1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * linux/kernel/fork.c 4 * 5 * Copyright (C) 1991, 1992 Linus Torvalds 6 */ 7 8 /* 9 * 'fork.c' contains the help-routines for the 'fork' system call 10 * (see also entry.S and others). 11 * Fork is rather simple, once you get the hang of it, but the memory 12 * management can be a bitch. See 'mm/memory.c': 'copy_page_range()' 13 */ 14 15 #include <linux/anon_inodes.h> 16 #include <linux/slab.h> 17 #include <linux/sched/autogroup.h> 18 #include <linux/sched/mm.h> 19 #include <linux/sched/user.h> 20 #include <linux/sched/numa_balancing.h> 21 #include <linux/sched/stat.h> 22 #include <linux/sched/task.h> 23 #include <linux/sched/task_stack.h> 24 #include <linux/sched/cputime.h> 25 #include <linux/sched/ext.h> 26 #include <linux/sched/exec_state.h> 27 #include <linux/seq_file.h> 28 #include <linux/rtmutex.h> 29 #include <linux/init.h> 30 #include <linux/unistd.h> 31 #include <linux/module.h> 32 #include <linux/vmalloc.h> 33 #include <linux/completion.h> 34 #include <linux/personality.h> 35 #include <linux/mempolicy.h> 36 #include <linux/sem.h> 37 #include <linux/file.h> 38 #include <linux/fdtable.h> 39 #include <linux/iocontext.h> 40 #include <linux/key.h> 41 #include <linux/kmsan.h> 42 #include <linux/binfmts.h> 43 #include <linux/mman.h> 44 #include <linux/mmu_notifier.h> 45 #include <linux/fs.h> 46 #include <linux/mm.h> 47 #include <linux/mm_inline.h> 48 #include <linux/memblock.h> 49 #include <linux/nsproxy.h> 50 #include <linux/ns/ns_common_types.h> 51 #include <linux/capability.h> 52 #include <linux/cpu.h> 53 #include <linux/cgroup.h> 54 #include <linux/security.h> 55 #include <linux/hugetlb.h> 56 #include <linux/seccomp.h> 57 #include <linux/swap.h> 58 #include <linux/syscalls.h> 59 #include <linux/syscall_user_dispatch.h> 60 #include <linux/jiffies.h> 61 #include <linux/futex.h> 62 #include <linux/compat.h> 63 #include <linux/kthread.h> 64 #include <linux/task_io_accounting_ops.h> 65 #include <linux/rcupdate.h> 66 #include <linux/ptrace.h> 67 #include <linux/mount.h> 68 #include <linux/audit.h> 69 #include <linux/memcontrol.h> 70 #include <linux/ftrace.h> 71 #include <linux/proc_fs.h> 72 #include <linux/profile.h> 73 #include <linux/rmap.h> 74 #include <linux/ksm.h> 75 #include <linux/acct.h> 76 #include <linux/userfaultfd_k.h> 77 #include <linux/tsacct_kern.h> 78 #include <linux/cn_proc.h> 79 #include <linux/freezer.h> 80 #include <linux/delayacct.h> 81 #include <linux/taskstats_kern.h> 82 #include <linux/tty.h> 83 #include <linux/fs_struct.h> 84 #include <linux/magic.h> 85 #include <linux/perf_event.h> 86 #include <linux/posix-timers.h> 87 #include <linux/user-return-notifier.h> 88 #include <linux/oom.h> 89 #include <linux/khugepaged.h> 90 #include <linux/signalfd.h> 91 #include <linux/uprobes.h> 92 #include <linux/aio.h> 93 #include <linux/compiler.h> 94 #include <linux/sysctl.h> 95 #include <linux/kcov.h> 96 #include <linux/livepatch.h> 97 #include <linux/thread_info.h> 98 #include <linux/kstack_erase.h> 99 #include <linux/kasan.h> 100 #include <linux/randomize_kstack.h> 101 #include <linux/scs.h> 102 #include <linux/io_uring.h> 103 #include <linux/io_uring_types.h> 104 #include <linux/bpf.h> 105 #include <linux/stackprotector.h> 106 #include <linux/user_events.h> 107 #include <linux/iommu.h> 108 #include <linux/rseq.h> 109 #include <uapi/linux/pidfd.h> 110 #include <linux/pidfs.h> 111 #include <linux/tick.h> 112 #include <linux/unwind_deferred.h> 113 #include <linux/pgalloc.h> 114 #include <linux/uaccess.h> 115 116 #include <asm/mmu_context.h> 117 #include <asm/cacheflush.h> 118 #include <asm/tlbflush.h> 119 120 /* For dup_mmap(). */ 121 #include "../mm/internal.h" 122 123 #include <trace/events/sched.h> 124 125 #define CREATE_TRACE_POINTS 126 #include <trace/events/task.h> 127 128 #include <kunit/visibility.h> 129 130 /* 131 * Minimum number of threads to boot the kernel 132 */ 133 #define MIN_THREADS 20 134 135 /* 136 * Maximum number of threads 137 */ 138 #define MAX_THREADS FUTEX_TID_MASK 139 140 /* 141 * Protected counters by write_lock_irq(&tasklist_lock) 142 */ 143 unsigned long total_forks; /* Handle normal Linux uptimes. */ 144 int nr_threads; /* The idle threads do not count.. */ 145 146 static int max_threads __read_mostly; /* tunable limit on nr_threads */ 147 148 #define NAMED_ARRAY_INDEX(x) [x] = __stringify(x) 149 150 static const char * const resident_page_types[] = { 151 NAMED_ARRAY_INDEX(MM_FILEPAGES), 152 NAMED_ARRAY_INDEX(MM_ANONPAGES), 153 NAMED_ARRAY_INDEX(MM_SWAPENTS), 154 NAMED_ARRAY_INDEX(MM_SHMEMPAGES), 155 }; 156 157 DEFINE_PER_CPU(unsigned long, process_counts) = 0; 158 159 __cacheline_aligned DEFINE_RWLOCK(tasklist_lock); /* outer */ 160 161 #ifdef CONFIG_PROVE_RCU 162 int lockdep_tasklist_lock_is_held(void) 163 { 164 return lockdep_is_held(&tasklist_lock); 165 } 166 EXPORT_SYMBOL_GPL(lockdep_tasklist_lock_is_held); 167 #endif /* #ifdef CONFIG_PROVE_RCU */ 168 169 int nr_processes(void) 170 { 171 int cpu; 172 int total = 0; 173 174 for_each_possible_cpu(cpu) 175 total += per_cpu(process_counts, cpu); 176 177 return total; 178 } 179 180 void __weak arch_release_task_struct(struct task_struct *tsk) 181 { 182 } 183 184 static struct kmem_cache *task_struct_cachep; 185 186 static inline struct task_struct *alloc_task_struct_node(int node) 187 { 188 return kmem_cache_alloc_node(task_struct_cachep, GFP_KERNEL, node); 189 } 190 191 static inline void free_task_struct(struct task_struct *tsk) 192 { 193 kmem_cache_free(task_struct_cachep, tsk); 194 } 195 196 #ifdef CONFIG_VMAP_STACK 197 /* 198 * vmalloc() is a bit slow, and calling vfree() enough times will force a TLB 199 * flush. Try to minimize the number of calls by caching stacks. 200 */ 201 #define NR_CACHED_STACKS 2 202 static DEFINE_PER_CPU(struct vm_struct *, cached_stacks[NR_CACHED_STACKS]); 203 /* 204 * Allocated stacks are cached and later reused by new threads, so memcg 205 * accounting is performed by the code assigning/releasing stacks to tasks. 206 * We need a zeroed memory without __GFP_ACCOUNT. 207 */ 208 #define GFP_VMAP_STACK (GFP_KERNEL | __GFP_ZERO | __GFP_SKIP_KASAN) 209 210 struct vm_stack { 211 struct rcu_head rcu; 212 struct vm_struct *stack_vm_area; 213 }; 214 215 static struct vm_struct *alloc_thread_stack_node_from_cache(struct task_struct *tsk, int node) 216 { 217 struct vm_struct *vm_area; 218 unsigned int i; 219 220 /* 221 * If the node has memory, we are guaranteed the stacks are backed by local pages. 222 * Otherwise the pages are arbitrary. 223 * 224 * Note that depending on cpuset it is possible we will get migrated to a different 225 * node immediately after allocating here, so this does *not* guarantee locality for 226 * arbitrary callers. 227 */ 228 scoped_guard(preempt) { 229 if (node != NUMA_NO_NODE && numa_node_id() != node) 230 return NULL; 231 232 for (i = 0; i < NR_CACHED_STACKS; i++) { 233 vm_area = this_cpu_xchg(cached_stacks[i], NULL); 234 if (vm_area) 235 return vm_area; 236 } 237 } 238 239 return NULL; 240 } 241 242 static bool try_release_thread_stack_to_cache(struct vm_struct *vm_area) 243 { 244 unsigned int i; 245 int nid; 246 247 /* 248 * Don't cache stacks if any of the pages don't match the local domain, unless 249 * there is no local memory to begin with. 250 * 251 * Note that lack of local memory does not automatically mean it makes no difference 252 * performance-wise which other domain backs the stack. In this case we are merely 253 * trying to avoid constantly going to vmalloc. 254 */ 255 scoped_guard(preempt) { 256 nid = numa_node_id(); 257 if (node_state(nid, N_MEMORY)) { 258 for (i = 0; i < vm_area->nr_pages; i++) { 259 struct page *page = vm_area->pages[i]; 260 if (page_to_nid(page) != nid) 261 return false; 262 } 263 } 264 265 for (i = 0; i < NR_CACHED_STACKS; i++) { 266 struct vm_struct *tmp = NULL; 267 268 if (this_cpu_try_cmpxchg(cached_stacks[i], &tmp, vm_area)) 269 return true; 270 } 271 } 272 return false; 273 } 274 275 static void thread_stack_free_rcu(struct rcu_head *rh) 276 { 277 struct vm_stack *vm_stack = container_of(rh, struct vm_stack, rcu); 278 struct vm_struct *vm_area = vm_stack->stack_vm_area; 279 280 if (try_release_thread_stack_to_cache(vm_stack->stack_vm_area)) 281 return; 282 283 vfree(vm_area->addr); 284 } 285 286 static void thread_stack_delayed_free(struct task_struct *tsk) 287 { 288 struct vm_stack *vm_stack = tsk->stack; 289 290 vm_stack->stack_vm_area = tsk->stack_vm_area; 291 call_rcu(&vm_stack->rcu, thread_stack_free_rcu); 292 } 293 294 static int free_vm_stack_cache(unsigned int cpu) 295 { 296 struct vm_struct **cached_vm_stack_areas = per_cpu_ptr(cached_stacks, cpu); 297 int i; 298 299 for (i = 0; i < NR_CACHED_STACKS; i++) { 300 struct vm_struct *vm_area = cached_vm_stack_areas[i]; 301 302 if (!vm_area) 303 continue; 304 305 vfree(vm_area->addr); 306 cached_vm_stack_areas[i] = NULL; 307 } 308 309 return 0; 310 } 311 312 static int memcg_charge_kernel_stack(struct vm_struct *vm_area) 313 { 314 int i; 315 int ret; 316 int nr_charged = 0; 317 318 BUG_ON(vm_area->nr_pages != THREAD_SIZE / PAGE_SIZE); 319 320 for (i = 0; i < THREAD_SIZE / PAGE_SIZE; i++) { 321 ret = memcg_kmem_charge_page(vm_area->pages[i], GFP_KERNEL, 0); 322 if (ret) 323 goto err; 324 nr_charged++; 325 } 326 return 0; 327 err: 328 for (i = 0; i < nr_charged; i++) 329 memcg_kmem_uncharge_page(vm_area->pages[i], 0); 330 return ret; 331 } 332 333 static int alloc_thread_stack_node(struct task_struct *tsk, int node) 334 { 335 struct vm_struct *vm_area; 336 void *stack; 337 338 vm_area = alloc_thread_stack_node_from_cache(tsk, node); 339 if (vm_area) { 340 if (memcg_charge_kernel_stack(vm_area)) { 341 vfree(vm_area->addr); 342 return -ENOMEM; 343 } 344 345 /* Reset stack metadata. */ 346 if (!kasan_hw_tags_enabled()) 347 kasan_unpoison_range(vm_area->addr, THREAD_SIZE); 348 349 stack = kasan_reset_tag(vm_area->addr); 350 351 /* Clear stale pointers from reused stack. */ 352 clear_pages(vm_area->addr, vm_area->nr_pages); 353 354 tsk->stack_vm_area = vm_area; 355 tsk->stack = stack; 356 return 0; 357 } 358 359 stack = __vmalloc_node(THREAD_SIZE, THREAD_ALIGN, 360 GFP_VMAP_STACK, 361 node, __builtin_return_address(0)); 362 if (!stack) 363 return -ENOMEM; 364 365 vm_area = find_vm_area(stack); 366 if (memcg_charge_kernel_stack(vm_area)) { 367 vfree(stack); 368 return -ENOMEM; 369 } 370 /* 371 * We can't call find_vm_area() in interrupt context, and 372 * free_thread_stack() can be called in interrupt context, 373 * so cache the vm_struct. 374 */ 375 tsk->stack_vm_area = vm_area; 376 stack = kasan_reset_tag(stack); 377 tsk->stack = stack; 378 return 0; 379 } 380 381 static void free_thread_stack(struct task_struct *tsk) 382 { 383 if (!try_release_thread_stack_to_cache(tsk->stack_vm_area)) 384 thread_stack_delayed_free(tsk); 385 386 tsk->stack = NULL; 387 tsk->stack_vm_area = NULL; 388 } 389 390 #else /* !CONFIG_VMAP_STACK */ 391 392 /* 393 * Allocate pages if THREAD_SIZE is >= PAGE_SIZE, otherwise use a 394 * kmemcache based allocator. 395 */ 396 #if THREAD_SIZE >= PAGE_SIZE 397 398 static void thread_stack_free_rcu(struct rcu_head *rh) 399 { 400 __free_pages(virt_to_page(rh), THREAD_SIZE_ORDER); 401 } 402 403 static void thread_stack_delayed_free(struct task_struct *tsk) 404 { 405 struct rcu_head *rh = tsk->stack; 406 407 call_rcu(rh, thread_stack_free_rcu); 408 } 409 410 static int alloc_thread_stack_node(struct task_struct *tsk, int node) 411 { 412 struct page *page = alloc_pages_node(node, THREADINFO_GFP, 413 THREAD_SIZE_ORDER); 414 415 if (likely(page)) { 416 tsk->stack = kasan_reset_tag(page_address(page)); 417 return 0; 418 } 419 return -ENOMEM; 420 } 421 422 static void free_thread_stack(struct task_struct *tsk) 423 { 424 thread_stack_delayed_free(tsk); 425 tsk->stack = NULL; 426 } 427 428 #else /* !(THREAD_SIZE >= PAGE_SIZE) */ 429 430 static struct kmem_cache *thread_stack_cache; 431 432 static void thread_stack_free_rcu(struct rcu_head *rh) 433 { 434 kmem_cache_free(thread_stack_cache, rh); 435 } 436 437 static void thread_stack_delayed_free(struct task_struct *tsk) 438 { 439 struct rcu_head *rh = tsk->stack; 440 441 call_rcu(rh, thread_stack_free_rcu); 442 } 443 444 static int alloc_thread_stack_node(struct task_struct *tsk, int node) 445 { 446 unsigned long *stack; 447 stack = kmem_cache_alloc_node(thread_stack_cache, THREADINFO_GFP, node); 448 stack = kasan_reset_tag(stack); 449 tsk->stack = stack; 450 return stack ? 