pinnacle/src/backend/udev.rs

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// SPDX-License-Identifier: GPL-3.0-or-later
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use std::{
collections::{HashMap, HashSet},
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ffi::OsString,
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path::{Path, PathBuf},
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time::Duration,
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};
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use anyhow::Context;
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use pinnacle_api_defs::pinnacle::signal::v0alpha1::OutputConnectResponse;
use smithay::{
backend::{
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allocator::{
dmabuf::{AnyError, Dmabuf, DmabufAllocator},
gbm::{GbmAllocator, GbmBufferFlags, GbmDevice},
vulkan::{ImageUsageFlags, VulkanAllocator},
Allocator, Fourcc,
},
drm::{
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compositor::{DrmCompositor, PrimaryPlaneElement},
CreateDrmNodeError, DrmDevice, DrmDeviceFd, DrmError, DrmEvent, DrmEventMetadata,
DrmNode, NodeType,
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},
egl::{self, EGLDevice, EGLDisplay},
libinput::{LibinputInputBackend, LibinputSessionInterface},
renderer::{
damage::{self},
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element::{texture::TextureBuffer, RenderElement, RenderElementStates},
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gles::{GlesRenderer, GlesTexture},
multigpu::{gbm::GbmGlesBackend, GpuManager, MultiRenderer, MultiTexture},
Bind, ExportMem, ImportDma, ImportEgl, ImportMemWl, Offscreen, Renderer,
},
session::{
self,
libseat::{self, LibSeatSession},
Session,
},
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udev::{self, UdevBackend, UdevEvent},
vulkan::{self, version::Version, PhysicalDevice},
SwapBuffersError,
},
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desktop::{
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utils::{send_frames_surface_tree, OutputPresentationFeedback},
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Space,
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},
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input::pointer::CursorImageStatus,
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output::{Output, PhysicalProperties, Subpixel},
reexports::{
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ash::vk::ExtPhysicalDeviceDrmFn,
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calloop::{EventLoop, Idle, LoopHandle, RegistrationToken},
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drm::{
control::{connector, crtc, ModeTypeFlags},
Device,
},
input::Libinput,
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rustix::fs::OFlags,
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wayland_protocols::wp::{
linux_dmabuf::zv1::server::zwp_linux_dmabuf_feedback_v1,
presentation_time::server::wp_presentation_feedback,
},
wayland_server::{
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backend::GlobalId, protocol::wl_surface::WlSurface, Display, DisplayHandle,
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},
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},
utils::{Clock, DeviceFd, Logical, Monotonic, Point, Transform},
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wayland::dmabuf::{DmabufFeedback, DmabufFeedbackBuilder, DmabufGlobal, DmabufState},
};
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use smithay_drm_extras::{
drm_scanner::{DrmScanEvent, DrmScanner},
edid::EdidInfo,
};
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use crate::{
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backend::Backend,
config::ConnectorSavedState,
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output::OutputName,
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render::{pointer::PointerElement, take_presentation_feedback},
state::{State, SurfaceDmabufFeedback, WithState},
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window::WindowElement,
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};
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use super::BackendData;
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const SUPPORTED_FORMATS: &[Fourcc] = &[
Fourcc::Abgr2101010,
Fourcc::Argb2101010,
Fourcc::Abgr8888,
Fourcc::Argb8888,
];
const SUPPORTED_FORMATS_8BIT_ONLY: &[Fourcc] = &[Fourcc::Abgr8888, Fourcc::Argb8888];
/// A [`MultiRenderer`] that uses the [`GbmGlesBackend`].
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type UdevRenderer<'a> = MultiRenderer<
'a,
'a,
GbmGlesBackend<GlesRenderer, DrmDeviceFd>,
GbmGlesBackend<GlesRenderer, DrmDeviceFd>,
>;
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/// Udev state attached to each [`Output`].
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#[derive(Debug, PartialEq)]
struct UdevOutputData {
/// The GPU node
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device_id: DrmNode,
/// The [Crtc][crtc::Handle] the output is pushing to
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crtc: crtc::Handle,
}
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// TODO: document desperately
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pub struct Udev {
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pub session: LibSeatSession,
display_handle: DisplayHandle,
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pub(super) dmabuf_state: Option<(DmabufState, DmabufGlobal)>,
pub(super) primary_gpu: DrmNode,
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allocator: Option<Box<dyn Allocator<Buffer = Dmabuf, Error = AnyError>>>,
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pub(super) gpu_manager: GpuManager<GbmGlesBackend<GlesRenderer, DrmDeviceFd>>,
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backends: HashMap<DrmNode, UdevBackendData>,
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pointer_images: Vec<(xcursor::parser::Image, TextureBuffer<MultiTexture>)>,
pointer_element: PointerElement<MultiTexture>,
pointer_image: crate::cursor::Cursor,
}
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impl Backend {
fn udev(&self) -> &Udev {
let Backend::Udev(udev) = self else { unreachable!() };
udev
}
fn udev_mut(&mut self) -> &mut Udev {
let Backend::Udev(udev) = self else { unreachable!() };
udev
}
}
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impl Udev {
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/// Schedule a new render that will cause the compositor to redraw everything.
