book3s_hv.c 63 KB

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  1. /*
  2. * Copyright 2011 Paul Mackerras, IBM Corp. <paulus@au1.ibm.com>
  3. * Copyright (C) 2009. SUSE Linux Products GmbH. All rights reserved.
  4. *
  5. * Authors:
  6. * Paul Mackerras <paulus@au1.ibm.com>
  7. * Alexander Graf <agraf@suse.de>
  8. * Kevin Wolf <mail@kevin-wolf.de>
  9. *
  10. * Description: KVM functions specific to running on Book 3S
  11. * processors in hypervisor mode (specifically POWER7 and later).
  12. *
  13. * This file is derived from arch/powerpc/kvm/book3s.c,
  14. * by Alexander Graf <agraf@suse.de>.
  15. *
  16. * This program is free software; you can redistribute it and/or modify
  17. * it under the terms of the GNU General Public License, version 2, as
  18. * published by the Free Software Foundation.
  19. */
  20. #include <linux/kvm_host.h>
  21. #include <linux/err.h>
  22. #include <linux/slab.h>
  23. #include <linux/preempt.h>
  24. #include <linux/sched.h>
  25. #include <linux/delay.h>
  26. #include <linux/export.h>
  27. #include <linux/fs.h>
  28. #include <linux/anon_inodes.h>
  29. #include <linux/cpumask.h>
  30. #include <linux/spinlock.h>
  31. #include <linux/page-flags.h>
  32. #include <linux/srcu.h>
  33. #include <linux/miscdevice.h>
  34. #include <asm/reg.h>
  35. #include <asm/cputable.h>
  36. #include <asm/cacheflush.h>
  37. #include <asm/tlbflush.h>
  38. #include <asm/uaccess.h>
  39. #include <asm/io.h>
  40. #include <asm/kvm_ppc.h>
  41. #include <asm/kvm_book3s.h>
  42. #include <asm/mmu_context.h>
  43. #include <asm/lppaca.h>
  44. #include <asm/processor.h>
  45. #include <asm/cputhreads.h>
  46. #include <asm/page.h>
  47. #include <asm/hvcall.h>
  48. #include <asm/switch_to.h>
  49. #include <asm/smp.h>
  50. #include <linux/gfp.h>
  51. #include <linux/vmalloc.h>
  52. #include <linux/highmem.h>
  53. #include <linux/hugetlb.h>
  54. #include <linux/module.h>
  55. #include "book3s.h"
  56. /* #define EXIT_DEBUG */
  57. /* #define EXIT_DEBUG_SIMPLE */
  58. /* #define EXIT_DEBUG_INT */
  59. /* Used to indicate that a guest page fault needs to be handled */
  60. #define RESUME_PAGE_FAULT (RESUME_GUEST | RESUME_FLAG_ARCH1)
  61. /* Used as a "null" value for timebase values */
  62. #define TB_NIL (~(u64)0)
  63. static void kvmppc_end_cede(struct kvm_vcpu *vcpu);
  64. static int kvmppc_hv_setup_htab_rma(struct kvm_vcpu *vcpu);
  65. static void kvmppc_fast_vcpu_kick_hv(struct kvm_vcpu *vcpu)
  66. {
  67. int me;
  68. int cpu = vcpu->cpu;
  69. wait_queue_head_t *wqp;
  70. wqp = kvm_arch_vcpu_wq(vcpu);
  71. if (waitqueue_active(wqp)) {
  72. wake_up_interruptible(wqp);
  73. ++vcpu->stat.halt_wakeup;
  74. }
  75. me = get_cpu();
  76. /* CPU points to the first thread of the core */
  77. if (cpu != me && cpu >= 0 && cpu < nr_cpu_ids) {
  78. #ifdef CONFIG_PPC_ICP_NATIVE
  79. int real_cpu = cpu + vcpu->arch.ptid;
  80. if (paca[real_cpu].kvm_hstate.xics_phys)
  81. xics_wake_cpu(real_cpu);
  82. else
  83. #endif
  84. if (cpu_online(cpu))
  85. smp_send_reschedule(cpu);
  86. }
  87. put_cpu();
  88. }
  89. /*
  90. * We use the vcpu_load/put functions to measure stolen time.
  91. * Stolen time is counted as time when either the vcpu is able to
  92. * run as part of a virtual core, but the task running the vcore
  93. * is preempted or sleeping, or when the vcpu needs something done
  94. * in the kernel by the task running the vcpu, but that task is
  95. * preempted or sleeping. Those two things have to be counted
  96. * separately, since one of the vcpu tasks will take on the job
  97. * of running the core, and the other vcpu tasks in the vcore will
  98. * sleep waiting for it to do that, but that sleep shouldn't count
  99. * as stolen time.
  100. *
  101. * Hence we accumulate stolen time when the vcpu can run as part of
  102. * a vcore using vc->stolen_tb, and the stolen time when the vcpu
  103. * needs its task to do other things in the kernel (for example,
  104. * service a page fault) in busy_stolen. We don't accumulate
  105. * stolen time for a vcore when it is inactive, or for a vcpu
  106. * when it is in state RUNNING or NOTREADY. NOTREADY is a bit of
  107. * a misnomer; it means that the vcpu task is not executing in
  108. * the KVM_VCPU_RUN ioctl, i.e. it is in userspace or elsewhere in
  109. * the kernel. We don't have any way of dividing up that time
  110. * between time that the vcpu is genuinely stopped, time that
  111. * the task is actively working on behalf of the vcpu, and time
  112. * that the task is preempted, so we don't count any of it as
  113. * stolen.
  114. *
  115. * Updates to busy_stolen are protected by arch.tbacct_lock;
  116. * updates to vc->stolen_tb are protected by the arch.tbacct_lock
  117. * of the vcpu that has taken responsibility for running the vcore
  118. * (i.e. vc->runner). The stolen times are measured in units of
  119. * timebase ticks. (Note that the != TB_NIL checks below are
  120. * purely defensive; they should never fail.)
  121. */
  122. static void kvmppc_core_vcpu_load_hv(struct kvm_vcpu *vcpu, int cpu)
  123. {
  124. struct kvmppc_vcore *vc = vcpu->arch.vcore;
  125. unsigned long flags;
  126. spin_lock_irqsave(&vcpu->arch.tbacct_lock, flags);
  127. if (vc->runner == vcpu && vc->vcore_state != VCORE_INACTIVE &&
  128. vc->preempt_tb != TB_NIL) {
  129. vc->stolen_tb += mftb() - vc->preempt_tb;
  130. vc->preempt_tb = TB_NIL;
  131. }
  132. if (vcpu->arch.state == KVMPPC_VCPU_BUSY_IN_HOST &&
  133. vcpu->arch.busy_preempt != TB_NIL) {
  134. vcpu->arch.busy_stolen += mftb() - vcpu->arch.busy_preempt;
  135. vcpu->arch.busy_preempt = TB_NIL;
  136. }
  137. spin_unlock_irqrestore(&vcpu->arch.tbacct_lock, flags);
  138. }
  139. static void kvmppc_core_vcpu_put_hv(struct kvm_vcpu *vcpu)
  140. {
  141. struct kvmppc_vcore *vc = vcpu->arch.vcore;
  142. unsigned long flags;
  143. spin_lock_irqsave(&vcpu->arch.tbacct_lock, flags);
  144. if (vc->runner == vcpu && vc->vcore_state != VCORE_INACTIVE)
  145. vc->preempt_tb = mftb();
  146. if (vcpu->arch.state == KVMPPC_VCPU_BUSY_IN_HOST)
  147. vcpu->arch.busy_preempt = mftb();
  148. spin_unlock_irqrestore(&vcpu->arch.tbacct_lock, flags);
  149. }
  150. static void kvmppc_set_msr_hv(struct kvm_vcpu *vcpu, u64 msr)
  151. {
  152. vcpu->arch.shregs.msr = msr;
  153. kvmppc_end_cede(vcpu);
  154. }
  155. void kvmppc_set_pvr_hv(struct kvm_vcpu *vcpu, u32 pvr)
  156. {
  157. vcpu->arch.pvr = pvr;
  158. }
  159. int kvmppc_set_arch_compat(struct kvm_vcpu *vcpu, u32 arch_compat)
  160. {
  161. unsigned long pcr = 0;
  162. struct kvmppc_vcore *vc = vcpu->arch.vcore;
  163. if (arch_compat) {
  164. if (!cpu_has_feature(CPU_FTR_ARCH_206))
  165. return -EINVAL; /* 970 has no compat mode support */
  166. switch (arch_compat) {
  167. case PVR_ARCH_205:
  168. /*
  169. * If an arch bit is set in PCR, all the defined
  170. * higher-order arch bits also have to be set.
  171. */
  172. pcr = PCR_ARCH_206 | PCR_ARCH_205;
  173. break;
  174. case PVR_ARCH_206:
  175. case PVR_ARCH_206p:
  176. pcr = PCR_ARCH_206;
  177. break;
  178. case PVR_ARCH_207:
  179. break;
  180. default:
  181. return -EINVAL;
  182. }
  183. if (!cpu_has_feature(CPU_FTR_ARCH_207S)) {
  184. /* POWER7 can't emulate POWER8 */
  185. if (!(pcr & PCR_ARCH_206))
  186. return -EINVAL;
  187. pcr &= ~PCR_ARCH_206;
  188. }
  189. }
  190. spin_lock(&vc->lock);
  191. vc->arch_compat = arch_compat;
  192. vc->pcr = pcr;
  193. spin_unlock(&vc->lock);
  194. return 0;
  195. }
  196. void kvmppc_dump_regs(struct kvm_vcpu *vcpu)
  197. {
  198. int r;
  199. pr_err("vcpu %p (%d):\n", vcpu, vcpu->vcpu_id);
  200. pr_err("pc = %.16lx msr = %.16llx trap = %x\n",
  201. vcpu->arch.pc, vcpu->arch.shregs.msr, vcpu->arch.trap);
  202. for (r = 0; r < 16; ++r)
  203. pr_err("r%2d = %.16lx r%d = %.16lx\n",
  204. r, kvmppc_get_gpr(vcpu, r),
  205. r+16, kvmppc_get_gpr(vcpu, r+16));
  206. pr_err("ctr = %.16lx lr = %.16lx\n",
  207. vcpu->arch.ctr, vcpu->arch.lr);
  208. pr_err("srr0 = %.16llx srr1 = %.16llx\n",
  209. vcpu->arch.shregs.srr0, vcpu->arch.shregs.srr1);
  210. pr_err("sprg0 = %.16llx sprg1 = %.16llx\n",
  211. vcpu->arch.shregs.sprg0, vcpu->arch.shregs.sprg1);
  212. pr_err("sprg2 = %.16llx sprg3 = %.16llx\n",
  213. vcpu->arch.shregs.sprg2, vcpu->arch.shregs.sprg3);
  214. pr_err("cr = %.8x xer = %.16lx dsisr = %.8x\n",
  215. vcpu->arch.cr, vcpu->arch.xer, vcpu->arch.shregs.dsisr);
  216. pr_err("dar = %.16llx\n", vcpu->arch.shregs.dar);
  217. pr_err("fault dar = %.16lx dsisr = %.8x\n",
  218. vcpu->arch.fault_dar, vcpu->arch.fault_dsisr);
  219. pr_err("SLB (%d entries):\n", vcpu->arch.slb_max);
  220. for (r = 0; r < vcpu->arch.slb_max; ++r)
  221. pr_err(" ESID = %.16llx VSID = %.16llx\n",
  222. vcpu->arch.slb[r].orige, vcpu->arch.slb[r].origv);
  223. pr_err("lpcr = %.16lx sdr1 = %.16lx last_inst = %.8x\n",
  224. vcpu->arch.vcore->lpcr, vcpu->kvm->arch.sdr1,
  225. vcpu->arch.last_inst);
  226. }
  227. struct kvm_vcpu *kvmppc_find_vcpu(struct kvm *kvm, int id)
  228. {
  229. int r;
  230. struct kvm_vcpu *v, *ret = NULL;
  231. mutex_lock(&kvm->lock);
  232. kvm_for_each_vcpu(r, v, kvm) {
  233. if (v->vcpu_id == id) {
  234. ret = v;
  235. break;
  236. }
  237. }
  238. mutex_unlock(&kvm->lock);
  239. return ret;
  240. }
  241. static void init_vpa(struct kvm_vcpu *vcpu, struct lppaca *vpa)
  242. {
  243. vpa->__old_status |= LPPACA_OLD_SHARED_PROC;
  244. vpa->yield_count = 1;
  245. }
  246. static int set_vpa(struct kvm_vcpu *vcpu, struct kvmppc_vpa *v,
  247. unsigned long addr, unsigned long len)
  248. {
  249. /* check address is cacheline aligned */
  250. if (addr & (L1_CACHE_BYTES - 1))
  251. return -EINVAL;
  252. spin_lock(&vcpu->arch.vpa_update_lock);
  253. if (v->next_gpa != addr || v->len != len) {
  254. v->next_gpa = addr;
  255. v->len = addr ? len : 0;
  256. v->update_pending = 1;
  257. }
  258. spin_unlock(&vcpu->arch.vpa_update_lock);
  259. return 0;
  260. }
  261. /* Length for a per-processor buffer is passed in at offset 4 in the buffer */
  262. struct reg_vpa {
  263. u32 dummy;
  264. union {
  265. u16 hword;
  266. u32 word;
  267. } length;
  268. };
  269. static int vpa_is_registered(struct kvmppc_vpa *vpap)
  270. {
  271. if (vpap->update_pending)
  272. return vpap->next_gpa != 0;
  273. return vpap->pinned_addr != NULL;
  274. }
  275. static unsigned long do_h_register_vpa(struct kvm_vcpu *vcpu,
  276. unsigned long flags,
  277. unsigned long vcpuid, unsigned long vpa)
