1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * FPU signal frame handling routines. 4 */ 5 6 #include <linux/compat.h> 7 #include <linux/cpu.h> 8 #include <linux/pagemap.h> 9 10 #include <asm/fpu/internal.h> 11 #include <asm/fpu/signal.h> 12 #include <asm/fpu/regset.h> 13 #include <asm/fpu/xstate.h> 14 15 #include <asm/sigframe.h> 16 #include <asm/trace/fpu.h> 17 18 static struct _fpx_sw_bytes fx_sw_reserved, fx_sw_reserved_ia32; 19 20 /* 21 * Check for the presence of extended state information in the 22 * user fpstate pointer in the sigcontext. 23 */ 24 static inline int check_for_xstate(struct fxregs_state __user *buf, 25 void __user *fpstate, 26 struct _fpx_sw_bytes *fx_sw) 27 { 28 int min_xstate_size = sizeof(struct fxregs_state) + 29 sizeof(struct xstate_header); 30 unsigned int magic2; 31 32 if (__copy_from_user(fx_sw, &buf->sw_reserved[0], sizeof(*fx_sw))) 33 return -1; 34 35 /* Check for the first magic field and other error scenarios. */ 36 if (fx_sw->magic1 != FP_XSTATE_MAGIC1 || 37 fx_sw->xstate_size < min_xstate_size || 38 fx_sw->xstate_size > fpu_user_xstate_size || 39 fx_sw->xstate_size > fx_sw->extended_size) 40 return -1; 41 42 /* 43 * Check for the presence of second magic word at the end of memory 44 * layout. This detects the case where the user just copied the legacy 45 * fpstate layout with out copying the extended state information 46 * in the memory layout. 47 */ 48 if (__get_user(magic2, (__u32 __user *)(fpstate + fx_sw->xstate_size)) 49 || magic2 != FP_XSTATE_MAGIC2) 50 return -1; 51 52 return 0; 53 } 54 55 /* 56 * Signal frame handlers. 57 */ 58 static inline int save_fsave_header(struct task_struct *tsk, void __user *buf) 59 { 60 if (use_fxsr()) { 61 struct xregs_state *xsave = &tsk->thread.fpu.state.xsave; 62 struct user_i387_ia32_struct env; 63 struct _fpstate_32 __user *fp = buf; 64 65 fpregs_lock(); 66 if (!test_thread_flag(TIF_NEED_FPU_LOAD)) 67 copy_fxregs_to_kernel(&tsk->thread.fpu); 68 fpregs_unlock(); 69 70 convert_from_fxsr(&env, tsk); 71 72 if (__copy_to_user(buf, &env, sizeof(env)) || 73 __put_user(xsave->i387.swd, &fp->status) || 74 __put_user(X86_FXSR_MAGIC, &fp->magic)) 75 return -1; 76 } else { 77 struct fregs_state __user *fp = buf; 78 u32 swd; 79 if (__get_user(swd, &fp->swd) || __put_user(swd, &fp->status)) 80 return -1; 81 } 82 83 return 0; 84 } 85 86 static inline int save_xstate_epilog(void __user *buf, int ia32_frame) 87 { 88 struct xregs_state __user *x = buf; 89 struct _fpx_sw_bytes *sw_bytes; 90 u32 xfeatures; 91 int err; 92 93 /* Setup the bytes not touched by the [f]xsave and reserved for SW. */ 94 sw_bytes = ia32_frame ? &fx_sw_reserved_ia32 : &fx_sw_reserved; 95 err = __copy_to_user(&x->i387.sw_reserved, sw_bytes, sizeof(*sw_bytes)); 96 97 if (!use_xsave()) 98 return err; 99 100 err |= __put_user(FP_XSTATE_MAGIC2, 101 (__u32 __user *)(buf + fpu_user_xstate_size)); 102 103 /* 104 * Read the xfeatures which we copied (directly from the cpu or 105 * from the state in task struct) to the user buffers. 