]> git.karo-electronics.de Git - mv-sheeva.git/blob - drivers/char/ipmi/ipmi_si_intf.c
Merge branch 'for-paul-38-rebased' of git://gitorious.org/linux-omap-dss2/linux
[mv-sheeva.git] / drivers / char / ipmi / ipmi_si_intf.c
1 /*
2  * ipmi_si.c
3  *
4  * The interface to the IPMI driver for the system interfaces (KCS, SMIC,
5  * BT).
6  *
7  * Author: MontaVista Software, Inc.
8  *         Corey Minyard <minyard@mvista.com>
9  *         source@mvista.com
10  *
11  * Copyright 2002 MontaVista Software Inc.
12  * Copyright 2006 IBM Corp., Christian Krafft <krafft@de.ibm.com>
13  *
14  *  This program is free software; you can redistribute it and/or modify it
15  *  under the terms of the GNU General Public License as published by the
16  *  Free Software Foundation; either version 2 of the License, or (at your
17  *  option) any later version.
18  *
19  *
20  *  THIS SOFTWARE IS PROVIDED ``AS IS'' AND ANY EXPRESS OR IMPLIED
21  *  WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
22  *  MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
23  *  IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
24  *  INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
25  *  BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS
26  *  OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
27  *  ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR
28  *  TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE
29  *  USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
30  *
31  *  You should have received a copy of the GNU General Public License along
32  *  with this program; if not, write to the Free Software Foundation, Inc.,
33  *  675 Mass Ave, Cambridge, MA 02139, USA.
34  */
35
36 /*
37  * This file holds the "policy" for the interface to the SMI state
38  * machine.  It does the configuration, handles timers and interrupts,
39  * and drives the real SMI state machine.
40  */
41
42 #include <linux/module.h>
43 #include <linux/moduleparam.h>
44 #include <asm/system.h>
45 #include <linux/sched.h>
46 #include <linux/timer.h>
47 #include <linux/errno.h>
48 #include <linux/spinlock.h>
49 #include <linux/slab.h>
50 #include <linux/delay.h>
51 #include <linux/list.h>
52 #include <linux/pci.h>
53 #include <linux/ioport.h>
54 #include <linux/notifier.h>
55 #include <linux/mutex.h>
56 #include <linux/kthread.h>
57 #include <asm/irq.h>
58 #include <linux/interrupt.h>
59 #include <linux/rcupdate.h>
60 #include <linux/ipmi_smi.h>
61 #include <asm/io.h>
62 #include "ipmi_si_sm.h"
63 #include <linux/init.h>
64 #include <linux/dmi.h>
65 #include <linux/string.h>
66 #include <linux/ctype.h>
67 #include <linux/pnp.h>
68
69 #ifdef CONFIG_PPC_OF
70 #include <linux/of_device.h>
71 #include <linux/of_platform.h>
72 #include <linux/of_address.h>
73 #include <linux/of_irq.h>
74 #endif
75
76 #define PFX "ipmi_si: "
77
78 /* Measure times between events in the driver. */
79 #undef DEBUG_TIMING
80
81 /* Call every 10 ms. */
82 #define SI_TIMEOUT_TIME_USEC    10000
83 #define SI_USEC_PER_JIFFY       (1000000/HZ)
84 #define SI_TIMEOUT_JIFFIES      (SI_TIMEOUT_TIME_USEC/SI_USEC_PER_JIFFY)
85 #define SI_SHORT_TIMEOUT_USEC  250 /* .25ms when the SM request a
86                                       short timeout */
87
88 enum si_intf_state {
89         SI_NORMAL,
90         SI_GETTING_FLAGS,
91         SI_GETTING_EVENTS,
92         SI_CLEARING_FLAGS,
93         SI_CLEARING_FLAGS_THEN_SET_IRQ,
94         SI_GETTING_MESSAGES,
95         SI_ENABLE_INTERRUPTS1,
96         SI_ENABLE_INTERRUPTS2,
97         SI_DISABLE_INTERRUPTS1,
98         SI_DISABLE_INTERRUPTS2
99         /* FIXME - add watchdog stuff. */
100 };
101
102 /* Some BT-specific defines we need here. */
103 #define IPMI_BT_INTMASK_REG             2
104 #define IPMI_BT_INTMASK_CLEAR_IRQ_BIT   2
105 #define IPMI_BT_INTMASK_ENABLE_IRQ_BIT  1
106
107 enum si_type {
108     SI_KCS, SI_SMIC, SI_BT
109 };
110 static char *si_to_str[] = { "kcs", "smic", "bt" };
111
112 enum ipmi_addr_src {
113         SI_INVALID = 0, SI_HOTMOD, SI_HARDCODED, SI_SPMI, SI_ACPI, SI_SMBIOS,
114         SI_PCI, SI_DEVICETREE, SI_DEFAULT
115 };
116 static char *ipmi_addr_src_to_str[] = { NULL, "hotmod", "hardcoded", "SPMI",
117                                         "ACPI", "SMBIOS", "PCI",
118                                         "device-tree", "default" };
119
120 #define DEVICE_NAME "ipmi_si"
121
122 static struct platform_driver ipmi_driver = {
123         .driver = {
124                 .name = DEVICE_NAME,
125                 .bus = &platform_bus_type
126         }
127 };
128
129
130 /*
131  * Indexes into stats[] in smi_info below.
132  */
133 enum si_stat_indexes {
134         /*
135          * Number of times the driver requested a timer while an operation
136          * was in progress.
137          */
138         SI_STAT_short_timeouts = 0,
139
140         /*
141          * Number of times the driver requested a timer while nothing was in
142          * progress.
143          */
144         SI_STAT_long_timeouts,
145
146         /* Number of times the interface was idle while being polled. */
147         SI_STAT_idles,
148
149         /* Number of interrupts the driver handled. */
150         SI_STAT_interrupts,
151
152         /* Number of time the driver got an ATTN from the hardware. */
153         SI_STAT_attentions,
154
155         /* Number of times the driver requested flags from the hardware. */
156         SI_STAT_flag_fetches,
157
158         /* Number of times the hardware didn't follow the state machine. */
159         SI_STAT_hosed_count,
160
161         /* Number of completed messages. */
162         SI_STAT_complete_transactions,
163
164         /* Number of IPMI events received from the hardware. */
165         SI_STAT_events,
166
167         /* Number of watchdog pretimeouts. */
168         SI_STAT_watchdog_pretimeouts,
169
170         /* Number of asyncronous messages received. */
171         SI_STAT_incoming_messages,
172
173
174         /* This *must* remain last, add new values above this. */
175         SI_NUM_STATS
176 };
177
178 struct smi_info {
179         int                    intf_num;
180         ipmi_smi_t             intf;
181         struct si_sm_data      *si_sm;
182         struct si_sm_handlers  *handlers;
183         enum si_type           si_type;
184         spinlock_t             si_lock;
185         spinlock_t             msg_lock;
186         struct list_head       xmit_msgs;
187         struct list_head       hp_xmit_msgs;
188         struct ipmi_smi_msg    *curr_msg;
189         enum si_intf_state     si_state;
190
191         /*
192          * Used to handle the various types of I/O that can occur with
193          * IPMI
194          */
195         struct si_sm_io io;
196         int (*io_setup)(struct smi_info *info);
197         void (*io_cleanup)(struct smi_info *info);
198         int (*irq_setup)(struct smi_info *info);
199         void (*irq_cleanup)(struct smi_info *info);
200         unsigned int io_size;
201         enum ipmi_addr_src addr_source; /* ACPI, PCI, SMBIOS, hardcode, etc. */
202         void (*addr_source_cleanup)(struct smi_info *info);
203         void *addr_source_data;
204
205         /*
206          * Per-OEM handler, called from handle_flags().  Returns 1
207          * when handle_flags() needs to be re-run or 0 indicating it
208          * set si_state itself.
209          */
210         int (*oem_data_avail_handler)(struct smi_info *smi_info);
211
212         /*
213          * Flags from the last GET_MSG_FLAGS command, used when an ATTN
214          * is set to hold the flags until we are done handling everything
215          * from the flags.
216          */
217 #define RECEIVE_MSG_AVAIL       0x01
218 #define EVENT_MSG_BUFFER_FULL   0x02
219 #define WDT_PRE_TIMEOUT_INT     0x08
220 #define OEM0_DATA_AVAIL     0x20
221 #define OEM1_DATA_AVAIL     0x40
222 #define OEM2_DATA_AVAIL     0x80
223 #define OEM_DATA_AVAIL      (OEM0_DATA_AVAIL | \
224                              OEM1_DATA_AVAIL | \
225                              OEM2_DATA_AVAIL)
226         unsigned char       msg_flags;
227
228         /* Does the BMC have an event buffer? */
229         char                has_event_buffer;
230
231         /*
232          * If set to true, this will request events the next time the
233          * state machine is idle.
234          */
235         atomic_t            req_events;
236
237         /*
238          * If true, run the state machine to completion on every send
239          * call.  Generally used after a panic to make sure stuff goes
240          * out.
241          */
242         int                 run_to_completion;
243
244         /* The I/O port of an SI interface. */
245         int                 port;
246
247         /*
248          * The space between start addresses of the two ports.  For
249          * instance, if the first port is 0xca2 and the spacing is 4, then
250          * the second port is 0xca6.
251          */
252         unsigned int        spacing;
253
254         /* zero if no irq; */
255         int                 irq;
256
257         /* The timer for this si. */
258         struct timer_list   si_timer;
259
260         /* The time (in jiffies) the last timeout occurred at. */
261         unsigned long       last_timeout_jiffies;
262
263         /* Used to gracefully stop the timer without race conditions. */
264         atomic_t            stop_operation;
265
266         /*
267          * The driver will disable interrupts when it gets into a
268          * situation where it cannot handle messages due to lack of
269          * memory.  Once that situation clears up, it will re-enable
270          * interrupts.
271          */
272         int interrupt_disabled;
273
274         /* From the get device id response... */
275         struct ipmi_device_id device_id;
276
277         /* Driver model stuff. */
278         struct device *dev;
279         struct platform_device *pdev;
280
281         /*
282          * True if we allocated the device, false if it came from
283          * someplace else (like PCI).
284          */
285         int dev_registered;
286
287         /* Slave address, could be reported from DMI. */
288         unsigned char slave_addr;
289
290         /* Counters and things for the proc filesystem. */
291         atomic_t stats[SI_NUM_STATS];
292
293         struct task_struct *thread;
294
295         struct list_head link;
296 };
297
298 #define smi_inc_stat(smi, stat) \
299         atomic_inc(&(smi)->stats[SI_STAT_ ## stat])
300 #define smi_get_stat(smi, stat) \
301         ((unsigned int) atomic_read(&(smi)->stats[SI_STAT_ ## stat]))
302
303 #define SI_MAX_PARMS 4
304
305 static int force_kipmid[SI_MAX_PARMS];
306 static int num_force_kipmid;
307 #ifdef CONFIG_PCI
308 static int pci_registered;
309 #endif
310 #ifdef CONFIG_ACPI
311 static int pnp_registered;
312 #endif
313 #ifdef CONFIG_PPC_OF
314 static int of_registered;
315 #endif
316
317 static unsigned int kipmid_max_busy_us[SI_MAX_PARMS];
318 static int num_max_busy_us;
319
320 static int unload_when_empty = 1;
321
322 static int add_smi(struct smi_info *smi);
323 static int try_smi_init(struct smi_info *smi);
324 static void cleanup_one_si(struct smi_info *to_clean);
325
326 static ATOMIC_NOTIFIER_HEAD(xaction_notifier_list);
327 static int register_xaction_notifier(struct notifier_block *nb)
328 {
329         return atomic_notifier_chain_register(&xaction_notifier_list, nb);
330 }
331
332 static void deliver_recv_msg(struct smi_info *smi_info,
333                              struct ipmi_smi_msg *msg)
334 {
335         /* Deliver the message to the upper layer with the lock
336            released. */
337
338         if (smi_info->run_to_completion) {
339                 ipmi_smi_msg_received(smi_info->intf, msg);
340         } else {
341                 spin_unlock(&(smi_info->si_lock));
342                 ipmi_smi_msg_received(smi_info->intf, msg);
343                 spin_lock(&(smi_info->si_lock));
344         }
345 }
346
347 static void return_hosed_msg(struct smi_info *smi_info, int cCode)
348 {
349         struct ipmi_smi_msg *msg = smi_info->curr_msg;
350
351         if (cCode < 0 || cCode > IPMI_ERR_UNSPECIFIED)
352                 cCode = IPMI_ERR_UNSPECIFIED;
353         /* else use it as is */
354
355         /* Make it a reponse */
356         msg->rsp[0] = msg->data[0] | 4;
357         msg->rsp[1] = msg->data[1];
358         msg->rsp[2] = cCode;
359         msg->rsp_size = 3;
360
361         smi_info->curr_msg = NULL;
362         deliver_recv_msg(smi_info, msg);
363 }
364
365 static enum si_sm_result start_next_msg(struct smi_info *smi_info)
366 {
367         int              rv;
368         struct list_head *entry = NULL;
369 #ifdef DEBUG_TIMING
370         struct timeval t;
371 #endif
372
373         /*
374          * No need to save flags, we aleady have interrupts off and we
375          * already hold the SMI lock.
376          */
377         if (!smi_info->run_to_completion)
378                 spin_lock(&(smi_info->msg_lock));
379
380         /* Pick the high priority queue first. */
381         if (!list_empty(&(smi_info->hp_xmit_msgs))) {
382                 entry = smi_info->hp_xmit_msgs.next;
383         } else if (!list_empty(&(smi_info->xmit_msgs))) {
384                 entry = smi_info->xmit_msgs.next;
385         }
386
387         if (!entry) {
388                 smi_info->curr_msg = NULL;
389                 rv = SI_SM_IDLE;
390         } else {
391                 int err;
392
393                 list_del(entry);
394                 smi_info->curr_msg = list_entry(entry,
395                                                 struct ipmi_smi_msg,
396                                                 link);
397 #ifdef DEBUG_TIMING
398                 do_gettimeofday(&t);
399                 printk(KERN_DEBUG "**Start2: %d.%9.9d\n", t.tv_sec, t.tv_usec);
400 #endif
401                 err = atomic_notifier_call_chain(&xaction_notifier_list,
402                                 0, smi_info);
403                 if (err & NOTIFY_STOP_MASK) {
404                         rv = SI_SM_CALL_WITHOUT_DELAY;
405                         goto out;
406                 }
407                 err = smi_info->handlers->start_transaction(
408                         smi_info->si_sm,
409                         smi_info->curr_msg->data,
410                         smi_info->curr_msg->data_size);
411                 if (err)
412                         return_hosed_msg(smi_info, err);
413
414                 rv = SI_SM_CALL_WITHOUT_DELAY;
415         }
416  out:
417         if (!smi_info->run_to_completion)
418                 spin_unlock(&(smi_info->msg_lock));
419
420         return rv;
421 }
422
423 static void start_enable_irq(struct smi_info *smi_info)
424 {
425         unsigned char msg[2];
426
427         /*
428          * If we are enabling interrupts, we have to tell the
429          * BMC to use them.
430          */
431         msg[0] = (IPMI_NETFN_APP_REQUEST << 2);
432         msg[1] = IPMI_GET_BMC_GLOBAL_ENABLES_CMD;
433
434         smi_info->handlers->start_transaction(smi_info->si_sm, msg, 2);
435         smi_info->si_state = SI_ENABLE_INTERRUPTS1;
436 }
437
438 static void start_disable_irq(struct smi_info *smi_info)
439 {
440         unsigned char msg[2];
441
442         msg[0] = (IPMI_NETFN_APP_REQUEST << 2);
443         msg[1] = IPMI_GET_BMC_GLOBAL_ENABLES_CMD;
444
445         smi_info->handlers->start_transaction(smi_info->si_sm, msg, 2);
446         smi_info->si_state = SI_DISABLE_INTERRUPTS1;
447 }
448
449 static void start_clear_flags(struct smi_info *smi_info)
450 {
451         unsigned char msg[3];
452
453         /* Make sure the watchdog pre-timeout flag is not set at startup. */
454         msg[0] = (IPMI_NETFN_APP_REQUEST << 2);
455         msg[1] = IPMI_CLEAR_MSG_FLAGS_CMD;
456         msg[2] = WDT_PRE_TIMEOUT_INT;
457
458         smi_info->handlers->start_transaction(smi_info->si_sm, msg, 3);
459         smi_info->si_state = SI_CLEARING_FLAGS;
460 }
461
462 /*
463  * When we have a situtaion where we run out of memory and cannot
464  * allocate messages, we just leave them in the BMC and run the system
465  * polled until we can allocate some memory.  Once we have some
466  * memory, we will re-enable the interrupt.