0 : -ENOMEM; 451 } 452 453 static void free_thread_stack(struct task_struct *tsk) 454 { 455 thread_stack_delayed_free(tsk); 456 tsk->stack = NULL; 457 } 458 459 void thread_stack_cache_init(void) 460 { 461 thread_stack_cache = kmem_cache_create_usercopy("thread_stack", 462 THREAD_SIZE, THREAD_SIZE, 0, 0, 463 THREAD_SIZE, NULL); 464 BUG_ON(thread_stack_cache == NULL); 465 } 466 467 #endif /* THREAD_SIZE >= PAGE_SIZE */ 468 #endif /* CONFIG_VMAP_STACK */ 469 470 /* SLAB cache for signal_struct structures (tsk->signal) */ 471 static struct kmem_cache *signal_cachep; 472 473 /* SLAB cache for sighand_struct structures (tsk->sighand) */ 474 struct kmem_cache *sighand_cachep; 475 476 /* SLAB cache for files_struct structures (tsk->files) */ 477 struct kmem_cache *files_cachep; 478 479 /* SLAB cache for fs_struct structures (tsk->fs) */ 480 struct kmem_cache *fs_cachep; 481 482 /* SLAB cache for mm_struct structures (tsk->mm) */ 483 static struct kmem_cache *mm_cachep; 484 485 static void account_kernel_stack(struct task_struct *tsk, int account) 486 { 487 if (IS_ENABLED(CONFIG_VMAP_STACK)) { 488 struct vm_struct *vm_area = task_stack_vm_area(tsk); 489 int i; 490 491 for (i = 0; i < THREAD_SIZE / PAGE_SIZE; i++) 492 mod_lruvec_page_state(vm_area->pages[i], NR_KERNEL_STACK_KB, 493 account * (PAGE_SIZE / 1024)); 494 } else { 495 void *stack = task_stack_page(tsk); 496 497 /* All stack pages are in the same node. */ 498 mod_lruvec_kmem_state(stack, NR_KERNEL_STACK_KB, 499 account * (THREAD_SIZE / 1024)); 500 } 501 } 502 503 void exit_task_stack_account(struct task_struct *tsk) 504 { 505 account_kernel_stack(tsk, -1); 506 507 if (IS_ENABLED(CONFIG_VMAP_STACK)) { 508 struct vm_struct *vm_area; 509 int i; 510 511 vm_area = task_stack_vm_area(tsk); 512 for (i = 0; i < THREAD_SIZE / PAGE_SIZE; i++) 513 memcg_kmem_uncharge_page(vm_area->pages[i], 0); 514 } 515 } 516 517 static void release_task_stack(struct task_struct *tsk) 518 { 519 if (WARN_ON(READ_ONCE(tsk->__state) != TASK_DEAD)) 520 return; /* Better to leak the stack than to free prematurely */ 521 522 free_thread_stack(tsk); 523 } 524 525 #ifdef CONFIG_THREAD_INFO_IN_TASK 526 void put_task_stack(struct task_struct *tsk) 527 { 528 if (refcount_dec_and_test(&tsk->stack_refcount)) 529 release_task_stack(tsk); 530 } 531 #endif 532 533 void free_task(struct task_struct *tsk) 534 { 535 #ifdef CONFIG_SECCOMP 536 WARN_ON_ONCE(tsk->seccomp.filter); 537 #endif 538 release_user_cpus_ptr(tsk); 539 scs_release(tsk); 540 smp_task_ipi_mask_free(tsk); 541 542 #ifndef CONFIG_THREAD_INFO_IN_TASK 543 /* 544 * The task is finally done with both the stack and thread_info, 545 * so free both. 546 */ 547 release_task_stack(tsk); 548 #else 549 /* 550 * If the task had a separate stack allocation, it should be gone 551 * by now. 552 */ 553 WARN_ON_ONCE(refcount_read(&tsk->stack_refcount) != 0); 554 #endif 555 rt_mutex_debug_task_free(tsk); 556 ftrace_graph_exit_task(tsk); 557 arch_release_task_struct(tsk); 558 if (tsk->flags & PF_KTHREAD) 559 free_kthread_struct(tsk); 560 bpf_task_storage_free(tsk); 561 put_task_exec_state(rcu_access_pointer(tsk->exec_state)); 562 free_task_struct(tsk); 563 } 564 EXPORT_SYMBOL(free_task); 565 566 void dup_mm_exe_file(struct mm_struct *mm, struct mm_struct *oldmm) 567 { 568 struct file *exe_file; 569 570 exe_file = get_mm_exe_file(oldmm); 571 RCU_INIT_POINTER(mm->exe_file, exe_file); 572 /* 573 * We depend on the oldmm having properly denied write access to the 574 * exe_file already. 575 */ 576 if (exe_file && exe_file_deny_write_access(exe_file)) 577 pr_warn_once("exe_file_deny_write_access() failed in %s\n", __func__); 578 } 579 580 #ifdef CONFIG_MMU 581 static inline int mm_alloc_pgd(struct mm_struct *mm) 582 { 583 mm->pgd = pgd_alloc(mm); 584 if (unlikely(!mm->pgd)) 585 return -ENOMEM; 586 return 0; 587 } 588 589 static inline void mm_free_pgd(struct mm_struct *mm) 590 { 591 pgd_free(mm, mm->pgd); 592 } 593 #else 594 #define mm_alloc_pgd(mm) (0) 595 #define mm_free_pgd(mm) 596 #endif /* CONFIG_MMU */ 597 598 #ifdef CONFIG_MM_ID 599 static DEFINE_IDA(mm_ida); 600 601 static inline int mm_alloc_id(struct mm_struct *mm) 602 { 603 int ret; 604 605 ret = ida_alloc_range(&mm_ida, MM_ID_MIN, MM_ID_MAX, GFP_KERNEL); 606 if (ret < 0) 607 return ret; 608 mm->mm_id = ret; 609 return 0; 610 } 611 612 static inline void mm_free_id(struct mm_struct *mm) 613 { 614 const mm_id_t id = mm->mm_id; 615 616 mm->mm_id = MM_ID_DUMMY; 617 if (id == MM_ID_DUMMY) 618 return; 619 if (WARN_ON_ONCE(id < MM_ID_MIN || id > MM_ID_MAX)) 620 return; 621 ida_free(&mm_ida, id); 622 } 623 #else /* !CONFIG_MM_ID */ 624 static inline int mm_alloc_id(struct mm_struct *mm) { return 0; } 625 static inline void mm_free_id(struct mm_struct *mm) {} 626 #endif /* CONFIG_MM_ID */ 627 628 static void check_mm(struct mm_struct *mm) 629 { 630 int i; 631 632 BUILD_BUG_ON_MSG(ARRAY_SIZE(resident_page_types) != NR_MM_COUNTERS, 633 "Please make sure 'struct resident_page_types[]' is updated as well"); 634 635 for (i = 0; i < NR_MM_COUNTERS; i++) { 636 long x = percpu_counter_sum(&mm->rss_stat[i]); 637 638 if (unlikely(x)) { 639 pr_alert("BUG: Bad rss-counter state mm:%p type:%s val:%ld Comm:%s Pid:%d\n", 640 mm, resident_page_types[i], x, 641 current->comm, 642 task_pid_nr(current)); 643 } 644 } 645 646 if (mm_pgtables_bytes(mm)) 647 pr_alert("BUG: non-zero pgtables_bytes on freeing mm: %ld\n", 648 mm_pgtables_bytes(mm)); 649 650 #if defined(CONFIG_TRANSPARENT_HUGEPAGE) && !defined(CONFIG_SPLIT_PMD_PTLOCKS) 651 VM_BUG_ON_MM(mm->pmd_huge_pte, mm); 652 #endif 653 } 654 655 #define allocate_mm() (kmem_cache_alloc(mm_cachep, GFP_KERNEL)) 656 #define free_mm(mm) (kmem_cache_free(mm_cachep, (mm))) 657 658 static void do_check_lazy_tlb(void *arg) 659 { 660 struct mm_struct *mm = arg; 661 662 WARN_ON_ONCE(current->active_mm == mm); 663 } 664 665 static void do_shoot_lazy_tlb(void *arg) 666 { 667 struct mm_struct *mm = arg; 668 669 if (current->active_mm == mm) { 670 WARN_ON_ONCE(current->mm); 671 current->active_mm = &init_mm; 672 switch_mm(mm, &init_mm, current); 673 } 674 } 675 676 static void cleanup_lazy_tlbs(struct mm_struct *mm) 677 { 678 if (!IS_ENABLED(CONFIG_MMU_LAZY_TLB_SHOOTDOWN)) { 679 /* 680 * In this case, lazy tlb mms are refounted and would not reach 681 * __mmdrop until all CPUs have switched away and mmdrop()ed. 682 */ 683 return; 684 } 685 686 /* 687 * Lazy mm shootdown does not refcount "lazy tlb mm" usage, rather it 688 * requires lazy mm users to switch to another mm when the refcount 689 * drops to zero, before the mm is freed. This requires IPIs here to 690 * switch kernel threads to init_mm. 691 * 692 * archs that use IPIs to flush TLBs can piggy-back that lazy tlb mm 693 * switch with the final userspace teardown TLB flush which leaves the 694 * mm lazy on this CPU but no others, reducing the need for additional 695 * IPIs here. There are cases where a final IPI is still required here, 696 * such as the final mmdrop being performed on a different CPU than the 697 * one exiting, or kernel threads using the mm when userspace exits. 698 * 699 * IPI overheads have not found to be expensive, but they could be 700 * reduced in a number of possible ways, for example (roughly 701 * increasing order of complexity): 702 * - The last lazy reference created by exit_mm() could instead switch 703 * to init_mm, however it's probable this will run on the same CPU 704 * immediately afterwards, so this may not reduce IPIs much. 705 * - A batch of mms requiring IPIs could be gathered and freed at once. 706 * - CPUs store active_mm where it can be remotely checked without a 707 * lock, to filter out false-positives in the cpumask. 708 * - After mm_users or mm_count reaches zero, switching away from the 709 * mm could clear mm_cpumask to reduce some IPIs, perhaps together 710 * with some batching or delaying of the final IPIs. 711 * - A delayed freeing and RCU-like quiescing sequence based on mm 712 * switching to avoid IPIs completely. 713 */ 714 on_each_cpu_mask(mm_cpumask(mm), do_shoot_lazy_tlb, (void *)mm, 1); 715 if (IS_ENABLED(CONFIG_DEBUG_VM_SHOOT_LAZIES)) 716 on_each_cpu(do_check_lazy_tlb, (void *)mm, 1); 717 } 718 719 /* 720 * Called when the last reference to the mm 721 * is dropped: either by a lazy thread or by 722 * mmput. Free the page directory and the mm. 723 */ 724 void __mmdrop(struct mm_struct *mm) 725 { 726 BUG_ON(mm == &init_mm); 727 WARN_ON_ONCE(mm == current->mm); 728 729 /* Ensure no CPUs are using this as their lazy tlb mm */ 730 cleanup_lazy_tlbs(mm); 731 732 WARN_ON_ONCE(mm == current->active_mm); 733 mm_destroy_sched(mm); 734 mm_free_pgd(mm); 735 mm_free_id(mm); 736 destroy_context(mm); 737 mmu_notifier_subscriptions_destroy(mm); 738 check_mm(mm); 739 mm_pasid_drop(mm); 740 mm_destroy_cid(mm); 741 percpu_counter_destroy_many(mm->rss_stat, NR_MM_COUNTERS); 742 743 free_mm(mm); 744 } 745 EXPORT_SYMBOL_GPL(__mmdrop); 746 747 static void mmdrop_async_fn(struct work_struct *work) 748 { 749 struct mm_struct *mm; 750 751 mm = container_of(work, struct mm_struct, async_put_work); 752 __mmdrop(mm); 753 } 754 755 static void mmdrop_async(struct mm_struct *mm) 756 { 757 if (unlikely(atomic_dec_and_test(&mm->mm_count))) { 758 INIT_WORK(&mm->async_put_work, mmdrop_async_fn); 759 schedule_work(&mm->async_put_work); 760 } 761 } 762 763 static inline void free_signal_struct(struct signal_struct *sig) 764 { 765 taskstats_tgid_free(sig); 766 sched_autogroup_exit(sig); 767 /* 768 * __mmdrop is not safe to call from softirq context on x86 due to 769 * pgd_dtor so postpone it to the async context 770 */ 771 if (sig->oom_mm) 772 mmdrop_async(sig->oom_mm); 773 kmem_cache_free(signal_cachep, sig); 774 } 775 776 static inline void put_signal_struct(struct signal_struct *sig) 777 { 778 if (refcount_dec_and_test(&sig->sigcnt)) 779 free_signal_struct(sig); 780 } 781 782 void __put_task_struct(struct task_struct *tsk) 783 { 784 WARN_ON(!tsk->exit_state); 785 WARN_ON(refcount_read(&tsk->usage)); 786 WARN_ON(tsk == current); 787 788 unwind_task_free(tsk); 789 io_uring_free(tsk); 790 cgroup_task_free(tsk); 791 task_numa_free(tsk, true); 792 security_task_free(tsk); 793 exit_creds(tsk); 794 delayacct_tsk_free(tsk); 795 put_signal_struct(tsk->signal); 796 sched_core_free(tsk); 797 free_task(tsk); 798 } 799 EXPORT_SYMBOL_GPL(__put_task_struct); 800 801 void __put_task_struct_rcu_cb(struct rcu_head *rhp) 802 { 803 struct task_struct *task = container_of(rhp, struct task_struct, rcu); 804 805 __put_task_struct(task); 806 } 807 EXPORT_SYMBOL_GPL(__put_task_struct_rcu_cb); 808 809 void __init __weak arch_task_cache_init(void) { } 810 811 /* 812 * set_max_threads 813 */ 814 static void __init set_max_threads(unsigned int max_threads_suggested) 815 { 816 u64 threads; 817 unsigned long nr_pages = memblock_estimated_nr_free_pages(); 818 819 /* 820 * The number of threads shall be limited such that the thread 821 * structures may only consume a small part of the available memory. 822 */ 823 if (fls64(nr_pages) + fls64(PAGE_SIZE) > 64) 824 threads = MAX_THREADS; 825 else 826 threads = div64_u64((u64) nr_pages * (u64) PAGE_SIZE, 827 (u64) THREAD_SIZE * 8UL); 828 829 if (threads > max_threads_suggested) 830 threads = max_threads_suggested; 831 832 max_threads = clamp_t(u64, threads, MIN_THREADS, MAX_THREADS); 833 } 834 835 #ifdef CONFIG_ARCH_WANTS_DYNAMIC_TASK_STRUCT 836 /* Initialized by the architecture: */ 837 int arch_task_struct_size __read_mostly; 838 #endif 839 840 static void __init task_struct_whitelist(unsigned long *offset, unsigned long *size) 841 { 842 /* Fetch thread_struct whitelist for the architecture. */ 843 arch_thread_struct_whitelist(offset, size); 844 845 /* 846 * Handle zero-sized whitelist or empty thread_struct, otherwise 847 * adjust offset to position of thread_struct in task_struct. 