1use nalgebra::{Vector3, Vector6};
10use std::collections::HashMap;
11
12use crate::derivatives::compute_derivatives;
13use crate::wind::WindSegment;
14use crate::BallisticInputs;
15use crate::DragModel;
16
17fn rk4_step(
19 state: &Vector6<f64>,
20 t: f64,
21 dt: f64,
22 params: &TrajectoryParams,
23 inputs: &BallisticInputs,
24) -> Vector6<f64> {
25 let k1 = compute_derivatives_vec(state, t, params, inputs);
27 let k2 = compute_derivatives_vec(&(state + dt * 0.5 * k1), t + dt * 0.5, params, inputs);
28 let k3 = compute_derivatives_vec(&(state + dt * 0.5 * k2), t + dt * 0.5, params, inputs);
29 let k4 = compute_derivatives_vec(&(state + dt * k3), t + dt, params, inputs);
30
31 state + (dt / 6.0) * (k1 + 2.0 * k2 + 2.0 * k3 + k4)
32}
33
34fn rk45_step(
36 state: &Vector6<f64>,
37 t: f64,
38 dt: f64,
39 params: &TrajectoryParams,
40 inputs: &BallisticInputs,
41 tol: f64,
42) -> (Vector6<f64>, f64, f64) {
43 const A21: f64 = 1.0 / 5.0;
45 const A31: f64 = 3.0 / 40.0;
46 const A32: f64 = 9.0 / 40.0;
47 const A41: f64 = 44.0 / 45.0;
48 const A42: f64 = -56.0 / 15.0;
49 const A43: f64 = 32.0 / 9.0;
50 const A51: f64 = 19372.0 / 6561.0;
51 const A52: f64 = -25360.0 / 2187.0;
52 const A53: f64 = 64448.0 / 6561.0;
53 const A54: f64 = -212.0 / 729.0;
54 const A61: f64 = 9017.0 / 3168.0;
55 const A62: f64 = -355.0 / 33.0;
56 const A63: f64 = 46732.0 / 5247.0;
57 const A64: f64 = 49.0 / 176.0;
58 const A65: f64 = -5103.0 / 18656.0;
59 const A71: f64 = 35.0 / 384.0;
60 const A73: f64 = 500.0 / 1113.0;
61 const A74: f64 = 125.0 / 192.0;
62 const A75: f64 = -2187.0 / 6784.0;
63 const A76: f64 = 11.0 / 84.0;
64
65 const B1: f64 = 35.0 / 384.0;
67 const B3: f64 = 500.0 / 1113.0;
68 const B4: f64 = 125.0 / 192.0;
69 const B5: f64 = -2187.0 / 6784.0;
70 const B6: f64 = 11.0 / 84.0;
71
72 const B1_ERR: f64 = 5179.0 / 57600.0;
74 const B3_ERR: f64 = 7571.0 / 16695.0;
75 const B4_ERR: f64 = 393.0 / 640.0;
76 const B5_ERR: f64 = -92097.0 / 339200.0;
77 const B6_ERR: f64 = 187.0 / 2100.0;
78 const B7_ERR: f64 = 1.0 / 40.0;
79
80 let k1 = compute_derivatives_vec(state, t, params, inputs);
82 let k2 = compute_derivatives_vec(&(state + dt * A21 * k1), t + dt * 0.2, params, inputs);
83 let k3 =
84 compute_derivatives_vec(&(state + dt * (A31 * k1 + A32 * k2)), t + dt * 0.3, params, inputs);
85 let k4 = compute_derivatives_vec(
86 &(state + dt * (A41 * k1 + A42 * k2 + A43 * k3)),
87 t + dt * 0.8,
88 params,
89 inputs,
90 );
91 let k5 = compute_derivatives_vec(
92 &(state + dt * (A51 * k1 + A52 * k2 + A53 * k3 + A54 * k4)),
93 t + dt * 8.0 / 9.0,
94 params,
95 inputs,
96 );
97 let k6 = compute_derivatives_vec(
98 &(state + dt * (A61 * k1 + A62 * k2 + A63 * k3 + A64 * k4 + A65 * k5)),
99 t + dt,
100 params,
101 inputs,
102 );
103 let k7 = compute_derivatives_vec(
104 &(state + dt * (A71 * k1 + A73 * k3 + A74 * k4 + A75 * k5 + A76 * k6)),
105 t + dt,
106 params,
107 inputs,
108 );
109
110 let y_new = state + dt * (B1 * k1 + B3 * k3 + B4 * k4 + B5 * k5 + B6 * k6);
112
113 let y_err = state
115 + dt * (B1_ERR * k1 + B3_ERR * k3 + B4_ERR * k4 + B5_ERR * k5 + B6_ERR * k6 + B7_ERR * k7);
116
117 let error = (y_new - y_err).norm() / (1.0 + state.norm());
119
120 let safety = 0.9;
122 let dt_new = if error < tol {
123 dt * safety * (tol / error).powf(0.2).min(2.0)
124 } else {
125 dt * safety * (tol / error).powf(0.25).max(0.1)
126 };
127
128 (y_new, dt_new, error)
129}
130
131pub struct TrajectoryParams {
133 pub mass_kg: f64,
134 pub bc: f64,
135 pub drag_model: DragModel,
