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1 | jermar | 1 | /* |
2071 | jermar | 2 | * Copyright (c) 2001-2004 Jakub Jermar |
1 | jermar | 3 | * All rights reserved. |
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 | |||
1729 | decky | 29 | /** @addtogroup main |
1702 | cejka | 30 | * @{ |
31 | */ |
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32 | |||
1248 | jermar | 33 | /** |
1702 | cejka | 34 | * @file |
1248 | jermar | 35 | * @brief Main initialization kernel function for all processors. |
36 | * |
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37 | * During kernel boot, all processors, after architecture dependent |
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38 | * initialization, start executing code found in this file. After |
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39 | * bringing up all subsystems, control is passed to scheduler(). |
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40 | * |
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41 | * The bootstrap processor starts executing main_bsp() while |
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42 | * the application processors start executing main_ap(). |
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43 | * |
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44 | * @see scheduler() |
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45 | * @see main_bsp() |
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46 | * @see main_ap() |
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47 | */ |
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48 | |||
1 | jermar | 49 | #include <arch/asm.h> |
97 | jermar | 50 | #include <context.h> |
1 | jermar | 51 | #include <print.h> |
68 | decky | 52 | #include <panic.h> |
561 | decky | 53 | #include <debug.h> |
1 | jermar | 54 | #include <config.h> |
55 | #include <time/clock.h> |
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2089 | decky | 56 | #include <time/timeout.h> |
1 | jermar | 57 | #include <proc/scheduler.h> |
58 | #include <proc/thread.h> |
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59 | #include <proc/task.h> |
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2746 | decky | 60 | #include <proc/tasklet.h> |
1 | jermar | 61 | #include <main/kinit.h> |
675 | jermar | 62 | #include <main/version.h> |
518 | jermar | 63 | #include <console/kconsole.h> |
1 | jermar | 64 | #include <cpu.h> |
402 | jermar | 65 | #include <align.h> |
578 | palkovsky | 66 | #include <interrupt.h> |
1 | jermar | 67 | #include <mm/frame.h> |
68 | #include <mm/page.h> |
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684 | jermar | 69 | #include <genarch/mm/page_pt.h> |
5 | jermar | 70 | #include <mm/tlb.h> |
703 | jermar | 71 | #include <mm/as.h> |
759 | palkovsky | 72 | #include <mm/slab.h> |
1 | jermar | 73 | #include <synch/waitq.h> |
1109 | jermar | 74 | #include <synch/futex.h> |
210 | decky | 75 | #include <arch/arch.h> |
1 | jermar | 76 | #include <arch.h> |
76 | jermar | 77 | #include <arch/faddr.h> |
955 | palkovsky | 78 | #include <ipc/ipc.h> |
1063 | palkovsky | 79 | #include <macros.h> |
1164 | jermar | 80 | #include <adt/btree.h> |
675 | jermar | 81 | #include <smp/smp.h> |
2015 | jermar | 82 | #include <ddi/ddi.h> |
675 | jermar | 83 | |
1315 | jermar | 84 | /** Global configuration structure. */ |
1757 | jermar | 85 | config_t config; |
675 | jermar | 86 | |
1315 | jermar | 87 | /** Initial user-space tasks */ |
88 | init_t init = { |
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2745 | decky | 89 | .cnt = 0 |
1315 | jermar | 90 | }; |
91 | |||
1894 | jermar | 92 | /** Boot allocations. */ |
93 | ballocs_t ballocs = { |
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94 | .base = NULL, |
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95 | .size = 0 |
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96 | }; |
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97 | |||
1 | jermar | 98 | context_t ctx; |
99 | |||
1757 | jermar | 100 | /* |
523 | jermar | 101 | * These 'hardcoded' variables will be intialized by |
105 | jermar | 102 | * the linker or the low level assembler code with |
103 | * appropriate sizes and addresses. |
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1 | jermar | 104 | */ |
105 | |||
2746 | decky | 106 | /**< Virtual address of where the kernel is loaded. */ |
107 | uintptr_t hardcoded_load_address = 0; |
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108 | /**< Size of the kernel code in bytes. */ |
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109 | size_t hardcoded_ktext_size = 0; |
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110 | /**< Size of the kernel data in bytes. */ |
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111 | size_t hardcoded_kdata_size = 0; |
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112 | /**< Lowest safe stack virtual address. */ |
