kgdb.c 7.6 KB

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  1. #include <common.h>
  2. #include <command.h>
  3. #include <kgdb.h>
  4. #include <asm/signal.h>
  5. #include <asm/processor.h>
  6. #define PC_REGNUM 64
  7. #define SP_REGNUM 1
  8. void breakinst(void);
  9. int
  10. kgdb_setjmp(long *buf)
  11. {
  12. unsigned long temp;
  13. asm volatile("mflr %0; stw %0,0(%1);"
  14. "stw %%r1,4(%1); stw %%r2,8(%1);"
  15. "mfcr %0; stw %0,12(%1);"
  16. "stmw %%r13,16(%1)"
  17. : "=&r"(temp) : "r" (buf));
  18. /* XXX should save fp regs as well */
  19. return 0;
  20. }
  21. void
  22. kgdb_longjmp(long *buf, int val)
  23. {
  24. unsigned long temp;
  25. if (val == 0)
  26. val = 1;
  27. asm volatile("lmw %%r13,16(%1);"
  28. "lwz %0,12(%1); mtcrf 0x38,%0;"
  29. "lwz %0,0(%1); lwz %%r1,4(%1); lwz %%r2,8(%1);"
  30. "mtlr %0; mr %%r3,%2"
  31. : "=&r"(temp) : "r" (buf), "r" (val));
  32. }
  33. static inline unsigned long
  34. get_msr(void)
  35. {
  36. unsigned long msr;
  37. asm volatile("mfmsr %0" : "=r" (msr):);
  38. return msr;
  39. }
  40. static inline void
  41. set_msr(unsigned long msr)
  42. {
  43. asm volatile("mtmsr %0" : : "r" (msr));
  44. }
  45. /* Convert the SPARC hardware trap type code to a unix signal number. */
  46. /*
  47. * This table contains the mapping between PowerPC hardware trap types, and
  48. * signals, which are primarily what GDB understands.
  49. */
  50. static struct hard_trap_info
  51. {
  52. unsigned int tt; /* Trap type code for powerpc */
  53. unsigned char signo; /* Signal that we map this trap into */
  54. } hard_trap_info[] = {
  55. { 0x200, SIGSEGV }, /* machine check */
  56. { 0x300, SIGSEGV }, /* address error (store) */
  57. { 0x400, SIGBUS }, /* instruction bus error */
  58. { 0x500, SIGINT }, /* interrupt */
  59. { 0x600, SIGBUS }, /* alingment */
  60. { 0x700, SIGTRAP }, /* breakpoint trap */
  61. { 0x800, SIGFPE }, /* fpu unavail */
  62. { 0x900, SIGALRM }, /* decrementer */
  63. { 0xa00, SIGILL }, /* reserved */
  64. { 0xb00, SIGILL }, /* reserved */
  65. { 0xc00, SIGCHLD }, /* syscall */
  66. { 0xd00, SIGTRAP }, /* single-step/watch */
  67. { 0xe00, SIGFPE }, /* fp assist */
  68. { 0, 0} /* Must be last */
  69. };
  70. static int
  71. computeSignal(unsigned int tt)
  72. {
  73. struct hard_trap_info *ht;
  74. for (ht = hard_trap_info; ht->tt && ht->signo; ht++)
  75. if (ht->tt == tt)
  76. return ht->signo;
  77. return SIGHUP; /* default for things we don't know about */
  78. }
  79. void
  80. kgdb_enter(struct pt_regs *regs, kgdb_data *kdp)
  81. {
  82. unsigned long msr;
  83. kdp->private[0] = msr = get_msr();
  84. set_msr(msr & ~MSR_EE); /* disable interrupts */
  85. if (regs->nip == (unsigned long)breakinst) {
  86. /* Skip over breakpoint trap insn */
  87. regs->nip += 4;
  88. }
  89. regs->msr &= ~MSR_SE;
  90. /* reply to host that an exception has occurred */
  91. kdp->sigval = computeSignal(regs->trap);
  92. kdp->nregs = 2;
  93. kdp->regs[0].num = PC_REGNUM;
  94. kdp->regs[0].val = regs->nip;
  95. kdp->regs[1].num = SP_REGNUM;
  96. kdp->regs[1].val = regs->gpr[SP_REGNUM];
  97. }
  98. void
  99. kgdb_exit(struct pt_regs *regs, kgdb_data *kdp)
  100. {
  101. unsigned long msr = kdp->private[0];
  102. if (kdp->extype & KGDBEXIT_WITHADDR)
  103. regs->nip = kdp->exaddr;
  104. switch (kdp->extype & KGDBEXIT_TYPEMASK) {
  105. case KGDBEXIT_KILL:
  106. case KGDBEXIT_CONTINUE:
  107. set_msr(msr);
  108. break;
  109. case KGDBEXIT_SINGLE:
  110. regs->msr |= MSR_SE;
  111. #if 0
  112. set_msr(msr | MSR_SE);
  113. #endif
  114. break;
  115. }
  116. }
  117. int
  118. kgdb_trap(struct pt_regs *regs)
  119. {
  120. return (regs->trap);
  121. }
  122. /* return the value of the CPU registers.
