Merge branches 'for-4.6/upstream-fixes', 'for-4.7/asus', 'for-4.7/hidraw' and 'for...
[cascardo/linux.git] / arch / powerpc / platforms / powernv / opal.c
1 /*
2  * PowerNV OPAL high level interfaces
3  *
4  * Copyright 2011 IBM Corp.
5  *
6  * This program is free software; you can redistribute it and/or
7  * modify it under the terms of the GNU General Public License
8  * as published by the Free Software Foundation; either version
9  * 2 of the License, or (at your option) any later version.
10  */
11
12 #define pr_fmt(fmt)     "opal: " fmt
13
14 #include <linux/printk.h>
15 #include <linux/types.h>
16 #include <linux/of.h>
17 #include <linux/of_fdt.h>
18 #include <linux/of_platform.h>
19 #include <linux/interrupt.h>
20 #include <linux/notifier.h>
21 #include <linux/slab.h>
22 #include <linux/sched.h>
23 #include <linux/kobject.h>
24 #include <linux/delay.h>
25 #include <linux/memblock.h>
26 #include <linux/kthread.h>
27 #include <linux/freezer.h>
28
29 #include <asm/machdep.h>
30 #include <asm/opal.h>
31 #include <asm/firmware.h>
32 #include <asm/mce.h>
33
34 #include "powernv.h"
35
36 /* /sys/firmware/opal */
37 struct kobject *opal_kobj;
38
39 struct opal {
40         u64 base;
41         u64 entry;
42         u64 size;
43 } opal;
44
45 struct mcheck_recoverable_range {
46         u64 start_addr;
47         u64 end_addr;
48         u64 recover_addr;
49 };
50
51 static struct mcheck_recoverable_range *mc_recoverable_range;
52 static int mc_recoverable_range_len;
53
54 struct device_node *opal_node;
55 static DEFINE_SPINLOCK(opal_write_lock);
56 static struct atomic_notifier_head opal_msg_notifier_head[OPAL_MSG_TYPE_MAX];
57 static uint32_t opal_heartbeat;
58
59 static void opal_reinit_cores(void)
60 {
61         /* Do the actual re-init, This will clobber all FPRs, VRs, etc...
62          *
63          * It will preserve non volatile GPRs and HSPRG0/1. It will
64          * also restore HIDs and other SPRs to their original value
65          * but it might clobber a bunch.
66          */
67 #ifdef __BIG_ENDIAN__
68         opal_reinit_cpus(OPAL_REINIT_CPUS_HILE_BE);
69 #else
70         opal_reinit_cpus(OPAL_REINIT_CPUS_HILE_LE);
71 #endif
72 }
73
74 int __init early_init_dt_scan_opal(unsigned long node,
75                                    const char *uname, int depth, void *data)
76 {
77         const void *basep, *entryp, *sizep;
78         int basesz, entrysz, runtimesz;
79
80         if (depth != 1 || strcmp(uname, "ibm,opal") != 0)
81                 return 0;
82
83         basep  = of_get_flat_dt_prop(node, "opal-base-address", &basesz);
84         entryp = of_get_flat_dt_prop(node, "opal-entry-address", &entrysz);
85         sizep = of_get_flat_dt_prop(node, "opal-runtime-size", &runtimesz);
86
87         if (!basep || !entryp || !sizep)
88                 return 1;
89
90         opal.base = of_read_number(basep, basesz/4);
91         opal.entry = of_read_number(entryp, entrysz/4);
92         opal.size = of_read_number(sizep, runtimesz/4);
93
94         pr_debug("OPAL Base  = 0x%llx (basep=%p basesz=%d)\n",
95                  opal.base, basep, basesz);
96         pr_debug("OPAL Entry = 0x%llx (entryp=%p basesz=%d)\n",
97                  opal.entry, entryp, entrysz);
98         pr_debug("OPAL Entry = 0x%llx (sizep=%p runtimesz=%d)\n",
99                  opal.size, sizep, runtimesz);
100
101         if (of_flat_dt_is_compatible(node, "ibm,opal-v3")) {
102                 powerpc_firmware_features |= FW_FEATURE_OPAL;
103                 pr_info("OPAL detected !\n");
104         } else {
105                 panic("OPAL != V3 detected, no longer supported.\n");
106         }
107
108         /* Reinit all cores with the right endian */
109         opal_reinit_cores();
110
111         /* Restore some bits */
112         if (cur_cpu_spec->cpu_restore)
113                 cur_cpu_spec->cpu_restore();
114
115         return 1;
116 }
117
118 int __init early_init_dt_scan_recoverable_ranges(unsigned long node,
119                                    const char *uname, int depth, void *data)
120 {
121         int i, psize, size;
122         const __be32 *prop;
123
124         if (depth != 1 || strcmp(uname, "ibm,opal") != 0)
125                 return 0;
126
127         prop = of_get_flat_dt_prop(node, "mcheck-recoverable-ranges", &psize);
128
129         if (!prop)
130                 return 1;
131
132         pr_debug("Found machine check recoverable ranges.\n");
133
134         /*
135          * Calculate number of available entries.
