Stable rustfmt lacks a lot of features resulting in worse formatted code, thus use nightly formatter.
1065 lines
34 KiB
Rust
1065 lines
34 KiB
Rust
#![cfg(x11_platform)]
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use std::cell::{Cell, RefCell};
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use std::collections::{HashMap, HashSet, VecDeque};
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use std::ffi::CStr;
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use std::marker::PhantomData;
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use std::mem::MaybeUninit;
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use std::ops::Deref;
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use std::os::raw::*;
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use std::os::unix::io::{AsFd, AsRawFd, BorrowedFd, RawFd};
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use std::sync::mpsc::{self, Receiver, Sender, TryRecvError};
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use std::sync::{Arc, Weak};
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use std::time::{Duration, Instant};
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use std::{fmt, ptr, slice, str};
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use calloop::generic::Generic;
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use calloop::ping::Ping;
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use calloop::{EventLoop as Loop, Readiness};
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use libc::{setlocale, LC_CTYPE};
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use tracing::warn;
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use x11rb::connection::RequestConnection;
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use x11rb::errors::{ConnectError, ConnectionError, IdsExhausted, ReplyError};
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use x11rb::protocol::xinput::{self, ConnectionExt as _};
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use x11rb::protocol::xkb;
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use x11rb::protocol::xproto::{self, ConnectionExt as _};
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use x11rb::x11_utils::X11Error as LogicalError;
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use x11rb::xcb_ffi::ReplyOrIdError;
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use crate::error::{EventLoopError, OsError as RootOsError};
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use crate::event::{Event, StartCause, WindowEvent};
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use crate::event_loop::{ActiveEventLoop as RootAEL, ControlFlow, DeviceEvents, EventLoopClosed};
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use crate::platform::pump_events::PumpStatus;
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use crate::platform_impl::common::xkb::Context;
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use crate::platform_impl::platform::{min_timeout, WindowId};
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use crate::platform_impl::{
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ActiveEventLoop as PlatformActiveEventLoop, OsError, PlatformCustomCursor,
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};
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use crate::window::{CustomCursor as RootCustomCursor, CustomCursorSource, WindowAttributes};
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mod activation;
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mod atoms;
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mod dnd;
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mod event_processor;
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pub mod ffi;
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mod ime;
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mod monitor;
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mod util;
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mod window;
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mod xdisplay;
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mod xsettings;
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pub use util::CustomCursor;
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use atoms::*;
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use dnd::{Dnd, DndState};
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use event_processor::{EventProcessor, MAX_MOD_REPLAY_LEN};
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use ime::{Ime, ImeCreationError, ImeReceiver, ImeRequest, ImeSender};
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pub(crate) use monitor::{MonitorHandle, VideoModeHandle};
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use window::UnownedWindow;
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pub(crate) use xdisplay::{XConnection, XError, XNotSupported};
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// Xinput constants not defined in x11rb
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const ALL_DEVICES: u16 = 0;
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const ALL_MASTER_DEVICES: u16 = 1;
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const ICONIC_STATE: u32 = 3;
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/// The underlying x11rb connection that we are using.
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type X11rbConnection = x11rb::xcb_ffi::XCBConnection;
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type X11Source = Generic<BorrowedFd<'static>>;
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struct WakeSender<T> {
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sender: Sender<T>,
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waker: Ping,
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}
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impl<T> Clone for WakeSender<T> {
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fn clone(&self) -> Self {
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Self { sender: self.sender.clone(), waker: self.waker.clone() }
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}
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}
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impl<T> WakeSender<T> {
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pub fn send(&self, t: T) -> Result<(), EventLoopClosed<T>> {
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let res = self.sender.send(t).map_err(|e| EventLoopClosed(e.0));
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if res.is_ok() {
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self.waker.ping();
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}
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res
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}
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}
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struct PeekableReceiver<T> {
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recv: Receiver<T>,
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first: Option<T>,
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}
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impl<T> PeekableReceiver<T> {
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pub fn from_recv(recv: Receiver<T>) -> Self {
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Self { recv, first: None }
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}
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pub fn has_incoming(&mut self) -> bool {
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if self.first.is_some() {
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return true;
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}
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match self.recv.try_recv() {
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Ok(v) => {
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self.first = Some(v);
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true
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},
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Err(TryRecvError::Empty) => false,
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Err(TryRecvError::Disconnected) => {
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warn!("Channel was disconnected when checking incoming");
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false
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},
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}
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}
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pub fn try_recv(&mut self) -> Result<T, TryRecvError> {
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if let Some(first) = self.first.take() {
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return Ok(first);
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}
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self.recv.try_recv()
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}
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}
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pub struct ActiveEventLoop {
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xconn: Arc<XConnection>,
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wm_delete_window: xproto::Atom,
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net_wm_ping: xproto::Atom,
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ime_sender: ImeSender,
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control_flow: Cell<ControlFlow>,
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exit: Cell<Option<i32>>,
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root: xproto::Window,
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ime: Option<RefCell<Ime>>,
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windows: RefCell<HashMap<WindowId, Weak<UnownedWindow>>>,
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redraw_sender: WakeSender<WindowId>,
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activation_sender: WakeSender<ActivationToken>,
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device_events: Cell<DeviceEvents>,
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}
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pub struct EventLoop<T: 'static> {
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loop_running: bool,
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event_loop: Loop<'static, EventLoopState>,
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waker: calloop::ping::Ping,
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event_processor: EventProcessor,
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redraw_receiver: PeekableReceiver<WindowId>,
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user_receiver: PeekableReceiver<T>,
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activation_receiver: PeekableReceiver<ActivationToken>,
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user_sender: Sender<T>,
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/// The current state of the event loop.
