x86/fpu/xsave: Support XSAVEC in the kernel
[platform/kernel/linux-starfive.git] / arch / x86 / kernel / fpu / xstate.c
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * xsave/xrstor support.
4  *
5  * Author: Suresh Siddha <suresh.b.siddha@intel.com>
6  */
7 #include <linux/bitops.h>
8 #include <linux/compat.h>
9 #include <linux/cpu.h>
10 #include <linux/mman.h>
11 #include <linux/nospec.h>
12 #include <linux/pkeys.h>
13 #include <linux/seq_file.h>
14 #include <linux/proc_fs.h>
15 #include <linux/vmalloc.h>
16
17 #include <asm/fpu/api.h>
18 #include <asm/fpu/regset.h>
19 #include <asm/fpu/signal.h>
20 #include <asm/fpu/xcr.h>
21
22 #include <asm/tlbflush.h>
23 #include <asm/prctl.h>
24 #include <asm/elf.h>
25
26 #include "context.h"
27 #include "internal.h"
28 #include "legacy.h"
29 #include "xstate.h"
30
31 #define for_each_extended_xfeature(bit, mask)                           \
32         (bit) = FIRST_EXTENDED_XFEATURE;                                \
33         for_each_set_bit_from(bit, (unsigned long *)&(mask), 8 * sizeof(mask))
34
35 /*
36  * Although we spell it out in here, the Processor Trace
37  * xfeature is completely unused.  We use other mechanisms
38  * to save/restore PT state in Linux.
39  */
40 static const char *xfeature_names[] =
41 {
42         "x87 floating point registers"  ,
43         "SSE registers"                 ,
44         "AVX registers"                 ,
45         "MPX bounds registers"          ,
46         "MPX CSR"                       ,
47         "AVX-512 opmask"                ,
48         "AVX-512 Hi256"                 ,
49         "AVX-512 ZMM_Hi256"             ,
50         "Processor Trace (unused)"      ,
51         "Protection Keys User registers",
52         "PASID state",
53         "unknown xstate feature"        ,
54         "unknown xstate feature"        ,
55         "unknown xstate feature"        ,
56         "unknown xstate feature"        ,
57         "unknown xstate feature"        ,
58         "unknown xstate feature"        ,
59         "AMX Tile config"               ,
60         "AMX Tile data"                 ,
61         "unknown xstate feature"        ,
62 };
63
64 static unsigned short xsave_cpuid_features[] __initdata = {
65         [XFEATURE_FP]                           = X86_FEATURE_FPU,
66         [XFEATURE_SSE]                          = X86_FEATURE_XMM,
67         [XFEATURE_YMM]                          = X86_FEATURE_AVX,
68         [XFEATURE_BNDREGS]                      = X86_FEATURE_MPX,
69         [XFEATURE_BNDCSR]                       = X86_FEATURE_MPX,
70         [XFEATURE_OPMASK]                       = X86_FEATURE_AVX512F,
71         [XFEATURE_ZMM_Hi256]                    = X86_FEATURE_AVX512F,
72         [XFEATURE_Hi16_ZMM]                     = X86_FEATURE_AVX512F,
73         [XFEATURE_PT_UNIMPLEMENTED_SO_FAR]      = X86_FEATURE_INTEL_PT,
74         [XFEATURE_PKRU]                         = X86_FEATURE_PKU,
75         [XFEATURE_PASID]                        = X86_FEATURE_ENQCMD,
76         [XFEATURE_XTILE_CFG]                    = X86_FEATURE_AMX_TILE,
77         [XFEATURE_XTILE_DATA]                   = X86_FEATURE_AMX_TILE,
78 };
79
80 static unsigned int xstate_offsets[XFEATURE_MAX] __ro_after_init =
81         { [ 0 ... XFEATURE_MAX - 1] = -1};
82 static unsigned int xstate_sizes[XFEATURE_MAX] __ro_after_init =
83         { [ 0 ... XFEATURE_MAX - 1] = -1};
84 static unsigned int xstate_flags[XFEATURE_MAX] __ro_after_init;
85
86 #define XSTATE_FLAG_SUPERVISOR  BIT(0)
87 #define XSTATE_FLAG_ALIGNED64   BIT(1)
88
89 /*
90  * Return whether the system supports a given xfeature.
91  *
92  * Also return the name of the (most advanced) feature that the caller requested:
93  */
94 int cpu_has_xfeatures(u64 xfeatures_needed, const char **feature_name)
95 {
96         u64 xfeatures_missing = xfeatures_needed & ~fpu_kernel_cfg.max_features;
97
98         if (unlikely(feature_name)) {
99                 long xfeature_idx, max_idx;
100                 u64 xfeatures_print;
101                 /*
102                  * So we use FLS here to be able to print the most advanced
103                  * feature that was requested but is missing. So if a driver
104                  * asks about "XFEATURE_MASK_SSE | XFEATURE_MASK_YMM" we'll print the
105                  * missing AVX feature - this is the most informative message
106                  * to users:
107                  */
108                 if (xfeatures_missing)
109                         xfeatures_print = xfeatures_missing;
110                 else
111                         xfeatures_print = xfeatures_needed;
112
113                 xfeature_idx = fls64(xfeatures_print)-1;
114                 max_idx = ARRAY_SIZE(xfeature_names)-1;
115                 xfeature_idx = min(xfeature_idx, max_idx);
116
117                 *feature_name = xfeature_names[xfeature_idx];
118         }
119
120         if (xfeatures_missing)
121                 return 0;
122
123         return 1;
124 }
125 EXPORT_SYMBOL_GPL(cpu_has_xfeatures);
126
127 static bool xfeature_is_aligned64(int xfeature_nr)
128 {
129         return xstate_flags[xfeature_nr] & XSTATE_FLAG_ALIGNED64;
130 }
131
132 static bool xfeature_is_supervisor(int xfeature_nr)
133 {
134         return xstate_flags[xfeature_nr] & XSTATE_FLAG_SUPERVISOR;
135 }
136
137 static unsigned int xfeature_get_offset(u64 xcomp_bv, int xfeature)
138 {
139         unsigned int offs, i;
140
141         /*
142          * Non-compacted format and legacy features use the cached fixed
143          * offsets.
144          */
145         if (!cpu_feature_enabled(X86_FEATURE_XCOMPACTED) ||
146             xfeature <= XFEATURE_SSE)
147                 return xstate_offsets[xfeature];
148
149         /*
150          * Compacted format offsets depend on the actual content of the
151          * compacted xsave area which is determined by the xcomp_bv header
152          * field.
153          */
154         offs = FXSAVE_SIZE + XSAVE_HDR_SIZE;
155         for_each_extended_xfeature(i, xcomp_bv) {
156                 if (xfeature_is_aligned64(i))
157                         offs = ALIGN(offs, 64);
158                 if (i == xfeature)
159                         break;
160                 offs += xstate_sizes[i];
161         }
162         return offs;
163 }
164
165 /*
166  * Enable the extended processor state save/restore feature.
167  * Called once per CPU onlining.
168  */
169 void fpu__init_cpu_xstate(void)
170 {
171         if (!boot_cpu_has(X86_FEATURE_XSAVE) || !fpu_kernel_cfg.max_features)
172                 return;
173
174         cr4_set_bits(X86_CR4_OSXSAVE);
175
176         /*
177          * Must happen after CR4 setup and before xsetbv() to allow KVM
178          * lazy passthrough.  Write independent of the dynamic state static
179          * key as that does not work on the boot CPU. This also ensures
180          * that any stale state is wiped out from XFD.
181          */
182         if (cpu_feature_enabled(X86_FEATURE_XFD))
183                 wrmsrl(MSR_IA32_XFD, init_fpstate.xfd);
184
185         /*
186          * XCR_XFEATURE_ENABLED_MASK (aka. XCR0) sets user features
187          * managed by XSAVE{C, OPT, S} and XRSTOR{S}.  Only XSAVE user
188          * states can be set here.
189          */
190         xsetbv(XCR_XFEATURE_ENABLED_MASK, fpu_user_cfg.max_features);
191
192         /*
193          * MSR_IA32_XSS sets supervisor states managed by XSAVES.
194          */
195         if (boot_cpu_has(X86_FEATURE_XSAVES)) {
196                 wrmsrl(MSR_IA32_XSS, xfeatures_mask_supervisor() |
197                                      xfeatures_mask_independent());
198         }
199 }
200
201 static bool xfeature_enabled(enum xfeature xfeature)
202 {
203         return fpu_kernel_cfg.max_features & BIT_ULL(xfeature);
204 }
205
206 /*
207  * Record the offsets and sizes of various xstates contained
208  * in the XSAVE state memory layout.
209  */
210 static void __init setup_xstate_cache(void)
211 {
212         u32 eax, ebx, ecx, edx, i;
213         /* start at the beginning of the "extended state" */
214         unsigned int last_good_offset = offsetof(struct xregs_state,
215                                                  extended_state_area);
216         /*
217          * The FP xstates and SSE xstates are legacy states. They are always
218          * in the fixed offsets in the xsave area in either compacted form
219          * or standard form.
