1use anyhow::Result;
4use kcmc::ModelingCmd;
5use kcmc::each_cmd as mcmd;
6use kcmc::length_unit::LengthUnit;
7use kcmc::shared::Angle;
8use kcmc::shared::Opposite;
9use kittycad_modeling_cmds::shared::BodyType;
10use kittycad_modeling_cmds::shared::Point3d;
11use kittycad_modeling_cmds::{self as kcmc};
12
13use super::DEFAULT_TOLERANCE_MM;
14use super::args::FromKclValue;
15use super::args::TyF64;
16use crate::errors::KclError;
17use crate::errors::KclErrorDetails;
18use crate::execution::ExecState;
19use crate::execution::ExecutorContext;
20use crate::execution::KclValue;
21use crate::execution::ModelingCmdMeta;
22use crate::execution::Sketch;
23use crate::execution::Solid;
24use crate::execution::types::ArrayLen;
25use crate::execution::types::RuntimeType;
26use crate::parsing::ast::types::TagNode;
27use crate::std::Args;
28use crate::std::axis_or_reference::Axis2dOrEdgeReference;
29use crate::std::edge;
30use crate::std::extrude::build_segment_surface_sketch;
31use crate::std::extrude::do_post_extrude;
32
33extern crate nalgebra_glm as glm;
34
35pub async fn revolve(exec_state: &mut ExecState, args: Args) -> Result<KclValue, KclError> {
37 let sketch_values: Vec<KclValue> = args.get_unlabeled_kw_arg(
38 "sketches",
39 &RuntimeType::Array(
40 Box::new(RuntimeType::Union(vec![RuntimeType::sketch(), RuntimeType::segment()])),
41 ArrayLen::Minimum(1),
42 ),
43 exec_state,
44 )?;
45
46 let axis_value: KclValue = args.get_kw_arg("axis", &RuntimeType::any(), exec_state)?;
48 let axis: Axis2dOrEdgeReference = if edge::is_edge_specifier_object(&axis_value) {
49 let spec = edge::parse_edge_specifier_value(&axis_value, &args)?;
50 let edge_reference =
51 edge::resolve_edge_specifier_with_adjacent_faces_or_tag_ids(&spec, exec_state, &args).await?;
52 Axis2dOrEdgeReference::EdgeSpecifier(edge_reference)
53 } else if let Some(axis_val) = Axis2dOrEdgeReference::from_kcl_val(&axis_value) {
54 axis_val
55 } else {
56 return Err(KclError::new_type(KclErrorDetails {
57 message: "axis must be an Edge, Axis2d, Segment, or an object with 'sideFaces' (edge reference)"
58 .to_string(),
59 source_ranges: vec![args.source_range],
60 backtrace: Default::default(),
61 }));
62 };
63 let angle: Option<TyF64> = args.get_kw_arg_opt("angle", &RuntimeType::degrees(), exec_state)?;
64 let tolerance: Option<TyF64> = args.get_kw_arg_opt("tolerance", &RuntimeType::length(), exec_state)?;
65 let tag_start = args.get_kw_arg_opt("tagStart", &RuntimeType::tag_decl(), exec_state)?;
66 let tag_end = args.get_kw_arg_opt("tagEnd", &RuntimeType::tag_decl(), exec_state)?;
67 let symmetric = args.get_kw_arg_opt("symmetric", &RuntimeType::bool(), exec_state)?;
68 let bidirectional_angle: Option<TyF64> =
69 args.get_kw_arg_opt("bidirectionalAngle", &RuntimeType::angle(), exec_state)?;
70 let body_type: BodyType = args
71 .get_kw_arg_opt("bodyType", &RuntimeType::string(), exec_state)?
