Files
linux/rust/macros/lib.rs
Linus Torvalds 59e6295fac Merge tag 'driver-core-7.3-rc1' of git://git.kernel.org/pub/scm/linux/kernel/git/driver-core/driver-core
Pull driver core updates from Danilo Krummrich:
 "container_of:

   - Apply typeof_member(), remove the local __mptr variable to
     eliminate variable shadowing warnings on nested container_of()
     calls, and remove unnecessary parentheses

  core:

   - Add driver name to probe debug print for initcall_debug

   - Avoid repeatedly printing the same 'Fixed dependency cycle' log

   - Unwind device_add() on attribute creation failure in
     attribute_container_add_class_device()

   - Remove statistics group if encryption group creation fails in
     transport_add_class_device()

  debugfs:

   - Fix lockdown check for mmap_prepare()

   - Warn if file creation failed due to uninitialized debugfs

  device property:

   - Implement fw_devlink support for software nodes by adding
     software_node_add_links(), which creates fwnode links from
     DEV_PROP_REF properties to enable automatic probe ordering. Add
     kunit-managed fwnode helpers and test coverage

   - Fix infinite loop in fwnode_for_each_child_node() when the
     secondary fwnode has more than one child. Add test cases

   - Fix out-of-bounds access in software_node_get_reference_args() when
     called with index -1 (UINT_MAX)

   - Refactor to use RAII approach with __free()

   - Add Bartosz Golaszewski as software node reviewer

  firmware loader:

   - Fix race where a sysfs fallback request can complete before being
     queued as pending, leading to a use-after-free on the next fallback
     request

   - Reject 0-size built-in firmware and fail the build on empty
     firmware files in CONFIG_EXTRA_FIRMWARE

  kobject:

   - Provide __KOBJ_ATTR() and __KOBJ_ATTR_RO/WO() initialization macros
     and allow the constification of kobject attributes, enabling them
     to reside in read-only memory

  platform:

   - Provide platform_device_set_of_node(), platform_device_set_fwnode(),
     and platform_device_set_of_node_from_dev() helpers that encapsulate
     firmware node reference counting for dynamically allocated platform
     devices

     Convert all in-tree users that manually assigned dev.of_node or
     dev.fwnode, fixing a pre-existing refcount bug in powermac. Switch
     to counting references of all firmware node types, not only OF
     nodes

   - Unify the release path for dynamically allocated platform devices
     by removing platform_device_release_full(). Amend the fwnode setter
     API contract to warn if a primary software node is overwritten. Add
     KUnit tests for correct software node removal on device
     unregistration

  Rust:

   - Auxiliary:
       - Add registration_data_with() closure-based API for invariant
         ForLt types

   - Debugfs:
       - Migrate BinaryWriter and BinaryReaderMut trait requirements
         from kernel::transmute traits to zerocopy traits

   - Device:
       - Add BoundInternal device context and InternalBoundContext trait
         for bus abstractions that need internal access to a bound
         device.
       - Make the lifetime on Core and CoreInternal invariant to prevent
         coercion to shorter lifetimes

   - Devres:
       - Fix race between concurrent revokers where the losing revoker
         could return before the winning revoker finished dropping the
         inner data, causing use-after-free.
       - Ensure revocation is complete before the device finishes
         unbinding by making the synchronization bidirectional.
       - Add DevresLt<F: ForLt>, a wrapper around Devres that shortens
         'static back to the caller's borrow scope. Implement ForLt and
         CovariantForLt for Bar, IoMem, and ExclusiveIoMem

   - Driver:
       - Switch from index-based to pointer-based device ID info lookup,
         storing static references in driver_data. Centralize device ID
         handling in device_id.rs, removing the open-coded ACPI/OF
         matching logic and duplicate ID table from driver.rs

   - I/O:
       - Make I/O regions typed (with a dynamically-sized Region type
         for the existing untyped case), create view types representing
         subregions of a mapped I/O region, and add io_project!() for
         safely creating subviews.
       - Split Io into a base trait (IoBase) and an extension trait (Io)
         with a blanket implementation, preventing implementers from
         overriding provided methods that unsafe code relies on.
       - Add a SysMem backend for shared system memory with volatile
         access, and make Coherent implement Io via an I/O view type.
         Add IoSysMap as sum type of Mmio and SysMem. Add copying
         methods (memcpy_{from,to}io()) and read_val()/write_val() for
         typed access.
       - Replace dma_read!()/dma_write!() with io_read!()/io_write!()
         for primitives and copying methods for aggregates; drop the old
         macros. Convert nova-core to use I/O projection.
       - Fix internal shortcut rule dispatch in the register!() macro,
         remove unused rule arguments, and use path fragments for alias
         destinations

