1use std::collections::{BTreeMap, BTreeSet};
11use std::f64::consts::PI;
12
13use num_complex::Complex64;
14use serde::{Deserialize, Serialize};
15
16use powerio::{
17 BalancedNetwork, Branch, BranchCharging, Bus, BusId, BusType, Extras as BalancedExtras,
18 Generator, Load, Network, Shunt, SourceFormat,
19};
20use powerio_dist::{
21 DistBus, DistLine, DistLineCode, DistLoadVoltageModel, Mat, MulticonductorNetwork,
22};
23
24use crate::diagnostics::{DiagnosticSeverity, DiagnosticStage, StructuredDiagnostic};
25use crate::model::ModelKind;
26use crate::validation::ValidationStatus;
27
28#[derive(Clone, Debug, PartialEq, Serialize, Deserialize)]
30#[cfg_attr(feature = "schema", derive(schemars::JsonSchema))]
31pub struct LoweringRecord {
32 pub pass: String,
34 pub input_kind: ModelKind,
35 pub output_kind: ModelKind,
36 #[serde(default, skip_serializing_if = "serde_json::Map::is_empty")]
37 pub options: serde_json::Map<String, serde_json::Value>,
38 #[serde(default, skip_serializing_if = "Vec::is_empty")]
40 pub assumptions: Vec<String>,
41 #[serde(default, skip_serializing_if = "Vec::is_empty")]
43 pub approximations: Vec<String>,
44 #[serde(default, skip_serializing_if = "Vec::is_empty")]
46 pub dropped_fields: Vec<String>,
47 #[serde(default, skip_serializing_if = "Vec::is_empty")]
48 pub diagnostics: Vec<StructuredDiagnostic>,
49 pub validation_status: ValidationStatus,
50}
51
52impl LoweringRecord {
53 pub fn new(pass: impl Into<String>, input_kind: ModelKind, output_kind: ModelKind) -> Self {
54 Self {
55 pass: pass.into(),
56 input_kind,
57 output_kind,
58 options: serde_json::Map::new(),
59 assumptions: Vec::new(),
60 approximations: Vec::new(),
61 dropped_fields: Vec::new(),
62 diagnostics: Vec::new(),
63 validation_status: ValidationStatus::Ok,
64 }
65 }
66}
67
68#[derive(Clone, Copy, Debug, PartialEq, Eq, Serialize, Deserialize)]
70#[cfg_attr(feature = "schema", derive(schemars::JsonSchema))]
71#[serde(rename_all = "snake_case")]
72pub enum SequenceTransformConvention {
73 FortescuePowerInvariant,
74}
75
76impl std::fmt::Display for SequenceTransformConvention {
77 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
78 match self {
79 Self::FortescuePowerInvariant => f.write_str("FortescuePowerInvariant"),
80 }
81 }
82}
83
84const DEFAULT_LOWERING_BASE_MVA: f64 = 100.0;
85const SQRT_3: f64 = 1.732_050_807_568_877_2;
86const COUPLING_TOLERANCE: f64 = 1.0e-9;
87
88fn default_lowering_base_mva() -> f64 {
89 DEFAULT_LOWERING_BASE_MVA
90}
91
92#[derive(Clone, Copy, Debug, PartialEq, Serialize, Deserialize)]
94#[cfg_attr(feature = "schema", derive(schemars::JsonSchema))]
95pub struct MulticonductorToBalancedOptions {
96 pub convention: SequenceTransformConvention,
97 #[serde(default = "default_lowering_base_mva")]
99 pub base_mva: f64,
100}
101
102impl Default for MulticonductorToBalancedOptions {
103 fn default() -> Self {
104 Self {
105 convention: SequenceTransformConvention::FortescuePowerInvariant,
106 base_mva: DEFAULT_LOWERING_BASE_MVA,
107 }
108 }
109}
110
111#[derive(Clone, Debug, PartialEq, Serialize, Deserialize)]
113#[cfg_attr(feature = "schema", derive(schemars::JsonSchema))]
114pub struct MulticonductorToBalancedReadiness {
115 pub convention: SequenceTransformConvention,
116 pub base_mva: f64,
117 pub status: ValidationStatus,
118 #[serde(default, skip_serializing_if = "Vec::is_empty")]
119 pub assumptions: Vec<String>,
120 #[serde(default, skip_serializing_if = "Vec::is_empty")]
121 pub approximations: Vec<String>,
122 #[serde(default, skip_serializing_if = "Vec::is_empty")]
123 pub diagnostics: Vec<StructuredDiagnostic>,
124}
125
126impl MulticonductorToBalancedReadiness {
127 #[must_use]
128 pub fn is_ready(&self) -> bool {
129 self.status <= ValidationStatus::Info
130 }
131}
132
133#[derive(Clone, Debug, Serialize, Deserialize)]
135#[cfg_attr(feature = "schema", derive(schemars::JsonSchema))]
136pub struct MulticonductorToBalancedLowering {
137 pub network: BalancedNetwork,
138 pub record: LoweringRecord,
139}
140
141#[derive(Clone, Debug, PartialEq, Serialize, Deserialize)]
143#[cfg_attr(feature = "schema", derive(schemars::JsonSchema))]
144pub struct MulticonductorToBalancedError {
145 pub options: MulticonductorToBalancedOptions,
146 pub status: ValidationStatus,
147 #[serde(default, skip_serializing_if = "Vec::is_empty")]
148 pub diagnostics: Vec<StructuredDiagnostic>,
149}
150
151impl MulticonductorToBalancedError {
152 pub fn new(
153 options: MulticonductorToBalancedOptions,
154 diagnostics: Vec<StructuredDiagnostic>,
155 ) -> Self {
156 Self {
157 options,
158 status: status_from_diagnostics(&diagnostics),
159 diagnostics,
160 }
161 }
162}
163
164impl std::fmt::Display for MulticonductorToBalancedError {
165 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
166 match self.diagnostics.first() {
167 Some(diagnostic) => write!(f, "{}", diagnostic.message),
168 None => f.write_str("multiconductor to balanced lowering failed"),
169 }
170 }
171}
172
173impl std::error::Error for MulticonductorToBalancedError {}
174
175#[must_use]
181pub fn check_multiconductor_to_balanced_lowering(
182 net: &MulticonductorNetwork,
183 options: MulticonductorToBalancedOptions,
184) -> MulticonductorToBalancedReadiness {
185 let mut report = MulticonductorToBalancedReadiness {
186 convention: options.convention,
187 base_mva: options.base_mva,
188 status: ValidationStatus::Ok,
189 assumptions: vec![format!(
190 "sequence transform convention: {}",
191 options.convention
192 )],
193 approximations: Vec::new(),
194 diagnostics: Vec::new(),
195 };
196
197 check_options(options, &mut report);
198 check_bus_conductor_sets(net, &mut report);
199 check_phase_reference(net, &mut report);
200 check_line_terminal_maps(net, &mut report);
201 check_linecodes(net, &mut report);
202 check_switches(net, &mut report);
203 check_transformers(net, &mut report);
204 check_untyped_objects(net, &mut report);
205
206 report.status = status_from_diagnostics(&report.diagnostics);
207 report
208}
209
210pub fn lower_multiconductor_to_balanced(
