1 //! Modesetting operations that the DRM subsystem exposes.
2 //!
3 //! # Summary
4 //!
5 //! The DRM subsystem provides Kernel Modesetting (KMS) functionality by
6 //! exposing the following resource types:
7 //!
8 //! * FrameBuffer - Specific to an individual process, these wrap around generic
9 //! GPU buffers so that they can be attached to a Plane.
10 //!
11 //! * Planes - Dedicated memory objects which contain a buffer that can then be
12 //! scanned out by a CRTC. There exist a few different types of planes depending
13 //! on the use case.
14 //!
15 //! * CRTC - Scanout engines that read pixel data from a Plane and sends it to
16 //! a Connector. Each CRTC has at least one Primary Plane.
17 //!
18 //! * Connector - Represents the physical output, such as a DisplayPort or
19 //! VGA connector.
20 //!
21 //! * Encoder - Encodes pixel data from a CRTC into something a Connector can
22 //! understand.
23 //!
24 //! Further details on each resource can be found in their respective modules.
25 //!
26 //! # Usage
27 //!
28 //! To begin using modesetting functionality, the [`Device`] trait
29 //! must be implemented on top of the basic [`super::Device`] trait.
30
31 use drm_ffi as ffi;
32 use drm_fourcc::{DrmFourcc, DrmModifier, UnrecognizedFourcc};
33
34 use bytemuck::allocation::TransparentWrapperAlloc;
35 use rustix::io::Errno;
36
37 pub mod atomic;
38 pub mod connector;
39 pub mod crtc;
40 pub mod dumbbuffer;
41 pub mod encoder;
42 pub mod framebuffer;
43 pub mod plane;
44 pub mod syncobj;
45
46 pub mod property;
47
48 use self::dumbbuffer::*;
49 use crate::buffer;
50
51 use super::util::*;
52
53 use std::collections::HashMap;
54 use std::convert::TryFrom;
55 use std::error;
56 use std::fmt;
57 use std::io;
58 use std::iter::Zip;
59 use std::mem;
60 use std::ops::RangeBounds;
61 use std::os::unix::io::{AsFd, BorrowedFd, FromRawFd, OwnedFd, RawFd};
62 use std::time::Duration;
63
64 use core::num::NonZeroU32;
65
66 /// Raw handle for a drm resource
67 pub type RawResourceHandle = NonZeroU32;
68
69 /// Id of a Lease
70 pub type LeaseId = NonZeroU32;
71
72 /// Handle for a drm resource
73 pub trait ResourceHandle:
74 From<RawResourceHandle> + Into<RawResourceHandle> + Into<u32> + Copy + Sized
75 {
76 /// Associated encoded object type
77 const FFI_TYPE: u32;
78 }
79
80 /// Convert from a raw drm object value to a typed Handle
81 ///
82 /// Note: This does no verification on the validity of the original value
from_u32<T: From<RawResourceHandle>>(raw: u32) -> Option<T>83 pub fn from_u32<T: From<RawResourceHandle>>(raw: u32) -> Option<T> {
84 RawResourceHandle::new(raw).map(T::from)
85 }
86
87 /// Error from [`Device::get_planar_framebuffer`]
88 #[derive(Debug)]
89 pub enum GetPlanarFramebufferError {
90 /// IO error
91 Io(io::Error),
92 /// Unrecognized fourcc format
93 UnrecognizedFourcc(drm_fourcc::UnrecognizedFourcc),
94 }
95
96 impl fmt::Display for GetPlanarFramebufferError {
fmt(&self, f: &mut fmt::Formatter) -> fmt::Result97 fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
98 match self {
99 Self::Io(err) => write!(f, "{}", err),
100 Self::UnrecognizedFourcc(err) => write!(f, "{}", err),
101 }
102 }
103 }
104
105 impl error::Error for GetPlanarFramebufferError {
source(&self) -> Option<&(dyn error::Error + 'static)>106 fn source(&self) -> Option<&(dyn error::Error + 'static)> {
107 match self {
108 Self::Io(err) => Some(err),
109 Self::UnrecognizedFourcc(err) => Some(err),
110 }
111 }
112 }
113
114 impl From<io::Error> for GetPlanarFramebufferError {
from(err: io::Error) -> Self115 fn from(err: io::Error) -> Self {
116 Self::Io(err)
117 }
118 }
119
120 impl From<UnrecognizedFourcc> for GetPlanarFramebufferError {
from(err: UnrecognizedFourcc) -> Self121 fn from(err: UnrecognizedFourcc) -> Self {
122 Self::UnrecognizedFourcc(err)
123 }
124 }
125
126 /// This trait should be implemented by any object that acts as a DRM device and
127 /// provides modesetting functionality.
128 ///
129 /// Like the parent [`super::Device`] trait, this crate does not
130 /// provide a concrete object for this trait.
131 ///
132 /// # Example
133 /// ```ignore
134 /// use drm::control::Device as ControlDevice;
135 ///
136 /// /// Assuming the [`Card`] wrapper already implements [`drm::Device`]
137 /// impl ControlDevice for Card {}
138 /// ```
139 pub trait Device: super::Device {
140 /// Gets the set of resource handles that this device currently controls
resource_handles(&self) -> io::Result<ResourceHandles>141 fn resource_handles(&self) -> io::Result<ResourceHandles> {
142 let mut fbs = Vec::new();
143 let mut crtcs = Vec::new();
144 let mut connectors = Vec::new();
145 let mut encoders = Vec::new();
146
147 let ffi_res = ffi::mode::get_resources(
148 self.as_fd(),
149 Some(&mut fbs),
150 Some(&mut crtcs),
151 Some(&mut connectors),
152 Some(&mut encoders),
153 )?;
154
155 let res = unsafe {
156 ResourceHandles {
157 fbs: transmute_vec_from_u32(fbs),
158 crtcs: transmute_vec_from_u32(crtcs),
159 connectors: transmute_vec_from_u32(connectors),
160 encoders: transmute_vec_from_u32(encoders),
161 width: (ffi_res.min_width, ffi_res.max_width),
162 height: (ffi_res.min_height, ffi_res.max_height),
163 }
164 };
165
166 Ok(res)
167 }
168
169 /// Gets the set of plane handles that this device currently has
plane_handles(&self) -> io::Result<Vec<plane::Handle>>170 fn plane_handles(&self) -> io::Result<Vec<plane::Handle>> {
171 let mut planes = Vec::new();
172 let _ = ffi::mode::get_plane_resources(self.as_fd(), Some(&mut planes))?;
173 Ok(unsafe { transmute_vec_from_u32(planes) })
174 }
175
176 /// Returns information about a specific connector
177 ///
178 /// ## Force-probing
179 ///
180 /// If `force_probe` is set to `true` and the DRM client is the current DRM master,
181 /// the kernel will perform a forced probe on the connector to refresh the connector status, modes and EDID.
182 /// A forced-probe can be slow, might cause flickering and the ioctl will block.
183 ///
184 /// - User needs to force-probe connectors to ensure their metadata is up-to-date at startup and after receiving a hot-plug event.
185 /// - User may perform a forced-probe when the user explicitly requests it.
186 /// - User shouldn’t perform a forced-probe in other situations.
