1use once_cell::sync::Lazy;
32use parking_lot::RwLock;
33use serde::{Deserialize, Serialize};
34use std::collections::{HashMap, HashSet};
35use std::hash::Hasher;
36use std::sync::atomic::{AtomicUsize, Ordering};
37use std::sync::{Arc, Mutex};
38use tracing::{debug, error, info, trace, warn};
39use xxhash_rust::xxh64::Xxh64;
40
41pub type BrainRegionIoRegistry = HashMap<String, (Vec<String>, Vec<String>)>;
43
44use crate::models::{BrainRegion, BrainRegionHierarchy, CorticalArea, CorticalAreaDimensions};
45use crate::types::{BduError, BduResult};
46use feagi_npu_neural::synapse::SYNAPSE_EDGE_ASSOCIATIVE_MEMORY;
47use feagi_npu_neural::types::NeuronId;
48use feagi_structures::genomic::cortical_area::{
49 CoreCorticalType, CorticalAreaType, CorticalID, CustomCorticalType,
50};
51use feagi_structures::genomic::descriptors::GenomeCoordinate3D;
52
53use feagi_state_manager::StateManager;
56
57const DATA_HASH_SEED: u64 = 0;
58const HASH_SAFE_MASK: u64 = (1u64 << 53) - 1;
60
61static INSTANCE: Lazy<Arc<RwLock<ConnectomeManager>>> =
66 Lazy::new(|| Arc::new(RwLock::new(ConnectomeManager::new())));
67
68#[derive(Debug, Clone, Serialize, Deserialize)]
70pub struct ConnectomeConfig {
71 pub max_neurons: usize,
73
74 pub max_synapses: usize,
76
77 pub backend: String,
79}
80
81impl Default for ConnectomeConfig {
82 fn default() -> Self {
83 Self {
84 max_neurons: 10_000_000,
85 max_synapses: 100_000_000,
86 backend: "cpu".to_string(),
87 }
88 }
89}
90
91#[derive(Debug, Clone, Serialize, Deserialize)]
93pub struct MemoryTwinDiagnostic {
94 pub src_cortical_area: String,
95 pub dst_cortical_area: String,
96 pub src_cortical_type: String,
97 pub dst_cortical_type: String,
98 pub mapping_exists: bool,
99 pub episodic_rule_count: usize,
100 pub twin_expected: bool,
101 pub twin_present: bool,
102 pub twin_cortical_area: Option<String>,
103 pub reason: Option<String>,
104 pub src_parent_region_id: Option<String>,
105 pub dst_parent_region_id: Option<String>,
106 pub twin_parent_region_id: Option<String>,
107 pub twin_parent_matches_src_parent: Option<bool>,
108}
109
110pub struct ConnectomeManager {
132 cortical_areas: HashMap<CorticalID, CorticalArea>,
134
135 cortical_id_to_idx: HashMap<CorticalID, u32>,
137
138 cortical_idx_to_id: HashMap<u32, CorticalID>,
140
141 next_cortical_idx: u32,
143
144 brain_regions: BrainRegionHierarchy,
146
147 morphology_registry: feagi_evolutionary::MorphologyRegistry,
149
150 config: ConnectomeConfig,
152
153 npu: Option<Arc<feagi_npu_burst_engine::TracingMutex<feagi_npu_burst_engine::DynamicNPU>>>,
159
160 #[cfg(feature = "plasticity")]
162 plasticity_executor:
163 Option<Arc<std::sync::Mutex<feagi_npu_plasticity::AsyncPlasticityExecutor>>>,
164
165 cached_neuron_count: Arc<AtomicUsize>,
168
169 cached_synapse_count: Arc<AtomicUsize>,
172
173 cached_neuron_counts_per_area: Arc<RwLock<HashMap<CorticalID, AtomicUsize>>>,
176
177 cached_synapse_counts_per_area: Arc<RwLock<HashMap<CorticalID, AtomicUsize>>>,
180
181 initialized: bool,
183
184 last_fatigue_calculation: Arc<Mutex<std::time::Instant>>,
186}
187
188type NeuronData = (
190 u32,
191 u32,
192 u32,
193 f32,
194 f32,
195 f32,
196 f32,
197 i32,
198 u16,
199 f32,
200 u16,
201 u16,
202 bool,
203);
204
205impl ConnectomeManager {
206 fn get_mapping_rules_for_destination<'a>(
207 mapping_dst: &'a serde_json::Map<String, serde_json::Value>,
208 dst_area_id: &CorticalID,
209 ) -> Option<&'a Vec<serde_json::Value>> {
210 if let Some(rules) = mapping_dst
211 .get(&dst_area_id.as_base_64())
212 .and_then(|value| value.as_array())
213 {
214 return Some(rules);
215 }
216
217 for (raw_dst_key, rules_value) in mapping_dst {
220 let parsed_dst = CorticalID::try_from_base_64(raw_dst_key)
221 .or_else(|_| CorticalID::try_from_legacy_ascii(raw_dst_key));
222 if parsed_dst.as_ref().ok() != Some(dst_area_id) {
223 continue;
224 }
225 if let Some(rules) = rules_value.as_array() {
226 return Some(rules);
227 }
228 }
229
230 None
231 }
232
233 fn new() -> Self {
235 Self {
236 cortical_areas: HashMap::new(),
237 cortical_id_to_idx: HashMap::new(),
238 cortical_idx_to_id: HashMap::new(),
239 next_cortical_idx: 7, brain_regions: BrainRegionHierarchy::new(),
242 morphology_registry: feagi_evolutionary::MorphologyRegistry::new(),
243 config: ConnectomeConfig::default(),
244 npu: None,
245 #[cfg(feature = "plasticity")]
246 plasticity_executor: None,
247 cached_neuron_count: Arc::new(AtomicUsize::new(0)),
248 cached_synapse_count: Arc::new(AtomicUsize::new(0)),
249 cached_neuron_counts_per_area: Arc::new(RwLock::new(HashMap::new())),
250 cached_synapse_counts_per_area: Arc::new(RwLock::new(HashMap::new())),
251 initialized: false,
252 last_fatigue_calculation: Arc::new(Mutex::new(
253 std::time::Instant::now() - std::time::Duration::from_secs(10),
254 )), }
256 }
257
258 pub fn instance() -> Arc<RwLock<ConnectomeManager>> {
275 Arc::clone(&*INSTANCE)
278 }
279
280 pub fn new_for_testing() -> Self {
308 Self {
309 cortical_areas: HashMap::new(),
310 cortical_id_to_idx: HashMap::new(),
311 cortical_idx_to_id: HashMap::new(),
312 next_cortical_idx: 0,
313 brain_regions: BrainRegionHierarchy::new(),
314 morphology_registry: feagi_evolutionary::MorphologyRegistry::new(),
315 config: ConnectomeConfig::default(),
316 npu: None,
317 #[cfg(feature = "plasticity")]
318 plasticity_executor: None,
319 cached_neuron_count: Arc::new(AtomicUsize::new(0)),
320 cached_synapse_count: Arc::new(AtomicUsize::new(0)),
321 cached_neuron_counts_per_area: Arc::new(RwLock::new(HashMap::new())),
322 cached_synapse_counts_per_area: Arc::new(RwLock::new(HashMap::new())),
323 initialized: false,
324 last_fatigue_calculation: Arc::new(Mutex::new(
325 std::time::Instant::now() - std::time::Duration::from_secs(10),
326 )),
327 }
328 }
329
330 pub fn new_for_testing_with_npu(
346 npu: Arc<feagi_npu_burst_engine::TracingMutex<feagi_npu_burst_engine::DynamicNPU>>,
347 ) -> Self {
348 Self {
349 cortical_areas: HashMap::new(),
350 cortical_id_to_idx: HashMap::new(),
351 cortical_idx_to_id: HashMap::new(),
352 next_cortical_idx: 7,
353 brain_regions: BrainRegionHierarchy::new(),
354 morphology_registry: feagi_evolutionary::MorphologyRegistry::new(),
355 config: ConnectomeConfig::default(),
356 npu: Some(npu),
357 #[cfg(feature = "plasticity")]
358 plasticity_executor: None,
359 cached_neuron_count: Arc::new(AtomicUsize::new(0)),
360 cached_synapse_count: Arc::new(AtomicUsize::new(0)),
361 cached_neuron_counts_per_area: Arc::new(RwLock::new(HashMap::new())),
362 cached_synapse_counts_per_area: Arc::new(RwLock::new(HashMap::new())),
363 initialized: false,
364 last_fatigue_calculation: Arc::new(Mutex::new(
365 std::time::Instant::now() - std::time::Duration::from_secs(10),
366 )),
367 }
368 }
369
370 pub fn setup_core_morphologies_for_testing(&mut self) {
380 feagi_evolutionary::add_core_morphologies(&mut self.morphology_registry);
381 }
382
383 #[cfg(test)]
392 pub fn reset_for_testing() {
393 let mut instance = INSTANCE.write();
394 *instance = Self::new();
395 }
396
397 fn update_state_hashes(
403 &self,
404 brain_regions: Option<u64>,
405 cortical_areas: Option<u64>,
406 brain_geometry: Option<u64>,
407 morphologies: Option<u64>,
408 cortical_mappings: Option<u64>,
409 ) {
410 let state_manager = StateManager::instance();
411 let state_manager = state_manager.read();
412 if let Some(value) = brain_regions {
413 state_manager.set_brain_regions_hash(value);
414 }
415 if let Some(value) = cortical_areas {
416 state_manager.set_cortical_areas_hash(value);
417 }
418 if let Some(value) = brain_geometry {
419 state_manager.set_brain_geometry_hash(value);
420 }
421 if let Some(value) = morphologies {
422 state_manager.set_morphologies_hash(value);
423 }
424 if let Some(value) = cortical_mappings {
425 state_manager.set_cortical_mappings_hash(value);
426 }
427 }
428
429 fn refresh_brain_regions_hash(&self) {
431 let hash = self.compute_brain_regions_hash();
432 self.update_state_hashes(Some(hash), None, None, None, None);
433 }
434
435 #[allow(dead_code)]
436 fn refresh_cortical_areas_hash(&self) {
438 let hash = self.compute_cortical_areas_hash();