   - IRQ:
       - Make irq::Registration compatible with lifetime-bound drivers
         by removing the 'static bound on Handler/ThreadedHandler and
         replacing Devres<RegistrationInner> with direct
         request_irq()/free_irq() calls. Handlers can now directly own
         lifetime-bound device resources

   - PCI:
       - Convert IrqVectorRegistration to a lifetime-annotated owning
         type, giving drivers explicit control over the allocation
         lifetime. IrqVector embeds a resolved IrqRequest, making the
         conversion infallible. Remove the redundant
         request_irq()/request_threaded_irq() wrappers from pci::Device.
       - Add pci_irq_type() C helper and expose it via irq_type() on
         IrqVectorRegistration and IrqVector, returning PCI_IRQ_MSIX,
         PCI_IRQ_MSI, or PCI_IRQ_INTX.
       - Mark pci::Device refcount methods inline

   - Serdev:
       - Add Rust abstractions for the serial device bus, including
         serdev::Driver trait, serdev::Device wrapping struct
         serdev_device, and serdev::Adapter implementing
         RegistrationOps. Includes a sample driver. Markus Probst takes
         over as serdev maintainer for both C and Rust code

   - Misc:
       - Split ForLt into a base trait (providing the Of<'a> GAT) and an
         unsafe CovariantForLt subtrait guaranteeing covariance,
         enabling invariant types (e.g. those containing Mutex<&'bound T>)
         to participate in the ForLt abstraction.
       - Fix Coherent read past EOF returning -ERANGE instead of zero.
       - Fix firmware example UB by avoiding null-pointer ARef

  misc:
   - Avoid iattr allocation in kernfs listxattr by using
     kernfs_iattrs_noalloc().
   - Unregister SoC bus on early device registration failure.
   - Remove unused DMA_FENCE_TRACE Kconfig symbol.
   - Fix /sys/module path in comment.
   - Refactor ISA bus init to remove nested blocks.
   - Remove redundant nodemask clears in numa_init().
   - Add kernel-doc for fwnode_operations and sys_soc.h, mark
     internal property data as private for kernel-doc, and add
     property.h/fwnode.h to driver-api infrastructure docs.
   - Add MAINTAINERS entry for sys_soc.h"

* tag 'driver-core-7.3-rc1' of git://git.kernel.org/pub/scm/linux/kernel/git/driver-core/driver-core: (129 commits)
  rust: pci: expose the allocated interrupt type
  PCI: Add pci_irq_type() to query the allocated interrupt type
  rust: pci: remove request_irq() and request_threaded_irq() from Device
  rust: pci: resolve IRQ in index() and embed IrqRequest in IrqVector
  rust: pci: convert IrqVectorRegistration to a lifetime-managed owning type
  kernfs: avoid iattr allocation in listxattr
  rust: serdev: use ThisModule::as_ptr() instead of field access
  ACPI/IORT: use platform_device_set_fwnode()
  ACPI/APMT: use platform_device_set_fwnode()
  firmware_loader: do not queue completed sysfs fallback requests
  rust: pci: Mark Device refcount methods inline
  rust: irq: make Registration compatible with lifetime-bound drivers
  rust: net/phy: remove expansion from doc
  rust: dma: return zero for Coherent reads past EOF
  rust: io: register: use path fragment for alias destination
  rust: io: register: remove unused rule arguments
  rust: io: register: dispatch shortcut rules internally
  MAINTAINERS: add sys_soc.h to DRIVER CORE
  rust: debugfs: remove unsafe blocks from traits impl for Vec
  rust: debugfs: migrate debugfs traits requirements to zerocopy
  ...
2026-08-19 10:42:18 -07:00

