process.c 16 KB

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  1. #include "process.h"
  2. #include "../exception/gate.h"
  3. #include "../common/printk.h"
  4. #include "../common/kprint.h"
  5. #include "../syscall/syscall.h"
  6. #include "../syscall/syscall_num.h"
  7. #include <mm/slab.h>
  8. #include <sched/sched.h>
  9. #include <filesystem/fat32/fat32.h>
  10. extern void system_call(void);
  11. extern void kernel_thread_func(void);
  12. ul _stack_start; // initial proc的栈基地址(虚拟地址)
  13. struct mm_struct initial_mm = {0};
  14. struct thread_struct initial_thread =
  15. {
  16. .rbp = (ul)(initial_proc_union.stack + STACK_SIZE / sizeof(ul)),
  17. .rsp = (ul)(initial_proc_union.stack + STACK_SIZE / sizeof(ul)),
  18. .fs = KERNEL_DS,
  19. .gs = KERNEL_DS,
  20. .cr2 = 0,
  21. .trap_num = 0,
  22. .err_code = 0};
  23. // 初始化 初始进程的union ,并将其链接到.data.init_proc段内
  24. union proc_union initial_proc_union __attribute__((__section__(".data.init_proc_union"))) = {INITIAL_PROC(initial_proc_union.pcb)};
  25. struct process_control_block *initial_proc[MAX_CPU_NUM] = {&initial_proc_union.pcb, 0};
  26. // 为每个核心初始化初始进程的tss
  27. struct tss_struct initial_tss[MAX_CPU_NUM] = {[0 ... MAX_CPU_NUM - 1] = INITIAL_TSS};
  28. /**
  29. * @brief 切换进程
  30. *
  31. * @param prev 上一个进程的pcb
  32. * @param next 将要切换到的进程的pcb
  33. * 由于程序在进入内核的时候已经保存了寄存器,因此这里不需要保存寄存器。
  34. * 这里切换fs和gs寄存器
  35. */
  36. void __switch_to(struct process_control_block *prev, struct process_control_block *next)
  37. {
  38. initial_tss[proc_current_cpu_id].rsp0 = next->thread->rbp;
  39. // kdebug("next_rsp = %#018lx ", next->thread->rsp);
  40. // set_tss64((uint *)phys_2_virt(TSS64_Table), initial_tss[0].rsp0, initial_tss[0].rsp1, initial_tss[0].rsp2, initial_tss[0].ist1,
  41. // initial_tss[0].ist2, initial_tss[0].ist3, initial_tss[0].ist4, initial_tss[0].ist5, initial_tss[0].ist6, initial_tss[0].ist7);
  42. __asm__ __volatile__("movq %%fs, %0 \n\t"
  43. : "=a"(prev->thread->fs));
  44. __asm__ __volatile__("movq %%gs, %0 \n\t"
  45. : "=a"(prev->thread->gs));
  46. __asm__ __volatile__("movq %0, %%fs \n\t" ::"a"(next->thread->fs));
  47. __asm__ __volatile__("movq %0, %%gs \n\t" ::"a"(next->thread->gs));
  48. // wrmsr(0x175, next->thread->rbp);
  49. }
  50. /**
  51. * @brief 这是一个用户态的程序
  52. *
  53. */
  54. void user_level_function()
  55. {
  56. // kinfo("Program (user_level_function) is runing...");
  57. // kinfo("Try to enter syscall id 15...");
  58. // enter_syscall(15, 0, 0, 0, 0, 0, 0, 0, 0);
  59. // enter_syscall(SYS_PRINTF, (ul) "test_sys_printf\n", 0, 0, 0, 0, 0, 0, 0);
  60. // while(1);
  61. long ret = 0;
  62. // printk_color(RED,BLACK,"user_level_function task is running\n");
  63. /*
  64. // 测试sys put string
  65. char string[] = "User level process.\n";
  66. long err_code = 1;
  67. ul addr = (ul)string;
  68. __asm__ __volatile__(
  69. "movq %2, %%r8 \n\t"
  70. "int $0x80 \n\t"
  71. : "=a"(err_code)
  72. : "a"(SYS_PUT_STRING), "m"(addr)
  73. : "memory", "r8");
  74. */
  75. while (1)
