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1 /*
2 * S390 version
3 * Copyright IBM Corp. 1999, 2012
4 * Author(s): Hartmut Penner (hp@de.ibm.com),
5 * Martin Schwidefsky (schwidefsky@de.ibm.com)
6 *
7 * Derived from "arch/i386/kernel/setup.c"
8 * Copyright (C) 1995, Linus Torvalds
9 */
10
11 /*
12 * This file handles the architecture-dependent parts of initialization
13 */
14
15 #define KMSG_COMPONENT "setup"
16 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
17
18 #include <linux/errno.h>
19 #include <linux/module.h>
20 #include <linux/sched.h>
21 #include <linux/kernel.h>
22 #include <linux/memblock.h>
23 #include <linux/mm.h>
24 #include <linux/stddef.h>
25 #include <linux/unistd.h>
26 #include <linux/ptrace.h>
27 #include <linux/user.h>
28 #include <linux/tty.h>
29 #include <linux/ioport.h>
30 #include <linux/delay.h>
31 #include <linux/init.h>
32 #include <linux/initrd.h>
33 #include <linux/bootmem.h>
34 #include <linux/root_dev.h>
35 #include <linux/console.h>
36 #include <linux/kernel_stat.h>
37 #include <linux/device.h>
38 #include <linux/notifier.h>
39 #include <linux/pfn.h>
40 #include <linux/ctype.h>
41 #include <linux/reboot.h>
42 #include <linux/topology.h>
43 #include <linux/ftrace.h>
44 #include <linux/kexec.h>
45 #include <linux/crash_dump.h>
46 #include <linux/memory.h>
47 #include <linux/compat.h>
48
49 #include <asm/ipl.h>
50 #include <asm/uaccess.h>
51 #include <asm/facility.h>
52 #include <asm/smp.h>
53 #include <asm/mmu_context.h>
54 #include <asm/cpcmd.h>
55 #include <asm/lowcore.h>
56 #include <asm/irq.h>
57 #include <asm/page.h>
58 #include <asm/ptrace.h>
59 #include <asm/sections.h>
60 #include <asm/ebcdic.h>
61 #include <asm/kvm_virtio.h>
62 #include <asm/diag.h>
63 #include <asm/os_info.h>
64 #include <asm/sclp.h>
65 #include "entry.h"
66
67 long psw_kernel_bits = PSW_DEFAULT_KEY | PSW_MASK_BASE | PSW_ASC_PRIMARY |
68 PSW_MASK_EA | PSW_MASK_BA;
69 long psw_user_bits = PSW_MASK_DAT | PSW_MASK_IO | PSW_MASK_EXT |
70 PSW_DEFAULT_KEY | PSW_MASK_BASE | PSW_MASK_MCHECK |
71 PSW_MASK_PSTATE | PSW_ASC_HOME;
72
73 /*
74 * User copy operations.
75 */
76 struct uaccess_ops uaccess;
77 EXPORT_SYMBOL(uaccess);
78
79 /*
80 * Machine setup..
81 */
82 unsigned int console_mode = 0;
83 EXPORT_SYMBOL(console_mode);
84
85 unsigned int console_devno = -1;
86 EXPORT_SYMBOL(console_devno);
87
88 unsigned int console_irq = -1;
89 EXPORT_SYMBOL(console_irq);
90
91 unsigned long elf_hwcap = 0;
92 char elf_platform[ELF_PLATFORM_SIZE];
93
94 struct mem_chunk __initdata memory_chunk[MEMORY_CHUNKS];
95
96 int __initdata memory_end_set;
97 unsigned long __initdata memory_end;
98
99 unsigned long VMALLOC_START;
100 EXPORT_SYMBOL(VMALLOC_START);
101
102 unsigned long VMALLOC_END;
103 EXPORT_SYMBOL(VMALLOC_END);
104
105 struct page *vmemmap;
106 EXPORT_SYMBOL(vmemmap);
107
108 /* An array with a pointer to the lowcore of every CPU. */
109 struct _lowcore *lowcore_ptr[NR_CPUS];
110 EXPORT_SYMBOL(lowcore_ptr);
111
112 /*
113 * This is set up by the setup-routine at boot-time
114 * for S390 need to find out, what we have to setup
115 * using address 0x10400 ...
116 */
117
118 #include <asm/setup.h>
119
120 /*
121 * condev= and conmode= setup parameter.