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state: EventLoopState,
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}
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type ActivationToken = (WindowId, crate::event_loop::AsyncRequestSerial);
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struct EventLoopState {
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/// The latest readiness state for the x11 file descriptor
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x11_readiness: Readiness,
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}
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pub struct EventLoopProxy<T: 'static> {
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user_sender: WakeSender<T>,
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}
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impl<T: 'static> Clone for EventLoopProxy<T> {
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fn clone(&self) -> Self {
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EventLoopProxy { user_sender: self.user_sender.clone() }
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}
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}
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impl<T: 'static> EventLoop<T> {
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pub(crate) fn new(xconn: Arc<XConnection>) -> EventLoop<T> {
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let root = xconn.default_root().root;
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let atoms = xconn.atoms();
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let wm_delete_window = atoms[WM_DELETE_WINDOW];
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let net_wm_ping = atoms[_NET_WM_PING];
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let dnd = Dnd::new(Arc::clone(&xconn))
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.expect("Failed to call XInternAtoms when initializing drag and drop");
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let (ime_sender, ime_receiver) = mpsc::channel();
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let (ime_event_sender, ime_event_receiver) = mpsc::channel();
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// Input methods will open successfully without setting the locale, but it won't be
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// possible to actually commit pre-edit sequences.
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unsafe {
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// Remember default locale to restore it if target locale is unsupported
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// by Xlib
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let default_locale = setlocale(LC_CTYPE, ptr::null());
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setlocale(LC_CTYPE, b"\0".as_ptr() as *const _);
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// Check if set locale is supported by Xlib.
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// If not, calls to some Xlib functions like `XSetLocaleModifiers`
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// will fail.
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let locale_supported = (xconn.xlib.XSupportsLocale)() == 1;
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if !locale_supported {
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let unsupported_locale = setlocale(LC_CTYPE, ptr::null());
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warn!(
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"Unsupported locale \"{}\". Restoring default locale \"{}\".",
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CStr::from_ptr(unsupported_locale).to_string_lossy(),
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CStr::from_ptr(default_locale).to_string_lossy()
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);
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// Restore default locale
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setlocale(LC_CTYPE, default_locale);
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}
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}
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let ime = Ime::new(Arc::clone(&xconn), ime_event_sender);
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if let Err(ImeCreationError::OpenFailure(state)) = ime.as_ref() {
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warn!("Failed to open input method: {state:#?}");
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} else if let Err(err) = ime.as_ref() {
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warn!("Failed to set input method destruction callback: {err:?}");
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}
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let ime = ime.ok().map(RefCell::new);
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let randr_event_offset =
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xconn.select_xrandr_input(root).expect("Failed to query XRandR extension");
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let xi2ext = xconn
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.xcb_connection()
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.extension_information(xinput::X11_EXTENSION_NAME)
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.expect("Failed to query XInput extension")
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.expect("X server missing XInput extension");
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let xkbext = xconn
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.xcb_connection()
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.extension_information(xkb::X11_EXTENSION_NAME)
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.expect("Failed to query XKB extension")
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.expect("X server missing XKB extension");
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// Check for XInput2 support.
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xconn
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.xcb_connection()
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.xinput_xi_query_version(2, 3)
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.expect("Failed to send XInput2 query version request")
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.reply()
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.expect("Error while checking for XInput2 query version reply");
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xconn.update_cached_wm_info(root);
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// Create an event loop.
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let event_loop =
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Loop::<EventLoopState>::try_new().expect("Failed to initialize the event loop");
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let handle = event_loop.handle();
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// Create the X11 event dispatcher.
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let source = X11Source::new(
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// SAFETY: xcb owns the FD and outlives the source.
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unsafe { BorrowedFd::borrow_raw(xconn.xcb_connection().as_raw_fd()) },
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calloop::Interest::READ,
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calloop::Mode::Level,
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);
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handle
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.insert_source(source, |readiness, _, state| {
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state.x11_readiness = readiness;
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Ok(calloop::PostAction::Continue)
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})
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.expect("Failed to register the X11 event dispatcher");
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let (waker, waker_source) =
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calloop::ping::make_ping().expect("Failed to create event loop waker");
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event_loop
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.handle()
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.insert_source(waker_source, move |_, _, _| {
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// No extra handling is required, we just need to wake-up.
