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1 /*
2  * Copyright (C) 2008 The Android Open Source Project
3  * All rights reserved.
4  *
5  * Redistribution and use in source and binary forms, with or without
6  * modification, are permitted provided that the following conditions
7  * are met:
8  *  * Redistributions of source code must retain the above copyright
9  *    notice, this list of conditions and the following disclaimer.
10  *  * Redistributions in binary form must reproduce the above copyright
11  *    notice, this list of conditions and the following disclaimer in
12  *    the documentation and/or other materials provided with the
13  *    distribution.
14  *
15  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
16  * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
17  * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
18  * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE
19  * COPYRIGHT OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
20  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
21  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS
22  * OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
23  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
24  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT
25  * OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26  * SUCH DAMAGE.
27  */
28 
29 #include <pthread.h>
30 
31 #include <errno.h>
32 #include <string.h>
33 #include <sys/auxv.h>
34 #include <sys/mman.h>
35 #include <sys/prctl.h>
36 #include <sys/random.h>
37 #include <unistd.h>
38 
39 #include "pthread_internal.h"
40 
41 #include <async_safe/log.h>
42 
43 #include "platform/bionic/macros.h"
44 #include "platform/bionic/mte.h"
45 #include "private/ErrnoRestorer.h"
46 #include "private/ScopedRWLock.h"
47 #include "private/bionic_constants.h"
48 #include "private/bionic_defs.h"
49 #include "private/bionic_globals.h"
50 #include "private/bionic_ssp.h"
51 #include "private/bionic_systrace.h"
52 #include "private/bionic_tls.h"
53 
54 // x86 uses segment descriptors rather than a direct pointer to TLS.
55 #if defined(__i386__)
56 #include <asm/ldt.h>
57 void __init_user_desc(struct user_desc*, bool, void*);
58 #endif
59 
60 __attribute__((no_stack_protector))
__init_tcb_stack_guard(bionic_tcb * tcb)61 void __init_tcb_stack_guard(bionic_tcb* tcb) {
62   // GCC looks in the TLS for the stack guard on x86, so copy it there from our global.
63   tcb->tls_slot(TLS_SLOT_STACK_GUARD) = reinterpret_cast<void*>(__stack_chk_guard);
64 }
65 
__init_bionic_tls_ptrs(bionic_tcb * tcb,bionic_tls * tls)66 void __init_bionic_tls_ptrs(bionic_tcb* tcb, bionic_tls* tls) {
67   tcb->thread()->bionic_tls = tls;
68   tcb->tls_slot(TLS_SLOT_BIONIC_TLS) = tls;
69 }
70 
71 // Allocate a temporary bionic_tls that the dynamic linker's main thread can
72 // use while it's loading the initial set of ELF modules.
__allocate_temp_bionic_tls()73 bionic_tls* __allocate_temp_bionic_tls() {
74   size_t allocation_size = __BIONIC_ALIGN(sizeof(bionic_tls), PAGE_SIZE);
75   void* allocation = mmap(nullptr, allocation_size,
76                           PROT_READ | PROT_WRITE,
77                           MAP_PRIVATE | MAP_ANONYMOUS,
78                           -1, 0);
79   if (allocation == MAP_FAILED) {
80     // Avoid strerror because it might need bionic_tls.
81     async_safe_fatal("failed to allocate bionic_tls: error %d", errno);
82   }
83   return static_cast<bionic_tls*>(allocation);
84 }
85 
__free_temp_bionic_tls(bionic_tls * tls)86 void __free_temp_bionic_tls(bionic_tls* tls) {
87   munmap(tls, __BIONIC_ALIGN(sizeof(bionic_tls), PAGE_SIZE));
88 }
89 
__init_alternate_signal_stack(pthread_internal_t * thread)90 static void __init_alternate_signal_stack(pthread_internal_t* thread) {
91   // Create and set an alternate signal stack.