122 */
123
124 static int __init condev_setup(char *str)
125 {
126 int vdev;
127
128 vdev = simple_strtoul(str, &str, 0);
129 if (vdev >= 0 && vdev < 65536) {
130 console_devno = vdev;
131 console_irq = -1;
132 }
133 return 1;
134 }
135
136 __setup("condev=", condev_setup);
137
138 static void __init set_preferred_console(void)
139 {
140 if (MACHINE_IS_KVM) {
141 if (sclp_has_vt220())
142 add_preferred_console("ttyS", 1, NULL);
143 else if (sclp_has_linemode())
144 add_preferred_console("ttyS", 0, NULL);
145 else
146 add_preferred_console("hvc", 0, NULL);
147 } else if (CONSOLE_IS_3215 || CONSOLE_IS_SCLP)
148 add_preferred_console("ttyS", 0, NULL);
149 else if (CONSOLE_IS_3270)
150 add_preferred_console("tty3270", 0, NULL);
151 }
152
153 static int __init conmode_setup(char *str)
154 {
155 #if defined(CONFIG_SCLP_CONSOLE) || defined(CONFIG_SCLP_VT220_CONSOLE)
156 if (strncmp(str, "hwc", 4) == 0 || strncmp(str, "sclp", 5) == 0)
157 SET_CONSOLE_SCLP;
158 #endif
159 #if defined(CONFIG_TN3215_CONSOLE)
160 if (strncmp(str, "3215", 5) == 0)
161 SET_CONSOLE_3215;
162 #endif
163 #if defined(CONFIG_TN3270_CONSOLE)
164 if (strncmp(str, "3270", 5) == 0)
165 SET_CONSOLE_3270;
166 #endif
167 set_preferred_console();
168 return 1;
169 }
170
171 __setup("conmode=", conmode_setup);
172
173 static void __init conmode_default(void)
174 {
175 char query_buffer[1024];
176 char *ptr;
177
178 if (MACHINE_IS_VM) {
179 cpcmd("QUERY CONSOLE", query_buffer, 1024, NULL);
180 console_devno = simple_strtoul(query_buffer + 5, NULL, 16);
181 ptr = strstr(query_buffer, "SUBCHANNEL =");
182 console_irq = simple_strtoul(ptr + 13, NULL, 16);
183 cpcmd("QUERY TERM", query_buffer, 1024, NULL);
184 ptr = strstr(query_buffer, "CONMODE");
185 /*
186 * Set the conmode to 3215 so that the device recognition
187 * will set the cu_type of the console to 3215. If the
188 * conmode is 3270 and we don't set it back then both
189 * 3215 and the 3270 driver will try to access the console
190 * device (3215 as console and 3270 as normal tty).
191 */
192 cpcmd("TERM CONMODE 3215", NULL, 0, NULL);
193 if (ptr == NULL) {
194 #if defined(CONFIG_SCLP_CONSOLE) || defined(CONFIG_SCLP_VT220_CONSOLE)
195 SET_CONSOLE_SCLP;
196 #endif
197 return;
198 }
199 if (strncmp(ptr + 8, "3270", 4) == 0) {
200 #if defined(CONFIG_TN3270_CONSOLE)
201 SET_CONSOLE_3270;
202 #elif defined(CONFIG_TN3215_CONSOLE)
203 SET_CONSOLE_3215;
204 #elif defined(CONFIG_SCLP_CONSOLE) || defined(CONFIG_SCLP_VT220_CONSOLE)
205 SET_CONSOLE_SCLP;
206 #endif
207 } else if (strncmp(ptr + 8, "3215", 4) == 0) {
208 #if defined(CONFIG_TN3215_CONSOLE)
209 SET_CONSOLE_3215;
210 #elif defined(CONFIG_TN3270_CONSOLE)
211 SET_CONSOLE_3270;
212 #elif defined(CONFIG_SCLP_CONSOLE) || defined(CONFIG_SCLP_VT220_CONSOLE)
213 SET_CONSOLE_SCLP;
214 #endif
215 }
216 } else {
217 #if defined(CONFIG_SCLP_CONSOLE) || defined(CONFIG_SCLP_VT220_CONSOLE)
218 SET_CONSOLE_SCLP;
219 #endif
220 }
221 }
222
223 #ifdef CONFIG_ZFCPDUMP
224 static void __init setup_zfcpdump(unsigned int console_devno)
225 {
226 static char str[41];
227
228 if (ipl_info.type != IPL_TYPE_FCP_DUMP)
229 return;
230 if (OLDMEM_BASE)
231 return;
232 if (console_devno != -1)
233 sprintf(str, " cio_ignore=all,!0.0.%04x,!0.0.%04x",
234 ipl_info.data.fcp.dev_id.devno, console_devno);
235 else
236 sprintf(str, " cio_ignore=all,!0.0.%04x",
237 ipl_info.data.fcp.dev_id.devno);
238 strcat(boot_command_line, str);
239 console_loglevel = 2;
240 }
241 #else
242 static inline void setup_zfcpdump(unsigned int console_devno) {}
243 #endif /* CONFIG_ZFCPDUMP */
244
245 /*
246 * Reboot, halt and power_off stubs. They just call _machine_restart,
247 * _machine_halt or _machine_power_off.
248 */
249
250 void machine_restart(char *command)
251 {
252 if ((!in_interrupt() && !in_atomic()) || oops_in_progress)
253 /*
254 * Only unblank the console if we are called in enabled
255 * context or a bust_spinlocks cleared the way for us.
256 */
257 console_unblank();
258 _machine_restart(command);
259 }
260
261 void machine_halt(void)
262 {
263 if (!in_interrupt() || oops_in_progress)
264 /*
265 * Only unblank the console if we are called in enabled
266 * context or a bust_spinlocks cleared the way for us.
267 */
268 console_unblank();
269 _machine_halt();
270 }
271
272 void machine_power_off(void)
273 {
274 if (!in_interrupt() || oops_in_progress)
275 /*
276 * Only unblank the console if we are called in enabled
277 * context or a bust_spinlocks cleared the way for us.
278 */
279 console_unblank();
280 _machine_power_off();
281 }
282
283 /*
284 * Dummy power off function.
