mirror of
https://github.com/servo/servo.git
synced 2025-06-06 16:45:39 +00:00
1067 lines
44 KiB
Rust
1067 lines
44 KiB
Rust
/* This Source Code Form is subject to the terms of the Mozilla Public
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* License, v. 2.0. If a copy of the MPL was not distributed with this
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* file, You can obtain one at http://mozilla.org/MPL/2.0/. */
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//! The layout task. Performs layout on the DOM, builds display lists and sends them to be
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//! painted.
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use css::node_style::StyledNode;
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use construct::ConstructionResult;
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use context::SharedLayoutContext;
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use flow::{mod, Flow, ImmutableFlowUtils, MutableFlowUtils, MutableOwnedFlowUtils};
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use flow_ref::FlowRef;
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use fragment::{Fragment, FragmentBoundsIterator};
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use incremental::{LayoutDamageComputation, REFLOW, REFLOW_ENTIRE_DOCUMENT, REPAINT};
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use layout_debug;
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use parallel::{mod, UnsafeFlow};
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use sequential;
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use util::{LayoutDataAccess, LayoutDataWrapper, OpaqueNodeMethods, ToGfxColor};
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use wrapper::{LayoutNode, TLayoutNode, ThreadSafeLayoutNode};
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use encoding::EncodingRef;
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use encoding::all::UTF_8;
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use geom::point::Point2D;
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use geom::rect::Rect;
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use geom::size::Size2D;
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use geom::scale_factor::ScaleFactor;
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use gfx::color;
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use gfx::display_list::{ClippingRegion, DisplayItemMetadata, DisplayList, OpaqueNode};
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use gfx::display_list::{StackingContext};
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use gfx::font_cache_task::FontCacheTask;
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use gfx::paint_task::{mod, PaintInitMsg, PaintChan, PaintLayer};
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use layout_traits::{mod, LayoutControlMsg, LayoutTaskFactory};
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use log;
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use script::dom::bindings::js::JS;
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use script::dom::node::{LayoutDataRef, Node, NodeTypeId};
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use script::dom::element::ElementTypeId;
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use script::dom::htmlelement::HTMLElementTypeId;
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use script::layout_interface::{ContentBoxResponse, ContentBoxesResponse};
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use script::layout_interface::{ContentBoxesQuery, ContentBoxQuery};
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use script::layout_interface::{HitTestResponse, LayoutChan, LayoutRPC};
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use script::layout_interface::{MouseOverResponse, Msg, NoQuery};
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use script::layout_interface::{Reflow, ReflowGoal, ScriptLayoutChan, TrustedNodeAddress};
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use script_traits::{SendEventMsg, ReflowEvent, ReflowCompleteMsg, OpaqueScriptLayoutChannel};
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use script_traits::{ScriptControlChan, UntrustedNodeAddress};
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use servo_msg::compositor_msg::Scrollable;
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use servo_msg::constellation_msg::{ConstellationChan, Failure, FailureMsg, PipelineExitType};
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use servo_msg::constellation_msg::{PipelineId, SetCursorMsg};
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use servo_net::image_cache_task::{ImageCacheTask, ImageResponseMsg};
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use servo_net::local_image_cache::{ImageResponder, LocalImageCache};
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use servo_net::resource_task::{ResourceTask, load_bytes_iter};
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use servo_util::cursor::DefaultCursor;
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use servo_util::geometry::Au;
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use servo_util::logical_geometry::LogicalPoint;
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use servo_util::opts;
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use servo_util::smallvec::{SmallVec, SmallVec1, VecLike};
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use servo_util::task::spawn_named_with_send_on_failure;
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use servo_util::task_state;
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use servo_util::time::{mod, ProfilerMetadata, TimeProfilerChan, TimerMetadataFrameType};
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use servo_util::time::{TimerMetadataReflowType, profile};
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use servo_util::workqueue::WorkQueue;
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use std::cell::Cell;
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use std::comm::{channel, Sender, Receiver, Select};
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use std::mem;
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use std::ptr;
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use style::{StylesheetOrigin, Stylesheet, Stylist, TNode, iter_font_face_rules};
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use style::{MediaType, Device};
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use sync::{Arc, Mutex, MutexGuard};
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use url::Url;
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/// Mutable data belonging to the LayoutTask.
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///
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/// This needs to be protected by a mutex so we can do fast RPCs.
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pub struct LayoutTaskData {
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/// The local image cache.
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pub local_image_cache: Arc<Mutex<LocalImageCache<UntrustedNodeAddress>>>,
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/// The channel on which messages can be sent to the constellation.
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pub constellation_chan: ConstellationChan,
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/// The size of the viewport.
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pub screen_size: Size2D<Au>,
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/// The root stacking context.
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pub stacking_context: Option<Arc<StackingContext>>,
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pub stylist: Box<Stylist>,
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/// The workers that we use for parallel operation.
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pub parallel_traversal: Option<WorkQueue<*const SharedLayoutContext, UnsafeFlow>>,
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/// The dirty rect. Used during display list construction.
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pub dirty: Rect<Au>,
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/// Starts at zero, and increased by one every time a layout completes.
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/// This can be used to easily check for invalid stale data.
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pub generation: uint,
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/// A queued response for the union of the content boxes of a node.
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pub content_box_response: Rect<Au>,
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/// A queued response for the content boxes of a node.
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pub content_boxes_response: Vec<Rect<Au>>,
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}
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/// Information needed by the layout task.
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pub struct LayoutTask {
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/// The ID of the pipeline that we belong to.
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pub id: PipelineId,
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/// The port on which we receive messages from the script task.
