Add scratch work before refactor. Examples in this rev are likely broken.
This commit is contained in:
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10d5314157
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@ -15,3 +15,4 @@ debug = true
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euclid = "0.20.7"
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nalgebra = "0.19.0"
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stl_io = "0.4.2"
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rand = "0.7.3"
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463
src/examples.rs
463
src/examples.rs
@ -1,9 +1,10 @@
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use std::rc::Rc;
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use nalgebra::*;
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use rand::Rng;
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//pub mod examples;
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use crate::openmesh::{OpenMesh, Tag};
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use crate::xform::{Transform, vertex};
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use crate::xform::{Transform, vertex, Mat4};
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use crate::rule::{Rule, RuleFn, RuleEval, Child};
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use crate::prim;
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use crate::util;
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@ -44,6 +45,94 @@ pub fn cube_thing() -> Rule<()> {
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Rule { eval: Rc::new(rec), ctxt: () }
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}
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pub fn barbs() -> Rule<()> {
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let base_verts = vec![
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vertex(-0.5, -0.5, 0.0),
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vertex(-0.5, 0.5, 0.0),
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vertex( 0.5, 0.5, 0.0),
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vertex( 0.5, -0.5, 0.0),
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];
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let n = base_verts.len();
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let incr: Transform = Transform::new().
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translate(0.0, 0.0, 1.0).
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rotate(&Vector3::z_axis(), 0.1).
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scale(0.95);
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let b = base_verts.clone();
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let barb = move |self_: Rc<Rule<()>>| -> RuleEval<()> {
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let next_verts = incr.transform(&b);
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let geom = Rc::new(util::zigzag_to_parent(next_verts.clone(), n));
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let (vc, faces) = util::connect_convex(&next_verts, true);
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let final_geom = Rc::new(OpenMesh {
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verts: vec![vc],
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faces: faces,
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});
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RuleEval {
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geom: geom,
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final_geom: final_geom,
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children: vec![
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Child {
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rule: self_.clone(),
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xf: incr,
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vmap: (0..n).collect(),
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}
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]
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}
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};
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let b = base_verts.clone();
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let main = move |self_: Rc<Rule<()>>| -> RuleEval<()> {
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let next_verts = incr.transform(&b);
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// TODO: Once I start doing the barbs this will go away
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let geom = Rc::new(util::zigzag_to_parent(next_verts.clone(), n));
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let (vc, faces) = util::connect_convex(&next_verts, true);
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let final_geom = Rc::new(OpenMesh {
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verts: vec![vc],
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faces: faces,
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});
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RuleEval {
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geom: geom,
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final_geom: final_geom,
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children: vec![
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Child {
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rule: self_.clone(),
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xf: incr,
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vmap: (0..n).collect(),
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}
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]
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}
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};
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let main_ = Rc::new(main);
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let base = move |self_: Rc<Rule<()>>| -> RuleEval<()> {
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RuleEval {
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geom: Rc::new(OpenMesh {
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verts: base_verts.clone(),
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faces: vec![
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Tag::Body(0), Tag::Body(1), Tag::Body(2),
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Tag::Body(0), Tag::Body(2), Tag::Body(3),
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],
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}),
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final_geom: Rc::new(prim::empty_mesh()),
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children: vec![
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Child {
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rule: Rc::new(Rule { eval: main_.clone(), ctxt: () }),
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xf: Transform::new(),
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vmap: (0..n).collect(),
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},
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],
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}
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};
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Rule { eval: Rc::new(base), ctxt: () }
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}
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// Meant to be a copy of twist_from_gen from Python &
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// automata_scratch, but has since acquired a sort of life of its own
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pub fn twist(f: f32, subdiv: usize) -> Rule<()> {
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@ -137,6 +226,126 @@ pub fn twist(f: f32, subdiv: usize) -> Rule<()> {
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Rule { eval: Rc::new(start), ctxt: () }
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}
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#[derive(Copy, Clone)]
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pub struct NestSpiral2Ctxt {
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init: bool,
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stack: [Transform; 2],
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}
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pub fn nest_spiral_2() -> Rule<NestSpiral2Ctxt> {
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let subdiv = 8;
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let seed = vec![
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vertex(-0.5, -0.5, 0.0),
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vertex(-0.5, 0.5, 0.0),