285 */
286 void (*pm_power_off)(void) = machine_power_off;
287
288 static int __init early_parse_mem(char *p)
289 {
290 memory_end = memparse(p, &p);
291 memory_end_set = 1;
292 return 0;
293 }
294 early_param("mem", early_parse_mem);
295
296 static int __init parse_vmalloc(char *arg)
297 {
298 if (!arg)
299 return -EINVAL;
300 VMALLOC_END = (memparse(arg, &arg) + PAGE_SIZE - 1) & PAGE_MASK;
301 return 0;
302 }
303 early_param("vmalloc", parse_vmalloc);
304
305 unsigned int addressing_mode = HOME_SPACE_MODE;
306 EXPORT_SYMBOL_GPL(addressing_mode);
307
308 static int set_amode_primary(void)
309 {
310 psw_kernel_bits = (psw_kernel_bits & ~PSW_MASK_ASC) | PSW_ASC_HOME;
311 psw_user_bits = (psw_user_bits & ~PSW_MASK_ASC) | PSW_ASC_PRIMARY;
312 #ifdef CONFIG_COMPAT
313 psw32_user_bits =
314 (psw32_user_bits & ~PSW32_MASK_ASC) | PSW32_ASC_PRIMARY;
315 #endif
316
317 if (MACHINE_HAS_MVCOS) {
318 memcpy(&uaccess, &uaccess_mvcos_switch, sizeof(uaccess));
319 return 1;
320 } else {
321 memcpy(&uaccess, &uaccess_pt, sizeof(uaccess));
322 return 0;
323 }
324 }
325
326 /*
327 * Switch kernel/user addressing modes?
328 */
329 static int __init early_parse_switch_amode(char *p)
330 {
331 addressing_mode = PRIMARY_SPACE_MODE;
332 return 0;
333 }
334 early_param("switch_amode", early_parse_switch_amode);
335
336 static int __init early_parse_user_mode(char *p)
337 {
338 if (p && strcmp(p, "primary") == 0)
339 addressing_mode = PRIMARY_SPACE_MODE;
340 else if (!p || strcmp(p, "home") == 0)
341 addressing_mode = HOME_SPACE_MODE;
342 else
343 return 1;
344 return 0;
345 }
346 early_param("user_mode", early_parse_user_mode);
347
348 static void setup_addressing_mode(void)
349 {
350 if (addressing_mode == PRIMARY_SPACE_MODE) {
351 if (set_amode_primary())
352 pr_info("Address spaces switched, "
353 "mvcos available\n");
354 else
355 pr_info("Address spaces switched, "
356 "mvcos not available\n");
357 }
358 }
359
360 void *restart_stack __attribute__((__section__(".data")));
361
362 static void __init setup_lowcore(void)
363 {
364 struct _lowcore *lc;
365
366 /*
367 * Setup lowcore for boot cpu
368 */
369 BUILD_BUG_ON(sizeof(struct _lowcore) != LC_PAGES * 4096);
370 lc = __alloc_bootmem_low(LC_PAGES * PAGE_SIZE, LC_PAGES * PAGE_SIZE, 0);
371 lc->restart_psw.mask = psw_kernel_bits;
372 lc->restart_psw.addr =
373 PSW_ADDR_AMODE | (unsigned long) restart_int_handler;
374 lc->external_new_psw.mask = psw_kernel_bits |
375 PSW_MASK_DAT | PSW_MASK_MCHECK;
376 lc->external_new_psw.addr =
377 PSW_ADDR_AMODE | (unsigned long) ext_int_handler;
378 lc->svc_new_psw.mask = psw_kernel_bits |
379 PSW_MASK_DAT | PSW_MASK_IO | PSW_MASK_EXT | PSW_MASK_MCHECK;
380 lc->svc_new_psw.addr = PSW_ADDR_AMODE | (unsigned long) system_call;
381 lc->program_new_psw.mask = psw_kernel_bits |
382 PSW_MASK_DAT | PSW_MASK_MCHECK;
383 lc->program_new_psw.addr =
384 PSW_ADDR_AMODE | (unsigned long) pgm_check_handler;
385 lc->mcck_new_psw.mask = psw_kernel_bits;
386 lc->mcck_new_psw.addr =
387 PSW_ADDR_AMODE | (unsigned long) mcck_int_handler;
388 lc->io_new_psw.mask = psw_kernel_bits |
389 PSW_MASK_DAT | PSW_MASK_MCHECK;
390 lc->io_new_psw.addr = PSW_ADDR_AMODE | (unsigned long) io_int_handler;
391 lc->clock_comparator = -1ULL;
392 lc->kernel_stack = ((unsigned long) &init_thread_union) + THREAD_SIZE;
393 lc->async_stack = (unsigned long)
394 __alloc_bootmem(ASYNC_SIZE, ASYNC_SIZE, 0) + ASYNC_SIZE;
395 lc->panic_stack = (unsigned long)
396 __alloc_bootmem(PAGE_SIZE, PAGE_SIZE, 0) + PAGE_SIZE;
397 lc->current_task = (unsigned long) init_thread_union.thread_info.task;
398 lc->thread_info = (unsigned long) &init_thread_union;
399 lc->machine_flags = S390_lowcore.machine_flags;
400 lc->stfl_fac_list = S390_lowcore.stfl_fac_list;
401 memcpy(lc->stfle_fac_list, S390_lowcore.stfle_fac_list,
402 MAX_FACILITY_BIT/8);
403 #ifndef CONFIG_64BIT
404 if (MACHINE_HAS_IEEE) {
405 lc->extended_save_area_addr = (__u32)
406 __alloc_bootmem_low(PAGE_SIZE, PAGE_SIZE, 0);
407 /* enable extended save area */
408 __ctl_set_bit(14, 29);
409 }
410 #else
411 lc->vdso_per_cpu_data = (unsigned long) &lc->paste[0];
412 #endif
413 lc->sync_enter_timer = S390_lowcore.sync_enter_timer;
414 lc->async_enter_timer = S390_lowcore.async_enter_timer;
415 lc->exit_timer = S390_lowcore.exit_timer;
416 lc->user_timer = S390_lowcore.user_timer;
417 lc->system_timer = S390_lowcore.system_timer;
418 lc->steal_timer = S390_lowcore.steal_timer;
419 lc->last_update_timer = S390_lowcore.last_update_timer;
420 lc->last_update_clock = S390_lowcore.last_update_clock;
421 lc->ftrace_func = S390_lowcore.ftrace_func;
422
423 restart_stack = __alloc_bootmem(ASYNC_SIZE, ASYNC_SIZE, 0);
424 restart_stack += ASYNC_SIZE;
425
426 /*
427 * Set up PSW restart to call ipl.c:do_restart(). Copy the relevant
428 * restart data to the absolute zero lowcore. This is necesary if
429 * PSW restart is done on an offline CPU that has lowcore zero.