136          *
137          * Each recoverable address range entry is (start address, len,
138          * recovery address), 2 cells each for start and recovery address,
139          * 1 cell for len, totalling 5 cells per entry.
140          */
141         mc_recoverable_range_len = psize / (sizeof(*prop) * 5);
142
143         /* Sanity check */
144         if (!mc_recoverable_range_len)
145                 return 1;
146
147         /* Size required to hold all the entries. */
148         size = mc_recoverable_range_len *
149                         sizeof(struct mcheck_recoverable_range);
150
151         /*
152          * Allocate a buffer to hold the MC recoverable ranges. We would be
153          * accessing them in real mode, hence it needs to be within
154          * RMO region.
155          */
156         mc_recoverable_range =__va(memblock_alloc_base(size, __alignof__(u64),
157                                                         ppc64_rma_size));
158         memset(mc_recoverable_range, 0, size);
159
160         for (i = 0; i < mc_recoverable_range_len; i++) {
161                 mc_recoverable_range[i].start_addr =
162                                         of_read_number(prop + (i * 5) + 0, 2);
163                 mc_recoverable_range[i].end_addr =
164                                         mc_recoverable_range[i].start_addr +
165                                         of_read_number(prop + (i * 5) + 2, 1);
166                 mc_recoverable_range[i].recover_addr =
167                                         of_read_number(prop + (i * 5) + 3, 2);
168
169                 pr_debug("Machine check recoverable range: %llx..%llx: %llx\n",
170                                 mc_recoverable_range[i].start_addr,
171                                 mc_recoverable_range[i].end_addr,
172                                 mc_recoverable_range[i].recover_addr);
173         }
174         return 1;
175 }
176
177 static int __init opal_register_exception_handlers(void)
178 {
179 #ifdef __BIG_ENDIAN__
180         u64 glue;
181
182         if (!(powerpc_firmware_features & FW_FEATURE_OPAL))
183                 return -ENODEV;
184
185         /* Hookup some exception handlers except machine check. We use the
186          * fwnmi area at 0x7000 to provide the glue space to OPAL
187          */
188         glue = 0x7000;
189
190         /*
191          * Check if we are running on newer firmware that exports
192          * OPAL_HANDLE_HMI token. If yes, then don't ask OPAL to patch
193          * the HMI interrupt and we catch it directly in Linux.
194          *
195          * For older firmware (i.e currently released POWER8 System Firmware
196          * as of today <= SV810_087), we fallback to old behavior and let OPAL
197          * patch the HMI vector and handle it inside OPAL firmware.
198          *
199          * For newer firmware (in development/yet to be released) we will
200          * start catching/handling HMI directly in Linux.
