Linux v6.18.37 · ARM64

arch/arm64/kernel/setup.c

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Linux v6.18.37 · 원본 파일 · 온라인 원본

1// SPDX-License-Identifier: GPL-2.0-only
2/*
3 * Based on arch/arm/kernel/setup.c
4 *
5 * Copyright (C) 1995-2001 Russell King
6 * Copyright (C) 2012 ARM Ltd.
7 */
8
9#include <linux/acpi.h>
10#include <linux/export.h>
11#include <linux/kernel.h>
12#include <linux/stddef.h>
13#include <linux/ioport.h>
14#include <linux/delay.h>
15#include <linux/initrd.h>
16#include <linux/console.h>
17#include <linux/cache.h>
18#include <linux/screen_info.h>
19#include <linux/init.h>
20#include <linux/kexec.h>
21#include <linux/root_dev.h>
22#include <linux/cpu.h>
23#include <linux/interrupt.h>
24#include <linux/smp.h>
25#include <linux/fs.h>
26#include <linux/panic_notifier.h>
27#include <linux/proc_fs.h>
28#include <linux/memblock.h>
29#include <linux/of_fdt.h>
30#include <linux/efi.h>
31#include <linux/psci.h>
32#include <linux/sched/task.h>
33#include <linux/scs.h>
34#include <linux/mm.h>
35
36#include <asm/acpi.h>
37#include <asm/fixmap.h>
38#include <asm/cpu.h>
39#include <asm/cputype.h>
40#include <asm/daifflags.h>
41#include <asm/elf.h>
42#include <asm/cpufeature.h>
43#include <asm/cpu_ops.h>
44#include <asm/kasan.h>
45#include <asm/numa.h>
46#include <asm/rsi.h>
47#include <asm/scs.h>
48#include <asm/sections.h>
49#include <asm/setup.h>
50#include <asm/smp_plat.h>
51#include <asm/cacheflush.h>
52#include <asm/tlbflush.h>
53#include <asm/traps.h>
54#include <asm/efi.h>
55#include <asm/xen/hypervisor.h>
56#include <asm/mmu_context.h>
57
58static int num_standard_resources;
59static struct resource *standard_resources;
60
61phys_addr_t __fdt_pointer __initdata;
62u64 mmu_enabled_at_boot __initdata;
63
64/*
65 * Standard memory resources
66 */
67static struct resource mem_res[] = {
68	{
69		.name = "Kernel code",
70		.start = 0,
71		.end = 0,
72		.flags = IORESOURCE_SYSTEM_RAM
73	},
74	{
75		.name = "Kernel data",
76		.start = 0,
77		.end = 0,
78		.flags = IORESOURCE_SYSTEM_RAM
79	}
80};
81
82#define kernel_code mem_res[0]
83#define kernel_data mem_res[1]
84
85/*
86 * The recorded values of x0 .. x3 upon kernel entry.
87 */
88u64 __cacheline_aligned boot_args[4];
89
90void __init smp_setup_processor_id(void)
91{
92	u64 mpidr = read_cpuid_mpidr() & MPIDR_HWID_BITMASK;
93	set_cpu_logical_map(0, mpidr);
94
95	pr_info("Booting Linux on physical CPU 0x%010lx [0x%08x]\n",
96		(unsigned long)mpidr, read_cpuid_id());
97}
98
99bool arch_match_cpu_phys_id(int cpu, u64 phys_id)
100{
101	return phys_id == cpu_logical_map(cpu);
102}
103
104struct mpidr_hash mpidr_hash;
105/**
106 * smp_build_mpidr_hash - Pre-compute shifts required at each affinity
107 *			  level in order to build a linear index from an
108 *			  MPIDR value. Resulting algorithm is a collision
109 *			  free hash carried out through shifting and ORing
110 */
111static void __init smp_build_mpidr_hash(void)
112{
113	u32 i, affinity, fs[4], bits[4], ls;
114	u64 mask = 0;
115	/*
116	 * Pre-scan the list of MPIDRS and filter out bits that do
117	 * not contribute to affinity levels, ie they never toggle.