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})
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.expect("Failed to register the event loop waker source");
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// Create a channel for handling redraw requests.
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let (redraw_sender, redraw_channel) = mpsc::channel();
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// Create a channel for sending activation tokens.
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let (activation_token_sender, activation_token_channel) = mpsc::channel();
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// Create a channel for sending user events.
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let (user_sender, user_channel) = mpsc::channel();
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let xkb_context =
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Context::from_x11_xkb(xconn.xcb_connection().get_raw_xcb_connection()).unwrap();
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let mut xmodmap = util::ModifierKeymap::new();
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xmodmap.reload_from_x_connection(&xconn);
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let window_target = ActiveEventLoop {
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ime,
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root,
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control_flow: Cell::new(ControlFlow::default()),
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exit: Cell::new(None),
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windows: Default::default(),
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ime_sender,
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xconn,
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wm_delete_window,
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net_wm_ping,
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redraw_sender: WakeSender {
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sender: redraw_sender, // not used again so no clone
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waker: waker.clone(),
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},
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activation_sender: WakeSender {
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sender: activation_token_sender, // not used again so no clone
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waker: waker.clone(),
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},
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device_events: Default::default(),
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};
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// Set initial device event filter.
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window_target.update_listen_device_events(true);
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let root_window_target =
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RootAEL { p: PlatformActiveEventLoop::X(window_target), _marker: PhantomData };
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let event_processor = EventProcessor {
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target: root_window_target,
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dnd,
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devices: Default::default(),
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randr_event_offset,
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ime_receiver,
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ime_event_receiver,
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xi2ext,
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xfiltered_modifiers: VecDeque::with_capacity(MAX_MOD_REPLAY_LEN),
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xmodmap,
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xkbext,
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xkb_context,
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num_touch: 0,
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held_key_press: None,
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first_touch: None,
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active_window: None,
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modifiers: Default::default(),
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is_composing: false,
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};
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// Register for device hotplug events
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// (The request buffer is flushed during `init_device`)
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let xconn = &EventProcessor::window_target(&event_processor.target).xconn;
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xconn
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.select_xinput_events(
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root,
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ALL_DEVICES,
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x11rb::protocol::xinput::XIEventMask::HIERARCHY,
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)
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.expect_then_ignore_error("Failed to register for XInput2 device hotplug events");
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xconn
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.select_xkb_events(
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0x100, // Use the "core keyboard device"
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xkb::EventType::NEW_KEYBOARD_NOTIFY
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| xkb::EventType::MAP_NOTIFY
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| xkb::EventType::STATE_NOTIFY,
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)
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.unwrap();
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event_processor.init_device(ALL_DEVICES);
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EventLoop {
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loop_running: false,
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event_loop,
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waker,
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event_processor,
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redraw_receiver: PeekableReceiver::from_recv(redraw_channel),
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activation_receiver: PeekableReceiver::from_recv(activation_token_channel),
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user_receiver: PeekableReceiver::from_recv(user_channel),
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user_sender,
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state: EventLoopState { x11_readiness: Readiness::EMPTY },
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}
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}
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pub fn create_proxy(&self) -> EventLoopProxy<T> {
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EventLoopProxy {
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user_sender: WakeSender { sender: self.user_sender.clone(), waker: self.waker.clone() },
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}
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}
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pub(crate) fn window_target(&self) -> &RootAEL {
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&self.event_processor.target
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}
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pub fn run_on_demand<F>(&mut self, mut event_handler: F) -> Result<(), EventLoopError>
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where
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F: FnMut(Event<T>, &RootAEL),
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{
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let exit = loop {
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match self.pump_events(None, &mut event_handler) {
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PumpStatus::Exit(0) => {
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break Ok(());
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},
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PumpStatus::Exit(code) => {
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break Err(EventLoopError::ExitFailure(code));
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},
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_ => {
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continue;
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},
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}
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};
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// Applications aren't allowed to carry windows between separate
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// `run_on_demand` calls but if they have only just dropped their
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// windows we need to make sure those last requests are sent to the
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// X Server.
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let wt = EventProcessor::window_target(&self.event_processor.target);
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wt.x_connection().sync_with_server().map_err(|x_err| {
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EventLoopError::Os(os_error!(OsError::XError(Arc::new(X11Error::Xlib(x_err)))))
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})?;
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exit
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}
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pub fn pump_events<F>(&mut self, timeout: Option<Duration>, mut callback: F) -> PumpStatus
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where
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F: FnMut(Event<T>, &RootAEL),
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{
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if !self.loop_running {
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self.loop_running = true;
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// run the initial loop iteration
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self.single_iteration(&mut callback, StartCause::Init);
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}
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// Consider the possibility that the `StartCause::Init` iteration could
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// request to Exit.
