mirror of
https://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git
synced 2026-08-27 18:43:12 -04:00
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
...
605 lines
22 KiB
Rust
605 lines
22 KiB
Rust
// SPDX-License-Identifier: GPL-2.0
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//! Abstractions for the serial device bus.
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//!
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//! C header: [`include/linux/serdev.h`](srctree/include/linux/serdev.h)
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use crate::{
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acpi,
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device,
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driver,
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error::{
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from_result,
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to_result,
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VTABLE_DEFAULT_ERROR, //
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},
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new_mutex,
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of,
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prelude::*,
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sync::{
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aref::AlwaysRefCounted,
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Mutex, //
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},
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time::Jiffies,
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types::{
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Opaque,
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ScopeGuard, //
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}, //
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};
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use core::{
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cell::UnsafeCell,
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marker::PhantomData,
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mem::{offset_of, MaybeUninit},
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ptr::NonNull, //
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};
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/// Parity bit to use with a serial device.
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#[repr(u32)]
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pub enum Parity {
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/// No parity bit.
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None = bindings::serdev_parity_SERDEV_PARITY_NONE,
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/// Even partiy.
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Even = bindings::serdev_parity_SERDEV_PARITY_EVEN,
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/// Odd parity.
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Odd = bindings::serdev_parity_SERDEV_PARITY_ODD,
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}
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/// An adapter for the registration of serial device bus device drivers.
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pub struct Adapter<T: Driver>(T);
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// SAFETY:
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// - `bindings::serdev_device_driver` is a C type declared as `repr(C)`.
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// - `PrivateData<'bound, T>` is the type of the driver's device private data.
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// - `struct serdev_device_driver` embeds a `struct device_driver`.
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// - `DEVICE_DRIVER_OFFSET` is the correct byte offset to the embedded `struct device_driver`.
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unsafe impl<T: Driver> driver::DriverLayout for Adapter<T> {
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type DriverType = bindings::serdev_device_driver;
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type DriverData<'bound> = PrivateData<'bound, T>;
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const DEVICE_DRIVER_OFFSET: usize = core::mem::offset_of!(Self::DriverType, driver);
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}
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// SAFETY: A call to `unregister` for a given instance of `DriverType` is guaranteed to be valid if
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// a preceding call to `register` has been successful.
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unsafe impl<T: Driver> driver::RegistrationOps for Adapter<T> {
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unsafe fn register(
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sdrv: &Opaque<Self::DriverType>,
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name: &'static CStr,
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module: &'static ThisModule,
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) -> Result {
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let of_table = match T::OF_ID_TABLE {
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Some(table) => table.as_ptr(),
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None => core::ptr::null(),
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};
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let acpi_table = match T::ACPI_ID_TABLE {
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Some(table) => table.as_ptr(),
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None => core::ptr::null(),
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};
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// SAFETY: It's safe to set the fields of `struct serdev_device_driver` on initialization.
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unsafe {
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(*sdrv.get()).driver.name = name.as_char_ptr();
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(*sdrv.get()).probe = Some(Self::probe_callback);
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(*sdrv.get()).remove = Some(Self::remove_callback);
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(*sdrv.get()).driver.of_match_table = of_table;
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(*sdrv.get()).driver.acpi_match_table = acpi_table;
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}
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// SAFETY: `sdrv` is guaranteed to be a valid `DriverType`.
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to_result(unsafe { bindings::__serdev_device_driver_register(sdrv.get(), module.as_ptr()) })
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}
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unsafe fn unregister(sdrv: &Opaque<Self::DriverType>) {
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// SAFETY: `sdrv` is guaranteed to be a valid `DriverType`.
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unsafe { bindings::serdev_device_driver_unregister(sdrv.get()) };
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}
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}
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#[doc(hidden)]
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#[pin_data(PinnedDrop)]
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pub struct PrivateData<'bound, T: Driver> {
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sdev: &'bound Device<device::Bound>,
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#[pin]
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driver: UnsafeCell<MaybeUninit<T::Data<'bound>>>,
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open: UnsafeCell<bool>,
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/// Whether `receive_buf_callback` is allowed to call `Driver::receive`.
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///
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/// If locked, the receive_buf_callback will be blocked on data reception.
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/// This is the case while the driver is being probed or while [`PrivateData`] is being dropped.
