smp.c 8.7 KB

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  1. #include "smp.h"
  2. #include <common/kprint.h>
  3. #include <driver/interrupt/apic/apic.h>
  4. #include <exception/gate.h>
  5. #include <common/cpu.h>
  6. #include <mm/slab.h>
  7. #include <process/process.h>
  8. #include <common/spinlock.h>
  9. #include <sched/sched.h>
  10. #include "ipi.h"
  11. void ipi_0xc8_handler(uint64_t irq_num, uint64_t param, struct pt_regs *regs); // 由BSP转发的HPET中断处理函数
  12. static spinlock_t multi_core_starting_lock = {1}; // 多核启动锁
  13. static struct acpi_Processor_Local_APIC_Structure_t *proc_local_apic_structs[MAX_SUPPORTED_PROCESSOR_NUM];
  14. static uint32_t total_processor_num = 0;
  15. int current_starting_cpu = 0;
  16. int num_cpu_started = 1;
  17. void smp_init()
  18. {
  19. spin_init(&multi_core_starting_lock); // 初始化多核启动锁
  20. ul tmp_vaddr[MAX_SUPPORTED_PROCESSOR_NUM] = {0};
  21. apic_get_ics(ACPI_ICS_TYPE_PROCESSOR_LOCAL_APIC, tmp_vaddr, &total_processor_num);
  22. // kdebug("processor num=%d", total_processor_num);
  23. for (int i = 0; i < total_processor_num; ++i)
  24. {
  25. io_mfence();
  26. proc_local_apic_structs[i] = (struct acpi_Processor_Local_APIC_Structure_t *)(tmp_vaddr[i]);
  27. }
  28. //*(uchar *)0x20000 = 0xf4; // 在内存的0x20000处写入HLT指令(AP处理器会执行物理地址0x20000的代码)
  29. // 将引导程序复制到物理地址0x20000处
  30. memcpy((unsigned char *)phys_2_virt(0x20000), _apu_boot_start, (unsigned long)&_apu_boot_end - (unsigned long)&_apu_boot_start);
  31. io_mfence();
  32. // 设置多核IPI中断门
  33. for (int i = 200; i < 210; ++i)
  34. set_intr_gate(i, 0, SMP_interrupt_table[i - 200]);
  35. memset((void *)SMP_IPI_desc, 0, sizeof(irq_desc_t) * SMP_IRQ_NUM);
  36. io_mfence();
  37. // 注册接收bsp处理器的hpet中断转发的处理函数
  38. ipi_regiserIPI(0xc8, NULL, &ipi_0xc8_handler, NULL, NULL, "IPI 0xc8");
  39. io_mfence();
  40. ipi_send_IPI(DEST_PHYSICAL, IDLE, ICR_LEVEL_DE_ASSERT, EDGE_TRIGGER, 0x00, ICR_INIT, ICR_ALL_EXCLUDE_Self, 0x00);
  41. kdebug("total_processor_num=%d", total_processor_num);
  42. kdebug("rflags=%#018lx", get_rflags());
  43. // total_processor_num = 3;
  44. for (int i = 0; i < total_processor_num; ++i) // i从1开始,不初始化bsp
  45. {
  46. io_mfence();
  47. // if (proc_local_apic_structs[i]->ACPI_Processor_UID == 0)
  48. // --total_processor_num;
  49. // io_mfence();
  50. // if (proc_local_apic_structs[i]->local_apic_id > total_processor_num)
  51. // {
  52. // --total_processor_num;
  53. // continue;
  54. // }
  55. // 跳过BSP
  56. kdebug("[core %d] acpi processor UID=%d, APIC ID=%d, flags=%#010lx", i, proc_local_apic_structs[i]->ACPI_Processor_UID, proc_local_apic_structs[i]->local_apic_id, proc_local_apic_structs[i]->flags);
  57. if (proc_local_apic_structs[i]->local_apic_id == 0)
  58. {
  59. --total_processor_num;
  60. continue;
  61. }
