Merge tag 'scsi-for-linus' of git://git.kernel.org/pub/scm/linux/kernel/git/jejb...
[deliverable/linux.git] / arch / arm64 / kernel / head.S
1 /*
2 * Low-level CPU initialisation
3 * Based on arch/arm/kernel/head.S
4 *
5 * Copyright (C) 1994-2002 Russell King
6 * Copyright (C) 2003-2012 ARM Ltd.
7 * Authors: Catalin Marinas <catalin.marinas@arm.com>
8 * Will Deacon <will.deacon@arm.com>
9 *
10 * This program is free software; you can redistribute it and/or modify
11 * it under the terms of the GNU General Public License version 2 as
12 * published by the Free Software Foundation.
13 *
14 * This program is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 * GNU General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program. If not, see <http://www.gnu.org/licenses/>.
21 */
22
23 #include <linux/linkage.h>
24 #include <linux/init.h>
25
26 #include <asm/assembler.h>
27 #include <asm/ptrace.h>
28 #include <asm/asm-offsets.h>
29 #include <asm/cache.h>
30 #include <asm/cputype.h>
31 #include <asm/memory.h>
32 #include <asm/thread_info.h>
33 #include <asm/pgtable-hwdef.h>
34 #include <asm/pgtable.h>
35 #include <asm/page.h>
36 #include <asm/virt.h>
37
38 /*
39 * swapper_pg_dir is the virtual address of the initial page table. We place
40 * the page tables 3 * PAGE_SIZE below KERNEL_RAM_VADDR. The idmap_pg_dir has
41 * 2 pages and is placed below swapper_pg_dir.
42 */
43 #define KERNEL_RAM_VADDR (PAGE_OFFSET + TEXT_OFFSET)
44
45 #if (KERNEL_RAM_VADDR & 0xfffff) != 0x80000
46 #error KERNEL_RAM_VADDR must start at 0xXXX80000
47 #endif
48
49 #define SWAPPER_DIR_SIZE (3 * PAGE_SIZE)
50 #define IDMAP_DIR_SIZE (2 * PAGE_SIZE)
51
52 .globl swapper_pg_dir
53 .equ swapper_pg_dir, KERNEL_RAM_VADDR - SWAPPER_DIR_SIZE
54
55 .globl idmap_pg_dir
56 .equ idmap_pg_dir, swapper_pg_dir - IDMAP_DIR_SIZE
57
58 .macro pgtbl, ttb0, ttb1, phys
59 add \ttb1, \phys, #TEXT_OFFSET - SWAPPER_DIR_SIZE
60 sub \ttb0, \ttb1, #IDMAP_DIR_SIZE
61 .endm
62
63 #ifdef CONFIG_ARM64_64K_PAGES
64 #define BLOCK_SHIFT PAGE_SHIFT
65 #define BLOCK_SIZE PAGE_SIZE
66 #else
67 #define BLOCK_SHIFT SECTION_SHIFT
68 #define BLOCK_SIZE SECTION_SIZE
69 #endif
70
71 #define KERNEL_START KERNEL_RAM_VADDR
72 #define KERNEL_END _end
73
74 /*
75 * Initial memory map attributes.
76 */
77 #ifndef CONFIG_SMP
78 #define PTE_FLAGS PTE_TYPE_PAGE | PTE_AF
79 #define PMD_FLAGS PMD_TYPE_SECT | PMD_SECT_AF
80 #else
81 #define PTE_FLAGS PTE_TYPE_PAGE | PTE_AF | PTE_SHARED
82 #define PMD_FLAGS PMD_TYPE_SECT | PMD_SECT_AF | PMD_SECT_S
83 #endif
84
85 #ifdef CONFIG_ARM64_64K_PAGES
86 #define MM_MMUFLAGS PTE_ATTRINDX(MT_NORMAL) | PTE_FLAGS
87 #else
88 #define MM_MMUFLAGS PMD_ATTRINDX(MT_NORMAL) | PMD_FLAGS
89 #endif
90
91 /*
92 * Kernel startup entry point.