136 pub wind_segments: Vec<WindSegment>,
137 pub atmos_params: (f64, f64, f64, f64),
138 pub omega_vector: Option<Vector3<f64>>,
139 pub enable_spin_drift: bool,
140 pub enable_magnus: bool,
141 pub enable_coriolis: bool,
142 pub target_distance_m: f64, pub enable_wind_shear: bool,
144 pub wind_shear_model: String,
145 pub shooter_altitude_m: f64,
146 pub is_twist_right: bool, pub custom_drag_table: Option<crate::drag::DragTable>, pub bc_segments: Option<Vec<(f64, f64)>>, pub use_bc_segments: bool, pub ground_threshold: f64,
153}
154
155fn build_inputs(params: &TrajectoryParams) -> BallisticInputs {
161 let mut inputs = BallisticInputs {
162 bc_value: params.bc,
163 bc_type: params.drag_model,
164 bullet_mass: params.mass_kg, muzzle_velocity: 0.0, bullet_diameter: 0.0078232, bullet_length: 0.031496, twist_rate: 10.0, is_twist_right: params.is_twist_right,
170 enable_advanced_effects: params.enable_spin_drift
171 || params.enable_magnus
172 || params.enable_coriolis,
173 enable_magnus: params.enable_magnus,
174 enable_coriolis: params.enable_coriolis,
175 altitude: params.atmos_params.0,
176 temperature: params.atmos_params.1,
177 pressure: params.atmos_params.2,
178 humidity: params.atmos_params.3,
179 tipoff_yaw: 0.0,
180 target_distance: 1000.0, muzzle_angle: 0.0,
182 wind_speed: if !params.wind_segments.is_empty() {
183 params.wind_segments[0].0 * 0.2777778 } else {
185 0.0
186 },
187 wind_angle: if !params.wind_segments.is_empty() {
188 params.wind_segments[0].1.to_radians() } else {
190 0.0
191 },
192 latitude: None,
193 shooting_angle: 0.0,
194 azimuth_angle: 0.0,
195 shot_azimuth: 0.0, use_powder_sensitivity: false,
197 powder_temp_sensitivity: 0.0,
198 powder_temp: 59.0,
199 tipoff_decay_distance: 0.0,
200 ground_threshold: params.ground_threshold, bc_segments: params.bc_segments.clone(),
202 caliber_inches: 0.308,
203 weight_grains: params.mass_kg / 0.00006479891,
204 use_bc_segments: params.use_bc_segments,
205 bullet_id: None,
206 bc_segments_data: None,
207 use_enhanced_spin_drift: params.enable_spin_drift,
208 use_form_factor: false,
209 manufacturer: None,
210 bullet_model: None,
211 enable_wind_shear: false,
212 wind_shear_model: "none".to_string(),
213 use_cluster_bc: false,
214 bullet_cluster: None,
215 custom_drag_table: params.custom_drag_table.clone(),
216 bc_type_str: None,
217 enable_pitch_damping: false,
218 enable_precession_nutation: false,
219 enable_aerodynamic_jump: false,
226 use_rk4: true,
227 use_adaptive_rk45: false,
228 enable_trajectory_sampling: false,
229 sample_interval: 10.0,
230 sight_height: 0.0,
231 muzzle_height: 0.0,
232 target_height: 0.0,
233 };
234
235 if inputs.use_bc_segments && inputs.bc_segments_data.is_none() && inputs.bc_segments.is_none() {
242 inputs.bc_segments_data =
243 crate::derivatives::estimate_bc_segments_for(&inputs, inputs.bc_value);
244 }
245 inputs
246}
247
248fn compute_derivatives_vec(
250 state: &Vector6<f64>,
251 t: f64,
252 params: &TrajectoryParams,
253 inputs: &BallisticInputs,
254) -> Vector6<f64> {
255 let pos = Vector3::new(state[0], state[1], state[2]);
256 let vel = Vector3::new(state[3], state[4], state[5]);
257
258 let wind_vector = if !params.wind_segments.is_empty() {
260 if params.enable_wind_shear && params.wind_shear_model != "none" {
261 crate::wind_shear::get_wind_at_position(
262 &pos,
263 ¶ms.wind_segments,
264 params.enable_wind_shear,
265 ¶ms.wind_shear_model,
266 params.shooter_altitude_m,
267 )
268 } else {