439 self.update_state_hashes(None, Some(hash), None, None, None);
440 }
441
442 #[allow(dead_code)]
443 fn refresh_brain_geometry_hash(&self) {
445 let hash = self.compute_brain_geometry_hash();
446 self.update_state_hashes(None, None, Some(hash), None, None);
447 }
448
449 fn refresh_morphologies_hash(&self) {
451 let hash = self.compute_morphologies_hash();
452 self.update_state_hashes(None, None, None, Some(hash), None);
453 }
454
455 pub fn refresh_cortical_mappings_hash(&self) {
457 let hash = self.compute_cortical_mappings_hash();
458 self.update_state_hashes(None, None, None, None, Some(hash));
459 }
460
461 pub fn refresh_all_connectome_hashes(&self) {
466 self.update_state_hashes(
467 Some(self.compute_brain_regions_hash()),
468 Some(self.compute_cortical_areas_hash()),
469 Some(self.compute_brain_geometry_hash()),
470 Some(self.compute_morphologies_hash()),
471 Some(self.compute_cortical_mappings_hash()),
472 );
473 }
474
475 pub fn refresh_cortical_area_hashes(&self, properties_changed: bool, geometry_changed: bool) {
477 let cortical_hash = if properties_changed {
478 Some(self.compute_cortical_areas_hash())
479 } else {
480 None
481 };
482 let geometry_hash = if geometry_changed {
483 Some(self.compute_brain_geometry_hash())
484 } else {
485 None
486 };
487 self.update_state_hashes(None, cortical_hash, geometry_hash, None, None);
488 }
489
490 fn compute_brain_regions_hash(&self) -> u64 {
492 let mut hasher = Xxh64::new(DATA_HASH_SEED);
493 let mut region_ids: Vec<String> = self
494 .brain_regions
495 .get_all_region_ids()
496 .into_iter()
497 .cloned()
498 .collect();
499 region_ids.sort();
500
501 for region_id in region_ids {
502 let Some(region) = self.brain_regions.get_region(®ion_id) else {
503 continue;
504 };
505 Self::hash_str(&mut hasher, ®ion_id);
506 Self::hash_str(&mut hasher, ®ion.name);
507 Self::hash_str(&mut hasher, ®ion.region_type.to_string());
508 let parent_id = self.brain_regions.get_parent(®ion_id);
509 match parent_id {
510 Some(parent) => Self::hash_str(&mut hasher, parent),
511 None => Self::hash_str(&mut hasher, "null"),
512 }
513
514 let mut cortical_ids: Vec<String> = region
515 .cortical_areas
516 .iter()
517 .map(|id| id.as_base_64())
518 .collect();
519 cortical_ids.sort();
520 for cortical_id in cortical_ids {
521 Self::hash_str(&mut hasher, &cortical_id);
522 }
523
524 Self::hash_properties_filtered(&mut hasher, ®ion.properties, &[]);
525 }
526
527 hasher.finish() & HASH_SAFE_MASK
528 }
529
530 fn compute_cortical_areas_hash(&self) -> u64 {
532 let mut hasher = Xxh64::new(DATA_HASH_SEED);
533 let mut areas: Vec<&CorticalArea> = self.cortical_areas.values().collect();
534 areas.sort_by_key(|area| area.cortical_id.as_base_64());
535
536 for area in areas {
537 let cortical_id = area.cortical_id.as_base_64();
538 Self::hash_str(&mut hasher, &cortical_id);
539 hasher.write_u32(area.cortical_idx);
540 Self::hash_str(&mut hasher, &area.name);
541 Self::hash_str(&mut hasher, &area.cortical_type.to_string());
542
543 let excluded = ["cortical_mapping_dst", "upstream_cortical_areas"];
544 Self::hash_properties_filtered(&mut hasher, &area.properties, &excluded);
545 }
546
547 hasher.finish() & HASH_SAFE_MASK
548 }
549
550 fn compute_brain_geometry_hash(&self) -> u64 {
552 let mut hasher = Xxh64::new(DATA_HASH_SEED);
553 let mut areas: Vec<&CorticalArea> = self.cortical_areas.values().collect();
554 areas.sort_by_key(|area| area.cortical_id.as_base_64());
555
556 for area in areas {
557 let cortical_id = area.cortical_id.as_base_64();
558 Self::hash_str(&mut hasher, &cortical_id);
559
560 Self::hash_i32(&mut hasher, area.position.x);
561 Self::hash_i32(&mut hasher, area.position.y);
562 Self::hash_i32(&mut hasher, area.position.z);
563
564 Self::hash_u32(&mut hasher, area.dimensions.width);
565 Self::hash_u32(&mut hasher, area.dimensions.height);
566 Self::hash_u32(&mut hasher, area.dimensions.depth);
567
568 let coord_2d = area
569 .properties
570 .get("coordinate_2d")
571 .or_else(|| area.properties.get("coordinates_2d"));
572 match coord_2d {
573 Some(value) => Self::hash_json_value(&mut hasher, value),
574 None => Self::hash_str(&mut hasher, "null"),
575 }
576 }
577
578 hasher.finish() & HASH_SAFE_MASK
579 }
580
581 fn compute_morphologies_hash(&self) -> u64 {
583 let mut hasher = Xxh64::new(DATA_HASH_SEED);
584 let mut morphology_ids = self.morphology_registry.morphology_ids();
585 morphology_ids.sort();
586
587 for morphology_id in morphology_ids {
588 if let Some(morphology) = self.morphology_registry.get(&morphology_id) {
589 Self::hash_str(&mut hasher, &morphology_id);
590 Self::hash_str(&mut hasher, &format!("{:?}", morphology.morphology_type));
591 Self::hash_str(&mut hasher, &morphology.class);
592 if let Ok(value) = serde_json::to_value(&morphology.parameters) {
593 Self::hash_json_value(&mut hasher, &value);
594 }
595 }
596 }
597
598 hasher.finish() & HASH_SAFE_MASK
599 }
600
601 fn compute_cortical_mappings_hash(&self) -> u64 {
603 let mut hasher = Xxh64::new(DATA_HASH_SEED);
604 let mut areas: Vec<&CorticalArea> = self.cortical_areas.values().collect();
605 areas.sort_by_key(|area| area.cortical_id.as_base_64());
606
607 for area in areas {
608 let cortical_id = area.cortical_id.as_base_64();
609 Self::hash_str(&mut hasher, &cortical_id);
610 if let Some(serde_json::Value::Object(map)) =
611 area.properties.get("cortical_mapping_dst")
612 {
613 let mut dest_ids: Vec<&String> = map.keys().collect();
614 dest_ids.sort();
615 for dest_id in dest_ids {
616 Self::hash_str(&mut hasher, dest_id);
617 if let Some(value) = map.get(dest_id) {
618 Self::hash_json_value(&mut hasher, value);
619 }
620 }
621 } else {
622 Self::hash_str(&mut hasher, "null");
623 }
624 }
625
626 hasher.finish() & HASH_SAFE_MASK
627 }
628
629 fn hash_str(hasher: &mut Xxh64, value: &str) {
631 hasher.write(value.as_bytes());
632 hasher.write_u8(0);
633 }
634
635 fn hash_i32(hasher: &mut Xxh64, value: i32) {
637 hasher.write(&value.to_le_bytes());
638 }
639
640 fn hash_u32(hasher: &mut Xxh64, value: u32) {
642 hasher.write(&value.to_le_bytes());
643 }
644
645 fn hash_json_value(hasher: &mut Xxh64, value: &serde_json::Value) {
647 match value {
648 serde_json::Value::Null => {
649 hasher.write_u8(0);
650 }
651 serde_json::Value::Bool(val) => {
652 hasher.write_u8(1);
653 hasher.write_u8(*val as u8);
654 }
655 serde_json::Value::Number(num) => {
656 hasher.write_u8(2);
657 Self::hash_str(hasher, &num.to_string());
658 }
659 serde_json::Value::String(val) => {
660 hasher.write_u8(3);
661 Self::hash_str(hasher, val);
662 }
663 serde_json::Value::Array(items) => {
664 hasher.write_u8(4);
665 for item in items {
666 Self::hash_json_value(hasher, item);
667 }
668 }
669 serde_json::Value::Object(map) => {
670 hasher.write_u8(5);
671 let mut keys: Vec<&String> = map.keys().collect();
672 keys.sort();
673 for key in keys {
674 Self::hash_str(hasher, key);
675 if let Some(val) = map.get(key) {
676 Self::hash_json_value(hasher, val);
677 }
678 }
679 }
680 }
681 }
682
683 fn hash_properties_filtered(
685 hasher: &mut Xxh64,
686 properties: &HashMap<String, serde_json::Value>,
687 excluded_keys: &[&str],
688 ) {
689 let mut keys: Vec<&String> = properties.keys().collect();
690 keys.sort();
691 for key in keys {
692 if excluded_keys.contains(&key.as_str()) {
693 continue;
694 }
695 Self::hash_str(hasher, key);
696 if let Some(value) = properties.get(key) {
697 Self::hash_json_value(hasher, value);
698 }
699 }
700 }
701
702 pub fn add_cortical_area(&mut self, mut area: CorticalArea) -> BduResult<u32> {
723 if self.cortical_areas.contains_key(&area.cortical_id) {
725 return Err(BduError::InvalidArea(format!(
726 "Cortical area {} already exists",
727 area.cortical_id
728 )));
729 }
730
731 use feagi_structures::genomic::cortical_area::CoreCorticalType;
734
735 let death_id = CoreCorticalType::Death.to_cortical_id();
736 let power_id = CoreCorticalType::Power.to_cortical_id();
737 let fatigue_id = CoreCorticalType::Fatigue.to_cortical_id();
738 let pain_id = CoreCorticalType::Pain.to_cortical_id();
