mirror of
https://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git
synced 2026-08-27 17:35:18 -04:00
Pull drm updates from Dave Airlie:
"Highlights:
- dmemcg eviction support is good for low VRAM things like Steam
Machine
- AMD adds gfx6-8 modifier support for older GPUs that enables a
bunch of wayland stuff
- i915/xe has some new hw support but also a lot of display
refactoring
Everything:
perf:
- export perf_allow_ APIs for xe
udmabuf:
- remove default size limit of 64MB
rust:
- i/o rework (signed tag from driver-core tree)
- add registration guard and registration data
- fix unbounded lifetimes in ioctl handler args
- fix a drm_dev_register race
- gem_shmem: add DmaResvGuard helper
- gpuvm: require send/sync for driver data
- implement send/sync for GpuVaAlloc and GpuVmBo
- add SmContext lifetime
- rename dma_handle to dma_address
- change pci_sriov_get_totalvfs return to unsigned int
core:
- create drm_of_get_panel_orientation
- send per-connector hotplug events
- add thunderbolt UBHR tunneling support
connector:
- add color format property
dmem:
- introduce a peak file
- accept one region per limit
- add dmemcg support for eviction
gpusvm:
- reorg code to give drivers more flexibility
atomic:
- add create_state callback and helper
- add documentation on atomic commit lifetime
buddy:
- add per-order free
- add used block scoreboard
- fix UAF
- test buffer clearance on resume
- add phys_addr->block helper
gem:
- drop DRIVER_GEM_GPUVA flag
ttm:
- be more aggressive allocating below protection limit
sched:
- add test suite for concurrent job submissions
hdmi:
- hook the color format property in helpers
mipi-dsi:
- add MIPI_DSI_MODE_DSC_ALL_SLICES_IN_PKT
bridge:
- add atomic create callbacks
- drop atomic reset
- display-connector: don't autoenable HPD IRQ
- trigger initial HPD for DP
- ti-sn65dsi83: remove NO_HFP and NO_HBP mode flags
- analogix_dp: switch to DP link training helpers
dp:
- add support for DSC max delta BPP
edid:
- parse panel type from DisplayID 2.x Display Parameters
sysfb:
- improve panel, stride, framebuffer size validation
panel:
- implement ref counting for struct drm_panel
- himax-hx83121a: add backlight regulator support
- novatek-nt36672a: Inline panel init sequences
- visionox-vtdr6130: enable DSC
- novatek-nt37801: Use mipi_dsi_*_multi() functions
- samsung-s6d16d0: Fix prepare error handling
- support Novatek NT36536 plus DT bindings
- sofef00: fix backlight updates
- osd101t2587: use mipi_dsi_*_multi interface
- panel-edp: adjust timing for AUO displays
- panel-lvds: support Opto Logic SCX1001511GGC49
- panel-simple: support Kyocera tcg070wvlq
- panel-edp: quirks
- AUO B116XAT04.3, CMN N116BCP-EA2, CSW MNB601LS1-8
- BOE NV116WH2-M30, BOE NT116WHM-N21, BOE NV116FH1-M31
- BOE NV116FH1-M30, NV140FHM-N5B, TM156VDXP25
- BOE NE160QDM-NY1, MB116AS01
- new:
- Samsung ATNA40HQ08-0, Anbernic TD4310
- Chipone ICNA35XX, Ilitek ILI9488
- Ilitek ILI7807S, Renesas R63419
- MNE001BS6-2, MNF601BS4-1, Sharp LQ120P1JX51
virtio:
- add support for save/restore virtio_gpu_objects
- abort vq wait on device removal
amdgpu:
- add color format DRM property
- initial compute pipe reset support
- add GFX 6-8 modifier support
- initial DCN 6.0.0 support
- dmemcg eviction support
- improved boundary checking for bios parsing
- RAS updates and rework
- VCN secure submission fixes
- 8K panel fix
- Display KUNIT tests
- parse panel type from DisplayID
- Align IP discovery to pci device lifetime
- SOC15 register macro cleanups
- UVD memory placement fixes
- GFX9 mode2 reset fixes
- drop unnecessary BUG/BUG_ON
- GFX8 soft reset rework
- enable soft reset on GFX8
- PSP/SMU 15.0.9 update
- VI ASPM fix
- userq fixes
- amdgpu_vm_get_task_info_pasid lifetime fix
- DC CACP support
- change system_unbound_wq with system_dfl_wq
- Loosen VFCT bios parsing to deal with pci=realloc
- SI/SMU7 AC/DC switch fix
- VM fence handling fix
- GEM close optimisation
- Apple Studio Display fixes
- DC FRL fixes
amdkfd:
- initial compute pipe reset support
- allow applications to opt out of sigbus on fatal errors
- improve CRIU boundary checks
- MQD handling rework
- move TBA/TMA from system to device memory
- avoid topology-lock in kfd_mmap
- SVM eviction fixes
radeon:
- fix unset CONFIG_ACPI build
i915:
- Novalake (NVL display version 35) timing generator enabling
- NVL DC3CO enabling
- enable UBHR link rates on thunderbolt tunnels
- Reduce Xe3+ PM demand peak bandwidth
- enable pipe DMC error interrupts for display 30+
- add kunit tests for DP link config selection
- refactor and document DP link recovery
- i915/xe driver display probe/remove/suspend/resume/shutdown cleanup
and unification
- i915/xe display runtime PM unified
- Break i915 and xe panic dependency on struct intel_framebuffer
- Streamline Pre/Post-CSC LUT loops
- drop TGL DC3DO support
- CDCLK santization
- fix HDMI scrambling enable
- fix phys bo pread/pwrite with offset
- add missing nospec on parallel submit slot
- fix some NULL derefs
xe:
- drop force_execlist module param
- gate observation streams with perf_allow_cpu
- skip FORCE_WC and vm_bound check for external dma-bufs
- dmemcg eviction support
- remove unused NVL-S GuC
- TLB invalidation improvements
- NVL-S updated PCI-IDs and w/a
- madvise: optimise invalidation path
- fix infinite gt-reset loop in timeout recovery
- update TTM device benefical_order
- wait on external BO kernel fences in exec ioctl
- add/use more KLV helpers
- sriov: disable display in admin only PF mode
- add RAS GPU health indicator
- optimise TTM populate for DONTNEED BO
- drop force_probe for NVL-s
- add debugfs for pcode info
amdxdna:
- disable device buffer export
nova:
- build nova-core/nova-drm from drivers/gpu
- export nova-core rust symbols (workaround)
- GSP boot process consolidation
- Boot GSP with vGPU enabled
- TLV firmware image format support
- Hopper/Blackwell fixes and cleanups
- I/O projection adoption
tyr:
- firmware loading and MCU boot
- add generic slot manager + MMU
- GPU VM support ARM64 LPAE page tables
- add kernel buffer object for internal allocations
- add parser for Mali CSF
- add MCU booting
nouveau:
- race fixes
- check instmem iomapping at first use
- add dmemcg support
- expose NVDEC channels
- add scanline position/head state support for GSP
qxl:
- convert simple encoder to regular
ethosu:
- add perf counter support
etnaviv:
- force flush on power register ops
msm:
- support DSC configuration with slice_per_pkt > 1
mxsfb:
- fix disable sequence
panthor:
- support sparse mappings
rockchip:
- switch away from simple helpers
- support YUV background color
- fix layer config timeout
- add edp support for rk3576
- add batch command submission function
rocket:
- error handling and NULL ptr deref fixes
sun4i:
- switch away from simple helpers
imagination:
- mark BXM-4-64 MC1 as support
host1x:
- support tegra264
tegra:
- add DSI for tegra 20/30
v3d:
- reduce PM runtime autosuspend delay
- scheduler fixes and refactoring
- deprecate v3d 3.3 and 4.1
- validate CPU job query boundaries
hibmc:
- improve plane format handling
- switch to gem shmem
mediatek:
- cec: correct compat for mt7623-8167?