220          */
221         xstate_offsets[XFEATURE_FP]     = 0;
222         xstate_sizes[XFEATURE_FP]       = offsetof(struct fxregs_state,
223                                                    xmm_space);
224
225         xstate_offsets[XFEATURE_SSE]    = xstate_sizes[XFEATURE_FP];
226         xstate_sizes[XFEATURE_SSE]      = sizeof_field(struct fxregs_state,
227                                                        xmm_space);
228
229         for_each_extended_xfeature(i, fpu_kernel_cfg.max_features) {
230                 cpuid_count(XSTATE_CPUID, i, &eax, &ebx, &ecx, &edx);
231
232                 xstate_sizes[i] = eax;
233                 xstate_flags[i] = ecx;
234
235                 /*
236                  * If an xfeature is supervisor state, the offset in EBX is
237                  * invalid, leave it to -1.
238                  */
239                 if (xfeature_is_supervisor(i))
240                         continue;
241
242                 xstate_offsets[i] = ebx;
243
244                 /*
245                  * In our xstate size checks, we assume that the highest-numbered
246                  * xstate feature has the highest offset in the buffer.  Ensure
247                  * it does.
248                  */
249                 WARN_ONCE(last_good_offset > xstate_offsets[i],
250                           "x86/fpu: misordered xstate at %d\n", last_good_offset);
251
252                 last_good_offset = xstate_offsets[i];
253         }
254 }
255
256 static void __init print_xstate_feature(u64 xstate_mask)
257 {
258         const char *feature_name;
259
260         if (cpu_has_xfeatures(xstate_mask, &feature_name))
261                 pr_info("x86/fpu: Supporting XSAVE feature 0x%03Lx: '%s'\n", xstate_mask, feature_name);
262 }
263
264 /*
265  * Print out all the supported xstate features:
266  */
267 static void __init print_xstate_features(void)
268 {
269         print_xstate_feature(XFEATURE_MASK_FP);
270         print_xstate_feature(XFEATURE_MASK_SSE);
271         print_xstate_feature(XFEATURE_MASK_YMM);
272         print_xstate_feature(XFEATURE_MASK_BNDREGS);
273         print_xstate_feature(XFEATURE_MASK_BNDCSR);
274         print_xstate_feature(XFEATURE_MASK_OPMASK);
275         print_xstate_feature(XFEATURE_MASK_ZMM_Hi256);
276         print_xstate_feature(XFEATURE_MASK_Hi16_ZMM);
277         print_xstate_feature(XFEATURE_MASK_PKRU);
278         print_xstate_feature(XFEATURE_MASK_PASID);
279         print_xstate_feature(XFEATURE_MASK_XTILE_CFG);
280         print_xstate_feature(XFEATURE_MASK_XTILE_DATA);
281 }
282
283 /*
284  * This check is important because it is easy to get XSTATE_*
285  * confused with XSTATE_BIT_*.
286  */
287 #define CHECK_XFEATURE(nr) do {         \
288         WARN_ON(nr < FIRST_EXTENDED_XFEATURE);  \
289         WARN_ON(nr >= XFEATURE_MAX);    \
290 } while (0)
291
292 /*
293  * Print out xstate component offsets and sizes
294  */
295 static void __init print_xstate_offset_size(void)
296 {
297         int i;
298
299         for_each_extended_xfeature(i, fpu_kernel_cfg.max_features) {
300                 pr_info("x86/fpu: xstate_offset[%d]: %4d, xstate_sizes[%d]: %4d\n",
301                         i, xfeature_get_offset(fpu_kernel_cfg.max_features, i),
302                         i, xstate_sizes[i]);
303         }
304 }
305
306 /*
307  * This function is called only during boot time when x86 caps are not set
308  * up and alternative can not be used yet.
309  */
310 static __init void os_xrstor_booting(struct xregs_state *xstate)
311 {
312         u64 mask = fpu_kernel_cfg.max_features & XFEATURE_MASK_FPSTATE;
313         u32 lmask = mask;
314         u32 hmask = mask >> 32;
315         int err;
316
317         if (cpu_feature_enabled(X86_FEATURE_XSAVES))
318                 XSTATE_OP(XRSTORS, xstate, lmask, hmask, err);
319         else
320                 XSTATE_OP(XRSTOR, xstate, lmask, hmask, err);
321
322         /*
323          * We should never fault when copying from a kernel buffer, and the FPU
324          * state we set at boot time should be valid.
325          */
326         WARN_ON_FPU(err);
327 }
328
329 /*
330  * All supported features have either init state all zeros or are
331  * handled in setup_init_fpu() individually. This is an explicit
332  * feature list and does not use XFEATURE_MASK*SUPPORTED to catch
333  * newly added supported features at build time and make people
334  * actually look at the init state for the new feature.
335  */
336 #define XFEATURES_INIT_FPSTATE_HANDLED          \
337         (XFEATURE_MASK_FP |                     \
338          XFEATURE_MASK_SSE |                    \
339          XFEATURE_MASK_YMM |                    \
340          XFEATURE_MASK_OPMASK |                 \
341          XFEATURE_MASK_ZMM_Hi256 |              \
342          XFEATURE_MASK_Hi16_ZMM  |              \
343          XFEATURE_MASK_PKRU |                   \
344          XFEATURE_MASK_BNDREGS |                \
345          XFEATURE_MASK_BNDCSR |                 \
346          XFEATURE_MASK_PASID |                  \
347          XFEATURE_MASK_XTILE)
348
349 /*
350  * setup the xstate image representing the init state
351  */
352 static void __init setup_init_fpu_buf(void)
353 {
354         BUILD_BUG_ON((XFEATURE_MASK_USER_SUPPORTED |
355                       XFEATURE_MASK_SUPERVISOR_SUPPORTED) !=
356                      XFEATURES_INIT_FPSTATE_HANDLED);
357
358         if (!boot_cpu_has(X86_FEATURE_XSAVE))
359                 return;
360
361         print_xstate_features();
362
363         xstate_init_xcomp_bv(&init_fpstate.regs.xsave, fpu_kernel_cfg.max_features);
364
365         /*
366          * Init all the features state with header.xfeatures being 0x0
367          */
368         os_xrstor_booting(&init_fpstate.regs.xsave);
369
370         /*
371          * All components are now in init state. Read the state back so
372          * that init_fpstate contains all non-zero init state. This only
373          * works with XSAVE, but not with XSAVEOPT and XSAVEC/S because
374          * those use the init optimization which skips writing data for
375          * components in init state.
376          *
377          * XSAVE could be used, but that would require to reshuffle the
378          * data when XSAVEC/S is available because XSAVEC/S uses xstate
379          * compaction. But doing so is a pointless exercise because most
380          * components have an all zeros init state except for the legacy
381          * ones (FP and SSE). Those can be saved with FXSAVE into the
382          * legacy area. Adding new features requires to ensure that init
383          * state is all zeroes or if not to add the necessary handling
384          * here.
385          */
386         fxsave(&init_fpstate.regs.fxsave);
387 }
388
389 int xfeature_size(int xfeature_nr)
390 {
391         u32 eax, ebx, ecx, edx;
392
393         CHECK_XFEATURE(xfeature_nr);
394         cpuid_count(XSTATE_CPUID, xfeature_nr, &eax, &ebx, &ecx, &edx);
395         return eax;
396 }
397
398 /* Validate an xstate header supplied by userspace (ptrace or sigreturn) */
399 static int validate_user_xstate_header(const struct xstate_header *hdr,
400                                        struct fpstate *fpstate)
401 {
402         /* No unknown or supervisor features may be set */
403         if (hdr->xfeatures & ~fpstate->user_xfeatures)
404                 return -EINVAL;
405
406         /* Userspace must use the uncompacted format */
407         if (hdr->xcomp_bv)
408                 return -EINVAL;
409
410         /*
411          * If 'reserved' is shrunken to add a new field, make sure to validate
412          * that new field here!
