1 // SPDX-License-Identifier: GPL-2.0
2
3 /*
4 * Xen mmu operations
5 *
6 * This file contains the various mmu fetch and update operations.
7 * The most important job they must perform is the mapping between the
8 * domain's pfn and the overall machine mfns.
9 *
10 * Xen allows guests to directly update the pagetable, in a controlled
11 * fashion. In other words, the guest modifies the same pagetable
12 * that the CPU actually uses, which eliminates the overhead of having
13 * a separate shadow pagetable.
14 *
15 * In order to allow this, it falls on the guest domain to map its
16 * notion of a "physical" pfn - which is just a domain-local linear
17 * address - into a real "machine address" which the CPU's MMU can
18 * use.
19 *
20 * A pgd_t/pmd_t/pte_t will typically contain an mfn, and so can be
21 * inserted directly into the pagetable. When creating a new
22 * pte/pmd/pgd, it converts the passed pfn into an mfn. Conversely,
23 * when reading the content back with __(pgd|pmd|pte)_val, it converts
24 * the mfn back into a pfn.
25 *
26 * The other constraint is that all pages which make up a pagetable
27 * must be mapped read-only in the guest. This prevents uncontrolled
28 * guest updates to the pagetable. Xen strictly enforces this, and
29 * will disallow any pagetable update which will end up mapping a
30 * pagetable page RW, and will disallow using any writable page as a
31 * pagetable.
32 *
33 * Naively, when loading %cr3 with the base of a new pagetable, Xen
34 * would need to validate the whole pagetable before going on.
35 * Naturally, this is quite slow. The solution is to "pin" a
36 * pagetable, which enforces all the constraints on the pagetable even
37 * when it is not actively in use. This means that Xen can be assured
38 * that it is still valid when you do load it into %cr3, and doesn't
39 * need to revalidate it.
40 *
41 * Jeremy Fitzhardinge <jeremy@xensource.com>, XenSource Inc, 2007
42 */
43 #include <linux/sched/mm.h>
44 #include <linux/debugfs.h>
45 #include <linux/bug.h>
46 #include <linux/vmalloc.h>
47 #include <linux/export.h>
48 #include <linux/init.h>
49 #include <linux/gfp.h>
50 #include <linux/memblock.h>
51 #include <linux/seq_file.h>
52 #include <linux/crash_dump.h>
53 #include <linux/pgtable.h>
54 #ifdef CONFIG_KEXEC_CORE
55 #include <linux/kexec.h>
56 #endif
57
58 #include <trace/events/xen.h>
59
60 #include <asm/tlbflush.h>
61 #include <asm/fixmap.h>
62 #include <asm/mmu_context.h>
63 #include <asm/setup.h>
64 #include <asm/paravirt.h>
65 #include <asm/e820/api.h>
66 #include <asm/linkage.h>
67 #include <asm/page.h>
68 #include <asm/init.h>
69 #include <asm/memtype.h>
70 #include <asm/smp.h>
71 #include <asm/tlb.h>
72
73 #include <asm/xen/hypercall.h>
74 #include <asm/xen/hypervisor.h>
75
76 #include <xen/xen.h>
77 #include <xen/page.h>
78 #include <xen/interface/xen.h>
79 #include <xen/interface/hvm/hvm_op.h>
80 #include <xen/interface/version.h>
81 #include <xen/interface/memory.h>
82 #include <xen/hvc-console.h>
83 #include <xen/swiotlb-xen.h>
84
85 #include "xen-ops.h"
86
87 /*
88 * Prototypes for functions called via PV_CALLEE_SAVE_REGS_THUNK() in order
89 * to avoid warnings with "-Wmissing-prototypes".
90 */
91 pteval_t xen_pte_val(pte_t pte);
92 pgdval_t xen_pgd_val(pgd_t pgd);
93 pmdval_t xen_pmd_val(pmd_t pmd);
94 pudval_t xen_pud_val(pud_t pud);
95 p4dval_t xen_p4d_val(p4d_t p4d);
96 pte_t xen_make_pte(pteval_t pte);
97 pgd_t xen_make_pgd(pgdval_t pgd);
98 pmd_t xen_make_pmd(pmdval_t pmd);
99 pud_t xen_make_pud(pudval_t pud);
100 p4d_t xen_make_p4d(p4dval_t p4d);
101 pte_t xen_make_pte_init(pteval_t pte);
102
103 #ifdef CONFIG_X86_VSYSCALL_EMULATION
104 /* l3 pud for userspace vsyscall mapping */
105 static pud_t level3_user_vsyscall[PTRS_PER_PUD] __page_aligned_bss;
106 #endif
107
108 static pud_t level3_ident_pgt[PTRS_PER_PUD] __page_aligned_bss;
109 static pmd_t level2_ident_pgt[PTRS_PER_PMD] __page_aligned_bss;
110
111 /*
112 * Protects atomic reservation decrease/increase against concurrent increases.
113 * Also protects non-atomic updates of current_pages and balloon lists.
114 */
115 static DEFINE_SPINLOCK(xen_reservation_lock);
116
117 /* Protected by xen_reservation_lock. */
118 #define MIN_CONTIG_ORDER 9 /* 2MB */
119 static unsigned int discontig_frames_order = MIN_CONTIG_ORDER;
120 static unsigned long discontig_frames_early[1UL << MIN_CONTIG_ORDER] __initdata;
121 static unsigned long *discontig_frames __refdata = discontig_frames_early;
122 static bool discontig_frames_dyn;
123
alloc_discontig_frames(unsigned int order)124 static int alloc_discontig_frames(unsigned int order)
125 {
126 unsigned long *new_array, *old_array;
127 unsigned int old_order;
128 unsigned long flags;
129
130 BUG_ON(order < MIN_CONTIG_ORDER);
131 BUILD_BUG_ON(sizeof(discontig_frames_early) != PAGE_SIZE);
132
133 new_array = (unsigned long *)__get_free_pages(GFP_KERNEL,
134 order - MIN_CONTIG_ORDER);
135 if (!new_array)
136 return -ENOMEM;
137
138 spin_lock_irqsave(&xen_reservation_lock, flags);
139
140 old_order = discontig_frames_order;
141
142 if (order > discontig_frames_order || !discontig_frames_dyn) {
143 if (!discontig_frames_dyn)
144 old_array = NULL;
145 else
146 old_array = discontig_frames;
147
148 discontig_frames = new_array;
149 discontig_frames_order = order;
150 discontig_frames_dyn = true;
151 } else {
152 old_array = new_array;
153 }
154
155 spin_unlock_irqrestore(&xen_reservation_lock, flags);
156
157 free_pages((unsigned long)old_array, old_order - MIN_CONTIG_ORDER);
158
159 return 0;
160 }
161
162 /*
163 * Note about cr3 (pagetable base) values:
164 *
165 * xen_cr3 contains the current logical cr3 value; it contains the
166 * last set cr3. This may not be the current effective cr3, because
167 * its update may be being lazily deferred. However, a vcpu looking
168 * at its own cr3 can use this value knowing that it everything will
169 * be self-consistent.
170 *
171 * xen_current_cr3 contains the actual vcpu cr3; it is set once the
172 * hypercall to set the vcpu cr3 is complete (so it may be a little
173 * out of date, but it will never be set early). If one vcpu is
174 * looking at another vcpu's cr3 value, it should use this variable.
175 */
176 DEFINE_PER_CPU(unsigned long, xen_cr3); /* cr3 stored as physaddr */
177 static DEFINE_PER_CPU(unsigned long, xen_current_cr3); /* actual vcpu cr3 */
178
179 static phys_addr_t xen_pt_base, xen_pt_size __initdata;
180
181 static DEFINE_STATIC_KEY_FALSE(xen_struct_pages_ready);
182
183 /*
184 * Just beyond the highest usermode address. STACK_TOP_MAX has a
185 * redzone above it, so round it up to a PGD boundary.
186 */
187 #define USER_LIMIT ((STACK_TOP_MAX + PGDIR_SIZE - 1) & PGDIR_MASK)
188
make_lowmem_page_readonly(void * vaddr)189 void make_lowmem_page_readonly(void *vaddr)
190 {
191 pte_t *pte, ptev;
192 unsigned long address = (unsigned long)vaddr;
193 unsigned int level;
194
195 pte = lookup_address(address, &level);
196 if (pte == NULL)
197 return; /* vaddr missing */
198
199 ptev = pte_wrprotect(*pte);
200
201 if (HYPERVISOR_update_va_mapping(address, ptev, 0))
202 BUG();
203 }
204
make_lowmem_page_readwrite(void * vaddr)205 void make_lowmem_page_readwrite(void *vaddr)
206 {
207 pte_t *pte, ptev;
208 unsigned long address = (unsigned long)vaddr;
209 unsigned int level;
210
211 pte = lookup_address(address, &level);
212 if (pte == NULL)
213 return; /* vaddr missing */
214
215 ptev = pte_mkwrite_novma(*pte);
216
217 if (HYPERVISOR_update_va_mapping(address, ptev, 0))
218 BUG();
219 }
220
221
222 /*
223 * During early boot all page table pages are pinned, but we do not have struct
224 * pages, so return true until struct pages are ready.
225 */
xen_page_pinned(void * ptr)226 static bool xen_page_pinned(void *ptr)
227 {
228 if (static_branch_likely(&xen_struct_pages_ready)) {
229 struct page *page = virt_to_page(ptr);
230
231 return PagePinned(page);
232 }
233 return true;
234 }
235
xen_extend_mmu_update(const struct mmu_update * update)236 static void xen_extend_mmu_update(const struct mmu_update *update)
237 {
238 struct multicall_space mcs;
239 struct mmu_update *u;
240
241 mcs = xen_mc_extend_args(__HYPERVISOR_mmu_update, sizeof(*u));
242
243 if (mcs.mc != NULL) {
244 mcs.mc->args[1]++;
245 } else {
246 mcs = __xen_mc_entry(sizeof(*u));
247 MULTI_mmu_update(mcs.mc, mcs.args, 1, NULL, DOMID_SELF);
248 }
249
250 u = mcs.args;
251 *u = *update;
252 }
253
xen_extend_mmuext_op(const struct mmuext_op * op)254 static void xen_extend_mmuext_op(const struct mmuext_op *op)
255 {
256 struct multicall_space mcs;
257 struct mmuext_op *u;
258
259 mcs = xen_mc_extend_args(__HYPERVISOR_mmuext_op, sizeof(*u));
260
261 if (mcs.mc != NULL) {
262 mcs.mc->args[1]++;
263 } else {
264 mcs = __xen_mc_entry(sizeof(*u));
265 MULTI_mmuext_op(mcs.mc, mcs.args, 1, NULL, DOMID_SELF);
266 }
267
268 u = mcs.args;
269 *u = *op;
270 }
271
xen_set_pmd_hyper(pmd_t * ptr,pmd_t val)272 static void xen_set_pmd_hyper(pmd_t *ptr, pmd_t val)
273 {
274 struct mmu_update u;
275
276 preempt_disable();
277
278 xen_mc_batch();
279
280 /* ptr may be ioremapped for 64-bit pagetable setup */
281 u.ptr = arbitrary_virt_to_machine(ptr).maddr;
282 u.val = pmd_val_ma(val);
283 xen_extend_mmu_update(&u);
284
285 xen_mc_issue(XEN_LAZY_MMU);
286
287 preempt_enable();
288 }
289
xen_set_pmd(pmd_t * ptr,pmd_t val)290 static void xen_set_pmd(pmd_t *ptr, pmd_t val)
291 {
292 trace_xen_mmu_set_pmd(ptr, val);
293
294 /* If page is not pinned, we can just update the entry
295 directly */
296 if (!xen_page_pinned(ptr)) {
297 *ptr = val;
298 return;
299 }
300
301 xen_set_pmd_hyper(ptr, val);
302 }
303
304 /*
305 * Associate a virtual page frame with a given physical page frame
306 * and protection flags for that frame.
307 */
set_pte_mfn(unsigned long vaddr,unsigned long mfn,pgprot_t flags)308 void __init set_pte_mfn(unsigned long vaddr, unsigned long mfn, pgprot_t flags)
309 {
310 if (HYPERVISOR_update_va_mapping(vaddr, mfn_pte(mfn, flags),
311 UVMF_INVLPG))
312 BUG();
313 }
314
xen_batched_set_pte(pte_t * ptep,pte_t pteval)315 static bool xen_batched_set_pte(pte_t *ptep, pte_t pteval)
316 {
317 struct mmu_update u;
318
319 if (xen_get_lazy_mode() != XEN_LAZY_MMU)
320 return false;
321
322 xen_mc_batch();
323
324 u.ptr = virt_to_machine(ptep).maddr | MMU_NORMAL_PT_UPDATE;
325 u.val = pte_val_ma(pteval);
326 xen_extend_mmu_update(&u);
327
328 xen_mc_issue(XEN_LAZY_MMU);
329
330 return true;
331 }
332
__xen_set_pte(pte_t * ptep,pte_t pteval)333 static inline void __xen_set_pte(pte_t *ptep, pte_t pteval)
334 {
335 if (!xen_batched_set_pte(ptep, pteval)) {
336 /*
337 * Could call native_set_pte() here and trap and
338 * emulate the PTE write, but a hypercall is much cheaper.