201          */
202         if (!opal_check_token(OPAL_HANDLE_HMI)) {
203                 pr_info("Old firmware detected, OPAL handles HMIs.\n");
204                 opal_register_exception_handler(
205                                 OPAL_HYPERVISOR_MAINTENANCE_HANDLER,
206                                 0, glue);
207                 glue += 128;
208         }
209
210         opal_register_exception_handler(OPAL_SOFTPATCH_HANDLER, 0, glue);
211 #endif
212
213         return 0;
214 }
215 machine_early_initcall(powernv, opal_register_exception_handlers);
216
217 /*
218  * Opal message notifier based on message type. Allow subscribers to get
219  * notified for specific messgae type.
220  */
221 int opal_message_notifier_register(enum opal_msg_type msg_type,
222                                         struct notifier_block *nb)
223 {
224         if (!nb || msg_type >= OPAL_MSG_TYPE_MAX) {
225                 pr_warning("%s: Invalid arguments, msg_type:%d\n",
226                            __func__, msg_type);
227                 return -EINVAL;
228         }
229
230         return atomic_notifier_chain_register(
231                                 &opal_msg_notifier_head[msg_type], nb);
232 }
233 EXPORT_SYMBOL_GPL(opal_message_notifier_register);
234
235 int opal_message_notifier_unregister(enum opal_msg_type msg_type,
236                                      struct notifier_block *nb)
237 {
238         return atomic_notifier_chain_unregister(
239                         &opal_msg_notifier_head[msg_type], nb);
240 }
241 EXPORT_SYMBOL_GPL(opal_message_notifier_unregister);
242
243 static void opal_message_do_notify(uint32_t msg_type, void *msg)
244 {
245         /* notify subscribers */
246         atomic_notifier_call_chain(&opal_msg_notifier_head[msg_type],
247                                         msg_type, msg);
248 }
249
250 static void opal_handle_message(void)
251 {
252         s64 ret;
253         /*
254          * TODO: pre-allocate a message buffer depending on opal-msg-size
255          * value in /proc/device-tree.
256          */
257         static struct opal_msg msg;
258         u32 type;
259
260         ret = opal_get_msg(__pa(&msg), sizeof(msg));
261         /* No opal message pending. */
262         if (ret == OPAL_RESOURCE)
263                 return;
264
265         /* check for errors. */
266         if (ret) {
267                 pr_warning("%s: Failed to retrieve opal message, err=%lld\n",
268                                 __func__, ret);
269                 return;
270         }
271
272         type = be32_to_cpu(msg.msg_type);
273
274         /* Sanity check */
275         if (type >= OPAL_MSG_TYPE_MAX) {
276                 pr_warn_once("%s: Unknown message type: %u\n", __func__, type);
277                 return;
278         }
279         opal_message_do_notify(type, (void *)&msg);
280 }
281
282 static irqreturn_t opal_message_notify(int irq, void *data)
283 {
284         opal_handle_message();
285         return IRQ_HANDLED;
286 }
287
288 static int __init opal_message_init(void)
289 {
290         int ret, i, irq;
291
292         for (i = 0; i < OPAL_MSG_TYPE_MAX; i++)
293                 ATOMIC_INIT_NOTIFIER_HEAD(&opal_msg_notifier_head[i]);
294
295         irq = opal_event_request(ilog2(OPAL_EVENT_MSG_PENDING));
296         if (!irq) {
297                 pr_err("%s: Can't register OPAL event irq (%d)\n",
298                        __func__, irq);
299                 return irq;
300         }
301
302         ret = request_irq(irq, opal_message_notify,
303                         IRQ_TYPE_LEVEL_HIGH, "opal-msg", NULL);
304         if (ret) {
305                 pr_err("%s: Can't request OPAL event irq (%d)\n",
306                        __func__, ret);
307                 return ret;
308         }
309
310         return 0;
311 }
312
313 int opal_get_chars(uint32_t vtermno, char *buf, int count)
314 {
315         s64 rc;
316         __be64 evt, len;
317
318         if (!opal.entry)
319                 return -ENODEV;
320         opal_poll_events(&evt);
321         if ((be64_to_cpu(evt) & OPAL_EVENT_CONSOLE_INPUT) == 0)
322                 return 0;
323         len = cpu_to_be64(count);
324         rc = opal_console_read(vtermno, &len, buf);
325         if (rc == OPAL_SUCCESS)
326                 return be64_to_cpu(len);
327         return 0;
328 }
329
330 int opal_put_chars(uint32_t vtermno, const char *data, int total_len)
331 {
332         int written = 0;
333         __be64 olen;
334         s64 len, rc;
335         unsigned long flags;
336         __be64 evt;
337
338         if (!opal.entry)
339                 return -ENODEV;
340
341         /* We want put_chars to be atomic to avoid mangling of hvsi
342          * packets. To do that, we first test for room and return
343          * -EAGAIN if there isn't enough.
