Files
Graphite/node-graph/nodes/graphic/src/graphic.rs
T
Dennis KobertandClaude Fable 5 d278fd666d Delete the legacy fill and stroke paint markers
The appearance column is now the only paint channel. The Fill and
Stroke attribute markers, their name constants, the LanePaint push with
its two-hop reach, and the interior paint placement all go away; nodes
emit and readers cascade the appearance alone. PaintReach shrinks to
the cascade's own-wins arbitration, the legacy conversion converts the
group content inside appearance paint cells, and transform baking lands
on those cells too.

Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
2026-09-10 00:01:29 +00:00

709 lines
30 KiB
Rust

use core_types::attribute::{Attr, EditorLayerPath, Name0, Named, Transform as TransformAttr, WireValue};
use core_types::bounds::{BoundingBox, RenderBoundingBox};
use core_types::extent::{ExtentIn, LevelIn, ListIn, ValueIn};
use core_types::gpoll::{Extent, GPoll, GraphError, Interrupt, Level};
use core_types::list::List;
use core_types::registry::types::{Angle, SignedInteger};
use core_types::uuid::NodeId;
use core_types::{ATTR_EDITOR_LAYER_PATH, ATTR_TRANSFORM, CacheHash, Color, Ctx, DeriveCtx, ExtractIndex, InjectIndex, ModifyIndex};
use glam::{DAffine2, DVec2};
use graphic_types::graphic::{Graphic, IntoGraphicList};
use graphic_types::{ATTR_EDITOR_MERGED_LAYERS, Artboard, Vector};
use raster_types::{CPU, GPU, Raster};
use vector_types::gradient::{GradientSpreadMethod, GradientType as GradientTypeValue};
use vector_types::{GradientStop, GradientStops, ReferencePoint};
/// Resolves a signed index over `total` lanes: negatives count from the end,
/// out of range resolves to nothing.
fn resolve_index(index: f64, total: u64) -> Option<u64> {
let index = index as i64;
match index < 0 {
true => total.checked_sub(index.unsigned_abs()),
false => ((index as u64) < total).then_some(index as u64),
}
}
/// Returns a one-lane level holding the item at the specified index with its
/// attributes, or an empty level when the index is out of range.
#[node_macro::node(category("General"), extent(index_elements_extent))]
pub fn index_elements<T>(
ctx: impl Ctx + ModifyIndex + Copy,
/// The list of data.
list: impl Node<Context<'_>, Output = T>,
/// The index of the item to retrieve, starting from 0 for the first item. Negative indices count backwards from the end of the list, starting from -1 for the last item.
index: SignedInteger,
) -> Result<T, Interrupt> {
let total = match list.extent(ctx, Level::Total) {
GPoll::Final(Extent::Exactly(count)) => count as u64,
GPoll::Pending => return Err(Interrupt::Pending),
_ => return Err(GraphError::new("index elements over a non-exact extent").into()),
};
let Some(source) = resolve_index(index, total) else {
return Err(GraphError::new("index elements addressed its empty selection").into());
};
let mut shifted = *ctx;
shifted.set_index(source);
list.eval(&shifted)
}
fn index_elements_extent(list: ExtentIn<'_>, index: ValueIn<'_, f64>, level: LevelIn) -> GPoll<Extent> {
match level.top() {
true => index.get().zip(list.at(level)).map(|(index, extent)| match extent {
Extent::Exactly(count) => Extent::Exactly(resolve_index(index, count as u64).is_some() as usize),
_ => Extent::Exactly(1),
}),
false => list.at(level),
}
}
/// Returns the list with the element at the specified index removed.
/// If no value exists at that index, the list is returned unchanged.