848 */ 849 if (unlikely(*size == 0)) 850 *offset = 0; 851 else 852 *offset += offsetof(struct task_struct, thread); 853 } 854 855 void __init fork_init(void) 856 { 857 int i; 858 #ifndef ARCH_MIN_TASKALIGN 859 #define ARCH_MIN_TASKALIGN 0 860 #endif 861 int align = max_t(int, L1_CACHE_BYTES, ARCH_MIN_TASKALIGN); 862 unsigned long useroffset, usersize; 863 864 /* create a slab on which task_structs can be allocated */ 865 task_struct_whitelist(&useroffset, &usersize); 866 task_struct_cachep = kmem_cache_create_usercopy("task_struct", 867 arch_task_struct_size, align, 868 SLAB_PANIC|SLAB_ACCOUNT, 869 useroffset, usersize, NULL); 870 871 /* do the arch specific task caches init */ 872 arch_task_cache_init(); 873 874 set_max_threads(MAX_THREADS); 875 876 init_task.signal->rlim[RLIMIT_NPROC].rlim_cur = max_threads/2; 877 init_task.signal->rlim[RLIMIT_NPROC].rlim_max = max_threads/2; 878 init_task.signal->rlim[RLIMIT_SIGPENDING] = 879 init_task.signal->rlim[RLIMIT_NPROC]; 880 881 for (i = 0; i < UCOUNT_COUNTS; i++) 882 init_user_ns.ucount_max[i] = max_threads/2; 883 884 set_userns_rlimit_max(&init_user_ns, UCOUNT_RLIMIT_NPROC, RLIM_INFINITY); 885 set_userns_rlimit_max(&init_user_ns, UCOUNT_RLIMIT_MSGQUEUE, RLIM_INFINITY); 886 set_userns_rlimit_max(&init_user_ns, UCOUNT_RLIMIT_SIGPENDING, RLIM_INFINITY); 887 set_userns_rlimit_max(&init_user_ns, UCOUNT_RLIMIT_MEMLOCK, RLIM_INFINITY); 888 889 #ifdef CONFIG_VMAP_STACK 890 cpuhp_setup_state(CPUHP_BP_PREPARE_DYN, "fork:vm_stack_cache", 891 NULL, free_vm_stack_cache); 892 #endif 893 894 scs_init(); 895 896 lockdep_init_task(&init_task); 897 uprobes_init(); 898 } 899 900 int __weak arch_dup_task_struct(struct task_struct *dst, 901 struct task_struct *src) 902 { 903 *dst = *src; 904 return 0; 905 } 906 907 void set_task_stack_end_magic(struct task_struct *tsk) 908 { 909 unsigned long *stackend; 910 911 stackend = end_of_stack(tsk); 912 *stackend = STACK_END_MAGIC; /* for overflow detection */ 913 } 914 915 static struct task_struct *dup_task_struct(struct task_struct *orig, int node) 916 { 917 struct task_struct *tsk; 918 int err; 919 920 if (node == NUMA_NO_NODE) 921 node = tsk_fork_get_node(orig); 922 tsk = alloc_task_struct_node(node); 923 if (!tsk) 924 return NULL; 925 926 err = arch_dup_task_struct(tsk, orig); 927 if (err) 928 goto free_tsk; 929 930 err = alloc_thread_stack_node(tsk, node); 931 if (err) 932 goto free_tsk; 933 934 #ifdef CONFIG_THREAD_INFO_IN_TASK 935 refcount_set(&tsk->stack_refcount, 1); 936 #endif 937 account_kernel_stack(tsk, 1); 938 939 err = smp_task_ipi_mask_alloc(tsk); 940 if (err) 941 goto free_stack; 942 943 err = scs_prepare(tsk, node); 944 if (err) 945 goto free_ipi_mask; 946 947 #ifdef CONFIG_SECCOMP 948 /* 949 * We must handle setting up seccomp filters once we're under 950 * the sighand lock in case orig has changed between now and 951 * then. Until then, filter must be NULL to avoid messing up 952 * the usage counts on the error path calling free_task. 953 */ 954 tsk->seccomp.filter = NULL; 955 #endif 956 957 RCU_INIT_POINTER(tsk->exec_state, NULL); 958 959 setup_thread_stack(tsk, orig); 960 clear_user_return_notifier(tsk); 961 clear_tsk_need_resched(tsk); 962 set_task_stack_end_magic(tsk); 963 clear_syscall_work_syscall_user_dispatch(tsk); 964 965 #ifdef CONFIG_STACKPROTECTOR 966 tsk->stack_canary = get_random_canary(); 967 #endif 968 if (orig->cpus_ptr == &orig->cpus_mask) 969 tsk->cpus_ptr = &tsk->cpus_mask; 970 dup_user_cpus_ptr(tsk, orig, node); 971 972 /* 973 * One for the user space visible state that goes away when reaped. 974 * One for the scheduler. 975 */ 976 refcount_set(&tsk->rcu_users, 2); 977 /* One for the rcu users */ 978 refcount_set(&tsk->usage, 1); 979 #ifdef CONFIG_BLK_DEV_IO_TRACE 980 tsk->btrace_seq = 0; 981 #endif 982 tsk->splice_pipe = NULL; 983 tsk->task_frag.page = NULL; 984 tsk->wake_q.next = NULL; 985 tsk->worker_private = NULL; 986 987 kcov_task_init(tsk); 988 kmsan_task_create(tsk); 989 kmap_local_fork(tsk); 990 991 #ifdef CONFIG_FAULT_INJECTION 992 tsk->fail_nth = 0; 993 #endif 994 995 #ifdef CONFIG_BLK_CGROUP 996 tsk->throttle_disk = NULL; 997 tsk->use_memdelay = 0; 998 #endif 999 1000 #ifdef CONFIG_ARCH_HAS_CPU_PASID 1001 tsk->pasid_activated = 0; 1002 #endif 1003 1004 #ifdef CONFIG_MEMCG 1005 tsk->active_memcg = NULL; 1006 #endif 1007 1008 #ifdef CONFIG_X86_BUS_LOCK_DETECT 1009 tsk->reported_split_lock = 0; 1010 #endif 1011 1012 #ifdef CONFIG_SCHED_MM_CID 1013 tsk->mm_cid.cid = MM_CID_UNSET; 1014 tsk->mm_cid.active = 0; 1015 INIT_HLIST_NODE(&tsk->mm_cid.node); 1016 #endif 1017 1018 #ifdef CONFIG_BPF_SYSCALL 1019 RCU_INIT_POINTER(tsk->bpf_storage, NULL); 1020 tsk->bpf_ctx = NULL; 1021 #endif 1022 return tsk; 1023 1024 free_ipi_mask: 1025 smp_task_ipi_mask_free(tsk); 1026 free_stack: 1027 exit_task_stack_account(tsk); 1028 free_thread_stack(tsk); 1029 free_tsk: 1030 free_task_struct(tsk); 1031 return NULL; 1032 } 1033 1034 __cacheline_aligned_in_smp DEFINE_SPINLOCK(mmlist_lock); 1035 1036 static unsigned long coredump_filter = MMF_DUMP_FILTER_DEFAULT; 1037 1038 static int __init coredump_filter_setup(char *s) 1039 { 1040 if (kstrtoul(s, 0, &coredump_filter)) 1041 return 0; 1042 coredump_filter <<= MMF_DUMP_FILTER_SHIFT; 1043 coredump_filter &= MMF_DUMP_FILTER_MASK; 1044 return 1; 1045 } 1046 1047 __setup("coredump_filter=", coredump_filter_setup); 1048 1049 #include <linux/init_task.h> 1050 1051 static void mm_init_aio(struct mm_struct *mm) 1052 { 1053 #ifdef CONFIG_AIO 1054 spin_lock_init(&mm->ioctx_lock); 1055 mm->ioctx_table = NULL; 1056 #endif 1057 } 1058 1059 static __always_inline void mm_clear_owner(struct mm_struct *mm, 1060 struct task_struct *p) 1061 { 1062 #ifdef CONFIG_MEMCG 1063 if (mm->owner == p) 1064 WRITE_ONCE(mm->owner, NULL); 1065 #endif 1066 } 1067 1068 static void mm_init_owner(struct mm_struct *mm, struct task_struct *p) 1069 { 1070 #ifdef CONFIG_MEMCG 1071 mm->owner = p; 1072 #endif 1073 } 1074 1075 static void mm_init_uprobes_state(struct mm_struct *mm) 1076 { 1077 #ifdef CONFIG_UPROBES 1078 mm->uprobes_state.xol_area = NULL; 1079 #endif 1080 } 1081 1082 static void mmap_init_lock(struct mm_struct *mm) 1083 { 1084 init_rwsem(&mm->mmap_lock); 1085 mm_lock_seqcount_init(mm); 1086 #ifdef CONFIG_PER_VMA_LOCK 1087 rcuwait_init(&mm->vma_writer_wait); 1088 #endif 1089 } 1090 1091 static struct mm_struct *mm_init(struct mm_struct *mm, struct task_struct *p) 1092 { 1093 mt_init_flags(&mm->mm_mt, MM_MT_FLAGS); 1094 mt_set_external_lock(&mm->mm_mt, &mm->mmap_lock); 1095 atomic_set(&mm->mm_users, 1); 1096 atomic_set(&mm->mm_count, 1); 1097 seqcount_init(&mm->write_protect_seq); 1098 mmap_init_lock(mm); 1099 INIT_LIST_HEAD(&mm->mmlist); 1100 mm_pgtables_bytes_init(mm); 1101 mm->map_count = 0; 1102 mm->locked_vm = 0; 1103 atomic64_set(&mm->pinned_vm, 0); 1104 memset(&mm->rss_stat, 0, sizeof(mm->rss_stat)); 1105 spin_lock_init(&mm->page_table_lock); 1106 spin_lock_init(&mm->arg_lock); 1107 mm_init_cpumask(mm); 1108 mm_init_aio(mm); 1109 mm_init_owner(mm, p); 1110 mm_pasid_init(mm); 1111 RCU_INIT_POINTER(mm->exe_file, NULL); 1112 mmu_notifier_subscriptions_init(mm); 1113 init_tlb_flush_pending(mm); 1114 #if defined(CONFIG_TRANSPARENT_HUGEPAGE) && !defined(CONFIG_SPLIT_PMD_PTLOCKS) 1115 mm->pmd_huge_pte = NULL; 1116 #endif 1117 mm_init_uprobes_state(mm); 1118 hugetlb_count_init(mm); 1119 futex_mm_init(mm); 1120 1121 mm_flags_clear_all(mm); 1122 if (current->mm) { 1123 unsigned long flags = __mm_flags_get_word(current->mm); 1124 1125 __mm_flags_overwrite_word(mm, mmf_init_legacy_flags(flags)); 1126 mm->def_flags = current->mm->def_flags & VM_INIT_DEF_MASK; 1127 } else { 1128 __mm_flags_overwrite_word(mm, coredump_filter); 1129 mm->def_flags = 0; 1130 } 1131 1132 if (mm_alloc_pgd(mm)) 1133 goto fail_mm_init; 1134 1135 if (mm_alloc_id(mm)) 1136 goto fail_noid; 1137 1138 if (init_new_context(p, mm)) 1139 goto fail_nocontext; 1140 1141 if (mm_alloc_cid(mm, p)) 1142 goto fail_cid; 1143 1144 if (mm_alloc_sched(mm)) 1145 goto fail_sched; 1146 1147 if (percpu_counter_init_many(mm->rss_stat, 0, GFP_KERNEL_ACCOUNT, 1148 NR_MM_COUNTERS)) 1149 goto fail_pcpu; 1150 1151 lru_gen_init_mm(mm); 1152 return mm; 1153 1154 fail_pcpu: 1155 mm_destroy_sched(mm); 1156 fail_sched: 1157 mm_destroy_cid(mm); 1158 fail_cid: 1159 destroy_context(mm); 1160 fail_nocontext: 1161 mm_free_id(mm); 1162 fail_noid: 1163 mm_free_pgd(mm); 1164 fail_mm_init: 1165 free_mm(mm); 1166 return NULL; 1167 } 1168 1169 /* 1170 * Allocate and initialize an mm_struct. 1171 */ 1172 struct mm_struct *mm_alloc(void) 1173 { 1174 struct mm_struct *mm; 1175 1176 mm = allocate_mm(); 1177 if (!mm) 1178 return NULL; 1179 1180 memset(mm, 0, sizeof(*mm)); 1181 return mm_init(mm, current); 1182 } 1183 EXPORT_SYMBOL_IF_KUNIT(mm_alloc); 1184 1185 static inline void __mmput(struct mm_struct *mm) 1186 { 1187 VM_BUG_ON(atomic_read(&mm->mm_users)); 1188 1189 uprobe_clear_state(mm); 1190 exit_aio(mm); 1191 ksm_exit(mm); 1192 khugepaged_exit(mm); /* must run before exit_mmap */ 1193 exit_mmap(mm); 1194 mm_put_huge_zero_folio(mm); 1195 set_mm_exe_file(mm, NULL); 1196 if (!list_empty(&mm->mmlist)) { 1197 spin_lock(&mmlist_lock); 1198 list_del(&mm->mmlist); 1199 spin_unlock(&mmlist_lock); 1200 } 1201 if (mm->binfmt) 1202 module_put(mm->binfmt->module); 1203 lru_gen_del_mm(mm); 1204 futex_hash_free(mm); 1205 mmdrop(mm); 1206 } 1207 1208 /* 1209 * Decrement the use count and release all resources for an mm. 1210 */ 1211 void mmput(struct mm_struct *mm) 1212 { 1213 might_sleep(); 1214 1215 if (atomic_dec_and_test(&mm->mm_users)) 1216 __mmput(mm); 1217 } 1218 EXPORT_SYMBOL_GPL(mmput); 1219 1220 #if defined(CONFIG_MMU) || defined(CONFIG_FUTEX_PRIVATE_HASH) 1221 static void mmput_async_fn(struct work_struct *work) 1222 { 1223 struct mm_struct *mm = container_of(work, struct mm_struct, 1224 async_put_work); 1225 1226 __mmput(mm); 1227 } 1228 1229 void mmput_async(struct mm_struct *mm) 1230 { 1231 if (atomic_dec_and_test(&mm->mm_users)) { 1232 INIT_WORK(&mm->async_put_work, mmput_async_fn); 1233 schedule_work(&mm->async_put_work); 1234 } 1235 } 1236 EXPORT_SYMBOL_GPL(mmput_async); 1237 #endif 1238 1239 /** 1240 * set_mm_exe_file - change a reference to the mm's executable file 1241 * @mm: The mm to change. 1242 * @new_exe_file: The new file to use. 1243 * 1244 * This changes mm's executable file (shown as symlink /proc/[pid]/exe). 1245 * 1246 * Main users are mmput() and sys_execve(). Callers prevent concurrent 1247 * invocations: in mmput() nobody alive left, in execve it happens before 1248 * the new mm is made visible to anyone. 1249 * 1250 * Can only fail if new_exe_file != NULL. 1251 */ 1252 int set_mm_exe_file(struct mm_struct *mm, struct file *new_exe_file) 1253 { 1254 struct file *old_exe_file; 1255 1256 /* 1257 * It is safe to dereference the exe_file without RCU as 1258 * this function is only called if nobody else can access 1259 * this mm -- see comment above for justification. 1260 */ 1261 old_exe_file = rcu_dereference_raw(mm->exe_file); 1262 1263 if (new_exe_file) { 1264 /* 1265 * We expect the caller (i.e., sys_execve) to already denied 1266 * write access, so this is unlikely to fail. 1267 */ 1268 if (unlikely(exe_file_deny_write_access(new_exe_file))) 1269 return -EACCES; 1270 get_file(new_exe_file); 1271 } 1272 rcu_assign_pointer(mm->exe_file, new_exe_file); 1273 if (old_exe_file) { 1274 exe_file_allow_write_access(old_exe_file); 1275 fput(old_exe_file); 1276 } 1277 return 0; 1278 } 1279 1280 /** 1281 * replace_mm_exe_file - replace a reference to the mm's executable file 1282 * @mm: The mm to change. 1283 * @new_exe_file: The new file to use. 1284 * 1285 * This changes mm's executable file (shown as symlink /proc/[pid]/exe). 1286 * 1287 * Main user is sys_prctl(PR_SET_MM_MAP/EXE_FILE). 1288 */ 1289 int replace_mm_exe_file(struct mm_struct *mm, struct file *new_exe_file) 1290 { 1291 struct vm_area_struct *vma; 1292 struct file *old_exe_file; 1293 int ret = 0; 1294 1295 /* Forbid mm->exe_file change if old file still mapped. */ 1296 old_exe_file = get_mm_exe_file(mm); 1297 if (old_exe_file) { 1298 VMA_ITERATOR(vmi, mm, 0); 1299 mmap_read_lock(mm); 1300 for_each_vma(vmi, vma) { 1301 if (!vma->vm_file) 1302 continue; 1303 if (path_equal(&vma->vm_file->f_path, 1304 &old_exe_file->f_path)) { 1305 ret = -EBUSY; 1306 break; 1307 } 1308 } 1309 mmap_read_unlock(mm); 1310 fput(old_exe_file); 1311 if (ret) 1312 return ret; 1313 } 1314 1315 ret = exe_file_deny_write_access(new_exe_file); 1316 if (ret) 1317 return -EACCES; 1318 get_file(new_exe_file); 1319 1320 /* set the new file */ 1321 mmap_write_lock(mm); 1322 old_exe_file = rcu_dereference_raw(mm->exe_file); 1323 rcu_assign_pointer(mm->exe_file, new_exe_file); 1324 mmap_write_unlock(mm); 1325 1326 if (old_exe_file) { 1327 exe_file_allow_write_access(old_exe_file); 1328 fput(old_exe_file); 1329 } 1330 return 0; 1331 } 1332 1333 /** 1334 * get_mm_exe_file - acquire a reference to the mm's executable file 1335 * @mm: The mm of interest. 