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The PCI bus is potentially capable of performing DMA, hence implement the `dma:Device` trait for `pci::Device`. Reviewed-by: Daniel Almeida <daniel.almeida@collabora.com> Reviewed-by: Greg Kroah-Hartman <gregkh@linuxfoundation.org> Link: https://lore.kernel.org/r/20250716150354.51081-4-dakr@kernel.org Signed-off-by: Danilo Krummrich <dakr@kernel.org>
503 lines
17 KiB
Rust
503 lines
17 KiB
Rust
// SPDX-License-Identifier: GPL-2.0
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//! Abstractions for the PCI bus.
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//!
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//! C header: [`include/linux/pci.h`](srctree/include/linux/pci.h)
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use crate::{
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bindings, container_of, device,
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device_id::{RawDeviceId, RawDeviceIdIndex},
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devres::Devres,
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driver,
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error::{from_result, to_result, Result},
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io::Io,
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io::IoRaw,
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str::CStr,
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types::{ARef, Opaque},
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ThisModule,
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};
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use core::{
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marker::PhantomData,
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ops::Deref,
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ptr::{addr_of_mut, NonNull},
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};
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use kernel::prelude::*;
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/// An adapter for the registration of PCI drivers.
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pub struct Adapter<T: Driver>(T);
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// SAFETY: A call to `unregister` for a given instance of `RegType` 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 + 'static> driver::RegistrationOps for Adapter<T> {
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type RegType = bindings::pci_driver;
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unsafe fn register(
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pdrv: &Opaque<Self::RegType>,
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name: &'static CStr,
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module: &'static ThisModule,
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) -> Result {
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// SAFETY: It's safe to set the fields of `struct pci_driver` on initialization.
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unsafe {
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(*pdrv.get()).name = name.as_char_ptr();
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(*pdrv.get()).probe = Some(Self::probe_callback);
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(*pdrv.get()).remove = Some(Self::remove_callback);
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(*pdrv.get()).id_table = T::ID_TABLE.as_ptr();
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}
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// SAFETY: `pdrv` is guaranteed to be a valid `RegType`.
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to_result(unsafe {
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bindings::__pci_register_driver(pdrv.get(), module.0, name.as_char_ptr())
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})
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}
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unsafe fn unregister(pdrv: &Opaque<Self::RegType>) {
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// SAFETY: `pdrv` is guaranteed to be a valid `RegType`.
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unsafe { bindings::pci_unregister_driver(pdrv.get()) }
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}
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}
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impl<T: Driver + 'static> Adapter<T> {
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extern "C" fn probe_callback(
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pdev: *mut bindings::pci_dev,
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id: *const bindings::pci_device_id,
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) -> kernel::ffi::c_int {
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// SAFETY: The PCI bus only ever calls the probe callback with a valid pointer to a
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// `struct pci_dev`.
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//
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// INVARIANT: `pdev` is valid for the duration of `probe_callback()`.
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let pdev = unsafe { &*pdev.cast::<Device<device::CoreInternal>>() };
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// SAFETY: `DeviceId` is a `#[repr(transparent)]` wrapper of `struct pci_device_id` and
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// does not add additional invariants, so it's safe to transmute.
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let id = unsafe { &*id.cast::<DeviceId>() };
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let info = T::ID_TABLE.info(id.index());
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from_result(|| {
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let data = T::probe(pdev, info)?;
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pdev.as_ref().set_drvdata(data);
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Ok(0)
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})
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}
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extern "C" fn remove_callback(pdev: *mut bindings::pci_dev) {
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// SAFETY: The PCI bus only ever calls the remove callback with a valid pointer to a
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// `struct pci_dev`.
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//
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// INVARIANT: `pdev` is valid for the duration of `remove_callback()`.
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let pdev = unsafe { &*pdev.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<T>>`.
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let data = unsafe { pdev.as_ref().drvdata_obtain::<Pin<KBox<T>>>() };
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T::unbind(pdev, data.as_ref());
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}
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}
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/// Declares a kernel module that exposes a single PCI driver.
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///
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/// # Example
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///
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///```ignore
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/// kernel::module_pci_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_pci_driver {
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($($f:tt)*) => {
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$crate::module_driver!(<T>, $crate::pci::Adapter<T>, { $($f)* });
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};
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}
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/// Abstraction for the PCI device ID structure ([`struct pci_device_id`]).
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///
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/// [`struct pci_device_id`]: https://docs.kernel.org/PCI/pci.html#c.pci_device_id
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#[repr(transparent)]
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#[derive(Clone, Copy)]
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pub struct DeviceId(bindings::pci_device_id);
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impl DeviceId {
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const PCI_ANY_ID: u32 = !0;
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/// Equivalent to C's `PCI_DEVICE` macro.