  278. {
  279. struct kvm *kvm = vcpu->kvm;
  280. unsigned long len, nb;
  281. void *va;
  282. struct kvm_vcpu *tvcpu;
  283. int err;
  284. int subfunc;
  285. struct kvmppc_vpa *vpap;
  286. tvcpu = kvmppc_find_vcpu(kvm, vcpuid);
  287. if (!tvcpu)
  288. return H_PARAMETER;
  289. subfunc = (flags >> H_VPA_FUNC_SHIFT) & H_VPA_FUNC_MASK;
  290. if (subfunc == H_VPA_REG_VPA || subfunc == H_VPA_REG_DTL ||
  291. subfunc == H_VPA_REG_SLB) {
  292. /* Registering new area - address must be cache-line aligned */
  293. if ((vpa & (L1_CACHE_BYTES - 1)) || !vpa)
  294. return H_PARAMETER;
  295. /* convert logical addr to kernel addr and read length */
  296. va = kvmppc_pin_guest_page(kvm, vpa, &nb);
  297. if (va == NULL)
  298. return H_PARAMETER;
  299. if (subfunc == H_VPA_REG_VPA)
  300. len = ((struct reg_vpa *)va)->length.hword;
  301. else
  302. len = ((struct reg_vpa *)va)->length.word;
  303. kvmppc_unpin_guest_page(kvm, va, vpa, false);
  304. /* Check length */
  305. if (len > nb || len < sizeof(struct reg_vpa))
  306. return H_PARAMETER;
  307. } else {
  308. vpa = 0;
  309. len = 0;
  310. }
  311. err = H_PARAMETER;
  312. vpap = NULL;
  313. spin_lock(&tvcpu->arch.vpa_update_lock);
  314. switch (subfunc) {
  315. case H_VPA_REG_VPA: /* register VPA */
  316. if (len < sizeof(struct lppaca))
  317. break;
  318. vpap = &tvcpu->arch.vpa;
  319. err = 0;
  320. break;
  321. case H_VPA_REG_DTL: /* register DTL */
  322. if (len < sizeof(struct dtl_entry))
  323. break;
  324. len -= len % sizeof(struct dtl_entry);
  325. /* Check that they have previously registered a VPA */
  326. err = H_RESOURCE;
  327. if (!vpa_is_registered(&tvcpu->arch.vpa))
  328. break;
  329. vpap = &tvcpu->arch.dtl;
  330. err = 0;
  331. break;
  332. case H_VPA_REG_SLB: /* register SLB shadow buffer */
  333. /* Check that they have previously registered a VPA */
  334. err = H_RESOURCE;
  335. if (!vpa_is_registered(&tvcpu->arch.vpa))
  336. break;
  337. vpap = &tvcpu->arch.slb_shadow;
  338. err = 0;
  339. break;
  340. case H_VPA_DEREG_VPA: /* deregister VPA */
  341. /* Check they don't still have a DTL or SLB buf registered */
  342. err = H_RESOURCE;
  343. if (vpa_is_registered(&tvcpu->arch.dtl) ||
  344. vpa_is_registered(&tvcpu->arch.slb_shadow))
  345. break;
  346. vpap = &tvcpu->arch.vpa;
  347. err = 0;
  348. break;
  349. case H_VPA_DEREG_DTL: /* deregister DTL */
  350. vpap = &tvcpu->arch.dtl;
  351. err = 0;
  352. break;
  353. case H_VPA_DEREG_SLB: /* deregister SLB shadow buffer */
  354. vpap = &tvcpu->arch.slb_shadow;
  355. err = 0;
  356. break;
  357. }
  358. if (vpap) {
  359. vpap->next_gpa = vpa;
  360. vpap->len = len;
  361. vpap->update_pending = 1;
  362. }
  363. spin_unlock(&tvcpu->arch.vpa_update_lock);
  364. return err;
  365. }
  366. static void kvmppc_update_vpa(struct kvm_vcpu *vcpu, struct kvmppc_vpa *vpap)
  367. {
  368. struct kvm *kvm = vcpu->kvm;
  369. void *va;
  370. unsigned long nb;
  371. unsigned long gpa;
  372. /*
  373. * We need to pin the page pointed to by vpap->next_gpa,
  374. * but we can't call kvmppc_pin_guest_page under the lock
  375. * as it does get_user_pages() and down_read(). So we
  376. * have to drop the lock, pin the page, then get the lock
  377. * again and check that a new area didn't get registered
  378. * in the meantime.
  379. */
  380. for (;;) {
  381. gpa = vpap->next_gpa;
  382. spin_unlock(&vcpu->arch.vpa_update_lock);
  383. va = NULL;
  384. nb = 0;
  385. if (gpa)
  386. va = kvmppc_pin_guest_page(kvm, gpa, &nb);
  387. spin_lock(&vcpu->arch.vpa_update_lock);
  388. if (gpa == vpap->next_gpa)
  389. break;
  390. /* sigh... unpin that one and try again */
  391. if (va)
  392. kvmppc_unpin_guest_page(kvm, va, gpa, false);
  393. }
  394. vpap->update_pending = 0;
  395. if (va && nb < vpap->len) {
  396. /*
  397. * If it's now too short, it must be that userspace
  398. * has changed the mappings underlying guest memory,
  399. * so unregister the region.
  400. */
  401. kvmppc_unpin_guest_page(kvm, va, gpa, false);
  402. va = NULL;
  403. }
  404. if (vpap->pinned_addr)
  405. kvmppc_unpin_guest_page(kvm, vpap->pinned_addr, vpap->gpa,
  406. vpap->dirty);
  407. vpap->gpa = gpa;
  408. vpap->pinned_addr = va;
  409. vpap->dirty = false;
  410. if (va)
  411. vpap->pinned_end = va + vpap->len;
  412. }
  413. static void kvmppc_update_vpas(struct kvm_vcpu *vcpu)
  414. {
  415. if (!(vcpu->arch.vpa.update_pending ||
  416. vcpu->arch.slb_shadow.update_pending ||
  417. vcpu->arch.dtl.update_pending))
  418. return;
  419. spin_lock(&vcpu->arch.vpa_update_lock);
  420. if (vcpu->arch.vpa.update_pending) {
  421. kvmppc_update_vpa(vcpu, &vcpu->arch.vpa);
  422. if (vcpu->arch.vpa.pinned_addr)
  423. init_vpa(vcpu, vcpu->arch.vpa.pinned_addr);
  424. }
  425. if (vcpu->arch.dtl.update_pending) {
  426. kvmppc_update_vpa(vcpu, &vcpu->arch.dtl);
  427. vcpu->arch.dtl_ptr = vcpu->arch.dtl.pinned_addr;
  428. vcpu->arch.dtl_index = 0;
  429. }
  430. if (vcpu->arch.slb_shadow.update_pending)
  431. kvmppc_update_vpa(vcpu, &vcpu->arch.slb_shadow);
  432. spin_unlock(&vcpu->arch.vpa_update_lock);
  433. }
  434. /*
  435. * Return the accumulated stolen time for the vcore up until `now'.
  436. * The caller should hold the vcore lock.
  437. */
  438. static u64 vcore_stolen_time(struct kvmppc_vcore *vc, u64 now)
  439. {
  440. u64 p;
  441. /*
  442. * If we are the task running the vcore, then since we hold
  443. * the vcore lock, we can't be preempted, so stolen_tb/preempt_tb
  444. * can't be updated, so we don't need the tbacct_lock.
  445. * If the vcore is inactive, it can't become active (since we
  446. * hold the vcore lock), so the vcpu load/put functions won't
  447. * update stolen_tb/preempt_tb, and we don't need tbacct_lock.
  448. */
  449. if (vc->vcore_state != VCORE_INACTIVE &&
  450. vc->runner->arch.run_task != current) {
  451. spin_lock_irq(&vc->runner->arch.tbacct_lock);
  452. p = vc->stolen_tb;
  453. if (vc->preempt_tb != TB_NIL)
  454. p += now - vc->preempt_tb;
  455. spin_unlock_irq(&vc->runner->arch.tbacct_lock);
  456. } else {
  457. p = vc->stolen_tb;
  458. }
  459. return p;
  460. }
  461. static void kvmppc_create_dtl_entry(struct kvm_vcpu *vcpu,
  462. struct kvmppc_vcore *vc)
  463. {
  464. struct dtl_entry *dt;
  465. struct lppaca *vpa;
  466. unsigned long stolen;
  467. unsigned long core_stolen;
  468. u64 now;
  469. dt = vcpu->arch.dtl_ptr;
  470. vpa = vcpu->arch.vpa.pinned_addr;
  471. now = mftb();
  472. core_stolen = vcore_stolen_time(vc, now);
  473. stolen = core_stolen - vcpu->arch.stolen_logged;
  474. vcpu->arch.stolen_logged = core_stolen;
  475. spin_lock_irq(&vcpu->arch.tbacct_lock);
  476. stolen += vcpu->arch.busy_stolen;
  477. vcpu->arch.busy_stolen = 0;
  478. spin_unlock_irq(&vcpu->arch.tbacct_lock);
  479. if (!dt || !vpa)
  480. return;
  481. memset(dt, 0, sizeof(struct dtl_entry));
  482. dt->dispatch_reason = 7;
  483. dt->processor_id = vc->pcpu + vcpu->arch.ptid;
  484. dt->timebase = now + vc->tb_offset;
  485. dt->enqueue_to_dispatch_time = stolen;
  486. dt->srr0 = kvmppc_get_pc(vcpu);
  487. dt->srr1 = vcpu->arch.shregs.msr;
  488. ++dt;
  489. if (dt == vcpu->arch.dtl.pinned_end)
  490. dt = vcpu->arch.dtl.pinned_addr;
  491. vcpu->arch.dtl_ptr = dt;
  492. /* order writing *dt vs. writing vpa->dtl_idx */
  493. smp_wmb();
  494. vpa->dtl_idx = ++vcpu->arch.dtl_index;
  495. vcpu->arch.dtl.dirty = true;
  496. }
  497. int kvmppc_pseries_do_hcall(struct kvm_vcpu *vcpu)
  498. {
  499. unsigned long req = kvmppc_get_gpr(vcpu, 3);
  500. unsigned long target, ret = H_SUCCESS;
  501. struct kvm_vcpu *tvcpu;
  502. int idx, rc;
  503. switch (req) {
  504. case H_ENTER:
  505. idx = srcu_read_lock(&vcpu->kvm->srcu);
  506. ret = kvmppc_virtmode_h_enter(vcpu, kvmppc_get_gpr(vcpu, 4),
  507. kvmppc_get_gpr(vcpu, 5),
  508. kvmppc_get_gpr(vcpu, 6),
  509. kvmppc_get_gpr(vcpu, 7));
  510. srcu_read_unlock(&vcpu->kvm->srcu, idx);
  511. break;
  512. case H_CEDE:
  513. break;
  514. case H_PROD:
  515. target = kvmppc_get_gpr(vcpu, 4);
  516. tvcpu = kvmppc_find_vcpu(vcpu->kvm, target);
  517. if (!tvcpu) {
  518. ret = H_PARAMETER;
  519. break;
  520. }
  521. tvcpu->arch.prodded = 1;
  522. smp_mb();
  523. if (vcpu->arch.ceded) {
  524. if (waitqueue_active(&vcpu->wq)) {
  525. wake_up_interruptible(&vcpu->wq);
  526. vcpu->stat.halt_wakeup++;
  527. }
  528. }
  529. break;
  530. case H_CONFER:
  531. target = kvmppc_get_gpr(vcpu, 4);
  532. if (target == -1)
  533. break;
  534. tvcpu = kvmppc_find_vcpu(vcpu->kvm, target);
  535. if (!tvcpu) {
  536. ret = H_PARAMETER;
  537. break;
  538. }
  539. kvm_vcpu_yield_to(tvcpu);
  540. break;
  541. case H_REGISTER_VPA:
  542. ret = do_h_register_vpa(vcpu, kvmppc_get_gpr(vcpu, 4),
  543. kvmppc_get_gpr(vcpu, 5),
  544. kvmppc_get_gpr(vcpu, 6));
  545. break;
  546. case H_RTAS:
  547. if (list_empty(&vcpu->kvm->arch.rtas_tokens))
  548. return RESUME_HOST;
  549. idx = srcu_read_lock(&vcpu->kvm->srcu);
  550. rc = kvmppc_rtas_hcall(vcpu);
  551. srcu_read_unlock(&vcpu->kvm->srcu, idx);
  552. if (rc == -ENOENT)
  553. return RESUME_HOST;
  554. else if (rc == 0)
  555. break;
  556. /* Send the error out to userspace via KVM_RUN */
  557. return rc;
  558. case H_XIRR:
  559. case H_CPPR:
  560. case H_EOI:
  561. case H_IPI:
  562. case H_IPOLL:
  563. case H_XIRR_X:
  564. if (kvmppc_xics_enabled(vcpu)) {
  565. ret = kvmppc_xics_hcall(vcpu, req);
  566. break;
  567. } /* fallthrough */
  568. default:
  569. return RESUME_HOST;
  570. }
  571. kvmppc_set_gpr(vcpu, 3, ret);
  572. vcpu->arch.hcall_needed = 0;
  573. return RESUME_GUEST;
  574. }
  575. static int kvmppc_handle_exit_hv(struct kvm_run *run, struct kvm_vcpu *vcpu,
  576. struct task_struct *tsk)
  577. {
  578. int r = RESUME_HOST;
  579. vcpu->stat.sum_exits++;
  580. run->exit_reason = KVM_EXIT_UNKNOWN;
  581. run->ready_for_interrupt_injection = 1;
  582. switch (vcpu->arch.trap) {
  583. /* We're good on these - the host merely wanted to get our attention */
  584. case BOOK3S_INTERRUPT_HV_DECREMENTER:
  585. vcpu->stat.dec_exits++;
  586. r = RESUME_GUEST;
  587. break;
  588. case BOOK3S_INTERRUPT_EXTERNAL:
  589. case BOOK3S_INTERRUPT_H_DOORBELL:
  590. vcpu->stat.ext_intr_exits++;
  591. r = RESUME_GUEST;
  592. break;
  593. case BOOK3S_INTERRUPT_PERFMON:
  594. r = RESUME_GUEST;
  595. break;
  596. case BOOK3S_INTERRUPT_MACHINE_CHECK:
  597. /*
  598. * Deliver a machine check interrupt to the guest.
