tlbex.c 60 KB

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  1. /*
  2. * This file is subject to the terms and conditions of the GNU General Public
  3. * License. See the file "COPYING" in the main directory of this archive
  4. * for more details.
  5. *
  6. * Synthesize TLB refill handlers at runtime.
  7. *
  8. * Copyright (C) 2004, 2005, 2006, 2008 Thiemo Seufer
  9. * Copyright (C) 2005, 2007, 2008, 2009 Maciej W. Rozycki
  10. * Copyright (C) 2006 Ralf Baechle (ralf@linux-mips.org)
  11. * Copyright (C) 2008, 2009 Cavium Networks, Inc.
  12. * Copyright (C) 2011 MIPS Technologies, Inc.
  13. *
  14. * ... and the days got worse and worse and now you see
  15. * I've gone completly out of my mind.
  16. *
  17. * They're coming to take me a away haha
  18. * they're coming to take me a away hoho hihi haha
  19. * to the funny farm where code is beautiful all the time ...
  20. *
  21. * (Condolences to Napoleon XIV)
  22. */
  23. #include <linux/bug.h>
  24. #include <linux/kernel.h>
  25. #include <linux/types.h>
  26. #include <linux/smp.h>
  27. #include <linux/string.h>
  28. #include <linux/cache.h>
  29. #include <asm/cacheflush.h>
  30. #include <asm/cpu-type.h>
  31. #include <asm/pgtable.h>
  32. #include <asm/war.h>
  33. #include <asm/uasm.h>
  34. #include <asm/setup.h>
  35. /*
  36. * TLB load/store/modify handlers.
  37. *
  38. * Only the fastpath gets synthesized at runtime, the slowpath for
  39. * do_page_fault remains normal asm.
  40. */
  41. extern void tlb_do_page_fault_0(void);
  42. extern void tlb_do_page_fault_1(void);
  43. struct work_registers {
  44. int r1;
  45. int r2;
  46. int r3;
  47. };
  48. struct tlb_reg_save {
  49. unsigned long a;
  50. unsigned long b;
  51. } ____cacheline_aligned_in_smp;
  52. static struct tlb_reg_save handler_reg_save[NR_CPUS];
  53. static inline int r45k_bvahwbug(void)
  54. {
  55. /* XXX: We should probe for the presence of this bug, but we don't. */
  56. return 0;
  57. }
  58. static inline int r4k_250MHZhwbug(void)
  59. {
  60. /* XXX: We should probe for the presence of this bug, but we don't. */
  61. return 0;
  62. }
  63. static inline int __maybe_unused bcm1250_m3_war(void)
  64. {
  65. return BCM1250_M3_WAR;
  66. }
  67. static inline int __maybe_unused r10000_llsc_war(void)
  68. {
  69. return R10000_LLSC_WAR;
  70. }
  71. static int use_bbit_insns(void)
  72. {
  73. switch (current_cpu_type()) {
  74. case CPU_CAVIUM_OCTEON:
  75. case CPU_CAVIUM_OCTEON_PLUS:
  76. case CPU_CAVIUM_OCTEON2:
  77. case CPU_CAVIUM_OCTEON3:
  78. return 1;
  79. default:
  80. return 0;
  81. }
  82. }
  83. static int use_lwx_insns(void)
  84. {
  85. switch (current_cpu_type()) {
  86. case CPU_CAVIUM_OCTEON2:
  87. case CPU_CAVIUM_OCTEON3:
  88. return 1;
  89. default:
  90. return 0;
  91. }
  92. }
  93. #if defined(CONFIG_CAVIUM_OCTEON_CVMSEG_SIZE) && \
  94. CONFIG_CAVIUM_OCTEON_CVMSEG_SIZE > 0
  95. static bool scratchpad_available(void)
  96. {
  97. return true;
  98. }
  99. static int scratchpad_offset(int i)
  100. {
  101. /*
  102. * CVMSEG starts at address -32768 and extends for
  103. * CAVIUM_OCTEON_CVMSEG_SIZE 128 byte cache lines.
  104. */
  105. i += 1; /* Kernel use starts at the top and works down. */
  106. return CONFIG_CAVIUM_OCTEON_CVMSEG_SIZE * 128 - (8 * i) - 32768;
  107. }
  108. #else
  109. static bool scratchpad_available(void)
  110. {
  111. return false;
  112. }
  113. static int scratchpad_offset(int i)
  114. {
  115. BUG();
  116. /* Really unreachable, but evidently some GCC want this. */
  117. return 0;
  118. }
  119. #endif
  120. /*
  121. * Found by experiment: At least some revisions of the 4kc throw under
  122. * some circumstances a machine check exception, triggered by invalid
  123. * values in the index register. Delaying the tlbp instruction until
  124. * after the next branch, plus adding an additional nop in front of
  125. * tlbwi/tlbwr avoids the invalid index register values. Nobody knows
  126. * why; it's not an issue caused by the core RTL.
  127. *
  128. */
  129. static int m4kc_tlbp_war(void)
  130. {
  131. return (current_cpu_data.processor_id & 0xffff00) ==
  132. (PRID_COMP_MIPS | PRID_IMP_4KC);
  133. }
  134. /* Handle labels (which must be positive integers). */
  135. enum label_id {
  136. label_second_part = 1,
  137. label_leave,
  138. label_vmalloc,
  139. label_vmalloc_done,
  140. label_tlbw_hazard_0,
  141. label_split = label_tlbw_hazard_0 + 8,
  142. label_tlbl_goaround1,
  143. label_tlbl_goaround2,
  144. label_nopage_tlbl,
  145. label_nopage_tlbs,
  146. label_nopage_tlbm,
  147. label_smp_pgtable_change,
  148. label_r3000_write_probe_fail,
  149. label_large_segbits_fault,
  150. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  151. label_tlb_huge_update,
  152. #endif
  153. };
  154. UASM_L_LA(_second_part)
  155. UASM_L_LA(_leave)
  156. UASM_L_LA(_vmalloc)
  157. UASM_L_LA(_vmalloc_done)
  158. /* _tlbw_hazard_x is handled differently. */
  159. UASM_L_LA(_split)
  160. UASM_L_LA(_tlbl_goaround1)
  161. UASM_L_LA(_tlbl_goaround2)
  162. UASM_L_LA(_nopage_tlbl)
  163. UASM_L_LA(_nopage_tlbs)
  164. UASM_L_LA(_nopage_tlbm)
  165. UASM_L_LA(_smp_pgtable_change)
  166. UASM_L_LA(_r3000_write_probe_fail)
  167. UASM_L_LA(_large_segbits_fault)
  168. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  169. UASM_L_LA(_tlb_huge_update)
  170. #endif
  171. static int hazard_instance;
  172. static void uasm_bgezl_hazard(u32 **p, struct uasm_reloc **r, int instance)
  173. {
  174. switch (instance) {
  175. case 0 ... 7:
  176. uasm_il_bgezl(p, r, 0, label_tlbw_hazard_0 + instance);
  177. return;
  178. default:
  179. BUG();
  180. }
  181. }
  182. static void uasm_bgezl_label(struct uasm_label **l, u32 **p, int instance)
  183. {
  184. switch (instance) {
  185. case 0 ... 7:
  186. uasm_build_label(l, *p, label_tlbw_hazard_0 + instance);
  187. break;
  188. default:
  189. BUG();
  190. }
  191. }
  192. /*
  193. * pgtable bits are assigned dynamically depending on processor feature
  194. * and statically based on kernel configuration. This spits out the actual
  195. * values the kernel is using. Required to make sense from disassembled
  196. * TLB exception handlers.
  197. */
  198. static void output_pgtable_bits_defines(void)
  199. {
  200. #define pr_define(fmt, ...) \
  201. pr_debug("#define " fmt, ##__VA_ARGS__)
  202. pr_debug("#include <asm/asm.h>\n");
  203. pr_debug("#include <asm/regdef.h>\n");
  204. pr_debug("\n");
  205. pr_define("_PAGE_PRESENT_SHIFT %d\n", _PAGE_PRESENT_SHIFT);
  206. pr_define("_PAGE_READ_SHIFT %d\n", _PAGE_READ_SHIFT);
  207. pr_define("_PAGE_WRITE_SHIFT %d\n", _PAGE_WRITE_SHIFT);
  208. pr_define("_PAGE_ACCESSED_SHIFT %d\n", _PAGE_ACCESSED_SHIFT);
  209. pr_define("_PAGE_MODIFIED_SHIFT %d\n", _PAGE_MODIFIED_SHIFT);
  210. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  211. pr_define("_PAGE_HUGE_SHIFT %d\n", _PAGE_HUGE_SHIFT);
  212. pr_define("_PAGE_SPLITTING_SHIFT %d\n", _PAGE_SPLITTING_SHIFT);
  213. #endif
  214. if (cpu_has_rixi) {
  215. #ifdef _PAGE_NO_EXEC_SHIFT
  216. pr_define("_PAGE_NO_EXEC_SHIFT %d\n", _PAGE_NO_EXEC_SHIFT);
  217. #endif
  218. #ifdef _PAGE_NO_READ_SHIFT
  219. pr_define("_PAGE_NO_READ_SHIFT %d\n", _PAGE_NO_READ_SHIFT);
  220. #endif
  221. }
  222. pr_define("_PAGE_GLOBAL_SHIFT %d\n", _PAGE_GLOBAL_SHIFT);
  223. pr_define("_PAGE_VALID_SHIFT %d\n", _PAGE_VALID_SHIFT);
  224. pr_define("_PAGE_DIRTY_SHIFT %d\n", _PAGE_DIRTY_SHIFT);
  225. pr_define("_PFN_SHIFT %d\n", _PFN_SHIFT);
  226. pr_debug("\n");
  227. }
  228. static inline void dump_handler(const char *symbol, const u32 *handler, int count)
  229. {
  230. int i;
  231. pr_debug("LEAF(%s)\n", symbol);
  232. pr_debug("\t.set push\n");
  233. pr_debug("\t.set noreorder\n");
  234. for (i = 0; i < count; i++)
  235. pr_debug("\t.word\t0x%08x\t\t# %p\n", handler[i], &handler[i]);
  236. pr_debug("\t.set\tpop\n");
  237. pr_debug("\tEND(%s)\n", symbol);
  238. }
  239. /* The only general purpose registers allowed in TLB handlers. */
  240. #define K0 26
  241. #define K1 27
  242. /* Some CP0 registers */
  243. #define C0_INDEX 0, 0
  244. #define C0_ENTRYLO0 2, 0
  245. #define C0_TCBIND 2, 2
  246. #define C0_ENTRYLO1 3, 0
  247. #define C0_CONTEXT 4, 0
  248. #define C0_PAGEMASK 5, 0
  249. #define C0_BADVADDR 8, 0
  250. #define C0_ENTRYHI 10, 0
  251. #define C0_EPC 14, 0
  252. #define C0_XCONTEXT 20, 0
  253. #ifdef CONFIG_64BIT
  254. # define GET_CONTEXT(buf, reg) UASM_i_MFC0(buf, reg, C0_XCONTEXT)
  255. #else
  256. # define GET_CONTEXT(buf, reg) UASM_i_MFC0(buf, reg, C0_CONTEXT)
  257. #endif
  258. /* The worst case length of the handler is around 18 instructions for
  259. * R3000-style TLBs and up to 63 instructions for R4000-style TLBs.
  260. * Maximum space available is 32 instructions for R3000 and 64
  261. * instructions for R4000.
  262. *
  263. * We deliberately chose a buffer size of 128, so we won't scribble
  264. * over anything important on overflow before we panic.