92   int prot = PROT_READ | PROT_WRITE;
93 #ifdef __aarch64__
94   if (atomic_load(&__libc_globals->memtag_stack)) {
95     prot |= PROT_MTE;
96   }
97 #endif
98   void* stack_base = mmap(nullptr, SIGNAL_STACK_SIZE, prot, MAP_PRIVATE | MAP_ANONYMOUS, -1, 0);
99   if (stack_base != MAP_FAILED) {
100     // Create a guard to catch stack overflows in signal handlers.
101     if (mprotect(stack_base, PTHREAD_GUARD_SIZE, PROT_NONE) == -1) {
102       munmap(stack_base, SIGNAL_STACK_SIZE);
103       return;
104     }
105     stack_t ss;
106     ss.ss_sp = reinterpret_cast<uint8_t*>(stack_base) + PTHREAD_GUARD_SIZE;
107     ss.ss_size = SIGNAL_STACK_SIZE - PTHREAD_GUARD_SIZE;
108     ss.ss_flags = 0;
109     sigaltstack(&ss, nullptr);
110     thread->alternate_signal_stack = stack_base;
111 
112     // We can only use const static allocated string for mapped region name, as Android kernel
113     // uses the string pointer directly when dumping /proc/pid/maps.
114     prctl(PR_SET_VMA, PR_SET_VMA_ANON_NAME, ss.ss_sp, ss.ss_size, "thread signal stack");
115   }
116 }
117 
__init_shadow_call_stack(pthread_internal_t * thread __unused)118 static void __init_shadow_call_stack(pthread_internal_t* thread __unused) {
119 #if defined(__aarch64__) || defined(__riscv)
120   // Allocate the stack and the guard region.
121   char* scs_guard_region = reinterpret_cast<char*>(
122       mmap(nullptr, SCS_GUARD_REGION_SIZE, 0, MAP_PRIVATE | MAP_ANON, -1, 0));
123   thread->shadow_call_stack_guard_region = scs_guard_region;
124 
125   // The address is aligned to SCS_SIZE so that we only need to store the lower log2(SCS_SIZE) bits
126   // in jmp_buf. See the SCS commentary in pthread_internal.h for more detail.
127   char* scs_aligned_guard_region =
128       reinterpret_cast<char*>(align_up(reinterpret_cast<uintptr_t>(scs_guard_region), SCS_SIZE));
129 
130   // We need to ensure that [scs_offset,scs_offset+SCS_SIZE) is in the guard region and that there
131   // is at least one unmapped page after the shadow call stack (to catch stack overflows). We can't
132   // use arc4random_uniform in init because /dev/urandom might not have been created yet.
133   size_t scs_offset =
134       (getpid() == 1) ? 0 : (arc4random_uniform(SCS_GUARD_REGION_SIZE / SCS_SIZE - 1) * SCS_SIZE);
135 
136   // Make the stack read-write, and store its address in the register we're using as the shadow
137   // stack pointer. This is deliberately the only place where the address is stored.
138   char* scs = scs_aligned_guard_region + scs_offset;
139   mprotect(scs, SCS_SIZE, PROT_READ | PROT_WRITE);
140 #if defined(__aarch64__)
141   __asm__ __volatile__("mov x18, %0" ::"r"(scs));
142 #elif defined(__riscv)
143   __asm__ __volatile__("mv gp, %0" ::"r"(scs));
144 #endif
145 #endif
146 }
147 
__init_additional_stacks(pthread_internal_t * thread)148 void __init_additional_stacks(pthread_internal_t* thread) {
149   __init_alternate_signal_stack(thread);
150   __init_shadow_call_stack(thread);
151 }
152 
__init_thread(pthread_internal_t * thread)153 int __init_thread(pthread_internal_t* thread) {
154   thread->cleanup_stack = nullptr;
155 
156   if (__predict_true((thread->attr.flags & PTHREAD_ATTR_FLAG_DETACHED) == 0)) {
157     atomic_init(&thread->join_state, THREAD_NOT_JOINED);
158   } else {
159     atomic_init(&thread->join_state, THREAD_DETACHED);
160   }
161 
162   // Set the scheduling policy/priority of the thread if necessary.
