xref: /linux/rust/kernel/error.rs (revision f4cdf7ca9a1fdcca413157df19753f388a5a224e)
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 //! C header: [`include/uapi/asm-generic/errno.h`](srctree/include/uapi/asm-generic/errno.h)\
7 //! C header: [`include/linux/errno.h`](srctree/include/linux/errno.h)
8 
9 use crate::{
10     alloc::{layout::LayoutError, AllocError},
11     fmt,
12     str::CStr,
13 };
14 
15 use core::num::NonZeroI32;
16 use core::num::TryFromIntError;
17 use core::str::Utf8Error;
18 
19 /// Contains the C-compatible error codes.
20 #[rustfmt::skip]
21 pub mod code {
22     macro_rules! declare_err {
23         ($err:tt $(,)? $($doc:expr),+) => {
24             $(
25             #[doc = $doc]
26             )*
27             pub const $err: super::Error =
28                 super::Error::try_from_errno(-(crate::bindings::$err as i32))
29                     .expect("Invalid errno in `declare_err!`");
30         };
31     }
32 
33     // From `include/uapi/asm-generic/errno-base.h`.
34     declare_err!(EPERM, "Operation not permitted.");
35     declare_err!(ENOENT, "No such file or directory.");
36     declare_err!(ESRCH, "No such process.");
37     declare_err!(EINTR, "Interrupted system call.");
38     declare_err!(EIO, "I/O error.");
39     declare_err!(ENXIO, "No such device or address.");
40     declare_err!(E2BIG, "Argument list too long.");
41     declare_err!(ENOEXEC, "Exec format error.");
42     declare_err!(EBADF, "Bad file number.");
43     declare_err!(ECHILD, "No child processes.");
44     declare_err!(EAGAIN, "Try again.");
45     declare_err!(ENOMEM, "Out of memory.");
46     declare_err!(EACCES, "Permission denied.");
47     declare_err!(EFAULT, "Bad address.");
48     declare_err!(ENOTBLK, "Block device required.");
49     declare_err!(EBUSY, "Device or resource busy.");
50     declare_err!(EEXIST, "File exists.");
51     declare_err!(EXDEV, "Cross-device link.");
52     declare_err!(ENODEV, "No such device.");
53     declare_err!(ENOTDIR, "Not a directory.");
54     declare_err!(EISDIR, "Is a directory.");
55     declare_err!(EINVAL, "Invalid argument.");
56     declare_err!(ENFILE, "File table overflow.");
57     declare_err!(EMFILE, "Too many open files.");
58     declare_err!(ENOTTY, "Not a typewriter.");
59     declare_err!(ETXTBSY, "Text file busy.");
60     declare_err!(EFBIG, "File too large.");
61     declare_err!(ENOSPC, "No space left on device.");
62     declare_err!(ESPIPE, "Illegal seek.");
63     declare_err!(EROFS, "Read-only file system.");
64     declare_err!(EMLINK, "Too many links.");
65     declare_err!(EPIPE, "Broken pipe.");
66     declare_err!(EDOM, "Math argument out of domain of func.");
67     declare_err!(ERANGE, "Math result not representable.");
68 
69     // From `include/uapi/asm-generic/errno.h`.