  599. * We have to do this, even if the host has handled the
  600. * machine check, because machine checks use SRR0/1 and
  601. * the interrupt might have trashed guest state in them.
  602. */
  603. kvmppc_book3s_queue_irqprio(vcpu,
  604. BOOK3S_INTERRUPT_MACHINE_CHECK);
  605. r = RESUME_GUEST;
  606. break;
  607. case BOOK3S_INTERRUPT_PROGRAM:
  608. {
  609. ulong flags;
  610. /*
  611. * Normally program interrupts are delivered directly
  612. * to the guest by the hardware, but we can get here
  613. * as a result of a hypervisor emulation interrupt
  614. * (e40) getting turned into a 700 by BML RTAS.
  615. */
  616. flags = vcpu->arch.shregs.msr & 0x1f0000ull;
  617. kvmppc_core_queue_program(vcpu, flags);
  618. r = RESUME_GUEST;
  619. break;
  620. }
  621. case BOOK3S_INTERRUPT_SYSCALL:
  622. {
  623. /* hcall - punt to userspace */
  624. int i;
  625. /* hypercall with MSR_PR has already been handled in rmode,
  626. * and never reaches here.
  627. */
  628. run->papr_hcall.nr = kvmppc_get_gpr(vcpu, 3);
  629. for (i = 0; i < 9; ++i)
  630. run->papr_hcall.args[i] = kvmppc_get_gpr(vcpu, 4 + i);
  631. run->exit_reason = KVM_EXIT_PAPR_HCALL;
  632. vcpu->arch.hcall_needed = 1;
  633. r = RESUME_HOST;
  634. break;
  635. }
  636. /*
  637. * We get these next two if the guest accesses a page which it thinks
  638. * it has mapped but which is not actually present, either because
  639. * it is for an emulated I/O device or because the corresonding
  640. * host page has been paged out. Any other HDSI/HISI interrupts
  641. * have been handled already.
  642. */
  643. case BOOK3S_INTERRUPT_H_DATA_STORAGE:
  644. r = RESUME_PAGE_FAULT;
  645. break;
  646. case BOOK3S_INTERRUPT_H_INST_STORAGE:
  647. vcpu->arch.fault_dar = kvmppc_get_pc(vcpu);
  648. vcpu->arch.fault_dsisr = 0;
  649. r = RESUME_PAGE_FAULT;
  650. break;
  651. /*
  652. * This occurs if the guest executes an illegal instruction.
  653. * We just generate a program interrupt to the guest, since
  654. * we don't emulate any guest instructions at this stage.
  655. */
  656. case BOOK3S_INTERRUPT_H_EMUL_ASSIST:
  657. kvmppc_core_queue_program(vcpu, SRR1_PROGILL);
  658. r = RESUME_GUEST;
  659. break;
  660. /*
  661. * This occurs if the guest (kernel or userspace), does something that
  662. * is prohibited by HFSCR. We just generate a program interrupt to
  663. * the guest.
  664. */
  665. case BOOK3S_INTERRUPT_H_FAC_UNAVAIL:
  666. kvmppc_core_queue_program(vcpu, SRR1_PROGILL);
  667. r = RESUME_GUEST;
  668. break;
  669. default:
  670. kvmppc_dump_regs(vcpu);
  671. printk(KERN_EMERG "trap=0x%x | pc=0x%lx | msr=0x%llx\n",
  672. vcpu->arch.trap, kvmppc_get_pc(vcpu),
  673. vcpu->arch.shregs.msr);
  674. run->hw.hardware_exit_reason = vcpu->arch.trap;
  675. r = RESUME_HOST;
  676. break;
  677. }
  678. return r;
  679. }
  680. static int kvm_arch_vcpu_ioctl_get_sregs_hv(struct kvm_vcpu *vcpu,
  681. struct kvm_sregs *sregs)
  682. {
  683. int i;
  684. memset(sregs, 0, sizeof(struct kvm_sregs));
  685. sregs->pvr = vcpu->arch.pvr;
  686. for (i = 0; i < vcpu->arch.slb_max; i++) {
  687. sregs->u.s.ppc64.slb[i].slbe = vcpu->arch.slb[i].orige;
  688. sregs->u.s.ppc64.slb[i].slbv = vcpu->arch.slb[i].origv;
  689. }
  690. return 0;
  691. }
  692. static int kvm_arch_vcpu_ioctl_set_sregs_hv(struct kvm_vcpu *vcpu,
  693. struct kvm_sregs *sregs)
  694. {
  695. int i, j;
  696. kvmppc_set_pvr_hv(vcpu, sregs->pvr);
  697. j = 0;
  698. for (i = 0; i < vcpu->arch.slb_nr; i++) {
  699. if (sregs->u.s.ppc64.slb[i].slbe & SLB_ESID_V) {
  700. vcpu->arch.slb[j].orige = sregs->u.s.ppc64.slb[i].slbe;
  701. vcpu->arch.slb[j].origv = sregs->u.s.ppc64.slb[i].slbv;
  702. ++j;
  703. }
  704. }
  705. vcpu->arch.slb_max = j;
  706. return 0;
  707. }
  708. static void kvmppc_set_lpcr(struct kvm_vcpu *vcpu, u64 new_lpcr)
  709. {
  710. struct kvmppc_vcore *vc = vcpu->arch.vcore;
  711. u64 mask;
  712. spin_lock(&vc->lock);
  713. /*
  714. * If ILE (interrupt little-endian) has changed, update the
  715. * MSR_LE bit in the intr_msr for each vcpu in this vcore.
  716. */
  717. if ((new_lpcr & LPCR_ILE) != (vc->lpcr & LPCR_ILE)) {
  718. struct kvm *kvm = vcpu->kvm;
  719. struct kvm_vcpu *vcpu;
  720. int i;
  721. mutex_lock(&kvm->lock);
  722. kvm_for_each_vcpu(i, vcpu, kvm) {
  723. if (vcpu->arch.vcore != vc)
  724. continue;
  725. if (new_lpcr & LPCR_ILE)
  726. vcpu->arch.intr_msr |= MSR_LE;
  727. else
  728. vcpu->arch.intr_msr &= ~MSR_LE;
  729. }
  730. mutex_unlock(&kvm->lock);
  731. }
  732. /*
  733. * Userspace can only modify DPFD (default prefetch depth),
  734. * ILE (interrupt little-endian) and TC (translation control).
  735. * On POWER8 userspace can also modify AIL (alt. interrupt loc.)
  736. */
  737. mask = LPCR_DPFD | LPCR_ILE | LPCR_TC;
  738. if (cpu_has_feature(CPU_FTR_ARCH_207S))
  739. mask |= LPCR_AIL;
  740. vc->lpcr = (vc->lpcr & ~mask) | (new_lpcr & mask);
  741. spin_unlock(&vc->lock);
  742. }
  743. static int kvmppc_get_one_reg_hv(struct kvm_vcpu *vcpu, u64 id,
  744. union kvmppc_one_reg *val)
  745. {
  746. int r = 0;
  747. long int i;
  748. switch (id) {
  749. case KVM_REG_PPC_HIOR:
  750. *val = get_reg_val(id, 0);
  751. break;
  752. case KVM_REG_PPC_DABR:
  753. *val = get_reg_val(id, vcpu->arch.dabr);
  754. break;
  755. case KVM_REG_PPC_DABRX:
  756. *val = get_reg_val(id, vcpu->arch.dabrx);
  757. break;
  758. case KVM_REG_PPC_DSCR:
  759. *val = get_reg_val(id, vcpu->arch.dscr);
  760. break;
  761. case KVM_REG_PPC_PURR:
  762. *val = get_reg_val(id, vcpu->arch.purr);
  763. break;
  764. case KVM_REG_PPC_SPURR:
  765. *val = get_reg_val(id, vcpu->arch.spurr);
  766. break;
  767. case KVM_REG_PPC_AMR:
  768. *val = get_reg_val(id, vcpu->arch.amr);
  769. break;
  770. case KVM_REG_PPC_UAMOR:
  771. *val = get_reg_val(id, vcpu->arch.uamor);
  772. break;
  773. case KVM_REG_PPC_MMCR0 ... KVM_REG_PPC_MMCRS:
  774. i = id - KVM_REG_PPC_MMCR0;
  775. *val = get_reg_val(id, vcpu->arch.mmcr[i]);
  776. break;
  777. case KVM_REG_PPC_PMC1 ... KVM_REG_PPC_PMC8:
  778. i = id - KVM_REG_PPC_PMC1;
  779. *val = get_reg_val(id, vcpu->arch.pmc[i]);
  780. break;
  781. case KVM_REG_PPC_SPMC1 ... KVM_REG_PPC_SPMC2:
  782. i = id - KVM_REG_PPC_SPMC1;
  783. *val = get_reg_val(id, vcpu->arch.spmc[i]);
  784. break;
  785. case KVM_REG_PPC_SIAR:
  786. *val = get_reg_val(id, vcpu->arch.siar);
  787. break;
  788. case KVM_REG_PPC_SDAR:
  789. *val = get_reg_val(id, vcpu->arch.sdar);
  790. break;
  791. case KVM_REG_PPC_SIER:
  792. *val = get_reg_val(id, vcpu->arch.sier);
  793. break;
  794. case KVM_REG_PPC_IAMR:
  795. *val = get_reg_val(id, vcpu->arch.iamr);
  796. break;
  797. case KVM_REG_PPC_FSCR:
  798. *val = get_reg_val(id, vcpu->arch.fscr);
  799. break;
  800. case KVM_REG_PPC_PSPB:
  801. *val = get_reg_val(id, vcpu->arch.pspb);
  802. break;
  803. case KVM_REG_PPC_EBBHR:
  804. *val = get_reg_val(id, vcpu->arch.ebbhr);
  805. break;
  806. case KVM_REG_PPC_EBBRR:
  807. *val = get_reg_val(id, vcpu->arch.ebbrr);
  808. break;
  809. case KVM_REG_PPC_BESCR:
  810. *val = get_reg_val(id, vcpu->arch.bescr);
  811. break;
  812. case KVM_REG_PPC_TAR:
  813. *val = get_reg_val(id, vcpu->arch.tar);
  814. break;
  815. case KVM_REG_PPC_DPDES:
  816. *val = get_reg_val(id, vcpu->arch.vcore->dpdes);
  817. break;
  818. case KVM_REG_PPC_DAWR:
  819. *val = get_reg_val(id, vcpu->arch.dawr);
  820. break;
  821. case KVM_REG_PPC_DAWRX:
  822. *val = get_reg_val(id, vcpu->arch.dawrx);
  823. break;
  824. case KVM_REG_PPC_CIABR:
  825. *val = get_reg_val(id, vcpu->arch.ciabr);
  826. break;
  827. case KVM_REG_PPC_IC:
  828. *val = get_reg_val(id, vcpu->arch.ic);
  829. break;
  830. case KVM_REG_PPC_VTB:
  831. *val = get_reg_val(id, vcpu->arch.vtb);
  832. break;
  833. case KVM_REG_PPC_CSIGR:
  834. *val = get_reg_val(id, vcpu->arch.csigr);
  835. break;
  836. case KVM_REG_PPC_TACR:
  837. *val = get_reg_val(id, vcpu->arch.tacr);
  838. break;
  839. case KVM_REG_PPC_TCSCR:
  840. *val = get_reg_val(id, vcpu->arch.tcscr);
  841. break;
  842. case KVM_REG_PPC_PID:
  843. *val = get_reg_val(id, vcpu->arch.pid);
  844. break;
  845. case KVM_REG_PPC_ACOP:
  846. *val = get_reg_val(id, vcpu->arch.acop);
  847. break;
  848. case KVM_REG_PPC_WORT:
  849. *val = get_reg_val(id, vcpu->arch.wort);
  850. break;
  851. case KVM_REG_PPC_VPA_ADDR:
  852. spin_lock(&vcpu->arch.vpa_update_lock);
  853. *val = get_reg_val(id, vcpu->arch.vpa.next_gpa);
  854. spin_unlock(&vcpu->arch.vpa_update_lock);
  855. break;
  856. case KVM_REG_PPC_VPA_SLB:
  857. spin_lock(&vcpu->arch.vpa_update_lock);
  858. val->vpaval.addr = vcpu->arch.slb_shadow.next_gpa;
  859. val->vpaval.length = vcpu->arch.slb_shadow.len;
  860. spin_unlock(&vcpu->arch.vpa_update_lock);
  861. break;
  862. case KVM_REG_PPC_VPA_DTL:
  863. spin_lock(&vcpu->arch.vpa_update_lock);
  864. val->vpaval.addr = vcpu->arch.dtl.next_gpa;
  865. val->vpaval.length = vcpu->arch.dtl.len;
  866. spin_unlock(&vcpu->arch.vpa_update_lock);
  867. break;
  868. case KVM_REG_PPC_TB_OFFSET:
