1 // SPDX-License-Identifier: GPL-2.0
2
3 //! Kernel errors.
4 //!
5 //! C header: [`include/uapi/asm-generic/errno-base.h`](srctree/include/uapi/asm-generic/errno-base.h)
6
7 use crate::{
8 alloc::{layout::LayoutError, AllocError},
9 str::CStr,
10 };
11
12 use core::fmt;
13 use core::num::NonZeroI32;
14 use core::num::TryFromIntError;
15 use core::str::Utf8Error;
16
17 /// Contains the C-compatible error codes.
18 #[rustfmt::skip]
19 pub mod code {
20 macro_rules! declare_err {
21 ($err:tt $(,)? $($doc:expr),+) => {
22 $(
23 #[doc = $doc]
24 )*
25 pub const $err: super::Error =
26 match super::Error::try_from_errno(-(crate::bindings::$err as i32)) {
27 Some(err) => err,
28 None => panic!("Invalid errno in `declare_err!`"),
29 };
30 };
31 }
32
33 declare_err!(EPERM, "Operation not permitted.");
34 declare_err!(ENOENT, "No such file or directory.");
35 declare_err!(ESRCH, "No such process.");
36 declare_err!(EINTR, "Interrupted system call.");
37 declare_err!(EIO, "I/O error.");
38 declare_err!(ENXIO, "No such device or address.");
39 declare_err!(E2BIG, "Argument list too long.");
40 declare_err!(ENOEXEC, "Exec format error.");
41 declare_err!(EBADF, "Bad file number.");
42 declare_err!(ECHILD, "No child processes.");
43 declare_err!(EAGAIN, "Try again.");
44 declare_err!(ENOMEM, "Out of memory.");
45 declare_err!(EACCES, "Permission denied.");
46 declare_err!(EFAULT, "Bad address.");
47 declare_err!(ENOTBLK, "Block device required.");
48 declare_err!(EBUSY, "Device or resource busy.");
49 declare_err!(EEXIST, "File exists.");
50 declare_err!(EXDEV, "Cross-device link.");
51 declare_err!(ENODEV, "No such device.");
52 declare_err!(ENOTDIR, "Not a directory.");
53 declare_err!(EISDIR, "Is a directory.");
54 declare_err!(EINVAL, "Invalid argument.");
55 declare_err!(ENFILE, "File table overflow.");
56 declare_err!(EMFILE, "Too many open files.");
57 declare_err!(ENOTTY, "Not a typewriter.");
58 declare_err!(ETXTBSY, "Text file busy.");
59 declare_err!(EFBIG, "File too large.");
60 declare_err!(ENOSPC, "No space left on device.");
61 declare_err!(ESPIPE, "Illegal seek.");
62 declare_err!(EROFS, "Read-only file system.");
63 declare_err!(EMLINK, "Too many links.");
64 declare_err!(EPIPE, "Broken pipe.");
65 declare_err!(EDOM, "Math argument out of domain of func.");
66 declare_err!(ERANGE, "Math result not representable.");
67 declare_err!(ERESTARTSYS, "Restart the system call.");
68 declare_err!(ERESTARTNOINTR, "System call was interrupted by a signal and will be restarted.");
69 declare_err!(ERESTARTNOHAND, "Restart if no handler.");
70 declare_err!(ENOIOCTLCMD, "No ioctl command.");
71 declare_err!(ERESTART_RESTARTBLOCK, "Restart by calling sys_restart_syscall.");
72 declare_err!(EPROBE_DEFER, "Driver requests probe retry.");
73 declare_err!(EOPENSTALE, "Open found a stale dentry.");
74 declare_err!(ENOPARAM, "Parameter not supported.");
75 declare_err!(EBADHANDLE, "Illegal NFS file handle.");
76 declare_err!(ENOTSYNC, "Update synchronization mismatch.");
77 declare_err!(EBADCOOKIE, "Cookie is stale.");
78 declare_err!(ENOTSUPP, "Operation is not supported.");
79 declare_err!(ETOOSMALL, "Buffer or request is too small.");
80 declare_err!(ESERVERFAULT, "An untranslatable error occurred.");
81 declare_err!(EBADTYPE, "Type not supported by server.");
82 declare_err!(EJUKEBOX, "Request initiated, but will not complete before timeout.");
83 declare_err!(EIOCBQUEUED, "iocb queued, will get completion event.");
84 declare_err!(ERECALLCONFLICT, "Conflict with recalled state.");
85 declare_err!(ENOGRACE, "NFS file lock reclaim refused.");
86 }
87
88 /// Generic integer kernel error.