339 */
340 struct mmu_update u;
341
342 u.ptr = virt_to_machine(ptep).maddr | MMU_NORMAL_PT_UPDATE;
343 u.val = pte_val_ma(pteval);
344 HYPERVISOR_mmu_update(&u, 1, NULL, DOMID_SELF);
345 }
346 }
347
xen_set_pte(pte_t * ptep,pte_t pteval)348 static void xen_set_pte(pte_t *ptep, pte_t pteval)
349 {
350 trace_xen_mmu_set_pte(ptep, pteval);
351 __xen_set_pte(ptep, pteval);
352 }
353
xen_ptep_modify_prot_start(struct vm_area_struct * vma,unsigned long addr,pte_t * ptep)354 static pte_t xen_ptep_modify_prot_start(struct vm_area_struct *vma,
355 unsigned long addr, pte_t *ptep)
356 {
357 /* Just return the pte as-is. We preserve the bits on commit */
358 trace_xen_mmu_ptep_modify_prot_start(vma->vm_mm, addr, ptep, *ptep);
359 return *ptep;
360 }
361
xen_ptep_modify_prot_commit(struct vm_area_struct * vma,unsigned long addr,pte_t * ptep,pte_t pte)362 static void xen_ptep_modify_prot_commit(struct vm_area_struct *vma,
363 unsigned long addr,
364 pte_t *ptep, pte_t pte)
365 {
366 struct mmu_update u;
367
368 trace_xen_mmu_ptep_modify_prot_commit(vma->vm_mm, addr, ptep, pte);
369 xen_mc_batch();
370
371 u.ptr = virt_to_machine(ptep).maddr | MMU_PT_UPDATE_PRESERVE_AD;
372 u.val = pte_val_ma(pte);
373 xen_extend_mmu_update(&u);
374
375 xen_mc_issue(XEN_LAZY_MMU);
376 }
377
378 /* Assume pteval_t is equivalent to all the other *val_t types. */
pte_mfn_to_pfn(pteval_t val)379 static pteval_t pte_mfn_to_pfn(pteval_t val)
380 {
381 if (val & _PAGE_PRESENT) {
382 unsigned long mfn = (val & XEN_PTE_MFN_MASK) >> PAGE_SHIFT;
383 unsigned long pfn = mfn_to_pfn(mfn);
384
385 pteval_t flags = val & PTE_FLAGS_MASK;
386 if (unlikely(pfn == ~0))
387 val = flags & ~_PAGE_PRESENT;
388 else
389 val = ((pteval_t)pfn << PAGE_SHIFT) | flags;
390 }
391
392 return val;
393 }
394
pte_pfn_to_mfn(pteval_t val)395 static pteval_t pte_pfn_to_mfn(pteval_t val)
396 {
397 if (val & _PAGE_PRESENT) {
398 unsigned long pfn = (val & PTE_PFN_MASK) >> PAGE_SHIFT;
399 pteval_t flags = val & PTE_FLAGS_MASK;
400 unsigned long mfn;
401
402 mfn = __pfn_to_mfn(pfn);
403
404 /*
405 * If there's no mfn for the pfn, then just create an
406 * empty non-present pte. Unfortunately this loses
407 * information about the original pfn, so
408 * pte_mfn_to_pfn is asymmetric.
409 */
410 if (unlikely(mfn == INVALID_P2M_ENTRY)) {
411 mfn = 0;
412 flags = 0;
413 } else
414 mfn &= ~(FOREIGN_FRAME_BIT | IDENTITY_FRAME_BIT);
415 val = ((pteval_t)mfn << PAGE_SHIFT) | flags;
416 }
417
418 return val;
419 }
420
xen_pte_val(pte_t pte)421 __visible pteval_t xen_pte_val(pte_t pte)
422 {
423 pteval_t pteval = pte.pte;
424
425 return pte_mfn_to_pfn(pteval);
426 }
427 PV_CALLEE_SAVE_REGS_THUNK(xen_pte_val);
428
xen_pgd_val(pgd_t pgd)429 __visible pgdval_t xen_pgd_val(pgd_t pgd)
430 {
431 return pte_mfn_to_pfn(pgd.pgd);
432 }
433 PV_CALLEE_SAVE_REGS_THUNK(xen_pgd_val);
434
xen_make_pte(pteval_t pte)435 __visible pte_t xen_make_pte(pteval_t pte)
436 {
437 pte = pte_pfn_to_mfn(pte);
438
439 return native_make_pte(pte);
440 }
441 PV_CALLEE_SAVE_REGS_THUNK(xen_make_pte);
442
xen_make_pgd(pgdval_t pgd)443 __visible pgd_t xen_make_pgd(pgdval_t pgd)
444 {
445 pgd = pte_pfn_to_mfn(pgd);
446 return native_make_pgd(pgd);
447 }
448 PV_CALLEE_SAVE_REGS_THUNK(xen_make_pgd);
449
xen_pmd_val(pmd_t pmd)450 __visible pmdval_t xen_pmd_val(pmd_t pmd)
451 {
452 return pte_mfn_to_pfn(pmd.pmd);
453 }
454 PV_CALLEE_SAVE_REGS_THUNK(xen_pmd_val);
455
xen_set_pud_hyper(pud_t * ptr,pud_t val)456 static void xen_set_pud_hyper(pud_t *ptr, pud_t val)
457 {
458 struct mmu_update u;
459
460 preempt_disable();
461
462 xen_mc_batch();
463
464 /* ptr may be ioremapped for 64-bit pagetable setup */
465 u.ptr = arbitrary_virt_to_machine(ptr).maddr;
466 u.val = pud_val_ma(val);
467 xen_extend_mmu_update(&u);
468
469 xen_mc_issue(XEN_LAZY_MMU);
470
471 preempt_enable();
472 }
473
xen_set_pud(pud_t * ptr,pud_t val)474 static void xen_set_pud(pud_t *ptr, pud_t val)
475 {
476 trace_xen_mmu_set_pud(ptr, val);
477
478 /* If page is not pinned, we can just update the entry
479 directly */
480 if (!xen_page_pinned(ptr)) {
481 *ptr = val;
482 return;
483 }
484
485 xen_set_pud_hyper(ptr, val);
486 }
487
xen_make_pmd(pmdval_t pmd)488 __visible pmd_t xen_make_pmd(pmdval_t pmd)
489 {
490 pmd = pte_pfn_to_mfn(pmd);
491 return native_make_pmd(pmd);
492 }
493 PV_CALLEE_SAVE_REGS_THUNK(xen_make_pmd);
494
xen_pud_val(pud_t pud)495 __visible pudval_t xen_pud_val(pud_t pud)
496 {
497 return pte_mfn_to_pfn(pud.pud);
498 }
499 PV_CALLEE_SAVE_REGS_THUNK(xen_pud_val);
500
xen_make_pud(pudval_t pud)501 __visible pud_t xen_make_pud(pudval_t pud)
502 {
503 pud = pte_pfn_to_mfn(pud);
504
505 return native_make_pud(pud);
506 }
507 PV_CALLEE_SAVE_REGS_THUNK(xen_make_pud);
508
xen_get_user_pgd(pgd_t * pgd)509 static pgd_t *xen_get_user_pgd(pgd_t *pgd)
510 {
511 pgd_t *pgd_page = (pgd_t *)(((unsigned long)pgd) & PAGE_MASK);
512 unsigned offset = pgd - pgd_page;
513 pgd_t *user_ptr = NULL;
514
515 if (!static_branch_likely(&xen_struct_pages_ready))
516 return NULL;
517
518 if (offset < pgd_index(USER_LIMIT)) {
519 struct page *page = virt_to_page(pgd_page);
520 user_ptr = (pgd_t *)page->private;
521 if (user_ptr)
522 user_ptr += offset;
523 }
524
525 return user_ptr;
526 }
527
__xen_set_p4d_hyper(p4d_t * ptr,p4d_t val)528 static void __xen_set_p4d_hyper(p4d_t *ptr, p4d_t val)
529 {
530 struct mmu_update u;
531
532 u.ptr = virt_to_machine(ptr).maddr;
533 u.val = p4d_val_ma(val);
534 xen_extend_mmu_update(&u);
535 }
536
537 /*
538 * Raw hypercall-based set_p4d, intended for in early boot before
539 * there's a page structure. This implies:
540 * 1. The only existing pagetable is the kernel's
541 * 2. It is always pinned
542 * 3. It has no user pagetable attached to it
543 */
xen_set_p4d_hyper(p4d_t * ptr,p4d_t val)544 static void __init xen_set_p4d_hyper(p4d_t *ptr, p4d_t val)
545 {
546 preempt_disable();
547
548 xen_mc_batch();
549
550 __xen_set_p4d_hyper(ptr, val);
551
552 xen_mc_issue(XEN_LAZY_MMU);
553
554 preempt_enable();
555 }
556
xen_set_p4d(p4d_t * ptr,p4d_t val)557 static void xen_set_p4d(p4d_t *ptr, p4d_t val)
558 {
559 pgd_t *user_ptr = xen_get_user_pgd((pgd_t *)ptr);
560 pgd_t pgd_val;
561
562 trace_xen_mmu_set_p4d(ptr, (p4d_t *)user_ptr, val);
563
564 /* If page is not pinned, we can just update the entry
565 directly */
566 if (!xen_page_pinned(ptr)) {
567 *ptr = val;
568 if (user_ptr) {
569 WARN_ON(xen_page_pinned(user_ptr));
570 pgd_val.pgd = p4d_val_ma(val);
571 *user_ptr = pgd_val;
572 }
573 return;
574 }
575
576 /* If it's pinned, then we can at least batch the kernel and
577 user updates together. */
578 xen_mc_batch();
579
580 __xen_set_p4d_hyper(ptr, val);
581 if (user_ptr)
582 __xen_set_p4d_hyper((p4d_t *)user_ptr, val);
583
584 xen_mc_issue(XEN_LAZY_MMU);
585 }
586
xen_p4d_val(p4d_t p4d)587 __visible p4dval_t xen_p4d_val(p4d_t p4d)
588 {
589 return pte_mfn_to_pfn(p4d.p4d);
590 }
591 PV_CALLEE_SAVE_REGS_THUNK(xen_p4d_val);
592
xen_make_p4d(p4dval_t p4d)593 __visible p4d_t xen_make_p4d(p4dval_t p4d)
594 {
595 p4d = pte_pfn_to_mfn(p4d);
596
597 return native_make_p4d(p4d);
598 }
599 PV_CALLEE_SAVE_REGS_THUNK(xen_make_p4d);
600
xen_pmd_walk(struct mm_struct * mm,pmd_t * pmd,void (* func)(struct mm_struct * mm,struct page *,enum pt_level),bool last,unsigned long limit)601 static void xen_pmd_walk(struct mm_struct *mm, pmd_t *pmd,
602 void (*func)(struct mm_struct *mm, struct page *,
603 enum pt_level),
604 bool last, unsigned long limit)
605 {
606 int i, nr;
607
608 nr = last ? pmd_index(limit) + 1 : PTRS_PER_PMD;
609 for (i = 0; i < nr; i++) {
610 if (!pmd_none(pmd[i]))
611 (*func)(mm, pmd_page(pmd[i]), PT_PTE);
612 }
613 }
614
xen_pud_walk(struct mm_struct * mm,pud_t * pud,void (* func)(struct mm_struct * mm,struct page *,enum pt_level),bool last,unsigned long limit)615 static void xen_pud_walk(struct mm_struct *mm, pud_t *pud,
616 void (*func)(struct mm_struct *mm, struct page *,
617 enum pt_level),
618 bool last, unsigned long limit)
619 {
620 int i, nr;
621
622 nr = last ? pud_index(limit) + 1 : PTRS_PER_PUD;
623 for (i = 0; i < nr; i++) {
624 pmd_t *pmd;
625
626 if (pud_none(pud[i]))
627 continue;
628
629 pmd = pmd_offset(&pud[i], 0);
630 if (PTRS_PER_PMD > 1)
631 (*func)(mm, virt_to_page(pmd), PT_PMD);
632 xen_pmd_walk(mm, pmd, func, last && i == nr - 1, limit);
633 }
634 }
635
xen_p4d_walk(struct mm_struct * mm,p4d_t * p4d,void (* func)(struct mm_struct * mm,struct page *,enum pt_level),bool last,unsigned long limit)636 static void xen_p4d_walk(struct mm_struct *mm, p4d_t *p4d,
637 void (*func)(struct mm_struct *mm, struct page *,
638 enum pt_level),
639 bool last, unsigned long limit)
640 {
641 pud_t *pud;
642
643
644 if (p4d_none(*p4d))
645 return;
646
647 pud = pud_offset(p4d, 0);
648 if (PTRS_PER_PUD > 1)
649 (*func)(mm, virt_to_page(pud), PT_PUD);
650 xen_pud_walk(mm, pud, func, last, limit);
651 }
652
653 /*
654 * (Yet another) pagetable walker. This one is intended for pinning a
655 * pagetable. This means that it walks a pagetable and calls the
656 * callback function on each page it finds making up the page table,
657 * at every level. It walks the entire pagetable, but it only bothers
658 * pinning pte pages which are below limit. In the normal case this
659 * will be STACK_TOP_MAX, but at boot we need to pin up to
660 * FIXADDR_TOP.
661 *
662 * We must skip the Xen hole in the middle of the address space, just after
663 * the big x86-64 virtual hole.
664 */
__xen_pgd_walk(struct mm_struct * mm,pgd_t * pgd,void (* func)(struct mm_struct * mm,struct page *,enum pt_level),unsigned long limit)665 static void __xen_pgd_walk(struct mm_struct *mm, pgd_t *pgd,
666 void (*func)(struct mm_struct *mm, struct page *,
667 enum pt_level),
668 unsigned long limit)
669 {
670 int i, nr;
671 unsigned hole_low = 0, hole_high = 0;
672
673 /* The limit is the last byte to be touched */
674 limit--;
675 BUG_ON(limit >= FIXADDR_TOP);
676
677 /*
678 * 64-bit has a great big hole in the middle of the address
679 * space, which contains the Xen mappings.