  869. *val = get_reg_val(id, vcpu->arch.vcore->tb_offset);
  870. break;
  871. case KVM_REG_PPC_LPCR:
  872. *val = get_reg_val(id, vcpu->arch.vcore->lpcr);
  873. break;
  874. case KVM_REG_PPC_PPR:
  875. *val = get_reg_val(id, vcpu->arch.ppr);
  876. break;
  877. #ifdef CONFIG_PPC_TRANSACTIONAL_MEM
  878. case KVM_REG_PPC_TFHAR:
  879. *val = get_reg_val(id, vcpu->arch.tfhar);
  880. break;
  881. case KVM_REG_PPC_TFIAR:
  882. *val = get_reg_val(id, vcpu->arch.tfiar);
  883. break;
  884. case KVM_REG_PPC_TEXASR:
  885. *val = get_reg_val(id, vcpu->arch.texasr);
  886. break;
  887. case KVM_REG_PPC_TM_GPR0 ... KVM_REG_PPC_TM_GPR31:
  888. i = id - KVM_REG_PPC_TM_GPR0;
  889. *val = get_reg_val(id, vcpu->arch.gpr_tm[i]);
  890. break;
  891. case KVM_REG_PPC_TM_VSR0 ... KVM_REG_PPC_TM_VSR63:
  892. {
  893. int j;
  894. i = id - KVM_REG_PPC_TM_VSR0;
  895. if (i < 32)
  896. for (j = 0; j < TS_FPRWIDTH; j++)
  897. val->vsxval[j] = vcpu->arch.fp_tm.fpr[i][j];
  898. else {
  899. if (cpu_has_feature(CPU_FTR_ALTIVEC))
  900. val->vval = vcpu->arch.vr_tm.vr[i-32];
  901. else
  902. r = -ENXIO;
  903. }
  904. break;
  905. }
  906. case KVM_REG_PPC_TM_CR:
  907. *val = get_reg_val(id, vcpu->arch.cr_tm);
  908. break;
  909. case KVM_REG_PPC_TM_LR:
  910. *val = get_reg_val(id, vcpu->arch.lr_tm);
  911. break;
  912. case KVM_REG_PPC_TM_CTR:
  913. *val = get_reg_val(id, vcpu->arch.ctr_tm);
  914. break;
  915. case KVM_REG_PPC_TM_FPSCR:
  916. *val = get_reg_val(id, vcpu->arch.fp_tm.fpscr);
  917. break;
  918. case KVM_REG_PPC_TM_AMR:
  919. *val = get_reg_val(id, vcpu->arch.amr_tm);
  920. break;
  921. case KVM_REG_PPC_TM_PPR:
  922. *val = get_reg_val(id, vcpu->arch.ppr_tm);
  923. break;
  924. case KVM_REG_PPC_TM_VRSAVE:
  925. *val = get_reg_val(id, vcpu->arch.vrsave_tm);
  926. break;
  927. case KVM_REG_PPC_TM_VSCR:
  928. if (cpu_has_feature(CPU_FTR_ALTIVEC))
  929. *val = get_reg_val(id, vcpu->arch.vr_tm.vscr.u[3]);
  930. else
  931. r = -ENXIO;
  932. break;
  933. case KVM_REG_PPC_TM_DSCR:
  934. *val = get_reg_val(id, vcpu->arch.dscr_tm);
  935. break;
  936. case KVM_REG_PPC_TM_TAR:
  937. *val = get_reg_val(id, vcpu->arch.tar_tm);
  938. break;
  939. #endif
  940. case KVM_REG_PPC_ARCH_COMPAT:
  941. *val = get_reg_val(id, vcpu->arch.vcore->arch_compat);
  942. break;
  943. default:
  944. r = -EINVAL;
  945. break;
  946. }
  947. return r;
  948. }
  949. static int kvmppc_set_one_reg_hv(struct kvm_vcpu *vcpu, u64 id,
  950. union kvmppc_one_reg *val)
  951. {
  952. int r = 0;
  953. long int i;
  954. unsigned long addr, len;
  955. switch (id) {
  956. case KVM_REG_PPC_HIOR:
  957. /* Only allow this to be set to zero */
  958. if (set_reg_val(id, *val))
  959. r = -EINVAL;
  960. break;
  961. case KVM_REG_PPC_DABR:
  962. vcpu->arch.dabr = set_reg_val(id, *val);
  963. break;
  964. case KVM_REG_PPC_DABRX:
  965. vcpu->arch.dabrx = set_reg_val(id, *val) & ~DABRX_HYP;
  966. break;
  967. case KVM_REG_PPC_DSCR:
  968. vcpu->arch.dscr = set_reg_val(id, *val);
  969. break;
  970. case KVM_REG_PPC_PURR:
  971. vcpu->arch.purr = set_reg_val(id, *val);
  972. break;
  973. case KVM_REG_PPC_SPURR:
  974. vcpu->arch.spurr = set_reg_val(id, *val);
  975. break;
  976. case KVM_REG_PPC_AMR:
  977. vcpu->arch.amr = set_reg_val(id, *val);
  978. break;
  979. case KVM_REG_PPC_UAMOR:
  980. vcpu->arch.uamor = set_reg_val(id, *val);
  981. break;
  982. case KVM_REG_PPC_MMCR0 ... KVM_REG_PPC_MMCRS:
  983. i = id - KVM_REG_PPC_MMCR0;
  984. vcpu->arch.mmcr[i] = set_reg_val(id, *val);
  985. break;
  986. case KVM_REG_PPC_PMC1 ... KVM_REG_PPC_PMC8:
  987. i = id - KVM_REG_PPC_PMC1;
  988. vcpu->arch.pmc[i] = set_reg_val(id, *val);
  989. break;
  990. case KVM_REG_PPC_SPMC1 ... KVM_REG_PPC_SPMC2:
  991. i = id - KVM_REG_PPC_SPMC1;
  992. vcpu->arch.spmc[i] = set_reg_val(id, *val);
  993. break;
  994. case KVM_REG_PPC_SIAR:
  995. vcpu->arch.siar = set_reg_val(id, *val);
  996. break;
  997. case KVM_REG_PPC_SDAR:
  998. vcpu->arch.sdar = set_reg_val(id, *val);
  999. break;
  1000. case KVM_REG_PPC_SIER:
  1001. vcpu->arch.sier = set_reg_val(id, *val);
  1002. break;
  1003. case KVM_REG_PPC_IAMR:
  1004. vcpu->arch.iamr = set_reg_val(id, *val);
  1005. break;
  1006. case KVM_REG_PPC_FSCR:
  1007. vcpu->arch.fscr = set_reg_val(id, *val);
  1008. break;
  1009. case KVM_REG_PPC_PSPB:
  1010. vcpu->arch.pspb = set_reg_val(id, *val);
  1011. break;
  1012. case KVM_REG_PPC_EBBHR:
  1013. vcpu->arch.ebbhr = set_reg_val(id, *val);
  1014. break;
  1015. case KVM_REG_PPC_EBBRR:
  1016. vcpu->arch.ebbrr = set_reg_val(id, *val);
  1017. break;
  1018. case KVM_REG_PPC_BESCR:
  1019. vcpu->arch.bescr = set_reg_val(id, *val);
  1020. break;
  1021. case KVM_REG_PPC_TAR:
  1022. vcpu->arch.tar = set_reg_val(id, *val);
  1023. break;
  1024. case KVM_REG_PPC_DPDES:
  1025. vcpu->arch.vcore->dpdes = set_reg_val(id, *val);
  1026. break;
  1027. case KVM_REG_PPC_DAWR:
  1028. vcpu->arch.dawr = set_reg_val(id, *val);
  1029. break;
  1030. case KVM_REG_PPC_DAWRX:
  1031. vcpu->arch.dawrx = set_reg_val(id, *val) & ~DAWRX_HYP;
  1032. break;
  1033. case KVM_REG_PPC_CIABR:
  1034. vcpu->arch.ciabr = set_reg_val(id, *val);
  1035. /* Don't allow setting breakpoints in hypervisor code */
  1036. if ((vcpu->arch.ciabr & CIABR_PRIV) == CIABR_PRIV_HYPER)
  1037. vcpu->arch.ciabr &= ~CIABR_PRIV; /* disable */
  1038. break;
  1039. case KVM_REG_PPC_IC:
  1040. vcpu->arch.ic = set_reg_val(id, *val);
  1041. break;
  1042. case KVM_REG_PPC_VTB:
  1043. vcpu->arch.vtb = set_reg_val(id, *val);
  1044. break;
  1045. case KVM_REG_PPC_CSIGR:
  1046. vcpu->arch.csigr = set_reg_val(id, *val);
  1047. break;
  1048. case KVM_REG_PPC_TACR:
  1049. vcpu->arch.tacr = set_reg_val(id, *val);
  1050. break;
  1051. case KVM_REG_PPC_TCSCR:
  1052. vcpu->arch.tcscr = set_reg_val(id, *val);
  1053. break;
  1054. case KVM_REG_PPC_PID:
  1055. vcpu->arch.pid = set_reg_val(id, *val);
  1056. break;
  1057. case KVM_REG_PPC_ACOP:
  1058. vcpu->arch.acop = set_reg_val(id, *val);
  1059. break;
  1060. case KVM_REG_PPC_WORT:
  1061. vcpu->arch.wort = set_reg_val(id, *val);
  1062. break;
  1063. case KVM_REG_PPC_VPA_ADDR:
  1064. addr = set_reg_val(id, *val);
  1065. r = -EINVAL;
  1066. if (!addr && (vcpu->arch.slb_shadow.next_gpa ||
  1067. vcpu->arch.dtl.next_gpa))
  1068. break;
  1069. r = set_vpa(vcpu, &vcpu->arch.vpa, addr, sizeof(struct lppaca));
  1070. break;
  1071. case KVM_REG_PPC_VPA_SLB:
  1072. addr = val->vpaval.addr;
  1073. len = val->vpaval.length;
  1074. r = -EINVAL;
  1075. if (addr && !vcpu->arch.vpa.next_gpa)
  1076. break;
  1077. r = set_vpa(vcpu, &vcpu->arch.slb_shadow, addr, len);
  1078. break;
  1079. case KVM_REG_PPC_VPA_DTL:
  1080. addr = val->vpaval.addr;
  1081. len = val->vpaval.length;
  1082. r = -EINVAL;
  1083. if (addr && (len < sizeof(struct dtl_entry) ||
  1084. !vcpu->arch.vpa.next_gpa))
  1085. break;
  1086. len -= len % sizeof(struct dtl_entry);
  1087. r = set_vpa(vcpu, &vcpu->arch.dtl, addr, len);
  1088. break;
  1089. case KVM_REG_PPC_TB_OFFSET:
  1090. /* round up to multiple of 2^24 */
  1091. vcpu->arch.vcore->tb_offset =
  1092. ALIGN(set_reg_val(id, *val), 1UL << 24);
  1093. break;
  1094. case KVM_REG_PPC_LPCR:
  1095. kvmppc_set_lpcr(vcpu, set_reg_val(id, *val));
  1096. break;
  1097. case KVM_REG_PPC_PPR:
  1098. vcpu->arch.ppr = set_reg_val(id, *val);
  1099. break;
  1100. #ifdef CONFIG_PPC_TRANSACTIONAL_MEM
  1101. case KVM_REG_PPC_TFHAR:
  1102. vcpu->arch.tfhar = set_reg_val(id, *val);
  1103. break;
  1104. case KVM_REG_PPC_TFIAR:
  1105. vcpu->arch.tfiar = set_reg_val(id, *val);
  1106. break;
  1107. case KVM_REG_PPC_TEXASR:
  1108. vcpu->arch.texasr = set_reg_val(id, *val);
  1109. break;
  1110. case KVM_REG_PPC_TM_GPR0 ... KVM_REG_PPC_TM_GPR31:
  1111. i = id - KVM_REG_PPC_TM_GPR0;
  1112. vcpu->arch.gpr_tm[i] = set_reg_val(id, *val);
  1113. break;
  1114. case KVM_REG_PPC_TM_VSR0 ... KVM_REG_PPC_TM_VSR63:
  1115. {
  1116. int j;
  1117. i = id - KVM_REG_PPC_TM_VSR0;
  1118. if (i < 32)
  1119. for (j = 0; j < TS_FPRWIDTH; j++)
  1120. vcpu->arch.fp_tm.fpr[i][j] = val->vsxval[j];
  1121. else
  1122. if (cpu_has_feature(CPU_FTR_ALTIVEC))
  1123. vcpu->arch.vr_tm.vr[i-32] = val->vval;
  1124. else
  1125. r = -ENXIO;
  1126. break;
  1127. }
  1128. case KVM_REG_PPC_TM_CR:
  1129. vcpu->arch.cr_tm = set_reg_val(id, *val);
  1130. break;
  1131. case KVM_REG_PPC_TM_LR:
  1132. vcpu->arch.lr_tm = set_reg_val(id, *val);
  1133. break;
  1134. case KVM_REG_PPC_TM_CTR:
  1135. vcpu->arch.ctr_tm = set_reg_val(id, *val);
  1136. break;
  1137. case KVM_REG_PPC_TM_FPSCR:
  1138. vcpu->arch.fp_tm.fpscr = set_reg_val(id, *val);
  1139. break;
  1140. case KVM_REG_PPC_TM_AMR:
  1141. vcpu->arch.amr_tm = set_reg_val(id, *val);
  1142. break;
  1143. case KVM_REG_PPC_TM_PPR:
  1144. vcpu->arch.ppr_tm = set_reg_val(id, *val);
  1145. break;
  1146. case KVM_REG_PPC_TM_VRSAVE:
  1147. vcpu->arch.vrsave_tm = set_reg_val(id, *val);
  1148. break;
  1149. case KVM_REG_PPC_TM_VSCR:
  1150. if (cpu_has_feature(CPU_FTR_ALTIVEC))