216 net: &MulticonductorNetwork,
217 options: MulticonductorToBalancedOptions,
218) -> Result<MulticonductorToBalancedLowering, MulticonductorToBalancedError> {
219 let readiness = check_multiconductor_to_balanced_lowering(net, options);
220 if !readiness.is_ready() {
221 return Err(MulticonductorToBalancedError::new(
222 options,
223 readiness.diagnostics,
224 ));
225 }
226
227 let mut state = LoweringState::new(net, options, readiness);
228 state.lower()
229}
230
231struct LoweringState<'a> {
232 net: &'a MulticonductorNetwork,
233 options: MulticonductorToBalancedOptions,
234 neutral_terminals: BTreeSet<String>,
235 bus_ids: BTreeMap<String, BusId>,
236 record: LoweringRecord,
237}
238
239impl<'a> LoweringState<'a> {
240 fn new(
241 net: &'a MulticonductorNetwork,
242 options: MulticonductorToBalancedOptions,
243 readiness: MulticonductorToBalancedReadiness,
244 ) -> Self {
245 let mut record = LoweringRecord::new(
246 "multiconductor-to-balanced",
247 ModelKind::Multiconductor,
248 ModelKind::Balanced,
249 );
250 record.options = options_map(options);
251 record.assumptions = readiness.assumptions;
252 record.approximations = readiness.approximations;
253 record.diagnostics = readiness.diagnostics;
254 record
255 .assumptions
256 .push(format!("balanced power base: {} MVA", options.base_mva));
257 record
258 .assumptions
259 .push("balanced bus ids are synthesized from multiconductor bus order".to_owned());
260 record.approximations.push(
261 "wire-coordinate branch and shunt matrices are projected to positive sequence"
262 .to_owned(),
263 );
264 record.approximations.push(
265 "phase injection records are aggregated into scalar balanced injections".to_owned(),
266 );
267 record.approximations.push(
268 "units are converted from W/var/V/ohm/siemens/radians to MW/MVAr/per-unit/degrees"
269 .to_owned(),
270 );
271 if net.switches.iter().any(|sw| sw.open) {
272 record
273 .dropped_fields
274 .push("open switches dropped from balanced model".to_owned());
275 }
276
277 let bus_ids = net
278 .buses
279 .iter()
280 .enumerate()
281 .map(|(idx, bus)| (bus.id.to_ascii_lowercase(), BusId(idx + 1)))
282 .collect();
283
284 Self {
285 net,
286 options,
287 neutral_terminals: global_neutral_terminals(net),
288 bus_ids,
289 record,
290 }
291 }
292
293 #[allow(clippy::too_many_lines)]
294 fn lower(&mut self) -> Result<MulticonductorToBalancedLowering, MulticonductorToBalancedError> {
295 let Some(base) = self.voltage_base()? else {
296 return Err(MulticonductorToBalancedError::new(
297 self.options,
298 self.record.diagnostics.clone(),
299 ));
300 };
301
302 let buses = self.lower_buses(base);
303 let branches = self.lower_lines(base)?;
304 let loads = self.lower_loads();
305 let shunts = self.lower_shunts(base)?;
306 let generators = self.lower_generators(&buses);
307 self.record_capacitor_drops();
308 self.err_if_errors()?;
309
310 let mut network = Network::new(
311 self.net
312 .name
313 .clone()
314 .unwrap_or_else(|| "lowered-multiconductor".to_owned()),
315 self.options.base_mva,
316 );
317 network.base_frequency = self.net.base_frequency;
318 network.buses = buses;
319 network.loads = loads;
320 network.shunts = shunts;
321 network.branches = branches;
322 network.generators = generators;
323 network.source_format = SourceFormat::InMemory;
324
325 if let Err(err) = network.validate() {
326 self.record.diagnostics.push(StructuredDiagnostic::new(
327 "LOWER.MULTI_TO_BALANCED.INVALID_BALANCED_OUTPUT",
328 DiagnosticSeverity::Error,
329 DiagnosticStage::Lower,
330 format!("lowered balanced network failed structural validation: {err}"),
331 ));
332 return Err(MulticonductorToBalancedError::new(
333 self.options,
334 self.record.diagnostics.clone(),
335 ));
336 }
337 for finding in network.validate_values() {
338 self.record.diagnostics.push(
339 StructuredDiagnostic::new(
340 "LOWER.MULTI_TO_BALANCED.BALANCED_VALUE_DOMAIN",
341 DiagnosticSeverity::Warning,
342 DiagnosticStage::Lower,
343 format!(
344 "{} field `{}` is outside its value domain after lowering",
345 finding.element, finding.field
346 ),
347 )
348 .with_suggested_action(
349 "Inspect the multiconductor source values before using the lowered model.",
350 ),
351 );
352 }
353
354 self.record.validation_status = status_from_diagnostics(&self.record.diagnostics);
355 Ok(MulticonductorToBalancedLowering {
356 network,
357 record: self.record.clone(),
358 })
359 }
360
361 fn voltage_base(&mut self) -> Result<Option<VoltageBase>, MulticonductorToBalancedError> {
362 for (idx, source) in self.net.sources.iter().enumerate() {
363 let Some(bus) = self.net.bus(&source.bus) else {
364 self.record.diagnostics.push(
365 StructuredDiagnostic::new(
366 "LOWER.MULTI_TO_BALANCED.UNKNOWN_SOURCE_BUS",
367 DiagnosticSeverity::Error,
368 DiagnosticStage::Lower,
369 format!(
370 "voltage source {} references unknown bus {}",
371 source.name, source.bus
372 ),
373 )
374 .with_element_path(format!("/model/multiconductor_network/sources/{idx}/bus")),
375 );
376 continue;
377 };
378 let positions =
379 active_positions(&source.terminal_map, Some(bus), &self.neutral_terminals);
380 if positions.len() != 3 {
381 continue;
382 }
383 let Some(v1) = positive_sequence_voltage(source, &positions) else {
384 self.record.diagnostics.push(
385 StructuredDiagnostic::new(
386 "LOWER.MULTI_TO_BALANCED.INVALID_PHASE_REFERENCE",
387 DiagnosticSeverity::Error,
388 DiagnosticStage::Lower,
389 format!(
390 "voltage source {} does not carry finite three phase voltage magnitudes and angles",
391 source.name
392 ),
393 )
394 .with_element_path(format!("/model/multiconductor_network/sources/{idx}")),
395 );
396 continue;
397 };
398 let line_to_line_volts = v1.norm();
399 if !line_to_line_volts.is_finite() || line_to_line_volts <= 0.0 {
400 self.record.diagnostics.push(
401 StructuredDiagnostic::new(
402 "LOWER.MULTI_TO_BALANCED.INVALID_PHASE_REFERENCE",
403 DiagnosticSeverity::Error,
404 DiagnosticStage::Lower,
405 format!(
406 "voltage source {} produced a non-positive positive-sequence voltage base",
407 source.name
408 ),
409 )
