blob: d437160d388c1bc895560e0a48fa3540ddbdf540 [file] [log] [blame]
Hollis Blanchardbc8080c2009-01-03 16:23:10 -06001/*
2 * Copyright (C) 2008 Freescale Semiconductor, Inc. All rights reserved.
3 *
4 * Author: Yu Liu, yu.liu@freescale.com
5 *
6 * Description:
7 * This file is based on arch/powerpc/kvm/44x_tlb.c,
8 * by Hollis Blanchard <hollisb@us.ibm.com>.
9 *
10 * This program is free software; you can redistribute it and/or modify
11 * it under the terms of the GNU General Public License, version 2, as
12 * published by the Free Software Foundation.
13 */
14
15#include <linux/types.h>
16#include <linux/string.h>
17#include <linux/kvm.h>
18#include <linux/kvm_host.h>
19#include <linux/highmem.h>
20#include <asm/kvm_ppc.h>
21#include <asm/kvm_e500.h>
22
Liu Yu9aa4dd52009-01-14 10:47:38 -060023#include "../mm/mmu_decl.h"
Hollis Blanchardbc8080c2009-01-03 16:23:10 -060024#include "e500_tlb.h"
25
26#define to_htlb1_esel(esel) (tlb1_entry_num - (esel) - 1)
27
28static unsigned int tlb1_entry_num;
29
30void kvmppc_dump_tlbs(struct kvm_vcpu *vcpu)
31{
32 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
33 struct tlbe *tlbe;
34 int i, tlbsel;
35
36 printk("| %8s | %8s | %8s | %8s | %8s |\n",
37 "nr", "mas1", "mas2", "mas3", "mas7");
38
39 for (tlbsel = 0; tlbsel < 2; tlbsel++) {
40 printk("Guest TLB%d:\n", tlbsel);
41 for (i = 0; i < vcpu_e500->guest_tlb_size[tlbsel]; i++) {
42 tlbe = &vcpu_e500->guest_tlb[tlbsel][i];
43 if (tlbe->mas1 & MAS1_VALID)
44 printk(" G[%d][%3d] | %08X | %08X | %08X | %08X |\n",
45 tlbsel, i, tlbe->mas1, tlbe->mas2,
46 tlbe->mas3, tlbe->mas7);
47 }
48 }
49
50 for (tlbsel = 0; tlbsel < 2; tlbsel++) {
51 printk("Shadow TLB%d:\n", tlbsel);
52 for (i = 0; i < vcpu_e500->shadow_tlb_size[tlbsel]; i++) {
53 tlbe = &vcpu_e500->shadow_tlb[tlbsel][i];
54 if (tlbe->mas1 & MAS1_VALID)
55 printk(" S[%d][%3d] | %08X | %08X | %08X | %08X |\n",
56 tlbsel, i, tlbe->mas1, tlbe->mas2,
57 tlbe->mas3, tlbe->mas7);
58 }
59 }
60}
61
62static inline unsigned int tlb0_get_next_victim(
63 struct kvmppc_vcpu_e500 *vcpu_e500)
64{
65 unsigned int victim;
66
67 victim = vcpu_e500->guest_tlb_nv[0]++;
68 if (unlikely(vcpu_e500->guest_tlb_nv[0] >= KVM_E500_TLB0_WAY_NUM))
69 vcpu_e500->guest_tlb_nv[0] = 0;
70
71 return victim;
72}
73
74static inline unsigned int tlb1_max_shadow_size(void)
75{
76 return tlb1_entry_num - tlbcam_index;
77}
78
79static inline int tlbe_is_writable(struct tlbe *tlbe)
80{
81 return tlbe->mas3 & (MAS3_SW|MAS3_UW);
82}
83
84static inline u32 e500_shadow_mas3_attrib(u32 mas3, int usermode)
85{
86 /* Mask off reserved bits. */
87 mas3 &= MAS3_ATTRIB_MASK;
88
89 if (!usermode) {
90 /* Guest is in supervisor mode,
