1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * kexec for arm64 4 * 5 * Copyright (C) Linaro. 6 * Copyright (C) Huawei Futurewei Technologies. 7 */ 8 9 #include <linux/interrupt.h> 10 #include <linux/irq.h> 11 #include <linux/kernel.h> 12 #include <linux/kexec.h> 13 #include <linux/page-flags.h> 14 #include <linux/reboot.h> 15 #include <linux/set_memory.h> 16 #include <linux/smp.h> 17 18 #include <asm/cacheflush.h> 19 #include <asm/cpu_ops.h> 20 #include <asm/daifflags.h> 21 #include <asm/memory.h> 22 #include <asm/mmu.h> 23 #include <asm/mmu_context.h> 24 #include <asm/page.h> 25 #include <asm/sections.h> 26 #include <asm/trans_pgd.h> 27 28 /** 29 * kexec_image_info - For debugging output. 30 */ 31 #define kexec_image_info(_i) _kexec_image_info(__func__, __LINE__, _i) 32 static void _kexec_image_info(const char *func, int line, 33 const struct kimage *kimage) 34 { 35 kexec_dprintk("%s:%d:\n", func, line); 36 kexec_dprintk(" kexec kimage info:\n"); 37 kexec_dprintk(" type: %d\n", kimage->type); 38 kexec_dprintk(" head: %lx\n", kimage->head); 39 kexec_dprintk(" kern_reloc: %pa\n", &kimage->arch.kern_reloc); 40 kexec_dprintk(" el2_vectors: %pa\n", &kimage->arch.el2_vectors); 41 } 42 43 void machine_kexec_cleanup(struct kimage *kimage) 44 { 45 /* Empty routine needed to avoid build errors. */ 46 } 47 48 /** 49 * machine_kexec_prepare - Prepare for a kexec reboot. 50 * 51 * Called from the core kexec code when a kernel image is loaded. 52 * Forbid loading a kexec kernel if we have no way of hotplugging cpus or cpus 53 * are stuck in the kernel. This avoids a panic once we hit machine_kexec(). 54 */ 55 int machine_kexec_prepare(struct kimage *kimage) 56 { 57 if (kimage->type != KEXEC_TYPE_CRASH && cpus_are_stuck_in_kernel()) { 58 pr_err("Can't kexec: CPUs are stuck in the kernel.\n"); 59 return -EBUSY; 60 } 61 62 return 0; 63 } 64 65 /** 66 * kexec_segment_flush - Helper to flush the kimage segments to PoC. 67 */ 68 static void kexec_segment_flush(const struct kimage *kimage) 69 { 70 unsigned long i; 71 72 pr_debug("%s:\n", __func__); 73 74 for (i = 0; i < kimage->nr_segments; i++) { 75 pr_debug(" segment[%lu]: %016lx - %016lx, 0x%lx bytes, %lu pages\n", 76 i, 77 kimage->segment[i].mem, 78 kimage->segment[i].mem + kimage->segment[i].memsz, 79 kimage->segment[i].memsz, 80 kimage->segment[i].memsz / PAGE_SIZE); 81 82 dcache_clean_inval_poc( 83 (unsigned long)phys_to_virt(kimage->segment[i].mem), 84 (unsigned long)phys_to_virt(kimage->segment[i].mem) + 85 kimage->segment[i].memsz); 86 } 87 } 88 89 /* Allocates pages for kexec page table */ 90 static void *kexec_page_alloc(void *arg) 91 { 92 struct kimage *kimage = arg; 93 struct page *page = kimage_alloc_control_pages(kimage, 0); 94 void *vaddr = NULL; 95 96 if (!page) 97 return NULL; 98 99 vaddr = page_address(page); 100 memset(vaddr, 0, PAGE_SIZE); 101 102 return vaddr; 103 } 104 105 int machine_kexec_post_load(struct kimage *kimage) 106 { 107 int rc; 108 pgd_t *trans_pgd; 109 void *reloc_code = page_to_virt(kimage->control_code_page); 110 long reloc_size; 111 struct trans_pgd_info info = { 112 .trans_alloc_page = kexec_page_alloc, 113 .trans_alloc_arg = kimage, 114 }; 115 116 /* If in place, relocation is not used, only flush next kernel */ 117 if (kimage->head & IND_DONE) { 118 kexec_segment_flush(kimage); 119 kexec_image_info(kimage); 120 return 0; 121 } 122 123 kimage->arch.el2_vectors = 0; 124 if (is_hyp_nvhe()) { 125 rc = trans_pgd_copy_el2_vectors(&info, 126 &kimage->arch.el2_vectors); 127 if (rc) 128 return rc; 129 } 130 131 /* Create a copy of the linear map */ 132 rc = trans_pgd_create_copy(&info, &trans_pgd, 133 _PAGE_OFFSET(vabits_actual), PAGE_END); 134 if (rc) 135 return rc; 136 kimage->arch.ttbr1 = __pa(trans_pgd); 137 kimage->arch.zero_page = __pa_symbol(empty_zero_page); 138 139 reloc_size = __relocate_new_kernel_end - __relocate_new_kernel_start; 140 memcpy(reloc_code, __relocate_new_kernel_start, reloc_size); 141 kimage->arch.kern_reloc = __pa(reloc_code); 142 rc = trans_pgd_idmap_page(&info, &kimage->arch.ttbr0, 143 &kimage->arch.t0sz, reloc_code); 144 if (rc) 145 return rc; 146 kimage->arch.phys_offset = virt_to_phys(kimage) - (long)kimage; 147 148 /* Flush the reloc_code in preparation for its execution. */ 149 dcache_clean_inval_poc((unsigned long)reloc_code, 150 (unsigned long)reloc_code + reloc_size); 151 icache_inval_pou((uintptr_t)reloc_code, 152 (uintptr_t)reloc_code + reloc_size); 153 kexec_image_info(kimage); 154 155 return 0; 156 } 157 158 /** 159 * machine_kexec - Do the kexec reboot. 