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| 1 | jermar | 1 | /* |
| 2 | * Copyright (C) 2001-2004 Jakub Jermar |
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| 3 | * All rights reserved. |
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| 4 | * |
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| 5 | * Redistribution and use in source and binary forms, with or without |
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| 6 | * modification, are permitted provided that the following conditions |
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| 7 | * are met: |
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| 8 | * |
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| 9 | * - Redistributions of source code must retain the above copyright |
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| 10 | * notice, this list of conditions and the following disclaimer. |
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| 11 | * - Redistributions in binary form must reproduce the above copyright |
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| 12 | * notice, this list of conditions and the following disclaimer in the |
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| 13 | * documentation and/or other materials provided with the distribution. |
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| 14 | * - The name of the author may not be used to endorse or promote products |
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| 15 | * derived from this software without specific prior written permission. |
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| 16 | * |
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| 17 | * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR |
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| 18 | * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES |
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| 19 | * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. |
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| 20 | * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, |
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| 21 | * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT |
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| 22 | * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, |
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| 23 | * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY |
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| 24 | * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT |
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| 25 | * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF |
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| 26 | * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. |
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| 27 | */ |
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| 28 | |||
| 1702 | cejka | 29 | /** @addtogroup ia32 |
| 30 | * @{ |
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| 31 | */ |
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| 32 | /** @file |
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| 33 | */ |
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| 34 | |||
| 1 | jermar | 35 | #include <arch/pm.h> |
| 36 | #include <config.h> |
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| 37 | #include <arch/types.h> |
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| 38 | #include <typedefs.h> |
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| 39 | #include <arch/interrupt.h> |
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| 40 | #include <arch/asm.h> |
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| 41 | #include <arch/context.h> |
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| 42 | #include <panic.h> |
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| 167 | jermar | 43 | #include <arch/mm/page.h> |
| 814 | palkovsky | 44 | #include <mm/slab.h> |
| 195 | vana | 45 | #include <memstr.h> |
| 244 | decky | 46 | #include <arch/boot/boot.h> |
| 576 | palkovsky | 47 | #include <interrupt.h> |
| 1 | jermar | 48 | |
| 49 | /* |
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| 11 | jermar | 50 | * Early ia32 configuration functions and data structures. |
| 1 | jermar | 51 | */ |
| 52 | |||
| 53 | /* |
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| 54 | * We have no use for segmentation so we set up flat mode. In this |
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| 55 | * mode, we use, for each privilege level, two segments spanning the |
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| 56 | * whole memory. One is for code and one is for data. |
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| 1112 | palkovsky | 57 | * |
| 58 | * One is for GS register which holds pointer to the TLS thread |
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| 59 | * structure in it's base. |
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| 1 | jermar | 60 | */ |
| 1187 | jermar | 61 | descriptor_t gdt[GDT_ITEMS] = { |
| 125 | jermar | 62 | /* NULL descriptor */ |
| 63 | { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 }, |
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| 64 | /* KTEXT descriptor */ |
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| 65 | { 0xffff, 0, 0, AR_PRESENT | AR_CODE | DPL_KERNEL, 0xf, 0, 0, 1, 1, 0 }, |