70     declare_err!(EDEADLK, "Resource deadlock would occur.");
71     declare_err!(ENAMETOOLONG, "File name too long.");
72     declare_err!(ENOLCK, "No record locks available.");
73     declare_err!(ENOSYS, "Invalid system call number.");
74     declare_err!(ENOTEMPTY, "Directory not empty.");
75     declare_err!(ELOOP, "Too many symbolic links encountered.");
76     declare_err!(ENOMSG, "No message of desired type.");
77     declare_err!(EIDRM, "Identifier removed.");
78     declare_err!(ECHRNG, "Channel number out of range.");
79     declare_err!(EL2NSYNC, "Level 2 not synchronized.");
80     declare_err!(EL3HLT, "Level 3 halted.");
81     declare_err!(EL3RST, "Level 3 reset.");
82     declare_err!(ELNRNG, "Link number out of range.");
83     declare_err!(EUNATCH, "Protocol driver not attached.");
84     declare_err!(ENOCSI, "No CSI structure available.");
85     declare_err!(EL2HLT, "Level 2 halted.");
86     declare_err!(EBADE, "Invalid exchange.");
87     declare_err!(EBADR, "Invalid request descriptor.");
88     declare_err!(EXFULL, "Exchange full.");
89     declare_err!(ENOANO, "No anode.");
90     declare_err!(EBADRQC, "Invalid request code.");
91     declare_err!(EBADSLT, "Invalid slot.");
92     declare_err!(EBFONT, "Bad font file format.");
93     declare_err!(ENOSTR, "Device not a stream.");
94     declare_err!(ENODATA, "No data available.");
95     declare_err!(ETIME, "Timer expired.");
96     declare_err!(ENOSR, "Out of streams resources.");
97     declare_err!(ENONET, "Machine is not on the network.");
98     declare_err!(ENOPKG, "Package not installed.");
99     declare_err!(EREMOTE, "Object is remote.");
100     declare_err!(ENOLINK, "Link has been severed.");
101     declare_err!(EADV, "Advertise error.");
102     declare_err!(ESRMNT, "Srmount error.");
103     declare_err!(ECOMM, "Communication error on send.");
104     declare_err!(EPROTO, "Protocol error.");
105     declare_err!(EMULTIHOP, "Multihop attempted.");
106     declare_err!(EDOTDOT, "RFS specific error.");
107     declare_err!(EBADMSG, "Not a data message.");
108     declare_err!(EFSBADCRC, "Bad CRC detected.");
109     declare_err!(EOVERFLOW, "Value too large for defined data type.");
110     declare_err!(ENOTUNIQ, "Name not unique on network.");
111     declare_err!(EBADFD, "File descriptor in bad state.");
112     declare_err!(EREMCHG, "Remote address changed.");
113     declare_err!(ELIBACC, "Can not access a needed shared library.");
114     declare_err!(ELIBBAD, "Accessing a corrupted shared library.");
115     declare_err!(ELIBSCN, ".lib section in a.out corrupted.");
116     declare_err!(ELIBMAX, "Attempting to link in too many shared libraries.");
117     declare_err!(ELIBEXEC, "Cannot exec a shared library directly.");
118     declare_err!(EILSEQ, "Illegal byte sequence.");
119     declare_err!(ERESTART, "Interrupted system call should be restarted.");
120     declare_err!(ESTRPIPE, "Streams pipe error.");
121     declare_err!(EUSERS, "Too many users.");
122     declare_err!(ENOTSOCK, "Socket operation on non-socket.");
123     declare_err!(EDESTADDRREQ, "Destination address required.");
124     declare_err!(EMSGSIZE, "Message too long.");
125     declare_err!(EPROTOTYPE, "Protocol wrong type for socket.");
126     declare_err!(ENOPROTOOPT, "Protocol not available.");
127     declare_err!(EPROTONOSUPPORT, "Protocol not supported.");
128     declare_err!(ESOCKTNOSUPPORT, "Socket type not supported.");
129     declare_err!(EOPNOTSUPP, "Operation not supported on transport endpoint.");
130     declare_err!(EPFNOSUPPORT, "Protocol family not supported.");
131     declare_err!(EAFNOSUPPORT, "Address family not supported by protocol.");
132     declare_err!(EADDRINUSE, "Address already in use.");