89 ///
90 /// The kernel defines a set of integer generic error codes based on C and
91 /// POSIX ones. These codes may have a more specific meaning in some contexts.
92 ///
93 /// # Invariants
94 ///
95 /// The value is a valid `errno` (i.e. `>= -MAX_ERRNO && < 0`).
96 #[derive(Clone, Copy, PartialEq, Eq)]
97 pub struct Error(NonZeroI32);
98
99 impl Error {
100 /// Creates an [`Error`] from a kernel error code.
101 ///
102 /// It is a bug to pass an out-of-range `errno`. `EINVAL` would
103 /// be returned in such a case.
from_errno(errno: crate::ffi::c_int) -> Error104 pub fn from_errno(errno: crate::ffi::c_int) -> Error {
105 if let Some(error) = Self::try_from_errno(errno) {
106 error
107 } else {
108 // TODO: Make it a `WARN_ONCE` once available.
109 crate::pr_warn!(
110 "attempted to create `Error` with out of range `errno`: {}\n",
111 errno
112 );
113 code::EINVAL
114 }
115 }
116
117 /// Creates an [`Error`] from a kernel error code.
118 ///
119 /// Returns [`None`] if `errno` is out-of-range.
try_from_errno(errno: crate::ffi::c_int) -> Option<Error>120 const fn try_from_errno(errno: crate::ffi::c_int) -> Option<Error> {
121 if errno < -(bindings::MAX_ERRNO as i32) || errno >= 0 {
122 return None;
123 }
124
125 // SAFETY: `errno` is checked above to be in a valid range.
126 Some(unsafe { Error::from_errno_unchecked(errno) })
127 }
128
129 /// Creates an [`Error`] from a kernel error code.
130 ///
131 /// # Safety
132 ///
133 /// `errno` must be within error code range (i.e. `>= -MAX_ERRNO && < 0`).
from_errno_unchecked(errno: crate::ffi::c_int) -> Error134 const unsafe fn from_errno_unchecked(errno: crate::ffi::c_int) -> Error {
135 // INVARIANT: The contract ensures the type invariant
136 // will hold.
137 // SAFETY: The caller guarantees `errno` is non-zero.
138 Error(unsafe { NonZeroI32::new_unchecked(errno) })
139 }
140
141 /// Returns the kernel error code.
to_errno(self) -> crate::ffi::c_int142 pub fn to_errno(self) -> crate::ffi::c_int {
143 self.0.get()
144 }
145
146 #[cfg(CONFIG_BLOCK)]
to_blk_status(self) -> bindings::blk_status_t147 pub(crate) fn to_blk_status(self) -> bindings::blk_status_t {
148 // SAFETY: `self.0` is a valid error due to its invariant.
149 unsafe { bindings::errno_to_blk_status(self.0.get()) }
150 }
151
152 /// Returns the error encoded as a pointer.
to_ptr<T>(self) -> *mut T153 pub fn to_ptr<T>(self) -> *mut T {
154 // SAFETY: `self.0` is a valid error due to its invariant.
155 unsafe { bindings::ERR_PTR(self.0.get() as _) as *mut _ }
156 }
157
158 /// Returns a string representing the error, if one exists.
159 #[cfg(not(any(test, testlib)))]
name(&self) -> Option<&'static CStr>160 pub fn name(&self) -> Option<&'static CStr> {
161 // SAFETY: Just an FFI call, there are no extra safety requirements.