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vertex( 0.5, 0.5, 0.0),
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vertex( 0.5, -0.5, 0.0),
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];
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let seed = util::subdivide_cycle(&seed, subdiv);
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let n = seed.len();
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let geom = Rc::new(util::zigzag_to_parent(seed.clone(), n));
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let (vc, faces) = util::connect_convex(&seed, true);
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let final_geom = Rc::new(OpenMesh {
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verts: vec![vc],
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faces: faces,
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});
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let rad = 1.0;
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let dz = 0.1;
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let rz = 0.1;
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let rad2 = 4.0;
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let rz2 = 0.1;
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let recur = move |self_: Rc<Rule<NestSpiral2Ctxt>>| -> RuleEval<NestSpiral2Ctxt> {
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//let x = &Vector3::x_axis();
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let z = &Vector3::z_axis();
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let stack = self_.ctxt.stack;
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let next_rule = Rule {
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eval: self_.eval.clone(),
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ctxt: NestSpiral2Ctxt {
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init: false,
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stack: [
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Transform::new().rotate(z, rz2) * stack[0],
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Transform::new().translate(0.0, 0.0, dz).rotate(z, rz) * stack[1],
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],
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},
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};
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let xf = stack.iter().fold(Transform::new(), |acc,m| acc * (*m));
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if self_.ctxt.init {
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let mut s2 = seed.clone();
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let (centroid, f) = util::connect_convex(&s2, false);
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s2.push(centroid);
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let n2 = s2.len();
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let g = OpenMesh { verts: s2, faces: f };
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RuleEval {
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geom: Rc::new(g.transform(&xf)),
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final_geom: Rc::new(prim::empty_mesh()),
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children: vec![
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Child {
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rule: Rc::new(next_rule),
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xf: Transform::new(),
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vmap: (0..n2).collect(),
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},
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],
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}
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} else {
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RuleEval {
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geom: Rc::new(geom.transform(&xf)),
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final_geom: Rc::new(final_geom.transform(&xf)),
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children: vec![
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Child {
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rule: Rc::new(next_rule),
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xf: Transform::new(),
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vmap: (0..n).collect(),
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},
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],
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}
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}
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};
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let count = 3;
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let r = Rc::new(recur);
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let start = move |self_: Rc<Rule<NestSpiral2Ctxt>>| -> RuleEval<NestSpiral2Ctxt> {
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let z = &Vector3::z_axis();
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let child = |i: usize| -> Child<NestSpiral2Ctxt> {
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let ang = std::f32::consts::PI * 2.0 * (i as f32) / (count as f32);
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Child {
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rule: Rc::new(Rule {
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eval: r.clone(),
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ctxt: NestSpiral2Ctxt {
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init: true,
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stack: [
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Transform::new().translate(rad2, 0.0, 0.0),
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Transform::new().rotate(z, ang).translate(rad, 0.0, 0.0),
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],
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},
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}),
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xf: Transform::new(),
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vmap: vec![], // no parent vertices
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}
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};
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RuleEval {
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geom: Rc::new(prim::empty_mesh()),
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final_geom: Rc::new(prim::empty_mesh()),
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children: (0..count).map(child).collect(),
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}
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};
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Rule {
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eval: Rc::new(start),
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ctxt: NestSpiral2Ctxt {
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init: true,
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stack: [ // doesn't matter
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Transform::new(),
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Transform::new(),
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],
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},
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}
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}
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#[derive(Copy, Clone)]
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pub struct TorusCtxt {
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init: bool,
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@ -236,6 +445,78 @@ pub fn twisty_torus() -> Rule<TorusCtxt> {
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}
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}
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pub fn twisty_torus_hardcode() -> Rule<()> {
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let subdiv = 8;
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let seed = vec![
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vertex(-0.5, -0.5, 0.0),
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vertex(-0.5, 0.5, 0.0),
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vertex( 0.5, 0.5, 0.0),
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vertex( 0.5, -0.5, 0.0),
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];
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let xf = Transform::new().rotate(&Vector3::x_axis(), -0.9);
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let seed = util::subdivide_cycle(&xf.transform(&seed), subdiv);