#[node_macro::node(category("General"), extent(omit_element_extent))]
pub fn omit_element<T>(
ctx: impl Ctx + ModifyIndex + Copy,
/// The list of data.
list: impl Node<Context<'_>, Output = T>,
/// The index of the item to remove, starting from 0 for the first item. Negative indices count backwards from the end of the list, starting from -1 for the last item.
index: SignedInteger,
) -> Result<T, Interrupt> {
let total = match list.extent(ctx, Level::Total) {
GPoll::Final(Extent::Exactly(count)) => count as u64,
GPoll::Pending => return Err(Interrupt::Pending),
_ => return Err(GraphError::new("omit over a non-exact extent").into()),
};
let lane = ctx.index();
let source = match resolve_index(index, total) {
Some(omitted) if lane >= omitted => lane + 1,
_ => lane,
};
let mut shifted = *ctx;
shifted.set_index(source);
list.eval(&shifted)
}
fn omit_element_extent(list: ExtentIn<'_>, index: ValueIn<'_, f64>, level: LevelIn) -> GPoll<Extent> {
match level.top() {
true => index.get().zip(list.at(level)).map(|(index, extent)| match extent {
Extent::Exactly(count) if resolve_index(index, count as u64).is_some() => Extent::Exactly(count - 1),
extent => extent,
}),
false => list.at(level),
}
}
/// Returns the bare element (without the item's attributes) at the specified index in a `List`.
/// Use this when downstream nodes want just the inner value rather than a `List` containing a single item.
/// If no value exists at that index, the element type's default is returned.
#[node_macro::node(category("General"))]
pub fn extract_element<T: Clone + Default + Send + Sync + CacheHash + 'static>(
_: impl Ctx,
/// The `List` of data to extract from.
#[implementations(String, f64, NodeId, Color, GradientStops, Vector, Raster<CPU>, Graphic, Artboard)]
list: IList<T>,
/// The index of the item to retrieve, starting from 0 for the first item. Negative indices count backwards from the end of the list, starting from -1 for the last item.
index: SignedInteger,
) -> T {
resolve_index(index, list.len() as u64).map(|resolved| list.element_ref(resolved as usize).clone()).unwrap_or_default()
}
/// One subgraph invocation per content row, the row riding as a vararg, with
/// the subgraph's lanes concatenated into one flat level. The level reports a
/// lower bound; consumers drain to the past-end signal.
#[node_macro::node(category("General"))]
fn map<Row: Clone + Send + Sync + CacheHash + 'static, T>(
ctx: impl Ctx + DeriveCtx + ExtractIndex + InjectIndex + Copy,
#[implementations(Graphic, Vector, Raster<CPU>, Color, GradientStops, String)] content: IList<Row>,
mapped: impl Node<Context<'_>, Output = IList<T>>,
) -> Result<IList<T>, Interrupt> {
let mut remaining = ctx.index();
for row in 0..content.len() {
let item = crate::record::vararg_row(content, row);
let scoped = ctx.push_vararg(&item);
let lanes = mapped.inner_extent_at(&scoped.ctx(), row as u64)?;
if remaining >= lanes {
remaining -= lanes;
continue;
}
let mut frame = core_types::context::IndexLink { index: 0, outer: None };
return mapped.eval(&scoped.ctx().push_level(&mut frame, row as u64, remaining));
}
Err(GraphError::past_end().into())
}
/// The reflection transform the mirror applies, or nothing when the content
/// has no rectangular bounds (the legacy passthrough case).
fn mirror_reflection<T>(legacy: &List<T>, relative_to_bounds: ReferencePoint, offset: f64, angle: f64) -> Option<DAffine2>
where
List<T>: BoundingBox,
{
// Normalize the direction vector
let normal = DVec2::from_angle(angle.to_radians());
// The mirror reference may be based on the bounding box if an explicit reference point is chosen
let RenderBoundingBox::Rectangle(bounding_box) = legacy.bounding_box(DAffine2::IDENTITY, false) else {
return None;
};
let reference_point_location = relative_to_bounds.point_in_bounding_box((bounding_box[0], bounding_box[1]).into());
let mirror_reference_point = reference_point_location.map(|point| point + normal * offset);
// Create the reflection matrix
let reflection = DAffine2::from_mat2_translation(
glam::DMat2::from_cols(
DVec2::new(1. - 2. * normal.x * normal.x, -2. * normal.y * normal.x),
DVec2::new(-2. * normal.x * normal.y, 1. - 2. * normal.y * normal.y),
),
DVec2::ZERO,
);
// Apply reflection around the reference point
Some(if let Some(mirror_reference_point) = mirror_reference_point {
DAffine2::from_translation(mirror_reference_point) * reflection * DAffine2::from_translation(-mirror_reference_point)
} else {
reflection * DAffine2::from_translation(DVec2::from_angle(angle.to_radians()) * DVec2::splat(-offset))
})
}
/// One output lane of the mirror over its legacy-converted level: the source
/// row's element and standard attributes, the reflection composed onto the
/// mirrored half's transforms.