pub fn schedule_render(&mut self, loop_handle: &LoopHandle<State>, output: &Output) {
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// tracing::debug!("schedule_render on output {}", output.name());
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let Some(surface) = render_surface_for_output(output, &mut self.backends) else {
return;
};
match &surface.render_state {
RenderState::Idle => {
let output = output.clone();
let token = loop_handle.insert_idle(move |state| {
state.render_surface(&output);
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});
surface.render_state = RenderState::Scheduled(token);
}
RenderState::Scheduled(_) => (),
RenderState::WaitingForVblank { dirty: _ } => {
surface.render_state = RenderState::WaitingForVblank { dirty: true }
}
}
}
}
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impl State {
/// Switch the tty.
///
/// This will first clear the overlay plane to prevent any lingering artifacts,
/// then switch the vt.
///
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/// Does nothing when called on the winit backend.
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pub fn switch_vt(&mut self, vt: i32) {
match &mut self.backend {
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Backend::Winit(_) => (),
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Backend::Udev(udev) => {
for backend in udev.backends.values_mut() {
for surface in backend.surfaces.values_mut() {
// Clear the overlay planes on tty switch.
//
// On my machine, switching a tty would leave the topmost window on the
// screen. Smithay will render the topmost window on the overlay plane,
// so we clear it here.
let planes = surface.compositor.surface().planes().clone();
tracing::debug!("Clearing overlay planes");
for overlay_plane in planes.overlay {
if let Err(err) = surface
.compositor
.surface()
.clear_plane(overlay_plane.handle)
{
tracing::warn!("Failed to clear overlay planes: {err}");
}
}
}
}
// Wait for the clear to commit before switching
self.schedule(
|state| {
let udev = state.backend.udev();
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!udev
.backends
.values()
.flat_map(|backend| backend.surfaces.values())
.map(|surface| surface.compositor.surface())
.any(|drm_surf| drm_surf.commit_pending())
},
move |state| {
let udev = state.backend.udev_mut();
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if let Err(err) = udev.session.change_vt(vt) {
tracing::error!("Failed to switch to vt {vt}: {err}");
}
},
);
}
}
}
}
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impl BackendData for Udev {
fn seat_name(&self) -> String {
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self.session.seat()
}
fn reset_buffers(&mut self, output: &Output) {
if let Some(id) = output.user_data().get::<UdevOutputData>() {
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if let Some(gpu) = self.backends.get_mut(&id.device_id) {
if let Some(surface) = gpu.surfaces.get_mut(&id.crtc) {
surface.compositor.reset_buffers();
}
}
}
}
fn early_import(&mut self, surface: &WlSurface) {
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if let Err(err) = self.gpu_manager.early_import(self.primary_gpu, surface) {
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tracing::warn!("early buffer import failed: {}", err);
}
}
}
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pub fn run_udev(no_config: bool, config_dir: Option<PathBuf>) -> anyhow::Result<()> {
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let mut event_loop = EventLoop::try_new()?;
let display = Display::new()?;
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// Initialize session
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let (session, notifier) = LibSeatSession::new()?;
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// Get the primary gpu
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let primary_gpu = udev::primary_gpu(session.seat())
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.context("unable to get primary gpu path")?
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.and_then(|x| {
DrmNode::from_path(x)
.ok()?
.node_with_type(NodeType::Render)?
.ok()
})
.unwrap_or_else(|| {
udev::all_gpus(session.seat())
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.expect("failed to get gpu paths")
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.into_iter()
.find_map(|x| DrmNode::from_path(x).ok())
.expect("No GPU!")