269 let seg = ¶ms.wind_segments[0];
271 let wind_speed_mps = seg.0 * 0.2777778; let wind_angle_rad = seg.1.to_radians();
273 Vector3::new(
275 -wind_speed_mps * wind_angle_rad.cos(), 0.0, -wind_speed_mps * wind_angle_rad.sin(), )
279 }
280 } else {
281 Vector3::zeros()
282 };
283
284 let deriv_result = compute_derivatives(
287 pos,
288 vel,
289 inputs,
290 wind_vector,
291 params.atmos_params,
292 params.bc,
293 params.omega_vector,
294 t,
295 );
296
297 Vector6::new(
298 deriv_result[0],
299 deriv_result[1],
300 deriv_result[2],
301 deriv_result[3],
302 deriv_result[4],
303 deriv_result[5],
304 )
305}
306
307pub fn integrate_trajectory(
309 initial_state: [f64; 6],
310 t_span: (f64, f64),
311 params: TrajectoryParams,
312 method: &str,
313 tolerance: f64,
314 max_step: f64,
315) -> Vec<(f64, Vector6<f64>)> {
316 let mut state = Vector6::new(
317 initial_state[0],
318 initial_state[1],
319 initial_state[2],
320 initial_state[3],
321 initial_state[4],
322 initial_state[5],
323 );
324
325 let mut t = t_span.0;
326 let t_end = t_span.1;
327 let mut dt = (t_end - t) / 1000.0; let mut trajectory = Vec::with_capacity(10000);
330 trajectory.push((t, state));
331
332 let inputs = build_inputs(¶ms);
335
336 match method {
337 "RK4" => {
338 dt = dt.min(max_step).min(0.001); while t < t_end {
342 if t + dt > t_end {
343 dt = t_end - t;
344 }
345
346 let new_state = rk4_step(&state, t, dt, ¶ms, &inputs);
347
348 if state[0] < params.target_distance_m && new_state[0] >= params.target_distance_m {
350 let alpha = (params.target_distance_m - state[0]) / (new_state[0] - state[0]);
352 let dt_to_target = dt * alpha;
353
354 let final_state = rk4_step(&state, t, dt_to_target, ¶ms, &inputs);
356
357 let mut corrected_state = final_state;
359 if corrected_state[0] > params.target_distance_m {
360 corrected_state[0] = params.target_distance_m;
361 }
362
363 trajectory.push((t + dt_to_target, corrected_state));
364 break; }
366
367 state = new_state;
368 t += dt;
369 trajectory.push((t, state));
370
371 if state[0] >= params.target_distance_m {
373 let mut final_state = state;
376 final_state[0] = params.target_distance_m; trajectory.push((t, final_state));
378 break;
379 }
380
381 if state[1] < params.ground_threshold {
384 break;
385 }
386 }
387 }
388 "RK45" | _ => {
389 let mut last_save_x = 0.0; let save_interval_m = params.target_distance_m / 50.0; let effective_max_step =
396 if params.enable_wind_shear && params.wind_shear_model != "none" {
397 if params.target_distance_m > 800.0 {
399 0.01 } else {
401 0.02 }
403 } else {
404 max_step };
406
407 dt = dt.min(effective_max_step).max(0.0001); let max_iterations = 100000; let mut iteration_count = 0;
413
414 while t < t_end && iteration_count < max_iterations {
415 iteration_count += 1;
416
417 if t + dt > t_end {
419 dt = t_end - t;
420 }
421
422 let (new_state, dt_new, _error) =
423 rk45_step(&state, t, dt, ¶ms, &inputs, tolerance);
424
425 if state[0] < params.target_distance_m && new_state[0] >= params.target_distance_m {
427 let alpha = (params.target_distance_m - state[0]) / (new_state[0] - state[0]);
429 let dt_to_target = dt * alpha;
430
431 let (final_state, _, _) =
433 rk45_step(&state, t, dt_to_target, ¶ms, &inputs, tolerance);
434
435 let mut corrected_state = final_state;
437 if corrected_state[0] > params.target_distance_m {
438 corrected_state[0] = params.target_distance_m;
439 }
440
441 trajectory.push((t + dt_to_target, corrected_state));
442 break; }
444
445 state = new_state;
447 t += dt;
