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cranpose_ui/layout/
mod.rs

1pub mod core;
2pub mod policies;
3mod semantics_labels;
4
5use std::{
6    cell::{Cell, RefCell},
7    fmt,
8    mem::size_of,
9    rc::Rc,
10    sync::OnceLock,
11};
12
13use cranpose_core::{
14    Applier, ApplierHost, Composer, ConcreteApplierHost, MemoryApplier, Node, NodeError, NodeId,
15    Phase, RuntimeHandle, SlotTable, SlotsHost, SnapshotStateObserver,
16};
17use cranpose_foundation::{
18    CanvasSemanticsNode, CollectionInfo, InvalidationKind, LiveRegionMode, ModifierNodeContext,
19    NodeCapabilities, ProgressBarRangeInfo, ScrollAxisRange, SemanticsConfiguration,
20    SemanticsCustomAction, SemanticsDismiss, SemanticsExpand, SemanticsLongClick,
21    SemanticsMagicTap, SemanticsScrollBy, SemanticsScrollToIndex, SemanticsSetProgress,
22    SemanticsSetSelection, SemanticsSetText, SemanticsWidgetRole, text::TextRange,
23};
24use cranpose_ui_layout::{Constraints, MeasurePolicy, Placement};
25use web_time::Instant;
26
27#[cfg(test)]
28use self::core::{HorizontalAlignment, VerticalAlignment};
29use self::core::{Measurable, Placeable};
30use crate::{
31    modifier::{
32        DimensionConstraint, EdgeInsets, Modifier, ModifierNodeSlices,
33        ModifierNodeSlicesDebugStats, Point, Rect as GeometryRect, ResolvedModifiers, Size,
34        collect_semantics_from_modifier,
35    },
36    subcompose_layout::{CachedBatchMeasureInputs, SubcomposeLayoutNode},
37    widgets::nodes::{IntrinsicKind, LayoutNode, LayoutNodeCacheHandles, LayoutState},
38};
39
40#[derive(Default)]
41pub(crate) struct LayoutNodeContext {
42    invalidations: Vec<InvalidationKind>,
43    update_requested: bool,
44    active_capabilities: Vec<NodeCapabilities>,
45}
46
47impl LayoutNodeContext {
48    pub(crate) fn new() -> Self {
49        Self::default()
50    }
51
52    pub(crate) fn take_invalidations(&mut self) -> Vec<InvalidationKind> {
53        std::mem::take(&mut self.invalidations)
54    }
55}
56
57impl ModifierNodeContext for LayoutNodeContext {
58    fn invalidate(&mut self, kind: InvalidationKind) {
59        if !self.invalidations.contains(&kind) {
60            self.invalidations.push(kind);
61        }
62    }
63
64    fn request_update(&mut self) {
65        self.update_requested = true;
66    }
67
68    fn push_active_capabilities(&mut self, capabilities: NodeCapabilities) {
69        self.active_capabilities.push(capabilities);
70    }
71
72    fn pop_active_capabilities(&mut self) {
73        self.active_capabilities.pop();
74    }
75}
76
77#[doc(hidden)]
78pub fn invalidate_all_layout_caches() {
79    crate::render_state::invalidate_layout_cache_epoch();
80}
81
82fn layout_measure_telemetry_threshold_ms() -> Option<f64> {
83    static THRESHOLD_MS: OnceLock<Option<f64>> = OnceLock::new();
84    *THRESHOLD_MS.get_or_init(|| {
85        std::env::var("CRANPOSE_LAYOUT_MEASURE_TELEMETRY_MS")
86            .ok()
87            .and_then(|value| value.parse::<f64>().ok())
88            .filter(|value| value.is_finite() && *value >= 0.0)
89            .or_else(|| {
90                std::env::var_os("CRANPOSE_LAYOUT_MEASURE_TELEMETRY")
91                    .is_some()
92                    .then_some(4.0)
93            })
94    })
95}
96
97struct LayoutMeasureTelemetry {
98    root: NodeId,
99    start: Instant,
100    after_repasses: Instant,
101    after_guard: Instant,
102    after_builder: Instant,
103    after_measure: Instant,
104    after_root_place: Instant,
105    after_aux: Instant,
106    after_builder_drop: Instant,
107    after_guard_drop: Instant,
108}
109
110fn log_layout_measure_telemetry(times: LayoutMeasureTelemetry) {
111    let Some(threshold_ms) = layout_measure_telemetry_threshold_ms() else {
112        return;
113    };
114
115    let total_ms = times
116        .after_guard_drop
117        .duration_since(times.start)
118        .as_secs_f64()
119        * 1000.0;
120    if total_ms < threshold_ms {
121        return;
122    }
123
124    let repass_ms = times
125        .after_repasses
126        .duration_since(times.start)
127        .as_secs_f64()
128        * 1000.0;
129    let guard_ms = times
130        .after_guard
131        .duration_since(times.after_repasses)
132        .as_secs_f64()
133        * 1000.0;
134    let builder_ms = times
135        .after_builder
136        .duration_since(times.after_guard)
137        .as_secs_f64()
138        * 1000.0;
139    let measure_ms = times
140        .after_measure
141        .duration_since(times.after_builder)
142        .as_secs_f64()
143        * 1000.0;
144    let root_place_ms = times
145        .after_root_place
146        .duration_since(times.after_measure)
147        .as_secs_f64()
148        * 1000.0;
149    let aux_ms = times
150        .after_aux
151        .duration_since(times.after_root_place)
152        .as_secs_f64()
153        * 1000.0;
154    let builder_drop_ms = times
155        .after_builder_drop
156        .duration_since(times.after_aux)
157        .as_secs_f64()
158        * 1000.0;
159    let guard_drop_ms = times
160        .after_guard_drop
161        .duration_since(times.after_builder_drop)
162        .as_secs_f64()
163        * 1000.0;
164    log::warn!(
165        "[layout-measure-telemetry] root={} total_ms={total_ms:.2} repass_ms={repass_ms:.2} guard_ms={guard_ms:.2} builder_ms={builder_ms:.2} measure_ms={measure_ms:.2} root_place_ms={root_place_ms:.2} aux_ms={aux_ms:.2} builder_drop_ms={builder_drop_ms:.2} guard_drop_ms={guard_drop_ms:.2}",
166        times.root
167    );
168}
169
170fn log_node_measure_telemetry(
171    kind: &'static str,
172    node_id: NodeId,
173    constraints: Constraints,
174    size: Size,
175    children: usize,
176    start: Instant,
177) {
178    let Some(threshold_ms) = layout_measure_telemetry_threshold_ms() else {
179        return;
180    };
181
182    let total_ms = start.elapsed().as_secs_f64() * 1000.0;
183    if total_ms < threshold_ms {
184        return;
185    }
186
187    log::warn!(
188        "[layout-node-telemetry] kind={kind} node={} total_ms={total_ms:.2} constraints=({:.1},{:.1},{:.1},{:.1}) size=({:.1},{:.1}) children={children}",
189        node_id,
190        constraints.min_width,
191        constraints.max_width,
192        constraints.min_height,
193        constraints.max_height,
194        size.width,
195        size.height,
196    );
197}
198
199struct ApplierSlotGuard<'a> {
200    target: &'a mut MemoryApplier,
201    host: Rc<ConcreteApplierHost<MemoryApplier>>,
202    slots: Rc<RefCell<SlotTable>>,
203}
204
205impl<'a> ApplierSlotGuard<'a> {
206    fn new(target: &'a mut MemoryApplier) -> Self {
207        let original_applier = std::mem::replace(target, MemoryApplier::new());
208        let host = Rc::new(ConcreteApplierHost::new(original_applier));
209
210        let slots = {
211            let mut applier_ref = host.borrow_typed();
212            std::mem::take(applier_ref.slots())
213        };
214        let slots = Rc::new(RefCell::new(slots));
215
216        Self {
217            target,
218            host,
219            slots,
220        }
221    }
222
223    fn host(&self) -> Rc<ConcreteApplierHost<MemoryApplier>> {
224        Rc::clone(&self.host)
225    }
226
227    fn slots_handle(&self) -> Rc<RefCell<SlotTable>> {
228        Rc::clone(&self.slots)
229    }
230}
231
232impl Drop for ApplierSlotGuard<'_> {
233    fn drop(&mut self) {
234        {
235            let mut applier_ref = self.host.borrow_typed();
236            *applier_ref.slots() = std::mem::take(&mut *self.slots.borrow_mut());
237        }
238
239        {
240            let mut applier_ref = self.host.borrow_typed();
241            let original_applier = std::mem::take(&mut *applier_ref);
242            let _ = std::mem::replace(self.target, original_applier);
243        }
244    }
245}
246
247struct ModifierChainMeasurement {
248    size: Size,
249    content_offset: Point,
250    offset: Point,
251    window_root: bool,
252}
253
254type LayoutModifierNodeData = (
255    usize,
256    Rc<RefCell<Box<dyn cranpose_foundation::ModifierNode>>>,
257);
258
259struct ScratchVecPool<T> {
260    available: Vec<Vec<T>>,
261}
262
263impl<T> ScratchVecPool<T> {
264    fn acquire(&mut self) -> Vec<T> {
265        self.available.pop().unwrap_or_default()
266    }
267
268    fn release(&mut self, mut values: Vec<T>) {
269        values.clear();
270        self.available.push(values);
271    }
272
273    #[cfg(test)]
274    fn available_count(&self) -> usize {
275        self.available.len()
276    }
277}
278
279impl<T> Default for ScratchVecPool<T> {
280    fn default() -> Self {
281        Self {
282            available: Vec::new(),
283        }
284    }
285}
286
287#[derive(Default)]
288pub(crate) struct FrameLayoutArena {
289    tmp_records: ScratchVecPool<(NodeId, ChildRecord)>,
290    tmp_child_ids: ScratchVecPool<NodeId>,
291    tmp_layout_node_data: ScratchVecPool<LayoutModifierNodeData>,
292    tmp_placements: ScratchVecPool<Placement>,
293}
294
295#[cfg(test)]
296impl FrameLayoutArena {
297    pub(crate) fn available_placement_scratch_count(&self) -> usize {
298        self.tmp_placements.available_count()
299    }
300
301    pub(crate) fn seed_placement_scratch_for_test(&mut self) {
302        self.tmp_placements.release(Vec::with_capacity(1));
303    }
304}
305
306/// Discrete event callback reference produced during semantics extraction.
307#[derive(Clone, Debug, PartialEq, Eq)]
308pub struct SemanticsCallback {
309    node_id: NodeId,
310}
311
312impl SemanticsCallback {
313    pub fn new(node_id: NodeId) -> Self {
314        Self { node_id }
315    }
316
317    pub fn node_id(&self) -> NodeId {
318        self.node_id
319    }
320}
321
322/// Semantics action exposed to the input system.
323#[derive(Clone, Debug, PartialEq, Eq)]
324pub enum SemanticsAction {
325    Click { handler: SemanticsCallback },
326}
327
328/// Semantic role describing how a node should participate in accessibility and hit testing.
329/// Roles are now derived from SemanticsConfiguration rather than widget types.
330#[derive(Clone, Debug, PartialEq, Eq)]
331pub enum SemanticsRole {
332    /// Generic container or layout node
333    Layout,
334    /// Subcomposition boundary
335    Subcompose,
336    /// Text content derived from the text node semantics payload.
337    Text { value: String },
338    /// Spacer (non-interactive)
339    Spacer,
340    /// Button (derived from the semantics `role`)
341    Button,
342    /// Unknown or unspecified role
343    Unknown,
344}
345
346/// A single node within the semantics tree.
347///
348/// Not `Eq`: a node now carries drawn-control bounds, which are floats. The
349/// tree is compared for "did anything a screen reader can see change", and
350/// that comparison is `PartialEq` everywhere else on the accessibility path
351/// (`AccessibilityRect`, `AccessibilityElement`) for the same reason.
352#[derive(Clone, Debug, PartialEq)]
353pub struct SemanticsNode {
354    pub node_id: NodeId,
355    /// Incarnation of the runtime node, incremented when its storage is recycled.
356    pub node_generation: u32,
357    /// Where this node sits in the tree (layout, text, subcomposition …).
358    pub role: SemanticsRole,
359    /// What kind of control this node is, as a screen reader announces it —
360    /// Compose's `Role`. Separate from [`SemanticsNode::role`] because a
361    /// clickable `Row` is structurally a layout node and semantically a button.
362    pub widget_role: Option<SemanticsWidgetRole>,
363    pub actions: Vec<SemanticsAction>,
364    pub children: Vec<SemanticsNode>,
365    pub description: Option<String>,
366    pub state_description: Option<String>,
367    pub on_click_label: Option<String>,
368    /// Direct activation callback for keyboard and assistive technology.
369    pub on_click: Option<SemanticsCustomAction>,
370    /// What this control does when a screen reader asks for its long press.
371    pub on_long_click: Option<SemanticsLongClick>,
372    /// What the long press does, as a verb phrase a reader reads out.
373    pub on_long_click_label: Option<String>,
374    /// What this control does on VoiceOver's magic tap.
375    pub on_magic_tap: Option<SemanticsMagicTap>,
376    /// What the magic tap does, as a verb phrase a reader reads out.
377    pub on_magic_tap_label: Option<String>,
378    /// The short names a person says to Voice Control to reach this control.
379    pub input_labels: Vec<String>,
380    /// The language of this control's text, as a BCP 47 tag.
381    pub language: Option<String>,
382    pub selected: Option<bool>,
383    pub toggled: Option<bool>,
384    pub enabled: bool,
385    pub custom_actions: Vec<SemanticsCustomAction>,
386    /// Controls this node drew rather than laid out; their bounds are relative
387    /// to this node's own top-left. See [`CanvasSemanticsNode`].
388    pub canvas_children: Vec<CanvasSemanticsNode>,
389    pub editable_text: bool,
390    /// Whether an editable field accepts line breaks, independent of its current text.
391    pub multiline: bool,
392    /// Whether a screen reader skips this node and everything under it.
393    pub hidden: bool,
394    /// Whether this subtree makes content outside it unavailable to assistive technology.
395    pub is_modal: bool,
396    /// Whether a screen reader takes this node and the text under it as one
397    /// stop.
398    pub merge_descendants: bool,
399    /// Whether the selectable controls under this node form one group.
400    pub selectable_group: bool,
401    /// The title of the screen or pane this node is the root of.
402    pub pane_title: Option<String>,
403    /// Why the control's content is wrong, when it is.
404    pub error: Option<String>,
405    /// Whether this field holds a secret, so its text stays unspoken.
406    pub password: bool,
407    /// Where a screen reader visits this node among the ones beside it.
408    pub traversal_index: f32,
409    /// The text an editable field holds.
410    pub text: Option<String>,
411    pub text_selection: Option<TextRange>,
412    /// Whether this node registered a focus target, so focus can land on it.
413    /// Compose's `SemanticsProperties.Focused` companion.
414    pub focusable: bool,
415    /// Whether focus sits on this node right now.
416    pub focused: bool,
417    /// How urgently a screen reader reads this node when its text changes.
418    /// Compose's `SemanticsProperties.LiveRegion`.
419    pub live_region: Option<LiveRegionMode>,
420    /// The value this control holds inside a range. Compose's
421    /// `ProgressBarRangeInfo`.
422    pub progress: Option<ProgressBarRangeInfo>,
423    /// What this control does when a screen reader moves its value.
424    pub set_progress: Option<SemanticsSetProgress>,
425    /// What this field does when a screen reader hands it text.
426    pub set_text: Option<SemanticsSetText>,
427    /// What this field does when a screen reader moves its caret or picks a
428    /// stretch of its text.
429    pub set_selection: Option<SemanticsSetSelection>,
430    /// What this control does when a screen reader asks it to open.
431    pub expand: Option<SemanticsExpand>,
432    /// What this control does when a screen reader asks it to close.
433    pub collapse: Option<SemanticsExpand>,
434    /// What this control does when a screen reader asks to send it away.