539 lines
18 KiB
Rust

// SPDX-License-Identifier: GPL-2.0
//! Crate for all kernel procedural macros.
// When fixdep scans this, it will find this string `CONFIG_RUSTC_VERSION_TEXT`
// and thus add a dependency on `include/config/RUSTC_VERSION_TEXT`, which is
// touched by Kconfig when the version string from the compiler changes.
// Stable since Rust 1.87.0.
#![feature(extract_if)]
//
// Stable since Rust 1.88.0 under a different name, `proc_macro_span_file`,
// which was added in Rust 1.88.0. This is why `cfg_attr` is used here, i.e.
// to avoid depending on the full `proc_macro_span` on Rust >= 1.88.0.
#![cfg_attr(not(CONFIG_RUSTC_HAS_SPAN_FILE), feature(proc_macro_span))]
mod concat_idents;
mod export;
mod fmt;
mod for_lt;
mod helpers;
mod kunit;
mod module;
mod paste;
mod vtable;
use proc_macro::TokenStream;
use syn::parse_macro_input;
/// Declares a kernel module.
///
/// The `type` argument should be a type which implements the [`Module`]
/// trait. Also accepts various forms of kernel metadata.
///
/// The `params` field describe module parameters. Each entry has the form
///
/// ```ignore
/// parameter_name: type {
/// default: default_value,
/// description: "Description",
/// }
/// ```
///
/// `type` may be one of
///
/// - [`i8`]
/// - [`u8`]
/// - [`i8`]
/// - [`u8`]
/// - [`i16`]
/// - [`u16`]
/// - [`i32`]
/// - [`u32`]
/// - [`i64`]
/// - [`u64`]
/// - [`isize`]
/// - [`usize`]
///
/// C header: [`include/linux/moduleparam.h`](srctree/include/linux/moduleparam.h)
///
/// [`Module`]: ../kernel/trait.Module.html
///
/// # Examples
///
/// ```ignore
/// use kernel::prelude::*;
///
/// module!{
/// type: MyModule,
/// name: "my_kernel_module",
/// authors: ["Rust for Linux Contributors"],
/// description: "My very own kernel module!",
/// license: "GPL",
/// alias: ["alternate_module_name"],
/// params: {
/// my_parameter: i64 {
/// default: 1,
/// description: "This parameter has a default of 1",
/// },
/// },
/// }
///
/// struct MyModule(i32);
///
/// impl kernel::Module for MyModule {
/// fn init(_module: &'static ThisModule) -> Result<Self> {
/// let foo: i32 = 42;
/// pr_info!("I contain: {}\n", foo);
/// pr_info!("i32 param is: {}\n", module_parameters::my_parameter.read());
/// Ok(Self(foo))
/// }
/// }
/// # fn main() {}
/// ```
///
/// ## Firmware
///
/// The following example shows how to declare a kernel module that needs
/// to load binary firmware files. You need to specify the file names of
/// the firmware in the `firmware` field. The information is embedded
/// in the `modinfo` section of the kernel module. For example, a tool to
/// build an initramfs uses this information to put the firmware files into
/// the initramfs image.
///
/// ```
/// use kernel::prelude::*;
///
/// module!{
/// type: MyDeviceDriverModule,
/// name: "my_device_driver_module",
/// authors: ["Rust for Linux Contributors"],
/// description: "My device driver requires firmware",
/// license: "GPL",
/// firmware: ["my_device_firmware1.bin", "my_device_firmware2.bin"],
/// }
///
/// struct MyDeviceDriverModule;
///
/// impl kernel::Module for MyDeviceDriverModule {
/// fn init(_module: &'static ThisModule) -> Result<Self> {
/// Ok(Self)
/// }
/// }
/// # fn main() {}
/// ```
///
/// # Supported argument types
/// - `type`: type which implements the [`Module`] trait (required).
/// - `name`: ASCII string literal of the name of the kernel module (required).
/// - `authors`: array of ASCII string literals of the authors of the kernel module.
/// - `description`: string literal of the description of the kernel module.