106 */ 107 err |= __get_user(xfeatures, (__u32 __user *)&x->header.xfeatures); 108 109 /* 110 * For legacy compatible, we always set FP/SSE bits in the bit 111 * vector while saving the state to the user context. This will 112 * enable us capturing any changes(during sigreturn) to 113 * the FP/SSE bits by the legacy applications which don't touch 114 * xfeatures in the xsave header. 115 * 116 * xsave aware apps can change the xfeatures in the xsave 117 * header as well as change any contents in the memory layout. 118 * xrestore as part of sigreturn will capture all the changes. 119 */ 120 xfeatures |= XFEATURE_MASK_FPSSE; 121 122 err |= __put_user(xfeatures, (__u32 __user *)&x->header.xfeatures); 123 124 return err; 125 } 126 127 static inline int copy_fpregs_to_sigframe(struct xregs_state __user *buf) 128 { 129 int err; 130 131 if (use_xsave()) 132 err = copy_xregs_to_user(buf); 133 else if (use_fxsr()) 134 err = copy_fxregs_to_user((struct fxregs_state __user *) buf); 135 else 136 err = copy_fregs_to_user((struct fregs_state __user *) buf); 137 138 if (unlikely(err) && __clear_user(buf, fpu_user_xstate_size)) 139 err = -EFAULT; 140 return err; 141 } 142 143 /* 144 * Save the fpu, extended register state to the user signal frame. 145 * 146 * 'buf_fx' is the 64-byte aligned pointer at which the [f|fx|x]save 147 * state is copied. 148 * 'buf' points to the 'buf_fx' or to the fsave header followed by 'buf_fx'. 149 * 150 * buf == buf_fx for 64-bit frames and 32-bit fsave frame. 151 * buf != buf_fx for 32-bit frames with fxstate. 152 * 153 * Try to save it directly to the user frame with disabled page fault handler. 154 * If this fails then do the slow path where the FPU state is first saved to 155 * task's fpu->state and then copy it to the user frame pointed to by the 156 * aligned pointer 'buf_fx'. 157 * 158 * If this is a 32-bit frame with fxstate, put a fsave header before 159 * the aligned state at 'buf_fx'. 160 * 161 * For [f]xsave state, update the SW reserved fields in the [f]xsave frame 162 * indicating the absence/presence of the extended state to the user. 163 */ 164 int copy_fpstate_to_sigframe(void __user *buf, void __user *buf_fx, int size) 165 { 166 struct task_struct *tsk = current; 167 int ia32_fxstate = (buf != buf_fx); 168 int ret; 169 170 ia32_fxstate &= (IS_ENABLED(CONFIG_X86_32) || 171 IS_ENABLED(CONFIG_IA32_EMULATION)); 172 173 if (!static_cpu_has(X86_FEATURE_FPU)) { 174 struct user_i387_ia32_struct fp; 175 fpregs_soft_get(current, NULL, (struct membuf){.p = &fp, 176 .left = sizeof(fp)}); 177 return copy_to_user(buf, &fp, sizeof(fp)) ? -EFAULT : 0; 178 } 179 180 if (!access_ok(buf, size)) 181 return -EACCES; 182 retry: 183 /* 184 * Load the FPU registers if they are not valid for the current task. 185 * With a valid FPU state we can attempt to save the state directly to 186 * userland's stack frame which will likely succeed. If it does not, 187 * resolve the fault in the user memory and try again. 