trap.c 11 KB

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  1. /*
  2. * Copyright (c) 2006-2021, RT-Thread Development Team
  3. *
  4. * SPDX-License-Identifier: Apache-2.0
  5. *
  6. * Change Logs:
  7. * Date Author Notes
  8. * 2021/1/30 lizirui first version
  9. * 2021/10/20 JasonHu move to trap.c
  10. */
  11. #include <rthw.h>
  12. #include <rtthread.h>
  13. #include <stdint.h>
  14. #include "board.h"
  15. #include "tick.h"
  16. #include <mm_fault.h>
  17. #include "mmu.h"
  18. #include "encoding.h"
  19. #include "stack.h"
  20. #include "sbi.h"
  21. #include "riscv.h"
  22. #include "rt_interrupt.h"
  23. #include "plic.h"
  24. #ifdef RT_USING_SMART
  25. #include <lwp_arch.h>
  26. void rt_hw_backtrace(rt_uint32_t *ffp, rt_ubase_t sepc);
  27. #else
  28. #define rt_hw_backtrace(...) (0)
  29. #endif
  30. #define DBG_TAG "libcpu.trap"
  31. #define DBG_LVL DBG_INFO
  32. #include <rtdbg.h>
  33. void dump_regs(struct rt_hw_stack_frame *regs)
  34. {
  35. rt_kprintf("--------------Dump Registers-----------------\n");
  36. rt_kprintf("Function Registers:\n");
  37. rt_kprintf("\tra(x1) = 0x%p\tuser_sp = 0x%p\n", regs->ra, regs->user_sp_exc_stack);
  38. rt_kprintf("\tgp(x3) = 0x%p\ttp(x4) = 0x%p\n", regs->gp, regs->tp);
  39. rt_kprintf("Temporary Registers:\n");
  40. rt_kprintf("\tt0(x5) = 0x%p\tt1(x6) = 0x%p\n", regs->t0, regs->t1);
  41. rt_kprintf("\tt2(x7) = 0x%p\n", regs->t2);
  42. rt_kprintf("\tt3(x28) = 0x%p\tt4(x29) = 0x%p\n", regs->t3, regs->t4);
  43. rt_kprintf("\tt5(x30) = 0x%p\tt6(x31) = 0x%p\n", regs->t5, regs->t6);
  44. rt_kprintf("Saved Registers:\n");
  45. rt_kprintf("\ts0/fp(x8) = 0x%p\ts1(x9) = 0x%p\n", regs->s0_fp, regs->s1);
  46. rt_kprintf("\ts2(x18) = 0x%p\ts3(x19) = 0x%p\n", regs->s2, regs->s3);
  47. rt_kprintf("\ts4(x20) = 0x%p\ts5(x21) = 0x%p\n", regs->s4, regs->s5);
  48. rt_kprintf("\ts6(x22) = 0x%p\ts7(x23) = 0x%p\n", regs->s6, regs->s7);
  49. rt_kprintf("\ts8(x24) = 0x%p\ts9(x25) = 0x%p\n", regs->s8, regs->s9);
  50. rt_kprintf("\ts10(x26) = 0x%p\ts11(x27) = 0x%p\n", regs->s10, regs->s11);
  51. rt_kprintf("Function Arguments Registers:\n");
  52. rt_kprintf("\ta0(x10) = 0x%p\ta1(x11) = 0x%p\n", regs->a0, regs->a1);
  53. rt_kprintf("\ta2(x12) = 0x%p\ta3(x13) = 0x%p\n", regs->a2, regs->a3);
  54. rt_kprintf("\ta4(x14) = 0x%p\ta5(x15) = 0x%p\n", regs->a4, regs->a5);
  55. rt_kprintf("\ta6(x16) = 0x%p\ta7(x17) = 0x%p\n", regs->a6, regs->a7);
  56. rt_kprintf("sstatus = 0x%p\n", regs->sstatus);
  57. rt_kprintf("\t%s\n", (regs->sstatus & SSTATUS_SIE) ? "Supervisor Interrupt Enabled" : "Supervisor Interrupt Disabled");
  58. rt_kprintf("\t%s\n", (regs->sstatus & SSTATUS_SPIE) ? "Last Time Supervisor Interrupt Enabled" : "Last Time Supervisor Interrupt Disabled");