680 */
681 hole_low = pgd_index(GUARD_HOLE_BASE_ADDR);
682 hole_high = pgd_index(GUARD_HOLE_END_ADDR);
683
684 nr = pgd_index(limit) + 1;
685 for (i = 0; i < nr; i++) {
686 p4d_t *p4d;
687
688 if (i >= hole_low && i < hole_high)
689 continue;
690
691 if (pgd_none(pgd[i]))
692 continue;
693
694 p4d = p4d_offset(&pgd[i], 0);
695 xen_p4d_walk(mm, p4d, func, i == nr - 1, limit);
696 }
697
698 /* Do the top level last, so that the callbacks can use it as
699 a cue to do final things like tlb flushes. */
700 (*func)(mm, virt_to_page(pgd), PT_PGD);
701 }
702
xen_pgd_walk(struct mm_struct * mm,void (* func)(struct mm_struct * mm,struct page *,enum pt_level),unsigned long limit)703 static void xen_pgd_walk(struct mm_struct *mm,
704 void (*func)(struct mm_struct *mm, struct page *,
705 enum pt_level),
706 unsigned long limit)
707 {
708 __xen_pgd_walk(mm, mm->pgd, func, limit);
709 }
710
711 /* If we're using split pte locks, then take the page's lock and
712 return a pointer to it. Otherwise return NULL. */
xen_pte_lock(struct page * page,struct mm_struct * mm)713 static spinlock_t *xen_pte_lock(struct page *page, struct mm_struct *mm)
714 {
715 spinlock_t *ptl = NULL;
716
717 #if defined(CONFIG_SPLIT_PTE_PTLOCKS)
718 ptl = ptlock_ptr(page_ptdesc(page));
719 spin_lock_nest_lock(ptl, &mm->page_table_lock);
720 #endif
721
722 return ptl;
723 }
724
xen_pte_unlock(void * v)725 static void xen_pte_unlock(void *v)
726 {
727 spinlock_t *ptl = v;
728 spin_unlock(ptl);
729 }
730
xen_do_pin(unsigned level,unsigned long pfn)731 static void xen_do_pin(unsigned level, unsigned long pfn)
732 {
733 struct mmuext_op op;
734
735 op.cmd = level;
736 op.arg1.mfn = pfn_to_mfn(pfn);
737
738 xen_extend_mmuext_op(&op);
739 }
740
xen_pin_page(struct mm_struct * mm,struct page * page,enum pt_level level)741 static void xen_pin_page(struct mm_struct *mm, struct page *page,
742 enum pt_level level)
743 {
744 unsigned pgfl = TestSetPagePinned(page);
745
746 if (!pgfl) {
747 void *pt = lowmem_page_address(page);
748 unsigned long pfn = page_to_pfn(page);
749 struct multicall_space mcs = __xen_mc_entry(0);
750 spinlock_t *ptl;
751
752 /*
753 * We need to hold the pagetable lock between the time
754 * we make the pagetable RO and when we actually pin
755 * it. If we don't, then other users may come in and
756 * attempt to update the pagetable by writing it,
757 * which will fail because the memory is RO but not
758 * pinned, so Xen won't do the trap'n'emulate.
759 *
760 * If we're using split pte locks, we can't hold the
761 * entire pagetable's worth of locks during the
762 * traverse, because we may wrap the preempt count (8
763 * bits). The solution is to mark RO and pin each PTE
764 * page while holding the lock. This means the number
765 * of locks we end up holding is never more than a
766 * batch size (~32 entries, at present).
767 *
768 * If we're not using split pte locks, we needn't pin
769 * the PTE pages independently, because we're
770 * protected by the overall pagetable lock.
771 */
772 ptl = NULL;
773 if (level == PT_PTE)
774 ptl = xen_pte_lock(page, mm);
775
776 MULTI_update_va_mapping(mcs.mc, (unsigned long)pt,
777 pfn_pte(pfn, PAGE_KERNEL_RO),
778 level == PT_PGD ? UVMF_TLB_FLUSH : 0);
779
780 if (ptl) {
781 xen_do_pin(MMUEXT_PIN_L1_TABLE, pfn);
782
783 /* Queue a deferred unlock for when this batch
784 is completed. */
785 xen_mc_callback(xen_pte_unlock, ptl);
786 }
787 }
788 }
789
790 /* This is called just after a mm has been created, but it has not
791 been used yet. We need to make sure that its pagetable is all
792 read-only, and can be pinned. */
__xen_pgd_pin(struct mm_struct * mm,pgd_t * pgd)793 static void __xen_pgd_pin(struct mm_struct *mm, pgd_t *pgd)
794 {
795 pgd_t *user_pgd = xen_get_user_pgd(pgd);
796
797 trace_xen_mmu_pgd_pin(mm, pgd);
798
799 xen_mc_batch();
800
801 __xen_pgd_walk(mm, pgd, xen_pin_page, USER_LIMIT);
802
803 xen_do_pin(MMUEXT_PIN_L4_TABLE, PFN_DOWN(__pa(pgd)));
804
805 if (user_pgd) {
806 xen_pin_page(mm, virt_to_page(user_pgd), PT_PGD);
807 xen_do_pin(MMUEXT_PIN_L4_TABLE,
808 PFN_DOWN(__pa(user_pgd)));
809 }
810
811 xen_mc_issue(0);
812 }
813
xen_pgd_pin(struct mm_struct * mm)814 static void xen_pgd_pin(struct mm_struct *mm)
815 {
816 __xen_pgd_pin(mm, mm->pgd);
817 }
818
819 /*
820 * On save, we need to pin all pagetables to make sure they get their
821 * mfns turned into pfns. Search the list for any unpinned pgds and pin
822 * them (unpinned pgds are not currently in use, probably because the
823 * process is under construction or destruction).
824 *
825 * Expected to be called in stop_machine() ("equivalent to taking
826 * every spinlock in the system"), so the locking doesn't really
827 * matter all that much.
828 */
xen_mm_pin_all(void)829 void xen_mm_pin_all(void)
830 {
831 struct page *page;
832
833 spin_lock(&init_mm.page_table_lock);
834 spin_lock(&pgd_lock);
835
836 list_for_each_entry(page, &pgd_list, lru) {
837 if (!PagePinned(page)) {
838 __xen_pgd_pin(&init_mm, (pgd_t *)page_address(page));
839 SetPageSavePinned(page);
840 }
841 }
842
843 spin_unlock(&pgd_lock);
844 spin_unlock(&init_mm.page_table_lock);
845 }
846
xen_mark_pinned(struct mm_struct * mm,struct page * page,enum pt_level level)847 static void __init xen_mark_pinned(struct mm_struct *mm, struct page *page,
848 enum pt_level level)
849 {
850 SetPagePinned(page);
851 }
852
853 /*
854 * The init_mm pagetable is really pinned as soon as its created, but
855 * that's before we have page structures to store the bits. So do all
856 * the book-keeping now once struct pages for allocated pages are
857 * initialized. This happens only after memblock_free_all() is called.
858 */
xen_after_bootmem(void)859 static void __init xen_after_bootmem(void)
860 {
861 static_branch_enable(&xen_struct_pages_ready);
862 #ifdef CONFIG_X86_VSYSCALL_EMULATION
863 SetPagePinned(virt_to_page(level3_user_vsyscall));
864 #endif
865 xen_pgd_walk(&init_mm, xen_mark_pinned, FIXADDR_TOP);
866
867 if (alloc_discontig_frames(MIN_CONTIG_ORDER))
868 BUG();
869 }
870
xen_unpin_page(struct mm_struct * mm,struct page * page,enum pt_level level)871 static void xen_unpin_page(struct mm_struct *mm, struct page *page,
872 enum pt_level level)
873 {
874 unsigned pgfl = TestClearPagePinned(page);
875
876 if (pgfl) {
877 void *pt = lowmem_page_address(page);
878 unsigned long pfn = page_to_pfn(page);
879 spinlock_t *ptl = NULL;
880 struct multicall_space mcs;
881
882 /*
883 * Do the converse to pin_page. If we're using split
884 * pte locks, we must be holding the lock for while
885 * the pte page is unpinned but still RO to prevent
886 * concurrent updates from seeing it in this
887 * partially-pinned state.
888 */
889 if (level == PT_PTE) {
890 ptl = xen_pte_lock(page, mm);
891
892 if (ptl)
893 xen_do_pin(MMUEXT_UNPIN_TABLE, pfn);
894 }
895
896 mcs = __xen_mc_entry(0);
897
898 MULTI_update_va_mapping(mcs.mc, (unsigned long)pt,
899 pfn_pte(pfn, PAGE_KERNEL),
900 level == PT_PGD ? UVMF_TLB_FLUSH : 0);
901
902 if (ptl) {
903 /* unlock when batch completed */
904 xen_mc_callback(xen_pte_unlock, ptl);
905 }
906 }
907 }
908
909 /* Release a pagetables pages back as normal RW */
__xen_pgd_unpin(struct mm_struct * mm,pgd_t * pgd)910 static void __xen_pgd_unpin(struct mm_struct *mm, pgd_t *pgd)
911 {
912 pgd_t *user_pgd = xen_get_user_pgd(pgd);
913
914 trace_xen_mmu_pgd_unpin(mm, pgd);
915
916 xen_mc_batch();
917
918 xen_do_pin(MMUEXT_UNPIN_TABLE, PFN_DOWN(__pa(pgd)));
919
920 if (user_pgd) {
921 xen_do_pin(MMUEXT_UNPIN_TABLE,
922 PFN_DOWN(__pa(user_pgd)));
923 xen_unpin_page(mm, virt_to_page(user_pgd), PT_PGD);
924 }
925
926 __xen_pgd_walk(mm, pgd, xen_unpin_page, USER_LIMIT);
927
928 xen_mc_issue(0);
929 }
930
xen_pgd_unpin(struct mm_struct * mm)931 static void xen_pgd_unpin(struct mm_struct *mm)
932 {
933 __xen_pgd_unpin(mm, mm->pgd);
934 }
935
936 /*
937 * On resume, undo any pinning done at save, so that the rest of the
938 * kernel doesn't see any unexpected pinned pagetables.
939 */
xen_mm_unpin_all(void)940 void xen_mm_unpin_all(void)
941 {
942 struct page *page;
943
944 spin_lock(&init_mm.page_table_lock);
945 spin_lock(&pgd_lock);
946
947 list_for_each_entry(page, &pgd_list, lru) {
948 if (PageSavePinned(page)) {
949 BUG_ON(!PagePinned(page));
950 __xen_pgd_unpin(&init_mm, (pgd_t *)page_address(page));
951 ClearPageSavePinned(page);
952 }
953 }
954
955 spin_unlock(&pgd_lock);
956 spin_unlock(&init_mm.page_table_lock);
957 }
958
xen_enter_mmap(struct mm_struct * mm)959 static void xen_enter_mmap(struct mm_struct *mm)
960 {
961 spin_lock(&mm->page_table_lock);
962 xen_pgd_pin(mm);
963 spin_unlock(&mm->page_table_lock);
964 }
965
drop_mm_ref_this_cpu(void * info)966 static void drop_mm_ref_this_cpu(void *info)
967 {
968 struct mm_struct *mm = info;
969
970 if (this_cpu_read(cpu_tlbstate.loaded_mm) == mm)
971 leave_mm();
972
973 /*
974 * If this cpu still has a stale cr3 reference, then make sure
975 * it has been flushed.
976 */
977 if (this_cpu_read(xen_current_cr3) == __pa(mm->pgd))
978 xen_mc_flush();
979 }
980
981 #ifdef CONFIG_SMP
982 /*
983 * Another cpu may still have their %cr3 pointing at the pagetable, so
984 * we need to repoint it somewhere else before we can unpin it.
985 */
xen_drop_mm_ref(struct mm_struct * mm)986 static void xen_drop_mm_ref(struct mm_struct *mm)
987 {
988 cpumask_var_t mask;
989 unsigned cpu;
990
991 drop_mm_ref_this_cpu(mm);
992
993 /* Get the "official" set of cpus referring to our pagetable. */
994 if (!alloc_cpumask_var(&mask, GFP_ATOMIC)) {
995 for_each_online_cpu(cpu) {
996 if (per_cpu(xen_current_cr3, cpu) != __pa(mm->pgd))
997 continue;
998 smp_call_function_single(cpu, drop_mm_ref_this_cpu, mm, 1);
999 }
1000 return;
1001 }
1002
1003 /*
1004 * It's possible that a vcpu may have a stale reference to our
1005 * cr3, because its in lazy mode, and it hasn't yet flushed
1006 * its set of pending hypercalls yet. In this case, we can
1007 * look at its actual current cr3 value, and force it to flush
1008 * if needed.
1009 */
1010 cpumask_clear(mask);
1011 for_each_online_cpu(cpu) {
1012 if (per_cpu(xen_current_cr3, cpu) == __pa(mm->pgd))
1013 cpumask_set_cpu(cpu, mask);
1014 }
1015
1016 smp_call_function_many(mask, drop_mm_ref_this_cpu, mm, 1);
1017 free_cpumask_var(mask);
1018 }
1019 #else
xen_drop_mm_ref(struct mm_struct * mm)1020 static void xen_drop_mm_ref(struct mm_struct *mm)
1021 {
1022 drop_mm_ref_this_cpu(mm);
1023 }
1024 #endif
1025
1026 /*
1027 * While a process runs, Xen pins its pagetables, which means that the
1028 * hypervisor forces it to be read-only, and it controls all updates
1029 * to it. This means that all pagetable updates have to go via the
1030 * hypervisor, which is moderately expensive.
1031 *
1032 * Since we're pulling the pagetable down, we switch to use init_mm,
1033 * unpin old process pagetable and mark it all read-write, which
1034 * allows further operations on it to be simple memory accesses.
1035 *
1036 * The only subtle point is that another CPU may be still using the
1037 * pagetable because of lazy tlb flushing. This means we need need to
1038 * switch all CPUs off this pagetable before we can unpin it.
