e500_tlb.c 36 KB

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  1. /*
  2. * Copyright (C) 2008-2011 Freescale Semiconductor, Inc. All rights reserved.
  3. *
  4. * Author: Yu Liu, yu.liu@freescale.com
  5. * Scott Wood, scottwood@freescale.com
  6. * Ashish Kalra, ashish.kalra@freescale.com
  7. * Varun Sethi, varun.sethi@freescale.com
  8. *
  9. * Description:
  10. * This file is based on arch/powerpc/kvm/44x_tlb.c,
  11. * by Hollis Blanchard <hollisb@us.ibm.com>.
  12. *
  13. * This program is free software; you can redistribute it and/or modify
  14. * it under the terms of the GNU General Public License, version 2, as
  15. * published by the Free Software Foundation.
  16. */
  17. #include <linux/kernel.h>
  18. #include <linux/types.h>
  19. #include <linux/slab.h>
  20. #include <linux/string.h>
  21. #include <linux/kvm.h>
  22. #include <linux/kvm_host.h>
  23. #include <linux/highmem.h>
  24. #include <linux/log2.h>
  25. #include <linux/uaccess.h>
  26. #include <linux/sched.h>
  27. #include <linux/rwsem.h>
  28. #include <linux/vmalloc.h>
  29. #include <linux/hugetlb.h>
  30. #include <asm/kvm_ppc.h>
  31. #include "e500.h"
  32. #include "trace.h"
  33. #include "timing.h"
  34. #define to_htlb1_esel(esel) (host_tlb_params[1].entries - (esel) - 1)
  35. static struct kvmppc_e500_tlb_params host_tlb_params[E500_TLB_NUM];
  36. static inline unsigned int gtlb0_get_next_victim(
  37. struct kvmppc_vcpu_e500 *vcpu_e500)
  38. {
  39. unsigned int victim;
  40. victim = vcpu_e500->gtlb_nv[0]++;
  41. if (unlikely(vcpu_e500->gtlb_nv[0] >= vcpu_e500->gtlb_params[0].ways))
  42. vcpu_e500->gtlb_nv[0] = 0;
  43. return victim;
  44. }
  45. static inline unsigned int tlb1_max_shadow_size(void)
  46. {
  47. /* reserve one entry for magic page */
  48. return host_tlb_params[1].entries - tlbcam_index - 1;
  49. }
  50. static inline int tlbe_is_writable(struct kvm_book3e_206_tlb_entry *tlbe)
  51. {
  52. return tlbe->mas7_3 & (MAS3_SW|MAS3_UW);
  53. }
  54. static inline u32 e500_shadow_mas3_attrib(u32 mas3, int usermode)
  55. {
  56. /* Mask off reserved bits. */
  57. mas3 &= MAS3_ATTRIB_MASK;
  58. #ifndef CONFIG_KVM_BOOKE_HV
  59. if (!usermode) {
  60. /* Guest is in supervisor mode,
  61. * so we need to translate guest
  62. * supervisor permissions into user permissions. */
  63. mas3 &= ~E500_TLB_USER_PERM_MASK;
  64. mas3 |= (mas3 & E500_TLB_SUPER_PERM_MASK) << 1;
  65. }
  66. mas3 |= E500_TLB_SUPER_PERM_MASK;
  67. #endif
  68. return mas3;
  69. }
  70. static inline u32 e500_shadow_mas2_attrib(u32 mas2, int usermode)
  71. {
  72. #ifdef CONFIG_SMP
  73. return (mas2 & MAS2_ATTRIB_MASK) | MAS2_M;
  74. #else
  75. return mas2 & MAS2_ATTRIB_MASK;
  76. #endif
  77. }
  78. /*
  79. * writing shadow tlb entry to host TLB
  80. */
  81. static inline void __write_host_tlbe(struct kvm_book3e_206_tlb_entry *stlbe,
  82. uint32_t mas0)
  83. {
  84. unsigned long flags;
  85. local_irq_save(flags);
  86. mtspr(SPRN_MAS0, mas0);
  87. mtspr(SPRN_MAS1, stlbe->mas1);
  88. mtspr(SPRN_MAS2, (unsigned long)stlbe->mas2);
  89. mtspr(SPRN_MAS3, (u32)stlbe->mas7_3);
  90. mtspr(SPRN_MAS7, (u32)(stlbe->mas7_3 >> 32));
  91. #ifdef CONFIG_KVM_BOOKE_HV
  92. mtspr(SPRN_MAS8, stlbe->mas8);
  93. #endif
  94. asm volatile("isync; tlbwe" : : : "memory");
  95. #ifdef CONFIG_KVM_BOOKE_HV
  96. /* Must clear mas8 for other host tlbwe's */
  97. mtspr(SPRN_MAS8, 0);
  98. isync();
  99. #endif
  100. local_irq_restore(flags);
  101. trace_kvm_booke206_stlb_write(mas0, stlbe->mas8, stlbe->mas1,
  102. stlbe->mas2, stlbe->mas7_3);
  103. }
  104. /*
  105. * Acquire a mas0 with victim hint, as if we just took a TLB miss.
  106. *
  107. * We don't care about the address we're searching for, other than that it's
  108. * in the right set and is not present in the TLB. Using a zero PID and a
  109. * userspace address means we don't have to set and then restore MAS5, or
  110. * calculate a proper MAS6 value.
  111. */
  112. static u32 get_host_mas0(unsigned long eaddr)
  113. {
  114. unsigned long flags;
  115. u32 mas0;
  116. local_irq_save(flags);
  117. mtspr(SPRN_MAS6, 0);
  118. asm volatile("tlbsx 0, %0" : : "b" (eaddr & ~CONFIG_PAGE_OFFSET));
  119. mas0 = mfspr(SPRN_MAS0);
  120. local_irq_restore(flags);
  121. return mas0;
  122. }
  123. /* sesel is for tlb1 only */
  124. static inline void write_host_tlbe(struct kvmppc_vcpu_e500 *vcpu_e500,
  125. int tlbsel, int sesel, struct kvm_book3e_206_tlb_entry *stlbe)
  126. {
  127. u32 mas0;
  128. if (tlbsel == 0) {
  129. mas0 = get_host_mas0(stlbe->mas2);
  130. __write_host_tlbe(stlbe, mas0);
  131. } else {
  132. __write_host_tlbe(stlbe,
  133. MAS0_TLBSEL(1) |
  134. MAS0_ESEL(to_htlb1_esel(sesel)));
  135. }
  136. }
  137. #ifdef CONFIG_KVM_E500V2
  138. void kvmppc_map_magic(struct kvm_vcpu *vcpu)
  139. {
  140. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  141. struct kvm_book3e_206_tlb_entry magic;
  142. ulong shared_page = ((ulong)vcpu->arch.shared) & PAGE_MASK;
  143. unsigned int stid;
  144. pfn_t pfn;
  145. pfn = (pfn_t)virt_to_phys((void *)shared_page) >> PAGE_SHIFT;
