blob: 684384f2b36437ec613022611686d81933fc5709 [file] [log] [blame]
Michael Holzheu24bbb1f2006-06-23 02:05:06 -07001/*
Michael Holzheuf19bfb22006-09-20 15:58:44 +02002 * arch/s390/hypfs/hypfs_diag.c
Michael Holzheu24bbb1f2006-06-23 02:05:06 -07003 * Hypervisor filesystem for Linux on s390. Diag 204 and 224
4 * implementation.
5 *
6 * Copyright (C) IBM Corp. 2006
7 * Author(s): Michael Holzheu <holzheu@de.ibm.com>
8 */
9
10#include <linux/types.h>
11#include <linux/errno.h>
12#include <linux/string.h>
13#include <linux/vmalloc.h>
14#include <asm/ebcdic.h>
15#include "hypfs.h"
16
17#define LPAR_NAME_LEN 8 /* lpar name len in diag 204 data */
18#define CPU_NAME_LEN 16 /* type name len of cpus in diag224 name table */
19#define TMP_SIZE 64 /* size of temporary buffers */
20
21/* diag 204 subcodes */
22enum diag204_sc {
23 SUBC_STIB4 = 4,
24 SUBC_RSI = 5,
25 SUBC_STIB6 = 6,
26 SUBC_STIB7 = 7
27};
28
29/* The two available diag 204 data formats */
30enum diag204_format {
31 INFO_SIMPLE = 0,
32 INFO_EXT = 0x00010000
33};
34
35/* bit is set in flags, when physical cpu info is included in diag 204 data */
36#define LPAR_PHYS_FLG 0x80
37
38static char *diag224_cpu_names; /* diag 224 name table */
39static enum diag204_sc diag204_store_sc; /* used subcode for store */
40static enum diag204_format diag204_info_type; /* used diag 204 data format */
41
42static void *diag204_buf; /* 4K aligned buffer for diag204 data */
43static void *diag204_buf_vmalloc; /* vmalloc pointer for diag204 data */
44static int diag204_buf_pages; /* number of pages for diag204 data */
45
46/*
47 * DIAG 204 data structures and member access functions.
48 *
49 * Since we have two different diag 204 data formats for old and new s390
50 * machines, we do not access the structs directly, but use getter functions for
51 * each struct member instead. This should make the code more readable.
52 */
53
54/* Time information block */
55
56struct info_blk_hdr {
57 __u8 npar;
58 __u8 flags;
59 __u16 tslice;
60 __u16 phys_cpus;
61 __u16 this_part;
62 __u64 curtod;
63} __attribute__ ((packed));
64
65struct x_info_blk_hdr {
66 __u8 npar;
67 __u8 flags;
68 __u16 tslice;
69 __u16 phys_cpus;
70 __u16 this_part;
71 __u64 curtod1;
72 __u64 curtod2;
73 char reserved[40];
74} __attribute__ ((packed));
75
76static inline int info_blk_hdr__size(enum diag204_format type)
77{
78 if (type == INFO_SIMPLE)
79 return sizeof(struct info_blk_hdr);
80 else /* INFO_EXT */
81 return sizeof(struct x_info_blk_hdr);
82}
83
84static inline __u8 info_blk_hdr__npar(enum diag204_format type, void *hdr)
85{
86 if (type == INFO_SIMPLE)
87 return ((struct info_blk_hdr *)hdr)->npar;
88 else /* INFO_EXT */
89 return ((struct x_info_blk_hdr *)hdr)->npar;
90}
91
92static inline __u8 info_blk_hdr__flags(enum diag204_format type, void *hdr)
93{
94 if (type == INFO_SIMPLE)
95 return ((struct info_blk_hdr *)hdr)->flags;
96 else /* INFO_EXT */
97 return ((struct x_info_blk_hdr *)hdr)->flags;
98}
99
100static inline __u16 info_blk_hdr__pcpus(enum diag204_format type, void *hdr)
101{
102 if (type == INFO_SIMPLE)
103 return ((struct info_blk_hdr *)hdr)->phys_cpus;
104 else /* INFO_EXT */