467  */
468 static inline void disable_si_irq(struct smi_info *smi_info)
469 {
470         if ((smi_info->irq) && (!smi_info->interrupt_disabled)) {
471                 start_disable_irq(smi_info);
472                 smi_info->interrupt_disabled = 1;
473                 if (!atomic_read(&smi_info->stop_operation))
474                         mod_timer(&smi_info->si_timer,
475                                   jiffies + SI_TIMEOUT_JIFFIES);
476         }
477 }
478
479 static inline void enable_si_irq(struct smi_info *smi_info)
480 {
481         if ((smi_info->irq) && (smi_info->interrupt_disabled)) {
482                 start_enable_irq(smi_info);
483                 smi_info->interrupt_disabled = 0;
484         }
485 }
486
487 static void handle_flags(struct smi_info *smi_info)
488 {
489  retry:
490         if (smi_info->msg_flags & WDT_PRE_TIMEOUT_INT) {
491                 /* Watchdog pre-timeout */
492                 smi_inc_stat(smi_info, watchdog_pretimeouts);
493
494                 start_clear_flags(smi_info);
495                 smi_info->msg_flags &= ~WDT_PRE_TIMEOUT_INT;
496                 spin_unlock(&(smi_info->si_lock));
497                 ipmi_smi_watchdog_pretimeout(smi_info->intf);
498                 spin_lock(&(smi_info->si_lock));
499         } else if (smi_info->msg_flags & RECEIVE_MSG_AVAIL) {
500                 /* Messages available. */
501                 smi_info->curr_msg = ipmi_alloc_smi_msg();
502                 if (!smi_info->curr_msg) {
503                         disable_si_irq(smi_info);
504                         smi_info->si_state = SI_NORMAL;
505                         return;
506                 }
507                 enable_si_irq(smi_info);
508
509                 smi_info->curr_msg->data[0] = (IPMI_NETFN_APP_REQUEST << 2);
510                 smi_info->curr_msg->data[1] = IPMI_GET_MSG_CMD;
511                 smi_info->curr_msg->data_size = 2;
512
513                 smi_info->handlers->start_transaction(
514                         smi_info->si_sm,
515                         smi_info->curr_msg->data,
516                         smi_info->curr_msg->data_size);
517                 smi_info->si_state = SI_GETTING_MESSAGES;
518         } else if (smi_info->msg_flags & EVENT_MSG_BUFFER_FULL) {
519                 /* Events available. */
520                 smi_info->curr_msg = ipmi_alloc_smi_msg();
521                 if (!smi_info->curr_msg) {
522                         disable_si_irq(smi_info);
523                         smi_info->si_state = SI_NORMAL;
524                         return;
525                 }
526                 enable_si_irq(smi_info);
527
528                 smi_info->curr_msg->data[0] = (IPMI_NETFN_APP_REQUEST << 2);
529                 smi_info->curr_msg->data[1] = IPMI_READ_EVENT_MSG_BUFFER_CMD;
530                 smi_info->curr_msg->data_size = 2;
531
532                 smi_info->handlers->start_transaction(
533                         smi_info->si_sm,
534                         smi_info->curr_msg->data,
535                         smi_info->curr_msg->data_size);
536                 smi_info->si_state = SI_GETTING_EVENTS;
537         } else if (smi_info->msg_flags & OEM_DATA_AVAIL &&
538                    smi_info->oem_data_avail_handler) {
539                 if (smi_info->oem_data_avail_handler(smi_info))
540                         goto retry;
541         } else
542                 smi_info->si_state = SI_NORMAL;
543 }
544
545 static void handle_transaction_done(struct smi_info *smi_info)
546 {
547         struct ipmi_smi_msg *msg;
548 #ifdef DEBUG_TIMING
549         struct timeval t;
550
551         do_gettimeofday(&t);
552         printk(KERN_DEBUG "**Done: %d.%9.9d\n", t.tv_sec, t.tv_usec);
553 #endif
554         switch (smi_info->si_state) {
555         case SI_NORMAL:
556                 if (!smi_info->curr_msg)
557                         break;
558
559                 smi_info->curr_msg->rsp_size
560                         = smi_info->handlers->get_result(
561                                 smi_info->si_sm,
562                                 smi_info->curr_msg->rsp,
563                                 IPMI_MAX_MSG_LENGTH);
564
565                 /*
566                  * Do this here becase deliver_recv_msg() releases the
567                  * lock, and a new message can be put in during the
568                  * time the lock is released.
569                  */
570                 msg = smi_info->curr_msg;
571                 smi_info->curr_msg = NULL;
572                 deliver_recv_msg(smi_info, msg);
573                 break;
574
575         case SI_GETTING_FLAGS:
576         {
577                 unsigned char msg[4];
578                 unsigned int  len;
579
580                 /* We got the flags from the SMI, now handle them. */
581                 len = smi_info->handlers->get_result(smi_info->si_sm, msg, 4);
582                 if (msg[2] != 0) {
583                         /* Error fetching flags, just give up for now. */
584                         smi_info->si_state = SI_NORMAL;
585                 } else if (len < 4) {
586                         /*
587                          * Hmm, no flags.  That's technically illegal, but
588                          * don't use uninitialized data.
589                          */
590                         smi_info->si_state = SI_NORMAL;
591                 } else {
592                         smi_info->msg_flags = msg[3];
593                         handle_flags(smi_info);
594                 }
595                 break;
596         }
597
598         case SI_CLEARING_FLAGS:
599         case SI_CLEARING_FLAGS_THEN_SET_IRQ:
600         {
601                 unsigned char msg[3];
602
603                 /* We cleared the flags. */
604                 smi_info->handlers->get_result(smi_info->si_sm, msg, 3);
605                 if (msg[2] != 0) {
606                         /* Error clearing flags */
607                         dev_warn(smi_info->dev,
608                                  "Error clearing flags: %2.2x\n", msg[2]);
609                 }
610                 if (smi_info->si_state == SI_CLEARING_FLAGS_THEN_SET_IRQ)
611                         start_enable_irq(smi_info);
612                 else
613                         smi_info->si_state = SI_NORMAL;
614                 break;
615         }
616
617         case SI_GETTING_EVENTS:
618         {
619                 smi_info->curr_msg->rsp_size
620                         = smi_info->handlers->get_result(
621                                 smi_info->si_sm,
622                                 smi_info->curr_msg->rsp,
623                                 IPMI_MAX_MSG_LENGTH);
624
625                 /*
626                  * Do this here becase deliver_recv_msg() releases the
627                  * lock, and a new message can be put in during the
628                  * time the lock is released.
629                  */
630                 msg = smi_info->curr_msg;
631                 smi_info->curr_msg = NULL;
632                 if (msg->rsp[2] != 0) {
633                         /* Error getting event, probably done. */
634                         msg->done(msg);
635
636                         /* Take off the event flag. */
637                         smi_info->msg_flags &= ~EVENT_MSG_BUFFER_FULL;
638                         handle_flags(smi_info);
639                 } else {
640                         smi_inc_stat(smi_info, events);
641
642                         /*
643                          * Do this before we deliver the message
644                          * because delivering the message releases the
645                          * lock and something else can mess with the
646                          * state.
647                          */
648                         handle_flags(smi_info);
649
650                         deliver_recv_msg(smi_info, msg);
651                 }
652                 break;
653         }
654
655         case SI_GETTING_MESSAGES:
656         {
657                 smi_info->curr_msg->rsp_size
658                         = smi_info->handlers->get_result(
659                                 smi_info->si_sm,
660                                 smi_info->curr_msg->rsp,
661                                 IPMI_MAX_MSG_LENGTH);
662
663                 /*
664                  * Do this here becase deliver_recv_msg() releases the
665                  * lock, and a new message can be put in during the
666                  * time the lock is released.
667                  */
668                 msg = smi_info->curr_msg;
669                 smi_info->curr_msg = NULL;
670                 if (msg->rsp[2] != 0) {
671                         /* Error getting event, probably done. */
672                         msg->done(msg);
673
674                         /* Take off the msg flag. */
675                         smi_info->msg_flags &= ~RECEIVE_MSG_AVAIL;
676                         handle_flags(smi_info);
677                 } else {
678                         smi_inc_stat(smi_info, incoming_messages);
679
680                         /*
681                          * Do this before we deliver the message
682                          * because delivering the message releases the
683                          * lock and something else can mess with the
684                          * state.
685                          */
686                         handle_flags(smi_info);
687
688                         deliver_recv_msg(smi_info, msg);
689                 }
690                 break;
691         }
692
693         case SI_ENABLE_INTERRUPTS1:
694         {
695                 unsigned char msg[4];
696
697                 /* We got the flags from the SMI, now handle them. */
698                 smi_info->handlers->get_result(smi_info->si_sm, msg, 4);
699                 if (msg[2] != 0) {
700                         dev_warn(smi_info->dev, "Could not enable interrupts"
701                                  ", failed get, using polled mode.\n");
702                         smi_info->si_state = SI_NORMAL;
703                 } else {
704                         msg[0] = (IPMI_NETFN_APP_REQUEST << 2);
705                         msg[1] = IPMI_SET_BMC_GLOBAL_ENABLES_CMD;
706                         msg[2] = (msg[3] |
707                                   IPMI_BMC_RCV_MSG_INTR |
708                                   IPMI_BMC_EVT_MSG_INTR);
709                         smi_info->handlers->start_transaction(
710                                 smi_info->si_sm, msg, 3);
711                         smi_info->si_state = SI_ENABLE_INTERRUPTS2;
712                 }
713                 break;
714         }
715
716         case SI_ENABLE_INTERRUPTS2:
717         {
718                 unsigned char msg[4];
719
720                 /* We got the flags from the SMI, now handle them. */
721                 smi_info->handlers->get_result(smi_info->si_sm, msg, 4);
722                 if (msg[2] != 0)
723                         dev_warn(smi_info->dev, "Could not enable interrupts"
724                                  ", failed set, using polled mode.\n");
725                 else
726                         smi_info->interrupt_disabled = 0;
727                 smi_info->si_state = SI_NORMAL;
728                 break;
729         }
730
731         case SI_DISABLE_INTERRUPTS1:
732         {
733                 unsigned char msg[4];
734
735                 /* We got the flags from the SMI, now handle them. */
736                 smi_info->handlers->get_result(smi_info->si_sm, msg, 4);
737                 if (msg[2] != 0) {
738                         dev_warn(smi_info->dev, "Could not disable interrupts"
739                                  ", failed get.\n");
740                         smi_info->si_state = SI_NORMAL;
741                 } else {
742                         msg[0] = (IPMI_NETFN_APP_REQUEST << 2);
743                         msg[1] = IPMI_SET_BMC_GLOBAL_ENABLES_CMD;
744                         msg[2] = (msg[3] &
745                                   ~(IPMI_BMC_RCV_MSG_INTR |
746                                     IPMI_BMC_EVT_MSG_INTR));
747                         smi_info->handlers->start_transaction(
748                                 smi_info->si_sm, msg, 3);
749                         smi_info->si_state = SI_DISABLE_INTERRUPTS2;
750                 }
751                 break;
752         }
753
754         case SI_DISABLE_INTERRUPTS2:
755         {
756                 unsigned char msg[4];
757
758                 /* We got the flags from the SMI, now handle them. */
759                 smi_info->handlers->get_result(smi_info->si_sm, msg, 4);
760                 if (msg[2] != 0) {
761                         dev_warn(smi_info->dev, "Could not disable interrupts"
762                                  ", failed set.\n");
763                 }
764                 smi_info->si_state = SI_NORMAL;
765                 break;
766         }
767         }
768 }
769
770 /*
771  * Called on timeouts and events.  Timeouts should pass the elapsed
772  * time, interrupts should pass in zero.  Must be called with
773  * si_lock held and interrupts disabled.
774  */
775 static enum si_sm_result smi_event_handler(struct smi_info *smi_info,
776                                            int time)
777 {
778         enum si_sm_result si_sm_result;
779
780  restart:
781         /*
782          * There used to be a loop here that waited a little while
783          * (around 25us) before giving up.  That turned out to be
784          * pointless, the minimum delays I was seeing were in the 300us
785          * range, which is far too long to wait in an interrupt.  So
786          * we just run until the state machine tells us something
787          * happened or it needs a delay.
788          */
789         si_sm_result = smi_info->handlers->event(smi_info->si_sm, time);
790         time = 0;
791         while (si_sm_result == SI_SM_CALL_WITHOUT_DELAY)
792                 si_sm_result = smi_info->handlers->event(smi_info->si_sm, 0);
793
794         if (si_sm_result == SI_SM_TRANSACTION_COMPLETE) {
795                 smi_inc_stat(smi_info, complete_transactions);
796
797                 handle_transaction_done(smi_info);
798                 si_sm_result = smi_info->handlers->event(smi_info->si_sm, 0);
799         } else if (si_sm_result == SI_SM_HOSED) {
800                 smi_inc_stat(smi_info, hosed_count);
801
802                 /*
803                  * Do the before return_hosed_msg, because that
804                  * releases the lock.
805                  */
806                 smi_info->si_state = SI_NORMAL;
807                 if (smi_info->curr_msg != NULL) {
808                         /*
809                          * If we were handling a user message, format
810                          * a response to send to the upper layer to
811                          * tell it about the error.
812                          */
813                         return_hosed_msg(smi_info, IPMI_ERR_UNSPECIFIED);
814                 }
815                 si_sm_result = smi_info->handlers->event(smi_info->si_sm, 0);
816         }
817
818         /*
819          * We prefer handling attn over new messages.  But don't do
820          * this if there is not yet an upper layer to handle anything.
821          */
822         if (likely(smi_info->intf) && si_sm_result == SI_SM_ATTN) {
823                 unsigned char msg[2];
824
825                 smi_inc_stat(smi_info, attentions);
826
827                 /*
828                  * Got a attn, send down a get message flags to see
829                  * what's causing it.  It would be better to handle
830                  * this in the upper layer, but due to the way
831                  * interrupts work with the SMI, that's not really
832                  * possible.
833                  */
834                 msg[0] = (IPMI_NETFN_APP_REQUEST << 2);
835                 msg[1] = IPMI_GET_MSG_FLAGS_CMD;
836
837                 smi_info->handlers->start_transaction(
838                         smi_info->si_sm, msg, 2);
839                 smi_info->si_state = SI_GETTING_FLAGS;
840                 goto restart;
841         }
842
843         /* If we are currently idle, try to start the next message. */
844         if (si_sm_result == SI_SM_IDLE) {
845                 smi_inc_stat(smi_info, idles);
846
847                 si_sm_result = start_next_msg(smi_info);
848                 if (si_sm_result != SI_SM_IDLE)
849                         goto restart;
850         }
851
852         if ((si_sm_result == SI_SM_IDLE)
853             && (atomic_read(&smi_info->req_events))) {
854                 /*
855                  * We are idle and the upper layer requested that I fetch
856                  * events, so do so.
857                  */
858                 atomic_set(&smi_info->req_events, 0);
859
860                 smi_info->curr_msg = ipmi_alloc_smi_msg();
861                 if (!smi_info->curr_msg)
862                         goto out;
863
864                 smi_info->curr_msg->data[0] = (IPMI_NETFN_APP_REQUEST << 2);
865                 smi_info->curr_msg->data[1] = IPMI_READ_EVENT_MSG_BUFFER_CMD;
866                 smi_info->curr_msg->data_size = 2;
867
868                 smi_info->handlers->start_transaction(
869                         smi_info->si_sm,
870                         smi_info->curr_msg->data,
871                         smi_info->curr_msg->data_size);
872                 smi_info->si_state = SI_GETTING_EVENTS;
873                 goto restart;
874         }
875  out:
876         return si_sm_result;
877 }
878
879 static void sender(void                *send_info,
880                    struct ipmi_smi_msg *msg,
881                    int                 priority)
882 {
883         struct smi_info   *smi_info = send_info;
884         enum si_sm_result result;
885         unsigned long     flags;
886 #ifdef DEBUG_TIMING
887         struct timeval    t;
888 #endif
889
890         if (atomic_read(&smi_info->stop_operation)) {
891                 msg->rsp[0] = msg->data[0] | 4;
892                 msg->rsp[1] = msg->data[1];
893                 msg->rsp[2] = IPMI_ERR_UNSPECIFIED;
894                 msg->rsp_size = 3;
895                 deliver_recv_msg(smi_info, msg);
896                 return;
897         }
898
899 #ifdef DEBUG_TIMING
900         do_gettimeofday(&t);
901         printk("**Enqueue: %d.%9.9d\n", t.tv_sec, t.tv_usec);
902 #endif
903
904         mod_timer(&smi_info->si_timer, jiffies + SI_TIMEOUT_JIFFIES);
905
906         if (smi_info->thread)
907                 wake_up_process(smi_info->thread);
908
909         if (smi_info->run_to_completion) {
910                 /*
911                  * If we are running to completion, then throw it in
912                  * the list and run transactions until everything is
913                  * clear.  Priority doesn't matter here.