93 * ---------------------------
94 *
95 * The requirements are:
96 * MMU = off, D-cache = off, I-cache = on or off,
97 * x0 = physical address to the FDT blob.
98 *
99 * This code is mostly position independent so you call this at
100 * __pa(PAGE_OFFSET + TEXT_OFFSET).
101 *
102 * Note that the callee-saved registers are used for storing variables
103 * that are useful before the MMU is enabled. The allocations are described
104 * in the entry routines.
105 */
106 __HEAD
107
108 /*
109 * DO NOT MODIFY. Image header expected by Linux boot-loaders.
110 */
111 #ifdef CONFIG_EFI
112 efi_head:
113 /*
114 * This add instruction has no meaningful effect except that
115 * its opcode forms the magic "MZ" signature required by UEFI.
116 */
117 add x13, x18, #0x16
118 b stext
119 #else
120 b stext // branch to kernel start, magic
121 .long 0 // reserved
122 #endif
123 .quad TEXT_OFFSET // Image load offset from start of RAM
124 .quad 0 // reserved
125 .quad 0 // reserved
126 .quad 0 // reserved
127 .quad 0 // reserved
128 .quad 0 // reserved
129 .byte 0x41 // Magic number, "ARM\x64"
130 .byte 0x52
131 .byte 0x4d
132 .byte 0x64
133 #ifdef CONFIG_EFI
134 .long pe_header - efi_head // Offset to the PE header.
135 #else
136 .word 0 // reserved
137 #endif
138
139 #ifdef CONFIG_EFI
140 .align 3
141 pe_header:
142 .ascii "PE"
143 .short 0
144 coff_header:
145 .short 0xaa64 // AArch64
146 .short 2 // nr_sections
147 .long 0 // TimeDateStamp
148 .long 0 // PointerToSymbolTable
149 .long 1 // NumberOfSymbols
150 .short section_table - optional_header // SizeOfOptionalHeader
151 .short 0x206 // Characteristics.
152 // IMAGE_FILE_DEBUG_STRIPPED |
153 // IMAGE_FILE_EXECUTABLE_IMAGE |
154 // IMAGE_FILE_LINE_NUMS_STRIPPED
155 optional_header:
156 .short 0x20b // PE32+ format
157 .byte 0x02 // MajorLinkerVersion
158 .byte 0x14 // MinorLinkerVersion
159 .long _edata - stext // SizeOfCode
160 .long 0 // SizeOfInitializedData
161 .long 0 // SizeOfUninitializedData
162 .long efi_stub_entry - efi_head // AddressOfEntryPoint
163 .long stext - efi_head // BaseOfCode
164
165 extra_header_fields:
166 .quad 0 // ImageBase
167 .long 0x20 // SectionAlignment
168 .long 0x8 // FileAlignment
169 .short 0 // MajorOperatingSystemVersion
170 .short 0 // MinorOperatingSystemVersion
171 .short 0 // MajorImageVersion
172 .short 0 // MinorImageVersion
173 .short 0 // MajorSubsystemVersion
174 .short 0 // MinorSubsystemVersion
175 .long 0 // Win32VersionValue
176
177 .long _edata - efi_head // SizeOfImage
178
179 // Everything before the kernel image is considered part of the header
180 .long stext - efi_head // SizeOfHeaders
181 .long 0 // CheckSum
182 .short 0xa // Subsystem (EFI application)
183 .short 0 // DllCharacteristics
184 .quad 0 // SizeOfStackReserve
185 .quad 0 // SizeOfStackCommit
186 .quad 0 // SizeOfHeapReserve
187 .quad 0 // SizeOfHeapCommit
188 .long 0 // LoaderFlags
189 .long 0x6 // NumberOfRvaAndSizes
190
191 .quad 0 // ExportTable
192 .quad 0 // ImportTable
193 .quad 0 // ResourceTable
194 .quad 0 // ExceptionTable
195 .quad 0 // CertificationTable
196 .quad 0 // BaseRelocationTable
197
198 // Section table
199 section_table:
200
201 /*
202 * The EFI application loader requires a relocation section
203 * because EFI applications must be relocatable. This is a
204 * dummy section as far as we are concerned.