91 * so we need to translate guest
92 * supervisor permissions into user permissions. */
93 mas3 &= ~E500_TLB_USER_PERM_MASK;
94 mas3 |= (mas3 & E500_TLB_SUPER_PERM_MASK) << 1;
95 }
96
97 return mas3 | E500_TLB_SUPER_PERM_MASK;
98}
99
100static inline u32 e500_shadow_mas2_attrib(u32 mas2, int usermode)
101{
102 return mas2 & MAS2_ATTRIB_MASK;
103}
104
105/*
106 * writing shadow tlb entry to host TLB
107 */
108static inline void __write_host_tlbe(struct tlbe *stlbe)
109{
110 mtspr(SPRN_MAS1, stlbe->mas1);
111 mtspr(SPRN_MAS2, stlbe->mas2);
112 mtspr(SPRN_MAS3, stlbe->mas3);
113 mtspr(SPRN_MAS7, stlbe->mas7);
114 __asm__ __volatile__ ("tlbwe\n" : : );
115}
116
117static inline void write_host_tlbe(struct kvmppc_vcpu_e500 *vcpu_e500,
118 int tlbsel, int esel)
119{
120 struct tlbe *stlbe = &vcpu_e500->shadow_tlb[tlbsel][esel];
121
122 local_irq_disable();
123 if (tlbsel == 0) {
124 __write_host_tlbe(stlbe);
125 } else {
126 unsigned register mas0;
127
128 mas0 = mfspr(SPRN_MAS0);
129
130 mtspr(SPRN_MAS0, MAS0_TLBSEL(1) | MAS0_ESEL(to_htlb1_esel(esel)));
131 __write_host_tlbe(stlbe);
132
133 mtspr(SPRN_MAS0, mas0);
134 }
135 local_irq_enable();
136}
137
138void kvmppc_e500_tlb_load(struct kvm_vcpu *vcpu, int cpu)
139{
140 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
141 int i;
142 unsigned register mas0;
143
144 /* Load all valid TLB1 entries to reduce guest tlb miss fault */
145 local_irq_disable();
146 mas0 = mfspr(SPRN_MAS0);
147 for (i = 0; i < tlb1_max_shadow_size(); i++) {
148 struct tlbe *stlbe = &vcpu_e500->shadow_tlb[1][i];
149
150 if (get_tlb_v(stlbe)) {
151 mtspr(SPRN_MAS0, MAS0_TLBSEL(1)
152 | MAS0_ESEL(to_htlb1_esel(i)));
153 __write_host_tlbe(stlbe);
154 }
155 }
156 mtspr(SPRN_MAS0, mas0);
157 local_irq_enable();
158}
159
160void kvmppc_e500_tlb_put(struct kvm_vcpu *vcpu)
161{
Liu Yu9aa4dd52009-01-14 10:47:38 -0600162 _tlbil_all();
Hollis Blanchardbc8080c2009-01-03 16:23:10 -0600163}
164
165/* Search the guest TLB for a matching entry. */
166static int kvmppc_e500_tlb_index(struct kvmppc_vcpu_e500 *vcpu_e500,
167 gva_t eaddr, int tlbsel, unsigned int pid, int as)
168{
169 int i;
170
171 /* XXX Replace loop with fancy data structures. */
172 for (i = 0; i < vcpu_e500->guest_tlb_size[tlbsel]; i++) {
173 struct tlbe *tlbe = &vcpu_e500->guest_tlb[tlbsel][i];
174 unsigned int tid;
175
176 if (eaddr < get_tlb_eaddr(tlbe))
177 continue;
178
179 if (eaddr > get_tlb_end(tlbe))
180 continue;
181
182 tid = get_tlb_tid(tlbe);
183 if (tid && (tid != pid))
184 continue;
185
186 if (!get_tlb_v(tlbe))
187 continue;
188
189 if (get_tlb_ts(tlbe) != as && as != -1)
190 continue;
191
192 return i;