  146. get_page(pfn_to_page(pfn));
  147. preempt_disable();
  148. stid = kvmppc_e500_get_sid(vcpu_e500, 0, 0, 0, 0);
  149. magic.mas1 = MAS1_VALID | MAS1_TS | MAS1_TID(stid) |
  150. MAS1_TSIZE(BOOK3E_PAGESZ_4K);
  151. magic.mas2 = vcpu->arch.magic_page_ea | MAS2_M;
  152. magic.mas7_3 = ((u64)pfn << PAGE_SHIFT) |
  153. MAS3_SW | MAS3_SR | MAS3_UW | MAS3_UR;
  154. magic.mas8 = 0;
  155. __write_host_tlbe(&magic, MAS0_TLBSEL(1) | MAS0_ESEL(tlbcam_index));
  156. preempt_enable();
  157. }
  158. #endif
  159. static void inval_gtlbe_on_host(struct kvmppc_vcpu_e500 *vcpu_e500,
  160. int tlbsel, int esel)
  161. {
  162. struct kvm_book3e_206_tlb_entry *gtlbe =
  163. get_entry(vcpu_e500, tlbsel, esel);
  164. if (tlbsel == 1 &&
  165. vcpu_e500->gtlb_priv[1][esel].ref.flags & E500_TLB_BITMAP) {
  166. u64 tmp = vcpu_e500->g2h_tlb1_map[esel];
  167. int hw_tlb_indx;
  168. unsigned long flags;
  169. local_irq_save(flags);
  170. while (tmp) {
  171. hw_tlb_indx = __ilog2_u64(tmp & -tmp);
  172. mtspr(SPRN_MAS0,
  173. MAS0_TLBSEL(1) |
  174. MAS0_ESEL(to_htlb1_esel(hw_tlb_indx)));
  175. mtspr(SPRN_MAS1, 0);
  176. asm volatile("tlbwe");
  177. vcpu_e500->h2g_tlb1_rmap[hw_tlb_indx] = 0;
  178. tmp &= tmp - 1;
  179. }
  180. mb();
  181. vcpu_e500->g2h_tlb1_map[esel] = 0;
  182. vcpu_e500->gtlb_priv[1][esel].ref.flags &= ~E500_TLB_BITMAP;
  183. local_irq_restore(flags);
  184. return;
  185. }
  186. /* Guest tlbe is backed by at most one host tlbe per shadow pid. */
  187. kvmppc_e500_tlbil_one(vcpu_e500, gtlbe);
  188. }
  189. static int tlb0_set_base(gva_t addr, int sets, int ways)
  190. {
  191. int set_base;
  192. set_base = (addr >> PAGE_SHIFT) & (sets - 1);
  193. set_base *= ways;
  194. return set_base;
  195. }
  196. static int gtlb0_set_base(struct kvmppc_vcpu_e500 *vcpu_e500, gva_t addr)
  197. {
  198. return tlb0_set_base(addr, vcpu_e500->gtlb_params[0].sets,
  199. vcpu_e500->gtlb_params[0].ways);
  200. }
  201. static unsigned int get_tlb_esel(struct kvm_vcpu *vcpu, int tlbsel)
  202. {
  203. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  204. int esel = get_tlb_esel_bit(vcpu);
  205. if (tlbsel == 0) {
  206. esel &= vcpu_e500->gtlb_params[0].ways - 1;
  207. esel += gtlb0_set_base(vcpu_e500, vcpu->arch.shared->mas2);
  208. } else {
  209. esel &= vcpu_e500->gtlb_params[tlbsel].entries - 1;
  210. }
  211. return esel;
  212. }
  213. /* Search the guest TLB for a matching entry. */
  214. static int kvmppc_e500_tlb_index(struct kvmppc_vcpu_e500 *vcpu_e500,
  215. gva_t eaddr, int tlbsel, unsigned int pid, int as)
  216. {
  217. int size = vcpu_e500->gtlb_params[tlbsel].entries;
  218. unsigned int set_base, offset;
  219. int i;
  220. if (tlbsel == 0) {
  221. set_base = gtlb0_set_base(vcpu_e500, eaddr);
  222. size = vcpu_e500->gtlb_params[0].ways;
  223. } else {
  224. if (eaddr < vcpu_e500->tlb1_min_eaddr ||
  225. eaddr > vcpu_e500->tlb1_max_eaddr)
  226. return -1;
  227. set_base = 0;
  228. }
  229. offset = vcpu_e500->gtlb_offset[tlbsel];
  230. for (i = 0; i < size; i++) {
  231. struct kvm_book3e_206_tlb_entry *tlbe =
  232. &vcpu_e500->gtlb_arch[offset + set_base + i];
  233. unsigned int tid;
  234. if (eaddr < get_tlb_eaddr(tlbe))
  235. continue;
  236. if (eaddr > get_tlb_end(tlbe))
  237. continue;
  238. tid = get_tlb_tid(tlbe);
  239. if (tid && (tid != pid))
  240. continue;
  241. if (!get_tlb_v(tlbe))
  242. continue;
  243. if (get_tlb_ts(tlbe) != as && as != -1)
  244. continue;
  245. return set_base + i;
  246. }
  247. return -1;
  248. }
  249. static inline void kvmppc_e500_ref_setup(struct tlbe_ref *ref,
  250. struct kvm_book3e_206_tlb_entry *gtlbe,
  251. pfn_t pfn)
  252. {
  253. ref->pfn = pfn;
  254. ref->flags = E500_TLB_VALID;
  255. if (tlbe_is_writable(gtlbe))
  256. ref->flags |= E500_TLB_DIRTY;
  257. }
  258. static inline void kvmppc_e500_ref_release(struct tlbe_ref *ref)
  259. {
  260. if (ref->flags & E500_TLB_VALID) {
  261. if (ref->flags & E500_TLB_DIRTY)
  262. kvm_release_pfn_dirty(ref->pfn);
  263. else
  264. kvm_release_pfn_clean(ref->pfn);
  265. ref->flags = 0;
  266. }
  267. }
  268. static void clear_tlb1_bitmap(struct kvmppc_vcpu_e500 *vcpu_e500)
  269. {
  270. if (vcpu_e500->g2h_tlb1_map)
  271. memset(vcpu_e500->g2h_tlb1_map, 0,
  272. sizeof(u64) * vcpu_e500->gtlb_params[1].entries);
  273. if (vcpu_e500->h2g_tlb1_rmap)
  274. memset(vcpu_e500->h2g_tlb1_rmap, 0,
  275. sizeof(unsigned int) * host_tlb_params[1].entries);
  276. }
  277. static void clear_tlb_privs(struct kvmppc_vcpu_e500 *vcpu_e500)
  278. {
  279. int tlbsel = 0;
  280. int i;
  281. for (i = 0; i < vcpu_e500->gtlb_params[tlbsel].entries; i++) {
  282. struct tlbe_ref *ref =
  283. &vcpu_e500->gtlb_priv[tlbsel][i].ref;
  284. kvmppc_e500_ref_release(ref);
  285. }
  286. }
  287. static void clear_tlb_refs(struct kvmppc_vcpu_e500 *vcpu_e500)
  288. {
  289. int stlbsel = 1;
  290. int i;
  291. kvmppc_e500_tlbil_all(vcpu_e500);
  292. for (i = 0; i < host_tlb_params[stlbsel].entries; i++) {
  293. struct tlbe_ref *ref =
  294. &vcpu_e500->tlb_refs[stlbsel][i];