188 */ 189 fpregs_lock(); 190 if (test_thread_flag(TIF_NEED_FPU_LOAD)) 191 __fpregs_load_activate(); 192 193 pagefault_disable(); 194 ret = copy_fpregs_to_sigframe(buf_fx); 195 pagefault_enable(); 196 fpregs_unlock(); 197 198 if (ret) { 199 if (!fault_in_pages_writeable(buf_fx, fpu_user_xstate_size)) 200 goto retry; 201 return -EFAULT; 202 } 203 204 /* Save the fsave header for the 32-bit frames. */ 205 if ((ia32_fxstate || !use_fxsr()) && save_fsave_header(tsk, buf)) 206 return -1; 207 208 if (use_fxsr() && save_xstate_epilog(buf_fx, ia32_fxstate)) 209 return -1; 210 211 return 0; 212 } 213 214 static inline void 215 sanitize_restored_user_xstate(union fpregs_state *state, 216 struct user_i387_ia32_struct *ia32_env, 217 u64 user_xfeatures, int fx_only) 218 { 219 struct xregs_state *xsave = &state->xsave; 220 struct xstate_header *header = &xsave->header; 221 222 if (use_xsave()) { 223 /* 224 * Clear all feature bits which are not set in 225 * user_xfeatures and clear all extended features 226 * for fx_only mode. 227 */ 228 u64 mask = fx_only ? XFEATURE_MASK_FPSSE : user_xfeatures; 229 230 /* 231 * Supervisor state has to be preserved. The sigframe 232 * restore can only modify user features, i.e. @mask 233 * cannot contain them. 234 */ 235 header->xfeatures &= mask | xfeatures_mask_supervisor(); 236 } 237 238 if (use_fxsr()) { 239 /* 240 * mscsr reserved bits must be masked to zero for security 241 * reasons. 242 */ 243 xsave->i387.mxcsr &= mxcsr_feature_mask; 244 245 if (ia32_env) 246 convert_to_fxsr(&state->fxsave, ia32_env); 247 } 248 } 249 250 /* 251 * Restore the extended state if present. Otherwise, restore the FP/SSE state. 252 */ 253 static int copy_user_to_fpregs_zeroing(void __user *buf, u64 xbv, int fx_only) 254 { 255 u64 init_bv; 256 int r; 257 258 if (use_xsave()) { 259 if (fx_only) { 260 init_bv = xfeatures_mask_user() & ~XFEATURE_MASK_FPSSE; 261 262 r = copy_user_to_fxregs(buf); 263 if (!r) 264 copy_kernel_to_xregs(&init_fpstate.xsave, init_bv); 265 return r; 266 } else { 267 init_bv = xfeatures_mask_user() & ~xbv; 268 269 r = copy_user_to_xregs(buf, xbv); 270 if (!r && unlikely(init_bv)) 271 copy_kernel_to_xregs(&init_fpstate.xsave, init_bv); 272 return r; 273 } 274 } else if (use_fxsr()) { 275 return copy_user_to_fxregs(buf); 276 } else 277 return copy_user_to_fregs(buf); 278 } 279 280 static int __fpu__restore_sig(void __user *buf, void __user *buf_fx, int size) 281 { 282 struct user_i387_ia32_struct *envp = NULL; 283 int state_size = fpu_kernel_xstate_size; 284 int ia32_fxstate = (buf != buf_fx); 285 struct task_struct *tsk = current; 286 struct fpu *fpu = &tsk->thread.fpu; 287 struct user_i387_ia32_struct env; 288 u64 user_xfeatures = 0; 289 int fx_only = 0; 290 int ret = 0; 291 292 ia32_fxstate &= (IS_ENABLED(CONFIG_X86_32) || 293 IS_ENABLED(CONFIG_IA32_EMULATION)); 294 295 if (!buf) { 296 fpu__clear_user_states(fpu); 297 return 0; 298 } 299 300 if (!access_ok(buf, size)) { 301 ret = -EACCES; 302 goto out; 303 } 304 305 if (!static_cpu_has(X86_FEATURE_FPU)) { 306 ret = fpregs_soft_set(current, NULL, 0, 307 sizeof(struct user_i387_ia32_struct), 308 NULL, buf); 309 goto out; 310 } 311 312 if (use_xsave()) { 313 struct _fpx_sw_bytes fx_sw_user; 314 if (unlikely(check_for_xstate(buf_fx, buf_fx, &fx_sw_user))) { 315 /* 316 * Couldn't find the extended state information in the 317 * memory layout. Restore just the FP/SSE and init all 318 * the other extended state. 