413          */
414         BUILD_BUG_ON(sizeof(hdr->reserved) != 48);
415
416         /* No reserved bits may be set */
417         if (memchr_inv(hdr->reserved, 0, sizeof(hdr->reserved)))
418                 return -EINVAL;
419
420         return 0;
421 }
422
423 static void __init __xstate_dump_leaves(void)
424 {
425         int i;
426         u32 eax, ebx, ecx, edx;
427         static int should_dump = 1;
428
429         if (!should_dump)
430                 return;
431         should_dump = 0;
432         /*
433          * Dump out a few leaves past the ones that we support
434          * just in case there are some goodies up there
435          */
436         for (i = 0; i < XFEATURE_MAX + 10; i++) {
437                 cpuid_count(XSTATE_CPUID, i, &eax, &ebx, &ecx, &edx);
438                 pr_warn("CPUID[%02x, %02x]: eax=%08x ebx=%08x ecx=%08x edx=%08x\n",
439                         XSTATE_CPUID, i, eax, ebx, ecx, edx);
440         }
441 }
442
443 #define XSTATE_WARN_ON(x) do {                                                  \
444         if (WARN_ONCE(x, "XSAVE consistency problem, dumping leaves")) {        \
445                 __xstate_dump_leaves();                                         \
446         }                                                                       \
447 } while (0)
448
449 #define XCHECK_SZ(sz, nr, nr_macro, __struct) do {                      \
450         if ((nr == nr_macro) &&                                         \
451             WARN_ONCE(sz != sizeof(__struct),                           \
452                 "%s: struct is %zu bytes, cpu state %d bytes\n",        \
453                 __stringify(nr_macro), sizeof(__struct), sz)) {         \
454                 __xstate_dump_leaves();                                 \
455         }                                                               \
456 } while (0)
457
458 /**
459  * check_xtile_data_against_struct - Check tile data state size.
460  *
461  * Calculate the state size by multiplying the single tile size which is
462  * recorded in a C struct, and the number of tiles that the CPU informs.
463  * Compare the provided size with the calculation.
464  *
465  * @size:       The tile data state size
466  *
467  * Returns:     0 on success, -EINVAL on mismatch.
468  */
469 static int __init check_xtile_data_against_struct(int size)
470 {
471         u32 max_palid, palid, state_size;
472         u32 eax, ebx, ecx, edx;
473         u16 max_tile;
474
475         /*
476          * Check the maximum palette id:
477          *   eax: the highest numbered palette subleaf.
478          */
479         cpuid_count(TILE_CPUID, 0, &max_palid, &ebx, &ecx, &edx);
480
481         /*
482          * Cross-check each tile size and find the maximum number of
483          * supported tiles.
484          */
485         for (palid = 1, max_tile = 0; palid <= max_palid; palid++) {
486                 u16 tile_size, max;
487
488                 /*
489                  * Check the tile size info:
490                  *   eax[31:16]:  bytes per title
491                  *   ebx[31:16]:  the max names (or max number of tiles)
492                  */
493                 cpuid_count(TILE_CPUID, palid, &eax, &ebx, &edx, &edx);
494                 tile_size = eax >> 16;
495                 max = ebx >> 16;
496
497                 if (tile_size != sizeof(struct xtile_data)) {
498                         pr_err("%s: struct is %zu bytes, cpu xtile %d bytes\n",
499                                __stringify(XFEATURE_XTILE_DATA),
500                                sizeof(struct xtile_data), tile_size);
501                         __xstate_dump_leaves();
502                         return -EINVAL;
503                 }
504
505                 if (max > max_tile)
506                         max_tile = max;
507         }
508
509         state_size = sizeof(struct xtile_data) * max_tile;
510         if (size != state_size) {
511                 pr_err("%s: calculated size is %u bytes, cpu state %d bytes\n",
512                        __stringify(XFEATURE_XTILE_DATA), state_size, size);
513                 __xstate_dump_leaves();
514                 return -EINVAL;
515         }
516         return 0;
517 }
518
519 /*
520  * We have a C struct for each 'xstate'.  We need to ensure
521  * that our software representation matches what the CPU
522  * tells us about the state's size.
523  */
524 static bool __init check_xstate_against_struct(int nr)
525 {
526         /*
527          * Ask the CPU for the size of the state.
528          */
529         int sz = xfeature_size(nr);
530         /*
531          * Match each CPU state with the corresponding software
532          * structure.
533          */
534         XCHECK_SZ(sz, nr, XFEATURE_YMM,       struct ymmh_struct);
535         XCHECK_SZ(sz, nr, XFEATURE_BNDREGS,   struct mpx_bndreg_state);
536         XCHECK_SZ(sz, nr, XFEATURE_BNDCSR,    struct mpx_bndcsr_state);
537         XCHECK_SZ(sz, nr, XFEATURE_OPMASK,    struct avx_512_opmask_state);
538         XCHECK_SZ(sz, nr, XFEATURE_ZMM_Hi256, struct avx_512_zmm_uppers_state);
539         XCHECK_SZ(sz, nr, XFEATURE_Hi16_ZMM,  struct avx_512_hi16_state);
540         XCHECK_SZ(sz, nr, XFEATURE_PKRU,      struct pkru_state);
541         XCHECK_SZ(sz, nr, XFEATURE_PASID,     struct ia32_pasid_state);
542         XCHECK_SZ(sz, nr, XFEATURE_XTILE_CFG, struct xtile_cfg);
543
544         /* The tile data size varies between implementations. */
545         if (nr == XFEATURE_XTILE_DATA)
546                 check_xtile_data_against_struct(sz);
547
548         /*
549          * Make *SURE* to add any feature numbers in below if
550          * there are "holes" in the xsave state component
551          * numbers.
552          */
553         if ((nr < XFEATURE_YMM) ||
554             (nr >= XFEATURE_MAX) ||
555             (nr == XFEATURE_PT_UNIMPLEMENTED_SO_FAR) ||
556             ((nr >= XFEATURE_RSRVD_COMP_11) && (nr <= XFEATURE_RSRVD_COMP_16))) {
557                 WARN_ONCE(1, "no structure for xstate: %d\n", nr);
558                 XSTATE_WARN_ON(1);
559                 return false;
560         }
561         return true;
562 }
563
564 static unsigned int xstate_calculate_size(u64 xfeatures, bool compacted)
565 {
566         unsigned int topmost = fls64(xfeatures) -  1;
567         unsigned int offset = xstate_offsets[topmost];
568
569         if (topmost <= XFEATURE_SSE)
570                 return sizeof(struct xregs_state);
571
572         if (compacted)
573                 offset = xfeature_get_offset(xfeatures, topmost);
574         return offset + xstate_sizes[topmost];
575 }
576
577 /*
578  * This essentially double-checks what the cpu told us about
579  * how large the XSAVE buffer needs to be.  We are recalculating
580  * it to be safe.
581  *
582  * Independent XSAVE features allocate their own buffers and are not
583  * covered by these checks. Only the size of the buffer for task->fpu
584  * is checked here.
585  */
586 static bool __init paranoid_xstate_size_valid(unsigned int kernel_size)
587 {
588         bool compacted = cpu_feature_enabled(X86_FEATURE_XCOMPACTED);
589         bool xsaves = cpu_feature_enabled(X86_FEATURE_XSAVES);
590         unsigned int size = FXSAVE_SIZE + XSAVE_HDR_SIZE;
591         int i;
592
593         for_each_extended_xfeature(i, fpu_kernel_cfg.max_features) {
594                 if (!check_xstate_against_struct(i))
595                         return false;
596                 /*
597                  * Supervisor state components can be managed only by
598                  * XSAVES.
599                  */
600                 if (!xsaves && xfeature_is_supervisor(i)) {
601                         XSTATE_WARN_ON(1);
602                         return false;
603                 }
604         }
605         size = xstate_calculate_size(fpu_kernel_cfg.max_features, compacted);
606         XSTATE_WARN_ON(size != kernel_size);
607         return size == kernel_size;
608 }
609
610 /*
611  * Get total size of enabled xstates in XCR0 | IA32_XSS.
612  *
613  * Note the SDM's wording here.  "sub-function 0" only enumerates
614  * the size of the *user* states.  If we use it to size a buffer
615  * that we use 'XSAVES' on, we could potentially overflow the
616  * buffer because 'XSAVES' saves system states too.
617  *
618  * This also takes compaction into account. So this works for
619  * XSAVEC as well.
620  */
621 static unsigned int __init get_compacted_size(void)
622 {
623         unsigned int eax, ebx, ecx, edx;
624         /*
625          * - CPUID function 0DH, sub-function 1:
626          *    EBX enumerates the size (in bytes) required by
627          *    the XSAVES instruction for an XSAVE area
628          *    containing all the state components
629          *    corresponding to bits currently set in
630          *    XCR0 | IA32_XSS.
631          *
632          * When XSAVES is not available but XSAVEC is (virt), then there
633          * are no supervisor states, but XSAVEC still uses compacted
634          * format.
635          */
636         cpuid_count(XSTATE_CPUID, 1, &eax, &ebx, &ecx, &edx);
637         return ebx;
638 }
639
640 /*
641  * Get the total size of the enabled xstates without the independent supervisor
642  * features.
643  */
644 static unsigned int __init get_xsave_compacted_size(void)
645 {
646         u64 mask = xfeatures_mask_independent();
647         unsigned int size;
648
649         if (!mask)
650                 return get_compacted_size();
651
652         /* Disable independent features. */
653         wrmsrl(MSR_IA32_XSS, xfeatures_mask_supervisor());
654
655         /*
656          * Ask the hardware what size is required of the buffer.
657          * This is the size required for the task->fpu buffer.