  265. */
  266. static u32 tlb_handler[128];
  267. /* simply assume worst case size for labels and relocs */
  268. static struct uasm_label labels[128];
  269. static struct uasm_reloc relocs[128];
  270. static int check_for_high_segbits;
  271. static unsigned int kscratch_used_mask;
  272. static inline int __maybe_unused c0_kscratch(void)
  273. {
  274. switch (current_cpu_type()) {
  275. case CPU_XLP:
  276. case CPU_XLR:
  277. return 22;
  278. default:
  279. return 31;
  280. }
  281. }
  282. static int allocate_kscratch(void)
  283. {
  284. int r;
  285. unsigned int a = cpu_data[0].kscratch_mask & ~kscratch_used_mask;
  286. r = ffs(a);
  287. if (r == 0)
  288. return -1;
  289. r--; /* make it zero based */
  290. kscratch_used_mask |= (1 << r);
  291. return r;
  292. }
  293. static int scratch_reg;
  294. static int pgd_reg;
  295. enum vmalloc64_mode {not_refill, refill_scratch, refill_noscratch};
  296. static struct work_registers build_get_work_registers(u32 **p)
  297. {
  298. struct work_registers r;
  299. if (scratch_reg >= 0) {
  300. /* Save in CPU local C0_KScratch? */
  301. UASM_i_MTC0(p, 1, c0_kscratch(), scratch_reg);
  302. r.r1 = K0;
  303. r.r2 = K1;
  304. r.r3 = 1;
  305. return r;
  306. }
  307. if (num_possible_cpus() > 1) {
  308. /* Get smp_processor_id */
  309. UASM_i_CPUID_MFC0(p, K0, SMP_CPUID_REG);
  310. UASM_i_SRL_SAFE(p, K0, K0, SMP_CPUID_REGSHIFT);
  311. /* handler_reg_save index in K0 */
  312. UASM_i_SLL(p, K0, K0, ilog2(sizeof(struct tlb_reg_save)));
  313. UASM_i_LA(p, K1, (long)&handler_reg_save);
  314. UASM_i_ADDU(p, K0, K0, K1);
  315. } else {
  316. UASM_i_LA(p, K0, (long)&handler_reg_save);
  317. }
  318. /* K0 now points to save area, save $1 and $2 */
  319. UASM_i_SW(p, 1, offsetof(struct tlb_reg_save, a), K0);
  320. UASM_i_SW(p, 2, offsetof(struct tlb_reg_save, b), K0);
  321. r.r1 = K1;
  322. r.r2 = 1;
  323. r.r3 = 2;
  324. return r;
  325. }
  326. static void build_restore_work_registers(u32 **p)
  327. {
  328. if (scratch_reg >= 0) {
  329. UASM_i_MFC0(p, 1, c0_kscratch(), scratch_reg);
  330. return;
  331. }
  332. /* K0 already points to save area, restore $1 and $2 */
  333. UASM_i_LW(p, 1, offsetof(struct tlb_reg_save, a), K0);
  334. UASM_i_LW(p, 2, offsetof(struct tlb_reg_save, b), K0);
  335. }
  336. #ifndef CONFIG_MIPS_PGD_C0_CONTEXT
  337. /*
  338. * CONFIG_MIPS_PGD_C0_CONTEXT implies 64 bit and lack of pgd_current,
  339. * we cannot do r3000 under these circumstances.
  340. *
  341. * Declare pgd_current here instead of including mmu_context.h to avoid type
  342. * conflicts for tlbmiss_handler_setup_pgd
  343. */
  344. extern unsigned long pgd_current[];
  345. /*
  346. * The R3000 TLB handler is simple.
  347. */
  348. static void build_r3000_tlb_refill_handler(void)
  349. {
  350. long pgdc = (long)pgd_current;
  351. u32 *p;
  352. memset(tlb_handler, 0, sizeof(tlb_handler));
  353. p = tlb_handler;
  354. uasm_i_mfc0(&p, K0, C0_BADVADDR);
  355. uasm_i_lui(&p, K1, uasm_rel_hi(pgdc)); /* cp0 delay */
  356. uasm_i_lw(&p, K1, uasm_rel_lo(pgdc), K1);
  357. uasm_i_srl(&p, K0, K0, 22); /* load delay */
  358. uasm_i_sll(&p, K0, K0, 2);
  359. uasm_i_addu(&p, K1, K1, K0);
  360. uasm_i_mfc0(&p, K0, C0_CONTEXT);
  361. uasm_i_lw(&p, K1, 0, K1); /* cp0 delay */
  362. uasm_i_andi(&p, K0, K0, 0xffc); /* load delay */
  363. uasm_i_addu(&p, K1, K1, K0);
  364. uasm_i_lw(&p, K0, 0, K1);
  365. uasm_i_nop(&p); /* load delay */
  366. uasm_i_mtc0(&p, K0, C0_ENTRYLO0);
  367. uasm_i_mfc0(&p, K1, C0_EPC); /* cp0 delay */
  368. uasm_i_tlbwr(&p); /* cp0 delay */
  369. uasm_i_jr(&p, K1);
  370. uasm_i_rfe(&p); /* branch delay */
  371. if (p > tlb_handler + 32)
  372. panic("TLB refill handler space exceeded");
  373. pr_debug("Wrote TLB refill handler (%u instructions).\n",
  374. (unsigned int)(p - tlb_handler));
  375. memcpy((void *)ebase, tlb_handler, 0x80);
  376. dump_handler("r3000_tlb_refill", (u32 *)ebase, 32);
  377. }
  378. #endif /* CONFIG_MIPS_PGD_C0_CONTEXT */
  379. /*
  380. * The R4000 TLB handler is much more complicated. We have two
  381. * consecutive handler areas with 32 instructions space each.
  382. * Since they aren't used at the same time, we can overflow in the
  383. * other one.To keep things simple, we first assume linear space,
  384. * then we relocate it to the final handler layout as needed.
  385. */
  386. static u32 final_handler[64];
  387. /*
  388. * Hazards
  389. *
  390. * From the IDT errata for the QED RM5230 (Nevada), processor revision 1.0:
  391. * 2. A timing hazard exists for the TLBP instruction.
  392. *
  393. * stalling_instruction
  394. * TLBP
  395. *
  396. * The JTLB is being read for the TLBP throughout the stall generated by the
  397. * previous instruction. This is not really correct as the stalling instruction
  398. * can modify the address used to access the JTLB. The failure symptom is that
  399. * the TLBP instruction will use an address created for the stalling instruction
  400. * and not the address held in C0_ENHI and thus report the wrong results.
  401. *
  402. * The software work-around is to not allow the instruction preceding the TLBP
  403. * to stall - make it an NOP or some other instruction guaranteed not to stall.
  404. *
  405. * Errata 2 will not be fixed. This errata is also on the R5000.
  406. *
  407. * As if we MIPS hackers wouldn't know how to nop pipelines happy ...
  408. */
  409. static void __maybe_unused build_tlb_probe_entry(u32 **p)
  410. {
  411. switch (current_cpu_type()) {
  412. /* Found by experiment: R4600 v2.0/R4700 needs this, too. */
  413. case CPU_R4600:
  414. case CPU_R4700:
  415. case CPU_R5000:
  416. case CPU_NEVADA:
  417. uasm_i_nop(p);
  418. uasm_i_tlbp(p);
  419. break;
  420. default:
  421. uasm_i_tlbp(p);
  422. break;
  423. }
  424. }
  425. /*
  426. * Write random or indexed TLB entry, and care about the hazards from
  427. * the preceding mtc0 and for the following eret.
  428. */
  429. enum tlb_write_entry { tlb_random, tlb_indexed };
  430. static void build_tlb_write_entry(u32 **p, struct uasm_label **l,
  431. struct uasm_reloc **r,
  432. enum tlb_write_entry wmode)
  433. {
  434. void(*tlbw)(u32 **) = NULL;
  435. switch (wmode) {
  436. case tlb_random: tlbw = uasm_i_tlbwr; break;
  437. case tlb_indexed: tlbw = uasm_i_tlbwi; break;
  438. }
  439. if (cpu_has_mips_r2) {
  440. /*
  441. * The architecture spec says an ehb is required here,
  442. * but a number of cores do not have the hazard and
  443. * using an ehb causes an expensive pipeline stall.
  444. */
  445. switch (current_cpu_type()) {
  446. case CPU_M14KC:
  447. case CPU_74K:
  448. case CPU_1074K:
  449. case CPU_PROAPTIV:
  450. break;
  451. default:
  452. uasm_i_ehb(p);
  453. break;
  454. }
  455. tlbw(p);
  456. return;
  457. }
  458. switch (current_cpu_type()) {
  459. case CPU_R4000PC:
  460. case CPU_R4000SC:
  461. case CPU_R4000MC:
  462. case CPU_R4400PC:
  463. case CPU_R4400SC:
  464. case CPU_R4400MC:
  465. /*
  466. * This branch uses up a mtc0 hazard nop slot and saves
  467. * two nops after the tlbw instruction.
  468. */
  469. uasm_bgezl_hazard(p, r, hazard_instance);
  470. tlbw(p);
  471. uasm_bgezl_label(l, p, hazard_instance);
  472. hazard_instance++;
  473. uasm_i_nop(p);
  474. break;
  475. case CPU_R4600:
  476. case CPU_R4700:
  477. uasm_i_nop(p);
  478. tlbw(p);
  479. uasm_i_nop(p);
  480. break;
  481. case CPU_R5000:
  482. case CPU_NEVADA:
  483. uasm_i_nop(p); /* QED specifies 2 nops hazard */
  484. uasm_i_nop(p); /* QED specifies 2 nops hazard */
  485. tlbw(p);
  486. break;
  487. case CPU_R4300:
  488. case CPU_5KC:
  489. case CPU_TX49XX:
  490. case CPU_PR4450:
  491. case CPU_XLR:
  492. uasm_i_nop(p);
  493. tlbw(p);
  494. break;
  495. case CPU_R10000:
  496. case CPU_R12000:
  497. case CPU_R14000:
  498. case CPU_4KC:
  499. case CPU_4KEC:
  500. case CPU_M14KC:
  501. case CPU_M14KEC:
  502. case CPU_SB1:
  503. case CPU_SB1A:
  504. case CPU_4KSC:
  505. case CPU_20KC:
  506. case CPU_25KF:
  507. case CPU_BMIPS32:
  508. case CPU_BMIPS3300:
  509. case CPU_BMIPS4350:
  510. case CPU_BMIPS4380:
  511. case CPU_BMIPS5000:
  512. case CPU_LOONGSON2:
  513. case CPU_R5500:
  514. if (m4kc_tlbp_war())
  515. uasm_i_nop(p);
  516. case CPU_ALCHEMY:
  517. tlbw(p);
  518. break;
  519. case CPU_RM7000:
  520. uasm_i_nop(p);
  521. uasm_i_nop(p);
  522. uasm_i_nop(p);
  523. uasm_i_nop(p);
  524. tlbw(p);
  525. break;
  526. case CPU_VR4111:
  527. case CPU_VR4121:
  528. case CPU_VR4122:
  529. case CPU_VR4181:
  530. case CPU_VR4181A:
  531. uasm_i_nop(p);
  532. uasm_i_nop(p);
  533. tlbw(p);
  534. uasm_i_nop(p);
  535. uasm_i_nop(p);
  536. break;
  537. case CPU_VR4131:
  538. case CPU_VR4133:
  539. case CPU_R5432:
  540. uasm_i_nop(p);
  541. uasm_i_nop(p);
  542. tlbw(p);
  543. break;
  544. case CPU_JZRISC:
  545. tlbw(p);
  546. uasm_i_nop(p);
  547. break;
  548. default:
  549. panic("No TLB refill handler yet (CPU type: %d)",
  550. current_cpu_data.cputype);
  551. break;
  552. }
  553. }
  554. static __maybe_unused void build_convert_pte_to_entrylo(u32 **p,
  555. unsigned int reg)
  556. {
  557. if (cpu_has_rixi) {
  558. UASM_i_ROTR(p, reg, reg, ilog2(_PAGE_GLOBAL));
  559. } else {
  560. #ifdef CONFIG_64BIT_PHYS_ADDR
  561. uasm_i_dsrl_safe(p, reg, reg, ilog2(_PAGE_GLOBAL));
  562. #else
  563. UASM_i_SRL(p, reg, reg, ilog2(_PAGE_GLOBAL));
  564. #endif
  565. }
  566. }
  567. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  568. static void build_restore_pagemask(u32 **p, struct uasm_reloc **r,
  569. unsigned int tmp, enum label_id lid,
  570. int restore_scratch)
  571. {
  572. if (restore_scratch) {
  573. /* Reset default page size */
  574. if (PM_DEFAULT_MASK >> 16) {
  575. uasm_i_lui(p, tmp, PM_DEFAULT_MASK >> 16);
  576. uasm_i_ori(p, tmp, tmp, PM_DEFAULT_MASK & 0xffff);
  577. uasm_i_mtc0(p, tmp, C0_PAGEMASK);
  578. uasm_il_b(p, r, lid);
  579. } else if (PM_DEFAULT_MASK) {
  580. uasm_i_ori(p, tmp, 0, PM_DEFAULT_MASK);
  581. uasm_i_mtc0(p, tmp, C0_PAGEMASK);
  582. uasm_il_b(p, r, lid);
  583. } else {
  584. uasm_i_mtc0(p, 0, C0_PAGEMASK);
  585. uasm_il_b(p, r, lid);
  586. }
  587. if (scratch_reg >= 0)
  588. UASM_i_MFC0(p, 1, c0_kscratch(), scratch_reg);
  589. else
  590. UASM_i_LW(p, 1, scratchpad_offset(0), 0);
  591. } else {
  592. /* Reset default page size */
  593. if (PM_DEFAULT_MASK >> 16) {
  594. uasm_i_lui(p, tmp, PM_DEFAULT_MASK >> 16);
  595. uasm_i_ori(p, tmp, tmp, PM_DEFAULT_MASK & 0xffff);
  596. uasm_il_b(p, r, lid);
  597. uasm_i_mtc0(p, tmp, C0_PAGEMASK);
  598. } else if (PM_DEFAULT_MASK) {
  599. uasm_i_ori(p, tmp, 0, PM_DEFAULT_MASK);
  600. uasm_il_b(p, r, lid);
  601. uasm_i_mtc0(p, tmp, C0_PAGEMASK);
  602. } else {
  603. uasm_il_b(p, r, lid);
  604. uasm_i_mtc0(p, 0, C0_PAGEMASK);
  605. }
  606. }
  607. }
  608. static void build_huge_tlb_write_entry(u32 **p, struct uasm_label **l,
  609. struct uasm_reloc **r,
  610. unsigned int tmp,
  611. enum tlb_write_entry wmode,
  612. int restore_scratch)
  613. {
  614. /* Set huge page tlb entry size */
  615. uasm_i_lui(p, tmp, PM_HUGE_MASK >> 16);
  616. uasm_i_ori(p, tmp, tmp, PM_HUGE_MASK & 0xffff);
  617. uasm_i_mtc0(p, tmp, C0_PAGEMASK);
  618. build_tlb_write_entry(p, l, r, wmode);
  619. build_restore_pagemask(p, r, tmp, label_leave, restore_scratch);
  620. }
  621. /*
  622. * Check if Huge PTE is present, if so then jump to LABEL.
