2 * PowerPC64 LPAR Configuration Information Driver
4 * Dave Engebretsen engebret@us.ibm.com
5 * Copyright (c) 2003 Dave Engebretsen
6 * Will Schmidt willschm@us.ibm.com
7 * SPLPAR updates, Copyright (c) 2003 Will Schmidt IBM Corporation.
8 * seq_file updates, Copyright (c) 2004 Will Schmidt IBM Corporation.
9 * Nathan Lynch nathanl@austin.ibm.com
10 * Added lparcfg_write, Copyright (C) 2004 Nathan Lynch IBM Corporation.
12 * This program is free software; you can redistribute it and/or
13 * modify it under the terms of the GNU General Public License
14 * as published by the Free Software Foundation; either version
15 * 2 of the License, or (at your option) any later version.
17 * This driver creates a proc file at /proc/ppc64/lparcfg which contains
18 * keyword - value pairs that specify the configuration of the partition.
21 #include <linux/module.h>
22 #include <linux/types.h>
23 #include <linux/errno.h>
24 #include <linux/proc_fs.h>
25 #include <linux/init.h>
26 #include <linux/seq_file.h>
27 #include <asm/uaccess.h>
28 #include <asm/iseries/hv_lp_config.h>
29 #include <asm/lppaca.h>
30 #include <asm/hvcall.h>
31 #include <asm/firmware.h>
33 #include <asm/system.h>
36 #include <asm/vdso_datapage.h>
39 #define MODULE_VERS "1.8"
40 #define MODULE_NAME "lparcfg"
42 /* #define LPARCFG_DEBUG */
44 static struct proc_dir_entry
*proc_ppc64_lparcfg
;
47 * Track sum of all purrs across all processors. This is used to further
48 * calculate usage values by different applications
50 static unsigned long get_purr(void)
52 unsigned long sum_purr
= 0;
55 for_each_possible_cpu(cpu
) {
56 if (firmware_has_feature(FW_FEATURE_ISERIES
))
57 sum_purr
+= lppaca
[cpu
].emulated_time_base
;
61 cu
= &per_cpu(cpu_usage_array
, cpu
);
62 sum_purr
+= cu
->current_tb
;
68 #ifdef CONFIG_PPC_ISERIES
71 * Methods used to fetch LPAR data when running on an iSeries platform.
73 static int iseries_lparcfg_data(struct seq_file
*m
, void *v
)
75 unsigned long pool_id
;
76 int shared
, entitled_capacity
, max_entitled_capacity
;
77 int processors
, max_processors
;
78 unsigned long purr
= get_purr();
80 shared
= (int)(local_paca
->lppaca_ptr
->shared_proc
);
82 seq_printf(m
, "system_active_processors=%d\n",
83 (int)HvLpConfig_getSystemPhysicalProcessors());
85 seq_printf(m
, "system_potential_processors=%d\n",
86 (int)HvLpConfig_getSystemPhysicalProcessors());
88 processors
= (int)HvLpConfig_getPhysicalProcessors();
89 seq_printf(m
, "partition_active_processors=%d\n", processors
);
91 max_processors
= (int)HvLpConfig_getMaxPhysicalProcessors();
92 seq_printf(m
, "partition_potential_processors=%d\n", max_processors
);
95 entitled_capacity
= HvLpConfig_getSharedProcUnits();
96 max_entitled_capacity
= HvLpConfig_getMaxSharedProcUnits();
98 entitled_capacity
= processors
* 100;
99 max_entitled_capacity
= max_processors
* 100;
101 seq_printf(m
, "partition_entitled_capacity=%d\n", entitled_capacity
);
103 seq_printf(m
, "partition_max_entitled_capacity=%d\n",
104 max_entitled_capacity
);
107 pool_id
= HvLpConfig_getSharedPoolIndex();
108 seq_printf(m
, "pool=%d\n", (int)pool_id
);
109 seq_printf(m
, "pool_capacity=%d\n",
110 (int)(HvLpConfig_getNumProcsInSharedPool(pool_id
) *
112 seq_printf(m
, "purr=%ld\n", purr
);
115 seq_printf(m
, "shared_processor_mode=%d\n", shared
);
120 #else /* CONFIG_PPC_ISERIES */
122 static int iseries_lparcfg_data(struct seq_file
*m
, void *v
)
127 #endif /* CONFIG_PPC_ISERIES */
129 #ifdef CONFIG_PPC_PSERIES
131 * Methods used to fetch LPAR data when running on a pSeries platform.