658          */
659         size = get_compacted_size();
660
661         /* Re-enable independent features so XSAVES will work on them again. */
662         wrmsrl(MSR_IA32_XSS, xfeatures_mask_supervisor() | mask);
663
664         return size;
665 }
666
667 static unsigned int __init get_xsave_size_user(void)
668 {
669         unsigned int eax, ebx, ecx, edx;
670         /*
671          * - CPUID function 0DH, sub-function 0:
672          *    EBX enumerates the size (in bytes) required by
673          *    the XSAVE instruction for an XSAVE area
674          *    containing all the *user* state components
675          *    corresponding to bits currently set in XCR0.
676          */
677         cpuid_count(XSTATE_CPUID, 0, &eax, &ebx, &ecx, &edx);
678         return ebx;
679 }
680
681 /*
682  * Will the runtime-enumerated 'xstate_size' fit in the init
683  * task's statically-allocated buffer?
684  */
685 static bool __init is_supported_xstate_size(unsigned int test_xstate_size)
686 {
687         if (test_xstate_size <= sizeof(init_fpstate.regs))
688                 return true;
689
690         pr_warn("x86/fpu: xstate buffer too small (%zu < %d), disabling xsave\n",
691                         sizeof(init_fpstate.regs), test_xstate_size);
692         return false;
693 }
694
695 static int __init init_xstate_size(void)
696 {
697         /* Recompute the context size for enabled features: */
698         unsigned int user_size, kernel_size, kernel_default_size;
699         bool compacted = cpu_feature_enabled(X86_FEATURE_XCOMPACTED);
700
701         /* Uncompacted user space size */
702         user_size = get_xsave_size_user();
703
704         /*
705          * XSAVES kernel size includes supervisor states and uses compacted
706          * format. XSAVEC uses compacted format, but does not save
707          * supervisor states.
708          *
709          * XSAVE[OPT] do not support supervisor states so kernel and user
710          * size is identical.
711          */
712         if (compacted)
713                 kernel_size = get_xsave_compacted_size();
714         else
715                 kernel_size = user_size;
716
717         kernel_default_size =
718                 xstate_calculate_size(fpu_kernel_cfg.default_features, compacted);
719
720         /* Ensure we have the space to store all default enabled features. */
721         if (!is_supported_xstate_size(kernel_default_size))
722                 return -EINVAL;
723
724         if (!paranoid_xstate_size_valid(kernel_size))
725                 return -EINVAL;
726
727         fpu_kernel_cfg.max_size = kernel_size;
728         fpu_user_cfg.max_size = user_size;
729
730         fpu_kernel_cfg.default_size = kernel_default_size;
731         fpu_user_cfg.default_size =
732                 xstate_calculate_size(fpu_user_cfg.default_features, false);
733
734         return 0;
735 }
736
737 /*
738  * We enabled the XSAVE hardware, but something went wrong and
739  * we can not use it.  Disable it.
740  */
741 static void __init fpu__init_disable_system_xstate(unsigned int legacy_size)
742 {
743         fpu_kernel_cfg.max_features = 0;
744         cr4_clear_bits(X86_CR4_OSXSAVE);
745         setup_clear_cpu_cap(X86_FEATURE_XSAVE);
746
747         /* Restore the legacy size.*/
748         fpu_kernel_cfg.max_size = legacy_size;
749         fpu_kernel_cfg.default_size = legacy_size;
750         fpu_user_cfg.max_size = legacy_size;
751         fpu_user_cfg.default_size = legacy_size;
752
753         /*
754          * Prevent enabling the static branch which enables writes to the
755          * XFD MSR.
756          */
757         init_fpstate.xfd = 0;
758
759         fpstate_reset(&current->thread.fpu);
760 }
761
762 /*
763  * Enable and initialize the xsave feature.
764  * Called once per system bootup.
765  */
766 void __init fpu__init_system_xstate(unsigned int legacy_size)
767 {
768         unsigned int eax, ebx, ecx, edx;
769         u64 xfeatures;
770         int err;
771         int i;
772
773         if (!boot_cpu_has(X86_FEATURE_FPU)) {
774                 pr_info("x86/fpu: No FPU detected\n");
775                 return;
776         }
777
778         if (!boot_cpu_has(X86_FEATURE_XSAVE)) {
779                 pr_info("x86/fpu: x87 FPU will use %s\n",
780                         boot_cpu_has(X86_FEATURE_FXSR) ? "FXSAVE" : "FSAVE");
781                 return;
782         }
783
784         if (boot_cpu_data.cpuid_level < XSTATE_CPUID) {
785                 WARN_ON_FPU(1);
786                 return;
787         }
788
789         /*
790          * Find user xstates supported by the processor.
791          */
792         cpuid_count(XSTATE_CPUID, 0, &eax, &ebx, &ecx, &edx);
793         fpu_kernel_cfg.max_features = eax + ((u64)edx << 32);
794
795         /*
796          * Find supervisor xstates supported by the processor.
797          */
798         cpuid_count(XSTATE_CPUID, 1, &eax, &ebx, &ecx, &edx);
799         fpu_kernel_cfg.max_features |= ecx + ((u64)edx << 32);
800
801         if ((fpu_kernel_cfg.max_features & XFEATURE_MASK_FPSSE) != XFEATURE_MASK_FPSSE) {
802                 /*
803                  * This indicates that something really unexpected happened
804                  * with the enumeration.  Disable XSAVE and try to continue
805                  * booting without it.  This is too early to BUG().
806                  */
807                 pr_err("x86/fpu: FP/SSE not present amongst the CPU's xstate features: 0x%llx.\n",
808                        fpu_kernel_cfg.max_features);
809                 goto out_disable;
810         }
811
812         /*
813          * Clear XSAVE features that are disabled in the normal CPUID.
814          */
815         for (i = 0; i < ARRAY_SIZE(xsave_cpuid_features); i++) {
816                 unsigned short cid = xsave_cpuid_features[i];
817
818                 /* Careful: X86_FEATURE_FPU is 0! */
819                 if ((i != XFEATURE_FP && !cid) || !boot_cpu_has(cid))
820                         fpu_kernel_cfg.max_features &= ~BIT_ULL(i);
821         }
822
823         if (!cpu_feature_enabled(X86_FEATURE_XFD))
824                 fpu_kernel_cfg.max_features &= ~XFEATURE_MASK_USER_DYNAMIC;
825
826         if (!cpu_feature_enabled(X86_FEATURE_XSAVES))
827                 fpu_kernel_cfg.max_features &= XFEATURE_MASK_USER_SUPPORTED;
828         else
829                 fpu_kernel_cfg.max_features &= XFEATURE_MASK_USER_SUPPORTED |
830                                         XFEATURE_MASK_SUPERVISOR_SUPPORTED;
831
832         fpu_user_cfg.max_features = fpu_kernel_cfg.max_features;
833         fpu_user_cfg.max_features &= XFEATURE_MASK_USER_SUPPORTED;
834
835         /* Clean out dynamic features from default */
836         fpu_kernel_cfg.default_features = fpu_kernel_cfg.max_features;
837         fpu_kernel_cfg.default_features &= ~XFEATURE_MASK_USER_DYNAMIC;
838
839         fpu_user_cfg.default_features = fpu_user_cfg.max_features;
840         fpu_user_cfg.default_features &= ~XFEATURE_MASK_USER_DYNAMIC;
841
842         /* Store it for paranoia check at the end */
843         xfeatures = fpu_kernel_cfg.max_features;
844
845         /*
846          * Initialize the default XFD state in initfp_state and enable the
847          * dynamic sizing mechanism if dynamic states are available.  The
848          * static key cannot be enabled here because this runs before
849          * jump_label_init(). This is delayed to an initcall.
850          */
851         init_fpstate.xfd = fpu_user_cfg.max_features & XFEATURE_MASK_USER_DYNAMIC;
852
853         /* Set up compaction feature bit */
854         if (cpu_feature_enabled(X86_FEATURE_XSAVEC) ||
855             cpu_feature_enabled(X86_FEATURE_XSAVES))
856                 setup_force_cpu_cap(X86_FEATURE_XCOMPACTED);
857
858         /* Enable xstate instructions to be able to continue with initialization: */
859         fpu__init_cpu_xstate();
860
861         /* Cache size, offset and flags for initialization */
862         setup_xstate_cache();
863
864         err = init_xstate_size();
865         if (err)
866                 goto out_disable;
867
868         /* Reset the state for the current task */
869         fpstate_reset(&current->thread.fpu);
870
871         /*
872          * Update info used for ptrace frames; use standard-format size and no
873          * supervisor xstates:
874          */
875         update_regset_xstate_info(fpu_user_cfg.max_size,
876                                   fpu_user_cfg.max_features);
877
878         setup_init_fpu_buf();
879
880         /*
881          * Paranoia check whether something in the setup modified the
882          * xfeatures mask.