430 */
431 lc->restart_stack = (unsigned long) restart_stack;
432 lc->restart_fn = (unsigned long) do_restart;
433 lc->restart_data = 0;
434 lc->restart_source = -1UL;
435
436 /* Setup absolute zero lowcore */
437 mem_assign_absolute(S390_lowcore.restart_stack, lc->restart_stack);
438 mem_assign_absolute(S390_lowcore.restart_fn, lc->restart_fn);
439 mem_assign_absolute(S390_lowcore.restart_data, lc->restart_data);
440 mem_assign_absolute(S390_lowcore.restart_source, lc->restart_source);
441 mem_assign_absolute(S390_lowcore.restart_psw, lc->restart_psw);
442
443 set_prefix((u32)(unsigned long) lc);
444 lowcore_ptr[0] = lc;
445 }
446
447 static struct resource code_resource = {
448 .name = "Kernel code",
449 .flags = IORESOURCE_BUSY | IORESOURCE_MEM,
450 };
451
452 static struct resource data_resource = {
453 .name = "Kernel data",
454 .flags = IORESOURCE_BUSY | IORESOURCE_MEM,
455 };
456
457 static struct resource bss_resource = {
458 .name = "Kernel bss",
459 .flags = IORESOURCE_BUSY | IORESOURCE_MEM,
460 };
461
462 static struct resource __initdata *standard_resources[] = {
463 &code_resource,
464 &data_resource,
465 &bss_resource,
466 };
467
468 static void __init setup_resources(void)
469 {
470 struct resource *res, *std_res, *sub_res;
471 int i, j;
472
473 code_resource.start = (unsigned long) &_text;
474 code_resource.end = (unsigned long) &_etext - 1;
475 data_resource.start = (unsigned long) &_etext;
476 data_resource.end = (unsigned long) &_edata - 1;
477 bss_resource.start = (unsigned long) &__bss_start;
478 bss_resource.end = (unsigned long) &__bss_stop - 1;
479
480 for (i = 0; i < MEMORY_CHUNKS; i++) {
481 if (!memory_chunk[i].size)
482 continue;
483 if (memory_chunk[i].type == CHUNK_OLDMEM ||
484 memory_chunk[i].type == CHUNK_CRASHK)
485 continue;
486 res = alloc_bootmem_low(sizeof(*res));
487 res->flags = IORESOURCE_BUSY | IORESOURCE_MEM;
488 switch (memory_chunk[i].type) {
489 case CHUNK_READ_WRITE:
490 case CHUNK_CRASHK:
491 res->name = "System RAM";
492 break;
493 case CHUNK_READ_ONLY:
494 res->name = "System ROM";
495 res->flags |= IORESOURCE_READONLY;
496 break;
497 default:
498 res->name = "reserved";
499 }
500 res->start = memory_chunk[i].addr;
501 res->end = res->start + memory_chunk[i].size - 1;
502 request_resource(&iomem_resource, res);
503
504 for (j = 0; j < ARRAY_SIZE(standard_resources); j++) {
505 std_res = standard_resources[j];
506 if (std_res->start < res->start ||
507 std_res->start > res->end)
508 continue;
509 if (std_res->end > res->end) {
510 sub_res = alloc_bootmem_low(sizeof(*sub_res));
511 *sub_res = *std_res;
512 sub_res->end = res->end;
513 std_res->start = res->end + 1;
514 request_resource(res, sub_res);
515 } else {
516 request_resource(res, std_res);
517 }
518 }
519 }
520 }
521
522 unsigned long real_memory_size;
523 EXPORT_SYMBOL_GPL(real_memory_size);
524
525 static void __init setup_memory_end(void)
526 {
527 unsigned long vmax, vmalloc_size, tmp;
528 int i;
529
530
531 #ifdef CONFIG_ZFCPDUMP
532 if (ipl_info.type == IPL_TYPE_FCP_DUMP && !OLDMEM_BASE) {
533 memory_end = ZFCPDUMP_HSA_SIZE;
534 memory_end_set = 1;
535 }
536 #endif
537 real_memory_size = 0;
538 memory_end &= PAGE_MASK;
539
540 /*
541 * Make sure all chunks are MAX_ORDER aligned so we don't need the
542 * extra checks that HOLES_IN_ZONE would require.