  295. kvmppc_e500_ref_release(ref);
  296. }
  297. clear_tlb_privs(vcpu_e500);
  298. }
  299. static inline void kvmppc_e500_deliver_tlb_miss(struct kvm_vcpu *vcpu,
  300. unsigned int eaddr, int as)
  301. {
  302. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  303. unsigned int victim, tsized;
  304. int tlbsel;
  305. /* since we only have two TLBs, only lower bit is used. */
  306. tlbsel = (vcpu->arch.shared->mas4 >> 28) & 0x1;
  307. victim = (tlbsel == 0) ? gtlb0_get_next_victim(vcpu_e500) : 0;
  308. tsized = (vcpu->arch.shared->mas4 >> 7) & 0x1f;
  309. vcpu->arch.shared->mas0 = MAS0_TLBSEL(tlbsel) | MAS0_ESEL(victim)
  310. | MAS0_NV(vcpu_e500->gtlb_nv[tlbsel]);
  311. vcpu->arch.shared->mas1 = MAS1_VALID | (as ? MAS1_TS : 0)
  312. | MAS1_TID(get_tlbmiss_tid(vcpu))
  313. | MAS1_TSIZE(tsized);
  314. vcpu->arch.shared->mas2 = (eaddr & MAS2_EPN)
  315. | (vcpu->arch.shared->mas4 & MAS2_ATTRIB_MASK);
  316. vcpu->arch.shared->mas7_3 &= MAS3_U0 | MAS3_U1 | MAS3_U2 | MAS3_U3;
  317. vcpu->arch.shared->mas6 = (vcpu->arch.shared->mas6 & MAS6_SPID1)
  318. | (get_cur_pid(vcpu) << 16)
  319. | (as ? MAS6_SAS : 0);
  320. }
  321. /* TID must be supplied by the caller */
  322. static inline void kvmppc_e500_setup_stlbe(
  323. struct kvm_vcpu *vcpu,
  324. struct kvm_book3e_206_tlb_entry *gtlbe,
  325. int tsize, struct tlbe_ref *ref, u64 gvaddr,
  326. struct kvm_book3e_206_tlb_entry *stlbe)
  327. {
  328. pfn_t pfn = ref->pfn;
  329. u32 pr = vcpu->arch.shared->msr & MSR_PR;
  330. BUG_ON(!(ref->flags & E500_TLB_VALID));
  331. /* Force IPROT=0 for all guest mappings. */
  332. stlbe->mas1 = MAS1_TSIZE(tsize) | get_tlb_sts(gtlbe) | MAS1_VALID;
  333. stlbe->mas2 = (gvaddr & MAS2_EPN) |
  334. e500_shadow_mas2_attrib(gtlbe->mas2, pr);
  335. stlbe->mas7_3 = ((u64)pfn << PAGE_SHIFT) |
  336. e500_shadow_mas3_attrib(gtlbe->mas7_3, pr);
  337. #ifdef CONFIG_KVM_BOOKE_HV
  338. stlbe->mas8 = MAS8_TGS | vcpu->kvm->arch.lpid;
  339. #endif
  340. }
  341. static inline void kvmppc_e500_shadow_map(struct kvmppc_vcpu_e500 *vcpu_e500,
  342. u64 gvaddr, gfn_t gfn, struct kvm_book3e_206_tlb_entry *gtlbe,
  343. int tlbsel, struct kvm_book3e_206_tlb_entry *stlbe,
  344. struct tlbe_ref *ref)
  345. {
  346. struct kvm_memory_slot *slot;
  347. unsigned long pfn, hva;
  348. int pfnmap = 0;
  349. int tsize = BOOK3E_PAGESZ_4K;
  350. /*
  351. * Translate guest physical to true physical, acquiring
  352. * a page reference if it is normal, non-reserved memory.
  353. *
  354. * gfn_to_memslot() must succeed because otherwise we wouldn't
  355. * have gotten this far. Eventually we should just pass the slot
  356. * pointer through from the first lookup.
  357. */
  358. slot = gfn_to_memslot(vcpu_e500->vcpu.kvm, gfn);
  359. hva = gfn_to_hva_memslot(slot, gfn);
  360. if (tlbsel == 1) {
  361. struct vm_area_struct *vma;
  362. down_read(&current->mm->mmap_sem);
  363. vma = find_vma(current->mm, hva);
  364. if (vma && hva >= vma->vm_start &&
  365. (vma->vm_flags & VM_PFNMAP)) {
  366. /*
  367. * This VMA is a physically contiguous region (e.g.
  368. * /dev/mem) that bypasses normal Linux page
  369. * management. Find the overlap between the
  370. * vma and the memslot.
  371. */
  372. unsigned long start, end;
  373. unsigned long slot_start, slot_end;
  374. pfnmap = 1;
  375. start = vma->vm_pgoff;
  376. end = start +
  377. ((vma->vm_end - vma->vm_start) >> PAGE_SHIFT);
  378. pfn = start + ((hva - vma->vm_start) >> PAGE_SHIFT);
  379. slot_start = pfn - (gfn - slot->base_gfn);
  380. slot_end = slot_start + slot->npages;
  381. if (start < slot_start)
  382. start = slot_start;
  383. if (end > slot_end)
  384. end = slot_end;
  385. tsize = (gtlbe->mas1 & MAS1_TSIZE_MASK) >>
  386. MAS1_TSIZE_SHIFT;
  387. /*
  388. * e500 doesn't implement the lowest tsize bit,
  389. * or 1K pages.
  390. */
  391. tsize = max(BOOK3E_PAGESZ_4K, tsize & ~1);
  392. /*
  393. * Now find the largest tsize (up to what the guest
  394. * requested) that will cover gfn, stay within the
  395. * range, and for which gfn and pfn are mutually
  396. * aligned.
  397. */
  398. for (; tsize > BOOK3E_PAGESZ_4K; tsize -= 2) {
  399. unsigned long gfn_start, gfn_end, tsize_pages;
  400. tsize_pages = 1 << (tsize - 2);
  401. gfn_start = gfn & ~(tsize_pages - 1);
  402. gfn_end = gfn_start + tsize_pages;
  403. if (gfn_start + pfn - gfn < start)
  404. continue;
  405. if (gfn_end + pfn - gfn > end)
  406. continue;
  407. if ((gfn & (tsize_pages - 1)) !=
  408. (pfn & (tsize_pages - 1)))
  409. continue;
  410. gvaddr &= ~((tsize_pages << PAGE_SHIFT) - 1);
  411. pfn &= ~(tsize_pages - 1);
  412. break;
  413. }
  414. } else if (vma && hva >= vma->vm_start &&
  415. (vma->vm_flags & VM_HUGETLB)) {
  416. unsigned long psize = vma_kernel_pagesize(vma);
  417. tsize = (gtlbe->mas1 & MAS1_TSIZE_MASK) >>
  418. MAS1_TSIZE_SHIFT;
  419. /*
  420. * Take the largest page size that satisfies both host
  421. * and guest mapping
  422. */
  423. tsize = min(__ilog2(psize) - 10, tsize);
  424. /*
  425. * e500 doesn't implement the lowest tsize bit,
  426. * or 1K pages.