133     declare_err!(EADDRNOTAVAIL, "Cannot assign requested address.");
134     declare_err!(ENETDOWN, "Network is down.");
135     declare_err!(ENETUNREACH, "Network is unreachable.");
136     declare_err!(ENETRESET, "Network dropped connection because of reset.");
137     declare_err!(ECONNABORTED, "Software caused connection abort.");
138     declare_err!(ECONNRESET, "Connection reset by peer.");
139     declare_err!(ENOBUFS, "No buffer space available.");
140     declare_err!(EISCONN, "Transport endpoint is already connected.");
141     declare_err!(ENOTCONN, "Transport endpoint is not connected.");
142     declare_err!(ESHUTDOWN, "Cannot send after transport endpoint shutdown.");
143     declare_err!(ETOOMANYREFS, "Too many references: cannot splice.");
144     declare_err!(ETIMEDOUT, "Connection timed out.");
145     declare_err!(ECONNREFUSED, "Connection refused.");
146     declare_err!(EHOSTDOWN, "Host is down.");
147     declare_err!(EHOSTUNREACH, "No route to host.");
148     declare_err!(EALREADY, "Operation already in progress.");
149     declare_err!(EINPROGRESS, "Operation now in progress.");
150     declare_err!(ESTALE, "Stale file handle.");
151     declare_err!(EUCLEAN, "Structure needs cleaning.");
152     declare_err!(EFSCORRUPTED, "Filesystem is corrupted.");
153     declare_err!(ENOTNAM, "Not a XENIX named type file.");
154     declare_err!(ENAVAIL, "No XENIX semaphores available.");
155     declare_err!(EISNAM, "Is a named type file.");
156     declare_err!(EREMOTEIO, "Remote I/O error.");
157     declare_err!(EDQUOT, "Quota exceeded.");
158     declare_err!(ENOMEDIUM, "No medium found.");
159     declare_err!(EMEDIUMTYPE, "Wrong medium type.");
160     declare_err!(ECANCELED, "Operation Canceled.");
161     declare_err!(ENOKEY, "Required key not available.");
162     declare_err!(EKEYEXPIRED, "Key has expired.");
163     declare_err!(EKEYREVOKED, "Key has been revoked.");
164     declare_err!(EKEYREJECTED, "Key was rejected by service.");
165     declare_err!(EOWNERDEAD, "Owner died.");
166     declare_err!(ENOTRECOVERABLE, "State not recoverable.");
167     declare_err!(ERFKILL, "Operation not possible due to RF-kill.");
168     declare_err!(EHWPOISON, "Memory page has hardware error.");
169     declare_err!(EFTYPE, "Wrong file type for the intended operation.");
170 
171     // From `include/linux/errno.h`.
172     declare_err!(ERESTARTSYS, "Restart the system call.");
173     declare_err!(ERESTARTNOINTR, "System call was interrupted by a signal and will be restarted.");
174     declare_err!(ERESTARTNOHAND, "Restart if no handler.");
175     declare_err!(ENOIOCTLCMD, "No ioctl command.");
176     declare_err!(ERESTART_RESTARTBLOCK, "Restart by calling sys_restart_syscall.");
177     declare_err!(EPROBE_DEFER, "Driver requests probe retry.");
178     declare_err!(EOPENSTALE, "Open found a stale dentry.");
179     declare_err!(ENOPARAM, "Parameter not supported.");
180     declare_err!(EBADHANDLE, "Illegal NFS file handle.");
181     declare_err!(ENOTSYNC, "Update synchronization mismatch.");
182     declare_err!(EBADCOOKIE, "Cookie is stale.");
183     declare_err!(ENOTSUPP, "Operation is not supported.");
184     declare_err!(ETOOSMALL, "Buffer or request is too small.");
185     declare_err!(ESERVERFAULT, "An untranslatable error occurred.");
186     declare_err!(EBADTYPE, "Type not supported by server.");
187     declare_err!(EJUKEBOX, "Request initiated, but will not complete before timeout.");
188     declare_err!(EIOCBQUEUED, "iocb queued, will get completion event.");
189     declare_err!(ERECALLCONFLICT, "Conflict with recalled state.");
190     declare_err!(ENOGRACE, "NFS file lock reclaim refused.");
191 }
192 
193 /// Generic integer kernel error.