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| 66 | /* KDATA descriptor */ |
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| 67 | { 0xffff, 0, 0, AR_PRESENT | AR_DATA | AR_WRITABLE | DPL_KERNEL, 0xf, 0, 0, 1, 1, 0 }, |
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| 68 | /* UTEXT descriptor */ |
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| 69 | { 0xffff, 0, 0, AR_PRESENT | AR_CODE | DPL_USER, 0xf, 0, 0, 1, 1, 0 }, |
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| 70 | /* UDATA descriptor */ |
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| 71 | { 0xffff, 0, 0, AR_PRESENT | AR_DATA | AR_WRITABLE | DPL_USER, 0xf, 0, 0, 1, 1, 0 }, |
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| 72 | /* TSS descriptor - set up will be completed later */ |
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| 1112 | palkovsky | 73 | { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 }, |
| 1189 | jermar | 74 | /* TLS descriptor */ |
| 1287 | vana | 75 | { 0xffff, 0, 0, AR_PRESENT | AR_DATA | AR_WRITABLE | DPL_USER, 0xf, 0, 0, 1, 1, 0 }, |
| 76 | /* VESA Init descriptor */ |
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| 1292 | vana | 77 | #ifdef CONFIG_FB |
| 1289 | vana | 78 | { 0xffff, 0, VESA_INIT_SEGMENT>>12, AR_PRESENT | AR_CODE | DPL_KERNEL, 0xf, 0, 0, 0, 0, 0 } |
| 1292 | vana | 79 | #endif |
| 1 | jermar | 80 | }; |
| 81 | |||
| 1187 | jermar | 82 | static idescriptor_t idt[IDT_ITEMS]; |
| 1 | jermar | 83 | |
| 1187 | jermar | 84 | static tss_t tss; |
| 1 | jermar | 85 | |
| 1187 | jermar | 86 | tss_t *tss_p = NULL; |
| 1 | jermar | 87 | |
| 22 | jermar | 88 | /* gdtr is changed by kmp before next CPU is initialized */ |
| 1780 | jermar | 89 | ptr_16_32_t bootstrap_gdtr = { .limit = sizeof(gdt), .base = KA2PA((uintptr_t) gdt) }; |
| 90 | ptr_16_32_t gdtr = { .limit = sizeof(gdt), .base = (uintptr_t) gdt }; |
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| 1 | jermar | 91 | |
| 1780 | jermar | 92 | void gdt_setbase(descriptor_t *d, uintptr_t base) |
| 1 | jermar | 93 | { |
| 125 | jermar | 94 | d->base_0_15 = base & 0xffff; |
| 95 | d->base_16_23 = ((base) >> 16) & 0xff; |
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| 96 | d->base_24_31 = ((base) >> 24) & 0xff; |
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| 1 | jermar | 97 | } |
| 98 | |||
| 1780 | jermar | 99 | void gdt_setlimit(descriptor_t *d, uint32_t limit) |
| 1 | jermar | 100 | { |
| 125 | jermar | 101 | d->limit_0_15 = limit & 0xffff; |
| 102 | d->limit_16_19 = (limit >> 16) & 0xf; |
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| 1 | jermar | 103 | } |
| 104 | |||
| 1780 | jermar | 105 | void idt_setoffset(idescriptor_t *d, uintptr_t offset) |
| 1 | jermar | 106 | { |
| 112 | jermar | 107 | /* |
| 108 | * Offset is a linear address. |
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| 109 | */ |
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| 110 | d->offset_0_15 = offset & 0xffff; |
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| 111 | d->offset_16_31 = offset >> 16; |
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| 1 | jermar | 112 | } |
| 113 | |||
| 1187 | jermar | 114 | void tss_initialize(tss_t *t) |
| 1 | jermar | 115 | { |
| 1780 | jermar | 116 | memsetb((uintptr_t) t, sizeof(struct tss), 0); |
| 1 | jermar | 117 | } |
| 118 | |||
| 119 | /* |
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| 120 | * This function takes care of proper setup of IDT and IDTR. |
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| 121 | */ |
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| 122 | void idt_init(void) |
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| 123 | { |
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| 1187 | jermar | 124 | idescriptor_t *d; |
| 1 | jermar | 125 | int i; |
| 125 | jermar | 126 | |
| 1 | jermar | 127 | for (i = 0; i < IDT_ITEMS; i++) { |
| 128 | d = &idt[i]; |
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| 129 | |||
| 130 | d->unused = 0; |
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| 131 | d->selector = selector(KTEXT_DES); |
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| 132 | |||
| 133 | d->access = AR_PRESENT | AR_INTERRUPT; /* masking interrupt */ |
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| 134 | |||
| 135 | if (i == VECTOR_SYSCALL) { |
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| 136 | /* |
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| 137 | * The syscall interrupt gate must be calleable from userland. |
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| 138 | */ |
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| 139 | d->access |= DPL_USER; |
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| 140 | } |
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| 141 | |||
| 1780 | jermar | 142 | idt_setoffset(d, ((uintptr_t) interrupt_handlers) + i*interrupt_handler_size); |
| 958 | jermar | 143 | exc_register(i, "undef", (iroutine) null_interrupt); |
| 1 | jermar | 144 | } |
| 958 | jermar | 145 | exc_register(13, "gp_fault", (iroutine) gp_fault); |
| 146 | exc_register( 7, "nm_fault", (iroutine) nm_fault); |
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| 147 | exc_register(12, "ss_fault", (iroutine) ss_fault); |
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| 1019 | vana | 148 | exc_register(19, "simd_fp", (iroutine) simd_fp_exception); |
| 1 | jermar | 149 | } |
| 150 | |||
| 151 | |||