205 */
206 .ascii ".reloc"
207 .byte 0
208 .byte 0 // end of 0 padding of section name
209 .long 0
210 .long 0
211 .long 0 // SizeOfRawData
212 .long 0 // PointerToRawData
213 .long 0 // PointerToRelocations
214 .long 0 // PointerToLineNumbers
215 .short 0 // NumberOfRelocations
216 .short 0 // NumberOfLineNumbers
217 .long 0x42100040 // Characteristics (section flags)
218
219
220 .ascii ".text"
221 .byte 0
222 .byte 0
223 .byte 0 // end of 0 padding of section name
224 .long _edata - stext // VirtualSize
225 .long stext - efi_head // VirtualAddress
226 .long _edata - stext // SizeOfRawData
227 .long stext - efi_head // PointerToRawData
228
229 .long 0 // PointerToRelocations (0 for executables)
230 .long 0 // PointerToLineNumbers (0 for executables)
231 .short 0 // NumberOfRelocations (0 for executables)
232 .short 0 // NumberOfLineNumbers (0 for executables)
233 .long 0xe0500020 // Characteristics (section flags)
234 .align 5
235 #endif
236
237 ENTRY(stext)
238 mov x21, x0 // x21=FDT
239 bl el2_setup // Drop to EL1, w20=cpu_boot_mode
240 bl __calc_phys_offset // x24=PHYS_OFFSET, x28=PHYS_OFFSET-PAGE_OFFSET
241 bl set_cpu_boot_mode_flag
242 mrs x22, midr_el1 // x22=cpuid
243 mov x0, x22
244 bl lookup_processor_type
245 mov x23, x0 // x23=current cpu_table
246 cbz x23, __error_p // invalid processor (x23=0)?
247 bl __vet_fdt
248 bl __create_page_tables // x25=TTBR0, x26=TTBR1
249 /*
250 * The following calls CPU specific code in a position independent
251 * manner. See arch/arm64/mm/proc.S for details. x23 = base of
252 * cpu_info structure selected by lookup_processor_type above.
253 * On return, the CPU will be ready for the MMU to be turned on and
254 * the TCR will have been set.
255 */
256 ldr x27, __switch_data // address to jump to after
257 // MMU has been enabled
258 adr lr, __enable_mmu // return (PIC) address
259 ldr x12, [x23, #CPU_INFO_SETUP]
260 add x12, x12, x28 // __virt_to_phys
261 br x12 // initialise processor
262 ENDPROC(stext)
263
264 /*
265 * If we're fortunate enough to boot at EL2, ensure that the world is
266 * sane before dropping to EL1.
267 *
268 * Returns either BOOT_CPU_MODE_EL1 or BOOT_CPU_MODE_EL2 in x20 if
269 * booted in EL1 or EL2 respectively.