exynos:
- remove simple dependency
- add error handling to encoder paths
- take i2c adapter module reference"
* tag 'drm-next-2026-08-20' of https://gitlab.freedesktop.org/drm/kernel: (2074 commits)
drm/xe/mcr: Take vcs1/vecs1 into account for first media slice
drm/xe: Fix a bug in pc_adjust_freq_bounds()
drm/xe: Fix xe_device_probe() failure
drm/xe/drm_ras: Move has_drm_ras check to drm_ras layer
drm/xe/ras: Fix boot-time ras error processing
drm/amd/display: make DC_RUN_WITH_PREEMPTION_ENABLED misuse a build error
drm/amd/pm: silence uninitialized variable warnings
drm/amdgpu: skip BOs being torn down during GTT recovery
drm/amdgpu: Reject UVD message with invalid number of h265 refs
drm/amdgpu: keep PRT mappings off the vm_bo state lists
drm/amdgpu: fix nbif 6.3.1 l1 low power not functional
drm/amd/display: fix BT.2020 YCbCr output CSC matrices for DCE
drm/amd/display: fix BT.2020 YCbCr limited output CSC matrix
drm/amdgpu: Implement insert_end for VCE 3
drm/amdgpu: Fix UVD min buffer sizes
drm/amdgpu: Fix UVD decode image min size calculation
drm/amdgpu: Fix UVD dpb min size calculation for H264
drm/amdgpu: Reject UVD message with dimensions above 4096
drm/amdgpu: check ASPM on the dGPU host link
drm/radeon: fix autosuspend cleanup during teardown
...
1252 lines
41 KiB
Rust
1252 lines
41 KiB
Rust
// SPDX-License-Identifier: GPL-2.0
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//! Direct memory access (DMA).
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//!
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//! C header: [`include/linux/dma-mapping.h`](srctree/include/linux/dma-mapping.h)
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use crate::{
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bindings,
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debugfs,
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device::{
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self,
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Bound,
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Core, //
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},
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error::to_result,
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fs::file,
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io::{
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IoBackend,
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IoBase,
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IoCapable,
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IoCopyable,
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SysMem,
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SysMemBackend, //
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},
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prelude::*,
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ptr::KnownSize,
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sync::aref::ARef,
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transmute::{
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AsBytes,
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FromBytes, //
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},
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uaccess::UserSliceWriter, //
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};
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use core::{
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ops::{
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Deref,
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DerefMut, //
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},
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ptr::NonNull, //
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};
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/// DMA address type.
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///
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/// Represents a bus address used for Direct Memory Access (DMA) operations.
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///
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/// This is an alias of the kernel's `dma_addr_t`, which may be `u32` or `u64` depending on
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/// `CONFIG_ARCH_DMA_ADDR_T_64BIT`.
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///
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/// Note that this may be `u64` even on 32-bit architectures.
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pub type DmaAddress = bindings::dma_addr_t;
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/// Trait to be implemented by DMA capable bus devices.
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///
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/// The [`dma::Device`](Device) trait should be implemented by bus specific device representations,
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/// where the underlying bus is DMA capable, such as:
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#[cfg_attr(CONFIG_PCI, doc = "* [`pci::Device`](kernel::pci::Device)")]
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/// * [`platform::Device`](::kernel::platform::Device)
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pub trait Device<'a>: AsRef<device::Device<Core<'a>>> {
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/// Set up the device's DMA streaming addressing capabilities.
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///
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/// This method is usually called once from `probe()` as soon as the device capabilities are
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/// known.
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///
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/// # Safety
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///
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/// This method must not be called concurrently with any DMA allocation or mapping primitives,
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/// such as [`Coherent::zeroed`].
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unsafe fn dma_set_mask(&self, mask: DmaMask) -> Result {
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// SAFETY:
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// - By the type invariant of `device::Device`, `self.as_ref().as_raw()` is valid.
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// - The safety requirement of this function guarantees that there are no concurrent calls
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// to DMA allocation and mapping primitives using this mask.
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to_result(unsafe { bindings::dma_set_mask(self.as_ref().as_raw(), mask.value()) })
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}
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/// Set up the device's DMA coherent addressing capabilities.
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///
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/// This method is usually called once from `probe()` as soon as the device capabilities are
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/// known.
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///
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/// # Safety
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///
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/// This method must not be called concurrently with any DMA allocation or mapping primitives,
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/// such as [`Coherent::zeroed`].
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unsafe fn dma_set_coherent_mask(&self, mask: DmaMask) -> Result {
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// SAFETY:
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// - By the type invariant of `device::Device`, `self.as_ref().as_raw()` is valid.
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// - The safety requirement of this function guarantees that there are no concurrent calls
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// to DMA allocation and mapping primitives using this mask.
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to_result(unsafe { bindings::dma_set_coherent_mask(self.as_ref().as_raw(), mask.value()) })
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}
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/// Set up the device's DMA addressing capabilities.
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///
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/// This is a combination of [`Device::dma_set_mask`] and [`Device::dma_set_coherent_mask`].
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///
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/// This method is usually called once from `probe()` as soon as the device capabilities are
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/// known.
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///
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/// # Safety
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///
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/// This method must not be called concurrently with any DMA allocation or mapping primitives,
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/// such as [`Coherent::zeroed`].
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unsafe fn dma_set_mask_and_coherent(&self, mask: DmaMask) -> Result {
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// SAFETY:
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// - By the type invariant of `device::Device`, `self.as_ref().as_raw()` is valid.
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// - The safety requirement of this function guarantees that there are no concurrent calls
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// to DMA allocation and mapping primitives using this mask.
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to_result(unsafe {
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bindings::dma_set_mask_and_coherent(self.as_ref().as_raw(), mask.value())
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})
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}
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/// Set the maximum size of a single DMA segment the device may request.
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///
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/// This method is usually called once from `probe()` as soon as the device capabilities are
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/// known.
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///
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/// # Safety
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///
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/// This method must not be called concurrently with any DMA allocation or mapping primitives,
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/// such as [`Coherent::zeroed`].
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unsafe fn dma_set_max_seg_size(&self, size: u32) {
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// SAFETY:
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// - By the type invariant of `device::Device`, `self.as_ref().as_raw()` is valid.
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// - The safety requirement of this function guarantees that there are no concurrent calls
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// to DMA allocation and mapping primitives using this parameter.
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unsafe { bindings::dma_set_max_seg_size(self.as_ref().as_raw(), size) }
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}
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}
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/// A DMA mask that holds a bitmask with the lowest `n` bits set.
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///
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/// Use [`DmaMask::new`] or [`DmaMask::try_new`] to construct a value. Values
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/// are guaranteed to never exceed the bit width of `u64`.
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///
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/// This is the Rust equivalent of the C macro `DMA_BIT_MASK()`.
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#[derive(Debug, Clone, Copy, PartialEq, Eq)]
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pub struct DmaMask(u64);
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impl DmaMask {
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/// Constructs a `DmaMask` with the lowest `n` bits set to `1`.
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///
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/// For `n <= 64`, sets exactly the lowest `n` bits.
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/// For `n > 64`, results in a build error.