get_connector( &self, handle: connector::Handle, force_probe: bool, ) -> io::Result<connector::Info>187 fn get_connector(
188 &self,
189 handle: connector::Handle,
190 force_probe: bool,
191 ) -> io::Result<connector::Info> {
192 // Maximum number of encoders is 3 due to kernel restrictions
193 let mut encoders = Vec::new();
194 let mut modes = Vec::new();
195
196 let ffi_info = ffi::mode::get_connector(
197 self.as_fd(),
198 handle.into(),
199 None,
200 None,
201 Some(&mut modes),
202 Some(&mut encoders),
203 force_probe,
204 )?;
205
206 let connector = connector::Info {
207 handle,
208 interface: connector::Interface::from(ffi_info.connector_type),
209 interface_id: ffi_info.connector_type_id,
210 connection: connector::State::from(ffi_info.connection),
211 size: match (ffi_info.mm_width, ffi_info.mm_height) {
212 (0, 0) => None,
213 (x, y) => Some((x, y)),
214 },
215 modes: Mode::wrap_vec(modes),
216 encoders: unsafe { transmute_vec_from_u32(encoders) },
217 curr_enc: unsafe { mem::transmute(ffi_info.encoder_id) },
218 subpixel: connector::SubPixel::from_raw(ffi_info.subpixel),
219 };
220
221 Ok(connector)
222 }
223
224 /// Returns information about a specific encoder
get_encoder(&self, handle: encoder::Handle) -> io::Result<encoder::Info>225 fn get_encoder(&self, handle: encoder::Handle) -> io::Result<encoder::Info> {
226 let info = ffi::mode::get_encoder(self.as_fd(), handle.into())?;
227
228 let enc = encoder::Info {
229 handle,
230 enc_type: encoder::Kind::from(info.encoder_type),
231 crtc: from_u32(info.crtc_id),
232 pos_crtcs: info.possible_crtcs,
233 pos_clones: info.possible_clones,
234 };
235
236 Ok(enc)
237 }
238
239 /// Returns information about a specific CRTC
get_crtc(&self, handle: crtc::Handle) -> io::Result<crtc::Info>240 fn get_crtc(&self, handle: crtc::Handle) -> io::Result<crtc::Info> {
241 let info = ffi::mode::get_crtc(self.as_fd(), handle.into())?;
242
243 let crtc = crtc::Info {
244 handle,
245 position: (info.x, info.y),
246 mode: match info.mode_valid {
247 0 => None,
248 _ => Some(Mode::from(info.mode)),
249 },
250 fb: from_u32(info.fb_id),
251 gamma_length: info.gamma_size,
252 };
253
254 Ok(crtc)
255 }
256
257 /// Set CRTC state
set_crtc( &self, handle: crtc::Handle, framebuffer: Option<framebuffer::Handle>, pos: (u32, u32), conns: &[connector::Handle], mode: Option<Mode>, ) -> io::Result<()>258 fn set_crtc(
259 &self,
260 handle: crtc::Handle,
261 framebuffer: Option<framebuffer::Handle>,
262 pos: (u32, u32),
263 conns: &[connector::Handle],
264 mode: Option<Mode>,
265 ) -> io::Result<()> {
266 let _info = ffi::mode::set_crtc(
267 self.as_fd(),
268 handle.into(),
269 framebuffer.map(Into::into).unwrap_or(0),
270 pos.0,
271 pos.1,
272 unsafe { &*(conns as *const _ as *const [u32]) },
273 mode.map(|m| m.into()),
274 )?;
275
276 Ok(())
277 }
278
279 /// Returns information about a specific framebuffer
get_framebuffer(&self, handle: framebuffer::Handle) -> io::Result<framebuffer::Info>280 fn get_framebuffer(&self, handle: framebuffer::Handle) -> io::Result<framebuffer::Info> {
281 let info = ffi::mode::get_framebuffer(self.as_fd(), handle.into())?;
282
283 let fb = framebuffer::Info {
284 handle,
285 size: (info.width, info.height),
286 pitch: info.pitch,
287 bpp: info.bpp,
288 depth: info.depth,
289 buffer: from_u32(info.handle),
290 };
291
292 Ok(fb)
293 }
294
295 /// Returns information about a specific framebuffer (with modifiers)
get_planar_framebuffer( &self, handle: framebuffer::Handle, ) -> Result<framebuffer::PlanarInfo, GetPlanarFramebufferError>296 fn get_planar_framebuffer(
297 &self,
298 handle: framebuffer::Handle,
299 ) -> Result<framebuffer::PlanarInfo, GetPlanarFramebufferError> {
300 let info = ffi::mode::get_framebuffer2(self.as_fd(), handle.into())?;
301
302 let pixel_format = DrmFourcc::try_from(info.pixel_format)?;
303
304 let flags = FbCmd2Flags::from_bits_truncate(info.flags);
305 let modifier = flags
306 .contains(FbCmd2Flags::MODIFIERS)
307 .then(|| DrmModifier::from(info.modifier[0]));
308
309 let fb = framebuffer::PlanarInfo {
310 handle,
311 size: (info.width, info.height),
312 pixel_format,
313 flags,
314 buffers: bytemuck::cast(info.handles),
315 pitches: info.pitches,
316 offsets: info.offsets,
317 modifier,
318 };
319
320 Ok(fb)
321 }
322
323 /// Add a new framebuffer
add_framebuffer<B>( &self, buffer: &B, depth: u32, bpp: u32, ) -> io::Result<framebuffer::Handle> where B: buffer::Buffer + ?Sized,324 fn add_framebuffer<B>(
325 &self,
326 buffer: &B,
327 depth: u32,
328 bpp: u32,
329 ) -> io::Result<framebuffer::Handle>
330 where
331 B: buffer::Buffer + ?Sized,
332 {
333 let (w, h) = buffer.size();
334 let info = ffi::mode::add_fb(
335 self.as_fd(),
336 w,
337 h,
338 buffer.pitch(),
339 bpp,
340 depth,
341 buffer.handle().into(),
342 )?;
343
344 Ok(from_u32(info.fb_id).unwrap())
345 }
346
347 /// Add framebuffer (with modifiers)
add_planar_framebuffer<B>( &self, planar_buffer: &B, flags: FbCmd2Flags, ) -> io::Result<framebuffer::Handle> where B: buffer::PlanarBuffer + ?Sized,348 fn add_planar_framebuffer<B>(
349 &self,
350 planar_buffer: &B,
351 flags: FbCmd2Flags,
352 ) -> io::Result<framebuffer::Handle>
353 where
354 B: buffer::PlanarBuffer + ?Sized,
355 {
356 let modifier = planar_buffer.modifier();
357 let has_modifier = flags.contains(FbCmd2Flags::MODIFIERS);
358 assert!((has_modifier && modifier.is_some()) || (!has_modifier && modifier.is_none()));
359 let modifier = if let Some(modifier) = modifier {
360 u64::from(modifier)
361 } else {
362 0
363 };
364
365 let (w, h) = planar_buffer.size();
366 let opt_handles = planar_buffer.handles();
367
368 let handles = bytemuck::cast(opt_handles);
369 let mods = [
370 opt_handles[0].map_or(0, |_| modifier),
371 opt_handles[1].map_or(0, |_| modifier),
372 opt_handles[2].map_or(0, |_| modifier),
373 opt_handles[3].map_or(0, |_| modifier),
374 ];
375
376 let info = ffi::mode::add_fb2(
377 self.as_fd(),
378 w,
379 h,
380 planar_buffer.format() as u32,
381 &handles,
382 &planar_buffer.pitches(),
383 &planar_buffer.offsets(),
384 &mods,
385 flags.bits(),
386 )?;
387
388 Ok(from_u32(info.fb_id).unwrap())
389 }
390
391 /// Mark parts of a framebuffer dirty
dirty_framebuffer(&self, handle: framebuffer::Handle, clips: &[ClipRect]) -> io::Result<()>392 fn dirty_framebuffer(&self, handle: framebuffer::Handle, clips: &[ClipRect]) -> io::Result<()> {
393 ffi::mode::dirty_fb(self.as_fd(), handle.into(), unsafe {
394 // SAFETY: ClipRect is repr(transparent) for drm_clip_rect
395 core::slice::from_raw_parts(clips.as_ptr() as *const ffi::drm_clip_rect, clips.len())
396 })?;
397 Ok(())
398 }
399
400 /// Destroy a framebuffer
destroy_framebuffer(&self, handle: framebuffer::Handle) -> io::Result<()>401 fn destroy_framebuffer(&self, handle: framebuffer::Handle) -> io::Result<()> {
402 ffi::mode::rm_fb(self.as_fd(), handle.into())
403 }
404
405 /// Returns information about a specific plane
get_plane(&self, handle: plane::Handle) -> io::Result<plane::Info>406 fn get_plane(&self, handle: plane::Handle) -> io::Result<plane::Info> {
407 let mut formats = Vec::new();
408
409 let info = ffi::mode::get_plane(self.as_fd(), handle.into(), Some(&mut formats))?;
410
411 let plane = plane::Info {
412 handle,
413 crtc: from_u32(info.crtc_id),
414 fb: from_u32(info.fb_id),
415 pos_crtcs: info.possible_crtcs,
416 formats: unsafe { transmute_vec_from_u32(formats) },
417 };
418
419 Ok(plane)
420 }
421
422 /// Set plane state.