1039 */
xen_exit_mmap(struct mm_struct * mm)1040 static void xen_exit_mmap(struct mm_struct *mm)
1041 {
1042 get_cpu(); /* make sure we don't move around */
1043 xen_drop_mm_ref(mm);
1044 put_cpu();
1045
1046 spin_lock(&mm->page_table_lock);
1047
1048 /* pgd may not be pinned in the error exit path of execve */
1049 if (xen_page_pinned(mm->pgd))
1050 xen_pgd_unpin(mm);
1051
1052 spin_unlock(&mm->page_table_lock);
1053 }
1054
1055 static void xen_post_allocator_init(void);
1056
pin_pagetable_pfn(unsigned cmd,unsigned long pfn)1057 static void __init pin_pagetable_pfn(unsigned cmd, unsigned long pfn)
1058 {
1059 struct mmuext_op op;
1060
1061 op.cmd = cmd;
1062 op.arg1.mfn = pfn_to_mfn(pfn);
1063 if (HYPERVISOR_mmuext_op(&op, 1, NULL, DOMID_SELF))
1064 BUG();
1065 }
1066
xen_cleanhighmap(unsigned long vaddr,unsigned long vaddr_end)1067 static void __init xen_cleanhighmap(unsigned long vaddr,
1068 unsigned long vaddr_end)
1069 {
1070 unsigned long kernel_end = roundup((unsigned long)_brk_end, PMD_SIZE) - 1;
1071 pmd_t *pmd = level2_kernel_pgt + pmd_index(vaddr);
1072
1073 /* NOTE: The loop is more greedy than the cleanup_highmap variant.
1074 * We include the PMD passed in on _both_ boundaries. */
1075 for (; vaddr <= vaddr_end && (pmd < (level2_kernel_pgt + PTRS_PER_PMD));
1076 pmd++, vaddr += PMD_SIZE) {
1077 if (pmd_none(*pmd))
1078 continue;
1079 if (vaddr < (unsigned long) _text || vaddr > kernel_end)
1080 set_pmd(pmd, __pmd(0));
1081 }
1082 /* In case we did something silly, we should crash in this function
1083 * instead of somewhere later and be confusing. */
1084 xen_mc_flush();
1085 }
1086
1087 /*
1088 * Make a page range writeable and free it.
1089 */
xen_free_ro_pages(unsigned long paddr,unsigned long size)1090 static void __init xen_free_ro_pages(unsigned long paddr, unsigned long size)
1091 {
1092 void *vaddr = __va(paddr);
1093 void *vaddr_end = vaddr + size;
1094
1095 for (; vaddr < vaddr_end; vaddr += PAGE_SIZE)
1096 make_lowmem_page_readwrite(vaddr);
1097
1098 memblock_phys_free(paddr, size);
1099 }
1100
xen_cleanmfnmap_free_pgtbl(void * pgtbl,bool unpin)1101 static void __init xen_cleanmfnmap_free_pgtbl(void *pgtbl, bool unpin)
1102 {
1103 unsigned long pa = __pa(pgtbl) & PHYSICAL_PAGE_MASK;
1104
1105 if (unpin)
1106 pin_pagetable_pfn(MMUEXT_UNPIN_TABLE, PFN_DOWN(pa));
1107 if (static_branch_likely(&xen_struct_pages_ready))
1108 ClearPagePinned(virt_to_page(__va(pa)));
1109 xen_free_ro_pages(pa, PAGE_SIZE);
1110 }
1111
xen_cleanmfnmap_pmd(pmd_t * pmd,bool unpin)1112 static void __init xen_cleanmfnmap_pmd(pmd_t *pmd, bool unpin)
1113 {
1114 unsigned long pa;
1115 pte_t *pte_tbl;
1116 int i;
1117
1118 if (pmd_leaf(*pmd)) {
1119 pa = pmd_val(*pmd) & PHYSICAL_PAGE_MASK;
1120 xen_free_ro_pages(pa, PMD_SIZE);
1121 return;
1122 }
1123
1124 pte_tbl = pte_offset_kernel(pmd, 0);
1125 for (i = 0; i < PTRS_PER_PTE; i++) {
1126 if (pte_none(pte_tbl[i]))
1127 continue;
1128 pa = pte_pfn(pte_tbl[i]) << PAGE_SHIFT;
1129 xen_free_ro_pages(pa, PAGE_SIZE);
1130 }
1131 set_pmd(pmd, __pmd(0));
1132 xen_cleanmfnmap_free_pgtbl(pte_tbl, unpin);
1133 }
1134
xen_cleanmfnmap_pud(pud_t * pud,bool unpin)1135 static void __init xen_cleanmfnmap_pud(pud_t *pud, bool unpin)
1136 {
1137 unsigned long pa;
1138 pmd_t *pmd_tbl;
1139 int i;
1140
1141 if (pud_leaf(*pud)) {
1142 pa = pud_val(*pud) & PHYSICAL_PAGE_MASK;
1143 xen_free_ro_pages(pa, PUD_SIZE);
1144 return;
1145 }
1146
1147 pmd_tbl = pmd_offset(pud, 0);
1148 for (i = 0; i < PTRS_PER_PMD; i++) {
1149 if (pmd_none(pmd_tbl[i]))
1150 continue;
1151 xen_cleanmfnmap_pmd(pmd_tbl + i, unpin);
1152 }
1153 set_pud(pud, __pud(0));
1154 xen_cleanmfnmap_free_pgtbl(pmd_tbl, unpin);
1155 }
1156
xen_cleanmfnmap_p4d(p4d_t * p4d,bool unpin)1157 static void __init xen_cleanmfnmap_p4d(p4d_t *p4d, bool unpin)
1158 {
1159 unsigned long pa;
1160 pud_t *pud_tbl;
1161 int i;
1162
1163 if (p4d_leaf(*p4d)) {
1164 pa = p4d_val(*p4d) & PHYSICAL_PAGE_MASK;
1165 xen_free_ro_pages(pa, P4D_SIZE);
1166 return;
1167 }
1168
1169 pud_tbl = pud_offset(p4d, 0);
1170 for (i = 0; i < PTRS_PER_PUD; i++) {
1171 if (pud_none(pud_tbl[i]))
1172 continue;
1173 xen_cleanmfnmap_pud(pud_tbl + i, unpin);
1174 }
1175 set_p4d(p4d, __p4d(0));
1176 xen_cleanmfnmap_free_pgtbl(pud_tbl, unpin);
1177 }
1178
1179 /*
1180 * Since it is well isolated we can (and since it is perhaps large we should)
1181 * also free the page tables mapping the initial P->M table.
1182 */
xen_cleanmfnmap(unsigned long vaddr)1183 static void __init xen_cleanmfnmap(unsigned long vaddr)
1184 {
1185 pgd_t *pgd;
1186 p4d_t *p4d;
1187 bool unpin;
1188
1189 unpin = (vaddr == 2 * PGDIR_SIZE);
1190 vaddr &= PMD_MASK;
1191 pgd = pgd_offset_k(vaddr);
1192 p4d = p4d_offset(pgd, 0);
1193 if (!p4d_none(*p4d))
1194 xen_cleanmfnmap_p4d(p4d, unpin);
1195 }
1196
xen_pagetable_p2m_free(void)1197 static void __init xen_pagetable_p2m_free(void)
1198 {
1199 unsigned long size;
1200 unsigned long addr;
1201
1202 size = PAGE_ALIGN(xen_start_info->nr_pages * sizeof(unsigned long));
1203
1204 /* No memory or already called. */
1205 if ((unsigned long)xen_p2m_addr == xen_start_info->mfn_list)
1206 return;
1207
1208 /* using __ka address and sticking INVALID_P2M_ENTRY! */
1209 memset((void *)xen_start_info->mfn_list, 0xff, size);
1210
1211 addr = xen_start_info->mfn_list;
1212 /*
1213 * We could be in __ka space.
1214 * We roundup to the PMD, which means that if anybody at this stage is
1215 * using the __ka address of xen_start_info or
1216 * xen_start_info->shared_info they are in going to crash. Fortunately
1217 * we have already revectored in xen_setup_kernel_pagetable.
1218 */
1219 size = roundup(size, PMD_SIZE);
1220
1221 if (addr >= __START_KERNEL_map) {
1222 xen_cleanhighmap(addr, addr + size);
1223 size = PAGE_ALIGN(xen_start_info->nr_pages *
1224 sizeof(unsigned long));
1225 memblock_free((void *)addr, size);
1226 } else {
1227 xen_cleanmfnmap(addr);
1228 }
1229 }
1230
xen_pagetable_cleanhighmap(void)1231 static void __init xen_pagetable_cleanhighmap(void)
1232 {
1233 unsigned long size;
1234 unsigned long addr;
1235
1236 /* At this stage, cleanup_highmap has already cleaned __ka space
1237 * from _brk_limit way up to the max_pfn_mapped (which is the end of
1238 * the ramdisk). We continue on, erasing PMD entries that point to page
1239 * tables - do note that they are accessible at this stage via __va.
1240 * As Xen is aligning the memory end to a 4MB boundary, for good
1241 * measure we also round up to PMD_SIZE * 2 - which means that if
1242 * anybody is using __ka address to the initial boot-stack - and try
1243 * to use it - they are going to crash. The xen_start_info has been
1244 * taken care of already in xen_setup_kernel_pagetable. */
1245 addr = xen_start_info->pt_base;
1246 size = xen_start_info->nr_pt_frames * PAGE_SIZE;
1247
1248 xen_cleanhighmap(addr, roundup(addr + size, PMD_SIZE * 2));
1249 xen_start_info->pt_base = (unsigned long)__va(__pa(xen_start_info->pt_base));
1250 }
1251
xen_pagetable_p2m_setup(void)1252 static void __init xen_pagetable_p2m_setup(void)
1253 {
1254 xen_vmalloc_p2m_tree();
1255
1256 xen_pagetable_p2m_free();
1257
1258 xen_pagetable_cleanhighmap();
1259
1260 /* And revector! Bye bye old array */
1261 xen_start_info->mfn_list = (unsigned long)xen_p2m_addr;
1262 }
1263
xen_pagetable_init(void)1264 static void __init xen_pagetable_init(void)
1265 {
1266 /*
1267 * The majority of further PTE writes is to pagetables already
1268 * announced as such to Xen. Hence it is more efficient to use
1269 * hypercalls for these updates.
1270 */
1271 pv_ops.mmu.set_pte = __xen_set_pte;
1272
1273 paging_init();
1274 xen_post_allocator_init();
1275
1276 xen_pagetable_p2m_setup();
1277
1278 /* Allocate and initialize top and mid mfn levels for p2m structure */
1279 xen_build_mfn_list_list();
1280
1281 /* Remap memory freed due to conflicts with E820 map */
1282 xen_remap_memory();
1283 xen_setup_mfn_list_list();
1284 }
1285
xen_write_cr2(unsigned long cr2)1286 static noinstr void xen_write_cr2(unsigned long cr2)
1287 {
1288 this_cpu_read(xen_vcpu)->arch.cr2 = cr2;
1289 }
1290
xen_flush_tlb(void)1291 static noinline void xen_flush_tlb(void)
1292 {
1293 struct mmuext_op *op;
1294 struct multicall_space mcs;
1295
1296 preempt_disable();
1297
1298 mcs = xen_mc_entry(sizeof(*op));
1299
1300 op = mcs.args;
1301 op->cmd = MMUEXT_TLB_FLUSH_LOCAL;
1302 MULTI_mmuext_op(mcs.mc, op, 1, NULL, DOMID_SELF);
1303
1304 xen_mc_issue(XEN_LAZY_MMU);
1305
1306 preempt_enable();
1307 }
1308
xen_flush_tlb_one_user(unsigned long addr)1309 static void xen_flush_tlb_one_user(unsigned long addr)
1310 {
1311 struct mmuext_op *op;
1312 struct multicall_space mcs;
1313
1314 trace_xen_mmu_flush_tlb_one_user(addr);
1315
1316 preempt_disable();
1317
1318 mcs = xen_mc_entry(sizeof(*op));
1319 op = mcs.args;
1320 op->cmd = MMUEXT_INVLPG_LOCAL;
1321 op->arg1.linear_addr = addr & PAGE_MASK;
1322 MULTI_mmuext_op(mcs.mc, op, 1, NULL, DOMID_SELF);
1323
1324 xen_mc_issue(XEN_LAZY_MMU);
1325
1326 preempt_enable();
1327 }
1328
xen_flush_tlb_multi(const struct cpumask * cpus,const struct flush_tlb_info * info)1329 static void xen_flush_tlb_multi(const struct cpumask *cpus,
1330 const struct flush_tlb_info *info)
1331 {
1332 struct {
1333 struct mmuext_op op;
1334 DECLARE_BITMAP(mask, NR_CPUS);
1335 } *args;
1336 struct multicall_space mcs;
1337 const size_t mc_entry_size = sizeof(args->op) +
1338 sizeof(args->mask[0]) * BITS_TO_LONGS(num_possible_cpus());
1339
1340 trace_xen_mmu_flush_tlb_multi(cpus, info->mm, info->start, info->end);
1341
1342 if (cpumask_empty(cpus))
1343 return; /* nothing to do */
1344
1345 mcs = xen_mc_entry(mc_entry_size);
1346 args = mcs.args;
1347 args->op.arg2.vcpumask = to_cpumask(args->mask);
1348
1349 /* Remove any offline CPUs */
1350 cpumask_and(to_cpumask(args->mask), cpus, cpu_online_mask);
1351
1352 args->op.cmd = MMUEXT_TLB_FLUSH_MULTI;
1353 if (info->end != TLB_FLUSH_ALL &&
1354 (info->end - info->start) <= PAGE_SIZE) {
1355 args->op.cmd = MMUEXT_INVLPG_MULTI;
1356 args->op.arg1.linear_addr = info->start;
1357 }
1358
1359 MULTI_mmuext_op(mcs.mc, &args->op, 1, NULL, DOMID_SELF);
1360
1361 xen_mc_issue(XEN_LAZY_MMU);
1362 }
1363
xen_read_cr3(void)1364 static unsigned long xen_read_cr3(void)
1365 {
1366 return this_cpu_read(xen_cr3);
1367 }
1368
set_current_cr3(void * v)1369 static void set_current_cr3(void *v)
1370 {
1371 this_cpu_write(xen_current_cr3, (unsigned long)v);
1372 }
1373
__xen_write_cr3(bool kernel,unsigned long cr3)1374 static void __xen_write_cr3(bool kernel, unsigned long cr3)
1375 {
1376 struct mmuext_op op;
1377 unsigned long mfn;
1378
1379 trace_xen_mmu_write_cr3(kernel, cr3);
1380
1381 if (cr3)
1382 mfn = pfn_to_mfn(PFN_DOWN(cr3));
1383 else
1384 mfn = 0;
1385
1386 WARN_ON(mfn == 0 && kernel);
1387
1388 op.cmd = kernel ? MMUEXT_NEW_BASEPTR : MMUEXT_NEW_USER_BASEPTR;
1389 op.arg1.mfn = mfn;
1390
1391 xen_extend_mmuext_op(&op);
1392
1393 if (kernel) {
1394 this_cpu_write(xen_cr3, cr3);
1395
1396 /* Update xen_current_cr3 once the batch has actually
1397 been submitted. */
1398 xen_mc_callback(set_current_cr3, (void *)cr3);
1399 }
1400 }
xen_write_cr3(unsigned long cr3)1401 static void xen_write_cr3(unsigned long cr3)
1402 {
1403 pgd_t *user_pgd = xen_get_user_pgd(__va(cr3));
1404
1405 BUG_ON(preemptible());
1406
1407 xen_mc_batch(); /* disables interrupts */
1408
1409 /* Update while interrupts are disabled, so its atomic with
1410 respect to ipis */
1411 this_cpu_write(xen_cr3, cr3);
1412
1413 __xen_write_cr3(true, cr3);
1414
1415 if (user_pgd)
1416 __xen_write_cr3(false, __pa(user_pgd));
1417 else
1418 __xen_write_cr3(false, 0);
1419
1420 xen_mc_issue(XEN_LAZY_CPU); /* interrupts restored */
1421 }
1422
1423 /*
1424 * At the start of the day - when Xen launches a guest, it has already
1425 * built pagetables for the guest. We diligently look over them
1426 * in xen_setup_kernel_pagetable and graft as appropriate them in the
1427 * init_top_pgt and its friends. Then when we are happy we load
1428 * the new init_top_pgt - and continue on.