344          *
345          * Unfortunately, opal_console_write_buffer_space() doesn't
346          * appear to work on opal v1, so we just assume there is
347          * enough room and be done with it
348          */
349         spin_lock_irqsave(&opal_write_lock, flags);
350         rc = opal_console_write_buffer_space(vtermno, &olen);
351         len = be64_to_cpu(olen);
352         if (rc || len < total_len) {
353                 spin_unlock_irqrestore(&opal_write_lock, flags);
354                 /* Closed -> drop characters */
355                 if (rc)
356                         return total_len;
357                 opal_poll_events(NULL);
358                 return -EAGAIN;
359         }
360
361         /* We still try to handle partial completions, though they
362          * should no longer happen.
363          */
364         rc = OPAL_BUSY;
365         while(total_len > 0 && (rc == OPAL_BUSY ||
366                                 rc == OPAL_BUSY_EVENT || rc == OPAL_SUCCESS)) {
367                 olen = cpu_to_be64(total_len);
368                 rc = opal_console_write(vtermno, &olen, data);
369                 len = be64_to_cpu(olen);
370
371                 /* Closed or other error drop */
372                 if (rc != OPAL_SUCCESS && rc != OPAL_BUSY &&
373                     rc != OPAL_BUSY_EVENT) {
374                         written = total_len;
375                         break;
376                 }
377                 if (rc == OPAL_SUCCESS) {
378                         total_len -= len;
379                         data += len;
380                         written += len;
381                 }
382                 /* This is a bit nasty but we need that for the console to
383                  * flush when there aren't any interrupts. We will clean
384                  * things a bit later to limit that to synchronous path
385                  * such as the kernel console and xmon/udbg
386                  */
387                 do
388                         opal_poll_events(&evt);
389                 while(rc == OPAL_SUCCESS &&
390                         (be64_to_cpu(evt) & OPAL_EVENT_CONSOLE_OUTPUT));
391         }
392         spin_unlock_irqrestore(&opal_write_lock, flags);
393         return written;
394 }
395
396 static int opal_recover_mce(struct pt_regs *regs,
397                                         struct machine_check_event *evt)
398 {
399         int recovered = 0;
400         uint64_t ea = get_mce_fault_addr(evt);
401
402         if (!(regs->msr & MSR_RI)) {
403                 /* If MSR_RI isn't set, we cannot recover */
404                 recovered = 0;
405         } else if (evt->disposition == MCE_DISPOSITION_RECOVERED) {
406                 /* Platform corrected itself */
407                 recovered = 1;
408         } else if (ea && !is_kernel_addr(ea)) {
409                 /*
410                  * Faulting address is not in kernel text. We should be fine.
411                  * We need to find which process uses this address.
412                  * For now, kill the task if we have received exception when
413                  * in userspace.
414                  *
415                  * TODO: Queue up this address for hwpoisioning later.
416                  */
417                 if (user_mode(regs) && !is_global_init(current)) {
418                         _exception(SIGBUS, regs, BUS_MCEERR_AR, regs->nip);
419                         recovered = 1;
420                 } else
421                         recovered = 0;
422         } else if (user_mode(regs) && !is_global_init(current) &&
423                 evt->severity == MCE_SEV_ERROR_SYNC) {
424                 /*
425                  * If we have received a synchronous error when in userspace
426                  * kill the task.