193 }
194
195 return -1;
196}
197
198static void kvmppc_e500_shadow_release(struct kvmppc_vcpu_e500 *vcpu_e500,
199 int tlbsel, int esel)
200{
201 struct tlbe *stlbe = &vcpu_e500->shadow_tlb[tlbsel][esel];
202 struct page *page = vcpu_e500->shadow_pages[tlbsel][esel];
203
204 if (page) {
205 vcpu_e500->shadow_pages[tlbsel][esel] = NULL;
206
207 if (get_tlb_v(stlbe)) {
208 if (tlbe_is_writable(stlbe))
209 kvm_release_page_dirty(page);
210 else
211 kvm_release_page_clean(page);
212 }
213 }
214}
215
216static void kvmppc_e500_stlbe_invalidate(struct kvmppc_vcpu_e500 *vcpu_e500,
217 int tlbsel, int esel)
218{
219 struct tlbe *stlbe = &vcpu_e500->shadow_tlb[tlbsel][esel];
220
221 kvmppc_e500_shadow_release(vcpu_e500, tlbsel, esel);
222 stlbe->mas1 = 0;
223 KVMTRACE_5D(STLB_INVAL, &vcpu_e500->vcpu, index_of(tlbsel, esel),
224 stlbe->mas1, stlbe->mas2, stlbe->mas3, stlbe->mas7,
225 handler);
226}
227
228static void kvmppc_e500_tlb1_invalidate(struct kvmppc_vcpu_e500 *vcpu_e500,
229 gva_t eaddr, gva_t eend, u32 tid)
230{
231 unsigned int pid = tid & 0xff;
232 unsigned int i;
233
234 /* XXX Replace loop with fancy data structures. */
235 for (i = 0; i < vcpu_e500->guest_tlb_size[1]; i++) {
236 struct tlbe *stlbe = &vcpu_e500->shadow_tlb[1][i];
237 unsigned int tid;
238
239 if (!get_tlb_v(stlbe))
240 continue;
241
242 if (eend < get_tlb_eaddr(stlbe))
243 continue;
244
245 if (eaddr > get_tlb_end(stlbe))
246 continue;
247
248 tid = get_tlb_tid(stlbe);
249 if (tid && (tid != pid))
250 continue;
251
252 kvmppc_e500_stlbe_invalidate(vcpu_e500, 1, i);
253 write_host_tlbe(vcpu_e500, 1, i);
254 }
255}
256
257static inline void kvmppc_e500_deliver_tlb_miss(struct kvm_vcpu *vcpu,
258 unsigned int eaddr, int as)
259{
260 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
261 unsigned int victim, pidsel, tsized;
262 int tlbsel;
263
Liu Yufb2838d2009-01-14 10:47:37 -0600264 /* since we only have two TLBs, only lower bit is used. */
Hollis Blanchardbc8080c2009-01-03 16:23:10 -0600265 tlbsel = (vcpu_e500->mas4 >> 28) & 0x1;
266 victim = (tlbsel == 0) ? tlb0_get_next_victim(vcpu_e500) : 0;
267 pidsel = (vcpu_e500->mas4 >> 16) & 0xf;
268 tsized = (vcpu_e500->mas4 >> 8) & 0xf;
269
270 vcpu_e500->mas0 = MAS0_TLBSEL(tlbsel) | MAS0_ESEL(victim)
271 | MAS0_NV(vcpu_e500->guest_tlb_nv[tlbsel]);
272 vcpu_e500->mas1 = MAS1_VALID | (as ? MAS1_TS : 0)
273 | MAS1_TID(vcpu_e500->pid[pidsel])
274 | MAS1_TSIZE(tsized);
275 vcpu_e500->mas2 = (eaddr & MAS2_EPN)
276 | (vcpu_e500->mas4 & MAS2_ATTRIB_MASK);
277 vcpu_e500->mas3 &= MAS3_U0 | MAS3_U1 | MAS3_U2 | MAS3_U3;
278 vcpu_e500->mas6 = (vcpu_e500->mas6 & MAS6_SPID1)
279 | (get_cur_pid(vcpu) << 16)