410 .with_element_path(format!("/model/multiconductor_network/sources/{idx}")),
411 );
412 continue;
413 }
414 self.record.assumptions.push(format!(
415 "voltage base synthesized from source {} positive-sequence voltage: {} kV line-to-line",
416 source.name,
417 line_to_line_volts / 1000.0
418 ));
419 return Ok(Some(VoltageBase { line_to_line_volts }));
420 }
421
422 if self
423 .record
424 .diagnostics
425 .iter()
426 .any(|d| d.severity >= DiagnosticSeverity::Error)
427 {
428 return Err(MulticonductorToBalancedError::new(
429 self.options,
430 self.record.diagnostics.clone(),
431 ));
432 }
433 self.record.diagnostics.push(StructuredDiagnostic::new(
434 "LOWER.MULTI_TO_BALANCED.MISSING_PHASE_REFERENCE",
435 DiagnosticSeverity::Error,
436 DiagnosticStage::Lower,
437 "multiconductor to balanced lowering requires a finite three phase voltage source reference",
438 ));
439 Ok(None)
440 }
441
442 fn lower_buses(&mut self, base: VoltageBase) -> Vec<Bus> {
443 self.net
444 .buses
445 .iter()
446 .enumerate()
447 .map(|(idx, bus)| {
448 let source = self
449 .net
450 .sources
451 .iter()
452 .find(|source| source.bus.eq_ignore_ascii_case(&bus.id));
453 let (vm, va) = source
454 .and_then(|source| {
455 let positions = active_positions(
456 &source.terminal_map,
457 Some(bus),
458 &self.neutral_terminals,
459 );
460 positive_sequence_voltage(source, &positions)
461 })
462 .map_or((1.0, 0.0), |v| {
463 (
464 v.norm() / base.line_to_line_volts,
465 radians_to_degrees(v.arg()),
466 )
467 });
468 if source.is_none() {
469 self.record.dropped_fields.push(format!(
470 "bus {} voltage magnitude and angle defaulted to 1.0 p.u. and 0 degrees",
471 bus.id
472 ));
473 }
474 let (vmin, vmax) = match (bus.v_min, bus.v_max) {
475 (Some(vmin), Some(vmax)) if vmin.is_finite() && vmax.is_finite() => (
476 vmin / base.line_to_line_volts,
477 vmax / base.line_to_line_volts,
478 ),
479 _ => {
480 self.record.dropped_fields.push(format!(
481 "bus {} voltage bounds defaulted to 0.9/1.1 p.u.",
482 bus.id
483 ));
484 (0.9, 1.1)
485 }
486 };
487 self.record_bus_bound_drops(bus);
488 let mut balanced = Bus::new(
489 BusId(idx + 1),
490 self.bus_kind(&bus.id),
491 base.line_to_line_volts / 1000.0,
492 );
493 balanced.vm = vm;
494 balanced.va = va;
495 balanced.vmax = vmax;
496 balanced.vmin = vmin;
497 balanced.name = Some(bus.id.clone());
498 balanced.extras = source_extra("multiconductor_bus_id", &bus.id);
499 balanced
500 })
501 .collect()
502 }
503
504 fn record_capacitor_drops(&mut self) {
510 for capacitor in &self.net.capacitors {
511 self.record.dropped_fields.push(format!(
512 "capacitor {} dropped: a rated bank has no balanced shunt equivalent",
513 capacitor.name
514 ));
515 }
516 }
517
518 fn record_bus_bound_drops(&mut self, bus: &DistBus) {
519 if bus.vpn_min.is_some()
520 || bus.vpn_max.is_some()
521 || bus.vpp_min.is_some()
522 || bus.vpp_max.is_some()
523 || bus.vpos_min.is_some()
524 || bus.vpos_max.is_some()
525 || bus.vneg_max.is_some()
526 || bus.vzero_max.is_some()
527 || bus.vn_max.is_some()
528 {
529 self.record.dropped_fields.push(format!(
530 "bus {} conductor voltage bound families dropped",
531 bus.id
532 ));
533 }
534 }
535
536 fn bus_kind(&self, bus_id: &str) -> BusType {
537 if self
538 .net
539 .sources
540 .iter()
541 .any(|source| source.bus.eq_ignore_ascii_case(bus_id))
542 {
543 BusType::Ref
544 } else if self
545 .net
546 .generators
547 .iter()
548 .any(|generator| generator.bus.eq_ignore_ascii_case(bus_id))
549 {
550 BusType::Pv
551 } else {
552 BusType::Pq
553 }
554 }
555
556 #[allow(clippy::too_many_lines)]
557 fn lower_lines(
558 &mut self,
559 base: VoltageBase,
560 ) -> Result<Vec<Branch>, MulticonductorToBalancedError> {
561 let mut branches = Vec::with_capacity(self.net.lines.len());
562 for (idx, line) in self.net.lines.iter().enumerate() {
563 let Some(code) = self.net.linecode(&line.linecode) else {
564 self.record.diagnostics.push(
565 StructuredDiagnostic::new(
566 "LOWER.MULTI_TO_BALANCED.UNKNOWN_LINECODE",
567 DiagnosticSeverity::Error,
568 DiagnosticStage::Lower,
569 format!(
570 "line {} references unknown linecode `{}`",
571 line.name, line.linecode
572 ),
573 )
574 .with_element_path(format!(
575 "/model/multiconductor_network/lines/{idx}/linecode"
576 )),
577 );
578 continue;
579 };
580 if !same_active_phase_order(
581 self.net.bus(&line.bus_from),
582 &line.terminal_map_from,
583 self.net.bus(&line.bus_to),
584 &line.terminal_map_to,
585 &self.neutral_terminals,
586 ) {
587 self.record.diagnostics.push(
588 StructuredDiagnostic::new(
589 "LOWER.MULTI_TO_BALANCED.PHASE_MAP_MISMATCH",
590 DiagnosticSeverity::Error,
591 DiagnosticStage::Lower,
592 format!(
593 "line {} connects different active terminal orders and cannot be lowered transparently",
594 line.name
595 ),
596 )
597 .with_element_path(format!("/model/multiconductor_network/lines/{idx}")),
598 );
599 continue;
600 }
601 let Some(from) = self.bus_id(&line.bus_from) else {
602 self.unknown_bus_diag("line", &line.name, &line.bus_from, idx, "bus_from");
603 continue;
604 };
605 let Some(to) = self.bus_id(&line.bus_to) else {
606 self.unknown_bus_diag("line", &line.name, &line.bus_to, idx, "bus_to");
607 continue;
608 };
609 let from_bus = self.net.bus(&line.bus_from);
610 let active =
611 active_positions(&line.terminal_map_from, from_bus, &self.neutral_terminals);
612 let neutral =
613 neutral_positions(&line.terminal_map_from, from_bus, &self.neutral_terminals);
614 let z_ohm =
615 self.line_positive_sequence_impedance(idx, code, &active, &neutral, line.length)?;
616 let y_from = self.line_positive_sequence_admittance(
617 idx,
618 code,
619 &active,
620 &neutral,
621 line.length,
622 ShuntSide::From,
623 )?;
624 let y_to = self.line_positive_sequence_admittance(
625 idx,
626 code,
627 &active,
628 &neutral,
629 line.length,
630 ShuntSide::To,
631 )?;
632 let z_base = base.z_base_ohm(self.options.base_mva);
633 let y_scale = z_base;
634 let charging = BranchCharging::new(
635 y_from.re * y_scale,
636 y_from.im * y_scale,
637 y_to.re * y_scale,
638 y_to.im * y_scale,
639 );