194 ///
195 /// The kernel defines a set of integer generic error codes based on C and
196 /// POSIX ones. These codes may have a more specific meaning in some contexts.
197 ///
198 /// # Invariants
199 ///
200 /// The value is a valid `errno` (i.e. `>= -MAX_ERRNO && < 0`).
201 #[derive(Clone, Copy, PartialEq, Eq)]
202 pub struct Error(NonZeroI32);
203 
204 impl Error {
205     /// Creates an [`Error`] from a kernel error code.
206     ///
207     /// `errno` must be within error code range (i.e. `>= -MAX_ERRNO && < 0`).
208     ///
209     /// It is a bug to pass an out-of-range `errno`. [`code::EINVAL`] is returned in such a case.
210     ///
211     /// # Examples
212     ///
213     /// ```
214     /// assert_eq!(Error::from_errno(-1), EPERM);
215     /// assert_eq!(Error::from_errno(-2), ENOENT);
216     /// ```
217     ///
218     /// The following calls are considered a bug:
219     ///
220     /// ```
221     /// assert_eq!(Error::from_errno(0), EINVAL);
222     /// assert_eq!(Error::from_errno(-1000000), EINVAL);
223     /// ```
224     pub fn from_errno(errno: crate::ffi::c_int) -> Error {
225         if let Some(error) = Self::try_from_errno(errno) {
226             error
227         } else {
228             // TODO: Make it a `WARN_ONCE` once available.
229             crate::pr_warn!(
230                 "attempted to create `Error` with out of range `errno`: {}\n",
231                 errno
232             );
233             code::EINVAL
234         }
235     }
236 
237     /// Creates an [`Error`] from a kernel error code.
238     ///
239     /// Returns [`None`] if `errno` is out-of-range.
240     const fn try_from_errno(errno: crate::ffi::c_int) -> Option<Error> {
241         if errno < -(bindings::MAX_ERRNO as i32) || errno >= 0 {
242             return None;
243         }
244 
245         // SAFETY: `errno` is checked above to be in a valid range.
246         Some(unsafe { Error::from_errno_unchecked(errno) })
247     }
248 
249     /// Creates an [`Error`] from a kernel error code.
250     ///
251     /// # Safety
252     ///
253     /// `errno` must be within error code range (i.e. `>= -MAX_ERRNO && < 0`).
254     const unsafe fn from_errno_unchecked(errno: crate::ffi::c_int) -> Error {
255         // INVARIANT: The contract ensures the type invariant
256         // will hold.
257         // SAFETY: The caller guarantees `errno` is non-zero.
258         Error(unsafe { NonZeroI32::new_unchecked(errno) })
259     }
260 
261     /// Returns the kernel error code.
262     pub fn to_errno(self) -> crate::ffi::c_int {
263         self.0.get()
264     }
265 
266     #[cfg(CONFIG_BLOCK)]
267     pub(crate) fn to_blk_status(self) -> bindings::blk_status_t {
268         // SAFETY: `self.0` is a valid error due to its invariant.
269         unsafe { bindings::errno_to_blk_status(self.0.get()) }
270     }
271 
272     /// Returns the error encoded as a pointer.
273     pub fn to_ptr<T>(self) -> *mut T {
274         // SAFETY: `self.0` is a valid error due to its invariant.
275         unsafe { bindings::ERR_PTR(self.0.get() as crate::ffi::c_long).cast() }
276     }
277 
278     /// Returns a string representing the error, if one exists.
279     #[cfg(not(testlib))]
280     pub fn name(&self) -> Option<&'static CStr> {
281         // SAFETY: Just an FFI call, there are no extra safety requirements.
282         let ptr = unsafe { bindings::errname(-self.0.get()) };
283         if ptr.is_null() {
284             None
285         } else {
286             use crate::str::CStrExt as _;
287 
288             // SAFETY: The string returned by `errname` is static and `NUL`-terminated.
