538 lines
18 KiB
C
538 lines
18 KiB
C
// SPDX-License-Identifier: GPL-2.0
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#include <linux/string.h>
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#include <linux/elf.h>
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#include <asm/page-states.h>
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#include <asm/boot_data.h>
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#include <asm/extmem.h>
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#include <asm/sections.h>
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#include <asm/maccess.h>
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#include <asm/cpu_mf.h>
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#include <asm/setup.h>
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#include <asm/kasan.h>
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#include <asm/kexec.h>
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#include <asm/sclp.h>
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#include <asm/diag.h>
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#include <asm/uv.h>
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#include <asm/abs_lowcore.h>
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#include <asm/physmem_info.h>
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#include "decompressor.h"
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#include "boot.h"
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#include "uv.h"
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struct vm_layout __bootdata_preserved(vm_layout);
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unsigned long __bootdata_preserved(__abs_lowcore);
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unsigned long __bootdata_preserved(__memcpy_real_area);
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pte_t *__bootdata_preserved(memcpy_real_ptep);
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unsigned long __bootdata_preserved(VMALLOC_START);
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unsigned long __bootdata_preserved(VMALLOC_END);
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struct page *__bootdata_preserved(vmemmap);
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unsigned long __bootdata_preserved(vmemmap_size);
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unsigned long __bootdata_preserved(MODULES_VADDR);
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unsigned long __bootdata_preserved(MODULES_END);
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unsigned long __bootdata_preserved(max_mappable);
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int __bootdata_preserved(relocate_lowcore);
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u64 __bootdata_preserved(stfle_fac_list[16]);
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struct oldmem_data __bootdata_preserved(oldmem_data);
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struct machine_info machine;
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void error(char *x)
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{
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boot_printk("\n\n%s\n\n -- System halted", x);
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disabled_wait();
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}
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static void detect_facilities(void)
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{
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if (test_facility(8)) {
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machine.has_edat1 = 1;
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local_ctl_set_bit(0, CR0_EDAT_BIT);
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}
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if (test_facility(78))
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machine.has_edat2 = 1;
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if (test_facility(130))
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machine.has_nx = 1;
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}
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static int cmma_test_essa(void)
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{
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unsigned long reg1, reg2, tmp = 0;
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int rc = 1;
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psw_t old;
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/* Test ESSA_GET_STATE */
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asm volatile(
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" mvc 0(16,%[psw_old]),0(%[psw_pgm])\n"
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" epsw %[reg1],%[reg2]\n"
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" st %[reg1],0(%[psw_pgm])\n"
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" st %[reg2],4(%[psw_pgm])\n"
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" larl %[reg1],1f\n"
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" stg %[reg1],8(%[psw_pgm])\n"
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" .insn rrf,0xb9ab0000,%[tmp],%[tmp],%[cmd],0\n"
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" la %[rc],0\n"
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"1: mvc 0(16,%[psw_pgm]),0(%[psw_old])\n"
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: [reg1] "=&d" (reg1),
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[reg2] "=&a" (reg2),
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[rc] "+&d" (rc),
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[tmp] "=&d" (tmp),
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"+Q" (get_lowcore()->program_new_psw),
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"=Q" (old)
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: [psw_old] "a" (&old),
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[psw_pgm] "a" (&get_lowcore()->program_new_psw),
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[cmd] "i" (ESSA_GET_STATE)
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: "cc", "memory");
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return rc;
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}
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static void cmma_init(void)
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{
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if (!cmma_flag)
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return;
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if (cmma_test_essa()) {
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cmma_flag = 0;
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return;
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}
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if (test_facility(147))
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cmma_flag = 2;
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}
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static void setup_lpp(void)
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{
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get_lowcore()->current_pid = 0;
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get_lowcore()->lpp = LPP_MAGIC;
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if (test_facility(40))
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lpp(&get_lowcore()->lpp);
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}
