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axiolid_brep/
lib.rs

1#![forbid(unsafe_code)]
2
3//! Strict exact B-rep results over neutral analytic curve and surface values.
4//!
5//! [`axiolid_topology::BRep`] remains generic so graph/import clients can link
6//! their own handles. [`ExactBRep`] binds that graph to owned `Curve3`, `Curve2`,
7//! and `Surface` catalogs, then requires every support and trim span explicitly.
8//! It does not evaluate, intersect, or tessellate geometry.
9
10use std::collections::HashMap;
11use std::fmt;
12
13use axiolid_core::Interval;
14use axiolid_curve::{Curve2, Curve3};
15use axiolid_surface::Surface;
16use axiolid_topology::{audit_brep, BRep, BRepHealth, EdgeId, FaceId, LoopId, ShellId};
17
18/// Persistent structural names for faces and edges.
19pub mod name;
20
21pub use name::{EdgeName, FaceName, Operand, SweptFace};
22
23macro_rules! geometry_id {
24    ($name:ident, $label:literal) => {
25        #[doc = concat!("Typed handle into the exact B-rep ", $label, " catalog.")]
26        #[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
27        pub struct $name(u32);
28
29        impl $name {
30            fn from_index(index: usize) -> Self {
31                Self(u32::try_from(index).expect("exact B-rep catalog exceeds u32 capacity"))
32            }
33
34            /// Zero-based catalog index.
35            pub const fn index(self) -> usize {
36                self.0 as usize
37            }
38        }
39    };
40}
41
42geometry_id!(Curve3Id, "3D curve");
43geometry_id!(Curve2Id, "2D pcurve");
44geometry_id!(SurfaceId, "surface");
45
46/// Topology whose supports are typed references into [`ExactBRep`] catalogs.
47pub type ExactTopology = BRep<Curve3Id, Curve2Id, SurfaceId>;
48
49/// Owned, analytic boundary representation.
50///
51/// Every edge and pcurve use has a finite, non-zero native parameter span. An
52/// interval is deliberately owned here rather than inferred from endpoints:
53/// periodic supports, reversed pcurves, and parameter re-mapping are not
54/// recoverable from coordinates. The result may be an open sheet; an eventual
55/// exact-solid contract will additionally require a selected closed shell.
56#[derive(Debug, Clone, PartialEq)]
57pub struct ExactBRep {
58    topology: ExactTopology,
59    curves3: Vec<Curve3>,
60    curves2: Vec<Curve2>,
61    surfaces: Vec<Surface>,
62    edge_intervals: HashMap<EdgeId, Interval>,
63    pcurve_intervals: HashMap<(LoopId, usize), Interval>,
64    face_names: HashMap<FaceId, FaceName>,
65    edge_names: HashMap<EdgeId, EdgeName>,
66}
67
68impl ExactBRep {
69    /// Persistent structural name for a face, when the producer supplied one.
70    ///
71    /// Absence means the producing operation did not track provenance, not
72    /// that the face is invalid. Callers that require a name should treat
73    /// `None` as a refusal rather than substituting an index.
74    pub fn face_name(&self, face: FaceId) -> Option<&FaceName> {
75        self.face_names.get(&face)
76    }
77
78    /// Persistent structural name for an edge, when the producer supplied one.
79    pub fn edge_name(&self, edge: EdgeId) -> Option<&EdgeName> {
80        self.edge_names.get(&edge)
81    }
82
83    /// Find the face carrying `name`.
84    ///
85    /// This is the lookup that makes names useful across operations: a caller
86    /// holding a name from before an edit resolves it against the new result
87    /// instead of hoping an arena index still points at the same face.
88    pub fn face_by_name(&self, name: &FaceName) -> Option<FaceId> {
89        self.face_names
90            .iter()
91            .find(|(_, candidate)| *candidate == name)
92            .map(|(id, _)| *id)
93    }
94
95    /// Find the edge carrying `name`.
96    pub fn edge_by_name(&self, name: &EdgeName) -> Option<EdgeId> {
97        self.edge_names
98            .iter()
99            .find(|(_, candidate)| *candidate == name)
100            .map(|(id, _)| *id)
101    }
102    /// Name the two cap faces of a swept solid after assembly.
