SAL_CALL_REENTRANT(rv, SN_SAL_IROUTER_OP, SAL_IROUTER_SEND,
829 (u64) nasid, (u64) subch, (u64) buf, (u64) len,
830 0, 0);
831 return (int) rv.v0;
832}
833
834/*
835 * Check whether any interrupts are pending for the system controller
836 * associated with 'nasid' and its subchannel 'subch'. The return
837 * value is a mask of pending interrupts (SAL_IROUTER_INTR_XMIT and/or
838 * SAL_IROUTER_INTR_RECV).
839 */
840static inline int
841ia64_sn_irtr_intr(nasid_t nasid, int subch)
842{
843 struct ia64_sal_retval rv;
844 SAL_CALL_REENTRANT(rv, SN_SAL_IROUTER_OP, SAL_IROUTER_INTR_STATUS,
845 (u64) nasid, (u64) subch, 0, 0, 0, 0);
846 return (int) rv.v0;
847}
848
849/*
850 * Enable the interrupt indicated by the intr parameter (either
851 * SAL_IROUTER_INTR_XMIT or SAL_IROUTER_INTR_RECV).
852 */
853static inline int
854ia64_sn_irtr_intr_enable(nasid_t nasid, int subch, u64 intr)
855{
856 struct ia64_sal_retval rv;
857 SAL_CALL_REENTRANT(rv, SN_SAL_IROUTER_OP, SAL_IROUTER_INTR_ON,
858 (u64) nasid, (u64) subch, intr, 0, 0, 0);
859 return (int) rv.v0;
860}
861
862/*
863 * Disable the interrupt indicated by the intr parameter (either
864 * SAL_IROUTER_INTR_XMIT or SAL_IROUTER_INTR_RECV).
865 */
866static inline int
867ia64_sn_irtr_intr_disable(nasid_t nasid, int subch, u64 intr)
868{
869 struct ia64_sal_retval rv;
870 SAL_CALL_REENTRANT(rv, SN_SAL_IROUTER_OP, SAL_IROUTER_INTR_OFF,
871 (u64) nasid, (u64) subch, intr, 0, 0, 0);
872 return (int) rv.v0;
873}
874
Greg Howard67639de2005-04-25 13:28:52 -0700875/*
876 * Set up a node as the point of contact for system controller
877 * environmental event delivery.
878 */
879static inline int
880ia64_sn_sysctl_event_init(nasid_t nasid)
881{
882 struct ia64_sal_retval rv;
883 SAL_CALL_REENTRANT(rv, SN_SAL_SYSCTL_EVENT, (u64) nasid,
884 0, 0, 0, 0, 0, 0);
885 return (int) rv.v0;
886}
887
Bruce Losure25732ad2005-09-02 15:16:35 -0500888/*
889 * Ask the system controller on the specified nasid to reset
890 * the CX corelet clock. Only valid on TIO nodes.
891 */
892static inline int
893ia64_sn_sysctl_tio_clock_reset(nasid_t nasid)
894{
895 struct ia64_sal_retval rv;
896 SAL_CALL_REENTRANT(rv, SN_SAL_SYSCTL_OP, SAL_SYSCTL_OP_TIO_JLCK_RST,
897 nasid, 0, 0, 0, 0, 0);
898 if (rv.status != 0)
899 return (int)rv.status;
900 if (rv.v0 != 0)
901 return (int)rv.v0;
902
903 return 0;
904}
905
906/*
907 * Get the associated ioboard type for a given nasid.