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if !self.exiting() {
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self.poll_events_with_timeout(timeout, &mut callback);
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}
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if let Some(code) = self.exit_code() {
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self.loop_running = false;
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callback(Event::LoopExiting, self.window_target());
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PumpStatus::Exit(code)
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} else {
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PumpStatus::Continue
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}
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}
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fn has_pending(&mut self) -> bool {
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self.event_processor.poll()
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|| self.user_receiver.has_incoming()
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|| self.redraw_receiver.has_incoming()
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}
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pub fn poll_events_with_timeout<F>(&mut self, mut timeout: Option<Duration>, mut callback: F)
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where
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F: FnMut(Event<T>, &RootAEL),
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{
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let start = Instant::now();
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let has_pending = self.has_pending();
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timeout = if has_pending {
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// If we already have work to do then we don't want to block on the next poll.
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Some(Duration::ZERO)
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} else {
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let control_flow_timeout = match self.control_flow() {
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ControlFlow::Wait => None,
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ControlFlow::Poll => Some(Duration::ZERO),
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ControlFlow::WaitUntil(wait_deadline) => {
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Some(wait_deadline.saturating_duration_since(start))
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},
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};
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min_timeout(control_flow_timeout, timeout)
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};
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self.state.x11_readiness = Readiness::EMPTY;
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if let Err(error) =
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self.event_loop.dispatch(timeout, &mut self.state).map_err(std::io::Error::from)
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{
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tracing::error!("Failed to poll for events: {error:?}");
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let exit_code = error.raw_os_error().unwrap_or(1);
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self.set_exit_code(exit_code);
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return;
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}
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// NB: `StartCause::Init` is handled as a special case and doesn't need
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// to be considered here
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let cause = match self.control_flow() {
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ControlFlow::Poll => StartCause::Poll,
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ControlFlow::Wait => StartCause::WaitCancelled { start, requested_resume: None },
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ControlFlow::WaitUntil(deadline) => {
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if Instant::now() < deadline {
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StartCause::WaitCancelled { start, requested_resume: Some(deadline) }
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} else {
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StartCause::ResumeTimeReached { start, requested_resume: deadline }
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}
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},
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};
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// False positive / spurious wake ups could lead to us spamming
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// redundant iterations of the event loop with no new events to