});
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tracing::info!("Using {} as primary gpu.", primary_gpu);
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let gpu_manager = GpuManager::new(GbmGlesBackend::default())?;
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let data = Udev {
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display_handle: display.handle(),
dmabuf_state: None,
session,
primary_gpu,
gpu_manager,
allocator: None,
backends: HashMap::new(),
pointer_image: crate::cursor::Cursor::load(),
pointer_images: Vec::new(),
pointer_element: PointerElement::default(),
};
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let display_handle = display.handle();
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let mut state = State::init(
Backend::Udev(data),
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display,
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event_loop.get_signal(),
event_loop.handle(),
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no_config,
config_dir,
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)?;
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// Initialize the udev backend
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let udev_backend = UdevBackend::new(state.seat.name())?;
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// Create DrmNodes from already connected GPUs
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for (device_id, path) in udev_backend.device_list() {
if let Err(err) = DrmNode::from_dev_id(device_id)
.map_err(DeviceAddError::DrmNode)
.and_then(|node| state.device_added(node, path))
{
tracing::error!("Skipping device {device_id}: {err}");
}
}
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let udev = state.backend.udev_mut();
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event_loop
.handle()
.insert_source(udev_backend, move |event, _, state| match event {
// GPU connected
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UdevEvent::Added { device_id, path } => {
if let Err(err) = DrmNode::from_dev_id(device_id)
.map_err(DeviceAddError::DrmNode)
.and_then(|node| state.device_added(node, &path))
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{
tracing::error!("Skipping device {device_id}: {err}");
}
}
UdevEvent::Changed { device_id } => {
if let Ok(node) = DrmNode::from_dev_id(device_id) {
state.device_changed(node)
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}
}
// GPU disconnected
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UdevEvent::Removed { device_id } => {
if let Ok(node) = DrmNode::from_dev_id(device_id) {
state.device_removed(node)
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}
}
})
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.expect("failed to insert udev_backend into event loop");
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// Initialize libinput backend
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let mut libinput_context = Libinput::new_with_udev::<LibinputSessionInterface<LibSeatSession>>(
udev.session.clone().into(),
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);
libinput_context
.udev_assign_seat(state.seat.name())
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.expect("failed to assign seat to libinput");
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let libinput_backend = LibinputInputBackend::new(libinput_context.clone());
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// Bind all our objects that get driven by the event loop
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let insert_ret = event_loop
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.handle()
.insert_source(libinput_backend, move |event, _, state| {
state.apply_libinput_settings(&event);
state.process_input_event(event);
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});
if let Err(err) = insert_ret {
anyhow::bail!("Failed to insert libinput_backend into event loop: {err}");
}
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event_loop
.handle()
.insert_source(notifier, move |event, _, state| {
let udev = state.backend.udev_mut();
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match event {
session::Event::PauseSession => {
libinput_context.suspend();
tracing::info!("pausing session");
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for backend in udev.backends.values_mut() {
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backend.drm.pause();
}
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}
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session::Event::ActivateSession => {
tracing::info!("resuming session");
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if let Err(err) = libinput_context.resume() {
tracing::error!("Failed to resume libinput context: {:?}", err);
}
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for backend in udev.backends.values_mut() {
// TODO: this is false because i'm too lazy to remove the code directly
// | below it
backend.drm.activate(false).expect("failed to activate drm");
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for surface in backend.surfaces.values_mut() {
if let Err(err) = surface.compositor.surface().reset_state() {
tracing::warn!("Failed to reset drm surface state: {}", err);
}
// reset the buffers after resume to trigger a full redraw
// this is important after a vt switch as the primary plane
// has no content and damage tracking may prevent a redraw
// otherwise
surface.compositor.reset_buffers();
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}
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}
let connectors = udev
.backends
.iter()
.map(|(node, backend)| {
let connectors = backend
.drm_scanner
.crtcs()
.map(|(info, crtc)| (info.clone(), crtc))
.collect::<Vec<_>>();
(*node, connectors)
})
.collect::<Vec<_>>();
for (node, connectors) in connectors {
for (connector, crtc) in connectors {
state.connector_disconnected(node, connector.clone(), crtc);
state.connector_connected(node, connector, crtc);
}
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}
for output in state.space.outputs().cloned().collect::<Vec<_>>() {
state.schedule_render(&output);
}
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}
}
})
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.expect("failed to insert libinput notifier into event loop");
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state.shm_state.update_formats(
udev.gpu_manager
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.single_renderer(&primary_gpu)?
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.shm_formats(),
);
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// Create the Vulkan allocator
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if let Ok(instance) = vulkan::Instance::new(Version::VERSION_1_2, None) {
if let Some(physical_device) =
PhysicalDevice::enumerate(&instance)
.ok()
.and_then(|devices| {
devices
.filter(|phd| phd.has_device_extension(ExtPhysicalDeviceDrmFn::name()))
.find(|phd| {
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phd.primary_node()
.is_ok_and(|node| node == Some(primary_gpu))
|| phd
.render_node()
.is_ok_and(|node| node == Some(primary_gpu))
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})
})
{
match VulkanAllocator::new(
&physical_device,
ImageUsageFlags::COLOR_ATTACHMENT | ImageUsageFlags::SAMPLED,
) {
Ok(allocator) => {
udev.allocator = Some(Box::new(DmabufAllocator(allocator))
as Box<dyn Allocator<Buffer = Dmabuf, Error = AnyError>>);
}
Err(err) => {
tracing::warn!("Failed to create vulkan allocator: {}", err);
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}
}
}
}
if udev.allocator.is_none() {
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tracing::info!("No vulkan allocator found, using GBM.");
let gbm = udev
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.backends
.get(&primary_gpu)
// If the primary_gpu failed to initialize, we likely have a kmsro device
.or_else(|| udev.backends.values().next())
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// Don't fail, if there is no allocator. There is a chance, that this a single gpu system and we don't need one.