883          */
884         if (xfeatures != fpu_kernel_cfg.max_features) {
885                 pr_err("x86/fpu: xfeatures modified from 0x%016llx to 0x%016llx during init, disabling XSAVE\n",
886                        xfeatures, fpu_kernel_cfg.max_features);
887                 goto out_disable;
888         }
889
890         print_xstate_offset_size();
891         pr_info("x86/fpu: Enabled xstate features 0x%llx, context size is %d bytes, using '%s' format.\n",
892                 fpu_kernel_cfg.max_features,
893                 fpu_kernel_cfg.max_size,
894                 boot_cpu_has(X86_FEATURE_XCOMPACTED) ? "compacted" : "standard");
895         return;
896
897 out_disable:
898         /* something went wrong, try to boot without any XSAVE support */
899         fpu__init_disable_system_xstate(legacy_size);
900 }
901
902 /*
903  * Restore minimal FPU state after suspend:
904  */
905 void fpu__resume_cpu(void)
906 {
907         /*
908          * Restore XCR0 on xsave capable CPUs:
909          */
910         if (cpu_feature_enabled(X86_FEATURE_XSAVE))
911                 xsetbv(XCR_XFEATURE_ENABLED_MASK, fpu_user_cfg.max_features);
912
913         /*
914          * Restore IA32_XSS. The same CPUID bit enumerates support
915          * of XSAVES and MSR_IA32_XSS.
916          */
917         if (cpu_feature_enabled(X86_FEATURE_XSAVES)) {
918                 wrmsrl(MSR_IA32_XSS, xfeatures_mask_supervisor()  |
919                                      xfeatures_mask_independent());
920         }
921
922         if (fpu_state_size_dynamic())
923                 wrmsrl(MSR_IA32_XFD, current->thread.fpu.fpstate->xfd);
924 }
925
926 /*
927  * Given an xstate feature nr, calculate where in the xsave
928  * buffer the state is.  Callers should ensure that the buffer
929  * is valid.
930  */
931 static void *__raw_xsave_addr(struct xregs_state *xsave, int xfeature_nr)
932 {
933         u64 xcomp_bv = xsave->header.xcomp_bv;
934
935         if (WARN_ON_ONCE(!xfeature_enabled(xfeature_nr)))
936                 return NULL;
937
938         if (cpu_feature_enabled(X86_FEATURE_XCOMPACTED)) {
939                 if (WARN_ON_ONCE(!(xcomp_bv & BIT_ULL(xfeature_nr))))
940                         return NULL;
941         }
942
943         return (void *)xsave + xfeature_get_offset(xcomp_bv, xfeature_nr);
944 }
945
946 /*
947  * Given the xsave area and a state inside, this function returns the
948  * address of the state.
949  *
950  * This is the API that is called to get xstate address in either
951  * standard format or compacted format of xsave area.
952  *
953  * Note that if there is no data for the field in the xsave buffer
954  * this will return NULL.
955  *
956  * Inputs:
957  *      xstate: the thread's storage area for all FPU data
958  *      xfeature_nr: state which is defined in xsave.h (e.g. XFEATURE_FP,
959  *      XFEATURE_SSE, etc...)
960  * Output:
961  *      address of the state in the xsave area, or NULL if the
962  *      field is not present in the xsave buffer.
963  */
964 void *get_xsave_addr(struct xregs_state *xsave, int xfeature_nr)
965 {
966         /*
967          * Do we even *have* xsave state?
968          */
969         if (!boot_cpu_has(X86_FEATURE_XSAVE))
970                 return NULL;
971
972         /*
973          * We should not ever be requesting features that we
974          * have not enabled.
975          */
976         if (WARN_ON_ONCE(!xfeature_enabled(xfeature_nr)))
977                 return NULL;
978
979         /*
980          * This assumes the last 'xsave*' instruction to
981          * have requested that 'xfeature_nr' be saved.
982          * If it did not, we might be seeing and old value
983          * of the field in the buffer.
984          *
985          * This can happen because the last 'xsave' did not
986          * request that this feature be saved (unlikely)
987          * or because the "init optimization" caused it
988          * to not be saved.
989          */
990         if (!(xsave->header.xfeatures & BIT_ULL(xfeature_nr)))
991                 return NULL;
992
993         return __raw_xsave_addr(xsave, xfeature_nr);
994 }
995
996 #ifdef CONFIG_ARCH_HAS_PKEYS
997
998 /*
999  * This will go out and modify PKRU register to set the access
1000  * rights for @pkey to @init_val.
1001  */
1002 int arch_set_user_pkey_access(struct task_struct *tsk, int pkey,
1003                               unsigned long init_val)
1004 {
1005         u32 old_pkru, new_pkru_bits = 0;
1006         int pkey_shift;
1007
1008         /*
1009          * This check implies XSAVE support.  OSPKE only gets
1010          * set if we enable XSAVE and we enable PKU in XCR0.
1011          */
1012         if (!cpu_feature_enabled(X86_FEATURE_OSPKE))
1013                 return -EINVAL;
1014
1015         /*
1016          * This code should only be called with valid 'pkey'
1017          * values originating from in-kernel users.  Complain
1018          * if a bad value is observed.
1019          */
1020         if (WARN_ON_ONCE(pkey >= arch_max_pkey()))
1021                 return -EINVAL;
1022
1023         /* Set the bits we need in PKRU:  */
1024         if (init_val & PKEY_DISABLE_ACCESS)
1025                 new_pkru_bits |= PKRU_AD_BIT;
1026         if (init_val & PKEY_DISABLE_WRITE)
1027                 new_pkru_bits |= PKRU_WD_BIT;
1028
1029         /* Shift the bits in to the correct place in PKRU for pkey: */
1030         pkey_shift = pkey * PKRU_BITS_PER_PKEY;
1031         new_pkru_bits <<= pkey_shift;
1032
1033         /* Get old PKRU and mask off any old bits in place: */
1034         old_pkru = read_pkru();
1035         old_pkru &= ~((PKRU_AD_BIT|PKRU_WD_BIT) << pkey_shift);
1036
1037         /* Write old part along with new part: */
1038         write_pkru(old_pkru | new_pkru_bits);
1039
1040         return 0;
1041 }
1042 #endif /* ! CONFIG_ARCH_HAS_PKEYS */
1043
1044 static void copy_feature(bool from_xstate, struct membuf *to, void *xstate,
1045                          void *init_xstate, unsigned int size)
1046 {
1047         membuf_write(to, from_xstate ? xstate : init_xstate, size);
1048 }
1049
1050 /**
1051  * __copy_xstate_to_uabi_buf - Copy kernel saved xstate to a UABI buffer
1052  * @to:         membuf descriptor
1053  * @fpstate:    The fpstate buffer from which to copy
1054  * @pkru_val:   The PKRU value to store in the PKRU component
1055  * @copy_mode:  The requested copy mode
1056  *
1057  * Converts from kernel XSAVE or XSAVES compacted format to UABI conforming
1058  * format, i.e. from the kernel internal hardware dependent storage format
1059  * to the requested @mode. UABI XSTATE is always uncompacted!
1060  *
1061  * It supports partial copy but @to.pos always starts from zero.
1062  */
1063 void __copy_xstate_to_uabi_buf(struct membuf to, struct fpstate *fpstate,
1064                                u32 pkru_val, enum xstate_copy_mode copy_mode)
1065 {
1066         const unsigned int off_mxcsr = offsetof(struct fxregs_state, mxcsr);
1067         struct xregs_state *xinit = &init_fpstate.regs.xsave;
1068         struct xregs_state *xsave = &fpstate->regs.xsave;
1069         struct xstate_header header;
1070         unsigned int zerofrom;
1071         u64 mask;
1072         int i;
1073
1074         memset(&header, 0, sizeof(header));
1075         header.xfeatures = xsave->header.xfeatures;
1076
1077         /* Mask out the feature bits depending on copy mode */
1078         switch (copy_mode) {
1079         case XSTATE_COPY_FP:
1080                 header.xfeatures &= XFEATURE_MASK_FP;
1081                 break;
1082
1083         case XSTATE_COPY_FX:
1084                 header.xfeatures &= XFEATURE_MASK_FP | XFEATURE_MASK_SSE;
1085                 break;
1086
1087         case XSTATE_COPY_XSAVE:
1088                 header.xfeatures &= fpstate->user_xfeatures;
1089                 break;
1090         }
1091
1092         /* Copy FP state up to MXCSR */
1093         copy_feature(header.xfeatures & XFEATURE_MASK_FP, &to, &xsave->i387,
1094                      &xinit->i387, off_mxcsr);
1095
1096         /* Copy MXCSR when SSE or YMM are set in the feature mask */
1097         copy_feature(header.xfeatures & (XFEATURE_MASK_SSE | XFEATURE_MASK_YMM),
1098                      &to, &xsave->i387.mxcsr, &xinit->i387.mxcsr,
1099                      MXCSR_AND_FLAGS_SIZE);
1100
1101         /* Copy the remaining FP state */
1102         copy_feature(header.xfeatures & XFEATURE_MASK_FP,
1103                      &to, &xsave->i387.st_space, &xinit->i387.st_space,
1104                      sizeof(xsave->i387.st_space));
1105
1106         /* Copy the SSE state - shared with YMM, but independently managed */
1107         copy_feature(header.xfeatures & XFEATURE_MASK_SSE,
1108                      &to, &xsave->i387.xmm_space, &xinit->i387.xmm_space,
1109                      sizeof(xsave->i387.xmm_space));
1110
1111         if (copy_mode != XSTATE_COPY_XSAVE)
1112                 goto out;
1113
1114         /* Zero the padding area */
1115         membuf_zero(&to, sizeof(xsave->i387.padding));
1116
1117         /* Copy xsave->i387.sw_reserved */
1118         membuf_write(&to, xstate_fx_sw_bytes, sizeof(xsave->i387.sw_reserved));
1119
1120         /* Copy the user space relevant state of @xsave->header */
1121         membuf_write(&to, &header, sizeof(header));
1122
1123         zerofrom = offsetof(struct xregs_state, extended_state_area);
1124
1125         /*
1126          * The ptrace buffer is in non-compacted XSAVE format.  In
1127          * non-compacted format disabled features still occupy state space,
1128          * but there is no state to copy from in the compacted
1129          * init_fpstate. The gap tracking will zero these states.