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// dispatch.
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//
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// If there's no readable event source then we just double check if we
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// have any pending `_receiver` events and if not we return without
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// running a loop iteration.
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// If we don't have any pending `_receiver`
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if !self.has_pending()
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&& !matches!(&cause, StartCause::ResumeTimeReached { .. } | StartCause::Poll)
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{
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return;
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}
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self.single_iteration(&mut callback, cause);
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}
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|
|
fn single_iteration<F>(&mut self, callback: &mut F, cause: StartCause)
|
|
where
|
|
F: FnMut(Event<T>, &RootAEL),
|
|
{
|
|
callback(Event::NewEvents(cause), &self.event_processor.target);
|
|
|
|
// NB: For consistency all platforms must emit a 'resumed' event even though X11
|
|
// applications don't themselves have a formal suspend/resume lifecycle.
|
|
if cause == StartCause::Init {
|
|
callback(Event::Resumed, &self.event_processor.target);
|
|
}
|
|
|
|
// Process all pending events
|
|
self.drain_events(callback);
|
|
|
|
// Empty activation tokens.
|
|
while let Ok((window_id, serial)) = self.activation_receiver.try_recv() {
|
|
let token = self.event_processor.with_window(window_id.0 as xproto::Window, |window| {
|
|
window.generate_activation_token()
|
|
});
|
|
|
|
match token {
|
|
Some(Ok(token)) => {
|
|
let event = Event::WindowEvent {
|
|
window_id: crate::window::WindowId(window_id),
|
|
event: WindowEvent::ActivationTokenDone {
|
|
serial,
|
|
token: crate::window::ActivationToken::_new(token),
|
|
},
|
|
};
|
|
callback(event, &self.event_processor.target)
|
|
},
|
|
Some(Err(e)) => {
|
|
tracing::error!("Failed to get activation token: {}", e);
|
|
},
|
|
None => {},
|
|
}
|
|
}
|
|
|
|
// Empty the user event buffer
|
|
{
|
|
while let Ok(event) = self.user_receiver.try_recv() {
|
|
callback(Event::UserEvent(event), &self.event_processor.target);
|
|
}
|
|
}
|
|
|
|
// Empty the redraw requests
|
|
{
|
|
let mut windows = HashSet::new();
|
|
|
|
while let Ok(window_id) = self.redraw_receiver.try_recv() {
|
|
windows.insert(window_id);
|
|
}
|
|
|
|
for window_id in windows {
|
|
let window_id = crate::window::WindowId(window_id);
|
|
callback(
|
|
Event::WindowEvent { window_id, event: WindowEvent::RedrawRequested },
|
|
&self.event_processor.target,
|
|
);
|
|
}
|
|
}
|
|
|
|
// This is always the last event we dispatch before poll again
|
|
{
|
|
callback(Event::AboutToWait, &self.event_processor.target);
|
|
}
|
|
}
|
|
|
|
fn drain_events<F>(&mut self, callback: &mut F)
|
|
where
|
|
F: FnMut(Event<T>, &RootAEL),
|
|
{
|
|
let mut xev = MaybeUninit::uninit();
|
|
|
|
while unsafe { self.event_processor.poll_one_event(xev.as_mut_ptr()) } {
|
|
let mut xev = unsafe { xev.assume_init() };
|
|
self.event_processor.process_event(&mut xev, |window_target, event| {
|
|
if let Event::WindowEvent {
|
|
window_id: crate::window::WindowId(wid),
|
|
event: WindowEvent::RedrawRequested,
|
|
} = event
|
|
{
|
|
let window_target = EventProcessor::window_target(window_target);
|
|
window_target.redraw_sender.send(wid).unwrap();
|
|
} else {
|
|
callback(event, window_target);
|
|
}
|
|
});
|
|
}
|
|
}
|
|
|
|
fn control_flow(&self) -> ControlFlow {
|
|
let window_target = EventProcessor::window_target(&self.event_processor.target);
|
|
window_target.control_flow()
|
|
}
|
|
|
|
fn exiting(&self) -> bool {
|
|
let window_target = EventProcessor::window_target(&self.event_processor.target);
|
|
window_target.exiting()
|
|
}
|
|
|
|
fn set_exit_code(&self, code: i32) {
|
|
let window_target = EventProcessor::window_target(&self.event_processor.target);
|
|
window_target.set_exit_code(code);
|
|
}
|
|
|
|
fn exit_code(&self) -> Option<i32> {
|
|
let window_target = EventProcessor::window_target(&self.event_processor.target);
|
|
window_target.exit_code()
|
|
}
|
|
}
|
|
|
|
impl<T> AsFd for EventLoop<T> {
|
|
fn as_fd(&self) -> BorrowedFd<'_> {
|
|
self.event_loop.as_fd()
|
|
}
|
|
}
|
|
|
|
impl<T> AsRawFd for EventLoop<T> {
|
|
fn as_raw_fd(&self) -> RawFd {
|
|
self.event_loop.as_raw_fd()
|
|
}
|
|
}
|
|
|
|
impl ActiveEventLoop {
|
|
/// Returns the `XConnection` of this events loop.
|
|
#[inline]
|
|
pub(crate) fn x_connection(&self) -> &Arc<XConnection> {
|
|
&self.xconn
|
|
}
|
|
|
|
pub fn available_monitors(&self) -> impl Iterator<Item = MonitorHandle> {
|
|
self.xconn.available_monitors().into_iter().flatten()
|
|