#[allow(clippy::type_complexity)]
fn mirror_lane<'e, T: Clone + Default + Send + Sync + 'static>(
arena: &'e core_types::arena::Arena,
legacy: List<T>,
lane: usize,
relative_to_bounds: ReferencePoint,
offset: f64,
angle: f64,
keep_original: bool,
) -> Result<
(
T,
Attr<'e, TransformAttr>,
Attr<'e, graphic_types::markers::Appearance>,
Attr<'e, core_types::attribute::BlendMode>,
Attr<'e, core_types::attribute::Opacity>,
Attr<'e, core_types::attribute::OpacityFill>,
Attr<'e, core_types::attribute::ClippingMask>,
Attr<'e, EditorLayerPath>,
),
Interrupt,
>
where
List<T>: BoundingBox,
{
let count = legacy.len();
let reflected_transform = mirror_reflection(&legacy, relative_to_bounds, offset, angle);
// Kept originals always double the level so the count stays structural;
// without a reflection (no rectangular bounds) the second half duplicates.
let (source, mirrored) = match (keep_original, lane < count) {
(true, true) => (lane, false),
(true, false) => (lane - count, reflected_transform.is_some()),
(false, _) => (lane, reflected_transform.is_some()),
};
if source >= count {
return Err(GraphError::past_end().into());
}
let exhausted = || {
Interrupt::from(GraphError {
kind: core_types::gpoll::ErrorKind::ArenaExhausted,
trace: Vec::new(),
})
};
let element = legacy.element(source).cloned().unwrap_or_default();
let mut transform: DAffine2 = legacy.attribute_cloned_or_default(ATTR_TRANSFORM, source);
if mirrored {
transform = reflected_transform.expect("a mirrored lane exists only under a reflection") * transform;
}
let appearance = match legacy.attribute::<graphic_types::Appearance>(graphic_types::ATTR_APPEARANCE, source).cloned() {
Some(appearance) => Some(&*arena.alloc_sized_keyed(appearance, 0).ok_or_else(exhausted)?.0),
None => None,
};
let layer_path: Vec<NodeId> = legacy.attribute::<Vec<NodeId>>(ATTR_EDITOR_LAYER_PATH, source).cloned().unwrap_or_default();
let layer_path = arena.alloc(layer_path).ok_or_else(exhausted)?.0;
Ok((
element,
Attr(transform),
Attr(appearance),
Attr(legacy.attribute_cloned_or_default(core_types::ATTR_BLEND_MODE, source)),
Attr(legacy.attribute_cloned_or(core_types::ATTR_OPACITY, source, 1.)),
Attr(legacy.attribute_cloned_or(core_types::ATTR_OPACITY_FILL, source, 1.)),
Attr(legacy.attribute_cloned_or_default(core_types::ATTR_CLIPPING_MASK, source)),
Attr(layer_path.as_slice()),
))
}
/// The materialized level as its legacy list, content kept native.
fn legacy_render_list_of<T: dyn_any::StaticTypeSized>(content: core_types::node::List<'_, T>) -> List<T::Static>
where
T::Static: Clone + Send + Sync + dyn_any::StaticTypeSized,
{
let item = content.as_group_item();
graphic_types::graphic::run_to_list::<T::Static>(&item).expect("the run holds the row's element type")
}
#[node_macro::node(category("General"), extent(mirror_extent))]
fn mirror<'e>(
ctx: impl Ctx + core_types::context::ExtractArena<'e> + ExtractIndex + InjectIndex + Copy,
content: IList<Graphic<'static>>,
#[default(ReferencePoint::Center)] relative_to_bounds: ReferencePoint,
#[unit(" px")] offset: f64,
#[range]
#[soft(-90..90)]
angle: Angle,
#[default(true)] keep_original: bool,
) -> Result<
IList<(
Graphic<'static>,
Attr<'e, TransformAttr>,
Attr<'e, graphic_types::markers::Appearance>,
Attr<'e, core_types::attribute::BlendMode>,
Attr<'e, core_types::attribute::Opacity>,
Attr<'e, core_types::attribute::OpacityFill>,
Attr<'e, core_types::attribute::ClippingMask>,
Attr<'e, EditorLayerPath>,
)>,
Interrupt,
> {
mirror_lane(ctx.arena(), legacy_render_list_of(content), ctx.index() as usize, relative_to_bounds, offset, angle, keep_original)
}
/// The kept originals double the level, counted from the subject's extent
/// query alone so nested extents stay materialization-free.