160 * 161 * Called from the core kexec code for a sys_reboot with LINUX_REBOOT_CMD_KEXEC. 162 */ 163 void machine_kexec(struct kimage *kimage) 164 { 165 bool in_kexec_crash = (kimage == kexec_crash_image); 166 bool stuck_cpus = cpus_are_stuck_in_kernel(); 167 168 /* 169 * New cpus may have become stuck_in_kernel after we loaded the image. 170 */ 171 BUG_ON(!in_kexec_crash && (stuck_cpus || (num_online_cpus() > 1))); 172 WARN(in_kexec_crash && (stuck_cpus || smp_crash_stop_failed()), 173 "Some CPUs may be stale, kdump will be unreliable.\n"); 174 175 pr_info("Bye!\n"); 176 177 local_daif_mask(); 178 179 /* 180 * Both restart and kernel_reloc will shutdown the MMU, disable data 181 * caches. However, restart will start new kernel or purgatory directly, 182 * kernel_reloc contains the body of arm64_relocate_new_kernel 183 * In kexec case, kimage->start points to purgatory assuming that 184 * kernel entry and dtb address are embedded in purgatory by 185 * userspace (kexec-tools). 186 * In kexec_file case, the kernel starts directly without purgatory. 187 */ 188 if (kimage->head & IND_DONE) { 189 typeof(cpu_soft_restart) *restart; 190 191 cpu_install_idmap(); 192 restart = (void *)__pa_symbol(cpu_soft_restart); 193 restart(is_hyp_nvhe(), kimage->start, kimage->arch.dtb_mem, 194 0, 0); 195 } else { 196 void (*kernel_reloc)(struct kimage *kimage); 197 198 if (is_hyp_nvhe()) 199 __hyp_set_vectors(kimage->arch.el2_vectors); 200 cpu_install_ttbr0(kimage->arch.ttbr0, kimage->arch.t0sz); 201 kernel_reloc = (void *)kimage->arch.kern_reloc; 202 kernel_reloc(kimage); 203 } 204 205 BUG(); /* Should never get here. */ 206 } 207 208 /** 209 * machine_crash_shutdown - shutdown non-crashing cpus and save registers 210 */ 211 void machine_crash_shutdown(struct pt_regs *regs) 212 { 213 local_irq_disable(); 214 215 /* shutdown non-crashing cpus */ 216 crash_smp_send_stop(); 217 218 /* for crashing cpu */ 219 crash_save_cpu(regs, smp_processor_id()); 220 machine_kexec_mask_interrupts(); 221 222 pr_info("Starting crashdump kernel...\n"); 223 } 224 225 #if defined(CONFIG_CRASH_DUMP) && defined(CONFIG_HIBERNATION) 226 /* 227 * To preserve the crash dump kernel image, the relevant memory segments 228 * should be mapped again around the hibernation. 229 */ 230 void crash_prepare_suspend(void) 231 { 232 if (kexec_crash_image) 233 arch_kexec_unprotect_crashkres(); 234 } 235 236 void crash_post_resume(void) 237 { 238 if (kexec_crash_image) 239 arch_kexec_protect_crashkres(); 240 } 241 242 /* 243 * crash_is_nosave 244 * 245 * Return true only if a page is part of reserved memory for crash dump kernel, 246 * but does not hold any data of loaded kernel image. 247 * 248 * Note that all the pages in crash dump kernel memory have been initially 249 * marked as Reserved as memory was allocated via memblock_reserve(). 250 * 251 * In hibernation, the pages which are Reserved and yet "nosave" are excluded 252 * from the hibernation image. crash_is_nosave() does thich check for crash 253 * dump kernel and will reduce the total size of hibernation image. 254 */ 255 256 bool crash_is_nosave(unsigned long pfn) 257 { 258 int i; 259 phys_addr_t addr; 260 261 if (!crashk_res.end) 262 return false; 263 264 /* in reserved memory? */ 265 addr = __pfn_to_phys(pfn); 266 if ((addr < crashk_res.start) || (crashk_res.end < addr)) { 267 if (!crashk_low_res.end) 268 return false; 269 270 if ((addr < crashk_low_res.start) || (crashk_low_res.end < addr)) 271 return false; 272 } 273 274 if (!kexec_crash_image) 275 return true; 276 277 /* not part of loaded kernel image? */ 278 for (i = 0; i < kexec_crash_image->nr_segments; i++) 279 if (addr >= kexec_crash_image->segment[i].mem && 280 addr < (kexec_crash_image->segment[i].mem + 281 kexec_crash_image->segment[i].memsz)) 282 return false; 283 284 return true; 285 } 286 287 void crash_free_reserved_phys_range(unsigned long begin, unsigned long end) 288 { 289 unsigned long addr; 290 struct page *page; 291 292 for (addr = begin; addr < end; addr += PAGE_SIZE) { 293 page = phys_to_page(addr); 294 free_reserved_page(page); 295 } 296 } 297 #endif /* CONFIG_HIBERNATION */ 298