  123. * some of them are non-PowerPC names :(
  124. * they are stored in gdb like:
  125. * struct {
  126. * u32 gpr[32];
  127. * f64 fpr[32];
  128. * u32 pc, ps, cnd, lr; (ps=msr)
  129. * u32 cnt, xer, mq;
  130. * }
  131. */
  132. #define SPACE_REQUIRED ((32*4)+(32*8)+(6*4))
  133. #ifdef CONFIG_MPC8260
  134. /* store floating double indexed */
  135. #define STFDI(n,p) __asm__ __volatile__ ("stfd " #n ",%0" : "=o"(p[2*n]))
  136. /* store floating double multiple */
  137. #define STFDM(p) { STFDI( 0,p); STFDI( 1,p); STFDI( 2,p); STFDI( 3,p); \
  138. STFDI( 4,p); STFDI( 5,p); STFDI( 6,p); STFDI( 7,p); \
  139. STFDI( 8,p); STFDI( 9,p); STFDI(10,p); STFDI(11,p); \
  140. STFDI(12,p); STFDI(13,p); STFDI(14,p); STFDI(15,p); \
  141. STFDI(16,p); STFDI(17,p); STFDI(18,p); STFDI(19,p); \
  142. STFDI(20,p); STFDI(21,p); STFDI(22,p); STFDI(23,p); \
  143. STFDI(24,p); STFDI(25,p); STFDI(26,p); STFDI(27,p); \
  144. STFDI(28,p); STFDI(29,p); STFDI(30,p); STFDI(31,p); }
  145. #endif
  146. int
  147. kgdb_getregs(struct pt_regs *regs, char *buf, int max)
  148. {
  149. int i;
  150. unsigned long *ptr = (unsigned long *)buf;
  151. if (max < SPACE_REQUIRED)
  152. kgdb_error(KGDBERR_NOSPACE);
  153. if ((unsigned long)ptr & 3)
  154. kgdb_error(KGDBERR_ALIGNFAULT);
  155. /* General Purpose Regs */
  156. for (i = 0; i < 32; i++)
  157. *ptr++ = regs->gpr[i];
  158. /* Floating Point Regs */
  159. #ifdef CONFIG_MPC8260
  160. STFDM(ptr);
  161. ptr += 32*2;
  162. #else
  163. for (i = 0; i < 32; i++) {
  164. *ptr++ = 0;
  165. *ptr++ = 0;
  166. }
  167. #endif
  168. /* pc, msr, cr, lr, ctr, xer, (mq is unused) */
  169. *ptr++ = regs->nip;
  170. *ptr++ = regs->msr;
  171. *ptr++ = regs->ccr;
  172. *ptr++ = regs->link;
  173. *ptr++ = regs->ctr;
  174. *ptr++ = regs->xer;
  175. return (SPACE_REQUIRED);
  176. }
  177. /* set the value of the CPU registers */
  178. #ifdef CONFIG_MPC8260
  179. /* load floating double */
  180. #define LFD(n,v) __asm__ __volatile__ ("lfd " #n ",%0" :: "o"(v))
  181. /* load floating double indexed */
  182. #define LFDI(n,p) __asm__ __volatile__ ("lfd " #n ",%0" :: "o"((p)[2*n]))
  183. /* load floating double multiple */
  184. #define LFDM(p) { LFDI( 0,p); LFDI( 1,p); LFDI( 2,p); LFDI( 3,p); \
  185. LFDI( 4,p); LFDI( 5,p); LFDI( 6,p); LFDI( 7,p); \
  186. LFDI( 8,p); LFDI( 9,p); LFDI(10,p); LFDI(11,p); \
  187. LFDI(12,p); LFDI(13,p); LFDI(14,p); LFDI(15,p); \
  188. LFDI(16,p); LFDI(17,p); LFDI(18,p); LFDI(19,p); \
  189. LFDI(20,p); LFDI(21,p); LFDI(22,p); LFDI(23,p); \
  190. LFDI(24,p); LFDI(25,p); LFDI(26,p); LFDI(27,p); \
  191. LFDI(28,p); LFDI(29,p); LFDI(30,p); LFDI(31,p); }