319 */ 320 state_size = sizeof(struct fxregs_state); 321 fx_only = 1; 322 trace_x86_fpu_xstate_check_failed(fpu); 323 } else { 324 state_size = fx_sw_user.xstate_size; 325 user_xfeatures = fx_sw_user.xfeatures; 326 } 327 } 328 329 if ((unsigned long)buf_fx % 64) 330 fx_only = 1; 331 332 if (!ia32_fxstate) { 333 /* 334 * Attempt to restore the FPU registers directly from user 335 * memory. For that to succeed, the user access cannot cause 336 * page faults. If it does, fall back to the slow path below, 337 * going through the kernel buffer with the enabled pagefault 338 * handler. 339 */ 340 fpregs_lock(); 341 pagefault_disable(); 342 ret = copy_user_to_fpregs_zeroing(buf_fx, user_xfeatures, fx_only); 343 pagefault_enable(); 344 if (!ret) { 345 346 /* 347 * Restore supervisor states: previous context switch 348 * etc has done XSAVES and saved the supervisor states 349 * in the kernel buffer from which they can be restored 350 * now. 351 * 352 * We cannot do a single XRSTORS here - which would 353 * be nice - because the rest of the FPU registers are 354 * being restored from a user buffer directly. The 355 * single XRSTORS happens below, when the user buffer 356 * has been copied to the kernel one. 357 */ 358 if (test_thread_flag(TIF_NEED_FPU_LOAD) && 359 xfeatures_mask_supervisor()) 360 copy_kernel_to_xregs(&fpu->state.xsave, 361 xfeatures_mask_supervisor()); 362 fpregs_mark_activate(); 363 fpregs_unlock(); 364 return 0; 365 } 366 367 /* 368 * The above did an FPU restore operation, restricted to 369 * the user portion of the registers, and failed, but the 370 * microcode might have modified the FPU registers 371 * nevertheless. 372 * 373 * If the FPU registers do not belong to current, then 374 * invalidate the FPU register state otherwise the task might 375 * preempt current and return to user space with corrupted 376 * FPU registers. 377 * 378 * In case current owns the FPU registers then no further 379 * action is required. The fixup below will handle it 380 * correctly. 381 */ 382 if (test_thread_flag(TIF_NEED_FPU_LOAD)) 383 __cpu_invalidate_fpregs_state(); 384 385 fpregs_unlock(); 386 } else { 387 /* 388 * For 32-bit frames with fxstate, copy the fxstate so it can 389 * be reconstructed later. 390 */ 391 ret = __copy_from_user(&env, buf, sizeof(env)); 392 if (ret) 393 goto out; 394 envp = &env; 395 } 396 397 /* 398 * By setting TIF_NEED_FPU_LOAD it is ensured that our xstate is 399 * not modified on context switch and that the xstate is considered 400 * to be loaded again on return to userland (overriding last_cpu avoids 401 * the optimisation). 402 */ 403 fpregs_lock(); 404 405 if (!test_thread_flag(TIF_NEED_FPU_LOAD)) { 406 407 /* 408 * Supervisor states are not modified by user space input. Save 409 * current supervisor states first and invalidate the FPU regs. 410 */ 411 if (xfeatures_mask_supervisor()) 412 copy_supervisor_to_kernel(&fpu->state.xsave); 413 set_thread_flag(TIF_NEED_FPU_LOAD); 414 } 415 __fpu_invalidate_fpregs_state(fpu); 416 fpregs_unlock(); 417 418 if (use_xsave() && !fx_only) { 419 u64 init_bv = xfeatures_mask_user() & ~user_xfeatures; 420 421 ret = copy_user_to_xstate(&fpu->state.xsave, buf_fx); 422 if (ret) 423 goto out; 424 425 sanitize_restored_user_xstate(&fpu->state, envp, user_xfeatures, 426 fx_only); 427 428 fpregs_lock(); 429 if (unlikely(init_bv)) 430 copy_kernel_to_xregs(&init_fpstate.xsave, init_bv); 431 432 /* 433 * Restore previously saved supervisor xstates along with 434 * copied-in user xstates. 