914                  */
915
916                 /*
917                  * Run to completion means we are single-threaded, no
918                  * need for locks.
919                  */
920                 list_add_tail(&(msg->link), &(smi_info->xmit_msgs));
921
922                 result = smi_event_handler(smi_info, 0);
923                 while (result != SI_SM_IDLE) {
924                         udelay(SI_SHORT_TIMEOUT_USEC);
925                         result = smi_event_handler(smi_info,
926                                                    SI_SHORT_TIMEOUT_USEC);
927                 }
928                 return;
929         }
930
931         spin_lock_irqsave(&smi_info->msg_lock, flags);
932         if (priority > 0)
933                 list_add_tail(&msg->link, &smi_info->hp_xmit_msgs);
934         else
935                 list_add_tail(&msg->link, &smi_info->xmit_msgs);
936         spin_unlock_irqrestore(&smi_info->msg_lock, flags);
937
938         spin_lock_irqsave(&smi_info->si_lock, flags);
939         if (smi_info->si_state == SI_NORMAL && smi_info->curr_msg == NULL)
940                 start_next_msg(smi_info);
941         spin_unlock_irqrestore(&smi_info->si_lock, flags);
942 }
943
944 static void set_run_to_completion(void *send_info, int i_run_to_completion)
945 {
946         struct smi_info   *smi_info = send_info;
947         enum si_sm_result result;
948
949         smi_info->run_to_completion = i_run_to_completion;
950         if (i_run_to_completion) {
951                 result = smi_event_handler(smi_info, 0);
952                 while (result != SI_SM_IDLE) {
953                         udelay(SI_SHORT_TIMEOUT_USEC);
954                         result = smi_event_handler(smi_info,
955                                                    SI_SHORT_TIMEOUT_USEC);
956                 }
957         }
958 }
959
960 /*
961  * Use -1 in the nsec value of the busy waiting timespec to tell that
962  * we are spinning in kipmid looking for something and not delaying
963  * between checks
964  */
965 static inline void ipmi_si_set_not_busy(struct timespec *ts)
966 {
967         ts->tv_nsec = -1;
968 }
969 static inline int ipmi_si_is_busy(struct timespec *ts)
970 {
971         return ts->tv_nsec != -1;
972 }
973
974 static int ipmi_thread_busy_wait(enum si_sm_result smi_result,
975                                  const struct smi_info *smi_info,
976                                  struct timespec *busy_until)
977 {
978         unsigned int max_busy_us = 0;
979
980         if (smi_info->intf_num < num_max_busy_us)
981                 max_busy_us = kipmid_max_busy_us[smi_info->intf_num];
982         if (max_busy_us == 0 || smi_result != SI_SM_CALL_WITH_DELAY)
983                 ipmi_si_set_not_busy(busy_until);
984         else if (!ipmi_si_is_busy(busy_until)) {
985                 getnstimeofday(busy_until);
986                 timespec_add_ns(busy_until, max_busy_us*NSEC_PER_USEC);
987         } else {
988                 struct timespec now;
989                 getnstimeofday(&now);
990                 if (unlikely(timespec_compare(&now, busy_until) > 0)) {
991                         ipmi_si_set_not_busy(busy_until);
992                         return 0;
993                 }
994         }
995         return 1;
996 }
997
998
999 /*
1000  * A busy-waiting loop for speeding up IPMI operation.
1001  *
1002  * Lousy hardware makes this hard.  This is only enabled for systems
1003  * that are not BT and do not have interrupts.  It starts spinning
1004  * when an operation is complete or until max_busy tells it to stop
1005  * (if that is enabled).  See the paragraph on kimid_max_busy_us in
1006  * Documentation/IPMI.txt for details.
1007  */
1008 static int ipmi_thread(void *data)
1009 {
1010         struct smi_info *smi_info = data;
1011         unsigned long flags;
1012         enum si_sm_result smi_result;
1013         struct timespec busy_until;
1014
1015         ipmi_si_set_not_busy(&busy_until);
1016         set_user_nice(current, 19);
1017         while (!kthread_should_stop()) {
1018                 int busy_wait;
1019
1020                 spin_lock_irqsave(&(smi_info->si_lock), flags);
1021                 smi_result = smi_event_handler(smi_info, 0);
1022                 spin_unlock_irqrestore(&(smi_info->si_lock), flags);
1023                 busy_wait = ipmi_thread_busy_wait(smi_result, smi_info,
1024                                                   &busy_until);
1025                 if (smi_result == SI_SM_CALL_WITHOUT_DELAY)
1026                         ; /* do nothing */
1027                 else if (smi_result == SI_SM_CALL_WITH_DELAY && busy_wait)
1028                         schedule();
1029                 else if (smi_result == SI_SM_IDLE)
1030                         schedule_timeout_interruptible(100);
1031                 else
1032                         schedule_timeout_interruptible(1);
1033         }
1034         return 0;
1035 }
1036
1037
1038 static void poll(void *send_info)
1039 {
1040         struct smi_info *smi_info = send_info;
1041         unsigned long flags;
1042
1043         /*
1044          * Make sure there is some delay in the poll loop so we can
1045          * drive time forward and timeout things.
1046          */
1047         udelay(10);
1048         spin_lock_irqsave(&smi_info->si_lock, flags);
1049         smi_event_handler(smi_info, 10);
1050         spin_unlock_irqrestore(&smi_info->si_lock, flags);
1051 }
1052
1053 static void request_events(void *send_info)
1054 {
1055         struct smi_info *smi_info = send_info;
1056
1057         if (atomic_read(&smi_info->stop_operation) ||
1058                                 !smi_info->has_event_buffer)
1059                 return;
1060
1061         atomic_set(&smi_info->req_events, 1);
1062 }
1063
1064 static int initialized;
1065
1066 static void smi_timeout(unsigned long data)
1067 {
1068         struct smi_info   *smi_info = (struct smi_info *) data;
1069         enum si_sm_result smi_result;
1070         unsigned long     flags;
1071         unsigned long     jiffies_now;
1072         long              time_diff;
1073         long              timeout;
1074 #ifdef DEBUG_TIMING
1075         struct timeval    t;
1076 #endif
1077
1078         spin_lock_irqsave(&(smi_info->si_lock), flags);
1079 #ifdef DEBUG_TIMING
1080         do_gettimeofday(&t);
1081         printk(KERN_DEBUG "**Timer: %d.%9.9d\n", t.tv_sec, t.tv_usec);
1082 #endif
1083         jiffies_now = jiffies;
1084         time_diff = (((long)jiffies_now - (long)smi_info->last_timeout_jiffies)
1085                      * SI_USEC_PER_JIFFY);
1086         smi_result = smi_event_handler(smi_info, time_diff);
1087
1088         spin_unlock_irqrestore(&(smi_info->si_lock), flags);
1089
1090         smi_info->last_timeout_jiffies = jiffies_now;
1091
1092         if ((smi_info->irq) && (!smi_info->interrupt_disabled)) {
1093                 /* Running with interrupts, only do long timeouts. */
1094                 timeout = jiffies + SI_TIMEOUT_JIFFIES;
1095                 smi_inc_stat(smi_info, long_timeouts);
1096                 goto do_mod_timer;
1097         }
1098
1099         /*
1100          * If the state machine asks for a short delay, then shorten
1101          * the timer timeout.
1102          */
1103         if (smi_result == SI_SM_CALL_WITH_DELAY) {
1104                 smi_inc_stat(smi_info, short_timeouts);
1105                 timeout = jiffies + 1;
1106         } else {
1107                 smi_inc_stat(smi_info, long_timeouts);
1108                 timeout = jiffies + SI_TIMEOUT_JIFFIES;
1109         }
1110
1111  do_mod_timer:
1112         if (smi_result != SI_SM_IDLE)
1113                 mod_timer(&(smi_info->si_timer), timeout);
1114 }
1115
1116 static irqreturn_t si_irq_handler(int irq, void *data)
1117 {
1118         struct smi_info *smi_info = data;
1119         unsigned long   flags;
1120 #ifdef DEBUG_TIMING
1121         struct timeval  t;
1122 #endif
1123
1124         spin_lock_irqsave(&(smi_info->si_lock), flags);
1125
1126         smi_inc_stat(smi_info, interrupts);
1127
1128 #ifdef DEBUG_TIMING
1129         do_gettimeofday(&t);
1130         printk(KERN_DEBUG "**Interrupt: %d.%9.9d\n", t.tv_sec, t.tv_usec);
1131 #endif
1132         smi_event_handler(smi_info, 0);
1133         spin_unlock_irqrestore(&(smi_info->si_lock), flags);
1134         return IRQ_HANDLED;
1135 }
1136
1137 static irqreturn_t si_bt_irq_handler(int irq, void *data)
1138 {
1139         struct smi_info *smi_info = data;
1140         /* We need to clear the IRQ flag for the BT interface. */
1141         smi_info->io.outputb(&smi_info->io, IPMI_BT_INTMASK_REG,
1142                              IPMI_BT_INTMASK_CLEAR_IRQ_BIT
1143                              | IPMI_BT_INTMASK_ENABLE_IRQ_BIT);
1144         return si_irq_handler(irq, data);
1145 }
1146
1147 static int smi_start_processing(void       *send_info,
1148                                 ipmi_smi_t intf)
1149 {
1150         struct smi_info *new_smi = send_info;
1151         int             enable = 0;
1152
1153         new_smi->intf = intf;
1154
1155         /* Try to claim any interrupts. */
1156         if (new_smi->irq_setup)
1157                 new_smi->irq_setup(new_smi);
1158
1159         /* Set up the timer that drives the interface. */
1160         setup_timer(&new_smi->si_timer, smi_timeout, (long)new_smi);
1161         new_smi->last_timeout_jiffies = jiffies;
1162         mod_timer(&new_smi->si_timer, jiffies + SI_TIMEOUT_JIFFIES);
1163
1164         /*
1165          * Check if the user forcefully enabled the daemon.
1166          */
1167         if (new_smi->intf_num < num_force_kipmid)
1168                 enable = force_kipmid[new_smi->intf_num];
1169         /*
1170          * The BT interface is efficient enough to not need a thread,
1171          * and there is no need for a thread if we have interrupts.
1172          */
1173         else if ((new_smi->si_type != SI_BT) && (!new_smi->irq))
1174                 enable = 1;
1175
1176         if (enable) {
1177                 new_smi->thread = kthread_run(ipmi_thread, new_smi,
1178                                               "kipmi%d", new_smi->intf_num);
1179                 if (IS_ERR(new_smi->thread)) {
1180                         dev_notice(new_smi->dev, "Could not start"
1181                                    " kernel thread due to error %ld, only using"
1182                                    " timers to drive the interface\n",
1183                                    PTR_ERR(new_smi->thread));
1184                         new_smi->thread = NULL;
1185                 }
1186         }
1187
1188         return 0;
1189 }
1190
1191 static void set_maintenance_mode(void *send_info, int enable)
1192 {
1193         struct smi_info   *smi_info = send_info;
1194
1195         if (!enable)
1196                 atomic_set(&smi_info->req_events, 0);
1197 }
1198
1199 static struct ipmi_smi_handlers handlers = {
1200         .owner                  = THIS_MODULE,
1201         .start_processing       = smi_start_processing,
1202         .sender                 = sender,
1203         .request_events         = request_events,
1204         .set_maintenance_mode   = set_maintenance_mode,
1205         .set_run_to_completion  = set_run_to_completion,
1206         .poll                   = poll,
1207 };
1208
1209 /*
1210  * There can be 4 IO ports passed in (with or without IRQs), 4 addresses,
1211  * a default IO port, and 1 ACPI/SPMI address.  That sets SI_MAX_DRIVERS.
1212  */
1213
1214 static LIST_HEAD(smi_infos);
1215 static DEFINE_MUTEX(smi_infos_lock);
1216 static int smi_num; /* Used to sequence the SMIs */
1217
1218 #define DEFAULT_REGSPACING      1
1219 #define DEFAULT_REGSIZE         1
1220
1221 static int           si_trydefaults = 1;
1222 static char          *si_type[SI_MAX_PARMS];
1223 #define MAX_SI_TYPE_STR 30
1224 static char          si_type_str[MAX_SI_TYPE_STR];
1225 static unsigned long addrs[SI_MAX_PARMS];
1226 static unsigned int num_addrs;
1227 static unsigned int  ports[SI_MAX_PARMS];
1228 static unsigned int num_ports;
1229 static int           irqs[SI_MAX_PARMS];
1230 static unsigned int num_irqs;
1231 static int           regspacings[SI_MAX_PARMS];
1232 static unsigned int num_regspacings;
1233 static int           regsizes[SI_MAX_PARMS];
1234 static unsigned int num_regsizes;
1235 static int           regshifts[SI_MAX_PARMS];
1236 static unsigned int num_regshifts;
1237 static int slave_addrs[SI_MAX_PARMS]; /* Leaving 0 chooses the default value */
1238 static unsigned int num_slave_addrs;
1239
1240 #define IPMI_IO_ADDR_SPACE  0
1241 #define IPMI_MEM_ADDR_SPACE 1
1242 static char *addr_space_to_str[] = { "i/o", "mem" };
1243
1244 static int hotmod_handler(const char *val, struct kernel_param *kp);
1245
1246 module_param_call(hotmod, hotmod_handler, NULL, NULL, 0200);
1247 MODULE_PARM_DESC(hotmod, "Add and remove interfaces.  See"
1248                  " Documentation/IPMI.txt in the kernel sources for the"
1249                  " gory details.");
1250
1251 module_param_named(trydefaults, si_trydefaults, bool, 0);
1252 MODULE_PARM_DESC(trydefaults, "Setting this to 'false' will disable the"
1253                  " default scan of the KCS and SMIC interface at the standard"
1254                  " address");
1255 module_param_string(type, si_type_str, MAX_SI_TYPE_STR, 0);
1256 MODULE_PARM_DESC(type, "Defines the type of each interface, each"
1257                  " interface separated by commas.  The types are 'kcs',"
1258                  " 'smic', and 'bt'.  For example si_type=kcs,bt will set"
1259                  " the first interface to kcs and the second to bt");
1260 module_param_array(addrs, ulong, &num_addrs, 0);
1261 MODULE_PARM_DESC(addrs, "Sets the memory address of each interface, the"
1262                  " addresses separated by commas.  Only use if an interface"
1263                  " is in memory.  Otherwise, set it to zero or leave"
1264                  " it blank.");
1265 module_param_array(ports, uint, &num_ports, 0);
1266 MODULE_PARM_DESC(ports, "Sets the port address of each interface, the"
1267                  " addresses separated by commas.  Only use if an interface"
1268                  " is a port.  Otherwise, set it to zero or leave"
1269                  " it blank.");
1270 module_param_array(irqs, int, &num_irqs, 0);
1271 MODULE_PARM_DESC(irqs, "Sets the interrupt of each interface, the"
1272                  " addresses separated by commas.  Only use if an interface"
1273                  " has an interrupt.  Otherwise, set it to zero or leave"
1274                  " it blank.");
1275 module_param_array(regspacings, int, &num_regspacings, 0);
1276 MODULE_PARM_DESC(regspacings, "The number of bytes between the start address"
1277                  " and each successive register used by the interface.  For"
1278                  " instance, if the start address is 0xca2 and the spacing"
1279                  " is 2, then the second address is at 0xca4.  Defaults"
1280                  " to 1.");
1281 module_param_array(regsizes, int, &num_regsizes, 0);
1282 MODULE_PARM_DESC(regsizes, "The size of the specific IPMI register in bytes."
1283                  " This should generally be 1, 2, 4, or 8 for an 8-bit,"
1284                  " 16-bit, 32-bit, or 64-bit register.  Use this if you"
1285                  " the 8-bit IPMI register has to be read from a larger"
1286                  " register.");
1287 module_param_array(regshifts, int, &num_regshifts, 0);
