mirror of
https://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git
synced 2026-07-22 23:17:41 -04:00
Add the entrypoint for unmapping ranges in the GPUVM, and provide callbacks and VA types for the implementation. Co-developed-by: Asahi Lina <lina+kernel@asahilina.net> Signed-off-by: Asahi Lina <lina+kernel@asahilina.net> Reviewed-by: Daniel Almeida <daniel.almeida@collabora.com> Signed-off-by: Alice Ryhl <aliceryhl@google.com> Link: https://patch.msgid.link/20260409-gpuvm-rust-v6-4-b16e6ada7261@google.com Signed-off-by: Danilo Krummrich <dakr@kernel.org>
250 lines
9.5 KiB
Rust
250 lines
9.5 KiB
Rust
// SPDX-License-Identifier: GPL-2.0 OR MIT
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use super::*;
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/// Represents that a given GEM object has at least one mapping on this [`GpuVm`] instance.
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///
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/// Does not assume that GEM lock is held.
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///
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/// # Invariants
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///
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/// * Allocated with `kmalloc` and refcounted via `inner`.
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/// * Is present in the gem list.
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#[repr(C)]
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#[pin_data]
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pub struct GpuVmBo<T: DriverGpuVm> {
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#[pin]
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inner: Opaque<bindings::drm_gpuvm_bo>,
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#[pin]
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data: T::VmBoData,
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}
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// SAFETY: By type invariants, the allocation is managed by the refcount in `self.inner`.
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unsafe impl<T: DriverGpuVm> AlwaysRefCounted for GpuVmBo<T> {
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fn inc_ref(&self) {
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// SAFETY: By type invariants, the allocation is managed by the refcount in `self.inner`.
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unsafe { bindings::drm_gpuvm_bo_get(self.inner.get()) };
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}
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unsafe fn dec_ref(obj: NonNull<Self>) {
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// CAST: `drm_gpuvm_bo` is first field of repr(C) struct.
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// SAFETY: By type invariants, the allocation is managed by the refcount in `self.inner`.
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// This GPUVM instance uses immediate mode, so we may put the refcount using the deferred
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// mechanism.
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unsafe { bindings::drm_gpuvm_bo_put_deferred(obj.as_ptr().cast()) };
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}
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}
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impl<T: DriverGpuVm> PartialEq for GpuVmBo<T> {
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#[inline]
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fn eq(&self, other: &Self) -> bool {
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core::ptr::eq(self.as_raw(), other.as_raw())
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}
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}
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impl<T: DriverGpuVm> Eq for GpuVmBo<T> {}
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impl<T: DriverGpuVm> GpuVmBo<T> {
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/// The function pointer for allocating a GpuVmBo stored in the gpuvm vtable.
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///
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/// Allocation is always implemented according to [`Self::vm_bo_alloc`], but it is set to
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/// `None` if the default gpuvm behavior is the same as `vm_bo_alloc`.
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///
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/// This may be `Some` even if `FREE_FN` is `None`, or vice-versa.
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pub(super) const ALLOC_FN: Option<unsafe extern "C" fn() -> *mut bindings::drm_gpuvm_bo> = {
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use core::alloc::Layout;
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let base = Layout::new::<bindings::drm_gpuvm_bo>();
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let rust = Layout::new::<Self>();
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assert!(base.size() <= rust.size());
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if base.size() != rust.size() || base.align() != rust.align() {
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Some(Self::vm_bo_alloc)
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} else {
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// This causes GPUVM to allocate a `GpuVmBo<T>` with `kzalloc(sizeof(drm_gpuvm_bo))`.
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None
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}
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};
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/// The function pointer for freeing a GpuVmBo stored in the gpuvm vtable.
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///
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/// Freeing is always implemented according to [`Self::vm_bo_free`], but it is set to `None` if
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/// the default gpuvm behavior is the same as `vm_bo_free`.
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///
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/// This may be `Some` even if `ALLOC_FN` is `None`, or vice-versa.
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pub(super) const FREE_FN: Option<unsafe extern "C" fn(*mut bindings::drm_gpuvm_bo)> = {
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if core::mem::needs_drop::<Self>() {
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Some(Self::vm_bo_free)
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} else {
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// This causes GPUVM to free a `GpuVmBo<T>` with `kfree`.