427                  */
428                 _exception(SIGBUS, regs, BUS_MCEERR_AR, regs->nip);
429                 recovered = 1;
430         }
431         return recovered;
432 }
433
434 int opal_machine_check(struct pt_regs *regs)
435 {
436         struct machine_check_event evt;
437         int ret;
438
439         if (!get_mce_event(&evt, MCE_EVENT_RELEASE))
440                 return 0;
441
442         /* Print things out */
443         if (evt.version != MCE_V1) {
444                 pr_err("Machine Check Exception, Unknown event version %d !\n",
445                        evt.version);
446                 return 0;
447         }
448         machine_check_print_event_info(&evt);
449
450         if (opal_recover_mce(regs, &evt))
451                 return 1;
452
453         /*
454          * Unrecovered machine check, we are heading to panic path.
455          *
456          * We may have hit this MCE in very early stage of kernel
457          * initialization even before opal-prd has started running. If
458          * this is the case then this MCE error may go un-noticed or
459          * un-analyzed if we go down panic path. We need to inform
460          * BMC/OCC about this error so that they can collect relevant
461          * data for error analysis before rebooting.
462          * Use opal_cec_reboot2(OPAL_REBOOT_PLATFORM_ERROR) to do so.
463          * This function may not return on BMC based system.
464          */
465         ret = opal_cec_reboot2(OPAL_REBOOT_PLATFORM_ERROR,
466                         "Unrecoverable Machine Check exception");
467         if (ret == OPAL_UNSUPPORTED) {
468                 pr_emerg("Reboot type %d not supported\n",
469                                         OPAL_REBOOT_PLATFORM_ERROR);
470         }
471
472         /*
473          * We reached here. There can be three possibilities:
474          * 1. We are running on a firmware level that do not support
475          *    opal_cec_reboot2()
476          * 2. We are running on a firmware level that do not support
477          *    OPAL_REBOOT_PLATFORM_ERROR reboot type.
478          * 3. We are running on FSP based system that does not need opal
479          *    to trigger checkstop explicitly for error analysis. The FSP
480          *    PRD component would have already got notified about this
481          *    error through other channels.
482          *
483          * If hardware marked this as an unrecoverable MCE, we are
484          * going to panic anyway. Even if it didn't, it's not safe to
485          * continue at this point, so we should explicitly panic.
486          */
487
488         panic("PowerNV Unrecovered Machine Check");
489         return 0;
490 }
491
492 /* Early hmi handler called in real mode. */
493 int opal_hmi_exception_early(struct pt_regs *regs)
494 {
495         s64 rc;
496
497         /*
498          * call opal hmi handler. Pass paca address as token.
499          * The return value OPAL_SUCCESS is an indication that there is
500          * an HMI event generated waiting to pull by Linux.
501          */
502         rc = opal_handle_hmi();
503         if (rc == OPAL_SUCCESS) {
504                 local_paca->hmi_event_available = 1;
505                 return 1;
506         }
507         return 0;
508 }
509
510 /* HMI exception handler called in virtual mode during check_irq_replay. */
511 int opal_handle_hmi_exception(struct pt_regs *regs)
512 {
513         s64 rc;
514         __be64 evt = 0;
515
516         /*
517          * Check if HMI event is available.
518          * if Yes, then call opal_poll_events to pull opal messages and
519          * process them.
520          */
521         if (!local_paca->hmi_event_available)
522                 return 0;
523
524         local_paca->hmi_event_available = 0;
525         rc = opal_poll_events(&evt);
526         if (rc == OPAL_SUCCESS && evt)
527                 opal_handle_events(be64_to_cpu(evt));
528
529         return 1;
530 }
531
532 static uint64_t find_recovery_address(uint64_t nip)
533 {
534         int i;
535
536         for (i = 0; i < mc_recoverable_range_len; i++)
537                 if ((nip >= mc_recoverable_range[i].start_addr) &&
538                     (nip < mc_recoverable_range[i].end_addr))
539                     return mc_recoverable_range[i].recover_addr;
540         return 0;
541 }
542
543 bool opal_mce_check_early_recovery(struct pt_regs *regs)
544 {
545         uint64_t recover_addr = 0;
546
547         if (!opal.base || !opal.size)
548                 goto out;
549
550         if ((regs->nip >= opal.base) &&
551                         (regs->nip < (opal.base + opal.size)))
552                 recover_addr = find_recovery_address(regs->nip);
553
554         /*
555          * Setup regs->nip to rfi into fixup address.
