mirror of
https://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git
synced 2026-07-23 09:47:31 -04:00
Currently Nova code uses `&'a Bar0` a lot. This is `&'a Mmio`, where `Mmio` represents an owned MMIO region; this type only exists as a target for `Deref` so `Bar` and `IoMem` can share code and should be avoided to be named directly. The upcoming I/O projection series would make `Io` trait much simpler to implement, and thus the owned MMIO type would be removed in favour of direct `Io` implementation on `Bar` and `IoMem`. Add lifetime parameter to `Bar0<'a>` and change it to be alias of `&'a pci::Bar<'a, ..>`. This also prepares Nova core so that when I/O projection series land, this could be changed to using a MMIO view type directly which avoids double indirection. Signed-off-by: Gary Guo <gary@garyguo.net> Acked-by: Alexandre Courbot <acourbot@nvidia.com> Reviewed-by: Eliot Courtney <ecourtney@nvidia.com> Link: https://patch.msgid.link/20260602170416.2268531-1-gary@kernel.org [ Rebase onto latest drm-rust-next (Blackwell enablement). - Danilo ] Signed-off-by: Danilo Krummrich <dakr@kernel.org>
348 lines
10 KiB
Rust
348 lines
10 KiB
Rust
// SPDX-License-Identifier: GPL-2.0
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use core::ops::Range;
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use kernel::{
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device,
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dma::Device,
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fmt,
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io::Io,
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num::Bounded,
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pci,
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prelude::*, //
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};
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use crate::{
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bounded_enum,
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driver::Bar0,
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falcon::{
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gsp::Gsp as GspFalcon,
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sec2::Sec2 as Sec2Falcon,
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Falcon, //
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},
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fb::SysmemFlush,
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gsp::{
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self,
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Gsp, //
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},
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regs,
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};
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mod hal;
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macro_rules! define_chipset {
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({ $($variant:ident = $value:expr),* $(,)* }) =>
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{
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/// Enum representation of the GPU chipset.
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#[derive(fmt::Debug, Copy, Clone, PartialOrd, Ord, PartialEq, Eq)]
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pub(crate) enum Chipset {
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$($variant = $value),*,
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}
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impl Chipset {
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pub(crate) const ALL: &'static [Chipset] = &[
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$( Chipset::$variant, )*
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];
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::kernel::macros::paste!(
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/// Returns the name of this chipset, in lowercase.
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///
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/// # Examples
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///
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/// ```
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/// let chipset = Chipset::GA102;
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/// assert_eq!(chipset.name(), "ga102");
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/// ```
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pub(crate) const fn name(&self) -> &'static str {
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match *self {
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$(
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Chipset::$variant => stringify!([<$variant:lower>]),
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)*
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}
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}
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);
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}
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// TODO[FPRI]: replace with something like derive(FromPrimitive)
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impl TryFrom<u32> for Chipset {
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type Error = kernel::error::Error;
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fn try_from(value: u32) -> Result<Self, Self::Error> {
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match value {
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$( $value => Ok(Chipset::$variant), )*
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_ => Err(ENODEV),
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}
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}
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}
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}
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}
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define_chipset!({
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// Turing
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TU102 = 0x162,
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TU104 = 0x164,
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TU106 = 0x166,
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TU117 = 0x167,
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TU116 = 0x168,
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// Ampere
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GA100 = 0x170,
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GA102 = 0x172,
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GA103 = 0x173,
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GA104 = 0x174,
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GA106 = 0x176,
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GA107 = 0x177,
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// Hopper
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GH100 = 0x180,
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// Ada
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AD102 = 0x192,
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AD103 = 0x193,
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AD104 = 0x194,
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AD106 = 0x196,
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AD107 = 0x197,
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// Blackwell GB10x
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GB100 = 0x1a0,
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GB102 = 0x1a2,
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// Blackwell GB20x
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GB202 = 0x1b2,
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GB203 = 0x1b3,
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GB205 = 0x1b5,
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GB206 = 0x1b6,
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GB207 = 0x1b7,
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});
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impl Chipset {
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pub(crate) const fn arch(self) -> Architecture {
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match self {
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Self::TU102 | Self::TU104 | Self::TU106 | Self::TU117 | Self::TU116 => {
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Architecture::Turing
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}
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Self::GA100 | Self::GA102 | Self::GA103 | Self::GA104 | Self::GA106 | Self::GA107 => {
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Architecture::Ampere
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}
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Self::GH100 => Architecture::Hopper,
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Self::AD102 | Self::AD103 | Self::AD104 | Self::AD106 | Self::AD107 => {
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Architecture::Ada
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}
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Self::GB100 | Self::GB102 => Architecture::BlackwellGB10x,
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Self::GB202 | Self::GB203 | Self::GB205 | Self::GB206 | Self::GB207 => {
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Architecture::BlackwellGB20x
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}
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}
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}
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/// Returns `true` if this chipset requires the PIO-loaded bootloader in order to boot FWSEC.