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///
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/// Create a new `pci::DeviceId` from a vendor and device ID number.
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pub const fn from_id(vendor: u32, device: u32) -> Self {
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Self(bindings::pci_device_id {
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vendor,
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device,
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subvendor: DeviceId::PCI_ANY_ID,
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subdevice: DeviceId::PCI_ANY_ID,
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class: 0,
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class_mask: 0,
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driver_data: 0,
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override_only: 0,
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})
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}
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/// Equivalent to C's `PCI_DEVICE_CLASS` macro.
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///
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/// Create a new `pci::DeviceId` from a class number and mask.
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pub const fn from_class(class: u32, class_mask: u32) -> Self {
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Self(bindings::pci_device_id {
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vendor: DeviceId::PCI_ANY_ID,
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device: DeviceId::PCI_ANY_ID,
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subvendor: DeviceId::PCI_ANY_ID,
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subdevice: DeviceId::PCI_ANY_ID,
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class,
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class_mask,
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driver_data: 0,
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override_only: 0,
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})
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}
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}
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// SAFETY: `DeviceId` is a `#[repr(transparent)]` wrapper of `pci_device_id` and does not add
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// additional invariants, so it's safe to transmute to `RawType`.
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unsafe impl RawDeviceId for DeviceId {
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type RawType = bindings::pci_device_id;
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}
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// SAFETY: `DRIVER_DATA_OFFSET` is the offset to the `driver_data` field.
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unsafe impl RawDeviceIdIndex for DeviceId {
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const DRIVER_DATA_OFFSET: usize = core::mem::offset_of!(bindings::pci_device_id, driver_data);
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fn index(&self) -> usize {
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self.0.driver_data as _
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}
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}
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/// `IdTable` type for PCI.
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pub type IdTable<T> = &'static dyn kernel::device_id::IdTable<DeviceId, T>;
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/// Create a PCI `IdTable` with its alias for modpost.
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#[macro_export]
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macro_rules! pci_device_table {
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($table_name:ident, $module_table_name:ident, $id_info_type: ty, $table_data: expr) => {
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const $table_name: $crate::device_id::IdArray<
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$crate::pci::DeviceId,
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$id_info_type,
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{ $table_data.len() },
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> = $crate::device_id::IdArray::new($table_data);
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$crate::module_device_table!("pci", $module_table_name, $table_name);
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};
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}
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/// The PCI driver trait.
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///
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/// # Example
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///
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///```
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/// # use kernel::{bindings, device::Core, pci};
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///
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/// struct MyDriver;
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///
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/// kernel::pci_device_table!(
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/// PCI_TABLE,
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/// MODULE_PCI_TABLE,
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/// <MyDriver as pci::Driver>::IdInfo,
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/// [
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/// (pci::DeviceId::from_id(bindings::PCI_VENDOR_ID_REDHAT, bindings::PCI_ANY_ID as _), ())
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/// ]
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/// );
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///
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/// impl pci::Driver for MyDriver {
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/// type IdInfo = ();
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/// const ID_TABLE: pci::IdTable<Self::IdInfo> = &PCI_TABLE;
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///
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/// fn probe(
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/// _pdev: &pci::Device<Core>,
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/// _id_info: &Self::IdInfo,
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/// ) -> Result<Pin<KBox<Self>>> {
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/// Err(ENODEV)
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/// }
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/// }
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///```
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/// Drivers must implement this trait in order to get a PCI driver registered. Please refer to the
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/// `Adapter` documentation for an example.
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pub trait Driver: Send {
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/// The type holding information about each device id supported by the driver.
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// TODO: Use `associated_type_defaults` once stabilized:
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//
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// ```
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// type IdInfo: 'static = ();
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// ```
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type IdInfo: 'static;
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/// The table of device ids supported by the driver.
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const ID_TABLE: IdTable<Self::IdInfo>;
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/// PCI driver probe.
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///
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/// Called when a new platform device is added or discovered.
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/// Implementers should attempt to initialize the device here.
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fn probe(dev: &Device<device::Core>, id_info: &Self::IdInfo) -> Result<Pin<KBox<Self>>>;
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/// Platform driver unbind.
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///
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/// Called when a [`Device`] is unbound from its bound [`Driver`]. Implementing this callback
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/// is optional.
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///
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/// This callback serves as a place for drivers to perform teardown operations that require a
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/// `&Device<Core>` or `&Device<Bound>` reference. For instance, drivers may try to perform I/O
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/// operations to gracefully tear down the device.
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///
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/// Otherwise, release operations for driver resources should be performed in `Self::drop`.
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fn unbind(dev: &Device<device::Core>, this: Pin<&Self>) {
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let _ = (dev, this);
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}
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}
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/// The PCI device representation.