  59. rt_kprintf("\t%s\n", (regs->sstatus & SSTATUS_SPP) ? "Last Privilege is Supervisor Mode" : "Last Privilege is User Mode");
  60. rt_kprintf("\t%s\n", (regs->sstatus & SSTATUS_SUM) ? "Permit to Access User Page" : "Not Permit to Access User Page");
  61. rt_kprintf("\t%s\n", (regs->sstatus & (1 << 19)) ? "Permit to Read Executable-only Page" : "Not Permit to Read Executable-only Page");
  62. rt_size_t satp_v = read_csr(satp);
  63. rt_kprintf("satp = 0x%p\n", satp_v);
  64. rt_kprintf("\tCurrent Page Table(Physical) = 0x%p\n", __MASKVALUE(satp_v, __MASK(44)) << PAGE_OFFSET_BIT);
  65. rt_kprintf("\tCurrent ASID = 0x%p\n", __MASKVALUE(satp_v >> 44, __MASK(16)) << PAGE_OFFSET_BIT);
  66. const char *mode_str = "Unknown Address Translation/Protection Mode";
  67. switch (__MASKVALUE(satp_v >> 60, __MASK(4)))
  68. {
  69. case 0:
  70. mode_str = "No Address Translation/Protection Mode";
  71. break;
  72. case 8:
  73. mode_str = "Page-based 39-bit Virtual Addressing Mode";
  74. break;
  75. case 9:
  76. mode_str = "Page-based 48-bit Virtual Addressing Mode";
  77. break;
  78. }
  79. rt_kprintf("\tMode = %s\n", mode_str);
  80. rt_kprintf("-----------------Dump OK---------------------\n");
  81. }
  82. static const char *Exception_Name[] =
  83. {
  84. "Instruction Address Misaligned",
  85. "Instruction Access Fault",
  86. "Illegal Instruction",
  87. "Breakpoint",
  88. "Load Address Misaligned",
  89. "Load Access Fault",
  90. "Store/AMO Address Misaligned",
  91. "Store/AMO Access Fault",
  92. "Environment call from U-mode",
  93. "Environment call from S-mode",
  94. "Reserved-10",
  95. "Reserved-11",
  96. "Instruction Page Fault",
  97. "Load Page Fault",
  98. "Reserved-14",
  99. "Store/AMO Page Fault"};
  100. static const char *Interrupt_Name[] =
  101. {
  102. "User Software Interrupt",
  103. "Supervisor Software Interrupt",
  104. "Reversed-2",
  105. "Reversed-3",
  106. "User Timer Interrupt",
  107. "Supervisor Timer Interrupt",
  108. "Reversed-6",
  109. "Reversed-7",
  110. "User External Interrupt",
  111. "Supervisor External Interrupt",
  112. "Reserved-10",
  113. "Reserved-11",
  114. };
  115. #ifndef RT_USING_SMP
  116. static volatile int nested = 0;
  117. #define ENTER_TRAP \
  118. nested += 1
  119. #define EXIT_TRAP \
  120. nested -= 1
  121. #define CHECK_NESTED_PANIC(cause, tval, epc, eframe) \
  122. if (nested != 1) \
  123. handle_nested_trap_panic(cause, tval, epc, eframe)
  124. #endif /* RT_USING_SMP */
  125. static const char *get_exception_msg(int id)
  126. {
  127. const char *msg;
  128. if (id < sizeof(Exception_Name) / sizeof(const char *))
  129. {
  130. msg = Exception_Name[id];
  131. }
  132. else
  133. {
  134. msg = "Unknown Exception";
  135. }
  136. return msg;
  137. }
  138. #ifdef RT_USING_SMART
  139. void handle_user(rt_size_t scause, rt_size_t stval, rt_size_t sepc, struct rt_hw_stack_frame *sp)