423 ///
424 /// Providing no framebuffer clears the plane.
set_plane( &self, handle: plane::Handle, crtc: crtc::Handle, framebuffer: Option<framebuffer::Handle>, flags: u32, crtc_rect: (i32, i32, u32, u32), src_rect: (u32, u32, u32, u32), ) -> io::Result<()>425 fn set_plane(
426 &self,
427 handle: plane::Handle,
428 crtc: crtc::Handle,
429 framebuffer: Option<framebuffer::Handle>,
430 flags: u32,
431 crtc_rect: (i32, i32, u32, u32),
432 src_rect: (u32, u32, u32, u32),
433 ) -> io::Result<()> {
434 let _info = ffi::mode::set_plane(
435 self.as_fd(),
436 handle.into(),
437 crtc.into(),
438 framebuffer.map(Into::into).unwrap_or(0),
439 flags,
440 crtc_rect.0,
441 crtc_rect.1,
442 crtc_rect.2,
443 crtc_rect.3,
444 src_rect.0,
445 src_rect.1,
446 src_rect.2,
447 src_rect.3,
448 )?;
449
450 Ok(())
451 }
452
453 /// Returns information about a specific property.
get_property(&self, handle: property::Handle) -> io::Result<property::Info>454 fn get_property(&self, handle: property::Handle) -> io::Result<property::Info> {
455 let mut values = Vec::new();
456 let mut enums = Vec::new();
457
458 let info = ffi::mode::get_property(
459 self.as_fd(),
460 handle.into(),
461 Some(&mut values),
462 Some(&mut enums),
463 )?;
464
465 let flags = ModePropFlags::from_bits_truncate(info.flags);
466
467 let val_type = {
468 use self::property::ValueType;
469
470 if flags.contains(ModePropFlags::RANGE) {
471 let min = values[0];
472 let max = values[1];
473
474 match (min, max) {
475 (0, 1) => ValueType::Boolean,
476 (min, max) => ValueType::UnsignedRange(min, max),
477 }
478 } else if flags.contains(ModePropFlags::SIGNED_RANGE) {
479 let min = values[0];
480 let max = values[1];
481
482 ValueType::SignedRange(min as i64, max as i64)
483 } else if flags.contains(ModePropFlags::ENUM) {
484 let enum_values = self::property::EnumValues {
485 values,
486 enums: property::EnumValue::wrap_vec(enums),
487 };
488
489 ValueType::Enum(enum_values)
490 } else if flags.contains(ModePropFlags::BLOB) {
491 ValueType::Blob
492 } else if flags.contains(ModePropFlags::BITMASK) {
493 ValueType::Bitmask
494 } else if flags.contains(ModePropFlags::OBJECT) {
495 match values[0] as u32 {
496 ffi::DRM_MODE_OBJECT_CRTC => ValueType::CRTC,
497 ffi::DRM_MODE_OBJECT_CONNECTOR => ValueType::Connector,
498 ffi::DRM_MODE_OBJECT_ENCODER => ValueType::Encoder,
499 ffi::DRM_MODE_OBJECT_FB => ValueType::Framebuffer,
500 ffi::DRM_MODE_OBJECT_PLANE => ValueType::Plane,
501 ffi::DRM_MODE_OBJECT_PROPERTY => ValueType::Property,
502 ffi::DRM_MODE_OBJECT_BLOB => ValueType::Blob,
503 ffi::DRM_MODE_OBJECT_ANY => ValueType::Object,
504 _ => ValueType::Unknown,
505 }
506 } else {
507 ValueType::Unknown
508 }
509 };
510
511 let property = property::Info {
512 handle,
513 val_type,
514 mutable: !flags.contains(ModePropFlags::IMMUTABLE),
515 atomic: flags.contains(ModePropFlags::ATOMIC),
516 info,
517 };
518
519 Ok(property)
520 }
521
522 /// Sets a property for a specific resource.
set_property<T: ResourceHandle>( &self, handle: T, prop: property::Handle, value: property::RawValue, ) -> io::Result<()>523 fn set_property<T: ResourceHandle>(
524 &self,
525 handle: T,
526 prop: property::Handle,
527 value: property::RawValue,
528 ) -> io::Result<()> {
529 ffi::mode::set_property(self.as_fd(), prop.into(), handle.into(), T::FFI_TYPE, value)?;
530
531 Ok(())
532 }
533
534 /// Create a property blob value from a given data blob
create_property_blob<T>(&self, data: &T) -> io::Result<property::Value<'static>>535 fn create_property_blob<T>(&self, data: &T) -> io::Result<property::Value<'static>> {
536 let data = unsafe {
537 std::slice::from_raw_parts_mut(data as *const _ as *mut u8, mem::size_of::<T>())
538 };
539 let blob = ffi::mode::create_property_blob(self.as_fd(), data)?;
540
541 Ok(property::Value::Blob(blob.blob_id.into()))
542 }
543
544 /// Get a property blob's data
get_property_blob(&self, blob: u64) -> io::Result<Vec<u8>>545 fn get_property_blob(&self, blob: u64) -> io::Result<Vec<u8>> {
546 let mut data = Vec::new();
547 let _ = ffi::mode::get_property_blob(self.as_fd(), blob as u32, Some(&mut data))?;
548 Ok(data)
549 }
550
551 /// Destroy a given property blob value
destroy_property_blob(&self, blob: u64) -> io::Result<()>552 fn destroy_property_blob(&self, blob: u64) -> io::Result<()> {
553 ffi::mode::destroy_property_blob(self.as_fd(), blob as u32)?;
554
555 Ok(())
556 }
557
558 /// Returns the set of [`Mode`]s that a particular connector supports.
get_modes(&self, handle: connector::Handle) -> io::Result<Vec<Mode>>559 fn get_modes(&self, handle: connector::Handle) -> io::Result<Vec<Mode>> {
560 let mut modes = Vec::new();
561
562 let _ffi_info = ffi::mode::get_connector(
563 self.as_fd(),
564 handle.into(),
565 None,
566 None,
567 Some(&mut modes),
568 None,
569 false,
570 )?;
571
572 Ok(Mode::wrap_vec(modes))
573 }
574
575 /// Gets a list of property handles and values for this resource.
get_properties<T: ResourceHandle>(&self, handle: T) -> io::Result<PropertyValueSet>576 fn get_properties<T: ResourceHandle>(&self, handle: T) -> io::Result<PropertyValueSet> {
577 let mut prop_ids = Vec::new();
578 let mut prop_vals = Vec::new();
579
580 ffi::mode::get_properties(
581 self.as_fd(),
582 handle.into(),
583 T::FFI_TYPE,
584 Some(&mut prop_ids),
585 Some(&mut prop_vals),
586 )?;
587
588 let prop_val_set = PropertyValueSet {
589 prop_ids: unsafe { transmute_vec_from_u32(prop_ids) },
590 prop_vals,
591 };
592
593 Ok(prop_val_set)
594 }
595
596 /// Receive the currently set gamma ramp of a crtc
get_gamma( &self, crtc: crtc::Handle, red: &mut [u16], green: &mut [u16], blue: &mut [u16], ) -> io::Result<()>597 fn get_gamma(
598 &self,
599 crtc: crtc::Handle,
600 red: &mut [u16],
601 green: &mut [u16],
602 blue: &mut [u16],
603 ) -> io::Result<()> {
604 let crtc_info = self.get_crtc(crtc)?;
605 if crtc_info.gamma_length as usize > red.len()
606 || crtc_info.gamma_length as usize > green.len()
607 || crtc_info.gamma_length as usize > blue.len()
608 {
609 return Err(Errno::INVAL.into());
610 }
611
612 ffi::mode::get_gamma(
613 self.as_fd(),
614 crtc.into(),
615 crtc_info.gamma_length as usize,
616 red,
617 green,
618 blue,
619 )?;
620
621 Ok(())
622 }
623
624 /// Set a gamma ramp for the given crtc
set_gamma( &self, crtc: crtc::Handle, red: &[u16], green: &[u16], blue: &[u16], ) -> io::Result<()>625 fn set_gamma(
626 &self,
627 crtc: crtc::Handle,
628 red: &[u16],
629 green: &[u16],
630 blue: &[u16],
631 ) -> io::Result<()> {
632 let crtc_info = self.get_crtc(crtc)?;
633 if crtc_info.gamma_length as usize > red.len()
634 || crtc_info.gamma_length as usize > green.len()
635 || crtc_info.gamma_length as usize > blue.len()
636 {
637 return Err(Errno::INVAL.into());
638 }
639
640 ffi::mode::set_gamma(
641 self.as_fd(),
642 crtc.into(),
643 crtc_info.gamma_length as usize,
644 red,
645 green,
646 blue,