1288 MODULE_PARM_DESC(regshifts, "The amount to shift the data read from the."
1289                  " IPMI register, in bits.  For instance, if the data"
1290                  " is read from a 32-bit word and the IPMI data is in"
1291                  " bit 8-15, then the shift would be 8");
1292 module_param_array(slave_addrs, int, &num_slave_addrs, 0);
1293 MODULE_PARM_DESC(slave_addrs, "Set the default IPMB slave address for"
1294                  " the controller.  Normally this is 0x20, but can be"
1295                  " overridden by this parm.  This is an array indexed"
1296                  " by interface number.");
1297 module_param_array(force_kipmid, int, &num_force_kipmid, 0);
1298 MODULE_PARM_DESC(force_kipmid, "Force the kipmi daemon to be enabled (1) or"
1299                  " disabled(0).  Normally the IPMI driver auto-detects"
1300                  " this, but the value may be overridden by this parm.");
1301 module_param(unload_when_empty, int, 0);
1302 MODULE_PARM_DESC(unload_when_empty, "Unload the module if no interfaces are"
1303                  " specified or found, default is 1.  Setting to 0"
1304                  " is useful for hot add of devices using hotmod.");
1305 module_param_array(kipmid_max_busy_us, uint, &num_max_busy_us, 0644);
1306 MODULE_PARM_DESC(kipmid_max_busy_us,
1307                  "Max time (in microseconds) to busy-wait for IPMI data before"
1308                  " sleeping. 0 (default) means to wait forever. Set to 100-500"
1309                  " if kipmid is using up a lot of CPU time.");
1310
1311
1312 static void std_irq_cleanup(struct smi_info *info)
1313 {
1314         if (info->si_type == SI_BT)
1315                 /* Disable the interrupt in the BT interface. */
1316                 info->io.outputb(&info->io, IPMI_BT_INTMASK_REG, 0);
1317         free_irq(info->irq, info);
1318 }
1319
1320 static int std_irq_setup(struct smi_info *info)
1321 {
1322         int rv;
1323
1324         if (!info->irq)
1325                 return 0;
1326
1327         if (info->si_type == SI_BT) {
1328                 rv = request_irq(info->irq,
1329                                  si_bt_irq_handler,
1330                                  IRQF_SHARED | IRQF_DISABLED,
1331                                  DEVICE_NAME,
1332                                  info);
1333                 if (!rv)
1334                         /* Enable the interrupt in the BT interface. */
1335                         info->io.outputb(&info->io, IPMI_BT_INTMASK_REG,
1336                                          IPMI_BT_INTMASK_ENABLE_IRQ_BIT);
1337         } else
1338                 rv = request_irq(info->irq,
1339                                  si_irq_handler,
1340                                  IRQF_SHARED | IRQF_DISABLED,
1341                                  DEVICE_NAME,
1342                                  info);
1343         if (rv) {
1344                 dev_warn(info->dev, "%s unable to claim interrupt %d,"
1345                          " running polled\n",
1346                          DEVICE_NAME, info->irq);
1347                 info->irq = 0;
1348         } else {
1349                 info->irq_cleanup = std_irq_cleanup;
1350                 dev_info(info->dev, "Using irq %d\n", info->irq);
1351         }
1352
1353         return rv;
1354 }
1355
1356 static unsigned char port_inb(struct si_sm_io *io, unsigned int offset)
1357 {
1358         unsigned int addr = io->addr_data;
1359
1360         return inb(addr + (offset * io->regspacing));
1361 }
1362
1363 static void port_outb(struct si_sm_io *io, unsigned int offset,
1364                       unsigned char b)
1365 {
1366         unsigned int addr = io->addr_data;
1367
1368         outb(b, addr + (offset * io->regspacing));
1369 }
1370
1371 static unsigned char port_inw(struct si_sm_io *io, unsigned int offset)
1372 {
1373         unsigned int addr = io->addr_data;
1374
1375         return (inw(addr + (offset * io->regspacing)) >> io->regshift) & 0xff;
1376 }
1377
1378 static void port_outw(struct si_sm_io *io, unsigned int offset,
1379                       unsigned char b)
1380 {
1381         unsigned int addr = io->addr_data;
1382
1383         outw(b << io->regshift, addr + (offset * io->regspacing));
1384 }
1385
1386 static unsigned char port_inl(struct si_sm_io *io, unsigned int offset)
1387 {
1388         unsigned int addr = io->addr_data;
1389
1390         return (inl(addr + (offset * io->regspacing)) >> io->regshift) & 0xff;
1391 }
1392
1393 static void port_outl(struct si_sm_io *io, unsigned int offset,
1394                       unsigned char b)
1395 {
1396         unsigned int addr = io->addr_data;
1397
1398         outl(b << io->regshift, addr+(offset * io->regspacing));
1399 }
1400
1401 static void port_cleanup(struct smi_info *info)
1402 {
1403         unsigned int addr = info->io.addr_data;
1404         int          idx;
1405
1406         if (addr) {
1407                 for (idx = 0; idx < info->io_size; idx++)
1408                         release_region(addr + idx * info->io.regspacing,
1409                                        info->io.regsize);
1410         }
1411 }
1412
1413 static int port_setup(struct smi_info *info)
1414 {
1415         unsigned int addr = info->io.addr_data;
1416         int          idx;
1417
1418         if (!addr)
1419                 return -ENODEV;
1420
1421         info->io_cleanup = port_cleanup;
1422
1423         /*
1424          * Figure out the actual inb/inw/inl/etc routine to use based
1425          * upon the register size.
1426          */
1427         switch (info->io.regsize) {
1428         case 1:
1429                 info->io.inputb = port_inb;
1430                 info->io.outputb = port_outb;
1431                 break;
1432         case 2:
1433                 info->io.inputb = port_inw;
1434                 info->io.outputb = port_outw;
1435                 break;
1436         case 4:
1437                 info->io.inputb = port_inl;
1438                 info->io.outputb = port_outl;
1439                 break;
1440         default:
1441                 dev_warn(info->dev, "Invalid register size: %d\n",
1442                          info->io.regsize);
1443                 return -EINVAL;
1444         }
1445
1446         /*
1447          * Some BIOSes reserve disjoint I/O regions in their ACPI
1448          * tables.  This causes problems when trying to register the
1449          * entire I/O region.  Therefore we must register each I/O
1450          * port separately.
1451          */
1452         for (idx = 0; idx < info->io_size; idx++) {
1453                 if (request_region(addr + idx * info->io.regspacing,
1454                                    info->io.regsize, DEVICE_NAME) == NULL) {
1455                         /* Undo allocations */
1456                         while (idx--) {
1457                                 release_region(addr + idx * info->io.regspacing,
1458                                                info->io.regsize);
1459                         }
1460                         return -EIO;
1461                 }
1462         }
1463         return 0;
1464 }
1465
1466 static unsigned char intf_mem_inb(struct si_sm_io *io, unsigned int offset)
1467 {
1468         return readb((io->addr)+(offset * io->regspacing));
1469 }
1470
1471 static void intf_mem_outb(struct si_sm_io *io, unsigned int offset,
1472                      unsigned char b)
1473 {
1474         writeb(b, (io->addr)+(offset * io->regspacing));
1475 }
1476
1477 static unsigned char intf_mem_inw(struct si_sm_io *io, unsigned int offset)
1478 {
1479         return (readw((io->addr)+(offset * io->regspacing)) >> io->regshift)
1480                 & 0xff;
1481 }
1482
1483 static void intf_mem_outw(struct si_sm_io *io, unsigned int offset,
1484                      unsigned char b)
1485 {
1486         writeb(b << io->regshift, (io->addr)+(offset * io->regspacing));
1487 }
1488
1489 static unsigned char intf_mem_inl(struct si_sm_io *io, unsigned int offset)
1490 {
1491         return (readl((io->addr)+(offset * io->regspacing)) >> io->regshift)
1492                 & 0xff;
1493 }
1494
1495 static void intf_mem_outl(struct si_sm_io *io, unsigned int offset,
1496                      unsigned char b)
1497 {
1498         writel(b << io->regshift, (io->addr)+(offset * io->regspacing));
1499 }
1500
1501 #ifdef readq
1502 static unsigned char mem_inq(struct si_sm_io *io, unsigned int offset)
1503 {
1504         return (readq((io->addr)+(offset * io->regspacing)) >> io->regshift)
1505                 & 0xff;
1506 }
1507
1508 static void mem_outq(struct si_sm_io *io, unsigned int offset,
1509                      unsigned char b)
1510 {
1511         writeq(b << io->regshift, (io->addr)+(offset * io->regspacing));
1512 }
1513 #endif
1514
1515 static void mem_cleanup(struct smi_info *info)
1516 {
1517         unsigned long addr = info->io.addr_data;
1518         int           mapsize;
1519
1520         if (info->io.addr) {
1521                 iounmap(info->io.addr);
1522
1523                 mapsize = ((info->io_size * info->io.regspacing)
1524                            - (info->io.regspacing - info->io.regsize));
1525
1526                 release_mem_region(addr, mapsize);
1527         }
1528 }
1529
1530 static int mem_setup(struct smi_info *info)
1531 {
1532         unsigned long addr = info->io.addr_data;
1533         int           mapsize;
1534
1535         if (!addr)
1536                 return -ENODEV;
1537
1538         info->io_cleanup = mem_cleanup;
1539
1540         /*
1541          * Figure out the actual readb/readw/readl/etc routine to use based
1542          * upon the register size.
1543          */
1544         switch (info->io.regsize) {
1545         case 1:
1546                 info->io.inputb = intf_mem_inb;
1547                 info->io.outputb = intf_mem_outb;
1548                 break;
1549         case 2:
1550                 info->io.inputb = intf_mem_inw;
1551                 info->io.outputb = intf_mem_outw;
1552                 break;
1553         case 4:
1554                 info->io.inputb = intf_mem_inl;
1555                 info->io.outputb = intf_mem_outl;
1556                 break;
1557 #ifdef readq
1558         case 8:
1559                 info->io.inputb = mem_inq;
1560                 info->io.outputb = mem_outq;
1561                 break;
1562 #endif
1563         default:
1564                 dev_warn(info->dev, "Invalid register size: %d\n",
1565                          info->io.regsize);
1566                 return -EINVAL;
1567         }
1568
1569         /*
1570          * Calculate the total amount of memory to claim.  This is an
1571          * unusual looking calculation, but it avoids claiming any
1572          * more memory than it has to.  It will claim everything
1573          * between the first address to the end of the last full
1574          * register.
1575          */
1576         mapsize = ((info->io_size * info->io.regspacing)
1577                    - (info->io.regspacing - info->io.regsize));
1578
1579         if (request_mem_region(addr, mapsize, DEVICE_NAME) == NULL)
1580                 return -EIO;
1581
1582         info->io.addr = ioremap(addr, mapsize);
1583         if (info->io.addr == NULL) {
1584                 release_mem_region(addr, mapsize);
1585                 return -EIO;
1586         }
1587         return 0;
1588 }
1589
1590 /*
1591  * Parms come in as <op1>[:op2[:op3...]].  ops are:
1592  *   add|remove,kcs|bt|smic,mem|i/o,<address>[,<opt1>[,<opt2>[,...]]]
1593  * Options are:
1594  *   rsp=<regspacing>
1595  *   rsi=<regsize>
1596  *   rsh=<regshift>
1597  *   irq=<irq>
1598  *   ipmb=<ipmb addr>
1599  */
1600 enum hotmod_op { HM_ADD, HM_REMOVE };
1601 struct hotmod_vals {
1602         char *name;
1603         int  val;
1604 };
1605 static struct hotmod_vals hotmod_ops[] = {
1606         { "add",        HM_ADD },
1607         { "remove",     HM_REMOVE },
1608         { NULL }
1609 };
1610 static struct hotmod_vals hotmod_si[] = {
1611         { "kcs",        SI_KCS },
1612         { "smic",       SI_SMIC },
1613         { "bt",         SI_BT },
1614         { NULL }
1615 };
1616 static struct hotmod_vals hotmod_as[] = {
1617         { "mem",        IPMI_MEM_ADDR_SPACE },
1618         { "i/o",        IPMI_IO_ADDR_SPACE },
1619         { NULL }
1620 };
1621
1622 static int parse_str(struct hotmod_vals *v, int *val, char *name, char **curr)
1623 {
1624         char *s;
1625         int  i;
1626
1627         s = strchr(*curr, ',');
1628         if (!s) {
1629                 printk(KERN_WARNING PFX "No hotmod %s given.\n", name);
1630                 return -EINVAL;
1631         }
1632         *s = '\0';
1633         s++;
1634         for (i = 0; hotmod_ops[i].name; i++) {
1635                 if (strcmp(*curr, v[i].name) == 0) {
1636                         *val = v[i].val;
1637                         *curr = s;
1638                         return 0;
1639                 }
1640         }
1641
1642         printk(KERN_WARNING PFX "Invalid hotmod %s '%s'\n", name, *curr);
1643         return -EINVAL;
1644 }
1645
1646 static int check_hotmod_int_op(const char *curr, const char *option,
1647                                const char *name, int *val)
1648 {
1649         char *n;
1650
1651         if (strcmp(curr, name) == 0) {
1652                 if (!option) {
1653                         printk(KERN_WARNING PFX
1654                                "No option given for '%s'\n",
1655                                curr);
1656                         return -EINVAL;
1657                 }
1658                 *val = simple_strtoul(option, &n, 0);
1659                 if ((*n != '\0') || (*option == '\0')) {
1660                         printk(KERN_WARNING PFX
1661                                "Bad option given for '%s'\n",
1662                                curr);
1663                         return -EINVAL;
1664                 }
1665                 return 1;
1666         }
1667         return 0;
1668 }
1669
1670 static struct smi_info *smi_info_alloc(void)
1671 {
1672         struct smi_info *info = kzalloc(sizeof(*info), GFP_KERNEL);
1673
1674         if (info) {
1675                 spin_lock_init(&info->si_lock);
1676                 spin_lock_init(&info->msg_lock);
1677         }
1678         return info;
1679 }
1680
1681 static int hotmod_handler(const char *val, struct kernel_param *kp)
1682 {
1683         char *str = kstrdup(val, GFP_KERNEL);
1684         int  rv;
1685         char *next, *curr, *s, *n, *o;
1686         enum hotmod_op op;
1687         enum si_type si_type;
1688         int  addr_space;
1689         unsigned long addr;
1690         int regspacing;
1691         int regsize;
1692         int regshift;
1693         int irq;
1694         int ipmb;
1695         int ival;
1696         int len;
1697         struct smi_info *info;
1698
1699         if (!str)
1700                 return -ENOMEM;
1701
1702         /* Kill any trailing spaces, as we can get a "\n" from echo. */
1703         len = strlen(str);
1704         ival = len - 1;
1705         while ((ival >= 0) && isspace(str[ival])) {
1706                 str[ival] = '\0';
1707                 ival--;
1708         }
1709
1710         for (curr = str; curr; curr = next) {
1711                 regspacing = 1;
1712                 regsize = 1;
1713                 regshift = 0;
1714                 irq = 0;
1715                 ipmb = 0; /* Choose the default if not specified */
1716
1717                 next = strchr(curr, ':');
1718                 if (next) {
1719                         *next = '\0';
1720                         next++;
1721                 }
1722
1723                 rv = parse_str(hotmod_ops, &ival, "operation", &curr);
1724                 if (rv)
1725                         break;
1726                 op = ival;
1727
1728                 rv = parse_str(hotmod_si, &ival, "interface type", &curr);
1729                 if (rv)
1730                         break;
1731                 si_type = ival;
1732
1733                 rv = parse_str(hotmod_as, &addr_space, "address space", &curr);
1734                 if (rv)
1735                         break;
1736
1737                 s = strchr(curr, ',');
1738                 if (s) {
1739                         *s = '\0';
1740                         s++;
1741                 }
1742                 addr = simple_strtoul(curr, &n, 0);
1743                 if ((*n != '\0') || (*curr == '\0')) {
1744                         printk(KERN_WARNING PFX "Invalid hotmod address"
1745                                " '%s'\n", curr);
1746                         break;
1747                 }
1748
1749                 while (s) {
1750                         curr = s;
1751                         s = strchr(curr, ',');
1752                         if (s) {
1753                                 *s = '\0';
1754                                 s++;
1755                         }
1756                         o = strchr(curr, '=');
1757                         if (o) {
