use super::*;
pub fn offset_freeform_face(
solid: &BrepSolid,
face_id: u64,
distance: f64,
) -> Result<BrepSolid, String> {
if !distance.is_finite() {
return Err("offset_freeform_face: distance must be finite".into());
}
let scale = solid_model_scale(solid);
let tolerance = (scale * 1e-7).max(1e-9);
let residual_tolerance = (scale * 5e-4).max(5e-6);
let fit_tolerance = crate::KernelTolerances::for_scale(scale, 1e-7).intersection_fit;
let (shell_index, face_index) = find_face(solid, face_id)
.ok_or_else(|| format!("offset_freeform_face: no face {face_id}"))?;
let face = &solid.shells[shell_index].faces[face_index];
if face.surface.analytic().is_some() {
return Err("offset_freeform_face: the pushed carrier is analytic".into());
}
let mut faces_of_edge: HashMap<u64, Vec<u64>> = HashMap::default();
for shell in &solid.shells {
for candidate in &shell.faces {
for loop_record in &candidate.loops {
for coedge in &loop_record.coedges {
faces_of_edge
.entry(coedge.edge_id)
.or_default()
.push(candidate.id);
}
}
}
}
for loop_record in &face.loops {
for coedge in &loop_record.coedges {
let incident = faces_of_edge
.get(&coedge.edge_id)
.cloned()
.unwrap_or_default();
if incident.iter().any(|candidate| *candidate != face_id) {
return Err(
"offset_freeform_face: neighbour-trimmed NURBS faces require general \
surface intersection and are deferred — refusing"
.into(),
);
}
}
}
let offset = crate::offset_surface(face, -distance, 0.0)?;
let offsets = OffsetEvaluator::new(
"push_freeform",
&face.surface,
OffsetNormal::Face {
same_sense: face.same_sense,
},
);
let [u0, u1] = face.surface.domain_u()?;
let [v0, v1] = face.surface.domain_v()?;
let target = distance.abs();
for iu in 0..15 {
for iv in 0..15 {
let u = u0 + (u1 - u0) * (iu as f64 + 0.31) / 15.0;
let v = v0 + (v1 - v0) * (iv as f64 + 0.43) / 15.0;
let source_point = face.surface.evaluate(u, v)?;
let offset_point = offset.evaluate(u, v)?;
let delta = offset_point.sub(source_point);
let normal = offsets.normal(u, v)?;
let distance_error = (delta.length() - target).abs();
let normal_error = if delta.length() > tolerance {
1.0 - delta.normalized()?.dot(normal).abs()
} else {
0.0
};
if distance_error > residual_tolerance || normal_error > 2e-3 {
return Err(format!(
"offset_freeform_face: offset fit exceeds tolerance \
(distance error {distance_error:.3e}, normal error {normal_error:.3e})"
));
}
}
}
let edge_by_id: HashMap<u64, &EdgeRecord> =
solid.edges.iter().map(|edge| (edge.id, edge)).collect();
let mut rebuilt_edges: HashMap<u64, (NurbsCurve, f64, f64)> = HashMap::default();
let mut rebuilt_vertices: HashMap<u64, Vec3> = HashMap::default();
for loop_record in &face.loops {
for coedge in &loop_record.coedges {
if rebuilt_edges.contains_key(&coedge.edge_id) {
continue;
}
let edge = *edge_by_id
.get(&coedge.edge_id)
.ok_or_else(|| format!("offset_freeform_face: missing edge {}", coedge.edge_id))?;
let [q0, q1] = coedge.pcurve.domain()?;
let a = coedge.pcurve.evaluate(q0)?;
let b = coedge.pcurve.evaluate(q1)?;
let m = coedge.pcurve.evaluate(0.5 * (q0 + q1))?;
let uv_tolerance = 1e-7;
let iso = if (a.x - b.x).abs() <= uv_tolerance && (a.x - m.x).abs() <= uv_tolerance {
Some((offset.iso_curve_u(a.x)?, a.y, b.y))
} else if (a.y - b.y).abs() <= uv_tolerance && (a.y - m.y).abs() <= uv_tolerance {
Some((offset.iso_curve_v(a.y)?, a.x, b.x))
} else {
None
};
let (base, mut start, mut end) = match iso {
Some(triple) => triple,
None => {
let image = crate::image_curve(
&offset,
&coedge.pcurve,
fit_tolerance,
"offset_freeform_face",
)?;
(image.curve, image.t0, image.t1)
}
};
if !coedge.forward {
std::mem::swap(&mut start, &mut end);
}
let [d0, d1] = base.domain()?;
let (curve, t0, t1) = if start <= end {
(base, start, end)
} else {
(base.reversed()?, d0 + d1 - start, d0 + d1 - end)
};
let start_point = curve.evaluate(t0)?;
let end_point = curve.evaluate(t1)?;
for (vertex_id, point) in [
(edge.start_vertex_id, start_point),
(edge.end_vertex_id, end_point),
] {
if let Some(known) = rebuilt_vertices.get(&vertex_id) {
if known.sub(point).length() > residual_tolerance {
return Err(format!(
"offset_freeform_face: intrinsic boundaries disagree at vertex {vertex_id}"
));
}
} else {
rebuilt_vertices.insert(vertex_id, point);
}
}
rebuilt_edges.insert(edge.id, (curve, t0, t1));
}
}
finish_intrinsic_face_offset(
solid,
(shell_index, face_index),
offset,
&rebuilt_edges,
&rebuilt_vertices,
"offset_freeform_face",
)
}