647 )?;
648
649 Ok(())
650 }
651
652 /// Open a GEM buffer handle by name
open_buffer(&self, name: buffer::Name) -> io::Result<buffer::Handle>653 fn open_buffer(&self, name: buffer::Name) -> io::Result<buffer::Handle> {
654 let info = drm_ffi::gem::open(self.as_fd(), name.into())?;
655 Ok(from_u32(info.handle).unwrap())
656 }
657
658 /// Close a GEM buffer handle
close_buffer(&self, handle: buffer::Handle) -> io::Result<()>659 fn close_buffer(&self, handle: buffer::Handle) -> io::Result<()> {
660 let _info = drm_ffi::gem::close(self.as_fd(), handle.into())?;
661 Ok(())
662 }
663
664 /// Create a new dumb buffer with a given size and pixel format
create_dumb_buffer( &self, size: (u32, u32), format: buffer::DrmFourcc, bpp: u32, ) -> io::Result<DumbBuffer>665 fn create_dumb_buffer(
666 &self,
667 size: (u32, u32),
668 format: buffer::DrmFourcc,
669 bpp: u32,
670 ) -> io::Result<DumbBuffer> {
671 let info = drm_ffi::mode::dumbbuffer::create(self.as_fd(), size.0, size.1, bpp, 0)?;
672
673 let dumb = DumbBuffer {
674 size: (info.width, info.height),
675 length: info.size as usize,
676 format,
677 pitch: info.pitch,
678 handle: from_u32(info.handle).unwrap(),
679 };
680
681 Ok(dumb)
682 }
683 /// Map the buffer for access
map_dumb_buffer<'a>(&self, buffer: &'a mut DumbBuffer) -> io::Result<DumbMapping<'a>>684 fn map_dumb_buffer<'a>(&self, buffer: &'a mut DumbBuffer) -> io::Result<DumbMapping<'a>> {
685 let info = drm_ffi::mode::dumbbuffer::map(self.as_fd(), buffer.handle.into(), 0, 0)?;
686
687 let map = {
688 use rustix::mm;
689 let prot = mm::ProtFlags::READ | mm::ProtFlags::WRITE;
690 let flags = mm::MapFlags::SHARED;
691 let fd = self.as_fd();
692 let offset = info.offset as _;
693 unsafe { mm::mmap(std::ptr::null_mut(), buffer.length, prot, flags, fd, offset)? }
694 };
695
696 let mapping = DumbMapping {
697 _phantom: std::marker::PhantomData,
698 map: unsafe { std::slice::from_raw_parts_mut(map as *mut _, buffer.length) },
699 };
700
701 Ok(mapping)
702 }
703
704 /// Free the memory resources of a dumb buffer
destroy_dumb_buffer(&self, buffer: DumbBuffer) -> io::Result<()>705 fn destroy_dumb_buffer(&self, buffer: DumbBuffer) -> io::Result<()> {
706 let _info = drm_ffi::mode::dumbbuffer::destroy(self.as_fd(), buffer.handle.into())?;
707
708 Ok(())
709 }
710
711 /// Sets a hardware-cursor on the given crtc with the image of a given buffer
712 ///
713 /// A buffer argument of [`None`] will clear the cursor.
714 #[deprecated(note = "Usage of deprecated ioctl set_cursor: use a cursor plane instead")]
715 #[allow(deprecated)]
set_cursor<B>(&self, crtc: crtc::Handle, buffer: Option<&B>) -> io::Result<()> where B: buffer::Buffer + ?Sized,716 fn set_cursor<B>(&self, crtc: crtc::Handle, buffer: Option<&B>) -> io::Result<()>
717 where
718 B: buffer::Buffer + ?Sized,
719 {
720 let (id, w, h) = buffer
721 .map(|buf| {
722 let (w, h) = buf.size();
723 (buf.handle().into(), w, h)
724 })
725 .unwrap_or((0, 0, 0));
726 drm_ffi::mode::set_cursor(self.as_fd(), crtc.into(), id, w, h)?;
727
728 Ok(())
729 }
730
731 /// Sets a hardware-cursor on the given crtc with the image of a given buffer
732 /// and a hotspot marking the click point of the cursor.
733 ///
734 /// A buffer argument of [`None`] will clear the cursor.
735 #[deprecated(note = "Usage of deprecated ioctl set_cursor2: use a cursor plane instead")]
736 #[allow(deprecated)]
set_cursor2<B>( &self, crtc: crtc::Handle, buffer: Option<&B>, hotspot: (i32, i32), ) -> io::Result<()> where B: buffer::Buffer + ?Sized,737 fn set_cursor2<B>(
738 &self,
739 crtc: crtc::Handle,
740 buffer: Option<&B>,
741 hotspot: (i32, i32),
742 ) -> io::Result<()>
743 where
744 B: buffer::Buffer + ?Sized,
745 {
746 let (id, w, h) = buffer
747 .map(|buf| {
748 let (w, h) = buf.size();
749 (buf.handle().into(), w, h)
750 })
751 .unwrap_or((0, 0, 0));
752 drm_ffi::mode::set_cursor2(self.as_fd(), crtc.into(), id, w, h, hotspot.0, hotspot.1)?;
753
754 Ok(())
755 }
756
757 /// Moves a set cursor on a given crtc
758 #[deprecated(note = "Usage of deprecated ioctl move_cursor: use a cursor plane instead")]
759 #[allow(deprecated)]
move_cursor(&self, crtc: crtc::Handle, pos: (i32, i32)) -> io::Result<()>760 fn move_cursor(&self, crtc: crtc::Handle, pos: (i32, i32)) -> io::Result<()> {
761 drm_ffi::mode::move_cursor(self.as_fd(), crtc.into(), pos.0, pos.1)?;
762
763 Ok(())
764 }
765
766 /// Request an atomic commit with given flags and property-value pair for a list of objects.
atomic_commit( &self, flags: AtomicCommitFlags, mut req: atomic::AtomicModeReq, ) -> io::Result<()>767 fn atomic_commit(
768 &self,
769 flags: AtomicCommitFlags,
770 mut req: atomic::AtomicModeReq,
771 ) -> io::Result<()> {
772 drm_ffi::mode::atomic_commit(
773 self.as_fd(),
774 flags.bits(),
775 unsafe { &mut *(&mut *req.objects as *mut _ as *mut [u32]) },
776 &mut req.count_props_per_object,
777 unsafe { &mut *(&mut *req.props as *mut _ as *mut [u32]) },
778 &mut req.values,
779 )
780 }
781
782 /// Convert a prime file descriptor to a GEM buffer handle
prime_fd_to_buffer(&self, fd: BorrowedFd<'_>) -> io::Result<buffer::Handle>783 fn prime_fd_to_buffer(&self, fd: BorrowedFd<'_>) -> io::Result<buffer::Handle> {
784 let info = ffi::gem::fd_to_handle(self.as_fd(), fd)?;
785 Ok(from_u32(info.handle).unwrap())
786 }
787
788 /// Convert a GEM buffer handle to a prime file descriptor
buffer_to_prime_fd(&self, handle: buffer::Handle, flags: u32) -> io::Result<OwnedFd>789 fn buffer_to_prime_fd(&self, handle: buffer::Handle, flags: u32) -> io::Result<OwnedFd> {
790 let info = ffi::gem::handle_to_fd(self.as_fd(), handle.into(), flags)?;
791 Ok(unsafe { OwnedFd::from_raw_fd(info.fd) })
792 }
793
794 /// Queue a page flip on the given crtc
page_flip( &self, handle: crtc::Handle, framebuffer: framebuffer::Handle, flags: PageFlipFlags, target_sequence: Option<PageFlipTarget>, ) -> io::Result<()>795 fn page_flip(
796 &self,
797 handle: crtc::Handle,
798 framebuffer: framebuffer::Handle,
799 flags: PageFlipFlags,
800 target_sequence: Option<PageFlipTarget>,
801 ) -> io::Result<()> {
802 let mut flags = flags.bits();
803
804 let sequence = match target_sequence {
805 Some(PageFlipTarget::Absolute(n)) => {
806 flags |= ffi::drm_sys::DRM_MODE_PAGE_FLIP_TARGET_ABSOLUTE;
807 n
808 }
809 Some(PageFlipTarget::Relative(n)) => {
810 flags |= ffi::drm_sys::DRM_MODE_PAGE_FLIP_TARGET_RELATIVE;
811 n
812 }
813 None => 0,
814 };
815
816 ffi::mode::page_flip(
817 self.as_fd(),
818 handle.into(),
819 framebuffer.into(),
820 flags,
821 sequence,
822 )?;
823
824 Ok(())
825 }
826
827 /// Creates a syncobj.
create_syncobj(&self, signalled: bool) -> io::Result<syncobj::Handle>828 fn create_syncobj(&self, signalled: bool) -> io::Result<syncobj::Handle> {
829 let info = ffi::syncobj::create(self.as_fd(), signalled)?;
830 Ok(from_u32(info.handle).unwrap())
831 }
832
833 /// Destroys a syncobj.