543 */
544 for (i = 0; i < MEMORY_CHUNKS; i++) {
545 unsigned long start, end;
546 struct mem_chunk *chunk;
547 unsigned long align;
548
549 chunk = &memory_chunk[i];
550 align = 1UL << (MAX_ORDER + PAGE_SHIFT - 1);
551 start = (chunk->addr + align - 1) & ~(align - 1);
552 end = (chunk->addr + chunk->size) & ~(align - 1);
553 if (start >= end)
554 memset(chunk, 0, sizeof(*chunk));
555 else {
556 chunk->addr = start;
557 chunk->size = end - start;
558 }
559 real_memory_size = max(real_memory_size,
560 chunk->addr + chunk->size);
561 }
562
563 /* Choose kernel address space layout: 2, 3, or 4 levels. */
564 #ifdef CONFIG_64BIT
565 vmalloc_size = VMALLOC_END ?: 128UL << 30;
566 tmp = (memory_end ?: real_memory_size) / PAGE_SIZE;
567 tmp = tmp * (sizeof(struct page) + PAGE_SIZE) + vmalloc_size;
568 if (tmp <= (1UL << 42))
569 vmax = 1UL << 42; /* 3-level kernel page table */
570 else
571 vmax = 1UL << 53; /* 4-level kernel page table */
572 #else
573 vmalloc_size = VMALLOC_END ?: 96UL << 20;
574 vmax = 1UL << 31; /* 2-level kernel page table */
575 #endif
576 /* vmalloc area is at the end of the kernel address space. */
577 VMALLOC_END = vmax;
578 VMALLOC_START = vmax - vmalloc_size;
579
580 /* Split remaining virtual space between 1:1 mapping & vmemmap array */
581 tmp = VMALLOC_START / (PAGE_SIZE + sizeof(struct page));
582 tmp = VMALLOC_START - tmp * sizeof(struct page);
583 tmp &= ~((vmax >> 11) - 1); /* align to page table level */
584 tmp = min(tmp, 1UL << MAX_PHYSMEM_BITS);
585 vmemmap = (struct page *) tmp;
586
587 /* Take care that memory_end is set and <= vmemmap */
588 memory_end = min(memory_end ?: real_memory_size, tmp);
589
590 /* Fixup memory chunk array to fit into 0..memory_end */
591 for (i = 0; i < MEMORY_CHUNKS; i++) {
592 struct mem_chunk *chunk = &memory_chunk[i];
593
594 if (chunk->addr >= memory_end) {
595 memset(chunk, 0, sizeof(*chunk));
596 continue;
597 }
598 if (chunk->addr + chunk->size > memory_end)
599 chunk->size = memory_end - chunk->addr;
600 }
601 }
602
603 static void __init setup_vmcoreinfo(void)
604 {
605 #ifdef CONFIG_KEXEC
606 mem_assign_absolute(S390_lowcore.vmcore_info, paddr_vmcoreinfo_note());
607 #endif
608 }
609
610 #ifdef CONFIG_CRASH_DUMP
611
612 /*
613 * Find suitable location for crashkernel memory
614 */
615 static unsigned long __init find_crash_base(unsigned long crash_size,
616 char **msg)
617 {
618 unsigned long crash_base;
619 struct mem_chunk *chunk;
620 int i;
621
622 if (memory_chunk[0].size < crash_size) {
623 *msg = "first memory chunk must be at least crashkernel size";
624 return 0;
625 }
626 if (OLDMEM_BASE && crash_size == OLDMEM_SIZE)
627 return OLDMEM_BASE;
628
629 for (i = MEMORY_CHUNKS - 1; i >= 0; i--) {
630 chunk = &memory_chunk[i];
631 if (chunk->size == 0)
632 continue;
633 if (chunk->type != CHUNK_READ_WRITE)
634 continue;
635 if (chunk->size < crash_size)
636 continue;
637 crash_base = (chunk->addr + chunk->size) - crash_size;
638 if (crash_base < crash_size)
639 continue;
640 if (crash_base < ZFCPDUMP_HSA_SIZE_MAX)
641 continue;
642 if (crash_base < (unsigned long) INITRD_START + INITRD_SIZE)
643 continue;
644 return crash_base;
645 }
646 *msg = "no suitable area found";
647 return 0;
648 }
649
650 /*
651 * Check if crash_base and crash_size is valid
652 */
653 static int __init verify_crash_base(unsigned long crash_base,
654 unsigned long crash_size,
655 char **msg)
656 {
657 struct mem_chunk *chunk;
658 int i;
659
660 /*
661 * Because we do the swap to zero, we must have at least 'crash_size'
662 * bytes free space before crash_base
663 */
664 if (crash_size > crash_base) {
665 *msg = "crashkernel offset must be greater than size";
666 return -EINVAL;
667 }
668
669 /* First memory chunk must be at least crash_size */
670 if (memory_chunk[0].size < crash_size) {
671 *msg = "first memory chunk must be at least crashkernel size";
672 return -EINVAL;
673 }
674 /* Check if we fit into the respective memory chunk */
675 for (i = 0; i < MEMORY_CHUNKS; i++) {
676 chunk = &memory_chunk[i];
677 if (chunk->size == 0)
678 continue;
679 if (crash_base < chunk->addr)
680 continue;
681 if (crash_base >= chunk->addr + chunk->size)
682 continue;
683 /* we have found the memory chunk */
684 if (crash_base + crash_size > chunk->addr + chunk->size) {
685 *msg = "selected memory chunk is too small for "
686 "crashkernel memory";
687 return -EINVAL;
688 }
689 return 0;
690 }
691 *msg = "invalid memory range specified";
692 return -EINVAL;
693 }
694
695 /*
696 * Reserve kdump memory by creating a memory hole in the mem_chunk array
697 */
698 static void __init reserve_kdump_bootmem(unsigned long addr, unsigned long size,
699 int type)
700 {
701 create_mem_hole(memory_chunk, addr, size, type);
702 }
703
704 /*
705 * When kdump is enabled, we have to ensure that no memory from
706 * the area [0 - crashkernel memory size] and
707 * [crashk_res.start - crashk_res.end] is set offline.