1130          */
1131         mask = fpstate->user_xfeatures;
1132
1133         for_each_extended_xfeature(i, mask) {
1134                 /*
1135                  * If there was a feature or alignment gap, zero the space
1136                  * in the destination buffer.
1137                  */
1138                 if (zerofrom < xstate_offsets[i])
1139                         membuf_zero(&to, xstate_offsets[i] - zerofrom);
1140
1141                 if (i == XFEATURE_PKRU) {
1142                         struct pkru_state pkru = {0};
1143                         /*
1144                          * PKRU is not necessarily up to date in the
1145                          * XSAVE buffer. Use the provided value.
1146                          */
1147                         pkru.pkru = pkru_val;
1148                         membuf_write(&to, &pkru, sizeof(pkru));
1149                 } else {
1150                         copy_feature(header.xfeatures & BIT_ULL(i), &to,
1151                                      __raw_xsave_addr(xsave, i),
1152                                      __raw_xsave_addr(xinit, i),
1153                                      xstate_sizes[i]);
1154                 }
1155                 /*
1156                  * Keep track of the last copied state in the non-compacted
1157                  * target buffer for gap zeroing.
1158                  */
1159                 zerofrom = xstate_offsets[i] + xstate_sizes[i];
1160         }
1161
1162 out:
1163         if (to.left)
1164                 membuf_zero(&to, to.left);
1165 }
1166
1167 /**
1168  * copy_xstate_to_uabi_buf - Copy kernel saved xstate to a UABI buffer
1169  * @to:         membuf descriptor
1170  * @tsk:        The task from which to copy the saved xstate
1171  * @copy_mode:  The requested copy mode
1172  *
1173  * Converts from kernel XSAVE or XSAVES compacted format to UABI conforming
1174  * format, i.e. from the kernel internal hardware dependent storage format
1175  * to the requested @mode. UABI XSTATE is always uncompacted!
1176  *
1177  * It supports partial copy but @to.pos always starts from zero.
1178  */
1179 void copy_xstate_to_uabi_buf(struct membuf to, struct task_struct *tsk,
1180                              enum xstate_copy_mode copy_mode)
1181 {
1182         __copy_xstate_to_uabi_buf(to, tsk->thread.fpu.fpstate,
1183                                   tsk->thread.pkru, copy_mode);
1184 }
1185
1186 static int copy_from_buffer(void *dst, unsigned int offset, unsigned int size,
1187                             const void *kbuf, const void __user *ubuf)
1188 {
1189         if (kbuf) {
1190                 memcpy(dst, kbuf + offset, size);
1191         } else {
1192                 if (copy_from_user(dst, ubuf + offset, size))
1193                         return -EFAULT;
1194         }
1195         return 0;
1196 }
1197
1198
1199 static int copy_uabi_to_xstate(struct fpstate *fpstate, const void *kbuf,
1200                                const void __user *ubuf)
1201 {
1202         struct xregs_state *xsave = &fpstate->regs.xsave;
1203         unsigned int offset, size;
1204         struct xstate_header hdr;
1205         u64 mask;
1206         int i;
1207
1208         offset = offsetof(struct xregs_state, header);
1209         if (copy_from_buffer(&hdr, offset, sizeof(hdr), kbuf, ubuf))
1210                 return -EFAULT;
1211
1212         if (validate_user_xstate_header(&hdr, fpstate))
1213                 return -EINVAL;
1214
1215         /* Validate MXCSR when any of the related features is in use */
1216         mask = XFEATURE_MASK_FP | XFEATURE_MASK_SSE | XFEATURE_MASK_YMM;
1217         if (hdr.xfeatures & mask) {
1218                 u32 mxcsr[2];
1219
1220                 offset = offsetof(struct fxregs_state, mxcsr);
1221                 if (copy_from_buffer(mxcsr, offset, sizeof(mxcsr), kbuf, ubuf))
1222                         return -EFAULT;
1223
1224                 /* Reserved bits in MXCSR must be zero. */
1225                 if (mxcsr[0] & ~mxcsr_feature_mask)
1226                         return -EINVAL;
1227
1228                 /* SSE and YMM require MXCSR even when FP is not in use. */
1229                 if (!(hdr.xfeatures & XFEATURE_MASK_FP)) {
1230                         xsave->i387.mxcsr = mxcsr[0];
1231                         xsave->i387.mxcsr_mask = mxcsr[1];
1232                 }
1233         }
1234
1235         for (i = 0; i < XFEATURE_MAX; i++) {
1236                 u64 mask = ((u64)1 << i);
1237
1238                 if (hdr.xfeatures & mask) {
1239                         void *dst = __raw_xsave_addr(xsave, i);
1240
1241                         offset = xstate_offsets[i];
1242                         size = xstate_sizes[i];
1243
1244                         if (copy_from_buffer(dst, offset, size, kbuf, ubuf))
1245                                 return -EFAULT;
1246                 }
1247         }
1248
1249         /*
1250          * The state that came in from userspace was user-state only.
1251          * Mask all the user states out of 'xfeatures':
1252          */
1253         xsave->header.xfeatures &= XFEATURE_MASK_SUPERVISOR_ALL;
1254
1255         /*
1256          * Add back in the features that came in from userspace:
1257          */
1258         xsave->header.xfeatures |= hdr.xfeatures;
1259
1260         return 0;
1261 }
1262
1263 /*
1264  * Convert from a ptrace standard-format kernel buffer to kernel XSAVE[S]
1265  * format and copy to the target thread. Used by ptrace and KVM.
1266  */
1267 int copy_uabi_from_kernel_to_xstate(struct fpstate *fpstate, const void *kbuf)
1268 {
1269         return copy_uabi_to_xstate(fpstate, kbuf, NULL);
1270 }
1271
1272 /*
1273  * Convert from a sigreturn standard-format user-space buffer to kernel
1274  * XSAVE[S] format and copy to the target thread. This is called from the
1275  * sigreturn() and rt_sigreturn() system calls.
1276  */
1277 int copy_sigframe_from_user_to_xstate(struct fpstate *fpstate,
1278                                       const void __user *ubuf)
1279 {
1280         return copy_uabi_to_xstate(fpstate, NULL, ubuf);
1281 }
1282
1283 static bool validate_independent_components(u64 mask)
1284 {
1285         u64 xchk;
1286
1287         if (WARN_ON_FPU(!cpu_feature_enabled(X86_FEATURE_XSAVES)))
1288                 return false;
1289
1290         xchk = ~xfeatures_mask_independent();
1291
1292         if (WARN_ON_ONCE(!mask || mask & xchk))
1293                 return false;
1294
1295         return true;
1296 }
1297
1298 /**
1299  * xsaves - Save selected components to a kernel xstate buffer
1300  * @xstate:     Pointer to the buffer
1301  * @mask:       Feature mask to select the components to save
1302  *
1303  * The @xstate buffer must be 64 byte aligned and correctly initialized as
1304  * XSAVES does not write the full xstate header. Before first use the
1305  * buffer should be zeroed otherwise a consecutive XRSTORS from that buffer
1306  * can #GP.
1307  *
1308  * The feature mask must be a subset of the independent features.
1309  */
1310 void xsaves(struct xregs_state *xstate, u64 mask)
1311 {
1312         int err;
1313
1314         if (!validate_independent_components(mask))
1315                 return;
1316
1317         XSTATE_OP(XSAVES, xstate, (u32)mask, (u32)(mask >> 32), err);
1318         WARN_ON_ONCE(err);
1319 }
1320
1321 /**
1322  * xrstors - Restore selected components from a kernel xstate buffer
1323  * @xstate:     Pointer to the buffer
1324  * @mask:       Feature mask to select the components to restore
1325  *
1326  * The @xstate buffer must be 64 byte aligned and correctly initialized
1327  * otherwise XRSTORS from that buffer can #GP.