72 .unwrap_or_default();
73 let sketches = coerce_revolve_targets(
74 sketch_values,
75 body_type,
76 tag_start.as_ref(),
77 tag_end.as_ref(),
78 exec_state,
79 &args.ctx,
80 args.source_range,
81 )
82 .await?;
83
84 let value = inner_revolve(
85 sketches,
86 axis,
87 angle.map(|t| t.n),
88 tolerance,
89 tag_start,
90 tag_end,
91 symmetric,
92 bidirectional_angle,
93 body_type,
94 exec_state,
95 args,
96 )
97 .await?;
98 Ok(value.into())
99}
100
101#[allow(clippy::too_many_arguments)]
102async fn inner_revolve(
103 sketches: Vec<Sketch>,
104 axis: Axis2dOrEdgeReference,
105 angle: Option<f64>,
106 tolerance: Option<TyF64>,
107 tag_start: Option<TagNode>,
108 tag_end: Option<TagNode>,
109 symmetric: Option<bool>,
110 bidirectional_angle: Option<TyF64>,
111 body_type: BodyType,
112 exec_state: &mut ExecState,
113 args: Args,
114) -> Result<Vec<Solid>, KclError> {
115 if let Axis2dOrEdgeReference::Axis { direction, .. } = &axis
116 && direction[0].to_mm() == 0.0
117 && direction[1].to_mm() == 0.0
118 {
119 return Err(KclError::new_semantic(KclErrorDetails::new(
120 "The axis of revolution cannot be the zero vector.".to_owned(),
121 vec![args.source_range],
122 )));
123 }
124
125 if let Some(angle) = angle {
126 if !(-360.0..=360.0).contains(&angle) || angle == 0.0 {
130 return Err(KclError::new_semantic(KclErrorDetails::new(
131 format!("Expected angle to be between -360 and 360 and not 0, found `{angle}`"),
132 vec![args.source_range],
133 )));
134 }
135 }
136
137 let bidirectional_angle = bidirectional_angle.map(|n| n.to_degrees(exec_state, args.source_range));
138 if let Some(bidirectional_angle) = bidirectional_angle {
139 if !(-360.0..=360.0).contains(&bidirectional_angle) || bidirectional_angle == 0.0 {
143 return Err(KclError::new_semantic(KclErrorDetails::new(
144 format!(
145 "Expected bidirectional angle to be between -360 and 360 and not 0, found `{bidirectional_angle}`"
146 ),
147 vec![args.source_range],
148 )));
149 }
150
151 if let Some(angle) = angle {
152 let ang = angle.signum() * bidirectional_angle + angle;
153 if !(-360.0..=360.0).contains(&ang) {
154 return Err(KclError::new_semantic(KclErrorDetails::new(
155 format!("Combined angle and bidirectional must be between -360 and 360, found '{ang}'"),
156 vec![args.source_range],
157 )));
158 }
159 }
160 }
161
162 if symmetric.unwrap_or(false) && bidirectional_angle.is_some() {
163 return Err(KclError::new_semantic(KclErrorDetails::new(
164 "You cannot give both `symmetric` and `bidirectional` params, you have to choose one or the other"
165 .to_owned(),
166 vec![args.source_range],
167 )));
168 }
169
170 let angle = Angle::from_degrees(angle.unwrap_or(360.0));
171
172 let bidirectional_angle = bidirectional_angle.map(Angle::from_degrees);
173
174 let opposite = match (symmetric, bidirectional_angle) {
175 (Some(true), _) => Opposite::Symmetric,
176 (None, None) => Opposite::None,
177 (Some(false), None) => Opposite::None,
178 (None, Some(angle)) => Opposite::Other(angle),
179 (Some(false), Some(angle)) => Opposite::Other(angle),
180 };
181
182 let mut solids = Vec::new();
183 for sketch in &sketches {
184 let new_solid_id = exec_state.next_uuid();
185 let tolerance = tolerance.as_ref().map(|t| t.to_mm()).unwrap_or(DEFAULT_TOLERANCE_MM);
186
187 let direction = match &axis {
188 Axis2dOrEdgeReference::Axis { direction, origin } => {
189 exec_state
190 .batch_modeling_cmd(
191 ModelingCmdMeta::from_args_id(exec_state, &args, new_solid_id),
192 ModelingCmd::from(
193 mcmd::Revolve::builder()
194 .angle(angle)
195 .target(sketch.id.into())
196 .axis(Point3d {