fn mirror_extent(
content: ListIn<'_, Graphic>,
_relative_to_bounds: ValueIn<'_, ReferencePoint>,
_offset: ValueIn<'_, f64>,
_angle: ValueIn<'_, f64>,
keep_original: ValueIn<'_, bool>,
level: LevelIn,
) -> GPoll<Extent> {
match level.top() {
true => content.total().zip(keep_original.get()).map(|(total, keep_original)| match (total, keep_original) {
(total, false) => total,
(Extent::Exactly(count), true) => Extent::Exactly(count * 2),
(Extent::AtLeast(bound), true) => Extent::AtLeast(bound * 2),
(Extent::Free, true) => Extent::Free,
}),
false => GPoll::Final(Extent::Exactly(1)),
}
}
/// The mirror over a plain vector level, as [`mirror`]. Registered under the
/// mirror identifier.
#[node_macro::node(category(""), extent(mirror_vector_extent))]
fn mirror_vector<'e>(
ctx: impl Ctx + core_types::context::ExtractArena<'e> + ExtractIndex + InjectIndex + Copy,
content: IList<Vector>,
#[default(ReferencePoint::Center)] relative_to_bounds: ReferencePoint,
#[unit(" px")] offset: f64,
#[range]
#[soft(-90..90)]
angle: Angle,
#[default(true)] keep_original: bool,
) -> Result<
IList<(
Vector,
Attr<'e, TransformAttr>,
Attr<'e, graphic_types::markers::Appearance>,
Attr<'e, core_types::attribute::BlendMode>,
Attr<'e, core_types::attribute::Opacity>,
Attr<'e, core_types::attribute::OpacityFill>,
Attr<'e, core_types::attribute::ClippingMask>,
Attr<'e, EditorLayerPath>,
)>,
Interrupt,
> {
mirror_lane(ctx.arena(), legacy_render_list_of(content), ctx.index() as usize, relative_to_bounds, offset, angle, keep_original)
}
fn mirror_vector_extent(
content: ListIn<'_, Vector>,
_relative_to_bounds: ValueIn<'_, ReferencePoint>,
_offset: ValueIn<'_, f64>,
_angle: ValueIn<'_, f64>,
keep_original: ValueIn<'_, bool>,
level: LevelIn,
) -> GPoll<Extent> {
match level.top() {
true => content.total().zip(keep_original.get()).map(|(total, keep_original)| match (total, keep_original) {
(total, false) => total,
(Extent::Exactly(count), true) => Extent::Exactly(count * 2),
(Extent::AtLeast(bound), true) => Extent::AtLeast(bound * 2),
(Extent::Free, true) => Extent::Free,
}),
false => GPoll::Final(Extent::Exactly(1)),
}
}
pub use _mirror_vector_mod::mirror_vector_entries;
/// `node_path` with its trailing entry dropped: the containing network's path, which is also a unique
/// reference to the owning document node at any nesting depth. Stamped onto `editor:layer_path`.
#[node_macro::node(name("Path of Subgraph"), category(""))]
pub fn path_of_subgraph(_: impl Ctx, node_path: Vec<NodeId>) -> Vec<NodeId> {
let len = node_path.len();
node_path.into_iter().take(len.saturating_sub(1)).collect()
}
/// The layer-path stamp: writes the owning layer's document node path on
/// each lane, which lets editor tools trace data back to its layer.
#[node_macro::node(category(""))]
pub fn stamp_layer_path<'e, T>(ctx: impl Ctx + ExtractArena<'e>, element: T, path: Vec<NodeId>) -> Result<(T, Attr<'e, EditorLayerPath>), Interrupt> {
let (parked, _) = ctx.arena().alloc(path).ok_or(GraphError {
kind: core_types::gpoll::ErrorKind::ArenaExhausted,
trace: Vec::new(),
})?;
Ok((element, Attr(parked.as_slice())))
}
/// Writes `value` onto each lane under the attribute `name` names. The name is
/// constant text the compiler folds into the layout when the graph compiles, so
/// the write costs exactly what a marker node's does; a name that is not
/// constant is refused there rather than resolved here.