1328  *
1329  * Proper usage is to restore the state which was saved with
1330  * xsaves() into @xstate.
1331  *
1332  * The feature mask must be a subset of the independent features.
1333  */
1334 void xrstors(struct xregs_state *xstate, u64 mask)
1335 {
1336         int err;
1337
1338         if (!validate_independent_components(mask))
1339                 return;
1340
1341         XSTATE_OP(XRSTORS, xstate, (u32)mask, (u32)(mask >> 32), err);
1342         WARN_ON_ONCE(err);
1343 }
1344
1345 #if IS_ENABLED(CONFIG_KVM)
1346 void fpstate_clear_xstate_component(struct fpstate *fps, unsigned int xfeature)
1347 {
1348         void *addr = get_xsave_addr(&fps->regs.xsave, xfeature);
1349
1350         if (addr)
1351                 memset(addr, 0, xstate_sizes[xfeature]);
1352 }
1353 EXPORT_SYMBOL_GPL(fpstate_clear_xstate_component);
1354 #endif
1355
1356 #ifdef CONFIG_X86_64
1357
1358 #ifdef CONFIG_X86_DEBUG_FPU
1359 /*
1360  * Ensure that a subsequent XSAVE* or XRSTOR* instruction with RFBM=@mask
1361  * can safely operate on the @fpstate buffer.
1362  */
1363 static bool xstate_op_valid(struct fpstate *fpstate, u64 mask, bool rstor)
1364 {
1365         u64 xfd = __this_cpu_read(xfd_state);
1366
1367         if (fpstate->xfd == xfd)
1368                 return true;
1369
1370          /*
1371           * The XFD MSR does not match fpstate->xfd. That's invalid when
1372           * the passed in fpstate is current's fpstate.
1373           */
1374         if (fpstate->xfd == current->thread.fpu.fpstate->xfd)
1375                 return false;
1376
1377         /*
1378          * XRSTOR(S) from init_fpstate are always correct as it will just
1379          * bring all components into init state and not read from the
1380          * buffer. XSAVE(S) raises #PF after init.
1381          */
1382         if (fpstate == &init_fpstate)
1383                 return rstor;
1384
1385         /*
1386          * XSAVE(S): clone(), fpu_swap_kvm_fpu()
1387          * XRSTORS(S): fpu_swap_kvm_fpu()
1388          */
1389
1390         /*
1391          * No XSAVE/XRSTOR instructions (except XSAVE itself) touch
1392          * the buffer area for XFD-disabled state components.
1393          */
1394         mask &= ~xfd;
1395
1396         /*
1397          * Remove features which are valid in fpstate. They
1398          * have space allocated in fpstate.
1399          */
1400         mask &= ~fpstate->xfeatures;
1401
1402         /*
1403          * Any remaining state components in 'mask' might be written
1404          * by XSAVE/XRSTOR. Fail validation it found.
1405          */
1406         return !mask;
1407 }
1408
1409 void xfd_validate_state(struct fpstate *fpstate, u64 mask, bool rstor)
1410 {
1411         WARN_ON_ONCE(!xstate_op_valid(fpstate, mask, rstor));
1412 }
1413 #endif /* CONFIG_X86_DEBUG_FPU */
1414
1415 static int __init xfd_update_static_branch(void)
1416 {
1417         /*
1418          * If init_fpstate.xfd has bits set then dynamic features are
1419          * available and the dynamic sizing must be enabled.
1420          */
1421         if (init_fpstate.xfd)
1422                 static_branch_enable(&__fpu_state_size_dynamic);
1423         return 0;
1424 }
1425 arch_initcall(xfd_update_static_branch)
1426
1427 void fpstate_free(struct fpu *fpu)
1428 {
1429         if (fpu->fpstate && fpu->fpstate != &fpu->__fpstate)
1430                 vfree(fpu->fpstate);
1431 }
1432
1433 /**
1434  * fpstate_realloc - Reallocate struct fpstate for the requested new features
1435  *
1436  * @xfeatures:  A bitmap of xstate features which extend the enabled features
1437  *              of that task
1438  * @ksize:      The required size for the kernel buffer
1439  * @usize:      The required size for user space buffers
1440  * @guest_fpu:  Pointer to a guest FPU container. NULL for host allocations
1441  *
1442  * Note vs. vmalloc(): If the task with a vzalloc()-allocated buffer
1443  * terminates quickly, vfree()-induced IPIs may be a concern, but tasks
1444  * with large states are likely to live longer.
1445  *
1446  * Returns: 0 on success, -ENOMEM on allocation error.
1447  */
1448 static int fpstate_realloc(u64 xfeatures, unsigned int ksize,
1449                            unsigned int usize, struct fpu_guest *guest_fpu)
1450 {
1451         struct fpu *fpu = &current->thread.fpu;
1452         struct fpstate *curfps, *newfps = NULL;
1453         unsigned int fpsize;
1454         bool in_use;
1455
1456         fpsize = ksize + ALIGN(offsetof(struct fpstate, regs), 64);
1457
1458         newfps = vzalloc(fpsize);
1459         if (!newfps)
1460                 return -ENOMEM;
1461         newfps->size = ksize;
1462         newfps->user_size = usize;
1463         newfps->is_valloc = true;
1464
1465         /*
1466          * When a guest FPU is supplied, use @guest_fpu->fpstate
1467          * as reference independent whether it is in use or not.
1468          */
1469         curfps = guest_fpu ? guest_fpu->fpstate : fpu->fpstate;
1470
1471         /* Determine whether @curfps is the active fpstate */
1472         in_use = fpu->fpstate == curfps;
1473
1474         if (guest_fpu) {
1475                 newfps->is_guest = true;
1476                 newfps->is_confidential = curfps->is_confidential;
1477                 newfps->in_use = curfps->in_use;
1478                 guest_fpu->xfeatures |= xfeatures;
1479                 guest_fpu->uabi_size = usize;
1480         }
1481
1482         fpregs_lock();
1483         /*
1484          * If @curfps is in use, ensure that the current state is in the
1485          * registers before swapping fpstate as that might invalidate it
1486          * due to layout changes.
1487          */
1488         if (in_use && test_thread_flag(TIF_NEED_FPU_LOAD))
1489                 fpregs_restore_userregs();
1490
1491         newfps->xfeatures = curfps->xfeatures | xfeatures;
1492
1493         if (!guest_fpu)
1494                 newfps->user_xfeatures = curfps->user_xfeatures | xfeatures;
1495
1496         newfps->xfd = curfps->xfd & ~xfeatures;
1497
1498         /* Do the final updates within the locked region */
1499         xstate_init_xcomp_bv(&newfps->regs.xsave, newfps->xfeatures);
1500
1501         if (guest_fpu) {
1502                 guest_fpu->fpstate = newfps;
1503                 /* If curfps is active, update the FPU fpstate pointer */
1504                 if (in_use)
1505                         fpu->fpstate = newfps;
1506         } else {
1507                 fpu->fpstate = newfps;
1508         }
1509
1510         if (in_use)
1511                 xfd_update_state(fpu->fpstate);
1512         fpregs_unlock();
1513
1514         /* Only free valloc'ed state */
1515         if (curfps && curfps->is_valloc)
1516                 vfree(curfps);
1517
1518         return 0;
1519 }
1520
1521 static int validate_sigaltstack(unsigned int usize)
1522 {
1523         struct task_struct *thread, *leader = current->group_leader;
1524         unsigned long framesize = get_sigframe_size();
1525
1526         lockdep_assert_held(&current->sighand->siglock);
1527
1528         /* get_sigframe_size() is based on fpu_user_cfg.max_size */
1529         framesize -= fpu_user_cfg.max_size;
1530         framesize += usize;
1531         for_each_thread(leader, thread) {
1532                 if (thread->sas_ss_size && thread->sas_ss_size < framesize)
1533                         return -ENOSPC;
1534         }
1535         return 0;
1536 }
1537
1538 static int __xstate_request_perm(u64 permitted, u64 requested, bool guest)
1539 {
1540         /*
1541          * This deliberately does not exclude !XSAVES as we still might
1542          * decide to optionally context switch XCR0 or talk the silicon
1543          * vendors into extending XFD for the pre AMX states, especially
1544          * AVX512.