197 x: direction[0].to_mm(),
198 y: direction[1].to_mm(),
199 z: 0.0,
200 })
201 .origin(Point3d {
202 x: LengthUnit(origin[0].to_mm()),
203 y: LengthUnit(origin[1].to_mm()),
204 z: LengthUnit(0.0),
205 })
206 .tolerance(LengthUnit(tolerance))
207 .axis_is_2d(true)
208 .opposite(opposite.clone())
209 .body_type(body_type)
210 .build(),
211 ),
212 )
213 .await?;
214 glm::DVec2::new(direction[0].to_mm(), direction[1].to_mm())
215 }
216 Axis2dOrEdgeReference::Edge(edge) => {
217 let edge_id = edge.get_engine_id(exec_state, &args)?;
218 let source_range = args
219 .labeled
220 .get("axis")
221 .map(|arg| arg.source_range)
222 .unwrap_or(args.source_range);
223 edge::record_refactor_meta_for_consumed_edge(exec_state, edge_id, source_range, &args).await;
224 exec_state
225 .batch_modeling_cmd(
226 ModelingCmdMeta::from_args_id(exec_state, &args, new_solid_id),
227 ModelingCmd::from(
228 mcmd::RevolveAboutEdge::builder()
229 .angle(angle)
230 .target(sketch.id.into())
231 .edge_id(edge_id)
232 .tolerance(LengthUnit(tolerance))
233 .opposite(opposite.clone())
234 .body_type(body_type)
235 .build(),
236 ),
237 )
238 .await?;
239 glm::DVec2::new(0.0, 1.0)
241 }
242 Axis2dOrEdgeReference::EdgeSpecifier(edge_ref) => {
243 exec_state
245 .batch_modeling_cmd(
246 ModelingCmdMeta::from_args_id(exec_state, &args, new_solid_id),
247 ModelingCmd::from(
248 mcmd::RevolveAboutEdge::builder()
249 .angle(angle)
250 .target(sketch.id.into())
251 .edge_reference(edge_ref.clone())
252 .tolerance(LengthUnit(tolerance))
253 .opposite(opposite.clone())
254 .body_type(body_type)
255 .build(),
256 ),
257 )
258 .await?;
259 glm::DVec2::new(0.0, 1.0)
261 }
262 };
263
264 let mut edge_id = None;
265 for path in sketch.paths.clone() {
268 if sketch.synthetic_jump_path_ids.contains(&path.get_id()) {
269 continue;
270 }
271
272 if !path.is_straight_line() {
273 edge_id = Some(path.get_id());
274 break;
275 }
276
277 let from = path.get_from();
278 let to = path.get_to();
279
280 let dir = glm::DVec2::new(to[0].n - from[0].n, to[1].n - from[1].n);
281 if glm::are_collinear2d(&dir, &direction, tolerance) {
282 continue;
283 }
284 edge_id = Some(path.get_id());
285 break;
286 }
287
288 solids.push(
289 do_post_extrude(
290 sketch,
291 new_solid_id.into(),
292 false,
293 &super::extrude::NamedCapTags {
294 start: tag_start.as_ref(),
295 end: tag_end.as_ref(),
296 },
297 kittycad_modeling_cmds::shared::ExtrudeMethod::New,
298 exec_state,
299 &args,
300 edge_id,
301 None,
302 body_type,
303 crate::std::extrude::BeingExtruded::Sketch,
304 )
305 .await?,
306 );
307 }
308
309 Ok(solids)
310}
311
312pub async fn coerce_revolve_targets(
313 sketch_values: Vec<KclValue>,
314 body_type: BodyType,
315 tag_start: Option<&TagNode>,
316 tag_end: Option<&TagNode>,
317 exec_state: &mut ExecState,
318 ctx: &ExecutorContext,
319 source_range: crate::SourceRange,
320) -> Result<Vec<Sketch>, KclError> {
321 let mut sketches = Vec::new();
322 let mut segments = Vec::new();
323
324 for value in sketch_values {
325 if let Some(segment) = value.clone().into_segment() {
326 segments.push(segment);
327 continue;
328 }
329
330 let Some(sketch) = Sketch::from_kcl_val(&value) else {
331 return Err(KclError::new_type(KclErrorDetails::new(
332 "Expected sketches or solved sketch segments for revolve.".to_owned(),
333 vec![source_range],
334 )));
335 };
336 sketches.push(sketch);
337 }
338
339 if !segments.is_empty() && !sketches.is_empty() {
340 return Err(KclError::new_semantic(KclErrorDetails::new(
341 "Cannot revolve sketch segments together with sketches in the same call. Use separate `revolve()` calls."