  623. */
  624. static void
  625. build_is_huge_pte(u32 **p, struct uasm_reloc **r, unsigned int tmp,
  626. unsigned int pmd, int lid)
  627. {
  628. UASM_i_LW(p, tmp, 0, pmd);
  629. if (use_bbit_insns()) {
  630. uasm_il_bbit1(p, r, tmp, ilog2(_PAGE_HUGE), lid);
  631. } else {
  632. uasm_i_andi(p, tmp, tmp, _PAGE_HUGE);
  633. uasm_il_bnez(p, r, tmp, lid);
  634. }
  635. }
  636. static void build_huge_update_entries(u32 **p, unsigned int pte,
  637. unsigned int tmp)
  638. {
  639. int small_sequence;
  640. /*
  641. * A huge PTE describes an area the size of the
  642. * configured huge page size. This is twice the
  643. * of the large TLB entry size we intend to use.
  644. * A TLB entry half the size of the configured
  645. * huge page size is configured into entrylo0
  646. * and entrylo1 to cover the contiguous huge PTE
  647. * address space.
  648. */
  649. small_sequence = (HPAGE_SIZE >> 7) < 0x10000;
  650. /* We can clobber tmp. It isn't used after this.*/
  651. if (!small_sequence)
  652. uasm_i_lui(p, tmp, HPAGE_SIZE >> (7 + 16));
  653. build_convert_pte_to_entrylo(p, pte);
  654. UASM_i_MTC0(p, pte, C0_ENTRYLO0); /* load it */
  655. /* convert to entrylo1 */
  656. if (small_sequence)
  657. UASM_i_ADDIU(p, pte, pte, HPAGE_SIZE >> 7);
  658. else
  659. UASM_i_ADDU(p, pte, pte, tmp);
  660. UASM_i_MTC0(p, pte, C0_ENTRYLO1); /* load it */
  661. }
  662. static void build_huge_handler_tail(u32 **p, struct uasm_reloc **r,
  663. struct uasm_label **l,
  664. unsigned int pte,
  665. unsigned int ptr)
  666. {
  667. #ifdef CONFIG_SMP
  668. UASM_i_SC(p, pte, 0, ptr);
  669. uasm_il_beqz(p, r, pte, label_tlb_huge_update);
  670. UASM_i_LW(p, pte, 0, ptr); /* Needed because SC killed our PTE */
  671. #else
  672. UASM_i_SW(p, pte, 0, ptr);
  673. #endif
  674. build_huge_update_entries(p, pte, ptr);
  675. build_huge_tlb_write_entry(p, l, r, pte, tlb_indexed, 0);
  676. }
  677. #endif /* CONFIG_MIPS_HUGE_TLB_SUPPORT */
  678. #ifdef CONFIG_64BIT
  679. /*
  680. * TMP and PTR are scratch.
  681. * TMP will be clobbered, PTR will hold the pmd entry.
  682. */
  683. static void
  684. build_get_pmde64(u32 **p, struct uasm_label **l, struct uasm_reloc **r,
  685. unsigned int tmp, unsigned int ptr)
  686. {
  687. #ifndef CONFIG_MIPS_PGD_C0_CONTEXT
  688. long pgdc = (long)pgd_current;
  689. #endif
  690. /*
  691. * The vmalloc handling is not in the hotpath.
  692. */
  693. uasm_i_dmfc0(p, tmp, C0_BADVADDR);
  694. if (check_for_high_segbits) {
  695. /*
  696. * The kernel currently implicitely assumes that the
  697. * MIPS SEGBITS parameter for the processor is
  698. * (PGDIR_SHIFT+PGDIR_BITS) or less, and will never
  699. * allocate virtual addresses outside the maximum
  700. * range for SEGBITS = (PGDIR_SHIFT+PGDIR_BITS). But
  701. * that doesn't prevent user code from accessing the
  702. * higher xuseg addresses. Here, we make sure that
  703. * everything but the lower xuseg addresses goes down
  704. * the module_alloc/vmalloc path.
  705. */
  706. uasm_i_dsrl_safe(p, ptr, tmp, PGDIR_SHIFT + PGD_ORDER + PAGE_SHIFT - 3);
  707. uasm_il_bnez(p, r, ptr, label_vmalloc);
  708. } else {
  709. uasm_il_bltz(p, r, tmp, label_vmalloc);
  710. }
  711. /* No uasm_i_nop needed here, since the next insn doesn't touch TMP. */
  712. if (pgd_reg != -1) {
  713. /* pgd is in pgd_reg */
  714. UASM_i_MFC0(p, ptr, c0_kscratch(), pgd_reg);
  715. } else {
  716. #if defined(CONFIG_MIPS_PGD_C0_CONTEXT)
  717. /*
  718. * &pgd << 11 stored in CONTEXT [23..63].
  719. */
  720. UASM_i_MFC0(p, ptr, C0_CONTEXT);
  721. /* Clear lower 23 bits of context. */
  722. uasm_i_dins(p, ptr, 0, 0, 23);
  723. /* 1 0 1 0 1 << 6 xkphys cached */
  724. uasm_i_ori(p, ptr, ptr, 0x540);
  725. uasm_i_drotr(p, ptr, ptr, 11);
  726. #elif defined(CONFIG_SMP)
  727. UASM_i_CPUID_MFC0(p, ptr, SMP_CPUID_REG);
  728. uasm_i_dsrl_safe(p, ptr, ptr, SMP_CPUID_PTRSHIFT);
  729. UASM_i_LA_mostly(p, tmp, pgdc);
  730. uasm_i_daddu(p, ptr, ptr, tmp);
  731. uasm_i_dmfc0(p, tmp, C0_BADVADDR);
  732. uasm_i_ld(p, ptr, uasm_rel_lo(pgdc), ptr);
  733. #else
  734. UASM_i_LA_mostly(p, ptr, pgdc);
  735. uasm_i_ld(p, ptr, uasm_rel_lo(pgdc), ptr);
  736. #endif
  737. }
  738. uasm_l_vmalloc_done(l, *p);
  739. /* get pgd offset in bytes */
  740. uasm_i_dsrl_safe(p, tmp, tmp, PGDIR_SHIFT - 3);
  741. uasm_i_andi(p, tmp, tmp, (PTRS_PER_PGD - 1)<<3);
  742. uasm_i_daddu(p, ptr, ptr, tmp); /* add in pgd offset */
  743. #ifndef __PAGETABLE_PMD_FOLDED
  744. uasm_i_dmfc0(p, tmp, C0_BADVADDR); /* get faulting address */
  745. uasm_i_ld(p, ptr, 0, ptr); /* get pmd pointer */
  746. uasm_i_dsrl_safe(p, tmp, tmp, PMD_SHIFT-3); /* get pmd offset in bytes */
  747. uasm_i_andi(p, tmp, tmp, (PTRS_PER_PMD - 1)<<3);
  748. uasm_i_daddu(p, ptr, ptr, tmp); /* add in pmd offset */
  749. #endif
  750. }
  751. /*
  752. * BVADDR is the faulting address, PTR is scratch.
  753. * PTR will hold the pgd for vmalloc.
  754. */
  755. static void
  756. build_get_pgd_vmalloc64(u32 **p, struct uasm_label **l, struct uasm_reloc **r,
  757. unsigned int bvaddr, unsigned int ptr,
  758. enum vmalloc64_mode mode)
  759. {
  760. long swpd = (long)swapper_pg_dir;
  761. int single_insn_swpd;
  762. int did_vmalloc_branch = 0;
  763. single_insn_swpd = uasm_in_compat_space_p(swpd) && !uasm_rel_lo(swpd);
  764. uasm_l_vmalloc(l, *p);
  765. if (mode != not_refill && check_for_high_segbits) {
  766. if (single_insn_swpd) {
  767. uasm_il_bltz(p, r, bvaddr, label_vmalloc_done);
  768. uasm_i_lui(p, ptr, uasm_rel_hi(swpd));
  769. did_vmalloc_branch = 1;
  770. /* fall through */
  771. } else {
  772. uasm_il_bgez(p, r, bvaddr, label_large_segbits_fault);
  773. }
  774. }
  775. if (!did_vmalloc_branch) {
  776. if (uasm_in_compat_space_p(swpd) && !uasm_rel_lo(swpd)) {
  777. uasm_il_b(p, r, label_vmalloc_done);
  778. uasm_i_lui(p, ptr, uasm_rel_hi(swpd));
  779. } else {
  780. UASM_i_LA_mostly(p, ptr, swpd);
  781. uasm_il_b(p, r, label_vmalloc_done);
  782. if (uasm_in_compat_space_p(swpd))
  783. uasm_i_addiu(p, ptr, ptr, uasm_rel_lo(swpd));
  784. else
  785. uasm_i_daddiu(p, ptr, ptr, uasm_rel_lo(swpd));
  786. }
  787. }
  788. if (mode != not_refill && check_for_high_segbits) {
  789. uasm_l_large_segbits_fault(l, *p);
  790. /*
  791. * We get here if we are an xsseg address, or if we are
  792. * an xuseg address above (PGDIR_SHIFT+PGDIR_BITS) boundary.
  793. *
  794. * Ignoring xsseg (assume disabled so would generate
  795. * (address errors?), the only remaining possibility
  796. * is the upper xuseg addresses. On processors with
  797. * TLB_SEGBITS <= PGDIR_SHIFT+PGDIR_BITS, these
  798. * addresses would have taken an address error. We try
  799. * to mimic that here by taking a load/istream page
  800. * fault.
  801. */
  802. UASM_i_LA(p, ptr, (unsigned long)tlb_do_page_fault_0);
  803. uasm_i_jr(p, ptr);
  804. if (mode == refill_scratch) {
  805. if (scratch_reg >= 0)
  806. UASM_i_MFC0(p, 1, c0_kscratch(), scratch_reg);
  807. else
  808. UASM_i_LW(p, 1, scratchpad_offset(0), 0);
  809. } else {
  810. uasm_i_nop(p);
  811. }
  812. }
  813. }
  814. #else /* !CONFIG_64BIT */
  815. /*
  816. * TMP and PTR are scratch.
  817. * TMP will be clobbered, PTR will hold the pgd entry.