448
449 if state[0] - last_save_x >= save_interval_m || state[0] >= params.target_distance_m
451 {
452 trajectory.push((t, state));
454 last_save_x = state[0];
455 }
456
457 dt = dt_new.min(effective_max_step).max(0.0001); if state[0] >= params.target_distance_m {
462 let mut final_state = state;
465 final_state[0] = params.target_distance_m; trajectory.push((t, final_state));
467 break;
468 }
469
470 if state[1] < params.ground_threshold {
473 break;
474 }
475 }
476
477 if iteration_count >= max_iterations {
479 eprintln!(
480 "WARNING: Trajectory integration hit maximum iteration limit ({} iterations)",
481 max_iterations
482 );
483 eprintln!(" Final time: {}, Target time: {}", t, t_end);
484 eprintln!(
485 " Final position: downrange(x)={}, Target: {}m",
486 state[0], params.target_distance_m
487 );
488 }
489 }
490 }
491
492 trajectory
493}
494
495pub fn solve_trajectory_rust(
497 initial_state: [f64; 6],
498 t_span: (f64, f64),
499 mass_kg: f64,
500 bc: f64,
501 drag_model: DragModel,
502 wind_segments: Vec<WindSegment>,
503 atmos_params: (f64, f64, f64, f64),
504 omega_vector: Option<Vec<f64>>,
505 enable_spin_drift: bool,
506 enable_magnus: bool,
507 enable_coriolis: bool,
508 method: String,
509 tolerance: f64,
510 max_step: f64,
511 target_distance_m: f64,
512) -> Vec<HashMap<String, f64>> {
513 let omega_vec = omega_vector.map(|v| Vector3::new(v[0], v[1], v[2]));
514
515 let params = TrajectoryParams {
516 mass_kg,
517 bc,
518 drag_model,
519 wind_segments,
520 atmos_params,
521 omega_vector: omega_vec,
522 enable_spin_drift,
523 enable_magnus,
524 enable_coriolis,
525 target_distance_m,
526 enable_wind_shear: false, wind_shear_model: "none".to_string(),
528 shooter_altitude_m: 0.0,
529 is_twist_right: true, custom_drag_table: None, bc_segments: None, use_bc_segments: false,
533 ground_threshold: -1000.0, };
535
536 let trajectory =
537 integrate_trajectory(initial_state, t_span, params, &method, tolerance, max_step);
538
539 trajectory
541 .into_iter()
542 .map(|(t, state)| {
543 let mut point = HashMap::new();
544 point.insert("t".to_string(), t);
545 point.insert("x".to_string(), state[0]);
546 point.insert("y".to_string(), state[1]);
547 point.insert("z".to_string(), state[2]);
548 point.insert("vx".to_string(), state[3]);
549 point.insert("vy".to_string(), state[4]);
550 point.insert("vz".to_string(), state[5]);
551 point
552 })
553 .collect()
554}
555
556#[cfg(test)]
557mod tests {
558 use super::*;
559
560 fn create_test_params(target_distance_m: f64) -> TrajectoryParams {
561 TrajectoryParams {
562 mass_kg: 0.01134, bc: 0.442,
564 drag_model: DragModel::G7,
565 wind_segments: vec![],
566 atmos_params: (0.0, 59.0, 29.92, 0.0),
567 omega_vector: None,
568 enable_spin_drift: false,
569 enable_magnus: false,
570 enable_coriolis: false,
571 target_distance_m,
572 enable_wind_shear: false,
573 wind_shear_model: "none".to_string(),
574 shooter_altitude_m: 0.0,
575 is_twist_right: true,
576 custom_drag_table: None,
577 bc_segments: None,
578 use_bc_segments: false,
579 ground_threshold: -1000.0,
580 }
581 }
582
583 #[test]
584 fn test_mba954_ground_threshold_honored() {
585 let initial_state = [0.0, 0.0, 0.0, 300.0, -30.0, 0.0]; let mut shallow = create_test_params(1_000_000.0); shallow.ground_threshold = -20.0; let mut deep = create_test_params(1_000_000.0);
593 deep.ground_threshold = -1000.0; let t_shallow =
596 integrate_trajectory(initial_state, (0.0, 60.0), shallow, "RK4", 1e-6, 0.001);