280 | (as ? MAS6_SAS : 0);
281 vcpu_e500->mas7 = 0;
282}
283
284static inline void kvmppc_e500_shadow_map(struct kvmppc_vcpu_e500 *vcpu_e500,
285 u64 gvaddr, gfn_t gfn, struct tlbe *gtlbe, int tlbsel, int esel)
286{
287 struct page *new_page;
288 struct tlbe *stlbe;
289 hpa_t hpaddr;
290
291 stlbe = &vcpu_e500->shadow_tlb[tlbsel][esel];
292
293 /* Get reference to new page. */
294 new_page = gfn_to_page(vcpu_e500->vcpu.kvm, gfn);
295 if (is_error_page(new_page)) {
296 printk(KERN_ERR "Couldn't get guest page for gfn %lx!\n", gfn);
297 kvm_release_page_clean(new_page);
298 return;
299 }
300 hpaddr = page_to_phys(new_page);
301
302 /* Drop reference to old page. */
303 kvmppc_e500_shadow_release(vcpu_e500, tlbsel, esel);
304
305 vcpu_e500->shadow_pages[tlbsel][esel] = new_page;
306
307 /* Force TS=1 IPROT=0 TSIZE=4KB for all guest mappings. */
308 stlbe->mas1 = MAS1_TSIZE(BOOKE_PAGESZ_4K)
309 | MAS1_TID(get_tlb_tid(gtlbe)) | MAS1_TS | MAS1_VALID;
310 stlbe->mas2 = (gvaddr & MAS2_EPN)
311 | e500_shadow_mas2_attrib(gtlbe->mas2,
312 vcpu_e500->vcpu.arch.msr & MSR_PR);
313 stlbe->mas3 = (hpaddr & MAS3_RPN)
314 | e500_shadow_mas3_attrib(gtlbe->mas3,
315 vcpu_e500->vcpu.arch.msr & MSR_PR);
316 stlbe->mas7 = (hpaddr >> 32) & MAS7_RPN;
317
318 KVMTRACE_5D(STLB_WRITE, &vcpu_e500->vcpu, index_of(tlbsel, esel),
319 stlbe->mas1, stlbe->mas2, stlbe->mas3, stlbe->mas7,
320 handler);
321}
322
323/* XXX only map the one-one case, for now use TLB0 */
324static int kvmppc_e500_stlbe_map(struct kvmppc_vcpu_e500 *vcpu_e500,
325 int tlbsel, int esel)
326{
327 struct tlbe *gtlbe;
328
329 gtlbe = &vcpu_e500->guest_tlb[tlbsel][esel];
330
331 kvmppc_e500_shadow_map(vcpu_e500, get_tlb_eaddr(gtlbe),
332 get_tlb_raddr(gtlbe) >> PAGE_SHIFT,
333 gtlbe, tlbsel, esel);
334
335 return esel;
336}
337
338/* Caller must ensure that the specified guest TLB entry is safe to insert into
339 * the shadow TLB. */
340/* XXX for both one-one and one-to-many , for now use TLB1 */
341static int kvmppc_e500_tlb1_map(struct kvmppc_vcpu_e500 *vcpu_e500,
342 u64 gvaddr, gfn_t gfn, struct tlbe *gtlbe)
343{
344 unsigned int victim;
345
346 victim = vcpu_e500->guest_tlb_nv[1]++;
347
348 if (unlikely(vcpu_e500->guest_tlb_nv[1] >= tlb1_max_shadow_size()))
349 vcpu_e500->guest_tlb_nv[1] = 0;
350
351 kvmppc_e500_shadow_map(vcpu_e500, gvaddr, gfn, gtlbe, 1, victim);
352
353 return victim;
354}
355
356/* Invalidate all guest kernel mappings when enter usermode,
357 * so that when they fault back in they will get the
358 * proper permission bits. */
359void kvmppc_mmu_priv_switch(struct kvm_vcpu *vcpu, int usermode)
360{
361 if (usermode) {
362 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