1336 * 1337 * Returns %NULL if mm has no associated executable file. 1338 * User must release file via fput(). 1339 */ 1340 struct file *get_mm_exe_file(struct mm_struct *mm) 1341 { 1342 struct file *exe_file; 1343 1344 rcu_read_lock(); 1345 exe_file = get_file_rcu(&mm->exe_file); 1346 rcu_read_unlock(); 1347 return exe_file; 1348 } 1349 1350 /** 1351 * get_task_exe_file - acquire a reference to the task's executable file 1352 * @task: The task. 1353 * 1354 * Returns %NULL if task's mm (if any) has no associated executable file or 1355 * this is a kernel thread with borrowed mm (see the comment above get_task_mm). 1356 * User must release file via fput(). 1357 */ 1358 struct file *get_task_exe_file(struct task_struct *task) 1359 { 1360 struct file *exe_file = NULL; 1361 struct mm_struct *mm; 1362 1363 if (task->flags & PF_KTHREAD) 1364 return NULL; 1365 1366 task_lock(task); 1367 mm = task->mm; 1368 if (mm) 1369 exe_file = get_mm_exe_file(mm); 1370 task_unlock(task); 1371 return exe_file; 1372 } 1373 1374 /** 1375 * get_task_mm - acquire a reference to the task's mm 1376 * @task: The task. 1377 * 1378 * Returns %NULL if the task has no mm. Checks PF_KTHREAD (meaning 1379 * this kernel workthread has transiently adopted a user mm with kthread_use_mm, 1380 * to do its AIO) is not set and if so returns a reference to it, after 1381 * bumping up the use count. User must release the mm via mmput() 1382 * after use. Typically used by /proc and ptrace. 1383 */ 1384 struct mm_struct *get_task_mm(struct task_struct *task) 1385 { 1386 struct mm_struct *mm; 1387 1388 if (task->flags & PF_KTHREAD) 1389 return NULL; 1390 1391 task_lock(task); 1392 mm = task->mm; 1393 if (mm) 1394 mmget(mm); 1395 task_unlock(task); 1396 return mm; 1397 } 1398 EXPORT_SYMBOL_GPL(get_task_mm); 1399 1400 static bool may_access_mm(struct mm_struct *mm, struct task_struct *task, unsigned int mode) 1401 { 1402 if (mm == current->mm) 1403 return true; 1404 if (ptrace_may_access(task, mode)) 1405 return true; 1406 if ((mode & PTRACE_MODE_READ) && perfmon_capable()) 1407 return true; 1408 return false; 1409 } 1410 1411 struct mm_struct *mm_access(struct task_struct *task, unsigned int mode) 1412 { 1413 struct mm_struct *mm; 1414 int err; 1415 1416 err = down_read_killable(&task->signal->exec_update_lock); 1417 if (err) 1418 return ERR_PTR(err); 1419 1420 mm = get_task_mm(task); 1421 if (!mm) { 1422 mm = ERR_PTR(-ESRCH); 1423 } else if (!may_access_mm(mm, task, mode)) { 1424 mmput(mm); 1425 mm = ERR_PTR(-EACCES); 1426 } 1427 up_read(&task->signal->exec_update_lock); 1428 1429 return mm; 1430 } 1431 1432 static void complete_vfork_done(struct task_struct *tsk) 1433 { 1434 struct completion *vfork; 1435 1436 task_lock(tsk); 1437 vfork = tsk->vfork_done; 1438 if (likely(vfork)) { 1439 tsk->vfork_done = NULL; 1440 complete(vfork); 1441 } 1442 task_unlock(tsk); 1443 } 1444 1445 static int wait_for_vfork_done(struct task_struct *child, 1446 struct completion *vfork) 1447 { 1448 unsigned int state = TASK_KILLABLE|TASK_FREEZABLE; 1449 int killed; 1450 1451 cgroup_enter_frozen(); 1452 killed = wait_for_completion_state(vfork, state); 1453 cgroup_leave_frozen(false); 1454 1455 if (killed) { 1456 task_lock(child); 1457 child->vfork_done = NULL; 1458 task_unlock(child); 1459 } 1460 1461 put_task_struct(child); 1462 return killed; 1463 } 1464 1465 /* Please note the differences between mmput and mm_release. 1466 * mmput is called whenever we stop holding onto a mm_struct, 1467 * error success whatever. 1468 * 1469 * mm_release is called after a mm_struct has been removed 1470 * from the current process. 1471 * 1472 * This difference is important for error handling, when we 1473 * only half set up a mm_struct for a new process and need to restore 1474 * the old one. Because we mmput the new mm_struct before 1475 * restoring the old one. . . 1476 * Eric Biederman 10 January 1998 1477 */ 1478 static void mm_release(struct task_struct *tsk, struct mm_struct *mm) 1479 { 1480 uprobe_free_utask(tsk); 1481 1482 /* Get rid of any cached register state */ 1483 deactivate_mm(tsk, mm); 1484 1485 /* 1486 * Signal userspace if we're not exiting with a core dump 1487 * because we want to leave the value intact for debugging 1488 * purposes. 1489 */ 1490 if (tsk->clear_child_tid) { 1491 if (atomic_read(&mm->mm_users) > 1) { 1492 /* 1493 * We don't check the error code - if userspace has 1494 * not set up a proper pointer then tough luck. 1495 */ 1496 put_user(0, tsk->clear_child_tid); 1497 do_futex(tsk->clear_child_tid, FUTEX_WAKE, 1498 1, NULL, NULL, 0, 0); 1499 } 1500 tsk->clear_child_tid = NULL; 1501 } 1502 1503 /* 1504 * All done, finally we can wake up parent and return this mm to him. 1505 * Also kthread_stop() uses this completion for synchronization. 1506 */ 1507 if (tsk->vfork_done) 1508 complete_vfork_done(tsk); 1509 } 1510 1511 void mm_exit_exec_release(struct task_struct *tsk, struct mm_struct *mm) 1512 { 1513 futex_exit_exec_release(tsk); 1514 mm_release(tsk, mm); 1515 } 1516 1517 /** 1518 * dup_mm() - duplicates an existing mm structure 1519 * @tsk: the task_struct with which the new mm will be associated. 1520 * @oldmm: the mm to duplicate. 1521 * 1522 * Allocates a new mm structure and duplicates the provided @oldmm structure 1523 * content into it. 1524 * 1525 * Return: the duplicated mm or NULL on failure. 1526 */ 1527 static struct mm_struct *dup_mm(struct task_struct *tsk, 1528 struct mm_struct *oldmm) 1529 { 1530 struct mm_struct *mm; 1531 int err; 1532 1533 mm = allocate_mm(); 1534 if (!mm) 1535 goto fail_nomem; 1536 1537 memcpy(mm, oldmm, sizeof(*mm)); 1538 1539 if (!mm_init(mm, tsk)) 1540 goto fail_nomem; 1541 1542 uprobe_start_dup_mmap(); 1543 err = dup_mmap(mm, oldmm); 1544 if (err) 1545 goto free_pt; 1546 uprobe_end_dup_mmap(); 1547 1548 mm->hiwater_rss = get_mm_rss(mm); 1549 mm->hiwater_vm = mm->total_vm; 1550 1551 if (mm->binfmt && !try_module_get(mm->binfmt->module)) 1552 goto free_pt; 1553 1554 return mm; 1555 1556 free_pt: 1557 /* don't put binfmt in mmput, we haven't got module yet */ 1558 mm->binfmt = NULL; 1559 mm_init_owner(mm, NULL); 1560 mmput(mm); 1561 if (err) 1562 uprobe_end_dup_mmap(); 1563 1564 fail_nomem: 1565 return NULL; 1566 } 1567 1568 static int copy_mm(u64 clone_flags, struct task_struct *tsk) 1569 { 1570 struct mm_struct *mm, *oldmm; 1571 1572 tsk->min_flt = tsk->maj_flt = 0; 1573 tsk->nvcsw = tsk->nivcsw = 0; 1574 #ifdef CONFIG_DETECT_HUNG_TASK 1575 tsk->last_switch_count = tsk->nvcsw + tsk->nivcsw; 1576 tsk->last_switch_time = 0; 1577 #endif 1578 1579 tsk->mm = NULL; 1580 tsk->active_mm = NULL; 1581 1582 /* 1583 * Are we cloning a kernel thread? 1584 * 1585 * We need to steal a active VM for that.. 1586 */ 1587 oldmm = current->mm; 1588 if (!oldmm) 1589 return 0; 1590 1591 if (clone_flags & CLONE_VM) { 1592 mmget(oldmm); 1593 mm = oldmm; 1594 } else { 1595 mm = dup_mm(tsk, current->mm); 1596 if (!mm) 1597 return -ENOMEM; 1598 } 1599 1600 tsk->mm = mm; 1601 tsk->active_mm = mm; 1602 return 0; 1603 } 1604 1605 static int copy_exec_state(u64 clone_flags, struct task_struct *tsk) 1606 { 1607 struct task_exec_state *exec_state; 1608 1609 /* CLONE_VM siblings refcount-share the parent's exec_state. */ 1610 if (clone_flags & CLONE_VM) { 1611 exec_state = rcu_dereference_protected(current->exec_state, true); 1612 refcount_inc(&exec_state->count); 1613 rcu_assign_pointer(tsk->exec_state, exec_state); 1614 return 0; 1615 } 1616 1617 /* Everyone else inherits a fresh copy. */ 1618 return task_exec_state_copy(tsk); 1619 } 1620 1621 static int copy_fs(u64 clone_flags, struct task_struct *tsk, bool umh) 1622 { 1623 struct fs_struct *fs; 1624 1625 /* 1626 * Usermodehelper may copy userspace_init_fs filesystem state but 1627 * they don't get to create mount namespaces, share the 1628 * filesystem state, or be started from a non-initial mount 1629 * namespace. 1630 */ 1631 if (umh) { 1632 if (clone_flags & (CLONE_NEWNS | CLONE_FS)) 1633 return -EINVAL; 1634 if (current->nsproxy->mnt_ns != &init_mnt_ns) 1635 return -EINVAL; 1636 fs = userspace_init_fs; 1637 } else { 1638 fs = current->fs; 1639 VFS_WARN_ON_ONCE(current->fs != current->real_fs); 1640 } 1641 1642 if (clone_flags & CLONE_FS) { 1643 /* tsk->fs is already what we want */ 1644 read_seqlock_excl(&fs->seq); 1645 /* "users" and "in_exec" locked for check_unsafe_exec() */ 1646 if (fs->in_exec) { 1647 read_sequnlock_excl(&fs->seq); 1648 return -EAGAIN; 1649 } 1650 fs->users++; 1651 read_sequnlock_excl(&fs->seq); 1652 return 0; 1653 } 1654 tsk->real_fs = tsk->fs = copy_fs_struct(fs); 1655 if (!tsk->fs) 1656 return -ENOMEM; 1657 return 0; 1658 } 1659 1660 static int copy_files(u64 clone_flags, struct task_struct *tsk, 1661 int no_files) 1662 { 1663 struct files_struct *oldf, *newf; 1664 1665 /* 1666 * A background process may not have any files ... 1667 */ 1668 oldf = current->files; 1669 if (!oldf) 1670 return 0; 1671 1672 if (no_files) { 1673 tsk->files = NULL; 1674 return 0; 1675 } 1676 1677 if (clone_flags & CLONE_FILES) { 1678 atomic_inc(&oldf->count); 1679 return 0; 1680 } 1681 1682 newf = dup_fd(oldf, NULL); 1683 if (IS_ERR(newf)) 1684 return PTR_ERR(newf); 1685 1686 tsk->files = newf; 1687 return 0; 1688 } 1689 1690 static int copy_sighand(u64 clone_flags, struct task_struct *tsk) 1691 { 1692 struct sighand_struct *sig; 1693 1694 if (clone_flags & CLONE_SIGHAND) { 1695 refcount_inc(¤t->sighand->count); 1696 return 0; 1697 } 1698 sig = kmem_cache_alloc(sighand_cachep, GFP_KERNEL); 1699 RCU_INIT_POINTER(tsk->sighand, sig); 1700 if (!sig) 1701 return -ENOMEM; 1702 1703 refcount_set(&sig->count, 1); 1704 spin_lock_irq(¤t->sighand->siglock); 1705 memcpy(sig->action, current->sighand->action, sizeof(sig->action)); 1706 spin_unlock_irq(¤t->sighand->siglock); 1707 1708 /* Reset all signal handler not set to SIG_IGN to SIG_DFL. */ 1709 if (clone_flags & CLONE_CLEAR_SIGHAND) 1710 flush_signal_handlers(tsk, 0); 1711 1712 return 0; 1713 } 1714 1715 void __cleanup_sighand(struct sighand_struct *sighand) 1716 { 1717 if (refcount_dec_and_test(&sighand->count)) { 1718 signalfd_cleanup(sighand); 1719 /* 1720 * sighand_cachep is SLAB_TYPESAFE_BY_RCU so we can free it 1721 * without an RCU grace period, see __lock_task_sighand(). 1722 */ 1723 kmem_cache_free(sighand_cachep, sighand); 1724 } 1725 } 1726 1727 /* 1728 * Initialize POSIX timer handling for a thread group. 