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113 | uintptr_t stack_safe = 0; |
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114 | |||
1 | jermar | 115 | void main_bsp(void); |
116 | void main_ap(void); |
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117 | |||
118 | /* |
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119 | * These two functions prevent stack from underflowing during the |
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120 | * kernel boot phase when SP is set to the very top of the reserved |
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121 | * space. The stack could get corrupted by a fooled compiler-generated |
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122 | * pop sequence otherwise. |
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123 | */ |
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124 | static void main_bsp_separated_stack(void); |
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625 | palkovsky | 125 | #ifdef CONFIG_SMP |
1 | jermar | 126 | static void main_ap_separated_stack(void); |
625 | palkovsky | 127 | #endif |
1 | jermar | 128 | |
2048 | jermar | 129 | #define CONFIG_STACK_SIZE ((1 << STACK_FRAMES) * STACK_SIZE) |
1138 | jermar | 130 | |
1229 | jermar | 131 | /** Main kernel routine for bootstrap CPU. |
108 | decky | 132 | * |
133 | * Initializes the kernel by bootstrap CPU. |
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675 | jermar | 134 | * This function passes control directly to |
135 | * main_bsp_separated_stack(). |
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108 | decky | 136 | * |
413 | jermar | 137 | * Assuming interrupts_disable(). |
108 | decky | 138 | * |
1 | jermar | 139 | */ |
140 | void main_bsp(void) |
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141 | { |
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3149 | svoboda | 142 | LOG(); |
143 | |||
1 | jermar | 144 | config.cpu_count = 1; |
145 | config.cpu_active = 1; |
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651 | decky | 146 | |
369 | jermar | 147 | config.base = hardcoded_load_address; |
2015 | jermar | 148 | config.kernel_size = ALIGN_UP(hardcoded_ktext_size + |
2087 | jermar | 149 | hardcoded_kdata_size, PAGE_SIZE); |
1833 | decky | 150 | config.stack_size = CONFIG_STACK_SIZE; |
1037 | decky | 151 | |
1833 | decky | 152 | /* Initialy the stack is placed just after the kernel */ |
153 | config.stack_base = config.base + config.kernel_size; |
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154 | |||
155 | /* Avoid placing stack on top of init */ |
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1037 | decky | 156 | count_t i; |
1833 | decky | 157 | for (i = 0; i < init.cnt; i++) { |
2015 | jermar | 158 | if (PA_overlaps(config.stack_base, config.stack_size, |
2087 | jermar | 159 | init.tasks[i].addr, init.tasks[i].size)) |
2015 | jermar | 160 | config.stack_base = ALIGN_UP(init.tasks[i].addr + |
2087 | jermar | 161 | init.tasks[i].size, config.stack_size); |
1833 | decky | 162 | } |
1894 | jermar | 163 | |
164 | /* Avoid placing stack on top of boot allocations. */ |
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165 | if (ballocs.size) { |
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2015 | jermar | 166 | if (PA_overlaps(config.stack_base, config.stack_size, |
2087 | jermar | 167 | ballocs.base, ballocs.size)) |
2015 | jermar | 168 | config.stack_base = ALIGN_UP(ballocs.base + |
2087 | jermar | 169 | ballocs.size, PAGE_SIZE); |
1894 | jermar | 170 | } |
1037 | decky | 171 | |
1833 | decky | 172 | if (config.stack_base < stack_safe) |
173 | config.stack_base = ALIGN_UP(stack_safe, PAGE_SIZE); |
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210 | decky | 174 | |
3149 | svoboda | 175 | version_print(); |
176 | |||
177 | LOG("\nconfig.base=%#" PRIp " config.kernel_size=%" PRIs |
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178 | "\nconfig.stack_base=%#" PRIp " config.stack_size=%" PRIs, |
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179 | config.base, config.kernel_size, |
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180 | config.stack_base, config.stack_size); |
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181 | |||
47 | jermar | 182 | context_save(&ctx); |
2015 | jermar | 183 | context_set(&ctx, FADDR(main_bsp_separated_stack), config.stack_base, |
2087 | jermar | 184 | THREAD_STACK_SIZE); |
47 | jermar | 185 | context_restore(&ctx); |
1 | jermar | 186 | /* not reached */ |
187 | } |
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188 | |||
108 | decky | 189 | |
1229 | jermar | 190 | /** Main kernel routine for bootstrap CPU using new stack. |
108 | decky | 191 | * |
192 | * Second part of main_bsp(). |
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193 | * |