/// - `license`: ASCII string literal of the license of the kernel module (required).
/// - `alias`: array of ASCII string literals of the alias names of the kernel module.
/// - `firmware`: array of ASCII string literals of the firmware files of
/// the kernel module.
#[proc_macro]
pub fn module(input: TokenStream) -> TokenStream {
module::module(parse_macro_input!(input))
.unwrap_or_else(|e| e.into_compile_error())
.into()
}
/// Declares or implements a vtable trait.
///
/// Linux's use of pure vtables is very close to Rust traits, but they differ
/// in how unimplemented functions are represented. In Rust, traits can provide
/// default implementation for all non-required methods (and the default
/// implementation could just return `Error::EINVAL`); Linux typically use C
/// `NULL` pointers to represent these functions.
///
/// This attribute closes that gap. A trait can be annotated with the
/// `#[vtable]` attribute. Implementers of the trait will then also have to
/// annotate the trait with `#[vtable]`. This attribute generates a `HAS_*`
/// associated constant bool for each method in the trait that is set to true if
/// the implementer has overridden the associated method.
///
/// For a trait method to be optional, it must have a default implementation.
/// This is also the case for traits annotated with `#[vtable]`, but in this
/// case the default implementation will never be executed. The reason for this
/// is that the functions will be called through function pointers installed in
/// C side vtables. When an optional method is not implemented on a `#[vtable]`
/// trait, a `NULL` entry is installed in the vtable. Thus the default
/// implementation is never called. Since these traits are not designed to be
/// used on the Rust side, it should not be possible to call the default
/// implementation. This is done to ensure that we call the vtable methods
/// through the C vtable, and not through the Rust vtable. Therefore, the
/// default implementation should call `build_error!`, which prevents
/// calls to this function at compile time:
///
/// ```compile_fail
/// # // Intentionally missing `use`s to simplify `rusttest`.
/// build_error!(VTABLE_DEFAULT_ERROR)
/// ```
///
/// Note that you might need to import [`kernel::error::VTABLE_DEFAULT_ERROR`].
///
/// This macro should not be used when all functions are required.
///
/// Additionally, this macro automatically handles the `OwnerModule`
/// associated type: on the trait side, `type OwnerModule: ModuleMetadata;`
/// is added as a required associated type if not already defined; on the
/// impl side, `type OwnerModule = LocalModule;` is automatically inserted
/// if not explicitly defined.
///
/// # Examples
///
/// ```
/// use kernel::error::VTABLE_DEFAULT_ERROR;
/// use kernel::prelude::*;
///
/// # struct LocalModule;
/// # impl kernel::ModuleMetadata for LocalModule {
/// # const NAME: &'static kernel::str::CStr = c"vtable_doctest";
/// #
/// # // SAFETY: This doctest runs on the host: there is no `THIS_MODULE`.
/// # const THIS_MODULE: kernel::ThisModule = unsafe {
/// # kernel::ThisModule::from_ptr(core::ptr::null_mut())
/// # };
/// # }
/// #
/// # fn main() {
/// // Declares a `#[vtable]` trait
/// #[vtable]
/// pub trait Operations: Send + Sync + Sized {
/// fn foo(&self) -> Result<()> {
/// build_error!(VTABLE_DEFAULT_ERROR)
/// }
///
/// fn bar(&self) -> Result<()> {
/// build_error!(VTABLE_DEFAULT_ERROR)
/// }
/// }
///
/// struct Foo;
///
/// // Implements the `#[vtable]` trait
/// #[vtable]
/// impl Operations for Foo {
/// fn foo(&self) -> Result<()> {
/// # Err(EINVAL)
/// // ...
/// }