#[node_macro::node(category("Attributes: Write"))]
pub fn write_attribute<'e, T, V: WireValue>(
ctx: impl Ctx + ExtractArena<'e>,
content: T,
/// The attribute name, folded into the layout when the graph compiles.
name: Named<Name0>,
#[implementations(f64, u32, u64, bool, DVec2, DAffine2, Color, Vec<NodeId>, String)] value: V,
) -> Result<(T, Attr<'e, Named<Name0, V::Row>>), Interrupt> {
let parked = value.park(ctx.arena()).ok_or(GraphError {
kind: core_types::gpoll::ErrorKind::ArenaExhausted,
trace: Vec::new(),
})?;
Ok((content, Attr(parked)))
}
// The attribute reads: one node per value type, since a name means one type
// and there is no coercion between them. Each takes any record wire, never
// looks at its element, and serves the name's own default where the attribute
// is absent, so the value always carries the declared type.
//
// The name is constant text the compiler folds into an offset when the graph
// compiles; a name written at another value type is a graph error rather than
// a conversion.
macro_rules! attribute_reads {
($($(#[$meta:meta])* $node:ident: $row:ty => $value:ty;)*) => {
$(
$(#[$meta])*
#[node_macro::node(category("Attributes: Read"))]
pub fn $node<T>(
_: impl Ctx,
/// The content whose lanes carry the attribute; its element is never read.
(content, value): (T, Attr<Named<Name0, $row>>),
/// The attribute name, folded into an offset when the graph compiles.
name: Named<Name0>,
) -> $value {
let _ = content;
*value
}
)*
};
}
attribute_reads! {
/// Reads a named `f64` attribute, such as `opacity` or `font_size`.
read_number_attribute: f64 => f64;
/// Reads a named `u64` attribute, such as a regex match's `start` or `end`.
read_integer_attribute: u64 => u64;
/// Reads a named `bool` attribute, such as `clipping_mask` or `clip`.
read_bool_attribute: bool => bool;
/// Reads a named `DVec2` attribute, such as an artboard's `location` or `dimensions`.
read_coordinate_attribute: DVec2 => DVec2;
/// Reads a named `DAffine2` attribute, such as `transform`.
read_transform_attribute: DAffine2 => DAffine2;
/// Reads a named `Color` attribute, such as an artboard's `background`.
read_color_attribute: Color => Color;
/// Reads a named `BlendMode` attribute, such as `blend_mode`.
read_blend_mode_attribute: core_types::blending::BlendMode => core_types::blending::BlendMode;
/// Reads a named gradient-shape attribute, such as `gradient_type`.
read_gradient_type_attribute: GradientTypeValue => GradientTypeValue;
/// Reads a named gradient-spread attribute, such as `spread_method`.
read_spread_method_attribute: GradientSpreadMethod => GradientSpreadMethod;
}
/// Joins two levels of the same type, the base's lanes followed by the new's.
#[node_macro::node(category("General"), extent(extend_extent))]
pub fn extend<T>(
ctx: impl Ctx + ExtractIndex + InjectIndex + Copy,
/// The input whose lanes appear at the start of the extended level.
base: impl Node<Context<'_>, Output = T>,
/// The input whose lanes appear at the end of the extended level.
#[expose]
new: impl Node<Context<'_>, Output = T>,
) -> Result<T, Interrupt> {
let split = match base.extent(ctx, Level::Total) {
GPoll::Final(Extent::Exactly(count)) => count as u64,
// A scalar side joins the concat as a single lane, per `Extent::sum`.