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#ifdef CONFIG_KERNEL_UNCOMPRESSED
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static unsigned long mem_safe_offset(void)
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{
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return (unsigned long)_compressed_start;
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}
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static void deploy_kernel(void *output)
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{
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void *uncompressed_start = (void *)_compressed_start;
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if (output == uncompressed_start)
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return;
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memmove(output, uncompressed_start, vmlinux.image_size);
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memset(uncompressed_start, 0, vmlinux.image_size);
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}
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#endif
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static void rescue_initrd(unsigned long min, unsigned long max)
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{
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unsigned long old_addr, addr, size;
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if (!IS_ENABLED(CONFIG_BLK_DEV_INITRD))
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return;
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if (!get_physmem_reserved(RR_INITRD, &addr, &size))
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return;
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if (addr >= min && addr + size <= max)
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return;
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old_addr = addr;
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physmem_free(RR_INITRD);
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addr = physmem_alloc_top_down(RR_INITRD, size, 0);
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memmove((void *)addr, (void *)old_addr, size);
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}
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static void copy_bootdata(void)
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{
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if (__boot_data_end - __boot_data_start != vmlinux.bootdata_size)
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error(".boot.data section size mismatch");
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memcpy((void *)vmlinux.bootdata_off, __boot_data_start, vmlinux.bootdata_size);
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if (__boot_data_preserved_end - __boot_data_preserved_start != vmlinux.bootdata_preserved_size)
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error(".boot.preserved.data section size mismatch");
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memcpy((void *)vmlinux.bootdata_preserved_off, __boot_data_preserved_start, vmlinux.bootdata_preserved_size);
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}
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static void kaslr_adjust_relocs(unsigned long min_addr, unsigned long max_addr,
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unsigned long offset, unsigned long phys_offset)
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{
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int *reloc;
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long loc;
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/* Adjust R_390_64 relocations */
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for (reloc = (int *)__vmlinux_relocs_64_start; reloc < (int *)__vmlinux_relocs_64_end; reloc++) {
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loc = (long)*reloc + phys_offset;
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if (loc < min_addr || loc > max_addr)
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error("64-bit relocation outside of kernel!\n");
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*(u64 *)loc += offset;
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}
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}
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static void kaslr_adjust_got(unsigned long offset)
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{
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u64 *entry;
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/*
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* Adjust GOT entries, except for ones for undefined weak symbols
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* that resolved to zero. This also skips the first three reserved
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* entries on s390x that are zero.
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*/
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for (entry = (u64 *)vmlinux.got_start; entry < (u64 *)vmlinux.got_end; entry++) {
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if (*entry)
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*entry += offset;
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}
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}
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/*
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* Merge information from several sources into a single ident_map_size value.
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* "ident_map_size" represents the upper limit of physical memory we may ever
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* reach. It might not be all online memory, but also include standby (offline)
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* memory or memory areas reserved for other means (e.g., memory devices such as
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* virtio-mem).
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*
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* "ident_map_size" could be lower then actual standby/reserved or even online
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* memory present, due to limiting factors. We should never go above this limit.
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* It is the size of our identity mapping.
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*
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* Consider the following factors:
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* 1. max_physmem_end - end of physical memory online, standby or reserved.
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* Always >= end of the last online memory range (get_physmem_online_end()).
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* 2. CONFIG_MAX_PHYSMEM_BITS - the maximum size of physical memory the
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* kernel is able to support.
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* 3. "mem=" kernel command line option which limits physical memory usage.
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* 4. OLDMEM_BASE which is a kdump memory limit when the kernel is executed as
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* crash kernel.
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* 5. "hsa" size which is a memory limit when the kernel is executed during
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* zfcp/nvme dump.