118	 */
119	for_each_possible_cpu(i)
120		mask |= (cpu_logical_map(i) ^ cpu_logical_map(0));
121	pr_debug("mask of set bits %#llx\n", mask);
122	/*
123	 * Find and stash the last and first bit set at all affinity levels to
124	 * check how many bits are required to represent them.
125	 */
126	for (i = 0; i < 4; i++) {
127		affinity = MPIDR_AFFINITY_LEVEL(mask, i);
128		/*
129		 * Find the MSB bit and LSB bits position
130		 * to determine how many bits are required
131		 * to express the affinity level.
132		 */
133		ls = fls(affinity);
134		fs[i] = affinity ? ffs(affinity) - 1 : 0;
135		bits[i] = ls - fs[i];
136	}
137	/*
138	 * An index can be created from the MPIDR_EL1 by isolating the
139	 * significant bits at each affinity level and by shifting
140	 * them in order to compress the 32 bits values space to a
141	 * compressed set of values. This is equivalent to hashing
142	 * the MPIDR_EL1 through shifting and ORing. It is a collision free
143	 * hash though not minimal since some levels might contain a number
144	 * of CPUs that is not an exact power of 2 and their bit
145	 * representation might contain holes, eg MPIDR_EL1[7:0] = {0x2, 0x80}.
146	 */
147	mpidr_hash.shift_aff[0] = MPIDR_LEVEL_SHIFT(0) + fs[0];
148	mpidr_hash.shift_aff[1] = MPIDR_LEVEL_SHIFT(1) + fs[1] - bits[0];
149	mpidr_hash.shift_aff[2] = MPIDR_LEVEL_SHIFT(2) + fs[2] -
150						(bits[1] + bits[0]);
151	mpidr_hash.shift_aff[3] = MPIDR_LEVEL_SHIFT(3) +
152				  fs[3] - (bits[2] + bits[1] + bits[0]);
153	mpidr_hash.mask = mask;
154	mpidr_hash.bits = bits[3] + bits[2] + bits[1] + bits[0];
155	pr_debug("MPIDR hash: aff0[%u] aff1[%u] aff2[%u] aff3[%u] mask[%#llx] bits[%u]\n",
156		mpidr_hash.shift_aff[0],
157		mpidr_hash.shift_aff[1],
158		mpidr_hash.shift_aff[2],
159		mpidr_hash.shift_aff[3],
160		mpidr_hash.mask,
161		mpidr_hash.bits);
162	/*
163	 * 4x is an arbitrary value used to warn on a hash table much bigger
164	 * than expected on most systems.
165	 */
166	if (mpidr_hash_size() > 4 * num_possible_cpus())
167		pr_warn("Large number of MPIDR hash buckets detected\n");
168}
169
170static void __init setup_machine_fdt(phys_addr_t dt_phys)
171{
172	int size = 0;
173	void *dt_virt = fixmap_remap_fdt(dt_phys, &size, PAGE_KERNEL);
174	const char *name;
175
176	if (dt_virt)
177		memblock_reserve(dt_phys, size);
178
179	/*
180	 * dt_virt is a fixmap address, hence __pa(dt_virt) can't be used.
181	 * Pass dt_phys directly.
182	 */
183	if (!early_init_dt_scan(dt_virt, dt_phys)) {
184		pr_crit("\n"
185			"Error: invalid device tree blob: PA=%pa, VA=%px, size=%d bytes\n"
186			"The dtb must be 8-byte aligned and must not exceed 2 MB in size.\n"
187			"\nPlease check your bootloader.\n",
188			&dt_phys, dt_virt, size);
189
190		/*
191		 * Note that in this _really_ early stage we cannot even BUG()
192		 * or oops, so the least terrible thing to do is cpu_relax(),
193		 * or else we could end-up printing non-initialized data, etc.