556          */
557         if (recover_addr)
558                 regs->nip = recover_addr;
559
560 out:
561         return !!recover_addr;
562 }
563
564 static int opal_sysfs_init(void)
565 {
566         opal_kobj = kobject_create_and_add("opal", firmware_kobj);
567         if (!opal_kobj) {
568                 pr_warn("kobject_create_and_add opal failed\n");
569                 return -ENOMEM;
570         }
571
572         return 0;
573 }
574
575 static ssize_t symbol_map_read(struct file *fp, struct kobject *kobj,
576                                struct bin_attribute *bin_attr,
577                                char *buf, loff_t off, size_t count)
578 {
579         return memory_read_from_buffer(buf, count, &off, bin_attr->private,
580                                        bin_attr->size);
581 }
582
583 static BIN_ATTR_RO(symbol_map, 0);
584
585 static void opal_export_symmap(void)
586 {
587         const __be64 *syms;
588         unsigned int size;
589         struct device_node *fw;
590         int rc;
591
592         fw = of_find_node_by_path("/ibm,opal/firmware");
593         if (!fw)
594                 return;
595         syms = of_get_property(fw, "symbol-map", &size);
596         if (!syms || size != 2 * sizeof(__be64))
597                 return;
598
599         /* Setup attributes */
600         bin_attr_symbol_map.private = __va(be64_to_cpu(syms[0]));
601         bin_attr_symbol_map.size = be64_to_cpu(syms[1]);
602
603         rc = sysfs_create_bin_file(opal_kobj, &bin_attr_symbol_map);
604         if (rc)
605                 pr_warn("Error %d creating OPAL symbols file\n", rc);
606 }
607
608 static void __init opal_dump_region_init(void)
609 {
610         void *addr;
611         uint64_t size;
612         int rc;
613
614         if (!opal_check_token(OPAL_REGISTER_DUMP_REGION))
615                 return;
616
617         /* Register kernel log buffer */
618         addr = log_buf_addr_get();
619         if (addr == NULL)
620                 return;
621
622         size = log_buf_len_get();
623         if (size == 0)
624                 return;
625
626         rc = opal_register_dump_region(OPAL_DUMP_REGION_LOG_BUF,
627                                        __pa(addr), size);
628         /* Don't warn if this is just an older OPAL that doesn't
629          * know about that call
630          */
631         if (rc && rc != OPAL_UNSUPPORTED)
632                 pr_warn("DUMP: Failed to register kernel log buffer. "
633                         "rc = %d\n", rc);
634 }
635
636 static void opal_pdev_init(struct device_node *opal_node,
637                 const char *compatible)
638 {
639         struct device_node *np;
640
641         for_each_child_of_node(opal_node, np)
642                 if (of_device_is_compatible(np, compatible))
643                         of_platform_device_create(np, NULL, NULL);
644 }
645
646 static void opal_i2c_create_devs(void)
647 {
648         struct device_node *np;
649
650         for_each_compatible_node(np, NULL, "ibm,opal-i2c")
651                 of_platform_device_create(np, NULL, NULL);
652 }
653
654 static int kopald(void *unused)
655 {
656         __be64 events;
657
658         set_freezable();
659         do {
660                 try_to_freeze();
661                 opal_poll_events(&events);
662                 opal_handle_events(be64_to_cpu(events));
663                 msleep_interruptible(opal_heartbeat);
664         } while (!kthread_should_stop());
665
666         return 0;
667 }
668
669 static void opal_init_heartbeat(void)
670 {
671         /* Old firwmware, we assume the HVC heartbeat is sufficient */
672         if (of_property_read_u32(opal_node, "ibm,heartbeat-ms",
673                                  &opal_heartbeat) != 0)
674                 opal_heartbeat = 0;