}
|
|
|
|
pub fn primary_monitor(&self) -> Option<MonitorHandle> {
|
|
self.xconn.primary_monitor().ok()
|
|
}
|
|
|
|
pub(crate) fn create_custom_cursor(&self, cursor: CustomCursorSource) -> RootCustomCursor {
|
|
RootCustomCursor { inner: PlatformCustomCursor::X(CustomCursor::new(self, cursor.inner)) }
|
|
}
|
|
|
|
pub fn listen_device_events(&self, allowed: DeviceEvents) {
|
|
self.device_events.set(allowed);
|
|
}
|
|
|
|
/// Update the device event based on window focus.
|
|
pub fn update_listen_device_events(&self, focus: bool) {
|
|
let device_events = self.device_events.get() == DeviceEvents::Always
|
|
|| (focus && self.device_events.get() == DeviceEvents::WhenFocused);
|
|
|
|
let mut mask = xinput::XIEventMask::from(0u32);
|
|
if device_events {
|
|
mask = xinput::XIEventMask::RAW_MOTION
|
|
| xinput::XIEventMask::RAW_BUTTON_PRESS
|
|
| xinput::XIEventMask::RAW_BUTTON_RELEASE
|
|
| xinput::XIEventMask::RAW_KEY_PRESS
|
|
| xinput::XIEventMask::RAW_KEY_RELEASE;
|
|
}
|
|
|
|
self.xconn
|
|
.select_xinput_events(self.root, ALL_MASTER_DEVICES, mask)
|
|
.expect_then_ignore_error("Failed to update device event filter");
|
|
}
|
|
|
|
#[cfg(feature = "rwh_05")]
|
|
pub fn raw_display_handle_rwh_05(&self) -> rwh_05::RawDisplayHandle {
|
|
let mut display_handle = rwh_05::XlibDisplayHandle::empty();
|
|
display_handle.display = self.xconn.display as *mut _;
|
|
display_handle.screen = self.xconn.default_screen_index() as c_int;
|
|
display_handle.into()
|
|
}
|
|
|
|
#[cfg(feature = "rwh_06")]
|
|
pub fn raw_display_handle_rwh_06(
|
|
&self,
|
|
) -> Result<rwh_06::RawDisplayHandle, rwh_06::HandleError> {
|
|
let display_handle = rwh_06::XlibDisplayHandle::new(
|
|
// SAFETY: display will never be null
|
|
Some(
|
|
std::ptr::NonNull::new(self.xconn.display as *mut _)
|
|
.expect("X11 display should never be null"),
|
|
),
|
|
self.xconn.default_screen_index() as c_int,
|
|
);
|
|
Ok(display_handle.into())
|
|
}
|
|
|
|
pub(crate) fn set_control_flow(&self, control_flow: ControlFlow) {
|
|
self.control_flow.set(control_flow)
|
|
}
|
|
|
|
pub(crate) fn control_flow(&self) -> ControlFlow {
|
|
self.control_flow.get()
|
|
}
|
|
|
|
pub(crate) fn exit(&self) {
|
|
self.exit.set(Some(0))
|
|
}
|
|
|
|
pub(crate) fn clear_exit(&self) {
|
|
self.exit.set(None)
|
|
}
|
|
|
|
pub(crate) fn exiting(&self) -> bool {
|
|
self.exit.get().is_some()
|
|
}
|
|
|
|
pub(crate) fn set_exit_code(&self, code: i32) {
|
|
self.exit.set(Some(code))
|
|
}
|
|
|
|
pub(crate) fn exit_code(&self) -> Option<i32> {
|
|
self.exit.get()
|
|
}
|
|
}
|
|
|
|
impl<T: 'static> EventLoopProxy<T> {
|
|
pub fn send_event(&self, event: T) -> Result<(), EventLoopClosed<T>> {
|
|
self.user_sender.send(event).map_err(|e| EventLoopClosed(e.0))
|
|
}
|
|
}
|
|
|
|
struct DeviceInfo<'a> {
|
|
xconn: &'a XConnection,
|
|
info: *const ffi::XIDeviceInfo,
|
|
count: usize,
|
|
}
|
|
|
|
impl<'a> DeviceInfo<'a> {
|
|
fn get(xconn: &'a XConnection, device: c_int) -> Option<Self> {
|
|
unsafe {
|
|
let mut count = 0;
|
|
let info = (xconn.xinput2.XIQueryDevice)(xconn.display, device, &mut count);
|
|
xconn.check_errors().ok()?;
|
|
|
|
if info.is_null() || count == 0 {
|
|
None
|
|
} else {
|
|
Some(DeviceInfo { xconn, info, count: count as usize })
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
impl<'a> Drop for DeviceInfo<'a> {
|
|
fn drop(&mut self) {
|
|
assert!(!self.info.is_null());
|
|
unsafe { (self.xconn.xinput2.XIFreeDeviceInfo)(self.info as *mut _) };
|
|
}
|
|
}
|
|
|
|
impl<'a> Deref for DeviceInfo<'a> {
|
|
type Target = [ffi::XIDeviceInfo];
|
|
|
|
fn deref(&self) -> &Self::Target {
|
|
unsafe { slice::from_raw_parts(self.info, self.count) }
|
|
}
|
|
}
|
|
|
|
#[derive(Debug, Copy, Clone, PartialEq, Eq, PartialOrd, Ord, Hash)]
|
|
pub struct DeviceId(xinput::DeviceId);
|
|
|
|
impl DeviceId {
|
|
#[allow(unused)]
|
|
pub const unsafe fn dummy() -> Self {
|
|
DeviceId(0)
|
|
}
|
|
}
|
|
|
|
pub(crate) struct Window(Arc<UnownedWindow>);
|
|
|
|
impl Deref for Window {
|
|
type Target = UnownedWindow;
|
|
|
|
#[inline]
|
|
fn deref(&self) -> &UnownedWindow {
|
|
&self.0
|
|
}
|
|
}
|
|
|
|
impl Window {
|
|
pub(crate) fn new(
|
|
event_loop: &ActiveEventLoop,
|
|
attribs: WindowAttributes,
|
|
) -> Result<Self, RootOsError> {
|
|
let window = Arc::new(UnownedWindow::new(event_loop, attribs)?);
|
|
event_loop.windows.borrow_mut().insert(window.id(), Arc::downgrade(&window));
|
|
Ok(Window(window))
|
|
}
|
|
}
|
|
|
|
impl Drop for Window {
|
|
fn drop(&mut self) {
|
|
let window = self.deref();
|
|
let xconn = &window.xconn;
|
|
|
|
if let Ok(c) = xconn.xcb_connection().destroy_window(window.id().0 as xproto::Window) {
|
|
c.ignore_error();
|
|
}
|
|
}
|
|
}
|
|
|
|
/// Generic sum error type for X11 errors.
|
|
#[derive(Debug)]
|
|
pub enum X11Error {
|
|
/// An error from the Xlib library.
|
|
Xlib(XError),
|
|
|
|
/// An error that occurred while trying to connect to the X server.
|
|
Connect(ConnectError),
|
|
|
|
/// An error that occurred over the connection medium.