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194 | */ |
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174 | jermar | 195 | void main_bsp_separated_stack(void) |
196 | { |
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3149 | svoboda | 197 | LOG(); |
207 | decky | 198 | |
184 | jermar | 199 | the_initialize(THE); |
1109 | jermar | 200 | |
517 | jermar | 201 | /* |
202 | * kconsole data structures must be initialized very early |
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203 | * because other subsystems will register their respective |
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204 | * commands. |
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205 | */ |
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3149 | svoboda | 206 | LOG_EXEC(kconsole_init()); |
1037 | decky | 207 | |
756 | jermar | 208 | /* |
209 | * Exception handler initialization, before architecture |
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673 | jermar | 210 | * starts adding its own handlers |
578 | palkovsky | 211 | */ |
3149 | svoboda | 212 | LOG_EXEC(exc_init()); |
755 | jermar | 213 | |
214 | /* |
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215 | * Memory management subsystems initialization. |
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3149 | svoboda | 216 | */ |
217 | LOG_EXEC(arch_pre_mm_init()); |
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218 | LOG_EXEC(frame_init()); |
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219 | |||
2015 | jermar | 220 | /* Initialize at least 1 memory segment big enough for slab to work. */ |
3149 | svoboda | 221 | LOG_EXEC(slab_cache_init()); |
222 | LOG_EXEC(btree_init()); |
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223 | LOG_EXEC(as_init()); |
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224 | LOG_EXEC(page_init()); |
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225 | LOG_EXEC(tlb_init()); |
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226 | LOG_EXEC(ddi_init()); |
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227 | LOG_EXEC(tasklet_init()); |
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228 | LOG_EXEC(arch_post_mm_init()); |
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229 | LOG_EXEC(arch_pre_smp_init()); |
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230 | LOG_EXEC(smp_init()); |
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2725 | decky | 231 | |
2015 | jermar | 232 | /* Slab must be initialized after we know the number of processors. */ |
3149 | svoboda | 233 | LOG_EXEC(slab_enable_cpucache()); |
2725 | decky | 234 | |
3149 | svoboda | 235 | printf("Detected %" PRIc " CPU(s), %" PRIu64" MB free memory\n", |
2725 | decky | 236 | config.cpu_count, SIZE2MB(zone_total_size())); |
860 | decky | 237 | |
3149 | svoboda | 238 | LOG_EXEC(cpu_init()); |
628 | decky | 239 | |
3149 | svoboda | 240 | LOG_EXEC(calibrate_delay_loop()); |
241 | LOG_EXEC(clock_counter_init()); |
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242 | LOG_EXEC(timeout_init()); |
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243 | LOG_EXEC(scheduler_init()); |
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244 | LOG_EXEC(task_init()); |
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245 | LOG_EXEC(thread_init()); |
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246 | LOG_EXEC(futex_init()); |
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247 | |||
1826 | decky | 248 | if (init.cnt > 0) { |
3149 | svoboda | 249 | count_t i; |
1826 | decky | 250 | for (i = 0; i < init.cnt; i++) |
3149 | svoboda | 251 | printf("init[%" PRIc "].addr=%#" PRIp |
252 | ", init[%" PRIc "].size=%#" PRIs "\n", |
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253 | i, init.tasks[i].addr, |
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254 | i, init.tasks[i].size); |
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1826 | decky | 255 | } else |
1999 | decky | 256 | printf("No init binaries found\n"); |
955 | palkovsky | 257 | |
3149 | svoboda | 258 | LOG_EXEC(ipc_init()); |
1109 | jermar | 259 | |
1 | jermar | 260 | /* |
261 | * Create kernel task. |
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262 | */ |
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3149 | svoboda | 263 | task_t *kernel = task_create(AS_KERNEL, "kernel"); |
264 | if (!kernel) |
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265 | panic("Can't create kernel task\n"); |
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860 | decky | 266 | |
1 | jermar | 267 | /* |
268 | * Create the first thread. |
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269 | */ |
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3149 | svoboda | 270 | thread_t *kinit_thread = thread_create(kinit, NULL, kernel, 0, "kinit", true); |
271 | if (!kinit_thread) |