  192. #endif
  193. void
  194. kgdb_putreg(struct pt_regs *regs, int regno, char *buf, int length)
  195. {
  196. unsigned long *ptr = (unsigned long *)buf;
  197. if (regno < 0 || regno >= 70)
  198. kgdb_error(KGDBERR_BADPARAMS);
  199. else if (regno >= 32 && regno < 64) {
  200. if (length < 8)
  201. kgdb_error(KGDBERR_NOSPACE);
  202. }
  203. else {
  204. if (length < 4)
  205. kgdb_error(KGDBERR_NOSPACE);
  206. }
  207. if ((unsigned long)ptr & 3)
  208. kgdb_error(KGDBERR_ALIGNFAULT);
  209. if (regno >= 0 && regno < 32)
  210. regs->gpr[regno] = *ptr;
  211. else switch (regno) {
  212. #ifdef CONFIG_MPC8260
  213. #define caseF(n) \
  214. case (n) + 32: LFD(n, *ptr); break;
  215. caseF( 0) caseF( 1) caseF( 2) caseF( 3) caseF( 4) caseF( 5) caseF( 6) caseF( 7)
  216. caseF( 8) caseF( 9) caseF(10) caseF(11) caseF(12) caseF(13) caseF(14) caseF(15)
  217. caseF(16) caseF(17) caseF(18) caseF(19) caseF(20) caseF(21) caseF(22) caseF(23)
  218. caseF(24) caseF(25) caseF(26) caseF(27) caseF(28) caseF(29) caseF(30) caseF(31)
  219. #undef caseF
  220. #endif
  221. case 64: regs->nip = *ptr; break;
  222. case 65: regs->msr = *ptr; break;
  223. case 66: regs->ccr = *ptr; break;
  224. case 67: regs->link = *ptr; break;
  225. case 68: regs->ctr = *ptr; break;
  226. case 69: regs->ctr = *ptr; break;
  227. default:
  228. kgdb_error(KGDBERR_BADPARAMS);
  229. }
  230. }
  231. void
  232. kgdb_putregs(struct pt_regs *regs, char *buf, int length)
  233. {
  234. int i;
  235. unsigned long *ptr = (unsigned long *)buf;
  236. if (length < SPACE_REQUIRED)
  237. kgdb_error(KGDBERR_NOSPACE);
  238. if ((unsigned long)ptr & 3)
  239. kgdb_error(KGDBERR_ALIGNFAULT);
  240. /*
  241. * If the stack pointer has moved, you should pray.
  242. * (cause only god can help you).
  243. */
  244. /* General Purpose Regs */
  245. for (i = 0; i < 32; i++)
  246. regs->gpr[i] = *ptr++;
  247. /* Floating Point Regs */
  248. #ifdef CONFIG_MPC8260
  249. LFDM(ptr);
  250. #endif
  251. ptr += 32*2;
  252. /* pc, msr, cr, lr, ctr, xer, (mq is unused) */
  253. regs->nip = *ptr++;
  254. regs->msr = *ptr++;
  255. regs->ccr = *ptr++;
  256. regs->link = *ptr++;
  257. regs->ctr = *ptr++;
  258. regs->xer = *ptr++;
  259. }
  260. /* This function will generate a breakpoint exception. It is used at the
  261. beginning of a program to sync up with a debugger and can be used
  262. otherwise as a quick means to stop program execution and "break" into
  263. the debugger. */
  264. void
  265. kgdb_breakpoint(int argc, char * const argv[])
  266. {
  267. asm(" .globl breakinst\n\
  268. breakinst: .long 0x7d821008\n\
  269. ");
  270. }