  1151. vcpu->arch.vr.vscr.u[3] = set_reg_val(id, *val);
  1152. else
  1153. r = - ENXIO;
  1154. break;
  1155. case KVM_REG_PPC_TM_DSCR:
  1156. vcpu->arch.dscr_tm = set_reg_val(id, *val);
  1157. break;
  1158. case KVM_REG_PPC_TM_TAR:
  1159. vcpu->arch.tar_tm = set_reg_val(id, *val);
  1160. break;
  1161. #endif
  1162. case KVM_REG_PPC_ARCH_COMPAT:
  1163. r = kvmppc_set_arch_compat(vcpu, set_reg_val(id, *val));
  1164. break;
  1165. default:
  1166. r = -EINVAL;
  1167. break;
  1168. }
  1169. return r;
  1170. }
  1171. static struct kvm_vcpu *kvmppc_core_vcpu_create_hv(struct kvm *kvm,
  1172. unsigned int id)
  1173. {
  1174. struct kvm_vcpu *vcpu;
  1175. int err = -EINVAL;
  1176. int core;
  1177. struct kvmppc_vcore *vcore;
  1178. core = id / threads_per_core;
  1179. if (core >= KVM_MAX_VCORES)
  1180. goto out;
  1181. err = -ENOMEM;
  1182. vcpu = kmem_cache_zalloc(kvm_vcpu_cache, GFP_KERNEL);
  1183. if (!vcpu)
  1184. goto out;
  1185. err = kvm_vcpu_init(vcpu, kvm, id);
  1186. if (err)
  1187. goto free_vcpu;
  1188. vcpu->arch.shared = &vcpu->arch.shregs;
  1189. vcpu->arch.mmcr[0] = MMCR0_FC;
  1190. vcpu->arch.ctrl = CTRL_RUNLATCH;
  1191. /* default to host PVR, since we can't spoof it */
  1192. kvmppc_set_pvr_hv(vcpu, mfspr(SPRN_PVR));
  1193. spin_lock_init(&vcpu->arch.vpa_update_lock);
  1194. spin_lock_init(&vcpu->arch.tbacct_lock);
  1195. vcpu->arch.busy_preempt = TB_NIL;
  1196. vcpu->arch.intr_msr = MSR_SF | MSR_ME;
  1197. kvmppc_mmu_book3s_hv_init(vcpu);
  1198. vcpu->arch.state = KVMPPC_VCPU_NOTREADY;
  1199. init_waitqueue_head(&vcpu->arch.cpu_run);
  1200. mutex_lock(&kvm->lock);
  1201. vcore = kvm->arch.vcores[core];
  1202. if (!vcore) {
  1203. vcore = kzalloc(sizeof(struct kvmppc_vcore), GFP_KERNEL);
  1204. if (vcore) {
  1205. INIT_LIST_HEAD(&vcore->runnable_threads);
  1206. spin_lock_init(&vcore->lock);
  1207. init_waitqueue_head(&vcore->wq);
  1208. vcore->preempt_tb = TB_NIL;
  1209. vcore->lpcr = kvm->arch.lpcr;
  1210. vcore->first_vcpuid = core * threads_per_core;
  1211. vcore->kvm = kvm;
  1212. }
  1213. kvm->arch.vcores[core] = vcore;
  1214. kvm->arch.online_vcores++;
  1215. }
  1216. mutex_unlock(&kvm->lock);
  1217. if (!vcore)
  1218. goto free_vcpu;
  1219. spin_lock(&vcore->lock);
  1220. ++vcore->num_threads;
  1221. spin_unlock(&vcore->lock);
  1222. vcpu->arch.vcore = vcore;
  1223. vcpu->arch.ptid = vcpu->vcpu_id - vcore->first_vcpuid;
  1224. vcpu->arch.cpu_type = KVM_CPU_3S_64;
  1225. kvmppc_sanity_check(vcpu);
  1226. return vcpu;
  1227. free_vcpu:
  1228. kmem_cache_free(kvm_vcpu_cache, vcpu);
  1229. out:
  1230. return ERR_PTR(err);
  1231. }
  1232. static void unpin_vpa(struct kvm *kvm, struct kvmppc_vpa *vpa)
  1233. {
  1234. if (vpa->pinned_addr)
  1235. kvmppc_unpin_guest_page(kvm, vpa->pinned_addr, vpa->gpa,
  1236. vpa->dirty);
  1237. }
  1238. static void kvmppc_core_vcpu_free_hv(struct kvm_vcpu *vcpu)
  1239. {
  1240. spin_lock(&vcpu->arch.vpa_update_lock);
  1241. unpin_vpa(vcpu->kvm, &vcpu->arch.dtl);
  1242. unpin_vpa(vcpu->kvm, &vcpu->arch.slb_shadow);
  1243. unpin_vpa(vcpu->kvm, &vcpu->arch.vpa);
  1244. spin_unlock(&vcpu->arch.vpa_update_lock);
  1245. kvm_vcpu_uninit(vcpu);
  1246. kmem_cache_free(kvm_vcpu_cache, vcpu);
  1247. }
  1248. static int kvmppc_core_check_requests_hv(struct kvm_vcpu *vcpu)
  1249. {
  1250. /* Indicate we want to get back into the guest */
  1251. return 1;
  1252. }
  1253. static void kvmppc_set_timer(struct kvm_vcpu *vcpu)
  1254. {
  1255. unsigned long dec_nsec, now;
  1256. now = get_tb();
  1257. if (now > vcpu->arch.dec_expires) {
  1258. /* decrementer has already gone negative */
  1259. kvmppc_core_queue_dec(vcpu);
  1260. kvmppc_core_prepare_to_enter(vcpu);
  1261. return;
  1262. }
  1263. dec_nsec = (vcpu->arch.dec_expires - now) * NSEC_PER_SEC
  1264. / tb_ticks_per_sec;
  1265. hrtimer_start(&vcpu->arch.dec_timer, ktime_set(0, dec_nsec),
  1266. HRTIMER_MODE_REL);
  1267. vcpu->arch.timer_running = 1;
  1268. }
  1269. static void kvmppc_end_cede(struct kvm_vcpu *vcpu)
  1270. {
  1271. vcpu->arch.ceded = 0;
  1272. if (vcpu->arch.timer_running) {
  1273. hrtimer_try_to_cancel(&vcpu->arch.dec_timer);
  1274. vcpu->arch.timer_running = 0;
  1275. }
  1276. }
  1277. extern void __kvmppc_vcore_entry(void);
  1278. static void kvmppc_remove_runnable(struct kvmppc_vcore *vc,
  1279. struct kvm_vcpu *vcpu)
  1280. {
  1281. u64 now;
  1282. if (vcpu->arch.state != KVMPPC_VCPU_RUNNABLE)
  1283. return;
  1284. spin_lock_irq(&vcpu->arch.tbacct_lock);
  1285. now = mftb();
  1286. vcpu->arch.busy_stolen += vcore_stolen_time(vc, now) -
  1287. vcpu->arch.stolen_logged;
  1288. vcpu->arch.busy_preempt = now;
  1289. vcpu->arch.state = KVMPPC_VCPU_BUSY_IN_HOST;
  1290. spin_unlock_irq(&vcpu->arch.tbacct_lock);
  1291. --vc->n_runnable;
  1292. list_del(&vcpu->arch.run_list);
  1293. }
  1294. static int kvmppc_grab_hwthread(int cpu)
  1295. {
  1296. struct paca_struct *tpaca;
  1297. long timeout = 1000;
  1298. tpaca = &paca[cpu];
  1299. /* Ensure the thread won't go into the kernel if it wakes */
  1300. tpaca->kvm_hstate.hwthread_req = 1;
  1301. tpaca->kvm_hstate.kvm_vcpu = NULL;
  1302. /*
  1303. * If the thread is already executing in the kernel (e.g. handling
  1304. * a stray interrupt), wait for it to get back to nap mode.
  1305. * The smp_mb() is to ensure that our setting of hwthread_req
  1306. * is visible before we look at hwthread_state, so if this
  1307. * races with the code at system_reset_pSeries and the thread
  1308. * misses our setting of hwthread_req, we are sure to see its
  1309. * setting of hwthread_state, and vice versa.
  1310. */
  1311. smp_mb();
  1312. while (tpaca->kvm_hstate.hwthread_state == KVM_HWTHREAD_IN_KERNEL) {
  1313. if (--timeout <= 0) {
  1314. pr_err("KVM: couldn't grab cpu %d\n", cpu);
  1315. return -EBUSY;
  1316. }
  1317. udelay(1);
  1318. }
  1319. return 0;
  1320. }
  1321. static void kvmppc_release_hwthread(int cpu)
  1322. {
  1323. struct paca_struct *tpaca;
  1324. tpaca = &paca[cpu];
  1325. tpaca->kvm_hstate.hwthread_req = 0;
  1326. tpaca->kvm_hstate.kvm_vcpu = NULL;
  1327. }
  1328. static void kvmppc_start_thread(struct kvm_vcpu *vcpu)
  1329. {
  1330. int cpu;
  1331. struct paca_struct *tpaca;
  1332. struct kvmppc_vcore *vc = vcpu->arch.vcore;
  1333. if (vcpu->arch.timer_running) {
  1334. hrtimer_try_to_cancel(&vcpu->arch.dec_timer);
  1335. vcpu->arch.timer_running = 0;
  1336. }
  1337. cpu = vc->pcpu + vcpu->arch.ptid;
  1338. tpaca = &paca[cpu];
  1339. tpaca->kvm_hstate.kvm_vcpu = vcpu;
  1340. tpaca->kvm_hstate.kvm_vcore = vc;
  1341. tpaca->kvm_hstate.ptid = vcpu->arch.ptid;
  1342. vcpu->cpu = vc->pcpu;
  1343. smp_wmb();
  1344. #if defined(CONFIG_PPC_ICP_NATIVE) && defined(CONFIG_SMP)
  1345. if (cpu != smp_processor_id()) {
  1346. xics_wake_cpu(cpu);
  1347. if (vcpu->arch.ptid)
  1348. ++vc->n_woken;
  1349. }
  1350. #endif
  1351. }
  1352. static void kvmppc_wait_for_nap(struct kvmppc_vcore *vc)
  1353. {
  1354. int i;
  1355. HMT_low();
  1356. i = 0;
  1357. while (vc->nap_count < vc->n_woken) {
  1358. if (++i >= 1000000) {
  1359. pr_err("kvmppc_wait_for_nap timeout %d %d\n",
  1360. vc->nap_count, vc->n_woken);
  1361. break;
  1362. }
  1363. cpu_relax();
  1364. }
  1365. HMT_medium();
  1366. }
  1367. /*
  1368. * Check that we are on thread 0 and that any other threads in
  1369. * this core are off-line. Then grab the threads so they can't
  1370. * enter the kernel.
  1371. */
  1372. static int on_primary_thread(void)
  1373. {
  1374. int cpu = smp_processor_id();
  1375. int thr = cpu_thread_in_core(cpu);
  1376. if (thr)
  1377. return 0;
  1378. while (++thr < threads_per_core)
  1379. if (cpu_online(cpu + thr))
  1380. return 0;
  1381. /* Grab all hw threads so they can't go into the kernel */
  1382. for (thr = 1; thr < threads_per_core; ++thr) {
  1383. if (kvmppc_grab_hwthread(cpu + thr)) {
  1384. /* Couldn't grab one; let the others go */
  1385. do {
  1386. kvmppc_release_hwthread(cpu + thr);
  1387. } while (--thr > 0);
  1388. return 0;
  1389. }
  1390. }
  1391. return 1;
  1392. }
  1393. /*
  1394. * Run a set of guest threads on a physical core.
  1395. * Called with vc->lock held.
  1396. */
  1397. static void kvmppc_run_core(struct kvmppc_vcore *vc)
  1398. {
  1399. struct kvm_vcpu *vcpu, *vnext;
  1400. long ret;
  1401. u64 now;
  1402. int i, need_vpa_update;
  1403. int srcu_idx;
  1404. struct kvm_vcpu *vcpus_to_update[threads_per_core];
  1405. /* don't start if any threads have a signal pending */
  1406. need_vpa_update = 0;
  1407. list_for_each_entry(vcpu, &vc->runnable_threads, arch.run_list) {
  1408. if (signal_pending(vcpu->arch.run_task))
  1409. return;
  1410. if (vcpu->arch.vpa.update_pending ||
  1411. vcpu->arch.slb_shadow.update_pending ||
  1412. vcpu->arch.dtl.update_pending)
  1413. vcpus_to_update[need_vpa_update++] = vcpu;
  1414. }
  1415. /*
  1416. * Initialize *vc, in particular vc->vcore_state, so we can
  1417. * drop the vcore lock if necessary.