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pub port: Receiver<Msg>,
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/// The port on which we receive messages from the constellation
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pub pipeline_port: Receiver<LayoutControlMsg>,
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//// The channel to send messages to ourself.
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pub chan: LayoutChan,
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/// The channel on which messages can be sent to the script task.
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pub script_chan: ScriptControlChan,
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/// The channel on which messages can be sent to the painting task.
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pub paint_chan: PaintChan,
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/// The channel on which messages can be sent to the time profiler.
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pub time_profiler_chan: TimeProfilerChan,
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/// The channel on which messages can be sent to the resource task.
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pub resource_task: ResourceTask,
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/// The channel on which messages can be sent to the image cache.
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pub image_cache_task: ImageCacheTask,
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/// Public interface to the font cache task.
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pub font_cache_task: FontCacheTask,
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/// Is this the first reflow in this LayoutTask?
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pub first_reflow: Cell<bool>,
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/// A mutex to allow for fast, read-only RPC of layout's internal data
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/// structures, while still letting the LayoutTask modify them.
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///
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/// All the other elements of this struct are read-only.
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pub rw_data: Arc<Mutex<LayoutTaskData>>,
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}
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struct LayoutImageResponder {
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id: PipelineId,
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script_chan: ScriptControlChan,
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}
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impl ImageResponder<UntrustedNodeAddress> for LayoutImageResponder {
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fn respond(&self) -> proc(ImageResponseMsg, UntrustedNodeAddress):Send {
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let id = self.id.clone();
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let script_chan = self.script_chan.clone();
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let f: proc(ImageResponseMsg, UntrustedNodeAddress):Send =
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proc(_, node_address) {
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let ScriptControlChan(chan) = script_chan;
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debug!("Dirtying {:x}", node_address as uint);
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let mut nodes = SmallVec1::new();
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nodes.vec_push(node_address);
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drop(chan.send_opt(SendEventMsg(id.clone(), ReflowEvent(nodes))))
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};
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f
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}
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}
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impl LayoutTaskFactory for LayoutTask {
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/// Spawns a new layout task.
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fn create(_phantom: Option<&mut LayoutTask>,
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id: PipelineId,
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chan: OpaqueScriptLayoutChannel,
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pipeline_port: Receiver<LayoutControlMsg>,
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constellation_chan: ConstellationChan,
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failure_msg: Failure,
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script_chan: ScriptControlChan,
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paint_chan: PaintChan,
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resource_task: ResourceTask,
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img_cache_task: ImageCacheTask,
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font_cache_task: FontCacheTask,
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time_profiler_chan: TimeProfilerChan,
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shutdown_chan: Sender<()>) {
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let ConstellationChan(con_chan) = constellation_chan.clone();
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spawn_named_with_send_on_failure("LayoutTask", task_state::LAYOUT, proc() {
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{ // Ensures layout task is destroyed before we send shutdown message
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let sender = chan.sender();
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let layout =
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LayoutTask::new(
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id,
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chan.receiver(),
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LayoutChan(sender),
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pipeline_port,
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constellation_chan,
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script_chan,
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paint_chan,
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resource_task,
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img_cache_task,
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font_cache_task,
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time_profiler_chan);
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layout.start();
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}
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shutdown_chan.send(());
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}, FailureMsg(failure_msg), con_chan, false);
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}
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}
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/// The `LayoutTask` `rw_data` lock must remain locked until the first reflow,
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/// as RPC calls don't make sense until then. Use this in combination with
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/// `LayoutTask::lock_rw_data` and `LayoutTask::return_rw_data`.
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enum RWGuard<'a> {
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/// If the lock was previously held, from when the task started.
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Held(MutexGuard<'a, LayoutTaskData>),
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/// If the lock was just used, and has been returned since there has been
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/// a reflow already.
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Used(MutexGuard<'a, LayoutTaskData>),
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}
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impl<'a> Deref<LayoutTaskData> for RWGuard<'a> {
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fn deref(&self) -> &LayoutTaskData {
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match *self {
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RWGuard::Held(ref x) => x.deref(),
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RWGuard::Used(ref x) => x.deref(),
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}
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}
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}
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impl<'a> DerefMut<LayoutTaskData> for RWGuard<'a> {
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fn deref_mut(&mut self) -> &mut LayoutTaskData {
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match *self {
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RWGuard::Held(ref mut x) => x.deref_mut(),
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RWGuard::Used(ref mut x) => x.deref_mut(),
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}
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}
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}
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impl LayoutTask {
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/// Creates a new `LayoutTask` structure.
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fn new(id: PipelineId,
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port: Receiver<Msg>,
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chan: LayoutChan,
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pipeline_port: Receiver<LayoutControlMsg>,
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constellation_chan: ConstellationChan,
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script_chan: ScriptControlChan,
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paint_chan: PaintChan,
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resource_task: ResourceTask,
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image_cache_task: ImageCacheTask,
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font_cache_task: FontCacheTask,
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time_profiler_chan: TimeProfilerChan)
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-> LayoutTask {
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let local_image_cache =
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Arc::new(Mutex::new(LocalImageCache::new(image_cache_task.clone())));
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let screen_size = Size2D(Au(0), Au(0));
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let device = Device::new(MediaType::Screen, opts::get().initial_window_size.as_f32() * ScaleFactor(1.0));
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let parallel_traversal = if opts::get().layout_threads != 1 {
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Some(WorkQueue::new("LayoutWorker", task_state::LAYOUT,
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opts::get().layout_threads, ptr::null()))
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} else {
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None
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};
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LayoutTask {
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id: id,
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port: port,
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pipeline_port: pipeline_port,
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chan: chan,
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script_chan: script_chan,
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paint_chan: paint_chan,
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time_profiler_chan: time_profiler_chan,
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resource_task: resource_task,
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image_cache_task: image_cache_task.clone(),
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font_cache_task: font_cache_task,
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first_reflow: Cell::new(true),
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rw_data: Arc::new(Mutex::new(
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LayoutTaskData {
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local_image_cache: local_image_cache,
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constellation_chan: constellation_chan,
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screen_size: screen_size,
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stacking_context: None,
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stylist: box Stylist::new(device),
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parallel_traversal: parallel_traversal,
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dirty: Rect::zero(),
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generation: 0,
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content_box_response: Rect::zero(),
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content_boxes_response: Vec::new(),
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})),
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}
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}
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/// Starts listening on the port.