1429 *
1430 * The generic code starts (start_kernel) and 'init_mem_mapping' sets
1431 * up the rest of the pagetables. When it has completed it loads the cr3.
1432 * N.B. that baremetal would start at 'start_kernel' (and the early
1433 * #PF handler would create bootstrap pagetables) - so we are running
1434 * with the same assumptions as what to do when write_cr3 is executed
1435 * at this point.
1436 *
1437 * Since there are no user-page tables at all, we have two variants
1438 * of xen_write_cr3 - the early bootup (this one), and the late one
1439 * (xen_write_cr3). The reason we have to do that is that in 64-bit
1440 * the Linux kernel and user-space are both in ring 3 while the
1441 * hypervisor is in ring 0.
1442 */
xen_write_cr3_init(unsigned long cr3)1443 static void __init xen_write_cr3_init(unsigned long cr3)
1444 {
1445 BUG_ON(preemptible());
1446
1447 xen_mc_batch(); /* disables interrupts */
1448
1449 /* Update while interrupts are disabled, so its atomic with
1450 respect to ipis */
1451 this_cpu_write(xen_cr3, cr3);
1452
1453 __xen_write_cr3(true, cr3);
1454
1455 xen_mc_issue(XEN_LAZY_CPU); /* interrupts restored */
1456 }
1457
xen_pgd_alloc(struct mm_struct * mm)1458 static int xen_pgd_alloc(struct mm_struct *mm)
1459 {
1460 pgd_t *pgd = mm->pgd;
1461 struct page *page = virt_to_page(pgd);
1462 pgd_t *user_pgd;
1463 int ret = -ENOMEM;
1464
1465 BUG_ON(PagePinned(virt_to_page(pgd)));
1466 BUG_ON(page->private != 0);
1467
1468 user_pgd = (pgd_t *)__get_free_page(GFP_KERNEL | __GFP_ZERO);
1469 page->private = (unsigned long)user_pgd;
1470
1471 if (user_pgd != NULL) {
1472 #ifdef CONFIG_X86_VSYSCALL_EMULATION
1473 user_pgd[pgd_index(VSYSCALL_ADDR)] =
1474 __pgd(__pa(level3_user_vsyscall) | _PAGE_TABLE);
1475 #endif
1476 ret = 0;
1477 }
1478
1479 BUG_ON(PagePinned(virt_to_page(xen_get_user_pgd(pgd))));
1480
1481 return ret;
1482 }
1483
xen_pgd_free(struct mm_struct * mm,pgd_t * pgd)1484 static void xen_pgd_free(struct mm_struct *mm, pgd_t *pgd)
1485 {
1486 pgd_t *user_pgd = xen_get_user_pgd(pgd);
1487
1488 if (user_pgd)
1489 free_page((unsigned long)user_pgd);
1490 }
1491
1492 /*
1493 * Init-time set_pte while constructing initial pagetables, which
1494 * doesn't allow RO page table pages to be remapped RW.
1495 *
1496 * If there is no MFN for this PFN then this page is initially
1497 * ballooned out so clear the PTE (as in decrease_reservation() in
1498 * drivers/xen/balloon.c).
1499 *
1500 * Many of these PTE updates are done on unpinned and writable pages
1501 * and doing a hypercall for these is unnecessary and expensive. At
1502 * this point it is rarely possible to tell if a page is pinned, so
1503 * mostly write the PTE directly and rely on Xen trapping and
1504 * emulating any updates as necessary.
1505 */
xen_set_pte_init(pte_t * ptep,pte_t pte)1506 static void __init xen_set_pte_init(pte_t *ptep, pte_t pte)
1507 {
1508 if (unlikely(is_early_ioremap_ptep(ptep)))
1509 __xen_set_pte(ptep, pte);
1510 else
1511 native_set_pte(ptep, pte);
1512 }
1513
xen_make_pte_init(pteval_t pte)1514 __visible pte_t xen_make_pte_init(pteval_t pte)
1515 {
1516 unsigned long pfn;
1517
1518 /*
1519 * Pages belonging to the initial p2m list mapped outside the default
1520 * address range must be mapped read-only. This region contains the
1521 * page tables for mapping the p2m list, too, and page tables MUST be
1522 * mapped read-only.
1523 */
1524 pfn = (pte & PTE_PFN_MASK) >> PAGE_SHIFT;
1525 if (xen_start_info->mfn_list < __START_KERNEL_map &&
1526 pfn >= xen_start_info->first_p2m_pfn &&
1527 pfn < xen_start_info->first_p2m_pfn + xen_start_info->nr_p2m_frames)
1528 pte &= ~_PAGE_RW;
1529
1530 pte = pte_pfn_to_mfn(pte);
1531 return native_make_pte(pte);
1532 }
1533 PV_CALLEE_SAVE_REGS_THUNK(xen_make_pte_init);
1534
1535 /* Early in boot, while setting up the initial pagetable, assume
1536 everything is pinned. */
xen_alloc_pte_init(struct mm_struct * mm,unsigned long pfn)1537 static void __init xen_alloc_pte_init(struct mm_struct *mm, unsigned long pfn)
1538 {
1539 #ifdef CONFIG_FLATMEM
1540 BUG_ON(mem_map); /* should only be used early */
1541 #endif
1542 make_lowmem_page_readonly(__va(PFN_PHYS(pfn)));
1543 pin_pagetable_pfn(MMUEXT_PIN_L1_TABLE, pfn);
1544 }
1545
1546 /* Used for pmd and pud */
xen_alloc_pmd_init(struct mm_struct * mm,unsigned long pfn)1547 static void __init xen_alloc_pmd_init(struct mm_struct *mm, unsigned long pfn)
1548 {
1549 #ifdef CONFIG_FLATMEM
1550 BUG_ON(mem_map); /* should only be used early */
1551 #endif
1552 make_lowmem_page_readonly(__va(PFN_PHYS(pfn)));
1553 }
1554
1555 /* Early release_pte assumes that all pts are pinned, since there's
1556 only init_mm and anything attached to that is pinned. */
xen_release_pte_init(unsigned long pfn)1557 static void __init xen_release_pte_init(unsigned long pfn)
1558 {
1559 pin_pagetable_pfn(MMUEXT_UNPIN_TABLE, pfn);
1560 make_lowmem_page_readwrite(__va(PFN_PHYS(pfn)));
1561 }
1562
xen_release_pmd_init(unsigned long pfn)1563 static void __init xen_release_pmd_init(unsigned long pfn)
1564 {
1565 make_lowmem_page_readwrite(__va(PFN_PHYS(pfn)));
1566 }
1567
__pin_pagetable_pfn(unsigned cmd,unsigned long pfn)1568 static inline void __pin_pagetable_pfn(unsigned cmd, unsigned long pfn)
1569 {
1570 struct multicall_space mcs;
1571 struct mmuext_op *op;
1572
1573 mcs = __xen_mc_entry(sizeof(*op));
1574 op = mcs.args;
1575 op->cmd = cmd;
1576 op->arg1.mfn = pfn_to_mfn(pfn);
1577
1578 MULTI_mmuext_op(mcs.mc, mcs.args, 1, NULL, DOMID_SELF);
1579 }
1580
__set_pfn_prot(unsigned long pfn,pgprot_t prot)1581 static inline void __set_pfn_prot(unsigned long pfn, pgprot_t prot)
1582 {
1583 struct multicall_space mcs;
1584 unsigned long addr = (unsigned long)__va(pfn << PAGE_SHIFT);
1585
1586 mcs = __xen_mc_entry(0);
1587 MULTI_update_va_mapping(mcs.mc, (unsigned long)addr,
1588 pfn_pte(pfn, prot), 0);
1589 }
1590
1591 /* This needs to make sure the new pte page is pinned iff its being
1592 attached to a pinned pagetable. */
xen_alloc_ptpage(struct mm_struct * mm,unsigned long pfn,unsigned level)1593 static inline void xen_alloc_ptpage(struct mm_struct *mm, unsigned long pfn,
1594 unsigned level)
1595 {
1596 bool pinned = xen_page_pinned(mm->pgd);
1597
1598 trace_xen_mmu_alloc_ptpage(mm, pfn, level, pinned);
1599
1600 if (pinned) {
1601 struct page *page = pfn_to_page(pfn);
1602
1603 pinned = false;
1604 if (static_branch_likely(&xen_struct_pages_ready)) {
1605 pinned = PagePinned(page);
1606 SetPagePinned(page);
1607 }
1608
1609 xen_mc_batch();
1610
1611 __set_pfn_prot(pfn, PAGE_KERNEL_RO);
1612
1613 if (level == PT_PTE && IS_ENABLED(CONFIG_SPLIT_PTE_PTLOCKS) &&
1614 !pinned)
1615 __pin_pagetable_pfn(MMUEXT_PIN_L1_TABLE, pfn);
1616
1617 xen_mc_issue(XEN_LAZY_MMU);
1618 }
1619 }
1620
xen_alloc_pte(struct mm_struct * mm,unsigned long pfn)1621 static void xen_alloc_pte(struct mm_struct *mm, unsigned long pfn)
1622 {
1623 xen_alloc_ptpage(mm, pfn, PT_PTE);
1624 }
1625
xen_alloc_pmd(struct mm_struct * mm,unsigned long pfn)1626 static void xen_alloc_pmd(struct mm_struct *mm, unsigned long pfn)
1627 {
1628 xen_alloc_ptpage(mm, pfn, PT_PMD);
1629 }
1630
1631 /* This should never happen until we're OK to use struct page */
xen_release_ptpage(unsigned long pfn,unsigned level)1632 static inline void xen_release_ptpage(unsigned long pfn, unsigned level)
1633 {
1634 struct page *page = pfn_to_page(pfn);
1635 bool pinned = PagePinned(page);
1636
1637 trace_xen_mmu_release_ptpage(pfn, level, pinned);
1638
1639 if (pinned) {
1640 xen_mc_batch();
1641
1642 if (level == PT_PTE && IS_ENABLED(CONFIG_SPLIT_PTE_PTLOCKS))
1643 __pin_pagetable_pfn(MMUEXT_UNPIN_TABLE, pfn);
1644
1645 __set_pfn_prot(pfn, PAGE_KERNEL);
1646
1647 xen_mc_issue(XEN_LAZY_MMU);
1648
1649 ClearPagePinned(page);
1650 }
1651 }
1652
xen_release_pte(unsigned long pfn)1653 static void xen_release_pte(unsigned long pfn)
1654 {
1655 xen_release_ptpage(pfn, PT_PTE);
1656 }
1657
xen_release_pmd(unsigned long pfn)1658 static void xen_release_pmd(unsigned long pfn)
1659 {
1660 xen_release_ptpage(pfn, PT_PMD);
1661 }
1662
xen_alloc_pud(struct mm_struct * mm,unsigned long pfn)1663 static void xen_alloc_pud(struct mm_struct *mm, unsigned long pfn)
1664 {
1665 xen_alloc_ptpage(mm, pfn, PT_PUD);
1666 }
1667
xen_release_pud(unsigned long pfn)1668 static void xen_release_pud(unsigned long pfn)
1669 {
1670 xen_release_ptpage(pfn, PT_PUD);
1671 }
1672
1673 /*
1674 * Like __va(), but returns address in the kernel mapping (which is
1675 * all we have until the physical memory mapping has been set up.