270 */
271 ENTRY(el2_setup)
272 mrs x0, CurrentEL
273 cmp x0, #CurrentEL_EL2
274 b.ne 1f
275 mrs x0, sctlr_el2
276 CPU_BE( orr x0, x0, #(1 << 25) ) // Set the EE bit for EL2
277 CPU_LE( bic x0, x0, #(1 << 25) ) // Clear the EE bit for EL2
278 msr sctlr_el2, x0
279 b 2f
280 1: mrs x0, sctlr_el1
281 CPU_BE( orr x0, x0, #(3 << 24) ) // Set the EE and E0E bits for EL1
282 CPU_LE( bic x0, x0, #(3 << 24) ) // Clear the EE and E0E bits for EL1
283 msr sctlr_el1, x0
284 mov w20, #BOOT_CPU_MODE_EL1 // This cpu booted in EL1
285 isb
286 ret
287
288 /* Hyp configuration. */
289 2: mov x0, #(1 << 31) // 64-bit EL1
290 msr hcr_el2, x0
291
292 /* Generic timers. */
293 mrs x0, cnthctl_el2
294 orr x0, x0, #3 // Enable EL1 physical timers
295 msr cnthctl_el2, x0
296 msr cntvoff_el2, xzr // Clear virtual offset
297
298 /* Populate ID registers. */
299 mrs x0, midr_el1
300 mrs x1, mpidr_el1
301 msr vpidr_el2, x0
302 msr vmpidr_el2, x1
303
304 /* sctlr_el1 */
305 mov x0, #0x0800 // Set/clear RES{1,0} bits
306 CPU_BE( movk x0, #0x33d0, lsl #16 ) // Set EE and E0E on BE systems
307 CPU_LE( movk x0, #0x30d0, lsl #16 ) // Clear EE and E0E on LE systems
308 msr sctlr_el1, x0
309
310 /* Coprocessor traps. */
311 mov x0, #0x33ff
312 msr cptr_el2, x0 // Disable copro. traps to EL2
313
314 #ifdef CONFIG_COMPAT
315 msr hstr_el2, xzr // Disable CP15 traps to EL2
316 #endif
317
318 /* Stage-2 translation */
319 msr vttbr_el2, xzr
320
321 /* Hypervisor stub */
322 adr x0, __hyp_stub_vectors
323 msr vbar_el2, x0
324
325 /* spsr */
326 mov x0, #(PSR_F_BIT | PSR_I_BIT | PSR_A_BIT | PSR_D_BIT |\
327 PSR_MODE_EL1h)
328 msr spsr_el2, x0
329 msr elr_el2, lr
330 mov w20, #BOOT_CPU_MODE_EL2 // This CPU booted in EL2
331 eret
332 ENDPROC(el2_setup)
333
334 /*
335 * Sets the __boot_cpu_mode flag depending on the CPU boot mode passed
336 * in x20. See arch/arm64/include/asm/virt.h for more info.
337 */
338 ENTRY(set_cpu_boot_mode_flag)
339 ldr x1, =__boot_cpu_mode // Compute __boot_cpu_mode
340 add x1, x1, x28
341 cmp w20, #BOOT_CPU_MODE_EL2
342 b.ne 1f
343 add x1, x1, #4
344 1: str w20, [x1] // This CPU has booted in EL1
345 dmb sy
346 dc ivac, x1 // Invalidate potentially stale cache line
347 ret
348 ENDPROC(set_cpu_boot_mode_flag)
349
350 /*
351 * We need to find out the CPU boot mode long after boot, so we need to
352 * store it in a writable variable.
353 *
354 * This is not in .bss, because we set it sufficiently early that the boot-time
355 * zeroing of .bss would clobber it.
356 */
357 .pushsection .data..cacheline_aligned
358 ENTRY(__boot_cpu_mode)
359 .align L1_CACHE_SHIFT
360 .long BOOT_CPU_MODE_EL2
361 .long 0
362 .popsection
363
364 .align 3
365 2: .quad .
366 .quad PAGE_OFFSET
367
368 #ifdef CONFIG_SMP
369 .align 3
370 1: .quad .
371 .quad secondary_holding_pen_release
372
373 /*
374 * This provides a "holding pen" for platforms to hold all secondary
375 * cores are held until we're ready for them to initialise.
376 */
377 ENTRY(secondary_holding_pen)
378 bl el2_setup // Drop to EL1, w20=cpu_boot_mode
379 bl __calc_phys_offset // x24=PHYS_OFFSET, x28=PHYS_OFFSET-PAGE_OFFSET
380 bl set_cpu_boot_mode_flag
381 mrs x0, mpidr_el1
382 ldr x1, =MPIDR_HWID_BITMASK
383 and x0, x0, x1
384 adr x1, 1b
385 ldp x2, x3, [x1]
386 sub x1, x1, x2
387 add x3, x3, x1
388 pen: ldr x4, [x3]
389 cmp x4, x0
390 b.eq secondary_startup
391 wfe
392 b pen
393 ENDPROC(secondary_holding_pen)
394
395 /*
396 * Secondary entry point that jumps straight into the kernel. Only to
397 * be used where CPUs are brought online dynamically by the kernel.