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/// This is necessary, because we need to open the serdev device before the driver has been
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/// probed in order to allow it to be configured, which allows `receive_buf_callback` to be
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/// called. Thus we need to block data until probe completes and the driver data becomes
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/// initialized.
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///
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/// If unlocked and true, the receive_buf_callback will forward the data to
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/// `Driver::receive`. This is the normal state of operation.
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///
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/// If unlocked and false, the receive_buf_callback will throw away the data.
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/// This is only the case, if the serdev device is open and
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/// - the driver returned an error in probe
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/// or
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/// - the driver data already has been dropped, because it was unbound.
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#[pin]
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active: Mutex<bool>,
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}
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#[pinned_drop]
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impl<T: Driver> PinnedDrop for PrivateData<'_, T> {
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fn drop(self: Pin<&mut Self>) {
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let mut active = self.active.lock();
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if *active {
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// SAFETY:
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// - We have exclusive access to `self.driver`.
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// - `self.driver` is guaranteed to be initialized.
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unsafe { (*self.driver.get()).assume_init_drop() };
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*active = false;
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}
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drop(active);
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// SAFETY: We have exclusive access to `self.open`.
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if unsafe { *self.open.get() } {
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// SAFETY: `self.sdev.as_raw()` is guaranteed to be a pointer to a valid
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// `struct serdev_device`.
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unsafe { bindings::serdev_device_close(self.sdev.as_raw()) };
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}
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}
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}
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impl<T: Driver> Adapter<T> {
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const OPS: &'static bindings::serdev_device_ops = &bindings::serdev_device_ops {
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receive_buf: if T::HAS_RECEIVE {
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Some(Self::receive_buf_callback)
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} else {
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None
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},
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write_wakeup: Some(bindings::serdev_device_write_wakeup),
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};
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extern "C" fn probe_callback(sdev: *mut bindings::serdev_device) -> kernel::ffi::c_int {
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// SAFETY: The serial device bus only ever calls the probe callback with a valid pointer to
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// a `struct serdev_device`.
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//
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// INVARIANT: `sdev` is valid for the duration of `probe_callback()`.
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let sdev = unsafe { &*sdev.cast::<Device<device::CoreInternal<'_>>>() };
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// SAFETY: `sdev` matched data is of type `Self::IdInfo`.
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let info = unsafe { <Self as driver::Adapter>::id_info(sdev.as_ref()) };
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from_result(|| {
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sdev.as_ref().set_drvdata(try_pin_init!(PrivateData::<T> {
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sdev: &**sdev,
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driver: MaybeUninit::<T::Data<'_>>::zeroed().into(),
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open: false.into(),
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active <- new_mutex!(false),
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}))?;
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// SAFETY: We just set drvdata to `PrivateData<'_, T>`.
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let private_data = unsafe { sdev.as_ref().drvdata_borrow::<PrivateData<'_, T>>() };
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let private_data = ScopeGuard::new_with_data(private_data, |_| {
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// SAFETY: We just set drvdata to `PrivateData<'_, T>`.
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drop(unsafe { sdev.as_ref().drvdata_obtain::<PrivateData<'_, T>>() });
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});
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let mut active = private_data.active.lock();
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// SAFETY: `sdev.as_raw()` is guaranteed to be a valid pointer to `serdev_device`.
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unsafe { bindings::serdev_device_set_client_ops(sdev.as_raw(), Self::OPS) };
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// SAFETY: The serial device bus only ever calls the probe callback with a valid pointer
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// to a `serdev_device`.
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to_result(unsafe { bindings::serdev_device_open(sdev.as_raw()) })?;
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// SAFETY: We have exclusive access to `private_data.open`.
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unsafe { *private_data.open.get() = true };
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let data = T::probe(sdev, info);
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// SAFETY: We have exclusive access to `private_data.driver`.
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let driver = unsafe { &mut *private_data.driver.get() };
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// SAFETY:
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// - `driver.as_mut_ptr()` is a valid pointer to uninitialized data.
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// - `private_data.driver` is pinned.
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let result = unsafe { pin_init::raw_try_init(driver.as_mut_ptr(), data) };
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*active = result.is_ok();
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drop(active);
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result.map(|()| {
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private_data.dismiss();
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0
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})
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})
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}
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extern "C" fn remove_callback(sdev: *mut bindings::serdev_device) {
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// SAFETY: The serial device bus only ever calls the remove callback with a valid pointer
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// to a `struct serdev_device`.