destroy_syncobj(&self, handle: syncobj::Handle) -> io::Result<()>834 fn destroy_syncobj(&self, handle: syncobj::Handle) -> io::Result<()> {
835 ffi::syncobj::destroy(self.as_fd(), handle.into())?;
836 Ok(())
837 }
838
839 /// Exports a syncobj as an inter-process file descriptor or as a poll()-able sync file.
syncobj_to_fd( &self, handle: syncobj::Handle, export_sync_file: bool, ) -> io::Result<OwnedFd>840 fn syncobj_to_fd(
841 &self,
842 handle: syncobj::Handle,
843 export_sync_file: bool,
844 ) -> io::Result<OwnedFd> {
845 let info = ffi::syncobj::handle_to_fd(self.as_fd(), handle.into(), export_sync_file)?;
846 Ok(unsafe { OwnedFd::from_raw_fd(info.fd) })
847 }
848
849 /// Imports a file descriptor exported by [`Self::syncobj_to_fd`] back into a process-local handle.
fd_to_syncobj( &self, fd: BorrowedFd<'_>, import_sync_file: bool, ) -> io::Result<syncobj::Handle>850 fn fd_to_syncobj(
851 &self,
852 fd: BorrowedFd<'_>,
853 import_sync_file: bool,
854 ) -> io::Result<syncobj::Handle> {
855 let info = ffi::syncobj::fd_to_handle(self.as_fd(), fd, import_sync_file)?;
856 Ok(from_u32(info.handle).unwrap())
857 }
858
859 /// Waits for one or more syncobjs to become signalled.
syncobj_wait( &self, handles: &[syncobj::Handle], timeout_nsec: i64, wait_all: bool, wait_for_submit: bool, ) -> io::Result<u32>860 fn syncobj_wait(
861 &self,
862 handles: &[syncobj::Handle],
863 timeout_nsec: i64,
864 wait_all: bool,
865 wait_for_submit: bool,
866 ) -> io::Result<u32> {
867 let info = ffi::syncobj::wait(
868 self.as_fd(),
869 bytemuck::cast_slice(handles),
870 timeout_nsec,
871 wait_all,
872 wait_for_submit,
873 )?;
874 Ok(info.first_signaled)
875 }
876
877 /// Resets (un-signals) one or more syncobjs.
syncobj_reset(&self, handles: &[syncobj::Handle]) -> io::Result<()>878 fn syncobj_reset(&self, handles: &[syncobj::Handle]) -> io::Result<()> {
879 ffi::syncobj::reset(self.as_fd(), bytemuck::cast_slice(handles))?;
880 Ok(())
881 }
882
883 /// Signals one or more syncobjs.
syncobj_signal(&self, handles: &[syncobj::Handle]) -> io::Result<()>884 fn syncobj_signal(&self, handles: &[syncobj::Handle]) -> io::Result<()> {
885 ffi::syncobj::signal(self.as_fd(), bytemuck::cast_slice(handles))?;
886 Ok(())
887 }
888
889 /// Waits for one or more specific timeline syncobj points.
syncobj_timeline_wait( &self, handles: &[syncobj::Handle], points: &[u64], timeout_nsec: i64, wait_all: bool, wait_for_submit: bool, wait_available: bool, ) -> io::Result<u32>890 fn syncobj_timeline_wait(
891 &self,
892 handles: &[syncobj::Handle],
893 points: &[u64],
894 timeout_nsec: i64,
895 wait_all: bool,
896 wait_for_submit: bool,
897 wait_available: bool,
898 ) -> io::Result<u32> {
899 let info = ffi::syncobj::timeline_wait(
900 self.as_fd(),
901 bytemuck::cast_slice(handles),
902 points,
903 timeout_nsec,
904 wait_all,
905 wait_for_submit,
906 wait_available,
907 )?;
908 Ok(info.first_signaled)
909 }
910
911 /// Queries for state of one or more timeline syncobjs.
syncobj_timeline_query( &self, handles: &[syncobj::Handle], points: &mut [u64], last_submitted: bool, ) -> io::Result<()>912 fn syncobj_timeline_query(
913 &self,
914 handles: &[syncobj::Handle],
915 points: &mut [u64],
916 last_submitted: bool,
917 ) -> io::Result<()> {
918 ffi::syncobj::query(
919 self.as_fd(),
920 bytemuck::cast_slice(handles),
921 points,
922 last_submitted,
923 )?;
924 Ok(())
925 }
926
927 /// Transfers one timeline syncobj point to another.
syncobj_timeline_transfer( &self, src_handle: syncobj::Handle, dst_handle: syncobj::Handle, src_point: u64, dst_point: u64, ) -> io::Result<()>928 fn syncobj_timeline_transfer(
929 &self,
930 src_handle: syncobj::Handle,
931 dst_handle: syncobj::Handle,
932 src_point: u64,
933 dst_point: u64,
934 ) -> io::Result<()> {
935 ffi::syncobj::transfer(
936 self.as_fd(),
937 src_handle.into(),
938 dst_handle.into(),
939 src_point,
940 dst_point,
941 )?;
942 Ok(())
943 }
944
945 /// Signals one or more specific timeline syncobj points.
syncobj_timeline_signal( &self, handles: &[syncobj::Handle], points: &[u64], ) -> io::Result<()>946 fn syncobj_timeline_signal(
947 &self,
948 handles: &[syncobj::Handle],
949 points: &[u64],
950 ) -> io::Result<()> {
951 ffi::syncobj::timeline_signal(self.as_fd(), bytemuck::cast_slice(handles), points)?;
952 Ok(())
953 }
954
955 /// Create a drm lease
create_lease( &self, objects: &[RawResourceHandle], flags: u32, ) -> io::Result<(LeaseId, OwnedFd)>956 fn create_lease(
957 &self,
958 objects: &[RawResourceHandle],
959 flags: u32,
960 ) -> io::Result<(LeaseId, OwnedFd)> {
961 let lease = ffi::mode::create_lease(self.as_fd(), bytemuck::cast_slice(objects), flags)?;
962 Ok((
963 unsafe { NonZeroU32::new_unchecked(lease.lessee_id) },
964 unsafe { OwnedFd::from_raw_fd(lease.fd as RawFd) },
965 ))
966 }
967
968 /// List active lessees
list_lessees(&self) -> io::Result<Vec<LeaseId>>969 fn list_lessees(&self) -> io::Result<Vec<LeaseId>> {
970 let mut lessees = Vec::new();
971 ffi::mode::list_lessees(self.as_fd(), Some(&mut lessees))?;
972 Ok(unsafe { transmute_vec_from_u32(lessees) })
973 }
974
975 /// Revoke a previously issued drm lease
revoke_lease(&self, lessee_id: LeaseId) -> io::Result<()>976 fn revoke_lease(&self, lessee_id: LeaseId) -> io::Result<()> {
977 ffi::mode::revoke_lease(self.as_fd(), lessee_id.get())
978 }
979
980 /// Receive pending events
receive_events(&self) -> io::Result<Events> where Self: Sized,981 fn receive_events(&self) -> io::Result<Events>
982 where
983 Self: Sized,
984 {
985 let mut event_buf: [u8; 1024] = [0; 1024];
986 let amount = rustix::io::read(self.as_fd(), &mut event_buf)?;
987
988 Ok(Events::with_event_buf(event_buf, amount))
989 }
990 }
991
992 /// List of leased resources
993 pub struct LeaseResources {
994 /// leased crtcs
995 pub crtcs: Vec<crtc::Handle>,
996 /// leased connectors
997 pub connectors: Vec<connector::Handle>,
998 /// leased planes
999 pub planes: Vec<plane::Handle>,
1000 }
1001
1002 /// Query lease resources
get_lease<D: AsFd>(lease: D) -> io::Result<LeaseResources>1003 pub fn get_lease<D: AsFd>(lease: D) -> io::Result<LeaseResources> {
1004 let mut crtcs = Vec::new();
1005 let mut connectors = Vec::new();
1006 let mut planes = Vec::new();
1007 let mut objects = Vec::new();
1008
1009 ffi::mode::get_lease(lease.as_fd(), Some(&mut objects))?;
1010
1011 let _ = ffi::mode::get_resources(
1012 lease.as_fd(),
1013 None,
1014 Some(&mut crtcs),
1015 Some(&mut connectors),
1016 None,
1017 )?;
1018 let _ = ffi::mode::get_plane_resources(lease.as_fd(), Some(&mut planes))?;
1019
1020 unsafe {
1021 Ok(LeaseResources {
1022 crtcs: transmute_vec_from_u32::<crtc::Handle>(
1023 crtcs
1024 .into_iter()
1025 .filter(|handle| objects.contains(handle))
1026 .collect(),
1027 ),
1028 connectors: transmute_vec_from_u32::<connector::Handle>(
1029 connectors
1030 .into_iter()
1031 .filter(|handle| objects.contains(handle))
1032 .collect(),
1033 ),
1034 planes: transmute_vec_from_u32::<plane::Handle>(
1035 planes
1036 .into_iter()
1037 .filter(|handle| objects.contains(handle))
1038 .collect(),
1039 ),
1040 })
1041 }
1042 }
1043
1044 bitflags::bitflags! {
1045 /// Flags to alter the behaviour of a page flip
1046 ///
1047 /// Limited to the values in [`ffi::drm_sys::DRM_MODE_PAGE_FLIP_FLAGS`],
1048 /// minus [`ffi::drm_sys::DRM_MODE_PAGE_FLIP_TARGET`] bits which are
1049 /// passed through [`PageFlipTarget`].