105 return ((struct x_info_blk_hdr *)hdr)->phys_cpus;
106}
107
108/* Partition header */
109
110struct part_hdr {
111 __u8 pn;
112 __u8 cpus;
113 char reserved[6];
114 char part_name[LPAR_NAME_LEN];
115} __attribute__ ((packed));
116
117struct x_part_hdr {
118 __u8 pn;
119 __u8 cpus;
120 __u8 rcpus;
121 __u8 pflag;
122 __u32 mlu;
123 char part_name[LPAR_NAME_LEN];
124 char lpc_name[8];
125 char os_name[8];
126 __u64 online_cs;
127 __u64 online_es;
128 __u8 upid;
129 char reserved1[3];
130 __u32 group_mlu;
131 char group_name[8];
132 char reserved2[32];
133} __attribute__ ((packed));
134
135static inline int part_hdr__size(enum diag204_format type)
136{
137 if (type == INFO_SIMPLE)
138 return sizeof(struct part_hdr);
139 else /* INFO_EXT */
140 return sizeof(struct x_part_hdr);
141}
142
143static inline __u8 part_hdr__rcpus(enum diag204_format type, void *hdr)
144{
145 if (type == INFO_SIMPLE)
146 return ((struct part_hdr *)hdr)->cpus;
147 else /* INFO_EXT */
148 return ((struct x_part_hdr *)hdr)->rcpus;
149}
150
151static inline void part_hdr__part_name(enum diag204_format type, void *hdr,
152 char *name)
153{
154 if (type == INFO_SIMPLE)
155 memcpy(name, ((struct part_hdr *)hdr)->part_name,
156 LPAR_NAME_LEN);
157 else /* INFO_EXT */
158 memcpy(name, ((struct x_part_hdr *)hdr)->part_name,
159 LPAR_NAME_LEN);
160 EBCASC(name, LPAR_NAME_LEN);
161 name[LPAR_NAME_LEN] = 0;
162 strstrip(name);
163}
164
165struct cpu_info {
166 __u16 cpu_addr;
167 char reserved1[2];
168 __u8 ctidx;
169 __u8 cflag;
170 __u16 weight;
171 __u64 acc_time;
172 __u64 lp_time;
173} __attribute__ ((packed));
174
175struct x_cpu_info {
176 __u16 cpu_addr;
177 char reserved1[2];
178 __u8 ctidx;
179 __u8 cflag;
180 __u16 weight;
181 __u64 acc_time;
182 __u64 lp_time;
183 __u16 min_weight;
184 __u16 cur_weight;
185 __u16 max_weight;
186 char reseved2[2];
187 __u64 online_time;
188 __u64 wait_time;
189 __u32 pma_weight;
190 __u32 polar_weight;
191 char reserved3[40];
192} __attribute__ ((packed));
193
194/* CPU info block */
195
196static inline int cpu_info__size(enum diag204_format type)
197{
198 if (type == INFO_SIMPLE)
199 return sizeof(struct cpu_info);
200 else /* INFO_EXT */
201 return sizeof(struct x_cpu_info);
202}
203
204static inline __u8 cpu_info__ctidx(enum diag204_format type, void *hdr)
205{
206 if (type == INFO_SIMPLE)
207 return ((struct cpu_info *)hdr)->ctidx;
208 else /* INFO_EXT */
209 return ((struct x_cpu_info *)hdr)->ctidx;
210}
211
212static inline __u16 cpu_info__cpu_addr(enum diag204_format type, void *hdr)
213{
214 if (type == INFO_SIMPLE)
215 return ((struct cpu_info *)hdr)->cpu_addr;
216 else /* INFO_EXT */
217 return ((struct x_cpu_info *)hdr)->cpu_addr;
218}
219
220static inline __u64 cpu_info__acc_time(enum diag204_format type, void *hdr)
221{
222 if (type == INFO_SIMPLE)
223 return ((struct cpu_info *)hdr)->acc_time;
224 else /* INFO_EXT */
225 return ((struct x_cpu_info *)hdr)->acc_time;
226}
227
228static inline __u64 cpu_info__lp_time(enum diag204_format type, void *hdr)
229{
230 if (type == INFO_SIMPLE)
231 return ((struct cpu_info *)hdr)->lp_time;
232 else /* INFO_EXT */
233 return ((struct x_cpu_info *)hdr)->lp_time;
234}
235