435    pub dismiss: Option<SemanticsDismiss>,
436    /// How far this container scrolled up and down, when it scrolls.
437    pub vertical_scroll: Option<ScrollAxisRange>,
438    /// How far this container scrolled left and right, when it scrolls.
439    pub horizontal_scroll: Option<ScrollAxisRange>,
440    /// What this container does when a screen reader pages it.
441    pub scroll_by: Option<SemanticsScrollBy>,
442    /// What this list does when a screen reader asks for the row at an index.
443    pub scroll_to_index: Option<SemanticsScrollToIndex>,
444    /// How many rows and columns this list holds, when it is a list.
445    pub collection: Option<CollectionInfo>,
446}
447
448impl Default for SemanticsNode {
449    fn default() -> Self {
450        Self {
451            node_id: 0,
452            node_generation: 0,
453            role: SemanticsRole::Unknown,
454            widget_role: None,
455            actions: Vec::new(),
456            children: Vec::new(),
457            description: None,
458            state_description: None,
459            on_click_label: None,
460            on_click: None,
461            on_long_click: None,
462            on_long_click_label: None,
463            on_magic_tap: None,
464            on_magic_tap_label: None,
465            input_labels: Vec::new(),
466            language: None,
467            selected: None,
468            toggled: None,
469            enabled: true,
470            custom_actions: Vec::new(),
471            canvas_children: Vec::new(),
472            editable_text: false,
473            multiline: false,
474            hidden: false,
475            is_modal: false,
476            merge_descendants: false,
477            selectable_group: false,
478            pane_title: None,
479            error: None,
480            password: false,
481            traversal_index: 0.0,
482            text: None,
483            text_selection: None,
484            focusable: false,
485            focused: false,
486            live_region: None,
487            progress: None,
488            set_progress: None,
489            set_text: None,
490            set_selection: None,
491            expand: None,
492            collapse: None,
493            dismiss: None,
494            vertical_scroll: None,
495            horizontal_scroll: None,
496            scroll_by: None,
497            scroll_to_index: None,
498            collection: None,
499        }
500    }
501}
502
503/// Rooted semantics tree extracted after layout.
504#[derive(Clone, Debug, PartialEq)]
505pub struct SemanticsTree {
506    root: SemanticsNode,
507}
508
509impl SemanticsTree {
510    fn new(mut root: SemanticsNode) -> Self {
511        if let Some(modal) = take_top_modal(&mut root) {
512            root = modal;
513        }
514        Self { root }
515    }
516
517    /// Returns the top visible modal subtree, or the full root when no modal is open.
518    pub fn root(&self) -> &SemanticsNode {
519        &self.root
520    }
521}
522
523fn take_top_modal(node: &mut SemanticsNode) -> Option<SemanticsNode> {
524    if node.hidden {
525        return None;
526    }
527    for child in node.children.iter_mut().rev() {
528        if let Some(modal) = take_top_modal(child) {
529            return Some(modal);
530        }
531    }
532    node.is_modal.then(|| std::mem::take(node))
533}
534
535#[derive(Clone, Copy, Debug, Default, PartialEq, Eq)]
536pub struct LayoutAllocationDebugStats {
537    pub layout_box_count: usize,
538    pub layout_box_child_count: usize,
539    pub layout_box_child_capacity: usize,
540    pub layout_box_heap_bytes: usize,
541    pub modifier_slice_count: usize,
542    pub modifier_slice_heap_bytes: usize,
543    pub modifier_draw_command_count: usize,
544    pub modifier_draw_command_capacity: usize,
545    pub modifier_pointer_input_count: usize,
546    pub modifier_pointer_input_capacity: usize,
547    pub modifier_click_handler_count: usize,
548    pub modifier_click_handler_capacity: usize,
549    pub modifier_text_content_count: usize,
550    pub modifier_text_style_count: usize,
551    pub modifier_text_layout_options_count: usize,
552    pub modifier_prepared_text_layout_count: usize,
553    pub modifier_graphics_layer_count: usize,
554    pub modifier_graphics_layer_resolver_count: usize,
555    pub semantics_node_count: usize,
556    pub semantics_action_count: usize,
557    pub semantics_action_capacity: usize,
558    pub semantics_child_count: usize,
559    pub semantics_child_capacity: usize,
560    pub semantics_description_count: usize,
561    pub semantics_description_bytes: usize,
562    pub semantics_text_role_bytes: usize,
563    pub semantics_heap_bytes: usize,
564}
565
566impl LayoutAllocationDebugStats {
567    fn add_modifier_slice(&mut self, stats: ModifierNodeSlicesDebugStats) {
568        self.modifier_slice_count += 1;
569        self.modifier_slice_heap_bytes += stats.heap_bytes;
570        self.modifier_draw_command_count += stats.draw_command_count;
571        self.modifier_draw_command_capacity += stats.draw_command_capacity;
572        self.modifier_pointer_input_count += stats.pointer_input_count;
573        self.modifier_pointer_input_capacity += stats.pointer_input_capacity;
574        self.modifier_click_handler_count += stats.click_handler_count;
575        self.modifier_click_handler_capacity += stats.click_handler_capacity;
576        self.modifier_text_content_count += usize::from(stats.has_text_content);
577        self.modifier_text_style_count += usize::from(stats.has_text_style);
578        self.modifier_text_layout_options_count += usize::from(stats.has_text_layout_options);
579        self.modifier_prepared_text_layout_count += usize::from(stats.has_prepared_text_layout);
580        self.modifier_graphics_layer_count += usize::from(stats.has_graphics_layer);
581        self.modifier_graphics_layer_resolver_count +=
582            usize::from(stats.has_graphics_layer_resolver);
583    }
584}
585
586/// Result of running layout for a Compose tree.
587#[derive(Debug, Clone)]
588pub struct LayoutTree {
589    root: LayoutBox,
590}
591
592impl LayoutTree {
593    pub fn new(root: LayoutBox) -> Self {
594        Self { root }
595    }
596
597    pub fn root(&self) -> &LayoutBox {
598        &self.root
599    }
600
601    pub fn root_mut(&mut self) -> &mut LayoutBox {
602        &mut self.root
603    }
604
605    pub fn into_root(self) -> LayoutBox {
606        self.root
607    }
608
609    pub fn debug_allocation_stats(&self) -> LayoutAllocationDebugStats {
610        let mut stats = LayoutAllocationDebugStats::default();
611        record_layout_box_allocation_stats(&self.root, &mut stats);
612        stats
613    }
614}
615
616/// Layout information for a single node.
617#[derive(Debug, Clone)]
618pub struct LayoutBox {
619    pub node_id: NodeId,
620    /// Incarnation of the runtime node captured with these layout bounds.
621    pub node_generation: u32,
622    pub rect: GeometryRect,
623    /// Content offset for scroll/inner transforms (applies to children, NOT this node's position)
624    pub content_offset: Point,
625    pub node_data: LayoutNodeData,
626    pub children: Vec<LayoutBox>,
627}
628
629impl LayoutBox {
630    pub fn new(
631        node_id: NodeId,
632        rect: GeometryRect,
633        content_offset: Point,
634        node_data: LayoutNodeData,
635        children: Vec<LayoutBox>,
636    ) -> Self {
637        Self {
638            node_id,
639            node_generation: 0,
640            rect,
641            content_offset,
642            node_data,
643            children,
644        }
645    }
646}
647
648/// Snapshot of the data required to render a layout node.
649#[derive(Debug, Clone)]
650pub struct LayoutNodeData {
651    pub modifier: Modifier,
652    pub resolved_modifiers: ResolvedModifiers,
653    pub modifier_slices: Rc<ModifierNodeSlices>,
654    pub kind: LayoutNodeKind,
655}
656
657impl LayoutNodeData {
658    pub fn new(
659        modifier: Modifier,
660        resolved_modifiers: ResolvedModifiers,
661        modifier_slices: Rc<ModifierNodeSlices>,
662        kind: LayoutNodeKind,
663    ) -> Self {
664        Self {
665            modifier,
666            resolved_modifiers,
667            modifier_slices,
668            kind,
669        }
670    }
671
672    pub fn resolved_modifiers(&self) -> ResolvedModifiers {
673        self.resolved_modifiers
674    }
675
676    pub fn modifier_slices(&self) -> &ModifierNodeSlices {
677        &self.modifier_slices
678    }
679}
680
681/// Classification of the node captured inside a [`LayoutBox`].
682///
683/// Note: Text content is no longer represented as a distinct LayoutNodeKind.
684/// Text nodes now use `LayoutNodeKind::Layout` with their content stored in
685/// `modifier_slices.text_content()` via TextModifierNode, following Jetpack
686/// Compose's pattern where text is a modifier node capability.
687#[derive(Clone)]
688pub enum LayoutNodeKind {
689    Layout,
690    Subcompose,
691    Spacer,
692    Button { on_click: Rc<RefCell<dyn FnMut()>> },
693    Unknown,
694}
695
696impl fmt::Debug for LayoutNodeKind {
697    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
698        match self {
699            LayoutNodeKind::Layout => f.write_str("Layout"),
700            LayoutNodeKind::Subcompose => f.write_str("Subcompose"),
701            LayoutNodeKind::Spacer => f.write_str("Spacer"),
702            LayoutNodeKind::Button { .. } => f.write_str("Button"),
703            LayoutNodeKind::Unknown => f.write_str("Unknown"),
704        }
705    }
706}
707
708/// Extension trait that equips `MemoryApplier` with layout computation.
709pub trait LayoutEngine {
710    fn compute_layout(&mut self, root: NodeId, max_size: Size) -> Result<LayoutTree, NodeError>;
711}
712
713impl LayoutEngine for MemoryApplier {
714    fn compute_layout(&mut self, root: NodeId, max_size: Size) -> Result<LayoutTree, NodeError> {
715        let measurements = measure_layout(self, root, max_size)?;
716        measurements
717            .into_layout_tree()
718            .ok_or(NodeError::MissingContext {
719                id: root,
720                reason: "layout tree was not requested",
721            })
722    }
723}
724
725/// Result of running the measure pass for a Compose layout tree.
726#[derive(Debug, Clone)]
727pub struct LayoutMeasurements {
728    root: Rc<MeasuredNode>,
729    semantics: Option<SemanticsTree>,
730    layout_tree: Option<LayoutTree>,
731}
732
733impl LayoutMeasurements {
734    fn new(
735        root: Rc<MeasuredNode>,
736        semantics: Option<SemanticsTree>,
737        layout_tree: Option<LayoutTree>,
738    ) -> Self {
739        Self {
740            root,
741            semantics,
742            layout_tree,
743        }
744    }
745
746    /// Returns the measured size of the root node.
747    pub fn root_size(&self) -> Size {
748        self.root.size
749    }
750
751    pub fn semantics_tree(&self) -> Option<&SemanticsTree> {
752        self.semantics.as_ref()
753    }
754
755    pub fn debug_allocation_stats(&self) -> LayoutAllocationDebugStats {
756        let mut stats = self
757            .layout_tree
758            .as_ref()
759            .map(LayoutTree::debug_allocation_stats)
760            .unwrap_or_default();
761        if let Some(semantics) = &self.semantics {
762            record_semantics_allocation_stats(semantics.root(), &mut stats);
763        }
764        stats
765    }
766
767    /// Consumes the measurements and returns the built [`LayoutTree`], if requested.
768    pub fn into_layout_tree(self) -> Option<LayoutTree> {
769        self.layout_tree
770    }
771
772    /// Returns a cloned [`LayoutTree`] for rendering/debug consumers, if requested.
773    pub fn layout_tree(&self) -> Option<LayoutTree> {
774        self.layout_tree.clone()
775    }
776}
777
778/// Builds a semantics tree from an existing [`LayoutTree`].
779///
780/// This is useful for consumers that need semantics on demand without forcing
781/// every layout pass to eagerly allocate a full [`SemanticsTree`].
782pub fn build_semantics_tree_from_layout_tree(layout_tree: &LayoutTree) -> SemanticsTree {
783    SemanticsTree::new(build_semantics_node_from_layout_box(layout_tree.root()))
784}
785
786/// Builds a layout snapshot from retained layout state in the live applier tree.
787///
788/// Renderers use retained node state directly. This function exists for debug,
789/// robot, and tests that need an owned [`LayoutTree`] without forcing every
790/// layout pass to allocate one.
791pub fn build_layout_tree_from_applier(
792    applier: &mut MemoryApplier,
793    root: NodeId,
794) -> Result<Option<LayoutTree>, NodeError> {
795    let origin = layout_tree_origin(layout_snapshot(applier, root)?);
796    place_layout_box(applier, root, origin, Point::default()).map(|root| root.map(LayoutTree::new))
797}
798
799type LayoutSnapshot = (crate::widgets::nodes::layout_node::LayoutState, Vec<NodeId>);
800
801fn layout_tree_origin(root: Option<LayoutSnapshot>) -> Point {
802    let Some((state, _)) = root else {
803        return Point::default();
804    };
805    let position = state.position();
806    Point {
807        x: -position.x,
808        y: -position.y,
809    }
810}
811
812fn layout_snapshot(
813    applier: &mut MemoryApplier,
814    node_id: NodeId,
815) -> Result<Option<LayoutSnapshot>, NodeError> {
816    match applier
817        .with_node::<LayoutNode, _>(node_id, |node| (node.layout_state(), node.children.clone()))
818    {
819        Ok(snapshot) => return Ok(Some(snapshot)),
820        Err(NodeError::TypeMismatch { .. }) | Err(NodeError::Missing { .. }) => {}
821        Err(err) => return Err(err),
822    }
823
824    match applier.with_node::<SubcomposeLayoutNode, _>(node_id, |node| {
825        (node.layout_state(), node.active_children())
826    }) {
827        Ok(snapshot) => Ok(Some(snapshot)),
828        Err(NodeError::TypeMismatch { .. }) | Err(NodeError::Missing { .. }) => Ok(None),
829        Err(err) => Err(err),
830    }
831}
832
833fn place_layout_box(
834    applier: &mut MemoryApplier,
835    node_id: NodeId,
836    parent_content_origin: Point,
837    parent_layer_translation: Point,
838) -> Result<Option<LayoutBox>, NodeError> {
839    let Some((state, child_ids)) = layout_snapshot(applier, node_id)? else {
840        return Ok(None);
841    };
842    if !state.is_placed() {
843        return Ok(None);
844    }
845
846    let top_left = Point {
847        x: parent_content_origin.x + state.position().x,
848        y: parent_content_origin.y + state.position().y,
849    };
850    let rect = GeometryRect {
851        x: top_left.x,
852        y: top_left.y,
853        width: state.size().width,
854        height: state.size().height,
855    };
856    let info = runtime_metadata_for(applier, node_id)?;
857    let kind = layout_kind_from_metadata(node_id, &info);
858    let RuntimeNodeMetadata {
859        modifier,
860        resolved_modifiers,
861        modifier_slices,
862        ..
863    } = info;
864
865    let layer_translation = match modifier_slices.graphics_layer() {
866        Some(layer) => Point {
867            x: parent_layer_translation.x + layer.translation_x,
868            y: parent_layer_translation.y + layer.translation_y,
869        },
870        None => parent_layer_translation,
871    };
872
873    publish_window_geometry(&modifier_slices, top_left, layer_translation, state.size());
874
875    let data = LayoutNodeData::new(modifier, resolved_modifiers, modifier_slices, kind);
876    let child_origin = Point {
877        x: top_left.x + state.content_offset.x,
878        y: top_left.y + state.content_offset.y,
879    };
880    let mut children = Vec::with_capacity(child_ids.len());
881    for child_id in child_ids {
882        if crate::modifier::is_window_root(applier, child_id) {
883            continue;
884        }
885        if let Some(child) = place_layout_box(applier, child_id, child_origin, layer_translation)? {
886            children.push(child);
887        }
888    }
889
890    Ok(Some(LayoutBox {
891        node_generation: applier.node_generation(node_id),
892        ..LayoutBox::new(node_id, rect, state.content_offset, data, children)
893    }))
894}
895
896/// Builds a semantics snapshot from retained layout state in the live applier tree.