1758                                 *o = '\0';
1759                                 o++;
1760                         }
1761                         rv = check_hotmod_int_op(curr, o, "rsp", &regspacing);
1762                         if (rv < 0)
1763                                 goto out;
1764                         else if (rv)
1765                                 continue;
1766                         rv = check_hotmod_int_op(curr, o, "rsi", &regsize);
1767                         if (rv < 0)
1768                                 goto out;
1769                         else if (rv)
1770                                 continue;
1771                         rv = check_hotmod_int_op(curr, o, "rsh", &regshift);
1772                         if (rv < 0)
1773                                 goto out;
1774                         else if (rv)
1775                                 continue;
1776                         rv = check_hotmod_int_op(curr, o, "irq", &irq);
1777                         if (rv < 0)
1778                                 goto out;
1779                         else if (rv)
1780                                 continue;
1781                         rv = check_hotmod_int_op(curr, o, "ipmb", &ipmb);
1782                         if (rv < 0)
1783                                 goto out;
1784                         else if (rv)
1785                                 continue;
1786
1787                         rv = -EINVAL;
1788                         printk(KERN_WARNING PFX
1789                                "Invalid hotmod option '%s'\n",
1790                                curr);
1791                         goto out;
1792                 }
1793
1794                 if (op == HM_ADD) {
1795                         info = smi_info_alloc();
1796                         if (!info) {
1797                                 rv = -ENOMEM;
1798                                 goto out;
1799                         }
1800
1801                         info->addr_source = SI_HOTMOD;
1802                         info->si_type = si_type;
1803                         info->io.addr_data = addr;
1804                         info->io.addr_type = addr_space;
1805                         if (addr_space == IPMI_MEM_ADDR_SPACE)
1806                                 info->io_setup = mem_setup;
1807                         else
1808                                 info->io_setup = port_setup;
1809
1810                         info->io.addr = NULL;
1811                         info->io.regspacing = regspacing;
1812                         if (!info->io.regspacing)
1813                                 info->io.regspacing = DEFAULT_REGSPACING;
1814                         info->io.regsize = regsize;
1815                         if (!info->io.regsize)
1816                                 info->io.regsize = DEFAULT_REGSPACING;
1817                         info->io.regshift = regshift;
1818                         info->irq = irq;
1819                         if (info->irq)
1820                                 info->irq_setup = std_irq_setup;
1821                         info->slave_addr = ipmb;
1822
1823                         if (!add_smi(info)) {
1824                                 if (try_smi_init(info))
1825                                         cleanup_one_si(info);
1826                         } else {
1827                                 kfree(info);
1828                         }
1829                 } else {
1830                         /* remove */
1831                         struct smi_info *e, *tmp_e;
1832
1833                         mutex_lock(&smi_infos_lock);
1834                         list_for_each_entry_safe(e, tmp_e, &smi_infos, link) {
1835                                 if (e->io.addr_type != addr_space)
1836                                         continue;
1837                                 if (e->si_type != si_type)
1838                                         continue;
1839                                 if (e->io.addr_data == addr)
1840                                         cleanup_one_si(e);
1841                         }
1842                         mutex_unlock(&smi_infos_lock);
1843                 }
1844         }
1845         rv = len;
1846  out:
1847         kfree(str);
1848         return rv;
1849 }
1850
1851 static void __devinit hardcode_find_bmc(void)
1852 {
1853         int             i;
1854         struct smi_info *info;
1855
1856         for (i = 0; i < SI_MAX_PARMS; i++) {
1857                 if (!ports[i] && !addrs[i])
1858                         continue;
1859
1860                 info = smi_info_alloc();
1861                 if (!info)
1862                         return;
1863
1864                 info->addr_source = SI_HARDCODED;
1865                 printk(KERN_INFO PFX "probing via hardcoded address\n");
1866
1867                 if (!si_type[i] || strcmp(si_type[i], "kcs") == 0) {
1868                         info->si_type = SI_KCS;
1869                 } else if (strcmp(si_type[i], "smic") == 0) {
1870                         info->si_type = SI_SMIC;
1871                 } else if (strcmp(si_type[i], "bt") == 0) {
1872                         info->si_type = SI_BT;
1873                 } else {
1874                         printk(KERN_WARNING PFX "Interface type specified "
1875                                "for interface %d, was invalid: %s\n",
1876                                i, si_type[i]);
1877                         kfree(info);
1878                         continue;
1879                 }
1880
1881                 if (ports[i]) {
1882                         /* An I/O port */
1883                         info->io_setup = port_setup;
1884                         info->io.addr_data = ports[i];
1885                         info->io.addr_type = IPMI_IO_ADDR_SPACE;
1886                 } else if (addrs[i]) {
1887                         /* A memory port */
1888                         info->io_setup = mem_setup;
1889                         info->io.addr_data = addrs[i];
1890                         info->io.addr_type = IPMI_MEM_ADDR_SPACE;
1891                 } else {
1892                         printk(KERN_WARNING PFX "Interface type specified "
1893                                "for interface %d, but port and address were "
1894                                "not set or set to zero.\n", i);
1895                         kfree(info);
1896                         continue;
1897                 }
1898
1899                 info->io.addr = NULL;
1900                 info->io.regspacing = regspacings[i];
1901                 if (!info->io.regspacing)
1902                         info->io.regspacing = DEFAULT_REGSPACING;
1903                 info->io.regsize = regsizes[i];
1904                 if (!info->io.regsize)
1905                         info->io.regsize = DEFAULT_REGSPACING;
1906                 info->io.regshift = regshifts[i];
1907                 info->irq = irqs[i];
1908                 if (info->irq)
1909                         info->irq_setup = std_irq_setup;
1910                 info->slave_addr = slave_addrs[i];
1911
1912                 if (!add_smi(info)) {
1913                         if (try_smi_init(info))
1914                                 cleanup_one_si(info);
1915                 } else {
1916                         kfree(info);
1917                 }
1918         }
1919 }
1920
1921 #ifdef CONFIG_ACPI
1922
1923 #include <linux/acpi.h>
1924
1925 /*
1926  * Once we get an ACPI failure, we don't try any more, because we go
1927  * through the tables sequentially.  Once we don't find a table, there
1928  * are no more.
1929  */
1930 static int acpi_failure;
1931
1932 /* For GPE-type interrupts. */
1933 static u32 ipmi_acpi_gpe(void *context)
1934 {
1935         struct smi_info *smi_info = context;
1936         unsigned long   flags;
1937 #ifdef DEBUG_TIMING
1938         struct timeval t;
1939 #endif
1940
1941         spin_lock_irqsave(&(smi_info->si_lock), flags);
1942
1943         smi_inc_stat(smi_info, interrupts);
1944
1945 #ifdef DEBUG_TIMING
1946         do_gettimeofday(&t);
1947         printk("**ACPI_GPE: %d.%9.9d\n", t.tv_sec, t.tv_usec);
1948 #endif
1949         smi_event_handler(smi_info, 0);
1950         spin_unlock_irqrestore(&(smi_info->si_lock), flags);
1951
1952         return ACPI_INTERRUPT_HANDLED;
1953 }
1954
1955 static void acpi_gpe_irq_cleanup(struct smi_info *info)
1956 {
1957         if (!info->irq)
1958                 return;
1959
1960         acpi_remove_gpe_handler(NULL, info->irq, &ipmi_acpi_gpe);
1961 }
1962
1963 static int acpi_gpe_irq_setup(struct smi_info *info)
1964 {
1965         acpi_status status;
1966
1967         if (!info->irq)
1968                 return 0;
1969
1970         /* FIXME - is level triggered right? */
1971         status = acpi_install_gpe_handler(NULL,
1972                                           info->irq,
1973                                           ACPI_GPE_LEVEL_TRIGGERED,
1974                                           &ipmi_acpi_gpe,
1975                                           info);
1976         if (status != AE_OK) {
1977                 dev_warn(info->dev, "%s unable to claim ACPI GPE %d,"
1978                          " running polled\n", DEVICE_NAME, info->irq);
1979                 info->irq = 0;
1980                 return -EINVAL;
1981         } else {
1982                 info->irq_cleanup = acpi_gpe_irq_cleanup;
1983                 dev_info(info->dev, "Using ACPI GPE %d\n", info->irq);
1984                 return 0;
1985         }
1986 }
1987
1988 /*
1989  * Defined at
1990  * http://h21007.www2.hp.com/portal/download/files/unprot/hpspmi.pdf
1991  */
1992 struct SPMITable {
1993         s8      Signature[4];
1994         u32     Length;
1995         u8      Revision;
1996         u8      Checksum;
1997         s8      OEMID[6];
1998         s8      OEMTableID[8];
1999         s8      OEMRevision[4];
2000         s8      CreatorID[4];
2001         s8      CreatorRevision[4];
2002         u8      InterfaceType;
2003         u8      IPMIlegacy;
2004         s16     SpecificationRevision;
2005
2006         /*
2007          * Bit 0 - SCI interrupt supported
2008          * Bit 1 - I/O APIC/SAPIC
2009          */
2010         u8      InterruptType;
2011
2012         /*
2013          * If bit 0 of InterruptType is set, then this is the SCI
2014          * interrupt in the GPEx_STS register.
2015          */
2016         u8      GPE;
2017
2018         s16     Reserved;
2019
2020         /*
2021          * If bit 1 of InterruptType is set, then this is the I/O
2022          * APIC/SAPIC interrupt.
2023          */
2024         u32     GlobalSystemInterrupt;
2025
2026         /* The actual register address. */
2027         struct acpi_generic_address addr;
2028
2029         u8      UID[4];
2030
2031         s8      spmi_id[1]; /* A '\0' terminated array starts here. */
2032 };
2033
2034 static int __devinit try_init_spmi(struct SPMITable *spmi)
2035 {
2036         struct smi_info  *info;
2037
2038         if (spmi->IPMIlegacy != 1) {
2039                 printk(KERN_INFO PFX "Bad SPMI legacy %d\n", spmi->IPMIlegacy);
2040                 return -ENODEV;
2041         }
2042
2043         info = smi_info_alloc();
2044         if (!info) {
2045                 printk(KERN_ERR PFX "Could not allocate SI data (3)\n");
2046                 return -ENOMEM;
2047         }
2048
2049         info->addr_source = SI_SPMI;
2050         printk(KERN_INFO PFX "probing via SPMI\n");
2051
2052         /* Figure out the interface type. */
2053         switch (spmi->InterfaceType) {
2054         case 1: /* KCS */
2055                 info->si_type = SI_KCS;
2056                 break;
2057         case 2: /* SMIC */
2058                 info->si_type = SI_SMIC;
2059                 break;
2060         case 3: /* BT */
2061                 info->si_type = SI_BT;
2062                 break;
2063         default:
2064                 printk(KERN_INFO PFX "Unknown ACPI/SPMI SI type %d\n",
2065                        spmi->InterfaceType);
2066                 kfree(info);
2067                 return -EIO;
2068         }
2069
2070         if (spmi->InterruptType & 1) {
2071                 /* We've got a GPE interrupt. */
2072                 info->irq = spmi->GPE;
2073                 info->irq_setup = acpi_gpe_irq_setup;
2074         } else if (spmi->InterruptType & 2) {
2075                 /* We've got an APIC/SAPIC interrupt. */
2076                 info->irq = spmi->GlobalSystemInterrupt;
2077                 info->irq_setup = std_irq_setup;
2078         } else {
2079                 /* Use the default interrupt setting. */
2080                 info->irq = 0;
2081                 info->irq_setup = NULL;
2082         }
2083
2084         if (spmi->addr.bit_width) {
2085                 /* A (hopefully) properly formed register bit width. */
2086                 info->io.regspacing = spmi->addr.bit_width / 8;
2087         } else {
2088                 info->io.regspacing = DEFAULT_REGSPACING;
2089         }
2090         info->io.regsize = info->io.regspacing;
2091         info->io.regshift = spmi->addr.bit_offset;
2092
2093         if (spmi->addr.space_id == ACPI_ADR_SPACE_SYSTEM_MEMORY) {
2094                 info->io_setup = mem_setup;
2095                 info->io.addr_type = IPMI_MEM_ADDR_SPACE;
2096         } else if (spmi->addr.space_id == ACPI_ADR_SPACE_SYSTEM_IO) {
2097                 info->io_setup = port_setup;
2098                 info->io.addr_type = IPMI_IO_ADDR_SPACE;
2099         } else {
2100                 kfree(info);
2101                 printk(KERN_WARNING PFX "Unknown ACPI I/O Address type\n");
2102                 return -EIO;
2103         }
2104         info->io.addr_data = spmi->addr.address;
2105
2106         pr_info("ipmi_si: SPMI: %s %#lx regsize %d spacing %d irq %d\n",
2107                  (info->io.addr_type == IPMI_IO_ADDR_SPACE) ? "io" : "mem",
2108                  info->io.addr_data, info->io.regsize, info->io.regspacing,
2109                  info->irq);
2110
2111         if (add_smi(info))
2112                 kfree(info);
2113
2114         return 0;
2115 }
2116
2117 static void __devinit spmi_find_bmc(void)
2118 {
2119         acpi_status      status;
2120         struct SPMITable *spmi;
2121         int              i;
2122
2123         if (acpi_disabled)
2124                 return;
2125
2126         if (acpi_failure)
2127                 return;
2128
2129         for (i = 0; ; i++) {
2130                 status = acpi_get_table(ACPI_SIG_SPMI, i+1,
2131                                         (struct acpi_table_header **)&spmi);
2132                 if (status != AE_OK)
2133                         return;
2134
2135                 try_init_spmi(spmi);
2136         }
2137 }
2138
2139 static int __devinit ipmi_pnp_probe(struct pnp_dev *dev,
2140                                     const struct pnp_device_id *dev_id)
2141 {
2142         struct acpi_device *acpi_dev;
2143         struct smi_info *info;
2144         struct resource *res, *res_second;
2145         acpi_handle handle;
2146         acpi_status status;
2147         unsigned long long tmp;
2148
2149         acpi_dev = pnp_acpi_device(dev);
2150         if (!acpi_dev)
2151                 return -ENODEV;
2152
2153         info = smi_info_alloc();
2154         if (!info)
2155                 return -ENOMEM;
2156
2157         info->addr_source = SI_ACPI;
2158         printk(KERN_INFO PFX "probing via ACPI\n");
2159
2160         handle = acpi_dev->handle;
2161
2162         /* _IFT tells us the interface type: KCS, BT, etc */
2163         status = acpi_evaluate_integer(handle, "_IFT", NULL, &tmp);
2164         if (ACPI_FAILURE(status))
2165                 goto err_free;
2166
2167         switch (tmp) {
2168         case 1:
2169                 info->si_type = SI_KCS;
2170                 break;
2171         case 2:
2172                 info->si_type = SI_SMIC;
2173                 break;
2174         case 3:
2175                 info->si_type = SI_BT;
2176                 break;
2177         default:
2178                 dev_info(&dev->dev, "unknown IPMI type %lld\n", tmp);
2179                 goto err_free;
2180         }
2181
2182         res = pnp_get_resource(dev, IORESOURCE_IO, 0);
2183         if (res) {
2184                 info->io_setup = port_setup;
2185                 info->io.addr_type = IPMI_IO_ADDR_SPACE;
2186         } else {
2187                 res = pnp_get_resource(dev, IORESOURCE_MEM, 0);
2188                 if (res) {
2189                         info->io_setup = mem_setup;
2190                         info->io.addr_type = IPMI_MEM_ADDR_SPACE;
2191                 }
2192         }
2193         if (!res) {
2194                 dev_err(&dev->dev, "no I/O or memory address\n");
2195                 goto err_free;
2196         }
2197         info->io.addr_data = res->start;
2198
2199         info->io.regspacing = DEFAULT_REGSPACING;
2200         res_second = pnp_get_resource(dev,
2201                                (info->io.addr_type == IPMI_IO_ADDR_SPACE) ?