1050 #[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
1051 pub struct PageFlipFlags : u32 {
1052 /// Request a vblank event on page flip
1053 const EVENT = ffi::drm_sys::DRM_MODE_PAGE_FLIP_EVENT;
1054 /// Request page flip as soon as possible, not waiting for vblank
1055 const ASYNC = ffi::drm_sys::DRM_MODE_PAGE_FLIP_ASYNC;
1056 }
1057 }
1058
1059 /// Target to alter the sequence of page flips
1060 ///
1061 /// These represent the [`ffi::drm_sys::DRM_MODE_PAGE_FLIP_TARGET`] bits
1062 /// of [`PageFlipFlags`] wrapped in a regular `enum` due to their
1063 /// mutual-exclusiveness.
1064 #[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
1065 pub enum PageFlipTarget {
1066 /// Absolute Vblank Sequence
1067 Absolute(u32),
1068 /// Relative Vblank Sequence (to the current, when calling)
1069 Relative(u32),
1070 }
1071
1072 /// Iterator over [`Event`]s of a device. Create via [`Device::receive_events()`].
1073 pub struct Events {
1074 event_buf: [u8; 1024],
1075 amount: usize,
1076 i: usize,
1077 }
1078
1079 impl Events {
1080 /// Create [`Event`]s iterator from buffer read using something other than
1081 /// [`Device::receive_events()`].
with_event_buf(event_buf: [u8; 1024], amount: usize) -> Self1082 pub fn with_event_buf(event_buf: [u8; 1024], amount: usize) -> Self {
1083 Events {
1084 event_buf,
1085 amount,
1086 i: 0,
1087 }
1088 }
1089 }
1090
1091 /// An event from a device.
1092 pub enum Event {
1093 /// A vblank happened
1094 Vblank(VblankEvent),
1095 /// A page flip happened
1096 PageFlip(PageFlipEvent),
1097 /// Unknown event, raw data provided
1098 Unknown(Vec<u8>),
1099 }
1100
1101 /// Vblank event
1102 pub struct VblankEvent {
1103 /// sequence of the frame
1104 pub frame: u32,
1105 /// time at which the vblank occurred
1106 pub time: Duration,
1107 /// crtc that did throw the event
1108 pub crtc: crtc::Handle,
1109 /// user data that was passed to wait_vblank
1110 pub user_data: usize,
1111 }
1112
1113 /// Page Flip event
1114 pub struct PageFlipEvent {
1115 /// sequence of the frame
1116 pub frame: u32,
1117 /// duration between events
1118 pub duration: Duration,
1119 /// crtc that did throw the event
1120 pub crtc: crtc::Handle,
1121 }
1122
1123 impl Iterator for Events {
1124 type Item = Event;
1125
next(&mut self) -> Option<Event>1126 fn next(&mut self) -> Option<Event> {
1127 if self.amount > 0 && self.i < self.amount {
1128 let event = unsafe { &*(self.event_buf.as_ptr().add(self.i) as *const ffi::drm_event) };
1129 self.i += event.length as usize;
1130 match event.type_ {
1131 ffi::DRM_EVENT_VBLANK => {
1132 let vblank_event =
1133 unsafe { &*(event as *const _ as *const ffi::drm_event_vblank) };
1134 Some(Event::Vblank(VblankEvent {
1135 frame: vblank_event.sequence,
1136 time: Duration::new(
1137 vblank_event.tv_sec as u64,
1138 vblank_event.tv_usec * 1000,
1139 ),
1140 #[allow(clippy::unnecessary_cast)]
1141 crtc: from_u32(vblank_event.crtc_id as u32).unwrap(),
1142 user_data: vblank_event.user_data as usize,
1143 }))
1144 }
1145 ffi::DRM_EVENT_FLIP_COMPLETE => {
1146 let vblank_event =
1147 unsafe { &*(event as *const _ as *const ffi::drm_event_vblank) };
1148 Some(Event::PageFlip(PageFlipEvent {
1149 frame: vblank_event.sequence,
1150 duration: Duration::new(
1151 vblank_event.tv_sec as u64,
1152 vblank_event.tv_usec * 1000,
1153 ),
1154 crtc: from_u32(if vblank_event.crtc_id != 0 {
1155 vblank_event.crtc_id
1156 } else {
1157 vblank_event.user_data as u32
1158 })
1159 .unwrap(),
1160 }))
1161 }
1162 _ => Some(Event::Unknown(
1163 self.event_buf[self.i - (event.length as usize)..self.i].to_vec(),
1164 )),
1165 }
1166 } else {
1167 None
1168 }
1169 }
1170 }
1171
1172 /// The set of [`ResourceHandles`] that a
1173 /// [`Device`] exposes. Excluding Plane resources.
1174 #[derive(Debug, Clone, Hash, PartialEq, Eq)]
1175 pub struct ResourceHandles {
1176 /// Set of [`framebuffer::Handle`]
1177 pub fbs: Vec<framebuffer::Handle>,
1178 /// Set of [`crtc::Handle`]
1179 pub crtcs: Vec<crtc::Handle>,
1180 /// Set of [`connector::Handle`]
1181 pub connectors: Vec<connector::Handle>,
1182 /// Set of [`encoder::Handle`]
1183 pub encoders: Vec<encoder::Handle>,
1184 width: (u32, u32),
1185 height: (u32, u32),
1186 }
1187
1188 impl ResourceHandles {
1189 /// Returns the set of [`connector::Handle`]
connectors(&self) -> &[connector::Handle]1190 pub fn connectors(&self) -> &[connector::Handle] {
1191 &self.connectors
1192 }
1193
1194 /// Returns the set of [`encoder::Handle`]
encoders(&self) -> &[encoder::Handle]1195 pub fn encoders(&self) -> &[encoder::Handle] {
1196 &self.encoders
1197 }
1198
1199 /// Returns the set of [`crtc::Handle`]
crtcs(&self) -> &[crtc::Handle]1200 pub fn crtcs(&self) -> &[crtc::Handle] {
1201 &self.crtcs
1202 }
1203
1204 /// Returns the set of [`framebuffer::Handle`]
framebuffers(&self) -> &[framebuffer::Handle]1205 pub fn framebuffers(&self) -> &[framebuffer::Handle] {
1206 &self.fbs
1207 }
1208
1209 /// Returns the supported minimum and maximum width for framebuffers
supported_fb_width(&self) -> impl RangeBounds<u32>1210 pub fn supported_fb_width(&self) -> impl RangeBounds<u32> {
1211 self.width.0..=self.width.1
1212 }
1213
1214 /// Returns the supported minimum and maximum height for framebuffers
supported_fb_height(&self) -> impl RangeBounds<u32>1215 pub fn supported_fb_height(&self) -> impl RangeBounds<u32> {
1216 self.height.0..=self.height.1
1217 }
1218
1219 /// Apply a filter the all crtcs of these resources, resulting in a list of crtcs allowed.
filter_crtcs(&self, filter: CrtcListFilter) -> Vec<crtc::Handle>1220 pub fn filter_crtcs(&self, filter: CrtcListFilter) -> Vec<crtc::Handle> {
1221 self.crtcs
1222 .iter()
1223 .enumerate()
1224 .filter(|&(n, _)| (1 << n) & filter.0 != 0)
1225 .map(|(_, &e)| e)
1226 .collect()
1227 }
1228 }
1229
1230 #[derive(Debug, Clone, Copy, PartialEq, Eq)]
1231 /// A filter that can be used with a [`ResourceHandles`] to determine the set of
1232 /// Crtcs that can attach to a specific encoder.