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272 | panic("Can't create kinit thread\n"); |
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273 | LOG_EXEC(thread_ready(kinit_thread)); |
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860 | decky | 274 | |
1 | jermar | 275 | /* |
276 | * This call to scheduler() will return to kinit, |
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277 | * starting the thread of kernel threads. |
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278 | */ |
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279 | scheduler(); |
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280 | /* not reached */ |
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281 | } |
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282 | |||
108 | decky | 283 | |
458 | decky | 284 | #ifdef CONFIG_SMP |
1229 | jermar | 285 | /** Main kernel routine for application CPUs. |
108 | decky | 286 | * |
287 | * Executed by application processors, temporary stack |
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1901 | jermar | 288 | * is at ctx.sp which was set during BSP boot. |
675 | jermar | 289 | * This function passes control directly to |
290 | * main_ap_separated_stack(). |
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108 | decky | 291 | * |
413 | jermar | 292 | * Assuming interrupts_disable()'d. |
108 | decky | 293 | * |
1 | jermar | 294 | */ |
295 | void main_ap(void) |
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296 | { |
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297 | /* |
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298 | * Incrementing the active CPU counter will guarantee that the |
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1901 | jermar | 299 | * *_init() functions can find out that they need to |
300 | * do initialization for AP only. |
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1 | jermar | 301 | */ |
302 | config.cpu_active++; |
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303 | |||
192 | jermar | 304 | /* |
305 | * The THE structure is well defined because ctx.sp is used as stack. |
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306 | */ |
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307 | the_initialize(THE); |
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298 | decky | 308 | |
26 | jermar | 309 | arch_pre_mm_init(); |
1 | jermar | 310 | frame_init(); |
311 | page_init(); |
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389 | jermar | 312 | tlb_init(); |
26 | jermar | 313 | arch_post_mm_init(); |
298 | decky | 314 | |
1 | jermar | 315 | cpu_init(); |
316 | calibrate_delay_loop(); |
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1901 | jermar | 317 | arch_post_cpu_init(); |
1 | jermar | 318 | |
192 | jermar | 319 | the_copy(THE, (the_t *) CPU->stack); |
1 | jermar | 320 | |
321 | /* |
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322 | * If we woke kmp up before we left the kernel stack, we could |
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323 | * collide with another CPU coming up. To prevent this, we |
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324 | * switch to this cpu's private stack prior to waking kmp up. |
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325 | */ |
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2015 | jermar | 326 | context_set(&CPU->saved_context, FADDR(main_ap_separated_stack), |
2087 | jermar | 327 | (uintptr_t) CPU->stack, CPU_STACK_SIZE); |
47 | jermar | 328 | context_restore(&CPU->saved_context); |
1 | jermar | 329 | /* not reached */ |
330 | } |
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331 | |||
108 | decky | 332 | |
1229 | jermar | 333 | /** Main kernel routine for application CPUs using new stack. |
108 | decky | 334 | * |
335 | * Second part of main_ap(). |
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336 | * |
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337 | */ |
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1 | jermar | 338 | void main_ap_separated_stack(void) |
339 | { |
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340 | /* |
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341 | * Configure timeouts for this cpu. |
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342 | */ |
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343 | timeout_init(); |
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344 | |||
345 | waitq_wakeup(&ap_completion_wq, WAKEUP_FIRST); |
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346 | scheduler(); |
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347 | /* not reached */ |
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348 | } |
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458 | decky | 349 | #endif /* CONFIG_SMP */ |
1702 | cejka | 350 | |
1729 | decky | 351 | /** @} |
1702 | cejka | 352 | */ |