2202                                         IORESOURCE_IO : IORESOURCE_MEM,
2203                                1);
2204         if (res_second) {
2205                 if (res_second->start > info->io.addr_data)
2206                         info->io.regspacing = res_second->start - info->io.addr_data;
2207         }
2208         info->io.regsize = DEFAULT_REGSPACING;
2209         info->io.regshift = 0;
2210
2211         /* If _GPE exists, use it; otherwise use standard interrupts */
2212         status = acpi_evaluate_integer(handle, "_GPE", NULL, &tmp);
2213         if (ACPI_SUCCESS(status)) {
2214                 info->irq = tmp;
2215                 info->irq_setup = acpi_gpe_irq_setup;
2216         } else if (pnp_irq_valid(dev, 0)) {
2217                 info->irq = pnp_irq(dev, 0);
2218                 info->irq_setup = std_irq_setup;
2219         }
2220
2221         info->dev = &dev->dev;
2222         pnp_set_drvdata(dev, info);
2223
2224         dev_info(info->dev, "%pR regsize %d spacing %d irq %d\n",
2225                  res, info->io.regsize, info->io.regspacing,
2226                  info->irq);
2227
2228         if (add_smi(info))
2229                 goto err_free;
2230
2231         return 0;
2232
2233 err_free:
2234         kfree(info);
2235         return -EINVAL;
2236 }
2237
2238 static void __devexit ipmi_pnp_remove(struct pnp_dev *dev)
2239 {
2240         struct smi_info *info = pnp_get_drvdata(dev);
2241
2242         cleanup_one_si(info);
2243 }
2244
2245 static const struct pnp_device_id pnp_dev_table[] = {
2246         {"IPI0001", 0},
2247         {"", 0},
2248 };
2249
2250 static struct pnp_driver ipmi_pnp_driver = {
2251         .name           = DEVICE_NAME,
2252         .probe          = ipmi_pnp_probe,
2253         .remove         = __devexit_p(ipmi_pnp_remove),
2254         .id_table       = pnp_dev_table,
2255 };
2256 #endif
2257
2258 #ifdef CONFIG_DMI
2259 struct dmi_ipmi_data {
2260         u8              type;
2261         u8              addr_space;
2262         unsigned long   base_addr;
2263         u8              irq;
2264         u8              offset;
2265         u8              slave_addr;
2266 };
2267
2268 static int __devinit decode_dmi(const struct dmi_header *dm,
2269                                 struct dmi_ipmi_data *dmi)
2270 {
2271         const u8        *data = (const u8 *)dm;
2272         unsigned long   base_addr;
2273         u8              reg_spacing;
2274         u8              len = dm->length;
2275
2276         dmi->type = data[4];
2277
2278         memcpy(&base_addr, data+8, sizeof(unsigned long));
2279         if (len >= 0x11) {
2280                 if (base_addr & 1) {
2281                         /* I/O */
2282                         base_addr &= 0xFFFE;
2283                         dmi->addr_space = IPMI_IO_ADDR_SPACE;
2284                 } else
2285                         /* Memory */
2286                         dmi->addr_space = IPMI_MEM_ADDR_SPACE;
2287
2288                 /* If bit 4 of byte 0x10 is set, then the lsb for the address
2289                    is odd. */
2290                 dmi->base_addr = base_addr | ((data[0x10] & 0x10) >> 4);
2291
2292                 dmi->irq = data[0x11];
2293
2294                 /* The top two bits of byte 0x10 hold the register spacing. */
2295                 reg_spacing = (data[0x10] & 0xC0) >> 6;
2296                 switch (reg_spacing) {
2297                 case 0x00: /* Byte boundaries */
2298                     dmi->offset = 1;
2299                     break;
2300                 case 0x01: /* 32-bit boundaries */
2301                     dmi->offset = 4;
2302                     break;
2303                 case 0x02: /* 16-byte boundaries */
2304                     dmi->offset = 16;
2305                     break;
2306                 default:
2307                     /* Some other interface, just ignore it. */
2308                     return -EIO;
2309                 }
2310         } else {
2311                 /* Old DMI spec. */
2312                 /*
2313                  * Note that technically, the lower bit of the base
2314                  * address should be 1 if the address is I/O and 0 if
2315                  * the address is in memory.  So many systems get that
2316                  * wrong (and all that I have seen are I/O) so we just
2317                  * ignore that bit and assume I/O.  Systems that use
2318                  * memory should use the newer spec, anyway.
2319                  */
2320                 dmi->base_addr = base_addr & 0xfffe;
2321                 dmi->addr_space = IPMI_IO_ADDR_SPACE;
2322                 dmi->offset = 1;
2323         }
2324
2325         dmi->slave_addr = data[6];
2326
2327         return 0;
2328 }
2329
2330 static void __devinit try_init_dmi(struct dmi_ipmi_data *ipmi_data)
2331 {
2332         struct smi_info *info;
2333
2334         info = smi_info_alloc();
2335         if (!info) {
2336                 printk(KERN_ERR PFX "Could not allocate SI data\n");
2337                 return;
2338         }
2339
2340         info->addr_source = SI_SMBIOS;
2341         printk(KERN_INFO PFX "probing via SMBIOS\n");
2342
2343         switch (ipmi_data->type) {
2344         case 0x01: /* KCS */
2345                 info->si_type = SI_KCS;
2346                 break;
2347         case 0x02: /* SMIC */
2348                 info->si_type = SI_SMIC;
2349                 break;
2350         case 0x03: /* BT */
2351                 info->si_type = SI_BT;
2352                 break;
2353         default:
2354                 kfree(info);
2355                 return;
2356         }
2357
2358         switch (ipmi_data->addr_space) {
2359         case IPMI_MEM_ADDR_SPACE:
2360                 info->io_setup = mem_setup;
2361                 info->io.addr_type = IPMI_MEM_ADDR_SPACE;
2362                 break;
2363
2364         case IPMI_IO_ADDR_SPACE:
2365                 info->io_setup = port_setup;
2366                 info->io.addr_type = IPMI_IO_ADDR_SPACE;
2367                 break;
2368
2369         default:
2370                 kfree(info);
2371                 printk(KERN_WARNING PFX "Unknown SMBIOS I/O Address type: %d\n",
2372                        ipmi_data->addr_space);
2373                 return;
2374         }
2375         info->io.addr_data = ipmi_data->base_addr;
2376
2377         info->io.regspacing = ipmi_data->offset;
2378         if (!info->io.regspacing)
2379                 info->io.regspacing = DEFAULT_REGSPACING;
2380         info->io.regsize = DEFAULT_REGSPACING;
2381         info->io.regshift = 0;
2382
2383         info->slave_addr = ipmi_data->slave_addr;
2384
2385         info->irq = ipmi_data->irq;
2386         if (info->irq)
2387                 info->irq_setup = std_irq_setup;
2388
2389         pr_info("ipmi_si: SMBIOS: %s %#lx regsize %d spacing %d irq %d\n",
2390                  (info->io.addr_type == IPMI_IO_ADDR_SPACE) ? "io" : "mem",
2391                  info->io.addr_data, info->io.regsize, info->io.regspacing,
2392                  info->irq);
2393
2394         if (add_smi(info))
2395                 kfree(info);
2396 }
2397
2398 static void __devinit dmi_find_bmc(void)
2399 {
2400         const struct dmi_device *dev = NULL;
2401         struct dmi_ipmi_data data;
2402         int                  rv;
2403
2404         while ((dev = dmi_find_device(DMI_DEV_TYPE_IPMI, NULL, dev))) {
2405                 memset(&data, 0, sizeof(data));
2406                 rv = decode_dmi((const struct dmi_header *) dev->device_data,
2407                                 &data);
2408                 if (!rv)
2409                         try_init_dmi(&data);
2410         }
2411 }
2412 #endif /* CONFIG_DMI */
2413
2414 #ifdef CONFIG_PCI
2415
2416 #define PCI_ERMC_CLASSCODE              0x0C0700
2417 #define PCI_ERMC_CLASSCODE_MASK         0xffffff00
2418 #define PCI_ERMC_CLASSCODE_TYPE_MASK    0xff
2419 #define PCI_ERMC_CLASSCODE_TYPE_SMIC    0x00
2420 #define PCI_ERMC_CLASSCODE_TYPE_KCS     0x01
2421 #define PCI_ERMC_CLASSCODE_TYPE_BT      0x02
2422
2423 #define PCI_HP_VENDOR_ID    0x103C
2424 #define PCI_MMC_DEVICE_ID   0x121A
2425 #define PCI_MMC_ADDR_CW     0x10
2426
2427 static void ipmi_pci_cleanup(struct smi_info *info)
2428 {
2429         struct pci_dev *pdev = info->addr_source_data;
2430
2431         pci_disable_device(pdev);
2432 }
2433
2434 static int __devinit ipmi_pci_probe(struct pci_dev *pdev,
2435                                     const struct pci_device_id *ent)
2436 {
2437         int rv;
2438         int class_type = pdev->class & PCI_ERMC_CLASSCODE_TYPE_MASK;
2439         struct smi_info *info;
2440
2441         info = smi_info_alloc();
2442         if (!info)
2443                 return -ENOMEM;
2444
2445         info->addr_source = SI_PCI;
2446         dev_info(&pdev->dev, "probing via PCI");
2447
2448         switch (class_type) {
2449         case PCI_ERMC_CLASSCODE_TYPE_SMIC:
2450                 info->si_type = SI_SMIC;
2451                 break;
2452
2453         case PCI_ERMC_CLASSCODE_TYPE_KCS:
2454                 info->si_type = SI_KCS;
2455                 break;
2456
2457         case PCI_ERMC_CLASSCODE_TYPE_BT:
2458                 info->si_type = SI_BT;
2459                 break;
2460
2461         default:
2462                 kfree(info);
2463                 dev_info(&pdev->dev, "Unknown IPMI type: %d\n", class_type);
2464                 return -ENOMEM;
2465         }
2466
2467         rv = pci_enable_device(pdev);
2468         if (rv) {
2469                 dev_err(&pdev->dev, "couldn't enable PCI device\n");
2470                 kfree(info);
2471                 return rv;
2472         }
2473
2474         info->addr_source_cleanup = ipmi_pci_cleanup;
2475         info->addr_source_data = pdev;
2476
2477         if (pci_resource_flags(pdev, 0) & IORESOURCE_IO) {
2478                 info->io_setup = port_setup;
2479                 info->io.addr_type = IPMI_IO_ADDR_SPACE;
2480         } else {
2481                 info->io_setup = mem_setup;
2482                 info->io.addr_type = IPMI_MEM_ADDR_SPACE;
2483         }
2484         info->io.addr_data = pci_resource_start(pdev, 0);
2485
2486         info->io.regspacing = DEFAULT_REGSPACING;
2487         info->io.regsize = DEFAULT_REGSPACING;
2488         info->io.regshift = 0;
2489
2490         info->irq = pdev->irq;
2491         if (info->irq)
2492                 info->irq_setup = std_irq_setup;
2493
2494         info->dev = &pdev->dev;
2495         pci_set_drvdata(pdev, info);
2496
2497         dev_info(&pdev->dev, "%pR regsize %d spacing %d irq %d\n",
2498                 &pdev->resource[0], info->io.regsize, info->io.regspacing,
2499                 info->irq);
2500
2501         if (add_smi(info))
2502                 kfree(info);
2503
2504         return 0;
2505 }
2506
2507 static void __devexit ipmi_pci_remove(struct pci_dev *pdev)
2508 {
2509         struct smi_info *info = pci_get_drvdata(pdev);
2510         cleanup_one_si(info);
2511 }
2512
2513 #ifdef CONFIG_PM
2514 static int ipmi_pci_suspend(struct pci_dev *pdev, pm_message_t state)
2515 {
2516         return 0;
2517 }
2518
2519 static int ipmi_pci_resume(struct pci_dev *pdev)
2520 {
2521         return 0;
2522 }
2523 #endif
2524
2525 static struct pci_device_id ipmi_pci_devices[] = {
2526         { PCI_DEVICE(PCI_HP_VENDOR_ID, PCI_MMC_DEVICE_ID) },
2527         { PCI_DEVICE_CLASS(PCI_ERMC_CLASSCODE, PCI_ERMC_CLASSCODE_MASK) },
2528         { 0, }
2529 };
2530 MODULE_DEVICE_TABLE(pci, ipmi_pci_devices);
2531
2532 static struct pci_driver ipmi_pci_driver = {
2533         .name =         DEVICE_NAME,
2534         .id_table =     ipmi_pci_devices,
2535         .probe =        ipmi_pci_probe,
2536         .remove =       __devexit_p(ipmi_pci_remove),
2537 #ifdef CONFIG_PM
2538         .suspend =      ipmi_pci_suspend,
2539         .resume =       ipmi_pci_resume,
2540 #endif
2541 };
2542 #endif /* CONFIG_PCI */
2543
2544
2545 #ifdef CONFIG_PPC_OF
2546 static int __devinit ipmi_of_probe(struct platform_device *dev,
2547                          const struct of_device_id *match)
2548 {
2549         struct smi_info *info;
2550         struct resource resource;
2551         const __be32 *regsize, *regspacing, *regshift;
2552         struct device_node *np = dev->dev.of_node;
2553         int ret;
2554         int proplen;
2555
2556         dev_info(&dev->dev, "probing via device tree\n");
2557
2558         ret = of_address_to_resource(np, 0, &resource);
2559         if (ret) {
2560                 dev_warn(&dev->dev, PFX "invalid address from OF\n");
2561                 return ret;
2562         }
2563
2564         regsize = of_get_property(np, "reg-size", &proplen);
2565         if (regsize && proplen != 4) {
2566                 dev_warn(&dev->dev, PFX "invalid regsize from OF\n");
2567                 return -EINVAL;
2568         }
2569
2570         regspacing = of_get_property(np, "reg-spacing", &proplen);
2571         if (regspacing && proplen != 4) {
2572                 dev_warn(&dev->dev, PFX "invalid regspacing from OF\n");
2573                 return -EINVAL;
2574         }
2575
2576         regshift = of_get_property(np, "reg-shift", &proplen);
2577         if (regshift && proplen != 4) {
2578                 dev_warn(&dev->dev, PFX "invalid regshift from OF\n");
2579                 return -EINVAL;
2580         }
2581
2582         info = smi_info_alloc();
2583
2584         if (!info) {
2585                 dev_err(&dev->dev,
2586                         "could not allocate memory for OF probe\n");
2587                 return -ENOMEM;
2588         }
2589
2590         info->si_type           = (enum si_type) match->data;
2591         info->addr_source       = SI_DEVICETREE;
2592         info->irq_setup         = std_irq_setup;
2593
2594         if (resource.flags & IORESOURCE_IO) {
2595                 info->io_setup          = port_setup;
2596                 info->io.addr_type      = IPMI_IO_ADDR_SPACE;
2597         } else {
2598                 info->io_setup          = mem_setup;
2599                 info->io.addr_type      = IPMI_MEM_ADDR_SPACE;
2600         }
2601
2602         info->io.addr_data      = resource.start;
2603
2604         info->io.regsize        = regsize ? be32_to_cpup(regsize) : DEFAULT_REGSIZE;
2605         info->io.regspacing     = regspacing ? be32_to_cpup(regspacing) : DEFAULT_REGSPACING;
2606         info->io.regshift       = regshift ? be32_to_cpup(regshift) : 0;
2607
2608         info->irq               = irq_of_parse_and_map(dev->dev.of_node, 0);
2609         info->dev               = &dev->dev;
2610
2611         dev_dbg(&dev->dev, "addr 0x%lx regsize %d spacing %d irq %d\n",
2612                 info->io.addr_data, info->io.regsize, info->io.regspacing,
2613                 info->irq);
2614
2615         dev_set_drvdata(&dev->dev, info);
2616
2617         if (add_smi(info)) {
2618                 kfree(info);
2619                 return -EBUSY;
2620         }
2621
2622         return 0;
2623 }
2624
2625 static int __devexit ipmi_of_remove(struct platform_device *dev)
2626 {
2627         cleanup_one_si(dev_get_drvdata(&dev->dev));
2628         return 0;
2629 }
2630
2631 static struct of_device_id ipmi_match[] =
2632 {
2633         { .type = "ipmi", .compatible = "ipmi-kcs",
2634           .data = (void *)(unsigned long) SI_KCS },
2635         { .type = "ipmi", .compatible = "ipmi-smic",
2636           .data = (void *)(unsigned long) SI_SMIC },
2637         { .type = "ipmi", .compatible = "ipmi-bt",
2638           .data = (void *)(unsigned long) SI_BT },
2639         {},
2640 };
2641
2642 static struct of_platform_driver ipmi_of_platform_driver = {
2643         .driver = {
2644                 .name = "ipmi",
2645                 .owner = THIS_MODULE,
2646                 .of_match_table = ipmi_match,
2647         },
2648         .probe          = ipmi_of_probe,
2649         .remove         = __devexit_p(ipmi_of_remove),
2650 };
2651 #endif /* CONFIG_PPC_OF */
2652
2653 static int wait_for_msg_done(struct smi_info *smi_info)
2654 {
2655         enum si_sm_result     smi_result;
2656
2657         smi_result = smi_info->handlers->event(smi_info->si_sm, 0);
2658         for (;;) {
2659                 if (smi_result == SI_SM_CALL_WITH_DELAY ||
2660                     smi_result == SI_SM_CALL_WITH_TICK_DELAY) {
2661                         schedule_timeout_uninterruptible(1);
2662                         smi_result = smi_info->handlers->event(
2663                                 smi_info->si_sm, 100);
2664                 } else if (smi_result == SI_SM_CALL_WITHOUT_DELAY) {
2665                         smi_result = smi_info->handlers->event(
2666                                 smi_info->si_sm, 0);
2667                 } else
2668                         break;
2669         }
2670         if (smi_result == SI_SM_HOSED)
2671                 /*
2672                  * We couldn't get the state machine to run, so whatever's at
2673                  * the port is probably not an IPMI SMI interface.
2674                  */
2675                 return -ENODEV;
2676
2677         return 0;
2678 }
2679
2680 static int try_get_dev_id(struct smi_info *smi_info)
2681 {
2682         unsigned char         msg[2];
2683         unsigned char         *resp;
2684         unsigned long         resp_len;
2685         int                   rv = 0;
2686
2687         resp = kmalloc(IPMI_MAX_MSG_LENGTH, GFP_KERNEL);
2688         if (!resp)
2689                 return -ENOMEM;
2690
2691         /*
2692          * Do a Get Device ID command, since it comes back with some
2693          * useful info.