435 */ 436 ret = copy_kernel_to_xregs_err(&fpu->state.xsave, 437 user_xfeatures | xfeatures_mask_supervisor()); 438 439 } else if (use_fxsr()) { 440 ret = __copy_from_user(&fpu->state.fxsave, buf_fx, state_size); 441 if (ret) { 442 ret = -EFAULT; 443 goto out; 444 } 445 446 sanitize_restored_user_xstate(&fpu->state, envp, user_xfeatures, 447 fx_only); 448 449 fpregs_lock(); 450 if (use_xsave()) { 451 u64 init_bv; 452 453 init_bv = xfeatures_mask_user() & ~XFEATURE_MASK_FPSSE; 454 copy_kernel_to_xregs(&init_fpstate.xsave, init_bv); 455 } 456 457 ret = copy_kernel_to_fxregs_err(&fpu->state.fxsave); 458 } else { 459 ret = __copy_from_user(&fpu->state.fsave, buf_fx, state_size); 460 if (ret) 461 goto out; 462 463 fpregs_lock(); 464 ret = copy_kernel_to_fregs_err(&fpu->state.fsave); 465 } 466 if (!ret) 467 fpregs_mark_activate(); 468 else 469 fpregs_deactivate(fpu); 470 fpregs_unlock(); 471 472 out: 473 if (ret) 474 fpu__clear_user_states(fpu); 475 return ret; 476 } 477 478 static inline int xstate_sigframe_size(void) 479 { 480 return use_xsave() ? fpu_user_xstate_size + FP_XSTATE_MAGIC2_SIZE : 481 fpu_user_xstate_size; 482 } 483 484 /* 485 * Restore FPU state from a sigframe: 486 */ 487 int fpu__restore_sig(void __user *buf, int ia32_frame) 488 { 489 void __user *buf_fx = buf; 490 int size = xstate_sigframe_size(); 491 492 if (ia32_frame && use_fxsr()) { 493 buf_fx = buf + sizeof(struct fregs_state); 494 size += sizeof(struct fregs_state); 495 } 496 497 return __fpu__restore_sig(buf, buf_fx, size); 498 } 499 500 unsigned long 501 fpu__alloc_mathframe(unsigned long sp, int ia32_frame, 502 unsigned long *buf_fx, unsigned long *size) 503 { 504 unsigned long frame_size = xstate_sigframe_size(); 505 506 *buf_fx = sp = round_down(sp - frame_size, 64); 507 if (ia32_frame && use_fxsr()) { 508 frame_size += sizeof(struct fregs_state); 509 sp -= sizeof(struct fregs_state); 510 } 511 512 *size = frame_size; 513 514 return sp; 515 } 516 /* 517 * Prepare the SW reserved portion of the fxsave memory layout, indicating 518 * the presence of the extended state information in the memory layout 519 * pointed by the fpstate pointer in the sigcontext. 520 * This will be saved when ever the FP and extended state context is 521 * saved on the user stack during the signal handler delivery to the user. 522 */ 523 void fpu__init_prepare_fx_sw_frame(void) 524 { 525 int size = fpu_user_xstate_size + FP_XSTATE_MAGIC2_SIZE; 526 527 fx_sw_reserved.magic1 = FP_XSTATE_MAGIC1; 528 fx_sw_reserved.extended_size = size; 529 fx_sw_reserved.xfeatures = xfeatures_mask_user(); 530 fx_sw_reserved.xstate_size = fpu_user_xstate_size; 531 532 if (IS_ENABLED(CONFIG_IA32_EMULATION) || 533 IS_ENABLED(CONFIG_X86_32)) { 534 int fsave_header_size = sizeof(struct fregs_state); 535 536 fx_sw_reserved_ia32 = fx_sw_reserved; 537 fx_sw_reserved_ia32.extended_size = size + fsave_header_size; 538 } 539 } 540 541