  1418. */
  1419. vc->n_woken = 0;
  1420. vc->nap_count = 0;
  1421. vc->entry_exit_count = 0;
  1422. vc->vcore_state = VCORE_STARTING;
  1423. vc->in_guest = 0;
  1424. vc->napping_threads = 0;
  1425. /*
  1426. * Updating any of the vpas requires calling kvmppc_pin_guest_page,
  1427. * which can't be called with any spinlocks held.
  1428. */
  1429. if (need_vpa_update) {
  1430. spin_unlock(&vc->lock);
  1431. for (i = 0; i < need_vpa_update; ++i)
  1432. kvmppc_update_vpas(vcpus_to_update[i]);
  1433. spin_lock(&vc->lock);
  1434. }
  1435. /*
  1436. * Make sure we are running on thread 0, and that
  1437. * secondary threads are offline.
  1438. */
  1439. if (threads_per_core > 1 && !on_primary_thread()) {
  1440. list_for_each_entry(vcpu, &vc->runnable_threads, arch.run_list)
  1441. vcpu->arch.ret = -EBUSY;
  1442. goto out;
  1443. }
  1444. vc->pcpu = smp_processor_id();
  1445. list_for_each_entry(vcpu, &vc->runnable_threads, arch.run_list) {
  1446. kvmppc_start_thread(vcpu);
  1447. kvmppc_create_dtl_entry(vcpu, vc);
  1448. }
  1449. /* Set this explicitly in case thread 0 doesn't have a vcpu */
  1450. get_paca()->kvm_hstate.kvm_vcore = vc;
  1451. get_paca()->kvm_hstate.ptid = 0;
  1452. vc->vcore_state = VCORE_RUNNING;
  1453. preempt_disable();
  1454. spin_unlock(&vc->lock);
  1455. kvm_guest_enter();
  1456. srcu_idx = srcu_read_lock(&vc->kvm->srcu);
  1457. __kvmppc_vcore_entry();
  1458. spin_lock(&vc->lock);
  1459. /* disable sending of IPIs on virtual external irqs */
  1460. list_for_each_entry(vcpu, &vc->runnable_threads, arch.run_list)
  1461. vcpu->cpu = -1;
  1462. /* wait for secondary threads to finish writing their state to memory */
  1463. if (vc->nap_count < vc->n_woken)
  1464. kvmppc_wait_for_nap(vc);
  1465. for (i = 0; i < threads_per_core; ++i)
  1466. kvmppc_release_hwthread(vc->pcpu + i);
  1467. /* prevent other vcpu threads from doing kvmppc_start_thread() now */
  1468. vc->vcore_state = VCORE_EXITING;
  1469. spin_unlock(&vc->lock);
  1470. srcu_read_unlock(&vc->kvm->srcu, srcu_idx);
  1471. /* make sure updates to secondary vcpu structs are visible now */
  1472. smp_mb();
  1473. kvm_guest_exit();
  1474. preempt_enable();
  1475. cond_resched();
  1476. spin_lock(&vc->lock);
  1477. now = get_tb();
  1478. list_for_each_entry(vcpu, &vc->runnable_threads, arch.run_list) {
  1479. /* cancel pending dec exception if dec is positive */
  1480. if (now < vcpu->arch.dec_expires &&
  1481. kvmppc_core_pending_dec(vcpu))
  1482. kvmppc_core_dequeue_dec(vcpu);
  1483. ret = RESUME_GUEST;
  1484. if (vcpu->arch.trap)
  1485. ret = kvmppc_handle_exit_hv(vcpu->arch.kvm_run, vcpu,
  1486. vcpu->arch.run_task);
  1487. vcpu->arch.ret = ret;
  1488. vcpu->arch.trap = 0;
  1489. if (vcpu->arch.ceded) {
  1490. if (!is_kvmppc_resume_guest(ret))
  1491. kvmppc_end_cede(vcpu);
  1492. else
  1493. kvmppc_set_timer(vcpu);
  1494. }
  1495. }
  1496. out:
  1497. vc->vcore_state = VCORE_INACTIVE;
  1498. list_for_each_entry_safe(vcpu, vnext, &vc->runnable_threads,
  1499. arch.run_list) {
  1500. if (!is_kvmppc_resume_guest(vcpu->arch.ret)) {
  1501. kvmppc_remove_runnable(vc, vcpu);
  1502. wake_up(&vcpu->arch.cpu_run);
  1503. }
  1504. }
  1505. }
  1506. /*
  1507. * Wait for some other vcpu thread to execute us, and
  1508. * wake us up when we need to handle something in the host.
  1509. */
  1510. static void kvmppc_wait_for_exec(struct kvm_vcpu *vcpu, int wait_state)
  1511. {
  1512. DEFINE_WAIT(wait);
  1513. prepare_to_wait(&vcpu->arch.cpu_run, &wait, wait_state);
  1514. if (vcpu->arch.state == KVMPPC_VCPU_RUNNABLE)
  1515. schedule();
  1516. finish_wait(&vcpu->arch.cpu_run, &wait);
  1517. }
  1518. /*
  1519. * All the vcpus in this vcore are idle, so wait for a decrementer
  1520. * or external interrupt to one of the vcpus. vc->lock is held.
  1521. */
  1522. static void kvmppc_vcore_blocked(struct kvmppc_vcore *vc)
  1523. {
  1524. DEFINE_WAIT(wait);
  1525. prepare_to_wait(&vc->wq, &wait, TASK_INTERRUPTIBLE);
  1526. vc->vcore_state = VCORE_SLEEPING;
  1527. spin_unlock(&vc->lock);
  1528. schedule();
  1529. finish_wait(&vc->wq, &wait);
  1530. spin_lock(&vc->lock);
  1531. vc->vcore_state = VCORE_INACTIVE;
  1532. }
  1533. static int kvmppc_run_vcpu(struct kvm_run *kvm_run, struct kvm_vcpu *vcpu)
  1534. {
  1535. int n_ceded;
  1536. struct kvmppc_vcore *vc;
  1537. struct kvm_vcpu *v, *vn;
  1538. kvm_run->exit_reason = 0;
  1539. vcpu->arch.ret = RESUME_GUEST;
  1540. vcpu->arch.trap = 0;
  1541. kvmppc_update_vpas(vcpu);
  1542. /*
  1543. * Synchronize with other threads in this virtual core
  1544. */
  1545. vc = vcpu->arch.vcore;
  1546. spin_lock(&vc->lock);
  1547. vcpu->arch.ceded = 0;
  1548. vcpu->arch.run_task = current;
  1549. vcpu->arch.kvm_run = kvm_run;
  1550. vcpu->arch.stolen_logged = vcore_stolen_time(vc, mftb());
  1551. vcpu->arch.state = KVMPPC_VCPU_RUNNABLE;
  1552. vcpu->arch.busy_preempt = TB_NIL;
  1553. list_add_tail(&vcpu->arch.run_list, &vc->runnable_threads);
  1554. ++vc->n_runnable;
  1555. /*
  1556. * This happens the first time this is called for a vcpu.
  1557. * If the vcore is already running, we may be able to start
  1558. * this thread straight away and have it join in.
  1559. */
  1560. if (!signal_pending(current)) {
  1561. if (vc->vcore_state == VCORE_RUNNING &&
  1562. VCORE_EXIT_COUNT(vc) == 0) {
  1563. kvmppc_create_dtl_entry(vcpu, vc);
  1564. kvmppc_start_thread(vcpu);
  1565. } else if (vc->vcore_state == VCORE_SLEEPING) {
  1566. wake_up(&vc->wq);
  1567. }
  1568. }
  1569. while (vcpu->arch.state == KVMPPC_VCPU_RUNNABLE &&
  1570. !signal_pending(current)) {
  1571. if (vc->vcore_state != VCORE_INACTIVE) {
  1572. spin_unlock(&vc->lock);
  1573. kvmppc_wait_for_exec(vcpu, TASK_INTERRUPTIBLE);
  1574. spin_lock(&vc->lock);
  1575. continue;
  1576. }
  1577. list_for_each_entry_safe(v, vn, &vc->runnable_threads,
  1578. arch.run_list) {
  1579. kvmppc_core_prepare_to_enter(v);
  1580. if (signal_pending(v->arch.run_task)) {
  1581. kvmppc_remove_runnable(vc, v);
  1582. v->stat.signal_exits++;
  1583. v->arch.kvm_run->exit_reason = KVM_EXIT_INTR;
  1584. v->arch.ret = -EINTR;
  1585. wake_up(&v->arch.cpu_run);
  1586. }
  1587. }
  1588. if (!vc->n_runnable || vcpu->arch.state != KVMPPC_VCPU_RUNNABLE)
  1589. break;
  1590. vc->runner = vcpu;
  1591. n_ceded = 0;
  1592. list_for_each_entry(v, &vc->runnable_threads, arch.run_list) {
  1593. if (!v->arch.pending_exceptions)
  1594. n_ceded += v->arch.ceded;
  1595. else
  1596. v->arch.ceded = 0;
  1597. }
  1598. if (n_ceded == vc->n_runnable)
  1599. kvmppc_vcore_blocked(vc);
  1600. else
  1601. kvmppc_run_core(vc);
  1602. vc->runner = NULL;
  1603. }
  1604. while (vcpu->arch.state == KVMPPC_VCPU_RUNNABLE &&
  1605. (vc->vcore_state == VCORE_RUNNING ||
  1606. vc->vcore_state == VCORE_EXITING)) {
  1607. spin_unlock(&vc->lock);
  1608. kvmppc_wait_for_exec(vcpu, TASK_UNINTERRUPTIBLE);
  1609. spin_lock(&vc->lock);
  1610. }
  1611. if (vcpu->arch.state == KVMPPC_VCPU_RUNNABLE) {
  1612. kvmppc_remove_runnable(vc, vcpu);
  1613. vcpu->stat.signal_exits++;
  1614. kvm_run->exit_reason = KVM_EXIT_INTR;
  1615. vcpu->arch.ret = -EINTR;
  1616. }
  1617. if (vc->n_runnable && vc->vcore_state == VCORE_INACTIVE) {
  1618. /* Wake up some vcpu to run the core */
  1619. v = list_first_entry(&vc->runnable_threads,
  1620. struct kvm_vcpu, arch.run_list);
  1621. wake_up(&v->arch.cpu_run);
  1622. }
  1623. spin_unlock(&vc->lock);
  1624. return vcpu->arch.ret;
  1625. }
  1626. static int kvmppc_vcpu_run_hv(struct kvm_run *run, struct kvm_vcpu *vcpu)
  1627. {
  1628. int r;
  1629. int srcu_idx;
  1630. if (!vcpu->arch.sane) {
  1631. run->exit_reason = KVM_EXIT_INTERNAL_ERROR;
  1632. return -EINVAL;
  1633. }
  1634. kvmppc_core_prepare_to_enter(vcpu);
  1635. /* No need to go into the guest when all we'll do is come back out */
  1636. if (signal_pending(current)) {
  1637. run->exit_reason = KVM_EXIT_INTR;
  1638. return -EINTR;
  1639. }
  1640. atomic_inc(&vcpu->kvm->arch.vcpus_running);
  1641. /* Order vcpus_running vs. rma_setup_done, see kvmppc_alloc_reset_hpt */
  1642. smp_mb();
  1643. /* On the first time here, set up HTAB and VRMA or RMA */
  1644. if (!vcpu->kvm->arch.rma_setup_done) {
  1645. r = kvmppc_hv_setup_htab_rma(vcpu);
  1646. if (r)
  1647. goto out;
  1648. }
  1649. flush_fp_to_thread(current);
  1650. flush_altivec_to_thread(current);
  1651. flush_vsx_to_thread(current);
  1652. vcpu->arch.wqp = &vcpu->arch.vcore->wq;
  1653. vcpu->arch.pgdir = current->mm->pgd;
  1654. vcpu->arch.state = KVMPPC_VCPU_BUSY_IN_HOST;
  1655. do {
  1656. r = kvmppc_run_vcpu(run, vcpu);
  1657. if (run->exit_reason == KVM_EXIT_PAPR_HCALL &&
  1658. !(vcpu->arch.shregs.msr & MSR_PR)) {
  1659. r = kvmppc_pseries_do_hcall(vcpu);
  1660. kvmppc_core_prepare_to_enter(vcpu);
  1661. } else if (r == RESUME_PAGE_FAULT) {
  1662. srcu_idx = srcu_read_lock(&vcpu->kvm->srcu);
  1663. r = kvmppc_book3s_hv_page_fault(run, vcpu,
  1664. vcpu->arch.fault_dar, vcpu->arch.fault_dsisr);
  1665. srcu_read_unlock(&vcpu->kvm->srcu, srcu_idx);
  1666. }
  1667. } while (is_kvmppc_resume_guest(r));
  1668. out:
  1669. vcpu->arch.state = KVMPPC_VCPU_NOTREADY;
  1670. atomic_dec(&vcpu->kvm->arch.vcpus_running);
  1671. return r;
  1672. }
  1673. /* Work out RMLS (real mode limit selector) field value for a given RMA size.