|
|
Connection(ConnectionError),
|
|
|
|
/// An error that occurred logically on the X11 end.
|
|
X11(LogicalError),
|
|
|
|
/// The XID range has been exhausted.
|
|
XidsExhausted(IdsExhausted),
|
|
|
|
/// Got `null` from an Xlib function without a reason.
|
|
UnexpectedNull(&'static str),
|
|
|
|
/// Got an invalid activation token.
|
|
InvalidActivationToken(Vec<u8>),
|
|
|
|
/// An extension that we rely on is not available.
|
|
MissingExtension(&'static str),
|
|
|
|
/// Could not find a matching X11 visual for this visualid
|
|
NoSuchVisual(xproto::Visualid),
|
|
|
|
/// Unable to parse xsettings.
|
|
XsettingsParse(xsettings::ParserError),
|
|
|
|
/// Failed to get property.
|
|
GetProperty(util::GetPropertyError),
|
|
}
|
|
|
|
impl fmt::Display for X11Error {
|
|
fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
|
|
match self {
|
|
X11Error::Xlib(e) => write!(f, "Xlib error: {}", e),
|
|
X11Error::Connect(e) => write!(f, "X11 connection error: {}", e),
|
|
X11Error::Connection(e) => write!(f, "X11 connection error: {}", e),
|
|
X11Error::XidsExhausted(e) => write!(f, "XID range exhausted: {}", e),
|
|
X11Error::GetProperty(e) => write!(f, "Failed to get X property {}", e),
|
|
X11Error::X11(e) => write!(f, "X11 error: {:?}", e),
|
|
X11Error::UnexpectedNull(s) => write!(f, "Xlib function returned null: {}", s),
|
|
X11Error::InvalidActivationToken(s) => write!(
|
|
f,
|
|
"Invalid activation token: {}",
|
|
std::str::from_utf8(s).unwrap_or("<invalid utf8>")
|
|
),
|
|
X11Error::MissingExtension(s) => write!(f, "Missing X11 extension: {}", s),
|
|
X11Error::NoSuchVisual(visualid) => {
|
|
write!(f, "Could not find a matching X11 visual for ID `{:x}`", visualid)
|
|
},
|
|
X11Error::XsettingsParse(err) => {
|
|
write!(f, "Failed to parse xsettings: {:?}", err)
|
|
},
|
|
}
|
|
}
|
|
}
|
|
|
|
impl std::error::Error for X11Error {
|
|
fn source(&self) -> Option<&(dyn std::error::Error + 'static)> {
|
|
match self {
|
|
X11Error::Xlib(e) => Some(e),
|
|
X11Error::Connect(e) => Some(e),
|
|
X11Error::Connection(e) => Some(e),
|
|
X11Error::XidsExhausted(e) => Some(e),
|
|
_ => None,
|
|
}
|
|
}
|
|
}
|
|
|
|
impl From<XError> for X11Error {
|
|
fn from(e: XError) -> Self {
|
|
X11Error::Xlib(e)
|
|
}
|
|
}
|
|
|
|
impl From<ConnectError> for X11Error {
|
|
fn from(e: ConnectError) -> Self {
|
|
X11Error::Connect(e)
|
|
}
|
|
}
|
|
|
|
impl From<ConnectionError> for X11Error {
|
|
fn from(e: ConnectionError) -> Self {
|
|
X11Error::Connection(e)
|
|
}
|
|
}
|
|
|
|
impl From<LogicalError> for X11Error {
|
|
fn from(e: LogicalError) -> Self {
|
|
X11Error::X11(e)
|
|
}
|
|
}
|
|
|
|
impl From<ReplyError> for X11Error {
|
|
fn from(value: ReplyError) -> Self {
|
|
match value {
|
|
ReplyError::ConnectionError(e) => e.into(),
|
|
ReplyError::X11Error(e) => e.into(),
|
|
}
|
|
}
|
|
}
|
|
|
|
impl From<ime::ImeContextCreationError> for X11Error {
|
|
fn from(value: ime::ImeContextCreationError) -> Self {
|
|
match value {
|
|
ime::ImeContextCreationError::XError(e) => e.into(),
|
|
ime::ImeContextCreationError::Null => Self::UnexpectedNull("XOpenIM"),
|
|
}
|
|
}
|
|
}
|
|
|
|
impl From<ReplyOrIdError> for X11Error {
|
|
fn from(value: ReplyOrIdError) -> Self {
|
|
match value {
|
|
ReplyOrIdError::ConnectionError(e) => e.into(),
|
|
ReplyOrIdError::X11Error(e) => e.into(),
|
|
ReplyOrIdError::IdsExhausted => Self::XidsExhausted(IdsExhausted),
|
|
}
|
|
}
|
|
}
|
|
|
|
impl From<xsettings::ParserError> for X11Error {
|
|
fn from(value: xsettings::ParserError) -> Self {
|
|
Self::XsettingsParse(value)
|
|
}
|
|
}
|
|
|
|
impl From<util::GetPropertyError> for X11Error {
|
|
fn from(value: util::GetPropertyError) -> Self {
|
|
Self::GetProperty(value)
|
|
}
|
|
}
|
|
|
|
/// Type alias for a void cookie.