.map(|backend| backend.gbm.clone());
udev.allocator = gbm.map(|gbm| {
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Box::new(DmabufAllocator(GbmAllocator::new(
gbm,
GbmBufferFlags::RENDERING,
))) as Box<_>
});
}
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let mut renderer = udev.gpu_manager.single_renderer(&primary_gpu)?;
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tracing::info!(
?primary_gpu,
"Trying to initialize EGL Hardware Acceleration",
);
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match renderer.bind_wl_display(&display_handle) {
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Ok(_) => tracing::info!("EGL hardware-acceleration enabled"),
Err(err) => tracing::error!(?err, "Failed to initialize EGL hardware-acceleration"),
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}
// init dmabuf support with format list from our primary gpu
let dmabuf_formats = renderer.dmabuf_formats().collect::<Vec<_>>();
let default_feedback = DmabufFeedbackBuilder::new(primary_gpu.dev_id(), dmabuf_formats)
.build()
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.expect("failed to create dmabuf feedback");
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let mut dmabuf_state = DmabufState::new();
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let global = dmabuf_state
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.create_global_with_default_feedback::<State>(&display_handle, &default_feedback);
udev.dmabuf_state = Some((dmabuf_state, global));
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let gpu_manager = &mut udev.gpu_manager;
udev.backends.values_mut().for_each(|backend_data| {
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// Update the per drm surface dmabuf feedback
backend_data.surfaces.values_mut().for_each(|surface_data| {
surface_data.dmabuf_feedback = surface_data.dmabuf_feedback.take().or_else(|| {
get_surface_dmabuf_feedback(
primary_gpu,
surface_data.render_node,
gpu_manager,
&surface_data.compositor,
)
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});
});
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});
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if let Err(err) = state.xwayland.start(
state.loop_handle.clone(),
None,
std::iter::empty::<(OsString, OsString)>(),
true,
|_| {},
) {
tracing::error!("Failed to start XWayland: {err}");
}
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event_loop.run(
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Some(Duration::from_micros(((1.0 / 144.0) * 1000000.0) as u64)),
&mut state,
|state| {
state.fixup_focus();
state.space.refresh();
state.popup_manager.cleanup();
state
.display_handle
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.flush_clients()
.expect("failed to flush_clients");
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},
)?;
Ok(())
}
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// TODO: document desperately
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struct UdevBackendData {
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surfaces: HashMap<crtc::Handle, RenderSurface>,
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gbm: GbmDevice<DrmDeviceFd>,
drm: DrmDevice,
drm_scanner: DrmScanner,
render_node: DrmNode,
registration_token: RegistrationToken,
}
#[derive(Debug, thiserror::Error)]
enum DeviceAddError {
#[error("Failed to open device using libseat: {0}")]
DeviceOpen(libseat::Error),
#[error("Failed to initialize drm device: {0}")]
DrmDevice(DrmError),
#[error("Failed to initialize gbm device: {0}")]
GbmDevice(std::io::Error),
#[error("Failed to access drm node: {0}")]
DrmNode(CreateDrmNodeError),
#[error("Failed to add device to GpuManager: {0}")]
AddNode(egl::Error),
}
fn get_surface_dmabuf_feedback(
primary_gpu: DrmNode,
render_node: DrmNode,
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gpu_manager: &mut GpuManager<GbmGlesBackend<GlesRenderer, DrmDeviceFd>>,
composition: &GbmDrmCompositor,
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) -> Option<DrmSurfaceDmabufFeedback> {
let primary_formats = gpu_manager
.single_renderer(&primary_gpu)
.ok()?
.dmabuf_formats()
.collect::<HashSet<_>>();
let render_formats = gpu_manager
.single_renderer(&render_node)
.ok()?
.dmabuf_formats()
.collect::<HashSet<_>>();
let all_render_formats = primary_formats
.iter()
.chain(render_formats.iter())
.copied()
.collect::<HashSet<_>>();
let surface = composition.surface();
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let planes = surface.planes().clone();
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// We limit the scan-out trache to formats we can also render from
// so that there is always a fallback render path available in case
// the supplied buffer can not be scanned out directly
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let planes_formats = planes
.primary
.formats
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.into_iter()
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.chain(planes.overlay.into_iter().flat_map(|p| p.formats))
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.collect::<HashSet<_>>()
.intersection(&all_render_formats)
.copied()
.collect::<Vec<_>>();
let builder = DmabufFeedbackBuilder::new(primary_gpu.dev_id(), primary_formats);
let render_feedback = builder
.clone()
.add_preference_tranche(render_node.dev_id(), None, render_formats.clone())
.build()
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.ok()?; // INFO: this is an unwrap in Anvil, does it matter?
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let scanout_feedback = builder
.add_preference_tranche(
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surface.device_fd().dev_id().ok()?, // INFO: this is an unwrap in Anvil, does it matter?
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Some(zwp_linux_dmabuf_feedback_v1::TrancheFlags::Scanout),
planes_formats,
)
.add_preference_tranche(render_node.dev_id(), None, render_formats)
.build()
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.ok()?; // INFO: this is an unwrap in Anvil, does it matter?