363 int i;
364
365 /* XXX Replace loop with fancy data structures. */
Hollis Blanchardbc8080c2009-01-03 16:23:10 -0600366 for (i = 0; i < tlb1_max_shadow_size(); i++)
367 kvmppc_e500_stlbe_invalidate(vcpu_e500, 1, i);
368
Liu Yu9aa4dd52009-01-14 10:47:38 -0600369 _tlbil_all();
Hollis Blanchardbc8080c2009-01-03 16:23:10 -0600370 }
371}
372
373static int kvmppc_e500_gtlbe_invalidate(struct kvmppc_vcpu_e500 *vcpu_e500,
374 int tlbsel, int esel)
375{
376 struct tlbe *gtlbe = &vcpu_e500->guest_tlb[tlbsel][esel];
377
378 if (unlikely(get_tlb_iprot(gtlbe)))
379 return -1;
380
381 if (tlbsel == 1) {
382 kvmppc_e500_tlb1_invalidate(vcpu_e500, get_tlb_eaddr(gtlbe),
383 get_tlb_end(gtlbe),
384 get_tlb_tid(gtlbe));
385 } else {
386 kvmppc_e500_stlbe_invalidate(vcpu_e500, tlbsel, esel);
387 }
388
389 gtlbe->mas1 = 0;
390
391 return 0;
392}
393
394int kvmppc_e500_emul_tlbivax(struct kvm_vcpu *vcpu, int ra, int rb)
395{
396 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
397 unsigned int ia;
398 int esel, tlbsel;
399 gva_t ea;
400
401 ea = ((ra) ? vcpu->arch.gpr[ra] : 0) + vcpu->arch.gpr[rb];
402
403 ia = (ea >> 2) & 0x1;
404
Liu Yufb2838d2009-01-14 10:47:37 -0600405 /* since we only have two TLBs, only lower bit is used. */
Hollis Blanchardbc8080c2009-01-03 16:23:10 -0600406 tlbsel = (ea >> 3) & 0x1;
407
408 if (ia) {
409 /* invalidate all entries */
410 for (esel = 0; esel < vcpu_e500->guest_tlb_size[tlbsel]; esel++)
411 kvmppc_e500_gtlbe_invalidate(vcpu_e500, tlbsel, esel);
412 } else {
413 ea &= 0xfffff000;
414 esel = kvmppc_e500_tlb_index(vcpu_e500, ea, tlbsel,
415 get_cur_pid(vcpu), -1);
416 if (esel >= 0)
417 kvmppc_e500_gtlbe_invalidate(vcpu_e500, tlbsel, esel);
418 }
419
Liu Yu9aa4dd52009-01-14 10:47:38 -0600420 _tlbil_all();
Hollis Blanchardbc8080c2009-01-03 16:23:10 -0600421
422 return EMULATE_DONE;
423}
424
425int kvmppc_e500_emul_tlbre(struct kvm_vcpu *vcpu)
426{
427 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
428 int tlbsel, esel;
429 struct tlbe *gtlbe;
430
431 tlbsel = get_tlb_tlbsel(vcpu_e500);
432 esel = get_tlb_esel(vcpu_e500, tlbsel);
433
434 gtlbe = &vcpu_e500->guest_tlb[tlbsel][esel];
435 vcpu_e500->mas0 &= MAS0_NV(0);
436 vcpu_e500->mas0 |= MAS0_NV(vcpu_e500->guest_tlb_nv[tlbsel]);
437 vcpu_e500->mas1 = gtlbe->mas1;
438 vcpu_e500->mas2 = gtlbe->mas2;
439 vcpu_e500->mas3 = gtlbe->mas3;
440 vcpu_e500->mas7 = gtlbe->mas7;
441
442 return EMULATE_DONE;
443}
444
445int kvmppc_e500_emul_tlbsx(struct kvm_vcpu *vcpu, int rb)
446{
447 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
448 int as = !!get_cur_sas(vcpu_e500);
449 unsigned int pid = get_cur_spid(vcpu_e500);