  818. */
  819. static void __maybe_unused
  820. build_get_pgde32(u32 **p, unsigned int tmp, unsigned int ptr)
  821. {
  822. if (pgd_reg != -1) {
  823. /* pgd is in pgd_reg */
  824. uasm_i_mfc0(p, ptr, c0_kscratch(), pgd_reg);
  825. uasm_i_mfc0(p, tmp, C0_BADVADDR); /* get faulting address */
  826. } else {
  827. long pgdc = (long)pgd_current;
  828. /* 32 bit SMP has smp_processor_id() stored in CONTEXT. */
  829. #ifdef CONFIG_SMP
  830. uasm_i_mfc0(p, ptr, SMP_CPUID_REG);
  831. UASM_i_LA_mostly(p, tmp, pgdc);
  832. uasm_i_srl(p, ptr, ptr, SMP_CPUID_PTRSHIFT);
  833. uasm_i_addu(p, ptr, tmp, ptr);
  834. #else
  835. UASM_i_LA_mostly(p, ptr, pgdc);
  836. #endif
  837. uasm_i_mfc0(p, tmp, C0_BADVADDR); /* get faulting address */
  838. uasm_i_lw(p, ptr, uasm_rel_lo(pgdc), ptr);
  839. }
  840. uasm_i_srl(p, tmp, tmp, PGDIR_SHIFT); /* get pgd only bits */
  841. uasm_i_sll(p, tmp, tmp, PGD_T_LOG2);
  842. uasm_i_addu(p, ptr, ptr, tmp); /* add in pgd offset */
  843. }
  844. #endif /* !CONFIG_64BIT */
  845. static void build_adjust_context(u32 **p, unsigned int ctx)
  846. {
  847. unsigned int shift = 4 - (PTE_T_LOG2 + 1) + PAGE_SHIFT - 12;
  848. unsigned int mask = (PTRS_PER_PTE / 2 - 1) << (PTE_T_LOG2 + 1);
  849. switch (current_cpu_type()) {
  850. case CPU_VR41XX:
  851. case CPU_VR4111:
  852. case CPU_VR4121:
  853. case CPU_VR4122:
  854. case CPU_VR4131:
  855. case CPU_VR4181:
  856. case CPU_VR4181A:
  857. case CPU_VR4133:
  858. shift += 2;
  859. break;
  860. default:
  861. break;
  862. }
  863. if (shift)
  864. UASM_i_SRL(p, ctx, ctx, shift);
  865. uasm_i_andi(p, ctx, ctx, mask);
  866. }
  867. static void build_get_ptep(u32 **p, unsigned int tmp, unsigned int ptr)
  868. {
  869. /*
  870. * Bug workaround for the Nevada. It seems as if under certain
  871. * circumstances the move from cp0_context might produce a
  872. * bogus result when the mfc0 instruction and its consumer are
  873. * in a different cacheline or a load instruction, probably any
  874. * memory reference, is between them.
  875. */
  876. switch (current_cpu_type()) {
  877. case CPU_NEVADA:
  878. UASM_i_LW(p, ptr, 0, ptr);
  879. GET_CONTEXT(p, tmp); /* get context reg */
  880. break;
  881. default:
  882. GET_CONTEXT(p, tmp); /* get context reg */
  883. UASM_i_LW(p, ptr, 0, ptr);
  884. break;
  885. }
  886. build_adjust_context(p, tmp);
  887. UASM_i_ADDU(p, ptr, ptr, tmp); /* add in offset */
  888. }
  889. static void build_update_entries(u32 **p, unsigned int tmp, unsigned int ptep)
  890. {
  891. /*
  892. * 64bit address support (36bit on a 32bit CPU) in a 32bit
  893. * Kernel is a special case. Only a few CPUs use it.
  894. */
  895. #ifdef CONFIG_64BIT_PHYS_ADDR
  896. if (cpu_has_64bits) {
  897. uasm_i_ld(p, tmp, 0, ptep); /* get even pte */
  898. uasm_i_ld(p, ptep, sizeof(pte_t), ptep); /* get odd pte */
  899. if (cpu_has_rixi) {
  900. UASM_i_ROTR(p, tmp, tmp, ilog2(_PAGE_GLOBAL));
  901. UASM_i_MTC0(p, tmp, C0_ENTRYLO0); /* load it */
  902. UASM_i_ROTR(p, ptep, ptep, ilog2(_PAGE_GLOBAL));
  903. } else {
  904. uasm_i_dsrl_safe(p, tmp, tmp, ilog2(_PAGE_GLOBAL)); /* convert to entrylo0 */
  905. UASM_i_MTC0(p, tmp, C0_ENTRYLO0); /* load it */
  906. uasm_i_dsrl_safe(p, ptep, ptep, ilog2(_PAGE_GLOBAL)); /* convert to entrylo1 */
  907. }
  908. UASM_i_MTC0(p, ptep, C0_ENTRYLO1); /* load it */
  909. } else {
  910. int pte_off_even = sizeof(pte_t) / 2;
  911. int pte_off_odd = pte_off_even + sizeof(pte_t);
  912. /* The pte entries are pre-shifted */
  913. uasm_i_lw(p, tmp, pte_off_even, ptep); /* get even pte */
  914. UASM_i_MTC0(p, tmp, C0_ENTRYLO0); /* load it */
  915. uasm_i_lw(p, ptep, pte_off_odd, ptep); /* get odd pte */
  916. UASM_i_MTC0(p, ptep, C0_ENTRYLO1); /* load it */
  917. }
  918. #else
  919. UASM_i_LW(p, tmp, 0, ptep); /* get even pte */
  920. UASM_i_LW(p, ptep, sizeof(pte_t), ptep); /* get odd pte */
  921. if (r45k_bvahwbug())
  922. build_tlb_probe_entry(p);
  923. if (cpu_has_rixi) {
  924. UASM_i_ROTR(p, tmp, tmp, ilog2(_PAGE_GLOBAL));
  925. if (r4k_250MHZhwbug())
  926. UASM_i_MTC0(p, 0, C0_ENTRYLO0);
  927. UASM_i_MTC0(p, tmp, C0_ENTRYLO0); /* load it */
  928. UASM_i_ROTR(p, ptep, ptep, ilog2(_PAGE_GLOBAL));
  929. } else {
  930. UASM_i_SRL(p, tmp, tmp, ilog2(_PAGE_GLOBAL)); /* convert to entrylo0 */
  931. if (r4k_250MHZhwbug())
  932. UASM_i_MTC0(p, 0, C0_ENTRYLO0);
  933. UASM_i_MTC0(p, tmp, C0_ENTRYLO0); /* load it */
  934. UASM_i_SRL(p, ptep, ptep, ilog2(_PAGE_GLOBAL)); /* convert to entrylo1 */
  935. if (r45k_bvahwbug())
  936. uasm_i_mfc0(p, tmp, C0_INDEX);
  937. }
  938. if (r4k_250MHZhwbug())
  939. UASM_i_MTC0(p, 0, C0_ENTRYLO1);
  940. UASM_i_MTC0(p, ptep, C0_ENTRYLO1); /* load it */
  941. #endif
  942. }
  943. struct mips_huge_tlb_info {
  944. int huge_pte;
  945. int restore_scratch;
  946. };
  947. static struct mips_huge_tlb_info
  948. build_fast_tlb_refill_handler (u32 **p, struct uasm_label **l,
  949. struct uasm_reloc **r, unsigned int tmp,
  950. unsigned int ptr, int c0_scratch_reg)
  951. {
  952. struct mips_huge_tlb_info rv;
  953. unsigned int even, odd;
  954. int vmalloc_branch_delay_filled = 0;
  955. const int scratch = 1; /* Our extra working register */
  956. rv.huge_pte = scratch;
  957. rv.restore_scratch = 0;
  958. if (check_for_high_segbits) {
  959. UASM_i_MFC0(p, tmp, C0_BADVADDR);
  960. if (pgd_reg != -1)
  961. UASM_i_MFC0(p, ptr, c0_kscratch(), pgd_reg);
  962. else
  963. UASM_i_MFC0(p, ptr, C0_CONTEXT);
  964. if (c0_scratch_reg >= 0)
  965. UASM_i_MTC0(p, scratch, c0_kscratch(), c0_scratch_reg);
  966. else
  967. UASM_i_SW(p, scratch, scratchpad_offset(0), 0);
  968. uasm_i_dsrl_safe(p, scratch, tmp,
  969. PGDIR_SHIFT + PGD_ORDER + PAGE_SHIFT - 3);
  970. uasm_il_bnez(p, r, scratch, label_vmalloc);
  971. if (pgd_reg == -1) {
  972. vmalloc_branch_delay_filled = 1;
  973. /* Clear lower 23 bits of context. */
  974. uasm_i_dins(p, ptr, 0, 0, 23);
  975. }
  976. } else {
  977. if (pgd_reg != -1)
  978. UASM_i_MFC0(p, ptr, c0_kscratch(), pgd_reg);
  979. else
  980. UASM_i_MFC0(p, ptr, C0_CONTEXT);
  981. UASM_i_MFC0(p, tmp, C0_BADVADDR);
  982. if (c0_scratch_reg >= 0)
  983. UASM_i_MTC0(p, scratch, c0_kscratch(), c0_scratch_reg);
  984. else
  985. UASM_i_SW(p, scratch, scratchpad_offset(0), 0);
  986. if (pgd_reg == -1)
  987. /* Clear lower 23 bits of context. */
  988. uasm_i_dins(p, ptr, 0, 0, 23);
  989. uasm_il_bltz(p, r, tmp, label_vmalloc);
  990. }
  991. if (pgd_reg == -1) {
  992. vmalloc_branch_delay_filled = 1;
  993. /* 1 0 1 0 1 << 6 xkphys cached */
  994. uasm_i_ori(p, ptr, ptr, 0x540);
  995. uasm_i_drotr(p, ptr, ptr, 11);
  996. }
  997. #ifdef __PAGETABLE_PMD_FOLDED
  998. #define LOC_PTEP scratch
  999. #else
  1000. #define LOC_PTEP ptr
  1001. #endif
  1002. if (!vmalloc_branch_delay_filled)
  1003. /* get pgd offset in bytes */
  1004. uasm_i_dsrl_safe(p, scratch, tmp, PGDIR_SHIFT - 3);
  1005. uasm_l_vmalloc_done(l, *p);
  1006. /*
  1007. * tmp ptr
  1008. * fall-through case = badvaddr *pgd_current
  1009. * vmalloc case = badvaddr swapper_pg_dir
  1010. */
  1011. if (vmalloc_branch_delay_filled)
  1012. /* get pgd offset in bytes */
  1013. uasm_i_dsrl_safe(p, scratch, tmp, PGDIR_SHIFT - 3);
  1014. #ifdef __PAGETABLE_PMD_FOLDED
  1015. GET_CONTEXT(p, tmp); /* get context reg */
  1016. #endif
  1017. uasm_i_andi(p, scratch, scratch, (PTRS_PER_PGD - 1) << 3);
  1018. if (use_lwx_insns()) {
  1019. UASM_i_LWX(p, LOC_PTEP, scratch, ptr);
  1020. } else {
  1021. uasm_i_daddu(p, ptr, ptr, scratch); /* add in pgd offset */
  1022. uasm_i_ld(p, LOC_PTEP, 0, ptr); /* get pmd pointer */
  1023. }
  1024. #ifndef __PAGETABLE_PMD_FOLDED
  1025. /* get pmd offset in bytes */
  1026. uasm_i_dsrl_safe(p, scratch, tmp, PMD_SHIFT - 3);
  1027. uasm_i_andi(p, scratch, scratch, (PTRS_PER_PMD - 1) << 3);
  1028. GET_CONTEXT(p, tmp); /* get context reg */
  1029. if (use_lwx_insns()) {
  1030. UASM_i_LWX(p, scratch, scratch, ptr);
  1031. } else {
  1032. uasm_i_daddu(p, ptr, ptr, scratch); /* add in pmd offset */
  1033. UASM_i_LW(p, scratch, 0, ptr);
  1034. }
  1035. #endif
  1036. /* Adjust the context during the load latency. */
  1037. build_adjust_context(p, tmp);
  1038. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  1039. uasm_il_bbit1(p, r, scratch, ilog2(_PAGE_HUGE), label_tlb_huge_update);
  1040. /*
  1041. * The in the LWX case we don't want to do the load in the
  1042. * delay slot. It cannot issue in the same cycle and may be
  1043. * speculative and unneeded.