2694          */
2695         msg[0] = IPMI_NETFN_APP_REQUEST << 2;
2696         msg[1] = IPMI_GET_DEVICE_ID_CMD;
2697         smi_info->handlers->start_transaction(smi_info->si_sm, msg, 2);
2698
2699         rv = wait_for_msg_done(smi_info);
2700         if (rv)
2701                 goto out;
2702
2703         resp_len = smi_info->handlers->get_result(smi_info->si_sm,
2704                                                   resp, IPMI_MAX_MSG_LENGTH);
2705
2706         /* Check and record info from the get device id, in case we need it. */
2707         rv = ipmi_demangle_device_id(resp, resp_len, &smi_info->device_id);
2708
2709  out:
2710         kfree(resp);
2711         return rv;
2712 }
2713
2714 static int try_enable_event_buffer(struct smi_info *smi_info)
2715 {
2716         unsigned char         msg[3];
2717         unsigned char         *resp;
2718         unsigned long         resp_len;
2719         int                   rv = 0;
2720
2721         resp = kmalloc(IPMI_MAX_MSG_LENGTH, GFP_KERNEL);
2722         if (!resp)
2723                 return -ENOMEM;
2724
2725         msg[0] = IPMI_NETFN_APP_REQUEST << 2;
2726         msg[1] = IPMI_GET_BMC_GLOBAL_ENABLES_CMD;
2727         smi_info->handlers->start_transaction(smi_info->si_sm, msg, 2);
2728
2729         rv = wait_for_msg_done(smi_info);
2730         if (rv) {
2731                 printk(KERN_WARNING PFX "Error getting response from get"
2732                        " global enables command, the event buffer is not"
2733                        " enabled.\n");
2734                 goto out;
2735         }
2736
2737         resp_len = smi_info->handlers->get_result(smi_info->si_sm,
2738                                                   resp, IPMI_MAX_MSG_LENGTH);
2739
2740         if (resp_len < 4 ||
2741                         resp[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 ||
2742                         resp[1] != IPMI_GET_BMC_GLOBAL_ENABLES_CMD   ||
2743                         resp[2] != 0) {
2744                 printk(KERN_WARNING PFX "Invalid return from get global"
2745                        " enables command, cannot enable the event buffer.\n");
2746                 rv = -EINVAL;
2747                 goto out;
2748         }
2749
2750         if (resp[3] & IPMI_BMC_EVT_MSG_BUFF)
2751                 /* buffer is already enabled, nothing to do. */
2752                 goto out;
2753
2754         msg[0] = IPMI_NETFN_APP_REQUEST << 2;
2755         msg[1] = IPMI_SET_BMC_GLOBAL_ENABLES_CMD;
2756         msg[2] = resp[3] | IPMI_BMC_EVT_MSG_BUFF;
2757         smi_info->handlers->start_transaction(smi_info->si_sm, msg, 3);
2758
2759         rv = wait_for_msg_done(smi_info);
2760         if (rv) {
2761                 printk(KERN_WARNING PFX "Error getting response from set"
2762                        " global, enables command, the event buffer is not"
2763                        " enabled.\n");
2764                 goto out;
2765         }
2766
2767         resp_len = smi_info->handlers->get_result(smi_info->si_sm,
2768                                                   resp, IPMI_MAX_MSG_LENGTH);
2769
2770         if (resp_len < 3 ||
2771                         resp[0] != (IPMI_NETFN_APP_REQUEST | 1) << 2 ||
2772                         resp[1] != IPMI_SET_BMC_GLOBAL_ENABLES_CMD) {
2773                 printk(KERN_WARNING PFX "Invalid return from get global,"
2774                        "enables command, not enable the event buffer.\n");
2775                 rv = -EINVAL;
2776                 goto out;
2777         }
2778
2779         if (resp[2] != 0)
2780                 /*
2781                  * An error when setting the event buffer bit means
2782                  * that the event buffer is not supported.
2783                  */
2784                 rv = -ENOENT;
2785  out:
2786         kfree(resp);
2787         return rv;
2788 }
2789
2790 static int type_file_read_proc(char *page, char **start, off_t off,
2791                                int count, int *eof, void *data)
2792 {
2793         struct smi_info *smi = data;
2794
2795         return sprintf(page, "%s\n", si_to_str[smi->si_type]);
2796 }
2797
2798 static int stat_file_read_proc(char *page, char **start, off_t off,
2799                                int count, int *eof, void *data)
2800 {
2801         char            *out = (char *) page;
2802         struct smi_info *smi = data;
2803
2804         out += sprintf(out, "interrupts_enabled:    %d\n",
2805                        smi->irq && !smi->interrupt_disabled);
2806         out += sprintf(out, "short_timeouts:        %u\n",
2807                        smi_get_stat(smi, short_timeouts));
2808         out += sprintf(out, "long_timeouts:         %u\n",
2809                        smi_get_stat(smi, long_timeouts));
2810         out += sprintf(out, "idles:                 %u\n",
2811                        smi_get_stat(smi, idles));
2812         out += sprintf(out, "interrupts:            %u\n",
2813                        smi_get_stat(smi, interrupts));
2814         out += sprintf(out, "attentions:            %u\n",
2815                        smi_get_stat(smi, attentions));
2816         out += sprintf(out, "flag_fetches:          %u\n",
2817                        smi_get_stat(smi, flag_fetches));
2818         out += sprintf(out, "hosed_count:           %u\n",
2819                        smi_get_stat(smi, hosed_count));
2820         out += sprintf(out, "complete_transactions: %u\n",
2821                        smi_get_stat(smi, complete_transactions));
2822         out += sprintf(out, "events:                %u\n",
2823                        smi_get_stat(smi, events));
2824         out += sprintf(out, "watchdog_pretimeouts:  %u\n",
2825                        smi_get_stat(smi, watchdog_pretimeouts));
2826         out += sprintf(out, "incoming_messages:     %u\n",
2827                        smi_get_stat(smi, incoming_messages));
2828
2829         return out - page;
2830 }
2831
2832 static int param_read_proc(char *page, char **start, off_t off,
2833                            int count, int *eof, void *data)
2834 {
2835         struct smi_info *smi = data;
2836
2837         return sprintf(page,
2838                        "%s,%s,0x%lx,rsp=%d,rsi=%d,rsh=%d,irq=%d,ipmb=%d\n",
2839                        si_to_str[smi->si_type],
2840                        addr_space_to_str[smi->io.addr_type],
2841                        smi->io.addr_data,
2842                        smi->io.regspacing,
2843                        smi->io.regsize,
2844                        smi->io.regshift,
2845                        smi->irq,
2846                        smi->slave_addr);
2847 }
2848
2849 /*
2850  * oem_data_avail_to_receive_msg_avail
2851  * @info - smi_info structure with msg_flags set
2852  *
2853  * Converts flags from OEM_DATA_AVAIL to RECEIVE_MSG_AVAIL
2854  * Returns 1 indicating need to re-run handle_flags().
2855  */
2856 static int oem_data_avail_to_receive_msg_avail(struct smi_info *smi_info)
2857 {
2858         smi_info->msg_flags = ((smi_info->msg_flags & ~OEM_DATA_AVAIL) |
2859                                RECEIVE_MSG_AVAIL);
2860         return 1;
2861 }
2862
2863 /*
2864  * setup_dell_poweredge_oem_data_handler
2865  * @info - smi_info.device_id must be populated
2866  *
2867  * Systems that match, but have firmware version < 1.40 may assert
2868  * OEM0_DATA_AVAIL on their own, without being told via Set Flags that
2869  * it's safe to do so.  Such systems will de-assert OEM1_DATA_AVAIL
2870  * upon receipt of IPMI_GET_MSG_CMD, so we should treat these flags
2871  * as RECEIVE_MSG_AVAIL instead.
2872  *
2873  * As Dell has no plans to release IPMI 1.5 firmware that *ever*
2874  * assert the OEM[012] bits, and if it did, the driver would have to
2875  * change to handle that properly, we don't actually check for the
2876  * firmware version.
2877  * Device ID = 0x20                BMC on PowerEdge 8G servers
2878  * Device Revision = 0x80
2879  * Firmware Revision1 = 0x01       BMC version 1.40
2880  * Firmware Revision2 = 0x40       BCD encoded
2881  * IPMI Version = 0x51             IPMI 1.5
2882  * Manufacturer ID = A2 02 00      Dell IANA
2883  *
2884  * Additionally, PowerEdge systems with IPMI < 1.5 may also assert
2885  * OEM0_DATA_AVAIL and needs to be treated as RECEIVE_MSG_AVAIL.
2886  *
2887  */
2888 #define DELL_POWEREDGE_8G_BMC_DEVICE_ID  0x20
2889 #define DELL_POWEREDGE_8G_BMC_DEVICE_REV 0x80
2890 #define DELL_POWEREDGE_8G_BMC_IPMI_VERSION 0x51
2891 #define DELL_IANA_MFR_ID 0x0002a2
2892 static void setup_dell_poweredge_oem_data_handler(struct smi_info *smi_info)
2893 {
2894         struct ipmi_device_id *id = &smi_info->device_id;
2895         if (id->manufacturer_id == DELL_IANA_MFR_ID) {
2896                 if (id->device_id       == DELL_POWEREDGE_8G_BMC_DEVICE_ID  &&
2897                     id->device_revision == DELL_POWEREDGE_8G_BMC_DEVICE_REV &&
2898                     id->ipmi_version   == DELL_POWEREDGE_8G_BMC_IPMI_VERSION) {
2899                         smi_info->oem_data_avail_handler =
2900                                 oem_data_avail_to_receive_msg_avail;
2901                 } else if (ipmi_version_major(id) < 1 ||
2902                            (ipmi_version_major(id) == 1 &&
2903                             ipmi_version_minor(id) < 5)) {
2904                         smi_info->oem_data_avail_handler =
2905                                 oem_data_avail_to_receive_msg_avail;
2906                 }
2907         }
2908 }
2909
2910 #define CANNOT_RETURN_REQUESTED_LENGTH 0xCA
2911 static void return_hosed_msg_badsize(struct smi_info *smi_info)
2912 {
2913         struct ipmi_smi_msg *msg = smi_info->curr_msg;
2914
2915         /* Make it a reponse */
2916         msg->rsp[0] = msg->data[0] | 4;
2917         msg->rsp[1] = msg->data[1];
2918         msg->rsp[2] = CANNOT_RETURN_REQUESTED_LENGTH;
2919         msg->rsp_size = 3;
2920         smi_info->curr_msg = NULL;
2921         deliver_recv_msg(smi_info, msg);
2922 }
2923
2924 /*
2925  * dell_poweredge_bt_xaction_handler
2926  * @info - smi_info.device_id must be populated
2927  *
2928  * Dell PowerEdge servers with the BT interface (x6xx and 1750) will
2929  * not respond to a Get SDR command if the length of the data
2930  * requested is exactly 0x3A, which leads to command timeouts and no
2931  * data returned.  This intercepts such commands, and causes userspace
2932  * callers to try again with a different-sized buffer, which succeeds.
2933  */
2934
2935 #define STORAGE_NETFN 0x0A
2936 #define STORAGE_CMD_GET_SDR 0x23
2937 static int dell_poweredge_bt_xaction_handler(struct notifier_block *self,
2938                                              unsigned long unused,
2939                                              void *in)
2940 {
2941         struct smi_info *smi_info = in;
2942         unsigned char *data = smi_info->curr_msg->data;
2943         unsigned int size   = smi_info->curr_msg->data_size;
2944         if (size >= 8 &&
2945             (data[0]>>2) == STORAGE_NETFN &&
2946             data[1] == STORAGE_CMD_GET_SDR &&
2947             data[7] == 0x3A) {
2948                 return_hosed_msg_badsize(smi_info);
2949                 return NOTIFY_STOP;
2950         }
2951         return NOTIFY_DONE;
2952 }
2953
2954 static struct notifier_block dell_poweredge_bt_xaction_notifier = {
2955         .notifier_call  = dell_poweredge_bt_xaction_handler,
2956 };
2957
2958 /*
2959  * setup_dell_poweredge_bt_xaction_handler
2960  * @info - smi_info.device_id must be filled in already
2961  *
2962  * Fills in smi_info.device_id.start_transaction_pre_hook
2963  * when we know what function to use there.
2964  */
2965 static void
2966 setup_dell_poweredge_bt_xaction_handler(struct smi_info *smi_info)
2967 {
2968         struct ipmi_device_id *id = &smi_info->device_id;
2969         if (id->manufacturer_id == DELL_IANA_MFR_ID &&
2970             smi_info->si_type == SI_BT)
2971                 register_xaction_notifier(&dell_poweredge_bt_xaction_notifier);
2972 }
2973
2974 /*
2975  * setup_oem_data_handler
2976  * @info - smi_info.device_id must be filled in already
2977  *
2978  * Fills in smi_info.device_id.oem_data_available_handler
2979  * when we know what function to use there.
2980  */
2981
2982 static void setup_oem_data_handler(struct smi_info *smi_info)
2983 {
2984         setup_dell_poweredge_oem_data_handler(smi_info);
2985 }
2986
2987 static void setup_xaction_handlers(struct smi_info *smi_info)
2988 {
2989         setup_dell_poweredge_bt_xaction_handler(smi_info);
2990 }
2991
2992 static inline void wait_for_timer_and_thread(struct smi_info *smi_info)
2993 {
2994         if (smi_info->intf) {
2995                 /*
2996                  * The timer and thread are only running if the
2997                  * interface has been started up and registered.
2998                  */
2999                 if (smi_info->thread != NULL)
3000                         kthread_stop(smi_info->thread);
3001                 del_timer_sync(&smi_info->si_timer);
3002         }
3003 }
3004
3005 static __devinitdata struct ipmi_default_vals
3006 {
3007         int type;
3008         int port;
3009 } ipmi_defaults[] =
3010 {
3011         { .type = SI_KCS, .port = 0xca2 },
3012         { .type = SI_SMIC, .port = 0xca9 },
3013         { .type = SI_BT, .port = 0xe4 },
3014         { .port = 0 }
3015 };
3016
3017 static void __devinit default_find_bmc(void)
3018 {
3019         struct smi_info *info;
3020         int             i;
3021
3022         for (i = 0; ; i++) {
3023                 if (!ipmi_defaults[i].port)
3024                         break;
3025 #ifdef CONFIG_PPC
3026                 if (check_legacy_ioport(ipmi_defaults[i].port))
3027                         continue;
3028 #endif
3029                 info = smi_info_alloc();
3030                 if (!info)
3031                         return;
3032
3033                 info->addr_source = SI_DEFAULT;
3034
3035                 info->si_type = ipmi_defaults[i].type;
3036                 info->io_setup = port_setup;
3037                 info->io.addr_data = ipmi_defaults[i].port;
3038                 info->io.addr_type = IPMI_IO_ADDR_SPACE;
3039
3040                 info->io.addr = NULL;
3041                 info->io.regspacing = DEFAULT_REGSPACING;
3042                 info->io.regsize = DEFAULT_REGSPACING;
3043                 info->io.regshift = 0;
3044
3045                 if (add_smi(info) == 0) {
3046                         if ((try_smi_init(info)) == 0) {
3047                                 /* Found one... */
3048                                 printk(KERN_INFO PFX "Found default %s"
3049                                 " state machine at %s address 0x%lx\n",
3050                                 si_to_str[info->si_type],
3051                                 addr_space_to_str[info->io.addr_type],
3052                                 info->io.addr_data);
3053                         } else
3054                                 cleanup_one_si(info);
3055                 } else {
3056                         kfree(info);
3057                 }
3058         }
3059 }
3060
3061 static int is_new_interface(struct smi_info *info)
3062 {
3063         struct smi_info *e;
3064
3065         list_for_each_entry(e, &smi_infos, link) {
3066                 if (e->io.addr_type != info->io.addr_type)
3067                         continue;
3068                 if (e->io.addr_data == info->io.addr_data)
3069                         return 0;
3070         }
3071
3072         return 1;
3073 }
3074
3075 static int add_smi(struct smi_info *new_smi)
3076 {
3077         int rv = 0;
3078
3079         printk(KERN_INFO PFX "Adding %s-specified %s state machine",
3080                         ipmi_addr_src_to_str[new_smi->addr_source],
3081                         si_to_str[new_smi->si_type]);
3082         mutex_lock(&smi_infos_lock);
3083         if (!is_new_interface(new_smi)) {
3084                 printk(KERN_CONT " duplicate interface\n");
3085                 rv = -EBUSY;
3086                 goto out_err;
3087         }
3088
3089         printk(KERN_CONT "\n");
3090
3091         /* So we know not to free it unless we have allocated one. */
3092         new_smi->intf = NULL;
3093         new_smi->si_sm = NULL;
3094         new_smi->handlers = NULL;
3095
3096         list_add_tail(&new_smi->link, &smi_infos);
3097
3098 out_err:
3099         mutex_unlock(&smi_infos_lock);
3100         return rv;
3101 }
3102
3103 static int try_smi_init(struct smi_info *new_smi)
3104 {
3105         int rv = 0;
3106         int i;
3107
3108         printk(KERN_INFO PFX "Trying %s-specified %s state"
3109                " machine at %s address 0x%lx, slave address 0x%x,"
3110                " irq %d\n",
3111                ipmi_addr_src_to_str[new_smi->addr_source],
3112                si_to_str[new_smi->si_type],
3113                addr_space_to_str[new_smi->io.addr_type],
3114                new_smi->io.addr_data,
3115                new_smi->slave_addr, new_smi->irq);
3116
3117         switch (new_smi->si_type) {
3118         case SI_KCS:
3119                 new_smi->handlers = &kcs_smi_handlers;
3120                 break;
3121
3122         case SI_SMIC:
3123                 new_smi->handlers = &smic_smi_handlers;
3124                 break;
3125
3126         case SI_BT:
3127                 new_smi->handlers = &bt_smi_handlers;
3128                 break;
3129
3130         default:
3131                 /* No support for anything else yet. */
3132                 rv = -EIO;
3133                 goto out_err;
3134         }
3135
3136         /* Allocate the state machine's data and initialize it. */
3137         new_smi->si_sm = kmalloc(new_smi->handlers->size(), GFP_KERNEL);
3138         if (!new_smi->si_sm) {
3139                 printk(KERN_ERR PFX
3140                        "Could not allocate state machine memory\n");
3141                 rv = -ENOMEM;
3142                 goto out_err;
3143         }
3144         new_smi->io_size = new_smi->handlers->init_data(new_smi->si_sm,
3145                                                         &new_smi->io);
3146
3147         /* Now that we know the I/O size, we can set up the I/O. */
3148         rv = new_smi->io_setup(new_smi);
3149         if (rv) {
3150                 printk(KERN_ERR PFX "Could not set up I/O space\n");
3151                 goto out_err;
3152         }
3153
3154         /* Do low-level detection first. */
3155         if (new_smi->handlers->detect(new_smi->si_sm)) {
3156                 if (new_smi->addr_source)
3157                         printk(KERN_INFO PFX "Interface detection failed\n");
3158                 rv = -ENODEV;
3159                 goto out_err;
3160         }
3161
3162         /*
3163          * Attempt a get device id command.  If it fails, we probably
3164          * don't have a BMC here.