908 */
Prarit Bhargavaf90aa8c2006-03-08 13:30:18 -0500909static inline s64
910ia64_sn_sysctl_ioboard_get(nasid_t nasid, u16 *ioboard)
Bruce Losure25732ad2005-09-02 15:16:35 -0500911{
Prarit Bhargavaf90aa8c2006-03-08 13:30:18 -0500912 struct ia64_sal_retval isrv;
913 SAL_CALL_REENTRANT(isrv, SN_SAL_SYSCTL_OP, SAL_SYSCTL_OP_IOBOARD,
914 nasid, 0, 0, 0, 0, 0);
915 if (isrv.v0 != 0) {
916 *ioboard = isrv.v0;
917 return isrv.status;
918 }
919 if (isrv.v1 != 0) {
920 *ioboard = isrv.v1;
921 return isrv.status;
922 }
Bruce Losure25732ad2005-09-02 15:16:35 -0500923
Prarit Bhargavaf90aa8c2006-03-08 13:30:18 -0500924 return isrv.status;
Bruce Losure25732ad2005-09-02 15:16:35 -0500925}
926
Linus Torvalds1da177e2005-04-16 15:20:36 -0700927/**
928 * ia64_sn_get_fit_compt - read a FIT entry from the PROM header
929 * @nasid: NASID of node to read
930 * @index: FIT entry index to be retrieved (0..n)
931 * @fitentry: 16 byte buffer where FIT entry will be stored.
932 * @banbuf: optional buffer for retrieving banner
933 * @banlen: length of banner buffer
934 *
935 * Access to the physical PROM chips needs to be serialized since reads and
936 * writes can't occur at the same time, so we need to call into the SAL when
937 * we want to look at the FIT entries on the chips.
938 *
939 * Returns:
940 * %SALRET_OK if ok
941 * %SALRET_INVALID_ARG if index too big
942 * %SALRET_NOT_IMPLEMENTED if running on older PROM
943 * ??? if nasid invalid OR banner buffer not large enough
944 */
945static inline int
946ia64_sn_get_fit_compt(u64 nasid, u64 index, void *fitentry, void *banbuf,
947 u64 banlen)
948{
949 struct ia64_sal_retval rv;
950 SAL_CALL_NOLOCK(rv, SN_SAL_GET_FIT_COMPT, nasid, index, fitentry,
951 banbuf, banlen, 0, 0);
952 return (int) rv.status;
953}
954
955/*
956 * Initialize the SAL components of the system controller
957 * communication driver; specifically pass in a sizable buffer that
958 * can be used for allocation of subchannel queues as new subchannels
959 * are opened. "buf" points to the buffer, and "len" specifies its
960 * length.
961 */
962static inline int
963ia64_sn_irtr_init(nasid_t nasid, void *buf, int len)
964{
965 struct ia64_sal_retval rv;
966 SAL_CALL_REENTRANT(rv, SN_SAL_IROUTER_OP, SAL_IROUTER_INIT,
967 (u64) nasid, (u64) buf, (u64) len, 0, 0, 0);
968 return (int) rv.status;
969}
970
971/*
972 * Returns the nasid, subnode & slice corresponding to a SAPIC ID
973 *
974 * In:
975 * arg0 - SN_SAL_GET_SAPIC_INFO
976 * arg1 - sapicid (lid >> 16)
977 * Out:
978 * v0 - nasid
979 * v1 - subnode
980 * v2 - slice
981 */
982static inline u64
983ia64_sn_get_sapic_info(int sapicid, int *nasid, int *subnode, int *slice)
984{
985 struct ia64_sal_retval ret_stuff;
986
987 ret_stuff.status = 0;
988 ret_stuff.v0 = 0;
989 ret_stuff.v1 = 0;
990 ret_stuff.v2 = 0;
991 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_GET_SAPIC_INFO, sapicid, 0, 0, 0, 0, 0, 0);
992
993/***** BEGIN HACK - temp til old proms no longer supported ********/
994 if (ret_stuff.status == SALRET_NOT_IMPLEMENTED) {
995 if (nasid) *nasid = sapicid & 0xfff;
996 if (subnode) *subnode = (sapicid >> 13) & 1;
997 if (slice) *slice = (sapicid >> 12) & 3;
998 return 0;
999 }
1000/***** END HACK *******/
1001
1002 if (ret_stuff.status < 0)
1003 return ret_stuff.status;
1004
1005 if (nasid) *nasid = (int) ret_stuff.v0;
1006 if (subnode) *subnode = (int) ret_stuff.v1;
1007 if (slice) *slice = (int) ret_stuff.v2;
1008 return 0;
1009}
1010
1011/*
1012 * Returns information about the HUB/SHUB.