103    ///
104    /// The caps are identified by construction order -- a sweep adds the
105    /// start cap then the end cap before any wall -- rather than by
106    /// geometry, because a cap that shares a plane with a wall would be
107    /// ambiguous geometrically. Passing `None` leaves that cap unnamed.
108    pub fn name_caps(&mut self, start: Option<FaceName>, end: Option<FaceName>) {
109        let start_id = self.topology.face_id_at(0);
110        let end_id = self.topology.face_id_at(1);
111        if let (Some(name), Some(id)) = (start, start_id) {
112            self.face_names.insert(id, name);
113        }
114        if let (Some(name), Some(id)) = (end, end_id) {
115            self.face_names.insert(id, name);
116        }
117    }
118
119    /// Structural topology with typed support handles.
120    pub fn topology(&self) -> &ExactTopology {
121        &self.topology
122    }
123
124    /// Owned exact 3D curve supports.
125    pub fn curves3(&self) -> &[Curve3] {
126        &self.curves3
127    }
128
129    /// Owned exact 2D trim-curve supports.
130    pub fn curves2(&self) -> &[Curve2] {
131        &self.curves2
132    }
133
134    /// Owned exact support surfaces.
135    pub fn surfaces(&self) -> &[Surface] {
136        &self.surfaces
137    }
138
139    /// Native parameter span oriented from an edge's start vertex to its end.
140    pub fn edge_interval(&self, edge: EdgeId) -> Option<Interval> {
141        self.edge_intervals.get(&edge).copied()
142    }
143
144    /// Native parameter span for an edge use's pcurve in loop traversal order.
145    pub fn pcurve_interval(&self, loop_id: LoopId, use_index: usize) -> Option<Interval> {
146        self.pcurve_intervals.get(&(loop_id, use_index)).copied()
147    }
148}
149
150/// Mutable assembly state that can only yield an [`ExactBRep`] after validation.
151#[derive(Debug, Clone, Default, PartialEq)]
152pub struct ExactBRepBuilder {
153    topology: ExactTopology,
154    curves3: Vec<Curve3>,
155    curves2: Vec<Curve2>,
156    surfaces: Vec<Surface>,
157    edge_intervals: HashMap<EdgeId, Interval>,
158    pcurve_intervals: HashMap<(LoopId, usize), Interval>,
159    face_names: HashMap<FaceId, FaceName>,
160    edge_names: HashMap<EdgeId, EdgeName>,
161}
162
163impl ExactBRepBuilder {
164    /// Record the persistent structural name of a face.
165    ///
166    /// Naming is opt-in per producer: an operation that cannot honestly say
167    /// where a face came from simply does not call this, and the face reports
168    /// no name rather than a misleading one.
169    pub fn set_face_name(&mut self, face: FaceId, name: FaceName) {
170        self.face_names.insert(face, name);
171    }
172
173    /// Record the persistent structural name of an edge.
174    pub fn set_edge_name(&mut self, edge: EdgeId, name: EdgeName) {
175        self.edge_names.insert(edge, name);
176    }
177    /// Fallibly reserve owned support and interval catalogs for bounded assembly.
178    pub fn try_reserve(
179        &mut self,
180        curves3: usize,
181        curves2: usize,
182        surfaces: usize,
183        edge_intervals: usize,
184        pcurve_intervals: usize,
185    ) -> Result<(), std::collections::TryReserveError> {
186        self.curves3.try_reserve_exact(curves3)?;
187        self.curves2.try_reserve_exact(curves2)?;
188        self.surfaces.try_reserve_exact(surfaces)?;
189        self.edge_intervals.try_reserve(edge_intervals)?;
190        self.pcurve_intervals.try_reserve(pcurve_intervals)?;
191        Ok(())
192    }
193
194    /// Store an exact 3D curve support.
195    pub fn add_curve3(&mut self, curve: Curve3) -> Curve3Id {
196        let id = Curve3Id::from_index(self.curves3.len());
197        self.curves3.push(curve);
198        id
199    }
200
201    /// Store an exact 2D pcurve support.