708 */
709 static int kdump_mem_notifier(struct notifier_block *nb,
710 unsigned long action, void *data)
711 {
712 struct memory_notify *arg = data;
713
714 if (arg->start_pfn < PFN_DOWN(resource_size(&crashk_res)))
715 return NOTIFY_BAD;
716 if (arg->start_pfn > PFN_DOWN(crashk_res.end))
717 return NOTIFY_OK;
718 if (arg->start_pfn + arg->nr_pages - 1 < PFN_DOWN(crashk_res.start))
719 return NOTIFY_OK;
720 return NOTIFY_BAD;
721 }
722
723 static struct notifier_block kdump_mem_nb = {
724 .notifier_call = kdump_mem_notifier,
725 };
726
727 #endif
728
729 /*
730 * Make sure that oldmem, where the dump is stored, is protected
731 */
732 static void reserve_oldmem(void)
733 {
734 #ifdef CONFIG_CRASH_DUMP
735 if (!OLDMEM_BASE)
736 return;
737
738 reserve_kdump_bootmem(OLDMEM_BASE, OLDMEM_SIZE, CHUNK_OLDMEM);
739 reserve_kdump_bootmem(OLDMEM_SIZE, memory_end - OLDMEM_SIZE,
740 CHUNK_OLDMEM);
741 if (OLDMEM_BASE + OLDMEM_SIZE == real_memory_size)
742 saved_max_pfn = PFN_DOWN(OLDMEM_BASE) - 1;
743 else
744 saved_max_pfn = PFN_DOWN(real_memory_size) - 1;
745 #endif
746 }
747
748 /*
749 * Reserve memory for kdump kernel to be loaded with kexec
750 */
751 static void __init reserve_crashkernel(void)
752 {
753 #ifdef CONFIG_CRASH_DUMP
754 unsigned long long crash_base, crash_size;
755 char *msg = NULL;
756 int rc;
757
758 rc = parse_crashkernel(boot_command_line, memory_end, &crash_size,
759 &crash_base);
760 if (rc || crash_size == 0)
761 return;
762 crash_base = ALIGN(crash_base, KEXEC_CRASH_MEM_ALIGN);
763 crash_size = ALIGN(crash_size, KEXEC_CRASH_MEM_ALIGN);
764 if (register_memory_notifier(&kdump_mem_nb))
765 return;
766 if (!crash_base)
767 crash_base = find_crash_base(crash_size, &msg);
768 if (!crash_base) {
769 pr_info("crashkernel reservation failed: %s\n", msg);
770 unregister_memory_notifier(&kdump_mem_nb);
771 return;
772 }
773 if (verify_crash_base(crash_base, crash_size, &msg)) {
774 pr_info("crashkernel reservation failed: %s\n", msg);
775 unregister_memory_notifier(&kdump_mem_nb);
776 return;
777 }
778 if (!OLDMEM_BASE && MACHINE_IS_VM)
779 diag10_range(PFN_DOWN(crash_base), PFN_DOWN(crash_size));
780 crashk_res.start = crash_base;
781 crashk_res.end = crash_base + crash_size - 1;
782 insert_resource(&iomem_resource, &crashk_res);
783 reserve_kdump_bootmem(crash_base, crash_size, CHUNK_CRASHK);
784 pr_info("Reserving %lluMB of memory at %lluMB "
785 "for crashkernel (System RAM: %luMB)\n",
786 crash_size >> 20, crash_base >> 20, memory_end >> 20);
787 os_info_crashkernel_add(crash_base, crash_size);
788 #endif
789 }
790
791 static void __init setup_memory(void)
792 {
793 unsigned long bootmap_size;
794 unsigned long start_pfn, end_pfn;
795 int i;
796
797 /*
798 * partially used pages are not usable - thus
799 * we are rounding upwards:
800 */
801 start_pfn = PFN_UP(__pa(&_end));
802 end_pfn = max_pfn = PFN_DOWN(memory_end);
803
804 #ifdef CONFIG_BLK_DEV_INITRD
805 /*
806 * Move the initrd in case the bitmap of the bootmem allocater
807 * would overwrite it.