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fn start(self) {
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let mut possibly_locked_rw_data = Some(self.rw_data.lock());
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while self.handle_request(&mut possibly_locked_rw_data) {
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// Loop indefinitely.
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}
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}
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// Create a layout context for use in building display lists, hit testing, &c.
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fn build_shared_layout_context(&self,
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rw_data: &LayoutTaskData,
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reflow_root: &LayoutNode,
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url: &Url)
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-> SharedLayoutContext {
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SharedLayoutContext {
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image_cache: rw_data.local_image_cache.clone(),
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screen_size: rw_data.screen_size.clone(),
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constellation_chan: rw_data.constellation_chan.clone(),
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layout_chan: self.chan.clone(),
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font_cache_task: self.font_cache_task.clone(),
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stylist: &*rw_data.stylist,
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url: (*url).clone(),
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reflow_root: OpaqueNodeMethods::from_layout_node(reflow_root),
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dirty: Rect::zero(),
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generation: rw_data.generation,
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}
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}
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/// Receives and dispatches messages from the script and constellation tasks
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fn handle_request<'a>(&'a self,
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possibly_locked_rw_data: &mut Option<MutexGuard<'a, LayoutTaskData>>)
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-> bool {
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enum PortToRead {
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Pipeline,
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Script,
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}
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let port_to_read = {
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let sel = Select::new();
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let mut port1 = sel.handle(&self.port);
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let mut port2 = sel.handle(&self.pipeline_port);
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unsafe {
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port1.add();
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port2.add();
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}
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let ret = sel.wait();
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if ret == port1.id() {
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PortToRead::Script
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} else if ret == port2.id() {
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PortToRead::Pipeline
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} else {
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panic!("invalid select result");
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}
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};
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match port_to_read {
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PortToRead::Pipeline => {
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match self.pipeline_port.recv() {
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layout_traits::ExitNowMsg(exit_type) => {
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self.handle_script_request(Msg::ExitNow(exit_type), possibly_locked_rw_data)
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}
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}
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},
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PortToRead::Script => {
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let msg = self.port.recv();
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self.handle_script_request(msg, possibly_locked_rw_data)
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}
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}
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}
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/// If no reflow has happened yet, this will just return the lock in
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/// `possibly_locked_rw_data`. Otherwise, it will acquire the `rw_data` lock.
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///
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/// If you do not wish RPCs to remain blocked, just drop the `RWGuard`
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/// returned from this function. If you _do_ wish for them to remain blocked,
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/// use `return_rw_data`.
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fn lock_rw_data<'a>(&'a self,
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possibly_locked_rw_data: &mut Option<MutexGuard<'a, LayoutTaskData>>)
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-> RWGuard<'a> {
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match possibly_locked_rw_data.take() {
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None => RWGuard::Used(self.rw_data.lock()),
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Some(x) => RWGuard::Held(x),
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}
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}
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/// If no reflow has ever been triggered, this will keep the lock, locked
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/// (and saved in `possibly_locked_rw_data`). If it has been, the lock will
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/// be unlocked.
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fn return_rw_data<'a>(possibly_locked_rw_data: &mut Option<MutexGuard<'a, LayoutTaskData>>,
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rw_data: RWGuard<'a>) {
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match rw_data {
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RWGuard::Used(x) => drop(x),
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RWGuard::Held(x) => *possibly_locked_rw_data = Some(x),
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}
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}
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/// Receives and dispatches messages from the script task.
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fn handle_script_request<'a>(&'a self,
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request: Msg,
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possibly_locked_rw_data: &mut Option<MutexGuard<'a,
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LayoutTaskData>>)
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-> bool {
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match request {
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Msg::AddStylesheet(sheet) => self.handle_add_stylesheet(sheet, possibly_locked_rw_data),
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Msg::LoadStylesheet(url) => self.handle_load_stylesheet(url, possibly_locked_rw_data),
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Msg::SetQuirksMode => self.handle_set_quirks_mode(possibly_locked_rw_data),
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Msg::GetRPC(response_chan) => {
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response_chan.send(box LayoutRPCImpl(self.rw_data.clone()) as
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Box<LayoutRPC + Send>);
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},
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Msg::Reflow(data) => {
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profile(time::LayoutPerformCategory,
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self.profiler_metadata(&*data),
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self.time_profiler_chan.clone(),
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|| self.handle_reflow(&*data, possibly_locked_rw_data));
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},
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Msg::ReapLayoutData(dead_layout_data) => {
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unsafe {
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LayoutTask::handle_reap_layout_data(dead_layout_data)
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}
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},
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Msg::PrepareToExit(response_chan) => {
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debug!("layout: PrepareToExitMsg received");
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self.prepare_to_exit(response_chan, possibly_locked_rw_data);
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return false
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},
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Msg::ExitNow(exit_type) => {
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debug!("layout: ExitNowMsg received");
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self.exit_now(possibly_locked_rw_data, exit_type);
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return false
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}
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}
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true
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}
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/// Enters a quiescent state in which no new messages except for `layout_interface::Msg::ReapLayoutData` will be
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/// processed until an `ExitNowMsg` is received. A pong is immediately sent on the given
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/// response channel.