162 let ptr = unsafe { bindings::errname(-self.0.get()) };
163 if ptr.is_null() {
164 None
165 } else {
166 // SAFETY: The string returned by `errname` is static and `NUL`-terminated.
167 Some(unsafe { CStr::from_char_ptr(ptr) })
168 }
169 }
170
171 /// Returns a string representing the error, if one exists.
172 ///
173 /// When `testlib` is configured, this always returns `None` to avoid the dependency on a
174 /// kernel function so that tests that use this (e.g., by calling [`Result::unwrap`]) can still
175 /// run in userspace.
176 #[cfg(any(test, testlib))]
name(&self) -> Option<&'static CStr>177 pub fn name(&self) -> Option<&'static CStr> {
178 None
179 }
180 }
181
182 impl fmt::Debug for Error {
fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result183 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
184 match self.name() {
185 // Print out number if no name can be found.
186 None => f.debug_tuple("Error").field(&-self.0).finish(),
187 Some(name) => f
188 .debug_tuple(
189 // SAFETY: These strings are ASCII-only.
190 unsafe { core::str::from_utf8_unchecked(name) },
191 )
192 .finish(),
193 }
194 }
195 }
196
197 impl From<AllocError> for Error {
from(_: AllocError) -> Error198 fn from(_: AllocError) -> Error {
199 code::ENOMEM
200 }
201 }
202
203 impl From<TryFromIntError> for Error {
from(_: TryFromIntError) -> Error204 fn from(_: TryFromIntError) -> Error {
205 code::EINVAL
206 }
207 }
208
209 impl From<Utf8Error> for Error {
from(_: Utf8Error) -> Error210 fn from(_: Utf8Error) -> Error {
211 code::EINVAL
212 }
213 }
214
215 impl From<LayoutError> for Error {
from(_: LayoutError) -> Error216 fn from(_: LayoutError) -> Error {
217 code::ENOMEM
218 }
219 }
220
221 impl From<core::fmt::Error> for Error {
from(_: core::fmt::Error) -> Error222 fn from(_: core::fmt::Error) -> Error {
223 code::EINVAL
224 }
225 }
226
227 impl From<core::convert::Infallible> for Error {
from(e: core::convert::Infallible) -> Error228 fn from(e: core::convert::Infallible) -> Error {
229 match e {}
230 }
231 }
232
233 /// A [`Result`] with an [`Error`] error type.
234 ///
235 /// To be used as the return type for functions that may fail.
236 ///
237 /// # Error codes in C and Rust
238 ///
239 /// In C, it is common that functions indicate success or failure through
240 /// their return value; modifying or returning extra data through non-`const`
241 /// pointer parameters. In particular, in the kernel, functions that may fail
242 /// typically return an `int` that represents a generic error code. We model
243 /// those as [`Error`].
244 ///
245 /// In Rust, it is idiomatic to model functions that may fail as returning
246 /// a [`Result`]. Since in the kernel many functions return an error code,
247 /// [`Result`] is a type alias for a [`core::result::Result`] that uses
248 /// [`Error`] as its error type.
249 ///
250 /// Note that even if a function does not return anything when it succeeds,
251 /// it should still be modeled as returning a `Result` rather than
252 /// just an [`Error`].
253 pub type Result<T = (), E = Error> = core::result::Result<T, E>;
254
255 /// Converts an integer as returned by a C kernel function to an error if it's negative, and
256 /// `Ok(())` otherwise.
to_result(err: crate::ffi::c_int) -> Result257 pub fn to_result(err: crate::ffi::c_int) -> Result {
258 if err < 0 {
259 Err(Error::from_errno(err))
260 } else {
261 Ok(())
262 }
263 }
264
265 /// Transform a kernel "error pointer" to a normal pointer.