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//
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// INVARIANT: `sdev` is valid for the duration of `remove_callback()`.
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let sdev = unsafe { &*sdev.cast::<Device<device::CoreInternal<'_>>>() };
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// SAFETY: `remove_callback` is only ever called after a successful call to
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// `probe_callback`, hence it's guaranteed that `Device::set_drvdata()` has been called
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// and stored a `Pin<KBox<PrivateData<'_, T>>>`.
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let private_data = unsafe { sdev.as_ref().drvdata_borrow::<PrivateData<'_, T>>() };
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// SAFETY: No one has exclusive access to `private_data.driver`.
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let data = unsafe { &*private_data.driver.get() };
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// SAFETY:
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// - `private_data.driver` is pinned.
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// - `remove_callback` is only ever called after a successful call to `probe_callback`,
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// hence it's guaranteed that `private_data.driver` was initialized.
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let data_pinned = unsafe { Pin::new_unchecked(data.assume_init_ref()) };
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T::unbind(sdev, data_pinned);
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}
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extern "C" fn receive_buf_callback(
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sdev: *mut bindings::serdev_device,
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buf: *const u8,
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length: usize,
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) -> usize {
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// SAFETY: The serial device bus only ever calls the receive buf callback with a valid
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// pointer to a `struct serdev_device`.
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//
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// INVARIANT: `sdev` is valid for the duration of `receive_buf_callback()`.
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let sdev = unsafe { &*sdev.cast::<Device<device::BoundInternal>>() };
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// SAFETY: `receive_buf_callback` is only ever called after a successful call to
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// `probe_callback`, hence it's guaranteed that `Device::set_drvdata()` has been called
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// and stored a `Pin<KBox<PrivateData<'_, T>>>`.
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let private_data = unsafe { sdev.as_ref().drvdata_borrow::<PrivateData<'_, T>>() };
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let active = private_data.active.lock();
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if !*active {
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return length;
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}
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// SAFETY: No one has exclusive access to `private_data.driver`.
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let data = unsafe { &*private_data.driver.get() };
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// SAFETY:
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// - `private_data.driver` is pinned.
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// - `receive_buf_callback` is only ever called after a successful call to `probe_callback`,
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// hence it's guaranteed that `private_data.driver` was initialized.
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let data_pinned = unsafe { Pin::new_unchecked(data.assume_init_ref()) };
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// SAFETY: `buf` is guaranteed to be non-null and has the size of `length`.
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let buf = unsafe { core::slice::from_raw_parts(buf, length) };
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T::receive(sdev, data_pinned, buf)
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}
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}
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impl<T: Driver> driver::Adapter for Adapter<T> {
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type IdInfo = T::IdInfo;
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fn of_id_table() -> Option<of::IdTable<Self::IdInfo>> {
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T::OF_ID_TABLE
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}
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fn acpi_id_table() -> Option<acpi::IdTable<Self::IdInfo>> {
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T::ACPI_ID_TABLE
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}
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}
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/// Declares a kernel module that exposes a single serial device bus device driver.
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///
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/// # Examples
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///
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/// ```ignore
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/// kernel::module_serdev_device_driver! {
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/// type: MyDriver,
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/// name: "Module name",
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/// authors: ["Author name"],
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/// description: "Description",
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/// license: "GPL v2",
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/// }
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/// ```
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#[macro_export]
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macro_rules! module_serdev_device_driver {
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($($f:tt)*) => {
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$crate::module_driver!(<T>, $crate::serdev::Adapter<T>, { $($f)* });
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};
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}
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/// The serial device bus device driver trait.
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///
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/// Drivers must implement this trait in order to get a serial device bus device driver registered.