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None
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}
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};
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/// Custom function for allocating a `drm_gpuvm_bo`.
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///
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/// # Safety
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///
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/// Always safe to call.
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unsafe extern "C" fn vm_bo_alloc() -> *mut bindings::drm_gpuvm_bo {
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let raw_ptr = KBox::<Self>::new_uninit(GFP_KERNEL | __GFP_ZERO)
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.map(KBox::into_raw)
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.unwrap_or(ptr::null_mut());
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// CAST: `drm_gpuvm_bo` is first field of `Self`.
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raw_ptr.cast()
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}
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/// Custom function for freeing a `drm_gpuvm_bo`.
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///
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/// # Safety
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///
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/// The pointer must have been allocated with [`GpuVmBo::ALLOC_FN`], and must not be used after
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/// this call.
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unsafe extern "C" fn vm_bo_free(ptr: *mut bindings::drm_gpuvm_bo) {
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// CAST: `drm_gpuvm_bo` is first field of `Self`.
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// SAFETY:
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// * The ptr was allocated from kmalloc with the layout of `GpuVmBo<T>`.
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// * `ptr->inner` has no destructor.
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// * `ptr->data` contains a valid `T::VmBoData` that we can drop.
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drop(unsafe { KBox::<Self>::from_raw(ptr.cast()) });
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}
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/// Access this [`GpuVmBo`] from a raw pointer.
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///
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/// # Safety
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///
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/// For the duration of `'a`, the pointer must reference a valid `drm_gpuvm_bo` associated with
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/// a [`GpuVm<T>`]. The BO must also be present in the GEM list.
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#[inline]
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pub(crate) unsafe fn from_raw<'a>(ptr: *mut bindings::drm_gpuvm_bo) -> &'a Self {
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// SAFETY: `drm_gpuvm_bo` is first field and `repr(C)`.
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unsafe { &*ptr.cast() }
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}
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/// Returns a raw pointer to underlying C value.
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#[inline]
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pub fn as_raw(&self) -> *mut bindings::drm_gpuvm_bo {
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self.inner.get()
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}
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/// The [`GpuVm`] that this GEM object is mapped in.
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#[inline]
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pub fn gpuvm(&self) -> &GpuVm<T> {
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// SAFETY: The `obj` pointer is guaranteed to be valid.
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unsafe { GpuVm::<T>::from_raw((*self.inner.get()).vm) }
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}
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/// The [`drm_gem_object`](DriverGpuVm::Object) for these mappings.
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#[inline]
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pub fn obj(&self) -> &T::Object {
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// SAFETY: The `obj` pointer is guaranteed to be valid.
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unsafe { <T::Object as IntoGEMObject>::from_raw((*self.inner.get()).obj) }
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}
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/// The driver data with this buffer object.
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#[inline]
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pub fn data(&self) -> &T::VmBoData {
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&self.data
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}
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pub(super) fn lock_gpuva(&self) -> crate::sync::MutexGuard<'_, ()> {
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// SAFETY: The GEM object is valid.
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let ptr = unsafe { &raw mut (*self.obj().as_raw()).gpuva.lock };
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// SAFETY: The GEM object is valid, so the mutex is properly initialized.
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let mutex = unsafe { crate::sync::Mutex::from_raw(ptr) };
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mutex.lock()
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}
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}
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/// A pre-allocated [`GpuVmBo`] object.
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///
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/// # Invariants
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///
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/// Points at a `drm_gpuvm_bo` that contains a valid `T::VmBoData`, has a refcount of one, and is
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/// absent from any gem, extobj, or evict lists.
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pub(super) struct GpuVmBoAlloc<T: DriverGpuVm>(NonNull<GpuVmBo<T>>);
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impl<T: DriverGpuVm> GpuVmBoAlloc<T> {
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/// Create a new pre-allocated [`GpuVmBo`].
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///
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/// It's intentional that the initializer is infallible because `drm_gpuvm_bo_put` will call
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/// drop on the data, so we don't have a way to free it when the data is missing.