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fn prepare_to_exit<'a>(&'a self,
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response_chan: Sender<()>,
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possibly_locked_rw_data: &mut Option<MutexGuard<'a, LayoutTaskData>>) {
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response_chan.send(());
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loop {
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match self.port.recv() {
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Msg::ReapLayoutData(dead_layout_data) => {
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unsafe {
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LayoutTask::handle_reap_layout_data(dead_layout_data)
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}
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}
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Msg::ExitNow(exit_type) => {
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debug!("layout task is exiting...");
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self.exit_now(possibly_locked_rw_data, exit_type);
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break
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}
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_ => {
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panic!("layout: message that wasn't `ExitNowMsg` received after \
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`PrepareToExitMsg`")
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}
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}
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}
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}
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/// Shuts down the layout task now. If there are any DOM nodes left, layout will now (safely)
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/// crash.
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fn exit_now<'a>(&'a self,
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possibly_locked_rw_data: &mut Option<MutexGuard<'a, LayoutTaskData>>,
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exit_type: PipelineExitType) {
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let (response_chan, response_port) = channel();
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{
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let mut rw_data = self.lock_rw_data(possibly_locked_rw_data);
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match rw_data.deref_mut().parallel_traversal {
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None => {}
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Some(ref mut traversal) => traversal.shutdown(),
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}
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LayoutTask::return_rw_data(possibly_locked_rw_data, rw_data);
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}
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self.paint_chan.send(paint_task::ExitMsg(Some(response_chan), exit_type));
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response_port.recv()
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}
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fn handle_load_stylesheet<'a>(&'a self,
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url: Url,
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possibly_locked_rw_data:
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|
&mut Option<MutexGuard<'a, LayoutTaskData>>) {
|
|
// TODO: Get the actual value. http://dev.w3.org/csswg/css-syntax/#environment-encoding
|
|
let environment_encoding = UTF_8 as EncodingRef;
|
|
|
|
let (metadata, iter) = load_bytes_iter(&self.resource_task, url);
|
|
let protocol_encoding_label = metadata.charset.as_ref().map(|s| s.as_slice());
|
|
let final_url = metadata.final_url;
|
|
|
|
let sheet = Stylesheet::from_bytes_iter(iter,
|
|
final_url,
|
|
protocol_encoding_label,
|
|
Some(environment_encoding),
|
|
StylesheetOrigin::Author);
|
|
self.handle_add_stylesheet(sheet, possibly_locked_rw_data);
|
|
}
|
|
|
|
fn handle_add_stylesheet<'a>(&'a self,
|
|
sheet: Stylesheet,
|
|
possibly_locked_rw_data:
|
|
&mut Option<MutexGuard<'a, LayoutTaskData>>) {
|
|
// Find all font-face rules and notify the font cache of them.
|
|
// GWTODO: Need to handle unloading web fonts (when we handle unloading stylesheets!)
|
|
let mut rw_data = self.lock_rw_data(possibly_locked_rw_data);
|
|
iter_font_face_rules(&sheet, &rw_data.stylist.device, |family, src| {
|
|
self.font_cache_task.add_web_font(family.into_string(), (*src).clone());
|
|
});
|
|
rw_data.stylist.add_stylesheet(sheet);
|
|
LayoutTask::return_rw_data(possibly_locked_rw_data, rw_data);
|
|
}
|
|
|
|
/// Sets quirks mode for the document, causing the quirks mode stylesheet to be loaded.
|
|
fn handle_set_quirks_mode<'a>(&'a self,
|
|
possibly_locked_rw_data:
|
|
&mut Option<MutexGuard<'a, LayoutTaskData>>) {
|
|
let mut rw_data = self.lock_rw_data(possibly_locked_rw_data);
|
|
rw_data.stylist.add_quirks_mode_stylesheet();
|
|
LayoutTask::return_rw_data(possibly_locked_rw_data, rw_data);
|
|
}
|
|
|
|
/// Retrieves the flow tree root from the root node.
|
|
fn try_get_layout_root(&self, node: LayoutNode) -> Option<FlowRef> {
|
|
let mut layout_data_ref = node.mutate_layout_data();
|
|
let layout_data =
|
|
match layout_data_ref.as_mut() {
|
|
None => return None,
|
|
Some(layout_data) => layout_data,
|
|
};
|
|
|
|
let result = layout_data.data.flow_construction_result.swap_out();
|
|
|
|
let mut flow = match result {
|
|
ConstructionResult::Flow(mut flow, abs_descendants) => {
|
|
// Note: Assuming that the root has display 'static' (as per
|
|
// CSS Section 9.3.1). Otherwise, if it were absolutely
|
|
// positioned, it would return a reference to itself in
|
|
// `abs_descendants` and would lead to a circular reference.
|
|
// Set Root as CB for any remaining absolute descendants.
|
|
flow.set_absolute_descendants(abs_descendants);
|
|
flow
|
|
}
|
|
_ => return None,
|
|
};
|
|
|
|
flow.mark_as_root();
|
|
|
|
Some(flow)
|
|
}
|
|
|
|
fn get_layout_root(&self, node: LayoutNode) -> FlowRef {
|
|
self.try_get_layout_root(node).expect("no layout root")
|
|
}
|
|
|
|
/// Performs layout constraint solving.
|
|
///
|
|
/// This corresponds to `Reflow()` in Gecko and `layout()` in WebKit/Blink and should be
|
|
/// benchmarked against those two. It is marked `#[inline(never)]` to aid profiling.