897///
898/// This is the on-demand counterpart to [`build_layout_tree_from_applier`].
899/// It follows the currently placed child set, including subcompose active
900/// children, and clears semantics dirty flags for nodes it visits.
901pub fn build_semantics_tree_from_applier(
902    applier: &mut MemoryApplier,
903    root: NodeId,
904) -> Result<Option<SemanticsTree>, NodeError> {
905    fn node(
906        applier: &mut MemoryApplier,
907        node_id: NodeId,
908    ) -> Result<Option<SemanticsNode>, NodeError> {
909        match applier.with_node::<LayoutNode, _>(node_id, |layout| {
910            let state = layout.layout_state();
911            if !state.is_placed() {
912                return None;
913            }
914            let role = role_from_modifier_slices(&layout.modifier_slices_snapshot());
915            let config = layout.semantics_configuration();
916            let children = layout.children.clone();
917            layout.clear_needs_semantics();
918            Some((role, config, children, state.size()))
919        }) {
920            Ok(Some((role, config, child_ids, size))) => {
921                let child_ids = children_in_this_window(applier, child_ids);
922                let mut children = Vec::with_capacity(child_ids.len());
923                for child_id in child_ids {
924                    if let Some(child) = node(applier, child_id)? {
925                        children.push(child);
926                    }
927                }
928                return Ok(Some(semantics_node_from_parts(
929                    node_id,
930                    applier.node_generation(node_id),
931                    role,
932                    config,
933                    children,
934                    size,
935                )));
936            }
937            Ok(None) => return Ok(None),
938            Err(NodeError::TypeMismatch { .. }) | Err(NodeError::Missing { .. }) => {}
939            Err(err) => return Err(err),
940        }
941
942        match applier.with_node::<SubcomposeLayoutNode, _>(node_id, |subcompose| {
943            let state = subcompose.layout_state();
944            if !state.is_placed() {
945                return None;
946            }
947            let config = collect_semantics_from_modifier(&subcompose.modifier());
948            let children = subcompose.active_children();
949            subcompose.clear_needs_semantics();
950            Some((config, children, state.size()))
951        }) {
952            Ok(Some((config, child_ids, size))) => {
953                let child_ids = children_in_this_window(applier, child_ids);
954                let mut children = Vec::with_capacity(child_ids.len());
955                for child_id in child_ids {
956                    if let Some(child) = node(applier, child_id)? {
957                        children.push(child);
958                    }
959                }
960                Ok(Some(semantics_node_from_parts(
961                    node_id,
962                    applier.node_generation(node_id),
963                    SemanticsRole::Subcompose,
964                    config,
965                    children,
966                    size,
967                )))
968            }
969            Ok(None) | Err(NodeError::TypeMismatch { .. }) | Err(NodeError::Missing { .. }) => {
970                Ok(None)
971            }
972            Err(err) => Err(err),
973        }
974    }
975
976    node(applier, root).map(|root| root.map(SemanticsTree::new))
977}
978
979#[derive(Clone, Copy, Debug, PartialEq, Eq)]
980pub struct MeasureLayoutOptions {
981    pub collect_semantics: bool,
982    pub build_layout_tree: bool,
983}
984
985impl Default for MeasureLayoutOptions {
986    fn default() -> Self {
987        Self {
988            collect_semantics: true,
989            build_layout_tree: true,
990        }
991    }
992}
993
994/// Check if a node or any of its descendants needs measure (selective measure optimization).
995/// This can be used by the app shell to skip layout when the tree is clean.
996///
997/// O(1) check - just looks at root's dirty flag.
998/// Works because all mutation paths bubble dirty flags to root via composer commands.
999///
1000/// Returns Result to force caller to handle errors explicitly. No more unwrap_or(true) safety net.
1001pub fn tree_needs_layout(applier: &mut dyn Applier, root: NodeId) -> Result<bool, NodeError> {
1002    Ok(applier.get_mut(root)?.needs_layout())
1003}
1004
1005fn publish_window_geometry(
1006    modifier_slices: &crate::modifier::ModifierNodeSlices,
1007    top_left: Point,
1008    layer_translation: Point,
1009    size: Size,
1010) {
1011    let origin = Point {
1012        x: top_left.x + layer_translation.x,
1013        y: top_left.y + layer_translation.y,
1014    };
1015    if let Some(sink) = modifier_slices.text_field_window_origin() {
1016        sink.set(origin);
1017    }
1018    if let Some(sink) = modifier_slices.viewport_window_rect() {
1019        sink.set(GeometryRect {
1020            x: origin.x,
1021            y: origin.y,
1022            width: size.width,
1023            height: size.height,
1024        });
1025    }
1026    modifier_slices.publish_pointer_input_size(size);
1027}
1028
1029fn children_in_this_window(applier: &mut MemoryApplier, children: Vec<NodeId>) -> Vec<NodeId> {
1030    children
1031        .into_iter()
1032        .filter(|child| !crate::modifier::is_window_root(applier, *child))
1033        .collect()
1034}
1035
1036/// Check if the root semantics snapshot is dirty.
1037///
1038/// Semantics invalidations bubble to the root the same way layout invalidations do,
1039/// so a root check is sufficient to determine whether the next layout pass needs to
1040/// rebuild semantic data even when geometry is otherwise unchanged.
1041pub fn tree_needs_semantics(applier: &mut dyn Applier, root: NodeId) -> Result<bool, NodeError> {
1042    Ok(applier.get_mut(root)?.needs_semantics())
1043}
1044
1045#[cfg(test)]
1046pub(crate) fn bubble_layout_dirty(applier: &mut MemoryApplier, node_id: NodeId) {
1047    cranpose_core::bubble_layout_dirty(applier as &mut dyn Applier, node_id);
1048}
1049
1050/// Runs the measure phase for the subtree rooted at `root`.
1051pub fn measure_layout(
1052    applier: &mut MemoryApplier,
1053    root: NodeId,
1054    max_size: Size,
1055) -> Result<LayoutMeasurements, NodeError> {
1056    measure_layout_with_options(applier, root, max_size, MeasureLayoutOptions::default())
1057}
1058
1059pub fn measure_layout_with_options(
1060    applier: &mut MemoryApplier,
1061    root: NodeId,
1062    max_size: Size,
1063    options: MeasureLayoutOptions,
1064) -> Result<LayoutMeasurements, NodeError> {
1065    let telemetry_start = Instant::now();
1066    process_pending_layout_repasses(applier, root)?;
1067    let after_repasses = Instant::now();
1068
1069    let constraints = Constraints {
1070        min_width: 0.0,
1071        max_width: max_size.width,
1072        min_height: 0.0,
1073        max_height: max_size.height,
1074    };
1075
1076    let (needs_remeasure, _needs_semantics, cached_epoch) = match applier
1077        .with_node::<LayoutNode, _>(root, |node| {
1078            (
1079                node.needs_measure(),
1080                node.needs_semantics(),
1081                node.cache_handles().epoch(),
1082            )
1083        }) {
1084        Ok(tuple) => tuple,
1085        Err(NodeError::TypeMismatch { .. }) => {
1086            let node = applier.get_mut(root)?;
1087            let measure_dirty = node.needs_measure();
1088            let semantics_dirty = node.needs_semantics();
1089            (measure_dirty, semantics_dirty, 0)
1090        }
1091        Err(err) => return Err(err),
1092    };
1093
1094    let epoch = if needs_remeasure {
1095        crate::render_state::next_layout_cache_epoch()
1096    } else if cached_epoch != 0 {
1097        cached_epoch
1098    } else {
1099        crate::render_state::current_layout_cache_epoch()
1100    };
1101
1102    let guard = ApplierSlotGuard::new(applier);
1103    let applier_host = guard.host();
1104    let slots_handle = guard.slots_handle();
1105    let after_guard = Instant::now();
1106
1107    let frame_arena = crate::render_state::take_layout_frame_arena();
1108    let mut builder = LayoutBuilder::new_with_epoch(
1109        Rc::clone(&applier_host),
1110        epoch,
1111        Rc::clone(&slots_handle),
1112        frame_arena,
1113    );
1114    let after_builder = Instant::now();
1115
1116    let measured = builder.measure_node(root, normalize_constraints(constraints))?;
1117    let after_measure = Instant::now();
1118
1119    if let Ok(mut applier) = applier_host.try_borrow_typed()
1120        && applier
1121            .with_node::<LayoutNode, _>(root, |node| {
1122                node.set_position(Point::default());
1123            })
1124            .is_err()
1125    {
1126        let _ = applier.with_node::<SubcomposeLayoutNode, _>(root, |node| {
1127            node.set_position(Point::default());
1128        });
1129    }
1130    let after_root_place = Instant::now();
1131
1132    let (layout_tree, semantics) = {
1133        let mut applier_ref = applier_host.borrow_typed();
1134        let layout_tree = if options.build_layout_tree {
1135            Some(build_layout_tree(&mut applier_ref, &measured)?)
1136        } else {
1137            None
1138        };
1139        let semantics = if options.collect_semantics {
1140            let semantics_tree = if let Some(layout_tree) = layout_tree.as_ref() {
1141                clear_semantics_dirty_flags(&mut applier_ref, &measured)?;
1142                build_semantics_tree_from_layout_tree(layout_tree)
1143            } else {
1144                build_semantics_tree_from_live_nodes(&mut applier_ref, &measured)?
1145            };
1146            Some(semantics_tree)
1147        } else {
1148            None
1149        };
1150        (layout_tree, semantics)
1151    };
1152    let after_aux = Instant::now();
1153
1154    drop(builder);
1155    let after_builder_drop = Instant::now();
1156
1157    drop(guard);
1158    let after_guard_drop = Instant::now();
1159
1160    log_layout_measure_telemetry(LayoutMeasureTelemetry {
1161        root,
1162        start: telemetry_start,
1163        after_repasses,
1164        after_guard,
1165        after_builder,
1166        after_measure,
1167        after_root_place,
1168        after_aux,
1169        after_builder_drop,
1170        after_guard_drop,
1171    });
1172
1173    Ok(LayoutMeasurements::new(measured, semantics, layout_tree))
1174}
1175
1176fn process_pending_layout_repasses(
1177    applier: &mut MemoryApplier,
1178    root: NodeId,
1179) -> Result<(), NodeError> {
1180    for node_id in crate::render_state::take_modifier_slice_repass_nodes() {
1181        if let Ok(node) = applier.get_mut(node_id) {
1182            let any = node.as_any_mut();
1183            if let Some(layout) = any.downcast_mut::<crate::widgets::nodes::LayoutNode>() {
1184                layout.mark_modifier_slices_dirty();
1185            } else if let Some(subcompose) =
1186                any.downcast_mut::<crate::subcompose_layout::SubcomposeLayoutNode>()
1187            {
1188                subcompose.mark_modifier_slices_dirty();
1189            }
1190        }
1191    }
1192    let measure_repass_nodes = crate::take_measure_repass_nodes();
1193    let repass_nodes = crate::take_layout_repass_nodes();
1194    if measure_repass_nodes.is_empty() && repass_nodes.is_empty() {
1195        return Ok(());
1196    }
1197    for node_id in measure_repass_nodes {
1198        cranpose_core::bubble_measure_dirty(applier as &mut dyn Applier, node_id);
1199    }
1200    for node_id in repass_nodes {
1201        cranpose_core::bubble_layout_dirty(applier as &mut dyn Applier, node_id);
1202    }
1203    applier.get_mut(root)?.mark_needs_layout();
1204    Ok(())
1205}
1206
1207struct LayoutBuilder {
1208    state: Rc<RefCell<LayoutBuilderState>>,
1209}
1210
1211impl LayoutBuilder {
1212    fn new_with_epoch(
1213        applier: Rc<ConcreteApplierHost<MemoryApplier>>,
1214        epoch: u64,
1215        slots: Rc<RefCell<SlotTable>>,
1216        frame_arena: FrameLayoutArena,
1217    ) -> Self {
1218        Self {
1219            state: Rc::new(RefCell::new(LayoutBuilderState::new_with_epoch(
1220                applier,
1221                epoch,
1222                slots,
1223                frame_arena,
1224            ))),
1225        }
1226    }
1227
1228    fn measure_node(
1229        &mut self,
1230        node_id: NodeId,
1231        constraints: Constraints,
1232    ) -> Result<Rc<MeasuredNode>, NodeError> {
1233        LayoutBuilderState::measure_node(Rc::clone(&self.state), node_id, constraints)
1234    }
1235
1236    fn set_runtime_handle(&mut self, handle: Option<RuntimeHandle>) {
1237        self.state.borrow_mut().runtime_handle = handle;
1238    }
1239}
1240
1241impl Drop for LayoutBuilder {
1242    fn drop(&mut self) {
1243        if Rc::strong_count(&self.state) != 1 {
1244            return;
1245        }
1246        let Ok(mut state) = self.state.try_borrow_mut() else {
1247            return;
1248        };
1249        crate::render_state::replace_layout_frame_arena(std::mem::take(&mut state.frame_arena));
1250    }
1251}
1252
1253struct LayoutBuilderState {
1254    applier: Rc<ConcreteApplierHost<MemoryApplier>>,
1255    runtime_handle: Option<RuntimeHandle>,
1256    slots: Rc<RefCell<SlotTable>>,
1257    cache_epoch: u64,
1258    frame_arena: FrameLayoutArena,
1259}
1260
1261struct LayoutRuntimeFrameBindingCleanup {
1262    state: Rc<RefCell<LayoutRuntimeState>>,
1263}
1264
1265impl LayoutRuntimeFrameBindingCleanup {
1266    fn new(state: Rc<RefCell<LayoutRuntimeState>>) -> Self {
1267        Self { state }
1268    }
1269}
1270
1271impl Drop for LayoutRuntimeFrameBindingCleanup {
1272    fn drop(&mut self) {
1273        self.state.borrow().clear_frame_bindings();
1274    }
1275}
1276
1277impl LayoutBuilderState {
1278    fn new_with_epoch(
1279        applier: Rc<ConcreteApplierHost<MemoryApplier>>,
1280        epoch: u64,
1281        slots: Rc<RefCell<SlotTable>>,
1282        frame_arena: FrameLayoutArena,
1283    ) -> Self {
1284        let runtime_handle = applier.borrow_typed().runtime_handle();
1285
1286        Self {
1287            applier,
1288            runtime_handle,
1289            slots,
1290            cache_epoch: epoch,
1291            frame_arena,
1292        }
1293    }
1294
1295    fn try_with_applier_result<R>(
1296        state_rc: &Rc<RefCell<Self>>,
1297        f: impl FnOnce(&mut MemoryApplier) -> Result<R, NodeError>,
1298    ) -> Option<Result<R, NodeError>> {
1299        let host = {
1300            let state = state_rc.borrow();
1301            Rc::clone(&state.applier)
1302        };
1303
1304        let Ok(mut applier) = host.try_borrow_typed() else {
1305            return None;
1306        };
1307
1308        Some(f(&mut applier))
1309    }
1310
1311    fn with_applier_result<R>(
1312        state_rc: &Rc<RefCell<Self>>,
1313        f: impl FnOnce(&mut MemoryApplier) -> Result<R, NodeError>,
1314    ) -> Result<R, NodeError> {
1315        Self::try_with_applier_result(state_rc, f).unwrap_or_else(|| {
1316            Err(NodeError::MissingContext {
1317                id: NodeId::default(),
1318                reason: "applier already borrowed",
1319            })
1320        })
1321    }
1322
1323    fn clear_node_placed(state_rc: &Rc<RefCell<Self>>, node_id: NodeId) {
1324        let host = {
1325            let state = state_rc.borrow();
1326            Rc::clone(&state.applier)
1327        };
1328        let Ok(mut applier) = host.try_borrow_typed() else {
1329            return;
1330        };
1331        if applier
1332            .with_node::<LayoutNode, _>(node_id, |node| {
1333                node.clear_placed();
1334            })
1335            .is_err()
1336        {
1337            let _ = applier.with_node::<SubcomposeLayoutNode, _>(node_id, |node| {
1338                node.clear_placed();
1339            });
1340        }
1341    }
1342
1343    fn measure_node(
1344        state_rc: Rc<RefCell<Self>>,
1345        node_id: NodeId,
1346        constraints: Constraints,
1347    ) -> Result<Rc<MeasuredNode>, NodeError> {
1348        let telemetry_start = Instant::now();
1349        Self::clear_node_placed(&state_rc, node_id);
1350
1351        if let Some(subcompose) =
1352            Self::try_measure_subcompose(Rc::clone(&state_rc), node_id, constraints)?
1353        {
1354            log_node_measure_telemetry(
1355                "subcompose",
1356                node_id,
1357                constraints,
1358                subcompose.size,
1359                subcompose.children.len(),
1360                telemetry_start,
1361            );
1362            return Ok(subcompose);
1363        }
1364
1365        if let Some(result) = Self::try_with_applier_result(&state_rc, |applier| {
1366            match applier.with_node::<LayoutNode, _>(node_id, |layout_node| {
1367                LayoutNodeSnapshot::from_layout_node(layout_node)
1368            }) {
1369                Ok(snapshot) => Ok(Some(snapshot)),
1370                Err(NodeError::TypeMismatch { .. }) | Err(NodeError::Missing { .. }) => Ok(None),
1371                Err(err) => Err(err),
1372            }
1373        }) && let Some(snapshot) = result?