739 let pleasure_id = CoreCorticalType::Pleasure.to_cortical_id();
740 let fear_id = CoreCorticalType::Fear.to_cortical_id();
741 let hope_id = CoreCorticalType::Hope.to_cortical_id();
742
743 let is_death_area = area.cortical_id == death_id;
744 let is_power_area = area.cortical_id == power_id;
745 let is_fatigue_area = area.cortical_id == fatigue_id;
746 let is_pain_area = area.cortical_id == pain_id;
747 let is_pleasure_area = area.cortical_id == pleasure_id;
748 let is_fear_area = area.cortical_id == fear_id;
749 let is_hope_area = area.cortical_id == hope_id;
750
751 if is_death_area {
752 trace!(
753 target: "feagi-bdu",
754 "[CORE-AREA] Assigning RESERVED cortical_idx=0 to _death area (id={})",
755 area.cortical_id
756 );
757 area.cortical_idx = 0;
758 } else if is_power_area {
759 trace!(
760 target: "feagi-bdu",
761 "[CORE-AREA] Assigning RESERVED cortical_idx=1 to _power area (id={})",
762 area.cortical_id
763 );
764 area.cortical_idx = 1;
765 } else if is_fatigue_area {
766 trace!(
767 target: "feagi-bdu",
768 "[CORE-AREA] Assigning RESERVED cortical_idx=2 to _fatigue area (id={})",
769 area.cortical_id
770 );
771 area.cortical_idx = 2;
772 } else if is_pain_area {
773 trace!(
774 target: "feagi-bdu",
775 "[CORE-AREA] Assigning RESERVED cortical_idx=3 to _pain area (id={})",
776 area.cortical_id
777 );
778 area.cortical_idx = 3;
779 } else if is_pleasure_area {
780 trace!(
781 target: "feagi-bdu",
782 "[CORE-AREA] Assigning RESERVED cortical_idx=4 to _pleasure area (id={})",
783 area.cortical_id
784 );
785 area.cortical_idx = 4;
786 } else if is_fear_area {
787 trace!(
788 target: "feagi-bdu",
789 "[CORE-AREA] Assigning RESERVED cortical_idx=5 to _fear area (id={})",
790 area.cortical_id
791 );
792 area.cortical_idx = 5;
793 } else if is_hope_area {
794 trace!(
795 target: "feagi-bdu",
796 "[CORE-AREA] Assigning RESERVED cortical_idx=6 to _hope area (id={})",
797 area.cortical_id
798 );
799 area.cortical_idx = 6;
800 } else {
801 if area.cortical_idx == 0 {
803 area.cortical_idx = self.next_cortical_idx;
804 self.next_cortical_idx += 1;
805 trace!(
806 target: "feagi-bdu",
807 "[REGULAR-AREA] Assigned cortical_idx={} to area '{}' (should be >=7)",
808 area.cortical_idx,
809 area.cortical_id.as_base_64()
810 );
811 } else {
812 if area.cortical_idx <= 6 {
814 warn!(
815 "Regular area '{}' attempted to use RESERVED cortical_idx={}! Reassigning to next available.",
816 area.cortical_id, area.cortical_idx);
817 area.cortical_idx = self.next_cortical_idx;
818 self.next_cortical_idx += 1;
819 info!(
820 " Reassigned '{}' to cortical_idx={}",
821 area.cortical_id, area.cortical_idx
822 );
823 } else if self.cortical_idx_to_id.contains_key(&area.cortical_idx) {
824 return Err(BduError::InvalidArea(format!(
825 "Cortical index {} is already in use",
826 area.cortical_idx
827 )));
828 }
829
830 if area.cortical_idx >= self.next_cortical_idx {
832 self.next_cortical_idx = area.cortical_idx + 1;
833 }
834 }
835 }
836
837 let cortical_id = area.cortical_id;
838 let cortical_idx = area.cortical_idx;
839
840 self.cortical_id_to_idx.insert(cortical_id, cortical_idx);
842 self.cortical_idx_to_id.insert(cortical_idx, cortical_id);
843
844 area.properties
846 .insert("upstream_cortical_areas".to_string(), serde_json::json!([]));
847
848 let parent_region_id = area
857 .properties
858 .get("parent_region_id")
859 .and_then(|v| v.as_str())
860 .map(|s| s.to_string());
861
862 self.cortical_areas.insert(cortical_id, area);
864
865 if let Some(region_id) = parent_region_id {
867 let region = self
868 .brain_regions
869 .get_region_mut(®ion_id)
870 .ok_or_else(|| {
871 BduError::InvalidArea(format!(
872 "Unknown parent_region_id '{}' for cortical area {}",
873 region_id,
874 cortical_id.as_base_64()
875 ))
876 })?;
877 region.add_area(cortical_id);
878 }
879
880 {
883 let mut neuron_cache = self.cached_neuron_counts_per_area.write();
884 neuron_cache.insert(cortical_id, AtomicUsize::new(0));
885 let mut synapse_cache = self.cached_synapse_counts_per_area.write();
886 synapse_cache.insert(cortical_id, AtomicUsize::new(0));
887 }
888 let state_manager = StateManager::instance();
890 let state_manager = state_manager.read();
891 state_manager.init_cortical_area_stats(&cortical_id.as_base_64());
892
893 if let Some(ref npu) = self.npu {
897 trace!(target: "feagi-bdu", "[LOCK-TRACE] add_cortical_area: attempting NPU lock for registration");
898 if let Ok(mut npu_lock) = npu.lock() {
899 trace!(target: "feagi-bdu", "[LOCK-TRACE] add_cortical_area: acquired NPU lock for registration");
900 npu_lock.register_cortical_area(cortical_idx, cortical_id.as_base_64());
901 trace!(
902 target: "feagi-bdu",
903 "Registered cortical area idx={} -> '{}' in NPU",
904 cortical_idx,
905 cortical_id.as_base_64()
906 );
907 }
908 }
909
910 self.sync_cortical_area_flags_to_npu()?;
912
913 self.initialized = true;
914
915 self.refresh_cortical_area_hashes(true, true);
916 self.refresh_brain_regions_hash();
917
918 Ok(cortical_idx)
919 }
920
921 pub fn remove_cortical_area(&mut self, cortical_id: &CorticalID) -> BduResult<()> {
936 let area = self.cortical_areas.remove(cortical_id).ok_or_else(|| {
937 BduError::InvalidArea(format!("Cortical area {} does not exist", cortical_id))
938 })?;
939
940 self.cortical_id_to_idx.remove(cortical_id);
942 self.cortical_idx_to_id.remove(&area.cortical_idx);
943
944 self.refresh_cortical_area_hashes(true, true);
945 Ok(())
946 }
947
948 pub fn rename_cortical_area_id(
952 &mut self,
953 old_id: &CorticalID,
954 new_id: CorticalID,
955 new_cortical_type: CorticalAreaType,
956 ) -> BduResult<()> {
957 self.rename_cortical_area_id_with_options(old_id, new_id, new_cortical_type, true)
958 }
959
960 pub fn rename_cortical_area_id_with_options(
962 &mut self,
963 old_id: &CorticalID,
964 new_id: CorticalID,
965 new_cortical_type: CorticalAreaType,
966 update_npu_registry: bool,
967 ) -> BduResult<()> {
968 if !self.cortical_areas.contains_key(old_id) {
969 return Err(BduError::InvalidArea(format!(
970 "Cortical area {} does not exist",
971 old_id
972 )));
973 }
974 if self.cortical_areas.contains_key(&new_id) {
975 return Err(BduError::InvalidArea(format!(
976 "Cortical area {} already exists",
977 new_id
978 )));
979 }
980
981 let mut area = self.cortical_areas.remove(old_id).ok_or_else(|| {
982 BduError::InvalidArea(format!("Cortical area {} does not exist", old_id))
983 })?;
984 let cortical_idx = area.cortical_idx;
985 area.cortical_id = new_id;
986 area.cortical_type = new_cortical_type;
987
988 self.cortical_areas.insert(new_id, area);
989 self.cortical_id_to_idx.remove(old_id);
990 self.cortical_id_to_idx.insert(new_id, cortical_idx);
991 self.cortical_idx_to_id.insert(cortical_idx, new_id);
992
993 {
995 let mut neuron_cache = self.cached_neuron_counts_per_area.write();
996 if let Some(value) = neuron_cache.remove(old_id) {
997 neuron_cache.insert(new_id, value);
998 }
999 let mut synapse_cache = self.cached_synapse_counts_per_area.write();
1000 if let Some(value) = synapse_cache.remove(old_id) {
1001 synapse_cache.insert(new_id, value);
1002 }
1003 }
1004
1005 self.brain_regions.rename_cortical_area_id(old_id, new_id);
1007
1008 let old_id_str = old_id.as_base_64();
1010 let new_id_str = new_id.as_base_64();
1011 for area in self.cortical_areas.values_mut() {
1012 if let Some(mapping) = area
1013 .properties
1014 .get_mut("cortical_mapping_dst")
1015 .and_then(|v| v.as_object_mut())
1016 {
1017 if let Some(value) = mapping.remove(&old_id_str) {
1018 mapping.insert(new_id_str.clone(), value);
1019 }
1020 }
1021 }
1022
1023 if update_npu_registry {
1025 if let Some(ref npu) = self.npu {
1026 if let Ok(mut npu_lock) = npu.lock() {
1027 npu_lock.register_cortical_area(cortical_idx, new_id.as_base_64());
1028 }
1029 }
1030 }
1031
1032 self.refresh_cortical_area_hashes(true, true);
1033 self.refresh_brain_regions_hash();
1034 self.refresh_cortical_mappings_hash();
1035
1036 Ok(())
1037 }
1038
1039 pub fn get_cortical_area(&self, cortical_id: &CorticalID) -> Option<&CorticalArea> {
1041 self.cortical_areas.get(cortical_id)
1042 }
1043