1676 */
__ka(phys_addr_t paddr)1677 static void * __init __ka(phys_addr_t paddr)
1678 {
1679 return (void *)(paddr + __START_KERNEL_map);
1680 }
1681
1682 /* Convert a machine address to physical address */
m2p(phys_addr_t maddr)1683 static unsigned long __init m2p(phys_addr_t maddr)
1684 {
1685 phys_addr_t paddr;
1686
1687 maddr &= XEN_PTE_MFN_MASK;
1688 paddr = mfn_to_pfn(maddr >> PAGE_SHIFT) << PAGE_SHIFT;
1689
1690 return paddr;
1691 }
1692
1693 /* Convert a machine address to kernel virtual */
m2v(phys_addr_t maddr)1694 static void * __init m2v(phys_addr_t maddr)
1695 {
1696 return __ka(m2p(maddr));
1697 }
1698
1699 /* Set the page permissions on an identity-mapped pages */
set_page_prot_flags(void * addr,pgprot_t prot,unsigned long flags)1700 static void __init set_page_prot_flags(void *addr, pgprot_t prot,
1701 unsigned long flags)
1702 {
1703 unsigned long pfn = __pa(addr) >> PAGE_SHIFT;
1704 pte_t pte = pfn_pte(pfn, prot);
1705
1706 if (HYPERVISOR_update_va_mapping((unsigned long)addr, pte, flags))
1707 BUG();
1708 }
set_page_prot(void * addr,pgprot_t prot)1709 static void __init set_page_prot(void *addr, pgprot_t prot)
1710 {
1711 return set_page_prot_flags(addr, prot, UVMF_NONE);
1712 }
1713
xen_setup_machphys_mapping(void)1714 void __init xen_setup_machphys_mapping(void)
1715 {
1716 struct xen_machphys_mapping mapping;
1717
1718 if (HYPERVISOR_memory_op(XENMEM_machphys_mapping, &mapping) == 0) {
1719 machine_to_phys_mapping = (unsigned long *)mapping.v_start;
1720 machine_to_phys_nr = mapping.max_mfn + 1;
1721 } else {
1722 machine_to_phys_nr = MACH2PHYS_NR_ENTRIES;
1723 }
1724 }
1725
convert_pfn_mfn(void * v)1726 static void __init convert_pfn_mfn(void *v)
1727 {
1728 pte_t *pte = v;
1729 int i;
1730
1731 /* All levels are converted the same way, so just treat them
1732 as ptes. */
1733 for (i = 0; i < PTRS_PER_PTE; i++)
1734 pte[i] = xen_make_pte(pte[i].pte);
1735 }
check_pt_base(unsigned long * pt_base,unsigned long * pt_end,unsigned long addr)1736 static void __init check_pt_base(unsigned long *pt_base, unsigned long *pt_end,
1737 unsigned long addr)
1738 {
1739 if (*pt_base == PFN_DOWN(__pa(addr))) {
1740 set_page_prot_flags((void *)addr, PAGE_KERNEL, UVMF_INVLPG);
1741 clear_page((void *)addr);
1742 (*pt_base)++;
1743 }
1744 if (*pt_end == PFN_DOWN(__pa(addr))) {
1745 set_page_prot_flags((void *)addr, PAGE_KERNEL, UVMF_INVLPG);
1746 clear_page((void *)addr);
1747 (*pt_end)--;
1748 }
1749 }
1750 /*
1751 * Set up the initial kernel pagetable.
1752 *
1753 * We can construct this by grafting the Xen provided pagetable into
1754 * head_64.S's preconstructed pagetables. We copy the Xen L2's into
1755 * level2_ident_pgt, and level2_kernel_pgt. This means that only the
1756 * kernel has a physical mapping to start with - but that's enough to
1757 * get __va working. We need to fill in the rest of the physical
1758 * mapping once some sort of allocator has been set up.
1759 */
xen_setup_kernel_pagetable(pgd_t * pgd,unsigned long max_pfn)1760 void __init xen_setup_kernel_pagetable(pgd_t *pgd, unsigned long max_pfn)
1761 {
1762 pud_t *l3;
1763 pmd_t *l2;
1764 unsigned long addr[3];
1765 unsigned long pt_base, pt_end;
1766 unsigned i;
1767
1768 /* max_pfn_mapped is the last pfn mapped in the initial memory
1769 * mappings. Considering that on Xen after the kernel mappings we
1770 * have the mappings of some pages that don't exist in pfn space, we
1771 * set max_pfn_mapped to the last real pfn mapped. */
1772 if (xen_start_info->mfn_list < __START_KERNEL_map)
1773 max_pfn_mapped = xen_start_info->first_p2m_pfn;
1774 else
1775 max_pfn_mapped = PFN_DOWN(__pa(xen_start_info->mfn_list));
1776
1777 pt_base = PFN_DOWN(__pa(xen_start_info->pt_base));
1778 pt_end = pt_base + xen_start_info->nr_pt_frames;
1779
1780 /* Zap identity mapping */
1781 init_top_pgt[0] = __pgd(0);
1782
1783 init_top_pgt[pgd_index(__PAGE_OFFSET_BASE_L4)].pgd =
1784 __pa_symbol(level3_ident_pgt) + _KERNPG_TABLE_NOENC;
1785 init_top_pgt[pgd_index(__START_KERNEL_map)].pgd =
1786 __pa_symbol(level3_kernel_pgt) + _PAGE_TABLE_NOENC;
1787 level3_ident_pgt[0].pud = __pa_symbol(level2_ident_pgt) + _KERNPG_TABLE_NOENC;
1788
1789 /* Pre-constructed entries are in pfn, so convert to mfn */
1790 /* L4[273] -> level3_ident_pgt */
1791 /* L4[511] -> level3_kernel_pgt */
1792 convert_pfn_mfn(init_top_pgt);
1793
1794 /* L3_i[0] -> level2_ident_pgt */
1795 convert_pfn_mfn(level3_ident_pgt);
1796 /* L3_k[510] -> level2_kernel_pgt */
1797 /* L3_k[511] -> level2_fixmap_pgt */
1798 convert_pfn_mfn(level3_kernel_pgt);
1799
1800 /* L3_k[511][508-FIXMAP_PMD_NUM ... 507] -> level1_fixmap_pgt */
1801 convert_pfn_mfn(level2_fixmap_pgt);
1802
1803 /* We get [511][511] and have Xen's version of level2_kernel_pgt */
1804 l3 = m2v(pgd[pgd_index(__START_KERNEL_map)].pgd);
1805 l2 = m2v(l3[pud_index(__START_KERNEL_map)].pud);
1806
1807 addr[0] = (unsigned long)pgd;
1808 addr[1] = (unsigned long)l3;
1809 addr[2] = (unsigned long)l2;
1810 /* Graft it onto L4[273][0]. Note that we creating an aliasing problem:
1811 * Both L4[273][0] and L4[511][510] have entries that point to the same
1812 * L2 (PMD) tables. Meaning that if you modify it in __va space
1813 * it will be also modified in the __ka space! (But if you just
1814 * modify the PMD table to point to other PTE's or none, then you
1815 * are OK - which is what cleanup_highmap does) */
1816 copy_page(level2_ident_pgt, l2);
1817 /* Graft it onto L4[511][510] */
1818 copy_page(level2_kernel_pgt, l2);
1819
1820 /*
1821 * Zap execute permission from the ident map. Due to the sharing of
1822 * L1 entries we need to do this in the L2.
1823 */
1824 if (__supported_pte_mask & _PAGE_NX) {
1825 for (i = 0; i < PTRS_PER_PMD; ++i) {
1826 if (pmd_none(level2_ident_pgt[i]))
1827 continue;
1828 level2_ident_pgt[i] = pmd_set_flags(level2_ident_pgt[i], _PAGE_NX);
1829 }
1830 }
1831
1832 /* Copy the initial P->M table mappings if necessary. */
1833 i = pgd_index(xen_start_info->mfn_list);
1834 if (i && i < pgd_index(__START_KERNEL_map))
1835 init_top_pgt[i] = ((pgd_t *)xen_start_info->pt_base)[i];
1836
1837 /* Make pagetable pieces RO */
1838 set_page_prot(init_top_pgt, PAGE_KERNEL_RO);
1839 set_page_prot(level3_ident_pgt, PAGE_KERNEL_RO);
1840 set_page_prot(level3_kernel_pgt, PAGE_KERNEL_RO);
1841 set_page_prot(level2_ident_pgt, PAGE_KERNEL_RO);
1842 set_page_prot(level2_kernel_pgt, PAGE_KERNEL_RO);
1843 set_page_prot(level2_fixmap_pgt, PAGE_KERNEL_RO);
1844
1845 for (i = 0; i < FIXMAP_PMD_NUM; i++) {
1846 set_page_prot(level1_fixmap_pgt + i * PTRS_PER_PTE,
1847 PAGE_KERNEL_RO);
1848 }
1849
1850 /* Pin down new L4 */
1851 pin_pagetable_pfn(MMUEXT_PIN_L4_TABLE,
1852 PFN_DOWN(__pa_symbol(init_top_pgt)));
1853
1854 /* Unpin Xen-provided one */
1855 pin_pagetable_pfn(MMUEXT_UNPIN_TABLE, PFN_DOWN(__pa(pgd)));
1856
1857 #ifdef CONFIG_X86_VSYSCALL_EMULATION
1858 /* Pin user vsyscall L3 */
1859 set_page_prot(level3_user_vsyscall, PAGE_KERNEL_RO);
1860 pin_pagetable_pfn(MMUEXT_PIN_L3_TABLE,
1861 PFN_DOWN(__pa_symbol(level3_user_vsyscall)));
1862 #endif
1863
1864 /*
1865 * At this stage there can be no user pgd, and no page structure to
1866 * attach it to, so make sure we just set kernel pgd.
1867 */
1868 xen_mc_batch();
1869 __xen_write_cr3(true, __pa(init_top_pgt));
1870 xen_mc_issue(XEN_LAZY_CPU);
1871
1872 /* We can't that easily rip out L3 and L2, as the Xen pagetables are
1873 * set out this way: [L4], [L1], [L2], [L3], [L1], [L1] ... for
1874 * the initial domain. For guests using the toolstack, they are in:
1875 * [L4], [L3], [L2], [L1], [L1], order .. So for dom0 we can only
1876 * rip out the [L4] (pgd), but for guests we shave off three pages.
1877 */
1878 for (i = 0; i < ARRAY_SIZE(addr); i++)
1879 check_pt_base(&pt_base, &pt_end, addr[i]);
1880
1881 /* Our (by three pages) smaller Xen pagetable that we are using */
1882 xen_pt_base = PFN_PHYS(pt_base);
1883 xen_pt_size = (pt_end - pt_base) * PAGE_SIZE;
1884 memblock_reserve(xen_pt_base, xen_pt_size);
1885
1886 /* Revector the xen_start_info */
1887 xen_start_info = (struct start_info *)__va(__pa(xen_start_info));
1888 }
1889
1890 /*
1891 * Read a value from a physical address.
1892 */
xen_read_phys_ulong(phys_addr_t addr)1893 static unsigned long __init xen_read_phys_ulong(phys_addr_t addr)
1894 {
1895 unsigned long *vaddr;
1896 unsigned long val;
1897
1898 vaddr = early_memremap_ro(addr, sizeof(val));
1899 val = *vaddr;
1900 early_memunmap(vaddr, sizeof(val));
1901 return val;
1902 }
1903
1904 /*
1905 * Translate a virtual address to a physical one without relying on mapped
1906 * page tables. Don't rely on big pages being aligned in (guest) physical
1907 * space!
1908 */
xen_early_virt_to_phys(unsigned long vaddr)1909 static phys_addr_t __init xen_early_virt_to_phys(unsigned long vaddr)
1910 {
1911 phys_addr_t pa;
1912 pgd_t pgd;
1913 pud_t pud;
1914 pmd_t pmd;
1915 pte_t pte;
1916
1917 pa = read_cr3_pa();
1918 pgd = native_make_pgd(xen_read_phys_ulong(pa + pgd_index(vaddr) *
1919 sizeof(pgd)));
1920 if (!pgd_present(pgd))
1921 return 0;
1922
1923 pa = pgd_val(pgd) & PTE_PFN_MASK;
1924 pud = native_make_pud(xen_read_phys_ulong(pa + pud_index(vaddr) *
1925 sizeof(pud)));
1926 if (!pud_present(pud))
1927 return 0;
1928 pa = pud_val(pud) & PTE_PFN_MASK;
1929 if (pud_leaf(pud))
1930 return pa + (vaddr & ~PUD_MASK);
1931
1932 pmd = native_make_pmd(xen_read_phys_ulong(pa + pmd_index(vaddr) *
1933 sizeof(pmd)));
1934 if (!pmd_present(pmd))
1935 return 0;
1936 pa = pmd_val(pmd) & PTE_PFN_MASK;
1937 if (pmd_leaf(pmd))
1938 return pa + (vaddr & ~PMD_MASK);
1939
1940 pte = native_make_pte(xen_read_phys_ulong(pa + pte_index(vaddr) *
1941 sizeof(pte)));
1942 if (!pte_present(pte))
1943 return 0;
1944 pa = pte_pfn(pte) << PAGE_SHIFT;
1945
1946 return pa | (vaddr & ~PAGE_MASK);
1947 }
1948
1949 /*
1950 * Find a new area for the hypervisor supplied p2m list and relocate the p2m to
1951 * this area.