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///
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/// This includes all chipsets < GA102.
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pub(crate) const fn needs_fwsec_bootloader(self) -> bool {
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matches!(self.arch(), Architecture::Turing) || matches!(self, Self::GA100)
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}
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/// Returns `true` if this chipset boots via FSP (Hopper and later), which requires the FMC
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/// firmware image.
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pub(crate) const fn uses_fsp(self) -> bool {
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matches!(
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self.arch(),
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Architecture::Hopper | Architecture::BlackwellGB10x | Architecture::BlackwellGB20x
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)
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}
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/// Returns the address range of the PCI config mirror space.
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pub(crate) fn pci_config_mirror_range(self) -> Range<u32> {
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hal::gpu_hal(self).pci_config_mirror_range()
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}
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}
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// TODO
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//
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// The resulting strings are used to generate firmware paths, hence the
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// generated strings have to be stable.
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//
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// Hence, replace with something like strum_macros derive(Display).
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//
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// For now, redirect to fmt::Debug for convenience.
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impl fmt::Display for Chipset {
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fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
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write!(f, "{self:?}")
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}
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}
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bounded_enum! {
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/// Enum representation of the GPU generation.
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#[derive(fmt::Debug, Copy, Clone)]
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pub(crate) enum Architecture with TryFrom<Bounded<u32, 6>> {
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Turing = 0x16,
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Ampere = 0x17,
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Hopper = 0x18,
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Ada = 0x19,
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BlackwellGB10x = 0x1a,
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BlackwellGB20x = 0x1b,
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}
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}
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#[derive(Clone, Copy)]
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pub(crate) struct Revision {
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major: Bounded<u8, 4>,
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minor: Bounded<u8, 4>,
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}
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impl From<regs::NV_PMC_BOOT_42> for Revision {
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fn from(boot0: regs::NV_PMC_BOOT_42) -> Self {
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Self {
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major: boot0.major_revision().cast(),
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minor: boot0.minor_revision().cast(),
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}
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}
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}
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impl fmt::Display for Revision {
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fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
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write!(f, "{:x}.{:x}", self.major, self.minor)
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}
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}
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/// Structure holding a basic description of the GPU: `Chipset` and `Revision`.
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#[derive(Clone, Copy)]
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pub(crate) struct Spec {
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chipset: Chipset,
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revision: Revision,
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}
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impl Spec {
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fn new(dev: &device::Device, bar: Bar0<'_>) -> Result<Spec> {
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// Some brief notes about boot0 and boot42, in chronological order:
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//
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// NV04 through NV50:
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//
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// Not supported by Nova. boot0 is necessary and sufficient to identify these GPUs.
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// boot42 may not even exist on some of these GPUs.
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//
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// Fermi through Volta:
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//
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// Not supported by Nova. boot0 is still sufficient to identify these GPUs, but boot42
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// is also guaranteed to be both present and accurate.
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//
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// Turing and later:
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//
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// Supported by Nova. Identified by first checking boot0 to ensure that the GPU is not
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// from an earlier (pre-Fermi) era, and then using boot42 to precisely identify the GPU.
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// Somewhere in the Rubin timeframe, boot0 will no longer have space to add new GPU IDs.