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*/
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static void setup_ident_map_size(unsigned long max_physmem_end)
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{
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unsigned long hsa_size;
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ident_map_size = max_physmem_end;
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if (memory_limit)
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ident_map_size = min(ident_map_size, memory_limit);
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ident_map_size = min(ident_map_size, 1UL << MAX_PHYSMEM_BITS);
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#ifdef CONFIG_CRASH_DUMP
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if (oldmem_data.start) {
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__kaslr_enabled = 0;
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ident_map_size = min(ident_map_size, oldmem_data.size);
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} else if (ipl_block_valid && is_ipl_block_dump()) {
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__kaslr_enabled = 0;
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if (!sclp_early_get_hsa_size(&hsa_size) && hsa_size)
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ident_map_size = min(ident_map_size, hsa_size);
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}
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#endif
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}
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#define FIXMAP_SIZE round_up(MEMCPY_REAL_SIZE + ABS_LOWCORE_MAP_SIZE, sizeof(struct lowcore))
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static unsigned long get_vmem_size(unsigned long identity_size,
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unsigned long vmemmap_size,
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unsigned long vmalloc_size,
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unsigned long rte_size)
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{
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unsigned long max_mappable, vsize;
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max_mappable = max(identity_size, MAX_DCSS_ADDR);
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vsize = round_up(SZ_2G + max_mappable, rte_size) +
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round_up(vmemmap_size, rte_size) +
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FIXMAP_SIZE + MODULES_LEN + KASLR_LEN;
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if (IS_ENABLED(CONFIG_KMSAN))
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vsize += MODULES_LEN * 2;
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return size_add(vsize, vmalloc_size);
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}
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static unsigned long setup_kernel_memory_layout(unsigned long kernel_size)
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{
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unsigned long vmemmap_start;
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unsigned long kernel_start;
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unsigned long asce_limit;
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unsigned long rte_size;
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unsigned long pages;
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unsigned long vsize;
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unsigned long vmax;
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pages = ident_map_size / PAGE_SIZE;
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/* vmemmap contains a multiple of PAGES_PER_SECTION struct pages */
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vmemmap_size = SECTION_ALIGN_UP(pages) * sizeof(struct page);
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/* choose kernel address space layout: 4 or 3 levels. */
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BUILD_BUG_ON(!IS_ALIGNED(TEXT_OFFSET, THREAD_SIZE));
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BUILD_BUG_ON(!IS_ALIGNED(__NO_KASLR_START_KERNEL, THREAD_SIZE));
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BUILD_BUG_ON(__NO_KASLR_END_KERNEL > _REGION1_SIZE);
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vsize = get_vmem_size(ident_map_size, vmemmap_size, vmalloc_size, _REGION3_SIZE);
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if (IS_ENABLED(CONFIG_KASAN) || __NO_KASLR_END_KERNEL > _REGION2_SIZE ||
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(vsize > _REGION2_SIZE && kaslr_enabled())) {
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asce_limit = _REGION1_SIZE;
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if (__NO_KASLR_END_KERNEL > _REGION2_SIZE) {
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rte_size = _REGION2_SIZE;
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vsize = get_vmem_size(ident_map_size, vmemmap_size, vmalloc_size, _REGION2_SIZE);
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} else {
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rte_size = _REGION3_SIZE;
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}
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} else {
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asce_limit = _REGION2_SIZE;
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rte_size = _REGION3_SIZE;
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}
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/*
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* Forcing modules and vmalloc area under the ultravisor
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* secure storage limit, so that any vmalloc allocation
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* we do could be used to back secure guest storage.
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*
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* Assume the secure storage limit always exceeds _REGION2_SIZE,
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* otherwise asce_limit and rte_size would have been adjusted.