  427. */
  428. tsize = max(BOOK3E_PAGESZ_4K, tsize & ~1);
  429. }
  430. up_read(&current->mm->mmap_sem);
  431. }
  432. if (likely(!pfnmap)) {
  433. unsigned long tsize_pages = 1 << (tsize + 10 - PAGE_SHIFT);
  434. pfn = gfn_to_pfn_memslot(slot, gfn);
  435. if (is_error_pfn(pfn)) {
  436. printk(KERN_ERR "Couldn't get real page for gfn %lx!\n",
  437. (long)gfn);
  438. return;
  439. }
  440. /* Align guest and physical address to page map boundaries */
  441. pfn &= ~(tsize_pages - 1);
  442. gvaddr &= ~((tsize_pages << PAGE_SHIFT) - 1);
  443. }
  444. /* Drop old ref and setup new one. */
  445. kvmppc_e500_ref_release(ref);
  446. kvmppc_e500_ref_setup(ref, gtlbe, pfn);
  447. kvmppc_e500_setup_stlbe(&vcpu_e500->vcpu, gtlbe, tsize,
  448. ref, gvaddr, stlbe);
  449. /* Clear i-cache for new pages */
  450. kvmppc_mmu_flush_icache(pfn);
  451. }
  452. /* XXX only map the one-one case, for now use TLB0 */
  453. static void kvmppc_e500_tlb0_map(struct kvmppc_vcpu_e500 *vcpu_e500,
  454. int esel,
  455. struct kvm_book3e_206_tlb_entry *stlbe)
  456. {
  457. struct kvm_book3e_206_tlb_entry *gtlbe;
  458. struct tlbe_ref *ref;
  459. gtlbe = get_entry(vcpu_e500, 0, esel);
  460. ref = &vcpu_e500->gtlb_priv[0][esel].ref;
  461. kvmppc_e500_shadow_map(vcpu_e500, get_tlb_eaddr(gtlbe),
  462. get_tlb_raddr(gtlbe) >> PAGE_SHIFT,
  463. gtlbe, 0, stlbe, ref);
  464. }
  465. /* Caller must ensure that the specified guest TLB entry is safe to insert into
  466. * the shadow TLB. */
  467. /* XXX for both one-one and one-to-many , for now use TLB1 */
  468. static int kvmppc_e500_tlb1_map(struct kvmppc_vcpu_e500 *vcpu_e500,
  469. u64 gvaddr, gfn_t gfn, struct kvm_book3e_206_tlb_entry *gtlbe,
  470. struct kvm_book3e_206_tlb_entry *stlbe, int esel)
  471. {
  472. struct tlbe_ref *ref;
  473. unsigned int victim;
  474. victim = vcpu_e500->host_tlb1_nv++;
  475. if (unlikely(vcpu_e500->host_tlb1_nv >= tlb1_max_shadow_size()))
  476. vcpu_e500->host_tlb1_nv = 0;
  477. ref = &vcpu_e500->tlb_refs[1][victim];
  478. kvmppc_e500_shadow_map(vcpu_e500, gvaddr, gfn, gtlbe, 1, stlbe, ref);
  479. vcpu_e500->g2h_tlb1_map[esel] |= (u64)1 << victim;
  480. vcpu_e500->gtlb_priv[1][esel].ref.flags |= E500_TLB_BITMAP;
  481. if (vcpu_e500->h2g_tlb1_rmap[victim]) {
  482. unsigned int idx = vcpu_e500->h2g_tlb1_rmap[victim];
  483. vcpu_e500->g2h_tlb1_map[idx] &= ~(1ULL << victim);
  484. }
  485. vcpu_e500->h2g_tlb1_rmap[victim] = esel;
  486. return victim;
  487. }
  488. static void kvmppc_recalc_tlb1map_range(struct kvmppc_vcpu_e500 *vcpu_e500)
  489. {
  490. int size = vcpu_e500->gtlb_params[1].entries;
  491. unsigned int offset;
  492. gva_t eaddr;
  493. int i;
  494. vcpu_e500->tlb1_min_eaddr = ~0UL;
  495. vcpu_e500->tlb1_max_eaddr = 0;
  496. offset = vcpu_e500->gtlb_offset[1];
  497. for (i = 0; i < size; i++) {
  498. struct kvm_book3e_206_tlb_entry *tlbe =
  499. &vcpu_e500->gtlb_arch[offset + i];
  500. if (!get_tlb_v(tlbe))
  501. continue;
  502. eaddr = get_tlb_eaddr(tlbe);
  503. vcpu_e500->tlb1_min_eaddr =
  504. min(vcpu_e500->tlb1_min_eaddr, eaddr);
  505. eaddr = get_tlb_end(tlbe);
  506. vcpu_e500->tlb1_max_eaddr =
  507. max(vcpu_e500->tlb1_max_eaddr, eaddr);
  508. }
  509. }
  510. static int kvmppc_need_recalc_tlb1map_range(struct kvmppc_vcpu_e500 *vcpu_e500,
  511. struct kvm_book3e_206_tlb_entry *gtlbe)
  512. {
  513. unsigned long start, end, size;
  514. size = get_tlb_bytes(gtlbe);
  515. start = get_tlb_eaddr(gtlbe) & ~(size - 1);
  516. end = start + size - 1;
  517. return vcpu_e500->tlb1_min_eaddr == start ||
  518. vcpu_e500->tlb1_max_eaddr == end;
  519. }
  520. /* This function is supposed to be called for a adding a new valid tlb entry */
  521. static void kvmppc_set_tlb1map_range(struct kvm_vcpu *vcpu,
  522. struct kvm_book3e_206_tlb_entry *gtlbe)
  523. {
  524. unsigned long start, end, size;
  525. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  526. if (!get_tlb_v(gtlbe))
  527. return;
  528. size = get_tlb_bytes(gtlbe);
  529. start = get_tlb_eaddr(gtlbe) & ~(size - 1);
  530. end = start + size - 1;
  531. vcpu_e500->tlb1_min_eaddr = min(vcpu_e500->tlb1_min_eaddr, start);
  532. vcpu_e500->tlb1_max_eaddr = max(vcpu_e500->tlb1_max_eaddr, end);
  533. }
  534. static inline int kvmppc_e500_gtlbe_invalidate(
  535. struct kvmppc_vcpu_e500 *vcpu_e500,
  536. int tlbsel, int esel)
  537. {
  538. struct kvm_book3e_206_tlb_entry *gtlbe =
  539. get_entry(vcpu_e500, tlbsel, esel);
  540. if (unlikely(get_tlb_iprot(gtlbe)))
  541. return -1;
  542. if (tlbsel == 1 && kvmppc_need_recalc_tlb1map_range(vcpu_e500, gtlbe))
  543. kvmppc_recalc_tlb1map_range(vcpu_e500);
  544. gtlbe->mas1 = 0;
  545. return 0;
  546. }
  547. int kvmppc_e500_emul_mt_mmucsr0(struct kvmppc_vcpu_e500 *vcpu_e500, ulong value)
  548. {
  549. int esel;
  550. if (value & MMUCSR0_TLB0FI)
  551. for (esel = 0; esel < vcpu_e500->gtlb_params[0].entries; esel++)
  552. kvmppc_e500_gtlbe_invalidate(vcpu_e500, 0, esel);
  553. if (value & MMUCSR0_TLB1FI)
  554. for (esel = 0; esel < vcpu_e500->gtlb_params[1].entries; esel++)
  555. kvmppc_e500_gtlbe_invalidate(vcpu_e500, 1, esel);
  556. /* Invalidate all vcpu id mappings */
  557. kvmppc_e500_tlbil_all(vcpu_e500);
  558. return EMULATE_DONE;
  559. }
  560. int kvmppc_e500_emul_tlbivax(struct kvm_vcpu *vcpu, int ra, int rb)
  561. {
  562. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  563. unsigned int ia;
  564. int esel, tlbsel;
  565. gva_t ea;
  566. ea = ((ra) ? kvmppc_get_gpr(vcpu, ra) : 0) + kvmppc_get_gpr(vcpu, rb);
  567. ia = (ea >> 2) & 0x1;
  568. /* since we only have two TLBs, only lower bit is used. */
  569. tlbsel = (ea >> 3) & 0x1;
  570. if (ia) {
  571. /* invalidate all entries */
  572. for (esel = 0; esel < vcpu_e500->gtlb_params[tlbsel].entries;