450 int esel, tlbsel;
451 struct tlbe *gtlbe = NULL;
452 gva_t ea;
453
454 ea = vcpu->arch.gpr[rb];
455
456 for (tlbsel = 0; tlbsel < 2; tlbsel++) {
457 esel = kvmppc_e500_tlb_index(vcpu_e500, ea, tlbsel, pid, as);
458 if (esel >= 0) {
459 gtlbe = &vcpu_e500->guest_tlb[tlbsel][esel];
460 break;
461 }
462 }
463
464 if (gtlbe) {
465 vcpu_e500->mas0 = MAS0_TLBSEL(tlbsel) | MAS0_ESEL(esel)
466 | MAS0_NV(vcpu_e500->guest_tlb_nv[tlbsel]);
467 vcpu_e500->mas1 = gtlbe->mas1;
468 vcpu_e500->mas2 = gtlbe->mas2;
469 vcpu_e500->mas3 = gtlbe->mas3;
470 vcpu_e500->mas7 = gtlbe->mas7;
471 } else {
472 int victim;
473
Liu Yufb2838d2009-01-14 10:47:37 -0600474 /* since we only have two TLBs, only lower bit is used. */
Hollis Blanchardbc8080c2009-01-03 16:23:10 -0600475 tlbsel = vcpu_e500->mas4 >> 28 & 0x1;
476 victim = (tlbsel == 0) ? tlb0_get_next_victim(vcpu_e500) : 0;
477
478 vcpu_e500->mas0 = MAS0_TLBSEL(tlbsel) | MAS0_ESEL(victim)
479 | MAS0_NV(vcpu_e500->guest_tlb_nv[tlbsel]);
480 vcpu_e500->mas1 = (vcpu_e500->mas6 & MAS6_SPID0)
481 | (vcpu_e500->mas6 & (MAS6_SAS ? MAS1_TS : 0))
482 | (vcpu_e500->mas4 & MAS4_TSIZED(~0));
483 vcpu_e500->mas2 &= MAS2_EPN;
484 vcpu_e500->mas2 |= vcpu_e500->mas4 & MAS2_ATTRIB_MASK;
485 vcpu_e500->mas3 &= MAS3_U0 | MAS3_U1 | MAS3_U2 | MAS3_U3;
486 vcpu_e500->mas7 = 0;
487 }
488
489 return EMULATE_DONE;
490}
491
492int kvmppc_e500_emul_tlbwe(struct kvm_vcpu *vcpu)
493{
494 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
495 u64 eaddr;
496 u64 raddr;
497 u32 tid;
498 struct tlbe *gtlbe;
499 int tlbsel, esel, stlbsel, sesel;
500
501 tlbsel = get_tlb_tlbsel(vcpu_e500);
502 esel = get_tlb_esel(vcpu_e500, tlbsel);
503
504 gtlbe = &vcpu_e500->guest_tlb[tlbsel][esel];
505
506 if (get_tlb_v(gtlbe) && tlbsel == 1) {
507 eaddr = get_tlb_eaddr(gtlbe);
508 tid = get_tlb_tid(gtlbe);
509 kvmppc_e500_tlb1_invalidate(vcpu_e500, eaddr,
510 get_tlb_end(gtlbe), tid);
511 }
512
513 gtlbe->mas1 = vcpu_e500->mas1;
514 gtlbe->mas2 = vcpu_e500->mas2;
515 gtlbe->mas3 = vcpu_e500->mas3;
516 gtlbe->mas7 = vcpu_e500->mas7;
517
518 KVMTRACE_5D(GTLB_WRITE, vcpu, vcpu_e500->mas0,
519 gtlbe->mas1, gtlbe->mas2, gtlbe->mas3, gtlbe->mas7,
520 handler);
521
522 /* Invalidate shadow mappings for the about-to-be-clobbered TLBE. */
523 if (tlbe_is_host_safe(vcpu, gtlbe)) {
524 switch (tlbsel) {
525 case 0:
526 /* TLB0 */
527 gtlbe->mas1 &= ~MAS1_TSIZE(~0);
528 gtlbe->mas1 |= MAS1_TSIZE(BOOKE_PAGESZ_4K);
529
530 stlbsel = 0;
531 sesel = kvmppc_e500_stlbe_map(vcpu_e500, 0, esel);
532
533 break;
534
535 case 1:
536 /* TLB1 */
537 eaddr = get_tlb_eaddr(gtlbe);
538 raddr = get_tlb_raddr(gtlbe);
539
540 /* Create a 4KB mapping on the host.