236static inline __u64 cpu_info__online_time(enum diag204_format type, void *hdr)
237{
238 if (type == INFO_SIMPLE)
239 return 0; /* online_time not available in simple info */
240 else /* INFO_EXT */
241 return ((struct x_cpu_info *)hdr)->online_time;
242}
243
244/* Physical header */
245
246struct phys_hdr {
247 char reserved1[1];
248 __u8 cpus;
249 char reserved2[6];
250 char mgm_name[8];
251} __attribute__ ((packed));
252
253struct x_phys_hdr {
254 char reserved1[1];
255 __u8 cpus;
256 char reserved2[6];
257 char mgm_name[8];
258 char reserved3[80];
259} __attribute__ ((packed));
260
261static inline int phys_hdr__size(enum diag204_format type)
262{
263 if (type == INFO_SIMPLE)
264 return sizeof(struct phys_hdr);
265 else /* INFO_EXT */
266 return sizeof(struct x_phys_hdr);
267}
268
269static inline __u8 phys_hdr__cpus(enum diag204_format type, void *hdr)
270{
271 if (type == INFO_SIMPLE)
272 return ((struct phys_hdr *)hdr)->cpus;
273 else /* INFO_EXT */
274 return ((struct x_phys_hdr *)hdr)->cpus;
275}
276
277/* Physical CPU info block */
278
279struct phys_cpu {
280 __u16 cpu_addr;
281 char reserved1[2];
282 __u8 ctidx;
283 char reserved2[3];
284 __u64 mgm_time;
285 char reserved3[8];
286} __attribute__ ((packed));
287
288struct x_phys_cpu {
289 __u16 cpu_addr;
290 char reserved1[2];
291 __u8 ctidx;
292 char reserved2[3];
293 __u64 mgm_time;
294 char reserved3[80];
295} __attribute__ ((packed));
296
297static inline int phys_cpu__size(enum diag204_format type)
298{
299 if (type == INFO_SIMPLE)
300 return sizeof(struct phys_cpu);
301 else /* INFO_EXT */
302 return sizeof(struct x_phys_cpu);
303}
304
305static inline __u16 phys_cpu__cpu_addr(enum diag204_format type, void *hdr)
306{
307 if (type == INFO_SIMPLE)
308 return ((struct phys_cpu *)hdr)->cpu_addr;
309 else /* INFO_EXT */
310 return ((struct x_phys_cpu *)hdr)->cpu_addr;
311}
312
313static inline __u64 phys_cpu__mgm_time(enum diag204_format type, void *hdr)
314{
315 if (type == INFO_SIMPLE)
316 return ((struct phys_cpu *)hdr)->mgm_time;
317 else /* INFO_EXT */
318 return ((struct x_phys_cpu *)hdr)->mgm_time;
319}
320
321static inline __u64 phys_cpu__ctidx(enum diag204_format type, void *hdr)
322{
323 if (type == INFO_SIMPLE)
324 return ((struct phys_cpu *)hdr)->ctidx;
325 else /* INFO_EXT */
326 return ((struct x_phys_cpu *)hdr)->ctidx;
327}
328
329/* Diagnose 204 functions */
330
331static int diag204(unsigned long subcode, unsigned long size, void *addr)
332{
333 register unsigned long _subcode asm("0") = subcode;
334 register unsigned long _size asm("1") = size;
335
336 asm volatile (" diag %2,%0,0x204\n"
337 "0: \n" ".section __ex_table,\"a\"\n"
338#ifndef __s390x__
339 " .align 4\n"
340 " .long 0b,0b\n"
341#else
342 " .align 8\n"
343 " .quad 0b,0b\n"
344#endif
345 ".previous":"+d" (_subcode), "+d"(_size)
346 :"d"(addr)
347 :"memory");
348 if (_subcode)
349 return -1;
350 else
351 return _size;
352}
353
354/*
355 * For the old diag subcode 4 with simple data format we have to use real
356 * memory. If we use subcode 6 or 7 with extended data format, we can (and
357 * should) use vmalloc, since we need a lot of memory in that case. Currently
358 * up to 93 pages!