163   bool need_set = true;
164   int policy;
165   sched_param param;
166   if ((thread->attr.flags & PTHREAD_ATTR_FLAG_INHERIT) != 0) {
167     // Unless the parent has SCHED_RESET_ON_FORK set, we've already inherited from the parent.
168     policy = sched_getscheduler(0);
169     need_set = ((policy & SCHED_RESET_ON_FORK) != 0);
170     if (need_set) {
171       if (policy == -1) {
172         async_safe_format_log(ANDROID_LOG_WARN, "libc",
173                               "pthread_create sched_getscheduler failed: %s", strerror(errno));
174         return errno;
175       }
176       if (sched_getparam(0, &param) == -1) {
177         async_safe_format_log(ANDROID_LOG_WARN, "libc",
178                               "pthread_create sched_getparam failed: %s", strerror(errno));
179         return errno;
180       }
181     }
182   } else {
183     policy = thread->attr.sched_policy;
184     param.sched_priority = thread->attr.sched_priority;
185   }
186   // Backwards compatibility: before P, Android didn't have pthread_attr_setinheritsched,
187   // and our behavior was neither of the POSIX behaviors.
188   if ((thread->attr.flags & (PTHREAD_ATTR_FLAG_INHERIT|PTHREAD_ATTR_FLAG_EXPLICIT)) == 0) {
189     need_set = (thread->attr.sched_policy != SCHED_NORMAL);
190   }
191   if (need_set) {
192     if (sched_setscheduler(thread->tid, policy, &param) == -1) {
193       async_safe_format_log(ANDROID_LOG_WARN, "libc",
194                             "pthread_create sched_setscheduler(%d, {%d}) call failed: %s", policy,
195                             param.sched_priority, strerror(errno));
196 #if defined(__LP64__)
197       // For backwards compatibility reasons, we only report failures on 64-bit devices.
198       return errno;
199 #endif
200     }
201   }
202 
203   return 0;
204 }
205 
206 
207 // Allocate a thread's primary mapping. This mapping includes static TLS and
208 // optionally a stack. Static TLS includes ELF TLS segments and the bionic_tls
209 // struct.
210 //
211 // The stack_guard_size must be a multiple of the PAGE_SIZE.
__allocate_thread_mapping(size_t stack_size,size_t stack_guard_size)212 ThreadMapping __allocate_thread_mapping(size_t stack_size, size_t stack_guard_size) {
213   const StaticTlsLayout& layout = __libc_shared_globals()->static_tls_layout;
214 
215   // Allocate in order: stack guard, stack, static TLS, guard page.
216   size_t mmap_size;
217   if (__builtin_add_overflow(stack_size, stack_guard_size, &mmap_size)) return {};
218   if (__builtin_add_overflow(mmap_size, layout.size(), &mmap_size)) return {};
219   if (__builtin_add_overflow(mmap_size, PTHREAD_GUARD_SIZE, &mmap_size)) return {};
220 
221   // Align the result to a page size.
222   const size_t unaligned_size = mmap_size;
223   mmap_size = __BIONIC_ALIGN(mmap_size, PAGE_SIZE);
224   if (mmap_size < unaligned_size) return {};
225 
226   // Create a new private anonymous map. Make the entire mapping PROT_NONE, then carve out a
227   // read+write area in the middle.