342 .to_owned(),
343 vec![source_range],
344 )));
345 }
346
347 if !segments.is_empty() {
348 if !matches!(body_type, BodyType::Surface) {
349 return Err(KclError::new_semantic(KclErrorDetails::new(
350 "Revolving sketch segments is only supported for surface revolves. Set `bodyType = SURFACE`."
351 .to_owned(),
352 vec![source_range],
353 )));
354 }
355
356 if tag_start.is_some() || tag_end.is_some() {
357 return Err(KclError::new_semantic(KclErrorDetails::new(
358 "`tagStart` and `tagEnd` are not supported when revolving sketch segments. Segment surface revolves do not create start or end caps."
359 .to_owned(),
360 vec![source_range],
361 )));
362 }
363
364 let synthetic_sketch = build_segment_surface_sketch(segments, exec_state, ctx, source_range).await?;
365 return Ok(vec![synthetic_sketch]);
366 }
367
368 Ok(sketches)
369}
370
371#[cfg(test)]
372mod tests {
373 use kcl_api::UnitLength;
374
375 use super::*;
376 use crate::execution::AbstractSegment;
377 use crate::execution::MockConfig;
378 use crate::execution::Plane;
379 use crate::execution::Segment;
380 use crate::execution::SegmentKind;
381 use crate::execution::SegmentRepr;
382 use crate::execution::SketchSurface;
383 use crate::execution::types::NumericType;
384 use crate::execution::types::NumericTypeExt;
385 use crate::front::Expr;
386 use crate::front::Number;
387 use crate::front::ObjectId;
388 use crate::front::Point2d;
389 use crate::front::PointCtor;
390 use crate::parsing::ast::types::TagDeclarator;
391 use crate::std::sketch::PlaneData;
392
393 fn point_expr(x: f64, y: f64) -> Point2d<Expr> {
394 Point2d {
395 x: Expr::Var(Number::from((x, UnitLength::Millimeters))),
396 y: Expr::Var(Number::from((y, UnitLength::Millimeters))),
397 }
398 }
399
400 fn segment_value(exec_state: &mut ExecState) -> KclValue {
401 let plane = Plane::from_plane_data_skipping_engine(PlaneData::XY, exec_state).unwrap();
402 let segment = Segment {
403 id: exec_state.next_uuid(),
404 object_id: ObjectId(1),
405 kind: SegmentKind::Point {
406 position: [TyF64::new(0.0, NumericType::mm()), TyF64::new(0.0, NumericType::mm())],
407 ctor: Box::new(PointCtor {
408 position: point_expr(0.0, 0.0),
409 }),
410 freedom: None,
411 },
412 surface: SketchSurface::Plane(Box::new(plane)),
413 sketch_id: exec_state.next_uuid(),
414 sketch: None,
415 tag: None,
416 node_path: None,
417 meta: vec![],
418 };
419 KclValue::Segment {
420 value: Box::new(AbstractSegment {
421 repr: SegmentRepr::Solved {
422 segment: Box::new(segment),
423 },
424 meta: vec![],
425 }),
426 }
427 }
428
429 #[tokio::test(flavor = "multi_thread")]
430 async fn segment_revolve_rejects_cap_tags() {
431 let ctx = ExecutorContext::new_mock(None).await;
432 let mut exec_state = ExecState::new(&ctx);
433 let err = coerce_revolve_targets(
434 vec![segment_value(&mut exec_state)],
435 BodyType::Surface,
436 Some(&TagDeclarator::new("cap_start")),
437 None,
438 &mut exec_state,
439 &ctx,
440 crate::SourceRange::default(),
441 )
442 .await
443 .unwrap_err();
444
445 assert!(
446 err.message()
447 .contains("`tagStart` and `tagEnd` are not supported when revolving sketch segments"),
448 "{err:?}"
449 );
450 ctx.close().await;
451 }
452