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Some(DrmSurfaceDmabufFeedback {
render_feedback,
scanout_feedback,
})
}
struct DrmSurfaceDmabufFeedback {
render_feedback: DmabufFeedback,
scanout_feedback: DmabufFeedback,
}
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/// The state of a [`RenderSurface`].
#[derive(Debug)]
enum RenderState {
/// No render is scheduled.
Idle,
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// TODO: remove the token on tty switch or output unplug
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/// A render has been queued.
Scheduled(
/// The idle token from a render being scheduled.
/// This is used to cancel renders if, for example,
/// the output being rendered is removed.
Idle<'static>,
),
/// A frame was rendered and scheduled and we are waiting for vblank.
WaitingForVblank {
/// A render was scheduled while waiting for vblank.
/// In this case, another render will be scheduled once vblank happens.
dirty: bool,
},
}
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/// Render surface for an output.
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struct RenderSurface {
/// The output global id.
global: Option<GlobalId>,
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/// A display handle used to remove the global on drop.
display_handle: DisplayHandle,
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/// The node from `connector_connected`.
device_id: DrmNode,
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/// The node rendering to the screen? idk
///
/// If this is equal to the primary gpu node then it does the rendering operations.
/// If it's not it is the node the composited buffer ends up on.
render_node: DrmNode,
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/// The thing rendering elements and queueing frames.
compositor: GbmDrmCompositor,
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dmabuf_feedback: Option<DrmSurfaceDmabufFeedback>,
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render_state: RenderState,
}
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impl Drop for RenderSurface {
// Stop advertising this output to clients on drop.
fn drop(&mut self) {
if let Some(global) = self.global.take() {
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self.display_handle.remove_global::<State>(global);
}
}
}
type GbmDrmCompositor = DrmCompositor<
GbmAllocator<DrmDeviceFd>,
GbmDevice<DrmDeviceFd>,
Option<OutputPresentationFeedback>,
DrmDeviceFd,
>;
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/// The result of a frame render from `render_frame`.
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struct SurfaceCompositorRenderResult {
rendered: bool,
states: RenderElementStates,
}
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/// Render a frame with the given elements.
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///
/// This frame needs to be queued for scanout afterwards.
fn render_frame<R, E, Target>(
compositor: &mut GbmDrmCompositor,
renderer: &mut R,
elements: &[E],
clear_color: [f32; 4],
) -> Result<SurfaceCompositorRenderResult, SwapBuffersError>
where
R: Renderer + Bind<Dmabuf> + Bind<Target> + Offscreen<Target> + ExportMem,
<R as Renderer>::TextureId: 'static,
<R as Renderer>::Error: Into<SwapBuffersError>,
E: RenderElement<R>,
{
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use smithay::backend::drm::compositor::RenderFrameError;
compositor
.render_frame(renderer, elements, clear_color)
.map(|render_frame_result| {
if let PrimaryPlaneElement::Swapchain(element) = render_frame_result.primary_element {
element.sync.wait();
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}
SurfaceCompositorRenderResult {
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rendered: !render_frame_result.is_empty,
states: render_frame_result.states,
}
})
.map_err(|err| match err {
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RenderFrameError::PrepareFrame(err) => err.into(),
RenderFrameError::RenderFrame(damage::Error::Rendering(err)) => err.into(),
_ => unreachable!(),
})
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}
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impl State {
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/// A GPU was plugged in.
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fn device_added(&mut self, node: DrmNode, path: &Path) -> Result<(), DeviceAddError> {
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let udev = self.backend.udev_mut();
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// Try to open the device
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let fd = udev
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.session
.open(
path,
OFlags::RDWR | OFlags::CLOEXEC | OFlags::NOCTTY | OFlags::NONBLOCK,
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)
.map_err(DeviceAddError::DeviceOpen)?;
let fd = DrmDeviceFd::new(DeviceFd::from(fd));
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let (drm, notifier) =
DrmDevice::new(fd.clone(), true).map_err(DeviceAddError::DrmDevice)?;
let gbm = GbmDevice::new(fd).map_err(DeviceAddError::GbmDevice)?;
let registration_token = self
.loop_handle
.insert_source(notifier, move |event, metadata, state| match event {
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DrmEvent::VBlank(crtc) => {
// { TODO:
// let udev = data.state.backend.udev_mut();
// let then = udev.last_vblank_time;
// let now = Instant::now();
// let diff = now.duration_since(then);
// // tracing::debug!(time = diff.as_secs_f64(), "Time since last vblank");
// udev.last_vblank_time = now;
// }
state.on_vblank(node, crtc, metadata);
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}
DrmEvent::Error(error) => {
tracing::error!("{:?}", error);
}
})
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.expect("failed to insert drm notifier into event loop");
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// SAFETY: no clue lol just copied this from anvil
let render_node = EGLDevice::device_for_display(&unsafe {
EGLDisplay::new(gbm.clone()).expect("failed to create EGLDisplay")
})
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.ok()
.and_then(|x| x.try_get_render_node().ok().flatten())
.unwrap_or(node);
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udev.gpu_manager
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.as_mut()
.add_node(render_node, gbm.clone())
.map_err(DeviceAddError::AddNode)?;
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udev.backends.insert(
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node,
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UdevBackendData {
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registration_token,
gbm,
drm,
drm_scanner: DrmScanner::new(),
render_node,
surfaces: HashMap::new(),
},
);
self.device_changed(node);
Ok(())
}
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/// A display was plugged in.