597 let t_deep = integrate_trajectory(initial_state, (0.0, 60.0), deep, "RK4", 1e-6, 0.001);
598
599 assert!(
600 t_shallow.len() < t_deep.len(),
601 "shallow ground_threshold (-20) should terminate earlier than deep (-1000): \
602 shallow={}, deep={}",
603 t_shallow.len(),
604 t_deep.len()
605 );
606 }
607
608 #[test]
609 fn test_integrate_trajectory_basic() {
610 let initial_state = [0.0, -0.038, 0.0, 821.52, 48.61, 0.0];
613
614 let params = TrajectoryParams {
615 mass_kg: 0.01134, bc: 0.442,
617 drag_model: DragModel::G7,
618 wind_segments: vec![(0.0, 90.0, 914.4)],
619 atmos_params: (0.0, 59.0, 29.92, 0.0),
620 omega_vector: None,
621 enable_spin_drift: false,
622 enable_magnus: false,
623 enable_coriolis: false,
624 target_distance_m: 914.4, enable_wind_shear: false,
626 wind_shear_model: "none".to_string(),
627 shooter_altitude_m: 0.0,
628 is_twist_right: true,
629 custom_drag_table: None,
630 bc_segments: None,
631 use_bc_segments: false,
632 ground_threshold: -1000.0,
633 };
634
635 println!("Running integrate_trajectory test...");
636 println!("Initial state: {:?}", initial_state);
637 println!("Target distance: {} m", params.target_distance_m);
638
639 let trajectory =
640 integrate_trajectory(initial_state, (0.0, 10.0), params, "RK45", 1e-6, 0.01);
641
642 println!("Trajectory has {} points", trajectory.len());
643
644 assert!(
646 trajectory.len() > 1,
647 "Trajectory should have more than 1 point, but has {}",
648 trajectory.len()
649 );
650
651 if let Some((_, final_state)) = trajectory.last() {
653 println!("Final state: downrange(x)={}", final_state[0]);
654 assert!(
655 final_state[0] > 0.0,
656 "Final x should be positive (bullet moved downrange)"
657 );
658 assert!(
659 final_state[0] >= 900.0,
660 "Final x should be near target distance"
661 );
662 }
663 }
664
665 #[test]
666 fn test_rk4_vs_rk45_consistency() {
667 let initial_state = [0.0, 0.0, 0.0, 800.0, 30.0, 0.0]; let target_distance = 500.0;
670
671 let params_rk4 = create_test_params(target_distance);
672 let params_rk45 = create_test_params(target_distance);
673
674 let trajectory_rk4 =
675 integrate_trajectory(initial_state, (0.0, 5.0), params_rk4, "RK4", 1e-6, 0.001);
676 let trajectory_rk45 =
677 integrate_trajectory(initial_state, (0.0, 5.0), params_rk45, "RK45", 1e-6, 0.01);
678
679 assert!(!trajectory_rk4.is_empty());
681 assert!(!trajectory_rk45.is_empty());
682
683 let (_, final_rk4) = trajectory_rk4.last().unwrap();
684 let (_, final_rk45) = trajectory_rk45.last().unwrap();
685
686 let rk4_z = final_rk4[0];
688 let rk45_z = final_rk45[0];
689 let diff_percent = ((rk4_z - rk45_z) / rk45_z).abs() * 100.0;
690
691 assert!(
692 diff_percent < 1.0,
693 "RK4 and RK45 final positions differ by {}%: RK4={}, RK45={}",
694 diff_percent,
695 rk4_z,
696 rk45_z
697 );
698 }
699
700 #[test]
701 fn test_ground_impact_detection() {
702 let initial_state = [0.0, 100.0, 0.0, 300.0, -50.0, 0.0]; let mut params = create_test_params(10000.0); params.target_distance_m = 10000.0;
707
708 let trajectory =
709 integrate_trajectory(initial_state, (0.0, 20.0), params, "RK45", 1e-6, 0.01);
710
711 let (_, final_state) = trajectory.last().unwrap();
713
714 assert!(
716 final_state[1] <= -900.0,
717 "Should hit ground, but y={}",
718 final_state[1]
719 );
720 assert!(
721 final_state[0] < 10000.0,
722 "Should not reach target, but z={}",
723 final_state[0]
724 );
725 }
726
727 #[test]
728 fn test_target_distance_reached() {
729 let initial_state = [0.0, 0.0, 0.0, 800.0, 20.0, 0.0]; let target_distance = 300.0;