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///
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/// # Examples
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///
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/// ```
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/// use kernel::dma::DmaMask;
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///
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/// let mask0 = DmaMask::new::<0>();
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/// assert_eq!(mask0.value(), 0);
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///
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/// let mask1 = DmaMask::new::<1>();
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/// assert_eq!(mask1.value(), 0b1);
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///
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/// let mask64 = DmaMask::new::<64>();
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/// assert_eq!(mask64.value(), u64::MAX);
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///
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/// // Build failure.
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/// // let mask_overflow = DmaMask::new::<100>();
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/// ```
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#[inline]
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pub const fn new<const N: u32>() -> Self {
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let Ok(mask) = Self::try_new(N) else {
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build_error!("Invalid DMA Mask.");
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};
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mask
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}
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/// Constructs a `DmaMask` with the lowest `n` bits set to `1`.
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///
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/// For `n <= 64`, sets exactly the lowest `n` bits.
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/// For `n > 64`, returns [`EINVAL`].
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///
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/// # Examples
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///
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/// ```
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/// use kernel::dma::DmaMask;
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///
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/// let mask0 = DmaMask::try_new(0)?;
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/// assert_eq!(mask0.value(), 0);
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///
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/// let mask1 = DmaMask::try_new(1)?;
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/// assert_eq!(mask1.value(), 0b1);
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///
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/// let mask64 = DmaMask::try_new(64)?;
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/// assert_eq!(mask64.value(), u64::MAX);
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///
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/// let mask_overflow = DmaMask::try_new(100);
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/// assert!(mask_overflow.is_err());
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/// # Ok::<(), Error>(())
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/// ```
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#[inline]
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pub const fn try_new(n: u32) -> Result<Self> {
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Ok(Self(match n {
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0 => 0,
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1..=64 => u64::MAX >> (64 - n),
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_ => return Err(EINVAL),
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}))
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}
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/// Returns the underlying `u64` bitmask value.
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#[inline]
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pub const fn value(&self) -> u64 {
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self.0
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}
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}
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/// Possible attributes associated with a DMA mapping.
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///
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/// They can be combined with the operators `|`, `&`, and `!`.
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///
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/// Values can be used from the [`attrs`] module.
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///
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/// # Examples
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///
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/// ```
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/// # use kernel::device::{Bound, Device};
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/// use kernel::dma::{attrs::*, Coherent};
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///
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/// # fn test(dev: &Device<Bound>) -> Result {
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/// let attribs = DMA_ATTR_FORCE_CONTIGUOUS | DMA_ATTR_NO_WARN;
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/// let c: Coherent<[u64]> =
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/// Coherent::zeroed_slice_with_attrs(dev, 4, GFP_KERNEL, attribs)?;
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/// # Ok::<(), Error>(()) }
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/// ```
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#[derive(Clone, Copy, PartialEq)]
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#[repr(transparent)]
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pub struct Attrs(u32);
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impl Attrs {
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/// Get the raw representation of this attribute.
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pub(crate) fn as_raw(self) -> crate::ffi::c_ulong {
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self.0 as crate::ffi::c_ulong
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}
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/// Check whether `flags` is contained in `self`.
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pub fn contains(self, flags: Attrs) -> bool {
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(self & flags) == flags
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}
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}
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impl core::ops::BitOr for Attrs {
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type Output = Self;
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fn bitor(self, rhs: Self) -> Self::Output {
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Self(self.0 | rhs.0)
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}
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}
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impl core::ops::BitAnd for Attrs {
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type Output = Self;
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fn bitand(self, rhs: Self) -> Self::Output {
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Self(self.0 & rhs.0)
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}
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}
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impl core::ops::Not for Attrs {
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type Output = Self;
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fn not(self) -> Self::Output {
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Self(!self.0)
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}
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}
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/// DMA mapping attributes.
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pub mod attrs {
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use super::Attrs;
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/// Specifies that reads and writes to the mapping may be weakly ordered, that is that reads
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/// and writes may pass each other.
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pub const DMA_ATTR_WEAK_ORDERING: Attrs = Attrs(bindings::DMA_ATTR_WEAK_ORDERING);
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/// Specifies that writes to the mapping may be buffered to improve performance.
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pub const DMA_ATTR_WRITE_COMBINE: Attrs = Attrs(bindings::DMA_ATTR_WRITE_COMBINE);
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/// Allows platform code to skip synchronization of the CPU cache for the given buffer assuming
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/// that it has been already transferred to 'device' domain.
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pub const DMA_ATTR_SKIP_CPU_SYNC: Attrs = Attrs(bindings::DMA_ATTR_SKIP_CPU_SYNC);
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/// Forces contiguous allocation of the buffer in physical memory.
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pub const DMA_ATTR_FORCE_CONTIGUOUS: Attrs = Attrs(bindings::DMA_ATTR_FORCE_CONTIGUOUS);
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/// Hints DMA-mapping subsystem that it's probably not worth the time to try
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/// to allocate memory to in a way that gives better TLB efficiency.
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pub const DMA_ATTR_ALLOC_SINGLE_PAGES: Attrs = Attrs(bindings::DMA_ATTR_ALLOC_SINGLE_PAGES);
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/// This tells the DMA-mapping subsystem to suppress allocation failure reports (similarly to
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/// `__GFP_NOWARN`).
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pub const DMA_ATTR_NO_WARN: Attrs = Attrs(bindings::DMA_ATTR_NO_WARN);
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/// Indicates that the buffer is fully accessible at an elevated privilege level (and
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/// ideally inaccessible or at least read-only at lesser-privileged levels).
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pub const DMA_ATTR_PRIVILEGED: Attrs = Attrs(bindings::DMA_ATTR_PRIVILEGED);
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/// Indicates that the buffer is MMIO memory.
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pub const DMA_ATTR_MMIO: Attrs = Attrs(bindings::DMA_ATTR_MMIO);
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}
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/// DMA data direction.
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///
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/// Corresponds to the C [`enum dma_data_direction`].
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///
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/// [`enum dma_data_direction`]: srctree/include/linux/dma-direction.h
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#[derive(Copy, Clone, PartialEq, Eq, Debug)]
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#[repr(u32)]
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pub enum DataDirection {
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/// The DMA mapping is for bidirectional data transfer.
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///
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/// This is used when the buffer can be both read from and written to by the device.
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/// The cache for the corresponding memory region is both flushed and invalidated.
|
|
Bidirectional = Self::const_cast(bindings::dma_data_direction_DMA_BIDIRECTIONAL),
|
|
|
|
/// The DMA mapping is for data transfer from memory to the device (write).
|
|
///
|
|
/// The CPU has prepared data in the buffer, and the device will read it.
|
|
/// The cache for the corresponding memory region is flushed before device access.
|
|
ToDevice = Self::const_cast(bindings::dma_data_direction_DMA_TO_DEVICE),
|
|
|
|
/// The DMA mapping is for data transfer from the device to memory (read).
|
|
///
|
|
/// The device will write data into the buffer for the CPU to read.
|
|
/// The cache for the corresponding memory region is invalidated before CPU access.
|
|
FromDevice = Self::const_cast(bindings::dma_data_direction_DMA_FROM_DEVICE),
|
|
|
|
/// The DMA mapping is not for data transfer.
|
|
///
|
|
/// This is primarily for debugging purposes. With this direction, the DMA mapping API
|
|
/// will not perform any cache coherency operations.
|
|
None = Self::const_cast(bindings::dma_data_direction_DMA_NONE),
|
|
}
|
|
|
|
impl DataDirection {
|
|
/// Casts the bindgen-generated enum type to a `u32` at compile time.
|
|
///
|
|
/// This function will cause a compile-time error if the underlying value of the
|
|
/// C enum is out of bounds for `u32`.
|
|
const fn const_cast(val: bindings::dma_data_direction) -> u32 {
|
|
// CAST: The C standard allows compilers to choose different integer types for enums.