  573. esel++)
  574. kvmppc_e500_gtlbe_invalidate(vcpu_e500, tlbsel, esel);
  575. } else {
  576. ea &= 0xfffff000;
  577. esel = kvmppc_e500_tlb_index(vcpu_e500, ea, tlbsel,
  578. get_cur_pid(vcpu), -1);
  579. if (esel >= 0)
  580. kvmppc_e500_gtlbe_invalidate(vcpu_e500, tlbsel, esel);
  581. }
  582. /* Invalidate all vcpu id mappings */
  583. kvmppc_e500_tlbil_all(vcpu_e500);
  584. return EMULATE_DONE;
  585. }
  586. static void tlbilx_all(struct kvmppc_vcpu_e500 *vcpu_e500, int tlbsel,
  587. int pid, int rt)
  588. {
  589. struct kvm_book3e_206_tlb_entry *tlbe;
  590. int tid, esel;
  591. /* invalidate all entries */
  592. for (esel = 0; esel < vcpu_e500->gtlb_params[tlbsel].entries; esel++) {
  593. tlbe = get_entry(vcpu_e500, tlbsel, esel);
  594. tid = get_tlb_tid(tlbe);
  595. if (rt == 0 || tid == pid) {
  596. inval_gtlbe_on_host(vcpu_e500, tlbsel, esel);
  597. kvmppc_e500_gtlbe_invalidate(vcpu_e500, tlbsel, esel);
  598. }
  599. }
  600. }
  601. static void tlbilx_one(struct kvmppc_vcpu_e500 *vcpu_e500, int pid,
  602. int ra, int rb)
  603. {
  604. int tlbsel, esel;
  605. gva_t ea;
  606. ea = kvmppc_get_gpr(&vcpu_e500->vcpu, rb);
  607. if (ra)
  608. ea += kvmppc_get_gpr(&vcpu_e500->vcpu, ra);
  609. for (tlbsel = 0; tlbsel < 2; tlbsel++) {
  610. esel = kvmppc_e500_tlb_index(vcpu_e500, ea, tlbsel, pid, -1);
  611. if (esel >= 0) {
  612. inval_gtlbe_on_host(vcpu_e500, tlbsel, esel);
  613. kvmppc_e500_gtlbe_invalidate(vcpu_e500, tlbsel, esel);
  614. break;
  615. }
  616. }
  617. }
  618. int kvmppc_e500_emul_tlbilx(struct kvm_vcpu *vcpu, int rt, int ra, int rb)
  619. {
  620. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  621. int pid = get_cur_spid(vcpu);
  622. if (rt == 0 || rt == 1) {
  623. tlbilx_all(vcpu_e500, 0, pid, rt);
  624. tlbilx_all(vcpu_e500, 1, pid, rt);
  625. } else if (rt == 3) {
  626. tlbilx_one(vcpu_e500, pid, ra, rb);
  627. }
  628. return EMULATE_DONE;
  629. }
  630. int kvmppc_e500_emul_tlbre(struct kvm_vcpu *vcpu)
  631. {
  632. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  633. int tlbsel, esel;
  634. struct kvm_book3e_206_tlb_entry *gtlbe;
  635. tlbsel = get_tlb_tlbsel(vcpu);
  636. esel = get_tlb_esel(vcpu, tlbsel);
  637. gtlbe = get_entry(vcpu_e500, tlbsel, esel);
  638. vcpu->arch.shared->mas0 &= ~MAS0_NV(~0);
  639. vcpu->arch.shared->mas0 |= MAS0_NV(vcpu_e500->gtlb_nv[tlbsel]);
  640. vcpu->arch.shared->mas1 = gtlbe->mas1;
  641. vcpu->arch.shared->mas2 = gtlbe->mas2;
  642. vcpu->arch.shared->mas7_3 = gtlbe->mas7_3;
  643. return EMULATE_DONE;
  644. }
  645. int kvmppc_e500_emul_tlbsx(struct kvm_vcpu *vcpu, int rb)
  646. {
  647. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  648. int as = !!get_cur_sas(vcpu);
  649. unsigned int pid = get_cur_spid(vcpu);
  650. int esel, tlbsel;
  651. struct kvm_book3e_206_tlb_entry *gtlbe = NULL;
  652. gva_t ea;
  653. ea = kvmppc_get_gpr(vcpu, rb);
  654. for (tlbsel = 0; tlbsel < 2; tlbsel++) {
  655. esel = kvmppc_e500_tlb_index(vcpu_e500, ea, tlbsel, pid, as);
  656. if (esel >= 0) {
  657. gtlbe = get_entry(vcpu_e500, tlbsel, esel);
  658. break;
  659. }
  660. }
  661. if (gtlbe) {
  662. esel &= vcpu_e500->gtlb_params[tlbsel].ways - 1;
  663. vcpu->arch.shared->mas0 = MAS0_TLBSEL(tlbsel) | MAS0_ESEL(esel)
  664. | MAS0_NV(vcpu_e500->gtlb_nv[tlbsel]);
  665. vcpu->arch.shared->mas1 = gtlbe->mas1;
  666. vcpu->arch.shared->mas2 = gtlbe->mas2;
  667. vcpu->arch.shared->mas7_3 = gtlbe->mas7_3;
  668. } else {
  669. int victim;
  670. /* since we only have two TLBs, only lower bit is used. */
  671. tlbsel = vcpu->arch.shared->mas4 >> 28 & 0x1;
  672. victim = (tlbsel == 0) ? gtlb0_get_next_victim(vcpu_e500) : 0;
  673. vcpu->arch.shared->mas0 = MAS0_TLBSEL(tlbsel)
  674. | MAS0_ESEL(victim)
  675. | MAS0_NV(vcpu_e500->gtlb_nv[tlbsel]);
  676. vcpu->arch.shared->mas1 =
  677. (vcpu->arch.shared->mas6 & MAS6_SPID0)
  678. | (vcpu->arch.shared->mas6 & (MAS6_SAS ? MAS1_TS : 0))
  679. | (vcpu->arch.shared->mas4 & MAS4_TSIZED(~0));
  680. vcpu->arch.shared->mas2 &= MAS2_EPN;
  681. vcpu->arch.shared->mas2 |= vcpu->arch.shared->mas4 &
  682. MAS2_ATTRIB_MASK;
  683. vcpu->arch.shared->mas7_3 &= MAS3_U0 | MAS3_U1 |
  684. MAS3_U2 | MAS3_U3;
  685. }
  686. kvmppc_set_exit_type(vcpu, EMULATED_TLBSX_EXITS);
  687. return EMULATE_DONE;
  688. }
  689. /* sesel is for tlb1 only */
  690. static void write_stlbe(struct kvmppc_vcpu_e500 *vcpu_e500,
  691. struct kvm_book3e_206_tlb_entry *gtlbe,
  692. struct kvm_book3e_206_tlb_entry *stlbe,
  693. int stlbsel, int sesel)
  694. {
  695. int stid;
  696. preempt_disable();
  697. stid = kvmppc_e500_get_tlb_stid(&vcpu_e500->vcpu, gtlbe);
  698. stlbe->mas1 |= MAS1_TID(stid);
  699. write_host_tlbe(vcpu_e500, stlbsel, sesel, stlbe);
  700. preempt_enable();
  701. }
  702. int kvmppc_e500_emul_tlbwe(struct kvm_vcpu *vcpu)
  703. {
  704. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  705. struct kvm_book3e_206_tlb_entry *gtlbe, stlbe;
  706. int tlbsel, esel, stlbsel, sesel;
  707. int recal = 0;
  708. tlbsel = get_tlb_tlbsel(vcpu);
  709. esel = get_tlb_esel(vcpu, tlbsel);
  710. gtlbe = get_entry(vcpu_e500, tlbsel, esel);
  711. if (get_tlb_v(gtlbe)) {
  712. inval_gtlbe_on_host(vcpu_e500, tlbsel, esel);
  713. if ((tlbsel == 1) &&
  714. kvmppc_need_recalc_tlb1map_range(vcpu_e500, gtlbe))
  715. recal = 1;
  716. }
  717. gtlbe->mas1 = vcpu->arch.shared->mas1;
  718. gtlbe->mas2 = vcpu->arch.shared->mas2;
  719. gtlbe->mas7_3 = vcpu->arch.shared->mas7_3;
  720. trace_kvm_booke206_gtlb_write(vcpu->arch.shared->mas0, gtlbe->mas1,
  721. gtlbe->mas2, gtlbe->mas7_3);
  722. if (tlbsel == 1) {
  723. /*
  724. * If a valid tlb1 entry is overwritten then recalculate the
  725. * min/max TLB1 map address range otherwise no need to look
  726. * in tlb1 array.