  62. if (!((proc_local_apic_structs[i]->flags & 0x1) || (proc_local_apic_structs[i]->flags & 0x2)))
  63. {
  64. --total_processor_num;
  65. kdebug("processor %d cannot be enabled.", proc_local_apic_structs[i]->ACPI_Processor_UID);
  66. continue;
  67. }
  68. // continue;
  69. io_mfence();
  70. spin_lock(&multi_core_starting_lock);
  71. preempt_enable(); // 由于ap处理器的pcb与bsp的不同,因此ap处理器放锁时,bsp的自旋锁持有计数不会发生改变,需要手动恢复preempt count
  72. current_starting_cpu = proc_local_apic_structs[i]->local_apic_id;
  73. io_mfence();
  74. // 为每个AP处理器分配栈空间
  75. cpu_core_info[current_starting_cpu].stack_start = (uint64_t)kmalloc(STACK_SIZE, 0) + STACK_SIZE;
  76. cpu_core_info[current_starting_cpu].ist_stack_start = (uint64_t)(kmalloc(STACK_SIZE, 0)) + STACK_SIZE;
  77. io_mfence();
  78. memset((void *)cpu_core_info[current_starting_cpu].stack_start - STACK_SIZE, 0, STACK_SIZE);
  79. memset((void *)cpu_core_info[current_starting_cpu].ist_stack_start - STACK_SIZE, 0, STACK_SIZE);
  80. io_mfence();
  81. // 设置ap处理器的中断栈及内核栈中的cpu_id
  82. ((struct process_control_block *)(cpu_core_info[current_starting_cpu].stack_start - STACK_SIZE))->cpu_id = proc_local_apic_structs[i]->local_apic_id;
  83. ((struct process_control_block *)(cpu_core_info[current_starting_cpu].ist_stack_start - STACK_SIZE))->cpu_id = proc_local_apic_structs[i]->local_apic_id;
  84. cpu_core_info[current_starting_cpu].tss_vaddr = (uint64_t)&initial_tss[current_starting_cpu];
  85. memset(&initial_tss[current_starting_cpu], 0, sizeof(struct tss_struct));
  86. set_tss_descriptor(10 + (current_starting_cpu * 2), (void *)(cpu_core_info[current_starting_cpu].tss_vaddr));
  87. io_mfence();
  88. set_tss64((uint *)cpu_core_info[current_starting_cpu].tss_vaddr, cpu_core_info[current_starting_cpu].stack_start, cpu_core_info[current_starting_cpu].stack_start, cpu_core_info[current_starting_cpu].stack_start,
  89. cpu_core_info[current_starting_cpu].ist_stack_start, cpu_core_info[current_starting_cpu].ist_stack_start, cpu_core_info[current_starting_cpu].ist_stack_start, cpu_core_info[current_starting_cpu].ist_stack_start, cpu_core_info[current_starting_cpu].ist_stack_start, cpu_core_info[current_starting_cpu].ist_stack_start, cpu_core_info[current_starting_cpu].ist_stack_start);
  90. io_mfence();
  91. kdebug("to send ipi");
  92. // 连续发送两次start-up IPI
  93. ipi_send_IPI(DEST_PHYSICAL, IDLE, ICR_LEVEL_DE_ASSERT, EDGE_TRIGGER, 0x20, ICR_Start_up, ICR_No_Shorthand, proc_local_apic_structs[i]->local_apic_id);
  94. io_mfence();
  95. ipi_send_IPI(DEST_PHYSICAL, IDLE, ICR_LEVEL_DE_ASSERT, EDGE_TRIGGER, 0x20, ICR_Start_up, ICR_No_Shorthand, proc_local_apic_structs[i]->local_apic_id);
  96. kdebug("send ipi ok");
  97. }
  98. io_mfence();
  99. while (num_cpu_started != total_processor_num)
  100. pause();
  101. kinfo("Cleaning page table remapping...\n");