  1044. */
  1045. if (use_lwx_insns())
  1046. uasm_i_nop(p);
  1047. #endif /* CONFIG_MIPS_HUGE_TLB_SUPPORT */
  1048. /* build_update_entries */
  1049. if (use_lwx_insns()) {
  1050. even = ptr;
  1051. odd = tmp;
  1052. UASM_i_LWX(p, even, scratch, tmp);
  1053. UASM_i_ADDIU(p, tmp, tmp, sizeof(pte_t));
  1054. UASM_i_LWX(p, odd, scratch, tmp);
  1055. } else {
  1056. UASM_i_ADDU(p, ptr, scratch, tmp); /* add in offset */
  1057. even = tmp;
  1058. odd = ptr;
  1059. UASM_i_LW(p, even, 0, ptr); /* get even pte */
  1060. UASM_i_LW(p, odd, sizeof(pte_t), ptr); /* get odd pte */
  1061. }
  1062. if (cpu_has_rixi) {
  1063. uasm_i_drotr(p, even, even, ilog2(_PAGE_GLOBAL));
  1064. UASM_i_MTC0(p, even, C0_ENTRYLO0); /* load it */
  1065. uasm_i_drotr(p, odd, odd, ilog2(_PAGE_GLOBAL));
  1066. } else {
  1067. uasm_i_dsrl_safe(p, even, even, ilog2(_PAGE_GLOBAL));
  1068. UASM_i_MTC0(p, even, C0_ENTRYLO0); /* load it */
  1069. uasm_i_dsrl_safe(p, odd, odd, ilog2(_PAGE_GLOBAL));
  1070. }
  1071. UASM_i_MTC0(p, odd, C0_ENTRYLO1); /* load it */
  1072. if (c0_scratch_reg >= 0) {
  1073. UASM_i_MFC0(p, scratch, c0_kscratch(), c0_scratch_reg);
  1074. build_tlb_write_entry(p, l, r, tlb_random);
  1075. uasm_l_leave(l, *p);
  1076. rv.restore_scratch = 1;
  1077. } else if (PAGE_SHIFT == 14 || PAGE_SHIFT == 13) {
  1078. build_tlb_write_entry(p, l, r, tlb_random);
  1079. uasm_l_leave(l, *p);
  1080. UASM_i_LW(p, scratch, scratchpad_offset(0), 0);
  1081. } else {
  1082. UASM_i_LW(p, scratch, scratchpad_offset(0), 0);
  1083. build_tlb_write_entry(p, l, r, tlb_random);
  1084. uasm_l_leave(l, *p);
  1085. rv.restore_scratch = 1;
  1086. }
  1087. uasm_i_eret(p); /* return from trap */
  1088. return rv;
  1089. }
  1090. /*
  1091. * For a 64-bit kernel, we are using the 64-bit XTLB refill exception
  1092. * because EXL == 0. If we wrap, we can also use the 32 instruction
  1093. * slots before the XTLB refill exception handler which belong to the
  1094. * unused TLB refill exception.
  1095. */
  1096. #define MIPS64_REFILL_INSNS 32
  1097. static void build_r4000_tlb_refill_handler(void)
  1098. {
  1099. u32 *p = tlb_handler;
  1100. struct uasm_label *l = labels;
  1101. struct uasm_reloc *r = relocs;
  1102. u32 *f;
  1103. unsigned int final_len;
  1104. struct mips_huge_tlb_info htlb_info __maybe_unused;
  1105. enum vmalloc64_mode vmalloc_mode __maybe_unused;
  1106. memset(tlb_handler, 0, sizeof(tlb_handler));
  1107. memset(labels, 0, sizeof(labels));
  1108. memset(relocs, 0, sizeof(relocs));
  1109. memset(final_handler, 0, sizeof(final_handler));
  1110. if ((scratch_reg >= 0 || scratchpad_available()) && use_bbit_insns()) {
  1111. htlb_info = build_fast_tlb_refill_handler(&p, &l, &r, K0, K1,
  1112. scratch_reg);
  1113. vmalloc_mode = refill_scratch;
  1114. } else {
  1115. htlb_info.huge_pte = K0;
  1116. htlb_info.restore_scratch = 0;
  1117. vmalloc_mode = refill_noscratch;
  1118. /*
  1119. * create the plain linear handler
  1120. */
  1121. if (bcm1250_m3_war()) {
  1122. unsigned int segbits = 44;
  1123. uasm_i_dmfc0(&p, K0, C0_BADVADDR);
  1124. uasm_i_dmfc0(&p, K1, C0_ENTRYHI);
  1125. uasm_i_xor(&p, K0, K0, K1);
  1126. uasm_i_dsrl_safe(&p, K1, K0, 62);
  1127. uasm_i_dsrl_safe(&p, K0, K0, 12 + 1);
  1128. uasm_i_dsll_safe(&p, K0, K0, 64 + 12 + 1 - segbits);
  1129. uasm_i_or(&p, K0, K0, K1);
  1130. uasm_il_bnez(&p, &r, K0, label_leave);
  1131. /* No need for uasm_i_nop */
  1132. }
  1133. #ifdef CONFIG_64BIT
  1134. build_get_pmde64(&p, &l, &r, K0, K1); /* get pmd in K1 */
  1135. #else
  1136. build_get_pgde32(&p, K0, K1); /* get pgd in K1 */
  1137. #endif
  1138. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  1139. build_is_huge_pte(&p, &r, K0, K1, label_tlb_huge_update);
  1140. #endif
  1141. build_get_ptep(&p, K0, K1);
  1142. build_update_entries(&p, K0, K1);
  1143. build_tlb_write_entry(&p, &l, &r, tlb_random);
  1144. uasm_l_leave(&l, p);
  1145. uasm_i_eret(&p); /* return from trap */
  1146. }
  1147. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  1148. uasm_l_tlb_huge_update(&l, p);
  1149. build_huge_update_entries(&p, htlb_info.huge_pte, K1);
  1150. build_huge_tlb_write_entry(&p, &l, &r, K0, tlb_random,
  1151. htlb_info.restore_scratch);
  1152. #endif
  1153. #ifdef CONFIG_64BIT
  1154. build_get_pgd_vmalloc64(&p, &l, &r, K0, K1, vmalloc_mode);
  1155. #endif
  1156. /*
  1157. * Overflow check: For the 64bit handler, we need at least one
  1158. * free instruction slot for the wrap-around branch. In worst
  1159. * case, if the intended insertion point is a delay slot, we
  1160. * need three, with the second nop'ed and the third being
  1161. * unused.
  1162. */
  1163. switch (boot_cpu_type()) {
  1164. default:
  1165. if (sizeof(long) == 4) {
  1166. case CPU_LOONGSON2:
  1167. /* Loongson2 ebase is different than r4k, we have more space */
  1168. if ((p - tlb_handler) > 64)
  1169. panic("TLB refill handler space exceeded");
  1170. /*
  1171. * Now fold the handler in the TLB refill handler space.
  1172. */
  1173. f = final_handler;
  1174. /* Simplest case, just copy the handler. */
  1175. uasm_copy_handler(relocs, labels, tlb_handler, p, f);
  1176. final_len = p - tlb_handler;
  1177. break;
  1178. } else {
  1179. if (((p - tlb_handler) > (MIPS64_REFILL_INSNS * 2) - 1)
  1180. || (((p - tlb_handler) > (MIPS64_REFILL_INSNS * 2) - 3)
  1181. && uasm_insn_has_bdelay(relocs,
  1182. tlb_handler + MIPS64_REFILL_INSNS - 3)))
  1183. panic("TLB refill handler space exceeded");
  1184. /*
  1185. * Now fold the handler in the TLB refill handler space.
  1186. */
  1187. f = final_handler + MIPS64_REFILL_INSNS;
  1188. if ((p - tlb_handler) <= MIPS64_REFILL_INSNS) {
  1189. /* Just copy the handler. */
  1190. uasm_copy_handler(relocs, labels, tlb_handler, p, f);
  1191. final_len = p - tlb_handler;
  1192. } else {
  1193. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  1194. const enum label_id ls = label_tlb_huge_update;
  1195. #else
  1196. const enum label_id ls = label_vmalloc;
  1197. #endif
  1198. u32 *split;
  1199. int ov = 0;
  1200. int i;
  1201. for (i = 0; i < ARRAY_SIZE(labels) && labels[i].lab != ls; i++)
  1202. ;
  1203. BUG_ON(i == ARRAY_SIZE(labels));
  1204. split = labels[i].addr;
  1205. /*
  1206. * See if we have overflown one way or the other.
  1207. */
  1208. if (split > tlb_handler + MIPS64_REFILL_INSNS ||
  1209. split < p - MIPS64_REFILL_INSNS)
  1210. ov = 1;
  1211. if (ov) {
  1212. /*
  1213. * Split two instructions before the end. One
  1214. * for the branch and one for the instruction
  1215. * in the delay slot.
  1216. */
  1217. split = tlb_handler + MIPS64_REFILL_INSNS - 2;
  1218. /*
  1219. * If the branch would fall in a delay slot,
  1220. * we must back up an additional instruction
  1221. * so that it is no longer in a delay slot.
  1222. */
  1223. if (uasm_insn_has_bdelay(relocs, split - 1))
  1224. split--;
  1225. }
  1226. /* Copy first part of the handler. */
  1227. uasm_copy_handler(relocs, labels, tlb_handler, split, f);
  1228. f += split - tlb_handler;
  1229. if (ov) {
  1230. /* Insert branch. */
  1231. uasm_l_split(&l, final_handler);
  1232. uasm_il_b(&f, &r, label_split);
  1233. if (uasm_insn_has_bdelay(relocs, split))
  1234. uasm_i_nop(&f);
  1235. else {
  1236. uasm_copy_handler(relocs, labels,
  1237. split, split + 1, f);
  1238. uasm_move_labels(labels, f, f + 1, -1);
  1239. f++;
  1240. split++;
  1241. }
  1242. }
  1243. /* Copy the rest of the handler. */
  1244. uasm_copy_handler(relocs, labels, split, p, final_handler);
  1245. final_len = (f - (final_handler + MIPS64_REFILL_INSNS)) +
  1246. (p - split);
  1247. }
  1248. }
  1249. break;
  1250. }
  1251. uasm_resolve_relocs(relocs, labels);
  1252. pr_debug("Wrote TLB refill handler (%u instructions).\n",
  1253. final_len);
  1254. memcpy((void *)ebase, final_handler, 0x100);
  1255. dump_handler("r4000_tlb_refill", (u32 *)ebase, 64);
  1256. }
  1257. extern u32 handle_tlbl[], handle_tlbl_end[];
  1258. extern u32 handle_tlbs[], handle_tlbs_end[];
  1259. extern u32 handle_tlbm[], handle_tlbm_end[];
  1260. extern u32 tlbmiss_handler_setup_pgd[], tlbmiss_handler_setup_pgd_end[];
  1261. static void build_setup_pgd(void)
  1262. {
  1263. const int a0 = 4;
  1264. const int __maybe_unused a1 = 5;
  1265. const int __maybe_unused a2 = 6;
  1266. u32 *p = tlbmiss_handler_setup_pgd;
  1267. const int tlbmiss_handler_setup_pgd_size =
  1268. tlbmiss_handler_setup_pgd_end - tlbmiss_handler_setup_pgd;
  1269. #ifndef CONFIG_MIPS_PGD_C0_CONTEXT
  1270. long pgdc = (long)pgd_current;
  1271. #endif
  1272. memset(tlbmiss_handler_setup_pgd, 0, tlbmiss_handler_setup_pgd_size *
  1273. sizeof(tlbmiss_handler_setup_pgd[0]));
  1274. memset(labels, 0, sizeof(labels));
  1275. memset(relocs, 0, sizeof(relocs));
  1276. pgd_reg = allocate_kscratch();
  1277. #ifdef CONFIG_MIPS_PGD_C0_CONTEXT
  1278. if (pgd_reg == -1) {
  1279. struct uasm_label *l = labels;
  1280. struct uasm_reloc *r = relocs;
  1281. /* PGD << 11 in c0_Context */
  1282. /*
  1283. * If it is a ckseg0 address, convert to a physical
  1284. * address. Shifting right by 29 and adding 4 will
  1285. * result in zero for these addresses.