| 144 | vana | 152 | /* Clean IOPL(12,13) and NT(14) flags in EFLAGS register */ |
| 141 | vana | 153 | static void clean_IOPL_NT_flags(void) |
| 154 | { |
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| 1187 | jermar | 155 | __asm__ volatile ( |
| 156 | "pushfl\n" |
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| 157 | "pop %%eax\n" |
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| 158 | "and $0xffff8fff, %%eax\n" |
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| 159 | "push %%eax\n" |
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| 160 | "popfl\n" |
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| 161 | : : : "eax" |
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| 141 | vana | 162 | ); |
| 163 | } |
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| 164 | |||
| 144 | vana | 165 | /* Clean AM(18) flag in CR0 register */ |
| 143 | vana | 166 | static void clean_AM_flag(void) |
| 167 | { |
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| 1187 | jermar | 168 | __asm__ volatile ( |
| 169 | "mov %%cr0, %%eax\n" |
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| 170 | "and $0xfffbffff, %%eax\n" |
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| 171 | "mov %%eax, %%cr0\n" |
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| 172 | : : : "eax" |
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| 143 | vana | 173 | ); |
| 174 | } |
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| 141 | vana | 175 | |
| 1 | jermar | 176 | void pm_init(void) |
| 177 | { |
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| 1187 | jermar | 178 | descriptor_t *gdt_p = (descriptor_t *) gdtr.base; |
| 179 | ptr_16_32_t idtr; |
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| 1 | jermar | 180 | |
| 181 | /* |
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| 232 | jermar | 182 | * Update addresses in GDT and IDT to their virtual counterparts. |
| 183 | */ |
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| 271 | decky | 184 | idtr.limit = sizeof(idt); |
| 1780 | jermar | 185 | idtr.base = (uintptr_t) idt; |
| 1186 | jermar | 186 | gdtr_load(&gdtr); |
| 187 | idtr_load(&idtr); |
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| 232 | jermar | 188 | |
| 189 | /* |
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| 1 | jermar | 190 | * Each CPU has its private GDT and TSS. |
| 191 | * All CPUs share one IDT. |
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| 192 | */ |
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| 193 | |||
| 194 | if (config.cpu_active == 1) { |
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| 195 | idt_init(); |
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| 196 | /* |
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| 197 | * NOTE: bootstrap CPU has statically allocated TSS, because |
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| 198 | * the heap hasn't been initialized so far. |
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| 199 | */ |
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| 200 | tss_p = &tss; |
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| 201 | } |
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| 202 | else { |
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| 1187 | jermar | 203 | tss_p = (tss_t *) malloc(sizeof(tss_t), FRAME_ATOMIC); |
| 1 | jermar | 204 | if (!tss_p) |
| 68 | decky | 205 | panic("could not allocate TSS\n"); |
| 1 | jermar | 206 | } |
| 207 | |||
| 208 | tss_initialize(tss_p); |
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| 209 | |||
| 210 | gdt_p[TSS_DES].access = AR_PRESENT | AR_TSS | DPL_KERNEL; |
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| 211 | gdt_p[TSS_DES].special = 1; |
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| 1251 | jermar | 212 | gdt_p[TSS_DES].granularity = 0; |
| 1 | jermar | 213 | |
| 1780 | jermar | 214 | gdt_setbase(&gdt_p[TSS_DES], (uintptr_t) tss_p); |
| 1251 | jermar | 215 | gdt_setlimit(&gdt_p[TSS_DES], TSS_BASIC_SIZE - 1); |
| 1 | jermar | 216 | |
| 217 | /* |
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| 218 | * As of this moment, the current CPU has its own GDT pointing |
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| 219 | * to its own TSS. We just need to load the TR register. |
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| 220 | */ |
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| 1186 | jermar | 221 | tr_load(selector(TSS_DES)); |
| 141 | vana | 222 | |
| 1251 | jermar | 223 | clean_IOPL_NT_flags(); /* Disable I/O on nonprivileged levels and clear NT flag. */ |
| 144 | vana | 224 | clean_AM_flag(); /* Disable alignment check */ |
| 1 | jermar | 225 | } |
| 1112 | palkovsky | 226 | |
| 1780 | jermar | 227 | void set_tls_desc(uintptr_t tls) |
| 1112 | palkovsky | 228 | { |
| 1187 | jermar | 229 | ptr_16_32_t cpugdtr; |
| 1188 | jermar | 230 | descriptor_t *gdt_p; |
| 1112 | palkovsky | 231 | |
| 1186 | jermar | 232 | gdtr_store(&cpugdtr); |
| 1188 | jermar | 233 | gdt_p = (descriptor_t *) cpugdtr.base; |
| 1112 | palkovsky | 234 | gdt_setbase(&gdt_p[TLS_DES], tls); |
| 235 | /* Reload gdt register to update GS in CPU */ |
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| 1186 | jermar | 236 | gdtr_load(&cpugdtr); |
| 1112 | palkovsky | 237 | } |
| 1702 | cejka | 238 | |
| 239 | /** @} |
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| 240 | */ |
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| 241 |