  102. // 由于ap处理器初始化过程需要用到0x00处的地址,因此初始化完毕后才取消内存地址的重映射
  103. uint64_t *global_CR3 = get_CR3();
  104. for (int i = 0; i < 256; ++i)
  105. {
  106. io_mfence();
  107. *(ul *)(phys_2_virt(global_CR3) + i) = 0UL;
  108. }
  109. kdebug("init proc's preempt_count=%ld", current_pcb->preempt_count);
  110. kinfo("Successfully cleaned page table remapping!\n");
  111. }
  112. /**
  113. * @brief AP处理器启动后执行的第一个函数
  114. *
  115. */
  116. void smp_ap_start()
  117. {
  118. // 切换栈基地址
  119. // uint64_t stack_start = (uint64_t)kmalloc(STACK_SIZE, 0) + STACK_SIZE;
  120. __asm__ __volatile__("movq %0, %%rbp \n\t" ::"m"(cpu_core_info[current_starting_cpu].stack_start)
  121. : "memory");
  122. __asm__ __volatile__("movq %0, %%rsp \n\t" ::"m"(cpu_core_info[current_starting_cpu].stack_start)
  123. : "memory");
  124. /*
  125. __asm__ __volatile__("movq %0, %%rbp \n\t" ::"m"(stack_start)
  126. : "memory");
  127. __asm__ __volatile__("movq %0, %%rsp \n\t" ::"m"(stack_start)
  128. : "memory");*/
  129. ksuccess("AP core successfully started!");
  130. io_mfence();
  131. ++num_cpu_started;
  132. kdebug("current cpu = %d", current_starting_cpu);
  133. apic_init_ap_core_local_apic();
  134. // ============ 为ap处理器初始化IDLE进程 =============
  135. memset(current_pcb, 0, sizeof(struct process_control_block));
  136. barrier();
  137. current_pcb->state = PROC_RUNNING;
  138. current_pcb->flags = PF_KTHREAD;
  139. current_pcb->mm = &initial_mm;
  140. list_init(&current_pcb->list);
  141. current_pcb->addr_limit = KERNEL_BASE_LINEAR_ADDR;
  142. current_pcb->priority = 2;
  143. current_pcb->virtual_runtime = 0;
  144. current_pcb->thread = (struct thread_struct *)(current_pcb + 1); // 将线程结构体放置在pcb后方
  145. current_pcb->thread->rbp = _stack_start;
  146. current_pcb->thread->rsp = _stack_start;
  147. current_pcb->thread->fs = KERNEL_DS;
  148. current_pcb->thread->gs = KERNEL_DS;
  149. current_pcb->cpu_id = current_starting_cpu;
  150. initial_proc[proc_current_cpu_id] = current_pcb;
  151. barrier();
  152. load_TR(10 + current_starting_cpu * 2);
  153. current_pcb->preempt_count = 0;
  154. // kdebug("IDT_addr = %#018lx", phys_2_virt(IDT_Table));
  155. io_mfence();
  156. spin_unlock(&multi_core_starting_lock);
  157. preempt_disable(); // 由于ap处理器的pcb与bsp的不同,因此ap处理器放锁时,需要手动恢复preempt count
  158. io_mfence();
  159. sti();
  160. while (1)
  161. hlt();
  162. /*
  163. if (proc_current_cpu_id == 1)
  164. process_init();
  165. */
  166. while (1)
  167. {
  168. printk_color(BLACK, WHITE, "CPU:%d IDLE process.\n", proc_current_cpu_id);
  169. }
  170. while (1) // 这里要循环hlt,原因是当收到中断后,核心会被唤醒,处理完中断之后不会自动hlt
  171. hlt();
  172. }
  173. // 由BSP转发的HPET中断处理函数
  174. void ipi_0xc8_handler(uint64_t irq_num, uint64_t param, struct pt_regs *regs)
  175. {
  176. sched_update_jiffies();
  177. }