  1286. *
  1287. */
  1288. UASM_i_SRA(&p, a1, a0, 29);
  1289. UASM_i_ADDIU(&p, a1, a1, 4);
  1290. uasm_il_bnez(&p, &r, a1, label_tlbl_goaround1);
  1291. uasm_i_nop(&p);
  1292. uasm_i_dinsm(&p, a0, 0, 29, 64 - 29);
  1293. uasm_l_tlbl_goaround1(&l, p);
  1294. UASM_i_SLL(&p, a0, a0, 11);
  1295. uasm_i_jr(&p, 31);
  1296. UASM_i_MTC0(&p, a0, C0_CONTEXT);
  1297. } else {
  1298. /* PGD in c0_KScratch */
  1299. uasm_i_jr(&p, 31);
  1300. UASM_i_MTC0(&p, a0, c0_kscratch(), pgd_reg);
  1301. }
  1302. #else
  1303. #ifdef CONFIG_SMP
  1304. /* Save PGD to pgd_current[smp_processor_id()] */
  1305. UASM_i_CPUID_MFC0(&p, a1, SMP_CPUID_REG);
  1306. UASM_i_SRL_SAFE(&p, a1, a1, SMP_CPUID_PTRSHIFT);
  1307. UASM_i_LA_mostly(&p, a2, pgdc);
  1308. UASM_i_ADDU(&p, a2, a2, a1);
  1309. UASM_i_SW(&p, a0, uasm_rel_lo(pgdc), a2);
  1310. #else
  1311. UASM_i_LA_mostly(&p, a2, pgdc);
  1312. UASM_i_SW(&p, a0, uasm_rel_lo(pgdc), a2);
  1313. #endif /* SMP */
  1314. uasm_i_jr(&p, 31);
  1315. /* if pgd_reg is allocated, save PGD also to scratch register */
  1316. if (pgd_reg != -1)
  1317. UASM_i_MTC0(&p, a0, c0_kscratch(), pgd_reg);
  1318. else
  1319. uasm_i_nop(&p);
  1320. #endif
  1321. if (p >= tlbmiss_handler_setup_pgd_end)
  1322. panic("tlbmiss_handler_setup_pgd space exceeded");
  1323. uasm_resolve_relocs(relocs, labels);
  1324. pr_debug("Wrote tlbmiss_handler_setup_pgd (%u instructions).\n",
  1325. (unsigned int)(p - tlbmiss_handler_setup_pgd));
  1326. dump_handler("tlbmiss_handler", tlbmiss_handler_setup_pgd,
  1327. tlbmiss_handler_setup_pgd_size);
  1328. }
  1329. static void
  1330. iPTE_LW(u32 **p, unsigned int pte, unsigned int ptr)
  1331. {
  1332. #ifdef CONFIG_SMP
  1333. # ifdef CONFIG_64BIT_PHYS_ADDR
  1334. if (cpu_has_64bits)
  1335. uasm_i_lld(p, pte, 0, ptr);
  1336. else
  1337. # endif
  1338. UASM_i_LL(p, pte, 0, ptr);
  1339. #else
  1340. # ifdef CONFIG_64BIT_PHYS_ADDR
  1341. if (cpu_has_64bits)
  1342. uasm_i_ld(p, pte, 0, ptr);
  1343. else
  1344. # endif
  1345. UASM_i_LW(p, pte, 0, ptr);
  1346. #endif
  1347. }
  1348. static void
  1349. iPTE_SW(u32 **p, struct uasm_reloc **r, unsigned int pte, unsigned int ptr,
  1350. unsigned int mode)
  1351. {
  1352. #ifdef CONFIG_64BIT_PHYS_ADDR
  1353. unsigned int hwmode = mode & (_PAGE_VALID | _PAGE_DIRTY);
  1354. #endif
  1355. uasm_i_ori(p, pte, pte, mode);
  1356. #ifdef CONFIG_SMP
  1357. # ifdef CONFIG_64BIT_PHYS_ADDR
  1358. if (cpu_has_64bits)
  1359. uasm_i_scd(p, pte, 0, ptr);
  1360. else
  1361. # endif
  1362. UASM_i_SC(p, pte, 0, ptr);
  1363. if (r10000_llsc_war())
  1364. uasm_il_beqzl(p, r, pte, label_smp_pgtable_change);
  1365. else
  1366. uasm_il_beqz(p, r, pte, label_smp_pgtable_change);
  1367. # ifdef CONFIG_64BIT_PHYS_ADDR
  1368. if (!cpu_has_64bits) {
  1369. /* no uasm_i_nop needed */
  1370. uasm_i_ll(p, pte, sizeof(pte_t) / 2, ptr);
  1371. uasm_i_ori(p, pte, pte, hwmode);
  1372. uasm_i_sc(p, pte, sizeof(pte_t) / 2, ptr);
  1373. uasm_il_beqz(p, r, pte, label_smp_pgtable_change);
  1374. /* no uasm_i_nop needed */
  1375. uasm_i_lw(p, pte, 0, ptr);
  1376. } else
  1377. uasm_i_nop(p);
  1378. # else
  1379. uasm_i_nop(p);
  1380. # endif
  1381. #else
  1382. # ifdef CONFIG_64BIT_PHYS_ADDR
  1383. if (cpu_has_64bits)
  1384. uasm_i_sd(p, pte, 0, ptr);
  1385. else
  1386. # endif
  1387. UASM_i_SW(p, pte, 0, ptr);
  1388. # ifdef CONFIG_64BIT_PHYS_ADDR
  1389. if (!cpu_has_64bits) {
  1390. uasm_i_lw(p, pte, sizeof(pte_t) / 2, ptr);
  1391. uasm_i_ori(p, pte, pte, hwmode);
  1392. uasm_i_sw(p, pte, sizeof(pte_t) / 2, ptr);
  1393. uasm_i_lw(p, pte, 0, ptr);
  1394. }
  1395. # endif
  1396. #endif
  1397. }
  1398. /*
  1399. * Check if PTE is present, if not then jump to LABEL. PTR points to
  1400. * the page table where this PTE is located, PTE will be re-loaded
  1401. * with it's original value.
  1402. */
  1403. static void
  1404. build_pte_present(u32 **p, struct uasm_reloc **r,
  1405. int pte, int ptr, int scratch, enum label_id lid)
  1406. {
  1407. int t = scratch >= 0 ? scratch : pte;
  1408. if (cpu_has_rixi) {
  1409. if (use_bbit_insns()) {
  1410. uasm_il_bbit0(p, r, pte, ilog2(_PAGE_PRESENT), lid);
  1411. uasm_i_nop(p);
  1412. } else {
  1413. uasm_i_andi(p, t, pte, _PAGE_PRESENT);
  1414. uasm_il_beqz(p, r, t, lid);
  1415. if (pte == t)
  1416. /* You lose the SMP race :-(*/
  1417. iPTE_LW(p, pte, ptr);
  1418. }
  1419. } else {
  1420. uasm_i_andi(p, t, pte, _PAGE_PRESENT | _PAGE_READ);
  1421. uasm_i_xori(p, t, t, _PAGE_PRESENT | _PAGE_READ);
  1422. uasm_il_bnez(p, r, t, lid);
  1423. if (pte == t)
  1424. /* You lose the SMP race :-(*/
  1425. iPTE_LW(p, pte, ptr);
  1426. }
  1427. }
  1428. /* Make PTE valid, store result in PTR. */
  1429. static void
  1430. build_make_valid(u32 **p, struct uasm_reloc **r, unsigned int pte,
  1431. unsigned int ptr)
  1432. {
  1433. unsigned int mode = _PAGE_VALID | _PAGE_ACCESSED;
  1434. iPTE_SW(p, r, pte, ptr, mode);
  1435. }
  1436. /*
  1437. * Check if PTE can be written to, if not branch to LABEL. Regardless
  1438. * restore PTE with value from PTR when done.
  1439. */
  1440. static void
  1441. build_pte_writable(u32 **p, struct uasm_reloc **r,
  1442. unsigned int pte, unsigned int ptr, int scratch,
  1443. enum label_id lid)
  1444. {
  1445. int t = scratch >= 0 ? scratch : pte;
  1446. uasm_i_andi(p, t, pte, _PAGE_PRESENT | _PAGE_WRITE);
  1447. uasm_i_xori(p, t, t, _PAGE_PRESENT | _PAGE_WRITE);
  1448. uasm_il_bnez(p, r, t, lid);
  1449. if (pte == t)
  1450. /* You lose the SMP race :-(*/
  1451. iPTE_LW(p, pte, ptr);
  1452. else
  1453. uasm_i_nop(p);
  1454. }
  1455. /* Make PTE writable, update software status bits as well, then store
  1456. * at PTR.
  1457. */
  1458. static void
  1459. build_make_write(u32 **p, struct uasm_reloc **r, unsigned int pte,
  1460. unsigned int ptr)
  1461. {
  1462. unsigned int mode = (_PAGE_ACCESSED | _PAGE_MODIFIED | _PAGE_VALID
  1463. | _PAGE_DIRTY);
  1464. iPTE_SW(p, r, pte, ptr, mode);
  1465. }
  1466. /*
  1467. * Check if PTE can be modified, if not branch to LABEL. Regardless
  1468. * restore PTE with value from PTR when done.
  1469. */
  1470. static void
  1471. build_pte_modifiable(u32 **p, struct uasm_reloc **r,
  1472. unsigned int pte, unsigned int ptr, int scratch,
  1473. enum label_id lid)
  1474. {
  1475. if (use_bbit_insns()) {
  1476. uasm_il_bbit0(p, r, pte, ilog2(_PAGE_WRITE), lid);
  1477. uasm_i_nop(p);
  1478. } else {
  1479. int t = scratch >= 0 ? scratch : pte;
  1480. uasm_i_andi(p, t, pte, _PAGE_WRITE);
  1481. uasm_il_beqz(p, r, t, lid);
  1482. if (pte == t)
  1483. /* You lose the SMP race :-(*/
  1484. iPTE_LW(p, pte, ptr);
  1485. }
  1486. }
  1487. #ifndef CONFIG_MIPS_PGD_C0_CONTEXT
  1488. /*
  1489. * R3000 style TLB load/store/modify handlers.
  1490. */
  1491. /*
  1492. * This places the pte into ENTRYLO0 and writes it with tlbwi.
  1493. * Then it returns.
  1494. */
  1495. static void
  1496. build_r3000_pte_reload_tlbwi(u32 **p, unsigned int pte, unsigned int tmp)
  1497. {
  1498. uasm_i_mtc0(p, pte, C0_ENTRYLO0); /* cp0 delay */
  1499. uasm_i_mfc0(p, tmp, C0_EPC); /* cp0 delay */
  1500. uasm_i_tlbwi(p);
  1501. uasm_i_jr(p, tmp);
  1502. uasm_i_rfe(p); /* branch delay */
  1503. }
  1504. /*
  1505. * This places the pte into ENTRYLO0 and writes it with tlbwi
  1506. * or tlbwr as appropriate. This is because the index register
  1507. * may have the probe fail bit set as a result of a trap on a
  1508. * kseg2 access, i.e. without refill. Then it returns.