|
|
// To safely check the value, we cast it to a wide signed integer type (`i128`)
|
|
// which can hold any standard C integer enum type without truncation.
|
|
let wide_val = val as i128;
|
|
|
|
// Check if the value is outside the valid range for the target type `u32`.
|
|
// CAST: `u32::MAX` is cast to `i128` to match the type of `wide_val` for the comparison.
|
|
if wide_val < 0 || wide_val > u32::MAX as i128 {
|
|
// Trigger a compile-time error in a const context.
|
|
build_error!("C enum value is out of bounds for the target type `u32`.");
|
|
}
|
|
|
|
// CAST: This cast is valid because the check above guarantees that `wide_val`
|
|
// is within the representable range of `u32`.
|
|
wide_val as u32
|
|
}
|
|
}
|
|
|
|
impl From<DataDirection> for bindings::dma_data_direction {
|
|
/// Returns the raw representation of [`enum dma_data_direction`].
|
|
fn from(direction: DataDirection) -> Self {
|
|
// CAST: `direction as u32` gets the underlying representation of our `#[repr(u32)]` enum.
|
|
// The subsequent cast to `Self` (the bindgen type) assumes the C enum is compatible
|
|
// with the enum variants of `DataDirection`, which is a valid assumption given our
|
|
// compile-time checks.
|
|
direction as u32 as Self
|
|
}
|
|
}
|
|
|
|
/// CPU-owned DMA allocation that can be converted into a device-shared [`Coherent`] object.
|
|
///
|
|
/// Unlike [`Coherent`], a [`CoherentBox`] is guaranteed to be fully owned by the CPU -- its DMA
|
|
/// address is not exposed and it cannot be accessed by a device. This means it can safely be used
|
|
/// like a normal boxed allocation (e.g. direct reads, writes, and mutable slices are all safe).
|
|
///
|
|
/// A typical use is to allocate a [`CoherentBox`], populate it with normal CPU access, and then
|
|
/// convert it into a [`Coherent`] object to share it with the device.
|
|
///
|
|
/// # Examples
|
|
///
|
|
/// `CoherentBox<T>`:
|
|
///
|
|
/// ```
|
|
/// # use kernel::device::{
|
|
/// # Bound,
|
|
/// # Device,
|
|
/// # };
|
|
/// use kernel::dma::{attrs::*,
|
|
/// Coherent,
|
|
/// CoherentBox,
|
|
/// };
|
|
///
|
|
/// # fn test(dev: &Device<Bound>) -> Result {
|
|
/// let mut dmem: CoherentBox<u64> = CoherentBox::zeroed(dev, GFP_KERNEL)?;
|
|
/// *dmem = 42;
|
|
/// let dmem: Coherent<u64> = dmem.into();
|
|
/// # Ok::<(), Error>(()) }
|
|
/// ```
|
|
///
|
|
/// `CoherentBox<[T]>`:
|
|
///
|
|
///
|
|
/// ```
|
|
/// # use kernel::device::{
|
|
/// # Bound,
|
|
/// # Device,
|
|
/// # };
|
|
/// use kernel::dma::{attrs::*,
|
|
/// Coherent,
|
|
/// CoherentBox,
|
|
/// };
|
|
///
|
|
/// # fn test(dev: &Device<Bound>) -> Result {
|
|
/// let mut dmem: CoherentBox<[u64]> = CoherentBox::zeroed_slice(dev, 4, GFP_KERNEL)?;
|
|
/// dmem.fill(42);
|
|
/// let dmem: Coherent<[u64]> = dmem.into();
|
|
/// # Ok::<(), Error>(()) }
|
|
/// ```
|
|
pub struct CoherentBox<T: KnownSize + ?Sized>(Coherent<T>);
|
|
|
|
impl<T: AsBytes + FromBytes> CoherentBox<[T]> {
|
|
/// [`CoherentBox`] variant of [`Coherent::zeroed_slice_with_attrs`].
|
|
#[inline]
|
|
pub fn zeroed_slice_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
count: usize,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Self> {
|
|
Coherent::zeroed_slice_with_attrs(dev, count, gfp_flags, dma_attrs).map(Self)
|
|
}
|
|
|
|
/// Same as [CoherentBox::zeroed_slice_with_attrs], but with `dma::Attrs(0)`.
|
|
#[inline]
|
|
pub fn zeroed_slice(
|
|
dev: &device::Device<Bound>,
|
|
count: usize,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
) -> Result<Self> {
|
|
Self::zeroed_slice_with_attrs(dev, count, gfp_flags, Attrs(0))
|
|
}
|
|
|
|
/// Initializes the element at `i` using the given initializer.
|
|
///
|
|
/// Returns `EINVAL` if `i` is out of bounds.
|
|
pub fn init_at<E>(&mut self, i: usize, init: impl Init<T, E>) -> Result
|
|
where
|
|
Error: From<E>,
|
|
{
|
|
if i >= self.0.len() {
|
|
return Err(EINVAL);
|
|
}
|
|
|
|
let ptr = &raw mut self[i];
|
|
|
|
// SAFETY:
|
|
// - `ptr` is valid, properly aligned, and within this allocation.
|
|
// - `T: AsBytes + FromBytes` guarantees all bit patterns are valid, so partial writes on
|
|
// error cannot leave the element in an invalid state.
|
|
// - The DMA address has not been exposed yet, so there is no concurrent device access.
|
|
unsafe { pin_init::raw_try_init(ptr, init)? };
|
|
|
|
Ok(())
|
|
}
|
|
|
|
/// Allocates a region of coherent memory of the same size as `data` and initializes it with a
|
|
/// copy of its contents.
|
|
///
|
|
/// This is the [`CoherentBox`] variant of [`Coherent::from_slice_with_attrs`].
|
|
///
|
|
/// # Examples
|
|
///
|
|
/// ```
|
|
/// use core::ops::Deref;
|
|
///
|
|
/// # use kernel::device::{Bound, Device};
|
|
/// use kernel::dma::{
|
|
/// attrs::*,
|
|
/// CoherentBox
|
|
/// };
|
|
///
|
|
/// # fn test(dev: &Device<Bound>) -> Result {
|
|
/// let data = [0u8, 1u8, 2u8, 3u8];
|
|
/// let c: CoherentBox<[u8]> =
|
|
/// CoherentBox::from_slice_with_attrs(dev, &data, GFP_KERNEL, DMA_ATTR_NO_WARN)?;
|
|
///
|
|
/// assert_eq!(c.deref(), &data);
|
|
/// # Ok::<(), Error>(()) }
|
|
/// ```
|
|
pub fn from_slice_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
data: &[T],
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Self>
|
|
where
|
|
T: Copy,
|
|
{
|
|
let mut slice = Self(Coherent::<T>::alloc_slice_with_attrs(
|
|
dev,
|
|
data.len(),
|
|
gfp_flags,
|
|
dma_attrs,
|
|
)?);
|
|
|
|
// PANIC: `slice` was created with length `data.len()`.
|
|
slice.copy_from_slice(data);
|
|
|
|
Ok(slice)
|
|
}
|
|
|
|
/// Performs the same functionality as [`CoherentBox::from_slice_with_attrs`], except the
|
|
/// `dma_attrs` is 0 by default.
|
|
#[inline]
|
|
pub fn from_slice(
|
|
dev: &device::Device<Bound>,
|
|
data: &[T],
|
|
gfp_flags: kernel::alloc::Flags,
|
|
) -> Result<Self>
|
|
where
|
|
T: Copy,
|
|
{
|
|
Self::from_slice_with_attrs(dev, data, gfp_flags, Attrs(0))
|
|
}
|
|
}
|
|
|
|
impl<T: AsBytes + FromBytes> CoherentBox<T> {
|
|
/// Same as [`CoherentBox::zeroed_slice_with_attrs`], but for a single element.