  1674. Assumes POWER7 or PPC970. */
  1675. static inline int lpcr_rmls(unsigned long rma_size)
  1676. {
  1677. switch (rma_size) {
  1678. case 32ul << 20: /* 32 MB */
  1679. if (cpu_has_feature(CPU_FTR_ARCH_206))
  1680. return 8; /* only supported on POWER7 */
  1681. return -1;
  1682. case 64ul << 20: /* 64 MB */
  1683. return 3;
  1684. case 128ul << 20: /* 128 MB */
  1685. return 7;
  1686. case 256ul << 20: /* 256 MB */
  1687. return 4;
  1688. case 1ul << 30: /* 1 GB */
  1689. return 2;
  1690. case 16ul << 30: /* 16 GB */
  1691. return 1;
  1692. case 256ul << 30: /* 256 GB */
  1693. return 0;
  1694. default:
  1695. return -1;
  1696. }
  1697. }
  1698. static int kvm_rma_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
  1699. {
  1700. struct page *page;
  1701. struct kvm_rma_info *ri = vma->vm_file->private_data;
  1702. if (vmf->pgoff >= kvm_rma_pages)
  1703. return VM_FAULT_SIGBUS;
  1704. page = pfn_to_page(ri->base_pfn + vmf->pgoff);
  1705. get_page(page);
  1706. vmf->page = page;
  1707. return 0;
  1708. }
  1709. static const struct vm_operations_struct kvm_rma_vm_ops = {
  1710. .fault = kvm_rma_fault,
  1711. };
  1712. static int kvm_rma_mmap(struct file *file, struct vm_area_struct *vma)
  1713. {
  1714. vma->vm_flags |= VM_DONTEXPAND | VM_DONTDUMP;
  1715. vma->vm_ops = &kvm_rma_vm_ops;
  1716. return 0;
  1717. }
  1718. static int kvm_rma_release(struct inode *inode, struct file *filp)
  1719. {
  1720. struct kvm_rma_info *ri = filp->private_data;
  1721. kvm_release_rma(ri);
  1722. return 0;
  1723. }
  1724. static const struct file_operations kvm_rma_fops = {
  1725. .mmap = kvm_rma_mmap,
  1726. .release = kvm_rma_release,
  1727. };
  1728. static long kvm_vm_ioctl_allocate_rma(struct kvm *kvm,
  1729. struct kvm_allocate_rma *ret)
  1730. {
  1731. long fd;
  1732. struct kvm_rma_info *ri;
  1733. /*
  1734. * Only do this on PPC970 in HV mode
  1735. */
  1736. if (!cpu_has_feature(CPU_FTR_HVMODE) ||
  1737. !cpu_has_feature(CPU_FTR_ARCH_201))
  1738. return -EINVAL;
  1739. if (!kvm_rma_pages)
  1740. return -EINVAL;
  1741. ri = kvm_alloc_rma();
  1742. if (!ri)
  1743. return -ENOMEM;
  1744. fd = anon_inode_getfd("kvm-rma", &kvm_rma_fops, ri, O_RDWR | O_CLOEXEC);
  1745. if (fd < 0)
  1746. kvm_release_rma(ri);
  1747. ret->rma_size = kvm_rma_pages << PAGE_SHIFT;
  1748. return fd;
  1749. }
  1750. static void kvmppc_add_seg_page_size(struct kvm_ppc_one_seg_page_size **sps,
  1751. int linux_psize)
  1752. {
  1753. struct mmu_psize_def *def = &mmu_psize_defs[linux_psize];
  1754. if (!def->shift)
  1755. return;
  1756. (*sps)->page_shift = def->shift;
  1757. (*sps)->slb_enc = def->sllp;
  1758. (*sps)->enc[0].page_shift = def->shift;
  1759. /*
  1760. * Only return base page encoding. We don't want to return
  1761. * all the supporting pte_enc, because our H_ENTER doesn't
  1762. * support MPSS yet. Once they do, we can start passing all
  1763. * support pte_enc here
  1764. */
  1765. (*sps)->enc[0].pte_enc = def->penc[linux_psize];
  1766. (*sps)++;
  1767. }
  1768. static int kvm_vm_ioctl_get_smmu_info_hv(struct kvm *kvm,
  1769. struct kvm_ppc_smmu_info *info)
  1770. {
  1771. struct kvm_ppc_one_seg_page_size *sps;
  1772. info->flags = KVM_PPC_PAGE_SIZES_REAL;
  1773. if (mmu_has_feature(MMU_FTR_1T_SEGMENT))
  1774. info->flags |= KVM_PPC_1T_SEGMENTS;
  1775. info->slb_size = mmu_slb_size;
  1776. /* We only support these sizes for now, and no muti-size segments */
  1777. sps = &info->sps[0];
  1778. kvmppc_add_seg_page_size(&sps, MMU_PAGE_4K);
  1779. kvmppc_add_seg_page_size(&sps, MMU_PAGE_64K);
  1780. kvmppc_add_seg_page_size(&sps, MMU_PAGE_16M);
  1781. return 0;
  1782. }
  1783. /*
  1784. * Get (and clear) the dirty memory log for a memory slot.
  1785. */
  1786. static int kvm_vm_ioctl_get_dirty_log_hv(struct kvm *kvm,
  1787. struct kvm_dirty_log *log)
  1788. {
  1789. struct kvm_memory_slot *memslot;
  1790. int r;
  1791. unsigned long n;
  1792. mutex_lock(&kvm->slots_lock);
  1793. r = -EINVAL;
  1794. if (log->slot >= KVM_USER_MEM_SLOTS)
  1795. goto out;
  1796. memslot = id_to_memslot(kvm->memslots, log->slot);
  1797. r = -ENOENT;
  1798. if (!memslot->dirty_bitmap)
  1799. goto out;
  1800. n = kvm_dirty_bitmap_bytes(memslot);
  1801. memset(memslot->dirty_bitmap, 0, n);
  1802. r = kvmppc_hv_get_dirty_log(kvm, memslot, memslot->dirty_bitmap);
  1803. if (r)
  1804. goto out;
  1805. r = -EFAULT;
  1806. if (copy_to_user(log->dirty_bitmap, memslot->dirty_bitmap, n))
  1807. goto out;
  1808. r = 0;
  1809. out:
  1810. mutex_unlock(&kvm->slots_lock);
  1811. return r;
  1812. }
  1813. static void unpin_slot(struct kvm_memory_slot *memslot)
  1814. {
  1815. unsigned long *physp;
  1816. unsigned long j, npages, pfn;
  1817. struct page *page;
  1818. physp = memslot->arch.slot_phys;
  1819. npages = memslot->npages;
  1820. if (!physp)
  1821. return;
  1822. for (j = 0; j < npages; j++) {
  1823. if (!(physp[j] & KVMPPC_GOT_PAGE))
  1824. continue;
  1825. pfn = physp[j] >> PAGE_SHIFT;
  1826. page = pfn_to_page(pfn);
  1827. SetPageDirty(page);
  1828. put_page(page);
  1829. }
  1830. }
  1831. static void kvmppc_core_free_memslot_hv(struct kvm_memory_slot *free,
  1832. struct kvm_memory_slot *dont)
  1833. {
  1834. if (!dont || free->arch.rmap != dont->arch.rmap) {
  1835. vfree(free->arch.rmap);
  1836. free->arch.rmap = NULL;
  1837. }
  1838. if (!dont || free->arch.slot_phys != dont->arch.slot_phys) {
  1839. unpin_slot(free);
  1840. vfree(free->arch.slot_phys);
  1841. free->arch.slot_phys = NULL;
  1842. }
  1843. }
  1844. static int kvmppc_core_create_memslot_hv(struct kvm_memory_slot *slot,
  1845. unsigned long npages)
  1846. {
  1847. slot->arch.rmap = vzalloc(npages * sizeof(*slot->arch.rmap));
  1848. if (!slot->arch.rmap)
  1849. return -ENOMEM;
  1850. slot->arch.slot_phys = NULL;
  1851. return 0;
  1852. }
  1853. static int kvmppc_core_prepare_memory_region_hv(struct kvm *kvm,
  1854. struct kvm_memory_slot *memslot,
  1855. struct kvm_userspace_memory_region *mem)
  1856. {
  1857. unsigned long *phys;
  1858. /* Allocate a slot_phys array if needed */
  1859. phys = memslot->arch.slot_phys;
  1860. if (!kvm->arch.using_mmu_notifiers && !phys && memslot->npages) {
  1861. phys = vzalloc(memslot->npages * sizeof(unsigned long));
  1862. if (!phys)
  1863. return -ENOMEM;
  1864. memslot->arch.slot_phys = phys;
  1865. }
  1866. return 0;
  1867. }
  1868. static void kvmppc_core_commit_memory_region_hv(struct kvm *kvm,
  1869. struct kvm_userspace_memory_region *mem,
  1870. const struct kvm_memory_slot *old)
  1871. {
  1872. unsigned long npages = mem->memory_size >> PAGE_SHIFT;
  1873. struct kvm_memory_slot *memslot;
  1874. if (npages && old->npages) {
  1875. /*
  1876. * If modifying a memslot, reset all the rmap dirty bits.
  1877. * If this is a new memslot, we don't need to do anything
  1878. * since the rmap array starts out as all zeroes,
  1879. * i.e. no pages are dirty.
  1880. */
  1881. memslot = id_to_memslot(kvm->memslots, mem->slot);
  1882. kvmppc_hv_get_dirty_log(kvm, memslot, NULL);
  1883. }
  1884. }
  1885. /*
  1886. * Update LPCR values in kvm->arch and in vcores.
  1887. * Caller must hold kvm->lock.