1044 pub fn get_cortical_area_mut(&mut self, cortical_id: &CorticalID) -> Option<&mut CorticalArea> {
1046 self.cortical_areas.get_mut(cortical_id)
1047 }
1048
1049 pub fn get_cortical_idx(&self, cortical_id: &CorticalID) -> Option<u32> {
1051 self.cortical_id_to_idx.get(cortical_id).copied()
1052 }
1053
1054 pub fn get_parent_region_id_for_area(&self, cortical_id: &CorticalID) -> Option<String> {
1066 self.brain_regions.find_region_containing_area(cortical_id)
1067 }
1068
1069 pub fn has_cross_region_outgoing(&self, area: &CorticalID) -> bool {
1072 let Some(my_region) = self.brain_regions.find_region_containing_area(area) else {
1073 return false;
1074 };
1075 let Some(src_area) = self.cortical_areas.get(area) else {
1076 return false;
1077 };
1078 let Some(dst_obj) = src_area
1079 .properties
1080 .get("cortical_mapping_dst")
1081 .and_then(|v| v.as_object())
1082 else {
1083 return false;
1084 };
1085 for dst_key in dst_obj.keys() {
1086 let Ok(dst_id) = CorticalID::try_from_base_64(dst_key) else {
1087 continue;
1088 };
1089 match self.brain_regions.find_region_containing_area(&dst_id) {
1090 None => return true,
1091 Some(rid) if rid != my_region => return true,
1092 _ => {}
1093 }
1094 }
1095 false
1096 }
1097
1098 pub fn has_cross_region_incoming(&self, area: &CorticalID) -> bool {
1100 let Some(my_region) = self.brain_regions.find_region_containing_area(area) else {
1101 return false;
1102 };
1103 let my_b64 = area.as_base_64();
1104 for (src_id, src_area) in &self.cortical_areas {
1105 if src_id == area {
1106 continue;
1107 }
1108 let Some(dst_map) = src_area
1109 .properties
1110 .get("cortical_mapping_dst")
1111 .and_then(|v| v.as_object())
1112 else {
1113 continue;
1114 };
1115 if !dst_map.contains_key(&my_b64) {
1116 continue;
1117 }
1118 match self.brain_regions.find_region_containing_area(src_id) {
1119 None => return true,
1120 Some(rid) if rid != my_region => return true,
1121 _ => {}
1122 }
1123 }
1124 false
1125 }
1126
1127 pub fn recompute_brain_region_io_registry(&mut self) -> BduResult<BrainRegionIoRegistry> {
1138 use std::collections::HashSet;
1139
1140 let region_ids: Vec<String> = self
1141 .brain_regions
1142 .get_all_region_ids()
1143 .into_iter()
1144 .cloned()
1145 .collect();
1146
1147 let mut inputs_by_region: HashMap<String, HashSet<String>> = HashMap::new();
1148 let mut outputs_by_region: HashMap<String, HashSet<String>> = HashMap::new();
1149
1150 for rid in ®ion_ids {
1152 inputs_by_region.insert(rid.clone(), HashSet::new());
1153 outputs_by_region.insert(rid.clone(), HashSet::new());
1154 }
1155
1156 for (src_id, src_area) in &self.cortical_areas {
1157 let Some(dstmap) = src_area
1158 .properties
1159 .get("cortical_mapping_dst")
1160 .and_then(|v| v.as_object())
1161 else {
1162 continue;
1163 };
1164
1165 let Some(src_region_id) = self.brain_regions.find_region_containing_area(src_id) else {
1166 debug!(
1167 target: "feagi-bdu",
1168 "Skipping region IO for source area {} (not in any region)",
1169 src_id.as_base_64()
1170 );
1171 continue;
1172 };
1173
1174 for dst_id_str in dstmap.keys() {
1175 let dst_id = CorticalID::try_from_base_64(dst_id_str).map_err(|e| {
1176 BduError::InvalidArea(format!(
1177 "Unable to recompute region IO: invalid destination cortical id '{}' in cortical_mapping_dst for {}: {}",
1178 dst_id_str,
1179 src_id.as_base_64(),
1180 e
1181 ))
1182 })?;
1183
1184 let Some(dst_region_id) = self.brain_regions.find_region_containing_area(&dst_id)
1185 else {
1186 warn!(
1187 target: "feagi-bdu",
1188 "Skipping region IO for destination area {} (not in any region)",
1189 dst_id.as_base_64()
1190 );
1191 continue;
1192 };
1193
1194 if src_region_id == dst_region_id {
1195 continue;
1196 }
1197
1198 outputs_by_region
1199 .entry(src_region_id.clone())
1200 .or_default()
1201 .insert(src_id.as_base_64());
1202 inputs_by_region
1203 .entry(dst_region_id.clone())
1204 .or_default()
1205 .insert(dst_id.as_base_64());
1206 }
1207 }
1208
1209 for rid in ®ion_ids {
1211 let Some(region) = self.brain_regions.get_region(rid) else {
1212 continue;
1213 };
1214 let in_ids = crate::region_io_designation::parse_designated_id_list(
1215 region
1216 .properties
1217 .get(crate::region_io_designation::DESIGNATED_INPUTS_KEY),
1218 )?;
1219 let out_ids = crate::region_io_designation::parse_designated_id_list(
1220 region
1221 .properties
1222 .get(crate::region_io_designation::DESIGNATED_OUTPUTS_KEY),
1223 )?;
1224 for id in in_ids {
1225 inputs_by_region
1226 .entry(rid.clone())
1227 .or_default()
1228 .insert(id.as_base_64());
1229 }
1230 for id in out_ids {
1231 outputs_by_region
1232 .entry(rid.clone())
1233 .or_default()
1234 .insert(id.as_base_64());
1235 }
1236 }
1237
1238 let mut computed: HashMap<String, (Vec<String>, Vec<String>)> = HashMap::new();
1239 for rid in region_ids {
1240 let mut inputs: Vec<String> = inputs_by_region
1241 .remove(&rid)
1242 .unwrap_or_default()
1243 .into_iter()
1244 .collect();
1245 let mut outputs: Vec<String> = outputs_by_region
1246 .remove(&rid)
1247 .unwrap_or_default()
1248 .into_iter()
1249 .collect();
1250
1251 inputs.sort();
1252 outputs.sort();
1253
1254 let region = self.brain_regions.get_region_mut(&rid).ok_or_else(|| {
1255 BduError::InvalidArea(format!(
1256 "Unable to recompute region IO: region '{}' not found in hierarchy",
1257 rid
1258 ))
1259 })?;
1260
1261 if inputs.is_empty() {
1262 region.properties.remove("inputs");
1263 } else {
1264 region
1265 .properties
1266 .insert("inputs".to_string(), serde_json::json!(inputs.clone()));
1267 }
1268
1269 if outputs.is_empty() {
1270 region.properties.remove("outputs");
1271 } else {
1272 region
1273 .properties
1274 .insert("outputs".to_string(), serde_json::json!(outputs.clone()));
1275 }
1276
1277 computed.insert(rid, (inputs, outputs));
1278 }
1279
1280 self.refresh_brain_regions_hash();
1281
1282 Ok(computed)
1283 }
1284
1285 pub fn get_root_region_id(&self) -> Option<String> {
1291 self.brain_regions.get_root_region_id()
1292 }
1293
1294 pub fn get_cortical_id(&self, cortical_idx: u32) -> Option<&CorticalID> {
1296 self.cortical_idx_to_id.get(&cortical_idx)
1297 }
1298
1299 pub fn get_all_cortical_idx_to_id_mappings(&self) -> ahash::AHashMap<u32, String> {
1302 self.cortical_idx_to_id
1303 .iter()
1304 .map(|(idx, id)| (*idx, id.as_base_64()))
1305 .collect()
1306 }
1307
1308 pub fn get_all_visualization_granularities(&self) -> ahash::AHashMap<u32, (u32, u32, u32)> {
1313 let mut granularities = ahash::AHashMap::new();
1314 for (cortical_id, area) in &self.cortical_areas {
1315 let cortical_idx = self
1316 .cortical_id_to_idx
1317 .get(cortical_id)
1318 .copied()
1319 .unwrap_or(0);
1320
1321 if let Some(granularity_json) = area.properties.get("visualization_voxel_granularity") {
1324 if let Some(arr) = granularity_json.as_array() {
1325 if arr.len() == 3 {
1326 let x_opt = arr[0]
1327 .as_u64()
1328 .or_else(|| arr[0].as_f64().map(|f| f as u64));
1329 let y_opt = arr[1]
1330 .as_u64()
1331 .or_else(|| arr[1].as_f64().map(|f| f as u64));
1332 let z_opt = arr[2]
1333 .as_u64()
1334 .or_else(|| arr[2].as_f64().map(|f| f as u64));
1335
1336 if let (Some(x), Some(y), Some(z)) = (x_opt, y_opt, z_opt) {
1337 let granularity = (x as u32, y as u32, z as u32);
1338 if granularity != (1, 1, 1) {
1340 granularities.insert(cortical_idx, granularity);
1341 }
1342 }
1343 }
1344 }
1345 }
1346 }
1347 granularities
1348 }
1349
1350 pub fn get_cortical_area_ids(&self) -> Vec<&CorticalID> {
1352 self.cortical_areas.keys().collect()
1353 }
1354
1355 pub fn get_cortical_area_count(&self) -> usize {
1357 self.cortical_areas.len()
1358 }
1359
1360 pub fn get_upstream_cortical_areas(&self, target_cortical_id: &CorticalID) -> Vec<u32> {
1374 if let Some(area) = self.cortical_areas.get(target_cortical_id) {
1375 if let Some(upstream_prop) = area.properties.get("upstream_cortical_areas") {
1376 if let Some(upstream_array) = upstream_prop.as_array() {
1377 return upstream_array
1378 .iter()
1379 .filter_map(|v| v.as_u64().map(|n| n as u32))
1380 .collect();
1381 }
1382 }
1383
1384 warn!(target: "feagi-bdu",
1386 "Cortical area '{}' missing 'upstream_cortical_areas' property - treating as empty",