  76. {
  77. // 测试sys_open
  78. char string[] = "333.txt";
  79. long err_code = 1;
  80. int zero = 0;
  81. uint64_t addr = (ul)string;
  82. __asm__ __volatile__(
  83. "movq %2, %%r8 \n\t"
  84. "movq %3, %%r9 \n\t"
  85. "movq %4, %%r10 \n\t"
  86. "movq %5, %%r11 \n\t"
  87. "movq %6, %%r12 \n\t"
  88. "movq %7, %%r13 \n\t"
  89. "movq %8, %%r14 \n\t"
  90. "movq %9, %%r15 \n\t"
  91. "int $0x80 \n\t"
  92. : "=a"(err_code)
  93. : "a"(SYS_OPEN), "m"(addr), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero)
  94. : "memory", "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15", "rcx", "rdx");
  95. int fd_num = err_code;
  96. int count = 128;
  97. // while (count)
  98. //{
  99. uchar buf[128] = {0};
  100. // Test sys_read
  101. addr = (uint64_t)&buf;
  102. __asm__ __volatile__(
  103. "movq %2, %%r8 \n\t"
  104. "movq %3, %%r9 \n\t"
  105. "movq %4, %%r10 \n\t"
  106. "movq %5, %%r11 \n\t"
  107. "movq %6, %%r12 \n\t"
  108. "movq %7, %%r13 \n\t"
  109. "movq %8, %%r14 \n\t"
  110. "movq %9, %%r15 \n\t"
  111. "int $0x80 \n\t"
  112. : "=a"(err_code)
  113. : "a"(SYS_READ), "m"(fd_num), "m"(addr), "m"(count), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero)
  114. : "memory", "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15", "rcx", "rdx");
  115. count = err_code;
  116. // 将读取到的数据打印出来
  117. addr = (ul)buf;
  118. __asm__ __volatile__(
  119. "movq %2, %%r8 \n\t"
  120. "int $0x80 \n\t"
  121. : "=a"(err_code)
  122. : "a"(SYS_PUT_STRING), "m"(addr)
  123. : "memory", "r8");
  124. // SYS_WRITE
  125. char test1[] = "GGGGHHHHHHHHh112343";
  126. addr = (uint64_t)&test1;
  127. count = 19;
  128. __asm__ __volatile__(
  129. "movq %2, %%r8 \n\t"
  130. "movq %3, %%r9 \n\t"
  131. "movq %4, %%r10 \n\t"
  132. "movq %5, %%r11 \n\t"
  133. "movq %6, %%r12 \n\t"
  134. "movq %7, %%r13 \n\t"
  135. "movq %8, %%r14 \n\t"
  136. "movq %9, %%r15 \n\t"
  137. "int $0x80 \n\t"
  138. : "=a"(err_code)
  139. : "a"(SYS_WRITE), "m"(fd_num), "m"(addr), "m"(count), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero)
  140. : "memory", "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15", "rcx", "rdx");
  141. // Test sys_close
  142. __asm__ __volatile__(
  143. "movq %2, %%r8 \n\t"
  144. "movq %3, %%r9 \n\t"
  145. "movq %4, %%r10 \n\t"
  146. "movq %5, %%r11 \n\t"
  147. "movq %6, %%r12 \n\t"
  148. "movq %7, %%r13 \n\t"
  149. "movq %8, %%r14 \n\t"
  150. "movq %9, %%r15 \n\t"
  151. "int $0x80 \n\t"
  152. : "=a"(err_code)
  153. : "a"(SYS_CLOSE), "m"(fd_num), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero)
  154. : "memory", "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15", "rcx", "rdx");
  155. addr = (ul)string;
  156. __asm__ __volatile__(
  157. "movq %2, %%r8 \n\t"
  158. "movq %3, %%r9 \n\t"
  159. "movq %4, %%r10 \n\t"
  160. "movq %5, %%r11 \n\t"
  161. "movq %6, %%r12 \n\t"
  162. "movq %7, %%r13 \n\t"
  163. "movq %8, %%r14 \n\t"
  164. "movq %9, %%r15 \n\t"
  165. "int $0x80 \n\t"
  166. : "=a"(err_code)