1545          */
1546         bool compacted = cpu_feature_enabled(X86_FEATURE_XCOMPACTED);
1547         struct fpu *fpu = &current->group_leader->thread.fpu;
1548         struct fpu_state_perm *perm;
1549         unsigned int ksize, usize;
1550         u64 mask;
1551         int ret = 0;
1552
1553         /* Check whether fully enabled */
1554         if ((permitted & requested) == requested)
1555                 return 0;
1556
1557         /* Calculate the resulting kernel state size */
1558         mask = permitted | requested;
1559         /* Take supervisor states into account on the host */
1560         if (!guest)
1561                 mask |= xfeatures_mask_supervisor();
1562         ksize = xstate_calculate_size(mask, compacted);
1563
1564         /* Calculate the resulting user state size */
1565         mask &= XFEATURE_MASK_USER_SUPPORTED;
1566         usize = xstate_calculate_size(mask, false);
1567
1568         if (!guest) {
1569                 ret = validate_sigaltstack(usize);
1570                 if (ret)
1571                         return ret;
1572         }
1573
1574         perm = guest ? &fpu->guest_perm : &fpu->perm;
1575         /* Pairs with the READ_ONCE() in xstate_get_group_perm() */
1576         WRITE_ONCE(perm->__state_perm, mask);
1577         /* Protected by sighand lock */
1578         perm->__state_size = ksize;
1579         perm->__user_state_size = usize;
1580         return ret;
1581 }
1582
1583 /*
1584  * Permissions array to map facilities with more than one component
1585  */
1586 static const u64 xstate_prctl_req[XFEATURE_MAX] = {
1587         [XFEATURE_XTILE_DATA] = XFEATURE_MASK_XTILE_DATA,
1588 };
1589
1590 static int xstate_request_perm(unsigned long idx, bool guest)
1591 {
1592         u64 permitted, requested;
1593         int ret;
1594
1595         if (idx >= XFEATURE_MAX)
1596                 return -EINVAL;
1597
1598         /*
1599          * Look up the facility mask which can require more than
1600          * one xstate component.
1601          */
1602         idx = array_index_nospec(idx, ARRAY_SIZE(xstate_prctl_req));
1603         requested = xstate_prctl_req[idx];
1604         if (!requested)
1605                 return -EOPNOTSUPP;
1606
1607         if ((fpu_user_cfg.max_features & requested) != requested)
1608                 return -EOPNOTSUPP;
1609
1610         /* Lockless quick check */
1611         permitted = xstate_get_group_perm(guest);
1612         if ((permitted & requested) == requested)
1613                 return 0;
1614
1615         /* Protect against concurrent modifications */
1616         spin_lock_irq(&current->sighand->siglock);
1617         permitted = xstate_get_group_perm(guest);
1618
1619         /* First vCPU allocation locks the permissions. */
1620         if (guest && (permitted & FPU_GUEST_PERM_LOCKED))
1621                 ret = -EBUSY;
1622         else
1623                 ret = __xstate_request_perm(permitted, requested, guest);
1624         spin_unlock_irq(&current->sighand->siglock);
1625         return ret;
1626 }
1627
1628 int __xfd_enable_feature(u64 xfd_err, struct fpu_guest *guest_fpu)
1629 {
1630         u64 xfd_event = xfd_err & XFEATURE_MASK_USER_DYNAMIC;
1631         struct fpu_state_perm *perm;
1632         unsigned int ksize, usize;
1633         struct fpu *fpu;
1634
1635         if (!xfd_event) {
1636                 if (!guest_fpu)
1637                         pr_err_once("XFD: Invalid xfd error: %016llx\n", xfd_err);
1638                 return 0;
1639         }
1640
1641         /* Protect against concurrent modifications */
1642         spin_lock_irq(&current->sighand->siglock);
1643
1644         /* If not permitted let it die */
1645         if ((xstate_get_group_perm(!!guest_fpu) & xfd_event) != xfd_event) {
1646                 spin_unlock_irq(&current->sighand->siglock);
1647                 return -EPERM;
1648         }
1649
1650         fpu = &current->group_leader->thread.fpu;
1651         perm = guest_fpu ? &fpu->guest_perm : &fpu->perm;
1652         ksize = perm->__state_size;
1653         usize = perm->__user_state_size;
1654
1655         /*
1656          * The feature is permitted. State size is sufficient.  Dropping
1657          * the lock is safe here even if more features are added from
1658          * another task, the retrieved buffer sizes are valid for the
1659          * currently requested feature(s).
1660          */
1661         spin_unlock_irq(&current->sighand->siglock);
1662
1663         /*
1664          * Try to allocate a new fpstate. If that fails there is no way
1665          * out.
1666          */
1667         if (fpstate_realloc(xfd_event, ksize, usize, guest_fpu))
1668                 return -EFAULT;
1669         return 0;
1670 }
1671
1672 int xfd_enable_feature(u64 xfd_err)
1673 {
1674         return __xfd_enable_feature(xfd_err, NULL);
1675 }
1676
1677 #else /* CONFIG_X86_64 */
1678 static inline int xstate_request_perm(unsigned long idx, bool guest)
1679 {
1680         return -EPERM;
1681 }
1682 #endif  /* !CONFIG_X86_64 */
1683
1684 u64 xstate_get_guest_group_perm(void)
1685 {
1686         return xstate_get_group_perm(true);
1687 }
1688 EXPORT_SYMBOL_GPL(xstate_get_guest_group_perm);
1689
1690 /**
1691  * fpu_xstate_prctl - xstate permission operations
1692  * @tsk:        Redundant pointer to current
1693  * @option:     A subfunction of arch_prctl()
1694  * @arg2:       option argument
1695  * Return:      0 if successful; otherwise, an error code
1696  *
1697  * Option arguments:
1698  *
1699  * ARCH_GET_XCOMP_SUPP: Pointer to user space u64 to store the info
1700  * ARCH_GET_XCOMP_PERM: Pointer to user space u64 to store the info
1701  * ARCH_REQ_XCOMP_PERM: Facility number requested
1702  *
1703  * For facilities which require more than one XSTATE component, the request
1704  * must be the highest state component number related to that facility,
1705  * e.g. for AMX which requires XFEATURE_XTILE_CFG(17) and
1706  * XFEATURE_XTILE_DATA(18) this would be XFEATURE_XTILE_DATA(18).
1707  */
1708 long fpu_xstate_prctl(struct task_struct *tsk, int option, unsigned long arg2)
1709 {
1710         u64 __user *uptr = (u64 __user *)arg2;
1711         u64 permitted, supported;
1712         unsigned long idx = arg2;
1713         bool guest = false;
1714
1715         if (tsk != current)
1716                 return -EPERM;
1717
1718         switch (option) {
1719         case ARCH_GET_XCOMP_SUPP:
1720                 supported = fpu_user_cfg.max_features | fpu_user_cfg.legacy_features;
1721                 return put_user(supported, uptr);
1722
1723         case ARCH_GET_XCOMP_PERM:
1724                 /*
1725                  * Lockless snapshot as it can also change right after the
1726                  * dropping the lock.
1727                  */
1728                 permitted = xstate_get_host_group_perm();
1729                 permitted &= XFEATURE_MASK_USER_SUPPORTED;
1730                 return put_user(permitted, uptr);
1731
1732         case ARCH_GET_XCOMP_GUEST_PERM:
1733                 permitted = xstate_get_guest_group_perm();
1734                 permitted &= XFEATURE_MASK_USER_SUPPORTED;
1735                 return put_user(permitted, uptr);
1736
1737         case ARCH_REQ_XCOMP_GUEST_PERM:
1738                 guest = true;
1739                 fallthrough;
1740
1741         case ARCH_REQ_XCOMP_PERM:
1742                 if (!IS_ENABLED(CONFIG_X86_64))
1743                         return -EOPNOTSUPP;
1744
1745                 return xstate_request_perm(idx, guest);
1746
1747         default:
1748                 return -EINVAL;
1749         }
1750 }
1751
1752 #ifdef CONFIG_PROC_PID_ARCH_STATUS
1753 /*
1754  * Report the amount of time elapsed in millisecond since last AVX512
1755  * use in the task.
1756  */
1757 static void avx512_status(struct seq_file *m, struct task_struct *task)
1758 {
1759         unsigned long timestamp = READ_ONCE(task->thread.fpu.avx512_timestamp);
1760         long delta;
1761
1762         if (!timestamp) {
1763                 /*
1764                  * Report -1 if no AVX512 usage
1765                  */
1766                 delta = -1;
1767         } else {
1768                 delta = (long)(jiffies - timestamp);
1769                 /*
1770                  * Cap to LONG_MAX if time difference > LONG_MAX
1771                  */
1772                 if (delta < 0)
1773                         delta = LONG_MAX;
1774                 delta = jiffies_to_msecs(delta);
1775         }
1776
1777         seq_put_decimal_ll(m, "AVX512_elapsed_ms:\t", delta);
1778         seq_putc(m, '\n');
1779 }
1780
1781 /*
1782  * Report architecture specific information
1783  */
1784 int proc_pid_arch_status(struct seq_file *m, struct pid_namespace *ns,
1785                         struct pid *pid, struct task_struct *task)
1786 {
1787         /*
1788          * Report AVX512 state if the processor and build option supported.
1789          */
1790         if (cpu_feature_enabled(X86_FEATURE_AVX512F))
1791                 avx512_status(m, task);
1792
1793         return 0;
1794 }
1795 #endif /* CONFIG_PROC_PID_ARCH_STATUS */