194		 */
195		while (true)
196			cpu_relax();
197	}
198
199	/* Early fixups are done, map the FDT as read-only now */
200	fixmap_remap_fdt(dt_phys, &size, PAGE_KERNEL_RO);
201
202	name = of_flat_dt_get_machine_name();
203	if (!name)
204		return;
205
206	pr_info("Machine model: %s\n", name);
207	dump_stack_set_arch_desc("%s (DT)", name);
208}
209
210static void __init request_standard_resources(void)
211{
212	struct memblock_region *region;
213	struct resource *res;
214	unsigned long i = 0;
215	size_t res_size;
216
217	kernel_code.start   = __pa_symbol(_text);
218	kernel_code.end     = __pa_symbol(__init_begin - 1);
219	kernel_data.start   = __pa_symbol(_sdata);
220	kernel_data.end     = __pa_symbol(_end - 1);
221	insert_resource(&iomem_resource, &kernel_code);
222	insert_resource(&iomem_resource, &kernel_data);
223
224	num_standard_resources = memblock.memory.cnt;
225	res_size = num_standard_resources * sizeof(*standard_resources);
226	standard_resources = memblock_alloc_or_panic(res_size, SMP_CACHE_BYTES);
227
228	for_each_mem_region(region) {
229		res = &standard_resources[i++];
230		if (memblock_is_nomap(region)) {
231			res->name  = "reserved";
232			res->flags = IORESOURCE_MEM;
233			res->start = __pfn_to_phys(memblock_region_reserved_base_pfn(region));
234			res->end = __pfn_to_phys(memblock_region_reserved_end_pfn(region)) - 1;
235		} else {
236			res->name  = "System RAM";
237			res->flags = IORESOURCE_SYSTEM_RAM | IORESOURCE_BUSY;
238			res->start = __pfn_to_phys(memblock_region_memory_base_pfn(region));
239			res->end = __pfn_to_phys(memblock_region_memory_end_pfn(region)) - 1;
240		}
241
242		insert_resource(&iomem_resource, res);
243	}
244}
245
246static int __init reserve_memblock_reserved_regions(void)
247{
248	u64 i, j;
249
250	for (i = 0; i < num_standard_resources; ++i) {
251		struct resource *mem = &standard_resources[i];
252		phys_addr_t r_start, r_end, mem_size = resource_size(mem);
253
254		if (!memblock_is_region_reserved(mem->start, mem_size))
255			continue;
256
257		for_each_reserved_mem_range(j, &r_start, &r_end) {
258			resource_size_t start, end;
259
260			start = max(PFN_PHYS(PFN_DOWN(r_start)), mem->start);
261			end = min(PFN_PHYS(PFN_UP(r_end)) - 1, mem->end);
262
263			if (start > mem->end || end < mem->start)
264				continue;
265
266			reserve_region_with_split(mem, start, end, "reserved");
267		}
268	}
269
270	return 0;
271}
272arch_initcall(reserve_memblock_reserved_regions);
273
274u64 __cpu_logical_map[NR_CPUS] = { [0 ... NR_CPUS-1] = INVALID_HWID };
275
276u64 cpu_logical_map(unsigned int cpu)
277{
278	return __cpu_logical_map[cpu];
279}
280
281void __init __no_sanitize_address setup_arch(char **cmdline_p)
282{
283	setup_initial_init_mm(_text, _etext, _edata, _end);
284
285	*cmdline_p = boot_command_line;
286
287	kaslr_init();
288
289	early_fixmap_init();
290	early_ioremap_init();
291
292	setup_machine_fdt(__fdt_pointer);
293
294	/*
295	 * Initialise the static keys early as they may be enabled by the
296	 * cpufeature code and early parameters.
297	 */
298	jump_label_init();
299	parse_early_param();
300
301	dynamic_scs_init();
302
303	/*
304	 * The primary CPU enters the kernel with all DAIF exceptions masked.
305	 *
306	 * We must unmask Debug and SError before preemption or scheduling is
307	 * possible to ensure that these are consistently unmasked across
308	 * threads, and we want to unmask SError as soon as possible after
309	 * initializing earlycon so that we can report any SErrors immediately.
310	 *
311	 * IRQ and FIQ will be unmasked after the root irqchip has been
312	 * detected and initialized.