266 ///
267 /// Some kernel C API functions return an "error pointer" which optionally
268 /// embeds an `errno`. Callers are supposed to check the returned pointer
269 /// for errors. This function performs the check and converts the "error pointer"
270 /// to a normal pointer in an idiomatic fashion.
271 ///
272 /// # Examples
273 ///
274 /// ```ignore
275 /// # use kernel::from_err_ptr;
276 /// # use kernel::bindings;
277 /// fn devm_platform_ioremap_resource(
278 /// pdev: &mut PlatformDevice,
279 /// index: u32,
280 /// ) -> Result<*mut kernel::ffi::c_void> {
281 /// // SAFETY: `pdev` points to a valid platform device. There are no safety requirements
282 /// // on `index`.
283 /// from_err_ptr(unsafe { bindings::devm_platform_ioremap_resource(pdev.to_ptr(), index) })
284 /// }
285 /// ```
from_err_ptr<T>(ptr: *mut T) -> Result<*mut T>286 pub fn from_err_ptr<T>(ptr: *mut T) -> Result<*mut T> {
287 // CAST: Casting a pointer to `*const crate::ffi::c_void` is always valid.
288 let const_ptr: *const crate::ffi::c_void = ptr.cast();
289 // SAFETY: The FFI function does not deref the pointer.
290 if unsafe { bindings::IS_ERR(const_ptr) } {
291 // SAFETY: The FFI function does not deref the pointer.
292 let err = unsafe { bindings::PTR_ERR(const_ptr) };
293
294 #[allow(clippy::unnecessary_cast)]
295 // CAST: If `IS_ERR()` returns `true`,
296 // then `PTR_ERR()` is guaranteed to return a
297 // negative value greater-or-equal to `-bindings::MAX_ERRNO`,
298 // which always fits in an `i16`, as per the invariant above.
299 // And an `i16` always fits in an `i32`. So casting `err` to
300 // an `i32` can never overflow, and is always valid.
301 //
302 // SAFETY: `IS_ERR()` ensures `err` is a
303 // negative value greater-or-equal to `-bindings::MAX_ERRNO`.
304 return Err(unsafe { Error::from_errno_unchecked(err as crate::ffi::c_int) });
305 }
306 Ok(ptr)
307 }
308
309 /// Calls a closure returning a [`crate::error::Result<T>`] and converts the result to
310 /// a C integer result.
311 ///
312 /// This is useful when calling Rust functions that return [`crate::error::Result<T>`]
313 /// from inside `extern "C"` functions that need to return an integer error result.
314 ///
315 /// `T` should be convertible from an `i16` via `From<i16>`.
316 ///
317 /// # Examples
318 ///
319 /// ```ignore
320 /// # use kernel::from_result;
321 /// # use kernel::bindings;
322 /// unsafe extern "C" fn probe_callback(
323 /// pdev: *mut bindings::platform_device,
324 /// ) -> kernel::ffi::c_int {
325 /// from_result(|| {
326 /// let ptr = devm_alloc(pdev)?;
327 /// bindings::platform_set_drvdata(pdev, ptr);
328 /// Ok(0)
329 /// })
330 /// }
331 /// ```
from_result<T, F>(f: F) -> T where T: From<i16>, F: FnOnce() -> Result<T>,332 pub fn from_result<T, F>(f: F) -> T
333 where
334 T: From<i16>,
335 F: FnOnce() -> Result<T>,
336 {
337 match f() {
338 Ok(v) => v,
339 // NO-OVERFLOW: negative `errno`s are no smaller than `-bindings::MAX_ERRNO`,
340 // `-bindings::MAX_ERRNO` fits in an `i16` as per invariant above,
341 // therefore a negative `errno` always fits in an `i16` and will not overflow.
342 Err(e) => T::from(e.to_errno() as i16),
343 }
344 }
345
346 /// Error message for calling a default function of a [`#[vtable]`](macros::vtable) trait.
347 pub const VTABLE_DEFAULT_ERROR: &str =
348 "This function must not be called, see the #[vtable] documentation.";
349