  167. : "a"(SYS_OPEN), "m"(addr), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero)
  168. : "memory", "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15", "rcx", "rdx");
  169. fd_num = err_code;
  170. count = 128;
  171. // Test sys_read
  172. addr = (uint64_t)&buf;
  173. __asm__ __volatile__(
  174. "movq %2, %%r8 \n\t"
  175. "movq %3, %%r9 \n\t"
  176. "movq %4, %%r10 \n\t"
  177. "movq %5, %%r11 \n\t"
  178. "movq %6, %%r12 \n\t"
  179. "movq %7, %%r13 \n\t"
  180. "movq %8, %%r14 \n\t"
  181. "movq %9, %%r15 \n\t"
  182. "int $0x80 \n\t"
  183. : "=a"(err_code)
  184. : "a"(SYS_READ), "m"(fd_num), "m"(addr), "m"(count), "m"(zero), "m"(zero), "m"(zero), "m"(zero), "m"(zero)
  185. : "memory", "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15", "rcx", "rdx");
  186. count = err_code;
  187. // 将读取到的数据打印出来
  188. addr = (ul)buf;
  189. __asm__ __volatile__(
  190. "movq %2, %%r8 \n\t"
  191. "int $0x80 \n\t"
  192. : "=a"(err_code)
  193. : "a"(SYS_PUT_STRING), "m"(addr)
  194. : "memory", "r8");
  195. // Test Sys
  196. //}
  197. while (1)
  198. pause();
  199. }
  200. while (1)
  201. pause();
  202. }
  203. /**
  204. * @brief 使当前进程去执行新的代码
  205. *
  206. * @param regs 当前进程的寄存器
  207. * @return ul 错误码
  208. */
  209. ul do_execve(struct pt_regs *regs)
  210. {
  211. // 选择这两个寄存器是对应了sysexit指令的需要
  212. regs->rip = 0x800000; // rip 应用层程序的入口地址 这里的地址选择没有特殊要求,只要是未使用的内存区域即可。
  213. regs->rsp = 0xa00000; // rsp 应用层程序的栈顶地址
  214. regs->cs = USER_CS | 3;
  215. regs->ds = USER_DS | 3;
  216. regs->ss = USER_DS | 0x3;
  217. regs->rflags = 0x200246;
  218. regs->rax = 1;
  219. regs->es = 0;
  220. // kdebug("do_execve is running...");
  221. // 映射起始页面
  222. // mm_map_proc_page_table(get_CR3(), true, 0x800000, alloc_pages(ZONE_NORMAL, 1, PAGE_PGT_MAPPED)->addr_phys, PAGE_2M_SIZE, PAGE_USER_PAGE, true);
  223. uint64_t addr = 0x800000UL;
  224. /*
  225. unsigned long *tmp = phys_2_virt((unsigned long *)((unsigned long)get_CR3() & (~0xfffUL)) + ((addr >> PAGE_GDT_SHIFT) & 0x1ff));
  226. unsigned long *virtual = kmalloc(PAGE_4K_SIZE, 0);
  227. set_pml4t(tmp, mk_pml4t(virt_2_phys(virtual), PAGE_USER_PGT));
  228. tmp = phys_2_virt((unsigned long *)(*tmp & (~0xfffUL)) + ((addr >> PAGE_1G_SHIFT) & 0x1ff));
  229. virtual = kmalloc(PAGE_4K_SIZE, 0);
  230. set_pdpt(tmp, mk_pdpt(virt_2_phys(virtual), PAGE_USER_DIR));
  231. tmp = phys_2_virt((unsigned long *)(*tmp & (~0xfffUL)) + ((addr >> PAGE_2M_SHIFT) & 0x1ff));
  232. struct Page *p = alloc_pages(ZONE_NORMAL, 1, PAGE_PGT_MAPPED);
  233. set_pdt(tmp, mk_pdt(p->addr_phys, PAGE_USER_PAGE));
  234. flush_tlb();
  235. */
  236. mm_map_phys_addr_user(addr, alloc_pages(ZONE_NORMAL, 1, PAGE_PGT_MAPPED)->addr_phys, PAGE_2M_SIZE, PAGE_USER_PAGE);
  237. if (!(current_pcb->flags & PF_KTHREAD))
  238. current_pcb->addr_limit = USER_MAX_LINEAR_ADDR;
  239. // 将程序代码拷贝到对应的内存中
  240. memcpy((void *)0x800000, user_level_function, 1024);
  241. // kdebug("program copied!");
  242. return 0;
  243. }
  244. /**
  245. * @brief 内核init进程
  246. *
  247. * @param arg