1729 */ 1730 static void posix_cpu_timers_init_group(struct signal_struct *sig) 1731 { 1732 struct posix_cputimers *pct = &sig->posix_cputimers; 1733 unsigned long cpu_limit; 1734 1735 cpu_limit = READ_ONCE(sig->rlim[RLIMIT_CPU].rlim_cur); 1736 posix_cputimers_group_init(pct, cpu_limit); 1737 } 1738 1739 static int copy_signal(u64 clone_flags, struct task_struct *tsk) 1740 { 1741 struct signal_struct *sig; 1742 1743 if (clone_flags & CLONE_THREAD) 1744 return 0; 1745 1746 sig = kmem_cache_zalloc(signal_cachep, GFP_KERNEL); 1747 tsk->signal = sig; 1748 if (!sig) 1749 return -ENOMEM; 1750 1751 sig->nr_threads = 1; 1752 sig->quick_threads = 1; 1753 atomic_set(&sig->live, 1); 1754 refcount_set(&sig->sigcnt, 1); 1755 1756 /* list_add(thread_node, thread_head) without INIT_LIST_HEAD() */ 1757 sig->thread_head = (struct list_head)LIST_HEAD_INIT(tsk->thread_node); 1758 tsk->thread_node = (struct list_head)LIST_HEAD_INIT(sig->thread_head); 1759 1760 init_waitqueue_head(&sig->wait_chldexit); 1761 sig->curr_target = tsk; 1762 init_sigpending(&sig->shared_pending); 1763 INIT_HLIST_HEAD(&sig->multiprocess); 1764 seqlock_init(&sig->stats_lock); 1765 prev_cputime_init(&sig->prev_cputime); 1766 1767 #ifdef CONFIG_POSIX_TIMERS 1768 INIT_HLIST_HEAD(&sig->posix_timers); 1769 INIT_HLIST_HEAD(&sig->ignored_posix_timers); 1770 hrtimer_setup(&sig->real_timer, it_real_fn, CLOCK_MONOTONIC, HRTIMER_MODE_REL); 1771 #endif 1772 1773 task_lock(current->group_leader); 1774 memcpy(sig->rlim, current->signal->rlim, sizeof sig->rlim); 1775 task_unlock(current->group_leader); 1776 1777 posix_cpu_timers_init_group(sig); 1778 1779 tty_audit_fork(sig); 1780 sched_autogroup_fork(sig); 1781 1782 #ifdef CONFIG_CGROUPS 1783 init_rwsem(&sig->cgroup_threadgroup_rwsem); 1784 #endif 1785 1786 sig->oom_score_adj = current->signal->oom_score_adj; 1787 sig->oom_score_adj_min = current->signal->oom_score_adj_min; 1788 1789 mutex_init(&sig->cred_guard_mutex); 1790 init_rwsem(&sig->exec_update_lock); 1791 1792 return 0; 1793 } 1794 1795 static void copy_seccomp(struct task_struct *p) 1796 { 1797 #ifdef CONFIG_SECCOMP 1798 /* 1799 * Must be called with sighand->lock held, which is common to 1800 * all threads in the group. Holding cred_guard_mutex is not 1801 * needed because this new task is not yet running and cannot 1802 * be racing exec. 1803 */ 1804 assert_spin_locked(¤t->sighand->siglock); 1805 1806 /* Ref-count the new filter user, and assign it. */ 1807 get_seccomp_filter(current); 1808 p->seccomp = current->seccomp; 1809 1810 /* 1811 * Explicitly enable no_new_privs here in case it got set 1812 * between the task_struct being duplicated and holding the 1813 * sighand lock. The seccomp state and nnp must be in sync. 1814 */ 1815 if (task_no_new_privs(current)) 1816 task_set_no_new_privs(p); 1817 1818 /* 1819 * If the parent gained a seccomp mode after copying thread 1820 * flags and between before we held the sighand lock, we have 1821 * to manually enable the seccomp thread flag here. 1822 */ 1823 if (p->seccomp.mode != SECCOMP_MODE_DISABLED) 1824 set_task_syscall_work(p, SECCOMP); 1825 #endif 1826 } 1827 1828 SYSCALL_DEFINE1(set_tid_address, int __user *, tidptr) 1829 { 1830 current->clear_child_tid = tidptr; 1831 1832 return task_pid_vnr(current); 1833 } 1834 1835 static void rt_mutex_init_task(struct task_struct *p) 1836 { 1837 raw_spin_lock_init(&p->pi_lock); 1838 #ifdef CONFIG_RT_MUTEXES 1839 p->pi_waiters = RB_ROOT_CACHED; 1840 p->pi_top_task = NULL; 1841 p->pi_blocked_on = NULL; 1842 #endif 1843 } 1844 1845 static inline void init_task_pid_links(struct task_struct *task) 1846 { 1847 enum pid_type type; 1848 1849 for (type = PIDTYPE_PID; type < PIDTYPE_MAX; ++type) 1850 INIT_HLIST_NODE(&task->pid_links[type]); 1851 } 1852 1853 static inline void 1854 init_task_pid(struct task_struct *task, enum pid_type type, struct pid *pid) 1855 { 1856 if (type == PIDTYPE_PID) 1857 task->thread_pid = pid; 1858 else 1859 task->signal->pids[type] = pid; 1860 } 1861 1862 static inline void rcu_copy_process(struct task_struct *p) 1863 { 1864 #ifdef CONFIG_PREEMPT_RCU 1865 p->rcu_read_lock_nesting = 0; 1866 p->rcu_read_unlock_special.s = 0; 1867 p->rcu_blocked_node = NULL; 1868 INIT_LIST_HEAD(&p->rcu_node_entry); 1869 #endif /* #ifdef CONFIG_PREEMPT_RCU */ 1870 #ifdef CONFIG_TASKS_RCU 1871 p->rcu_tasks_holdout = false; 1872 INIT_LIST_HEAD(&p->rcu_tasks_holdout_list); 1873 p->rcu_tasks_idle_cpu = -1; 1874 INIT_LIST_HEAD(&p->rcu_tasks_exit_list); 1875 #endif /* #ifdef CONFIG_TASKS_RCU */ 1876 #ifdef CONFIG_TASKS_TRACE_RCU 1877 p->trc_reader_nesting = 0; 1878 #endif /* #ifdef CONFIG_TASKS_TRACE_RCU */ 1879 } 1880 1881 /** 1882 * pidfd_prepare - allocate a new pidfd_file and reserve a pidfd 1883 * @pid: the struct pid for which to create a pidfd 1884 * @flags: flags of the new @pidfd 1885 * @ret_file: return the new pidfs file 1886 * 1887 * Allocate a new file that stashes @pid and reserve a new pidfd number in the 1888 * caller's file descriptor table. The pidfd is reserved but not installed yet. 1889 * 1890 * The helper verifies that @pid is still in use, without PIDFD_THREAD the 1891 * task identified by @pid must be a thread-group leader. 1892 * 1893 * If this function returns successfully the caller is responsible to either 1894 * call fd_install() passing the returned pidfd and pidfd file as arguments in 1895 * order to install the pidfd into its file descriptor table or they must use 1896 * put_unused_fd() and fput() on the returned pidfd and pidfd file 1897 * respectively. 1898 * 1899 * This function is useful when a pidfd must already be reserved but there 1900 * might still be points of failure afterwards and the caller wants to ensure 1901 * that no pidfd is leaked into its file descriptor table. 1902 * 1903 * Return: On success, a reserved pidfd is returned from the function and a new 1904 * pidfd file is returned in the last argument to the function. On 1905 * error, a negative error code is returned from the function and the 1906 * last argument remains unchanged. 1907 */ 1908 int pidfd_prepare(struct pid *pid, unsigned int flags, struct file **ret_file) 1909 { 1910 struct file *pidfs_file; 1911 1912 /* 1913 * PIDFD_STALE is only allowed to be passed if the caller knows 1914 * that @pid is already registered in pidfs and thus 1915 * PIDFD_INFO_EXIT information is guaranteed to be available. 1916 */ 1917 if (!(flags & PIDFD_STALE)) { 1918 /* 1919 * While holding the pidfd waitqueue lock removing the 1920 * task linkage for the thread-group leader pid 1921 * (PIDTYPE_TGID) isn't possible. Thus, if there's still 1922 * task linkage for PIDTYPE_PID not having thread-group 1923 * leader linkage for the pid means it wasn't a 1924 * thread-group leader in the first place. 1925 */ 1926 guard(spinlock_irq)(&pid->wait_pidfd.lock); 1927 1928 /* Task has already been reaped. */ 1929 if (!pid_has_task(pid, PIDTYPE_PID)) 1930 return -ESRCH; 1931 /* 1932 * If this struct pid isn't used as a thread-group 1933 * leader but the caller requested to create a 1934 * thread-group leader pidfd then report ENOENT. 1935 */ 1936 if (!(flags & PIDFD_THREAD) && !pid_has_task(pid, PIDTYPE_TGID)) 1937 return -ENOENT; 1938 } 1939 1940 CLASS(get_unused_fd, pidfd)(O_CLOEXEC); 1941 if (pidfd < 0) 1942 return pidfd; 1943 1944 pidfs_file = pidfs_alloc_file(pid, flags | O_RDWR); 1945 if (IS_ERR(pidfs_file)) 1946 return PTR_ERR(pidfs_file); 1947 1948 *ret_file = pidfs_file; 1949 return take_fd(pidfd); 1950 } 1951 1952 static void __delayed_free_task(struct rcu_head *rhp) 1953 { 1954 struct task_struct *tsk = container_of(rhp, struct task_struct, rcu); 1955 1956 free_task(tsk); 1957 } 1958 1959 static __always_inline void delayed_free_task(struct task_struct *tsk) 1960 { 1961 if (IS_ENABLED(CONFIG_MEMCG)) 1962 call_rcu(&tsk->rcu, __delayed_free_task); 1963 else 1964 free_task(tsk); 1965 } 1966 1967 static void copy_oom_score_adj(u64 clone_flags, struct task_struct *tsk) 1968 { 1969 /* Skip if kernel thread */ 1970 if (!tsk->mm) 1971 return; 1972 1973 /* Skip if spawning a thread or using vfork */ 1974 if ((clone_flags & (CLONE_VM | CLONE_THREAD | CLONE_VFORK)) != CLONE_VM) 1975 return; 1976 1977 /* We need to synchronize with __set_oom_adj */ 1978 mutex_lock(&oom_adj_mutex); 1979 mm_flags_set(MMF_MULTIPROCESS, tsk->mm); 1980 /* Update the values in case they were changed after copy_signal */ 1981 tsk->signal->oom_score_adj = current->signal->oom_score_adj; 1982 tsk->signal->oom_score_adj_min = current->signal->oom_score_adj_min; 1983 mutex_unlock(&oom_adj_mutex); 1984 } 1985 1986 #ifdef CONFIG_RV 1987 static void rv_task_fork(struct task_struct *p) 1988 { 1989 memset(&p->rv, 0, sizeof(p->rv)); 1990 } 1991 #else 1992 #define rv_task_fork(p) do {} while (0) 1993 #endif 1994 1995 static bool need_futex_hash_allocate_default(u64 clone_flags) 1996 { 1997 /* 1998 * Allocate a default futex hash for any sibling that will 1999 * share the parent's mm, except vfork. 2000 */ 2001 return (clone_flags & (CLONE_VM | CLONE_VFORK)) == CLONE_VM; 2002 } 2003 2004 /* 2005 * This creates a new process as a copy of the old one, 2006 * but does not actually start it yet. 2007 * 2008 * It copies the registers, and all the appropriate 2009 * parts of the process environment (as per the clone 2010 * flags). The actual kick-off is left to the caller. 2011 */ 2012 __latent_entropy struct task_struct *copy_process( 2013 struct pid *pid, 2014 int trace, 2015 int node, 2016 struct kernel_clone_args *args) 2017 { 2018 int pidfd = -1, retval; 2019 struct task_struct *p; 2020 struct multiprocess_signals delayed; 2021 struct file *pidfile = NULL; 2022 const u64 clone_flags = args->flags; 2023 struct nsproxy *nsp = current->nsproxy; 2024 2025 /* 2026 * Don't allow sharing the root directory with processes in a different 2027 * namespace 2028 */ 2029 if ((clone_flags & (CLONE_NEWNS|CLONE_FS)) == (CLONE_NEWNS|CLONE_FS)) 2030 return ERR_PTR(-EINVAL); 2031 2032 if ((clone_flags & (CLONE_NEWUSER|CLONE_FS)) == (CLONE_NEWUSER|CLONE_FS)) 2033 return ERR_PTR(-EINVAL); 2034 2035 /* 2036 * Thread groups must share signals as well, and detached threads 2037 * can only be started up within the thread group. 2038 */ 2039 if ((clone_flags & CLONE_THREAD) && !(clone_flags & CLONE_SIGHAND)) 2040 return ERR_PTR(-EINVAL); 2041 2042 /* 2043 * Shared signal handlers imply shared VM. By way of the above, 2044 * thread groups also imply shared VM. Blocking this case allows 2045 * for various simplifications in other code. 2046 */ 2047 if ((clone_flags & CLONE_SIGHAND) && !(clone_flags & CLONE_VM)) 2048 return ERR_PTR(-EINVAL); 2049 2050 /* 2051 * Siblings of global init remain as zombies on exit since they are 2052 * not reaped by their parent (swapper). To solve this and to avoid 2053 * multi-rooted process trees, prevent global and container-inits 2054 * from creating siblings. 2055 */ 2056 if ((clone_flags & CLONE_PARENT) && 2057 current->signal->flags & SIGNAL_UNKILLABLE) 2058 return ERR_PTR(-EINVAL); 2059 2060 /* 2061 * If the new process will be in a different pid or user namespace 2062 * do not allow it to share a thread group with the forking task. 2063 */ 2064 if (clone_flags & CLONE_THREAD) { 2065 if ((clone_flags & (CLONE_NEWUSER | CLONE_NEWPID)) || 2066 (task_active_pid_ns(current) != nsp->pid_ns_for_children)) 2067 return ERR_PTR(-EINVAL); 2068 } 2069 2070 if (clone_flags & CLONE_PIDFD) { 2071 /* 2072 * - CLONE_DETACHED is blocked so that we can potentially 2073 * reuse it later for CLONE_PIDFD. 2074 */ 2075 if (clone_flags & CLONE_DETACHED) 2076 return ERR_PTR(-EINVAL); 2077 } 2078 2079 if (clone_flags & CLONE_AUTOREAP) { 2080 if (clone_flags & CLONE_THREAD) 2081 return ERR_PTR(-EINVAL); 2082 if (clone_flags & CLONE_PARENT) 2083 return ERR_PTR(-EINVAL); 2084 if (args->exit_signal) 2085 return ERR_PTR(-EINVAL); 2086 } 2087 2088 if ((clone_flags & CLONE_PARENT) && current->signal->autoreap) 2089 return ERR_PTR(-EINVAL); 2090 2091 if (clone_flags & CLONE_NNP) { 2092 if (clone_flags & CLONE_THREAD) 2093 return ERR_PTR(-EINVAL); 2094 } 2095 2096 if (clone_flags & CLONE_PIDFD_AUTOKILL) { 2097 if (!(clone_flags & CLONE_PIDFD)) 2098 return ERR_PTR(-EINVAL); 2099 if (!(clone_flags & CLONE_AUTOREAP)) 2100 return ERR_PTR(-EINVAL); 2101 if (clone_flags & CLONE_THREAD) 2102 return ERR_PTR(-EINVAL); 2103 /* 2104 * Without CLONE_NNP the child could escalate privileges 2105 * after being spawned, so require CAP_SYS_ADMIN. 2106 * With CLONE_NNP the child can't gain new privileges, 2107 * so allow unprivileged usage. 2108 */ 2109 if (!(clone_flags & CLONE_NNP) && 2110 !ns_capable(current_user_ns(), CAP_SYS_ADMIN)) 2111 return ERR_PTR(-EPERM); 2112 } 2113 2114 /* 2115 * Force any signals received before this point to be delivered 2116 * before the fork happens. Collect up signals sent to multiple 2117 * processes that happen during the fork and delay them so that 2118 * they appear to happen after the fork. 2119 */ 2120 sigemptyset(&delayed.signal); 2121 INIT_HLIST_NODE(&delayed.node); 2122 2123 spin_lock_irq(¤t->sighand->siglock); 2124 if (!(clone_flags & CLONE_THREAD)) 2125 hlist_add_head(&delayed.node, ¤t->signal->multiprocess); 2126 recalc_sigpending(); 2127 spin_unlock_irq(¤t->sighand->siglock); 2128 retval = -ERESTARTNOINTR; 2129 if (task_sigpending(current)) 2130 goto fork_out; 2131 2132 retval = -ENOMEM; 2133 p = dup_task_struct(current, node); 2134 if (!p) 2135 goto fork_out; 2136 /* 2137 * Must run before the first fallible op, so error paths never 2138 * free the parent's ret_stack. 