1374        {
1375            let measured =
1376                Self::measure_layout_node(Rc::clone(&state_rc), node_id, snapshot, constraints)?;
1377            log_node_measure_telemetry(
1378                "layout",
1379                node_id,
1380                constraints,
1381                measured.size,
1382                measured.children.len(),
1383                telemetry_start,
1384            );
1385            return Ok(measured);
1386        }
1387
1388        let measured = Rc::new(MeasuredNode::new(
1389            node_id,
1390            Size::default(),
1391            Point { x: 0.0, y: 0.0 },
1392            Point::default(),
1393            Vec::new(),
1394        ));
1395        log_node_measure_telemetry(
1396            "fallback",
1397            node_id,
1398            constraints,
1399            measured.size,
1400            measured.children.len(),
1401            telemetry_start,
1402        );
1403        Ok(measured)
1404    }
1405
1406    fn cached_measure_node_with_applier(
1407        applier: &mut MemoryApplier,
1408        node_id: NodeId,
1409        constraints: Constraints,
1410    ) -> Result<Option<Rc<MeasuredNode>>, NodeError> {
1411        let Some(data) = Self::layout_child_measure_data(applier, node_id)? else {
1412            return Ok(None);
1413        };
1414        if data.needs_measure
1415            || data.needs_layout
1416            || data.cache.epoch() == 0
1417            || data.cache.epoch() != crate::render_state::current_layout_cache_epoch()
1418        {
1419            return Ok(None);
1420        }
1421
1422        let Some(measured) = data.cache.get_measurement(constraints) else {
1423            return Ok(None);
1424        };
1425
1426        if let Some(layout_state) = data.layout_state {
1427            let mut layout_state = layout_state.borrow_mut();
1428            layout_state.set_size(measured.size);
1429            layout_state.measurement_constraints = constraints;
1430        } else {
1431            let _ = applier.with_node::<SubcomposeLayoutNode, _>(node_id, |node| {
1432                node.set_measured_size(measured.size);
1433            });
1434        }
1435
1436        Ok(Some(measured))
1437    }
1438
1439    fn try_measure_subcompose(
1440        state_rc: Rc<RefCell<Self>>,
1441        node_id: NodeId,
1442        constraints: Constraints,
1443    ) -> Result<Option<Rc<MeasuredNode>>, NodeError> {
1444        let applier_host = {
1445            let state = state_rc.borrow();
1446            Rc::clone(&state.applier)
1447        };
1448
1449        let (node_handle, resolved_modifiers) = {
1450            let Ok(mut applier) = applier_host.try_borrow_typed() else {
1451                return Ok(None);
1452            };
1453            let node = match applier.get_mut(node_id) {
1454                Ok(node) => node,
1455                Err(NodeError::Missing { .. }) => return Ok(None),
1456                Err(err) => return Err(err),
1457            };
1458            let any = node.as_any_mut();
1459            if let Some(subcompose) =
1460                any.downcast_mut::<crate::subcompose_layout::SubcomposeLayoutNode>()
1461            {
1462                let handle = subcompose.handle();
1463                let resolved_modifiers = handle.resolved_modifiers();
1464                (handle, resolved_modifiers)
1465            } else {
1466                return Ok(None);
1467            }
1468        };
1469
1470        let runtime_handle = {
1471            let mut state = state_rc.borrow_mut();
1472            if state.runtime_handle.is_none()
1473                && let Ok(applier) = applier_host.try_borrow_typed()
1474            {
1475                state.runtime_handle = applier.runtime_handle();
1476            }
1477            state
1478                .runtime_handle
1479                .clone()
1480                .ok_or(NodeError::MissingContext {
1481                    id: node_id,
1482                    reason: "runtime handle required for subcomposition",
1483                })?
1484        };
1485
1486        let props = resolved_modifiers.layout_properties();
1487        let padding = resolved_modifiers.padding();
1488        let offset = resolved_modifiers.offset();
1489        let mut inner_constraints = normalize_constraints(subtract_padding(constraints, padding));
1490
1491        if let DimensionConstraint::Points(width) = props.width() {
1492            let constrained_width = width - padding.horizontal_sum();
1493            inner_constraints.max_width = inner_constraints.max_width.min(constrained_width);
1494            inner_constraints.min_width = inner_constraints.min_width.min(constrained_width);
1495        }
1496        if let DimensionConstraint::Points(height) = props.height() {
1497            let constrained_height = height - padding.vertical_sum();
1498            inner_constraints.max_height = inner_constraints.max_height.min(constrained_height);
1499            inner_constraints.min_height = inner_constraints.min_height.min(constrained_height);
1500        }
1501
1502        let mut slots_guard = SlotsGuard::take(Rc::clone(&state_rc));
1503        let slots_host = slots_guard.host();
1504        let applier_host_dyn: Rc<dyn ApplierHost> = applier_host.clone();
1505        let observer = SnapshotStateObserver::new(|callback| callback());
1506        let composer = Composer::new(
1507            Rc::clone(&slots_host),
1508            applier_host_dyn,
1509            runtime_handle.clone(),
1510            observer,
1511            Some(node_id),
1512        );
1513        composer.enter_phase(Phase::Measure);
1514
1515        let state_rc_clone = Rc::clone(&state_rc);
1516        let measure_error = RefCell::new(None);
1517        let state_rc_for_subcompose = Rc::clone(&state_rc_clone);
1518        let error_for_subcompose = &measure_error;
1519        let measured_children = node_handle.measured_children_scratch();
1520        let measured_children_for_subcompose = Rc::clone(&measured_children);
1521        let state_rc_for_cached = Rc::clone(&state_rc_clone);
1522        let error_for_cached = &measure_error;
1523        let measured_children_for_cached = Rc::clone(&measured_children);
1524        let measured_children_for_lookup = Rc::clone(&measured_children);
1525        let measured_children_for_retained = Rc::clone(&measured_children);
1526
1527        let measure_result = node_handle.measure_with_cached_batch(
1528            &composer,
1529            node_id,
1530            inner_constraints,
1531            CachedBatchMeasureInputs {
1532                measurer: Box::new(
1533                    move |child_id: NodeId, child_constraints: Constraints| -> Size {
1534                        match Self::measure_node(
1535                            Rc::clone(&state_rc_for_subcompose),
1536                            child_id,
1537                            child_constraints,
1538                        ) {
1539                            Ok(measured) => {
1540                                measured_children_for_subcompose
1541                                    .borrow_mut()
1542                                    .insert(child_id, Rc::clone(&measured));
1543                                measured.size
1544                            }
1545                            Err(err) => {
1546                                let mut slot = error_for_subcompose.borrow_mut();
1547                                if slot.is_none() {
1548                                    *slot = Some(err);
1549                                }
1550                                Size::default()
1551                            }
1552                        }
1553                    },
1554                ),
1555                cached_measure_batch_registrar: Box::new(
1556                    move |child_ids: &[NodeId],
1557                          child_constraints: Constraints,
1558                          out: &mut Vec<Option<Size>>| {
1559                        out.clear();
1560                        out.resize(child_ids.len(), None);
1561
1562                        let applier_host = {
1563                            let state = state_rc_for_cached.borrow();
1564                            Rc::clone(&state.applier)
1565                        };
1566                        let Ok(mut applier) = applier_host.try_borrow_typed() else {
1567                            return;
1568                        };
1569
1570                        let mut measured_children = measured_children_for_cached.borrow_mut();
1571                        for (index, &child_id) in child_ids.iter().enumerate() {
1572                            match Self::cached_measure_node_with_applier(
1573                                &mut applier,
1574                                child_id,
1575                                child_constraints,
1576                            ) {
1577                                Ok(Some(measured)) => {
1578                                    out[index] = Some(measured.size);
1579                                    measured_children.insert(child_id, Rc::clone(&measured));
1580                                }
1581                                Ok(None) => {}
1582                                Err(err) => {
1583                                    let mut slot = error_for_cached.borrow_mut();
1584                                    if slot.is_none() {
1585                                        *slot = Some(err);
1586                                    }
1587                                    break;
1588                                }
1589                            }
1590                        }
1591                    },
1592                ),
1593                retained_measure_lookup: Box::new(move |child_id| {
1594                    measured_children_for_lookup
1595                        .borrow()
1596                        .get(&child_id)
1597                        .cloned()
1598                }),
1599                retained_measure_registrar: Box::new(move |measurements| {
1600                    let mut measured_children = measured_children_for_retained.borrow_mut();
1601                    for measured in measurements {
1602                        measured_children.insert(measured.node_id(), Rc::clone(measured));
1603                    }
1604                }),
1605                error: &measure_error,
1606            },
1607        )?;
1608        drop(composer);
1609        slots_guard.restore(slots_host.into_table()?);
1610
1611        if let Some(err) = measure_error.borrow_mut().take() {
1612            return Err(err);
1613        }
1614
1615        let cranpose_ui_layout::MeasureResult {
1616            size: measured_size,
1617            placements,
1618        } = measure_result;
1619
1620        let mut width = measured_size.width + padding.horizontal_sum();
1621        let mut height = measured_size.height + padding.vertical_sum();
1622
1623        width = resolve_dimension(
1624            width,
1625            props.width(),
1626            props.min_width(),
1627            props.max_width(),
1628            constraints.min_width,
1629            constraints.max_width,
1630        );
1631        height = resolve_dimension(
1632            height,
1633            props.height(),
1634            props.min_height(),
1635            props.max_height(),
1636            constraints.min_height,
1637            constraints.max_height,
1638        );
1639
1640        let mut children = Vec::with_capacity(placements.len());
1641        let mut measured_children_by_id = measured_children.borrow_mut();
1642
1643        if let Ok(mut applier) = applier_host.try_borrow_typed() {
1644            let _ = applier.with_node::<SubcomposeLayoutNode, _>(node_id, |parent_node| {
1645                parent_node.set_measured_size(Size { width, height });
1646                parent_node.clear_needs_measure();
1647                parent_node.clear_needs_layout();
1648            });
1649        }
1650
1651        for placement in &placements {
1652            let child = if let Some(measured) = measured_children_by_id.remove(&placement.node_id) {
