use ezu_features::ops::hatch::{hatch_polygons, HatchOpts};
use ezu_graph::{
schema_frag, take_input_ref, BuiltNode, Connection, CoordSpace, EvalCtx, EvalError, FactoryCtx,
FactoryError, In, InReader, Node, NodeFactory, PortKind, PortSpec, PortValue,
};
use serde_json::Value;
use xxhash_rust::xxh3::Xxh3;
use crate::nodes::common::{downcast_features, features_value, FeatureGroup};
struct HatchNode {
angle_deg: In<f64>,
spacing: In<f64>,
phase: In<f64>,
ports: Vec<PortSpec>,
param_refs: Vec<String>,
}
impl Node for HatchNode {
fn op_name(&self) -> &'static str {
"hatch"
}
fn inputs(&self) -> &[PortSpec] {
&self.ports
}
fn output(&self, _input_kinds: &[Option<PortKind>]) -> PortKind {
PortKind::Features
}
fn coord_space(&self) -> CoordSpace {
CoordSpace::Tile
}
fn eval(
&self,
ctx: &EvalCtx<'_>,
inputs: &[Option<PortValue>],
) -> Result<PortValue, EvalError> {
let feats = downcast_features(
inputs[0]
.as_ref()
.ok_or_else(|| EvalError::MissingInput("features".into()))?,
)?;
let extent = feats.extent as f64;
let origin = (ctx.tile.x as f64 * extent, ctx.tile.y as f64 * extent);
let opts = HatchOpts {
angle_deg: self.angle_deg.get(ctx, inputs)?,
spacing: self.spacing.get(ctx, inputs)?,
phase: self.phase.get(ctx, inputs)?,
origin,
};
let mut out_groups = Vec::with_capacity(feats.groups.len());
for g in &feats.groups {
let lines = hatch_polygons(&g.polygons, &opts);
out_groups.push(FeatureGroup {
properties: g.properties.clone(),
polygons: vec![],
lines,
points: vec![],
});
}
Ok(features_value(feats.extent, out_groups))
}
fn param_hash(&self, h: &mut Xxh3) {
h.update(b"hatch");
self.angle_deg.param_hash(h);
self.spacing.param_hash(h);
self.phase.param_hash(h);
}
fn param_refs(&self) -> Vec<String> {
self.param_refs.clone()
}
}
pub(super) struct HatchFactory;
impl NodeFactory for HatchFactory {
fn op_name(&self) -> &'static str {
"hatch"
}
fn build(
&self,
fields: &serde_json::Map<String, Value>,
ctx: &FactoryCtx<'_>,
) -> Result<BuiltNode, FactoryError> {
let features = take_input_ref(fields, "features")?;
let mut r = InReader::new(fields, ctx, 1);
let angle_deg = r.number_or("angle-deg", 0.0)?;
let spacing = r.number("spacing")?;
let phase = r.number_or("phase", 0.0)?;
let parts = r.finish();
let mut ports = vec![PortSpec {
name: "features",
accepts: &[PortKind::Features],
optional: false,
}];
ports.extend(parts.ports);
let mut connections = vec![Connection {
port: "features".into(),
src: features,
}];
connections.extend(parts.connections);
Ok(BuiltNode {
node: Box::new(HatchNode {
angle_deg,
spacing,
phase,
ports,
param_refs: parts.param_refs,
}),
connections,
})
}
fn schema(&self) -> Value {
serde_json::json!({
"description": "Parallel-line hatching of input polygons.",
"properties": {
"features": schema_frag::node_ref(),
"angle-deg": schema_frag::in_number(serde_json::json!({ "type": "number", "default": 0.0,
"description": "Hatch direction (degrees, CCW from +X)." })),
"spacing": schema_frag::in_number(serde_json::json!({ "type": "number", "minimum": 0.0,
"description": "Perpendicular spacing between consecutive lines, in tile pixels." })),
"phase": schema_frag::in_number(serde_json::json!({ "type": "number", "default": 0.0,
"description": "Per-line offset in spacing units (0..1 cycles through one period)." })),
},
"required": ["features", "spacing"],
})
}
}
ezu_graph::submit_node!(HatchFactory);