359 */
360
361static void diag204_free_buffer(void)
362{
363 if (!diag204_buf)
364 return;
365 if (diag204_buf_vmalloc) {
366 vfree(diag204_buf_vmalloc);
367 diag204_buf_vmalloc = NULL;
368 } else {
369 free_pages((unsigned long) diag204_buf, 0);
370 }
371 diag204_buf_pages = 0;
372 diag204_buf = NULL;
373}
374
375static void *diag204_alloc_vbuf(int pages)
376{
377 /* The buffer has to be page aligned! */
378 diag204_buf_vmalloc = vmalloc(PAGE_SIZE * (pages + 1));
379 if (!diag204_buf_vmalloc)
380 return ERR_PTR(-ENOMEM);
381 diag204_buf = (void*)((unsigned long)diag204_buf_vmalloc
382 & ~0xfffUL) + 0x1000;
383 diag204_buf_pages = pages;
384 return diag204_buf;
385}
386
387static void *diag204_alloc_rbuf(void)
388{
389 diag204_buf = (void*)__get_free_pages(GFP_KERNEL,0);
390 if (diag204_buf)
391 return ERR_PTR(-ENOMEM);
392 diag204_buf_pages = 1;
393 return diag204_buf;
394}
395
396static void *diag204_get_buffer(enum diag204_format fmt, int *pages)
397{
398 if (diag204_buf) {
399 *pages = diag204_buf_pages;
400 return diag204_buf;
401 }
402 if (fmt == INFO_SIMPLE) {
403 *pages = 1;
404 return diag204_alloc_rbuf();
405 } else {/* INFO_EXT */
Michael Holzheu23c100d2006-09-28 16:55:28 +0200406 *pages = diag204((unsigned long)SUBC_RSI |
407 (unsigned long)INFO_EXT, 0, NULL);
Michael Holzheu24bbb1f2006-06-23 02:05:06 -0700408 if (*pages <= 0)
409 return ERR_PTR(-ENOSYS);
410 else
411 return diag204_alloc_vbuf(*pages);
412 }
413}
414
415/*
416 * diag204_probe() has to find out, which type of diagnose 204 implementation
417 * we have on our machine. Currently there are three possible scanarios:
418 * - subcode 4 + simple data format (only one page)
419 * - subcode 4-6 + extended data format
420 * - subcode 4-7 + extended data format
421 *
422 * Subcode 5 is used to retrieve the size of the data, provided by subcodes
423 * 6 and 7. Subcode 7 basically has the same function as subcode 6. In addition
424 * to subcode 6 it provides also information about secondary cpus.
425 * In order to get as much information as possible, we first try
426 * subcode 7, then 6 and if both fail, we use subcode 4.
427 */
428
429static int diag204_probe(void)
430{
431 void *buf;
432 int pages, rc;
433
434 buf = diag204_get_buffer(INFO_EXT, &pages);
435 if (!IS_ERR(buf)) {
Michael Holzheu331c9822006-09-20 15:58:47 +0200436 if (diag204((unsigned long)SUBC_STIB7 |
437 (unsigned long)INFO_EXT, pages, buf) >= 0) {
Michael Holzheu24bbb1f2006-06-23 02:05:06 -0700438 diag204_store_sc = SUBC_STIB7;
439 diag204_info_type = INFO_EXT;
440 goto out;
441 }
Michael Holzheu331c9822006-09-20 15:58:47 +0200442 if (diag204((unsigned long)SUBC_STIB6 |
443 (unsigned long)INFO_EXT, pages, buf) >= 0) {
Michael Holzheu24bbb1f2006-06-23 02:05:06 -0700444 diag204_store_sc = SUBC_STIB7;
445 diag204_info_type = INFO_EXT;
446 goto out;
447 }
448 diag204_free_buffer();
449 }
450
451 /* subcodes 6 and 7 failed, now try subcode 4 */
452
453 buf = diag204_get_buffer(INFO_SIMPLE, &pages);
454 if (IS_ERR(buf)) {
455 rc = PTR_ERR(buf);
456 goto fail_alloc;
457 }
Michael Holzheu331c9822006-09-20 15:58:47 +0200458 if (diag204((unsigned long)SUBC_STIB4 |
459 (unsigned long)INFO_SIMPLE, pages, buf) >= 0) {
Michael Holzheu24bbb1f2006-06-23 02:05:06 -0700460 diag204_store_sc = SUBC_STIB4;
461 diag204_info_type = INFO_SIMPLE;