1653                measured
1654            } else {
1655                Self::measure_node(Rc::clone(&state_rc), placement.node_id, inner_constraints)?
1656            };
1657            let policy_position = Point {
1658                x: padding.left + placement.x,
1659                y: padding.top + placement.y,
1660            };
1661            let retained_position = Point {
1662                x: policy_position.x + child.offset.x,
1663                y: policy_position.y + child.offset.y,
1664            };
1665
1666            if let Ok(mut applier) = applier_host.try_borrow_typed()
1667                && applier
1668                    .with_node::<LayoutNode, _>(placement.node_id, |node| {
1669                        node.set_position(retained_position);
1670                    })
1671                    .is_err()
1672            {
1673                let _ = applier.with_node::<SubcomposeLayoutNode, _>(placement.node_id, |node| {
1674                    node.set_position(retained_position);
1675                });
1676            }
1677
1678            children.push(MeasuredChild {
1679                node: child,
1680                offset: policy_position,
1681            });
1682        }
1683
1684        node_handle.set_active_children(children.iter().map(|c| c.node.node_id));
1685        node_handle.recycle_placement_scratch(placements);
1686
1687        Ok(Some(Rc::new(MeasuredNode::new(
1688            node_id,
1689            Size { width, height },
1690            offset,
1691            Point::default(),
1692            children,
1693        ))))
1694    }
1695    fn measure_through_modifier_chain(
1696        state_rc: &Rc<RefCell<Self>>,
1697        node_id: NodeId,
1698        runtime_state: &mut LayoutRuntimeState,
1699        measure_policy: &Rc<dyn MeasurePolicy>,
1700        constraints: Constraints,
1701        layout_node_data: &mut Vec<LayoutModifierNodeData>,
1702        placements: &mut Vec<Placement>,
1703    ) -> ModifierChainMeasurement {
1704        use cranpose_foundation::NodeCapabilities;
1705
1706        layout_node_data.clear();
1707        let mut offset = Point::default();
1708        let mut density = crate::density::Density::default();
1709        let mut window_root = false;
1710
1711        {
1712            let state = state_rc.borrow();
1713            let mut applier = state.applier.borrow_typed();
1714
1715            let _ = applier.with_node::<LayoutNode, _>(node_id, |layout_node| {
1716                density = layout_node.density();
1717                window_root = layout_node.is_window_root();
1718                let chain_handle = layout_node.modifier_chain();
1719
1720                if !chain_handle.has_layout_nodes() {
1721                    return;
1722                }
1723
1724                chain_handle.chain().for_each_forward_matching(
1725                    NodeCapabilities::LAYOUT,
1726                    |node_ref| {
1727                        if let Some(index) = node_ref.entry_index() {
1728                            if let Some(node_rc) = chain_handle.chain().get_node_rc(index) {
1729                                layout_node_data.push((index, Rc::clone(&node_rc)));
1730                            }
1731
1732                            node_ref.with_node(|node| {
1733                                if let Some(offset_node) =
1734                                    node.as_any()
1735                                        .downcast_ref::<crate::modifier_nodes::OffsetNode>()
1736                                {
1737                                    let delta = offset_node.offset();
1738                                    offset.x += delta.x;
1739                                    offset.y += delta.y;
1740                                }
1741                            });
1742                        }
1743                    },
1744                );
1745            });
1746        }
1747
1748        let scope = crate::density::DensityMeasureScope::new(density);
1749
1750        if layout_node_data.is_empty() {
1751            let final_size = measure_policy.measure_into(
1752                &scope,
1753                runtime_state.child_measurables(),
1754                constraints,
1755                placements,
1756            );
1757
1758            return ModifierChainMeasurement {
1759                size: final_size,
1760                content_offset: Point::default(),
1761                offset,
1762                window_root,
1763            };
1764        }
1765
1766        runtime_state.reconcile_coordinator_chain(layout_node_data.as_slice());
1767        let frame = CoordinatorFrame::new(
1768            measure_policy,
1769            &scope,
1770            runtime_state.child_measurables(),
1771            placements,
1772        );
1773
1774        let placeable = runtime_state
1775            .coordinator_chain()
1776            .measure_from(0, &frame, constraints);
1777        let final_size = Size {
1778            width: placeable.width(),
1779            height: placeable.height(),
1780        };
1781
1782        let content_offset = placeable.content_offset();
1783        let all_placement_offset = Point {
1784            x: content_offset.0,
1785            y: content_offset.1,
1786        };
1787
1788        let content_offset = Point {
1789            x: all_placement_offset.x - offset.x,
1790            y: all_placement_offset.y - offset.y,
1791        };
1792
1793        let invalidations = frame.take_invalidations();
1794        if !invalidations.is_empty() {
1795            Self::with_applier_result(state_rc, |applier| {
1796                applier.with_node::<LayoutNode, _>(node_id, |layout_node| {
1797                    for kind in invalidations {
1798                        match kind {
1799                            InvalidationKind::Layout => layout_node.mark_needs_measure(),
1800                            InvalidationKind::Draw => layout_node.mark_needs_redraw(),
1801                            InvalidationKind::Semantics => layout_node.mark_needs_semantics(),
1802                            InvalidationKind::PointerInput => layout_node.mark_needs_pointer_pass(),
1803                            InvalidationKind::Focus => layout_node.mark_needs_focus_sync(),
1804                        }
1805                    }
1806                })
1807            })
1808            .ok();
1809        }
1810
1811        ModifierChainMeasurement {
1812            size: final_size,
1813            content_offset,
1814            offset,
1815            window_root,
1816        }
1817    }
1818
1819    fn layout_child_measure_data(
1820        applier: &mut MemoryApplier,
1821        child_id: NodeId,
1822    ) -> Result<Option<LayoutChildMeasureData>, NodeError> {
1823        match applier.with_node::<LayoutNode, _>(child_id, |n| LayoutChildMeasureData {
1824            cache: n.cache_handles(),
1825            layout_state: Some(n.layout_state_handle()),
1826            needs_layout: n.needs_layout(),
1827            needs_measure: n.needs_measure(),
1828        }) {
1829            Ok(data) => Ok(Some(data)),
1830            Err(NodeError::TypeMismatch { .. }) => {
1831                match applier.with_node::<SubcomposeLayoutNode, _>(child_id, |n| {
1832                    LayoutChildMeasureData {
1833                        cache: n.cache_handles(),
1834                        layout_state: None,
1835                        needs_layout: n.needs_layout(),
1836                        needs_measure: n.needs_measure(),
1837                    }
1838                }) {
1839                    Ok(data) => Ok(Some(data)),
1840                    Err(NodeError::TypeMismatch { .. }) | Err(NodeError::Missing { .. }) => {
1841                        Ok(None)
1842                    }
1843                    Err(err) => Err(err),
1844                }
1845            }
1846            Err(NodeError::Missing { .. }) => Ok(None),
1847            Err(err) => Err(err),
1848        }
1849    }
1850
1851    fn measure_layout_node(
1852        state_rc: Rc<RefCell<Self>>,
1853        node_id: NodeId,
1854        snapshot: LayoutNodeSnapshot,
1855        constraints: Constraints,
1856    ) -> Result<Rc<MeasuredNode>, NodeError> {
1857        let cache_epoch = {
1858            let state = state_rc.borrow();
1859            state.cache_epoch
1860        };
1861        let LayoutNodeSnapshot {
1862            measure_policy,
1863            cache,
1864            layout_runtime_state,
1865            needs_layout,
1866            needs_measure,
1867        } = snapshot;
1868        cache.activate(cache_epoch);
1869
1870        if !needs_measure
1871            && !needs_layout
1872            && let Some(cached) = cache.get_measurement(constraints)
1873        {
1874            Self::with_applier_result(&state_rc, |applier| {
1875                applier.with_node::<LayoutNode, _>(node_id, |node| {
1876                    node.clear_needs_measure();
1877                    node.clear_needs_layout();
1878                })
1879            })
1880            .ok();
1881            return Ok(cached);
1882        }
1883
1884        let (runtime_handle, applier_host) = {
1885            let state = state_rc.borrow();
1886            (state.runtime_handle.clone(), Rc::clone(&state.applier))
1887        };
1888
1889        let measure_handle = LayoutMeasureHandle::new(Rc::clone(&state_rc));
1890        let error = Rc::new(RefCell::new(None));
1891        let mut pools = VecPools::acquire(Rc::clone(&state_rc));
1892        let (records, child_ids, layout_node_data, placements) = pools.parts();
1893
1894        applier_host
1895            .borrow_typed()
1896            .with_node::<LayoutNode, _>(node_id, |node| {
1897                child_ids.extend_from_slice(&node.children);
1898            })?;
1899
1900        let mut valid_child_count = 0;
1901        for index in 0..child_ids.len() {
1902            let child_id = child_ids[index];
1903            let child_exists = {
1904                let mut applier = applier_host.borrow_typed();
1905                Self::layout_child_measure_data(&mut applier, child_id)?.is_some()
1906            };
1907            if child_exists {
1908                child_ids[valid_child_count] = child_id;
1909                valid_child_count += 1;
1910            }
1911        }
1912        child_ids.truncate(valid_child_count);
1913
1914        let _frame_binding_cleanup =
1915            LayoutRuntimeFrameBindingCleanup::new(Rc::clone(&layout_runtime_state));
1916
1917        {
1918            let mut runtime_state = layout_runtime_state.borrow_mut();
1919            runtime_state.reconcile_child_measurables(child_ids.as_slice());
1920
1921            for (index, &child_id) in child_ids.iter().enumerate() {
1922                let data = {
1923                    let mut applier = applier_host.borrow_typed();
1924                    Self::layout_child_measure_data(&mut applier, child_id)?
1925                };
1926                let Some(data) = data else {
1927                    continue;
1928                };
1929
1930                let child_is_dirty = data.needs_layout || data.needs_measure;
1931                let child_cache_epoch = if child_is_dirty {
1932                    cache_epoch
1933                } else {
1934                    data.cache.epoch()
1935                };
1936                let child_state = runtime_state.child_state(index);
1937                child_state.configure(LayoutChildMeasureConfig {
1938                    applier: Rc::clone(&applier_host),
1939                    node_id: child_id,
1940                    error: Rc::clone(&error),
1941                    runtime_handle: runtime_handle.clone(),
1942                    cache: data.cache,
1943                    cache_epoch: child_cache_epoch,
1944                    force_remeasure: child_is_dirty,
1945                    measure_handle: Some(measure_handle.clone()),
1946                    layout_state: data.layout_state,
1947                });
1948                records.push((child_id, ChildRecord { state: child_state }));
1949            }
1950        }
1951
1952        let chain_constraints = constraints;
1953
1954        let modifier_chain_result = {
1955            let mut runtime_state = layout_runtime_state.borrow_mut();
1956            Self::measure_through_modifier_chain(
1957                &state_rc,
1958                node_id,
1959                &mut runtime_state,
1960                &measure_policy,
1961                chain_constraints,
1962                layout_node_data,
1963                placements,
1964            )
1965        };
1966
1967        let (width, height, content_offset, offset, window_root) = {
1968            let result = modifier_chain_result;
1969            if let Some(err) = error.borrow_mut().take() {
1970                return Err(err);
1971            }
1972
1973            (
1974                result.size.width,
1975                result.size.height,
1976                result.content_offset,
1977                result.offset,
1978                result.window_root,
1979            )
1980        };
1981
1982        let mut measured_children = Vec::with_capacity(records.len());
1983        for (child_id, record) in records.iter() {
1984            if let Some(measured) = record.state.take_measured() {
1985                let placed = placements
1986                    .iter()
1987                    .find(|placement| placement.node_id == *child_id)
1988                    .map(|placement| Point {
1989                        x: placement.x,
1990                        y: placement.y,
1991                    });
1992                if let Some(raw) = placed {
1993                    record.state.place_retained(Point {
1994                        x: raw.x + measured.offset.x,
1995                        y: raw.y + measured.offset.y,
1996                    });
1997                }
1998                let base_position = placed
1999                    .or_else(|| record.state.last_position())
2000                    .unwrap_or(Point { x: 0.0, y: 0.0 });
2001                let position = Point {
2002                    x: content_offset.x + base_position.x,
2003                    y: content_offset.y + base_position.y,
2004                };
2005                measured_children.push(MeasuredChild {
2006                    node: measured,
2007                    offset: position,
2008                });
2009            }
2010        }
2011
2012        let measured = Rc::new(
2013            MeasuredNode::new(
2014                node_id,
2015                Size { width, height },
2016                offset,
2017                content_offset,
2018                measured_children,
2019            )
2020            .with_window_root(window_root),
2021        );
2022
2023        cache.store_measurement(constraints, Rc::clone(&measured));
2024
2025        Self::with_applier_result(&state_rc, |applier| {
2026            applier.with_node::<LayoutNode, _>(node_id, |node| {
2027                node.clear_needs_measure();
2028                node.clear_needs_layout();
2029                node.set_measured_size(Size { width, height });
2030                node.set_content_offset(content_offset);
2031            })
2032        })
2033        .ok();
2034
2035        Ok(measured)
2036    }
2037}
2038
2039struct LayoutChildMeasureData {
2040    cache: LayoutNodeCacheHandles,
2041    layout_state: Option<Rc<RefCell<LayoutState>>>,
2042    needs_layout: bool,
2043    needs_measure: bool,
2044}
2045
2046struct LayoutNodeSnapshot {
2047    measure_policy: Rc<dyn MeasurePolicy>,
2048    cache: LayoutNodeCacheHandles,
2049    layout_runtime_state: Rc<RefCell<LayoutRuntimeState>>,
2050    needs_layout: bool,
2051    needs_measure: bool,
2052}
2053
2054impl LayoutNodeSnapshot {
2055    fn from_layout_node(node: &LayoutNode) -> Self {
2056        Self {
2057            measure_policy: Rc::clone(&node.measure_policy),
2058            cache: node.cache_handles(),
2059            layout_runtime_state: node.layout_runtime_state_handle(),
2060            needs_layout: node.needs_layout(),
2061            needs_measure: node.needs_measure(),
2062        }
2063    }
2064}
2065
2066struct VecPools {
2067    state: Rc<RefCell<LayoutBuilderState>>,
2068    records: Vec<(NodeId, ChildRecord)>,
2069    child_ids: Vec<NodeId>,
2070    layout_node_data: Vec<LayoutModifierNodeData>,
2071    placements: Vec<Placement>,
2072}
2073
2074impl VecPools {
2075    fn acquire(state: Rc<RefCell<LayoutBuilderState>>) -> Self {
2076        let (records, child_ids, layout_node_data, placements) = {
2077            let mut state_mut = state.borrow_mut();
2078            (
2079                state_mut.frame_arena.tmp_records.acquire(),
2080                state_mut.frame_arena.tmp_child_ids.acquire(),
2081                state_mut.frame_arena.tmp_layout_node_data.acquire(),
2082                state_mut.frame_arena.tmp_placements.acquire(),
2083            )
2084        };
2085        Self {
2086            state,
2087            records,
2088            child_ids,
2089            layout_node_data,
2090            placements,
2091        }
2092    }
2093
2094    #[allow(clippy::type_complexity)]
2095    fn parts(
2096        &mut self,
2097    ) -> (
2098        &mut Vec<(NodeId, ChildRecord)>,
2099        &mut Vec<NodeId>,
2100        &mut Vec<LayoutModifierNodeData>,
2101        &mut Vec<Placement>,
2102    ) {
2103        (
2104            &mut self.records,
2105            &mut self.child_ids,
2106            &mut self.layout_node_data,
2107            &mut self.placements,
2108        )
2109    }
2110}
2111
2112impl Drop for VecPools {
2113    fn drop(&mut self) {
2114        let mut state = self.state.borrow_mut();
2115        state
2116            .frame_arena
2117            .tmp_records
2118            .release(std::mem::take(&mut self.records));
2119        state
2120            .frame_arena
2121            .tmp_child_ids
2122            .release(std::mem::take(&mut self.child_ids));
2123        state
2124            .frame_arena
2125            .tmp_layout_node_data
2126            .release(std::mem::take(&mut self.layout_node_data));
2127        state
2128            .frame_arena
2129            .tmp_placements
2130            .release(std::mem::take(&mut self.placements));
2131    }
2132}
2133
2134struct SlotsGuard {
2135    state: Rc<RefCell<LayoutBuilderState>>,
2136    slots: Option<SlotTable>,
2137}
2138
2139impl SlotsGuard {
2140    fn take(state: Rc<RefCell<LayoutBuilderState>>) -> Self {
2141        let slots = {