289             Some(unsafe { CStr::from_char_ptr(ptr) })
290         }
291     }
292 
293     /// Returns a string representing the error, if one exists.
294     ///
295     /// When `testlib` is configured, this always returns `None` to avoid the dependency on a
296     /// kernel function so that tests that use this (e.g., by calling [`Result::unwrap`]) can still
297     /// run in userspace.
298     #[cfg(testlib)]
299     pub fn name(&self) -> Option<&'static CStr> {
300         None
301     }
302 }
303 
304 impl fmt::Debug for Error {
305     fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
306         match self.name() {
307             // Print out number if no name can be found.
308             None => f.debug_tuple("Error").field(&-self.0).finish(),
309             Some(name) => f
310                 .debug_tuple(
311                     // SAFETY: These strings are ASCII-only.
312                     unsafe { core::str::from_utf8_unchecked(name.to_bytes()) },
313                 )
314                 .finish(),
315         }
316     }
317 }
318 
319 impl From<AllocError> for Error {
320     #[inline]
321     fn from(_: AllocError) -> Error {
322         code::ENOMEM
323     }
324 }
325 
326 impl From<TryFromIntError> for Error {
327     #[inline]
328     fn from(_: TryFromIntError) -> Error {
329         code::EINVAL
330     }
331 }
332 
333 impl From<Utf8Error> for Error {
334     #[inline]
335     fn from(_: Utf8Error) -> Error {
336         code::EINVAL
337     }
338 }
339 
340 impl From<LayoutError> for Error {
341     #[inline]
342     fn from(_: LayoutError) -> Error {
343         code::ENOMEM
344     }
345 }
346 
347 impl From<fmt::Error> for Error {
348     #[inline]
349     fn from(_: fmt::Error) -> Error {
350         code::EINVAL
351     }
352 }
353 
354 impl From<core::convert::Infallible> for Error {
355     #[inline]
356     fn from(e: core::convert::Infallible) -> Error {
357         match e {}
358     }
359 }
360 
361 /// A [`Result`] with an [`Error`] error type.
362 ///
363 /// To be used as the return type for functions that may fail.
364 ///
365 /// # Error codes in C and Rust
366 ///
367 /// In C, it is common that functions indicate success or failure through
368 /// their return value; modifying or returning extra data through non-`const`
369 /// pointer parameters. In particular, in the kernel, functions that may fail
370 /// typically return an `int` that represents a generic error code. We model
371 /// those as [`Error`].
372 ///
373 /// In Rust, it is idiomatic to model functions that may fail as returning
374 /// a [`Result`]. Since in the kernel many functions return an error code,
375 /// [`Result`] is a type alias for a [`core::result::Result`] that uses
376 /// [`Error`] as its error type.
377 ///
378 /// Note that even if a function does not return anything when it succeeds,
379 /// it should still be modeled as returning a [`Result`] rather than
380 /// just an [`Error`].
381 ///
382 /// Calling a function that returns [`Result`] forces the caller to handle
383 /// the returned [`Result`].
384 ///
385 /// This can be done "manually" by using [`match`]. Using [`match`] to decode
386 /// the [`Result`] is similar to C where all the return value decoding and the
387 /// error handling is done explicitly by writing handling code for each
388 /// error to cover. Using [`match`] the error and success handling can be
389 /// implemented in all detail as required. For example (inspired by
390 /// [`samples/rust/rust_minimal.rs`]):
391 ///
392 /// ```
393 /// # #[allow(clippy::single_match)]
394 /// fn example() -> Result {
395 ///     let mut numbers = KVec::new();
396 ///
397 ///     match numbers.push(72, GFP_KERNEL) {
398 ///         Err(e) => {
399 ///             pr_err!("Error pushing 72: {e:?}");
400 ///             return Err(e.into());
401 ///         }
402 ///         // Do nothing, continue.