313	 */
314	local_daif_restore(DAIF_PROCCTX_NOIRQ);
315
316	/*
317	 * TTBR0 is only used for the identity mapping at this stage. Make it
318	 * point to zero page to avoid speculatively fetching new entries.
319	 */
320	cpu_uninstall_idmap();
321
322	xen_early_init();
323	efi_init();
324
325	if (!efi_enabled(EFI_BOOT)) {
326		if ((u64)_text % MIN_KIMG_ALIGN)
327			pr_warn(FW_BUG "Kernel image misaligned at boot, please fix your bootloader!");
328		WARN_TAINT(mmu_enabled_at_boot, TAINT_FIRMWARE_WORKAROUND,
329			   FW_BUG "Booted with MMU enabled!");
330	}
331
332	arm64_memblock_init();
333
334	paging_init();
335
336	acpi_table_upgrade();
337
338	/* Parse the ACPI tables for possible boot-time configuration */
339	acpi_boot_table_init();
340
341	if (acpi_disabled)
342		unflatten_device_tree();
343
344	bootmem_init();
345
346	kasan_init();
347
348	request_standard_resources();
349
350	early_ioremap_reset();
351
352	if (acpi_disabled)
353		psci_dt_init();
354	else
355		psci_acpi_init();
356
357	arm64_rsi_init();
358
359	init_bootcpu_ops();
360	smp_init_cpus();
361	smp_build_mpidr_hash();
362
363#ifdef CONFIG_ARM64_SW_TTBR0_PAN
364	/*
365	 * Make sure init_thread_info.ttbr0 always generates translation
366	 * faults in case uaccess_enable() is inadvertently called by the init
367	 * thread.
368	 */
369	init_task.thread_info.ttbr0 = phys_to_ttbr(__pa_symbol(reserved_pg_dir));
370#endif
371
372	if (boot_args[1] || boot_args[2] || boot_args[3]) {
373		pr_err("WARNING: x1-x3 nonzero in violation of boot protocol:\n"
374			"\tx1: %016llx\n\tx2: %016llx\n\tx3: %016llx\n"
375			"This indicates a broken bootloader or old kernel\n",
376			boot_args[1], boot_args[2], boot_args[3]);
377	}
378}
379
380static inline bool cpu_can_disable(unsigned int cpu)
381{
382#ifdef CONFIG_HOTPLUG_CPU
383	const struct cpu_operations *ops = get_cpu_ops(cpu);
384
385	if (ops && ops->cpu_can_disable)
386		return ops->cpu_can_disable(cpu);
387#endif
388	return false;
389}
390
391bool arch_cpu_is_hotpluggable(int num)
392{
393	return cpu_can_disable(num);
394}
395
396static void dump_kernel_offset(void)
397{
398	const unsigned long offset = kaslr_offset();
399
400	if (IS_ENABLED(CONFIG_RANDOMIZE_BASE) && offset > 0) {
401		pr_emerg("Kernel Offset: 0x%lx from 0x%lx\n",
402			 offset, KIMAGE_VADDR);
403		pr_emerg("PHYS_OFFSET: 0x%llx\n", PHYS_OFFSET);
404	} else {
405		pr_emerg("Kernel Offset: disabled\n");
406	}
407}
408
409static int arm64_panic_block_dump(struct notifier_block *self,
410				  unsigned long v, void *p)
411{
412	dump_kernel_offset();
413	dump_cpu_features();
414	dump_mem_limit();
415	return 0;
416}
417
418static struct notifier_block arm64_panic_block = {
419	.notifier_call = arm64_panic_block_dump
420};
421
422static int __init register_arm64_panic_block(void)
423{
424	atomic_notifier_chain_register(&panic_notifier_list,
425				       &arm64_panic_block);
426	return 0;
427}
428device_initcall(register_arm64_panic_block);
429
430static int __init check_mmu_enabled_at_boot(void)
431{
432	if (!efi_enabled(EFI_BOOT) && mmu_enabled_at_boot)
433		panic("Non-EFI boot detected with MMU and caches enabled");
434	return 0;
435}
436device_initcall_sync(check_mmu_enabled_at_boot);
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