541 * If the guest wanted a large page,
542 * only the first 4KB is mapped here and the rest
543 * are mapped on the fly. */
544 stlbsel = 1;
545 sesel = kvmppc_e500_tlb1_map(vcpu_e500, eaddr,
546 raddr >> PAGE_SHIFT, gtlbe);
547 break;
548
549 default:
550 BUG();
551 }
552 write_host_tlbe(vcpu_e500, stlbsel, sesel);
553 }
554
555 return EMULATE_DONE;
556}
557
558int kvmppc_mmu_itlb_index(struct kvm_vcpu *vcpu, gva_t eaddr)
559{
560 unsigned int as = !!(vcpu->arch.msr & MSR_IS);
561
562 return kvmppc_e500_tlb_search(vcpu, eaddr, get_cur_pid(vcpu), as);
563}
564
565int kvmppc_mmu_dtlb_index(struct kvm_vcpu *vcpu, gva_t eaddr)
566{
567 unsigned int as = !!(vcpu->arch.msr & MSR_DS);
568
569 return kvmppc_e500_tlb_search(vcpu, eaddr, get_cur_pid(vcpu), as);
570}
571
572void kvmppc_mmu_itlb_miss(struct kvm_vcpu *vcpu)
573{
574 unsigned int as = !!(vcpu->arch.msr & MSR_IS);
575
576 kvmppc_e500_deliver_tlb_miss(vcpu, vcpu->arch.pc, as);
577}
578
579void kvmppc_mmu_dtlb_miss(struct kvm_vcpu *vcpu)
580{
581 unsigned int as = !!(vcpu->arch.msr & MSR_DS);
582
583 kvmppc_e500_deliver_tlb_miss(vcpu, vcpu->arch.fault_dear, as);
584}
585
586gpa_t kvmppc_mmu_xlate(struct kvm_vcpu *vcpu, unsigned int index,
587 gva_t eaddr)
588{
589 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
590 struct tlbe *gtlbe =
591 &vcpu_e500->guest_tlb[tlbsel_of(index)][esel_of(index)];
592 u64 pgmask = get_tlb_bytes(gtlbe) - 1;
593
594 return get_tlb_raddr(gtlbe) | (eaddr & pgmask);
595}
596
597void kvmppc_mmu_destroy(struct kvm_vcpu *vcpu)
598{
599 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
600 int tlbsel, i;
601
602 for (tlbsel = 0; tlbsel < 2; tlbsel++)
603 for (i = 0; i < vcpu_e500->guest_tlb_size[tlbsel]; i++)
604 kvmppc_e500_shadow_release(vcpu_e500, tlbsel, i);
605
606 /* discard all guest mapping */
Liu Yu9aa4dd52009-01-14 10:47:38 -0600607 _tlbil_all();
Hollis Blanchardbc8080c2009-01-03 16:23:10 -0600608}
609
610void kvmppc_mmu_map(struct kvm_vcpu *vcpu, u64 eaddr, gpa_t gpaddr,
611 unsigned int index)
612{
613 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
614 int tlbsel = tlbsel_of(index);
615 int esel = esel_of(index);
616 int stlbsel, sesel;
617
618 switch (tlbsel) {
619 case 0:
620 stlbsel = 0;
621 sesel = esel;
622 break;
623
624 case 1: {
625 gfn_t gfn = gpaddr >> PAGE_SHIFT;
626 struct tlbe *gtlbe
627 = &vcpu_e500->guest_tlb[tlbsel][esel];
628
629 stlbsel = 1;
630 sesel = kvmppc_e500_tlb1_map(vcpu_e500, eaddr, gfn, gtlbe);
631 break;
632 }
633
634 default:
635 BUG();
636 break;
637 }
638 write_host_tlbe(vcpu_e500, stlbsel, sesel);
639}
640
641int kvmppc_e500_tlb_search(struct kvm_vcpu *vcpu,
642 gva_t eaddr, unsigned int pid, int as)
643{
644 struct kvmppc_vcpu_e500 *vcpu_e500 = to_e500(vcpu);
645 int esel, tlbsel;
646
647 for (tlbsel = 0; tlbsel < 2; tlbsel++) {