1233 pub struct CrtcListFilter(u32);
1234
1235 /// Resolution and timing information for a display mode.
1236 #[repr(transparent)]
1237 #[derive(Copy, Clone, Hash, PartialEq, Eq, bytemuck::TransparentWrapper)]
1238 pub struct Mode {
1239 // We're using the FFI struct because the DRM API expects it when giving it
1240 // to a CRTC or creating a blob from it. Rather than rearranging the fields
1241 // to convert to/from an abstracted type, just use the raw object.
1242 mode: ffi::drm_mode_modeinfo,
1243 }
1244
1245 impl Mode {
1246 /// Returns the name of this mode.
name(&self) -> &std::ffi::CStr1247 pub fn name(&self) -> &std::ffi::CStr {
1248 unsafe { std::ffi::CStr::from_ptr(&self.mode.name[0] as _) }
1249 }
1250
1251 /// Returns the clock speed of this mode.
clock(&self) -> u321252 pub fn clock(&self) -> u32 {
1253 self.mode.clock
1254 }
1255
1256 /// Returns the size (resolution) of the mode.
size(&self) -> (u16, u16)1257 pub fn size(&self) -> (u16, u16) {
1258 (self.mode.hdisplay, self.mode.vdisplay)
1259 }
1260
1261 /// Returns the horizontal sync start, end, and total.
hsync(&self) -> (u16, u16, u16)1262 pub fn hsync(&self) -> (u16, u16, u16) {
1263 (self.mode.hsync_start, self.mode.hsync_end, self.mode.htotal)
1264 }
1265
1266 /// Returns the vertical sync start, end, and total.
vsync(&self) -> (u16, u16, u16)1267 pub fn vsync(&self) -> (u16, u16, u16) {
1268 (self.mode.vsync_start, self.mode.vsync_end, self.mode.vtotal)
1269 }
1270
1271 /// Returns the horizontal skew of this mode.
hskew(&self) -> u161272 pub fn hskew(&self) -> u16 {
1273 self.mode.hskew
1274 }
1275
1276 /// Returns the vertical scan of this mode.
vscan(&self) -> u161277 pub fn vscan(&self) -> u16 {
1278 self.mode.vscan
1279 }
1280
1281 /// Returns the vertical refresh rate of this mode
vrefresh(&self) -> u321282 pub fn vrefresh(&self) -> u32 {
1283 self.mode.vrefresh
1284 }
1285
1286 /// Returns the bitmask of this mode
mode_type(&self) -> ModeTypeFlags1287 pub fn mode_type(&self) -> ModeTypeFlags {
1288 ModeTypeFlags::from_bits_truncate(self.mode.type_)
1289 }
1290
1291 /// Returns the flags of this mode
flags(&self) -> ModeFlags1292 pub fn flags(&self) -> ModeFlags {
1293 ModeFlags::from_bits_truncate(self.mode.flags)
1294 }
1295 }
1296
1297 impl From<ffi::drm_mode_modeinfo> for Mode {
from(raw: ffi::drm_mode_modeinfo) -> Mode1298 fn from(raw: ffi::drm_mode_modeinfo) -> Mode {
1299 Mode { mode: raw }
1300 }
1301 }
1302
1303 impl From<Mode> for ffi::drm_mode_modeinfo {
from(mode: Mode) -> Self1304 fn from(mode: Mode) -> Self {
1305 mode.mode
1306 }
1307 }
1308
1309 impl fmt::Debug for Mode {
fmt(&self, f: &mut fmt::Formatter) -> fmt::Result1310 fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
1311 f.debug_struct("Mode")
1312 .field("name", &self.name())
1313 .field("clock", &self.clock())
1314 .field("size", &self.size())
1315 .field("hsync", &self.hsync())
1316 .field("vsync", &self.vsync())
1317 .field("hskew", &self.hskew())
1318 .field("vscan", &self.vscan())
1319 .field("vrefresh", &self.vrefresh())
1320 .field("mode_type", &self.mode_type())
1321 .finish()
1322 }
1323 }
1324
1325 bitflags::bitflags! {
1326 /// Display mode type flags
1327 #[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
1328 pub struct ModeTypeFlags : u32 {
1329 /// Builtin mode type
1330 #[deprecated]
1331 const BUILTIN = ffi::DRM_MODE_TYPE_BUILTIN;
1332 /// CLOCK_C mode type
1333 #[deprecated]
1334 const CLOCK_C = ffi::DRM_MODE_TYPE_CLOCK_C;
1335 /// CRTC_C mode type
1336 #[deprecated]
1337 const CRTC_C = ffi::DRM_MODE_TYPE_CRTC_C;
1338 /// Preferred mode
1339 const PREFERRED = ffi::DRM_MODE_TYPE_PREFERRED;
1340 /// Default mode
1341 #[deprecated]
1342 const DEFAULT = ffi::DRM_MODE_TYPE_DEFAULT;
1343 /// User defined mode type
1344 const USERDEF = ffi::DRM_MODE_TYPE_USERDEF;
1345 /// Mode created by driver
1346 const DRIVER = ffi::DRM_MODE_TYPE_DRIVER;
1347 /// Bitmask of all valid (non-deprecated) mode type flags
1348 const ALL = ffi::DRM_MODE_TYPE_ALL;
1349 }
1350 }
1351
1352 bitflags::bitflags! {
1353 /// Display mode flags
1354 #[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
1355 pub struct ModeFlags: u32 {
1356 /// PHSYNC flag
1357 const PHSYNC = ffi::DRM_MODE_FLAG_PHSYNC;
1358 /// NHSYNC flag
1359 const NHSYNC = ffi::DRM_MODE_FLAG_NHSYNC;
1360 /// PVSYNC flag
1361 const PVSYNC = ffi::DRM_MODE_FLAG_PVSYNC;
1362 /// NVSYNC flag
1363 const NVSYNC = ffi::DRM_MODE_FLAG_NVSYNC;
1364 /// Interlace flag
1365 const INTERLACE = ffi::DRM_MODE_FLAG_INTERLACE;
1366 /// DBLSCAN flag
1367 const DBLSCAN = ffi::DRM_MODE_FLAG_DBLSCAN;
1368 /// CSYNC flag
1369 const CSYNC = ffi::DRM_MODE_FLAG_CSYNC;
1370 /// PCSYNC flag
1371 const PCSYNC = ffi::DRM_MODE_FLAG_PCSYNC;
1372 /// NCSYNC flag
1373 const NCSYNC = ffi::DRM_MODE_FLAG_NCSYNC;
1374 /// HSKEW flag
1375 const HSKEW = ffi::DRM_MODE_FLAG_HSKEW;
1376 #[deprecated]
1377 /// BCAST flag
1378 const BCAST = ffi::DRM_MODE_FLAG_BCAST;
1379 #[deprecated]
1380 /// PIXMUX flag
1381 const PIXMUX = ffi::DRM_MODE_FLAG_PIXMUX;
1382 /// DBLCLK flag
1383 const DBLCLK = ffi::DRM_MODE_FLAG_DBLCLK;
1384 /// CLKDIV2 flag
1385 const CLKDIV2 = ffi::DRM_MODE_FLAG_CLKDIV2;
1386 /// Stereo 3D mode utilizing frame packing
1387 const _3D_FRAME_PACKING = ffi::DRM_MODE_FLAG_3D_FRAME_PACKING;
1388 /// Stereo 3D mode utilizing alternating fields
1389 const _3D_FIELD_ALTERNATIVE = ffi::DRM_MODE_FLAG_3D_FIELD_ALTERNATIVE;
1390 /// Stereo 3D mode utilizing alternating lines
1391 const _3D_LINE_ALTERNATIVE = ffi::DRM_MODE_FLAG_3D_LINE_ALTERNATIVE;
1392 /// Stereo 3D mode utilizing side by side full size image
1393 const _3D_SIDE_BY_SIDE_FULL = ffi::DRM_MODE_FLAG_3D_SIDE_BY_SIDE_FULL;
1394 /// Stereo 3D mode utilizing depth images
1395 const _3D_L_DEPTH = ffi::DRM_MODE_FLAG_3D_L_DEPTH;
1396 /// Stereo 3D mode utilizing depth images
1397 const _3D_L_DEPTH_GFX_GFX_DEPTH = ffi::DRM_MODE_FLAG_3D_L_DEPTH_GFX_GFX_DEPTH;
1398 /// Stereo 3D mode utilizing top and bottom images
1399 const _3D_TOP_AND_BOTTOM = ffi::DRM_MODE_FLAG_3D_TOP_AND_BOTTOM;
1400 /// Stereo 3D mode utilizing side by side half size image
1401 const _3D_SIDE_BY_SIDE_HALF = ffi::DRM_MODE_FLAG_3D_SIDE_BY_SIDE_HALF;
1402 }
1403 }
1404
1405 /// Type of a plane
1406 #[repr(u32)]
1407 #[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
1408 pub enum PlaneType {
1409 /// Overlay plane
1410 Overlay = ffi::DRM_PLANE_TYPE_OVERLAY,
1411 /// Primary plane
1412 Primary = ffi::DRM_PLANE_TYPE_PRIMARY,
1413 /// Cursor plane
1414 Cursor = ffi::DRM_PLANE_TYPE_CURSOR,
1415 }
1416
1417 /// Wrapper around a set of property IDs and their raw values.