228   const int flags = MAP_PRIVATE | MAP_ANONYMOUS | MAP_NORESERVE;
229   char* const space = static_cast<char*>(mmap(nullptr, mmap_size, PROT_NONE, flags, -1, 0));
230   if (space == MAP_FAILED) {
231     async_safe_format_log(ANDROID_LOG_WARN,
232                           "libc",
233                           "pthread_create failed: couldn't allocate %zu-bytes mapped space: %s",
234                           mmap_size, strerror(errno));
235     return {};
236   }
237   const size_t writable_size = mmap_size - stack_guard_size - PTHREAD_GUARD_SIZE;
238   int prot = PROT_READ | PROT_WRITE;
239   const char* prot_str = "R+W";
240 #ifdef __aarch64__
241   if (atomic_load(&__libc_globals->memtag_stack)) {
242     prot |= PROT_MTE;
243     prot_str = "R+W+MTE";
244   }
245 #endif
246   if (mprotect(space + stack_guard_size, writable_size, prot) != 0) {
247     async_safe_format_log(
248         ANDROID_LOG_WARN, "libc",
249         "pthread_create failed: couldn't mprotect %s %zu-byte thread mapping region: %s", prot_str,
250         writable_size, strerror(errno));
251     munmap(space, mmap_size);
252     return {};
253   }
254 
255   ThreadMapping result = {};
256   result.mmap_base = space;
257   result.mmap_size = mmap_size;
258   result.mmap_base_unguarded = space + stack_guard_size;
259   result.mmap_size_unguarded = mmap_size - stack_guard_size - PTHREAD_GUARD_SIZE;
260   result.static_tls = space + mmap_size - PTHREAD_GUARD_SIZE - layout.size();
261   result.stack_base = space;
262   result.stack_top = result.static_tls;
263   return result;
264 }
265 
__allocate_thread(pthread_attr_t * attr,bionic_tcb ** tcbp,void ** child_stack)266 static int __allocate_thread(pthread_attr_t* attr, bionic_tcb** tcbp, void** child_stack) {
267   ThreadMapping mapping;
268   char* stack_top;
269   bool stack_clean = false;
270 
271   if (attr->stack_base == nullptr) {
272     // The caller didn't provide a stack, so allocate one.
273 
274     // Make sure the guard size is a multiple of PAGE_SIZE.
275     const size_t unaligned_guard_size = attr->guard_size;
276     attr->guard_size = __BIONIC_ALIGN(attr->guard_size, PAGE_SIZE);
277     if (attr->guard_size < unaligned_guard_size) return EAGAIN;
278 
279     mapping = __allocate_thread_mapping(attr->stack_size, attr->guard_size);
280     if (mapping.mmap_base == nullptr) return EAGAIN;
281 
282     stack_top = mapping.stack_top;
283     attr->stack_base = mapping.stack_base;
284     stack_clean = true;
285   } else {
286     mapping = __allocate_thread_mapping(0, PTHREAD_GUARD_SIZE);
287     if (mapping.mmap_base == nullptr) return EAGAIN;
288 
289     stack_top = static_cast<char*>(attr->stack_base) + attr->stack_size;
290   }
291 
292   // Carve out space from the stack for the thread's pthread_internal_t. This
293   // memory isn't counted in pthread_attr_getstacksize.
294 
295   // To safely access the pthread_internal_t and thread stack, we need to find a 16-byte aligned boundary.
296   stack_top = align_down(stack_top - sizeof(pthread_internal_t), 16);
297 
298   pthread_internal_t* thread = reinterpret_cast<pthread_internal_t*>(stack_top);
299   if (!stack_clean) {
300     // If thread was not allocated by mmap(), it may not have been cleared to zero.
301     // So assume the worst and zero it.
302     memset(thread, 0, sizeof(pthread_internal_t));
303   }
304 
305   // Locate static TLS structures within the mapped region.
306   const StaticTlsLayout& layout = __libc_shared_globals()->static_tls_layout;
307   auto tcb = reinterpret_cast<bionic_tcb*>(mapping.static_tls + layout.offset_bionic_tcb());
308   auto tls = reinterpret_cast<bionic_tls*>(mapping.static_tls + layout.offset_bionic_tls());
309 
310   // Initialize TLS memory.