640 let rate =
641 line_rate_mva(line, code, &active, base.line_to_line_volts).unwrap_or_else(|| {
642 self.record.dropped_fields.push(format!(
643 "line {} thermal rating defaulted to 0 MVA",
644 line.name
645 ));
646 0.0
647 });
648 let mut branch = Branch::new(from, to, z_ohm.re / z_base, z_ohm.im / z_base);
649 branch.b = charging.total_b();
650 branch.charging = Some(charging);
651 branch.rate_a = rate;
652 branch.rate_b = rate;
653 branch.rate_c = rate;
654 branch.extras = source_extra("multiconductor_line", &line.name);
655 branches.push(branch);
656 }
657 self.err_if_errors()?;
658 Ok(branches)
659 }
660
661 fn line_positive_sequence_impedance(
662 &mut self,
663 line_idx: usize,
664 code: &DistLineCode,
665 active: &[usize],
666 neutral: &[usize],
667 length: f64,
668 ) -> Result<Complex64, MulticonductorToBalancedError> {
669 let matrix = complex_matrix(&code.r_series, &code.x_series, length);
670 let reduced = kron_or_select(&matrix, active, neutral).map_err(|message| {
671 self.matrix_error(line_idx, &code.name, "series impedance", &message)
672 })?;
673 Ok(self.positive_sequence_from_matrix(line_idx, &code.name, "series impedance", &reduced))
674 }
675
676 fn line_positive_sequence_admittance(
677 &mut self,
678 line_idx: usize,
679 code: &DistLineCode,
680 active: &[usize],
681 neutral: &[usize],
682 length: f64,
683 side: ShuntSide,
684 ) -> Result<Complex64, MulticonductorToBalancedError> {
685 let (g, b, label) = match side {
686 ShuntSide::From => (&code.g_from, &code.b_from, "from shunt admittance"),
687 ShuntSide::To => (&code.g_to, &code.b_to, "to shunt admittance"),
688 };
689 let matrix = complex_matrix(g, b, length);
690 let reduced = kron_or_select(&matrix, active, neutral)
691 .map_err(|message| self.matrix_error(line_idx, &code.name, label, &message))?;
692 Ok(self.positive_sequence_from_matrix(line_idx, &code.name, label, &reduced))
693 }
694
695 fn positive_sequence_from_matrix(
696 &mut self,
697 line_idx: usize,
698 code_name: &str,
699 label: &str,
700 matrix: &[Vec<Complex64>],
701 ) -> Complex64 {
702 let seq = sequence_matrix(matrix);
703 let coupling = sequence_coupling_norm(&seq);
704 if coupling > COUPLING_TOLERANCE {
705 self.record.approximations.push(format!(
706 "linecode {code_name} {label} has sequence coupling norm {coupling}; positive-sequence diagonal retained"
707 ));
708 let mut diagnostic = StructuredDiagnostic::new(
709 "LOWER.MULTI_TO_BALANCED.SEQUENCE_COUPLING_DROPPED",
710 DiagnosticSeverity::Info,
711 DiagnosticStage::Lower,
712 format!(
713 "linecode {code_name} {label} has nonzero sequence coupling; the balanced model keeps the positive-sequence diagonal"
714 ),
715 )
716 .with_element_path(format!("/model/multiconductor_network/lines/{line_idx}/linecode"));
717 diagnostic.details.insert(
718 "sequence_coupling_norm".to_owned(),
719 serde_json::json!(coupling),
720 );
721 self.record.diagnostics.push(diagnostic);
722 }
723 seq[1][1]
724 }
725
726 fn matrix_error(
727 &self,
728 line_idx: usize,
729 code_name: &str,
730 label: &str,
731 message: &str,
732 ) -> MulticonductorToBalancedError {
733 let mut diagnostics = self.record.diagnostics.clone();
734 diagnostics.push(
735 StructuredDiagnostic::new(
736 "LOWER.MULTI_TO_BALANCED.INVALID_LINECODE_MATRIX",
737 DiagnosticSeverity::Error,
738 DiagnosticStage::Lower,
739 format!("linecode {code_name} {label} cannot be lowered: {message}"),
740 )
741 .with_element_path(format!(
742 "/model/multiconductor_network/lines/{line_idx}/linecode"
743 )),
744 );
745 MulticonductorToBalancedError::new(self.options, diagnostics)
746 }
747
748 fn lower_loads(&mut self) -> Vec<Load> {
749 self.net
750 .loads
751 .iter()
752 .enumerate()
753 .filter_map(|(idx, load)| {
754 let Some(bus) = self.bus_id(&load.bus) else {
755 self.unknown_bus_diag("load", &load.name, &load.bus, idx, "bus");
756 return None;
757 };
758 if !matches!(
759 load.voltage_model,
760 DistLoadVoltageModel::ConstantPower { .. }
761 ) {
762 self.record.dropped_fields.push(format!(
763 "load {} voltage model dropped; balanced load is constant power",
764 load.name
765 ));
766 self.record.diagnostics.push(
767 StructuredDiagnostic::new(
768 "LOWER.MULTI_TO_BALANCED.DROPPED_LOAD_VOLTAGE_MODEL",
769 DiagnosticSeverity::Warning,
770 DiagnosticStage::Lower,
771 format!(
772 "load {} voltage model cannot be represented by the conservative balanced lowering",
773 load.name
774 ),
775 )
776 .with_element_path(format!("/model/multiconductor_network/loads/{idx}/voltage_model")),
777 );
778 }
779 let mut balanced = Load::new(
780 bus,
781 si_power_to_mega(load.p_nom.iter().sum()),
782 si_power_to_mega(load.q_nom.iter().sum()),
783 );
784 balanced.extras = source_extra("multiconductor_load", &load.name);
785 Some(balanced)
786 })
787 .collect()
788 }
789
790 fn lower_shunts(
791 &mut self,
792 base: VoltageBase,
793 ) -> Result<Vec<Shunt>, MulticonductorToBalancedError> {
794 let mut shunts = Vec::with_capacity(self.net.shunts.len());
795 for (idx, shunt) in self.net.shunts.iter().enumerate() {
796 let Some(bus) = self.bus_id(&shunt.bus) else {
797 self.unknown_bus_diag("shunt", &shunt.name, &shunt.bus, idx, "bus");
798 continue;
799 };
800 let dist_bus = self.net.bus(&shunt.bus);
801 let active = active_positions(&shunt.terminal_map, dist_bus, &self.neutral_terminals);
802 let neutral = neutral_positions(&shunt.terminal_map, dist_bus, &self.neutral_terminals);
803 let y = if active.len() == 3 {
804 let matrix = complex_matrix(&shunt.g, &shunt.b, 1.0);
805 let reduced = kron_or_select(&matrix, &active, &neutral)
806 .map_err(|message| self.shunt_matrix_error(idx, &shunt.name, &message))?;
807 let seq = sequence_matrix(&reduced);
808 seq[1][1]
809 } else {
810 self.record.approximations.push(format!(
811 "shunt {} has {} active terminal(s); diagonal admittance projected with missing phases as zero",
812 shunt.name,
813 active.len()
814 ));
815 partial_phase_admittance(&shunt.g, &shunt.b, &active)
816 };
817 let scale = base.line_to_line_volts * base.line_to_line_volts / 1_000_000.0;