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*/
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vmax = adjust_to_uv_max(asce_limit);
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#ifdef CONFIG_KASAN
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BUILD_BUG_ON(__NO_KASLR_END_KERNEL > KASAN_SHADOW_START);
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/* force vmalloc and modules below kasan shadow */
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vmax = min(vmax, KASAN_SHADOW_START);
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#endif
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vsize = min(vsize, vmax);
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if (kaslr_enabled()) {
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unsigned long kernel_end, kaslr_len, slots, pos;
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kaslr_len = max(KASLR_LEN, vmax - vsize);
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slots = DIV_ROUND_UP(kaslr_len - kernel_size, THREAD_SIZE);
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if (get_random(slots, &pos))
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pos = 0;
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kernel_end = vmax - pos * THREAD_SIZE;
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kernel_start = round_down(kernel_end - kernel_size, THREAD_SIZE);
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} else if (vmax < __NO_KASLR_END_KERNEL || vsize > __NO_KASLR_END_KERNEL) {
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kernel_start = round_down(vmax - kernel_size, THREAD_SIZE);
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boot_printk("The kernel base address is forced to %lx\n", kernel_start);
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} else {
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kernel_start = __NO_KASLR_START_KERNEL;
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}
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__kaslr_offset = kernel_start;
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MODULES_END = round_down(kernel_start, _SEGMENT_SIZE);
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MODULES_VADDR = MODULES_END - MODULES_LEN;
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VMALLOC_END = MODULES_VADDR;
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if (IS_ENABLED(CONFIG_KMSAN))
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VMALLOC_END -= MODULES_LEN * 2;
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/* allow vmalloc area to occupy up to about 1/2 of the rest virtual space left */
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vsize = (VMALLOC_END - FIXMAP_SIZE) / 2;
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vsize = round_down(vsize, _SEGMENT_SIZE);
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vmalloc_size = min(vmalloc_size, vsize);
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if (IS_ENABLED(CONFIG_KMSAN)) {
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/* take 2/3 of vmalloc area for KMSAN shadow and origins */
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vmalloc_size = round_down(vmalloc_size / 3, _SEGMENT_SIZE);
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VMALLOC_END -= vmalloc_size * 2;
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}
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VMALLOC_START = VMALLOC_END - vmalloc_size;
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__memcpy_real_area = round_down(VMALLOC_START - MEMCPY_REAL_SIZE, PAGE_SIZE);
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__abs_lowcore = round_down(__memcpy_real_area - ABS_LOWCORE_MAP_SIZE,
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sizeof(struct lowcore));
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/* split remaining virtual space between 1:1 mapping & vmemmap array */
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pages = __abs_lowcore / (PAGE_SIZE + sizeof(struct page));
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pages = SECTION_ALIGN_UP(pages);
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/* keep vmemmap_start aligned to a top level region table entry */
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vmemmap_start = round_down(__abs_lowcore - pages * sizeof(struct page), rte_size);
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/* make sure identity map doesn't overlay with vmemmap */
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ident_map_size = min(ident_map_size, vmemmap_start);
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vmemmap_size = SECTION_ALIGN_UP(ident_map_size / PAGE_SIZE) * sizeof(struct page);
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/* make sure vmemmap doesn't overlay with absolute lowcore area */
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if (vmemmap_start + vmemmap_size > __abs_lowcore) {
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vmemmap_size = SECTION_ALIGN_DOWN(ident_map_size / PAGE_SIZE) * sizeof(struct page);
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ident_map_size = vmemmap_size / sizeof(struct page) * PAGE_SIZE;
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}
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vmemmap = (struct page *)vmemmap_start;
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/* maximum address for which linear mapping could be created (DCSS, memory) */
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BUILD_BUG_ON(MAX_DCSS_ADDR > (1UL << MAX_PHYSMEM_BITS));
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max_mappable = max(ident_map_size, MAX_DCSS_ADDR);
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max_mappable = min(max_mappable, vmemmap_start);
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if (IS_ENABLED(CONFIG_RANDOMIZE_IDENTITY_BASE))
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__identity_base = round_down(vmemmap_start - max_mappable, rte_size);
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return asce_limit;
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}
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/*
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* This function clears the BSS section of the decompressed Linux kernel and NOT the decompressor's.
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*/
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static void clear_bss_section(unsigned long kernel_start)
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{
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memset((void *)kernel_start + vmlinux.image_size, 0, vmlinux.bss_size);
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}
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/*
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* Set vmalloc area size to an 8th of (potential) physical memory
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* size, unless size has been set by kernel command line parameter.