// TODO: better edid info from cosmic-comp
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fn connector_connected(
&mut self,
node: DrmNode,
connector: connector::Info,
crtc: crtc::Handle,
) {
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let udev = self.backend.udev_mut();
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let device = if let Some(device) = udev.backends.get_mut(&node) {
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device
} else {
return;
};
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let mut renderer = udev
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.gpu_manager
.single_renderer(&device.render_node)
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.expect("failed to get primary gpu MultiRenderer");
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let render_formats = renderer
.as_mut()
.egl_context()
.dmabuf_render_formats()
.clone();
tracing::info!(
?crtc,
"Trying to setup connector {:?}-{}",
connector.interface(),
connector.interface_id(),
);
let mode_id = connector
.modes()
.iter()
.position(|mode| mode.mode_type().contains(ModeTypeFlags::PREFERRED))
.unwrap_or(0);
let drm_mode = connector.modes()[mode_id];
let wl_mode = smithay::output::Mode::from(drm_mode);
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tracing::debug!(clock = ?drm_mode.clock(), hsync = ?drm_mode.hsync(), vsync = ?drm_mode.vsync());
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let surface = match device
.drm
.create_surface(crtc, drm_mode, &[connector.handle()])
{
Ok(surface) => surface,
Err(err) => {
tracing::warn!("Failed to create drm surface: {}", err);
return;
}
};
let output_name = format!(
"{}-{}",
connector.interface().as_str(),
connector.interface_id()
);
let (make, model) = EdidInfo::for_connector(&device.drm, connector.handle())
.map(|info| (info.manufacturer, info.model))
.unwrap_or_else(|| ("Unknown".into(), "Unknown".into()));
let (phys_w, phys_h) = connector.size().unwrap_or((0, 0));
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if self.space.outputs().any(|op| {
op.user_data()
.get::<UdevOutputData>()
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.is_some_and(|op_id| op_id.crtc == crtc)
}) {
return;
}
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let output = Output::new(
output_name,
PhysicalProperties {
size: (phys_w as i32, phys_h as i32).into(),
subpixel: Subpixel::Unknown,
make,
model,
},
);
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let global = output.create_global::<State>(&udev.display_handle);
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self.output_focus_stack.set_focus(output.clone());
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let x = self.space.outputs().fold(0, |acc, o| {
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let Some(geo) = self.space.output_geometry(o) else {
unreachable!()
};
acc + geo.size.w
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});
let position = (x, 0).into();
output.set_preferred(wl_mode);
output.change_current_state(Some(wl_mode), None, None, Some(position));
self.space.map_output(&output, position);
output.user_data().insert_if_missing(|| UdevOutputData {
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crtc,
device_id: node,
});
let allocator = GbmAllocator::new(
device.gbm.clone(),
GbmBufferFlags::RENDERING | GbmBufferFlags::SCANOUT,
);
let color_formats = if std::env::var("ANVIL_DISABLE_10BIT").is_ok() {
SUPPORTED_FORMATS_8BIT_ONLY
} else {
SUPPORTED_FORMATS
};
let compositor = {
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let driver = match device.drm.get_driver() {
Ok(driver) => driver,
Err(err) => {
tracing::warn!("Failed to query drm driver: {}", err);
return;
}
};
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let mut planes = surface.planes().clone();
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// Using an overlay plane on a nvidia card breaks
if driver
.name()
.to_string_lossy()
.to_lowercase()
.contains("nvidia")
|| driver
.description()
.to_string_lossy()
.to_lowercase()
.contains("nvidia")
{
planes.overlay = vec![];
}
match DrmCompositor::new(
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&output,
surface,
Some(planes),
allocator,
device.gbm.clone(),
color_formats,
render_formats,
device.drm.cursor_size(),
Some(device.gbm.clone()),
) {
Ok(compositor) => compositor,
Err(err) => {
tracing::warn!("Failed to create drm compositor: {}", err);
return;
}
}
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};
let dmabuf_feedback = get_surface_dmabuf_feedback(
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udev.primary_gpu,
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device.render_node,
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&mut udev.gpu_manager,
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&compositor,
);
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let surface = RenderSurface {
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display_handle: udev.display_handle.clone(),
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device_id: node,
render_node: device.render_node,
global: Some(global),
compositor,
dmabuf_feedback,
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render_state: RenderState::Idle,
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};
device.surfaces.insert(crtc, surface);
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// If there is saved connector state, the connector was previously plugged in.