  248. * @return ul 参数
  249. */
  250. ul initial_kernel_thread(ul arg)
  251. {
  252. // kinfo("initial proc running...\targ:%#018lx", arg);
  253. fat32_init();
  254. struct pt_regs *regs;
  255. current_pcb->thread->rip = (ul)ret_from_system_call;
  256. current_pcb->thread->rsp = (ul)current_pcb + STACK_SIZE - sizeof(struct pt_regs);
  257. // current_pcb->mm->pgd = kmalloc(PAGE_4K_SIZE, 0);
  258. // memset((void*)current_pcb->mm->pgd, 0, PAGE_4K_SIZE);
  259. regs = (struct pt_regs *)current_pcb->thread->rsp;
  260. // kdebug("current_pcb->thread->rsp=%#018lx", current_pcb->thread->rsp);
  261. current_pcb->flags = 0;
  262. // 将返回用户层的代码压入堆栈,向rdx传入regs的地址,然后jmp到do_execve这个系统调用api的处理函数 这里的设计思路和switch_proc类似
  263. __asm__ __volatile__("movq %1, %%rsp \n\t"
  264. "pushq %2 \n\t"
  265. "jmp do_execve \n\t" ::"D"(current_pcb->thread->rsp),
  266. "m"(current_pcb->thread->rsp), "m"(current_pcb->thread->rip)
  267. : "memory");
  268. return 1;
  269. }
  270. /**
  271. * @brief 进程退出时执行的函数
  272. *
  273. * @param code 返回码
  274. * @return ul
  275. */
  276. ul process_thread_do_exit(ul code)
  277. {
  278. kinfo("thread_exiting..., code is %#018lx.", code);
  279. while (1)
  280. ;
  281. }
  282. /**
  283. * @brief 初始化内核进程
  284. *
  285. * @param fn 目标程序的地址
  286. * @param arg 向目标程序传入的参数
  287. * @param flags
  288. * @return int
  289. */
  290. int kernel_thread(unsigned long (*fn)(unsigned long), unsigned long arg, unsigned long flags)
  291. {
  292. struct pt_regs regs;
  293. memset(&regs, 0, sizeof(regs));
  294. // 在rbx寄存器中保存进程的入口地址
  295. regs.rbx = (ul)fn;
  296. // 在rdx寄存器中保存传入的参数
  297. regs.rdx = (ul)arg;
  298. regs.ds = KERNEL_DS;
  299. regs.es = KERNEL_DS;
  300. regs.cs = KERNEL_CS;
  301. regs.ss = KERNEL_DS;
  302. // 置位中断使能标志位
  303. regs.rflags = (1 << 9);
  304. // rip寄存器指向内核线程的引导程序
  305. regs.rip = (ul)kernel_thread_func;
  306. // kdebug("kernel_thread_func=%#018lx", kernel_thread_func);
  307. // kdebug("&kernel_thread_func=%#018lx", &kernel_thread_func);
  308. // kdebug("1111\tregs.rip = %#018lx", regs.rip);
  309. return do_fork(&regs, flags, 0, 0);
  310. }
  311. /**
  312. * @brief 初始化进程模块
  313. * ☆前置条件:已完成系统调用模块的初始化
  314. */
  315. void process_init()
  316. {
  317. kinfo("Initializing process...");
  318. initial_mm.pgd = (pml4t_t *)global_CR3;
  319. initial_mm.code_addr_start = memory_management_struct.kernel_code_start;
  320. initial_mm.code_addr_end = memory_management_struct.kernel_code_end;
  321. initial_mm.data_addr_start = (ul)&_data;
  322. initial_mm.data_addr_end = memory_management_struct.kernel_data_end;
  323. initial_mm.rodata_addr_start = (ul)&_rodata;
  324. initial_mm.rodata_addr_end = (ul)&_erodata;
  325. initial_mm.brk_start = 0;
  326. initial_mm.brk_end = memory_management_struct.kernel_end;
  327. initial_mm.stack_start = _stack_start;
  328. // 初始化进程和tss
  329. // set_tss64((uint *)phys_2_virt(TSS64_Table), initial_thread.rbp, initial_tss[0].rsp1, initial_tss[0].rsp2, initial_tss[0].ist1, initial_tss[0].ist2, initial_tss[0].ist3, initial_tss[0].ist4, initial_tss[0].ist5, initial_tss[0].ist6, initial_tss[0].ist7);