GPoll::Final(Extent::Free) => 1,
GPoll::Pending => return Err(Interrupt::Pending),
_ => return Err(GraphError::new("extend over a non-exact base extent").into()),
};
let lane = ctx.index();
match lane < split {
true => base.eval(ctx),
false => {
let mut shifted = *ctx;
shifted.set_index(lane - split);
new.eval(&shifted)
}
}
}
/// The top level sums both sides; inner levels must agree (rectangular), a
/// free side or a side with no top-level lanes defers to the other.
fn extend_extent(base: ExtentIn<'_>, new: ExtentIn<'_>, level: LevelIn) -> GPoll<Extent> {
match level.top() {
true => Extent::sum(base.at(level), new.at(level)),
false => base.at(level).zip(new.at(level)).and_then(|extents| match extents {
(Extent::Free, other) | (other, Extent::Free) => GPoll::Final(other),
(base_inner, new_inner) if base_inner == new_inner => GPoll::Final(base_inner),
(base_inner, new_inner) => {
let top = LevelIn {
level: level.depth - 1,
depth: level.depth,
};
match (base.at(top), new.at(top)) {
(GPoll::Final(Extent::Exactly(0)), _) => GPoll::Final(new_inner),
(_, GPoll::Final(Extent::Exactly(0))) => GPoll::Final(base_inner),
_ => GPoll::error("extend inner extents differ"),
}
}
}),
}
}
// TODO: Eventually remove this document upgrade code
/// Performs an obsolete function as part of a migration from an older document format.
/// Users are advised to delete this node and replace it with a new one.
#[node_macro::node(category(""))]
pub fn legacy_layer_extend<T: Send + Clone>(
_: impl Ctx,
#[implementations(List<Artboard>, List<Graphic>, List<Vector>, List<String>, List<Raster<CPU>>, List<Raster<GPU>>, List<Color>, List<GradientStops>)] base: List<T>,
#[expose]
#[implementations(List<Artboard>, List<Graphic>, List<Vector>, List<String>, List<Raster<CPU>>, List<Raster<GPU>>, List<Color>, List<GradientStops>)]
new: List<T>,
nested_node_path: List<NodeId>,
) -> List<T> {
// Get the penultimate element of the node path, or None if the path is too short
// This is used to get the ID of the user-facing parent layer-style node (which encapsulates this internal node).
let layer = {
let index = nested_node_path.len().wrapping_sub(2);
nested_node_path.element(index).copied()
};
let mut base = base;
for mut row in new.into_iter() {
row.set_attribute(ATTR_EDITOR_LAYER_PATH, layer);
base.push(row);
}
base
}
/// Nests the input graphical content in a wrapper graphic. This essentially "groups" the input.
/// The wrapped run keeps the level's element type, so the legacy boundary can
/// lower a wrapped vector level to the bare typed graphic the pre-flip wrap made.
/// The inverse of this node is 'Flatten Graphic'.
#[node_macro::node(category("General"), extent(wrap_graphic_extent))]
pub fn wrap_graphic<'e, T: Clone + Send + Sync + core_types::CacheHash + 'static>(
_: impl Ctx,
#[implementations(Graphic, Vector, Raster<CPU>, Raster<GPU>, Color, GradientStops, String)] content: IList<T>,
) -> Result<IList<Graphic<'e>>, Interrupt> {
let item = content.as_group_item();
Ok(Graphic::Group(core_types::record::Group { row: None, content: item }))
}
/// The collected group is the level's single lane.
fn wrap_graphic_extent<T>(_content: ListIn<'_, T>, _level: LevelIn) -> GPoll<Extent> {
GPoll::Final(Extent::Exactly(1))
}
/// Converts graphical content into a `Graphic` level. A `Graphic` level passes through
/// unchanged; a typed level nests as one graphic lane, keeping the pre-flip list
/// collapse (`to_graphic_typed` serves those rows). The legacy list rows accept an
/// unconverted producer's list value as one element, built as a native group.
#[node_macro::node(category("General"))]
pub fn to_graphic<'e, T: graphic_types::graphic::IntoGraphicElement>(
ctx: impl Ctx + core_types::context::ExtractArena<'e>,
#[implementations(
Graphic,
List<Graphic>,
List<Vector>,
List<Raster<CPU>>,
List<Raster<GPU>>,
List<Color>,
List<GradientStops>,
List<String>,
)]
content: T,
) -> Result<Graphic<'e>, Interrupt> {
content.into_graphic_element(ctx.arena()).ok_or_else(|| GraphError::new("the arena is exhausted").into())
}
/// The elementwise `Graphic` coercion the compiler-inserted converts use: each
/// lane's element converts on its own, so a typed source feeds a graphic input
/// without changing the level's shape. Registered under the convert identifier.