|
|
#[inline(never)]
|
|
fn solve_constraints<'a>(&self,
|
|
layout_root: &mut FlowRef,
|
|
shared_layout_context: &SharedLayoutContext) {
|
|
let _scope = layout_debug_scope!("solve_constraints");
|
|
sequential::traverse_flow_tree_preorder(layout_root, shared_layout_context);
|
|
}
|
|
|
|
/// Performs layout constraint solving in parallel.
|
|
///
|
|
/// This corresponds to `Reflow()` in Gecko and `layout()` in WebKit/Blink and should be
|
|
/// benchmarked against those two. It is marked `#[inline(never)]` to aid profiling.
|
|
#[inline(never)]
|
|
fn solve_constraints_parallel(&self,
|
|
data: &Reflow,
|
|
rw_data: &mut LayoutTaskData,
|
|
layout_root: &mut FlowRef,
|
|
shared_layout_context: &SharedLayoutContext) {
|
|
let _scope = layout_debug_scope!("solve_constraints_parallel");
|
|
|
|
match rw_data.parallel_traversal {
|
|
None => panic!("solve_contraints_parallel() called with no parallel traversal ready"),
|
|
Some(ref mut traversal) => {
|
|
// NOTE: this currently computes borders, so any pruning should separate that
|
|
// operation out.
|
|
parallel::traverse_flow_tree_preorder(layout_root,
|
|
self.profiler_metadata(data),
|
|
self.time_profiler_chan.clone(),
|
|
shared_layout_context,
|
|
traversal);
|
|
}
|
|
}
|
|
}
|
|
|
|
/// Verifies that every node was either marked as a leaf or as a nonleaf in the flow tree.
|
|
/// This is only on in debug builds.
|
|
#[inline(never)]
|
|
#[cfg(debug)]
|
|
fn verify_flow_tree(&self, layout_root: &mut FlowRef) {
|
|
let mut traversal = traversal::FlowTreeVerification;
|
|
layout_root.traverse_preorder(&mut traversal);
|
|
}
|
|
|
|
#[cfg(not(debug))]
|
|
fn verify_flow_tree(&self, _: &mut FlowRef) {
|
|
}
|
|
|
|
fn process_content_box_request<'a>(&'a self,
|
|
requested_node: TrustedNodeAddress,
|
|
layout_root: &mut FlowRef,
|
|
rw_data: &mut RWGuard<'a>) {
|
|
// FIXME(pcwalton): This has not been updated to handle the stacking context relative
|
|
// stuff. So the position is wrong in most cases.
|
|
let requested_node: OpaqueNode = OpaqueNodeMethods::from_script_node(requested_node);
|
|
let mut iterator = UnioningFragmentBoundsIterator::new(requested_node);
|
|
sequential::iterate_through_flow_tree_fragment_bounds(layout_root, &mut iterator);
|
|
rw_data.content_box_response = iterator.rect;
|
|
}
|
|
|
|
fn process_content_boxes_request<'a>(&'a self,
|
|
requested_node: TrustedNodeAddress,
|
|
layout_root: &mut FlowRef,
|
|
rw_data: &mut RWGuard<'a>) {
|
|
// FIXME(pcwalton): This has not been updated to handle the stacking context relative
|
|
// stuff. So the position is wrong in most cases.
|
|
let requested_node: OpaqueNode = OpaqueNodeMethods::from_script_node(requested_node);
|
|
let mut iterator = CollectingFragmentBoundsIterator::new(requested_node);
|
|
sequential::iterate_through_flow_tree_fragment_bounds(layout_root, &mut iterator);
|
|
rw_data.content_boxes_response = iterator.rects;
|
|
}
|
|
|
|
fn build_display_list_for_reflow<'a>(&'a self,
|
|
data: &Reflow,
|
|
node: &mut LayoutNode,
|
|
layout_root: &mut FlowRef,
|
|
shared_layout_context: &mut SharedLayoutContext,
|
|
rw_data: &mut RWGuard<'a>) {
|
|
let writing_mode = flow::base(&**layout_root).writing_mode;
|
|
profile(time::LayoutDispListBuildCategory,
|
|
self.profiler_metadata(data),
|
|
self.time_profiler_chan.clone(),
|
|
|| {
|
|
shared_layout_context.dirty =
|
|
flow::base(&**layout_root).position.to_physical(writing_mode,
|
|
rw_data.screen_size);
|
|
flow::mut_base(&mut **layout_root).stacking_relative_position =
|
|
LogicalPoint::zero(writing_mode).to_physical(writing_mode,
|
|
rw_data.screen_size);
|
|
|
|
flow::mut_base(&mut **layout_root).clip =
|
|
ClippingRegion::from_rect(&data.page_clip_rect);
|
|
|
|
let rw_data = rw_data.deref_mut();
|
|
match rw_data.parallel_traversal {
|
|
None => {
|
|
sequential::build_display_list_for_subtree(layout_root, shared_layout_context);
|
|
}
|
|
Some(ref mut traversal) => {
|
|
parallel::build_display_list_for_subtree(layout_root,
|
|
self.profiler_metadata(data),
|
|
self.time_profiler_chan.clone(),
|
|
shared_layout_context,
|
|
traversal);
|
|
}
|
|
}
|
|
|
|
debug!("Done building display list.");
|
|
|
|
// FIXME(pcwalton): This is really ugly and can't handle overflow: scroll. Refactor
|
|
// it with extreme prejudice.