311   __init_static_tls(mapping.static_tls);
312   __init_tcb(tcb, thread);
313   __init_tcb_dtv(tcb);
314   __init_tcb_stack_guard(tcb);
315   __init_bionic_tls_ptrs(tcb, tls);
316 
317   attr->stack_size = stack_top - static_cast<char*>(attr->stack_base);
318   thread->attr = *attr;
319   thread->mmap_base = mapping.mmap_base;
320   thread->mmap_size = mapping.mmap_size;
321   thread->mmap_base_unguarded = mapping.mmap_base_unguarded;
322   thread->mmap_size_unguarded = mapping.mmap_size_unguarded;
323   thread->stack_top = reinterpret_cast<uintptr_t>(stack_top);
324 
325   *tcbp = tcb;
326   *child_stack = stack_top;
327   return 0;
328 }
329 
__set_stack_and_tls_vma_name(bool is_main_thread)330 void __set_stack_and_tls_vma_name(bool is_main_thread) {
331   // Name the thread's stack-and-tls area to help with debugging. This mapped area also includes
332   // static TLS data, which is typically a few pages (e.g. bionic_tls).
333   pthread_internal_t* thread = __get_thread();
334   const char* name;
335   if (is_main_thread) {
336     name = "stack_and_tls:main";
337   } else {
338     // The kernel doesn't copy the name string, but this variable will last at least as long as the
339     // mapped area. The mapped area's VMAs are unmapped with a single call to munmap.
340     auto& name_buffer = thread->vma_name_buffer;
341     static_assert(arraysize(name_buffer) >= arraysize("stack_and_tls:") + 11 + 1);
342     async_safe_format_buffer(name_buffer, arraysize(name_buffer), "stack_and_tls:%d", thread->tid);
343     name = name_buffer;
344   }
345   prctl(PR_SET_VMA, PR_SET_VMA_ANON_NAME, thread->mmap_base_unguarded, thread->mmap_size_unguarded,
346         name);
347 }
348 
349 extern "C" int __rt_sigprocmask(int, const sigset64_t*, sigset64_t*, size_t);
350 
351 __attribute__((no_sanitize("hwaddress")))
352 #ifdef __aarch64__
353 // This function doesn't return, but it does appear in stack traces. Avoid using return PAC in this
354 // function because we may end up resetting IA, which may confuse unwinders due to mismatching keys.
355 __attribute__((target("branch-protection=bti")))
356 #endif
__pthread_start(void * arg)357 static int __pthread_start(void* arg) {
358   pthread_internal_t* thread = reinterpret_cast<pthread_internal_t*>(arg);
359 
360   __hwasan_thread_enter();
361 
362   // Wait for our creating thread to release us. This lets it have time to
363   // notify gdb about this thread before we start doing anything.
364   // This also provides the memory barrier needed to ensure that all memory
365   // accesses previously made by the creating thread are visible to us.
366   thread->startup_handshake_lock.lock();
367 
368   __set_stack_and_tls_vma_name(false);
369   __init_additional_stacks(thread);
370   __rt_sigprocmask(SIG_SETMASK, &thread->start_mask, nullptr, sizeof(thread->start_mask));
371 #ifdef __aarch64__
372   // Chrome's sandbox prevents this prctl, so only reset IA if the target SDK level is high enough.
373   // Furthermore, processes loaded from vendor partitions may have their own sandboxes that would
374   // reject the prctl. Because no devices launched with PAC enabled before S, we can avoid issues on
375   // upgrading devices by checking for PAC support before issuing the prctl.
376   static const bool pac_supported = getauxval(AT_HWCAP) & HWCAP_PACA;
377   if (pac_supported && android_get_application_target_sdk_version() >= __ANDROID_API_S__) {
378     prctl(PR_PAC_RESET_KEYS, PR_PAC_APIAKEY, 0, 0, 0);
379   }
380 #endif
381 
382   void* result = thread->start_routine(thread->start_routine_arg);
383   pthread_exit(result);
384 
385   return 0;
386 }
387 
388 // A no-op start routine for pthread_create failures where we've created a thread but aren't
389 // going to run user code on it. We swap out the user's start routine for this and take advantage
390 // of the regular thread teardown to free up resources.