2139 */ 2140 ftrace_graph_init_task(p); 2141 retval = copy_exec_state(clone_flags, p); 2142 if (retval) 2143 goto bad_fork_free; 2144 p->flags &= ~PF_KTHREAD; 2145 if (args->kthread) 2146 p->flags |= PF_KTHREAD; 2147 if (args->user_worker) { 2148 /* 2149 * Mark us a user worker, and block any signal that isn't 2150 * fatal or STOP 2151 */ 2152 p->flags |= PF_USER_WORKER; 2153 siginitsetinv(&p->blocked, sigmask(SIGKILL)|sigmask(SIGSTOP)); 2154 } 2155 if (args->io_thread) 2156 p->flags |= PF_IO_WORKER; 2157 2158 if (args->name) 2159 strscpy_pad(p->comm, args->name, sizeof(p->comm)); 2160 2161 p->set_child_tid = (clone_flags & CLONE_CHILD_SETTID) ? args->child_tid : NULL; 2162 /* 2163 * TID is cleared in mm_release() when the task exits 2164 */ 2165 p->clear_child_tid = (clone_flags & CLONE_CHILD_CLEARTID) ? args->child_tid : NULL; 2166 2167 rt_mutex_init_task(p); 2168 raw_spin_lock_init(&p->blocked_lock); 2169 2170 lockdep_assert_irqs_enabled(); 2171 #ifdef CONFIG_PROVE_LOCKING 2172 DEBUG_LOCKS_WARN_ON(!p->softirqs_enabled); 2173 #endif 2174 retval = copy_creds(p, clone_flags); 2175 if (retval < 0) 2176 goto bad_fork_free; 2177 2178 retval = -EAGAIN; 2179 if (is_rlimit_overlimit(task_ucounts(p), UCOUNT_RLIMIT_NPROC, rlimit(RLIMIT_NPROC))) { 2180 if (p->real_cred->user != INIT_USER && 2181 !capable(CAP_SYS_RESOURCE) && !capable(CAP_SYS_ADMIN)) 2182 goto bad_fork_cleanup_count; 2183 } 2184 current->flags &= ~PF_NPROC_EXCEEDED; 2185 2186 /* 2187 * If multiple threads are within copy_process(), then this check 2188 * triggers too late. This doesn't hurt, the check is only there 2189 * to stop root fork bombs. 2190 */ 2191 retval = -EAGAIN; 2192 if (data_race(nr_threads >= max_threads)) 2193 goto bad_fork_cleanup_count; 2194 2195 delayacct_tsk_init(p); /* Must remain after dup_task_struct() */ 2196 p->flags &= ~(PF_SUPERPRIV | PF_WQ_WORKER | PF_IDLE | PF_NO_SETAFFINITY); 2197 p->flags |= PF_FORKNOEXEC; 2198 INIT_LIST_HEAD(&p->children); 2199 INIT_LIST_HEAD(&p->sibling); 2200 rcu_copy_process(p); 2201 p->vfork_done = NULL; 2202 spin_lock_init(&p->alloc_lock); 2203 2204 init_sigpending(&p->pending); 2205 2206 p->utime = p->stime = p->gtime = 0; 2207 #ifdef CONFIG_ARCH_HAS_SCALED_CPUTIME 2208 p->utimescaled = p->stimescaled = 0; 2209 #endif 2210 prev_cputime_init(&p->prev_cputime); 2211 2212 #ifdef CONFIG_VIRT_CPU_ACCOUNTING_GEN 2213 seqcount_init(&p->vtime.seqcount); 2214 p->vtime.starttime = 0; 2215 p->vtime.state = VTIME_INACTIVE; 2216 #endif 2217 2218 #ifdef CONFIG_IO_URING 2219 p->io_uring = NULL; 2220 retval = io_uring_fork(p); 2221 if (unlikely(retval)) 2222 goto bad_fork_cleanup_delayacct; 2223 retval = -EAGAIN; 2224 #endif 2225 2226 p->default_timer_slack_ns = current->timer_slack_ns; 2227 2228 #ifdef CONFIG_PSI 2229 p->psi_flags = 0; 2230 #endif 2231 2232 task_io_accounting_init(&p->ioac); 2233 acct_clear_integrals(p); 2234 2235 posix_cputimers_init(&p->posix_cputimers); 2236 tick_dep_init_task(p); 2237 2238 p->io_context = NULL; 2239 audit_set_context(p, NULL); 2240 cgroup_fork(p); 2241 if (args->kthread) { 2242 if (!set_kthread_struct(p)) 2243 goto bad_fork_cleanup_delayacct; 2244 } 2245 #ifdef CONFIG_NUMA 2246 p->mempolicy = mpol_dup(p->mempolicy); 2247 if (IS_ERR(p->mempolicy)) { 2248 retval = PTR_ERR(p->mempolicy); 2249 p->mempolicy = NULL; 2250 goto bad_fork_cleanup_delayacct; 2251 } 2252 #endif 2253 #ifdef CONFIG_CPUSETS 2254 p->cpuset_mem_spread_rotor = NUMA_NO_NODE; 2255 seqcount_spinlock_init(&p->mems_allowed_seq, &p->alloc_lock); 2256 #endif 2257 #ifdef CONFIG_TRACE_IRQFLAGS 2258 memset(&p->irqtrace, 0, sizeof(p->irqtrace)); 2259 p->irqtrace.hardirq_disable_ip = _THIS_IP_; 2260 p->irqtrace.softirq_enable_ip = _THIS_IP_; 2261 p->softirqs_enabled = 1; 2262 p->softirq_context = 0; 2263 #endif 2264 2265 p->pagefault_disabled = 0; 2266 2267 lockdep_init_task(p); 2268 2269 p->blocked_on = NULL; /* not blocked yet */ 2270 p->blocked_donor = NULL; /* nobody is boosting p yet */ 2271 2272 #ifdef CONFIG_BCACHE 2273 p->sequential_io = 0; 2274 p->sequential_io_avg = 0; 2275 #endif 2276 2277 unwind_task_init(p); 2278 2279 /* Perform scheduler related setup. Assign this task to a CPU. */ 2280 retval = sched_fork(clone_flags, p); 2281 if (retval) 2282 goto bad_fork_cleanup_policy; 2283 2284 retval = perf_event_init_task(p, clone_flags); 2285 if (retval) 2286 goto bad_fork_sched_cancel_fork; 2287 retval = audit_alloc(p); 2288 if (retval) 2289 goto bad_fork_cleanup_perf; 2290 /* copy all the process information */ 2291 shm_init_task(p); 2292 retval = security_task_alloc(p, clone_flags); 2293 if (retval) 2294 goto bad_fork_cleanup_audit; 2295 retval = copy_semundo(clone_flags, p); 2296 if (retval) 2297 goto bad_fork_cleanup_security; 2298 retval = copy_files(clone_flags, p, args->no_files); 2299 if (retval) 2300 goto bad_fork_cleanup_semundo; 2301 retval = copy_fs(clone_flags, p, args->umh); 2302 if (retval) 2303 goto bad_fork_cleanup_files; 2304 retval = copy_sighand(clone_flags, p); 2305 if (retval) 2306 goto bad_fork_cleanup_fs; 2307 retval = copy_signal(clone_flags, p); 2308 if (retval) 2309 goto bad_fork_cleanup_sighand; 2310 retval = copy_mm(clone_flags, p); 2311 if (retval) 2312 goto bad_fork_cleanup_signal; 2313 retval = copy_namespaces(clone_flags, p); 2314 if (retval) 2315 goto bad_fork_cleanup_mm; 2316 retval = copy_io(clone_flags, p); 2317 if (retval) 2318 goto bad_fork_cleanup_namespaces; 2319 retval = copy_thread(p, args); 2320 if (retval) 2321 goto bad_fork_cleanup_io; 2322 2323 stackleak_task_init(p); 2324 2325 if (pid != &init_struct_pid) { 2326 pid = alloc_pid(p->nsproxy->pid_ns_for_children, args->set_tid, 2327 args->set_tid_size); 2328 if (IS_ERR(pid)) { 2329 retval = PTR_ERR(pid); 2330 goto bad_fork_cleanup_thread; 2331 } 2332 } 2333 2334 /* 2335 * This has to happen after we've potentially unshared the file 2336 * descriptor table (so that the pidfd doesn't leak into the child 2337 * if the fd table isn't shared). 2338 */ 2339 if (clone_flags & CLONE_PIDFD) { 2340 unsigned flags = PIDFD_STALE; 2341 2342 if (clone_flags & CLONE_THREAD) 2343 flags |= PIDFD_THREAD; 2344 if (clone_flags & CLONE_PIDFD_AUTOKILL) 2345 flags |= PIDFD_AUTOKILL; 2346 2347 /* 2348 * Note that no task has been attached to @pid yet indicate 2349 * that via CLONE_PIDFD. 2350 */ 2351 retval = pidfd_prepare(pid, flags, &pidfile); 2352 if (retval < 0) 2353 goto bad_fork_free_pid; 2354 pidfd = retval; 2355 2356 retval = put_user(pidfd, args->pidfd); 2357 if (retval) 2358 goto bad_fork_put_pidfd; 2359 } 2360 2361 #ifdef CONFIG_BLOCK 2362 p->plug = NULL; 2363 p->flags &= ~PF_BLOCK_TS; 2364 #endif 2365 futex_init_task(p); 2366 2367 /* 2368 * sigaltstack should be cleared when sharing the same VM 2369 */ 2370 if ((clone_flags & (CLONE_VM|CLONE_VFORK)) == CLONE_VM) 2371 sas_ss_reset(p); 2372 2373 /* 2374 * Syscall tracing and stepping should be turned off in the 2375 * child regardless of CLONE_PTRACE. 2376 */ 2377 user_disable_single_step(p); 2378 clear_task_syscall_work(p, SYSCALL_TRACE); 2379 #if defined(CONFIG_GENERIC_ENTRY) || defined(TIF_SYSCALL_EMU) 2380 clear_task_syscall_work(p, SYSCALL_EMU); 2381 #endif 2382 clear_tsk_latency_tracing(p); 2383 2384 /* ok, now we should be set up.. */ 2385 p->pid = pid_nr(pid); 2386 if (clone_flags & CLONE_THREAD) { 2387 p->group_leader = current->group_leader; 2388 p->tgid = current->tgid; 2389 } else { 2390 p->group_leader = p; 2391 p->tgid = p->pid; 2392 } 2393 2394 p->nr_dirtied = 0; 2395 p->nr_dirtied_pause = 128 >> (PAGE_SHIFT - 10); 2396 p->dirty_paused_when = 0; 2397 2398 p->pdeath_signal = 0; 2399 p->task_works = NULL; 2400 clear_posix_cputimers_work(p); 2401 2402 #ifdef CONFIG_KRETPROBES 2403 p->kretprobe_instances.first = NULL; 2404 #endif 2405 #ifdef CONFIG_RETHOOK 2406 p->rethooks.first = NULL; 2407 #endif 2408 2409 /* 2410 * Ensure that the cgroup subsystem policies allow the new process to be 2411 * forked. It should be noted that the new process's css_set can be changed 2412 * between here and cgroup_post_fork() if an organisation operation is in 2413 * progress. 2414 */ 2415 retval = cgroup_can_fork(p, args); 2416 if (retval) 2417 goto bad_fork_put_pidfd; 2418 2419 /* 2420 * Now that the cgroups are pinned, re-clone the parent cgroup and put 2421 * the new task on the correct runqueue. All this *before* the task 2422 * becomes visible. 2423 * 2424 * This isn't part of ->can_fork() because while the re-cloning is 2425 * cgroup specific, it unconditionally needs to place the task on a 2426 * runqueue. 2427 */ 2428 retval = sched_cgroup_fork(p, args); 2429 if (retval) 2430 goto bad_fork_cancel_cgroup; 2431 2432 if (need_futex_hash_allocate_default(clone_flags)) { 2433 retval = futex_hash_allocate_default(); 2434 if (retval) 2435 goto bad_fork_cancel_cgroup; 2436 /* 2437 * If we fail beyond this point we don't free the allocated 2438 * futex hash map. We assume that another thread will be created 2439 * and makes use of it. The hash map will be freed once the main 2440 * thread terminates. 2441 */ 2442 } 2443 /* 2444 * From this point on we must avoid any synchronous user-space 2445 * communication until we take the tasklist-lock. In particular, we do 2446 * not want user-space to be able to predict the process start-time by 2447 * stalling fork(2) after we recorded the start_time but before it is 2448 * visible to the system. 2449 */ 2450 2451 p->start_time = ktime_get_ns(); 2452 p->start_boottime = ktime_get_boottime_ns(); 2453 2454 /* 2455 * Make it visible to the rest of the system, but dont wake it up yet. 2456 * Need tasklist lock for parent etc handling! 2457 */ 2458 write_lock_irq(&tasklist_lock); 2459 2460 /* CLONE_PARENT re-uses the old parent */ 2461 if (clone_flags & (CLONE_PARENT|CLONE_THREAD)) { 2462 p->real_parent = current->real_parent; 2463 p->parent_exec_id = current->parent_exec_id; 2464 if (clone_flags & CLONE_THREAD) 2465 p->exit_signal = -1; 2466 else 2467 p->exit_signal = current->group_leader->exit_signal; 2468 } else { 2469 p->real_parent = current; 2470 p->parent_exec_id = current->self_exec_id; 2471 p->exit_signal = args->exit_signal; 2472 } 2473 2474 klp_copy_process(p); 2475 2476 sched_core_fork(p); 2477 2478 spin_lock(¤t->sighand->siglock); 2479 2480 rv_task_fork(p); 2481 2482 rseq_fork(p, clone_flags); 2483 2484 /* 2485 * If zap_pid_ns_processes() was called after alloc_pid(), the new 2486 * child missed SIGKILL. If current is not in the same namespace, 2487 * we can't rely on fatal_signal_pending() below. 2488 */ 2489 if (unlikely(!(ns_of_pid(pid)->pid_allocated & PIDNS_ADDING))) { 2490 retval = -ENOMEM; 2491 goto bad_fork_core_free; 2492 } 2493 2494 /* Let kill terminate clone/fork in the middle */ 2495 if (fatal_signal_pending(current)) { 2496 retval = -EINTR; 2497 goto bad_fork_core_free; 2498 } 2499 2500 /* No more failure paths after this point. */ 2501 2502 /* 2503 * Copy seccomp details explicitly here, in case they were changed 2504 * before holding sighand lock. 2505 */ 2506 copy_seccomp(p); 2507 2508 if (clone_flags & CLONE_NNP) 2509 task_set_no_new_privs(p); 2510 2511 init_task_pid_links(p); 2512 if (likely(p->pid)) { 2513 ptrace_init_task(p, (clone_flags & CLONE_PTRACE) || trace); 2514 2515 init_task_pid(p, PIDTYPE_PID, pid); 2516 if (thread_group_leader(p)) { 2517 init_task_pid(p, PIDTYPE_TGID, pid); 2518 init_task_pid(p, PIDTYPE_PGID, task_pgrp(current)); 2519 init_task_pid(p, PIDTYPE_SID, task_session(current)); 2520 2521 if (is_child_reaper(pid)) { 2522 struct pid_namespace *ns = ns_of_pid(pid); 2523 2524 ASSERT_EXCLUSIVE_WRITER(ns->child_reaper); 2525 WRITE_ONCE(ns->child_reaper, p); 2526 p->signal->flags |= SIGNAL_UNKILLABLE; 2527 } 2528 p->signal->shared_pending.signal = delayed.signal; 2529 p->signal->tty = tty_kref_get(current->signal->tty); 2530 /* 2531 * Inherit has_child_subreaper flag under the same 2532 * tasklist_lock with adding child to the process tree 2533 * for propagate_has_child_subreaper optimization. 