|
|
let mut color = color::rgba(1.0, 1.0, 1.0, 1.0);
|
|
for child in node.traverse_preorder() {
|
|
if child.type_id() == Some(NodeTypeId::Element(ElementTypeId::HTMLElement(HTMLElementTypeId::HTMLHtmlElement))) ||
|
|
child.type_id() == Some(NodeTypeId::Element(ElementTypeId::HTMLElement(HTMLElementTypeId::HTMLBodyElement))) {
|
|
let element_bg_color = {
|
|
let thread_safe_child = ThreadSafeLayoutNode::new(&child);
|
|
thread_safe_child.style()
|
|
.resolve_color(thread_safe_child.style()
|
|
.get_background()
|
|
.background_color)
|
|
.to_gfx_color()
|
|
};
|
|
// FIXME: Add equality operators for azure color type.
|
|
if element_bg_color.r != 0.0 || element_bg_color.g != 0.0 ||
|
|
element_bg_color.b != 0.0 || element_bg_color.a != 0.0 {
|
|
color = element_bg_color;
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
|
|
let root_size = {
|
|
let root_flow = flow::base(&**layout_root);
|
|
root_flow.position.size.to_physical(root_flow.writing_mode)
|
|
};
|
|
let mut display_list = box DisplayList::new();
|
|
flow::mut_base(layout_root.deref_mut()).display_list_building_result
|
|
.add_to(&mut *display_list);
|
|
let paint_layer = Arc::new(PaintLayer::new(layout_root.layer_id(0),
|
|
color,
|
|
Scrollable));
|
|
let origin = Rect(Point2D(Au(0), Au(0)), root_size);
|
|
let stacking_context = Arc::new(StackingContext::new(display_list,
|
|
origin,
|
|
0,
|
|
1.0,
|
|
Some(paint_layer)));
|
|
|
|
rw_data.stacking_context = Some(stacking_context.clone());
|
|
|
|
debug!("Layout done!");
|
|
|
|
self.paint_chan.send(PaintInitMsg(stacking_context));
|
|
});
|
|
}
|
|
|
|
/// The high-level routine that performs layout tasks.
|
|
fn handle_reflow<'a>(&'a self,
|
|
data: &Reflow,
|
|
possibly_locked_rw_data: &mut Option<MutexGuard<'a, LayoutTaskData>>) {
|
|
// FIXME: Isolate this transmutation into a "bridge" module.
|
|
// FIXME(rust#16366): The following line had to be moved because of a
|
|
// rustc bug. It should be in the next unsafe block.
|
|
let mut node: JS<Node> = unsafe {
|
|
JS::from_trusted_node_address(data.document_root)
|
|
};
|
|
let node: &mut LayoutNode = unsafe {
|
|
mem::transmute(&mut node)
|
|
};
|
|
|
|
debug!("layout: received layout request for: {}", data.url.serialize());
|
|
debug!("layout: parsed Node tree");
|
|
if log_enabled!(log::DEBUG) {
|
|
node.dump();
|
|
}
|
|
|
|
let mut rw_data = self.lock_rw_data(possibly_locked_rw_data);
|
|
|
|
{
|
|
// Reset the image cache.
|
|
let mut local_image_cache = rw_data.local_image_cache.lock();
|
|
local_image_cache.next_round(self.make_on_image_available_cb());
|
|
}
|
|
|
|
// TODO: Calculate the "actual viewport":
|
|
// http://www.w3.org/TR/css-device-adapt/#actual-viewport
|
|
let viewport_size = data.window_size.initial_viewport;
|
|
|
|
let old_screen_size = rw_data.screen_size;
|
|
let current_screen_size = Size2D(Au::from_frac32_px(viewport_size.width.get()),
|
|
Au::from_frac32_px(viewport_size.height.get()));
|
|
rw_data.screen_size = current_screen_size;
|
|
|
|
// Create a layout context for use throughout the following passes.
|
|
let mut shared_layout_context = self.build_shared_layout_context(rw_data.deref(),
|
|
node,
|
|
&data.url);
|
|
|
|
// Handle conditions where the entire flow tree is invalid.
|
|
let screen_size_changed = current_screen_size != old_screen_size;
|
|
|
|
if screen_size_changed {
|
|
let device = Device::new(MediaType::Screen, data.window_size.initial_viewport);
|
|
rw_data.stylist.set_device(device);
|
|
}
|
|
|
|
let needs_dirtying = rw_data.stylist.update();
|
|
|
|
// If the entire flow tree is invalid, then it will be reflowed anyhow.
|
|
let needs_reflow = screen_size_changed && !needs_dirtying;
|
|
|
|
unsafe {
|
|
if needs_dirtying {
|
|
LayoutTask::dirty_all_nodes(node);
|
|
}
|
|
}
|
|
|
|
if needs_reflow {
|
|
self.try_get_layout_root(*node).map(
|
|
|mut flow| LayoutTask::reflow_all_nodes(flow.deref_mut()));
|
|
}
|
|
|
|
let mut layout_root = profile(time::LayoutStyleRecalcCategory,
|
|
self.profiler_metadata(data),
|
|
self.time_profiler_chan.clone(),
|
|
|| {
|
|
// Perform CSS selector matching and flow construction.
|
|
let rw_data = rw_data.deref_mut();
|
|
match rw_data.parallel_traversal {
|
|
None => {
|
|
sequential::traverse_dom_preorder(*node, &shared_layout_context);
|
|
}
|
|
Some(ref mut traversal) => {
|
|
parallel::traverse_dom_preorder(*node, &shared_layout_context, traversal)
|
|
}
|
|
}
|
|
|
|
self.get_layout_root((*node).clone())
|
|
});
|
|
|
|
profile(time::LayoutRestyleDamagePropagation,
|
|
self.profiler_metadata(data),
|
|
self.time_profiler_chan.clone(),
|
|
|| {
|
|
if opts::get().nonincremental_layout || layout_root.deref_mut()
|
|
.compute_layout_damage()
|
|
.contains(REFLOW_ENTIRE_DOCUMENT) {
|
|
layout_root.deref_mut().reflow_entire_document()
|
|
}
|
|
});
|
|
|
|
// Verification of the flow tree, which ensures that all nodes were either marked as leaves
|
|
// or as non-leaves. This becomes a no-op in release builds. (It is inconsequential to
|
|
// memory safety but is a useful debugging tool.)