3165          */
3166         rv = try_get_dev_id(new_smi);
3167         if (rv) {
3168                 if (new_smi->addr_source)
3169                         printk(KERN_INFO PFX "There appears to be no BMC"
3170                                " at this location\n");
3171                 goto out_err;
3172         }
3173
3174         setup_oem_data_handler(new_smi);
3175         setup_xaction_handlers(new_smi);
3176
3177         INIT_LIST_HEAD(&(new_smi->xmit_msgs));
3178         INIT_LIST_HEAD(&(new_smi->hp_xmit_msgs));
3179         new_smi->curr_msg = NULL;
3180         atomic_set(&new_smi->req_events, 0);
3181         new_smi->run_to_completion = 0;
3182         for (i = 0; i < SI_NUM_STATS; i++)
3183                 atomic_set(&new_smi->stats[i], 0);
3184
3185         new_smi->interrupt_disabled = 1;
3186         atomic_set(&new_smi->stop_operation, 0);
3187         new_smi->intf_num = smi_num;
3188         smi_num++;
3189
3190         rv = try_enable_event_buffer(new_smi);
3191         if (rv == 0)
3192                 new_smi->has_event_buffer = 1;
3193
3194         /*
3195          * Start clearing the flags before we enable interrupts or the
3196          * timer to avoid racing with the timer.
3197          */
3198         start_clear_flags(new_smi);
3199         /* IRQ is defined to be set when non-zero. */
3200         if (new_smi->irq)
3201                 new_smi->si_state = SI_CLEARING_FLAGS_THEN_SET_IRQ;
3202
3203         if (!new_smi->dev) {
3204                 /*
3205                  * If we don't already have a device from something
3206                  * else (like PCI), then register a new one.
3207                  */
3208                 new_smi->pdev = platform_device_alloc("ipmi_si",
3209                                                       new_smi->intf_num);
3210                 if (!new_smi->pdev) {
3211                         printk(KERN_ERR PFX
3212                                "Unable to allocate platform device\n");
3213                         goto out_err;
3214                 }
3215                 new_smi->dev = &new_smi->pdev->dev;
3216                 new_smi->dev->driver = &ipmi_driver.driver;
3217
3218                 rv = platform_device_add(new_smi->pdev);
3219                 if (rv) {
3220                         printk(KERN_ERR PFX
3221                                "Unable to register system interface device:"
3222                                " %d\n",
3223                                rv);
3224                         goto out_err;
3225                 }
3226                 new_smi->dev_registered = 1;
3227         }
3228
3229         rv = ipmi_register_smi(&handlers,
3230                                new_smi,
3231                                &new_smi->device_id,
3232                                new_smi->dev,
3233                                "bmc",
3234                                new_smi->slave_addr);
3235         if (rv) {
3236                 dev_err(new_smi->dev, "Unable to register device: error %d\n",
3237                         rv);
3238                 goto out_err_stop_timer;
3239         }
3240
3241         rv = ipmi_smi_add_proc_entry(new_smi->intf, "type",
3242                                      type_file_read_proc,
3243                                      new_smi);
3244         if (rv) {
3245                 dev_err(new_smi->dev, "Unable to create proc entry: %d\n", rv);
3246                 goto out_err_stop_timer;
3247         }
3248
3249         rv = ipmi_smi_add_proc_entry(new_smi->intf, "si_stats",
3250                                      stat_file_read_proc,
3251                                      new_smi);
3252         if (rv) {
3253                 dev_err(new_smi->dev, "Unable to create proc entry: %d\n", rv);
3254                 goto out_err_stop_timer;
3255         }
3256
3257         rv = ipmi_smi_add_proc_entry(new_smi->intf, "params",
3258                                      param_read_proc,
3259                                      new_smi);
3260         if (rv) {
3261                 dev_err(new_smi->dev, "Unable to create proc entry: %d\n", rv);
3262                 goto out_err_stop_timer;
3263         }
3264
3265         dev_info(new_smi->dev, "IPMI %s interface initialized\n",
3266                  si_to_str[new_smi->si_type]);
3267
3268         return 0;
3269
3270  out_err_stop_timer:
3271         atomic_inc(&new_smi->stop_operation);
3272         wait_for_timer_and_thread(new_smi);
3273
3274  out_err:
3275         new_smi->interrupt_disabled = 1;
3276
3277         if (new_smi->intf) {
3278                 ipmi_unregister_smi(new_smi->intf);
3279                 new_smi->intf = NULL;
3280         }
3281
3282         if (new_smi->irq_cleanup) {
3283                 new_smi->irq_cleanup(new_smi);
3284                 new_smi->irq_cleanup = NULL;
3285         }
3286
3287         /*
3288          * Wait until we know that we are out of any interrupt
3289          * handlers might have been running before we freed the
3290          * interrupt.
3291          */
3292         synchronize_sched();
3293
3294         if (new_smi->si_sm) {
3295                 if (new_smi->handlers)
3296                         new_smi->handlers->cleanup(new_smi->si_sm);
3297                 kfree(new_smi->si_sm);
3298                 new_smi->si_sm = NULL;
3299         }
3300         if (new_smi->addr_source_cleanup) {
3301                 new_smi->addr_source_cleanup(new_smi);
3302                 new_smi->addr_source_cleanup = NULL;
3303         }
3304         if (new_smi->io_cleanup) {
3305                 new_smi->io_cleanup(new_smi);
3306                 new_smi->io_cleanup = NULL;
3307         }
3308
3309         if (new_smi->dev_registered) {
3310                 platform_device_unregister(new_smi->pdev);
3311                 new_smi->dev_registered = 0;
3312         }
3313
3314         return rv;
3315 }
3316
3317 static int __devinit init_ipmi_si(void)
3318 {
3319         int  i;
3320         char *str;
3321         int  rv;
3322         struct smi_info *e;
3323         enum ipmi_addr_src type = SI_INVALID;
3324
3325         if (initialized)
3326                 return 0;
3327         initialized = 1;
3328
3329         /* Register the device drivers. */
3330         rv = driver_register(&ipmi_driver.driver);
3331         if (rv) {
3332                 printk(KERN_ERR PFX "Unable to register driver: %d\n", rv);
3333                 return rv;
3334         }
3335
3336
3337         /* Parse out the si_type string into its components. */
3338         str = si_type_str;
3339         if (*str != '\0') {
3340                 for (i = 0; (i < SI_MAX_PARMS) && (*str != '\0'); i++) {
3341                         si_type[i] = str;
3342                         str = strchr(str, ',');
3343                         if (str) {
3344                                 *str = '\0';
3345                                 str++;
3346                         } else {
3347                                 break;
3348                         }
3349                 }
3350         }
3351
3352         printk(KERN_INFO "IPMI System Interface driver.\n");
3353
3354         hardcode_find_bmc();
3355
3356         /* If the user gave us a device, they presumably want us to use it */
3357         mutex_lock(&smi_infos_lock);
3358         if (!list_empty(&smi_infos)) {
3359                 mutex_unlock(&smi_infos_lock);
3360                 return 0;
3361         }
3362         mutex_unlock(&smi_infos_lock);
3363
3364 #ifdef CONFIG_PCI
3365         rv = pci_register_driver(&ipmi_pci_driver);
3366         if (rv)
3367                 printk(KERN_ERR PFX "Unable to register PCI driver: %d\n", rv);
3368         else
3369                 pci_registered = 1;
3370 #endif
3371
3372 #ifdef CONFIG_ACPI
3373         pnp_register_driver(&ipmi_pnp_driver);
3374         pnp_registered = 1;
3375 #endif
3376
3377 #ifdef CONFIG_DMI
3378         dmi_find_bmc();
3379 #endif
3380
3381 #ifdef CONFIG_ACPI
3382         spmi_find_bmc();
3383 #endif
3384
3385 #ifdef CONFIG_PPC_OF
3386         of_register_platform_driver(&ipmi_of_platform_driver);
3387         of_registered = 1;
3388 #endif
3389
3390         /* We prefer devices with interrupts, but in the case of a machine
3391            with multiple BMCs we assume that there will be several instances
3392            of a given type so if we succeed in registering a type then also
3393            try to register everything else of the same type */
3394
3395         mutex_lock(&smi_infos_lock);
3396         list_for_each_entry(e, &smi_infos, link) {
3397                 /* Try to register a device if it has an IRQ and we either
3398                    haven't successfully registered a device yet or this
3399                    device has the same type as one we successfully registered */
3400                 if (e->irq && (!type || e->addr_source == type)) {
3401                         if (!try_smi_init(e)) {
3402                                 type = e->addr_source;
3403                         }
3404                 }
3405         }
3406
3407         /* type will only have been set if we successfully registered an si */
3408         if (type) {
3409                 mutex_unlock(&smi_infos_lock);
3410                 return 0;
3411         }
3412
3413         /* Fall back to the preferred device */
3414
3415         list_for_each_entry(e, &smi_infos, link) {
3416                 if (!e->irq && (!type || e->addr_source == type)) {
3417                         if (!try_smi_init(e)) {
3418                                 type = e->addr_source;
3419                         }
3420                 }
3421         }
3422         mutex_unlock(&smi_infos_lock);
3423
3424         if (type)
3425                 return 0;
3426
3427         if (si_trydefaults) {
3428                 mutex_lock(&smi_infos_lock);
3429                 if (list_empty(&smi_infos)) {
3430                         /* No BMC was found, try defaults. */
3431                         mutex_unlock(&smi_infos_lock);
3432                         default_find_bmc();
3433                 } else
3434                         mutex_unlock(&smi_infos_lock);
3435         }
3436
3437         mutex_lock(&smi_infos_lock);
3438         if (unload_when_empty && list_empty(&smi_infos)) {
3439                 mutex_unlock(&smi_infos_lock);
3440 #ifdef CONFIG_PCI
3441                 if (pci_registered)
3442                         pci_unregister_driver(&ipmi_pci_driver);
3443 #endif
3444
3445 #ifdef CONFIG_PPC_OF
3446                 if (of_registered)
3447                         of_unregister_platform_driver(&ipmi_of_platform_driver);
3448 #endif
3449                 driver_unregister(&ipmi_driver.driver);
3450                 printk(KERN_WARNING PFX
3451                        "Unable to find any System Interface(s)\n");
3452                 return -ENODEV;
3453         } else {
3454                 mutex_unlock(&smi_infos_lock);
3455                 return 0;
3456         }
3457 }
3458 module_init(init_ipmi_si);
3459
3460 static void cleanup_one_si(struct smi_info *to_clean)
3461 {
3462         int           rv = 0;
3463         unsigned long flags;
3464
3465         if (!to_clean)
3466                 return;
3467
3468         list_del(&to_clean->link);
3469
3470         /* Tell the driver that we are shutting down. */
3471         atomic_inc(&to_clean->stop_operation);
3472
3473         /*
3474          * Make sure the timer and thread are stopped and will not run
3475          * again.
3476          */
3477         wait_for_timer_and_thread(to_clean);
3478
3479         /*
3480          * Timeouts are stopped, now make sure the interrupts are off
3481          * for the device.  A little tricky with locks to make sure
3482          * there are no races.
3483          */
3484         spin_lock_irqsave(&to_clean->si_lock, flags);
3485         while (to_clean->curr_msg || (to_clean->si_state != SI_NORMAL)) {
3486                 spin_unlock_irqrestore(&to_clean->si_lock, flags);
3487                 poll(to_clean);
3488                 schedule_timeout_uninterruptible(1);
3489                 spin_lock_irqsave(&to_clean->si_lock, flags);
3490         }
3491         disable_si_irq(to_clean);
3492         spin_unlock_irqrestore(&to_clean->si_lock, flags);
3493         while (to_clean->curr_msg || (to_clean->si_state != SI_NORMAL)) {
3494                 poll(to_clean);
3495                 schedule_timeout_uninterruptible(1);
3496         }
3497
3498         /* Clean up interrupts and make sure that everything is done. */
3499         if (to_clean->irq_cleanup)
3500                 to_clean->irq_cleanup(to_clean);
3501         while (to_clean->curr_msg || (to_clean->si_state != SI_NORMAL)) {
3502                 poll(to_clean);
3503                 schedule_timeout_uninterruptible(1);
3504         }
3505
3506         if (to_clean->intf)
3507                 rv = ipmi_unregister_smi(to_clean->intf);
3508
3509         if (rv) {
3510                 printk(KERN_ERR PFX "Unable to unregister device: errno=%d\n",
3511                        rv);
3512         }
3513
3514         if (to_clean->handlers)
3515                 to_clean->handlers->cleanup(to_clean->si_sm);
3516
3517         kfree(to_clean->si_sm);
3518
3519         if (to_clean->addr_source_cleanup)
3520                 to_clean->addr_source_cleanup(to_clean);
3521         if (to_clean->io_cleanup)
3522                 to_clean->io_cleanup(to_clean);
3523
3524         if (to_clean->dev_registered)
3525                 platform_device_unregister(to_clean->pdev);
3526
3527         kfree(to_clean);
3528 }
3529
3530 static void __exit cleanup_ipmi_si(void)
3531 {
3532         struct smi_info *e, *tmp_e;
3533
3534         if (!initialized)
3535                 return;
3536
3537 #ifdef CONFIG_PCI
3538         if (pci_registered)
3539                 pci_unregister_driver(&ipmi_pci_driver);
3540 #endif
3541 #ifdef CONFIG_ACPI
3542         if (pnp_registered)
3543                 pnp_unregister_driver(&ipmi_pnp_driver);
3544 #endif
3545
3546 #ifdef CONFIG_PPC_OF
3547         if (of_registered)
3548                 of_unregister_platform_driver(&ipmi_of_platform_driver);
3549 #endif
3550
3551         mutex_lock(&smi_infos_lock);
3552         list_for_each_entry_safe(e, tmp_e, &smi_infos, link)
3553                 cleanup_one_si(e);
3554         mutex_unlock(&smi_infos_lock);
3555
3556         driver_unregister(&ipmi_driver.driver);
3557 }
3558 module_exit(cleanup_ipmi_si);
3559
3560 MODULE_LICENSE("GPL");
3561 MODULE_AUTHOR("Corey Minyard <minyard@mvista.com>");
3562 MODULE_DESCRIPTION("Interface to the IPMI driver for the KCS, SMIC, and BT"
3563                    " system interfaces.");