#[node_macro::node(category(""))]
pub fn to_graphic_element<'e, T: graphic_types::graphic::IntoGraphicElement>(
ctx: impl Ctx + core_types::context::ExtractArena<'e>,
#[implementations(
Graphic,
Vector,
Raster<CPU>,
Raster<GPU>,
Color,
GradientStops,
String,
List<Graphic>,
List<Vector>,
List<Raster<CPU>>,
List<Raster<GPU>>,
List<Color>,
List<GradientStops>,
List<String>,
)]
content: T,
) -> Result<Graphic<'e>, Interrupt> {
content.into_graphic_element(ctx.arena()).ok_or_else(|| GraphError::new("the arena is exhausted").into())
}
/// The typed-level conversion: the whole level nests as one graphic lane, as
/// the pre-flip `Into<Graphic>` list collapse did. Registered under the to
/// graphic identifier.
#[node_macro::node(category(""), extent(wrap_graphic_extent))]
pub fn to_graphic_typed<'e, T: Clone + Send + Sync + core_types::CacheHash + 'static>(
_: impl Ctx,
#[implementations(Vector, Raster<CPU>, Raster<GPU>, Color, GradientStops, String)] content: IList<T>,
) -> Result<IList<Graphic<'e>>, Interrupt> {
let item = content.as_group_item();
Ok(Graphic::Group(core_types::record::Group { row: None, content: item }))
}
/// An unconnected content input carries the unit, which renders as nothing like
/// the pre-flip empty list. Registered under the to graphic identifier.
#[node_macro::node(category(""), extent(to_graphic_unit_extent))]
pub fn to_graphic_unit(_: impl Ctx, _content: ()) -> Result<IList<Graphic<'static>>, Interrupt> {
Err(core_types::gpoll::GraphError::past_end().into())
}
fn to_graphic_unit_extent(_content: core_types::extent::ValueIn<'_, ()>, _level: LevelIn) -> GPoll<Extent> {
GPoll::Final(Extent::Exactly(0))
}
/// The transitional level bridge: the input's records as the legacy list an
/// unconverted consumer expects, attributes copied through their erased
/// reads and content kept in its native form. Registered under the legacy
/// convert identifiers.
#[node_macro::node(category(""))]
pub fn level_to_list<T: Clone + Send + Sync + CacheHash + dyn_any::StaticTypeSized>(
_: impl Ctx,
#[implementations(Graphic, Vector, Raster<CPU>, Raster<GPU>, Color, GradientStops, String)] value: IList<T>,
_converter: (),
) -> List<T> {
let item = value.as_group_item();
graphic_types::graphic::run_to_list::<T>(&item).expect("the run holds the row's element type")
}
pub use _level_to_list_mod::level_to_list_entries;
pub use _to_graphic_element_mod::to_graphic_element_entries;
pub use _to_graphic_typed_mod::to_graphic_typed_entries;
pub use _to_graphic_unit_mod::to_graphic_unit_entries;
/// Removes a level of nesting from a `Graphic[]`, or all nesting if "Fully Flatten" is enabled.
#[node_macro::node(category("General"), extent(flatten_graphic_extent))]
pub fn flatten_graphic(ctx: impl Ctx + ExtractIndex + InjectIndex + Copy, content: IList<Graphic<'static>>, fully_flatten: bool) -> Result<IList<(Graphic<'static>, Attr<TransformAttr>)>, Interrupt> {
let mut remaining = ctx.index() as usize;
for row in 0..content.len() {
let graphic = content.element_ref(row);
let count = crate::record::leaf_count(graphic, fully_flatten, 0);
if remaining >= count {
remaining -= count;
continue;
}
let transform: DAffine2 = content.lane(row).attr::<TransformAttr>();
if let Some((leaf, composed)) = crate::record::locate(graphic, transform, fully_flatten, 0, &mut remaining) {
return Ok((leaf, Attr(composed)));
}
}
Err(GraphError::new("flatten addressed past its leaf count").into())
}
/// The level holds one row per leaf of the walk.
fn flatten_graphic_extent(content: ListIn<'_, Graphic>, fully_flatten: ValueIn<'_, bool>, level: LevelIn) -> GPoll<Extent> {
match level.top() {
true => fully_flatten
.get()
.zip(content.get())
.map(|(fully_flatten, content)| Extent::Exactly((0..content.len()).map(|row| crate::record::leaf_count(content.element_ref(row), fully_flatten, 0)).sum())),
false => GPoll::Final(Extent::Exactly(1)),
}
}
/// Converts a `Graphic[]` into a `Vector[]` by deeply flattening any vector content it contains, and discarding any non-vector content.