398 */
399 ENTRY(secondary_entry)
400 bl el2_setup // Drop to EL1
401 bl __calc_phys_offset // x24=PHYS_OFFSET, x28=PHYS_OFFSET-PAGE_OFFSET
402 bl set_cpu_boot_mode_flag
403 b secondary_startup
404 ENDPROC(secondary_entry)
405
406 ENTRY(secondary_startup)
407 /*
408 * Common entry point for secondary CPUs.
409 */
410 mrs x22, midr_el1 // x22=cpuid
411 mov x0, x22
412 bl lookup_processor_type
413 mov x23, x0 // x23=current cpu_table
414 cbz x23, __error_p // invalid processor (x23=0)?
415
416 pgtbl x25, x26, x24 // x25=TTBR0, x26=TTBR1
417 ldr x12, [x23, #CPU_INFO_SETUP]
418 add x12, x12, x28 // __virt_to_phys
419 blr x12 // initialise processor
420
421 ldr x21, =secondary_data
422 ldr x27, =__secondary_switched // address to jump to after enabling the MMU
423 b __enable_mmu
424 ENDPROC(secondary_startup)
425
426 ENTRY(__secondary_switched)
427 ldr x0, [x21] // get secondary_data.stack
428 mov sp, x0
429 mov x29, #0
430 b secondary_start_kernel
431 ENDPROC(__secondary_switched)
432 #endif /* CONFIG_SMP */
433
434 /*
435 * Setup common bits before finally enabling the MMU. Essentially this is just
436 * loading the page table pointer and vector base registers.
437 *
438 * On entry to this code, x0 must contain the SCTLR_EL1 value for turning on
439 * the MMU.
440 */
441 __enable_mmu:
442 ldr x5, =vectors
443 msr vbar_el1, x5
444 msr ttbr0_el1, x25 // load TTBR0
445 msr ttbr1_el1, x26 // load TTBR1
446 isb
447 b __turn_mmu_on
448 ENDPROC(__enable_mmu)
449
450 /*
451 * Enable the MMU. This completely changes the structure of the visible memory
452 * space. You will not be able to trace execution through this.
453 *
454 * x0 = system control register
455 * x27 = *virtual* address to jump to upon completion
456 *
457 * other registers depend on the function called upon completion
458 */
459 .align 6
460 __turn_mmu_on:
461 msr sctlr_el1, x0
462 isb
463 br x27
464 ENDPROC(__turn_mmu_on)
465
466 /*
467 * Calculate the start of physical memory.
468 */
469 __calc_phys_offset:
470 adr x0, 1f
471 ldp x1, x2, [x0]
472 sub x28, x0, x1 // x28 = PHYS_OFFSET - PAGE_OFFSET
473 add x24, x2, x28 // x24 = PHYS_OFFSET
474 ret
475 ENDPROC(__calc_phys_offset)
476
477 .align 3
478 1: .quad .
479 .quad PAGE_OFFSET
480
481 /*
482 * Macro to populate the PGD for the corresponding block entry in the next
483 * level (tbl) for the given virtual address.
484 *
485 * Preserves: pgd, tbl, virt
486 * Corrupts: tmp1, tmp2
487 */
488 .macro create_pgd_entry, pgd, tbl, virt, tmp1, tmp2
489 lsr \tmp1, \virt, #PGDIR_SHIFT
490 and \tmp1, \tmp1, #PTRS_PER_PGD - 1 // PGD index
491 orr \tmp2, \tbl, #3 // PGD entry table type
492 str \tmp2, [\pgd, \tmp1, lsl #3]
493 .endm
494
495 /*
496 * Macro to populate block entries in the page table for the start..end
497 * virtual range (inclusive).