1387 target_cortical_id.as_base_64()
1388 );
1389 }
1390
1391 Vec::new()
1392 }
1393
1394 pub fn get_episodic_memory_upstream_cortical_areas(
1400 &self,
1401 target_cortical_id: &CorticalID,
1402 ) -> Vec<u32> {
1403 let mut episodic_upstream = Vec::new();
1404 for (src_id, src_area) in &self.cortical_areas {
1405 if src_id == target_cortical_id {
1406 continue;
1407 }
1408 let Some(mapping_dst) = src_area
1409 .properties
1410 .get("cortical_mapping_dst")
1411 .and_then(|v| v.as_object())
1412 else {
1413 continue;
1414 };
1415 let Some(rules) =
1416 Self::get_mapping_rules_for_destination(mapping_dst, target_cortical_id)
1417 else {
1418 continue;
1419 };
1420 if !Self::mapping_has_episodic_rule(rules) {
1421 continue;
1422 }
1423 let Some(&src_idx) = self.cortical_id_to_idx.get(src_id) else {
1424 continue;
1425 };
1426 episodic_upstream.push(src_idx);
1427 }
1428
1429 episodic_upstream.sort_unstable();
1430 episodic_upstream.dedup();
1431 episodic_upstream
1432 }
1433
1434 fn mapping_has_episodic_rule(rules: &[serde_json::Value]) -> bool {
1435 rules.iter().any(|rule| {
1436 let morphology_id = rule
1437 .as_object()
1438 .and_then(|obj| obj.get("morphology_id"))
1439 .and_then(|v| v.as_str())
1440 .or_else(|| {
1441 rule.as_array()
1442 .and_then(|arr| arr.first())
1443 .and_then(|v| v.as_str())
1444 });
1445 morphology_id == Some("episodic_memory")
1446 })
1447 }
1448
1449 pub fn filter_non_memory_upstream_areas(&self, upstream: &[u32]) -> Vec<u32> {
1451 upstream
1452 .iter()
1453 .filter_map(|idx| {
1454 let cortical_id = self.cortical_idx_to_id.get(idx)?;
1455 let area = self.cortical_areas.get(cortical_id)?;
1456 if matches!(area.cortical_type, CorticalAreaType::Memory(_)) {
1457 None
1458 } else {
1459 Some(*idx)
1460 }
1461 })
1462 .collect()
1463 }
1464
1465 pub fn refresh_upstream_cortical_areas_from_mappings(
1469 &mut self,
1470 target_cortical_id: &CorticalID,
1471 ) -> Vec<u32> {
1472 use std::collections::HashSet;
1473 let target_id_str = target_cortical_id.as_base_64();
1474 let mut upstream_idxs = HashSet::new();
1475 for (src_id, src_area) in &self.cortical_areas {
1476 if src_id == target_cortical_id {
1477 continue;
1478 }
1479 if let Some(mapping) = src_area
1480 .properties
1481 .get("cortical_mapping_dst")
1482 .and_then(|v| v.as_object())
1483 {
1484 if mapping.contains_key(&target_id_str) {
1485 if let Some(&src_idx) = self.cortical_id_to_idx.get(src_id) {
1486 upstream_idxs.insert(src_idx);
1487 }
1488 }
1489 }
1490 }
1491
1492 let mut upstream_list: Vec<u32> = upstream_idxs.into_iter().collect();
1493 upstream_list.sort_unstable();
1494
1495 if let Some(target_area) = self.cortical_areas.get_mut(target_cortical_id) {
1496 target_area.properties.insert(
1497 "upstream_cortical_areas".to_string(),
1498 serde_json::json!(upstream_list),
1499 );
1500 }
1501
1502 self.get_upstream_cortical_areas(target_cortical_id)
1503 }
1504
1505 pub fn add_upstream_area(&mut self, target_cortical_id: &CorticalID, src_cortical_idx: u32) {
1515 if let Some(area) = self.cortical_areas.get_mut(target_cortical_id) {
1516 let upstream_array = area
1517 .properties
1518 .entry("upstream_cortical_areas".to_string())
1519 .or_insert_with(|| serde_json::json!([]));
1520
1521 if let Some(arr) = upstream_array.as_array_mut() {
1522 let src_value = serde_json::json!(src_cortical_idx);
1523 if !arr.contains(&src_value) {
1524 arr.push(src_value);
1525 debug!(target: "feagi-bdu",
1526 "Added upstream area idx={} to cortical area '{}'",
1527 src_cortical_idx, target_cortical_id.as_base_64()
1528 );
1529 }
1530 }
1531 }
1532 }
1533
1534 pub fn get_memory_twin_for_upstream_idx(
1536 &self,
1537 memory_area_idx: u32,
1538 upstream_idx: u32,
1539 ) -> Option<CorticalID> {
1540 let memory_id = self.cortical_idx_to_id.get(&memory_area_idx)?;
1541 let upstream_id = self.cortical_idx_to_id.get(&upstream_idx)?;
1542 let area = self.cortical_areas.get(memory_id)?;
1543 let mapping = area
1544 .properties
1545 .get("memory_twin_areas")
1546 .and_then(|v| v.as_object())?;
1547 let twin_b64 = mapping.get(&upstream_id.as_base_64())?.as_str()?;
1548 CorticalID::try_from_base_64(twin_b64).ok()
1549 }
1550
1551 pub fn diagnose_memory_twin_for_mapping(
1558 &self,
1559 src_area_id: &CorticalID,
1560 dst_area_id: &CorticalID,
1561 ) -> BduResult<MemoryTwinDiagnostic> {
1562 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
1563 BduError::InvalidArea(format!(
1564 "Source area not found: {}",
1565 src_area_id.as_base_64()
1566 ))
1567 })?;
1568 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
1569 BduError::InvalidArea(format!(
1570 "Destination area not found: {}",
1571 dst_area_id.as_base_64()
1572 ))
1573 })?;
1574
1575 let src_is_memory = matches!(src_area.cortical_type, CorticalAreaType::Memory(_));
1576 let dst_is_memory = matches!(dst_area.cortical_type, CorticalAreaType::Memory(_));
1577
1578 let rules_opt = src_area
1579 .properties
1580 .get("cortical_mapping_dst")
1581 .and_then(|v| v.as_object())
1582 .and_then(|mapping_dst| {
1583 Self::get_mapping_rules_for_destination(mapping_dst, dst_area_id)
1584 });
1585 let mapping_exists = rules_opt.is_some();
1586 let episodic_rule_count = rules_opt
1587 .map(|rules| {
1588 rules
1589 .iter()
1590 .filter(|rule| {
1591 let morphology_id = rule
1592 .as_object()
1593 .and_then(|obj| obj.get("morphology_id"))
1594 .and_then(|v| v.as_str())
1595 .or_else(|| {
1596 rule.as_array()
1597 .and_then(|arr| arr.first())
1598 .and_then(|v| v.as_str())
1599 });
1600 morphology_id == Some("episodic_memory")
1601 })
1602 .count()
1603 })
1604 .unwrap_or(0);
1605
1606 let twin_expected =
1607 mapping_exists && episodic_rule_count > 0 && dst_is_memory && !src_is_memory;
1608 let twin_cortical_area = dst_area
1609 .properties
1610 .get("memory_twin_areas")
1611 .and_then(|v| v.as_object())
1612 .and_then(|map| map.get(&src_area_id.as_base_64()))
1613 .and_then(|v| v.as_str())
1614 .map(ToString::to_string);
1615 let twin_present = twin_cortical_area.is_some();
1616
1617 let twin_parent_region_id = twin_cortical_area.as_ref().and_then(|twin_b64| {
1618 CorticalID::try_from_base_64(twin_b64)
1619 .ok()
1620 .and_then(|twin_id| {
1621 self.cortical_areas.get(&twin_id).and_then(|area| {
1622 area.properties
1623 .get("parent_region_id")
1624 .and_then(|v| v.as_str())
1625 .map(ToString::to_string)
1626 })
1627 })
1628 });
1629 let src_parent_region_id = src_area
1630 .properties
1631 .get("parent_region_id")
1632 .and_then(|v| v.as_str())
1633 .map(ToString::to_string);
1634 let dst_parent_region_id = dst_area
1635 .properties
1636 .get("parent_region_id")
1637 .and_then(|v| v.as_str())
1638 .map(ToString::to_string);
1639 let twin_parent_matches_src_parent = match (&twin_parent_region_id, &src_parent_region_id) {
1640 (Some(twin_parent), Some(src_parent)) => Some(twin_parent == src_parent),
1641 (None, None) if twin_present => Some(true),
1642 _ if twin_present => Some(false),
1643 _ => None,
1644 };
1645
1646 let reason = if !mapping_exists {
1647 Some("no_mapping_rule_between_src_and_dst".to_string())
1648 } else if episodic_rule_count == 0 {
1649 Some("mapping_exists_but_not_episodic_memory".to_string())
1650 } else if !dst_is_memory {
1651 Some("destination_is_not_memory_area".to_string())
1652 } else if src_is_memory {
1653 Some("upstream_is_memory_area_twin_not_supported".to_string())
1654 } else if !twin_present {
1655 Some("twin_expected_but_missing".to_string())
1656 } else if twin_parent_matches_src_parent == Some(false) {
1657 Some("twin_parent_region_mismatch_with_source".to_string())
1658 } else {
1659 None
1660 };
1661
1662 Ok(MemoryTwinDiagnostic {
1663 src_cortical_area: src_area_id.as_base_64(),
1664 dst_cortical_area: dst_area_id.as_base_64(),
1665 src_cortical_type: src_area.cortical_type.to_string(),
1666 dst_cortical_type: dst_area.cortical_type.to_string(),
1667 mapping_exists,
1668 episodic_rule_count,
1669 twin_expected,
1670 twin_present,
1671 twin_cortical_area,
1672 reason,
1673 src_parent_region_id,
1674 dst_parent_region_id,
1675 twin_parent_region_id,