731
732 let params = create_test_params(target_distance);
733
734 let trajectory =
735 integrate_trajectory(initial_state, (0.0, 5.0), params, "RK45", 1e-6, 0.01);
736
737 let (_, final_state) = trajectory.last().unwrap();
738
739 assert!(
741 (final_state[0] - target_distance).abs() < 1.0,
742 "Should reach target at {}m, but stopped at {}m",
743 target_distance,
744 final_state[0]
745 );
746 }
747
748 #[test]
749 fn test_wind_affects_trajectory() {
750 let initial_state = [0.0, 0.0, 0.0, 800.0, 30.0, 0.0]; let target_distance = 500.0;
755
756 let params_no_wind = create_test_params(target_distance);
758
759 let mut params_headwind = create_test_params(target_distance);
761 params_headwind.wind_segments = vec![(72.0, 0.0, 500.0)]; let trajectory_no_wind =
764 integrate_trajectory(initial_state, (0.0, 5.0), params_no_wind, "RK45", 1e-6, 0.01);
765 let trajectory_headwind =
766 integrate_trajectory(initial_state, (0.0, 5.0), params_headwind, "RK45", 1e-6, 0.01);
767
768 assert!(!trajectory_no_wind.is_empty(), "No-wind trajectory should complete");
770 assert!(!trajectory_headwind.is_empty(), "Headwind trajectory should complete");
771
772 let (time_no_wind, final_no_wind) = trajectory_no_wind.last().unwrap();
773 let (time_headwind, final_headwind) = trajectory_headwind.last().unwrap();
774
775 let drop_no_wind = final_no_wind[1];
778 let drop_headwind = final_headwind[1];
779
780 println!("No wind: time={}, drop={}", time_no_wind, drop_no_wind);
783 println!("Headwind: time={}, drop={}", time_headwind, drop_headwind);
784
785 assert!(
787 (final_no_wind[0] - target_distance).abs() < 10.0,
788 "No-wind should reach target"
789 );
790 assert!(
791 (final_headwind[0] - target_distance).abs() < 10.0,
792 "Headwind should reach target"
793 );
794 }
795
796 #[test]
797 fn test_solve_trajectory_rust_output_format() {
798 let initial_state = [0.0, 0.0, 0.0, 800.0, 30.0, 0.0]; let result = solve_trajectory_rust(
801 initial_state,
802 (0.0, 2.0),
803 0.01134, 0.442, DragModel::G7, vec![], (0.0, 59.0, 29.92, 0.0), None, false, false, false, "RK45".to_string(), 1e-6, 0.01, 500.0, );
817
818 assert!(!result.is_empty());
820
821 let first_point = &result[0];
822 assert!(first_point.contains_key("t"));
823 assert!(first_point.contains_key("x"));
824 assert!(first_point.contains_key("y"));
825 assert!(first_point.contains_key("z"));
826 assert!(first_point.contains_key("vx"));
827 assert!(first_point.contains_key("vy"));
828 assert!(first_point.contains_key("vz"));
829 }
830
831 #[test]
832 fn test_left_vs_right_twist() {
833 let initial_state = [0.0, 0.0, 0.0, 800.0, 30.0, 0.0]; let target_distance = 500.0;
835
836 let mut params_right = create_test_params(target_distance);
837 params_right.is_twist_right = true;
838 params_right.enable_spin_drift = true;
839
840 let mut params_left = create_test_params(target_distance);
841 params_left.is_twist_right = false;
842 params_left.enable_spin_drift = true;
843
844 let trajectory_right =
845 integrate_trajectory(initial_state, (0.0, 5.0), params_right, "RK45", 1e-6, 0.01);
846 let trajectory_left =
847 integrate_trajectory(initial_state, (0.0, 5.0), params_left, "RK45", 1e-6, 0.01);
848
849 assert!(!trajectory_right.is_empty());
851 assert!(!trajectory_left.is_empty());
852
853 let (_, final_right) = trajectory_right.last().unwrap();
855 let (_, final_left) = trajectory_left.last().unwrap();
856
857 assert!((final_right[2] - final_left[2]).abs() < 10.0);
859 }
860}