__do_nothing(void *)391 static void* __do_nothing(void*) {
392   return nullptr;
393 }
394 
395 pthread_rwlock_t g_thread_creation_lock = PTHREAD_RWLOCK_INITIALIZER;
396 
397 __BIONIC_WEAK_FOR_NATIVE_BRIDGE
pthread_create(pthread_t * thread_out,pthread_attr_t const * attr,void * (* start_routine)(void *),void * arg)398 int pthread_create(pthread_t* thread_out, pthread_attr_t const* attr,
399                    void* (*start_routine)(void*), void* arg) {
400   ErrnoRestorer errno_restorer;
401 
402   pthread_attr_t thread_attr;
403   ScopedTrace trace("pthread_create");
404   if (attr == nullptr) {
405     pthread_attr_init(&thread_attr);
406   } else {
407     thread_attr = *attr;
408     attr = nullptr; // Prevent misuse below.
409   }
410 
411   bionic_tcb* tcb = nullptr;
412   void* child_stack = nullptr;
413   int result = __allocate_thread(&thread_attr, &tcb, &child_stack);
414   if (result != 0) {
415     return result;
416   }
417 
418   pthread_internal_t* thread = tcb->thread();
419 
420   // Create a lock for the thread to wait on once it starts so we can keep
421   // it from doing anything until after we notify the debugger about it
422   //
423   // This also provides the memory barrier we need to ensure that all
424   // memory accesses previously performed by this thread are visible to
425   // the new thread.
426   thread->startup_handshake_lock.init(false);
427   thread->startup_handshake_lock.lock();
428 
429   thread->start_routine = start_routine;
430   thread->start_routine_arg = arg;
431 
432   thread->set_cached_pid(getpid());
433 
434   int flags = CLONE_VM | CLONE_FS | CLONE_FILES | CLONE_SIGHAND | CLONE_THREAD | CLONE_SYSVSEM |
435       CLONE_SETTLS | CLONE_PARENT_SETTID | CLONE_CHILD_CLEARTID;
436   void* tls = &tcb->tls_slot(0);
437 #if defined(__i386__)
438   // On x86 (but not x86-64), CLONE_SETTLS takes a pointer to a struct user_desc rather than
439   // a pointer to the TLS itself.
440   user_desc tls_descriptor;
441   __init_user_desc(&tls_descriptor, false, tls);
442   tls = &tls_descriptor;
443 #endif
444 
445   ScopedReadLock locker(&g_thread_creation_lock);
446 
447   sigset64_t block_all_mask;
448   sigfillset64(&block_all_mask);
449   __rt_sigprocmask(SIG_SETMASK, &block_all_mask, &thread->start_mask, sizeof(thread->start_mask));
450   int rc = clone(__pthread_start, child_stack, flags, thread, &(thread->tid), tls, &(thread->tid));
451   __rt_sigprocmask(SIG_SETMASK, &thread->start_mask, nullptr, sizeof(thread->start_mask));
452   if (rc == -1) {
453     int clone_errno = errno;
454     // We don't have to unlock the mutex at all because clone(2) failed so there's no child waiting to
455     // be unblocked, but we're about to unmap the memory the mutex is stored in, so this serves as a
456     // reminder that you can't rewrite this function to use a ScopedPthreadMutexLocker.
457     thread->startup_handshake_lock.unlock();
458     if (thread->mmap_size != 0) {
459       munmap(thread->mmap_base, thread->mmap_size);
460     }
461     async_safe_format_log(ANDROID_LOG_WARN, "libc", "pthread_create failed: clone failed: %s",
462                           strerror(clone_errno));
463     return clone_errno;
464   }
465 
466   int init_errno = __init_thread(thread);
467   if (init_errno != 0) {
468     // Mark the thread detached and replace its start_routine with a no-op.
469     // Letting the thread run is the easiest way to clean up its resources.
470     atomic_store(&thread->join_state, THREAD_DETACHED);
471     __pthread_internal_add(thread);
472     thread->start_routine = __do_nothing;
473     thread->startup_handshake_lock.unlock();
474     return init_errno;
475   }
476 
477   // Publish the pthread_t and unlock the mutex to let the new thread start running.
478   *thread_out = __pthread_internal_add(thread);
479   thread->startup_handshake_lock.unlock();
480 
481   return 0;
482 }
483