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let incr = Transform { mtx: Mat4::from_vec(vec![
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0.955234, 0.29576725, -0.0070466697, 0.0,
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-0.29581502, 0.9552189, -0.007100463, 0.0,
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0.004630968, 0.008867174, 0.99994993, 0.0,
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-0.034161568, 0.290308, 0.07295418, 0.9999999,
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])};
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let n = seed.len();
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let next = incr.transform(&seed);
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let geom = Rc::new(util::zigzag_to_parent(next.clone(), n));
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let (vc, faces) = util::connect_convex(&next, true);
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let final_geom = Rc::new(OpenMesh {
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verts: vec![vc],
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faces: faces,
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});
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let rad = 1.0;
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let rad2 = 8.0;
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let rad3 = 24.0;
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let start = Transform::new().translate(0.0, rad3, 0.0) * Transform::new().translate(0.0, rad2, 0.0) * Transform::new().translate(rad, 0.0, 0.0);
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let recur = move |self_: Rc<Rule<()>>| -> RuleEval<()> {
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RuleEval {
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geom: geom.clone(),
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final_geom: final_geom.clone(),
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children: vec![
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Child {
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rule: self_.clone(),
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xf: incr,
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vmap: (0..n).collect(),
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},
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],
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}
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};
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let start = move |self_: Rc<Rule<()>>| -> RuleEval<()> {
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let mut s2 = seed.clone();
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let (centroid, f) = util::connect_convex(&s2, false);
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s2.push(centroid);
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let n2 = s2.len();
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let g = OpenMesh { verts: s2, faces: f };
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RuleEval {
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geom: Rc::new(g.transform(&xf)),
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final_geom: Rc::new(prim::empty_mesh()),
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children: vec![
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Child {
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rule: Rc::new(Rule { eval: Rc::new(recur.clone()), ctxt: () }),
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xf: incr,
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vmap: (0..n2).collect(),
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},
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],
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}
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};
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Rule {
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eval: Rc::new(start),
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ctxt: (),
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}
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}
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// This was a mistake that I'd like to understand later:
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#[derive(Copy, Clone)]
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pub struct WindChimeCtxt {
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@ -491,16 +772,7 @@ pub fn ramhorn_branch(depth: usize, f: f32) -> Rule<RamHornCtxt> {
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let next = incr.transform(&seed);
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let geom = Rc::new(OpenMesh {
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verts: next,
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faces: vec![
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Tag::Body(1), Tag::Parent(0), Tag::Body(0),
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Tag::Parent(1), Tag::Parent(0), Tag::Body(1),
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Tag::Body(2), Tag::Parent(1), Tag::Body(1),
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Tag::Parent(2), Tag::Parent(1), Tag::Body(2),
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Tag::Body(3), Tag::Parent(2), Tag::Body(2),
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Tag::Parent(3), Tag::Parent(2), Tag::Body(3),
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Tag::Body(0), Tag::Parent(3), Tag::Body(3),
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Tag::Parent(0), Tag::Parent(3), Tag::Body(0),
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],
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faces: util::parallel_zigzag_faces(4),
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});
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let final_geom = Rc::new(OpenMesh {
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verts: vec![],
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@ -646,6 +918,175 @@ pub fn ramhorn_branch(depth: usize, f: f32) -> Rule<RamHornCtxt> {
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Rule { eval: Rc::new(start), ctxt: RamHornCtxt { depth } }
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}
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#[derive(Copy, Clone)]
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pub struct RamHornCtxt2 {
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depth: usize,
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}
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pub fn ramhorn_branch_random(depth: usize, f: f32) -> Rule<RamHornCtxt2> {
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let v = Unit::new_normalize(Vector3::new(-1.0, 0.0, 1.0));
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let incr: Transform = Transform::new().
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translate(0.0, 0.0, 0.8 * f).
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rotate(&v, 0.4 * f).
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scale(1.0 - (1.0 - 0.95)*f);
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let seed = vec![
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vertex(-0.5, -0.5, 0.0),
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vertex(-0.5, 0.5, 0.0),
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vertex( 0.5, 0.5, 0.0),
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vertex( 0.5, -0.5, 0.0),
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];
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let next = incr.transform(&seed);
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let geom = Rc::new(OpenMesh {
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verts: next,
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faces: util::parallel_zigzag_faces(4),
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});
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let final_geom = Rc::new(OpenMesh {
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verts: vec![],
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faces: vec![
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Tag::Parent(0), Tag::Parent(2), Tag::Parent(1),
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Tag::Parent(0), Tag::Parent(3), Tag::Parent(2),
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],
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});
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let opening_xform = |i| {
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let r = std::f32::consts::FRAC_PI_2 * i;
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Transform::new().