135 * H_GET_MPP hcall returns info in 7 parms
137 int h_get_mpp(struct hvcall_mpp_data
*mpp_data
)
140 unsigned long retbuf
[PLPAR_HCALL9_BUFSIZE
];
142 rc
= plpar_hcall9(H_GET_MPP
, retbuf
);
144 mpp_data
->entitled_mem
= retbuf
[0];
145 mpp_data
->mapped_mem
= retbuf
[1];
147 mpp_data
->group_num
= (retbuf
[2] >> 2 * 8) & 0xffff;
148 mpp_data
->pool_num
= retbuf
[2] & 0xffff;
150 mpp_data
->mem_weight
= (retbuf
[3] >> 7 * 8) & 0xff;
151 mpp_data
->unallocated_mem_weight
= (retbuf
[3] >> 6 * 8) & 0xff;
152 mpp_data
->unallocated_entitlement
= retbuf
[3] & 0xffffffffffff;
154 mpp_data
->pool_size
= retbuf
[4];
155 mpp_data
->loan_request
= retbuf
[5];
156 mpp_data
->backing_mem
= retbuf
[6];
160 EXPORT_SYMBOL(h_get_mpp
);
162 struct hvcall_ppp_data
{
164 u64 unallocated_entitlement
;
169 u8 unallocated_weight
;
170 u16 active_procs_in_pool
;
171 u16 active_system_procs
;
172 u16 phys_platform_procs
;
173 u32 max_proc_cap_avail
;
174 u32 entitled_proc_cap_avail
;
178 * H_GET_PPP hcall returns info in 4 parms.
179 * entitled_capacity,unallocated_capacity,
180 * aggregation, resource_capability).
182 * R4 = Entitled Processor Capacity Percentage.
183 * R5 = Unallocated Processor Capacity Percentage.
184 * R6 (AABBCCDDEEFFGGHH).
185 * XXXX - reserved (0)
186 * XXXX - reserved (0)
187 * XXXX - Group Number
188 * XXXX - Pool Number.
189 * R7 (IIJJKKLLMMNNOOPP).
191 * XX - bit 0-6 reserved (0). bit 7 is Capped indicator.
192 * XX - variable processor Capacity Weight
193 * XX - Unallocated Variable Processor Capacity Weight.
194 * XXXX - Active processors in Physical Processor Pool.
195 * XXXX - Processors active on platform.
196 * R8 (QQQQRRRRRRSSSSSS). if ibm,partition-performance-parameters-level >= 1
197 * XXXX - Physical platform procs allocated to virtualization.
198 * XXXXXX - Max procs capacity % available to the partitions pool.
199 * XXXXXX - Entitled procs capacity % available to the
202 static unsigned int h_get_ppp(struct hvcall_ppp_data
*ppp_data
)
205 unsigned long retbuf
[PLPAR_HCALL9_BUFSIZE
];
207 rc
= plpar_hcall9(H_GET_PPP
, retbuf
);
209 ppp_data
->entitlement
= retbuf
[0];
210 ppp_data
->unallocated_entitlement
= retbuf
[1];
212 ppp_data
->group_num
= (retbuf
[2] >> 2 * 8) & 0xffff;
213 ppp_data
->pool_num
= retbuf
[2] & 0xffff;
215 ppp_data
->capped
= (retbuf
[3] >> 6 * 8) & 0x01;
216 ppp_data
->weight
= (retbuf
[3] >> 5 * 8) & 0xff;
217 ppp_data
->unallocated_weight
= (retbuf
[3] >> 4 * 8) & 0xff;
218 ppp_data
->active_procs_in_pool
= (retbuf
[3] >> 2 * 8) & 0xffff;
219 ppp_data
->active_system_procs
= retbuf
[3] & 0xffff;
221 ppp_data
->phys_platform_procs
= retbuf
[4] >> 6 * 8;
222 ppp_data
->max_proc_cap_avail
= (retbuf
[4] >> 3 * 8) & 0xffffff;
223 ppp_data
->entitled_proc_cap_avail
= retbuf
[4] & 0xffffff;
228 static unsigned h_pic(unsigned long *pool_idle_time
,
229 unsigned long *num_procs
)
232 unsigned long retbuf
[PLPAR_HCALL_BUFSIZE
];
234 rc
= plpar_hcall(H_PIC
, retbuf
);
236 *pool_idle_time
= retbuf
[0];
237 *num_procs
= retbuf
[1];
244 * Parse out the data returned from h_get_ppp and h_pic
246 static void parse_ppp_data(struct seq_file
*m
)
248 struct hvcall_ppp_data ppp_data
;
249 struct device_node
*root
;
