1 // SPDX-License-Identifier: GPL-2.0 2 3 //! Tasks (threads and processes). 4 //! 5 //! C header: [`include/linux/sched.h`](srctree/include/linux/sched.h). 6 7 use crate::{ 8 bindings, 9 mm::MmWithUser, 10 pid_namespace::PidNamespace, 11 prelude::*, 12 sync::aref::ARef, 13 types::{NotThreadSafe, Opaque}, 14 }; 15 use core::{ 16 ops::Deref, 17 ptr, // 18 }; 19 20 /// A sentinel value used for infinite timeouts. 21 pub const MAX_SCHEDULE_TIMEOUT: c_long = c_long::MAX; 22 23 /// Bitmask for tasks that are sleeping in an interruptible state. 24 pub const TASK_INTERRUPTIBLE: c_int = bindings::TASK_INTERRUPTIBLE as c_int; 25 /// Bitmask for tasks that are sleeping in an uninterruptible state. 26 pub const TASK_UNINTERRUPTIBLE: c_int = bindings::TASK_UNINTERRUPTIBLE as c_int; 27 /// Bitmask for tasks that are sleeping in a freezable state. 28 pub const TASK_FREEZABLE: c_int = bindings::TASK_FREEZABLE as c_int; 29 /// Convenience constant for waking up tasks regardless of whether they are in interruptible or 30 /// uninterruptible sleep. 31 pub const TASK_NORMAL: c_uint = bindings::TASK_NORMAL as c_uint; 32 33 /// Returns the currently running task. 34 #[macro_export] 35 macro_rules! current { 36 () => { 37 // SAFETY: This expression creates a temporary value that is dropped at the end of the 38 // caller's scope. The following mechanisms ensure that the resulting `&CurrentTask` cannot 39 // leave current task context: 40 // 41 // * To return to userspace, the caller must leave the current scope. 42 // * Operations such as `begin_new_exec()` are necessarily unsafe and the caller of 43 // `begin_new_exec()` is responsible for safety. 44 // * Rust abstractions for things such as a `kthread_use_mm()` scope must require the 45 // closure to be `Send`, so the `NotThreadSafe` field of `CurrentTask` ensures that the 46 // `&CurrentTask` cannot cross the scope in either direction. 47 unsafe { &*$crate::task::Task::current() } 48 }; 49 } 50 51 /// Wraps the kernel's `struct task_struct`. 52 /// 53 /// # Invariants 54 /// 55 /// All instances are valid tasks created by the C portion of the kernel. 56 /// 57 /// Instances of this type are always refcounted, that is, a call to `get_task_struct` ensures 58 /// that the allocation remains valid at least until the matching call to `put_task_struct`. 59 /// 60 /// # Examples 61 /// 62 /// The following is an example of getting the PID of the current thread with zero additional cost 63 /// when compared to the C version: 64 /// 65 /// ``` 66 /// let pid = current!().pid(); 67 /// ``` 68 /// 69 /// Getting the PID of the current process, also zero additional cost: 70 /// 71 /// ``` 72 /// let pid = current!().group_leader().pid(); 73 /// ``` 74 /// 75 /// Getting the current task and storing it in some struct. The reference count is automatically 76 /// incremented when creating `State` and decremented when it is dropped: 77 /// 78 /// ``` 79 /// use kernel::{task::Task, sync::aref::ARef}; 80 /// 81 /// struct State { 82 /// creator: ARef<Task>, 83 /// index: u32, 84 /// } 85 /// 86 /// impl State { 87 /// fn new() -> Self { 88 /// Self { 89 /// creator: ARef::from(&**current!()), 90 /// index: 0, 91 /// } 92 /// } 93 /// } 94 /// ``` 95 #[repr(transparent)] 96 pub struct Task(pub(crate) Opaque<bindings::task_struct>); 97 98 // SAFETY: By design, the only way to access a `Task` is via the `current` function or via an 99 // `ARef<Task>` obtained through the `AlwaysRefCounted` impl. This means that the only situation in 100 // which a `Task` can be accessed mutably is when the refcount drops to zero and the destructor 101 // runs. It is safe for that to happen on any thread, so it is ok for this type to be `Send`. 102 unsafe impl Send for Task {} 103 104 // SAFETY: It's OK to access `Task` through shared references from other threads because we're 105 // either accessing properties that don't change (e.g., `pid`, `group_leader`) or that are properly 106 // synchronised by C code (e.g., `signal_pending`). 107 unsafe impl Sync for Task {} 108 109 /// Represents the [`Task`] in the `current` global. 