2142            let state_ref = state.borrow();
2143            let mut slots_ref = state_ref.slots.borrow_mut();
2144            std::mem::take(&mut *slots_ref)
2145        };
2146        Self {
2147            state,
2148            slots: Some(slots),
2149        }
2150    }
2151
2152    fn host(&mut self) -> Rc<SlotsHost> {
2153        let slots = self.slots.take().unwrap_or_default();
2154        Rc::new(SlotsHost::new(slots))
2155    }
2156
2157    fn restore(&mut self, slots: SlotTable) {
2158        debug_assert!(self.slots.is_none());
2159        self.slots = Some(slots);
2160    }
2161}
2162
2163impl Drop for SlotsGuard {
2164    fn drop(&mut self) {
2165        if let Some(slots) = self.slots.take() {
2166            let state_ref = self.state.borrow();
2167            *state_ref.slots.borrow_mut() = slots;
2168        }
2169    }
2170}
2171
2172#[derive(Clone)]
2173struct LayoutMeasureHandle {
2174    state: Rc<RefCell<LayoutBuilderState>>,
2175}
2176
2177impl LayoutMeasureHandle {
2178    fn new(state: Rc<RefCell<LayoutBuilderState>>) -> Self {
2179        Self { state }
2180    }
2181
2182    fn measure(
2183        &self,
2184        node_id: NodeId,
2185        constraints: Constraints,
2186    ) -> Result<Rc<MeasuredNode>, NodeError> {
2187        LayoutBuilderState::measure_node(Rc::clone(&self.state), node_id, constraints)
2188    }
2189}
2190
2191#[derive(Debug, Clone)]
2192pub(crate) struct MeasuredNode {
2193    node_id: NodeId,
2194    size: Size,
2195    offset: Point,
2196    content_offset: Point,
2197    children: Vec<MeasuredChild>,
2198    window_root: bool,
2199}
2200
2201impl MeasuredNode {
2202    fn new(
2203        node_id: NodeId,
2204        size: Size,
2205        offset: Point,
2206        content_offset: Point,
2207        children: Vec<MeasuredChild>,
2208    ) -> Self {
2209        Self {
2210            node_id,
2211            size,
2212            offset,
2213            content_offset,
2214            children,
2215            window_root: false,
2216        }
2217    }
2218
2219    fn with_window_root(mut self, window_root: bool) -> Self {
2220        self.window_root = window_root;
2221        self
2222    }
2223
2224    pub(crate) fn size_for_parent(&self) -> Size {
2225        if self.window_root {
2226            Size::new(0.0, 0.0)
2227        } else {
2228            self.size
2229        }
2230    }
2231
2232    #[cfg(test)]
2233    pub(crate) fn leaf(node_id: NodeId, size: Size) -> Self {
2234        Self::new(
2235            node_id,
2236            size,
2237            Point::default(),
2238            Point::default(),
2239            Vec::new(),
2240        )
2241    }
2242
2243    pub(crate) fn node_id(&self) -> NodeId {
2244        self.node_id
2245    }
2246
2247    pub(crate) fn size(&self) -> Size {
2248        self.size
2249    }
2250}
2251
2252#[derive(Debug, Clone)]
2253struct MeasuredChild {
2254    node: Rc<MeasuredNode>,
2255    offset: Point,
2256}
2257
2258struct ChildRecord {
2259    state: Rc<LayoutChildMeasureState>,
2260}
2261
2262struct CoordinatorFrame<'a> {
2263    measure_policy: &'a Rc<dyn MeasurePolicy>,
2264    scope: &'a dyn cranpose_ui_layout::MeasureScope,
2265    measurables: &'a [Box<dyn Measurable>],
2266    placements: RefCell<&'a mut Vec<Placement>>,
2267    context: RefCell<LayoutNodeContext>,
2268}
2269
2270impl<'a> CoordinatorFrame<'a> {
2271    fn new(
2272        measure_policy: &'a Rc<dyn MeasurePolicy>,
2273        scope: &'a dyn cranpose_ui_layout::MeasureScope,
2274        measurables: &'a [Box<dyn Measurable>],
2275        placements: &'a mut Vec<Placement>,
2276    ) -> Self {
2277        Self {
2278            measure_policy,
2279            scope,
2280            measurables,
2281            placements: RefCell::new(placements),
2282            context: RefCell::new(LayoutNodeContext::new()),
2283        }
2284    }
2285
2286    fn take_invalidations(&self) -> Vec<InvalidationKind> {
2287        self.context.borrow_mut().take_invalidations()
2288    }
2289}
2290
2291struct CoordinatorLink<'chain, 'frame_ref, 'frame_data> {
2292    chain: &'chain CoordinatorChain,
2293    frame: &'frame_ref CoordinatorFrame<'frame_data>,
2294    index: usize,
2295}
2296
2297impl Measurable for CoordinatorLink<'_, '_, '_> {
2298    fn measure(&self, constraints: Constraints) -> Placeable {
2299        self.chain.measure_from(self.index, self.frame, constraints)
2300    }
2301
2302    fn min_intrinsic_width(&self, height: f32) -> f32 {
2303        self.chain
2304            .min_intrinsic_width_from(self.index, self.frame, height)
2305    }
2306
2307    fn max_intrinsic_width(&self, height: f32) -> f32 {
2308        self.chain
2309            .max_intrinsic_width_from(self.index, self.frame, height)
2310    }
2311
2312    fn min_intrinsic_height(&self, width: f32) -> f32 {
2313        self.chain
2314            .min_intrinsic_height_from(self.index, self.frame, width)
2315    }
2316
2317    fn max_intrinsic_height(&self, width: f32) -> f32 {
2318        self.chain
2319            .max_intrinsic_height_from(self.index, self.frame, width)
2320    }
2321}
2322
2323struct CoordinatorNode {
2324    modifier_index: usize,
2325    node: Rc<RefCell<Box<dyn cranpose_foundation::ModifierNode>>>,
2326    measured_size: Cell<Size>,
2327    accumulated_offset: Cell<Point>,
2328}
2329
2330impl CoordinatorNode {
2331    fn new(
2332        modifier_index: usize,
2333        node: Rc<RefCell<Box<dyn cranpose_foundation::ModifierNode>>>,
2334    ) -> Self {
2335        Self {
2336            modifier_index,
2337            node,
2338            measured_size: Cell::new(Size::default()),
2339            accumulated_offset: Cell::new(Point::default()),
2340        }
2341    }
2342
2343    fn matches(
2344        &self,
2345        modifier_index: usize,
2346        node: &Rc<RefCell<Box<dyn cranpose_foundation::ModifierNode>>>,
2347    ) -> bool {
2348        self.modifier_index == modifier_index && Rc::ptr_eq(&self.node, node)
2349    }
2350
2351    #[cfg(test)]
2352    fn ptr(&self) -> usize {
2353        Rc::as_ptr(&self.node) as *const () as usize
2354    }
2355}
2356
2357#[derive(Default)]
2358struct CoordinatorChain {
2359    nodes: Vec<CoordinatorNode>,
2360}
2361
2362impl CoordinatorChain {
2363    fn reconcile(&mut self, layout_node_data: &[LayoutModifierNodeData]) {
2364        if self.matches(layout_node_data) {
2365            return;
2366        }
2367
2368        let mut previous_nodes = std::mem::take(&mut self.nodes);
2369        self.nodes.reserve(layout_node_data.len());
2370
2371        for (modifier_index, node) in layout_node_data.iter() {
2372            if let Some(position) = previous_nodes
2373                .iter()
2374                .position(|candidate| candidate.matches(*modifier_index, node))
2375            {
2376                self.nodes.push(previous_nodes.swap_remove(position));
2377            } else {
2378                self.nodes
2379                    .push(CoordinatorNode::new(*modifier_index, Rc::clone(node)));
2380            }
2381        }
2382    }
2383
2384    fn matches(&self, layout_node_data: &[LayoutModifierNodeData]) -> bool {
2385        self.nodes.len() == layout_node_data.len()
2386            && self
2387                .nodes
2388                .iter()
2389                .zip(layout_node_data.iter())
2390                .all(|(node, (modifier_index, node_rc))| node.matches(*modifier_index, node_rc))
2391    }
2392
2393    fn measure_from(
2394        &self,
2395        index: usize,
2396        frame: &CoordinatorFrame<'_>,
2397        constraints: Constraints,
2398    ) -> Placeable {
2399        let Some(node) = self.nodes.get(index) else {
2400            let mut placements = frame.placements.borrow_mut();
2401            let size = frame.measure_policy.measure_into(
2402                frame.scope,
2403                frame.measurables,
2404                constraints,
2405                &mut placements,
2406            );
2407            return Placeable::value(size.width, size.height, NodeId::default());
2408        };
2409
2410        let wrapped = CoordinatorLink {
2411            chain: self,
2412            frame,
2413            index: index + 1,
2414        };
2415        let node_borrow = node.node.borrow();
2416
2417        let Some(layout_node) = node_borrow.as_layout_node() else {
2418            let placeable = wrapped.measure(constraints);
2419            let child_accumulated = self.total_content_offset_from(index + 1);
2420            node.accumulated_offset.set(child_accumulated);
2421            return Placeable::value_with_offset(
2422                placeable.width(),
2423                placeable.height(),
2424                NodeId::default(),
2425                (child_accumulated.x, child_accumulated.y),
2426            );
2427        };
2428
2429        let result = match frame.context.try_borrow_mut() {
2430            Ok(mut context) => layout_node.measure(&mut *context, &wrapped, constraints),
2431            Err(_) => {
2432                let mut temp = LayoutNodeContext::new();
2433                let result = layout_node.measure(&mut temp, &wrapped, constraints);
2434                if let Ok(mut context) = frame.context.try_borrow_mut() {
2435                    for kind in temp.take_invalidations() {
2436                        context.invalidate(kind);
2437                    }
2438                }
2439                result
2440            }
2441        };
2442
2443        node.measured_size.set(result.size);
2444        let local_offset = Point {
2445            x: result.placement_offset_x,
2446            y: result.placement_offset_y,
2447        };
2448        let child_accumulated = self.total_content_offset_from(index + 1);
2449        let accumulated = Point {
2450            x: local_offset.x + child_accumulated.x,
2451            y: local_offset.y + child_accumulated.y,
2452        };
2453        node.accumulated_offset.set(accumulated);
2454
2455        Placeable::value_with_offset(
2456            result.size.width,
2457            result.size.height,
2458            NodeId::default(),
2459            (accumulated.x, accumulated.y),
2460        )
2461    }
2462
2463    fn min_intrinsic_width_from(
2464        &self,
2465        index: usize,
2466        frame: &CoordinatorFrame<'_>,
2467        height: f32,
2468    ) -> f32 {
2469        let Some(node) = self.nodes.get(index) else {
2470            return frame
2471                .measure_policy
2472                .min_intrinsic_width(frame.measurables, height);
2473        };
2474        let wrapped = CoordinatorLink {
2475            chain: self,
2476            frame,
2477            index: index + 1,
2478        };
2479        let node_borrow = node.node.borrow();
2480        node_borrow
2481            .as_layout_node()
2482            .map(|layout_node| layout_node.min_intrinsic_width(&wrapped, height))
2483            .unwrap_or_else(|| wrapped.min_intrinsic_width(height))
2484    }
2485
2486    fn max_intrinsic_width_from(
2487        &self,
2488        index: usize,
2489        frame: &CoordinatorFrame<'_>,
2490        height: f32,
2491    ) -> f32 {
2492        let Some(node) = self.nodes.get(index) else {
2493            return frame
2494                .measure_policy
2495                .max_intrinsic_width(frame.measurables, height);
2496        };
2497        let wrapped = CoordinatorLink {
2498            chain: self,
2499            frame,
2500            index: index + 1,
2501        };
2502        let node_borrow = node.node.borrow();
2503        node_borrow
2504            .as_layout_node()
2505            .map(|layout_node| layout_node.max_intrinsic_width(&wrapped, height))
2506            .unwrap_or_else(|| wrapped.max_intrinsic_width(height))
2507    }
2508
2509    fn min_intrinsic_height_from(
2510        &self,
2511        index: usize,
2512        frame: &CoordinatorFrame<'_>,
2513        width: f32,
2514    ) -> f32 {
2515        let Some(node) = self.nodes.get(index) else {
2516            return frame
2517                .measure_policy
2518                .min_intrinsic_height(frame.measurables, width);
2519        };
2520        let wrapped = CoordinatorLink {
2521            chain: self,
2522            frame,
2523            index: index + 1,
2524        };
2525        let node_borrow = node.node.borrow();
2526        node_borrow
2527            .as_layout_node()
2528            .map(|layout_node| layout_node.min_intrinsic_height(&wrapped, width))
2529            .unwrap_or_else(|| wrapped.min_intrinsic_height(width))
2530    }
2531
2532    fn max_intrinsic_height_from(
2533        &self,
2534        index: usize,
2535        frame: &CoordinatorFrame<'_>,
2536        width: f32,
2537    ) -> f32 {
2538        let Some(node) = self.nodes.get(index) else {
2539            return frame
2540                .measure_policy
2541                .max_intrinsic_height(frame.measurables, width);
2542        };
2543        let wrapped = CoordinatorLink {
2544            chain: self,
2545            frame,
2546            index: index + 1,
2547        };
2548        let node_borrow = node.node.borrow();
2549        node_borrow
2550            .as_layout_node()
2551            .map(|layout_node| layout_node.max_intrinsic_height(&wrapped, width))
2552            .unwrap_or_else(|| wrapped.max_intrinsic_height(width))
2553    }
2554
2555    fn total_content_offset_from(&self, index: usize) -> Point {
2556        self.nodes
2557            .get(index)
2558            .map(|node| node.accumulated_offset.get())
2559            .unwrap_or_default()
2560    }
2561
2562    #[cfg(test)]
2563    fn debug_ptrs(&self) -> Vec<usize> {
2564        self.nodes.iter().map(CoordinatorNode::ptr).collect()
2565    }
2566}
2567
2568#[derive(Default)]
2569pub(crate) struct LayoutRuntimeState {
2570    child_ids: Vec<NodeId>,
2571    child_states: Vec<Rc<LayoutChildMeasureState>>,
2572    child_measurables: Vec<Box<dyn Measurable>>,
2573    coordinator_chain: CoordinatorChain,
2574}
2575
2576impl LayoutRuntimeState {
2577    fn reconcile_child_measurables(&mut self, child_ids: &[NodeId]) {
2578        if self.child_ids == child_ids {
2579            return;
2580        }
2581
2582        let mut previous_ids = std::mem::take(&mut self.child_ids);
2583        let mut previous_states = std::mem::take(&mut self.child_states);
2584        let mut previous_measurables = std::mem::take(&mut self.child_measurables);
2585
2586        self.child_ids.reserve(child_ids.len());
2587        self.child_states.reserve(child_ids.len());
2588        self.child_measurables.reserve(child_ids.len());
2589
2590        for &child_id in child_ids {
2591            if let Some(position) = previous_ids.iter().position(|&id| id == child_id) {
2592                self.child_ids.push(previous_ids.swap_remove(position));
2593                self.child_states
2594                    .push(previous_states.swap_remove(position));
2595                self.child_measurables
2596                    .push(previous_measurables.swap_remove(position));
2597            } else {
2598                let state = LayoutChildMeasureState::new(child_id);
2599                self.child_ids.push(child_id);
2600                self.child_states.push(Rc::clone(&state));
2601                self.child_measurables
2602                    .push(Box::new(LayoutChildMeasurable::new(state)));
2603            }
2604        }
2605    }
2606
2607    fn child_state(&self, index: usize) -> Rc<LayoutChildMeasureState> {
2608        Rc::clone(&self.child_states[index])
2609    }
2610
2611    fn child_measurables(&self) -> &[Box<dyn Measurable>] {
2612        self.child_measurables.as_slice()
2613    }
2614
2615    fn reconcile_coordinator_chain(&mut self, layout_node_data: &[LayoutModifierNodeData]) {
2616        self.coordinator_chain.reconcile(layout_node_data);
2617    }
2618
2619    fn coordinator_chain(&self) -> &CoordinatorChain {
2620        &self.coordinator_chain
2621    }
2622
2623    fn clear_frame_bindings(&self) {
2624        for child_state in &self.child_states {
2625            child_state.clear_frame_bindings();
2626        }
2627    }
2628
2629    #[cfg(test)]
2630    pub(crate) fn debug_stats(&self) -> LayoutRuntimeDebugStats {
2631        LayoutRuntimeDebugStats {
2632            child_ids: self.child_ids.clone(),
2633            child_state_ptrs: self
2634                .child_states
2635                .iter()
2636                .map(|state| Rc::as_ptr(state) as *const () as usize)
2637                .collect(),
2638            child_measurable_ptrs: self
2639                .child_measurables
2640                .iter()
2641                .map(|measurable| {
2642                    measurable.as_ref() as *const dyn Measurable as *const () as usize
2643                })
2644                .collect(),
2645            child_measurable_count: self.child_measurables.len(),
2646            coordinator_node_ptrs: self.coordinator_chain.debug_ptrs(),
2647            coordinator_node_count: self.coordinator_chain.nodes.len(),
2648        }
2649    }
2650}
2651
2652#[cfg(test)]
2653#[derive(Debug, Clone, PartialEq, Eq)]
2654pub(crate) struct LayoutRuntimeDebugStats {
2655    pub(crate) child_ids: Vec<NodeId>,
2656    pub(crate) child_state_ptrs: Vec<usize>,
2657    pub(crate) child_measurable_ptrs: Vec<usize>,
2658    pub(crate) child_measurable_count: usize,
2659    pub(crate) coordinator_node_ptrs: Vec<usize>,
2660    pub(crate) coordinator_node_count: usize,
2661}
2662
2663struct LayoutChildMeasureConfig {
2664    applier: Rc<ConcreteApplierHost<MemoryApplier>>,
2665    node_id: NodeId,
2666    error: Rc<RefCell<Option<NodeError>>>,
2667    runtime_handle: Option<RuntimeHandle>,
2668    cache: LayoutNodeCacheHandles,
2669    cache_epoch: u64,
2670    force_remeasure: bool,
2671    measure_handle: Option<LayoutMeasureHandle>,
2672    layout_state: Option<Rc<RefCell<LayoutState>>>,
2673}
2674
2675struct LayoutChildMeasureState {
2676    applier: RefCell<Option<Rc<ConcreteApplierHost<MemoryApplier>>>>,
2677    node_id: Cell<NodeId>,
2678    measured: RefCell<Option<Rc<MeasuredNode>>>,
2679    last_position: Cell<Option<Point>>,
2680    error: RefCell<Option<Rc<RefCell<Option<NodeError>>>>>,
2681    runtime_handle: RefCell<Option<RuntimeHandle>>,
2682    cache: RefCell<LayoutNodeCacheHandles>,
2683    cache_epoch: Cell<u64>,
2684    force_remeasure: Cell<bool>,
2685    measure_handle: RefCell<Option<LayoutMeasureHandle>>,
2686    layout_state: RefCell<Option<Rc<RefCell<LayoutState>>>>,
2687}
2688
2689impl LayoutChildMeasureState {
2690    fn new(node_id: NodeId) -> Rc<Self> {