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rotate(&nalgebra::Vector3::z_axis(), r).
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translate(0.25, 0.25, 0.0).
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scale(0.5)
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};
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// 'transition' geometry (when something splits):
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let trans_verts = vec![
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// 'Top' vertices:
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vertex(-0.5, -0.5, 0.0), // 0 (above 9)
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vertex(-0.5, 0.5, 0.0), // 1 (above 10)
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vertex( 0.5, 0.5, 0.0), // 2 (above 11)
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vertex( 0.5, -0.5, 0.0), // 3 (above 12)
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// Top edge midpoints:
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vertex(-0.5, 0.0, 0.0), // 4 (connects 0-1)
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vertex( 0.0, 0.5, 0.0), // 5 (connects 1-2)
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vertex( 0.5, 0.0, 0.0), // 6 (connects 2-3)
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vertex( 0.0, -0.5, 0.0), // 7 (connects 3-0)
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// Top middle:
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vertex( 0.0, 0.0, 0.0), // 8
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];
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let trans_faces = vec![
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// two faces straddling edge from vertex 0:
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Tag::Parent(0), Tag::Body(0), Tag::Body(4),
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Tag::Parent(0), Tag::Body(7), Tag::Body(0),
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// two faces straddling edge from vertex 1:
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Tag::Parent(1), Tag::Body(1), Tag::Body(5),
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Tag::Parent(1), Tag::Body(4), Tag::Body(1),
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// two faces straddling edge from vertex 2:
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Tag::Parent(2), Tag::Body(2), Tag::Body(6),
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Tag::Parent(2), Tag::Body(5), Tag::Body(2),
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// two faces straddling edge from vertex 3:
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Tag::Parent(3), Tag::Body(3), Tag::Body(7),
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Tag::Parent(3), Tag::Body(6), Tag::Body(3),
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// four faces from edge (0,1), (1,2), (2,3), (3,0):
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Tag::Parent(0), Tag::Body(4), Tag::Parent(1),
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Tag::Parent(1), Tag::Body(5), Tag::Parent(2),
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Tag::Parent(2), Tag::Body(6), Tag::Parent(3),
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Tag::Parent(3), Tag::Body(7), Tag::Parent(0),
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];
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let trans_geom = Rc::new(OpenMesh {
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verts: trans_verts.clone(),
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faces: trans_faces.clone(),
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});
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let trans_children = move |recur: RuleFn<RamHornCtxt2>, ctxt: RamHornCtxt2| {
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vec![
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Child {
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rule: Rc::new(Rule { eval: recur.clone(), ctxt }),
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xf: opening_xform(0.0),
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vmap: vec![5,2,6,8],
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},
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Child {
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rule: Rc::new(Rule { eval: recur.clone(), ctxt }),
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xf: opening_xform(1.0),
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vmap: vec![4,1,5,8],
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},
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Child {
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rule: Rc::new(Rule { eval: recur.clone(), ctxt }),
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xf: opening_xform(2.0),
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vmap: vec![7,0,4,8],
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},
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Child {
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rule: Rc::new(Rule { eval: recur.clone(), ctxt }),
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xf: opening_xform(3.0),
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vmap: vec![6,3,7,8],
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},
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// TODO: These vertex mappings appear to be right.
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// Explain *why* they are right.
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// TODO: Factor out the repetition here.
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]
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};
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let tg = trans_geom.clone();
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// TODO: Why is that necessary?