/// }
///
/// assert_eq!(<Foo as Operations>::HAS_FOO, true);
/// assert_eq!(<Foo as Operations>::HAS_BAR, false);
/// # }
/// ```
///
/// [`kernel::error::VTABLE_DEFAULT_ERROR`]: ../kernel/error/constant.VTABLE_DEFAULT_ERROR.html
#[proc_macro_attribute]
pub fn vtable(attr: TokenStream, input: TokenStream) -> TokenStream {
parse_macro_input!(attr as syn::parse::Nothing);
vtable::vtable(parse_macro_input!(input))
.unwrap_or_else(|e| e.into_compile_error())
.into()
}
/// Export a function so that C code can call it via a header file.
///
/// Functions exported using this macro can be called from C code using the declaration in the
/// appropriate header file. It should only be used in cases where C calls the function through a
/// header file; cases where C calls into Rust via a function pointer in a vtable (such as
/// `file_operations`) should not use this macro.
///
/// This macro has the following effect:
///
/// * Disables name mangling for this function.
/// * Verifies at compile-time that the function signature matches the declaration in the header
/// file.
///
/// You must declare the signature of the Rust function in a header file that is included by
/// `rust/bindings/bindings_helper.h`.
///
/// This macro is *not* the same as the C macros `EXPORT_SYMBOL_*`. All Rust symbols are currently
/// automatically exported with `EXPORT_SYMBOL_GPL`.
#[proc_macro_attribute]
pub fn export(attr: TokenStream, input: TokenStream) -> TokenStream {
parse_macro_input!(attr as syn::parse::Nothing);
export::export(parse_macro_input!(input)).into()
}
/// Like [`core::format_args!`], but automatically wraps arguments in [`kernel::fmt::Adapter`].
///
/// This macro allows generating `fmt::Arguments` while ensuring that each argument is wrapped with
/// `::kernel::fmt::Adapter`, which customizes formatting behavior for kernel logging.
///
/// Named arguments used in the format string (e.g. `{foo}`) are detected and resolved from local
/// bindings. All positional and named arguments are automatically wrapped.
///
/// This macro is an implementation detail of other kernel logging macros like [`pr_info!`] and
/// should not typically be used directly.
///
/// [`kernel::fmt::Adapter`]: ../kernel/fmt/struct.Adapter.html
/// [`pr_info!`]: ../kernel/macro.pr_info.html
#[proc_macro]
pub fn fmt(input: TokenStream) -> TokenStream {
fmt::fmt(input.into()).into()
}
/// Concatenate two identifiers.
///
/// This is useful in macros that need to declare or reference items with names
/// starting with a fixed prefix and ending in a user specified name. The resulting
/// identifier has the span of the second argument.
///
/// # Examples
///
/// ```
/// # const binder_driver_return_protocol_BR_OK: u32 = 0;
/// # const binder_driver_return_protocol_BR_ERROR: u32 = 1;
/// # const binder_driver_return_protocol_BR_TRANSACTION: u32 = 2;
/// # const binder_driver_return_protocol_BR_REPLY: u32 = 3;
/// # const binder_driver_return_protocol_BR_DEAD_REPLY: u32 = 4;
/// # const binder_driver_return_protocol_BR_TRANSACTION_COMPLETE: u32 = 5;
/// # const binder_driver_return_protocol_BR_INCREFS: u32 = 6;
/// # const binder_driver_return_protocol_BR_ACQUIRE: u32 = 7;
/// # const binder_driver_return_protocol_BR_RELEASE: u32 = 8;
/// # const binder_driver_return_protocol_BR_DECREFS: u32 = 9;
/// # const binder_driver_return_protocol_BR_NOOP: u32 = 10;
/// # const binder_driver_return_protocol_BR_SPAWN_LOOPER: u32 = 11;
/// # const binder_driver_return_protocol_BR_DEAD_BINDER: u32 = 12;
/// # const binder_driver_return_protocol_BR_CLEAR_DEATH_NOTIFICATION_DONE: u32 = 13;