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#[inline]
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pub(super) fn new(
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gpuvm: &GpuVm<T>,
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gem: &T::Object,
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value: impl PinInit<T::VmBoData>,
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) -> Result<GpuVmBoAlloc<T>, AllocError> {
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// CAST: `GpuVmBoAlloc::vm_bo_alloc` ensures that this memory was allocated with the layout
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// of `GpuVmBo<T>`. The type is repr(C), so `container_of` is not required.
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// SAFETY: The provided gpuvm and gem ptrs are valid for the duration of this call.
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let raw_ptr = unsafe {
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bindings::drm_gpuvm_bo_create(gpuvm.as_raw(), gem.as_raw()).cast::<GpuVmBo<T>>()
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};
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let ptr = NonNull::new(raw_ptr).ok_or(AllocError)?;
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// SAFETY: `ptr->data` is a valid pinned location.
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let Ok(()) = unsafe { value.__pinned_init(&raw mut (*raw_ptr).data) };
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// INVARIANTS: We just created the vm_bo so it's absent from lists, and the data is valid
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// as we just initialized it.
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Ok(GpuVmBoAlloc(ptr))
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}
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/// Returns a raw pointer to underlying C value.
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#[inline]
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pub(super) fn as_raw(&self) -> *mut bindings::drm_gpuvm_bo {
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// SAFETY: The pointer references a valid `drm_gpuvm_bo`.
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unsafe { (*self.0.as_ptr()).inner.get() }
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}
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/// Look up whether there is an existing [`GpuVmBo`] for this gem object.
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///
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/// The caller should not hold the GEM mutex or DMA resv lock.
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#[inline]
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pub(super) fn obtain(self) -> ARef<GpuVmBo<T>> {
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let me = ManuallyDrop::new(self);
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// SAFETY: Valid `drm_gpuvm_bo` not already in the lists. We do not access `me` after this
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// call.
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let ptr = unsafe { bindings::drm_gpuvm_bo_obtain_prealloc(me.as_raw()) };
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// SAFETY: `drm_gpuvm_bo_obtain_prealloc` always returns a non-null ptr
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let nonnull = unsafe { NonNull::new_unchecked(ptr.cast()) };
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// INVARIANTS: `drm_gpuvm_bo_obtain_prealloc` ensures that the bo is in the GEM list.
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// SAFETY: We received one refcount from `drm_gpuvm_bo_obtain_prealloc`.
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let ret = unsafe { ARef::<GpuVmBo<T>>::from_raw(nonnull) };
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// Ensure that external objects are in the extobj list.
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//
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// Note that we must call `extobj_add` even if `ptr != me` to avoid a race condition where
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// we could end up using the extobj before the thread with `ptr == me` calls extobj_add.
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if ret.gpuvm().is_extobj(ret.obj()) {
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let resv_lock = ret.gpuvm().raw_resv();
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// TODO: Use a proper lock guard here once a dma_resv lock abstraction exists.
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// SAFETY: The GPUVM is still alive, so its resv lock is too.
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unsafe { bindings::dma_resv_lock(resv_lock, ptr::null_mut()) };
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// SAFETY: We hold the GPUVMs resv lock.
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unsafe { bindings::drm_gpuvm_bo_extobj_add(ptr) };
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// SAFETY: We took the lock, so we can unlock it.
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unsafe { bindings::dma_resv_unlock(resv_lock) };
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}
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ret
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}
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}
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impl<T: DriverGpuVm> Deref for GpuVmBoAlloc<T> {
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type Target = GpuVmBo<T>;
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#[inline]
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fn deref(&self) -> &GpuVmBo<T> {
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// SAFETY: By the type invariants we may deref while `Self` exists.
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unsafe { self.0.as_ref() }
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}
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}
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impl<T: DriverGpuVm> Drop for GpuVmBoAlloc<T> {
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#[inline]
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fn drop(&mut self) {
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// TODO: Call drm_gpuvm_bo_destroy_not_in_lists() directly.
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// SAFETY: It's safe to perform a deferred put in any context.
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unsafe { bindings::drm_gpuvm_bo_put_deferred(self.as_raw()) };
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}
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}
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