250 const int *perf_level
;
253 rc
= h_get_ppp(&ppp_data
);
257 seq_printf(m
, "partition_entitled_capacity=%lld\n",
258 ppp_data
.entitlement
);
259 seq_printf(m
, "group=%d\n", ppp_data
.group_num
);
260 seq_printf(m
, "system_active_processors=%d\n",
261 ppp_data
.active_system_procs
);
263 /* pool related entries are apropriate for shared configs */
264 if (lppaca
[0].shared_proc
) {
265 unsigned long pool_idle_time
, pool_procs
;
267 seq_printf(m
, "pool=%d\n", ppp_data
.pool_num
);
269 /* report pool_capacity in percentage */
270 seq_printf(m
, "pool_capacity=%d\n",
271 ppp_data
.active_procs_in_pool
* 100);
273 h_pic(&pool_idle_time
, &pool_procs
);
274 seq_printf(m
, "pool_idle_time=%ld\n", pool_idle_time
);
275 seq_printf(m
, "pool_num_procs=%ld\n", pool_procs
);
278 seq_printf(m
, "unallocated_capacity_weight=%d\n",
279 ppp_data
.unallocated_weight
);
280 seq_printf(m
, "capacity_weight=%d\n", ppp_data
.weight
);
281 seq_printf(m
, "capped=%d\n", ppp_data
.capped
);
282 seq_printf(m
, "unallocated_capacity=%lld\n",
283 ppp_data
.unallocated_entitlement
);
285 /* The last bits of information returned from h_get_ppp are only
286 * valid if the ibm,partition-performance-parameters-level
289 root
= of_find_node_by_path("/");
291 perf_level
= of_get_property(root
,
292 "ibm,partition-performance-parameters-level",
294 if (perf_level
&& (*perf_level
>= 1)) {
296 "physical_procs_allocated_to_virtualization=%d\n",
297 ppp_data
.phys_platform_procs
);
298 seq_printf(m
, "max_proc_capacity_available=%d\n",
299 ppp_data
.max_proc_cap_avail
);
300 seq_printf(m
, "entitled_proc_capacity_available=%d\n",
301 ppp_data
.entitled_proc_cap_avail
);
310 * Parse out data returned from h_get_mpp
312 static void parse_mpp_data(struct seq_file
*m
)
314 struct hvcall_mpp_data mpp_data
;
317 rc
= h_get_mpp(&mpp_data
);
321 seq_printf(m
, "entitled_memory=%ld\n", mpp_data
.entitled_mem
);
323 if (mpp_data
.mapped_mem
!= -1)
324 seq_printf(m
, "mapped_entitled_memory=%ld\n",
325 mpp_data
.mapped_mem
);
327 seq_printf(m
, "entitled_memory_group_number=%d\n", mpp_data
.group_num
);
328 seq_printf(m
, "entitled_memory_pool_number=%d\n", mpp_data
.pool_num
);
330 seq_printf(m
, "entitled_memory_weight=%d\n", mpp_data
.mem_weight
);
331 seq_printf(m
, "unallocated_entitled_memory_weight=%d\n",
332 mpp_data
.unallocated_mem_weight
);
333 seq_printf(m
, "unallocated_io_mapping_entitlement=%ld\n",
334 mpp_data
.unallocated_entitlement
);
336 if (mpp_data
.pool_size
!= -1)
337 seq_printf(m
, "entitled_memory_pool_size=%ld bytes\n",
340 seq_printf(m
, "entitled_memory_loan_request=%ld\n",
341 mpp_data
.loan_request
);
343 seq_printf(m
, "backing_memory=%ld bytes\n", mpp_data
.backing_mem
);
346 #define SPLPAR_CHARACTERISTICS_TOKEN 20
347 #define SPLPAR_MAXLENGTH 1026*(sizeof(char))
350 * parse_system_parameter_string()
351 * Retrieve the potential_processors, max_entitled_capacity and friends
352 * through the get-system-parameter rtas call. Replace keyword strings as
355 static void parse_system_parameter_string(struct seq_file
*m
)
359 unsigned char *local_buffer
= kmalloc(SPLPAR_MAXLENGTH
, GFP_KERNEL
);
361 printk(KERN_ERR
"%s %s kmalloc failure at line %d \n",
362 __FILE__