  330. initial_tss[proc_current_cpu_id].rsp0 = initial_thread.rbp;
  331. /*
  332. kdebug("initial_thread.rbp=%#018lx", initial_thread.rbp);
  333. kdebug("initial_tss[0].rsp1=%#018lx", initial_tss[0].rsp1);
  334. kdebug("initial_tss[0].ist1=%#018lx", initial_tss[0].ist1);
  335. */
  336. // 初始化进程的循环链表
  337. list_init(&initial_proc_union.pcb.list);
  338. kernel_thread(initial_kernel_thread, 10, CLONE_FS | CLONE_FILES | CLONE_SIGNAL); // 初始化内核进程
  339. initial_proc_union.pcb.state = PROC_RUNNING;
  340. initial_proc_union.pcb.preempt_count = 0;
  341. // 获取新的进程的pcb
  342. // struct process_control_block *p = container_of(list_next(&current_pcb->list), struct process_control_block, list);
  343. // kdebug("Ready to switch...");
  344. // 切换到新的内核线程
  345. // switch_proc(current_pcb, p);
  346. }
  347. /**
  348. * @brief fork当前进程
  349. *
  350. * @param regs 新的寄存器值
  351. * @param clone_flags 克隆标志
  352. * @param stack_start 堆栈开始地址
  353. * @param stack_size 堆栈大小
  354. * @return unsigned long
  355. */
  356. unsigned long do_fork(struct pt_regs *regs, unsigned long clone_flags, unsigned long stack_start, unsigned long stack_size)
  357. {
  358. struct process_control_block *tsk = NULL;
  359. // kdebug("222\tregs.rip = %#018lx", regs->rip);
  360. // 获取一个物理页并在这个物理页内初始化pcb
  361. struct Page *pp = alloc_pages(ZONE_NORMAL, 1, PAGE_PGT_MAPPED | PAGE_KERNEL);
  362. tsk = (struct process_control_block *)phys_2_virt(pp->addr_phys);
  363. memset(tsk, 0, sizeof(struct process_control_block));
  364. // 将当前进程的pcb复制到新的pcb内
  365. *tsk = *current_pcb;
  366. // kdebug("current_pcb->flags=%#010lx", current_pcb->flags);
  367. // 将进程加入循环链表
  368. list_init(&tsk->list);
  369. // list_add(&initial_proc_union.pcb.list, &tsk->list);
  370. tsk->priority = 2;
  371. tsk->preempt_count = 0;
  372. ++(tsk->pid);
  373. tsk->cpu_id = proc_current_cpu_id;
  374. tsk->state = PROC_UNINTERRUPTIBLE;
  375. list_init(&tsk->list);
  376. list_add(&initial_proc_union.pcb.list, &tsk->list);
  377. // 将线程结构体放置在pcb的后面
  378. struct thread_struct *thd = (struct thread_struct *)(tsk + 1);
  379. memset(thd, 0, sizeof(struct thread_struct));
  380. tsk->thread = thd;
  381. // kdebug("333\tregs.rip = %#018lx", regs->rip);
  382. // 将寄存器信息存储到进程的内核栈空间的顶部
  383. memcpy((void *)((ul)tsk + STACK_SIZE - sizeof(struct pt_regs)), regs, sizeof(struct pt_regs));
  384. // kdebug("regs.rip = %#018lx", regs->rip);
  385. // 设置进程的内核栈
  386. thd->rbp = (ul)tsk + STACK_SIZE;
  387. thd->rip = regs->rip;
  388. thd->rsp = (ul)tsk + STACK_SIZE - sizeof(struct pt_regs);
  389. thd->fs = KERNEL_DS;
  390. thd->gs = KERNEL_DS;
  391. // kdebug("do_fork() thd->rsp=%#018lx", thd->rsp);
  392. // 若进程不是内核层的进程,则跳转到ret from system call
  393. if (!(tsk->flags & PF_KTHREAD))
  394. thd->rip = regs->rip = (ul)ret_from_system_call;
  395. else
  396. kdebug("is kernel proc.");
  397. tsk->state = PROC_RUNNING;
  398. sched_cfs_enqueue(tsk);
  399. return 0;
  400. }