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///
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/// # Examples
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///
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///```
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/// # use kernel::{
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/// acpi,
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/// bindings,
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/// device::{
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/// Bound,
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/// Core, //
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/// },
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/// of,
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/// serdev, //
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/// };
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///
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/// struct MyDriver;
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///
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/// kernel::of_device_table!(
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/// OF_TABLE,
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/// <MyDriver as serdev::Driver>::IdInfo,
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/// [
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/// (of::DeviceId::new(c"test,device"), ())
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/// ]
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/// );
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///
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/// kernel::acpi_device_table!(
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/// ACPI_TABLE,
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/// <MyDriver as serdev::Driver>::IdInfo,
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/// [
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/// (acpi::DeviceId::new(c"LNUXBEEF"), ())
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/// ]
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/// );
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///
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/// #[vtable]
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/// impl serdev::Driver for MyDriver {
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/// type IdInfo = ();
|
|
/// type Data<'bound> = Self;
|
|
/// const OF_ID_TABLE: Option<of::IdTable<Self::IdInfo>> = Some(&OF_TABLE);
|
|
/// const ACPI_ID_TABLE: Option<acpi::IdTable<Self::IdInfo>> = Some(&ACPI_TABLE);
|
|
///
|
|
/// fn probe<'bound>(
|
|
/// sdev: &'bound serdev::Device<Core<'_>>,
|
|
/// _id_info: Option<&'bound Self::IdInfo>,
|
|
/// ) -> impl PinInit<Self::Data<'bound>, Error> + 'bound {
|
|
/// sdev.set_baudrate(115200);
|
|
/// sdev.write_all(b"Hello\n", 0)?;
|
|
/// Ok(MyDriver)
|
|
/// }
|
|
/// }
|
|
///```
|
|
#[vtable]
|
|
pub trait Driver {
|
|
/// The type holding driver private data about each device id supported by the driver.
|
|
// TODO: Use associated_type_defaults once stabilized:
|
|
//
|
|
// ```
|
|
// type IdInfo: 'static = ();
|
|
// ```
|
|
type IdInfo: 'static;
|
|
|
|
/// The type of the driver's bus device private data.
|
|
type Data<'bound>: Send + Sync + 'bound;
|
|
|
|
/// The table of OF device ids supported by the driver.
|
|
const OF_ID_TABLE: Option<of::IdTable<Self::IdInfo>> = None;
|
|
|
|
/// The table of ACPI device ids supported by the driver.
|
|
const ACPI_ID_TABLE: Option<acpi::IdTable<Self::IdInfo>> = None;
|
|
|
|
/// Serial device bus device driver probe.
|
|
///
|
|
/// Called when a new serial device bus device is added or discovered.
|
|
/// Implementers should attempt to initialize the device here.
|
|
fn probe<'bound>(
|
|
sdev: &'bound Device<device::Core<'_>>,
|
|
id_info: Option<&'bound Self::IdInfo>,
|
|
) -> impl PinInit<Self::Data<'bound>, Error> + 'bound;
|
|
|
|
/// Serial device bus device driver unbind.
|
|
///
|
|
/// Called when a [`Device`] is unbound from its bound [`Driver`]. Implementing this callback
|
|
/// is optional.
|
|
///
|
|
/// This callback serves as a place for drivers to perform teardown operations that require a
|
|
/// `&Device<Core>` or `&Device<Bound>` reference. For instance.
|
|
///
|
|
/// Otherwise, release operations for driver resources should be performed in `Drop`.
|
|
fn unbind<'bound>(sdev: &'bound Device<device::Core<'_>>, this: Pin<&Self::Data<'bound>>) {
|
|
let _ = (sdev, this);
|
|
}
|
|
|
|
/// Serial device bus device data receive callback.
|
|
///
|
|
/// Called when data got received from device.
|
|
///
|
|
/// Returns the number of bytes accepted.
|
|
fn receive<'bound>(
|
|
sdev: &'bound Device<device::Bound>,
|
|
this: Pin<&Self::Data<'bound>>,
|
|
data: &[u8],
|
|
) -> usize {
|
|
let _ = (sdev, this, data);
|
|
build_error!(VTABLE_DEFAULT_ERROR)
|
|
}
|
|
}
|
|
|
|
/// The serial device bus device representation.
|
|
///
|
|
/// This structure represents the Rust abstraction for a C `struct serdev_device`. The
|
|
/// implementation abstracts the usage of an already existing C `struct serdev_device` within Rust
|
|
/// code that we get passed from the C side.
|
|
///
|
|
/// # Invariants
|
|
///
|
|
/// A [`Device`] instance represents a valid `struct serdev_device` created by the C portion of
|
|
/// the kernel.