2534 */ 2535 p->signal->has_child_subreaper = p->real_parent->signal->has_child_subreaper || 2536 p->real_parent->signal->is_child_subreaper; 2537 if (clone_flags & CLONE_AUTOREAP) 2538 p->signal->autoreap = 1; 2539 list_add_tail(&p->sibling, &p->real_parent->children); 2540 list_add_tail_rcu(&p->tasks, &init_task.tasks); 2541 attach_pid(p, PIDTYPE_TGID); 2542 attach_pid(p, PIDTYPE_PGID); 2543 attach_pid(p, PIDTYPE_SID); 2544 __this_cpu_inc(process_counts); 2545 } else { 2546 current->signal->nr_threads++; 2547 current->signal->quick_threads++; 2548 atomic_inc(¤t->signal->live); 2549 refcount_inc(¤t->signal->sigcnt); 2550 task_join_group_stop(p); 2551 list_add_tail_rcu(&p->thread_node, 2552 &p->signal->thread_head); 2553 } 2554 attach_pid(p, PIDTYPE_PID); 2555 nr_threads++; 2556 } 2557 total_forks++; 2558 hlist_del_init(&delayed.node); 2559 spin_unlock(¤t->sighand->siglock); 2560 syscall_tracepoint_update(p); 2561 write_unlock_irq(&tasklist_lock); 2562 2563 if (pidfile) 2564 fd_install(pidfd, pidfile); 2565 2566 proc_fork_connector(p); 2567 /* 2568 * sched_ext needs @p to be associated with its cgroup in its post_fork 2569 * hook. cgroup_post_fork() should come before sched_post_fork(). 2570 */ 2571 cgroup_post_fork(p, args); 2572 sched_post_fork(p); 2573 perf_event_fork(p); 2574 2575 trace_task_newtask(p, clone_flags); 2576 uprobe_copy_process(p, clone_flags); 2577 user_events_fork(p, clone_flags); 2578 2579 copy_oom_score_adj(clone_flags, p); 2580 2581 return p; 2582 2583 bad_fork_core_free: 2584 sched_core_free(p); 2585 spin_unlock(¤t->sighand->siglock); 2586 write_unlock_irq(&tasklist_lock); 2587 bad_fork_cancel_cgroup: 2588 cgroup_cancel_fork(p, args); 2589 bad_fork_put_pidfd: 2590 if (clone_flags & CLONE_PIDFD) { 2591 fput(pidfile); 2592 put_unused_fd(pidfd); 2593 } 2594 bad_fork_free_pid: 2595 if (pid != &init_struct_pid) 2596 free_pid(pid); 2597 bad_fork_cleanup_thread: 2598 exit_thread(p); 2599 bad_fork_cleanup_io: 2600 if (p->io_context) 2601 exit_io_context(p); 2602 bad_fork_cleanup_namespaces: 2603 exit_nsproxy_namespaces(p); 2604 bad_fork_cleanup_mm: 2605 if (p->mm) { 2606 mm_clear_owner(p->mm, p); 2607 mmput(p->mm); 2608 } 2609 bad_fork_cleanup_signal: 2610 if (!(clone_flags & CLONE_THREAD)) 2611 free_signal_struct(p->signal); 2612 bad_fork_cleanup_sighand: 2613 __cleanup_sighand(p->sighand); 2614 bad_fork_cleanup_fs: 2615 exit_fs(p); /* blocking */ 2616 bad_fork_cleanup_files: 2617 exit_files(p); /* blocking */ 2618 bad_fork_cleanup_semundo: 2619 exit_sem(p); 2620 bad_fork_cleanup_security: 2621 security_task_free(p); 2622 bad_fork_cleanup_audit: 2623 audit_free(p); 2624 bad_fork_cleanup_perf: 2625 perf_event_free_task(p); 2626 bad_fork_sched_cancel_fork: 2627 sched_cancel_fork(p); 2628 bad_fork_cleanup_policy: 2629 lockdep_free_task(p); 2630 #ifdef CONFIG_NUMA 2631 mpol_put(p->mempolicy); 2632 #endif 2633 bad_fork_cleanup_delayacct: 2634 io_uring_free(p); 2635 delayacct_tsk_free(p); 2636 bad_fork_cleanup_count: 2637 dec_rlimit_ucounts(task_ucounts(p), UCOUNT_RLIMIT_NPROC, 1); 2638 exit_cred_namespaces(p); 2639 exit_creds(p); 2640 bad_fork_free: 2641 WRITE_ONCE(p->__state, TASK_DEAD); 2642 exit_task_stack_account(p); 2643 put_task_stack(p); 2644 delayed_free_task(p); 2645 fork_out: 2646 spin_lock_irq(¤t->sighand->siglock); 2647 hlist_del_init(&delayed.node); 2648 spin_unlock_irq(¤t->sighand->siglock); 2649 return ERR_PTR(retval); 2650 } 2651 2652 static inline void init_idle_pids(struct task_struct *idle) 2653 { 2654 enum pid_type type; 2655 2656 for (type = PIDTYPE_PID; type < PIDTYPE_MAX; ++type) { 2657 INIT_HLIST_NODE(&idle->pid_links[type]); /* not really needed */ 2658 init_task_pid(idle, type, &init_struct_pid); 2659 } 2660 } 2661 2662 static int idle_dummy(void *dummy) 2663 { 2664 /* This function is never called */ 2665 return 0; 2666 } 2667 2668 struct task_struct * __init fork_idle(int cpu) 2669 { 2670 struct task_struct *task; 2671 struct kernel_clone_args args = { 2672 .flags = CLONE_VM, 2673 .fn = &idle_dummy, 2674 .fn_arg = NULL, 2675 .kthread = 1, 2676 .idle = 1, 2677 }; 2678 2679 task = copy_process(&init_struct_pid, 0, cpu_to_node(cpu), &args); 2680 if (!IS_ERR(task)) { 2681 init_idle_pids(task); 2682 init_idle(task, cpu); 2683 } 2684 2685 return task; 2686 } 2687 2688 /* 2689 * This is like kernel_clone(), but shaved down and tailored to just 2690 * creating io_uring workers. It returns a created task, or an error pointer. 2691 * The returned task is inactive, and the caller must fire it up through 2692 * wake_up_new_task(p). All signals are blocked in the created task. 2693 */ 2694 struct task_struct *create_io_thread(int (*fn)(void *), void *arg, int node) 2695 { 2696 unsigned long flags = CLONE_FS|CLONE_FILES|CLONE_SIGHAND|CLONE_THREAD| 2697 CLONE_IO|CLONE_VM|CLONE_UNTRACED; 2698 struct kernel_clone_args args = { 2699 .flags = flags, 2700 .fn = fn, 2701 .fn_arg = arg, 2702 .io_thread = 1, 2703 .user_worker = 1, 2704 }; 2705 2706 return copy_process(NULL, 0, node, &args); 2707 } 2708 2709 /* 2710 * Ok, this is the main fork-routine. 2711 * 2712 * It copies the process, and if successful kick-starts 2713 * it and waits for it to finish using the VM if required. 2714 */ 2715 pid_t kernel_clone(struct kernel_clone_args *args) 2716 { 2717 u64 clone_flags = args->flags; 2718 struct completion vfork; 2719 struct pid *pid; 2720 struct task_struct *p; 2721 int trace = 0; 2722 pid_t nr; 2723 2724 /* 2725 * Creating an empty mount namespace implies creating a new mount 2726 * namespace. Set this before copy_process() so that the 2727 * CLONE_NEWNS|CLONE_FS mutual exclusion check works correctly. 2728 */ 2729 if (clone_flags & CLONE_EMPTY_MNTNS) { 2730 clone_flags |= CLONE_NEWNS; 2731 args->flags = clone_flags; 2732 } 2733 2734 /* 2735 * For legacy clone() calls, CLONE_PIDFD uses the parent_tid argument 2736 * to return the pidfd. Hence, CLONE_PIDFD and CLONE_PARENT_SETTID are 2737 * mutually exclusive. With clone3() CLONE_PIDFD has grown a separate 2738 * field in struct clone_args and it still doesn't make sense to have 2739 * them both point at the same memory location. Performing this check 2740 * here has the advantage that we don't need to have a separate helper 2741 * to check for legacy clone(). 2742 */ 2743 if ((clone_flags & CLONE_PIDFD) && 2744 (clone_flags & CLONE_PARENT_SETTID) && 2745 (args->pidfd == args->parent_tid)) 2746 return -EINVAL; 2747 2748 if (!valid_signal(args->exit_signal)) 2749 return -EINVAL; 2750 2751 /* 2752 * Determine whether and which event to report to ptracer. When 2753 * called from kernel_thread or CLONE_UNTRACED is explicitly 2754 * requested, no event is reported; otherwise, report if the event 2755 * for the type of forking is enabled. 2756 */ 2757 if (!(clone_flags & CLONE_UNTRACED)) { 2758 if (clone_flags & CLONE_VFORK) 2759 trace = PTRACE_EVENT_VFORK; 2760 else if (args->exit_signal != SIGCHLD) 2761 trace = PTRACE_EVENT_CLONE; 2762 else 2763 trace = PTRACE_EVENT_FORK; 2764 2765 if (likely(!ptrace_event_enabled(current, trace))) 2766 trace = 0; 2767 } 2768 2769 p = copy_process(NULL, trace, NUMA_NO_NODE, args); 2770 add_latent_entropy(); 2771 2772 if (IS_ERR(p)) 2773 return PTR_ERR(p); 2774 2775 /* 2776 * Do this prior waking up the new thread - the thread pointer 2777 * might get invalid after that point, if the thread exits quickly. 2778 */ 2779 trace_sched_process_fork(current, p); 2780 2781 pid = get_task_pid(p, PIDTYPE_PID); 2782 nr = pid_vnr(pid); 2783 2784 if (clone_flags & CLONE_PARENT_SETTID) 2785 put_user(nr, args->parent_tid); 2786 2787 if (clone_flags & CLONE_VFORK) { 2788 p->vfork_done = &vfork; 2789 init_completion(&vfork); 2790 get_task_struct(p); 2791 } 2792 2793 if (IS_ENABLED(CONFIG_LRU_GEN_WALKS_MMU) && !(clone_flags & CLONE_VM)) { 2794 /* lock the task to synchronize with memcg migration */ 2795 task_lock(p); 2796 lru_gen_add_mm(p->mm); 2797 task_unlock(p); 2798 } 2799 2800 wake_up_new_task(p); 2801 2802 /* forking complete and child started to run, tell ptracer */ 2803 if (unlikely(trace)) 2804 ptrace_event_pid(trace, pid); 2805 2806 if (clone_flags & CLONE_VFORK) { 2807 if (!wait_for_vfork_done(p, &vfork)) 2808 ptrace_event_pid(PTRACE_EVENT_VFORK_DONE, pid); 2809 } 2810 2811 put_pid(pid); 2812 return nr; 2813 } 2814 2815 /* 2816 * Create a kernel thread. 2817 */ 2818 pid_t kernel_thread(int (*fn)(void *), void *arg, const char *name, 2819 unsigned long flags) 2820 { 2821 struct kernel_clone_args args = { 2822 .flags = ((flags | CLONE_VM | CLONE_UNTRACED) & ~CSIGNAL), 2823 .exit_signal = (flags & CSIGNAL), 2824 .fn = fn, 2825 .fn_arg = arg, 2826 .name = name, 2827 .kthread = 1, 2828 }; 2829 2830 return kernel_clone(&args); 2831 } 2832 2833 /* 2834 * Create a user mode thread. 2835 */ 2836 pid_t user_mode_thread(int (*fn)(void *), void *arg, unsigned long flags) 2837 { 2838 struct kernel_clone_args args = { 2839 .flags = ((flags | CLONE_VM | CLONE_UNTRACED) & ~CSIGNAL), 2840 .exit_signal = (flags & CSIGNAL), 2841 .fn = fn, 2842 .fn_arg = arg, 2843 .umh = 1, 2844 }; 2845 2846 return kernel_clone(&args); 2847 } 2848 2849 #ifdef __ARCH_WANT_SYS_FORK 2850 SYSCALL_DEFINE0(fork) 2851 { 2852 #ifdef CONFIG_MMU 2853 struct kernel_clone_args args = { 2854 .exit_signal = SIGCHLD, 2855 }; 2856 2857 return kernel_clone(&args); 2858 #else 2859 /* can not support in nommu mode */ 2860 return -EINVAL; 2861 #endif 2862 } 2863 #endif 2864 2865 #ifdef __ARCH_WANT_SYS_VFORK 2866 SYSCALL_DEFINE0(vfork) 2867 { 2868 struct kernel_clone_args args = { 2869 .flags = CLONE_VFORK | CLONE_VM, 2870 .exit_signal = SIGCHLD, 2871 }; 2872 2873 return kernel_clone(&args); 2874 } 2875 #endif 2876 2877 #ifdef __ARCH_WANT_SYS_CLONE 2878 #ifdef CONFIG_CLONE_BACKWARDS 2879 SYSCALL_DEFINE5(clone, unsigned long, clone_flags, unsigned long, newsp, 2880 int __user *, parent_tidptr, 2881 unsigned long, tls, 2882 int __user *, child_tidptr) 2883 #elif defined(CONFIG_CLONE_BACKWARDS2) 2884 SYSCALL_DEFINE5(clone, unsigned long, newsp, unsigned long, clone_flags, 2885 int __user *, parent_tidptr, 2886 int __user *, child_tidptr, 2887 unsigned long, tls) 2888 #elif defined(CONFIG_CLONE_BACKWARDS3) 2889 SYSCALL_DEFINE6(clone, unsigned long, clone_flags, unsigned long, newsp, 2890 int, stack_size, 2891 int __user *, parent_tidptr, 2892 int __user *, child_tidptr, 2893 unsigned long, tls) 2894 #else 2895 SYSCALL_DEFINE5(clone, unsigned long, clone_flags, unsigned long, newsp, 2896 int __user *, parent_tidptr, 2897 int __user *, child_tidptr, 2898 unsigned long, tls) 2899 #endif 2900 { 2901 struct kernel_clone_args args = { 2902 .flags = (lower_32_bits(clone_flags) & ~CSIGNAL), 2903 .pidfd = parent_tidptr, 2904 .child_tid = child_tidptr, 2905 .parent_tid = parent_tidptr, 2906 .exit_signal = (lower_32_bits(clone_flags) & CSIGNAL), 2907 .stack = newsp, 2908 .tls = tls, 2909 }; 2910 2911 return kernel_clone(&args); 2912 } 2913 #endif 2914 2915 static noinline int copy_clone_args_from_user(struct kernel_clone_args *kargs, 2916 struct clone_args __user *uargs, 2917 size_t usize) 2918 { 2919 int err; 2920 struct clone_args args; 2921 pid_t *kset_tid = kargs->set_tid; 2922 2923 BUILD_BUG_ON(offsetofend(struct clone_args, tls) != 2924 CLONE_ARGS_SIZE_VER0); 2925 BUILD_BUG_ON(offsetofend(struct clone_args, set_tid_size) != 2926 CLONE_ARGS_SIZE_VER1); 2927 BUILD_BUG_ON(offsetofend(struct clone_args, cgroup) != 2928 CLONE_ARGS_SIZE_VER2); 2929 BUILD_BUG_ON(sizeof(struct clone_args) != CLONE_ARGS_SIZE_VER2); 2930 2931 if (unlikely(usize > PAGE_SIZE)) 2932 return -E2BIG; 2933 if (unlikely(usize < CLONE_ARGS_SIZE_VER0)) 2934 return -EINVAL; 2935 2936 err = copy_struct_from_user(&args, sizeof(args), uargs, usize); 2937 if (err) 2938 return err; 2939 2940 if (unlikely(args.set_tid_size > MAX_PID_NS_LEVEL)) 2941 return -EINVAL; 2942 2943 if (unlikely(!args.set_tid && args.set_tid_size > 0)) 2944 return -EINVAL; 2945 2946 if (unlikely(args.set_tid && args.set_tid_size == 0)) 2947 return -EINVAL; 2948 2949 /* 2950 * Verify that higher 32bits of exit_signal are unset 2951 */ 2952 if (unlikely(args.exit_signal & ~((u64)CSIGNAL))) 2953 return -EINVAL; 2954 2955 if ((args.flags & CLONE_INTO_CGROUP) && 2956 (args.cgroup > INT_MAX || usize < CLONE_ARGS_SIZE_VER2)) 2957 return -EINVAL; 2958 2959 *kargs = (struct kernel_clone_args){ 2960 .flags = args.flags, 2961 .pidfd = u64_to_user_ptr(args.pidfd), 2962 .child_tid = u64_to_user_ptr(args.child_tid), 2963 .parent_tid = u64_to_user_ptr(args.parent_tid), 2964 .exit_signal = args.exit_signal, 2965 .stack = args.stack, 2966 .stack_size = args.stack_size, 2967 .tls = args.tls, 2968 .set_tid_size = args.set_tid_size, 2969 .cgroup = args.cgroup, 2970 }; 2971 2972 if (args.set_tid && 2973 copy_from_user(kset_tid, u64_to_user_ptr(args.set_tid), 2974 (kargs->set_tid_size * sizeof(pid_t)))) 2975 return -EFAULT; 2976 2977 kargs->set_tid = kset_tid; 2978 2979 return 0; 2980 } 2981 2982 /** 2983 * clone3_stack_valid - check and prepare stack 2984 * @kargs: kernel clone args 2985 * 2986 * Verify that the stack arguments userspace gave us are sane. 2987 * In addition, set the stack direction for userspace since it's easy for us to 2988 * determine. 