1952 */
xen_relocate_p2m(void)1953 void __init xen_relocate_p2m(void)
1954 {
1955 phys_addr_t size, new_area, pt_phys, pmd_phys, pud_phys;
1956 unsigned long p2m_pfn, p2m_pfn_end, n_frames, pfn, pfn_end;
1957 int n_pte, n_pt, n_pmd, n_pud, idx_pte, idx_pt, idx_pmd, idx_pud;
1958 pte_t *pt;
1959 pmd_t *pmd;
1960 pud_t *pud;
1961 pgd_t *pgd;
1962 unsigned long *new_p2m;
1963
1964 size = PAGE_ALIGN(xen_start_info->nr_pages * sizeof(unsigned long));
1965 n_pte = roundup(size, PAGE_SIZE) >> PAGE_SHIFT;
1966 n_pt = roundup(size, PMD_SIZE) >> PMD_SHIFT;
1967 n_pmd = roundup(size, PUD_SIZE) >> PUD_SHIFT;
1968 n_pud = roundup(size, P4D_SIZE) >> P4D_SHIFT;
1969 n_frames = n_pte + n_pt + n_pmd + n_pud;
1970
1971 new_area = xen_find_free_area(PFN_PHYS(n_frames));
1972 if (!new_area) {
1973 xen_raw_console_write("Can't find new memory area for p2m needed due to E820 map conflict\n");
1974 BUG();
1975 }
1976
1977 /*
1978 * Setup the page tables for addressing the new p2m list.
1979 * We have asked the hypervisor to map the p2m list at the user address
1980 * PUD_SIZE. It may have done so, or it may have used a kernel space
1981 * address depending on the Xen version.
1982 * To avoid any possible virtual address collision, just use
1983 * 2 * PUD_SIZE for the new area.
1984 */
1985 pud_phys = new_area;
1986 pmd_phys = pud_phys + PFN_PHYS(n_pud);
1987 pt_phys = pmd_phys + PFN_PHYS(n_pmd);
1988 p2m_pfn = PFN_DOWN(pt_phys) + n_pt;
1989
1990 pgd = __va(read_cr3_pa());
1991 new_p2m = (unsigned long *)(2 * PGDIR_SIZE);
1992 for (idx_pud = 0; idx_pud < n_pud; idx_pud++) {
1993 pud = early_memremap(pud_phys, PAGE_SIZE);
1994 clear_page(pud);
1995 for (idx_pmd = 0; idx_pmd < min(n_pmd, PTRS_PER_PUD);
1996 idx_pmd++) {
1997 pmd = early_memremap(pmd_phys, PAGE_SIZE);
1998 clear_page(pmd);
1999 for (idx_pt = 0; idx_pt < min(n_pt, PTRS_PER_PMD);
2000 idx_pt++) {
2001 pt = early_memremap(pt_phys, PAGE_SIZE);
2002 clear_page(pt);
2003 for (idx_pte = 0;
2004 idx_pte < min(n_pte, PTRS_PER_PTE);
2005 idx_pte++) {
2006 pt[idx_pte] = pfn_pte(p2m_pfn,
2007 PAGE_KERNEL);
2008 p2m_pfn++;
2009 }
2010 n_pte -= PTRS_PER_PTE;
2011 early_memunmap(pt, PAGE_SIZE);
2012 make_lowmem_page_readonly(__va(pt_phys));
2013 pin_pagetable_pfn(MMUEXT_PIN_L1_TABLE,
2014 PFN_DOWN(pt_phys));
2015 pmd[idx_pt] = __pmd(_PAGE_TABLE | pt_phys);
2016 pt_phys += PAGE_SIZE;
2017 }
2018 n_pt -= PTRS_PER_PMD;
2019 early_memunmap(pmd, PAGE_SIZE);
2020 make_lowmem_page_readonly(__va(pmd_phys));
2021 pin_pagetable_pfn(MMUEXT_PIN_L2_TABLE,
2022 PFN_DOWN(pmd_phys));
2023 pud[idx_pmd] = __pud(_PAGE_TABLE | pmd_phys);
2024 pmd_phys += PAGE_SIZE;
2025 }
2026 n_pmd -= PTRS_PER_PUD;
2027 early_memunmap(pud, PAGE_SIZE);
2028 make_lowmem_page_readonly(__va(pud_phys));
2029 pin_pagetable_pfn(MMUEXT_PIN_L3_TABLE, PFN_DOWN(pud_phys));
2030 set_pgd(pgd + 2 + idx_pud, __pgd(_PAGE_TABLE | pud_phys));
2031 pud_phys += PAGE_SIZE;
2032 }
2033
2034 /* Now copy the old p2m info to the new area. */
2035 memcpy(new_p2m, xen_p2m_addr, size);
2036 xen_p2m_addr = new_p2m;
2037
2038 /* Release the old p2m list and set new list info. */
2039 p2m_pfn = PFN_DOWN(xen_early_virt_to_phys(xen_start_info->mfn_list));
2040 BUG_ON(!p2m_pfn);
2041 p2m_pfn_end = p2m_pfn + PFN_DOWN(size);
2042
2043 if (xen_start_info->mfn_list < __START_KERNEL_map) {
2044 pfn = xen_start_info->first_p2m_pfn;
2045 pfn_end = xen_start_info->first_p2m_pfn +
2046 xen_start_info->nr_p2m_frames;
2047 set_pgd(pgd + 1, __pgd(0));
2048 } else {
2049 pfn = p2m_pfn;
2050 pfn_end = p2m_pfn_end;
2051 }
2052
2053 memblock_phys_free(PFN_PHYS(pfn), PAGE_SIZE * (pfn_end - pfn));
2054 while (pfn < pfn_end) {
2055 if (pfn == p2m_pfn) {
2056 pfn = p2m_pfn_end;
2057 continue;
2058 }
2059 make_lowmem_page_readwrite(__va(PFN_PHYS(pfn)));
2060 pfn++;
2061 }
2062
2063 xen_start_info->mfn_list = (unsigned long)xen_p2m_addr;
2064 xen_start_info->first_p2m_pfn = PFN_DOWN(new_area);
2065 xen_start_info->nr_p2m_frames = n_frames;
2066 }
2067
xen_reserve_special_pages(void)2068 void __init xen_reserve_special_pages(void)
2069 {
2070 phys_addr_t paddr;
2071
2072 memblock_reserve(__pa(xen_start_info), PAGE_SIZE);
2073 if (xen_start_info->store_mfn) {
2074 paddr = PFN_PHYS(mfn_to_pfn(xen_start_info->store_mfn));
2075 memblock_reserve(paddr, PAGE_SIZE);
2076 }
2077 if (!xen_initial_domain()) {
2078 paddr = PFN_PHYS(mfn_to_pfn(xen_start_info->console.domU.mfn));
2079 memblock_reserve(paddr, PAGE_SIZE);
2080 }
2081 }
2082
xen_pt_check_e820(void)2083 void __init xen_pt_check_e820(void)
2084 {
2085 xen_chk_is_e820_usable(xen_pt_base, xen_pt_size, "page table");
2086 }
2087
2088 static unsigned char dummy_mapping[PAGE_SIZE] __page_aligned_bss;
2089
xen_set_fixmap(unsigned idx,phys_addr_t phys,pgprot_t prot)2090 static void xen_set_fixmap(unsigned idx, phys_addr_t phys, pgprot_t prot)
2091 {
2092 pte_t pte;
2093 unsigned long vaddr;
2094
2095 phys >>= PAGE_SHIFT;
2096
2097 switch (idx) {
2098 case FIX_BTMAP_END ... FIX_BTMAP_BEGIN:
2099 #ifdef CONFIG_X86_VSYSCALL_EMULATION
2100 case VSYSCALL_PAGE:
2101 #endif
2102 /* All local page mappings */
2103 pte = pfn_pte(phys, prot);
2104 break;
2105
2106 #ifdef CONFIG_X86_LOCAL_APIC
2107 case FIX_APIC_BASE: /* maps dummy local APIC */
2108 pte = pfn_pte(PFN_DOWN(__pa(dummy_mapping)), PAGE_KERNEL);
2109 break;
2110 #endif
2111
2112 #ifdef CONFIG_X86_IO_APIC
2113 case FIX_IO_APIC_BASE_0 ... FIX_IO_APIC_BASE_END:
2114 /*
2115 * We just don't map the IO APIC - all access is via
2116 * hypercalls. Keep the address in the pte for reference.
2117 */
2118 pte = pfn_pte(PFN_DOWN(__pa(dummy_mapping)), PAGE_KERNEL);
2119 break;
2120 #endif
2121
2122 case FIX_PARAVIRT_BOOTMAP:
2123 /* This is an MFN, but it isn't an IO mapping from the
2124 IO domain */
2125 pte = mfn_pte(phys, prot);
2126 break;
2127
2128 default:
2129 /* By default, set_fixmap is used for hardware mappings */
2130 pte = mfn_pte(phys, prot);
2131 break;
2132 }
2133
2134 vaddr = __fix_to_virt(idx);
2135 if (HYPERVISOR_update_va_mapping(vaddr, pte, UVMF_INVLPG))
2136 BUG();
2137
2138 #ifdef CONFIG_X86_VSYSCALL_EMULATION
2139 /* Replicate changes to map the vsyscall page into the user
2140 pagetable vsyscall mapping. */
2141 if (idx == VSYSCALL_PAGE)
2142 set_pte_vaddr_pud(level3_user_vsyscall, vaddr, pte);
2143 #endif
2144 }
2145
xen_enter_lazy_mmu(void)2146 static void xen_enter_lazy_mmu(void)
2147 {
2148 enter_lazy(XEN_LAZY_MMU);
2149 }
2150
xen_flush_lazy_mmu(void)2151 static void xen_flush_lazy_mmu(void)
2152 {
2153 preempt_disable();
2154
2155 if (xen_get_lazy_mode() == XEN_LAZY_MMU)
2156 xen_mc_flush();
2157
2158 preempt_enable();
2159 }
2160
xen_post_allocator_init(void)2161 static void __init xen_post_allocator_init(void)
2162 {
2163 pv_ops.mmu.set_pte = xen_set_pte;
2164 pv_ops.mmu.set_pmd = xen_set_pmd;
2165 pv_ops.mmu.set_pud = xen_set_pud;
2166 pv_ops.mmu.set_p4d = xen_set_p4d;
2167
2168 /* This will work as long as patching hasn't happened yet
2169 (which it hasn't) */
2170 pv_ops.mmu.alloc_pte = xen_alloc_pte;
2171 pv_ops.mmu.alloc_pmd = xen_alloc_pmd;
2172 pv_ops.mmu.release_pte = xen_release_pte;
2173 pv_ops.mmu.release_pmd = xen_release_pmd;
2174 pv_ops.mmu.alloc_pud = xen_alloc_pud;
2175 pv_ops.mmu.release_pud = xen_release_pud;
2176 pv_ops.mmu.make_pte = PV_CALLEE_SAVE(xen_make_pte);
2177
2178 pv_ops.mmu.write_cr3 = &xen_write_cr3;
2179 }
2180
xen_leave_lazy_mmu(void)2181 static void xen_leave_lazy_mmu(void)
2182 {
2183 preempt_disable();
2184 xen_mc_flush();
2185 leave_lazy(XEN_LAZY_MMU);
2186 preempt_enable();
2187 }
2188
xen_init_mmu_ops(void)2189 void __init xen_init_mmu_ops(void)
2190 {
2191 x86_init.paging.pagetable_init = xen_pagetable_init;
2192 x86_init.hyper.init_after_bootmem = xen_after_bootmem;
2193
2194 pv_ops.mmu.read_cr2 = __PV_IS_CALLEE_SAVE(xen_read_cr2);
2195 pv_ops.mmu.write_cr2 = xen_write_cr2;
2196 pv_ops.mmu.read_cr3 = xen_read_cr3;
2197 pv_ops.mmu.write_cr3 = xen_write_cr3_init;
2198 pv_ops.mmu.flush_tlb_user = xen_flush_tlb;
2199 pv_ops.mmu.flush_tlb_kernel = xen_flush_tlb;
2200 pv_ops.mmu.flush_tlb_one_user = xen_flush_tlb_one_user;
2201 pv_ops.mmu.flush_tlb_multi = xen_flush_tlb_multi;
2202 pv_ops.mmu.pgd_alloc = xen_pgd_alloc;
2203 pv_ops.mmu.pgd_free = xen_pgd_free;
2204 pv_ops.mmu.alloc_pte = xen_alloc_pte_init;
2205 pv_ops.mmu.release_pte = xen_release_pte_init;
2206 pv_ops.mmu.alloc_pmd = xen_alloc_pmd_init;
2207 pv_ops.mmu.release_pmd = xen_release_pmd_init;
2208 pv_ops.mmu.set_pte = xen_set_pte_init;
2209 pv_ops.mmu.set_pmd = xen_set_pmd_hyper;
2210 pv_ops.mmu.ptep_modify_prot_start = xen_ptep_modify_prot_start;
2211 pv_ops.mmu.ptep_modify_prot_commit = xen_ptep_modify_prot_commit;
2212 pv_ops.mmu.pte_val = PV_CALLEE_SAVE(xen_pte_val);
2213 pv_ops.mmu.pgd_val = PV_CALLEE_SAVE(xen_pgd_val);
2214 pv_ops.mmu.make_pte = PV_CALLEE_SAVE(xen_make_pte_init);
2215 pv_ops.mmu.make_pgd = PV_CALLEE_SAVE(xen_make_pgd);
2216 pv_ops.mmu.set_pud = xen_set_pud_hyper;
2217 pv_ops.mmu.make_pmd = PV_CALLEE_SAVE(xen_make_pmd);
2218 pv_ops.mmu.pmd_val = PV_CALLEE_SAVE(xen_pmd_val);
2219 pv_ops.mmu.pud_val = PV_CALLEE_SAVE(xen_pud_val);
2220 pv_ops.mmu.make_pud = PV_CALLEE_SAVE(xen_make_pud);
2221 pv_ops.mmu.set_p4d = xen_set_p4d_hyper;
2222 pv_ops.mmu.alloc_pud = xen_alloc_pmd_init;
2223 pv_ops.mmu.release_pud = xen_release_pmd_init;
2224 pv_ops.mmu.p4d_val = PV_CALLEE_SAVE(xen_p4d_val);
2225 pv_ops.mmu.make_p4d = PV_CALLEE_SAVE(xen_make_p4d);
2226 pv_ops.mmu.enter_mmap = xen_enter_mmap;
2227 pv_ops.mmu.exit_mmap = xen_exit_mmap;
2228 pv_ops.mmu.lazy_mode.enter = xen_enter_lazy_mmu;
2229 pv_ops.mmu.lazy_mode.leave = xen_leave_lazy_mmu;
2230 pv_ops.mmu.lazy_mode.flush = xen_flush_lazy_mmu;
2231 pv_ops.mmu.set_fixmap = xen_set_fixmap;
2232
2233 memset(dummy_mapping, 0xff, PAGE_SIZE);
2234 }
2235
2236 #define VOID_PTE (mfn_pte(0, __pgprot(0)))
xen_zap_pfn_range(unsigned long vaddr,unsigned int order,unsigned long * in_frames,unsigned long * out_frames)2237 static void xen_zap_pfn_range(unsigned long vaddr, unsigned int order,
2238 unsigned long *in_frames,
2239 unsigned long *out_frames)
2240 {
2241 int i;
2242 struct multicall_space mcs;
2243
2244 xen_mc_batch();
2245 for (i = 0; i < (1UL<<order); i++, vaddr += PAGE_SIZE) {
2246 mcs = __xen_mc_entry(0);
2247
2248 if (in_frames)
2249 in_frames[i] = virt_to_mfn((void *)vaddr);
2250
2251 MULTI_update_va_mapping(mcs.mc, vaddr, VOID_PTE, 0);
2252 __set_phys_to_machine(virt_to_pfn((void *)vaddr), INVALID_P2M_ENTRY);
2253
2254 if (out_frames)
2255 out_frames[i] = virt_to_pfn((void *)vaddr);
2256 }
2257 xen_mc_issue(0);
2258 }
2259
2260 /*
2261 * Update the pfn-to-mfn mappings for a virtual address range, either to
2262 * point to an array of mfns, or contiguously from a single starting
2263 * mfn.