  140. {
  141. rt_size_t id = __MASKVALUE(scause, __MASK(63UL));
  142. struct rt_lwp *lwp;
  143. /* user page fault */
  144. enum rt_mm_fault_op fault_op;
  145. enum rt_mm_fault_type fault_type;
  146. switch (id)
  147. {
  148. case EP_LOAD_PAGE_FAULT:
  149. fault_op = MM_FAULT_OP_READ;
  150. fault_type = MM_FAULT_TYPE_PAGE_FAULT;
  151. break;
  152. case EP_LOAD_ACCESS_FAULT:
  153. fault_op = MM_FAULT_OP_READ;
  154. fault_type = MM_FAULT_TYPE_ACCESS_FAULT;
  155. break;
  156. case EP_LOAD_ADDRESS_MISALIGNED:
  157. fault_op = MM_FAULT_OP_READ;
  158. fault_type = MM_FAULT_TYPE_BUS_ERROR;
  159. break;
  160. case EP_STORE_PAGE_FAULT:
  161. fault_op = MM_FAULT_OP_WRITE;
  162. fault_type = MM_FAULT_TYPE_PAGE_FAULT;
  163. break;
  164. case EP_STORE_ACCESS_FAULT:
  165. fault_op = MM_FAULT_OP_WRITE;
  166. fault_type = MM_FAULT_TYPE_ACCESS_FAULT;
  167. break;
  168. case EP_STORE_ADDRESS_MISALIGNED:
  169. fault_op = MM_FAULT_OP_WRITE;
  170. fault_type = MM_FAULT_TYPE_BUS_ERROR;
  171. break;
  172. case EP_INSTRUCTION_PAGE_FAULT:
  173. fault_op = MM_FAULT_OP_EXECUTE;
  174. fault_type = MM_FAULT_TYPE_PAGE_FAULT;
  175. break;
  176. case EP_INSTRUCTION_ACCESS_FAULT:
  177. fault_op = MM_FAULT_OP_EXECUTE;
  178. fault_type = MM_FAULT_TYPE_ACCESS_FAULT;
  179. break;
  180. case EP_INSTRUCTION_ADDRESS_MISALIGNED:
  181. fault_op = MM_FAULT_OP_EXECUTE;
  182. fault_type = MM_FAULT_TYPE_BUS_ERROR;
  183. break;
  184. default:
  185. fault_op = 0;
  186. }
  187. if (fault_op)
  188. {
  189. rt_base_t saved_stat;
  190. lwp = lwp_self();
  191. struct rt_aspace_fault_msg msg = {
  192. .fault_op = fault_op,
  193. .fault_type = fault_type,
  194. .fault_vaddr = (void *)stval,
  195. };
  196. __asm__ volatile ("csrrsi %0, sstatus, 2":"=r"(saved_stat));
  197. if (lwp && rt_aspace_fault_try_fix(lwp->aspace, &msg))
  198. {
  199. __asm__ volatile ("csrw sstatus, %0"::"r"(saved_stat));
  200. return;
  201. }
  202. __asm__ volatile ("csrw sstatus, %0"::"r"(saved_stat));
  203. }
  204. LOG_E("[FATAL ERROR] Exception %ld:%s\n", id, get_exception_msg(id));
  205. LOG_E("scause:0x%p,stval:0x%p,sepc:0x%p\n", scause, stval, sepc);
  206. dump_regs(sp);
  207. rt_hw_backtrace((uint32_t *)sp->s0_fp, sepc);
  208. LOG_E("User Fault, killing thread: %s", rt_thread_self()->parent.name);
  209. EXIT_TRAP;
  210. sys_exit_group(-1);
  211. }
  212. #endif
  213. #ifdef ENABLE_VECTOR
  214. static void vector_enable(struct rt_hw_stack_frame *sp)
  215. {
  216. sp->sstatus |= SSTATUS_VS_INITIAL;
  217. }
  218. /**
  219. * detect V/D support, and do not distinguish V/D instruction
  220. */
  221. static int illegal_inst_recoverable(rt_ubase_t stval, struct rt_hw_stack_frame *sp)
  222. {
  223. // first 7 bits is opcode