  727. */
  728. if (recal)
  729. kvmppc_recalc_tlb1map_range(vcpu_e500);
  730. else
  731. kvmppc_set_tlb1map_range(vcpu, gtlbe);
  732. }
  733. /* Invalidate shadow mappings for the about-to-be-clobbered TLBE. */
  734. if (tlbe_is_host_safe(vcpu, gtlbe)) {
  735. u64 eaddr;
  736. u64 raddr;
  737. switch (tlbsel) {
  738. case 0:
  739. /* TLB0 */
  740. gtlbe->mas1 &= ~MAS1_TSIZE(~0);
  741. gtlbe->mas1 |= MAS1_TSIZE(BOOK3E_PAGESZ_4K);
  742. stlbsel = 0;
  743. kvmppc_e500_tlb0_map(vcpu_e500, esel, &stlbe);
  744. sesel = 0; /* unused */
  745. break;
  746. case 1:
  747. /* TLB1 */
  748. eaddr = get_tlb_eaddr(gtlbe);
  749. raddr = get_tlb_raddr(gtlbe);
  750. /* Create a 4KB mapping on the host.
  751. * If the guest wanted a large page,
  752. * only the first 4KB is mapped here and the rest
  753. * are mapped on the fly. */
  754. stlbsel = 1;
  755. sesel = kvmppc_e500_tlb1_map(vcpu_e500, eaddr,
  756. raddr >> PAGE_SHIFT, gtlbe, &stlbe, esel);
  757. break;
  758. default:
  759. BUG();
  760. }
  761. write_stlbe(vcpu_e500, gtlbe, &stlbe, stlbsel, sesel);
  762. }
  763. kvmppc_set_exit_type(vcpu, EMULATED_TLBWE_EXITS);
  764. return EMULATE_DONE;
  765. }
  766. static int kvmppc_e500_tlb_search(struct kvm_vcpu *vcpu,
  767. gva_t eaddr, unsigned int pid, int as)
  768. {
  769. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  770. int esel, tlbsel;
  771. for (tlbsel = 0; tlbsel < 2; tlbsel++) {
  772. esel = kvmppc_e500_tlb_index(vcpu_e500, eaddr, tlbsel, pid, as);
  773. if (esel >= 0)
  774. return index_of(tlbsel, esel);
  775. }
  776. return -1;
  777. }
  778. /* 'linear_address' is actually an encoding of AS|PID|EADDR . */
  779. int kvmppc_core_vcpu_translate(struct kvm_vcpu *vcpu,
  780. struct kvm_translation *tr)
  781. {
  782. int index;
  783. gva_t eaddr;
  784. u8 pid;
  785. u8 as;
  786. eaddr = tr->linear_address;
  787. pid = (tr->linear_address >> 32) & 0xff;
  788. as = (tr->linear_address >> 40) & 0x1;
  789. index = kvmppc_e500_tlb_search(vcpu, eaddr, pid, as);
  790. if (index < 0) {
  791. tr->valid = 0;
  792. return 0;
  793. }
  794. tr->physical_address = kvmppc_mmu_xlate(vcpu, index, eaddr);
  795. /* XXX what does "writeable" and "usermode" even mean? */
  796. tr->valid = 1;
  797. return 0;
  798. }
  799. int kvmppc_mmu_itlb_index(struct kvm_vcpu *vcpu, gva_t eaddr)
  800. {
  801. unsigned int as = !!(vcpu->arch.shared->msr & MSR_IS);
  802. return kvmppc_e500_tlb_search(vcpu, eaddr, get_cur_pid(vcpu), as);
  803. }
  804. int kvmppc_mmu_dtlb_index(struct kvm_vcpu *vcpu, gva_t eaddr)
  805. {
  806. unsigned int as = !!(vcpu->arch.shared->msr & MSR_DS);
  807. return kvmppc_e500_tlb_search(vcpu, eaddr, get_cur_pid(vcpu), as);
  808. }
  809. void kvmppc_mmu_itlb_miss(struct kvm_vcpu *vcpu)
  810. {
  811. unsigned int as = !!(vcpu->arch.shared->msr & MSR_IS);
  812. kvmppc_e500_deliver_tlb_miss(vcpu, vcpu->arch.pc, as);
  813. }
  814. void kvmppc_mmu_dtlb_miss(struct kvm_vcpu *vcpu)
  815. {
  816. unsigned int as = !!(vcpu->arch.shared->msr & MSR_DS);
  817. kvmppc_e500_deliver_tlb_miss(vcpu, vcpu->arch.fault_dear, as);
  818. }
  819. gpa_t kvmppc_mmu_xlate(struct kvm_vcpu *vcpu, unsigned int index,
  820. gva_t eaddr)
  821. {
  822. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  823. struct kvm_book3e_206_tlb_entry *gtlbe;
  824. u64 pgmask;
  825. gtlbe = get_entry(vcpu_e500, tlbsel_of(index), esel_of(index));
  826. pgmask = get_tlb_bytes(gtlbe) - 1;
  827. return get_tlb_raddr(gtlbe) | (eaddr & pgmask);
  828. }
  829. void kvmppc_mmu_destroy(struct kvm_vcpu *vcpu)
  830. {
  831. }
  832. void kvmppc_mmu_map(struct kvm_vcpu *vcpu, u64 eaddr, gpa_t gpaddr,
  833. unsigned int index)
  834. {
  835. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  836. struct tlbe_priv *priv;
  837. struct kvm_book3e_206_tlb_entry *gtlbe, stlbe;
  838. int tlbsel = tlbsel_of(index);
  839. int esel = esel_of(index);
  840. int stlbsel, sesel;
  841. gtlbe = get_entry(vcpu_e500, tlbsel, esel);
  842. switch (tlbsel) {
  843. case 0:
  844. stlbsel = 0;
  845. sesel = 0; /* unused */
  846. priv = &vcpu_e500->gtlb_priv[tlbsel][esel];
  847. /* Only triggers after clear_tlb_refs */
  848. if (unlikely(!(priv->ref.flags & E500_TLB_VALID)))
  849. kvmppc_e500_tlb0_map(vcpu_e500, esel, &stlbe);
  850. else
  851. kvmppc_e500_setup_stlbe(vcpu, gtlbe, BOOK3E_PAGESZ_4K,
  852. &priv->ref, eaddr, &stlbe);
  853. break;
  854. case 1: {
  855. gfn_t gfn = gpaddr >> PAGE_SHIFT;
  856. stlbsel = 1;
  857. sesel = kvmppc_e500_tlb1_map(vcpu_e500, eaddr, gfn,
  858. gtlbe, &stlbe, esel);
  859. break;
  860. }
  861. default:
  862. BUG();
  863. break;
  864. }
  865. write_stlbe(vcpu_e500, gtlbe, &stlbe, stlbsel, sesel);
  866. }
  867. static void free_gtlb(struct kvmppc_vcpu_e500 *vcpu_e500)
  868. {
  869. int i;
  870. clear_tlb1_bitmap(vcpu_e500);
  871. kfree(vcpu_e500->g2h_tlb1_map);
  872. clear_tlb_refs(vcpu_e500);
  873. kfree(vcpu_e500->gtlb_priv[0]);
  874. kfree(vcpu_e500->gtlb_priv[1]);
  875. if (vcpu_e500->shared_tlb_pages) {
  876. vfree((void *)(round_down((uintptr_t)vcpu_e500->gtlb_arch,
  877. PAGE_SIZE)));
  878. for (i = 0; i < vcpu_e500->num_shared_tlb_pages; i++) {
  879. set_page_dirty_lock(vcpu_e500->shared_tlb_pages[i]);
  880. put_page(vcpu_e500->shared_tlb_pages[i]);
  881. }
  882. vcpu_e500->num_shared_tlb_pages = 0;
  883. vcpu_e500->shared_tlb_pages = NULL;
  884. } else {
  885. kfree(vcpu_e500->gtlb_arch);
  886. }
  887. vcpu_e500->gtlb_arch = NULL;
  888. }
  889. void kvmppc_get_sregs_e500_tlb(struct kvm_vcpu *vcpu, struct kvm_sregs *sregs)
  890. {