110 /// 111 /// This type exists to provide more efficient operations that are only valid on the current task. 112 /// For example, to retrieve the pid-namespace of a task, you must use rcu protection unless it is 113 /// the current task. 114 /// 115 /// # Invariants 116 /// 117 /// Each value of this type must only be accessed from the task context it was created within. 118 /// 119 /// Of course, every thread is in a different task context, but for the purposes of this invariant, 120 /// these operations also permanently leave the task context: 121 /// 122 /// * Returning to userspace from system call context. 123 /// * Calling `release_task()`. 124 /// * Calling `begin_new_exec()` in a binary format loader. 125 /// 126 /// Other operations temporarily create a new sub-context: 127 /// 128 /// * Calling `kthread_use_mm()` creates a new context, and `kthread_unuse_mm()` returns to the 129 /// old context. 130 /// 131 /// This means that a `CurrentTask` obtained before a `kthread_use_mm()` call may be used again 132 /// once `kthread_unuse_mm()` is called, but it must not be used between these two calls. 133 /// Conversely, a `CurrentTask` obtained between a `kthread_use_mm()`/`kthread_unuse_mm()` pair 134 /// must not be used after `kthread_unuse_mm()`. 135 #[repr(transparent)] 136 pub struct CurrentTask(Task, NotThreadSafe); 137 138 // Make all `Task` methods available on `CurrentTask`. 139 impl Deref for CurrentTask { 140 type Target = Task; 141 #[inline] 142 fn deref(&self) -> &Task { 143 &self.0 144 } 145 } 146 147 /// The type of process identifiers (PIDs). 148 pub type Pid = bindings::pid_t; 149 150 /// The type of user identifiers (UIDs). 151 #[derive(Copy, Clone)] 152 pub struct Kuid { 153 kuid: bindings::kuid_t, 154 } 155 156 impl Task { 157 /// Returns a raw pointer to the current task. 158 /// 159 /// It is up to the user to use the pointer correctly. 160 #[inline] 161 pub fn current_raw() -> *mut bindings::task_struct { 162 // SAFETY: Getting the current pointer is always safe. 163 unsafe { bindings::get_current() } 164 } 165 166 /// Returns a task reference for the currently executing task/thread. 167 /// 168 /// The recommended way to get the current task/thread is to use the 169 /// [`current`] macro because it is safe. 170 /// 171 /// # Safety 172 /// 173 /// Callers must ensure that the returned object is only used to access a [`CurrentTask`] 174 /// within the task context that was active when this function was called. For more details, 175 /// see the invariants section for [`CurrentTask`]. 176 #[inline] 177 pub unsafe fn current() -> impl Deref<Target = CurrentTask> { 178 struct TaskRef { 179 task: *const CurrentTask, 180 } 181 182 impl Deref for TaskRef { 183 type Target = CurrentTask; 184 185 fn deref(&self) -> &Self::Target { 186 // SAFETY: The returned reference borrows from this `TaskRef`, so it cannot outlive 187 // the `TaskRef`, which the caller of `Task::current()` has promised will not 188 // outlive the task/thread for which `self.task` is the `current` pointer. Thus, it 189 // is okay to return a `CurrentTask` reference here. 190 unsafe { &*self.task } 191 } 192 } 193 194 TaskRef { 195 // CAST: The layout of `struct task_struct` and `CurrentTask` is identical. 196 task: Task::current_raw().cast(), 197 } 198 } 199 200 /// Returns a raw pointer to the task. 201 #[inline] 202 pub fn as_ptr(&self) -> *mut bindings::task_struct { 203 self.0.get() 204 } 205 206 /// Returns the PID of the given task. 207 pub fn pid(&self) -> Pid { 208 // SAFETY: The pid of a task never changes after initialization, so reading this field is 209 // not a data race. 210 unsafe { *ptr::addr_of!((*self.as_ptr()).pid) } 211 } 212 213 /// Returns the TGID (Thread Group ID / Process ID) of the given task. 214 pub fn tgid(&self) -> Pid { 215 // SAFETY: The tgid of a task never changes after initialization, so reading this field is 216 // not a data race. 217 unsafe { *ptr::addr_of!