|
|
type VoidCookie<'a> = x11rb::cookie::VoidCookie<'a, X11rbConnection>;
|
|
|
|
/// Extension trait for `Result<VoidCookie, E>`.
|
|
trait CookieResultExt {
|
|
/// Unwrap the send error and ignore the result.
|
|
fn expect_then_ignore_error(self, msg: &str);
|
|
}
|
|
|
|
impl<'a, E: fmt::Debug> CookieResultExt for Result<VoidCookie<'a>, E> {
|
|
fn expect_then_ignore_error(self, msg: &str) {
|
|
self.expect(msg).ignore_error()
|
|
}
|
|
}
|
|
|
|
fn mkwid(w: xproto::Window) -> crate::window::WindowId {
|
|
crate::window::WindowId(crate::platform_impl::platform::WindowId(w as _))
|
|
}
|
|
fn mkdid(w: xinput::DeviceId) -> crate::event::DeviceId {
|
|
crate::event::DeviceId(crate::platform_impl::DeviceId::X(DeviceId(w)))
|
|
}
|
|
|
|
#[derive(Debug)]
|
|
pub struct Device {
|
|
_name: String,
|
|
scroll_axes: Vec<(i32, ScrollAxis)>,
|
|
// For master devices, this is the paired device (pointer <-> keyboard).
|
|
// For slave devices, this is the master.
|
|
attachment: c_int,
|
|
}
|
|
|
|
#[derive(Debug, Copy, Clone)]
|
|
struct ScrollAxis {
|
|
increment: f64,
|
|
orientation: ScrollOrientation,
|
|
position: f64,
|
|
}
|
|
|
|
#[derive(Debug, Copy, Clone)]
|
|
enum ScrollOrientation {
|
|
Vertical,
|
|
Horizontal,
|
|
}
|
|
|
|
impl Device {
|
|
fn new(info: &ffi::XIDeviceInfo) -> Self {
|
|
let name = unsafe { CStr::from_ptr(info.name).to_string_lossy() };
|
|
let mut scroll_axes = Vec::new();
|
|
|
|
if Device::physical_device(info) {
|
|
// Identify scroll axes
|
|
for &class_ptr in Device::classes(info) {
|
|
let ty = unsafe { (*class_ptr)._type };
|
|
if ty == ffi::XIScrollClass {
|
|
let info = unsafe { &*(class_ptr as *const ffi::XIScrollClassInfo) };
|
|
scroll_axes.push((info.number, ScrollAxis {
|
|
increment: info.increment,
|
|
orientation: match info.scroll_type {
|
|
ffi::XIScrollTypeHorizontal => ScrollOrientation::Horizontal,
|
|
ffi::XIScrollTypeVertical => ScrollOrientation::Vertical,
|
|
_ => unreachable!(),
|
|
},
|
|
position: 0.0,
|
|
}));
|
|
}
|
|
}
|
|
}
|
|
|
|
let mut device =
|
|
Device { _name: name.into_owned(), scroll_axes, attachment: info.attachment };
|
|
device.reset_scroll_position(info);
|
|
device
|
|
}
|
|
|
|
fn reset_scroll_position(&mut self, info: &ffi::XIDeviceInfo) {
|
|
if Device::physical_device(info) {
|
|
for &class_ptr in Device::classes(info) {
|
|
let ty = unsafe { (*class_ptr)._type };
|
|
if ty == ffi::XIValuatorClass {
|
|
let info = unsafe { &*(class_ptr as *const ffi::XIValuatorClassInfo) };
|
|
if let Some(&mut (_, ref mut axis)) =
|
|
self.scroll_axes.iter_mut().find(|&&mut (axis, _)| axis == info.number)
|
|
{
|
|
axis.position = info.value;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
#[inline]
|
|
fn physical_device(info: &ffi::XIDeviceInfo) -> bool {
|
|
info._use == ffi::XISlaveKeyboard
|
|
|| info._use == ffi::XISlavePointer
|
|
|| info._use == ffi::XIFloatingSlave
|
|
}
|
|
|
|
#[inline]
|
|
fn classes(info: &ffi::XIDeviceInfo) -> &[*const ffi::XIAnyClassInfo] {
|
|
unsafe {
|
|
slice::from_raw_parts(
|
|
info.classes as *const *const ffi::XIAnyClassInfo,
|
|
info.num_classes as usize,
|
|
)
|
|
}
|
|
}
|
|
}
|
|
|
|
/// Convert the raw X11 representation for a 32-bit floating point to a double.
|
|
#[inline]
|
|
fn xinput_fp1616_to_float(fp: xinput::Fp1616) -> f64 {
|
|
(fp as f64) / ((1 << 16) as f64)
|
|
}
|