462 goto out;
463 } else {
464 rc = -ENOSYS;
465 goto fail_store;
466 }
467out:
468 rc = 0;
469fail_store:
470 diag204_free_buffer();
471fail_alloc:
472 return rc;
473}
474
475static void *diag204_store(void)
476{
477 void *buf;
478 int pages;
479
480 buf = diag204_get_buffer(diag204_info_type, &pages);
481 if (IS_ERR(buf))
482 goto out;
Michael Holzheu331c9822006-09-20 15:58:47 +0200483 if (diag204((unsigned long)diag204_store_sc |
484 (unsigned long)diag204_info_type, pages, buf) < 0)
Michael Holzheu24bbb1f2006-06-23 02:05:06 -0700485 return ERR_PTR(-ENOSYS);
486out:
487 return buf;
488}
489
490/* Diagnose 224 functions */
491
492static void diag224(void *ptr)
493{
494 asm volatile(" diag %0,%1,0x224\n"
495 : :"d" (0), "d"(ptr) : "memory");
496}
497
498static int diag224_get_name_table(void)
499{
500 /* memory must be below 2GB */
501 diag224_cpu_names = kmalloc(PAGE_SIZE, GFP_KERNEL | GFP_DMA);
502 if (!diag224_cpu_names)
503 return -ENOMEM;
504 diag224(diag224_cpu_names);
505 EBCASC(diag224_cpu_names + 16, (*diag224_cpu_names + 1) * 16);
506 return 0;
507}
508
509static void diag224_delete_name_table(void)
510{
511 kfree(diag224_cpu_names);
512}
513
514static int diag224_idx2name(int index, char *name)
515{
516 memcpy(name, diag224_cpu_names + ((index + 1) * CPU_NAME_LEN),
517 CPU_NAME_LEN);
518 name[CPU_NAME_LEN] = 0;
519 strstrip(name);
520 return 0;
521}
522
523__init int hypfs_diag_init(void)
524{
525 int rc;
526
527 if (diag204_probe()) {
528 printk(KERN_ERR "hypfs: diag 204 not working.");
529 return -ENODATA;
530 }
531 rc = diag224_get_name_table();
532 if (rc) {
533 diag224_delete_name_table();
534 printk(KERN_ERR "hypfs: could not get name table.\n");
535 }
536 return rc;
537}
538
Heiko Carstens1375fc12006-09-20 15:59:12 +0200539void hypfs_diag_exit(void)
Michael Holzheu24bbb1f2006-06-23 02:05:06 -0700540{
541 diag224_delete_name_table();
542 diag204_free_buffer();
543}
544
545/*
546 * Functions to create the directory structure
547 * *******************************************
548 */
549
550static int hypfs_create_cpu_files(struct super_block *sb,
551 struct dentry *cpus_dir, void *cpu_info)
552{
553 struct dentry *cpu_dir;
554 char buffer[TMP_SIZE];
555 void *rc;
556
557 snprintf(buffer, TMP_SIZE, "%d", cpu_info__cpu_addr(diag204_info_type,
558 cpu_info));
559 cpu_dir = hypfs_mkdir(sb, cpus_dir, buffer);
560 rc = hypfs_create_u64(sb, cpu_dir, "mgmtime",
561 cpu_info__acc_time(diag204_info_type, cpu_info) -
562 cpu_info__lp_time(diag204_info_type, cpu_info));
563 if (IS_ERR(rc))
564 return PTR_ERR(rc);
565 rc = hypfs_create_u64(sb, cpu_dir, "cputime",
566 cpu_info__lp_time(diag204_info_type, cpu_info));
567 if (IS_ERR(rc))
568 return PTR_ERR(rc);
569 if (diag204_info_type == INFO_EXT) {
570 rc = hypfs_create_u64(sb, cpu_dir, "onlinetime",
571 cpu_info__online_time(diag204_info_type,
572 cpu_info));
573 if (IS_ERR(rc))
574 return PTR_ERR(rc);
575 }
576 diag224_idx2name(cpu_info__ctidx(diag204_info_type, cpu_info), buffer);
577 rc = hypfs_create_str(sb, cpu_dir, "type", buffer);
578 if (IS_ERR(rc))
579 return PTR_ERR(rc);
580 return 0;
581}
582
583static void *hypfs_create_lpar_files(struct super_block *sb,
584 struct dentry *systems_dir, void *part_hdr)
585{
586 struct dentry *cpus_dir;
587 struct dentry *lpar_dir;