675
676         if (opal_heartbeat)
677                 kthread_run(kopald, NULL, "kopald");
678 }
679
680 static int __init opal_init(void)
681 {
682         struct device_node *np, *consoles, *leds;
683         int rc;
684
685         opal_node = of_find_node_by_path("/ibm,opal");
686         if (!opal_node) {
687                 pr_warn("Device node not found\n");
688                 return -ENODEV;
689         }
690
691         /* Register OPAL consoles if any ports */
692         consoles = of_find_node_by_path("/ibm,opal/consoles");
693         if (consoles) {
694                 for_each_child_of_node(consoles, np) {
695                         if (strcmp(np->name, "serial"))
696                                 continue;
697                         of_platform_device_create(np, NULL, NULL);
698                 }
699                 of_node_put(consoles);
700         }
701
702         /* Initialise OPAL messaging system */
703         opal_message_init();
704
705         /* Initialise OPAL asynchronous completion interface */
706         opal_async_comp_init();
707
708         /* Initialise OPAL sensor interface */
709         opal_sensor_init();
710
711         /* Initialise OPAL hypervisor maintainence interrupt handling */
712         opal_hmi_handler_init();
713
714         /* Create i2c platform devices */
715         opal_i2c_create_devs();
716
717         /* Setup a heatbeat thread if requested by OPAL */
718         opal_init_heartbeat();
719
720         /* Create leds platform devices */
721         leds = of_find_node_by_path("/ibm,opal/leds");
722         if (leds) {
723                 of_platform_device_create(leds, "opal_leds", NULL);
724                 of_node_put(leds);
725         }
726
727         /* Initialise OPAL message log interface */
728         opal_msglog_init();
729
730         /* Create "opal" kobject under /sys/firmware */
731         rc = opal_sysfs_init();
732         if (rc == 0) {
733                 /* Export symbol map to userspace */
734                 opal_export_symmap();
735                 /* Setup dump region interface */
736                 opal_dump_region_init();
737                 /* Setup error log interface */
738                 rc = opal_elog_init();
739                 /* Setup code update interface */
740                 opal_flash_update_init();
741                 /* Setup platform dump extract interface */
742                 opal_platform_dump_init();
743                 /* Setup system parameters interface */
744                 opal_sys_param_init();
745                 /* Setup message log sysfs interface. */
746                 opal_msglog_sysfs_init();
747         }
748
749         /* Initialize platform devices: IPMI backend, PRD & flash interface */
750         opal_pdev_init(opal_node, "ibm,opal-ipmi");
751         opal_pdev_init(opal_node, "ibm,opal-flash");
752         opal_pdev_init(opal_node, "ibm,opal-prd");
753
754         /* Initialise OPAL kmsg dumper for flushing console on panic */
755         opal_kmsg_init();
756
757         return 0;
758 }
759 machine_subsys_initcall(powernv, opal_init);
760
761 void opal_shutdown(void)
762 {
763         long rc = OPAL_BUSY;
764
765         opal_event_shutdown();
766
767         /*
768          * Then sync with OPAL which ensure anything that can
769          * potentially write to our memory has completed such
770          * as an ongoing dump retrieval
771          */
772         while (rc == OPAL_BUSY || rc == OPAL_BUSY_EVENT) {
773                 rc = opal_sync_host_reboot();
774                 if (rc == OPAL_BUSY)
775                         opal_poll_events(NULL);
776                 else
777                         mdelay(10);
778         }
779
780         /* Unregister memory dump region */