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///
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/// This structure represents the Rust abstraction for a C `struct pci_dev`. The implementation
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/// abstracts the usage of an already existing C `struct pci_dev` within Rust code that we get
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/// passed from the C side.
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///
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/// # Invariants
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///
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/// A [`Device`] instance represents a valid `struct pci_dev` created by the C portion of the
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/// kernel.
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#[repr(transparent)]
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pub struct Device<Ctx: device::DeviceContext = device::Normal>(
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Opaque<bindings::pci_dev>,
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PhantomData<Ctx>,
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);
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/// A PCI BAR to perform I/O-Operations on.
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///
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/// # Invariants
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///
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/// `Bar` always holds an `IoRaw` inststance that holds a valid pointer to the start of the I/O
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/// memory mapped PCI bar and its size.
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pub struct Bar<const SIZE: usize = 0> {
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pdev: ARef<Device>,
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io: IoRaw<SIZE>,
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num: i32,
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}
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impl<const SIZE: usize> Bar<SIZE> {
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fn new(pdev: &Device, num: u32, name: &CStr) -> Result<Self> {
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let len = pdev.resource_len(num)?;
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if len == 0 {
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return Err(ENOMEM);
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}
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// Convert to `i32`, since that's what all the C bindings use.
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let num = i32::try_from(num)?;
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// SAFETY:
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// `pdev` is valid by the invariants of `Device`.
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// `num` is checked for validity by a previous call to `Device::resource_len`.
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// `name` is always valid.
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let ret = unsafe { bindings::pci_request_region(pdev.as_raw(), num, name.as_char_ptr()) };
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if ret != 0 {
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return Err(EBUSY);
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}
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// SAFETY:
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// `pdev` is valid by the invariants of `Device`.
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// `num` is checked for validity by a previous call to `Device::resource_len`.
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// `name` is always valid.
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let ioptr: usize = unsafe { bindings::pci_iomap(pdev.as_raw(), num, 0) } as usize;
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if ioptr == 0 {
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// SAFETY:
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// `pdev` valid by the invariants of `Device`.
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// `num` is checked for validity by a previous call to `Device::resource_len`.
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unsafe { bindings::pci_release_region(pdev.as_raw(), num) };
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return Err(ENOMEM);
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}
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let io = match IoRaw::new(ioptr, len as usize) {
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Ok(io) => io,
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Err(err) => {
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// SAFETY:
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// `pdev` is valid by the invariants of `Device`.
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// `ioptr` is guaranteed to be the start of a valid I/O mapped memory region.
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// `num` is checked for validity by a previous call to `Device::resource_len`.
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unsafe { Self::do_release(pdev, ioptr, num) };
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return Err(err);
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}
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};
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Ok(Bar {
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pdev: pdev.into(),
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io,
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num,
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})
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}
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/// # Safety
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///
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/// `ioptr` must be a valid pointer to the memory mapped PCI bar number `num`.
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unsafe fn do_release(pdev: &Device, ioptr: usize, num: i32) {
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// SAFETY:
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// `pdev` is valid by the invariants of `Device`.
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// `ioptr` is valid by the safety requirements.
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// `num` is valid by the safety requirements.
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unsafe {
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bindings::pci_iounmap(pdev.as_raw(), ioptr as _);
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bindings::pci_release_region(pdev.as_raw(), num);
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}
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}
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fn release(&self) {
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// SAFETY: The safety requirements are guaranteed by the type invariant of `self.pdev`.
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unsafe { Self::do_release(&self.pdev, self.io.addr(), self.num) };
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}
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}
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impl Bar {
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fn index_is_valid(index: u32) -> bool {
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// A `struct pci_dev` owns an array of resources with at most `PCI_NUM_RESOURCES` entries.
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index < bindings::PCI_NUM_RESOURCES
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}
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}
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impl<const SIZE: usize> Drop for Bar<SIZE> {
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fn drop(&mut self) {
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self.release();
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}
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}
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impl<const SIZE: usize> Deref for Bar<SIZE> {
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type Target = Io<SIZE>;
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fn deref(&self) -> &Self::Target {
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// SAFETY: By the type invariant of `Self`, the MMIO range in `self.io` is properly mapped.
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unsafe { Io::from_raw(&self.io) }
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}
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}
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impl<Ctx: device::DeviceContext> Device<Ctx> {
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fn as_raw(&self) -> *mut bindings::pci_dev {
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self.0.get()
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}
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}
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impl Device {
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/// Returns the PCI vendor ID.
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pub fn vendor_id(&self) -> u16 {
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// SAFETY: `self.as_raw` is a valid pointer to a `struct pci_dev`.
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unsafe { (*self.as_raw()).vendor }
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}
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/// Returns the PCI device ID.