808 */
809
810 if (INITRD_START && INITRD_SIZE) {
811 unsigned long bmap_size;
812 unsigned long start;
813
814 bmap_size = bootmem_bootmap_pages(end_pfn - start_pfn + 1);
815 bmap_size = PFN_PHYS(bmap_size);
816
817 if (PFN_PHYS(start_pfn) + bmap_size > INITRD_START) {
818 start = PFN_PHYS(start_pfn) + bmap_size + PAGE_SIZE;
819
820 #ifdef CONFIG_CRASH_DUMP
821 if (OLDMEM_BASE) {
822 /* Move initrd behind kdump oldmem */
823 if (start + INITRD_SIZE > OLDMEM_BASE &&
824 start < OLDMEM_BASE + OLDMEM_SIZE)
825 start = OLDMEM_BASE + OLDMEM_SIZE;
826 }
827 #endif
828 if (start + INITRD_SIZE > memory_end) {
829 pr_err("initrd extends beyond end of "
830 "memory (0x%08lx > 0x%08lx) "
831 "disabling initrd\n",
832 start + INITRD_SIZE, memory_end);
833 INITRD_START = INITRD_SIZE = 0;
834 } else {
835 pr_info("Moving initrd (0x%08lx -> "
836 "0x%08lx, size: %ld)\n",
837 INITRD_START, start, INITRD_SIZE);
838 memmove((void *) start, (void *) INITRD_START,
839 INITRD_SIZE);
840 INITRD_START = start;
841 }
842 }
843 }
844 #endif
845
846 /*
847 * Initialize the boot-time allocator
848 */
849 bootmap_size = init_bootmem(start_pfn, end_pfn);
850
851 /*
852 * Register RAM areas with the bootmem allocator.
853 */
854
855 for (i = 0; i < MEMORY_CHUNKS && memory_chunk[i].size > 0; i++) {
856 unsigned long start_chunk, end_chunk, pfn;
857
858 if (memory_chunk[i].type != CHUNK_READ_WRITE &&
859 memory_chunk[i].type != CHUNK_CRASHK)
860 continue;
861 start_chunk = PFN_DOWN(memory_chunk[i].addr);
862 end_chunk = start_chunk + PFN_DOWN(memory_chunk[i].size);
863 end_chunk = min(end_chunk, end_pfn);
864 if (start_chunk >= end_chunk)
865 continue;
866 memblock_add_node(PFN_PHYS(start_chunk),
867 PFN_PHYS(end_chunk - start_chunk), 0);
868 pfn = max(start_chunk, start_pfn);
869 for (; pfn < end_chunk; pfn++)
870 page_set_storage_key(PFN_PHYS(pfn),
871 PAGE_DEFAULT_KEY, 0);
872 }
873
874 psw_set_key(PAGE_DEFAULT_KEY);
875
876 free_bootmem_with_active_regions(0, max_pfn);
877
878 /*
879 * Reserve memory used for lowcore/command line/kernel image.
880 */
881 reserve_bootmem(0, (unsigned long)_ehead, BOOTMEM_DEFAULT);
882 reserve_bootmem((unsigned long)_stext,
883 PFN_PHYS(start_pfn) - (unsigned long)_stext,
884 BOOTMEM_DEFAULT);
885 /*
886 * Reserve the bootmem bitmap itself as well. We do this in two
887 * steps (first step was init_bootmem()) because this catches
888 * the (very unlikely) case of us accidentally initializing the
889 * bootmem allocator with an invalid RAM area.
890 */
891 reserve_bootmem(start_pfn << PAGE_SHIFT, bootmap_size,
892 BOOTMEM_DEFAULT);
893
894 #ifdef CONFIG_CRASH_DUMP
895 if (crashk_res.start)
896 reserve_bootmem(crashk_res.start,
897 crashk_res.end - crashk_res.start + 1,
898 BOOTMEM_DEFAULT);
899 if (is_kdump_kernel())
900 reserve_bootmem(elfcorehdr_addr - OLDMEM_BASE,
901 PAGE_ALIGN(elfcorehdr_size), BOOTMEM_DEFAULT);
902 #endif
903 #ifdef CONFIG_BLK_DEV_INITRD
904 if (INITRD_START && INITRD_SIZE) {
905 if (INITRD_START + INITRD_SIZE <= memory_end) {
906 reserve_bootmem(INITRD_START, INITRD_SIZE,
907 BOOTMEM_DEFAULT);
908 initrd_start = INITRD_START;
909 initrd_end = initrd_start + INITRD_SIZE;
910 } else {
911 pr_err("initrd extends beyond end of "
912 "memory (0x%08lx > 0x%08lx) "
913 "disabling initrd\n",
914 initrd_start + INITRD_SIZE, memory_end);
915 initrd_start = initrd_end = 0;
916 }
917 }
918 #endif
919 }
920
921 /*
922 * Setup hardware capabilities.
923 */
924 static void __init setup_hwcaps(void)
925 {
926 static const int stfl_bits[6] = { 0, 2, 7, 17, 19, 21 };
927 struct cpuid cpu_id;
928 int i;
929
930 /*
931 * The store facility list bits numbers as found in the principles
932 * of operation are numbered with bit 1UL<<31 as number 0 to
933 * bit 1UL<<0 as number 31.
934 * Bit 0: instructions named N3, "backported" to esa-mode
935 * Bit 2: z/Architecture mode is active
936 * Bit 7: the store-facility-list-extended facility is installed
937 * Bit 17: the message-security assist is installed
938 * Bit 19: the long-displacement facility is installed
939 * Bit 21: the extended-immediate facility is installed
940 * Bit 22: extended-translation facility 3 is installed
941 * Bit 30: extended-translation facility 3 enhancement facility
942 * These get translated to:
943 * HWCAP_S390_ESAN3 bit 0, HWCAP_S390_ZARCH bit 1,
944 * HWCAP_S390_STFLE bit 2, HWCAP_S390_MSA bit 3,
945 * HWCAP_S390_LDISP bit 4, HWCAP_S390_EIMM bit 5 and
946 * HWCAP_S390_ETF3EH bit 8 (22 && 30).