, __func__
, __LINE__
);
366 spin_lock(&rtas_data_buf_lock
);
367 memset(rtas_data_buf
, 0, SPLPAR_MAXLENGTH
);
368 call_status
= rtas_call(rtas_token("ibm,get-system-parameter"), 3, 1,
370 SPLPAR_CHARACTERISTICS_TOKEN
,
373 memcpy(local_buffer
, rtas_data_buf
, SPLPAR_MAXLENGTH
);
374 spin_unlock(&rtas_data_buf_lock
);
376 if (call_status
!= 0) {
378 "%s %s Error calling get-system-parameter (0x%x)\n",
379 __FILE__
, __func__
, call_status
);
383 char *workbuffer
= kzalloc(SPLPAR_MAXLENGTH
, GFP_KERNEL
);
385 printk(KERN_ERR
"%s %s kmalloc failure at line %d \n",
386 __FILE__
, __func__
, __LINE__
);
391 printk(KERN_INFO
"success calling get-system-parameter \n");
393 splpar_strlen
= local_buffer
[0] * 256 + local_buffer
[1];
394 local_buffer
+= 2; /* step over strlen value */
398 while ((*local_buffer
) && (idx
< splpar_strlen
)) {
399 workbuffer
[w_idx
++] = local_buffer
[idx
++];
400 if ((local_buffer
[idx
] == ',')
401 || (local_buffer
[idx
] == '\0')) {
402 workbuffer
[w_idx
] = '\0';
404 /* avoid the empty string */
405 seq_printf(m
, "%s\n", workbuffer
);
407 memset(workbuffer
, 0, SPLPAR_MAXLENGTH
);
408 idx
++; /* skip the comma */
410 } else if (local_buffer
[idx
] == '=') {
411 /* code here to replace workbuffer contents
412 with different keyword strings */
413 if (0 == strcmp(workbuffer
, "MaxEntCap")) {
415 "partition_max_entitled_capacity");
416 w_idx
= strlen(workbuffer
);
418 if (0 == strcmp(workbuffer
, "MaxPlatProcs")) {
420 "system_potential_processors");
421 w_idx
= strlen(workbuffer
);
426 local_buffer
-= 2; /* back up over strlen value */
431 /* Return the number of processors in the system.
432 * This function reads through the device tree and counts
433 * the virtual processors, this does not include threads.
435 static int lparcfg_count_active_processors(void)
437 struct device_node
*cpus_dn
= NULL
;
440 while ((cpus_dn
= of_find_node_by_type(cpus_dn
, "cpu"))) {
442 printk(KERN_ERR
"cpus_dn %p \n", cpus_dn
);
449 static void pseries_cmo_data(struct seq_file
*m
)
452 unsigned long cmo_faults
= 0;
453 unsigned long cmo_fault_time
= 0;
455 seq_printf(m
, "cmo_enabled=%d\n", firmware_has_feature(FW_FEATURE_CMO
));
457 if (!firmware_has_feature(FW_FEATURE_CMO
))
460 for_each_possible_cpu(cpu
) {
461 cmo_faults
+= lppaca
[cpu
].cmo_faults
;
462 cmo_fault_time
+= lppaca
[cpu
].cmo_fault_time
;
465 seq_printf(m
, "cmo_faults=%lu\n", cmo_faults
);
466 seq_printf(m
, "cmo_fault_time_usec=%lu\n",
467 cmo_fault_time
/ tb_ticks_per_usec
);
468 seq_printf(m
, "cmo_primary_psp=%d\n", cmo_get_primary_psp());
469 seq_printf(m
, "cmo_secondary_psp=%d\n", cmo_get_secondary_psp());
470 seq_printf(m
, "cmo_page_size=%lu\n", cmo_get_page_size());
473 static void splpar_dispatch_data(struct seq_file
*m
)
476 unsigned long dispatches
= 0;
477 unsigned long dispatch_dispersions
= 0;
479 for_each_possible_cpu(cpu
) {
480 dispatches
+= lppaca
[cpu
].yield_count
;
481 dispatch_dispersions
+= lppaca
[cpu
].dispersion_count
;
484 seq_printf(m
, "dispatches=%lu\n", dispatches
);
485 seq_printf(m
, "dispatch_dispersions=%lu\n", dispatch_dispersions
);
488 static int pseries_lparcfg_data(struct seq_file
*m
, void *v
)
490 int partition_potential_processors