1013 * In:
1014 * arg0 - SN_SAL_GET_SN_INFO
1015 * arg1 - 0 (other values reserved for future use)
1016 * Out:
1017 * v0
1018 * [7:0] - shub type (0=shub1, 1=shub2)
1019 * [15:8] - Log2 max number of nodes in entire system (includes
1020 * C-bricks, I-bricks, etc)
1021 * [23:16] - Log2 of nodes per sharing domain
1022 * [31:24] - partition ID
1023 * [39:32] - coherency_id
1024 * [47:40] - regionsize
1025 * v1
1026 * [15:0] - nasid mask (ex., 0x7ff for 11 bit nasid)
1027 * [23:15] - bit position of low nasid bit
1028 */
1029static inline u64
1030ia64_sn_get_sn_info(int fc, u8 *shubtype, u16 *nasid_bitmask, u8 *nasid_shift,
1031 u8 *systemsize, u8 *sharing_domain_size, u8 *partid, u8 *coher, u8 *reg)
1032{
1033 struct ia64_sal_retval ret_stuff;
1034
1035 ret_stuff.status = 0;
1036 ret_stuff.v0 = 0;
1037 ret_stuff.v1 = 0;
1038 ret_stuff.v2 = 0;
1039 SAL_CALL_NOLOCK(ret_stuff, SN_SAL_GET_SN_INFO, fc, 0, 0, 0, 0, 0, 0);
1040
Jack Steiner771388d2005-11-18 16:11:27 -06001041/***** BEGIN HACK - temp til old proms no longer supported ********/
1042 if (ret_stuff.status == SALRET_NOT_IMPLEMENTED) {
Alexey Dobriyan53b35312006-03-24 03:16:13 -08001043 int nasid = get_sapicid() & 0xfff;
Jack Steiner771388d2005-11-18 16:11:27 -06001044#define SH_SHUB_ID_NODES_PER_BIT_MASK 0x001f000000000000UL
1045#define SH_SHUB_ID_NODES_PER_BIT_SHFT 48
1046 if (shubtype) *shubtype = 0;
1047 if (nasid_bitmask) *nasid_bitmask = 0x7ff;
1048 if (nasid_shift) *nasid_shift = 38;
1049 if (systemsize) *systemsize = 10;
1050 if (sharing_domain_size) *sharing_domain_size = 8;
1051 if (partid) *partid = ia64_sn_sysctl_partition_get(nasid);
1052 if (coher) *coher = nasid >> 9;
1053 if (reg) *reg = (HUB_L((u64 *) LOCAL_MMR_ADDR(SH1_SHUB_ID)) & SH_SHUB_ID_NODES_PER_BIT_MASK) >>
1054 SH_SHUB_ID_NODES_PER_BIT_SHFT;
1055 return 0;
1056 }
1057/***** END HACK *******/
1058
Linus Torvalds1da177e2005-04-16 15:20:36 -07001059 if (ret_stuff.status < 0)
1060 return ret_stuff.status;
1061
1062 if (shubtype) *shubtype = ret_stuff.v0 & 0xff;
1063 if (systemsize) *systemsize = (ret_stuff.v0 >> 8) & 0xff;
1064 if (sharing_domain_size) *sharing_domain_size = (ret_stuff.v0 >> 16) & 0xff;
1065 if (partid) *partid = (ret_stuff.v0 >> 24) & 0xff;
1066 if (coher) *coher = (ret_stuff.v0 >> 32) & 0xff;
1067 if (reg) *reg = (ret_stuff.v0 >> 40) & 0xff;
1068 if (nasid_bitmask) *nasid_bitmask = (ret_stuff.v1 & 0xffff);
1069 if (nasid_shift) *nasid_shift = (ret_stuff.v1 >> 16) & 0xff;
1070 return 0;
1071}
1072
1073/*
1074 * This is the access point to the Altix PROM hardware performance
1075 * and status monitoring interface. For info on using this, see