  1509. */
  1510. static void
  1511. build_r3000_tlb_reload_write(u32 **p, struct uasm_label **l,
  1512. struct uasm_reloc **r, unsigned int pte,
  1513. unsigned int tmp)
  1514. {
  1515. uasm_i_mfc0(p, tmp, C0_INDEX);
  1516. uasm_i_mtc0(p, pte, C0_ENTRYLO0); /* cp0 delay */
  1517. uasm_il_bltz(p, r, tmp, label_r3000_write_probe_fail); /* cp0 delay */
  1518. uasm_i_mfc0(p, tmp, C0_EPC); /* branch delay */
  1519. uasm_i_tlbwi(p); /* cp0 delay */
  1520. uasm_i_jr(p, tmp);
  1521. uasm_i_rfe(p); /* branch delay */
  1522. uasm_l_r3000_write_probe_fail(l, *p);
  1523. uasm_i_tlbwr(p); /* cp0 delay */
  1524. uasm_i_jr(p, tmp);
  1525. uasm_i_rfe(p); /* branch delay */
  1526. }
  1527. static void
  1528. build_r3000_tlbchange_handler_head(u32 **p, unsigned int pte,
  1529. unsigned int ptr)
  1530. {
  1531. long pgdc = (long)pgd_current;
  1532. uasm_i_mfc0(p, pte, C0_BADVADDR);
  1533. uasm_i_lui(p, ptr, uasm_rel_hi(pgdc)); /* cp0 delay */
  1534. uasm_i_lw(p, ptr, uasm_rel_lo(pgdc), ptr);
  1535. uasm_i_srl(p, pte, pte, 22); /* load delay */
  1536. uasm_i_sll(p, pte, pte, 2);
  1537. uasm_i_addu(p, ptr, ptr, pte);
  1538. uasm_i_mfc0(p, pte, C0_CONTEXT);
  1539. uasm_i_lw(p, ptr, 0, ptr); /* cp0 delay */
  1540. uasm_i_andi(p, pte, pte, 0xffc); /* load delay */
  1541. uasm_i_addu(p, ptr, ptr, pte);
  1542. uasm_i_lw(p, pte, 0, ptr);
  1543. uasm_i_tlbp(p); /* load delay */
  1544. }
  1545. static void build_r3000_tlb_load_handler(void)
  1546. {
  1547. u32 *p = handle_tlbl;
  1548. const int handle_tlbl_size = handle_tlbl_end - handle_tlbl;
  1549. struct uasm_label *l = labels;
  1550. struct uasm_reloc *r = relocs;
  1551. memset(handle_tlbl, 0, handle_tlbl_size * sizeof(handle_tlbl[0]));
  1552. memset(labels, 0, sizeof(labels));
  1553. memset(relocs, 0, sizeof(relocs));
  1554. build_r3000_tlbchange_handler_head(&p, K0, K1);
  1555. build_pte_present(&p, &r, K0, K1, -1, label_nopage_tlbl);
  1556. uasm_i_nop(&p); /* load delay */
  1557. build_make_valid(&p, &r, K0, K1);
  1558. build_r3000_tlb_reload_write(&p, &l, &r, K0, K1);
  1559. uasm_l_nopage_tlbl(&l, p);
  1560. uasm_i_j(&p, (unsigned long)tlb_do_page_fault_0 & 0x0fffffff);
  1561. uasm_i_nop(&p);
  1562. if (p >= handle_tlbl_end)
  1563. panic("TLB load handler fastpath space exceeded");
  1564. uasm_resolve_relocs(relocs, labels);
  1565. pr_debug("Wrote TLB load handler fastpath (%u instructions).\n",
  1566. (unsigned int)(p - handle_tlbl));
  1567. dump_handler("r3000_tlb_load", handle_tlbl, handle_tlbl_size);
  1568. }
  1569. static void build_r3000_tlb_store_handler(void)
  1570. {
  1571. u32 *p = handle_tlbs;
  1572. const int handle_tlbs_size = handle_tlbs_end - handle_tlbs;
  1573. struct uasm_label *l = labels;
  1574. struct uasm_reloc *r = relocs;
  1575. memset(handle_tlbs, 0, handle_tlbs_size * sizeof(handle_tlbs[0]));
  1576. memset(labels, 0, sizeof(labels));
  1577. memset(relocs, 0, sizeof(relocs));
  1578. build_r3000_tlbchange_handler_head(&p, K0, K1);
  1579. build_pte_writable(&p, &r, K0, K1, -1, label_nopage_tlbs);
  1580. uasm_i_nop(&p); /* load delay */
  1581. build_make_write(&p, &r, K0, K1);
  1582. build_r3000_tlb_reload_write(&p, &l, &r, K0, K1);
  1583. uasm_l_nopage_tlbs(&l, p);
  1584. uasm_i_j(&p, (unsigned long)tlb_do_page_fault_1 & 0x0fffffff);
  1585. uasm_i_nop(&p);
  1586. if (p >= handle_tlbs_end)
  1587. panic("TLB store handler fastpath space exceeded");
  1588. uasm_resolve_relocs(relocs, labels);
  1589. pr_debug("Wrote TLB store handler fastpath (%u instructions).\n",
  1590. (unsigned int)(p - handle_tlbs));
  1591. dump_handler("r3000_tlb_store", handle_tlbs, handle_tlbs_size);
  1592. }
  1593. static void build_r3000_tlb_modify_handler(void)
  1594. {
  1595. u32 *p = handle_tlbm;
  1596. const int handle_tlbm_size = handle_tlbm_end - handle_tlbm;
  1597. struct uasm_label *l = labels;
  1598. struct uasm_reloc *r = relocs;
  1599. memset(handle_tlbm, 0, handle_tlbm_size * sizeof(handle_tlbm[0]));
  1600. memset(labels, 0, sizeof(labels));
  1601. memset(relocs, 0, sizeof(relocs));
  1602. build_r3000_tlbchange_handler_head(&p, K0, K1);
  1603. build_pte_modifiable(&p, &r, K0, K1, -1, label_nopage_tlbm);
  1604. uasm_i_nop(&p); /* load delay */
  1605. build_make_write(&p, &r, K0, K1);
  1606. build_r3000_pte_reload_tlbwi(&p, K0, K1);
  1607. uasm_l_nopage_tlbm(&l, p);
  1608. uasm_i_j(&p, (unsigned long)tlb_do_page_fault_1 & 0x0fffffff);
  1609. uasm_i_nop(&p);
  1610. if (p >= handle_tlbm_end)
  1611. panic("TLB modify handler fastpath space exceeded");
  1612. uasm_resolve_relocs(relocs, labels);
  1613. pr_debug("Wrote TLB modify handler fastpath (%u instructions).\n",
  1614. (unsigned int)(p - handle_tlbm));
  1615. dump_handler("r3000_tlb_modify", handle_tlbm, handle_tlbm_size);
  1616. }
  1617. #endif /* CONFIG_MIPS_PGD_C0_CONTEXT */
  1618. /*
  1619. * R4000 style TLB load/store/modify handlers.
  1620. */
  1621. static struct work_registers
  1622. build_r4000_tlbchange_handler_head(u32 **p, struct uasm_label **l,
  1623. struct uasm_reloc **r)
  1624. {
  1625. struct work_registers wr = build_get_work_registers(p);
  1626. #ifdef CONFIG_64BIT
  1627. build_get_pmde64(p, l, r, wr.r1, wr.r2); /* get pmd in ptr */
  1628. #else
  1629. build_get_pgde32(p, wr.r1, wr.r2); /* get pgd in ptr */
  1630. #endif
  1631. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  1632. /*
  1633. * For huge tlb entries, pmd doesn't contain an address but
  1634. * instead contains the tlb pte. Check the PAGE_HUGE bit and
  1635. * see if we need to jump to huge tlb processing.
  1636. */
  1637. build_is_huge_pte(p, r, wr.r1, wr.r2, label_tlb_huge_update);
  1638. #endif
  1639. UASM_i_MFC0(p, wr.r1, C0_BADVADDR);
  1640. UASM_i_LW(p, wr.r2, 0, wr.r2);
  1641. UASM_i_SRL(p, wr.r1, wr.r1, PAGE_SHIFT + PTE_ORDER - PTE_T_LOG2);
  1642. uasm_i_andi(p, wr.r1, wr.r1, (PTRS_PER_PTE - 1) << PTE_T_LOG2);
  1643. UASM_i_ADDU(p, wr.r2, wr.r2, wr.r1);
  1644. #ifdef CONFIG_SMP
  1645. uasm_l_smp_pgtable_change(l, *p);
  1646. #endif
  1647. iPTE_LW(p, wr.r1, wr.r2); /* get even pte */
  1648. if (!m4kc_tlbp_war())
  1649. build_tlb_probe_entry(p);
  1650. return wr;
  1651. }
  1652. static void
  1653. build_r4000_tlbchange_handler_tail(u32 **p, struct uasm_label **l,
  1654. struct uasm_reloc **r, unsigned int tmp,
  1655. unsigned int ptr)
  1656. {
  1657. uasm_i_ori(p, ptr, ptr, sizeof(pte_t));
  1658. uasm_i_xori(p, ptr, ptr, sizeof(pte_t));
  1659. build_update_entries(p, tmp, ptr);
  1660. build_tlb_write_entry(p, l, r, tlb_indexed);
  1661. uasm_l_leave(l, *p);
  1662. build_restore_work_registers(p);
  1663. uasm_i_eret(p); /* return from trap */
  1664. #ifdef CONFIG_64BIT
  1665. build_get_pgd_vmalloc64(p, l, r, tmp, ptr, not_refill);
  1666. #endif
  1667. }
  1668. static void build_r4000_tlb_load_handler(void)
  1669. {
  1670. u32 *p = handle_tlbl;
  1671. const int handle_tlbl_size = handle_tlbl_end - handle_tlbl;
  1672. struct uasm_label *l = labels;
  1673. struct uasm_reloc *r = relocs;
  1674. struct work_registers wr;
  1675. memset(handle_tlbl, 0, handle_tlbl_size * sizeof(handle_tlbl[0]));
  1676. memset(labels, 0, sizeof(labels));
  1677. memset(relocs, 0, sizeof(relocs));
  1678. if (bcm1250_m3_war()) {
  1679. unsigned int segbits = 44;
  1680. uasm_i_dmfc0(&p, K0, C0_BADVADDR);
  1681. uasm_i_dmfc0(&p, K1, C0_ENTRYHI);
  1682. uasm_i_xor(&p, K0, K0, K1);
  1683. uasm_i_dsrl_safe(&p, K1, K0, 62);
  1684. uasm_i_dsrl_safe(&p, K0, K0, 12 + 1);
  1685. uasm_i_dsll_safe(&p, K0, K0, 64 + 12 + 1 - segbits);
  1686. uasm_i_or(&p, K0, K0, K1);
  1687. uasm_il_bnez(&p, &r, K0, label_leave);
  1688. /* No need for uasm_i_nop */
  1689. }
  1690. wr = build_r4000_tlbchange_handler_head(&p, &l, &r);
  1691. build_pte_present(&p, &r, wr.r1, wr.r2, wr.r3, label_nopage_tlbl);
  1692. if (m4kc_tlbp_war())
  1693. build_tlb_probe_entry(&p);
  1694. if (cpu_has_rixi) {
  1695. /*
  1696. * If the page is not _PAGE_VALID, RI or XI could not
  1697. * have triggered it. Skip the expensive test..
  1698. */
  1699. if (use_bbit_insns()) {
  1700. uasm_il_bbit0(&p, &r, wr.r1, ilog2(_PAGE_VALID),
  1701. label_tlbl_goaround1);
  1702. } else {
  1703. uasm_i_andi(&p, wr.r3, wr.r1, _PAGE_VALID);
  1704. uasm_il_beqz(&p, &r, wr.r3, label_tlbl_goaround1);
  1705. }
  1706. uasm_i_nop(&p);
  1707. uasm_i_tlbr(&p);
  1708. switch (current_cpu_type()) {
  1709. default:
  1710. if (cpu_has_mips_r2) {
  1711. uasm_i_ehb(&p);
  1712. case CPU_CAVIUM_OCTEON:
  1713. case CPU_CAVIUM_OCTEON_PLUS:
  1714. case CPU_CAVIUM_OCTEON2:
  1715. break;
  1716. }
  1717. }
  1718. /* Examine entrylo 0 or 1 based on ptr. */
  1719. if (use_bbit_insns()) {
  1720. uasm_i_bbit0(&p, wr.r2, ilog2(sizeof(pte_t)), 8);
  1721. } else {
  1722. uasm_i_andi(&p, wr.r3, wr.r2, sizeof(pte_t));
  1723. uasm_i_beqz(&p, wr.r3, 8);
  1724. }
  1725. /* load it in the delay slot*/
  1726. UASM_i_MFC0(&p, wr.r3, C0_ENTRYLO0);
  1727. /* load it if ptr is odd */
  1728. UASM_i_MFC0(&p, wr.r3, C0_ENTRYLO1);
  1729. /*
  1730. * If the entryLo (now in wr.r3) is valid (bit 1), RI or
  1731. * XI must have triggered it.
  1732. */
  1733. if (use_bbit_insns()) {
  1734. uasm_il_bbit1(&p, &r, wr.r3, 1, label_nopage_tlbl);
  1735. uasm_i_nop(&p);
  1736. uasm_l_tlbl_goaround1(&l, p);
  1737. } else {
  1738. uasm_i_andi(&p, wr.r3, wr.r3, 2);
  1739. uasm_il_bnez(&p, &r, wr.r3, label_nopage_tlbl);
  1740. uasm_i_nop(&p);
  1741. }
  1742. uasm_l_tlbl_goaround1(&l, p);
  1743. }
  1744. build_make_valid(&p, &r, wr.r1, wr.r2);
  1745. build_r4000_tlbchange_handler_tail(&p, &l, &r, wr.r1, wr.r2);
  1746. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  1747. /*
  1748. * This is the entry point when build_r4000_tlbchange_handler_head
  1749. * spots a huge page.
  1750. */
  1751. uasm_l_tlb_huge_update(&l, p);
  1752. iPTE_LW(&p, wr.r1, wr.r2);
  1753. build_pte_present(&p, &r, wr.r1, wr.r2, wr.r3, label_nopage_tlbl);
  1754. build_tlb_probe_entry(&p);
  1755. if (cpu_has_rixi) {
  1756. /*
  1757. * If the page is not _PAGE_VALID, RI or XI could not
  1758. * have triggered it. Skip the expensive test..