403 ///         Ok(()) => (),
404 ///     }
405 ///
406 ///     match numbers.push(108, GFP_KERNEL) {
407 ///         Err(e) => {
408 ///             pr_err!("Error pushing 108: {e:?}");
409 ///             return Err(e.into());
410 ///         }
411 ///         // Do nothing, continue.
412 ///         Ok(()) => (),
413 ///     }
414 ///
415 ///     match numbers.push(200, GFP_KERNEL) {
416 ///         Err(e) => {
417 ///             pr_err!("Error pushing 200: {e:?}");
418 ///             return Err(e.into());
419 ///         }
420 ///         // Do nothing, continue.
421 ///         Ok(()) => (),
422 ///     }
423 ///
424 ///     Ok(())
425 /// }
426 /// # example()?;
427 /// # Ok::<(), Error>(())
428 /// ```
429 ///
430 /// An alternative to be more concise is the [`if let`] syntax:
431 ///
432 /// ```
433 /// fn example() -> Result {
434 ///     let mut numbers = KVec::new();
435 ///
436 ///     if let Err(e) = numbers.push(72, GFP_KERNEL) {
437 ///         pr_err!("Error pushing 72: {e:?}");
438 ///         return Err(e.into());
439 ///     }
440 ///
441 ///     if let Err(e) = numbers.push(108, GFP_KERNEL) {
442 ///         pr_err!("Error pushing 108: {e:?}");
443 ///         return Err(e.into());
444 ///     }
445 ///
446 ///     if let Err(e) = numbers.push(200, GFP_KERNEL) {
447 ///         pr_err!("Error pushing 200: {e:?}");
448 ///         return Err(e.into());
449 ///     }
450 ///
451 ///     Ok(())
452 /// }
453 /// # example()?;
454 /// # Ok::<(), Error>(())
455 /// ```
456 ///
457 /// Instead of these verbose [`match`]/[`if let`], the [`?`] operator can
458 /// be used to handle the [`Result`]. Using the [`?`] operator is often
459 /// the best choice to handle [`Result`] in a non-verbose way as done in
460 /// [`samples/rust/rust_minimal.rs`]:
461 ///
462 /// ```
463 /// fn example() -> Result {
464 ///     let mut numbers = KVec::new();
465 ///
466 ///     numbers.push(72, GFP_KERNEL)?;
467 ///     numbers.push(108, GFP_KERNEL)?;
468 ///     numbers.push(200, GFP_KERNEL)?;
469 ///
470 ///     Ok(())
471 /// }
472 /// # example()?;
473 /// # Ok::<(), Error>(())
474 /// ```
475 ///
476 /// Another possibility is to call [`unwrap()`](Result::unwrap) or
477 /// [`expect()`](Result::expect). However, use of these functions is
478 /// *heavily discouraged* in the kernel because they trigger a Rust
479 /// [`panic!`] if an error happens, which may destabilize the system or
480 /// entirely break it as a result -- just like the C [`BUG()`] macro.
481 /// Please see the documentation for the C macro [`BUG()`] for guidance
482 /// on when to use these functions.
483 ///
484 /// Alternatively, depending on the use case, using [`unwrap_or()`],
485 /// [`unwrap_or_else()`], [`unwrap_or_default()`] or [`unwrap_unchecked()`]
486 /// might be an option, as well.
487 ///
488 /// For even more details, please see the [Rust documentation].
489 ///
490 /// [`match`]: https://doc.rust-lang.org/reference/expressions/match-expr.html
491 /// [`samples/rust/rust_minimal.rs`]: srctree/samples/rust/rust_minimal.rs
492 /// [`if let`]: https://doc.rust-lang.org/reference/expressions/if-expr.html#if-let-expressions
493 /// [`?`]: https://doc.rust-lang.org/reference/expressions/operator-expr.html#the-question-mark-operator
494 /// [`unwrap()`]: Result::unwrap
495 /// [`expect()`]: Result::expect
496 /// [`BUG()`]: https://docs.kernel.org/process/deprecated.html#bug-and-bug-on
497 /// [`unwrap_or()`]: Result::unwrap_or
498 /// [`unwrap_or_else()`]: Result::unwrap_or_else
499 /// [`unwrap_or_default()`]: Result::unwrap_or_default
500 /// [`unwrap_unchecked()`]: Result::unwrap_unchecked
501 /// [Rust documentation]: https://doc.rust-lang.org/book/ch09-02-recoverable-errors-with-result.html
502 pub type Result<T = (), E = Error> = core::result::Result<T, E>;
503 
504 /// Converts an integer as returned by a C kernel function to a [`Result`].