  891. sregs->u.e.mas0 = vcpu->arch.shared->mas0;
  892. sregs->u.e.mas1 = vcpu->arch.shared->mas1;
  893. sregs->u.e.mas2 = vcpu->arch.shared->mas2;
  894. sregs->u.e.mas7_3 = vcpu->arch.shared->mas7_3;
  895. sregs->u.e.mas4 = vcpu->arch.shared->mas4;
  896. sregs->u.e.mas6 = vcpu->arch.shared->mas6;
  897. sregs->u.e.mmucfg = vcpu->arch.mmucfg;
  898. sregs->u.e.tlbcfg[0] = vcpu->arch.tlbcfg[0];
  899. sregs->u.e.tlbcfg[1] = vcpu->arch.tlbcfg[1];
  900. sregs->u.e.tlbcfg[2] = 0;
  901. sregs->u.e.tlbcfg[3] = 0;
  902. }
  903. int kvmppc_set_sregs_e500_tlb(struct kvm_vcpu *vcpu, struct kvm_sregs *sregs)
  904. {
  905. if (sregs->u.e.features & KVM_SREGS_E_ARCH206_MMU) {
  906. vcpu->arch.shared->mas0 = sregs->u.e.mas0;
  907. vcpu->arch.shared->mas1 = sregs->u.e.mas1;
  908. vcpu->arch.shared->mas2 = sregs->u.e.mas2;
  909. vcpu->arch.shared->mas7_3 = sregs->u.e.mas7_3;
  910. vcpu->arch.shared->mas4 = sregs->u.e.mas4;
  911. vcpu->arch.shared->mas6 = sregs->u.e.mas6;
  912. }
  913. return 0;
  914. }
  915. int kvm_vcpu_ioctl_config_tlb(struct kvm_vcpu *vcpu,
  916. struct kvm_config_tlb *cfg)
  917. {
  918. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  919. struct kvm_book3e_206_tlb_params params;
  920. char *virt;
  921. struct page **pages;
  922. struct tlbe_priv *privs[2] = {};
  923. u64 *g2h_bitmap = NULL;
  924. size_t array_len;
  925. u32 sets;
  926. int num_pages, ret, i;
  927. if (cfg->mmu_type != KVM_MMU_FSL_BOOKE_NOHV)
  928. return -EINVAL;
  929. if (copy_from_user(&params, (void __user *)(uintptr_t)cfg->params,
  930. sizeof(params)))
  931. return -EFAULT;
  932. if (params.tlb_sizes[1] > 64)
  933. return -EINVAL;
  934. if (params.tlb_ways[1] != params.tlb_sizes[1])
  935. return -EINVAL;
  936. if (params.tlb_sizes[2] != 0 || params.tlb_sizes[3] != 0)
  937. return -EINVAL;
  938. if (params.tlb_ways[2] != 0 || params.tlb_ways[3] != 0)
  939. return -EINVAL;
  940. if (!is_power_of_2(params.tlb_ways[0]))
  941. return -EINVAL;
  942. sets = params.tlb_sizes[0] >> ilog2(params.tlb_ways[0]);
  943. if (!is_power_of_2(sets))
  944. return -EINVAL;
  945. array_len = params.tlb_sizes[0] + params.tlb_sizes[1];
  946. array_len *= sizeof(struct kvm_book3e_206_tlb_entry);
  947. if (cfg->array_len < array_len)
  948. return -EINVAL;
  949. num_pages = DIV_ROUND_UP(cfg->array + array_len - 1, PAGE_SIZE) -
  950. cfg->array / PAGE_SIZE;
  951. pages = kmalloc(sizeof(struct page *) * num_pages, GFP_KERNEL);
  952. if (!pages)
  953. return -ENOMEM;
  954. ret = get_user_pages_fast(cfg->array, num_pages, 1, pages);
  955. if (ret < 0)
  956. goto err_pages;
  957. if (ret != num_pages) {
  958. num_pages = ret;
  959. ret = -EFAULT;
  960. goto err_put_page;
  961. }
  962. virt = vmap(pages, num_pages, VM_MAP, PAGE_KERNEL);
  963. if (!virt)
  964. goto err_put_page;
  965. privs[0] = kzalloc(sizeof(struct tlbe_priv) * params.tlb_sizes[0],
  966. GFP_KERNEL);
  967. privs[1] = kzalloc(sizeof(struct tlbe_priv) * params.tlb_sizes[1],
  968. GFP_KERNEL);
  969. if (!privs[0] || !privs[1])
  970. goto err_put_page;
  971. g2h_bitmap = kzalloc(sizeof(u64) * params.tlb_sizes[1],
  972. GFP_KERNEL);
  973. if (!g2h_bitmap)
  974. goto err_put_page;
  975. free_gtlb(vcpu_e500);
  976. vcpu_e500->gtlb_priv[0] = privs[0];
  977. vcpu_e500->gtlb_priv[1] = privs[1];
  978. vcpu_e500->g2h_tlb1_map = g2h_bitmap;
  979. vcpu_e500->gtlb_arch = (struct kvm_book3e_206_tlb_entry *)
  980. (virt + (cfg->array & (PAGE_SIZE - 1)));
  981. vcpu_e500->gtlb_params[0].entries = params.tlb_sizes[0];
  982. vcpu_e500->gtlb_params[1].entries = params.tlb_sizes[1];
  983. vcpu_e500->gtlb_offset[0] = 0;
  984. vcpu_e500->gtlb_offset[1] = params.tlb_sizes[0];
  985. vcpu->arch.mmucfg = mfspr(SPRN_MMUCFG) & ~MMUCFG_LPIDSIZE;
  986. vcpu->arch.tlbcfg[0] &= ~(TLBnCFG_N_ENTRY | TLBnCFG_ASSOC);
  987. if (params.tlb_sizes[0] <= 2048)
  988. vcpu->arch.tlbcfg[0] |= params.tlb_sizes[0];
  989. vcpu->arch.tlbcfg[0] |= params.tlb_ways[0] << TLBnCFG_ASSOC_SHIFT;
  990. vcpu->arch.tlbcfg[1] &= ~(TLBnCFG_N_ENTRY | TLBnCFG_ASSOC);
  991. vcpu->arch.tlbcfg[1] |= params.tlb_sizes[1];
  992. vcpu->arch.tlbcfg[1] |= params.tlb_ways[1] << TLBnCFG_ASSOC_SHIFT;
  993. vcpu_e500->shared_tlb_pages = pages;
  994. vcpu_e500->num_shared_tlb_pages = num_pages;
  995. vcpu_e500->gtlb_params[0].ways = params.tlb_ways[0];
  996. vcpu_e500->gtlb_params[0].sets = sets;
  997. vcpu_e500->gtlb_params[1].ways = params.tlb_sizes[1];
  998. vcpu_e500->gtlb_params[1].sets = 1;
  999. kvmppc_recalc_tlb1map_range(vcpu_e500);
  1000. return 0;
  1001. err_put_page:
  1002. kfree(privs[0]);
  1003. kfree(privs[1]);
  1004. for (i = 0; i < num_pages; i++)
  1005. put_page(pages[i]);
  1006. err_pages:
  1007. kfree(pages);
  1008. return ret;
  1009. }
  1010. int kvm_vcpu_ioctl_dirty_tlb(struct kvm_vcpu *vcpu,
  1011. struct kvm_dirty_tlb *dirty)
  1012. {
  1013. struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
  1014. kvmppc_recalc_tlb1map_range(vcpu_e500);
  1015. clear_tlb_refs(vcpu_e500);
  1016. return 0;
  1017. }
  1018. int kvmppc_e500_tlb_init(struct kvmppc_vcpu_e500 *vcpu_e500)
  1019. {
  1020. struct kvm_vcpu *vcpu = &vcpu_e500->vcpu;
  1021. int entry_size = sizeof(struct kvm_book3e_206_tlb_entry);
  1022. int entries = KVM_E500_TLB0_SIZE + KVM_E500_TLB1_SIZE;
  1023. host_tlb_params[0].entries = mfspr(SPRN_TLB0CFG) & TLBnCFG_N_ENTRY;
  1024. host_tlb_params[1].entries = mfspr(SPRN_TLB1CFG) & TLBnCFG_N_ENTRY;
  1025. /*
  1026. * This should never happen on real e500 hardware, but is
  1027. * architecturally possible -- e.g. in some weird nested
  1028. * virtualization case.