|
|
#[inline]
|
|
pub fn zeroed_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Self> {
|
|
Coherent::zeroed_with_attrs(dev, gfp_flags, dma_attrs).map(Self)
|
|
}
|
|
|
|
/// Same as [`CoherentBox::zeroed_slice`], but for a single element.
|
|
#[inline]
|
|
pub fn zeroed(dev: &device::Device<Bound>, gfp_flags: kernel::alloc::Flags) -> Result<Self> {
|
|
Self::zeroed_with_attrs(dev, gfp_flags, Attrs(0))
|
|
}
|
|
}
|
|
|
|
impl<T: KnownSize + ?Sized> Deref for CoherentBox<T> {
|
|
type Target = T;
|
|
|
|
#[inline]
|
|
fn deref(&self) -> &Self::Target {
|
|
// SAFETY:
|
|
// - We have not exposed the DMA address yet, so there can't be any concurrent access by a
|
|
// device.
|
|
// - We have exclusive access to `self.0`.
|
|
unsafe { self.0.as_ref() }
|
|
}
|
|
}
|
|
|
|
impl<T: AsBytes + FromBytes + KnownSize + ?Sized> DerefMut for CoherentBox<T> {
|
|
#[inline]
|
|
fn deref_mut(&mut self) -> &mut Self::Target {
|
|
// SAFETY:
|
|
// - We have not exposed the DMA address yet, so there can't be any concurrent access by a
|
|
// device.
|
|
// - We have exclusive access to `self.0`.
|
|
unsafe { self.0.as_mut() }
|
|
}
|
|
}
|
|
|
|
impl<T: AsBytes + FromBytes + KnownSize + ?Sized> From<CoherentBox<T>> for Coherent<T> {
|
|
#[inline]
|
|
fn from(value: CoherentBox<T>) -> Self {
|
|
value.0
|
|
}
|
|
}
|
|
|
|
/// An abstraction of the `dma_alloc_coherent` API.
|
|
///
|
|
/// This is an abstraction around the `dma_alloc_coherent` API which is used to allocate and map
|
|
/// large coherent DMA regions.
|
|
///
|
|
/// A [`Coherent`] instance contains a pointer to the allocated region (in the
|
|
/// processor's virtual address space) and the device address which can be given to the device
|
|
/// as the DMA address base of the region. The region is released once [`Coherent`]
|
|
/// is dropped.
|
|
///
|
|
/// # Invariants
|
|
///
|
|
/// - For the lifetime of an instance of [`Coherent`], the `cpu_addr` is a valid pointer
|
|
/// to an allocated region of coherent memory and `dma_addr` is the DMA address base of the
|
|
/// region.
|
|
/// - The size in bytes of the allocation is equal to size information via pointer.
|
|
// TODO
|
|
//
|
|
// DMA allocations potentially carry device resources (e.g.IOMMU mappings), hence for soundness
|
|
// reasons DMA allocation would need to be embedded in a `Devres` container, in order to ensure
|
|
// that device resources can never survive device unbind.
|
|
//
|
|
// However, it is neither desirable nor necessary to protect the allocated memory of the DMA
|
|
// allocation from surviving device unbind; it would require RCU read side critical sections to
|
|
// access the memory, which may require subsequent unnecessary copies.
|
|
//
|
|
// Hence, find a way to revoke the device resources of a `Coherent`, but not the
|
|
// entire `Coherent` including the allocated memory itself.
|
|
pub struct Coherent<T: KnownSize + ?Sized> {
|
|
dev: ARef<device::Device>,
|
|
dma_addr: DmaAddress,
|
|
cpu_addr: NonNull<T>,
|
|
dma_attrs: Attrs,
|
|
}
|
|
|
|
impl<T: KnownSize + ?Sized> Coherent<T> {
|
|
/// Returns the size in bytes of this allocation.
|
|
#[inline]
|
|
pub fn size(&self) -> usize {
|
|
T::size(self.cpu_addr.as_ptr())
|
|
}
|
|
|
|
/// Returns the raw pointer to the allocated region in the CPU's virtual address space.
|
|
#[inline]
|
|
pub fn as_ptr(&self) -> *const T {
|
|
self.cpu_addr.as_ptr()
|
|
}
|
|
|
|
/// Returns the raw pointer to the allocated region in the CPU's virtual address space as
|
|
/// a mutable pointer.
|
|
#[inline]
|
|
pub fn as_mut_ptr(&self) -> *mut T {
|
|
self.cpu_addr.as_ptr()
|
|
}
|
|
|
|
/// Returns a DMA address which may be given to the device as the base of the region.
|
|
#[inline]
|
|
pub fn dma_address(&self) -> DmaAddress {
|
|
self.dma_addr
|
|
}
|
|
|
|
/// Returns a reference to the data in the region.
|
|
///
|
|
/// # Safety
|
|
///
|
|
/// * Callers must ensure that the device does not read/write to/from memory while the returned
|
|
/// slice is live.
|
|
/// * Callers must ensure that this call does not race with a write to the same region while
|
|
/// the returned slice is live.
|
|
#[inline]
|
|
pub unsafe fn as_ref(&self) -> &T {
|
|
// SAFETY: per safety requirement.
|
|
unsafe { &*self.as_ptr() }
|
|
}
|
|
|
|
/// Returns a mutable reference to the data in the region.
|
|
///
|
|
/// # Safety
|
|
///
|
|
/// * Callers must ensure that the device does not read/write to/from memory while the returned
|
|
/// slice is live.
|
|
/// * Callers must ensure that this call does not race with a read or write to the same region
|
|
/// while the returned slice is live.
|
|
#[expect(clippy::mut_from_ref, reason = "unsafe to use API")]
|
|
#[inline]
|
|
pub unsafe fn as_mut(&self) -> &mut T {
|
|
// SAFETY: per safety requirement.
|
|
unsafe { &mut *self.as_mut_ptr() }
|
|
}
|
|
}
|
|
|
|
impl<T: AsBytes + FromBytes> Coherent<T> {
|
|
/// Allocates a region of `T` of coherent memory.
|
|
fn alloc_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Self> {
|
|
const {
|
|
assert!(
|
|
core::mem::size_of::<T>() > 0,
|
|
"It doesn't make sense for the allocated type to be a ZST"
|
|
);
|
|
}
|
|
|
|
let mut dma_addr = 0;
|
|
// SAFETY: Device pointer is guaranteed as valid by the type invariant on `Device`.
|
|
let addr = unsafe {
|
|
bindings::dma_alloc_attrs(
|
|
dev.as_raw(),
|
|
core::mem::size_of::<T>(),
|
|
&mut dma_addr,
|
|
gfp_flags.as_raw(),
|
|
dma_attrs.as_raw(),
|
|
)
|
|
};
|
|
let cpu_addr = NonNull::new(addr.cast()).ok_or(ENOMEM)?;
|
|
// INVARIANT:
|
|
// - We just successfully allocated a coherent region which is adequately sized for `T`,
|
|
// hence the cpu address is valid.
|
|
// - We also hold a refcounted reference to the device.
|
|
Ok(Self {
|
|
dev: dev.into(),
|
|
dma_addr,
|
|
cpu_addr,
|
|
dma_attrs,
|
|
})
|
|
}
|
|
|
|
/// Allocates a region of type `T` of coherent memory.