  1759. */
  1760. if (use_bbit_insns()) {
  1761. uasm_il_bbit0(&p, &r, wr.r1, ilog2(_PAGE_VALID),
  1762. label_tlbl_goaround2);
  1763. } else {
  1764. uasm_i_andi(&p, wr.r3, wr.r1, _PAGE_VALID);
  1765. uasm_il_beqz(&p, &r, wr.r3, label_tlbl_goaround2);
  1766. }
  1767. uasm_i_nop(&p);
  1768. uasm_i_tlbr(&p);
  1769. switch (current_cpu_type()) {
  1770. default:
  1771. if (cpu_has_mips_r2) {
  1772. uasm_i_ehb(&p);
  1773. case CPU_CAVIUM_OCTEON:
  1774. case CPU_CAVIUM_OCTEON_PLUS:
  1775. case CPU_CAVIUM_OCTEON2:
  1776. break;
  1777. }
  1778. }
  1779. /* Examine entrylo 0 or 1 based on ptr. */
  1780. if (use_bbit_insns()) {
  1781. uasm_i_bbit0(&p, wr.r2, ilog2(sizeof(pte_t)), 8);
  1782. } else {
  1783. uasm_i_andi(&p, wr.r3, wr.r2, sizeof(pte_t));
  1784. uasm_i_beqz(&p, wr.r3, 8);
  1785. }
  1786. /* load it in the delay slot*/
  1787. UASM_i_MFC0(&p, wr.r3, C0_ENTRYLO0);
  1788. /* load it if ptr is odd */
  1789. UASM_i_MFC0(&p, wr.r3, C0_ENTRYLO1);
  1790. /*
  1791. * If the entryLo (now in wr.r3) is valid (bit 1), RI or
  1792. * XI must have triggered it.
  1793. */
  1794. if (use_bbit_insns()) {
  1795. uasm_il_bbit0(&p, &r, wr.r3, 1, label_tlbl_goaround2);
  1796. } else {
  1797. uasm_i_andi(&p, wr.r3, wr.r3, 2);
  1798. uasm_il_beqz(&p, &r, wr.r3, label_tlbl_goaround2);
  1799. }
  1800. if (PM_DEFAULT_MASK == 0)
  1801. uasm_i_nop(&p);
  1802. /*
  1803. * We clobbered C0_PAGEMASK, restore it. On the other branch
  1804. * it is restored in build_huge_tlb_write_entry.
  1805. */
  1806. build_restore_pagemask(&p, &r, wr.r3, label_nopage_tlbl, 0);
  1807. uasm_l_tlbl_goaround2(&l, p);
  1808. }
  1809. uasm_i_ori(&p, wr.r1, wr.r1, (_PAGE_ACCESSED | _PAGE_VALID));
  1810. build_huge_handler_tail(&p, &r, &l, wr.r1, wr.r2);
  1811. #endif
  1812. uasm_l_nopage_tlbl(&l, p);
  1813. build_restore_work_registers(&p);
  1814. #ifdef CONFIG_CPU_MICROMIPS
  1815. if ((unsigned long)tlb_do_page_fault_0 & 1) {
  1816. uasm_i_lui(&p, K0, uasm_rel_hi((long)tlb_do_page_fault_0));
  1817. uasm_i_addiu(&p, K0, K0, uasm_rel_lo((long)tlb_do_page_fault_0));
  1818. uasm_i_jr(&p, K0);
  1819. } else
  1820. #endif
  1821. uasm_i_j(&p, (unsigned long)tlb_do_page_fault_0 & 0x0fffffff);
  1822. uasm_i_nop(&p);
  1823. if (p >= handle_tlbl_end)
  1824. panic("TLB load handler fastpath space exceeded");
  1825. uasm_resolve_relocs(relocs, labels);
  1826. pr_debug("Wrote TLB load handler fastpath (%u instructions).\n",
  1827. (unsigned int)(p - handle_tlbl));
  1828. dump_handler("r4000_tlb_load", handle_tlbl, handle_tlbl_size);
  1829. }
  1830. static void build_r4000_tlb_store_handler(void)
  1831. {
  1832. u32 *p = handle_tlbs;
  1833. const int handle_tlbs_size = handle_tlbs_end - handle_tlbs;
  1834. struct uasm_label *l = labels;
  1835. struct uasm_reloc *r = relocs;
  1836. struct work_registers wr;
  1837. memset(handle_tlbs, 0, handle_tlbs_size * sizeof(handle_tlbs[0]));
  1838. memset(labels, 0, sizeof(labels));
  1839. memset(relocs, 0, sizeof(relocs));
  1840. wr = build_r4000_tlbchange_handler_head(&p, &l, &r);
  1841. build_pte_writable(&p, &r, wr.r1, wr.r2, wr.r3, label_nopage_tlbs);
  1842. if (m4kc_tlbp_war())
  1843. build_tlb_probe_entry(&p);
  1844. build_make_write(&p, &r, wr.r1, wr.r2);
  1845. build_r4000_tlbchange_handler_tail(&p, &l, &r, wr.r1, wr.r2);
  1846. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  1847. /*
  1848. * This is the entry point when
  1849. * build_r4000_tlbchange_handler_head spots a huge page.
  1850. */
  1851. uasm_l_tlb_huge_update(&l, p);
  1852. iPTE_LW(&p, wr.r1, wr.r2);
  1853. build_pte_writable(&p, &r, wr.r1, wr.r2, wr.r3, label_nopage_tlbs);
  1854. build_tlb_probe_entry(&p);
  1855. uasm_i_ori(&p, wr.r1, wr.r1,
  1856. _PAGE_ACCESSED | _PAGE_MODIFIED | _PAGE_VALID | _PAGE_DIRTY);
  1857. build_huge_handler_tail(&p, &r, &l, wr.r1, wr.r2);
  1858. #endif
  1859. uasm_l_nopage_tlbs(&l, p);
  1860. build_restore_work_registers(&p);
  1861. #ifdef CONFIG_CPU_MICROMIPS
  1862. if ((unsigned long)tlb_do_page_fault_1 & 1) {
  1863. uasm_i_lui(&p, K0, uasm_rel_hi((long)tlb_do_page_fault_1));
  1864. uasm_i_addiu(&p, K0, K0, uasm_rel_lo((long)tlb_do_page_fault_1));
  1865. uasm_i_jr(&p, K0);
  1866. } else
  1867. #endif
  1868. uasm_i_j(&p, (unsigned long)tlb_do_page_fault_1 & 0x0fffffff);
  1869. uasm_i_nop(&p);
  1870. if (p >= handle_tlbs_end)
  1871. panic("TLB store handler fastpath space exceeded");
  1872. uasm_resolve_relocs(relocs, labels);
  1873. pr_debug("Wrote TLB store handler fastpath (%u instructions).\n",
  1874. (unsigned int)(p - handle_tlbs));
  1875. dump_handler("r4000_tlb_store", handle_tlbs, handle_tlbs_size);
  1876. }
  1877. static void build_r4000_tlb_modify_handler(void)
  1878. {
  1879. u32 *p = handle_tlbm;
  1880. const int handle_tlbm_size = handle_tlbm_end - handle_tlbm;
  1881. struct uasm_label *l = labels;
  1882. struct uasm_reloc *r = relocs;
  1883. struct work_registers wr;
  1884. memset(handle_tlbm, 0, handle_tlbm_size * sizeof(handle_tlbm[0]));
  1885. memset(labels, 0, sizeof(labels));
  1886. memset(relocs, 0, sizeof(relocs));
  1887. wr = build_r4000_tlbchange_handler_head(&p, &l, &r);
  1888. build_pte_modifiable(&p, &r, wr.r1, wr.r2, wr.r3, label_nopage_tlbm);
  1889. if (m4kc_tlbp_war())
  1890. build_tlb_probe_entry(&p);
  1891. /* Present and writable bits set, set accessed and dirty bits. */
  1892. build_make_write(&p, &r, wr.r1, wr.r2);
  1893. build_r4000_tlbchange_handler_tail(&p, &l, &r, wr.r1, wr.r2);
  1894. #ifdef CONFIG_MIPS_HUGE_TLB_SUPPORT
  1895. /*
  1896. * This is the entry point when
  1897. * build_r4000_tlbchange_handler_head spots a huge page.
  1898. */
  1899. uasm_l_tlb_huge_update(&l, p);
  1900. iPTE_LW(&p, wr.r1, wr.r2);
  1901. build_pte_modifiable(&p, &r, wr.r1, wr.r2, wr.r3, label_nopage_tlbm);
  1902. build_tlb_probe_entry(&p);
  1903. uasm_i_ori(&p, wr.r1, wr.r1,
  1904. _PAGE_ACCESSED | _PAGE_MODIFIED | _PAGE_VALID | _PAGE_DIRTY);
  1905. build_huge_handler_tail(&p, &r, &l, wr.r1, wr.r2);
  1906. #endif
  1907. uasm_l_nopage_tlbm(&l, p);
  1908. build_restore_work_registers(&p);
  1909. #ifdef CONFIG_CPU_MICROMIPS
  1910. if ((unsigned long)tlb_do_page_fault_1 & 1) {
  1911. uasm_i_lui(&p, K0, uasm_rel_hi((long)tlb_do_page_fault_1));
  1912. uasm_i_addiu(&p, K0, K0, uasm_rel_lo((long)tlb_do_page_fault_1));
  1913. uasm_i_jr(&p, K0);
  1914. } else
  1915. #endif
  1916. uasm_i_j(&p, (unsigned long)tlb_do_page_fault_1 & 0x0fffffff);
  1917. uasm_i_nop(&p);
  1918. if (p >= handle_tlbm_end)
  1919. panic("TLB modify handler fastpath space exceeded");
  1920. uasm_resolve_relocs(relocs, labels);
  1921. pr_debug("Wrote TLB modify handler fastpath (%u instructions).\n",
  1922. (unsigned int)(p - handle_tlbm));
  1923. dump_handler("r4000_tlb_modify", handle_tlbm, handle_tlbm_size);
  1924. }
  1925. static void flush_tlb_handlers(void)
  1926. {
  1927. local_flush_icache_range((unsigned long)handle_tlbl,
  1928. (unsigned long)handle_tlbl_end);
  1929. local_flush_icache_range((unsigned long)handle_tlbs,
  1930. (unsigned long)handle_tlbs_end);
  1931. local_flush_icache_range((unsigned long)handle_tlbm,
  1932. (unsigned long)handle_tlbm_end);
  1933. local_flush_icache_range((unsigned long)tlbmiss_handler_setup_pgd,
  1934. (unsigned long)tlbmiss_handler_setup_pgd_end);
  1935. }
  1936. void build_tlb_refill_handler(void)
  1937. {
  1938. /*
  1939. * The refill handler is generated per-CPU, multi-node systems
  1940. * may have local storage for it. The other handlers are only
  1941. * needed once.
  1942. */
  1943. static int run_once = 0;
  1944. output_pgtable_bits_defines();
  1945. #ifdef CONFIG_64BIT
  1946. check_for_high_segbits = current_cpu_data.vmbits > (PGDIR_SHIFT + PGD_ORDER + PAGE_SHIFT - 3);
  1947. #endif
  1948. switch (current_cpu_type()) {
  1949. case CPU_R2000:
  1950. case CPU_R3000:
  1951. case CPU_R3000A:
  1952. case CPU_R3081E:
  1953. case CPU_TX3912:
  1954. case CPU_TX3922:
  1955. case CPU_TX3927:
  1956. #ifndef CONFIG_MIPS_PGD_C0_CONTEXT
  1957. if (cpu_has_local_ebase)
  1958. build_r3000_tlb_refill_handler();
  1959. if (!run_once) {
  1960. if (!cpu_has_local_ebase)
  1961. build_r3000_tlb_refill_handler();
  1962. build_setup_pgd();
  1963. build_r3000_tlb_load_handler();
  1964. build_r3000_tlb_store_handler();
  1965. build_r3000_tlb_modify_handler();
  1966. flush_tlb_handlers();
  1967. run_once++;
  1968. }
  1969. #else
  1970. panic("No R3000 TLB refill handler");
  1971. #endif
  1972. break;
  1973. case CPU_R6000:
  1974. case CPU_R6000A:
  1975. panic("No R6000 TLB refill handler yet");
  1976. break;
  1977. case CPU_R8000:
  1978. panic("No R8000 TLB refill handler yet");
  1979. break;
  1980. default:
  1981. if (!run_once) {
  1982. scratch_reg = allocate_kscratch();
  1983. build_setup_pgd();
  1984. build_r4000_tlb_load_handler();
  1985. build_r4000_tlb_store_handler();
  1986. build_r4000_tlb_modify_handler();
  1987. if (!cpu_has_local_ebase)
  1988. build_r4000_tlb_refill_handler();
  1989. flush_tlb_handlers();
  1990. run_once++;
  1991. }
  1992. if (cpu_has_local_ebase)
  1993. build_r4000_tlb_refill_handler();
  1994. }
  1995. }