  1888. */
  1889. void kvmppc_update_lpcr(struct kvm *kvm, unsigned long lpcr, unsigned long mask)
  1890. {
  1891. long int i;
  1892. u32 cores_done = 0;
  1893. if ((kvm->arch.lpcr & mask) == lpcr)
  1894. return;
  1895. kvm->arch.lpcr = (kvm->arch.lpcr & ~mask) | lpcr;
  1896. for (i = 0; i < KVM_MAX_VCORES; ++i) {
  1897. struct kvmppc_vcore *vc = kvm->arch.vcores[i];
  1898. if (!vc)
  1899. continue;
  1900. spin_lock(&vc->lock);
  1901. vc->lpcr = (vc->lpcr & ~mask) | lpcr;
  1902. spin_unlock(&vc->lock);
  1903. if (++cores_done >= kvm->arch.online_vcores)
  1904. break;
  1905. }
  1906. }
  1907. static void kvmppc_mmu_destroy_hv(struct kvm_vcpu *vcpu)
  1908. {
  1909. return;
  1910. }
  1911. static int kvmppc_hv_setup_htab_rma(struct kvm_vcpu *vcpu)
  1912. {
  1913. int err = 0;
  1914. struct kvm *kvm = vcpu->kvm;
  1915. struct kvm_rma_info *ri = NULL;
  1916. unsigned long hva;
  1917. struct kvm_memory_slot *memslot;
  1918. struct vm_area_struct *vma;
  1919. unsigned long lpcr = 0, senc;
  1920. unsigned long lpcr_mask = 0;
  1921. unsigned long psize, porder;
  1922. unsigned long rma_size;
  1923. unsigned long rmls;
  1924. unsigned long *physp;
  1925. unsigned long i, npages;
  1926. int srcu_idx;
  1927. mutex_lock(&kvm->lock);
  1928. if (kvm->arch.rma_setup_done)
  1929. goto out; /* another vcpu beat us to it */
  1930. /* Allocate hashed page table (if not done already) and reset it */
  1931. if (!kvm->arch.hpt_virt) {
  1932. err = kvmppc_alloc_hpt(kvm, NULL);
  1933. if (err) {
  1934. pr_err("KVM: Couldn't alloc HPT\n");
  1935. goto out;
  1936. }
  1937. }
  1938. /* Look up the memslot for guest physical address 0 */
  1939. srcu_idx = srcu_read_lock(&kvm->srcu);
  1940. memslot = gfn_to_memslot(kvm, 0);
  1941. /* We must have some memory at 0 by now */
  1942. err = -EINVAL;
  1943. if (!memslot || (memslot->flags & KVM_MEMSLOT_INVALID))
  1944. goto out_srcu;
  1945. /* Look up the VMA for the start of this memory slot */
  1946. hva = memslot->userspace_addr;
  1947. down_read(&current->mm->mmap_sem);
  1948. vma = find_vma(current->mm, hva);
  1949. if (!vma || vma->vm_start > hva || (vma->vm_flags & VM_IO))
  1950. goto up_out;
  1951. psize = vma_kernel_pagesize(vma);
  1952. porder = __ilog2(psize);
  1953. /* Is this one of our preallocated RMAs? */
  1954. if (vma->vm_file && vma->vm_file->f_op == &kvm_rma_fops &&
  1955. hva == vma->vm_start)
  1956. ri = vma->vm_file->private_data;
  1957. up_read(&current->mm->mmap_sem);
  1958. if (!ri) {
  1959. /* On POWER7, use VRMA; on PPC970, give up */
  1960. err = -EPERM;
  1961. if (cpu_has_feature(CPU_FTR_ARCH_201)) {
  1962. pr_err("KVM: CPU requires an RMO\n");
  1963. goto out_srcu;
  1964. }
  1965. /* We can handle 4k, 64k or 16M pages in the VRMA */
  1966. err = -EINVAL;
  1967. if (!(psize == 0x1000 || psize == 0x10000 ||
  1968. psize == 0x1000000))
  1969. goto out_srcu;
  1970. /* Update VRMASD field in the LPCR */
  1971. senc = slb_pgsize_encoding(psize);
  1972. kvm->arch.vrma_slb_v = senc | SLB_VSID_B_1T |
  1973. (VRMA_VSID << SLB_VSID_SHIFT_1T);
  1974. lpcr_mask = LPCR_VRMASD;
  1975. /* the -4 is to account for senc values starting at 0x10 */
  1976. lpcr = senc << (LPCR_VRMASD_SH - 4);
  1977. /* Create HPTEs in the hash page table for the VRMA */
  1978. kvmppc_map_vrma(vcpu, memslot, porder);
  1979. } else {
  1980. /* Set up to use an RMO region */
  1981. rma_size = kvm_rma_pages;
  1982. if (rma_size > memslot->npages)
  1983. rma_size = memslot->npages;
  1984. rma_size <<= PAGE_SHIFT;
  1985. rmls = lpcr_rmls(rma_size);
  1986. err = -EINVAL;
  1987. if ((long)rmls < 0) {
  1988. pr_err("KVM: Can't use RMA of 0x%lx bytes\n", rma_size);
  1989. goto out_srcu;
  1990. }
  1991. atomic_inc(&ri->use_count);
  1992. kvm->arch.rma = ri;
  1993. /* Update LPCR and RMOR */
  1994. if (cpu_has_feature(CPU_FTR_ARCH_201)) {
  1995. /* PPC970; insert RMLS value (split field) in HID4 */
  1996. lpcr_mask = (1ul << HID4_RMLS0_SH) |
  1997. (3ul << HID4_RMLS2_SH) | HID4_RMOR;
  1998. lpcr = ((rmls >> 2) << HID4_RMLS0_SH) |
  1999. ((rmls & 3) << HID4_RMLS2_SH);
  2000. /* RMOR is also in HID4 */
  2001. lpcr |= ((ri->base_pfn >> (26 - PAGE_SHIFT)) & 0xffff)
  2002. << HID4_RMOR_SH;
  2003. } else {
  2004. /* POWER7 */
  2005. lpcr_mask = LPCR_VPM0 | LPCR_VRMA_L | LPCR_RMLS;
  2006. lpcr = rmls << LPCR_RMLS_SH;
  2007. kvm->arch.rmor = ri->base_pfn << PAGE_SHIFT;
  2008. }
  2009. pr_info("KVM: Using RMO at %lx size %lx (LPCR = %lx)\n",
  2010. ri->base_pfn << PAGE_SHIFT, rma_size, lpcr);
  2011. /* Initialize phys addrs of pages in RMO */
  2012. npages = kvm_rma_pages;
  2013. porder = __ilog2(npages);
  2014. physp = memslot->arch.slot_phys;
  2015. if (physp) {
  2016. if (npages > memslot->npages)
  2017. npages = memslot->npages;
  2018. spin_lock(&kvm->arch.slot_phys_lock);
  2019. for (i = 0; i < npages; ++i)
  2020. physp[i] = ((ri->base_pfn + i) << PAGE_SHIFT) +
  2021. porder;
  2022. spin_unlock(&kvm->arch.slot_phys_lock);
  2023. }
  2024. }
  2025. kvmppc_update_lpcr(kvm, lpcr, lpcr_mask);
  2026. /* Order updates to kvm->arch.lpcr etc. vs. rma_setup_done */
  2027. smp_wmb();
  2028. kvm->arch.rma_setup_done = 1;
  2029. err = 0;
  2030. out_srcu:
  2031. srcu_read_unlock(&kvm->srcu, srcu_idx);
  2032. out:
  2033. mutex_unlock(&kvm->lock);
  2034. return err;
  2035. up_out:
  2036. up_read(&current->mm->mmap_sem);
  2037. goto out_srcu;
  2038. }
  2039. static int kvmppc_core_init_vm_hv(struct kvm *kvm)
  2040. {
  2041. unsigned long lpcr, lpid;
  2042. /* Allocate the guest's logical partition ID */
  2043. lpid = kvmppc_alloc_lpid();
  2044. if ((long)lpid < 0)
  2045. return -ENOMEM;
  2046. kvm->arch.lpid = lpid;
  2047. /*
  2048. * Since we don't flush the TLB when tearing down a VM,
  2049. * and this lpid might have previously been used,
  2050. * make sure we flush on each core before running the new VM.
  2051. */
  2052. cpumask_setall(&kvm->arch.need_tlb_flush);
  2053. kvm->arch.rma = NULL;
  2054. kvm->arch.host_sdr1 = mfspr(SPRN_SDR1);
  2055. if (cpu_has_feature(CPU_FTR_ARCH_201)) {
  2056. /* PPC970; HID4 is effectively the LPCR */
  2057. kvm->arch.host_lpid = 0;
  2058. kvm->arch.host_lpcr = lpcr = mfspr(SPRN_HID4);
  2059. lpcr &= ~((3 << HID4_LPID1_SH) | (0xful << HID4_LPID5_SH));
  2060. lpcr |= ((lpid >> 4) << HID4_LPID1_SH) |
  2061. ((lpid & 0xf) << HID4_LPID5_SH);
  2062. } else {
  2063. /* POWER7; init LPCR for virtual RMA mode */
  2064. kvm->arch.host_lpid = mfspr(SPRN_LPID);
  2065. kvm->arch.host_lpcr = lpcr = mfspr(SPRN_LPCR);
  2066. lpcr &= LPCR_PECE | LPCR_LPES;
  2067. lpcr |= (4UL << LPCR_DPFD_SH) | LPCR_HDICE |
  2068. LPCR_VPM0 | LPCR_VPM1;
  2069. kvm->arch.vrma_slb_v = SLB_VSID_B_1T |
  2070. (VRMA_VSID << SLB_VSID_SHIFT_1T);
  2071. /* On POWER8 turn on online bit to enable PURR/SPURR */
  2072. if (cpu_has_feature(CPU_FTR_ARCH_207S))
  2073. lpcr |= LPCR_ONL;
  2074. }
  2075. kvm->arch.lpcr = lpcr;
  2076. kvm->arch.using_mmu_notifiers = !!cpu_has_feature(CPU_FTR_ARCH_206);
  2077. spin_lock_init(&kvm->arch.slot_phys_lock);
  2078. /*
  2079. * Don't allow secondary CPU threads to come online
  2080. * while any KVM VMs exist.
  2081. */
  2082. inhibit_secondary_onlining();
  2083. return 0;
  2084. }
  2085. static void kvmppc_free_vcores(struct kvm *kvm)
  2086. {
  2087. long int i;
  2088. for (i = 0; i < KVM_MAX_VCORES; ++i)
  2089. kfree(kvm->arch.vcores[i]);
  2090. kvm->arch.online_vcores = 0;
  2091. }
  2092. static void kvmppc_core_destroy_vm_hv(struct kvm *kvm)
  2093. {
  2094. uninhibit_secondary_onlining();
  2095. kvmppc_free_vcores(kvm);
  2096. if (kvm->arch.rma) {
  2097. kvm_release_rma(kvm->arch.rma);
  2098. kvm->arch.rma = NULL;
  2099. }
  2100. kvmppc_free_hpt(kvm);
  2101. }
  2102. /* We don't need to emulate any privileged instructions or dcbz */
  2103. static int kvmppc_core_emulate_op_hv(struct kvm_run *run, struct kvm_vcpu *vcpu,
  2104. unsigned int inst, int *advance)
  2105. {
  2106. return EMULATE_FAIL;
  2107. }
  2108. static int kvmppc_core_emulate_mtspr_hv(struct kvm_vcpu *vcpu, int sprn,
  2109. ulong spr_val)
  2110. {
  2111. return EMULATE_FAIL;
  2112. }
  2113. static int kvmppc_core_emulate_mfspr_hv(struct kvm_vcpu *vcpu, int sprn,
  2114. ulong *spr_val)
  2115. {
  2116. return EMULATE_FAIL;
  2117. }
  2118. static int kvmppc_core_check_processor_compat_hv(void)
  2119. {
  2120. if (!cpu_has_feature(CPU_FTR_HVMODE))
  2121. return -EIO;
  2122. return 0;
  2123. }
  2124. static long kvm_arch_vm_ioctl_hv(struct file *filp,
  2125. unsigned int ioctl, unsigned long arg)
  2126. {
  2127. struct kvm *kvm __maybe_unused = filp->private_data;
  2128. void __user *argp = (void __user *)arg;
  2129. long r;
  2130. switch (ioctl) {
  2131. case KVM_ALLOCATE_RMA: {
  2132. struct kvm_allocate_rma rma;
  2133. struct kvm *kvm = filp->private_data;
  2134. r = kvm_vm_ioctl_allocate_rma(kvm, &rma);
  2135. if (r >= 0 && copy_to_user(argp, &rma, sizeof(rma)))
  2136. r = -EFAULT;
  2137. break;
  2138. }
  2139. case KVM_PPC_ALLOCATE_HTAB: {
  2140. u32 htab_order;
  2141. r = -EFAULT;
  2142. if (get_user(htab_order, (u32 __user *)argp))
  2143. break;
  2144. r = kvmppc_alloc_reset_hpt(kvm, &htab_order);
  2145. if (r)
  2146. break;
  2147. r = -EFAULT;
  2148. if (put_user(htab_order, (u32 __user *)argp))
  2149. break;
  2150. r = 0;
  2151. break;
  2152. }
  2153. case KVM_PPC_GET_HTAB_FD: {
  2154. struct kvm_get_htab_fd ghf;
  2155. r = -EFAULT;
  2156. if (copy_from_user(&ghf, argp, sizeof(ghf)))
  2157. break;
  2158. r = kvm_vm_ioctl_get_htab_fd(kvm, &ghf);
  2159. break;
  2160. }
  2161. default:
  2162. r = -ENOTTY;
  2163. }
  2164. return r;
  2165. }
  2166. static struct kvmppc_ops kvm_ops_hv = {
  2167. .get_sregs = kvm_arch_vcpu_ioctl_get_sregs_hv,
  2168. .set_sregs = kvm_arch_vcpu_ioctl_set_sregs_hv,
  2169. .get_one_reg = kvmppc_get_one_reg_hv,
  2170. .set_one_reg = kvmppc_set_one_reg_hv,
  2171. .vcpu_load = kvmppc_core_vcpu_load_hv,
  2172. .vcpu_put = kvmppc_core_vcpu_put_hv,
  2173. .set_msr = kvmppc_set_msr_hv,
  2174. .vcpu_run = kvmppc_vcpu_run_hv,
  2175. .vcpu_create = kvmppc_core_vcpu_create_hv,
  2176. .vcpu_free = kvmppc_core_vcpu_free_hv,
  2177. .check_requests = kvmppc_core_check_requests_hv,
  2178. .get_dirty_log = kvm_vm_ioctl_get_dirty_log_hv,
  2179. .flush_memslot = kvmppc_core_flush_memslot_hv,
  2180. .prepare_memory_region = kvmppc_core_prepare_memory_region_hv,
  2181. .commit_memory_region = kvmppc_core_commit_memory_region_hv,
  2182. .unmap_hva = kvm_unmap_hva_hv,
  2183. .unmap_hva_range = kvm_unmap_hva_range_hv,
  2184. .age_hva = kvm_age_hva_hv,
  2185. .test_age_hva = kvm_test_age_hva_hv,
  2186. .set_spte_hva = kvm_set_spte_hva_hv,
  2187. .mmu_destroy = kvmppc_mmu_destroy_hv,
  2188. .free_memslot = kvmppc_core_free_memslot_hv,
  2189. .create_memslot = kvmppc_core_create_memslot_hv,
  2190. .init_vm = kvmppc_core_init_vm_hv,
  2191. .destroy_vm = kvmppc_core_destroy_vm_hv,
  2192. .get_smmu_info = kvm_vm_ioctl_get_smmu_info_hv,
  2193. .emulate_op = kvmppc_core_emulate_op_hv,
  2194. .emulate_mtspr = kvmppc_core_emulate_mtspr_hv,
  2195. .emulate_mfspr = kvmppc_core_emulate_mfspr_hv,
  2196. .fast_vcpu_kick = kvmppc_fast_vcpu_kick_hv,
  2197. .arch_vm_ioctl = kvm_arch_vm_ioctl_hv,
  2198. };
  2199. static int kvmppc_book3s_init_hv(void)
  2200. {
  2201. int r;
  2202. /*
  2203. * FIXME!! Do we need to check on all cpus ?
  2204. */
  2205. r = kvmppc_core_check_processor_compat_hv();
  2206. if (r < 0)
  2207. return -ENODEV;
  2208. kvm_ops_hv.owner = THIS_MODULE;
  2209. kvmppc_hv_ops = &kvm_ops_hv;
  2210. r = kvmppc_mmu_hv_init();
  2211. return r;
  2212. }
  2213. static void kvmppc_book3s_exit_hv(void)
  2214. {
  2215. kvmppc_hv_ops = NULL;
  2216. }
  2217. module_init(kvmppc_book3s_init_hv);
  2218. module_exit(kvmppc_book3s_exit_hv);
  2219. MODULE_LICENSE("GPL");
  2220. MODULE_ALIAS_MISCDEV(KVM_MINOR);
  2221. MODULE_ALIAS("devname:kvm");