  224. int opcode = stval & 0x7f;
  225. int csr = (stval & 0xFFF00000) >> 20;
  226. // ref riscv-v-spec-1.0, [Vector Instruction Formats]
  227. int width = ((stval & 0x7000) >> 12) - 1;
  228. int flag = 0;
  229. switch (opcode)
  230. {
  231. case 0x57: // V
  232. case 0x27: // scalar FLOAT
  233. case 0x07:
  234. case 0x73: // CSR
  235. flag = 1;
  236. break;
  237. }
  238. if (flag)
  239. {
  240. vector_enable(sp);
  241. }
  242. return flag;
  243. }
  244. #endif
  245. static void handle_nested_trap_panic(
  246. rt_size_t cause,
  247. rt_size_t tval,
  248. rt_size_t epc,
  249. struct rt_hw_stack_frame *eframe)
  250. {
  251. LOG_E("\n-------- [SEVER ERROR] --------");
  252. LOG_E("Nested trap detected");
  253. LOG_E("scause:0x%p,stval:0x%p,sepc:0x%p\n", cause, tval, epc);
  254. dump_regs(eframe);
  255. rt_hw_cpu_shutdown();
  256. }
  257. #define IN_USER_SPACE (stval >= USER_VADDR_START && stval < USER_VADDR_TOP)
  258. #define PAGE_FAULT (id == EP_LOAD_PAGE_FAULT || id == EP_STORE_PAGE_FAULT)
  259. /* Trap entry */
  260. void handle_trap(rt_size_t scause, rt_size_t stval, rt_size_t sepc, struct rt_hw_stack_frame *sp)
  261. {
  262. rt_size_t id = __MASKVALUE(scause,__MASK(63UL));
  263. const char *msg;
  264. /* supervisor external interrupt */
  265. if ((SCAUSE_INTERRUPT & scause) && SCAUSE_S_EXTERNAL_INTR == (scause & 0xff))
  266. {
  267. rt_interrupt_enter();
  268. plic_handle_irq();
  269. rt_interrupt_leave();
  270. return;
  271. }
  272. else if ((SCAUSE_INTERRUPT | SCAUSE_S_TIMER_INTR) == scause)
  273. {
  274. /* supervisor timer */
  275. rt_interrupt_enter();
  276. tick_isr();
  277. rt_interrupt_leave();
  278. return;
  279. }
  280. else if (SCAUSE_INTERRUPT & scause)
  281. {
  282. if(id < sizeof(Interrupt_Name) / sizeof(const char *))
  283. {
  284. msg = Interrupt_Name[id];
  285. }
  286. else
  287. {
  288. msg = "Unknown Interrupt";
  289. }
  290. LOG_E("Unhandled Interrupt %ld:%s\n",id,msg);
  291. }
  292. else
  293. {
  294. #ifdef RT_USING_SMART
  295. if (!(sp->sstatus & 0x100) || (PAGE_FAULT && IN_USER_SPACE))
  296. {
  297. handle_user(scause, stval, sepc, sp);
  298. // if handle_user() return here, jump to u mode then
  299. return ;
  300. }
  301. #endif
  302. // handle kernel exception:
  303. rt_kprintf("Unhandled Exception %ld:%s\n", id, get_exception_msg(id));
  304. }
  305. rt_kprintf("scause:0x%p,stval:0x%p,sepc:0x%p\n", scause, stval, sepc);
  306. dump_regs(sp);
  307. rt_kprintf("--------------Thread list--------------\n");
  308. rt_kprintf("current thread: %s\n", rt_thread_self()->parent.name);
  309. extern struct rt_thread *rt_current_thread;
  310. rt_kprintf("--------------Backtrace--------------\n");
  311. rt_hw_backtrace((uint32_t *)sp->s0_fp, sepc);
  312. while (1)
  313. ;
  314. }