781         if (opal_check_token(OPAL_UNREGISTER_DUMP_REGION))
782                 opal_unregister_dump_region(OPAL_DUMP_REGION_LOG_BUF);
783 }
784
785 /* Export this so that test modules can use it */
786 EXPORT_SYMBOL_GPL(opal_invalid_call);
787 EXPORT_SYMBOL_GPL(opal_xscom_read);
788 EXPORT_SYMBOL_GPL(opal_xscom_write);
789 EXPORT_SYMBOL_GPL(opal_ipmi_send);
790 EXPORT_SYMBOL_GPL(opal_ipmi_recv);
791 EXPORT_SYMBOL_GPL(opal_flash_read);
792 EXPORT_SYMBOL_GPL(opal_flash_write);
793 EXPORT_SYMBOL_GPL(opal_flash_erase);
794 EXPORT_SYMBOL_GPL(opal_prd_msg);
795
796 /* Convert a region of vmalloc memory to an opal sg list */
797 struct opal_sg_list *opal_vmalloc_to_sg_list(void *vmalloc_addr,
798                                              unsigned long vmalloc_size)
799 {
800         struct opal_sg_list *sg, *first = NULL;
801         unsigned long i = 0;
802
803         sg = kzalloc(PAGE_SIZE, GFP_KERNEL);
804         if (!sg)
805                 goto nomem;
806
807         first = sg;
808
809         while (vmalloc_size > 0) {
810                 uint64_t data = vmalloc_to_pfn(vmalloc_addr) << PAGE_SHIFT;
811                 uint64_t length = min(vmalloc_size, PAGE_SIZE);
812
813                 sg->entry[i].data = cpu_to_be64(data);
814                 sg->entry[i].length = cpu_to_be64(length);
815                 i++;
816
817                 if (i >= SG_ENTRIES_PER_NODE) {
818                         struct opal_sg_list *next;
819
820                         next = kzalloc(PAGE_SIZE, GFP_KERNEL);
821                         if (!next)
822                                 goto nomem;
823
824                         sg->length = cpu_to_be64(
825                                         i * sizeof(struct opal_sg_entry) + 16);
826                         i = 0;
827                         sg->next = cpu_to_be64(__pa(next));
828                         sg = next;
829                 }
830
831                 vmalloc_addr += length;
832                 vmalloc_size -= length;
833         }
834
835         sg->length = cpu_to_be64(i * sizeof(struct opal_sg_entry) + 16);
836
837         return first;
838
839 nomem:
840         pr_err("%s : Failed to allocate memory\n", __func__);
841         opal_free_sg_list(first);
842         return NULL;
843 }
844
845 void opal_free_sg_list(struct opal_sg_list *sg)
846 {
847         while (sg) {
848                 uint64_t next = be64_to_cpu(sg->next);
849
850                 kfree(sg);
851
852                 if (next)
853                         sg = __va(next);
854                 else
855                         sg = NULL;
856         }
857 }
858
859 int opal_error_code(int rc)
860 {
861         switch (rc) {
862         case OPAL_SUCCESS:              return 0;
863
864         case OPAL_PARAMETER:            return -EINVAL;
865         case OPAL_ASYNC_COMPLETION:     return -EINPROGRESS;
866         case OPAL_BUSY_EVENT:           return -EBUSY;
867         case OPAL_NO_MEM:               return -ENOMEM;
868         case OPAL_PERMISSION:           return -EPERM;
869
870         case OPAL_UNSUPPORTED:          return -EIO;
871         case OPAL_HARDWARE:             return -EIO;
872         case OPAL_INTERNAL_ERROR:       return -EIO;
873         default:
874                 pr_err("%s: unexpected OPAL error %d\n", __func__, rc);
875                 return -EIO;
876         }
877 }
878
879 EXPORT_SYMBOL_GPL(opal_poll_events);
880 EXPORT_SYMBOL_GPL(opal_rtc_read);
881 EXPORT_SYMBOL_GPL(opal_rtc_write);
882 EXPORT_SYMBOL_GPL(opal_tpo_read);
883 EXPORT_SYMBOL_GPL(opal_tpo_write);
884 EXPORT_SYMBOL_GPL(opal_i2c_request);
885 /* Export these symbols for PowerNV LED class driver */
886 EXPORT_SYMBOL_GPL(opal_leds_get_ind);
887 EXPORT_SYMBOL_GPL(opal_leds_set_ind);