498 *
499 * Preserves: tbl, flags
500 * Corrupts: phys, start, end, pstate
501 */
502 .macro create_block_map, tbl, flags, phys, start, end
503 lsr \phys, \phys, #BLOCK_SHIFT
504 lsr \start, \start, #BLOCK_SHIFT
505 and \start, \start, #PTRS_PER_PTE - 1 // table index
506 orr \phys, \flags, \phys, lsl #BLOCK_SHIFT // table entry
507 lsr \end, \end, #BLOCK_SHIFT
508 and \end, \end, #PTRS_PER_PTE - 1 // table end index
509 9999: str \phys, [\tbl, \start, lsl #3] // store the entry
510 add \start, \start, #1 // next entry
511 add \phys, \phys, #BLOCK_SIZE // next block
512 cmp \start, \end
513 b.ls 9999b
514 .endm
515
516 /*
517 * Setup the initial page tables. We only setup the barest amount which is
518 * required to get the kernel running. The following sections are required:
519 * - identity mapping to enable the MMU (low address, TTBR0)
520 * - first few MB of the kernel linear mapping to jump to once the MMU has
521 * been enabled, including the FDT blob (TTBR1)
522 * - pgd entry for fixed mappings (TTBR1)
523 */
524 __create_page_tables:
525 pgtbl x25, x26, x24 // idmap_pg_dir and swapper_pg_dir addresses
526 mov x27, lr
527
528 /*
529 * Invalidate the idmap and swapper page tables to avoid potential
530 * dirty cache lines being evicted.
531 */
532 mov x0, x25
533 add x1, x26, #SWAPPER_DIR_SIZE
534 bl __inval_cache_range
535
536 /*
537 * Clear the idmap and swapper page tables.
538 */
539 mov x0, x25
540 add x6, x26, #SWAPPER_DIR_SIZE
541 1: stp xzr, xzr, [x0], #16
542 stp xzr, xzr, [x0], #16
543 stp xzr, xzr, [x0], #16
544 stp xzr, xzr, [x0], #16
545 cmp x0, x6
546 b.lo 1b
547
548 ldr x7, =MM_MMUFLAGS
549
550 /*
551 * Create the identity mapping.
552 */
553 add x0, x25, #PAGE_SIZE // section table address
554 ldr x3, =KERNEL_START
555 add x3, x3, x28 // __pa(KERNEL_START)
556 create_pgd_entry x25, x0, x3, x5, x6
557 ldr x6, =KERNEL_END
558 mov x5, x3 // __pa(KERNEL_START)
559 add x6, x6, x28 // __pa(KERNEL_END)
560 create_block_map x0, x7, x3, x5, x6
561
562 /*
563 * Map the kernel image (starting with PHYS_OFFSET).
564 */
565 add x0, x26, #PAGE_SIZE // section table address
566 mov x5, #PAGE_OFFSET
567 create_pgd_entry x26, x0, x5, x3, x6
568 ldr x6, =KERNEL_END
569 mov x3, x24 // phys offset
570 create_block_map x0, x7, x3, x5, x6
571
572 /*
573 * Map the FDT blob (maximum 2MB; must be within 512MB of
574 * PHYS_OFFSET).
575 */
576 mov x3, x21 // FDT phys address
577 and x3, x3, #~((1 << 21) - 1) // 2MB aligned
578 mov x6, #PAGE_OFFSET
579 sub x5, x3, x24 // subtract PHYS_OFFSET
580 tst x5, #~((1 << 29) - 1) // within 512MB?
581 csel x21, xzr, x21, ne // zero the FDT pointer
582 b.ne 1f
583 add x5, x5, x6 // __va(FDT blob)
584 add x6, x5, #1 << 21 // 2MB for the FDT blob
585 sub x6, x6, #1 // inclusive range
586 create_block_map x0, x7, x3, x5, x6
587 1:
588 /*
589 * Create the pgd entry for the fixed mappings.