/// # const binder_driver_return_protocol_BR_FAILED_REPLY: u32 = 14;
/// use kernel::macros::concat_idents;
///
/// macro_rules! pub_no_prefix {
/// ($prefix:ident, $($newname:ident),+) => {
/// $(pub(crate) const $newname: u32 = concat_idents!($prefix, $newname);)+
/// };
/// }
///
/// pub_no_prefix!(
/// binder_driver_return_protocol_,
/// BR_OK,
/// BR_ERROR,
/// BR_TRANSACTION,
/// BR_REPLY,
/// BR_DEAD_REPLY,
/// BR_TRANSACTION_COMPLETE,
/// BR_INCREFS,
/// BR_ACQUIRE,
/// BR_RELEASE,
/// BR_DECREFS,
/// BR_NOOP,
/// BR_SPAWN_LOOPER,
/// BR_DEAD_BINDER,
/// BR_CLEAR_DEATH_NOTIFICATION_DONE,
/// BR_FAILED_REPLY
/// );
///
/// assert_eq!(BR_OK, binder_driver_return_protocol_BR_OK);
/// ```
#[proc_macro]
pub fn concat_idents(input: TokenStream) -> TokenStream {
concat_idents::concat_idents(parse_macro_input!(input)).into()
}
/// Paste identifiers together.
///
/// Within the `paste!` macro, identifiers inside `[<` and `>]` are concatenated together to form a
/// single identifier.
///
/// This is similar to the [`paste`] crate, but with pasting feature limited to identifiers and
/// literals (lifetimes and documentation strings are not supported). There is a difference in
/// supported modifiers as well.
///
/// # Examples
///
/// ```
/// # const binder_driver_return_protocol_BR_OK: u32 = 0;
/// # const binder_driver_return_protocol_BR_ERROR: u32 = 1;
/// # const binder_driver_return_protocol_BR_TRANSACTION: u32 = 2;
/// # const binder_driver_return_protocol_BR_REPLY: u32 = 3;
/// # const binder_driver_return_protocol_BR_DEAD_REPLY: u32 = 4;
/// # const binder_driver_return_protocol_BR_TRANSACTION_COMPLETE: u32 = 5;
/// # const binder_driver_return_protocol_BR_INCREFS: u32 = 6;
/// # const binder_driver_return_protocol_BR_ACQUIRE: u32 = 7;
/// # const binder_driver_return_protocol_BR_RELEASE: u32 = 8;
/// # const binder_driver_return_protocol_BR_DECREFS: u32 = 9;
/// # const binder_driver_return_protocol_BR_NOOP: u32 = 10;
/// # const binder_driver_return_protocol_BR_SPAWN_LOOPER: u32 = 11;
/// # const binder_driver_return_protocol_BR_DEAD_BINDER: u32 = 12;
/// # const binder_driver_return_protocol_BR_CLEAR_DEATH_NOTIFICATION_DONE: u32 = 13;
/// # const binder_driver_return_protocol_BR_FAILED_REPLY: u32 = 14;
/// macro_rules! pub_no_prefix {
/// ($prefix:ident, $($newname:ident),+) => {
/// ::kernel::macros::paste! {
/// $(pub(crate) const $newname: u32 = [<$prefix $newname>];)+
/// }
/// };
/// }
///
/// pub_no_prefix!(
/// binder_driver_return_protocol_,
/// BR_OK,
/// BR_ERROR,
/// BR_TRANSACTION,
/// BR_REPLY,
/// BR_DEAD_REPLY,
/// BR_TRANSACTION_COMPLETE,
/// BR_INCREFS,
/// BR_ACQUIRE,
/// BR_RELEASE,
/// BR_DECREFS,
/// BR_NOOP,
/// BR_SPAWN_LOOPER,
/// BR_DEAD_BINDER,
/// BR_CLEAR_DEATH_NOTIFICATION_DONE,
/// BR_FAILED_REPLY
/// );
///
/// assert_eq!(BR_OK, binder_driver_return_protocol_BR_OK);
/// ```
///
/// # Modifiers
///
/// For each identifier, it is possible to attach one or multiple modifiers to
/// it.
///
/// Currently supported modifiers are:
/// * `span`: change the span of concatenated identifier to the span of the specified token. By
/// default the span of the `[< >]` group is used.
/// * `lower`: change the identifier to lower case.
/// * `upper`: change the identifier to upper case.
///
/// ```
/// # const binder_driver_return_protocol_BR_OK: u32 = 0;
/// # const binder_driver_return_protocol_BR_ERROR: u32 = 1;
/// # const binder_driver_return_protocol_BR_TRANSACTION: u32 = 2;
/// # const binder_driver_return_protocol_BR_REPLY: u32 = 3;
/// # const binder_driver_return_protocol_BR_DEAD_REPLY: u32 = 4;