505 ///
506 /// If the integer is negative, an [`Err`] with an [`Error`] as given by [`Error::from_errno`] is
507 /// returned. This means the integer must be `>= -MAX_ERRNO`.
508 ///
509 /// Otherwise, it returns [`Ok`].
510 ///
511 /// It is a bug to pass an out-of-range negative integer. `Err(EINVAL)` is returned in such a case.
512 ///
513 /// # Examples
514 ///
515 /// This function may be used to easily perform early returns with the [`?`] operator when working
516 /// with C APIs within Rust abstractions:
517 ///
518 /// ```
519 /// # use kernel::error::to_result;
520 /// # mod bindings {
521 /// #     #![expect(clippy::missing_safety_doc)]
522 /// #     use kernel::prelude::*;
523 /// #     pub(super) unsafe fn f1() -> c_int { 0 }
524 /// #     pub(super) unsafe fn f2() -> c_int { EINVAL.to_errno() }
525 /// # }
526 /// fn f() -> Result {
527 ///     // SAFETY: ...
528 ///     to_result(unsafe { bindings::f1() })?;
529 ///
530 ///     // SAFETY: ...
531 ///     to_result(unsafe { bindings::f2() })?;
532 ///
533 ///     // ...
534 ///
535 ///     Ok(())
536 /// }
537 /// # assert_eq!(f(), Err(EINVAL));
538 /// ```
539 ///
540 /// [`?`]: https://doc.rust-lang.org/reference/expressions/operator-expr.html#the-question-mark-operator
541 pub fn to_result(err: crate::ffi::c_int) -> Result {
542     if err < 0 {
543         Err(Error::from_errno(err))
544     } else {
545         Ok(())
546     }
547 }
548 
549 /// Transform a kernel "error pointer" to a normal pointer.
550 ///
551 /// Some kernel C API functions return an "error pointer" which optionally
552 /// embeds an `errno`. Callers are supposed to check the returned pointer
553 /// for errors. This function performs the check and converts the "error pointer"
554 /// to a normal pointer in an idiomatic fashion.
555 ///
556 /// Note that a `NULL` pointer is not considered an error pointer, and is returned
557 /// as-is, wrapped in [`Ok`].
558 ///
559 /// # Examples
560 ///
561 /// ```ignore
562 /// # use kernel::from_err_ptr;
563 /// # use kernel::bindings;
564 /// fn devm_platform_ioremap_resource(
565 ///     pdev: &mut PlatformDevice,
566 ///     index: u32,
567 /// ) -> Result<*mut kernel::ffi::c_void> {
568 ///     // SAFETY: `pdev` points to a valid platform device. There are no safety requirements
569 ///     // on `index`.
570 ///     from_err_ptr(unsafe { bindings::devm_platform_ioremap_resource(pdev.to_ptr(), index) })
571 /// }
572 /// ```
573 ///
574 /// ```
575 /// # use kernel::error::from_err_ptr;
576 /// # mod bindings {
577 /// #     #![expect(clippy::missing_safety_doc)]
578 /// #     use kernel::prelude::*;
579 /// #     pub(super) unsafe fn einval_err_ptr() -> *mut kernel::ffi::c_void {
580 /// #         EINVAL.to_ptr()
581 /// #     }
582 /// #     pub(super) unsafe fn null_ptr() -> *mut kernel::ffi::c_void {
583 /// #         core::ptr::null_mut()
584 /// #     }
585 /// #     pub(super) unsafe fn non_null_ptr() -> *mut kernel::ffi::c_void {
586 /// #         0x1234 as *mut kernel::ffi::c_void
587 /// #     }
588 /// # }
589 /// // SAFETY: ...