|
|
self.verify_flow_tree(&mut layout_root);
|
|
|
|
if opts::get().trace_layout {
|
|
layout_debug::begin_trace(layout_root.clone());
|
|
}
|
|
|
|
// Perform the primary layout passes over the flow tree to compute the locations of all
|
|
// the boxes.
|
|
profile(time::LayoutMainCategory,
|
|
self.profiler_metadata(data),
|
|
self.time_profiler_chan.clone(),
|
|
|| {
|
|
let rw_data = rw_data.deref_mut();
|
|
match rw_data.parallel_traversal {
|
|
None => {
|
|
// Sequential mode.
|
|
self.solve_constraints(&mut layout_root, &shared_layout_context)
|
|
}
|
|
Some(_) => {
|
|
// Parallel mode.
|
|
self.solve_constraints_parallel(data,
|
|
rw_data,
|
|
&mut layout_root,
|
|
&mut shared_layout_context);
|
|
}
|
|
}
|
|
});
|
|
|
|
// Build the display list if necessary, and send it to the painter.
|
|
match data.goal {
|
|
ReflowGoal::ForDisplay => {
|
|
self.build_display_list_for_reflow(data,
|
|
node,
|
|
&mut layout_root,
|
|
&mut shared_layout_context,
|
|
&mut rw_data);
|
|
}
|
|
ReflowGoal::ForScriptQuery => {}
|
|
}
|
|
|
|
match data.query_type {
|
|
ContentBoxQuery(node) => {
|
|
self.process_content_box_request(node, &mut layout_root, &mut rw_data)
|
|
}
|
|
ContentBoxesQuery(node) => {
|
|
self.process_content_boxes_request(node, &mut layout_root, &mut rw_data)
|
|
}
|
|
NoQuery => {}
|
|
}
|
|
|
|
self.first_reflow.set(false);
|
|
|
|
if opts::get().trace_layout {
|
|
layout_debug::end_trace();
|
|
}
|
|
|
|
if opts::get().dump_flow_tree {
|
|
layout_root.dump();
|
|
}
|
|
|
|
rw_data.generation += 1;
|
|
|
|
// Tell script that we're done.
|
|
//
|
|
// FIXME(pcwalton): This should probably be *one* channel, but we can't fix this without
|
|
// either select or a filtered recv() that only looks for messages of a given type.
|
|
data.script_join_chan.send(());
|
|
let ScriptControlChan(ref chan) = data.script_chan;
|
|
chan.send(ReflowCompleteMsg(self.id, data.id));
|
|
}
|
|
|
|
unsafe fn dirty_all_nodes(node: &mut LayoutNode) {
|
|
for node in node.traverse_preorder() {
|
|
// TODO(cgaebel): mark nodes which are sensitive to media queries as
|
|
// "changed":
|
|
// > node.set_changed(true);
|
|
node.set_dirty(true);
|
|
node.set_dirty_siblings(true);
|
|
node.set_dirty_descendants(true);
|
|
}
|
|
}
|
|
|
|
fn reflow_all_nodes(flow: &mut Flow) {
|
|
flow::mut_base(flow).restyle_damage.insert(REFLOW | REPAINT);
|
|
|
|
for child in flow::child_iter(flow) {
|
|
LayoutTask::reflow_all_nodes(child);
|
|
}
|
|
}
|
|
|
|
/// When images can't be loaded in time to display they trigger
|
|
/// this callback in some task somewhere. This will send a message
|
|
/// to the script task, and ultimately cause the image to be
|
|
/// re-requested. We probably don't need to go all the way back to
|
|
/// the script task for this.
|
|
///
|
|
/// FIXME(pcwalton): Rewrite all of this.
|
|
fn make_on_image_available_cb(&self) -> Box<ImageResponder<UntrustedNodeAddress>+Send> {
|
|
// This has a crazy signature because the image cache needs to
|
|
// make multiple copies of the callback, and the dom event
|
|
// channel is not a copyable type, so this is actually a
|
|
// little factory to produce callbacks
|
|
box LayoutImageResponder {
|
|
id: self.id.clone(),
|
|
script_chan: self.script_chan.clone(),
|
|
} as Box<ImageResponder<UntrustedNodeAddress>+Send>
|
|
}
|
|
|
|
/// Handles a message to destroy layout data. Layout data must be destroyed on *this* task
|
|
/// because it contains local managed pointers.
|
|
unsafe fn handle_reap_layout_data(layout_data: LayoutDataRef) {
|
|
let mut layout_data_ref = layout_data.borrow_mut();
|
|
let _: Option<LayoutDataWrapper> = mem::transmute(
|
|
mem::replace(&mut *layout_data_ref, None));
|
|
}
|
|
|
|
/// Returns profiling information which is passed to the time profiler.