#[node_macro::node(category("Vector"))]
pub fn flatten_vector<T: IntoGraphicList>(_: impl Ctx, #[implementations(List<Graphic>, List<Vector>)] content: T) -> List<Vector> {
let graphic_list = content.into_graphic_list();
let mut output: List<Vector> = graphic_list.clone().into_flattened_list();
// TODO: Replace this snapshot hack with per-layer metadata driven by each layer's Monitor node.
// TODO: Flattening here erases the upstream `List<Graphic>` hierarchy that editor metadata collection walks
// TODO: to populate `upstream_footprints` / `local_transforms` / `click_targets` per child layer. As a workaround
// TODO: we stash the pre-flattened list on the output so `List<Vector>::collect_metadata` can recurse into it,
// TODO: which conflates render output with editor metadata and forces the pre-compensation dance below.
// TODO: The cleaner fix is to drive each layer's metadata from its own Monitor's captured `(Context, List<Graphic>)`,
// TODO: at which point this attribute (and the equivalents in Boolean Operation, Solidify Stroke, Flatten Path,
// TODO: Morph, Rasterize) become unnecessary.
if !output.is_empty() {
// Item 0 carries a composed transform inherited from the flattened input, but the merged_layers
// already holds the original transforms; pre-compensate by item 0's inverse so the renderer's
// `upstream_footprint *= item_0_transform` recursion cancels out and leaves the originals intact.
let mut graphic_list = graphic_list;
let item_0_transform: DAffine2 = output.attribute_cloned_or_default(ATTR_TRANSFORM, 0);
if item_0_transform.matrix2.determinant().abs() > f64::EPSILON {
let inverse = item_0_transform.inverse();
for transform in graphic_list.iter_attribute_values_mut_or_default::<DAffine2>(ATTR_TRANSFORM) {
*transform = inverse * *transform;
}
}
output.set_attribute(ATTR_EDITOR_MERGED_LAYERS, 0, Some(graphic_list));
}
output
}
/// Converts a `Graphic[]` into a `Raster[]` by deeply flattening any raster content it contains, and discarding any non-raster content.
#[node_macro::node(category("Raster"))]
pub fn flatten_raster<T: IntoGraphicList>(_: impl Ctx, #[implementations(List<Graphic>, List<Raster<CPU>>)] content: T) -> List<Raster<CPU>> {
content.into_flattened_list()
}
/// Converts a `Graphic[]` into a `Color[]` by deeply flattening any color content it contains, and discarding any non-color content.
#[node_macro::node(category("General"))]
pub fn flatten_color<T: IntoGraphicList>(_: impl Ctx, #[implementations(List<Graphic>, List<Color>)] content: T) -> List<Color> {
content.into_flattened_list()
}
/// Converts a `Graphic[]` into a `GradientStops[]` by deeply flattening any gradient content it contains, and discarding any non-gradient content.
#[node_macro::node(category("General"))]
pub fn flatten_gradient<T: IntoGraphicList>(_: impl Ctx, #[implementations(List<Graphic>, List<GradientStops>)] content: T) -> List<GradientStops> {
content.into_flattened_list()
}
/// Constructs a gradient from a `Color[]`, where the colors are evenly distributed as gradient stops across the range from 0 to 1.
#[node_macro::node(category("Color"))]
fn colors_to_gradient(_: impl Ctx, colors: IList<Color>) -> GradientStops {
let stop = |position: f64, color: Color| GradientStop { position, midpoint: 0.5, color };
match colors.len() {
0 => GradientStops::new(vec![stop(0., Color::BLACK), stop(1., Color::BLACK)]),
1 => GradientStops::new(vec![stop(0., colors.get(0)), stop(1., colors.get(0))]),
total => GradientStops::new((0..total).map(|index| stop(index as f64 / (total - 1) as f64, colors.get(index)))),
}
}