1676 twin_parent_matches_src_parent,
1677 })
1678 }
1679
1680 pub fn ensure_memory_twin_area(
1682 &mut self,
1683 memory_area_id: &CorticalID,
1684 upstream_area_id: &CorticalID,
1685 ) -> BduResult<CorticalID> {
1686 use crate::models::CorticalAreaExt;
1687
1688 let register_replay_mapping = |manager: &mut ConnectomeManager,
1689 twin_id: &CorticalID|
1690 -> BduResult<()> {
1691 let Some(npu) = manager.npu.as_ref() else {
1692 return Ok(());
1693 };
1694 let memory_area_idx =
1695 *manager
1696 .cortical_id_to_idx
1697 .get(memory_area_id)
1698 .ok_or_else(|| {
1699 BduError::InvalidArea(format!(
1700 "Memory area idx missing for {}",
1701 memory_area_id.as_base_64()
1702 ))
1703 })?;
1704 let upstream_area_idx = *manager
1705 .cortical_id_to_idx
1706 .get(upstream_area_id)
1707 .ok_or_else(|| {
1708 BduError::InvalidArea(format!(
1709 "Upstream area idx missing for {}",
1710 upstream_area_id.as_base_64()
1711 ))
1712 })?;
1713 let twin_area_idx = *manager.cortical_id_to_idx.get(twin_id).ok_or_else(|| {
1714 BduError::InvalidArea(format!(
1715 "Twin area idx missing for {}",
1716 twin_id.as_base_64()
1717 ))
1718 })?;
1719 let twin_area = manager.cortical_areas.get(twin_id).ok_or_else(|| {
1720 BduError::InvalidArea(format!("Twin area {} not found", twin_id.as_base_64()))
1721 })?;
1722 let potential = twin_area.firing_threshold() + twin_area.firing_threshold_increment();
1723 if let Ok(mut npu_lock) = npu.lock() {
1724 npu_lock.register_memory_twin_mapping(
1725 memory_area_idx,
1726 upstream_area_idx,
1727 twin_area_idx,
1728 potential,
1729 );
1730 }
1731 Ok(())
1732 };
1733
1734 let memory_area = self.cortical_areas.get(memory_area_id).ok_or_else(|| {
1735 BduError::InvalidArea(format!(
1736 "Memory area {} not found",
1737 memory_area_id.as_base_64()
1738 ))
1739 })?;
1740 let upstream_area = self.cortical_areas.get(upstream_area_id).ok_or_else(|| {
1741 BduError::InvalidArea(format!(
1742 "Upstream area {} not found",
1743 upstream_area_id.as_base_64()
1744 ))
1745 })?;
1746
1747 if matches!(upstream_area.cortical_type, CorticalAreaType::Memory(_)) {
1748 return Err(BduError::InvalidArea(format!(
1749 "Upstream area {} is memory type; twin creation is only for non-memory areas",
1750 upstream_area_id.as_base_64()
1751 )));
1752 }
1753
1754 if let Some(existing) = memory_area
1755 .properties
1756 .get("memory_twin_areas")
1757 .and_then(|v| v.as_object())
1758 .and_then(|map| map.get(&upstream_area_id.as_base_64()))
1759 .and_then(|v| v.as_str())
1760 .and_then(|s| CorticalID::try_from_base_64(s).ok())
1761 {
1762 self.ensure_memory_replay_mapping(memory_area_id, &existing)?;
1763 register_replay_mapping(self, &existing)?;
1764 self.refresh_cortical_mappings_hash();
1765 return Ok(existing);
1766 }
1767
1768 let twin_id = self.build_memory_twin_id(memory_area_id, upstream_area_id)?;
1769 if self.cortical_areas.contains_key(&twin_id) {
1770 if let Some(existing) = self.cortical_areas.get_mut(&twin_id) {
1771 let expected_source = upstream_area_id.as_base_64();
1772 let expected_target = memory_area_id.as_base_64();
1773 let existing_source = existing
1774 .properties
1775 .get("memory_twin_of")
1776 .and_then(|v| v.as_str());
1777 let existing_target = existing
1778 .properties
1779 .get("memory_twin_for")
1780 .and_then(|v| v.as_str());
1781 if existing_source != Some(expected_source.as_str())
1782 || existing_target != Some(expected_target.as_str())
1783 {
1784 warn!(
1785 target: "feagi-bdu",
1786 "Twin cortical ID properties missing/mismatched for {} -> {}; repairing",
1787 upstream_area_id.as_base_64(),
1788 memory_area_id.as_base_64()
1789 );
1790 existing.properties.insert(
1791 "memory_twin_of".to_string(),
1792 serde_json::json!(expected_source),
1793 );
1794 existing.properties.insert(
1795 "memory_twin_for".to_string(),
1796 serde_json::json!(expected_target),
1797 );
1798 }
1799 }
1800 self.set_memory_twin_mapping(memory_area_id, upstream_area_id, &twin_id);
1801 self.ensure_memory_replay_mapping(memory_area_id, &twin_id)?;
1802 register_replay_mapping(self, &twin_id)?;
1803 self.refresh_cortical_mappings_hash();
1804 return Ok(twin_id);
1805 }
1806
1807 let twin_name = format!("{}_twin", upstream_area.name.replace(' ', "_"));
1808 let twin_type = CorticalAreaType::Custom(CustomCorticalType::LeakyIntegrateFire);
1809 let twin_position = self.build_memory_twin_position(memory_area, upstream_area);
1810 let mut twin_area = CorticalArea::new(
1811 twin_id,
1812 0,
1813 twin_name,
1814 upstream_area.dimensions,
1815 twin_position,
1816 twin_type,
1817 )?;
1818 twin_area.properties = self.build_memory_twin_properties(
1819 memory_area,
1820 upstream_area,
1821 memory_area_id,
1822 upstream_area_id,
1823 );
1824
1825 let _twin_idx = self.add_cortical_area(twin_area)?;
1826 let _ = self.create_neurons_for_area(&twin_id);
1827
1828 self.set_memory_twin_mapping(memory_area_id, upstream_area_id, &twin_id);
1829 self.ensure_memory_replay_mapping(memory_area_id, &twin_id)?;
1830 register_replay_mapping(self, &twin_id)?;
1831 self.refresh_cortical_mappings_hash();
1832 Ok(twin_id)
1833 }
1834
1835 fn build_memory_twin_position(
1836 &self,
1837 _memory_area: &CorticalArea,
1838 upstream_area: &CorticalArea,
1839 ) -> GenomeCoordinate3D {
1840 let width = upstream_area.dimensions.width as f32;
1841 let margin = (width * 0.25).ceil() as i32;
1842 let offset = upstream_area.dimensions.width as i32 + margin;
1843 GenomeCoordinate3D::new(
1844 upstream_area.position.x + offset,
1845 upstream_area.position.y,
1846 upstream_area.position.z,
1847 )
1848 }
1849
1850 fn build_memory_twin_id(
1851 &self,
1852 memory_area_id: &CorticalID,
1853 upstream_area_id: &CorticalID,
1854 ) -> BduResult<CorticalID> {
1855 let mut hasher = Xxh64::new(DATA_HASH_SEED);
1856 hasher.write(memory_area_id.as_base_64().as_bytes());
1857 hasher.write(upstream_area_id.as_base_64().as_bytes());
1858 hasher.write(b"memory_twin");
1859 let hash = hasher.finish();
1860 let mut bytes = hash.to_be_bytes();
1861 bytes[0] = b'c';
1862 CorticalID::try_from_bytes(&bytes)
1863 .map_err(|e| BduError::Internal(format!("Failed to build twin cortical ID: {}", e)))
1864 }
1865
1866 fn build_memory_twin_properties(
1867 &self,
1868 _memory_area: &CorticalArea,
1869 upstream_area: &CorticalArea,
1870 memory_area_id: &CorticalID,
1871 upstream_area_id: &CorticalID,
1872 ) -> HashMap<String, serde_json::Value> {
1873 let mut props = upstream_area.properties.clone();
1874 props.remove("cortical_mapping_dst");
1875 props.remove("upstream_cortical_areas");
1876 props.remove("parent_region_id");
1877 props.insert("cortical_group".to_string(), serde_json::json!("CUSTOM"));
1878 props.insert("is_mem_type".to_string(), serde_json::json!(false));
1879 props.insert(
1880 "memory_twin_of".to_string(),
1881 serde_json::json!(upstream_area_id.as_base_64()),
1882 );
1883 props.insert(
1884 "memory_twin_for".to_string(),
1885 serde_json::json!(memory_area_id.as_base_64()),
1886 );
1887 if let Some(parent_region_id) = upstream_area
1888 .properties
1889 .get("parent_region_id")
1890 .and_then(|v| v.as_str())
1891 {
1892 props.insert(
1893 "parent_region_id".to_string(),
1894 serde_json::json!(parent_region_id),
1895 );
1896 }
1897 props
1898 }
1899
1900 fn set_memory_twin_mapping(
1901 &mut self,
1902 memory_area_id: &CorticalID,
1903 upstream_area_id: &CorticalID,
1904 twin_id: &CorticalID,
1905 ) {
1906 if let Some(memory_area) = self.cortical_areas.get_mut(memory_area_id) {
1907 let mapping = memory_area
1908 .properties
1909 .entry("memory_twin_areas".to_string())
1910 .or_insert_with(|| serde_json::json!({}));
1911 if let Some(map) = mapping.as_object_mut() {
1912 map.insert(
1913 upstream_area_id.as_base_64(),
1914 serde_json::json!(twin_id.as_base_64()),
1915 );
1916 }
1917 }
1918 }
1919
1920 fn ensure_memory_replay_mapping(
1921 &mut self,
1922 memory_area_id: &CorticalID,
1923 twin_id: &CorticalID,
1924 ) -> BduResult<()> {
1925 if !self.morphology_registry.contains("memory_replay") {
1926 feagi_evolutionary::add_core_morphologies(&mut self.morphology_registry);
1927 }