|
|
///
|
|
/// # Examples
|
|
///
|
|
/// ```
|
|
/// # use kernel::device::{
|
|
/// # Bound,
|
|
/// # Device,
|
|
/// # };
|
|
/// use kernel::dma::{
|
|
/// attrs::*,
|
|
/// Coherent,
|
|
/// };
|
|
///
|
|
/// # fn test(dev: &Device<Bound>) -> Result {
|
|
/// let c: Coherent<[u64; 4]> =
|
|
/// Coherent::zeroed_with_attrs(dev, GFP_KERNEL, DMA_ATTR_NO_WARN)?;
|
|
/// # Ok::<(), Error>(()) }
|
|
/// ```
|
|
#[inline]
|
|
pub fn zeroed_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Self> {
|
|
Self::alloc_with_attrs(dev, gfp_flags | __GFP_ZERO, dma_attrs)
|
|
}
|
|
|
|
/// Performs the same functionality as [`Coherent::zeroed_with_attrs`], except the
|
|
/// `dma_attrs` is 0 by default.
|
|
#[inline]
|
|
pub fn zeroed(dev: &device::Device<Bound>, gfp_flags: kernel::alloc::Flags) -> Result<Self> {
|
|
Self::zeroed_with_attrs(dev, gfp_flags, Attrs(0))
|
|
}
|
|
|
|
/// Same as [`Coherent::zeroed_with_attrs`], but instead of a zero-initialization the memory is
|
|
/// initialized with `init`.
|
|
pub fn init_with_attrs<E>(
|
|
dev: &device::Device<Bound>,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
init: impl Init<T, E>,
|
|
) -> Result<Self>
|
|
where
|
|
Error: From<E>,
|
|
{
|
|
let dmem = Self::alloc_with_attrs(dev, gfp_flags, dma_attrs)?;
|
|
let ptr = dmem.as_mut_ptr();
|
|
|
|
// SAFETY:
|
|
// - `ptr` is valid, properly aligned, and points to exclusively owned memory.
|
|
// - If `raw_try_init` fails, `self` is dropped, which safely frees the underlying
|
|
// `Coherent`'s DMA memory. `T: AsBytes + FromBytes` ensures there are no complex `Drop`
|
|
// requirements we are bypassing.
|
|
unsafe { pin_init::raw_try_init(ptr, init)? };
|
|
|
|
Ok(dmem)
|
|
}
|
|
|
|
/// Same as [`Coherent::zeroed`], but instead of a zero-initialization the memory is initialized
|
|
/// with `init`.
|
|
#[inline]
|
|
pub fn init<E>(
|
|
dev: &device::Device<Bound>,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
init: impl Init<T, E>,
|
|
) -> Result<Self>
|
|
where
|
|
Error: From<E>,
|
|
{
|
|
Self::init_with_attrs(dev, gfp_flags, Attrs(0), init)
|
|
}
|
|
|
|
/// Allocates a region of `[T; len]` of coherent memory.
|
|
fn alloc_slice_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
len: usize,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Coherent<[T]>> {
|
|
const {
|
|
assert!(
|
|
core::mem::size_of::<T>() > 0,
|
|
"It doesn't make sense for the allocated type to be a ZST"
|
|
);
|
|
}
|
|
|
|
// `dma_alloc_attrs` cannot handle zero-length allocation, bail early.
|
|
if len == 0 {
|
|
Err(EINVAL)?;
|
|
}
|
|
|
|
let size = core::mem::size_of::<T>().checked_mul(len).ok_or(ENOMEM)?;
|
|
let mut dma_addr = 0;
|
|
// SAFETY: Device pointer is guaranteed as valid by the type invariant on `Device`.
|
|
let addr = unsafe {
|
|
bindings::dma_alloc_attrs(
|
|
dev.as_raw(),
|
|
size,
|
|
&mut dma_addr,
|
|
gfp_flags.as_raw(),
|
|
dma_attrs.as_raw(),
|
|
)
|
|
};
|
|
let cpu_addr = NonNull::slice_from_raw_parts(NonNull::new(addr.cast()).ok_or(ENOMEM)?, len);
|
|
// INVARIANT:
|
|
// - We just successfully allocated a coherent region which is adequately sized for
|
|
// `[T; len]`, hence the cpu address is valid.
|
|
// - We also hold a refcounted reference to the device.
|
|
Ok(Coherent {
|
|
dev: dev.into(),
|
|
dma_addr,
|
|
cpu_addr,
|
|
dma_attrs,
|
|
})
|
|
}
|
|
|
|
/// Allocates a zeroed region of type `T` of coherent memory.
|
|
///
|
|
/// Unlike `Coherent::<[T; N]>::zeroed_with_attrs`, `Coherent::<T>::zeroed_slices` support
|
|
/// a runtime length.
|
|
///
|
|
/// # Examples
|
|
///
|
|
/// ```
|
|
/// # use kernel::device::{
|
|
/// # Bound,
|
|
/// # Device,
|
|
/// # };
|
|
/// use kernel::dma::{
|
|
/// attrs::*,
|
|
/// Coherent,
|
|
/// };
|
|
///
|
|
/// # fn test(dev: &Device<Bound>) -> Result {
|
|
/// let c: Coherent<[u64]> =
|
|
/// Coherent::zeroed_slice_with_attrs(dev, 4, GFP_KERNEL, DMA_ATTR_NO_WARN)?;
|
|
/// # Ok::<(), Error>(()) }
|
|
/// ```
|
|
#[inline]
|
|
pub fn zeroed_slice_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
len: usize,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Coherent<[T]>> {
|
|
Coherent::alloc_slice_with_attrs(dev, len, gfp_flags | __GFP_ZERO, dma_attrs)
|
|
}
|
|
|
|
/// Performs the same functionality as [`Coherent::zeroed_slice_with_attrs`], except the
|
|
/// `dma_attrs` is 0 by default.
|
|
#[inline]
|
|
pub fn zeroed_slice(
|
|
dev: &device::Device<Bound>,
|
|
len: usize,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
) -> Result<Coherent<[T]>> {
|
|
Self::zeroed_slice_with_attrs(dev, len, gfp_flags, Attrs(0))
|
|
}
|
|
|
|
/// Allocates a region of coherent memory of the same size as `data` and initializes it with a
|
|
/// copy of its contents.
|
|
///
|
|
/// # Examples
|
|
///
|
|
/// ```
|
|
/// # use kernel::device::{Bound, Device};
|
|
/// use kernel::dma::{
|
|
/// attrs::*,
|
|
/// Coherent
|
|
/// };
|
|
///
|
|
/// # fn test(dev: &Device<Bound>) -> Result {
|
|
/// let data = [0u8, 1u8, 2u8, 3u8];
|
|
/// // `c` has the same content as `data`.
|
|
/// let c: Coherent<[u8]> =
|
|
/// Coherent::from_slice_with_attrs(dev, &data, GFP_KERNEL, DMA_ATTR_NO_WARN)?;
|
|
///
|
|
/// # Ok::<(), Error>(()) }
|
|
/// ```
|
|
#[inline]
|
|
pub fn from_slice_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
data: &[T],
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Coherent<[T]>>
|
|
where
|
|
T: Copy,
|
|
{
|
|
CoherentBox::from_slice_with_attrs(dev, data, gfp_flags, dma_attrs).map(Into::into)
|
|
}
|
|
|
|
/// Performs the same functionality as [`Coherent::from_slice_with_attrs`], except the
|
|
/// `dma_attrs` is 0 by default.