590 */
591 ldr x5, =FIXADDR_TOP // Fixed mapping virtual address
592 add x0, x26, #2 * PAGE_SIZE // section table address
593 create_pgd_entry x26, x0, x5, x6, x7
594
595 /*
596 * Since the page tables have been populated with non-cacheable
597 * accesses (MMU disabled), invalidate the idmap and swapper page
598 * tables again to remove any speculatively loaded cache lines.
599 */
600 mov x0, x25
601 add x1, x26, #SWAPPER_DIR_SIZE
602 bl __inval_cache_range
603
604 mov lr, x27
605 ret
606 ENDPROC(__create_page_tables)
607 .ltorg
608
609 .align 3
610 .type __switch_data, %object
611 __switch_data:
612 .quad __mmap_switched
613 .quad __bss_start // x6
614 .quad _end // x7
615 .quad processor_id // x4
616 .quad __fdt_pointer // x5
617 .quad memstart_addr // x6
618 .quad init_thread_union + THREAD_START_SP // sp
619
620 /*
621 * The following fragment of code is executed with the MMU on in MMU mode, and
622 * uses absolute addresses; this is not position independent.
623 */
624 __mmap_switched:
625 adr x3, __switch_data + 8
626
627 ldp x6, x7, [x3], #16
628 1: cmp x6, x7
629 b.hs 2f
630 str xzr, [x6], #8 // Clear BSS
631 b 1b
632 2:
633 ldp x4, x5, [x3], #16
634 ldr x6, [x3], #8
635 ldr x16, [x3]
636 mov sp, x16
637 str x22, [x4] // Save processor ID
638 str x21, [x5] // Save FDT pointer
639 str x24, [x6] // Save PHYS_OFFSET
640 mov x29, #0
641 b start_kernel
642 ENDPROC(__mmap_switched)
643
644 /*
645 * Exception handling. Something went wrong and we can't proceed. We ought to
646 * tell the user, but since we don't have any guarantee that we're even
647 * running on the right architecture, we do virtually nothing.
648 */
649 __error_p:
650 ENDPROC(__error_p)
651
652 __error:
653 1: nop
654 b 1b
655 ENDPROC(__error)
656
657 /*
658 * This function gets the processor ID in w0 and searches the cpu_table[] for
659 * a match. It returns a pointer to the struct cpu_info it found. The
660 * cpu_table[] must end with an empty (all zeros) structure.
661 *
662 * This routine can be called via C code and it needs to work with the MMU
663 * both disabled and enabled (the offset is calculated automatically).
664 */
665 ENTRY(lookup_processor_type)
666 adr x1, __lookup_processor_type_data
667 ldp x2, x3, [x1]
668 sub x1, x1, x2 // get offset between VA and PA
669 add x3, x3, x1 // convert VA to PA
670 1:
671 ldp w5, w6, [x3] // load cpu_id_val and cpu_id_mask
672 cbz w5, 2f // end of list?
673 and w6, w6, w0
674 cmp w5, w6
675 b.eq 3f
676 add x3, x3, #CPU_INFO_SZ
677 b 1b
678 2:
679 mov x3, #0 // unknown processor
680 3:
681 mov x0, x3
682 ret
683 ENDPROC(lookup_processor_type)
684
685 .align 3
686 .type __lookup_processor_type_data, %object
687 __lookup_processor_type_data:
688 .quad .
689 .quad cpu_table
690 .size __lookup_processor_type_data, . - __lookup_processor_type_data
691
692 /*
693 * Determine validity of the x21 FDT pointer.
694 * The dtb must be 8-byte aligned and live in the first 512M of memory.
695 */
696 __vet_fdt:
697 tst x21, #0x7
698 b.ne 1f
699 cmp x21, x24
700 b.lt 1f
701 mov x0, #(1 << 29)
702 add x0, x0, x24
703 cmp x21, x0
704 b.ge 1f
705 ret
706 1:
707 mov x21, #0
708 ret
709 ENDPROC(__vet_fdt)
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