2989 */ 2990 static inline bool clone3_stack_valid(struct kernel_clone_args *kargs) 2991 { 2992 if (kargs->stack == 0) { 2993 if (kargs->stack_size > 0) 2994 return false; 2995 } else { 2996 if (kargs->stack_size == 0) 2997 return false; 2998 2999 if (!access_ok((void __user *)kargs->stack, kargs->stack_size)) 3000 return false; 3001 3002 #if !defined(CONFIG_STACK_GROWSUP) 3003 kargs->stack += kargs->stack_size; 3004 #endif 3005 } 3006 3007 return true; 3008 } 3009 3010 static bool clone3_args_valid(struct kernel_clone_args *kargs) 3011 { 3012 /* Verify that no unknown flags are passed along. */ 3013 if (kargs->flags & 3014 ~(CLONE_LEGACY_FLAGS | CLONE_CLEAR_SIGHAND | 3015 CLONE_INTO_CGROUP | CLONE_AUTOREAP | CLONE_NNP | 3016 CLONE_PIDFD_AUTOKILL | CLONE_EMPTY_MNTNS)) 3017 return false; 3018 3019 /* 3020 * - make the CLONE_DETACHED bit reusable for clone3 3021 * - make the CSIGNAL bits reusable for clone3 3022 */ 3023 if (kargs->flags & (CLONE_DETACHED | (CSIGNAL & (~CLONE_NEWTIME)))) 3024 return false; 3025 3026 if ((kargs->flags & (CLONE_SIGHAND | CLONE_CLEAR_SIGHAND)) == 3027 (CLONE_SIGHAND | CLONE_CLEAR_SIGHAND)) 3028 return false; 3029 3030 if ((kargs->flags & (CLONE_THREAD | CLONE_PARENT)) && 3031 kargs->exit_signal) 3032 return false; 3033 3034 if (!clone3_stack_valid(kargs)) 3035 return false; 3036 3037 return true; 3038 } 3039 3040 /** 3041 * sys_clone3 - create a new process with specific properties 3042 * @uargs: argument structure 3043 * @size: size of @uargs 3044 * 3045 * clone3() is the extensible successor to clone()/clone2(). 3046 * It takes a struct as argument that is versioned by its size. 3047 * 3048 * Return: On success, a positive PID for the child process. 3049 * On error, a negative errno number. 3050 */ 3051 SYSCALL_DEFINE2(clone3, struct clone_args __user *, uargs, size_t, size) 3052 { 3053 int err; 3054 3055 struct kernel_clone_args kargs; 3056 pid_t set_tid[MAX_PID_NS_LEVEL]; 3057 3058 #ifdef __ARCH_BROKEN_SYS_CLONE3 3059 #warning clone3() entry point is missing, please fix 3060 return -ENOSYS; 3061 #endif 3062 3063 kargs.set_tid = set_tid; 3064 3065 err = copy_clone_args_from_user(&kargs, uargs, size); 3066 if (err) 3067 return err; 3068 3069 if (!clone3_args_valid(&kargs)) 3070 return -EINVAL; 3071 3072 return kernel_clone(&kargs); 3073 } 3074 3075 void walk_process_tree(struct task_struct *top, proc_visitor visitor, void *data) 3076 { 3077 struct task_struct *leader, *parent, *child; 3078 int res; 3079 3080 read_lock(&tasklist_lock); 3081 leader = top = top->group_leader; 3082 down: 3083 for_each_thread(leader, parent) { 3084 list_for_each_entry(child, &parent->children, sibling) { 3085 res = visitor(child, data); 3086 if (res) { 3087 if (res < 0) 3088 goto out; 3089 leader = child; 3090 goto down; 3091 } 3092 up: 3093 ; 3094 } 3095 } 3096 3097 if (leader != top) { 3098 child = leader; 3099 parent = child->real_parent; 3100 leader = parent->group_leader; 3101 goto up; 3102 } 3103 out: 3104 read_unlock(&tasklist_lock); 3105 } 3106 3107 #ifndef ARCH_MIN_MMSTRUCT_ALIGN 3108 #define ARCH_MIN_MMSTRUCT_ALIGN 0 3109 #endif 3110 3111 static void sighand_ctor(void *data) 3112 { 3113 struct sighand_struct *sighand = data; 3114 3115 spin_lock_init(&sighand->siglock); 3116 init_waitqueue_head(&sighand->signalfd_wqh); 3117 } 3118 3119 void __init mm_cache_init(void) 3120 { 3121 unsigned int mm_size; 3122 3123 /* 3124 * The mm_cpumask is located at the end of mm_struct, and is 3125 * dynamically sized based on the maximum CPU number this system 3126 * can have, taking hotplug into account (nr_cpu_ids). 3127 */ 3128 mm_size = sizeof(struct mm_struct) + cpumask_size() + mm_cid_size(); 3129 3130 mm_cachep = kmem_cache_create_usercopy("mm_struct", 3131 mm_size, ARCH_MIN_MMSTRUCT_ALIGN, 3132 SLAB_HWCACHE_ALIGN|SLAB_PANIC|SLAB_ACCOUNT, 3133 offsetof(struct mm_struct, saved_auxv), 3134 sizeof_field(struct mm_struct, saved_auxv), 3135 NULL); 3136 } 3137 3138 void __init proc_caches_init(void) 3139 { 3140 sighand_cachep = kmem_cache_create("sighand_cache", 3141 sizeof(struct sighand_struct), 0, 3142 SLAB_HWCACHE_ALIGN|SLAB_PANIC|SLAB_TYPESAFE_BY_RCU| 3143 SLAB_ACCOUNT, sighand_ctor); 3144 signal_cachep = kmem_cache_create("signal_cache", 3145 sizeof(struct signal_struct), 0, 3146 SLAB_HWCACHE_ALIGN|SLAB_PANIC|SLAB_ACCOUNT, 3147 NULL); 3148 exec_state_init(); 3149 files_cachep = kmem_cache_create("files_cache", 3150 sizeof(struct files_struct), 0, 3151 SLAB_HWCACHE_ALIGN|SLAB_PANIC|SLAB_ACCOUNT, 3152 NULL); 3153 fs_cachep = kmem_cache_create("fs_cache", 3154 sizeof(struct fs_struct), 0, 3155 SLAB_HWCACHE_ALIGN|SLAB_PANIC|SLAB_ACCOUNT, 3156 NULL); 3157 mmap_init(); 3158 nsproxy_cache_init(); 3159 } 3160 3161 /* 3162 * Check constraints on flags passed to the unshare system call. 3163 */ 3164 static int check_unshare_flags(unsigned long unshare_flags) 3165 { 3166 if (unshare_flags & ~(CLONE_THREAD|CLONE_FS|CLONE_SIGHAND| 3167 CLONE_VM|CLONE_FILES|CLONE_SYSVSEM| 3168 CLONE_NS_ALL | UNSHARE_EMPTY_MNTNS)) 3169 return -EINVAL; 3170 /* 3171 * Not implemented, but pretend it works if there is nothing 3172 * to unshare. Note that unsharing the address space or the 3173 * signal handlers also need to unshare the signal queues (aka 3174 * CLONE_THREAD). 3175 */ 3176 if (unshare_flags & (CLONE_THREAD | CLONE_SIGHAND | CLONE_VM)) { 3177 if (!thread_group_empty(current)) 3178 return -EINVAL; 3179 } 3180 if (unshare_flags & (CLONE_SIGHAND | CLONE_VM)) { 3181 if (refcount_read(¤t->sighand->count) > 1) 3182 return -EINVAL; 3183 } 3184 if (unshare_flags & CLONE_VM) { 3185 if (!current_is_single_threaded()) 3186 return -EINVAL; 3187 } 3188 3189 return 0; 3190 } 3191 3192 /* 3193 * Unshare the filesystem structure if it is being shared 3194 */ 3195 static int unshare_fs(unsigned long unshare_flags, struct fs_struct **new_fsp) 3196 { 3197 struct fs_struct *fs = current->fs; 3198 3199 if (!(unshare_flags & CLONE_FS) || !fs) 3200 return 0; 3201 3202 /* don't need lock here; in the worst case we'll do useless copy */ 3203 if (!(unshare_flags & CLONE_NEWNS) && fs->users == 1) 3204 return 0; 3205 3206 *new_fsp = copy_fs_struct(fs); 3207 if (!*new_fsp) 3208 return -ENOMEM; 3209 3210 return 0; 3211 } 3212 3213 /* 3214 * Unshare file descriptor table if it is being shared 3215 */ 3216 static int unshare_fd(unsigned long unshare_flags, struct files_struct **new_fdp) 3217 { 3218 struct files_struct *fd = current->files; 3219 3220 if ((unshare_flags & CLONE_FILES) && 3221 (fd && atomic_read(&fd->count) > 1)) { 3222 fd = dup_fd(fd, NULL); 3223 if (IS_ERR(fd)) 3224 return PTR_ERR(fd); 3225 *new_fdp = fd; 3226 } 3227 3228 return 0; 3229 } 3230 3231 /* 3232 * unshare allows a process to 'unshare' part of the process 3233 * context which was originally shared using clone. copy_* 3234 * functions used by kernel_clone() cannot be used here directly 3235 * because they modify an inactive task_struct that is being 3236 * constructed. Here we are modifying the current, active, 3237 * task_struct. 3238 */ 3239 int ksys_unshare(unsigned long unshare_flags) 3240 { 3241 struct fs_struct *new_fs = NULL; 3242 struct files_struct *new_fd = NULL; 3243 struct cred *new_cred = NULL; 3244 struct nsproxy *new_nsproxy = NULL; 3245 int do_sysvsem = 0; 3246 int err; 3247 3248 /* 3249 * If unsharing a user namespace must also unshare the thread group 3250 * and unshare the filesystem root and working directories. 3251 */ 3252 if (unshare_flags & CLONE_NEWUSER) 3253 unshare_flags |= CLONE_THREAD | CLONE_FS; 3254 /* 3255 * If unsharing vm, must also unshare signal handlers. 3256 */ 3257 if (unshare_flags & CLONE_VM) 3258 unshare_flags |= CLONE_SIGHAND; 3259 /* 3260 * If unsharing a signal handlers, must also unshare the signal queues. 3261 */ 3262 if (unshare_flags & CLONE_SIGHAND) 3263 unshare_flags |= CLONE_THREAD; 3264 /* 3265 * If unsharing namespace, must also unshare filesystem information. 3266 */ 3267 if (unshare_flags & UNSHARE_EMPTY_MNTNS) 3268 unshare_flags |= CLONE_NEWNS; 3269 if (unshare_flags & CLONE_NEWNS) 3270 unshare_flags |= CLONE_FS; 3271 3272 /* No unsharing with overriden fs state */ 3273 VFS_WARN_ON_ONCE(unshare_flags & (CLONE_NEWNS | CLONE_FS) && 3274 current->fs != current->real_fs); 3275 3276 err = check_unshare_flags(unshare_flags); 3277 if (err) 3278 goto bad_unshare_out; 3279 /* 3280 * CLONE_NEWIPC must also detach from the undolist: after switching 3281 * to a new ipc namespace, the semaphore arrays from the old 3282 * namespace are unreachable. 3283 */ 3284 if (unshare_flags & (CLONE_NEWIPC|CLONE_SYSVSEM)) 3285 do_sysvsem = 1; 3286 err = unshare_fs(unshare_flags, &new_fs); 3287 if (err) 3288 goto bad_unshare_out; 3289 err = unshare_fd(unshare_flags, &new_fd); 3290 if (err) 3291 goto bad_unshare_cleanup_fs; 3292 err = unshare_userns(unshare_flags, &new_cred); 3293 if (err) 3294 goto bad_unshare_cleanup_fd; 3295 err = unshare_nsproxy_namespaces(unshare_flags, &new_nsproxy, 3296 new_cred, new_fs); 3297 if (err) 3298 goto bad_unshare_cleanup_cred; 3299 if (new_cred) { 3300 err = set_cred_ucounts(new_cred); 3301 if (err) 3302 goto bad_unshare_cleanup_nsproxy; 3303 } 3304 3305 if (new_fs || new_fd || do_sysvsem || new_cred || new_nsproxy) { 3306 if (do_sysvsem) { 3307 /* 3308 * CLONE_SYSVSEM is equivalent to sys_exit(). 3309 */ 3310 exit_sem(current); 3311 } 3312 if (unshare_flags & CLONE_NEWIPC) { 3313 /* Orphan segments in old ns (see sem above). */ 3314 exit_shm(current); 3315 shm_init_task(current); 3316 } 3317 3318 if (new_nsproxy) { 3319 switch_task_namespaces(current, new_nsproxy); 3320 new_nsproxy = NULL; 3321 } 3322 3323 if (new_fs) 3324 new_fs = switch_fs_struct(new_fs); 3325 3326 if (new_fd) { 3327 guard(task_lock)(current); 3328 swap(current->files, new_fd); 3329 } 3330 3331 if (new_cred) { 3332 /* Install the new user namespace */ 3333 commit_creds(new_cred); 3334 new_cred = NULL; 3335 } 3336 } 3337 3338 perf_event_namespaces(current); 3339 3340 bad_unshare_cleanup_nsproxy: 3341 if (new_nsproxy) 3342 put_nsproxy(new_nsproxy); 3343 bad_unshare_cleanup_cred: 3344 if (new_cred) 3345 put_cred(new_cred); 3346 bad_unshare_cleanup_fd: 3347 if (new_fd) 3348 put_files_struct(new_fd); 3349 bad_unshare_cleanup_fs: 3350 if (new_fs) 3351 free_fs_struct(new_fs); 3352 3353 bad_unshare_out: 3354 return err; 3355 } 3356 3357 SYSCALL_DEFINE1(unshare, unsigned long, unshare_flags) 3358 { 3359 return ksys_unshare(unshare_flags); 3360 } 3361 3362 /* 3363 * Helper to unshare the files of the current task. 3364 * We don't want to expose copy_files internals to 3365 * the exec layer of the kernel. 3366 */ 3367 3368 int unshare_files(void) 3369 { 3370 struct task_struct *task = current; 3371 struct files_struct *old, *copy = NULL; 3372 int error; 3373 3374 error = unshare_fd(CLONE_FILES, ©); 3375 if (error || !copy) 3376 return error; 3377 3378 old = task->files; 3379 task_lock(task); 3380 task->files = copy; 3381 task_unlock(task); 3382 put_files_struct(old); 3383 return 0; 3384 } 3385 3386 static int sysctl_max_threads(const struct ctl_table *table, int write, 3387 void *buffer, size_t *lenp, loff_t *ppos) 3388 { 3389 struct ctl_table t; 3390 int ret; 3391 int threads = max_threads; 3392 int min = 1; 3393 int max = MAX_THREADS; 3394 3395 t = *table; 3396 t.data = &threads; 3397 t.extra1 = &min; 3398 t.extra2 = &max; 3399 3400 ret = proc_dointvec_minmax(&t, write, buffer, lenp, ppos); 3401 if (ret || !write) 3402 return ret; 3403 3404 max_threads = threads; 3405 3406 return 0; 3407 } 3408 3409 static const struct ctl_table fork_sysctl_table[] = { 3410 { 3411 .procname = "threads-max", 3412 .data = NULL, 3413 .maxlen = sizeof(int), 3414 .mode = 0644, 3415 .proc_handler = sysctl_max_threads, 3416 }, 3417 }; 3418 3419 static int __init init_fork_sysctl(void) 3420 { 3421 register_sysctl_init("kernel", fork_sysctl_table); 3422 return 0; 3423 } 3424 3425 subsys_initcall(init_fork_sysctl); 3426