1928 self.refresh_morphologies_hash();
1929 let mapping_data = vec![serde_json::json!({
1930 "morphology_id": "memory_replay",
1931 "morphology_scalar": [1, 1, 1],
1932 "postSynapticCurrent_multiplier": 1,
1933 "plasticity_flag": false,
1934 "plasticity_constant": 0,
1935 "ltp_multiplier": 0,
1936 "ltd_multiplier": 0,
1937 "plasticity_window": 0,
1938 })];
1939 self.update_cortical_mapping(memory_area_id, twin_id, mapping_data)?;
1940 let _ = self.regenerate_synapses_for_mapping(memory_area_id, twin_id)?;
1941 self.refresh_cortical_area_hashes(true, false);
1943 Ok(())
1944 }
1945
1946 pub fn teardown_owned_memory_twin_for_mapping(
1951 &mut self,
1952 memory_area_id: &CorticalID,
1953 upstream_area_id: &CorticalID,
1954 ) -> BduResult<Option<CorticalID>> {
1955 let upstream_id = upstream_area_id.as_base_64();
1956 let twin_id = self
1957 .cortical_areas
1958 .get(memory_area_id)
1959 .and_then(|memory_area| memory_area.properties.get("memory_twin_areas"))
1960 .and_then(|value| value.as_object())
1961 .and_then(|twins| twins.get(&upstream_id))
1962 .and_then(|value| value.as_str())
1963 .map(CorticalID::try_from_base_64)
1964 .transpose()
1965 .map_err(|error| {
1966 BduError::InvalidArea(format!(
1967 "Invalid owned memory twin ID for {} -> {}: {}",
1968 upstream_area_id.as_base_64(),
1969 memory_area_id.as_base_64(),
1970 error
1971 ))
1972 })?;
1973 let Some(twin_id) = twin_id else {
1974 return Ok(None);
1975 };
1976
1977 let twin = self.cortical_areas.get(&twin_id).ok_or_else(|| {
1978 BduError::InvalidArea(format!(
1979 "Owned memory twin {} for {} -> {} does not exist",
1980 twin_id.as_base_64(),
1981 upstream_area_id.as_base_64(),
1982 memory_area_id.as_base_64()
1983 ))
1984 })?;
1985 let owned_by_source = twin
1986 .properties
1987 .get("memory_twin_of")
1988 .and_then(|value| value.as_str())
1989 == Some(upstream_id.as_str());
1990 let owned_by_memory = twin
1991 .properties
1992 .get("memory_twin_for")
1993 .and_then(|value| value.as_str())
1994 == Some(memory_area_id.as_base_64().as_str());
1995 if !owned_by_source || !owned_by_memory {
1996 return Err(BduError::InvalidArea(format!(
1997 "Cortical area {} is not the generated twin owned by {} -> {}",
1998 twin_id.as_base_64(),
1999 upstream_area_id.as_base_64(),
2000 memory_area_id.as_base_64()
2001 )));
2002 }
2003
2004 let memory_idx = *self.cortical_id_to_idx.get(memory_area_id).ok_or_else(|| {
2005 BduError::InvalidArea(format!(
2006 "Memory area idx missing for {}",
2007 memory_area_id.as_base_64()
2008 ))
2009 })?;
2010 let upstream_idx = *self
2011 .cortical_id_to_idx
2012 .get(upstream_area_id)
2013 .ok_or_else(|| {
2014 BduError::InvalidArea(format!(
2015 "Upstream area idx missing for {}",
2016 upstream_area_id.as_base_64()
2017 ))
2018 })?;
2019
2020 self.update_cortical_mapping(memory_area_id, &twin_id, Vec::new())?;
2021 let _ = self.regenerate_synapses_for_mapping(memory_area_id, &twin_id)?;
2022 if let Some(npu) = &self.npu {
2023 npu.lock()
2024 .unwrap()
2025 .unregister_memory_twin_mapping(memory_idx, upstream_idx);
2026 }
2027
2028 let memory_area = self.cortical_areas.get_mut(memory_area_id).ok_or_else(|| {
2029 BduError::InvalidArea(format!(
2030 "Memory area {} not found",
2031 memory_area_id.as_base_64()
2032 ))
2033 })?;
2034 let twins = memory_area
2035 .properties
2036 .get_mut("memory_twin_areas")
2037 .and_then(|value| value.as_object_mut())
2038 .ok_or_else(|| {
2039 BduError::InvalidArea(format!(
2040 "Memory area {} has invalid memory_twin_areas metadata",
2041 memory_area_id.as_base_64()
2042 ))
2043 })?;
2044 twins.remove(&upstream_id);
2045 if twins.is_empty() {
2046 memory_area.properties.remove("memory_twin_areas");
2047 }
2048
2049 for region_id in self
2050 .get_brain_region_ids()
2051 .into_iter()
2052 .cloned()
2053 .collect::<Vec<_>>()
2054 {
2055 if let Some(region) = self.get_brain_region_mut(®ion_id) {
2056 region.remove_area(&twin_id);
2057 }
2058 }
2059 self.remove_cortical_area(&twin_id)?;
2060 self.refresh_cortical_mappings_hash();
2061 Ok(Some(twin_id))
2062 }
2063
2064 pub fn remove_upstream_area(&mut self, target_cortical_id: &CorticalID, src_cortical_idx: u32) {
2074 if let Some(area) = self.cortical_areas.get_mut(target_cortical_id) {
2075 if let Some(upstream_prop) = area.properties.get_mut("upstream_cortical_areas") {
2076 if let Some(arr) = upstream_prop.as_array_mut() {
2077 let src_value = serde_json::json!(src_cortical_idx);
2078 if let Some(pos) = arr.iter().position(|v| v == &src_value) {
2079 arr.remove(pos);
2080 debug!(target: "feagi-bdu",
2081 "Removed upstream area idx={} from cortical area '{}'",
2082 src_cortical_idx, target_cortical_id.as_base_64()
2083 );
2084 }
2085 }
2086 }
2087 }
2088 }
2089
2090 pub fn has_cortical_area(&self, cortical_id: &CorticalID) -> bool {
2092 self.cortical_areas.contains_key(cortical_id)
2093 }
2094
2095 pub fn is_initialized(&self) -> bool {
2097 self.initialized && !self.cortical_areas.is_empty()
2098 }
2099
2100 pub fn add_brain_region(
2106 &mut self,
2107 region: BrainRegion,
2108 parent_id: Option<String>,
2109 ) -> BduResult<()> {
2110 self.brain_regions.add_region(region, parent_id)?;
2111 self.refresh_brain_regions_hash();
2112 Ok(())
2113 }
2114
2115 pub fn remove_brain_region(&mut self, region_id: &str) -> BduResult<()> {
2117 self.brain_regions.remove_region(region_id)?;
2118 self.refresh_brain_regions_hash();
2119 Ok(())
2120 }
2121
2122 pub fn clear_brain_regions(&mut self) {
2127 self.brain_regions.clear();
2128 self.refresh_brain_regions_hash();
2129 }
2130
2131 pub fn change_brain_region_parent(
2133 &mut self,
2134 region_id: &str,
2135 new_parent_id: &str,
2136 ) -> BduResult<()> {
2137 self.brain_regions.change_parent(region_id, new_parent_id)?;
2138 self.refresh_brain_regions_hash();
2139 Ok(())
2140 }
2141
2142 pub fn get_brain_region(&self, region_id: &str) -> Option<&BrainRegion> {
2144 self.brain_regions.get_region(region_id)
2145 }
2146
2147 pub fn get_brain_region_mut(&mut self, region_id: &str) -> Option<&mut BrainRegion> {
2149 self.brain_regions.get_region_mut(region_id)
2150 }
2151
2152 pub fn get_brain_region_ids(&self) -> Vec<&String> {
2154 self.brain_regions.get_all_region_ids()
2155 }
2156
2157 pub fn get_brain_region_hierarchy(&self) -> &BrainRegionHierarchy {
2159 &self.brain_regions
2160 }
2161
2162 pub fn get_morphologies(&self) -> &feagi_evolutionary::MorphologyRegistry {
2168 &self.morphology_registry
2169 }
2170
2171 pub fn get_morphology_count(&self) -> usize {
2173 self.morphology_registry.count()
2174 }
2175
2176 pub fn upsert_morphology(
2181 &mut self,
2182 morphology_id: String,
2183 morphology: feagi_evolutionary::Morphology,
2184 ) {
2185 self.morphology_registry
2186 .add_morphology(morphology_id, morphology);
2187 self.refresh_morphologies_hash();
2188 }
2189
2190 pub fn remove_morphology(&mut self, morphology_id: &str) -> bool {
2196 let removed = self.morphology_registry.remove_morphology(morphology_id);
2197 if removed {
2198 self.refresh_morphologies_hash();
2199 }
2200 removed
2201 }
2202
2203 pub fn update_cortical_mapping(
2221 &mut self,
2222 src_area_id: &CorticalID,
2223 dst_area_id: &CorticalID,
2224 mapping_data: Vec<serde_json::Value>,
2225 ) -> BduResult<()> {
2226 use tracing::info;
2227
2228 self.validate_memory_outbound_mapping_contract(src_area_id, dst_area_id, &mapping_data)?;
2229 crate::region_io_designation::validate_cross_region_mapping_proposal(
2230 self,
2231 src_area_id,
2232 dst_area_id,
2233 &mapping_data,
2234 )?;
2235
2236 debug!(target: "feagi-bdu", "Updating cortical mapping: {} -> {}", src_area_id, dst_area_id);
2237
2238 {
2239 let src_area = self.cortical_areas.get_mut(src_area_id).ok_or_else(|| {
2241 crate::types::BduError::InvalidArea(format!(
2242 "Source area not found: {}",
2243 src_area_id
2244 ))
2245 })?;
2246
2247 let cortical_mapping_dst =
2249 if let Some(existing) = src_area.properties.get_mut("cortical_mapping_dst") {
2250 existing.as_object_mut().ok_or_else(|| {
2251 crate::types::BduError::InvalidMorphology(
2252 "cortical_mapping_dst is not an object".to_string(),
2253 )
2254 })?