2691        Rc::new(Self {
2692            applier: RefCell::new(None),
2693            node_id: Cell::new(node_id),
2694            measured: RefCell::new(None),
2695            last_position: Cell::new(None),
2696            error: RefCell::new(None),
2697            runtime_handle: RefCell::new(None),
2698            cache: RefCell::new(LayoutNodeCacheHandles::default()),
2699            cache_epoch: Cell::new(0),
2700            force_remeasure: Cell::new(true),
2701            measure_handle: RefCell::new(None),
2702            layout_state: RefCell::new(None),
2703        })
2704    }
2705
2706    fn configure(&self, config: LayoutChildMeasureConfig) {
2707        config.cache.activate(config.cache_epoch);
2708        *self.applier.borrow_mut() = Some(config.applier);
2709        self.node_id.set(config.node_id);
2710        self.measured.borrow_mut().take();
2711        self.last_position.set(None);
2712        *self.error.borrow_mut() = Some(config.error);
2713        *self.runtime_handle.borrow_mut() = config.runtime_handle;
2714        *self.cache.borrow_mut() = config.cache;
2715        self.cache_epoch.set(config.cache_epoch);
2716        self.force_remeasure.set(config.force_remeasure);
2717        *self.measure_handle.borrow_mut() = config.measure_handle;
2718        *self.layout_state.borrow_mut() = config.layout_state;
2719    }
2720
2721    fn clear_frame_bindings(&self) {
2722        self.measured.borrow_mut().take();
2723        *self.applier.borrow_mut() = None;
2724        *self.error.borrow_mut() = None;
2725        *self.runtime_handle.borrow_mut() = None;
2726        *self.measure_handle.borrow_mut() = None;
2727        *self.layout_state.borrow_mut() = None;
2728    }
2729
2730    fn node_id(&self) -> NodeId {
2731        self.node_id.get()
2732    }
2733
2734    fn cache(&self) -> LayoutNodeCacheHandles {
2735        self.cache.borrow().clone()
2736    }
2737
2738    fn applier(&self) -> Option<Rc<ConcreteApplierHost<MemoryApplier>>> {
2739        self.applier.borrow().clone()
2740    }
2741
2742    fn layout_state(&self) -> Option<Rc<RefCell<LayoutState>>> {
2743        self.layout_state.borrow().clone()
2744    }
2745
2746    fn take_measured(&self) -> Option<Rc<MeasuredNode>> {
2747        self.measured.borrow_mut().take()
2748    }
2749
2750    fn last_position(&self) -> Option<Point> {
2751        self.last_position.get()
2752    }
2753
2754    fn set_last_position(&self, position: Point) {
2755        self.last_position.set(Some(position));
2756    }
2757
2758    fn place_retained(&self, position: Point) {
2759        self.set_last_position(position);
2760        if let Some(layout_state) = self.layout_state() {
2761            layout_state.borrow_mut().place(position);
2762            return;
2763        }
2764        let Some(applier) = self.applier() else {
2765            return;
2766        };
2767        let Ok(mut applier) = applier.try_borrow_typed() else {
2768            return;
2769        };
2770        let node_id = self.node_id();
2771        if applier
2772            .with_node::<LayoutNode, _>(node_id, |node| {
2773                node.set_position(position);
2774            })
2775            .is_err()
2776        {
2777            let _ = applier.with_node::<SubcomposeLayoutNode, _>(node_id, |node| {
2778                node.set_position(position);
2779            });
2780        }
2781    }
2782
2783    fn set_measured(&self, measured: Option<Rc<MeasuredNode>>) {
2784        *self.measured.borrow_mut() = measured;
2785    }
2786
2787    fn record_error(&self, err: NodeError) {
2788        let Some(error) = self.error.borrow().clone() else {
2789            return;
2790        };
2791        let mut slot = error.borrow_mut();
2792        if slot.is_none() {
2793            *slot = Some(err);
2794        }
2795    }
2796
2797    fn perform_measure(&self, constraints: Constraints) -> Result<Rc<MeasuredNode>, NodeError> {
2798        let node_id = self.node_id();
2799        if let Some(handle) = self.measure_handle.borrow().clone() {
2800            return handle.measure(node_id, constraints);
2801        }
2802        let applier = self.applier().ok_or(NodeError::MissingContext {
2803            id: node_id,
2804            reason: "layout child applier not configured",
2805        })?;
2806        measure_node_with_host(
2807            applier,
2808            self.runtime_handle.borrow().clone(),
2809            node_id,
2810            constraints,
2811            self.cache_epoch.get(),
2812        )
2813    }
2814
2815    fn intrinsic_measure(&self, constraints: Constraints) -> Option<Rc<MeasuredNode>> {
2816        let cache = self.cache();
2817        cache.activate(self.cache_epoch.get());
2818        if !self.force_remeasure.get()
2819            && let Some(cached) = cache.get_measurement(constraints)
2820        {
2821            return Some(cached);
2822        }
2823
2824        match self.perform_measure(constraints) {
2825            Ok(measured) => {
2826                self.force_remeasure.set(false);
2827                cache.store_measurement(constraints, Rc::clone(&measured));
2828                Some(measured)
2829            }
2830            Err(err) => {
2831                self.record_error(err);
2832                None
2833            }
2834        }
2835    }
2836}
2837
2838struct LayoutChildMeasurable {
2839    state: Rc<LayoutChildMeasureState>,
2840}
2841
2842impl LayoutChildMeasurable {
2843    fn new(state: Rc<LayoutChildMeasureState>) -> Self {
2844        Self { state }
2845    }
2846
2847    fn resolved_parent_data(&self) -> Option<cranpose_ui_layout::ParentData> {
2848        let applier = self.state.applier()?;
2849        let node_id = self.state.node_id();
2850        let Ok(mut applier) = applier.try_borrow_typed() else {
2851            return None;
2852        };
2853
2854        applier
2855            .with_node::<LayoutNode, _>(node_id, |layout_node| {
2856                let props = layout_node.resolved_modifiers().layout_properties();
2857                let weight = props.weight().unwrap_or_default();
2858                cranpose_ui_layout::ParentData {
2859                    weight: weight.weight,
2860                    fill: weight.fill,
2861                    box_alignment: props.box_alignment(),
2862                    row_alignment: props.row_alignment(),
2863                    column_alignment: props.column_alignment(),
2864                }
2865            })
2866            .ok()
2867    }
2868}
2869
2870impl Measurable for LayoutChildMeasurable {
2871    fn measure(&self, constraints: Constraints) -> Placeable {
2872        let state = &self.state;
2873        let cache = state.cache();
2874        cache.activate(state.cache_epoch.get());
2875        let measured_size;
2876        if !state.force_remeasure.get() {
2877            if let Some(cached) = cache.get_measurement(constraints) {
2878                measured_size = cached.size;
2879                state.set_measured(Some(Rc::clone(&cached)));
2880            } else {
2881                match state.perform_measure(constraints) {
2882                    Ok(measured) => {
2883                        state.force_remeasure.set(false);
2884                        measured_size = measured.size;
2885                        cache.store_measurement(constraints, Rc::clone(&measured));
2886                        state.set_measured(Some(measured));
2887                    }
2888                    Err(err) => {
2889                        state.record_error(err);
2890                        state.set_measured(None);
2891                        measured_size = Size {
2892                            width: 0.0,
2893                            height: 0.0,
2894                        };
2895                    }
2896                }
2897            }
2898        } else {
2899            match state.perform_measure(constraints) {
2900                Ok(measured) => {
2901                    state.force_remeasure.set(false);
2902                    measured_size = measured.size;
2903                    cache.store_measurement(constraints, Rc::clone(&measured));
2904                    state.set_measured(Some(measured));
2905                }
2906                Err(err) => {
2907                    state.record_error(err);
2908                    state.set_measured(None);
2909                    measured_size = Size {
2910                        width: 0.0,
2911                        height: 0.0,
2912                    };
2913                }
2914            }
2915        }
2916
2917        if let Some(layout_state) = state.layout_state() {
2918            let mut layout_state = layout_state.borrow_mut();
2919            layout_state.set_size(measured_size);
2920            layout_state.measurement_constraints = constraints;
2921        } else if let Some(applier) = state.applier() {
2922            let Ok(mut applier) = applier.try_borrow_typed() else {
2923                return Placeable::value(
2924                    measured_size.width,
2925                    measured_size.height,
2926                    state.node_id(),
2927                );
2928            };
2929            let _ = applier.with_node::<LayoutNode, _>(state.node_id(), |node| {
2930                node.set_measured_size(measured_size);
2931                node.set_measurement_constraints(constraints);
2932            });
2933        }
2934
2935        let state = Rc::clone(&self.state);
2936        let node_id = state.node_id();
2937        let size_for_parent = state
2938            .measured
2939            .borrow()
2940            .as_ref()
2941            .map_or(measured_size, |measured| measured.size_for_parent());
2942
2943        let place_fn = Rc::new(move |x: f32, y: f32| {
2944            let internal_offset = state
2945                .measured
2946                .borrow()
2947                .as_ref()
2948                .map(|m| m.offset)
2949                .unwrap_or_default();
2950
2951            state.place_retained(Point {
2952                x: x + internal_offset.x,
2953                y: y + internal_offset.y,
2954            });
2955        });
2956
2957        Placeable::with_place_fn(
2958            size_for_parent.width,
2959            size_for_parent.height,
2960            node_id,
2961            place_fn,
2962        )
2963    }
2964
2965    fn min_intrinsic_width(&self, height: f32) -> f32 {
2966        let kind = IntrinsicKind::MinWidth(height);
2967        let cache = self.state.cache();
2968        cache.activate(self.state.cache_epoch.get());
2969        if !self.state.force_remeasure.get()
2970            && let Some(value) = cache.get_intrinsic(&kind)
2971        {
2972            return value;
2973        }
2974        let constraints = Constraints {
2975            min_width: 0.0,
2976            max_width: f32::INFINITY,
2977            min_height: height,
2978            max_height: height,
2979        };
2980        if let Some(node) = self.state.intrinsic_measure(constraints) {
2981            let value = node.size_for_parent().width;
2982            cache.store_intrinsic(kind, value);
2983            value
2984        } else {
2985            0.0
2986        }
2987    }
2988
2989    fn max_intrinsic_width(&self, height: f32) -> f32 {
2990        let kind = IntrinsicKind::MaxWidth(height);
2991        let cache = self.state.cache();
2992        cache.activate(self.state.cache_epoch.get());
2993        if !self.state.force_remeasure.get()
2994            && let Some(value) = cache.get_intrinsic(&kind)
2995        {
2996            return value;
2997        }
2998        let constraints = Constraints {
2999            min_width: 0.0,
3000            max_width: f32::INFINITY,
3001            min_height: 0.0,
3002            max_height: height,
3003        };
3004        if let Some(node) = self.state.intrinsic_measure(constraints) {
3005            let value = node.size_for_parent().width;
3006            cache.store_intrinsic(kind, value);
3007            value
3008        } else {
3009            0.0
3010        }
3011    }
3012
3013    fn min_intrinsic_height(&self, width: f32) -> f32 {
3014        let kind = IntrinsicKind::MinHeight(width);
3015        let cache = self.state.cache();
3016        cache.activate(self.state.cache_epoch.get());
3017        if !self.state.force_remeasure.get()
3018            && let Some(value) = cache.get_intrinsic(&kind)
3019        {
3020            return value;
3021        }
3022        let constraints = Constraints {
3023            min_width: width,
3024            max_width: width,
3025            min_height: 0.0,
3026            max_height: f32::INFINITY,
3027        };
3028        if let Some(node) = self.state.intrinsic_measure(constraints) {
3029            let value = node.size_for_parent().height;
3030            cache.store_intrinsic(kind, value);
3031            value
3032        } else {
3033            0.0
3034        }
3035    }
3036
3037    fn max_intrinsic_height(&self, width: f32) -> f32 {
3038        let kind = IntrinsicKind::MaxHeight(width);
3039        let cache = self.state.cache();
3040        cache.activate(self.state.cache_epoch.get());
3041        if !self.state.force_remeasure.get()
3042            && let Some(value) = cache.get_intrinsic(&kind)
3043        {
3044            return value;
3045        }
3046        let constraints = Constraints {
3047            min_width: 0.0,
3048            max_width: width,
3049            min_height: 0.0,
3050            max_height: f32::INFINITY,
3051        };
3052        if let Some(node) = self.state.intrinsic_measure(constraints) {
3053            let value = node.size_for_parent().height;
3054            cache.store_intrinsic(kind, value);
3055            value
3056        } else {
3057            0.0
3058        }
3059    }
3060
3061    fn flex_parent_data(&self) -> Option<cranpose_ui_layout::FlexParentData> {
3062        let parent_data = self.resolved_parent_data()?;
3063        if !parent_data.has_weight() {
3064            return None;
3065        }
3066        Some(cranpose_ui_layout::FlexParentData::new(
3067            parent_data.weight,
3068            parent_data.fill,
3069        ))
3070    }
3071
3072    fn parent_data(&self) -> cranpose_ui_layout::ParentData {
3073        self.resolved_parent_data().unwrap_or_default()
3074    }
3075}
3076
3077fn measure_node_with_host(
3078    applier: Rc<ConcreteApplierHost<MemoryApplier>>,
3079    runtime_handle: Option<RuntimeHandle>,
3080    node_id: NodeId,
3081    constraints: Constraints,
3082    epoch: u64,
3083) -> Result<Rc<MeasuredNode>, NodeError> {
3084    let runtime_handle = match runtime_handle {
3085        Some(handle) => Some(handle),
3086        None => applier.borrow_typed().runtime_handle(),
3087    };
3088    let mut builder = LayoutBuilder::new_with_epoch(
3089        applier,
3090        epoch,
3091        Rc::new(RefCell::new(SlotTable::default())),
3092        FrameLayoutArena::default(),
3093    );
3094    builder.set_runtime_handle(runtime_handle);
3095    builder.measure_node(node_id, constraints)
3096}
3097
3098#[derive(Clone)]
3099struct RuntimeNodeMetadata {
3100    modifier: Modifier,
3101    resolved_modifiers: ResolvedModifiers,
3102    modifier_slices: Rc<ModifierNodeSlices>,
3103    role: SemanticsRole,
3104    button_handler: Option<Rc<RefCell<dyn FnMut()>>>,
3105}
3106
3107impl Default for RuntimeNodeMetadata {
3108    fn default() -> Self {
3109        Self {
3110            modifier: Modifier::empty(),
3111            resolved_modifiers: ResolvedModifiers::default(),
3112            modifier_slices: Rc::default(),
3113            role: SemanticsRole::Unknown,
3114            button_handler: None,
3115        }
3116    }
3117}
3118
3119fn role_from_modifier_slices(modifier_slices: &ModifierNodeSlices) -> SemanticsRole {
3120    modifier_slices
3121        .text_content()
3122        .map(|text| SemanticsRole::Text {
3123            value: text.to_string(),
3124        })
3125        .unwrap_or(SemanticsRole::Layout)
3126}
3127
3128fn runtime_metadata_for(
3129    applier: &mut MemoryApplier,
3130    node_id: NodeId,
3131) -> Result<RuntimeNodeMetadata, NodeError> {
3132    if let Ok(meta) = applier.with_node::<LayoutNode, _>(node_id, |layout| {
3133        let modifier = layout.modifier.clone();
3134        let resolved_modifiers = layout.resolved_modifiers();
3135        let modifier_slices = layout.modifier_slices_snapshot();
3136        let role = role_from_modifier_slices(&modifier_slices);
3137
3138        RuntimeNodeMetadata {
3139            modifier,
3140            resolved_modifiers,
3141            modifier_slices,
3142            role,
3143            button_handler: None,
3144        }
3145    }) {
3146        return Ok(meta);
3147    }
3148
3149    if let Ok((modifier, resolved_modifiers, modifier_slices)) = applier
3150        .with_node::<SubcomposeLayoutNode, _>(node_id, |node| {
3151            (
3152                node.modifier(),
3153                node.resolved_modifiers(),
3154                node.modifier_slices_snapshot(),
3155            )
3156        })
3157    {
3158        return Ok(RuntimeNodeMetadata {
3159            modifier,
3160            resolved_modifiers,
3161            modifier_slices,
3162            role: SemanticsRole::Subcompose,
3163            button_handler: None,
3164        });
3165    }
3166    Ok(RuntimeNodeMetadata::default())
3167}
3168
3169fn clear_semantics_dirty_flags(
3170    applier: &mut MemoryApplier,
3171    node: &MeasuredNode,
3172) -> Result<(), NodeError> {
3173    match applier.with_node::<LayoutNode, _>(node.node_id, |layout| {
3174        layout.clear_needs_semantics();
3175    }) {
3176        Ok(()) => {}
3177        Err(NodeError::Missing { .. }) => {}
3178        Err(NodeError::TypeMismatch { .. }) => {
3179            match applier.with_node::<SubcomposeLayoutNode, _>(node.node_id, |subcompose| {
3180                subcompose.clear_needs_semantics();
3181            }) {
3182                Ok(()) | Err(NodeError::Missing { .. }) | Err(NodeError::TypeMismatch { .. }) => {}
3183                Err(err) => return Err(err),
3184            }
3185        }
3186        Err(err) => return Err(err),
3187    }
3188
3189    for child in &node.children {
3190        clear_semantics_dirty_flags(applier, &child.node)?;
3191    }
3192
3193    Ok(())
3194}
3195
3196fn build_semantics_tree_from_live_nodes(
3197    applier: &mut MemoryApplier,
3198    node: &MeasuredNode,
3199) -> Result<SemanticsTree, NodeError> {
3200    Ok(SemanticsTree::new(build_semantics_node_from_live_nodes(
3201        applier, node,
3202    )?))