/// # const binder_driver_return_protocol_BR_TRANSACTION_COMPLETE: u32 = 5;
/// # const binder_driver_return_protocol_BR_INCREFS: u32 = 6;
/// # const binder_driver_return_protocol_BR_ACQUIRE: u32 = 7;
/// # const binder_driver_return_protocol_BR_RELEASE: u32 = 8;
/// # const binder_driver_return_protocol_BR_DECREFS: u32 = 9;
/// # const binder_driver_return_protocol_BR_NOOP: u32 = 10;
/// # const binder_driver_return_protocol_BR_SPAWN_LOOPER: u32 = 11;
/// # const binder_driver_return_protocol_BR_DEAD_BINDER: u32 = 12;
/// # const binder_driver_return_protocol_BR_CLEAR_DEATH_NOTIFICATION_DONE: u32 = 13;
/// # const binder_driver_return_protocol_BR_FAILED_REPLY: u32 = 14;
/// macro_rules! pub_no_prefix {
/// ($prefix:ident, $($newname:ident),+) => {
/// ::kernel::macros::paste! {
/// $(pub(crate) const fn [<$newname:lower:span>]() -> u32 { [<$prefix $newname:span>] })+
/// }
/// };
/// }
///
/// pub_no_prefix!(
/// binder_driver_return_protocol_,
/// BR_OK,
/// BR_ERROR,
/// BR_TRANSACTION,
/// BR_REPLY,
/// BR_DEAD_REPLY,
/// BR_TRANSACTION_COMPLETE,
/// BR_INCREFS,
/// BR_ACQUIRE,
/// BR_RELEASE,
/// BR_DECREFS,
/// BR_NOOP,
/// BR_SPAWN_LOOPER,
/// BR_DEAD_BINDER,
/// BR_CLEAR_DEATH_NOTIFICATION_DONE,
/// BR_FAILED_REPLY
/// );
///
/// assert_eq!(br_ok(), binder_driver_return_protocol_BR_OK);
/// ```
///
/// # Literals
///
/// Literals can also be concatenated with other identifiers:
///
/// ```
/// macro_rules! create_numbered_fn {
/// ($name:literal, $val:literal) => {
/// ::kernel::macros::paste! {
/// fn [<some_ $name _fn $val>]() -> u32 { $val }
/// }
/// };
/// }
///
/// create_numbered_fn!("foo", 100);
///
/// assert_eq!(some_foo_fn100(), 100)
/// ```
///
/// [`paste`]: https://docs.rs/paste/
#[proc_macro]
pub fn paste(input: TokenStream) -> TokenStream {
let mut tokens = proc_macro2::TokenStream::from(input).into_iter().collect();
paste::expand(&mut tokens);
tokens
.into_iter()
.collect::<proc_macro2::TokenStream>()
.into()
}
/// Registers a KUnit test suite and its test cases using a user-space like syntax.
///
/// This macro should be used on modules. If `CONFIG_KUNIT` (in `.config`) is `n`, the target module
/// is ignored.
///
/// # Examples
///
/// ```ignore
/// # use kernel::prelude::*;
/// #[kunit_tests(kunit_test_suit_name)]
/// mod tests {
/// #[test]
/// fn foo() {
/// assert_eq!(1, 1);
/// }
///
/// #[test]
/// fn bar() {
/// assert_eq!(2, 2);
/// }
/// }
/// ```
#[proc_macro_attribute]
pub fn kunit_tests(attr: TokenStream, input: TokenStream) -> TokenStream {
kunit::kunit_tests(parse_macro_input!(attr), parse_macro_input!(input))
.unwrap_or_else(|e| e.into_compile_error())
.into()
}
/// Obtain a type that implements [`ForLt`] for the given higher-ranked type.
///
/// Please refer to the documentation of the [`ForLt`] trait.
///
/// [`ForLt`]: trait.ForLt.html
#[proc_macro]
#[allow(non_snake_case)]
pub fn ForLt(input: TokenStream) -> TokenStream {
for_lt::for_lt(parse_macro_input!(input)).into()
}
/// Obtain a type that implements [`CovariantForLt`] (and [`ForLt`]) for the given higher-ranked
/// type.
///
/// Unlike [`ForLt!`], this macro additionally proves that the type is covariant over the lifetime,
/// providing a safe [`CovariantForLt::cast_ref`] method.
///
/// Please refer to the documentation of the [`CovariantForLt`] trait.
///
/// [`CovariantForLt`]: trait.CovariantForLt.html
/// [`CovariantForLt::cast_ref`]: trait.CovariantForLt.html#method.cast_ref
/// [`ForLt`]: trait.ForLt.html
#[proc_macro]
#[allow(non_snake_case)]
pub fn CovariantForLt(input: TokenStream) -> TokenStream {
for_lt::covariant_for_lt(parse_macro_input!(input)).into()
}