588 char lpar_name[LPAR_NAME_LEN + 1];
589 void *cpu_info;
590 int i;
591
592 part_hdr__part_name(diag204_info_type, part_hdr, lpar_name);
593 lpar_name[LPAR_NAME_LEN] = 0;
594 lpar_dir = hypfs_mkdir(sb, systems_dir, lpar_name);
595 if (IS_ERR(lpar_dir))
596 return lpar_dir;
597 cpus_dir = hypfs_mkdir(sb, lpar_dir, "cpus");
598 if (IS_ERR(cpus_dir))
599 return cpus_dir;
600 cpu_info = part_hdr + part_hdr__size(diag204_info_type);
601 for (i = 0; i < part_hdr__rcpus(diag204_info_type, part_hdr); i++) {
602 int rc;
603 rc = hypfs_create_cpu_files(sb, cpus_dir, cpu_info);
604 if (rc)
605 return ERR_PTR(rc);
606 cpu_info += cpu_info__size(diag204_info_type);
607 }
608 return cpu_info;
609}
610
611static int hypfs_create_phys_cpu_files(struct super_block *sb,
612 struct dentry *cpus_dir, void *cpu_info)
613{
614 struct dentry *cpu_dir;
615 char buffer[TMP_SIZE];
616 void *rc;
617
618 snprintf(buffer, TMP_SIZE, "%i", phys_cpu__cpu_addr(diag204_info_type,
619 cpu_info));
620 cpu_dir = hypfs_mkdir(sb, cpus_dir, buffer);
621 if (IS_ERR(cpu_dir))
622 return PTR_ERR(cpu_dir);
623 rc = hypfs_create_u64(sb, cpu_dir, "mgmtime",
624 phys_cpu__mgm_time(diag204_info_type, cpu_info));
625 if (IS_ERR(rc))
626 return PTR_ERR(rc);
627 diag224_idx2name(phys_cpu__ctidx(diag204_info_type, cpu_info), buffer);
628 rc = hypfs_create_str(sb, cpu_dir, "type", buffer);
629 if (IS_ERR(rc))
630 return PTR_ERR(rc);
631 return 0;
632}
633
634static void *hypfs_create_phys_files(struct super_block *sb,
635 struct dentry *parent_dir, void *phys_hdr)
636{
637 int i;
638 void *cpu_info;
639 struct dentry *cpus_dir;
640
641 cpus_dir = hypfs_mkdir(sb, parent_dir, "cpus");
642 if (IS_ERR(cpus_dir))
643 return cpus_dir;
644 cpu_info = phys_hdr + phys_hdr__size(diag204_info_type);
645 for (i = 0; i < phys_hdr__cpus(diag204_info_type, phys_hdr); i++) {
646 int rc;
647 rc = hypfs_create_phys_cpu_files(sb, cpus_dir, cpu_info);
648 if (rc)
649 return ERR_PTR(rc);
650 cpu_info += phys_cpu__size(diag204_info_type);
651 }
652 return cpu_info;
653}
654
655int hypfs_diag_create_files(struct super_block *sb, struct dentry *root)
656{
657 struct dentry *systems_dir, *hyp_dir;
658 void *time_hdr, *part_hdr;
659 int i, rc;
660 void *buffer, *ptr;
661
662 buffer = diag204_store();
663 if (IS_ERR(buffer))
664 return PTR_ERR(buffer);
665
666 systems_dir = hypfs_mkdir(sb, root, "systems");
667 if (IS_ERR(systems_dir)) {
668 rc = PTR_ERR(systems_dir);
669 goto err_out;
670 }
671 time_hdr = (struct x_info_blk_hdr *)buffer;
672 part_hdr = time_hdr + info_blk_hdr__size(diag204_info_type);
673 for (i = 0; i < info_blk_hdr__npar(diag204_info_type, time_hdr); i++) {
674 part_hdr = hypfs_create_lpar_files(sb, systems_dir, part_hdr);
675 if (IS_ERR(part_hdr)) {
676 rc = PTR_ERR(part_hdr);
677 goto err_out;
678 }
679 }
680 if (info_blk_hdr__flags(diag204_info_type, time_hdr) & LPAR_PHYS_FLG) {
681 ptr = hypfs_create_phys_files(sb, root, part_hdr);
682 if (IS_ERR(ptr)) {
683 rc = PTR_ERR(ptr);
684 goto err_out;
685 }
686 }
687 hyp_dir = hypfs_mkdir(sb, root, "hyp");
688 if (IS_ERR(hyp_dir)) {
689 rc = PTR_ERR(hyp_dir);
690 goto err_out;
691 }
692 ptr = hypfs_create_str(sb, hyp_dir, "type", "LPAR Hypervisor");
693 if (IS_ERR(ptr)) {
694 rc = PTR_ERR(ptr);
695 goto err_out;
696 }
697 rc = 0;
698
699err_out:
700 return rc;
701}