|
|
#[repr(transparent)]
|
|
pub struct Device<Ctx: device::DeviceContext = device::Normal>(
|
|
Opaque<bindings::serdev_device>,
|
|
PhantomData<Ctx>,
|
|
);
|
|
|
|
impl<Ctx: device::DeviceContext> Device<Ctx> {
|
|
#[inline]
|
|
fn as_raw(&self) -> *mut bindings::serdev_device {
|
|
self.0.get()
|
|
}
|
|
}
|
|
|
|
impl Device<device::Bound> {
|
|
/// Set the baudrate in bits per second.
|
|
///
|
|
/// Common baudrates are 115200, 9600, 19200, 57600, 4800.
|
|
///
|
|
/// Use [`Device::write_flush`] before calling this if you have written data prior to this call.
|
|
#[inline]
|
|
pub fn set_baudrate(&self, speed: u32) -> Result<(), u32> {
|
|
// SAFETY: `self.as_raw()` is guaranteed to be a pointer to a valid `serdev_device`.
|
|
let ret = unsafe { bindings::serdev_device_set_baudrate(self.as_raw(), speed) };
|
|
if ret == speed {
|
|
Ok(())
|
|
} else {
|
|
Err(ret)
|
|
}
|
|
}
|
|
|
|
/// Set if flow control should be enabled.
|
|
///
|
|
/// Use [`Device::write_flush`] before calling this if you have written data prior to this call.
|
|
#[inline]
|
|
pub fn set_flow_control(&self, enable: bool) {
|
|
// SAFETY: `self.as_raw()` is guaranteed to be a pointer to a valid `serdev_device`.
|
|
unsafe { bindings::serdev_device_set_flow_control(self.as_raw(), enable) };
|
|
}
|
|
|
|
/// Set parity to use.
|
|
///
|
|
/// Use [`Device::write_flush`] before calling this if you have written data prior to this call.
|
|
#[inline]
|
|
pub fn set_parity(&self, parity: Parity) -> Result {
|
|
// SAFETY: `self.as_raw()` is guaranteed to be a pointer to a valid `serdev_device`.
|
|
to_result(unsafe { bindings::serdev_device_set_parity(self.as_raw(), parity as u32) })
|
|
}
|
|
|
|
/// Write data to the serial device until the controller has accepted all the data or has
|
|
/// been interrupted by a timeout or signal.
|
|
///
|
|
/// Note that any accepted data has only been buffered by the controller. Use
|
|
/// [`Device::wait_until_sent`] to make sure the controller write buffer has actually been
|
|
/// emptied.
|
|
///
|
|
/// Use a timeout of 0 to wait indefinitely.
|
|
///
|
|
/// Returns the number of bytes written (less than `data.len()` if interrupted).
|
|
/// [`kernel::error::code::ETIMEDOUT`] or [`kernel::error::code::ERESTARTSYS`] if interrupted
|
|
/// before any bytes were written. [`kernel::error::code::EINVAL`] if `data.len() > i32::MAX`.
|
|
#[inline]
|
|
pub fn write_all(&self, data: &[u8], timeout: Jiffies) -> Result<usize> {
|
|
if data.len() > i32::MAX as usize {
|
|
return Err(EINVAL);
|
|
}
|
|
|
|
// SAFETY:
|
|
// - `self.as_raw()` is guaranteed to be a pointer to a valid `serdev_device`.
|
|
// - `data.as_ptr()` is guaranteed to be a valid array pointer with the size of
|
|
// `data.len()`.
|
|
let ret = unsafe {
|
|
bindings::serdev_device_write(
|
|
self.as_raw(),
|
|
data.as_ptr(),
|
|
data.len(),
|
|
isize::try_from(timeout).unwrap_or_default(),
|
|
)
|
|
};
|
|
// CAST: negative return values are guaranteed to be between `-MAX_ERRNO` and `-1`,
|
|
// which always fit into a `i32`.
|
|
to_result(ret as i32).map(|()| ret.unsigned_abs())
|
|
}
|
|
|
|
/// Write data to the serial device.
|
|
///
|
|
/// If you want to write until the controller has accepted all the data, use
|
|
/// [`Device::write_all`].
|
|
///
|
|
/// Note that any accepted data has only been buffered by the controller. Use
|
|
/// [`Device::wait_until_sent`] to make sure the controller write buffer has actually been
|
|
/// emptied.
|
|
///
|
|
/// Returns the number of bytes written (less than `data.len()` if not enough room in the
|
|
/// write buffer).