|
|
#[inline]
|
|
pub fn from_slice(
|
|
dev: &device::Device<Bound>,
|
|
data: &[T],
|
|
gfp_flags: kernel::alloc::Flags,
|
|
) -> Result<Coherent<[T]>>
|
|
where
|
|
T: Copy,
|
|
{
|
|
Self::from_slice_with_attrs(dev, data, gfp_flags, Attrs(0))
|
|
}
|
|
}
|
|
|
|
impl<T> Coherent<[T]> {
|
|
/// Returns the number of elements `T` in this allocation.
|
|
///
|
|
/// Note that this is not the size of the allocation in bytes, which is provided by
|
|
/// [`Self::size`].
|
|
#[inline]
|
|
#[expect(clippy::len_without_is_empty, reason = "Coherent slice is never empty")]
|
|
pub fn len(&self) -> usize {
|
|
self.cpu_addr.len()
|
|
}
|
|
}
|
|
|
|
/// Note that the device configured to do DMA must be halted before this object is dropped.
|
|
impl<T: KnownSize + ?Sized> Drop for Coherent<T> {
|
|
fn drop(&mut self) {
|
|
let size = T::size(self.cpu_addr.as_ptr());
|
|
// SAFETY: Device pointer is guaranteed as valid by the type invariant on `Device`.
|
|
// The cpu address, and the dma address are valid due to the type invariants on
|
|
// `Coherent`.
|
|
unsafe {
|
|
bindings::dma_free_attrs(
|
|
self.dev.as_raw(),
|
|
size,
|
|
self.cpu_addr.as_ptr().cast(),
|
|
self.dma_addr,
|
|
self.dma_attrs.as_raw(),
|
|
)
|
|
}
|
|
}
|
|
}
|
|
|
|
// SAFETY: It is safe to send a `Coherent` to another thread if `T`
|
|
// can be sent to another thread.
|
|
unsafe impl<T: KnownSize + Send + ?Sized> Send for Coherent<T> {}
|
|
|
|
// SAFETY: Sharing `&Coherent` across threads is safe if `T` is `Sync`, because all
|
|
// methods that access the buffer contents (`field_read`, `field_write`, `as_slice`,
|
|
// `as_slice_mut`) are `unsafe`, and callers are responsible for ensuring no data races occur.
|
|
// The safe methods only return metadata or raw pointers whose use requires `unsafe`.
|
|
unsafe impl<T: KnownSize + ?Sized + AsBytes + FromBytes + Sync> Sync for Coherent<T> {}
|
|
|
|
impl<T: KnownSize + AsBytes + ?Sized> debugfs::BinaryWriter for Coherent<T> {
|
|
fn write_to_slice(
|
|
&self,
|
|
writer: &mut UserSliceWriter,
|
|
offset: &mut file::Offset,
|
|
) -> Result<usize> {
|
|
if offset.is_negative() {
|
|
return Err(EINVAL);
|
|
}
|
|
|
|
// If the offset is too large for a usize (e.g. on 32-bit platforms),
|
|
// then consider that as past EOF and just return 0 bytes.
|
|
let Ok(offset_val) = usize::try_from(*offset) else {
|
|
return Ok(0);
|
|
};
|
|
|
|
if offset_val >= self.size() {
|
|
return Ok(0);
|
|
}
|
|
|
|
let count = (self.size() - offset_val).min(writer.len());
|
|
|
|
writer.write_dma(self, offset_val, count)?;
|
|
|
|
*offset += count as i64;
|
|
Ok(count)
|
|
}
|
|
}
|
|
|
|
/// An opaque DMA allocation without a kernel virtual mapping.
|
|
///
|
|
/// Unlike [`Coherent`], a `CoherentHandle` does not provide CPU access to the allocated memory.
|
|
/// The allocation is always performed with `DMA_ATTR_NO_KERNEL_MAPPING`, meaning no kernel
|
|
/// virtual mapping is created for the buffer. The value returned by the C API as the CPU
|
|
/// address is an opaque handle used only to free the allocation.
|
|
///
|
|
/// This is useful for buffers that are only ever accessed by hardware.
|
|
///
|
|
/// # Invariants
|
|
///
|
|
/// - `cpu_handle` holds the opaque handle returned by `dma_alloc_attrs` with
|
|
/// `DMA_ATTR_NO_KERNEL_MAPPING` set, and is only valid for passing back to `dma_free_attrs`.
|
|
/// - `dma_addr` is the corresponding bus address for device DMA.
|
|
/// - `size` is the allocation size in bytes as passed to `dma_alloc_attrs`.
|
|
/// - `dma_attrs` contains the attributes used for the allocation, always including
|
|
/// `DMA_ATTR_NO_KERNEL_MAPPING`.
|
|
pub struct CoherentHandle {
|
|
dev: ARef<device::Device>,
|
|
dma_addr: DmaAddress,
|
|
cpu_handle: NonNull<c_void>,
|
|
size: usize,
|
|
dma_attrs: Attrs,
|
|
}
|
|
|
|
impl CoherentHandle {
|
|
/// Allocates `size` bytes of coherent DMA memory without creating a kernel virtual mapping.
|
|
///
|
|
/// Additional DMA attributes may be passed via `dma_attrs`; `DMA_ATTR_NO_KERNEL_MAPPING` is
|
|
/// always set implicitly.
|
|
///
|
|
/// Returns `EINVAL` if `size` is zero, `ENOMEM` if the allocation fails.
|
|
pub fn alloc_with_attrs(
|
|
dev: &device::Device<Bound>,
|
|
size: usize,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
dma_attrs: Attrs,
|
|
) -> Result<Self> {
|
|
if size == 0 {
|
|
return Err(EINVAL);
|
|
}
|
|
|
|
let dma_attrs = dma_attrs | Attrs(bindings::DMA_ATTR_NO_KERNEL_MAPPING);
|
|
let mut dma_addr = 0;
|
|
// SAFETY: `dev.as_raw()` is valid by the type invariant on `device::Device`.
|
|
let cpu_handle = unsafe {
|
|
bindings::dma_alloc_attrs(
|
|
dev.as_raw(),
|
|
size,
|
|
&mut dma_addr,
|
|
gfp_flags.as_raw(),
|
|
dma_attrs.as_raw(),
|
|
)
|
|
};
|
|
|
|
let cpu_handle = NonNull::new(cpu_handle).ok_or(ENOMEM)?;
|
|
|
|
// INVARIANT: `cpu_handle` is the opaque handle from a successful `dma_alloc_attrs` call
|
|
// with `DMA_ATTR_NO_KERNEL_MAPPING`, `dma_addr` is the corresponding DMA address,
|
|
// and we hold a refcounted reference to the device.
|
|
Ok(Self {
|
|
dev: dev.into(),
|
|
dma_addr,
|
|
cpu_handle,
|
|
size,
|
|
dma_attrs,
|
|
})
|
|
}
|
|
|
|
/// Allocates `size` bytes of coherent DMA memory without creating a kernel virtual mapping.
|
|
#[inline]
|
|
pub fn alloc(
|
|
dev: &device::Device<Bound>,
|
|
size: usize,
|
|
gfp_flags: kernel::alloc::Flags,
|
|
) -> Result<Self> {
|
|
Self::alloc_with_attrs(dev, size, gfp_flags, Attrs(0))
|
|
}
|
|
|
|
/// Returns the DMA address for this allocation.
|
|
///
|
|
/// This address can be programmed into device hardware for DMA access.
|
|
#[inline]
|
|
pub fn dma_address(&self) -> DmaAddress {
|
|
self.dma_addr
|
|
}
|
|
|
|
/// Returns the size in bytes of this allocation.
|
|
#[inline]
|
|
pub fn size(&self) -> usize {
|
|
self.size
|
|
}
|
|
}
|
|
|
|
impl Drop for CoherentHandle {
|
|
fn drop(&mut self) {
|
|
// SAFETY: All values are valid by the type invariants on `CoherentHandle`.