3203}
3204
3205fn semantics_node_from_parts(
3206    node_id: NodeId,
3207    node_generation: u32,
3208    mut role: SemanticsRole,
3209    config: Option<SemanticsConfiguration>,
3210    children: Vec<SemanticsNode>,
3211    size: Size,
3212) -> SemanticsNode {
3213    let mut node = SemanticsNode {
3214        node_id,
3215        node_generation,
3216        children,
3217        ..SemanticsNode::default()
3218    };
3219
3220    if let Some(config) = config {
3221        if config.role == Some(SemanticsWidgetRole::Button) {
3222            role = SemanticsRole::Button;
3223        }
3224        if config.is_activatable() {
3225            node.actions.push(SemanticsAction::Click {
3226                handler: SemanticsCallback::new(node_id),
3227            });
3228        }
3229        node.widget_role = config.role;
3230        node.description = config.content_description;
3231        node.state_description = config.state_description;
3232        node.on_click_label = config.on_click_label.or_else(|| {
3233            config
3234                .on_click
3235                .as_ref()
3236                .and_then(|action| (!action.label.is_empty()).then(|| action.label.clone()))
3237        });
3238        node.on_click = config.on_click;
3239        node.on_long_click = config.on_long_click;
3240        node.on_long_click_label = config.on_long_click_label;
3241        node.on_magic_tap = config.on_magic_tap;
3242        node.on_magic_tap_label = config.on_magic_tap_label;
3243        node.input_labels = config.input_labels;
3244        node.language = config.language;
3245        node.selected = config.selected;
3246        node.toggled = config.toggled;
3247        node.enabled = config.enabled;
3248        node.custom_actions = config.custom_actions;
3249        node.canvas_children = config.canvas_children;
3250        node.editable_text = config.is_editable_text;
3251        node.multiline = config.multiline;
3252        node.hidden = config.hidden;
3253        node.is_modal = config.is_modal
3254            && size.width > 0.0
3255            && size.height > 0.0
3256            && size.width.is_finite()
3257            && size.height.is_finite();
3258        node.merge_descendants = config.merge_descendants;
3259        node.selectable_group = config.selectable_group;
3260        node.pane_title = config.pane_title;
3261        node.error = config.error;
3262        node.password = config.password;
3263        node.traversal_index = config.traversal_index;
3264        node.text = config.text;
3265        node.text_selection = config.text_selection;
3266        node.live_region = config.live_region;
3267        node.progress = config.progress;
3268        node.set_progress = config.set_progress;
3269        node.set_text = config.set_text;
3270        node.set_selection = config.set_selection;
3271        node.expand = config.expand;
3272        node.collapse = config.collapse;
3273        node.dismiss = config.dismiss;
3274        node.vertical_scroll = config.vertical_scroll;
3275        node.horizontal_scroll = config.horizontal_scroll;
3276        node.scroll_by = config.scroll_by;
3277        node.scroll_to_index = config.scroll_to_index;
3278        node.collection = config.collection;
3279    }
3280
3281    node.focusable = crate::focus_dispatch::has_focus_target(node_id);
3282    node.focused = node.focusable && crate::focus_dispatch::active_focus_target() == Some(node_id);
3283
3284    node.role = role;
3285    node
3286}
3287
3288fn build_semantics_node_from_live_nodes(
3289    applier: &mut MemoryApplier,
3290    node: &MeasuredNode,
3291) -> Result<SemanticsNode, NodeError> {
3292    let (role, config) = match applier.with_node::<LayoutNode, _>(node.node_id, |layout| {
3293        let role = role_from_modifier_slices(&layout.modifier_slices_snapshot());
3294        let config = layout.semantics_configuration();
3295        layout.clear_needs_semantics();
3296        (role, config)
3297    }) {
3298        Ok(data) => data,
3299        Err(NodeError::TypeMismatch { .. }) | Err(NodeError::Missing { .. }) => {
3300            match applier.with_node::<SubcomposeLayoutNode, _>(node.node_id, |subcompose| {
3301                subcompose.clear_needs_semantics();
3302                (
3303                    SemanticsRole::Subcompose,
3304                    collect_semantics_from_modifier(&subcompose.modifier()),
3305                )
3306            }) {
3307                Ok(data) => data,
3308                Err(NodeError::TypeMismatch { .. }) | Err(NodeError::Missing { .. }) => {
3309                    (SemanticsRole::Unknown, None)
3310                }
3311                Err(err) => return Err(err),
3312            }
3313        }
3314        Err(err) => return Err(err),
3315    };
3316
3317    let mut children = Vec::with_capacity(node.children.len());
3318    for child in &node.children {
3319        children.push(build_semantics_node_from_live_nodes(applier, &child.node)?);
3320    }
3321
3322    Ok(semantics_node_from_parts(
3323        node.node_id,
3324        applier.node_generation(node.node_id),
3325        role,
3326        config,
3327        children,
3328        node.size,
3329    ))
3330}
3331
3332fn record_semantics_allocation_stats(node: &SemanticsNode, stats: &mut LayoutAllocationDebugStats) {
3333    stats.semantics_node_count += 1;
3334    stats.semantics_action_count += node.actions.len();
3335    stats.semantics_action_capacity += node.actions.capacity();
3336    stats.semantics_child_count += node.children.len();
3337    stats.semantics_child_capacity += node.children.capacity();
3338    stats.semantics_heap_bytes += node.actions.capacity() * size_of::<SemanticsAction>();
3339    stats.semantics_heap_bytes += node.children.capacity() * size_of::<SemanticsNode>();
3340
3341    if let Some(description) = &node.description {
3342        stats.semantics_description_count += 1;
3343        stats.semantics_description_bytes += description.capacity();
3344        stats.semantics_heap_bytes += description.capacity();
3345    }
3346    if let SemanticsRole::Text { value } = &node.role {
3347        stats.semantics_text_role_bytes += value.capacity();
3348        stats.semantics_heap_bytes += value.capacity();
3349    }
3350
3351    for child in &node.children {
3352        record_semantics_allocation_stats(child, stats);
3353    }
3354}
3355
3356fn record_layout_box_allocation_stats(
3357    layout_box: &LayoutBox,
3358    stats: &mut LayoutAllocationDebugStats,
3359) {
3360    stats.layout_box_count += 1;
3361    stats.layout_box_child_count += layout_box.children.len();
3362    stats.layout_box_child_capacity += layout_box.children.capacity();
3363    stats.layout_box_heap_bytes += layout_box.children.capacity() * size_of::<LayoutBox>();
3364    stats.add_modifier_slice(layout_box.node_data.modifier_slices().debug_stats());
3365
3366    for child in &layout_box.children {
3367        record_layout_box_allocation_stats(child, stats);
3368    }
3369}
3370
3371fn build_layout_tree(
3372    applier: &mut MemoryApplier,
3373    node: &MeasuredNode,
3374) -> Result<LayoutTree, NodeError> {
3375    fn place(
3376        applier: &mut MemoryApplier,
3377        node: &MeasuredNode,
3378        origin: Point,
3379        parent_layer_translation: Point,
3380    ) -> Result<LayoutBox, NodeError> {
3381        let top_left = Point {
3382            x: origin.x + node.offset.x,
3383            y: origin.y + node.offset.y,
3384        };
3385        let rect = GeometryRect {
3386            x: top_left.x,
3387            y: top_left.y,
3388            width: node.size.width,
3389            height: node.size.height,
3390        };
3391        let info = runtime_metadata_for(applier, node.node_id)?;
3392        let kind = layout_kind_from_metadata(node.node_id, &info);
3393        let RuntimeNodeMetadata {
3394            modifier,
3395            resolved_modifiers,
3396            modifier_slices,
3397            ..
3398        } = info;
3399
3400        let layer_translation = match modifier_slices.graphics_layer() {
3401            Some(layer) => Point {
3402                x: parent_layer_translation.x + layer.translation_x,
3403                y: parent_layer_translation.y + layer.translation_y,
3404            },
3405            None => parent_layer_translation,
3406        };
3407
3408        publish_window_geometry(&modifier_slices, top_left, layer_translation, node.size);
3409
3410        let data = LayoutNodeData::new(modifier, resolved_modifiers, modifier_slices, kind);
3411        let mut children = Vec::with_capacity(node.children.len());
3412        for child in &node.children {
3413            if crate::modifier::is_window_root(applier, child.node.node_id) {
3414                continue;
3415            }
3416            let child_origin = Point {
3417                x: top_left.x + child.offset.x,
3418                y: top_left.y + child.offset.y,
3419            };
3420            children.push(place(
3421                applier,
3422                &child.node,
3423                child_origin,
3424                layer_translation,
3425            )?);
3426        }
3427        Ok(LayoutBox {
3428            node_generation: applier.node_generation(node.node_id),
3429            ..LayoutBox::new(node.node_id, rect, node.content_offset, data, children)
3430        })
3431    }
3432
3433    Ok(LayoutTree::new(place(
3434        applier,
3435        node,
3436        Point { x: 0.0, y: 0.0 },
3437        Point { x: 0.0, y: 0.0 },
3438    )?))
3439}
3440
3441fn semantics_role_from_layout_box(layout_box: &LayoutBox) -> SemanticsRole {
3442    match &layout_box.node_data.kind {
3443        LayoutNodeKind::Subcompose => SemanticsRole::Subcompose,
3444        LayoutNodeKind::Spacer => SemanticsRole::Spacer,
3445        LayoutNodeKind::Unknown => SemanticsRole::Unknown,
3446        LayoutNodeKind::Button { .. } => SemanticsRole::Button,
3447        LayoutNodeKind::Layout => layout_box
3448            .node_data
3449            .modifier_slices()
3450            .text_content()
3451            .map(|text| SemanticsRole::Text {
3452                value: text.to_string(),
3453            })
3454            .unwrap_or(SemanticsRole::Layout),
3455    }
3456}
3457
3458fn build_semantics_node_from_layout_box(layout_box: &LayoutBox) -> SemanticsNode {
3459    let children = layout_box
3460        .children
3461        .iter()
3462        .map(build_semantics_node_from_layout_box)
3463        .collect();
3464
3465    semantics_node_from_parts(
3466        layout_box.node_id,
3467        layout_box.node_generation,
3468        semantics_role_from_layout_box(layout_box),
3469        collect_semantics_from_modifier(&layout_box.node_data.modifier),
3470        children,
3471        Size::new(layout_box.rect.width, layout_box.rect.height),
3472    )
3473}
3474
3475fn layout_kind_from_metadata(_node_id: NodeId, info: &RuntimeNodeMetadata) -> LayoutNodeKind {
3476    match &info.role {
3477        SemanticsRole::Layout => LayoutNodeKind::Layout,
3478        SemanticsRole::Subcompose => LayoutNodeKind::Subcompose,
3479        SemanticsRole::Text { .. } => LayoutNodeKind::Layout,
3480        SemanticsRole::Spacer => LayoutNodeKind::Spacer,
3481        SemanticsRole::Button => {
3482            let handler = info
3483                .button_handler
3484                .as_ref()
3485                .cloned()
3486                .unwrap_or_else(|| Rc::new(RefCell::new(|| {})));
3487            LayoutNodeKind::Button { on_click: handler }
3488        }
3489        SemanticsRole::Unknown => LayoutNodeKind::Unknown,
3490    }
3491}
3492
3493fn subtract_padding(constraints: Constraints, padding: EdgeInsets) -> Constraints {
3494    let horizontal = padding.horizontal_sum();
3495    let vertical = padding.vertical_sum();
3496    let min_width = (constraints.min_width - horizontal).max(0.0);
3497    let mut max_width = constraints.max_width;
3498    if max_width.is_finite() {
3499        max_width = (max_width - horizontal).max(0.0);
3500    }
3501    let min_height = (constraints.min_height - vertical).max(0.0);
3502    let mut max_height = constraints.max_height;
3503    if max_height.is_finite() {
3504        max_height = (max_height - vertical).max(0.0);
3505    }
3506    normalize_constraints(Constraints {
3507        min_width,
3508        max_width,
3509        min_height,
3510        max_height,
3511    })
3512}
3513
3514#[cfg(test)]
3515pub(crate) fn align_horizontal(alignment: HorizontalAlignment, available: f32, child: f32) -> f32 {
3516    match alignment {
3517        HorizontalAlignment::Start => 0.0,
3518        HorizontalAlignment::CenterHorizontally => ((available - child) / 2.0).max(0.0),
3519        HorizontalAlignment::End => (available - child).max(0.0),
3520    }
3521}
3522
3523#[cfg(test)]
3524pub(crate) fn align_vertical(alignment: VerticalAlignment, available: f32, child: f32) -> f32 {
3525    match alignment {
3526        VerticalAlignment::Top => 0.0,
3527        VerticalAlignment::CenterVertically => ((available - child) / 2.0).max(0.0),
3528        VerticalAlignment::Bottom => (available - child).max(0.0),
3529    }
3530}
3531
3532fn resolve_dimension(
3533    base: f32,
3534    explicit: DimensionConstraint,
3535    min_override: Option<f32>,
3536    max_override: Option<f32>,
3537    min_limit: f32,
3538    max_limit: f32,
3539) -> f32 {
3540    let mut min_bound = min_limit;
3541    if let Some(min_value) = min_override {
3542        min_bound = min_bound.max(min_value);
3543    }
3544
3545    let mut max_bound = if max_limit.is_finite() {
3546        max_limit
3547    } else {
3548        max_override.unwrap_or(max_limit)
3549    };
3550    if let Some(max_value) = max_override {
3551        if max_bound.is_finite() {
3552            max_bound = max_bound.min(max_value);
3553        } else {
3554            max_bound = max_value;
3555        }
3556    }
3557    if max_bound < min_bound {
3558        max_bound = min_bound;
3559    }
3560
3561    let mut size = match explicit {
3562        DimensionConstraint::Points(points) => points,
3563        DimensionConstraint::Fraction(fraction) => {
3564            if max_limit.is_finite() {
3565                max_limit * fraction.clamp(0.0, 1.0)
3566            } else {
3567                base
3568            }
3569        }
3570        DimensionConstraint::Unspecified => base,
3571        DimensionConstraint::Intrinsic(_) => base,
3572    };
3573
3574    size = clamp_dimension(size, min_bound, max_bound);
3575    size = clamp_dimension(size, min_limit, max_limit);
3576    size.max(0.0)
3577}
3578
3579fn clamp_dimension(value: f32, min: f32, max: f32) -> f32 {
3580    let mut result = value.max(min);
3581    if max.is_finite() {
3582        result = result.min(max);
3583    }
3584    result
3585}
3586
3587fn normalize_constraints(mut constraints: Constraints) -> Constraints {
3588    if constraints.max_width < constraints.min_width {
3589        constraints.max_width = constraints.min_width;
3590    }
3591    if constraints.max_height < constraints.min_height {
3592        constraints.max_height = constraints.min_height;
3593    }
3594    constraints
3595}
3596
3597#[cfg(test)]
3598#[path = "tests/layout_tests.rs"]
3599mod tests;