202    pub fn add_curve2(&mut self, curve: Curve2) -> Curve2Id {
203        let id = Curve2Id::from_index(self.curves2.len());
204        self.curves2.push(curve);
205        id
206    }
207
208    /// Store an exact surface support.
209    pub fn add_surface(&mut self, surface: Surface) -> SurfaceId {
210        let id = SurfaceId::from_index(self.surfaces.len());
211        self.surfaces.push(surface);
212        id
213    }
214
215    /// Mutable typed topology under construction. [`Self::finish`] validates it.
216    pub fn topology_mut(&mut self) -> &mut ExactTopology {
217        &mut self.topology
218    }
219
220    /// State an edge's finite native curve span.
221    pub fn set_edge_interval(&mut self, edge: EdgeId, interval: Interval) {
222        self.edge_intervals.insert(edge, interval);
223    }
224
225    /// State an edge use's finite native pcurve span in its loop traversal order.
226    pub fn set_pcurve_interval(&mut self, loop_id: LoopId, use_index: usize, interval: Interval) {
227        self.pcurve_intervals.insert((loop_id, use_index), interval);
228    }
229
230    /// Validate and freeze the exact B-rep result.
231    /// Copy every vertex, edge, loop, face and shell of `other` into this
232    /// builder, with its curves, surfaces, intervals and names, and return
233    /// the new handles of `other`'s shells in order.
234    ///
235    /// Solids are NOT copied: the caller says what the shells are -- the
236    /// outer shell of another solid, or a void of one already here. With
237    /// `reverse`, every face is used reversed in its shell, which turns a
238    /// solid's outer shell into the boundary of the same region seen from
239    /// outside it: a void.
240    pub fn append(&mut self, other: &ExactBRep, reverse: bool) -> Vec<ShellId> {
241        use axiolid_topology::{Edge, EdgeUse, Face, Loop, Orientation, Shell, Vertex};
242
243        let curves3: Vec<Curve3Id> = other
244            .curves3
245            .iter()
246            .map(|curve| self.add_curve3(curve.clone()))
247            .collect();
248        let curves2: Vec<Curve2Id> = other
249            .curves2
250            .iter()
251            .map(|curve| self.add_curve2(curve.clone()))
252            .collect();
253        let surfaces: Vec<SurfaceId> = other
254            .surfaces
255            .iter()
256            .map(|surface| self.add_surface(surface.clone()))
257            .collect();
258        let source = &other.topology;
259        let vertices: Vec<_> = source
260            .vertices()
261            .iter()
262            .map(|vertex| {
263                self.topology.add_vertex(Vertex {
264                    position: vertex.position,
265                })
266            })
267            .collect();
268        let mut edges = Vec::with_capacity(source.edges().len());
269        for (index, edge) in source.edges().iter().enumerate() {
270            let id = self.topology.add_edge(Edge {
271                start: vertices[edge.start.index()],
272                end: vertices[edge.end.index()],
273                curve: edge.curve.map(|curve| curves3[curve.index()]),
274            });
275            if let Some(old) = source.edge_id_at(index) {
276                if let Some(interval) = other.edge_intervals.get(&old) {
277                    self.edge_intervals.insert(id, *interval);
278                }
279                if let Some(name) = other.edge_names.get(&old) {
280                    self.edge_names.insert(id, name.clone());
281                }
282            }
283            edges.push(id);
284        }
285        let mut loops = Vec::with_capacity(source.loops().len());
286        for (index, wire) in source.loops().iter().enumerate() {
287            let id = self.topology.add_loop(Loop {
288                edges: wire
289                    .edges
290                    .iter()
291                    .map(|use_| EdgeUse {
292                        edge: edges[use_.edge.index()],
293                        orientation: use_.orientation,
294                        pcurve: use_.pcurve.map(|curve| curves2[curve.index()]),
295                    })
296                    .collect(),
297            });
298            if let Some(old) = source.loop_id_at(index) {