818 let mut balanced = Shunt::new(bus, y.re * scale, y.im * scale);
819 balanced.extras = source_extra("multiconductor_shunt", &shunt.name);
820 shunts.push(balanced);
821 }
822 self.err_if_errors()?;
823 Ok(shunts)
824 }
825
826 fn shunt_matrix_error(
827 &self,
828 shunt_idx: usize,
829 name: &str,
830 message: &str,
831 ) -> MulticonductorToBalancedError {
832 let mut diagnostics = self.record.diagnostics.clone();
833 diagnostics.push(
834 StructuredDiagnostic::new(
835 "LOWER.MULTI_TO_BALANCED.INVALID_SHUNT_MATRIX",
836 DiagnosticSeverity::Error,
837 DiagnosticStage::Lower,
838 format!("shunt {name} cannot be lowered: {message}"),
839 )
840 .with_element_path(format!("/model/multiconductor_network/shunts/{shunt_idx}")),
841 );
842 MulticonductorToBalancedError::new(self.options, diagnostics)
843 }
844
845 fn lower_generators(&mut self, buses: &[Bus]) -> Vec<Generator> {
846 self.net
847 .generators
848 .iter()
849 .enumerate()
850 .filter_map(|(idx, generator)| {
851 let Some(bus) = self.bus_id(&generator.bus) else {
852 self.unknown_bus_diag("generator", &generator.name, &generator.bus, idx, "bus");
853 return None;
854 };
855 let pg = si_power_to_mega(generator.p_nom.iter().sum());
856 let qg = si_power_to_mega(generator.q_nom.iter().sum());
857 let pmin = option_vec_sum_mw(generator.p_min.as_deref()).unwrap_or_else(|| {
858 self.record.dropped_fields.push(format!(
859 "generator {} p_min defaulted to pg",
860 generator.name
861 ));
862 pg
863 });
864 let pmax = option_vec_sum_mw(generator.p_max.as_deref()).unwrap_or_else(|| {
865 self.record.dropped_fields.push(format!(
866 "generator {} p_max defaulted to pg",
867 generator.name
868 ));
869 pg
870 });
871 let qmin = option_vec_sum_mw(generator.q_min.as_deref()).unwrap_or_else(|| {
872 self.record.dropped_fields.push(format!(
873 "generator {} q_min defaulted to qg",
874 generator.name
875 ));
876 qg
877 });
878 let qmax = option_vec_sum_mw(generator.q_max.as_deref()).unwrap_or_else(|| {
879 self.record.dropped_fields.push(format!(
880 "generator {} q_max defaulted to qg",
881 generator.name
882 ));
883 qg
884 });
885 if generator.cost.is_some() {
886 self.record.dropped_fields.push(format!(
887 "generator {} scalar distribution cost dropped",
888 generator.name
889 ));
890 }
891 if generator.s_max.is_some() || generator.i_max.is_some() {
892 self.record.dropped_fields.push(format!(
893 "generator {} per-conductor rating fields dropped",
894 generator.name
895 ));
896 }
897 let vg = buses
898 .iter()
899 .find(|balanced_bus| balanced_bus.id == bus)
900 .map_or(1.0, |balanced_bus| balanced_bus.vm);
901 let mut balanced = Generator::new(bus);
902 balanced.pg = pg;
903 balanced.qg = qg;
904 balanced.pmax = pmax;
905 balanced.pmin = pmin;
906 balanced.qmax = qmax;
907 balanced.qmin = qmin;
908 balanced.vg = vg;
909 balanced.mbase = self.options.base_mva;
910 Some(balanced)
911 })
912 .collect()
913 }
914
915 fn bus_id(&self, bus: &str) -> Option<BusId> {
916 self.bus_ids.get(&bus.to_ascii_lowercase()).copied()
917 }
918
919 fn unknown_bus_diag(&mut self, element: &str, name: &str, bus: &str, idx: usize, field: &str) {
920 self.record.diagnostics.push(
921 StructuredDiagnostic::new(
922 "LOWER.MULTI_TO_BALANCED.UNKNOWN_BUS",
923 DiagnosticSeverity::Error,
924 DiagnosticStage::Lower,
925 format!("{element} {name} references unknown bus {bus}"),
926 )
927 .with_element_path(format!(
928 "/model/multiconductor_network/{element}s/{idx}/{field}"
929 )),
930 );
931 }
932
933 fn err_if_errors(&self) -> Result<(), MulticonductorToBalancedError> {
934 if self
935 .record
936 .diagnostics
937 .iter()
938 .any(|d| d.severity >= DiagnosticSeverity::Error)
939 {
940 Err(MulticonductorToBalancedError::new(
941 self.options,
942 self.record.diagnostics.clone(),
943 ))
944 } else {
945 Ok(())
946 }
947 }
948}
949
950#[derive(Clone, Copy)]
951struct VoltageBase {
952 line_to_line_volts: f64,
953}
954
955impl VoltageBase {
956 fn z_base_ohm(self, base_mva: f64) -> f64 {
957 self.line_to_line_volts * self.line_to_line_volts / (base_mva * 1_000_000.0)
958 }
959}
960
961#[derive(Clone, Copy)]
962enum ShuntSide {
963 From,
964 To,
965}
966
967fn options_map(
968 options: MulticonductorToBalancedOptions,
969) -> serde_json::Map<String, serde_json::Value> {
970 serde_json::to_value(options)
971 .ok()
972 .and_then(|value| value.as_object().cloned())
973 .unwrap_or_default()
974}
975
976fn source_extra(key: &str, value: &str) -> BalancedExtras {
977 let mut extras = BalancedExtras::new();
978 extras.insert(key.to_owned(), serde_json::Value::String(value.to_owned()));
979 extras
980}
981
982fn active_positions(
983 terminals: &[String],
984 bus: Option<&DistBus>,
985 neutral_terminals: &BTreeSet<String>,
986) -> Vec<usize> {
987 terminals
988 .iter()
989 .enumerate()
990 .filter_map(|(idx, terminal)| {
991 (!is_neutral_terminal(terminal, bus, neutral_terminals)).then_some(idx)
992 })
993 .collect()
994}
995
996fn neutral_positions(
997 terminals: &[String],
998 bus: Option<&DistBus>,
999 neutral_terminals: &BTreeSet<String>,
1000) -> Vec<usize> {
1001 terminals
1002 .iter()
1003 .enumerate()
1004 .filter_map(|(idx, terminal)| {
1005 is_neutral_terminal(terminal, bus, neutral_terminals).then_some(idx)
1006 })
1007 .collect()
1008}
1009
1010fn same_active_phase_order(
1011 from_bus: Option<&DistBus>,
1012 from_terminals: &[String],
1013 to_bus: Option<&DistBus>,
1014 to_terminals: &[String],
1015 neutral_terminals: &BTreeSet<String>,
1016) -> bool {
1017 let from: Vec<_> = from_terminals
1018 .iter()
1019 .filter(|terminal| !is_neutral_terminal(terminal, from_bus, neutral_terminals))
1020 .map(|terminal| terminal.to_ascii_lowercase())
1021 .collect();
1022 let to: Vec<_> = to_terminals
1023 .iter()
1024 .filter(|terminal| !is_neutral_terminal(terminal, to_bus, neutral_terminals))
1025 .map(|terminal| terminal.to_ascii_lowercase())
1026 .collect();
1027 from == to
1028}
1029
1030fn positive_sequence_voltage(
1031 source: &powerio_dist::VoltageSource,
1032 positions: &[usize],
1033) -> Option<Complex64> {
1034 if positions.len() != 3 {