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let recur = move |self_: Rc<Rule<RamHornCtxt2>>| -> RuleEval<RamHornCtxt2> {
|
||||
if self_.ctxt.depth <= 0 {
|
||||
let d2 = rand::thread_rng().gen_range(2, 60);
|
||||
RuleEval {
|
||||
geom: tg.clone(),
|
||||
final_geom: final_geom.clone(),
|
||||
// This final_geom will leave midpoint/centroid
|
||||
// vertices, but stopping here means none are
|
||||
// connected anyway - so they can just be ignored.
|
||||
children: trans_children(self_.eval.clone(), RamHornCtxt2 { depth: d2 }),
|
||||
}
|
||||
} else {
|
||||
let next_rule = Rule {
|
||||
eval: self_.eval.clone(),
|
||||
ctxt: RamHornCtxt2 { depth: self_.ctxt.depth - 1 },
|
||||
};
|
||||
RuleEval {
|
||||
geom: geom.clone(),
|
||||
final_geom: final_geom.clone(),
|
||||
children: vec![
|
||||
Child {
|
||||
rule: Rc::new(next_rule),
|
||||
xf: incr,
|
||||
vmap: vec![0,1,2,3],
|
||||
},
|
||||
],
|
||||
}
|
||||
}
|
||||
};
|
||||
|
||||
let trans = move |self_: Rc<Rule<RamHornCtxt2>>| -> RuleEval<RamHornCtxt2> {
|
||||
RuleEval {
|
||||
geom: trans_geom.clone(),
|
||||
final_geom: Rc::new(prim::empty_mesh()),
|
||||
children: trans_children(Rc::new(recur.clone()), self_.ctxt),
|
||||
}
|
||||
};
|
||||
|
||||
let start = move |self_: Rc<Rule<RamHornCtxt2>>| -> RuleEval<RamHornCtxt2> {
|
||||
RuleEval {
|
||||
geom: Rc::new(OpenMesh {
|
||||
verts: Transform::new().translate(0.0, 0.0, -0.5).transform(&seed),
|
||||
faces: vec![
|
||||
Tag::Body(0), Tag::Body(1), Tag::Body(2),
|
||||
Tag::Body(0), Tag::Body(2), Tag::Body(3),
|
||||
],
|
||||
}),
|
||||
final_geom: Rc::new(prim::empty_mesh()),
|
||||
children: vec![
|
||||
Child {
|
||||
rule: Rc::new(Rule { eval: Rc::new(trans.clone()), ctxt: self_.ctxt }),
|
||||
xf: Transform::new(),
|
||||
vmap: vec![0,1,2,3],
|
||||
},
|
||||
],
|
||||
}
|
||||
};
|
||||
|
||||
Rule { eval: Rc::new(start), ctxt: RamHornCtxt2 { depth } }
|
||||
}
|
||||
|
||||
/*
|
||||
#[derive(Copy, Clone)]
|
||||
struct CurveHorn {
|
||||
|
||||
21
src/lib.rs
21
src/lib.rs
@ -70,6 +70,9 @@ mod tests {
|
||||
run_test(examples::cube_thing(), 3, "cube_thing3", false);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn barbs() { run_test(examples::barbs(), 20, "barbs", false); }
|
||||
|
||||
#[test]
|
||||
fn twist() {
|
||||
run_test(examples::twist(1.0, 2), 200, "screw", false);
|
||||
@ -81,14 +84,27 @@ mod tests {
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn twisty_torus_hardcode() {
|
||||
run_test(examples::twisty_torus_hardcode(), 1000, "twisty_torus_hardcode", false);
|
||||
}
|
||||
|
||||
#[test]
|
||||
#[ignore]
|
||||
fn twisty_torus_full() {
|
||||
run_test(examples::twisty_torus(), 40000, "twisty_torus_full", false);
|
||||
}
|
||||
|
||||
#[test]
|
||||
#[ignore]
|
||||
fn wind_chime_mistake_thing() {
|
||||
run_test(examples::wind_chime_mistake_thing(), 400, "wind_chime_mistake_thing", false);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn nest_spiral_2() {
|
||||
run_test(examples::nest_spiral_2(), 200, "nest_spiral_2", false);
|
||||
}
|
||||
|
||||
// This one is very time-consuming to run:
|
||||
#[test]
|
||||
#[ignore]
|
||||
@ -106,6 +122,11 @@ mod tests {
|
||||
fn ramhorn_branch() {
|
||||
run_test(examples::ramhorn_branch(24, 0.25), 32, "ram_horn_branch", false);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn ramhorn_branch_random() {
|
||||
run_test(examples::ramhorn_branch_random(24, 0.25), 32, "ram_horn_branch_random", false);
|
||||
}
|
||||
}
|
||||
// need this for now:
|
||||
// cargo test -- --nocapture
|
||||
|
||||
Loading…
x
Reference in New Issue
Block a user