  1029. */
  1030. if (host_tlb_params[0].entries == 0 ||
  1031. host_tlb_params[1].entries == 0) {
  1032. pr_err("%s: need to know host tlb size\n", __func__);
  1033. return -ENODEV;
  1034. }
  1035. host_tlb_params[0].ways = (mfspr(SPRN_TLB0CFG) & TLBnCFG_ASSOC) >>
  1036. TLBnCFG_ASSOC_SHIFT;
  1037. host_tlb_params[1].ways = host_tlb_params[1].entries;
  1038. if (!is_power_of_2(host_tlb_params[0].entries) ||
  1039. !is_power_of_2(host_tlb_params[0].ways) ||
  1040. host_tlb_params[0].entries < host_tlb_params[0].ways ||
  1041. host_tlb_params[0].ways == 0) {
  1042. pr_err("%s: bad tlb0 host config: %u entries %u ways\n",
  1043. __func__, host_tlb_params[0].entries,
  1044. host_tlb_params[0].ways);
  1045. return -ENODEV;
  1046. }
  1047. host_tlb_params[0].sets =
  1048. host_tlb_params[0].entries / host_tlb_params[0].ways;
  1049. host_tlb_params[1].sets = 1;
  1050. vcpu_e500->gtlb_params[0].entries = KVM_E500_TLB0_SIZE;
  1051. vcpu_e500->gtlb_params[1].entries = KVM_E500_TLB1_SIZE;
  1052. vcpu_e500->gtlb_params[0].ways = KVM_E500_TLB0_WAY_NUM;
  1053. vcpu_e500->gtlb_params[0].sets =
  1054. KVM_E500_TLB0_SIZE / KVM_E500_TLB0_WAY_NUM;
  1055. vcpu_e500->gtlb_params[1].ways = KVM_E500_TLB1_SIZE;
  1056. vcpu_e500->gtlb_params[1].sets = 1;
  1057. vcpu_e500->gtlb_arch = kmalloc(entries * entry_size, GFP_KERNEL);
  1058. if (!vcpu_e500->gtlb_arch)
  1059. return -ENOMEM;
  1060. vcpu_e500->gtlb_offset[0] = 0;
  1061. vcpu_e500->gtlb_offset[1] = KVM_E500_TLB0_SIZE;
  1062. vcpu_e500->tlb_refs[0] =
  1063. kzalloc(sizeof(struct tlbe_ref) * host_tlb_params[0].entries,
  1064. GFP_KERNEL);
  1065. if (!vcpu_e500->tlb_refs[0])
  1066. goto err;
  1067. vcpu_e500->tlb_refs[1] =
  1068. kzalloc(sizeof(struct tlbe_ref) * host_tlb_params[1].entries,
  1069. GFP_KERNEL);
  1070. if (!vcpu_e500->tlb_refs[1])
  1071. goto err;
  1072. vcpu_e500->gtlb_priv[0] = kzalloc(sizeof(struct tlbe_ref) *
  1073. vcpu_e500->gtlb_params[0].entries,
  1074. GFP_KERNEL);
  1075. if (!vcpu_e500->gtlb_priv[0])
  1076. goto err;
  1077. vcpu_e500->gtlb_priv[1] = kzalloc(sizeof(struct tlbe_ref) *
  1078. vcpu_e500->gtlb_params[1].entries,
  1079. GFP_KERNEL);
  1080. if (!vcpu_e500->gtlb_priv[1])
  1081. goto err;
  1082. vcpu_e500->g2h_tlb1_map = kzalloc(sizeof(unsigned int) *
  1083. vcpu_e500->gtlb_params[1].entries,
  1084. GFP_KERNEL);
  1085. if (!vcpu_e500->g2h_tlb1_map)
  1086. goto err;
  1087. vcpu_e500->h2g_tlb1_rmap = kzalloc(sizeof(unsigned int) *
  1088. host_tlb_params[1].entries,
  1089. GFP_KERNEL);
  1090. if (!vcpu_e500->h2g_tlb1_rmap)
  1091. goto err;
  1092. /* Init TLB configuration register */
  1093. vcpu->arch.tlbcfg[0] = mfspr(SPRN_TLB0CFG) &
  1094. ~(TLBnCFG_N_ENTRY | TLBnCFG_ASSOC);
  1095. vcpu->arch.tlbcfg[0] |= vcpu_e500->gtlb_params[0].entries;
  1096. vcpu->arch.tlbcfg[0] |=
  1097. vcpu_e500->gtlb_params[0].ways << TLBnCFG_ASSOC_SHIFT;
  1098. vcpu->arch.tlbcfg[1] = mfspr(SPRN_TLB1CFG) &
  1099. ~(TLBnCFG_N_ENTRY | TLBnCFG_ASSOC);
  1100. vcpu->arch.tlbcfg[1] |= vcpu_e500->gtlb_params[1].entries;
  1101. vcpu->arch.tlbcfg[1] |=
  1102. vcpu_e500->gtlb_params[1].ways << TLBnCFG_ASSOC_SHIFT;
  1103. kvmppc_recalc_tlb1map_range(vcpu_e500);
  1104. return 0;
  1105. err:
  1106. free_gtlb(vcpu_e500);
  1107. kfree(vcpu_e500->tlb_refs[0]);
  1108. kfree(vcpu_e500->tlb_refs[1]);
  1109. return -1;
  1110. }
  1111. void kvmppc_e500_tlb_uninit(struct kvmppc_vcpu_e500 *vcpu_e500)
  1112. {
  1113. free_gtlb(vcpu_e500);
  1114. kfree(vcpu_e500->h2g_tlb1_rmap);
  1115. kfree(vcpu_e500->tlb_refs[0]);
  1116. kfree(vcpu_e500->tlb_refs[1]);
  1117. }