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*/
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static void setup_vmalloc_size(void)
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{
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unsigned long size;
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if (vmalloc_size_set)
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return;
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size = round_up(ident_map_size / 8, _SEGMENT_SIZE);
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vmalloc_size = max(size, vmalloc_size);
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}
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static void kaslr_adjust_vmlinux_info(long offset)
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{
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vmlinux.bootdata_off += offset;
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vmlinux.bootdata_preserved_off += offset;
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vmlinux.got_start += offset;
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vmlinux.got_end += offset;
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vmlinux.init_mm_off += offset;
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vmlinux.swapper_pg_dir_off += offset;
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vmlinux.invalid_pg_dir_off += offset;
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vmlinux.alt_instructions += offset;
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vmlinux.alt_instructions_end += offset;
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#ifdef CONFIG_KASAN
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vmlinux.kasan_early_shadow_page_off += offset;
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vmlinux.kasan_early_shadow_pte_off += offset;
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vmlinux.kasan_early_shadow_pmd_off += offset;
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vmlinux.kasan_early_shadow_pud_off += offset;
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vmlinux.kasan_early_shadow_p4d_off += offset;
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#endif
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}
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void startup_kernel(void)
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{
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unsigned long vmlinux_size = vmlinux.image_size + vmlinux.bss_size;
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unsigned long nokaslr_text_lma, text_lma = 0, amode31_lma = 0;
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unsigned long kernel_size = TEXT_OFFSET + vmlinux_size;
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unsigned long kaslr_large_page_offset;
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unsigned long max_physmem_end;
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unsigned long asce_limit;
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unsigned long safe_addr;
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psw_t psw;
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setup_lpp();
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/*
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* Non-randomized kernel physical start address must be _SEGMENT_SIZE
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* aligned (see blow).
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*/
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nokaslr_text_lma = ALIGN(mem_safe_offset(), _SEGMENT_SIZE);
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safe_addr = PAGE_ALIGN(nokaslr_text_lma + vmlinux_size);
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/*
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* Reserve decompressor memory together with decompression heap,
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* buffer and memory which might be occupied by uncompressed kernel
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* (if KASLR is off or failed).
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*/
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physmem_reserve(RR_DECOMPRESSOR, 0, safe_addr);
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if (IS_ENABLED(CONFIG_BLK_DEV_INITRD) && parmarea.initrd_size)
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physmem_reserve(RR_INITRD, parmarea.initrd_start, parmarea.initrd_size);
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oldmem_data.start = parmarea.oldmem_base;
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oldmem_data.size = parmarea.oldmem_size;
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store_ipl_parmblock();
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read_ipl_report();
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uv_query_info();
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sclp_early_read_info();
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setup_boot_command_line();
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parse_boot_command_line();
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detect_facilities();
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cmma_init();
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sanitize_prot_virt_host();
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max_physmem_end = detect_max_physmem_end();
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setup_ident_map_size(max_physmem_end);
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setup_vmalloc_size();
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asce_limit = setup_kernel_memory_layout(kernel_size);
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/* got final ident_map_size, physmem allocations could be performed now */
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physmem_set_usable_limit(ident_map_size);
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detect_physmem_online_ranges(max_physmem_end);
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save_ipl_cert_comp_list();
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rescue_initrd(safe_addr, ident_map_size);
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|
|
|
/*
|
|
* __kaslr_offset_phys must be _SEGMENT_SIZE aligned, so the lower
|
|
* 20 bits (the offset within a large page) are zero. Copy the last
|
|
* 20 bits of __kaslr_offset, which is THREAD_SIZE aligned, to
|
|
* __kaslr_offset_phys.
|
|
*
|
|
* With this the last 20 bits of __kaslr_offset_phys and __kaslr_offset
|
|
* are identical, which is required to allow for large mappings of the
|
|
* kernel image.
|
|
*/
|
|
kaslr_large_page_offset = __kaslr_offset & ~_SEGMENT_MASK;
|
|
if (kaslr_enabled()) {
|
|
unsigned long size = vmlinux_size + kaslr_large_page_offset;
|
|
|
|
text_lma = randomize_within_range(size, _SEGMENT_SIZE, TEXT_OFFSET, ident_map_size);
|
|
}
|
|
if (!text_lma)
|
|
text_lma = nokaslr_text_lma;
|
|
text_lma |= kaslr_large_page_offset;
|
|
|
|
/*
|
|
* [__kaslr_offset_phys..__kaslr_offset_phys + TEXT_OFFSET] region is
|
|
* never accessed via the kernel image mapping as per the linker script:
|
|
*
|
|
* . = TEXT_OFFSET;
|
|
*
|
|
* Therefore, this region could be used for something else and does
|
|
* not need to be reserved. See how it is skipped in setup_vmem().