((*self.as_ptr()).tgid) } 218 } 219 220 /// Returns the UID of the given task. 221 #[inline] 222 pub fn uid(&self) -> Kuid { 223 // SAFETY: It's always safe to call `task_uid` on a valid task. 224 Kuid::from_raw(unsafe { bindings::task_uid(self.as_ptr()) }) 225 } 226 227 /// Returns the effective UID of the given task. 228 #[inline] 229 pub fn euid(&self) -> Kuid { 230 // SAFETY: It's always safe to call `task_euid` on a valid task. 231 Kuid::from_raw(unsafe { bindings::task_euid(self.as_ptr()) }) 232 } 233 234 /// Determines whether the given task has pending signals. 235 #[inline] 236 pub fn signal_pending(&self) -> bool { 237 // SAFETY: It's always safe to call `signal_pending` on a valid task. 238 unsafe { bindings::signal_pending(self.as_ptr()) != 0 } 239 } 240 241 /// Returns task's pid namespace with elevated reference count 242 #[inline] 243 pub fn get_pid_ns(&self) -> Option<ARef<PidNamespace>> { 244 // SAFETY: By the type invariant, we know that `self.0` is valid. 245 let ptr = unsafe { bindings::task_get_pid_ns(self.as_ptr()) }; 246 if ptr.is_null() { 247 None 248 } else { 249 // SAFETY: `ptr` is valid by the safety requirements of this function. And we own a 250 // reference count via `task_get_pid_ns()`. 251 // CAST: `Self` is a `repr(transparent)` wrapper around `bindings::pid_namespace`. 252 Some(unsafe { ARef::from_raw(ptr::NonNull::new_unchecked(ptr.cast::<PidNamespace>())) }) 253 } 254 } 255 256 /// Returns the given task's pid in the provided pid namespace. 257 #[doc(alias = "task_tgid_nr_ns")] 258 #[inline] 259 pub fn tgid_nr_ns(&self, pidns: Option<&PidNamespace>) -> Pid { 260 let pidns = match pidns { 261 Some(pidns) => pidns.as_ptr(), 262 None => core::ptr::null_mut(), 263 }; 264 // SAFETY: By the type invariant, we know that `self.0` is valid. We received a valid 265 // PidNamespace that we can use as a pointer or we received an empty PidNamespace and 266 // thus pass a null pointer. The underlying C function is safe to be used with NULL 267 // pointers. 268 unsafe { bindings::task_tgid_nr_ns(self.as_ptr(), pidns) } 269 } 270 271 /// Wakes up the task. 272 #[inline] 273 pub fn wake_up(&self) { 274 // SAFETY: It's always safe to call `wake_up_process` on a valid task, even if the task 275 // running. 276 unsafe { bindings::wake_up_process(self.as_ptr()) }; 277 } 278 } 279 280 impl CurrentTask { 281 /// Access the address space of the current task. 282 /// 283 /// This function does not touch the refcount of the mm. 284 #[inline] 285 pub fn mm(&self) -> Option<&MmWithUser> { 286 // SAFETY: The `mm` field of `current` is not modified from other threads, so reading it is 287 // not a data race. 288 let mm = unsafe { (*self.as_ptr()).mm }; 289 290 if mm.is_null() { 291 return None; 292 } 293 294 // SAFETY: If `current->mm` is non-null, then it references a valid mm with a non-zero 295 // value of `mm_users`. Furthermore, the returned `&MmWithUser` borrows from this 296 // `CurrentTask`, so it cannot escape the scope in which the current pointer was obtained. 297 // 298 // This is safe even if `kthread_use_mm()`/`kthread_unuse_mm()` are used. There are two 299 // relevant cases: 300 // * If the `&CurrentTask` was created before `kthread_use_mm()`, then it cannot be 301 // accessed during the `kthread_use_mm()`/`kthread_unuse_mm()` scope due to the 302 // `NotThreadSafe` field of `CurrentTask`. 303 // * If the `&CurrentTask` was created within a `kthread_use_mm()`/`kthread_unuse_mm()` 304 // scope, then the `&CurrentTask` cannot escape that scope, so the returned `&MmWithUser` 305 // also cannot escape that scope. 306 // In either case, it's not possible to read `current->mm` and keep using it after the 307 // scope is ended with `kthread_unuse_mm()`. 308 Some(unsafe { MmWithUser::from_raw(mm) }) 309 } 310 311 /// Access the pid namespace of the current task. 312 /// 313 /// This function does not touch the refcount of the namespace or use RCU protection. 314 /// 315 /// To access the pid namespace of another task, see [`Task::get_pid_ns`]. 316 #[doc(alias = "task_active_pid_ns")] 317 #[inline] 318 pub fn active_pid_ns(&self) -> Option<&PidNamespace> { 319 // SAFETY: It is safe to call `task_active_pid_ns` without RCU protection when calling it 320 // on the current task. 321 let active_ns = unsafe { bindings::task_active_pid_ns(self.as_ptr()) }; 322 323 if active_ns.is_null() { 324 return None; 325 } 326 327 // The lifetime of `PidNamespace` is bound to `Task` and `struct pid`. 