;
491 int partition_active_processors
;
492 struct device_node
*rtas_node
;
493 const int *lrdrp
= NULL
;
495 rtas_node
= of_find_node_by_path("/rtas");
497 lrdrp
= of_get_property(rtas_node
, "ibm,lrdr-capacity", NULL
);
500 partition_potential_processors
= vdso_data
->processorCount
;
502 partition_potential_processors
= *(lrdrp
+ 4);
504 of_node_put(rtas_node
);
506 partition_active_processors
= lparcfg_count_active_processors();
508 if (firmware_has_feature(FW_FEATURE_SPLPAR
)) {
509 /* this call handles the ibm,get-system-parameter contents */
510 parse_system_parameter_string(m
);
514 splpar_dispatch_data(m
);
516 seq_printf(m
, "purr=%ld\n", get_purr());
517 } else { /* non SPLPAR case */
519 seq_printf(m
, "system_active_processors=%d\n",
520 partition_potential_processors
);
522 seq_printf(m
, "system_potential_processors=%d\n",
523 partition_potential_processors
);
525 seq_printf(m
, "partition_max_entitled_capacity=%d\n",
526 partition_potential_processors
* 100);
528 seq_printf(m
, "partition_entitled_capacity=%d\n",
529 partition_active_processors
* 100);
532 seq_printf(m
, "partition_active_processors=%d\n",
533 partition_active_processors
);
535 seq_printf(m
, "partition_potential_processors=%d\n",
536 partition_potential_processors
);
538 seq_printf(m
, "shared_processor_mode=%d\n", lppaca
[0].shared_proc
);
543 static ssize_t
update_ppp(u64
*entitlement
, u8
*weight
)
545 struct hvcall_ppp_data ppp_data
;
550 /* Get our current parameters */
551 retval
= h_get_ppp(&ppp_data
);
556 new_weight
= ppp_data
.weight
;
557 new_entitled
= *entitlement
;
559 new_weight
= *weight
;
560 new_entitled
= ppp_data
.entitlement
;
564 pr_debug("%s: current_entitled = %llu, current_weight = %u\n",
565 __func__
, ppp_data
.entitlement
, ppp_data
.weight
);
567 pr_debug("%s: new_entitled = %llu, new_weight = %u\n",
568 __func__
, new_entitled
, new_weight
);
570 retval
= plpar_hcall_norets(H_SET_PPP
, new_entitled
, new_weight
);
577 * Update the memory entitlement and weight for the partition. Caller must
578 * specify either a new entitlement or weight, not both, to be updated
579 * since the h_set_mpp call takes both entitlement and weight as parameters.
581 static ssize_t
update_mpp(u64
*entitlement
, u8
*weight
)
583 struct hvcall_mpp_data mpp_data
;
589 /* Check with vio to ensure the new memory entitlement
592 rc
= vio_cmo_entitlement_update(*entitlement
);
597 rc
= h_get_mpp(&mpp_data
);
602 new_weight
= mpp_data
.mem_weight
;
603 new_entitled
= *entitlement
;
605 new_weight
= *weight
;
606 new_entitled
= mpp_data
.entitled_mem
;
610 pr_debug("%s: current_entitled = %lu, current_weight = %u\n",
611 __func__
, mpp_data
.entitled_mem
, mpp_data
.mem_weight
);
613 pr_debug("%s: new_entitled = %llu, new_weight = %u\n",
614 __func__
, new_entitled
, new_weight
);
616 rc
= plpar_hcall_norets(H_SET_MPP
, new_entitled
, new_weight
);
621 * Interface for changing system parameters (variable capacity weight
622 * and entitled capacity). Format of input is "param_name=value";
623 * anything after value is ignored. Valid parameters at this time are
624 * "partition_entitled_capacity" and "capacity_weight". We use
625 * H_SET_PPP to alter parameters.