590 /// let einval_err = from_err_ptr(unsafe { bindings::einval_err_ptr() });
591 /// assert_eq!(einval_err, Err(EINVAL));
592 ///
593 /// // SAFETY: ...
594 /// let null_ok = from_err_ptr(unsafe { bindings::null_ptr() });
595 /// assert_eq!(null_ok, Ok(core::ptr::null_mut()));
596 ///
597 /// // SAFETY: ...
598 /// let non_null = from_err_ptr(unsafe { bindings::non_null_ptr() }).unwrap();
599 /// assert_ne!(non_null, core::ptr::null_mut());
600 /// ```
601 pub fn from_err_ptr<T>(ptr: *mut T) -> Result<*mut T> {
602     // CAST: Casting a pointer to `*const crate::ffi::c_void` is always valid.
603     let const_ptr: *const crate::ffi::c_void = ptr.cast();
604     // SAFETY: The FFI function does not deref the pointer.
605     if unsafe { bindings::IS_ERR(const_ptr) } {
606         // SAFETY: The FFI function does not deref the pointer.
607         let err = unsafe { bindings::PTR_ERR(const_ptr) };
608 
609         #[allow(clippy::unnecessary_cast)]
610         // CAST: If `IS_ERR()` returns `true`,
611         // then `PTR_ERR()` is guaranteed to return a
612         // negative value greater-or-equal to `-bindings::MAX_ERRNO`,
613         // which always fits in an `i16`, as per the invariant above.
614         // And an `i16` always fits in an `i32`. So casting `err` to
615         // an `i32` can never overflow, and is always valid.
616         //
617         // SAFETY: `IS_ERR()` ensures `err` is a
618         // negative value greater-or-equal to `-bindings::MAX_ERRNO`.
619         return Err(unsafe { Error::from_errno_unchecked(err as crate::ffi::c_int) });
620     }
621     Ok(ptr)
622 }
623 
624 /// Calls a closure returning a [`crate::error::Result<T>`] and converts the result to
625 /// a C integer result.
626 ///
627 /// This is useful when calling Rust functions that return [`crate::error::Result<T>`]
628 /// from inside `extern "C"` functions that need to return an integer error result.
629 ///
630 /// `T` should be convertible from an `i16` via `From<i16>`.
631 ///
632 /// # Examples
633 ///
634 /// ```ignore
635 /// # use kernel::from_result;
636 /// # use kernel::bindings;
637 /// unsafe extern "C" fn probe_callback(
638 ///     pdev: *mut bindings::platform_device,
639 /// ) -> kernel::ffi::c_int {
640 ///     from_result(|| {
641 ///         let ptr = devm_alloc(pdev)?;
642 ///         bindings::platform_set_drvdata(pdev, ptr);
643 ///         Ok(0)
644 ///     })
645 /// }
646 /// ```
647 pub fn from_result<T, F>(f: F) -> T
648 where
649     T: From<i16>,
650     F: FnOnce() -> Result<T>,
651 {
652     match f() {
653         Ok(v) => v,
654         // NO-OVERFLOW: negative `errno`s are no smaller than `-bindings::MAX_ERRNO`,
655         // `-bindings::MAX_ERRNO` fits in an `i16` as per invariant above,
656         // therefore a negative `errno` always fits in an `i16` and will not overflow.
657         Err(e) => T::from(e.to_errno() as i16),
658     }
659 }
660 
661 /// Error message for calling a default function of a [`#[vtable]`](macros::vtable) trait.
662 pub const VTABLE_DEFAULT_ERROR: &str =
663     "This function must not be called, see the #[vtable] documentation.";
664