1035 return None;
1036 }
1037 let mut phase = [Complex64::new(0.0, 0.0); 3];
1038 for (out, &idx) in phase.iter_mut().zip(positions.iter()) {
1039 let magnitude = *source.v_magnitude.get(idx)?;
1040 let angle = *source.v_angle.get(idx)?;
1041 if !magnitude.is_finite() || !angle.is_finite() {
1042 return None;
1043 }
1044 *out = Complex64::from_polar(magnitude, angle);
1045 }
1046 let basis = sequence_basis();
1047 let mut seq = [Complex64::new(0.0, 0.0); 3];
1048 for (sequence_idx, out) in seq.iter_mut().enumerate() {
1049 for phase_idx in 0..3 {
1050 *out += basis[phase_idx][sequence_idx].conj() * phase[phase_idx];
1051 }
1052 }
1053 Some(seq[1])
1054}
1055
1056fn complex_matrix(g_or_r: &Mat, b_or_x: &Mat, scale: f64) -> Vec<Vec<Complex64>> {
1057 g_or_r
1058 .iter()
1059 .zip(b_or_x.iter())
1060 .map(|(g_row, b_row)| {
1061 g_row
1062 .iter()
1063 .zip(b_row.iter())
1064 .map(|(&g, &b)| Complex64::new(g * scale, b * scale))
1065 .collect()
1066 })
1067 .collect()
1068}
1069
1070fn kron_or_select(
1071 matrix: &[Vec<Complex64>],
1072 active: &[usize],
1073 neutral: &[usize],
1074) -> Result<Vec<Vec<Complex64>>, String> {
1075 if active.len() != 3 {
1076 return Err(format!(
1077 "expected three active conductors, got {}",
1078 active.len()
1079 ));
1080 }
1081 validate_indices(matrix, active)?;
1082 validate_indices(matrix, neutral)?;
1083 if neutral.is_empty() {
1084 return Ok(submatrix(matrix, active, active));
1085 }
1086
1087 let m_pp = submatrix(matrix, active, active);
1088 let m_pn = submatrix(matrix, active, neutral);
1089 let m_np = submatrix(matrix, neutral, active);
1090 let m_nn = submatrix(matrix, neutral, neutral);
1091 if matrix_is_near_zero(&m_pn) && matrix_is_near_zero(&m_np) && matrix_is_near_zero(&m_nn) {
1092 return Ok(m_pp);
1093 }
1094 let inv_nn = invert_complex_matrix(&m_nn)?;
1095 let correction = matmul(&matmul(&m_pn, &inv_nn), &m_np);
1096 Ok(matrix_sub(&m_pp, &correction))
1097}
1098
1099fn matrix_is_near_zero(matrix: &[Vec<Complex64>]) -> bool {
1100 matrix
1101 .iter()
1102 .flatten()
1103 .all(|value| value.norm() <= f64::EPSILON)
1104}
1105
1106fn validate_indices(matrix: &[Vec<Complex64>], indices: &[usize]) -> Result<(), String> {
1107 let n = matrix.len();
1108 if matrix.iter().any(|row| row.len() != n) {
1109 return Err("matrix is not square".to_owned());
1110 }
1111 if indices.iter().any(|&idx| idx >= n) {
1112 return Err("terminal map references a conductor outside the matrix".to_owned());
1113 }
1114 Ok(())
1115}
1116
1117fn submatrix(matrix: &[Vec<Complex64>], rows: &[usize], cols: &[usize]) -> Vec<Vec<Complex64>> {
1118 rows.iter()
1119 .map(|&row| cols.iter().map(|&col| matrix[row][col]).collect())
1120 .collect()
1121}
1122
1123#[allow(clippy::needless_range_loop)]
1124fn invert_complex_matrix(matrix: &[Vec<Complex64>]) -> Result<Vec<Vec<Complex64>>, String> {
1125 let n = matrix.len();
1126 if n == 0 || matrix.iter().any(|row| row.len() != n) {
1127 return Err("neutral block is not square".to_owned());
1128 }
1129 let mut aug = vec![vec![Complex64::new(0.0, 0.0); 2 * n]; n];
1130 for i in 0..n {
1131 for j in 0..n {
1132 aug[i][j] = matrix[i][j];
1133 }
1134 aug[i][n + i] = Complex64::new(1.0, 0.0);
1135 }
1136
1137 for col in 0..n {
1138 let pivot = (col..n)
1139 .max_by(|&a, &b| aug[a][col].norm_sqr().total_cmp(&aug[b][col].norm_sqr()))
1140 .ok_or_else(|| "neutral block is singular".to_owned())?;
1141 if aug[pivot][col].norm() <= f64::EPSILON {
1142 return Err("neutral block is singular".to_owned());
1143 }
1144 if pivot != col {
1145 aug.swap(pivot, col);
1146 }
1147 let pivot_value = aug[col][col];
1148 for j in 0..(2 * n) {
1149 aug[col][j] /= pivot_value;
1150 }
1151 for row in 0..n {
1152 if row == col {
1153 continue;
1154 }
1155 let factor = aug[row][col];
1156 if factor.norm() <= f64::EPSILON {
1157 continue;
1158 }
1159 for j in 0..(2 * n) {
1160 let pivot_entry = aug[col][j];
1161 aug[row][j] -= factor * pivot_entry;
1162 }
1163 }
1164 }
1165
1166 Ok(aug
1167 .into_iter()
1168 .map(|row| row.into_iter().skip(n).collect())
1169 .collect())
1170}
1171
1172fn matmul(a: &[Vec<Complex64>], b: &[Vec<Complex64>]) -> Vec<Vec<Complex64>> {
1173 if a.is_empty() || b.is_empty() {
1174 return Vec::new();
1175 }
1176 let rows = a.len();
1177 let cols = b[0].len();
1178 let inner = b.len();
1179 let mut out = vec![vec![Complex64::new(0.0, 0.0); cols]; rows];
1180 for i in 0..rows {
1181 for k in 0..inner {
1182 for j in 0..cols {
1183 out[i][j] += a[i][k] * b[k][j];
1184 }
1185 }
1186 }
1187 out
1188}
1189
1190fn matrix_sub(a: &[Vec<Complex64>], b: &[Vec<Complex64>]) -> Vec<Vec<Complex64>> {
1191 a.iter()
1192 .zip(b.iter())
1193 .map(|(a_row, b_row)| {
1194 a_row
1195 .iter()
1196 .zip(b_row.iter())
1197 .map(|(&a_value, &b_value)| a_value - b_value)
1198 .collect()
1199 })
1200 .collect()
1201}
1202
1203#[allow(clippy::many_single_char_names)]
1204fn sequence_basis() -> [[Complex64; 3]; 3] {
1205 let scale = 1.0 / SQRT_3;
1206 let a = Complex64::from_polar(1.0, 2.0 * PI / 3.0);
1207 let a2 = a * a;
1208 [
1209 [
1210 Complex64::new(scale, 0.0),
1211 Complex64::new(scale, 0.0),
1212 Complex64::new(scale, 0.0),
1213 ],
1214 [Complex64::new(scale, 0.0), a2 * scale, a * scale],
1215 [Complex64::new(scale, 0.0), a * scale, a2 * scale],
1216 ]
1217}
1218
1219fn sequence_matrix(matrix: &[Vec<Complex64>]) -> [[Complex64; 3]; 3] {
1220 let basis = sequence_basis();
1221 let mut seq = [[Complex64::new(0.0, 0.0); 3]; 3];
1222 for p in 0..3 {
1223 for q in 0..3 {
1224 for i in 0..3 {
1225 for j in 0..3 {
1226 seq[p][q] += basis[i][p].conj() * matrix[i][j] * basis[j][q];
1227 }
1228 }
1229 }
1230 }
1231 seq
1232}
1233
1234fn sequence_coupling_norm(seq: &[[Complex64; 3]; 3]) -> f64 {
1235 let mut sum = 0.0;
1236 for (i, row) in seq.iter().enumerate() {
1237 for (j, value) in row.iter().enumerate() {
1238 if i != j {
1239 sum += value.norm_sqr();
1240 }
1241 }
1242 }
1243 sum.sqrt()
1244}
1245
1246fn line_rate_mva(
1255 line: &DistLine,
1256 code: &DistLineCode,
1257 active: &[usize],
1258 line_to_line_volts: f64,