|
|
// `cpu_handle` is the opaque handle from `dma_alloc_attrs` and is passed back unchanged.
|
|
unsafe {
|
|
bindings::dma_free_attrs(
|
|
self.dev.as_raw(),
|
|
self.size,
|
|
self.cpu_handle.as_ptr(),
|
|
self.dma_addr,
|
|
self.dma_attrs.as_raw(),
|
|
)
|
|
}
|
|
}
|
|
}
|
|
|
|
// SAFETY: `CoherentHandle` only holds a device reference, a DMA address, an opaque CPU handle,
|
|
// and a size. None of these are tied to a specific thread.
|
|
unsafe impl Send for CoherentHandle {}
|
|
|
|
// SAFETY: `CoherentHandle` provides no CPU access to the underlying allocation. The only
|
|
// operations on `&CoherentHandle` are reading the DMA address and size, both of which are
|
|
// plain `Copy` values.
|
|
unsafe impl Sync for CoherentHandle {}
|
|
|
|
/// View type for `Coherent`.
|
|
///
|
|
/// This is same as [`SysMem`] but with additional information that allows handing out a DMA
|
|
/// address.
|
|
pub struct CoherentView<'a, T: ?Sized> {
|
|
cpu_addr: SysMem<'a, T>,
|
|
dma_addr: DmaAddress,
|
|
}
|
|
|
|
impl<T: ?Sized> Copy for CoherentView<'_, T> {}
|
|
impl<T: ?Sized> Clone for CoherentView<'_, T> {
|
|
#[inline]
|
|
fn clone(&self) -> Self {
|
|
*self
|
|
}
|
|
}
|
|
|
|
impl<'a, T: ?Sized> CoherentView<'a, T> {
|
|
/// Erase the DMA address information and obtain a [`SysMem`] view of the same memory region.
|
|
#[inline]
|
|
pub fn as_sys_mem(self) -> SysMem<'a, T> {
|
|
self.cpu_addr
|
|
}
|
|
|
|
/// Returns the DMA address which may be given to the device as base of the region.
|
|
#[inline]
|
|
pub fn dma_address(self) -> DmaAddress {
|
|
self.dma_addr
|
|
}
|
|
|
|
/// Returns a reference to the data in the region.
|
|
///
|
|
/// # Safety
|
|
///
|
|
/// * Callers must ensure that the device does not read/write to/from memory while the returned
|
|
/// reference is live.
|
|
/// * Callers must ensure that this call does not race with a write (including call to `as_mut`)
|
|
/// to the same region while the returned reference is live.
|
|
#[inline]
|
|
pub unsafe fn as_ref(self) -> &'a T {
|
|
// SAFETY: pointer is aligned and valid per type invariant. Aliasing rule is satisfied per
|
|
// safety requirement.
|
|
unsafe { &*self.cpu_addr.as_ptr() }
|
|
}
|
|
|
|
/// Returns a mutable reference to the data in the region.
|
|
///
|
|
/// # Safety
|
|
///
|
|
/// * Callers must ensure that the device does not read/write to/from memory while the returned
|
|
/// reference is live.
|
|
/// * Callers must ensure that this call does not race with a read (including call to `as_ref`)
|
|
/// or write (including call to `as_mut`) to the same region while the returned reference is
|
|
/// live.
|
|
#[inline]
|
|
pub unsafe fn as_mut(self) -> &'a mut T {
|
|
// SAFETY: pointer is aligned and valid per type invariant. Aliasing rule is satisfied per
|
|
// safety requirement.
|
|
unsafe { &mut *self.cpu_addr.as_ptr() }
|
|
}
|
|
}
|
|
|
|
/// `IoBackend` implementation for `Coherent`.
|
|
pub struct CoherentIoBackend;
|
|
|
|
impl IoBackend for CoherentIoBackend {
|
|
type View<'a, T: ?Sized + KnownSize> = CoherentView<'a, T>;
|
|
|
|
#[inline]
|
|
fn as_ptr<'a, T: ?Sized + KnownSize>(view: Self::View<'a, T>) -> *mut T {
|
|
SysMemBackend::as_ptr(view.cpu_addr)
|
|
}
|
|
|
|
#[inline]
|
|
unsafe fn project_view<'a, T: ?Sized + KnownSize, U: ?Sized + KnownSize>(
|
|
view: Self::View<'a, T>,
|
|
ptr: *mut U,
|
|
) -> Self::View<'a, U> {
|
|
let offset = ptr.addr() - view.cpu_addr.as_ptr().addr();
|
|
// CAST: The offset DMA address can never overflow.
|
|
let dma_addr = view.dma_addr + offset as DmaAddress;
|
|
CoherentView {
|
|
dma_addr,
|
|
// SAFETY: Per safety requirement.
|
|
cpu_addr: unsafe { SysMemBackend::project_view(view.cpu_addr, ptr) },
|
|
}
|
|
}
|
|
}
|
|
|
|
impl<T> IoCapable<T> for CoherentIoBackend
|
|
where
|
|
SysMemBackend: IoCapable<T>,
|
|
{
|
|
#[inline]
|
|
fn io_read<'a>(view: Self::View<'a, T>) -> T {
|
|
SysMemBackend::io_read(view.cpu_addr)
|
|
}
|
|
|
|
#[inline]
|
|
fn io_write<'a>(view: Self::View<'a, T>, value: T) {
|
|
SysMemBackend::io_write(view.cpu_addr, value)
|
|
}
|
|
}
|
|
|
|
impl IoCopyable for CoherentIoBackend {
|
|
#[inline]
|
|
unsafe fn copy_from_io(view: Self::View<'_, [u8]>, buffer: *mut u8) {
|
|
// SAFETY: Per safety requirement.
|
|
unsafe { SysMemBackend::copy_from_io(view.cpu_addr, buffer) }
|
|
}
|
|
|
|
#[inline]
|
|
unsafe fn copy_to_io(view: Self::View<'_, [u8]>, buffer: *const u8) {
|
|
// SAFETY: Per safety requirement.
|
|
unsafe { SysMemBackend::copy_to_io(view.cpu_addr, buffer) }
|
|
}
|
|
|
|
#[inline]
|
|
fn copy_read<T: zerocopy::FromBytes>(view: Self::View<'_, T>) -> T {
|
|
SysMemBackend::copy_read(view.cpu_addr)
|
|
}
|
|
|
|
#[inline]
|
|
fn copy_write<T: zerocopy::IntoBytes>(view: Self::View<'_, T>, value: T) {
|
|
SysMemBackend::copy_write(view.cpu_addr, value)
|
|
}
|
|
}
|
|
|
|
impl<'a, T: ?Sized + KnownSize> IoBase<'a> for CoherentView<'a, T> {
|
|
type Backend = CoherentIoBackend;
|
|
type Target = T;
|
|
|
|
#[inline]
|
|
fn as_view(self) -> CoherentView<'a, Self::Target> {
|
|
self
|
|
}
|
|
}
|
|
|
|
impl<'a, T: ?Sized + KnownSize> IoBase<'a> for &'a Coherent<T> {
|
|
type Backend = CoherentIoBackend;
|
|
type Target = T;
|
|
|
|
#[inline]
|
|
fn as_view(self) -> CoherentView<'a, Self::Target> {
|
|
CoherentView {
|
|
// SAFETY: `cpu_addr` is valid and aligned kernel accessible memory.
|
|
cpu_addr: unsafe { SysMem::new(self.cpu_addr.as_ptr()) },
|
|
dma_addr: self.dma_addr,
|
|
}
|
|
}
|
|
}
|