453 #[tokio::test(flavor = "multi_thread")]
454 async fn mock_revolve_rejects_axis_that_collapses_to_zero_in_2d() {
455 let code = r#"
456profile = startSketchOn(XZ)
457 |> startProfile(at = [10, 0])
458 |> line(end = [0, 10])
459 |> line(end = [-10, 0])
460 |> close()
461
462body = revolve(profile, axis = Z, angle = 90deg)
463"#;
464 let program = crate::Program::parse_no_errs(code).unwrap();
465 let ctx = ExecutorContext::new_mock(None).await;
466 let err = ctx.run_mock(&program, &MockConfig::default()).await.unwrap_err();
467 ctx.close().await;
468
469 assert!(
470 err.error
471 .message()
472 .contains("axis of revolution cannot be the zero vector"),
473 "{err:?}"
474 );
475 }
476
477 #[tokio::test(flavor = "multi_thread")]
478 async fn mock_revolve_accepts_nonzero_2d_axis() {
479 let code = r#"
480profile = startSketchOn(XZ)
481 |> startProfile(at = [10, 0])
482 |> line(end = [0, 10])
483 |> line(end = [-10, 0])
484 |> close()
485
486body = revolve(profile, axis = Y, angle = 90deg)
487"#;
488 let program = crate::Program::parse_no_errs(code).unwrap();
489 let ctx = ExecutorContext::new_mock(None).await;
490 let outcome = ctx.run_mock(&program, &MockConfig::default()).await;
491 ctx.close().await;
492
493 outcome.unwrap();
494 }
495
496 #[tokio::test(flavor = "multi_thread")]
497 async fn revolve_converts_bidirectional_angle_to_degrees() {
498 for (bidirectional_angle, expected_degrees) in [
502 ("2rad", 2.0_f64.to_degrees()),
503 ("30deg", 30.0),
504 ("30", 30.0),
505 ("0.5rad", 0.5_f64.to_degrees()),
506 ] {
507 let code = format!(
508 r#"
509profile = startSketchOn(XZ)
510 |> startProfile(at = [10, 0])
511 |> line(end = [0, 10])
512 |> line(end = [-10, 0])
513 |> close()
514
515body = revolve(profile, axis = Y, angle = 90deg, bidirectionalAngle = {bidirectional_angle})
516"#
517 );
518 let result = crate::execution::parse_execute(&code).await.unwrap();
519 let opposite = result
520 .root_module_artifact_commands()
521 .iter()
522 .find_map(|artifact_command| match &artifact_command.command {
523 ModelingCmd::Revolve(command) => Some(command.opposite.clone()),
524 _ => None,
525 })
526 .expect("expected revolve() to send a Revolve command");
527
528 let Opposite::Other(actual) = opposite else {
529 panic!("bidirectionalAngle = {bidirectional_angle}: expected an opposite angle, got {opposite:?}");
530 };
531 assert!(
532 (actual.to_degrees() - expected_degrees).abs() < 1e-9,
533 "bidirectionalAngle = {bidirectional_angle}: expected {expected_degrees} deg, got {} deg",
534 actual.to_degrees()
535 );
536 }
537 }
538
539 #[tokio::test(flavor = "multi_thread")]
540 async fn revolve_checks_bidirectional_angle_range_in_degrees() {
541 let code = r#"
544profile = startSketchOn(XZ)
545 |> startProfile(at = [10, 0])
546 |> line(end = [0, 10])
547 |> line(end = [-10, 0])
548 |> close()
549
550body = revolve(profile, axis = Y, angle = 90deg, bidirectionalAngle = 7rad)
551"#;
552 let Err(err) = crate::execution::parse_execute(code).await else {
553 panic!("expected bidirectionalAngle = 7rad to be rejected as out of range");
554 };
555 assert!(
556 err.message()
557 .contains("Expected bidirectional angle to be between -360 and 360"),
558 "{err:?}"
559 );
560 }
561}