1259) -> Option<f64> {
1260 for (s_max, i_max) in [
1261 (line.s_max.as_ref(), line.i_max.as_ref()),
1262 (code.s_max.as_ref(), code.i_max.as_ref()),
1263 ] {
1264 if let Some(mva) = s_max.and_then(|values| apparent_power_mva(values, active)) {
1265 return Some(mva);
1266 }
1267 if let Some(amps) = i_max.and_then(|values| limiting_amps(values, active)) {
1268 return Some(SQRT_3 * line_to_line_volts * amps / 1_000_000.0);
1269 }
1270 }
1271 None
1272}
1273
1274fn apparent_power_mva(s_max: &[f64], active: &[usize]) -> Option<f64> {
1277 let values: Vec<_> = active
1278 .iter()
1279 .filter_map(|&idx| s_max.get(idx).copied())
1280 .collect();
1281 (!values.is_empty() && values.iter().all(|value| value.is_finite()))
1282 .then(|| values.iter().sum::<f64>() / 1_000_000.0)
1283}
1284
1285fn limiting_amps(i_max: &[f64], active: &[usize]) -> Option<f64> {
1287 active
1288 .iter()
1289 .filter_map(|&idx| i_max.get(idx).copied())
1290 .filter(|value| value.is_finite() && *value >= 0.0)
1291 .reduce(f64::min)
1292}
1293
1294fn partial_phase_admittance(g: &Mat, b: &Mat, active: &[usize]) -> Complex64 {
1295 let mut total = Complex64::new(0.0, 0.0);
1296 for &idx in active {
1297 let Some(g_row) = g.get(idx) else {
1298 continue;
1299 };
1300 let Some(b_row) = b.get(idx) else {
1301 continue;
1302 };
1303 let Some(&g_value) = g_row.get(idx) else {
1304 continue;
1305 };
1306 let Some(&b_value) = b_row.get(idx) else {
1307 continue;
1308 };
1309 total += Complex64::new(g_value, b_value);
1310 }
1311 total / 3.0
1312}
1313
1314fn si_power_to_mega(value: f64) -> f64 {
1315 value / 1_000_000.0
1316}
1317
1318fn option_vec_sum_mw(values: Option<&[f64]>) -> Option<f64> {
1319 values.map(|v| si_power_to_mega(v.iter().sum()))
1320}
1321
1322fn radians_to_degrees(value: f64) -> f64 {
1323 value * 180.0 / PI
1324}
1325
1326fn status_from_diagnostics(diagnostics: &[StructuredDiagnostic]) -> ValidationStatus {
1327 diagnostics
1328 .iter()
1329 .map(|d| match d.severity {
1330 DiagnosticSeverity::Debug => ValidationStatus::Ok,
1331 DiagnosticSeverity::Info => ValidationStatus::Info,
1332 DiagnosticSeverity::Warning => ValidationStatus::Warning,
1333 DiagnosticSeverity::Error => ValidationStatus::Error,
1334 DiagnosticSeverity::Fatal => ValidationStatus::Fatal,
1335 })
1336 .max()
1337 .unwrap_or(ValidationStatus::Ok)
1338}
1339
1340fn check_options(
1341 options: MulticonductorToBalancedOptions,
1342 report: &mut MulticonductorToBalancedReadiness,
1343) {
1344 if !options.base_mva.is_finite() || options.base_mva <= 0.0 {
1345 report.diagnostics.push(StructuredDiagnostic::new(
1346 "LOWER.MULTI_TO_BALANCED.INVALID_BASE_MVA",
1347 DiagnosticSeverity::Error,
1348 DiagnosticStage::Lower,
1349 format!(
1350 "base_mva must be positive and finite for multiconductor to balanced lowering; got {}",
1351 options.base_mva
1352 ),
1353 ));
1354 }
1355}
1356
1357fn check_bus_conductor_sets(
1358 net: &MulticonductorNetwork,
1359 report: &mut MulticonductorToBalancedReadiness,
1360) {
1361 let neutral_terminals = global_neutral_terminals(net);
1362 let mut saw_neutral = false;
1363 for (i, bus) in net.buses.iter().enumerate() {
1364 let active_count = active_terminal_count(&bus.terminals, Some(bus), &neutral_terminals);
1365 if active_count < bus.terminals.len() {
1366 saw_neutral = true;
1367 }
1368
1369 match active_count {
1370 3 => {}
1371 2 => report.diagnostics.push(
1372 StructuredDiagnostic::new(
1373 "LOWER.MULTI_TO_BALANCED.AMBIGUOUS_TERMINAL_MAP",
1374 DiagnosticSeverity::Error,
1375 DiagnosticStage::Lower,
1376 format!(
1377 "bus {} has two active terminals; no unique positive sequence projection is defined",
1378 bus.id
1379 ),
1380 )
1381 .with_element_path(format!("/model/multiconductor_network/buses/{i}/terminals")),
1382 ),
1383 0 | 1 => report.diagnostics.push(
1384 StructuredDiagnostic::new(
1385 "LOWER.MULTI_TO_BALANCED.UNSUPPORTED_CONDUCTOR_SET",
1386 DiagnosticSeverity::Error,
1387 DiagnosticStage::Lower,
1388 format!(
1389 "bus {} has {active_count} active terminal; multiconductor to balanced lowering starts with three phase input",
1390 bus.id
1391 ),
1392 )
1393 .with_element_path(format!("/model/multiconductor_network/buses/{i}/terminals")),
1394 ),
1395 _ => report.diagnostics.push(
1396 StructuredDiagnostic::new(
1397 "LOWER.MULTI_TO_BALANCED.UNSUPPORTED_CONDUCTOR_SET",
1398 DiagnosticSeverity::Error,
1399 DiagnosticStage::Lower,
1400 format!(
1401 "bus {} has {active_count} active terminals; multiconductor to balanced lowering starts with three phase input",
1402 bus.id
1403 ),
1404 )
1405 .with_element_path(format!("/model/multiconductor_network/buses/{i}/terminals")),
1406 ),
1407 }
1408 }
1409
1410 if saw_neutral {
1411 report
1412 .approximations
1413 .push("Kron reduction of neutral conductor before sequence transform".to_owned());
1414 report.diagnostics.push(StructuredDiagnostic::new(
1415 "LOWER.MULTI_TO_BALANCED.KRON_REDUCTION_REQUIRED",
1416 DiagnosticSeverity::Info,
1417 DiagnosticStage::Lower,
1418 "neutral conductors require Kron reduction before the sequence transform",
1419 ));
1420 }
1421}
1422
1423fn check_line_terminal_maps(
1424 net: &MulticonductorNetwork,
1425 report: &mut MulticonductorToBalancedReadiness,
1426) {
1427 let neutral_terminals = global_neutral_terminals(net);
1428 for (i, line) in net.lines.iter().enumerate() {
1429 for (field, bus_id, terminal_map) in [
1430 (
1431 "terminal_map_from",
1432 line.bus_from.as_str(),
1433 line.terminal_map_from.as_slice(),
1434 ),
1435 (
1436 "terminal_map_to",
1437 line.bus_to.as_str(),
1438 line.terminal_map_to.as_slice(),
1439 ),
1440 ] {
1441 let bus = net.bus(bus_id);
1442 let active_count = active_terminal_count(terminal_map, bus, &neutral_terminals);
1443 if active_count != 3 {
1444 report.diagnostics.push(
1445 StructuredDiagnostic::new(
1446 "LOWER.MULTI_TO_BALANCED.UNSUPPORTED_CONDUCTOR_SET",
1447 DiagnosticSeverity::Error,
1448 DiagnosticStage::Lower,
1449 format!(
1450 "line {} {field} has {active_count} active terminal(s); balanced branch lowering requires three active phase conductors",