1418 #[derive(Debug, Clone)]
1419 pub struct PropertyValueSet {
1420 prop_ids: Vec<property::Handle>,
1421 prop_vals: Vec<property::RawValue>,
1422 }
1423
1424 impl PropertyValueSet {
1425 /// Returns a HashMap mapping property names to info
as_hashmap(&self, device: &impl Device) -> io::Result<HashMap<String, property::Info>>1426 pub fn as_hashmap(&self, device: &impl Device) -> io::Result<HashMap<String, property::Info>> {
1427 let mut map = HashMap::new();
1428 for id in self.prop_ids.iter() {
1429 let info = device.get_property(*id)?;
1430 let name = info.name().to_str().unwrap().to_owned();
1431 map.insert(name, info);
1432 }
1433 Ok(map)
1434 }
1435
1436 /// Returns a pair representing a set of [`property::Handle`] and their raw values
as_props_and_values(&self) -> (&[property::Handle], &[property::RawValue])1437 pub fn as_props_and_values(&self) -> (&[property::Handle], &[property::RawValue]) {
1438 (&self.prop_ids, &self.prop_vals)
1439 }
1440
1441 /// Returns iterator over pairs representing a set of [`property::Handle`] and their raw values
iter(&self) -> impl Iterator<Item = (&property::Handle, &property::RawValue)>1442 pub fn iter(&self) -> impl Iterator<Item = (&property::Handle, &property::RawValue)> {
1443 self.into_iter()
1444 }
1445 }
1446
1447 impl<'a> IntoIterator for &'a PropertyValueSet {
1448 type Item = (&'a property::Handle, &'a property::RawValue);
1449 type IntoIter =
1450 Zip<std::slice::Iter<'a, property::Handle>, std::slice::Iter<'a, property::RawValue>>;
1451
into_iter(self) -> Self::IntoIter1452 fn into_iter(self) -> Self::IntoIter {
1453 self.prop_ids.iter().zip(self.prop_vals.iter())
1454 }
1455 }
1456
1457 impl IntoIterator for PropertyValueSet {
1458 type Item = (property::Handle, property::RawValue);
1459 type IntoIter =
1460 Zip<std::vec::IntoIter<property::Handle>, std::vec::IntoIter<property::RawValue>>;
1461
into_iter(self) -> Self::IntoIter1462 fn into_iter(self) -> Self::IntoIter {
1463 self.prop_ids.into_iter().zip(self.prop_vals)
1464 }
1465 }
1466
1467 /// Describes a rectangular region of a buffer
1468 #[repr(transparent)]
1469 #[derive(Debug, Copy, Clone, PartialEq, Eq, Hash, Default)]
1470 pub struct ClipRect(ffi::drm_sys::drm_clip_rect);
1471
1472 impl ClipRect {
1473 /// Create a new clipping rectangle.
new(x1: u16, y1: u16, x2: u16, y2: u16) -> Self1474 pub fn new(x1: u16, y1: u16, x2: u16, y2: u16) -> Self {
1475 Self(ffi::drm_sys::drm_clip_rect { x1, y1, x2, y2 })
1476 }
1477
1478 /// Get the X coordinate of the top left corner of the rectangle.
x1(self) -> u161479 pub fn x1(self) -> u16 {
1480 self.0.x1
1481 }
1482
1483 /// Get the Y coordinate of the top left corner of the rectangle.
y1(self) -> u161484 pub fn y1(self) -> u16 {
1485 self.0.y1
1486 }
1487
1488 /// Get the X coordinate of the bottom right corner of the rectangle
x2(self) -> u161489 pub fn x2(self) -> u16 {
1490 self.0.x2
1491 }
1492
1493 /// Get the Y coordinate of the bottom right corner of the rectangle.
y2(self) -> u161494 pub fn y2(self) -> u16 {
1495 self.0.y2
1496 }
1497 }
1498
1499 bitflags::bitflags! {
1500 /// Commit flags for atomic mode setting
1501 ///
1502 /// Limited to the values in [`ffi::drm_sys::DRM_MODE_ATOMIC_FLAGS`].
1503 #[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
1504 pub struct AtomicCommitFlags : u32 {
1505 /// Generate a page flip event, when the changes are applied
1506 const PAGE_FLIP_EVENT = ffi::drm_sys::DRM_MODE_PAGE_FLIP_EVENT;
1507 /// Request page flip when the changes are applied, not waiting for vblank
1508 const PAGE_FLIP_ASYNC = ffi::drm_sys::DRM_MODE_PAGE_FLIP_ASYNC;
1509 /// Test only validity of the request, do not actually apply the requested changes
1510 const TEST_ONLY = ffi::drm_sys::DRM_MODE_ATOMIC_TEST_ONLY;
1511 /// Do not block on the request and return early
1512 const NONBLOCK = ffi::drm_sys::DRM_MODE_ATOMIC_NONBLOCK;
1513 /// Allow the changes to trigger a modeset, if necessary
1514 ///
1515 /// Changes requiring a modeset are rejected otherwise.
1516 const ALLOW_MODESET = ffi::drm_sys::DRM_MODE_ATOMIC_ALLOW_MODESET;
1517 }
1518 }
1519
1520 bitflags::bitflags! {
1521 /// Mode property flags
1522 #[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
1523 pub struct ModePropFlags : u32 {
1524 /// Do not use
1525 #[deprecated]
1526 const PENDING = ffi::DRM_MODE_PROP_PENDING;
1527
1528 /// Non-extended types: legacy bitmask, one bit per type:
1529 const LEGACY_TYPE = ffi::DRM_MODE_PROP_LEGACY_TYPE;
1530 /// An unsigned integer that has a min and max value
1531 const RANGE = ffi::DRM_MODE_PROP_RANGE;
1532 /// Set when this property is informational only and cannot be modified
1533 const IMMUTABLE = ffi::DRM_MODE_PROP_IMMUTABLE;
1534 /// Enumerated type with text strings
1535 const ENUM = ffi::DRM_MODE_PROP_ENUM;
1536 /// A chunk of binary data that must be acquired
1537 const BLOB = ffi::DRM_MODE_PROP_BLOB;
1538 /// Bitmask of enumerated types
1539 const BITMASK = ffi::DRM_MODE_PROP_BITMASK;
1540
1541 /// Extended-types: rather than continue to consume a bit per type,
1542 /// grab a chunk of the bits to use as integer type id.
1543 const EXTENDED_TYPE = ffi::DRM_MODE_PROP_EXTENDED_TYPE;
1544 /// A DRM object that can have a specific type
1545 ///
1546 /// See `ffi::DRM_MODE_OBJECT_*` for specific types.
1547 const OBJECT = ffi::DRM_MODE_PROP_OBJECT;
1548 /// A signed integer that has a min and max value
1549 const SIGNED_RANGE = ffi::DRM_MODE_PROP_SIGNED_RANGE;
1550 /// the [`Self::ATOMIC`] flag is used to hide properties from userspace that
1551 /// is not aware of atomic properties. This is mostly to work around
1552 /// older userspace (DDX drivers) that read/write each prop they find,
1553 /// witout being aware that this could be triggering a lengthy modeset.
1554 const ATOMIC = ffi::DRM_MODE_PROP_ATOMIC;
1555 }
1556 }
1557
1558 bitflags::bitflags! {
1559 /// Planar framebuffer flags
1560 #[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
1561 pub struct FbCmd2Flags : u32 {
1562 /// For interlaced framebuffers
1563 const INTERLACED = ffi::DRM_MODE_FB_INTERLACED;
1564 /// Enables .modifier
1565 const MODIFIERS = ffi::DRM_MODE_FB_MODIFIERS;
1566 }
1567 }
1568