// In this case, restore its tags and location.
// TODO: instead of checking the connector, check the monitor's edid info instead
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if let Some(saved_state) = self
.config
.connector_saved_states
.get(&OutputName(output.name()))
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{
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let ConnectorSavedState { loc, tags } = saved_state;
output.change_current_state(None, None, None, Some(*loc));
self.space.map_output(&output, *loc);
output.with_state(|state| state.tags = tags.clone());
} else {
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self.signal_state.output_connect.signal(|buffer| {
buffer.push_back(OutputConnectResponse {
output_name: Some(output.name()),
})
});
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}
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}
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/// A display was unplugged.
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fn connector_disconnected(
&mut self,
node: DrmNode,
_connector: connector::Info,
crtc: crtc::Handle,
) {
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tracing::debug!(?crtc, "connector_disconnected");
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let udev = self.backend.udev_mut();
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let device = if let Some(device) = udev.backends.get_mut(&node) {
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device
} else {
return;
};
device.surfaces.remove(&crtc);
let output = self
.space
.outputs()
.find(|o| {
o.user_data()
.get::<UdevOutputData>()
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.map(|id| id.device_id == node && id.crtc == crtc)
.unwrap_or(false)
})
.cloned();
if let Some(output) = output {
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// Save this output's state. It will be restored if the monitor gets replugged.
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self.config.connector_saved_states.insert(
OutputName(output.name()),
ConnectorSavedState {
loc: output.current_location(),
tags: output.with_state(|state| state.tags.clone()),
},
);
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self.space.unmap_output(&output);
}
}
fn device_changed(&mut self, node: DrmNode) {
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let udev = self.backend.udev_mut();
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let device = if let Some(device) = udev.backends.get_mut(&node) {
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device
} else {
return;
};
for event in device.drm_scanner.scan_connectors(&device.drm) {
match event {
DrmScanEvent::Connected {
connector,
crtc: Some(crtc),
} => {
self.connector_connected(node, connector, crtc);
}
DrmScanEvent::Disconnected {
connector,
crtc: Some(crtc),
} => {
self.connector_disconnected(node, connector, crtc);
}
_ => {}
}
}
}
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/// A GPU was unplugged.
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fn device_removed(&mut self, node: DrmNode) {
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let crtcs = {
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let udev = self.backend.udev();
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let Some(device) = udev.backends.get(&node) else {
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return;
};
device
.drm_scanner
.crtcs()
.map(|(info, crtc)| (info.clone(), crtc))
.collect::<Vec<_>>()
};
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for (connector, crtc) in crtcs {
self.connector_disconnected(node, connector, crtc);
}
tracing::debug!("Surfaces dropped");
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let udev = self.backend.udev_mut();
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// drop the backends on this side
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if let Some(backend_data) = udev.backends.remove(&node) {
udev.gpu_manager
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.as_mut()
.remove_node(&backend_data.render_node);
self.loop_handle.remove(backend_data.registration_token);
tracing::debug!("Dropping device");
}
}
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/// Mark [`OutputPresentationFeedback`]s as presented and schedule a new render on idle.
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fn on_vblank(
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&mut self,
dev_id: DrmNode,
crtc: crtc::Handle,
metadata: &mut Option<DrmEventMetadata>,
) {
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let udev = self.backend.udev_mut();
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let Some(surface) = udev
.backends
.get_mut(&dev_id)
.and_then(|device| device.surfaces.get_mut(&crtc))
else {
return;
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};
let output = if let Some(output) = self.space.outputs().find(|o| {
let udev_op_data = o.user_data().get::<UdevOutputData>();
udev_op_data
.is_some_and(|data| data.device_id == surface.device_id && data.crtc == crtc)
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}) {
output.clone()
} else {
// somehow we got called with an invalid output
return;
};
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match surface
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.compositor
.frame_submitted()
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.map_err(SwapBuffersError::from)
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{
Ok(user_data) => {
if let Some(mut feedback) = user_data.flatten() {
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let tp = metadata.as_ref().and_then(|metadata| match metadata.time {
smithay::backend::drm::DrmEventTime::Monotonic(tp) => Some(tp),
smithay::backend::drm::DrmEventTime::Realtime(_) => None,
});
let seq = metadata
.as_ref()
.map(|metadata| metadata.sequence)
.unwrap_or(0);
let (clock, flags) = if let Some(tp) = tp {
(
tp.into(),
wp_presentation_feedback::Kind::Vsync
| wp_presentation_feedback::Kind::HwClock
| wp_presentation_feedback::Kind::HwCompletion,
)
} else {
(self.clock.now(), wp_presentation_feedback::Kind::Vsync)
};
feedback.presented(
clock,
output
.current_mode()
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.map(|mode| Duration::from_secs_f64(1000f64 / mode.refresh as f64))
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.unwrap_or_default(),
seq as u64,
flags,
);
}
}
Err(err) => {
tracing::warn!("Error during rendering: {:?}", err);
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if let SwapBuffersError::ContextLost(err) = err {
panic!("Rendering loop lost: {}", err)
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}
}
};
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let RenderState::WaitingForVblank { dirty } = surface.render_state else {
unreachable!();
};
surface.render_state = RenderState::Idle;
if dirty {
self.schedule_render(&output);
} else {
for window in self.windows.iter() {
window.send_frame(&output, self.clock.now(), Some(Duration::ZERO), |_, _| {
Some(output.clone())
});
}
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}
}
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/// Render to the [`RenderSurface`] associated with the given `output`.