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let boot0 = bar.read(regs::NV_PMC_BOOT_0);
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if boot0.is_older_than_fermi() {
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return Err(ENODEV);
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}
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let boot42 = bar.read(regs::NV_PMC_BOOT_42);
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Spec::try_from(boot42).inspect_err(|_| {
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dev_err!(dev, "Unsupported chipset: {}\n", boot42);
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})
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}
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}
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impl TryFrom<regs::NV_PMC_BOOT_42> for Spec {
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type Error = Error;
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fn try_from(boot42: regs::NV_PMC_BOOT_42) -> Result<Self> {
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Ok(Self {
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chipset: boot42.chipset()?,
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revision: boot42.into(),
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})
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}
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}
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impl fmt::Display for Spec {
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fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
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f.write_fmt(fmt!(
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"Chipset: {}, Architecture: {:?}, Revision: {}",
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self.chipset,
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self.chipset.arch(),
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self.revision
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))
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}
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}
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/// Structure holding the resources required to operate the GPU.
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#[pin_data(PinnedDrop)]
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pub(crate) struct Gpu<'gpu> {
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/// Device owning the GPU.
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device: &'gpu device::Device<device::Bound>,
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spec: Spec,
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/// MMIO mapping of PCI BAR 0.
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bar: Bar0<'gpu>,
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/// System memory page required for flushing all pending GPU-side memory writes done through
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/// PCIE into system memory, via sysmembar (A GPU-initiated HW memory-barrier operation).
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sysmem_flush: SysmemFlush<'gpu>,
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/// GSP falcon instance, used for GSP boot up and cleanup.
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gsp_falcon: Falcon<GspFalcon>,
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/// SEC2 falcon instance, used for GSP boot up and cleanup.
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sec2_falcon: Falcon<Sec2Falcon>,
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/// GSP runtime data. Temporarily an empty placeholder.
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#[pin]
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gsp: Gsp,
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/// GSP unload firmware bundle, if any.
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unload_bundle: Option<gsp::UnloadBundle>,
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}
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impl<'gpu> Gpu<'gpu> {
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pub(crate) fn new(
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pdev: &'gpu pci::Device<device::Core<'_>>,
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bar: Bar0<'gpu>,
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) -> impl PinInit<Self, Error> + 'gpu {
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try_pin_init!(Self {
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device: pdev.as_ref(),
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spec: Spec::new(pdev.as_ref(), bar).inspect(|spec| {
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dev_info!(pdev,"NVIDIA ({})\n", spec);
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})?,
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// We must wait for GFW_BOOT completion before doing any significant setup on the GPU.
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_: {
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let hal = hal::gpu_hal(spec.chipset);
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let dma_mask = hal.dma_mask();
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// SAFETY: `Gpu` owns all DMA allocations for this device, and we are
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// still constructing it, so no concurrent DMA allocations can exist.
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unsafe { pdev.dma_set_mask_and_coherent(dma_mask)? };
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hal.wait_gfw_boot_completion(bar)
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.inspect_err(|_| dev_err!(pdev, "GFW boot did not complete\n"))?;
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},
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sysmem_flush: SysmemFlush::register(pdev.as_ref(), bar, spec.chipset)?,
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gsp_falcon: Falcon::new(
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pdev.as_ref(),
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spec.chipset,
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)
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.inspect(|falcon| falcon.clear_swgen0_intr(bar))?,
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sec2_falcon: Falcon::new(pdev.as_ref(), spec.chipset)?,
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gsp <- Gsp::new(pdev),
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// This member must be initialized last, so the `UnloadBundle` can never be dropped from
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// outside of the constructed `Gpu`, ensuring that the unload sequence is properly run
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// in case of failure.
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unload_bundle: gsp.boot(pdev, bar, spec.chipset, gsp_falcon, sec2_falcon)?,
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bar,
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})
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}
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}
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#[pinned_drop]
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impl PinnedDrop for Gpu<'_> {
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fn drop(self: Pin<&mut Self>) {
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let this = self.project();
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let device = *this.device;
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let bar = *this.bar;
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let bundle = this.unload_bundle.take();
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let _ = this
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.gsp
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.as_ref()
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.get_ref()
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.unload(device, bar, &*this.gsp_falcon, &*this.sec2_falcon, bundle)
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.inspect_err(|e| dev_err!(device, "failed to unload GSP: {:?}\n", e));
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}
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}
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