299                for use_index in 0..wire.edges.len() {
300                    if let Some(interval) = other.pcurve_intervals.get(&(old, use_index)) {
301                        self.pcurve_intervals.insert((id, use_index), *interval);
302                    }
303                }
304            }
305            loops.push(id);
306        }
307        let mut faces = Vec::with_capacity(source.faces().len());
308        for (index, face) in source.faces().iter().enumerate() {
309            let id = self.topology.add_face(Face {
310                surface: face.surface.map(|surface| surfaces[surface.index()]),
311                bounds: face
312                    .bounds
313                    .iter()
314                    .map(|bound| axiolid_topology::FaceBound {
315                        loop_id: loops[bound.loop_id.index()],
316                        ..*bound
317                    })
318                    .collect(),
319                orientation: face.orientation,
320            });
321            if let Some(name) = source
322                .face_id_at(index)
323                .and_then(|old| other.face_names.get(&old))
324            {
325                self.face_names.insert(id, name.clone());
326            }
327            faces.push(id);
328        }
329        source
330            .shells()
331            .iter()
332            .map(|shell| {
333                self.topology.add_shell(Shell {
334                    faces: shell
335                        .faces
336                        .iter()
337                        .map(|&(face, sense)| {
338                            let sense = match (sense, reverse) {
339                                (sense, false) => sense,
340                                (Orientation::Forward, true) => Orientation::Reversed,
341                                (Orientation::Reversed, true) => Orientation::Forward,
342                            };
343                            (faces[face.index()], sense)
344                        })
345                        .collect(),
346                    closed: shell.closed,
347                })
348            })
349            .collect()
350    }
351
352    pub fn finish(self) -> Result<ExactBRep, ExactBRepError> {
353        validate(&self)?;
354        Ok(ExactBRep {
355            topology: self.topology,
356            curves3: self.curves3,
357            curves2: self.curves2,
358            surfaces: self.surfaces,
359            edge_intervals: self.edge_intervals,
360            pcurve_intervals: self.pcurve_intervals,
361            face_names: self.face_names,
362            edge_names: self.edge_names,
363        })
364    }
365}
366
367/// Why exact B-rep assembly was refused.
368#[non_exhaustive]
369#[derive(Debug, Clone, PartialEq, Eq)]
370pub enum ExactBRepError {
371    /// A result without faces is not a boundary representation.
372    Empty,
373    /// Generic topology has unresolved handles or invalid loop/face structure.
374    Topology(BRepHealth),
375    /// An edge did not state its exact three-dimensional support.
376    MissingEdgeCurve { edge_index: usize },
377    /// An edge support handle does not resolve in the 3D curve catalog.
378    UnknownCurve3 { edge_index: usize },
379    /// An edge did not state its native support-curve interval.
380    MissingEdgeInterval { edge_index: usize },
381    /// An edge support interval was non-finite or zero-length.
382    InvalidEdgeInterval { edge_index: usize },
383    /// An edge use did not state its trim curve in the owning face's parameters.
384    MissingPcurve { loop_index: usize, use_index: usize },
385    /// A pcurve support handle does not resolve in the 2D curve catalog.
386    UnknownCurve2 { loop_index: usize, use_index: usize },
387    /// A pcurve did not state its native interval.
388    MissingPcurveInterval { loop_index: usize, use_index: usize },
389    /// A pcurve interval was non-finite or zero-length.
390    InvalidPcurveInterval { loop_index: usize, use_index: usize },
391    /// A face did not state its exact support surface.
392    MissingFaceSurface { face_index: usize },
393    /// A face support handle does not resolve in the surface catalog.