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#[tracing::instrument(level = "debug", skip(self), fields(output = output.name()))]
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fn render_surface(&mut self, output: &Output) {
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let udev = self.backend.udev_mut();
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let Some(surface) = render_surface_for_output(output, &mut udev.backends) else {
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return;
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};
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assert!(matches!(surface.render_state, RenderState::Scheduled(_)));
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// TODO get scale from the rendersurface when supporting HiDPI
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let frame = udev
.pointer_image
.get_image(1 /*scale*/, self.clock.now().into());
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let render_node = surface.render_node;
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let primary_gpu = udev.primary_gpu;
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let mut renderer = if primary_gpu == render_node {
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udev.gpu_manager.single_renderer(&render_node)
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} else {
let format = surface.compositor.format();
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udev.gpu_manager
.renderer(&primary_gpu, &render_node, format)
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}
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.expect("failed to create MultiRenderer");
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let pointer_images = &mut udev.pointer_images;
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let pointer_image = pointer_images
.iter()
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.find_map(
|(image, texture)| {
if image == &frame {
Some(texture.clone())
} else {
None
}
},
)
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.unwrap_or_else(|| {
let texture = TextureBuffer::from_memory(
&mut renderer,
&frame.pixels_rgba,
Fourcc::Abgr8888,
(frame.width as i32, frame.height as i32),
false,
1,
Transform::Normal,
None,
)
.expect("Failed to import cursor bitmap");
pointer_images.push((frame, texture.clone()));
texture
});
let windows = self.space.elements().cloned().collect::<Vec<_>>();
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let result = render_surface(
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surface,
&mut renderer,
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output,
&self.space,
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&windows,
self.dnd_icon.as_ref(),
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&mut self.cursor_status,
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&pointer_image,
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&mut udev.pointer_element,
self.pointer_location,
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&self.clock,
);
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match result {
Ok(true) => surface.render_state = RenderState::WaitingForVblank { dirty: false },
Ok(false) | Err(_) => surface.render_state = RenderState::Idle,
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}
}
}
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fn render_surface_for_output<'a>(
output: &Output,
backends: &'a mut HashMap<DrmNode, UdevBackendData>,
) -> Option<&'a mut RenderSurface> {
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let UdevOutputData { device_id, crtc } = output.user_data().get()?;
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backends
.get_mut(device_id)
.and_then(|device| device.surfaces.get_mut(crtc))
}
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/// Render windows, layers, and everything else needed to the given [`RenderSurface`].
/// Also queues the frame for scanout.
///
/// `windows` should be provided in the order of z-rendering, top to bottom.
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#[allow(clippy::too_many_arguments)]
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fn render_surface(
surface: &mut RenderSurface,
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renderer: &mut UdevRenderer<'_>,
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output: &Output,
space: &Space<WindowElement>,
windows: &[WindowElement],
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dnd_icon: Option<&WlSurface>,
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cursor_status: &mut CursorImageStatus,
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pointer_image: &TextureBuffer<MultiTexture>,
pointer_element: &mut PointerElement<MultiTexture>,
pointer_location: Point<f64, Logical>,
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clock: &Clock<Monotonic>,
) -> Result<bool, SwapBuffersError> {
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let output_render_elements = crate::render::generate_render_elements(
output,
renderer,
space,
windows,
pointer_location,
cursor_status,
dnd_icon,
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// input_method,
pointer_element,
Some(pointer_image),
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);
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let res = render_frame::<_, _, GlesTexture>(
&mut surface.compositor,
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renderer,
&output_render_elements,
[0.6, 0.6, 0.6, 1.0],
)?;
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let time = clock.now();
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if let CursorImageStatus::Surface(surf) = cursor_status {
send_frames_surface_tree(surf, output, time, Some(Duration::ZERO), |_, _| None);
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}
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super::post_repaint(
output,
&res.states,
space,
surface
.dmabuf_feedback
.as_ref()
.map(|feedback| SurfaceDmabufFeedback {
render_feedback: &feedback.render_feedback,
scanout_feedback: &feedback.scanout_feedback,
}),
time.into(),
);
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if res.rendered {
let output_presentation_feedback = take_presentation_feedback(output, space, &res.states);
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surface
.compositor
.queue_frame(Some(output_presentation_feedback))
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.map_err(SwapBuffersError::from)?;
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}
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Ok(res.rendered)
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}