|
|
*/
|
|
__kaslr_offset_phys = text_lma - TEXT_OFFSET;
|
|
kaslr_adjust_vmlinux_info(__kaslr_offset_phys);
|
|
physmem_reserve(RR_VMLINUX, text_lma, vmlinux_size);
|
|
deploy_kernel((void *)text_lma);
|
|
|
|
/* vmlinux decompression is done, shrink reserved low memory */
|
|
physmem_reserve(RR_DECOMPRESSOR, 0, (unsigned long)_decompressor_end);
|
|
|
|
/*
|
|
* In case KASLR is enabled the randomized location of .amode31
|
|
* section might overlap with .vmlinux.relocs section. To avoid that
|
|
* the below randomize_within_range() could have been called with
|
|
* __vmlinux_relocs_64_end as the lower range address. However,
|
|
* .amode31 section is written to by the decompressed kernel - at
|
|
* that time the contents of .vmlinux.relocs is not needed anymore.
|
|
* Conversely, .vmlinux.relocs is read only by the decompressor, even
|
|
* before the kernel started. Therefore, in case the two sections
|
|
* overlap there is no risk of corrupting any data.
|
|
*/
|
|
if (kaslr_enabled()) {
|
|
unsigned long amode31_min;
|
|
|
|
amode31_min = (unsigned long)_decompressor_end;
|
|
amode31_lma = randomize_within_range(vmlinux.amode31_size, PAGE_SIZE, amode31_min, SZ_2G);
|
|
}
|
|
if (!amode31_lma)
|
|
amode31_lma = text_lma - vmlinux.amode31_size;
|
|
physmem_reserve(RR_AMODE31, amode31_lma, vmlinux.amode31_size);
|
|
|
|
/*
|
|
* The order of the following operations is important:
|
|
*
|
|
* - kaslr_adjust_relocs() must follow clear_bss_section() to establish
|
|
* static memory references to data in .bss to be used by setup_vmem()
|
|
* (i.e init_mm.pgd)
|
|
*
|
|
* - setup_vmem() must follow kaslr_adjust_relocs() to be able using
|
|
* static memory references to data in .bss (i.e init_mm.pgd)
|
|
*
|
|
* - copy_bootdata() must follow setup_vmem() to propagate changes
|
|
* to bootdata made by setup_vmem()
|
|
*/
|
|
clear_bss_section(text_lma);
|
|
kaslr_adjust_relocs(text_lma, text_lma + vmlinux.image_size,
|
|
__kaslr_offset, __kaslr_offset_phys);
|
|
kaslr_adjust_got(__kaslr_offset);
|
|
setup_vmem(__kaslr_offset, __kaslr_offset + kernel_size, asce_limit);
|
|
copy_bootdata();
|
|
__apply_alternatives((struct alt_instr *)_vmlinux_info.alt_instructions,
|
|
(struct alt_instr *)_vmlinux_info.alt_instructions_end,
|
|
ALT_CTX_EARLY);
|
|
|
|
/*
|
|
* Save KASLR offset for early dumps, before vmcore_info is set.
|
|
* Mark as uneven to distinguish from real vmcore_info pointer.
|
|
*/
|
|
get_lowcore()->vmcore_info = __kaslr_offset_phys ? __kaslr_offset_phys | 0x1UL : 0;
|
|
|
|
/*
|
|
* Jump to the decompressed kernel entry point and switch DAT mode on.
|
|
*/
|
|
psw.addr = __kaslr_offset + vmlinux.entry;
|
|
psw.mask = PSW_KERNEL_BITS;
|
|
__load_psw(psw);
|
|
}
|