648 esel = kvmppc_e500_tlb_index(vcpu_e500, eaddr, tlbsel, pid, as);
649 if (esel >= 0)
650 return index_of(tlbsel, esel);
651 }
652
653 return -1;
654}
655
656void kvmppc_e500_tlb_setup(struct kvmppc_vcpu_e500 *vcpu_e500)
657{
658 struct tlbe *tlbe;
659
660 /* Insert large initial mapping for guest. */
661 tlbe = &vcpu_e500->guest_tlb[1][0];
662 tlbe->mas1 = MAS1_VALID | MAS1_TSIZE(BOOKE_PAGESZ_256M);
663 tlbe->mas2 = 0;
664 tlbe->mas3 = E500_TLB_SUPER_PERM_MASK;
665 tlbe->mas7 = 0;
666
667 /* 4K map for serial output. Used by kernel wrapper. */
668 tlbe = &vcpu_e500->guest_tlb[1][1];
669 tlbe->mas1 = MAS1_VALID | MAS1_TSIZE(BOOKE_PAGESZ_4K);
670 tlbe->mas2 = (0xe0004500 & 0xFFFFF000) | MAS2_I | MAS2_G;
671 tlbe->mas3 = (0xe0004500 & 0xFFFFF000) | E500_TLB_SUPER_PERM_MASK;
672 tlbe->mas7 = 0;
673}
674
675int kvmppc_e500_tlb_init(struct kvmppc_vcpu_e500 *vcpu_e500)
676{
677 tlb1_entry_num = mfspr(SPRN_TLB1CFG) & 0xFFF;
678
679 vcpu_e500->guest_tlb_size[0] = KVM_E500_TLB0_SIZE;
680 vcpu_e500->guest_tlb[0] =
681 kzalloc(sizeof(struct tlbe) * KVM_E500_TLB0_SIZE, GFP_KERNEL);
682 if (vcpu_e500->guest_tlb[0] == NULL)
683 goto err_out;
684
685 vcpu_e500->shadow_tlb_size[0] = KVM_E500_TLB0_SIZE;
686 vcpu_e500->shadow_tlb[0] =
687 kzalloc(sizeof(struct tlbe) * KVM_E500_TLB0_SIZE, GFP_KERNEL);
688 if (vcpu_e500->shadow_tlb[0] == NULL)
689 goto err_out_guest0;
690
691 vcpu_e500->guest_tlb_size[1] = KVM_E500_TLB1_SIZE;
692 vcpu_e500->guest_tlb[1] =
693 kzalloc(sizeof(struct tlbe) * KVM_E500_TLB1_SIZE, GFP_KERNEL);
694 if (vcpu_e500->guest_tlb[1] == NULL)
695 goto err_out_shadow0;
696
697 vcpu_e500->shadow_tlb_size[1] = tlb1_entry_num;
698 vcpu_e500->shadow_tlb[1] =
699 kzalloc(sizeof(struct tlbe) * tlb1_entry_num, GFP_KERNEL);
700 if (vcpu_e500->shadow_tlb[1] == NULL)
701 goto err_out_guest1;
702
703 vcpu_e500->shadow_pages[0] = (struct page **)
704 kzalloc(sizeof(struct page *) * KVM_E500_TLB0_SIZE, GFP_KERNEL);
705 if (vcpu_e500->shadow_pages[0] == NULL)
706 goto err_out_shadow1;
707
708 vcpu_e500->shadow_pages[1] = (struct page **)
709 kzalloc(sizeof(struct page *) * tlb1_entry_num, GFP_KERNEL);
710 if (vcpu_e500->shadow_pages[1] == NULL)
711 goto err_out_page0;
712
713 return 0;
714
715err_out_page0:
716 kfree(vcpu_e500->shadow_pages[0]);
717err_out_shadow1:
718 kfree(vcpu_e500->shadow_tlb[1]);
719err_out_guest1:
720 kfree(vcpu_e500->guest_tlb[1]);
721err_out_shadow0:
722 kfree(vcpu_e500->shadow_tlb[0]);
723err_out_guest0:
724 kfree(vcpu_e500->guest_tlb[0]);
725err_out:
726 return -1;
727}
728
729void kvmppc_e500_tlb_uninit(struct kvmppc_vcpu_e500 *vcpu_e500)
730{
731 kfree(vcpu_e500->shadow_pages[1]);
732 kfree(vcpu_e500->shadow_pages[0]);
733 kfree(vcpu_e500->shadow_tlb[1]);
734 kfree(vcpu_e500->guest_tlb[1]);
735 kfree(vcpu_e500->shadow_tlb[0]);
736 kfree(vcpu_e500->guest_tlb[0]);
737}