328 // 329 // The `PidNamespace` of a `Task` doesn't ever change once the `Task` is alive. 330 // 331 // From system call context retrieving the `PidNamespace` for the current task is always 332 // safe and requires neither RCU locking nor a reference count to be held. Retrieving the 333 // `PidNamespace` after `release_task()` for current will return `NULL` but no codepath 334 // like that is exposed to Rust. 335 // 336 // SAFETY: If `current`'s pid ns is non-null, then it references a valid pid ns. 337 // Furthermore, the returned `&PidNamespace` borrows from this `CurrentTask`, so it cannot 338 // escape the scope in which the current pointer was obtained, e.g. it cannot live past a 339 // `release_task()` call. 340 Some(unsafe { PidNamespace::from_ptr(active_ns) }) 341 } 342 343 /// Returns the group leader of the current task. 344 pub fn group_leader(&self) -> &Task { 345 // SAFETY: The group leader of a task never changes while the task is running, and `self` 346 // is the current task, which is guaranteed running. 347 let ptr = unsafe { (*self.as_ptr()).group_leader }; 348 349 // SAFETY: `current->group_leader` stays valid for at least the duration in which `current` 350 // is running, and the signature of this function ensures that the returned `&Task` can 351 // only be used while `current` is still valid, thus still running. 352 unsafe { &*ptr.cast() } 353 } 354 } 355 356 // SAFETY: The type invariants guarantee that `Task` is always refcounted. 357 unsafe impl crate::sync::aref::AlwaysRefCounted for Task { 358 #[inline] 359 fn inc_ref(&self) { 360 // SAFETY: The existence of a shared reference means that the refcount is nonzero. 361 unsafe { bindings::get_task_struct(self.as_ptr()) }; 362 } 363 364 #[inline] 365 unsafe fn dec_ref(obj: ptr::NonNull<Self>) { 366 // SAFETY: The safety requirements guarantee that the refcount is nonzero. 367 unsafe { bindings::put_task_struct(obj.cast().as_ptr()) } 368 } 369 } 370 371 impl PartialEq for Task { 372 #[inline] 373 fn eq(&self, other: &Self) -> bool { 374 ptr::eq(self.as_ptr(), other.as_ptr()) 375 } 376 } 377 378 impl Eq for Task {} 379 380 impl Kuid { 381 /// Get the current euid. 382 #[inline] 383 pub fn current_euid() -> Kuid { 384 // SAFETY: Just an FFI call. 385 Self::from_raw(unsafe { bindings::current_euid() }) 386 } 387 388 /// Create a `Kuid` given the raw C type. 389 #[inline] 390 pub fn from_raw(kuid: bindings::kuid_t) -> Self { 391 Self { kuid } 392 } 393 394 /// Turn this kuid into the raw C type. 395 #[inline] 396 pub fn into_raw(self) -> bindings::kuid_t { 397 self.kuid 398 } 399 400 /// Converts this kernel UID into a userspace UID. 401 /// 402 /// Uses the namespace of the current task. 403 #[inline] 404 pub fn into_uid_in_current_ns(self) -> bindings::uid_t { 405 // SAFETY: Just an FFI call. 406 unsafe { bindings::from_kuid(bindings::current_user_ns(), self.kuid) } 407 } 408 } 409 410 impl PartialEq for Kuid { 411 #[inline] 412 fn eq(&self, other: &Kuid) -> bool { 413 // SAFETY: Just an FFI call. 414 unsafe { bindings::uid_eq(self.kuid, other.kuid) } 415 } 416 } 417 418 impl Eq for Kuid {} 419 420 /// Annotation for functions that can sleep. 421 /// 422 /// Equivalent to the C side [`might_sleep()`], this function serves as 423 /// a debugging aid and a potential scheduling point. 424 /// 425 /// This function can only be used in a nonatomic context. 426 /// 427 /// [`might_sleep()`]: https://docs.kernel.org/driver-api/basics.html#c.might_sleep 428 #[track_caller] 429 #[inline] 430 pub fn might_sleep() { 431 #[cfg(CONFIG_DEBUG_ATOMIC_SLEEP)] 432 { 433 let loc = core::panic::Location::caller(); 434 let file = kernel::file_from_location(loc); 435 436 // SAFETY: `file.as_ptr()` is valid for reading and guaranteed to be nul-terminated. 437 unsafe { crate::bindings::__might_sleep(file.as_char_ptr(), loc.line() as i32) } 438 } 439 440 // SAFETY: Always safe to call. 441 unsafe { crate::bindings::might_resched() } 442 } 443