1451 line.name
1452 ),
1453 )
1454 .with_element_path(format!("/model/multiconductor_network/lines/{i}/{field}")),
1455 );
1456 }
1457 }
1458 }
1459}
1460
1461fn check_linecodes(net: &MulticonductorNetwork, report: &mut MulticonductorToBalancedReadiness) {
1462 for (i, line) in net.lines.iter().enumerate() {
1463 let Some(code) = net.linecode(&line.linecode) else {
1464 report.diagnostics.push(
1465 StructuredDiagnostic::new(
1466 "LOWER.MULTI_TO_BALANCED.UNKNOWN_LINECODE",
1467 DiagnosticSeverity::Error,
1468 DiagnosticStage::Lower,
1469 format!(
1470 "line {} references unknown linecode `{}`",
1471 line.name, line.linecode
1472 ),
1473 )
1474 .with_element_path(format!("/model/multiconductor_network/lines/{i}/linecode")),
1475 );
1476 continue;
1477 };
1478 if code.n_conductors != line.terminal_map_from.len()
1479 || code.n_conductors != line.terminal_map_to.len()
1480 {
1481 report.diagnostics.push(
1482 StructuredDiagnostic::new(
1483 "LOWER.MULTI_TO_BALANCED.LINECODE_TERMINAL_MISMATCH",
1484 DiagnosticSeverity::Error,
1485 DiagnosticStage::Lower,
1486 format!(
1487 "line {} uses linecode {} with {} conductor(s), but its terminal maps have {} and {} terminal(s)",
1488 line.name,
1489 code.name,
1490 code.n_conductors,
1491 line.terminal_map_from.len(),
1492 line.terminal_map_to.len()
1493 ),
1494 )
1495 .with_element_path(format!("/model/multiconductor_network/lines/{i}/linecode")),
1496 );
1497 }
1498 if !square_matrix_shape(&code.r_series, code.n_conductors)
1499 || !square_matrix_shape(&code.x_series, code.n_conductors)
1500 || !square_matrix_shape(&code.g_from, code.n_conductors)
1501 || !square_matrix_shape(&code.b_from, code.n_conductors)
1502 || !square_matrix_shape(&code.g_to, code.n_conductors)
1503 || !square_matrix_shape(&code.b_to, code.n_conductors)
1504 {
1505 report.diagnostics.push(
1506 StructuredDiagnostic::new(
1507 "LOWER.MULTI_TO_BALANCED.INVALID_LINECODE_MATRIX",
1508 DiagnosticSeverity::Error,
1509 DiagnosticStage::Lower,
1510 format!(
1511 "linecode {} does not carry square {} conductor matrices",
1512 code.name, code.n_conductors
1513 ),
1514 )
1515 .with_element_path(format!(
1516 "/model/multiconductor_network/linecodes/{}",
1517 code.name
1518 )),
1519 );
1520 }
1521 }
1522}
1523
1524fn square_matrix_shape(matrix: &Mat, n: usize) -> bool {
1525 matrix.len() == n && matrix.iter().all(|row| row.len() == n)
1526}
1527
1528fn check_switches(net: &MulticonductorNetwork, report: &mut MulticonductorToBalancedReadiness) {
1529 for (i, sw) in net.switches.iter().enumerate() {
1530 if sw.open {
1531 report.diagnostics.push(
1532 StructuredDiagnostic::new(
1533 "LOWER.MULTI_TO_BALANCED.DROPPED_OPEN_SWITCH",
1534 DiagnosticSeverity::Info,
1535 DiagnosticStage::Lower,
1536 format!(
1537 "open switch {} is dropped by multiconductor to balanced lowering",
1538 sw.name
1539 ),
1540 )
1541 .with_element_path(format!("/model/multiconductor_network/switches/{i}")),
1542 );
1543 } else {
1544 report.diagnostics.push(
1545 StructuredDiagnostic::new(
1546 "LOWER.MULTI_TO_BALANCED.UNSUPPORTED_CLOSED_SWITCH",
1547 DiagnosticSeverity::Error,
1548 DiagnosticStage::Lower,
1549 format!(
1550 "closed switch {} is not lowered into a zero impedance balanced branch",
1551 sw.name
1552 ),
1553 )
1554 .with_element_path(format!("/model/multiconductor_network/switches/{i}")),
1555 );
1556 }
1557 }
1558}
1559
1560fn global_neutral_terminals(net: &MulticonductorNetwork) -> BTreeSet<String> {
1561 net.buses
1562 .iter()
1563 .flat_map(|bus| bus.grounded.iter().cloned())
1564 .collect()
1565}
1566
1567fn active_terminal_count(
1568 terminals: &[String],
1569 bus: Option<&DistBus>,
1570 neutral_terminals: &BTreeSet<String>,
1571) -> usize {
1572 terminals
1573 .iter()
1574 .filter(|terminal| !is_neutral_terminal(terminal, bus, neutral_terminals))
1575 .count()
1576}
1577
1578fn is_neutral_terminal(
1579 terminal: &str,
1580 bus: Option<&DistBus>,
1581 neutral_terminals: &BTreeSet<String>,
1582) -> bool {
1583 terminal == "0"
1584 || terminal.eq_ignore_ascii_case("n")
1585 || bus.is_some_and(|b| b.grounded.iter().any(|g| g == terminal))
1586 || neutral_terminals.contains(terminal)
1587}
1588
1589fn check_phase_reference(
1590 net: &MulticonductorNetwork,
1591 report: &mut MulticonductorToBalancedReadiness,
1592) {
1593 let neutral_terminals = global_neutral_terminals(net);
1594 let has_three_phase_source = net.sources.iter().any(|source| {
1595 let bus = net.bus(&source.bus);
1596 active_terminal_count(&source.terminal_map, bus, &neutral_terminals) == 3
1597 });
1598
1599 if !has_three_phase_source {
1600 report.diagnostics.push(StructuredDiagnostic::new(
1601 "LOWER.MULTI_TO_BALANCED.MISSING_PHASE_REFERENCE",
1602 DiagnosticSeverity::Error,
1603 DiagnosticStage::Lower,
1604 "multiconductor to balanced lowering requires a three phase voltage source reference",
1605 ));
1606 }
1607}
1608
1609fn check_transformers(net: &MulticonductorNetwork, report: &mut MulticonductorToBalancedReadiness) {
1610 for (i, transformer) in net.transformers.iter().enumerate() {
1611 report.diagnostics.push(
1612 StructuredDiagnostic::new(
1613 "LOWER.MULTI_TO_BALANCED.UNSUPPORTED_TRANSFORMER",
1614 DiagnosticSeverity::Error,
1615 DiagnosticStage::Lower,
1616 format!(
1617 "transformer {} is not supported by the multiconductor to balanced preflight",
1618 transformer.name
1619 ),
1620 )
1621 .with_element_path(format!("/model/multiconductor_network/transformers/{i}")),
1622 );
1623 }
1624}
1625
1626fn check_untyped_objects(
1627 net: &MulticonductorNetwork,
1628 report: &mut MulticonductorToBalancedReadiness,
1629) {
1630 for (i, obj) in net.untyped.iter().enumerate() {
1631 report.diagnostics.push(
1632 StructuredDiagnostic::new(
1633 "LOWER.MULTI_TO_BALANCED.UNSUPPORTED_OBJECT",
1634 DiagnosticSeverity::Error,
1635 DiagnosticStage::Lower,
1636 format!(
1637 "{} {} is preserved as an untyped object and cannot be lowered",
1638 obj.class, obj.name
1639 ),
1640 )
1641 .with_element_path(format!("/model/multiconductor_network/untyped/{i}")),
1642 );
1643 }
1644}