627 * This function should be invoked only on systems with
630 static ssize_t
lparcfg_write(struct file
*file
, const char __user
* buf
,
631 size_t count
, loff_t
* off
)
636 u64 new_entitled
, *new_entitled_ptr
= &new_entitled
;
637 u8 new_weight
, *new_weight_ptr
= &new_weight
;
640 if (!firmware_has_feature(FW_FEATURE_SPLPAR
) ||
641 firmware_has_feature(FW_FEATURE_ISERIES
))
647 if (copy_from_user(kbuf
, buf
, count
))
650 kbuf
[count
- 1] = '\0';
651 tmp
= strchr(kbuf
, '=');
657 if (!strcmp(kbuf
, "partition_entitled_capacity")) {
659 *new_entitled_ptr
= (u64
) simple_strtoul(tmp
, &endp
, 10);
663 retval
= update_ppp(new_entitled_ptr
, NULL
);
664 } else if (!strcmp(kbuf
, "capacity_weight")) {
666 *new_weight_ptr
= (u8
) simple_strtoul(tmp
, &endp
, 10);
670 retval
= update_ppp(NULL
, new_weight_ptr
);
671 } else if (!strcmp(kbuf
, "entitled_memory")) {
673 *new_entitled_ptr
= (u64
) simple_strtoul(tmp
, &endp
, 10);
677 retval
= update_mpp(new_entitled_ptr
, NULL
);
678 } else if (!strcmp(kbuf
, "entitled_memory_weight")) {
680 *new_weight_ptr
= (u8
) simple_strtoul(tmp
, &endp
, 10);
684 retval
= update_mpp(NULL
, new_weight_ptr
);
688 if (retval
== H_SUCCESS
|| retval
== H_CONSTRAINED
) {
690 } else if (retval
== H_BUSY
) {
692 } else if (retval
== H_HARDWARE
) {
694 } else if (retval
== H_PARAMETER
) {
701 #else /* CONFIG_PPC_PSERIES */
703 static int pseries_lparcfg_data(struct seq_file
*m
, void *v
)
708 static ssize_t
lparcfg_write(struct file
*file
, const char __user
* buf
,
709 size_t count
, loff_t
* off
)
714 #endif /* CONFIG_PPC_PSERIES */
716 static int lparcfg_data(struct seq_file
*m
, void *v
)
718 struct device_node
*rootdn
;
719 const char *model
= "";
720 const char *system_id
= "";
722 const unsigned int *lp_index_ptr
;
723 unsigned int lp_index
= 0;
725 seq_printf(m
, "%s %s \n", MODULE_NAME
, MODULE_VERS
);
727 rootdn
= of_find_node_by_path("/");
729 tmp
= of_get_property(rootdn
, "model", NULL
);
732 /* Skip "IBM," - see platforms/iseries/dt.c */
733 if (firmware_has_feature(FW_FEATURE_ISERIES
))
736 tmp
= of_get_property(rootdn
, "system-id", NULL
);
739 /* Skip "IBM," - see platforms/iseries/dt.c */
740 if (firmware_has_feature(FW_FEATURE_ISERIES
))
743 lp_index_ptr
= of_get_property(rootdn
, "ibm,partition-no",
746 lp_index
= *lp_index_ptr
;
749 seq_printf(m
, "serial_number=%s\n", system_id
);
750 seq_printf(m
, "system_type=%s\n", model
);
751 seq_printf(m
, "partition_id=%d\n", (int)lp_index
);
753 if (firmware_has_feature(FW_FEATURE_ISERIES
))
754 return iseries_lparcfg_data(m
, v
);
755 return pseries_lparcfg_data(m
, v
);
758 static int lparcfg_open(struct inode
*inode
, struct file
*file
)
760 return single_open(file
, lparcfg_data
, NULL
);
763 static const struct file_operations lparcfg_fops
= {
764 .owner
= THIS_MODULE
,
766 .write
= lparcfg_write
,
767 .open
= lparcfg_open
,
768 .release
= single_release
,
771 static int __init
lparcfg_init(void)
773 struct proc_dir_entry
*ent
;
774 mode_t mode
= S_IRUSR
| S_IRGRP
| S_IROTH
;
776 /* Allow writing if we have FW_FEATURE_SPLPAR */
777 if (firmware_has_feature(FW_FEATURE_SPLPAR
) &&
778 !firmware_has_feature(FW_FEATURE_ISERIES
))
781 ent
= proc_create("ppc64/lparcfg", mode
, NULL
, &lparcfg_fops
);
783 printk(KERN_ERR
"Failed to create ppc64/lparcfg\n");
787 proc_ppc64_lparcfg
= ent
;
791 static void __exit
lparcfg_cleanup(void)
793 if (proc_ppc64_lparcfg
)
794 remove_proc_entry("lparcfg", proc_ppc64_lparcfg
->parent
);
797 module_init(lparcfg_init
);
798 module_exit(lparcfg_cleanup
);
799 MODULE_DESCRIPTION("Interface for LPAR configuration data");
800 MODULE_AUTHOR("Dave Engebretsen");
801 MODULE_LICENSE("GPL");