|
|
fn profiler_metadata<'a>(&self, data: &'a Reflow) -> ProfilerMetadata<'a> {
|
|
Some((&data.url,
|
|
if data.iframe {
|
|
TimerMetadataFrameType::IFrame
|
|
} else {
|
|
TimerMetadataFrameType::RootWindow
|
|
},
|
|
if self.first_reflow.get() {
|
|
TimerMetadataReflowType::FirstReflow
|
|
} else {
|
|
TimerMetadataReflowType::Incremental
|
|
}))
|
|
}
|
|
}
|
|
|
|
struct LayoutRPCImpl(Arc<Mutex<LayoutTaskData>>);
|
|
|
|
impl LayoutRPC for LayoutRPCImpl {
|
|
// The neat thing here is that in order to answer the following two queries we only
|
|
// need to compare nodes for equality. Thus we can safely work only with `OpaqueNode`.
|
|
fn content_box(&self) -> ContentBoxResponse {
|
|
let &LayoutRPCImpl(ref rw_data) = self;
|
|
let rw_data = rw_data.lock();
|
|
ContentBoxResponse(rw_data.content_box_response)
|
|
}
|
|
|
|
/// Requests the dimensions of all the content boxes, as in the `getClientRects()` call.
|
|
fn content_boxes(&self) -> ContentBoxesResponse {
|
|
let &LayoutRPCImpl(ref rw_data) = self;
|
|
let rw_data = rw_data.lock();
|
|
ContentBoxesResponse(rw_data.content_boxes_response.clone())
|
|
}
|
|
|
|
/// Requests the node containing the point of interest.
|
|
fn hit_test(&self, _: TrustedNodeAddress, point: Point2D<f32>) -> Result<HitTestResponse, ()> {
|
|
let point = Point2D(Au::from_frac_px(point.x as f64), Au::from_frac_px(point.y as f64));
|
|
let resp = {
|
|
let &LayoutRPCImpl(ref rw_data) = self;
|
|
let rw_data = rw_data.lock();
|
|
match rw_data.stacking_context {
|
|
None => panic!("no root stacking context!"),
|
|
Some(ref stacking_context) => {
|
|
let mut result = Vec::new();
|
|
stacking_context.hit_test(point, &mut result, true);
|
|
if !result.is_empty() {
|
|
Some(HitTestResponse(result[0].node.to_untrusted_node_address()))
|
|
} else {
|
|
None
|
|
}
|
|
}
|
|
}
|
|
};
|
|
|
|
if resp.is_some() {
|
|
return Ok(resp.unwrap());
|
|
}
|
|
Err(())
|
|
}
|
|
|
|
fn mouse_over(&self, _: TrustedNodeAddress, point: Point2D<f32>)
|
|
-> Result<MouseOverResponse, ()> {
|
|
let mut mouse_over_list: Vec<DisplayItemMetadata> = vec!();
|
|
let point = Point2D(Au::from_frac_px(point.x as f64), Au::from_frac_px(point.y as f64));
|
|
{
|
|
let &LayoutRPCImpl(ref rw_data) = self;
|
|
let rw_data = rw_data.lock();
|
|
match rw_data.stacking_context {
|
|
None => panic!("no root stacking context!"),
|
|
Some(ref stacking_context) => {
|
|
stacking_context.hit_test(point, &mut mouse_over_list, false);
|
|
}
|
|
}
|
|
|
|
// Compute the new cursor.
|
|
let cursor = if !mouse_over_list.is_empty() {
|
|
mouse_over_list[0].cursor
|
|
} else {
|
|
DefaultCursor
|
|
};
|
|
let ConstellationChan(ref constellation_chan) = rw_data.constellation_chan;
|
|
constellation_chan.send(SetCursorMsg(cursor));
|
|
}
|
|
|
|
if mouse_over_list.is_empty() {
|
|
Err(())
|
|
} else {
|
|
let response_list =
|
|
mouse_over_list.iter()
|
|
.map(|metadata| metadata.node.to_untrusted_node_address())
|
|
.collect();
|
|
Ok(MouseOverResponse(response_list))
|
|
}
|
|
}
|
|
}
|
|
|
|
struct UnioningFragmentBoundsIterator {
|
|
node_address: OpaqueNode,
|
|
rect: Rect<Au>,
|
|
}
|
|
|
|
impl UnioningFragmentBoundsIterator {
|
|
fn new(node_address: OpaqueNode) -> UnioningFragmentBoundsIterator {
|
|
UnioningFragmentBoundsIterator {
|
|
node_address: node_address,
|
|
rect: Rect::zero(),
|
|
}
|
|
}
|
|
}
|
|
|
|
impl FragmentBoundsIterator for UnioningFragmentBoundsIterator {
|
|
fn process(&mut self, _: &Fragment, bounds: Rect<Au>) {
|
|
if self.rect.is_empty() {
|
|
self.rect = bounds;
|
|
} else {
|
|
self.rect = self.rect.union(&bounds);
|
|
}
|
|
}
|
|
|
|
fn should_process(&mut self, fragment: &Fragment) -> bool {
|
|
self.node_address == fragment.node
|
|
}
|
|
}
|
|
|
|
struct CollectingFragmentBoundsIterator {
|
|
node_address: OpaqueNode,
|
|
rects: Vec<Rect<Au>>,
|
|
}
|
|
|
|
impl CollectingFragmentBoundsIterator {
|
|
fn new(node_address: OpaqueNode) -> CollectingFragmentBoundsIterator {
|
|
CollectingFragmentBoundsIterator {
|
|
node_address: node_address,
|
|
rects: Vec::new(),
|
|
}
|
|
}
|
|
}
|
|
|
|
impl FragmentBoundsIterator for CollectingFragmentBoundsIterator {
|
|
fn process(&mut self, _: &Fragment, bounds: Rect<Au>) {
|
|
self.rects.push(bounds);
|
|
}
|
|
|
|
fn should_process(&mut self, fragment: &Fragment) -> bool {
|
|
self.node_address == fragment.node
|
|
}
|
|
}
|