1076 * include/asm-ia64/sn/sn2/sn_hwperf.h
1077 */
1078static inline int
1079ia64_sn_hwperf_op(nasid_t nasid, u64 opcode, u64 a0, u64 a1, u64 a2,
1080 u64 a3, u64 a4, int *v0)
1081{
1082 struct ia64_sal_retval rv;
1083 SAL_CALL_NOLOCK(rv, SN_SAL_HWPERF_OP, (u64)nasid,
1084 opcode, a0, a1, a2, a3, a4);
1085 if (v0)
1086 *v0 = (int) rv.v0;
1087 return (int) rv.status;
1088}
1089
Mark Goodwin4a5c13c2005-04-25 13:04:22 -07001090static inline int
Mark Goodwinecc3c302005-08-16 00:50:00 -07001091ia64_sn_ioif_get_pci_topology(u64 buf, u64 len)
Mark Goodwin4a5c13c2005-04-25 13:04:22 -07001092{
1093 struct ia64_sal_retval rv;
Mark Goodwinecc3c302005-08-16 00:50:00 -07001094 SAL_CALL_NOLOCK(rv, SN_SAL_IOIF_GET_PCI_TOPOLOGY, buf, len, 0, 0, 0, 0, 0);
Mark Goodwin4a5c13c2005-04-25 13:04:22 -07001095 return (int) rv.status;
1096}
1097
Russ Anderson93a07d02005-04-25 13:19:52 -07001098/*
1099 * BTE error recovery is implemented in SAL
1100 */
1101static inline int
1102ia64_sn_bte_recovery(nasid_t nasid)
1103{
1104 struct ia64_sal_retval rv;
1105
1106 rv.status = 0;
Russ Anderson17e8ce02005-12-16 17:19:01 -06001107 SAL_CALL_NOLOCK(rv, SN_SAL_BTE_RECOVER, (u64)nasid, 0, 0, 0, 0, 0, 0);
Russ Anderson93a07d02005-04-25 13:19:52 -07001108 if (rv.status == SALRET_NOT_IMPLEMENTED)
1109 return 0;
1110 return (int) rv.status;
1111}
1112
Jack Steiner71a5d022005-05-10 08:01:00 -07001113static inline int
1114ia64_sn_is_fake_prom(void)
1115{
1116 struct ia64_sal_retval rv;
1117 SAL_CALL_NOLOCK(rv, SN_SAL_FAKE_PROM, 0, 0, 0, 0, 0, 0, 0);
1118 return (rv.status == 0);
1119}
1120
Jack Steinera1cddb82005-08-31 08:05:00 -07001121static inline int
1122ia64_sn_get_prom_feature_set(int set, unsigned long *feature_set)
1123{
1124 struct ia64_sal_retval rv;
1125
1126 SAL_CALL_NOLOCK(rv, SN_SAL_GET_PROM_FEATURE_SET, set, 0, 0, 0, 0, 0, 0);
1127 if (rv.status != 0)
1128 return rv.status;
1129 *feature_set = rv.v0;
1130 return 0;
1131}
1132
1133static inline int
1134ia64_sn_set_os_feature(int feature)
1135{
1136 struct ia64_sal_retval rv;
1137
1138 SAL_CALL_NOLOCK(rv, SN_SAL_SET_OS_FEATURE_SET, feature, 0, 0, 0, 0, 0, 0);
1139 return rv.status;
1140}
1141
Russ Anderson86db2f42006-04-20 17:05:43 -07001142static inline int
1143sn_inject_error(u64 paddr, u64 *data, u64 *ecc)
1144{
1145 struct ia64_sal_retval ret_stuff;
1146 unsigned long irq_flags;
1147
1148 local_irq_save(irq_flags);
1149 ia64_sal_oemcall_nolock(&ret_stuff, SN_SAL_INJECT_ERROR, paddr, (u64)data,
1150 (u64)ecc, 0, 0, 0, 0);
1151 local_irq_restore(irq_flags);
1152 return ret_stuff.status;
1153}
Linus Torvalds1da177e2005-04-16 15:20:36 -07001154#endif /* _ASM_IA64_SN_SN_SAL_H */