947 */
948 for (i = 0; i < 6; i++)
949 if (test_facility(stfl_bits[i]))
950 elf_hwcap |= 1UL << i;
951
952 if (test_facility(22) && test_facility(30))
953 elf_hwcap |= HWCAP_S390_ETF3EH;
954
955 /*
956 * Check for additional facilities with store-facility-list-extended.
957 * stfle stores doublewords (8 byte) with bit 1ULL<<63 as bit 0
958 * and 1ULL<<0 as bit 63. Bits 0-31 contain the same information
959 * as stored by stfl, bits 32-xxx contain additional facilities.
960 * How many facility words are stored depends on the number of
961 * doublewords passed to the instruction. The additional facilities
962 * are:
963 * Bit 42: decimal floating point facility is installed
964 * Bit 44: perform floating point operation facility is installed
965 * translated to:
966 * HWCAP_S390_DFP bit 6 (42 && 44).
967 */
968 if ((elf_hwcap & (1UL << 2)) && test_facility(42) && test_facility(44))
969 elf_hwcap |= HWCAP_S390_DFP;
970
971 /*
972 * Huge page support HWCAP_S390_HPAGE is bit 7.
973 */
974 if (MACHINE_HAS_HPAGE)
975 elf_hwcap |= HWCAP_S390_HPAGE;
976
977 /*
978 * 64-bit register support for 31-bit processes
979 * HWCAP_S390_HIGH_GPRS is bit 9.
980 */
981 elf_hwcap |= HWCAP_S390_HIGH_GPRS;
982
983 get_cpu_id(&cpu_id);
984 switch (cpu_id.machine) {
985 case 0x9672:
986 #if !defined(CONFIG_64BIT)
987 default: /* Use "g5" as default for 31 bit kernels. */
988 #endif
989 strcpy(elf_platform, "g5");
990 break;
991 case 0x2064:
992 case 0x2066:
993 #if defined(CONFIG_64BIT)
994 default: /* Use "z900" as default for 64 bit kernels. */
995 #endif
996 strcpy(elf_platform, "z900");
997 break;
998 case 0x2084:
999 case 0x2086:
1000 strcpy(elf_platform, "z990");
1001 break;
1002 case 0x2094:
1003 case 0x2096:
1004 strcpy(elf_platform, "z9-109");
1005 break;
1006 case 0x2097:
1007 case 0x2098:
1008 strcpy(elf_platform, "z10");
1009 break;
1010 case 0x2817:
1011 case 0x2818:
1012 strcpy(elf_platform, "z196");
1013 break;
1014 }
1015 }
1016
1017 /*
1018 * Setup function called from init/main.c just after the banner
1019 * was printed.
1020 */
1021
1022 void __init setup_arch(char **cmdline_p)
1023 {
1024 /*
1025 * print what head.S has found out about the machine
1026 */
1027 #ifndef CONFIG_64BIT
1028 if (MACHINE_IS_VM)
1029 pr_info("Linux is running as a z/VM "
1030 "guest operating system in 31-bit mode\n");
1031 else if (MACHINE_IS_LPAR)
1032 pr_info("Linux is running natively in 31-bit mode\n");
1033 if (MACHINE_HAS_IEEE)
1034 pr_info("The hardware system has IEEE compatible "
1035 "floating point units\n");
1036 else
1037 pr_info("The hardware system has no IEEE compatible "
1038 "floating point units\n");
1039 #else /* CONFIG_64BIT */
1040 if (MACHINE_IS_VM)
1041 pr_info("Linux is running as a z/VM "
1042 "guest operating system in 64-bit mode\n");
1043 else if (MACHINE_IS_KVM)
1044 pr_info("Linux is running under KVM in 64-bit mode\n");
1045 else if (MACHINE_IS_LPAR)
1046 pr_info("Linux is running natively in 64-bit mode\n");
1047 #endif /* CONFIG_64BIT */
1048
1049 /* Have one command line that is parsed and saved in /proc/cmdline */
1050 /* boot_command_line has been already set up in early.c */
1051 *cmdline_p = boot_command_line;
1052
1053 ROOT_DEV = Root_RAM0;
1054
1055 init_mm.start_code = PAGE_OFFSET;
1056 init_mm.end_code = (unsigned long) &_etext;
1057 init_mm.end_data = (unsigned long) &_edata;
1058 init_mm.brk = (unsigned long) &_end;
1059
1060 if (MACHINE_HAS_MVCOS)
1061 memcpy(&uaccess, &uaccess_mvcos, sizeof(uaccess));
1062 else
1063 memcpy(&uaccess, &uaccess_std, sizeof(uaccess));
1064
1065 parse_early_param();
1066
1067 os_info_init();
1068 setup_ipl();
1069 setup_memory_end();
1070 setup_addressing_mode();
1071 reserve_oldmem();
1072 reserve_crashkernel();
1073 setup_memory();
1074 setup_resources();
1075 setup_vmcoreinfo();
1076 setup_lowcore();
1077
1078 cpu_init();
1079 s390_init_cpu_topology();
1080
1081 /*
1082 * Setup capabilities (ELF_HWCAP & ELF_PLATFORM).
1083 */
1084 setup_hwcaps();
1085
1086 /*
1087 * Create kernel page tables and switch to virtual addressing.
1088 */
1089 paging_init();
1090
1091 /* Setup default console */
1092 conmode_default();
1093 set_preferred_console();
1094
1095 /* Setup zfcpdump support */
1096 setup_zfcpdump(console_devno);
1097 }