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pub fn device_id(&self) -> u16 {
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// SAFETY: `self.as_raw` is a valid pointer to a `struct pci_dev`.
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unsafe { (*self.as_raw()).device }
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}
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/// Returns the size of the given PCI bar resource.
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pub fn resource_len(&self, bar: u32) -> Result<bindings::resource_size_t> {
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if !Bar::index_is_valid(bar) {
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return Err(EINVAL);
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}
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// SAFETY:
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// - `bar` is a valid bar number, as guaranteed by the above call to `Bar::index_is_valid`,
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// - by its type invariant `self.as_raw` is always a valid pointer to a `struct pci_dev`.
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Ok(unsafe { bindings::pci_resource_len(self.as_raw(), bar.try_into()?) })
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}
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}
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impl Device<device::Bound> {
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/// Mapps an entire PCI-BAR after performing a region-request on it. I/O operation bound checks
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/// can be performed on compile time for offsets (plus the requested type size) < SIZE.
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pub fn iomap_region_sized<'a, const SIZE: usize>(
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&'a self,
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bar: u32,
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name: &'a CStr,
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) -> impl PinInit<Devres<Bar<SIZE>>, Error> + 'a {
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Devres::new(self.as_ref(), Bar::<SIZE>::new(self, bar, name))
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}
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/// Mapps an entire PCI-BAR after performing a region-request on it.
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pub fn iomap_region<'a>(
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&'a self,
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bar: u32,
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name: &'a CStr,
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) -> impl PinInit<Devres<Bar>, Error> + 'a {
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self.iomap_region_sized::<0>(bar, name)
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}
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}
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impl Device<device::Core> {
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/// Enable memory resources for this device.
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pub fn enable_device_mem(&self) -> Result {
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// SAFETY: `self.as_raw` is guaranteed to be a pointer to a valid `struct pci_dev`.
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to_result(unsafe { bindings::pci_enable_device_mem(self.as_raw()) })
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}
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/// Enable bus-mastering for this device.
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pub fn set_master(&self) {
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// SAFETY: `self.as_raw` is guaranteed to be a pointer to a valid `struct pci_dev`.
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unsafe { bindings::pci_set_master(self.as_raw()) };
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}
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}
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// SAFETY: `Device` is a transparent wrapper of a type that doesn't depend on `Device`'s generic
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// argument.
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kernel::impl_device_context_deref!(unsafe { Device });
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kernel::impl_device_context_into_aref!(Device);
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impl crate::dma::Device for Device<device::Core> {}
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// SAFETY: Instances of `Device` are always reference-counted.
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unsafe impl crate::types::AlwaysRefCounted for Device {
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fn inc_ref(&self) {
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// SAFETY: The existence of a shared reference guarantees that the refcount is non-zero.
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unsafe { bindings::pci_dev_get(self.as_raw()) };
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}
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unsafe fn dec_ref(obj: NonNull<Self>) {
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// SAFETY: The safety requirements guarantee that the refcount is non-zero.
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unsafe { bindings::pci_dev_put(obj.cast().as_ptr()) }
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}
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}
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impl<Ctx: device::DeviceContext> AsRef<device::Device<Ctx>> for Device<Ctx> {
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fn as_ref(&self) -> &device::Device<Ctx> {
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// SAFETY: By the type invariant of `Self`, `self.as_raw()` is a pointer to a valid
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// `struct pci_dev`.
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let dev = unsafe { addr_of_mut!((*self.as_raw()).dev) };
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// SAFETY: `dev` points to a valid `struct device`.
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unsafe { device::Device::from_raw(dev) }
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}
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|
}
|
|
|
|
impl<Ctx: device::DeviceContext> TryFrom<&device::Device<Ctx>> for &Device<Ctx> {
|
|
type Error = kernel::error::Error;
|
|
|
|
fn try_from(dev: &device::Device<Ctx>) -> Result<Self, Self::Error> {
|
|
// SAFETY: By the type invariant of `Device`, `dev.as_raw()` is a valid pointer to a
|
|
// `struct device`.
|
|
if !unsafe { bindings::dev_is_pci(dev.as_raw()) } {
|
|
return Err(EINVAL);
|
|
}
|
|
|
|
// SAFETY: We've just verified that the bus type of `dev` equals `bindings::pci_bus_type`,
|
|
// hence `dev` must be embedded in a valid `struct pci_dev` as guaranteed by the
|
|
// corresponding C code.
|
|
let pdev = unsafe { container_of!(dev.as_raw(), bindings::pci_dev, dev) };
|
|
|
|
// SAFETY: `pdev` is a valid pointer to a `struct pci_dev`.
|
|
Ok(unsafe { &*pdev.cast() })
|
|
}
|
|
}
|
|
|
|
// 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 {}
|