|
|
#[inline]
|
|
pub fn write(&self, data: &[u8]) -> Result<u32> {
|
|
if data.len() > i32::MAX as usize {
|
|
return Err(EINVAL);
|
|
}
|
|
|
|
// SAFETY:
|
|
// - `self.as_raw()` is guaranteed to be a pointer to a valid `serdev_device`.
|
|
// - `data.as_ptr()` is guaranteed to be a valid array pointer with the size of
|
|
// `data.len()`.
|
|
let ret =
|
|
unsafe { bindings::serdev_device_write_buf(self.as_raw(), data.as_ptr(), data.len()) };
|
|
|
|
to_result(ret as i32).map(|()| ret.unsigned_abs())
|
|
}
|
|
|
|
/// Send data to the serial device immediately.
|
|
///
|
|
/// Note that this doesn't guarantee that the data has been transmitted.
|
|
/// Use [`Device::wait_until_sent`] for this purpose.
|
|
#[inline]
|
|
pub fn write_flush(&self) {
|
|
// SAFETY: `self.as_raw()` is guaranteed to be a pointer to a valid `serdev_device`.
|
|
unsafe { bindings::serdev_device_write_flush(self.as_raw()) };
|
|
}
|
|
|
|
/// Wait for the data to be sent.
|
|
///
|
|
/// After this function, the write buffer of the controller should be empty or the timeout
|
|
/// elapsed.
|
|
///
|
|
/// Use a timeout of 0 to wait indefinitely.
|
|
#[inline]
|
|
pub fn wait_until_sent(&self, timeout: Jiffies) {
|
|
// SAFETY: `self.as_raw()` is guaranteed to be a pointer to a valid `serdev_device`.
|
|
unsafe {
|
|
bindings::serdev_device_wait_until_sent(
|
|
self.as_raw(),
|
|
isize::try_from(timeout).unwrap_or_default(),
|
|
)
|
|
};
|
|
}
|
|
}
|
|
|
|
// SAFETY: `serdev::Device` is a transparent wrapper of `struct serdev_device`.
|
|
// The offset is guaranteed to point to a valid device field inside `serdev::Device`.
|
|
unsafe impl<Ctx: device::DeviceContext> device::AsBusDevice<Ctx> for Device<Ctx> {
|
|
const OFFSET: usize = offset_of!(bindings::serdev_device, dev);
|
|
}
|
|
|
|
// SAFETY: `Device` is a transparent wrapper of a type that doesn't depend on `Device`'s generic
|
|
// argument.
|
|
kernel::impl_device_context_deref!(unsafe { Device });
|
|
kernel::impl_device_context_into_aref!(Device);
|
|
|
|
// SAFETY: Instances of `Device` are always reference-counted.
|
|
unsafe impl AlwaysRefCounted for Device {
|
|
fn inc_ref(&self) {
|
|
self.as_ref().inc_ref();
|
|
}
|
|
|
|
unsafe fn dec_ref(obj: NonNull<Self>) {
|
|
// SAFETY: The safety requirements guarantee that the refcount is non-zero.
|
|
unsafe { bindings::serdev_device_put(obj.cast().as_ptr()) }
|
|
}
|
|
}
|
|
|
|
impl<Ctx: device::DeviceContext> AsRef<device::Device<Ctx>> for Device<Ctx> {
|
|
fn as_ref(&self) -> &device::Device<Ctx> {
|
|
// SAFETY: By the type invariant of `Self`, `self.as_raw()` is a pointer to a valid
|
|
// `struct serdev_device`.
|
|
let dev = unsafe { &raw mut (*self.as_raw()).dev };
|
|
|
|
// SAFETY: `dev` points to a valid `struct device`.
|
|
unsafe { device::Device::from_raw(dev) }
|
|
}
|
|
}
|
|
|
|
// SAFETY: A `Device` is always reference-counted and can be released from any thread.
|
|
unsafe impl Send for Device {}
|
|
|
|
// SAFETY: `Device` can be shared among threads because all methods of `Device`
|
|
// (i.e. `Device<Normal>) are thread safe.
|
|
unsafe impl Sync for Device {}
|
|
|
|
// SAFETY: Same as `Device<Normal>` -- the underlying `struct serdev_device` is the same;
|
|
// `Bound` is a zero-sized type-state marker that does not affect thread safety.
|
|
unsafe impl Sync for Device<device::Bound> {}
|