394    UnknownSurface { face_index: usize },
395}
396
397impl fmt::Display for ExactBRepError {
398    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
399        match self {
400            Self::Empty => f.write_str("exact B-rep requires at least one face"),
401            Self::Topology(_) => f.write_str("exact B-rep topology is structurally invalid"),
402            Self::MissingEdgeCurve { edge_index } => {
403                write!(f, "edge {edge_index} lacks a 3D curve")
404            }
405            Self::UnknownCurve3 { edge_index } => {
406                write!(f, "edge {edge_index} has an unknown 3D curve")
407            }
408            Self::MissingEdgeInterval { edge_index } => {
409                write!(f, "edge {edge_index} lacks a curve interval")
410            }
411            Self::InvalidEdgeInterval { edge_index } => {
412                write!(f, "edge {edge_index} has an invalid curve interval")
413            }
414            Self::MissingPcurve {
415                loop_index,
416                use_index,
417            } => write!(f, "loop {loop_index} use {use_index} lacks a pcurve"),
418            Self::UnknownCurve2 {
419                loop_index,
420                use_index,
421            } => write!(f, "loop {loop_index} use {use_index} has an unknown pcurve"),
422            Self::MissingPcurveInterval {
423                loop_index,
424                use_index,
425            } => write!(
426                f,
427                "loop {loop_index} use {use_index} lacks a pcurve interval"
428            ),
429            Self::InvalidPcurveInterval {
430                loop_index,
431                use_index,
432            } => write!(
433                f,
434                "loop {loop_index} use {use_index} has an invalid pcurve interval"
435            ),
436            Self::MissingFaceSurface { face_index } => {
437                write!(f, "face {face_index} lacks a support surface")
438            }
439            Self::UnknownSurface { face_index } => {
440                write!(f, "face {face_index} has an unknown support surface")
441            }
442        }
443    }
444}
445
446impl std::error::Error for ExactBRepError {}
447
448fn validate(value: &ExactBRepBuilder) -> Result<(), ExactBRepError> {
449    if value.topology.faces().is_empty() {
450        return Err(ExactBRepError::Empty);
451    }
452    let health = audit_brep(&value.topology);
453    if !health.is_tessellable() {
454        return Err(ExactBRepError::Topology(health));
455    }
456    for (edge_index, edge) in value.topology.edges().iter().enumerate() {
457        let Some(curve) = edge.curve else {
458            return Err(ExactBRepError::MissingEdgeCurve { edge_index });
459        };
460        if curve.index() >= value.curves3.len() {
461            return Err(ExactBRepError::UnknownCurve3 { edge_index });
462        }
463        let Some(edge_id) = value.topology.edge_id_at(edge_index) else {
464            return Err(ExactBRepError::MissingEdgeInterval { edge_index });
465        };
466        let Some(interval) = value.edge_intervals.get(&edge_id) else {
467            return Err(ExactBRepError::MissingEdgeInterval { edge_index });
468        };
469        if !valid_interval(*interval) {
470            return Err(ExactBRepError::InvalidEdgeInterval { edge_index });
471        }
472    }
473    for (loop_index, loop_) in value.topology.loops().iter().enumerate() {
474        let Some(loop_id) = value.topology.loop_id_at(loop_index) else {
475            return Err(ExactBRepError::Topology(health));
476        };
477        for (use_index, use_) in loop_.edges.iter().enumerate() {
478            let Some(curve) = use_.pcurve else {
479                return Err(ExactBRepError::MissingPcurve {
480                    loop_index,
481                    use_index,
482                });
483            };
484            if curve.index() >= value.curves2.len() {
485                return Err(ExactBRepError::UnknownCurve2 {
486                    loop_index,
487                    use_index,
488                });
489            }
490            let Some(interval) = value.pcurve_intervals.get(&(loop_id, use_index)) else {
491                return Err(ExactBRepError::MissingPcurveInterval {
492                    loop_index,
493                    use_index,
494                });
495            };
496            if !valid_interval(*interval) {
497                return Err(ExactBRepError::InvalidPcurveInterval {
498                    loop_index,
499                    use_index,
500                });
501            }
502        }
503    }
504    for (face_index, face) in value.topology.faces().iter().enumerate() {
505        let Some(surface) = face.surface else {
506            return Err(ExactBRepError::MissingFaceSurface { face_index });
507        };
508        if surface.index() >= value.surfaces.len() {
509            return Err(ExactBRepError::UnknownSurface { face_index });
510        }
511    }
512    Ok(())
513}
514
515fn valid_interval(interval: Interval) -> bool {
516    interval.start.is_finite() && interval.end.is_finite() && interval.length() > 0.0
517}