2264 */
xen_remap_exchanged_ptes(unsigned long vaddr,int order,unsigned long * mfns,unsigned long first_mfn)2265 static void xen_remap_exchanged_ptes(unsigned long vaddr, int order,
2266 unsigned long *mfns,
2267 unsigned long first_mfn)
2268 {
2269 unsigned i, limit;
2270 unsigned long mfn;
2271
2272 xen_mc_batch();
2273
2274 limit = 1u << order;
2275 for (i = 0; i < limit; i++, vaddr += PAGE_SIZE) {
2276 struct multicall_space mcs;
2277 unsigned flags;
2278
2279 mcs = __xen_mc_entry(0);
2280 if (mfns)
2281 mfn = mfns[i];
2282 else
2283 mfn = first_mfn + i;
2284
2285 if (i < (limit - 1))
2286 flags = 0;
2287 else {
2288 if (order == 0)
2289 flags = UVMF_INVLPG | UVMF_ALL;
2290 else
2291 flags = UVMF_TLB_FLUSH | UVMF_ALL;
2292 }
2293
2294 MULTI_update_va_mapping(mcs.mc, vaddr,
2295 mfn_pte(mfn, PAGE_KERNEL), flags);
2296
2297 set_phys_to_machine(virt_to_pfn((void *)vaddr), mfn);
2298 }
2299
2300 xen_mc_issue(0);
2301 }
2302
2303 /*
2304 * Perform the hypercall to exchange a region of our pfns to point to
2305 * memory with the required contiguous alignment. Takes the pfns as
2306 * input, and populates mfns as output.
2307 *
2308 * Returns a success code indicating whether the hypervisor was able to
2309 * satisfy the request or not.
2310 */
xen_exchange_memory(unsigned long extents_in,unsigned int order_in,unsigned long * pfns_in,unsigned long extents_out,unsigned int order_out,unsigned long * mfns_out,unsigned int address_bits)2311 static int xen_exchange_memory(unsigned long extents_in, unsigned int order_in,
2312 unsigned long *pfns_in,
2313 unsigned long extents_out,
2314 unsigned int order_out,
2315 unsigned long *mfns_out,
2316 unsigned int address_bits)
2317 {
2318 long rc;
2319 int success;
2320
2321 struct xen_memory_exchange exchange = {
2322 .in = {
2323 .nr_extents = extents_in,
2324 .extent_order = order_in,
2325 .extent_start = pfns_in,
2326 .domid = DOMID_SELF
2327 },
2328 .out = {
2329 .nr_extents = extents_out,
2330 .extent_order = order_out,
2331 .extent_start = mfns_out,
2332 .address_bits = address_bits,
2333 .domid = DOMID_SELF
2334 }
2335 };
2336
2337 BUG_ON(extents_in << order_in != extents_out << order_out);
2338
2339 rc = HYPERVISOR_memory_op(XENMEM_exchange, &exchange);
2340 success = (exchange.nr_exchanged == extents_in);
2341
2342 BUG_ON(!success && ((exchange.nr_exchanged != 0) || (rc == 0)));
2343 BUG_ON(success && (rc != 0));
2344
2345 return success;
2346 }
2347
xen_create_contiguous_region(phys_addr_t pstart,unsigned int order,unsigned int address_bits,dma_addr_t * dma_handle)2348 int xen_create_contiguous_region(phys_addr_t pstart, unsigned int order,
2349 unsigned int address_bits,
2350 dma_addr_t *dma_handle)
2351 {
2352 unsigned long *in_frames, out_frame;
2353 unsigned long flags;
2354 int success;
2355 unsigned long vstart = (unsigned long)phys_to_virt(pstart);
2356
2357 if (unlikely(order > discontig_frames_order)) {
2358 if (!discontig_frames_dyn)
2359 return -ENOMEM;
2360
2361 if (alloc_discontig_frames(order))
2362 return -ENOMEM;
2363 }
2364
2365 memset((void *) vstart, 0, PAGE_SIZE << order);
2366
2367 spin_lock_irqsave(&xen_reservation_lock, flags);
2368
2369 in_frames = discontig_frames;
2370
2371 /* 1. Zap current PTEs, remembering MFNs. */
2372 xen_zap_pfn_range(vstart, order, in_frames, NULL);
2373
2374 /* 2. Get a new contiguous memory extent. */
2375 out_frame = virt_to_pfn((void *)vstart);
2376 success = xen_exchange_memory(1UL << order, 0, in_frames,
2377 1, order, &out_frame,
2378 address_bits);
2379
2380 /* 3. Map the new extent in place of old pages. */
2381 if (success)
2382 xen_remap_exchanged_ptes(vstart, order, NULL, out_frame);
2383 else
2384 xen_remap_exchanged_ptes(vstart, order, in_frames, 0);
2385
2386 spin_unlock_irqrestore(&xen_reservation_lock, flags);
2387
2388 *dma_handle = virt_to_machine(vstart).maddr;
2389 return success ? 0 : -ENOMEM;
2390 }
2391
xen_destroy_contiguous_region(phys_addr_t pstart,unsigned int order)2392 void xen_destroy_contiguous_region(phys_addr_t pstart, unsigned int order)
2393 {
2394 unsigned long *out_frames, in_frame;
2395 unsigned long flags;
2396 int success;
2397 unsigned long vstart;
2398
2399 if (unlikely(order > discontig_frames_order))
2400 return;
2401
2402 vstart = (unsigned long)phys_to_virt(pstart);
2403 memset((void *) vstart, 0, PAGE_SIZE << order);
2404
2405 spin_lock_irqsave(&xen_reservation_lock, flags);
2406
2407 out_frames = discontig_frames;
2408
2409 /* 1. Find start MFN of contiguous extent. */
2410 in_frame = virt_to_mfn((void *)vstart);
2411
2412 /* 2. Zap current PTEs. */
2413 xen_zap_pfn_range(vstart, order, NULL, out_frames);
2414
2415 /* 3. Do the exchange for non-contiguous MFNs. */
2416 success = xen_exchange_memory(1, order, &in_frame, 1UL << order,
2417 0, out_frames, 0);
2418
2419 /* 4. Map new pages in place of old pages. */
2420 if (success)
2421 xen_remap_exchanged_ptes(vstart, order, out_frames, 0);
2422 else
2423 xen_remap_exchanged_ptes(vstart, order, NULL, in_frame);
2424
2425 spin_unlock_irqrestore(&xen_reservation_lock, flags);
2426 }
2427
xen_flush_tlb_all(void)2428 static noinline void xen_flush_tlb_all(void)
2429 {
2430 struct mmuext_op *op;
2431 struct multicall_space mcs;
2432
2433 preempt_disable();
2434
2435 mcs = xen_mc_entry(sizeof(*op));
2436
2437 op = mcs.args;
2438 op->cmd = MMUEXT_TLB_FLUSH_ALL;
2439 MULTI_mmuext_op(mcs.mc, op, 1, NULL, DOMID_SELF);
2440
2441 xen_mc_issue(XEN_LAZY_MMU);
2442
2443 preempt_enable();
2444 }
2445
2446 #define REMAP_BATCH_SIZE 16
2447
2448 struct remap_data {
2449 xen_pfn_t *pfn;
2450 bool contiguous;
2451 bool no_translate;
2452 pgprot_t prot;
2453 struct mmu_update *mmu_update;
2454 };
2455
remap_area_pfn_pte_fn(pte_t * ptep,unsigned long addr,void * data)2456 static int remap_area_pfn_pte_fn(pte_t *ptep, unsigned long addr, void *data)
2457 {
2458 struct remap_data *rmd = data;
2459 pte_t pte = pte_mkspecial(mfn_pte(*rmd->pfn, rmd->prot));
2460
2461 /*
2462 * If we have a contiguous range, just update the pfn itself,
2463 * else update pointer to be "next pfn".
2464 */
2465 if (rmd->contiguous)
2466 (*rmd->pfn)++;
2467 else
2468 rmd->pfn++;
2469
2470 rmd->mmu_update->ptr = virt_to_machine(ptep).maddr;
2471 rmd->mmu_update->ptr |= rmd->no_translate ?
2472 MMU_PT_UPDATE_NO_TRANSLATE :
2473 MMU_NORMAL_PT_UPDATE;
2474 rmd->mmu_update->val = pte_val_ma(pte);
2475 rmd->mmu_update++;
2476
2477 return 0;
2478 }
2479
xen_remap_pfn(struct vm_area_struct * vma,unsigned long addr,xen_pfn_t * pfn,int nr,int * err_ptr,pgprot_t prot,unsigned int domid,bool no_translate)2480 int xen_remap_pfn(struct vm_area_struct *vma, unsigned long addr,
2481 xen_pfn_t *pfn, int nr, int *err_ptr, pgprot_t prot,
2482 unsigned int domid, bool no_translate)
2483 {
2484 int err = 0;
2485 struct remap_data rmd;
2486 struct mmu_update mmu_update[REMAP_BATCH_SIZE];
2487 unsigned long range;
2488 int mapped = 0;
2489
2490 BUG_ON(!((vma->vm_flags & (VM_PFNMAP | VM_IO)) == (VM_PFNMAP | VM_IO)));
2491
2492 rmd.pfn = pfn;
2493 rmd.prot = prot;
2494 /*
2495 * We use the err_ptr to indicate if there we are doing a contiguous
2496 * mapping or a discontiguous mapping.
2497 */
2498 rmd.contiguous = !err_ptr;
2499 rmd.no_translate = no_translate;
2500
2501 while (nr) {
2502 int index = 0;
2503 int done = 0;
2504 int batch = min(REMAP_BATCH_SIZE, nr);
2505 int batch_left = batch;
2506
2507 range = (unsigned long)batch << PAGE_SHIFT;
2508
2509 rmd.mmu_update = mmu_update;
2510 err = apply_to_page_range(vma->vm_mm, addr, range,
2511 remap_area_pfn_pte_fn, &rmd);
2512 if (err)
2513 goto out;
2514
2515 /*
2516 * We record the error for each page that gives an error, but
2517 * continue mapping until the whole set is done
2518 */
2519 do {
2520 int i;
2521
2522 err = HYPERVISOR_mmu_update(&mmu_update[index],
2523 batch_left, &done, domid);
2524
2525 /*
2526 * @err_ptr may be the same buffer as @gfn, so
2527 * only clear it after each chunk of @gfn is
2528 * used.
2529 */
2530 if (err_ptr) {
2531 for (i = index; i < index + done; i++)
2532 err_ptr[i] = 0;
2533 }
2534 if (err < 0) {
2535 if (!err_ptr)
2536 goto out;
2537 err_ptr[i] = err;
2538 done++; /* Skip failed frame. */
2539 } else
2540 mapped += done;
2541 batch_left -= done;
2542 index += done;
2543 } while (batch_left);
2544
2545 nr -= batch;
2546 addr += range;
2547 if (err_ptr)
2548 err_ptr += batch;
2549 cond_resched();
2550 }
2551 out:
2552
2553 xen_flush_tlb_all();
2554
2555 return err < 0 ? err : mapped;
2556 }
2557 EXPORT_SYMBOL_GPL(xen_remap_pfn);
2558
2559 #ifdef CONFIG_VMCORE_INFO
paddr_vmcoreinfo_note(void)2560 phys_addr_t paddr_vmcoreinfo_note(void)
2561 {
2562 if (xen_pv_domain())
2563 return virt_to_machine(vmcoreinfo_note).maddr;
2564 else
2565 return __pa(vmcoreinfo_note);
2566 }
2567 #endif /* CONFIG_KEXEC_CORE */
2568