2255 } else {
2256 src_area
2258 .properties
2259 .insert("cortical_mapping_dst".to_string(), serde_json::json!({}));
2260 src_area
2261 .properties
2262 .get_mut("cortical_mapping_dst")
2263 .unwrap()
2264 .as_object_mut()
2265 .unwrap()
2266 };
2267
2268 if mapping_data.is_empty() {
2270 cortical_mapping_dst.remove(&dst_area_id.as_base_64());
2272 info!(target: "feagi-bdu", "Removed mapping from {} to {}", src_area_id, dst_area_id);
2273 } else {
2274 cortical_mapping_dst.insert(
2275 dst_area_id.as_base_64(),
2276 serde_json::Value::Array(mapping_data.clone()),
2277 );
2278 debug!(target: "feagi-bdu", "Updated mapping from {} to {} with {} connections",
2279 src_area_id, dst_area_id, mapping_data.len());
2280 }
2281 }
2282
2283 self.refresh_cortical_mappings_hash();
2284
2285 Ok(())
2286 }
2287
2288 pub fn validate_memory_outbound_mapping_contract(
2295 &self,
2296 src_area_id: &CorticalID,
2297 dst_area_id: &CorticalID,
2298 mapping_data: &[serde_json::Value],
2299 ) -> BduResult<()> {
2300 if mapping_data.is_empty() {
2301 return Ok(());
2302 }
2303 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
2304 BduError::InvalidArea(format!("Source area not found: {}", src_area_id))
2305 })?;
2306 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
2307 BduError::InvalidArea(format!("Destination area not found: {}", dst_area_id))
2308 })?;
2309 if !matches!(src_area.cortical_type, CorticalAreaType::Memory(_))
2310 || matches!(dst_area.cortical_type, CorticalAreaType::Memory(_))
2311 {
2312 return Ok(());
2313 }
2314
2315 for rule in mapping_data {
2316 let morphology_id = rule
2317 .as_object()
2318 .and_then(|rule_obj| rule_obj.get("morphology_id"))
2319 .and_then(|value| value.as_str())
2320 .or_else(|| {
2321 rule.as_array()
2322 .and_then(|rule_array| rule_array.first())
2323 .and_then(|value| value.as_str())
2324 });
2325 let is_replay_edge_to_own_twin = morphology_id == Some("memory_replay")
2326 && dst_area
2327 .properties
2328 .get("memory_twin_for")
2329 .and_then(|value| value.as_str())
2330 == Some(src_area_id.as_base_64().as_str());
2331 if morphology_id != Some("associative_memory") && !is_replay_edge_to_own_twin {
2332 return Err(BduError::InvalidMorphology(format!(
2333 "Memory-to-non-memory mapping {} -> {} only supports associative_memory \
2334 (or memory_replay to its own twin)",
2335 src_area_id, dst_area_id
2336 )));
2337 }
2338 }
2339 Ok(())
2340 }
2341
2342 pub fn regenerate_synapses_for_mapping(
2355 &mut self,
2356 src_area_id: &CorticalID,
2357 dst_area_id: &CorticalID,
2358 ) -> BduResult<usize> {
2359 use tracing::info;
2360
2361 debug!(target: "feagi-bdu", "Regenerating synapses: {} -> {}", src_area_id, dst_area_id);
2362
2363 let mapping_rules_len = self
2364 .cortical_areas
2365 .get(src_area_id)
2366 .and_then(|area| area.properties.get("cortical_mapping_dst"))
2367 .and_then(|v| v.as_object())
2368 .and_then(|map| map.get(&dst_area_id.as_base_64()))
2369 .and_then(|v| v.as_array())
2370 .map(|arr| arr.len())
2371 .unwrap_or(0);
2372 tracing::debug!(
2373 target: "feagi-bdu",
2374 "Mapping rules for {} -> {}: {}",
2375 src_area_id,
2376 dst_area_id,
2377 mapping_rules_len
2378 );
2379
2380 let Some(npu_arc) = self.npu.clone() else {
2382 info!(target: "feagi-bdu", "NPU not available - skipping synapse regeneration");
2383 return Ok(0);
2384 };
2385
2386 let src_idx = *self.cortical_id_to_idx.get(src_area_id).ok_or_else(|| {
2396 BduError::InvalidArea(format!("No cortical idx for source area {}", src_area_id))
2397 })?;
2398 let dst_idx = *self.cortical_id_to_idx.get(dst_area_id).ok_or_else(|| {
2399 BduError::InvalidArea(format!(
2400 "No cortical idx for destination area {}",
2401 dst_area_id
2402 ))
2403 })?;
2404
2405 let mut pruned_synapse_count: usize = 0;
2408 use std::time::Instant;
2409 let start = Instant::now();
2410
2411 let (sources, targets) = {
2417 let lock_start = std::time::Instant::now();
2418 let npu = npu_arc.lock().unwrap();
2419 let lock_wait = lock_start.elapsed();
2420 tracing::debug!(
2421 target: "feagi-bdu",
2422 "[NPU-LOCK] prune list lock wait {:.2}ms for {} -> {}",
2423 lock_wait.as_secs_f64() * 1000.0,
2424 src_area_id,
2425 dst_area_id
2426 );
2427 let sources: Vec<NeuronId> = npu
2428 .get_neurons_in_cortical_area(src_idx)
2429 .into_iter()
2430 .map(NeuronId)
2431 .collect();
2432 let targets: Vec<NeuronId> = npu
2433 .get_neurons_in_cortical_area(dst_idx)
2434 .into_iter()
2435 .map(NeuronId)
2436 .collect();
2437 (sources, targets)
2438 };
2439
2440 tracing::debug!(
2441 target: "feagi-bdu",
2442 "Prune synapses: {} sources, {} targets",
2443 sources.len(),
2444 targets.len()
2445 );
2446
2447 if !sources.is_empty() && !targets.is_empty() {
2448 let remove_start = Instant::now();
2449 pruned_synapse_count = {
2450 let lock_start = std::time::Instant::now();
2451 let mut npu = npu_arc.lock().unwrap();
2452 let lock_wait = lock_start.elapsed();
2453 tracing::debug!(
2454 target: "feagi-bdu",
2455 "[NPU-LOCK] prune remove lock wait {:.2}ms for {} -> {}",
2456 lock_wait.as_secs_f64() * 1000.0,
2457 src_area_id,
2458 dst_area_id
2459 );
2460 npu.remove_synapses_between(sources, targets)
2464 };
2465 let remove_time = remove_start.elapsed();
2466 let total_time = start.elapsed();
2467
2468 info!(
2469 target: "feagi-bdu",
2470 "Pruned {} existing synapses for mapping {} -> {} (total={}ms, remove={}ms)",
2471 pruned_synapse_count,
2472 src_area_id,
2473 dst_area_id,
2474 total_time.as_millis(),
2475 remove_time.as_millis()
2476 );
2477
2478 if pruned_synapse_count > 0 {
2480 let pruned_u32 = u32::try_from(pruned_synapse_count).map_err(|_| {
2481 BduError::Internal(format!(
2482 "Pruned synapse count overflow (usize -> u32): {}",
2483 pruned_synapse_count
2484 ))
2485 })?;
2486 let state_manager = StateManager::instance();
2487 let state_manager = state_manager.read();
2488 let core_state = state_manager.get_core_state();
2489 core_state.subtract_synapse_count(pruned_u32);
2490 state_manager.subtract_cortical_area_outgoing_synapses(
2491 &src_area_id.as_base_64(),
2492 pruned_synapse_count,
2493 );
2494 state_manager.subtract_cortical_area_incoming_synapses(
2495 &dst_area_id.as_base_64(),
2496 pruned_synapse_count,
2497 );
2498
2499 {
2503 let mut cache = self.cached_synapse_counts_per_area.write();
2504 let entry = cache
2505 .entry(*src_area_id)
2506 .or_insert_with(|| AtomicUsize::new(0));
2507 let mut current = entry.load(Ordering::Relaxed);
2508 loop {
2509 let next = current.saturating_sub(pruned_synapse_count);
2510 match entry.compare_exchange(
2511 current,
2512 next,
2513 Ordering::Relaxed,
2514 Ordering::Relaxed,
2515 ) {
2516 Ok(_) => break,
2517 Err(v) => current = v,
2518 }
2519 }
2520 }
2521 }
2522 }
2523
2524 let synapse_count = self.apply_cortical_mapping_for_pair(src_area_id, dst_area_id)?;
2531 tracing::debug!(
2532 target: "feagi-bdu",
2533 "Synaptogenesis created {} synapses for {} -> {}",
2534 synapse_count,
2535 src_area_id,
2536 dst_area_id
2537 );
2538
2539 if synapse_count > 0 {
2542 let created_u32 = u32::try_from(synapse_count).map_err(|_| {
2543 BduError::Internal(format!(
2544 "Created synapse count overflow (usize -> u32): {}",
2545 synapse_count
2546 ))
2547 })?;
2548
2549 {
2551 let mut cache = self.cached_synapse_counts_per_area.write();
2552 cache
2553 .entry(*src_area_id)
2554 .or_insert_with(|| AtomicUsize::new(0))
2555 .fetch_add(synapse_count, Ordering::Relaxed);
2556 }
2557
2558 let state_manager = StateManager::instance();
2560 let state_manager = state_manager.read();
2561 let core_state = state_manager.get_core_state();
2562 core_state.add_synapse_count(created_u32);
2563 state_manager
2564 .add_cortical_area_outgoing_synapses(&src_area_id.as_base_64(), synapse_count);
2565 state_manager
2566 .add_cortical_area_incoming_synapses(&dst_area_id.as_base_64(), synapse_count);
2567 }
2568
2569 let src_idx_for_upstream = src_idx;
2572
2573 let has_mapping = self
2575 .cortical_areas
2576 .get(src_area_id)
2577 .and_then(|area| area.properties.get("cortical_mapping_dst"))
2578 .and_then(|v| v.as_object())
2579 .and_then(|map| map.get(&dst_area_id.as_base_64()))
2580 .is_some();
2581
2582 debug!(target: "feagi-bdu",
2583 "Mapping result: {} synapses, {} -> {} (mapping_exists={}, will {}update upstream)",
2584 synapse_count,
2585 src_area_id.as_base_64(),
2586 dst_area_id.as_base_64(),
2587 has_mapping,
2588 if has_mapping { "" } else { "NOT " }
2589 );
2590
2591 if has_mapping {
2592 self.add_upstream_area(dst_area_id, src_idx_for_upstream);
2594
2595 if let Some(dst_area) = self.cortical_areas.get(dst_area_id) {
2596 if matches!(dst_area.cortical_type, CorticalAreaType::Memory(_)) {
2597 if let Err(e) = self.ensure_memory_twin_area(dst_area_id, src_area_id) {
2598 warn!(
2599 target: "feagi-bdu",
2600 "Failed to ensure memory twin for {} -> {}: {}",
2601 src_area_id.as_base_64(),
2602 dst_area_id.as_base_64(),
2603 e
2604 );
2605 }
2606 }
2607 }
2608
2609 #[cfg(feature = "plasticity")]
2611 if let Some(ref executor) = self.plasticity_executor {
2612 use feagi_evolutionary::extract_memory_properties;
2613
2614 if let Some(dst_area) = self.cortical_areas.get(dst_area_id) {
2615 if let Some(mem_props) = extract_memory_properties(&dst_area.properties) {
2616 let upstream_areas =
2617 self.get_episodic_memory_upstream_cortical_areas(dst_area_id);
2618 debug!(
2619 target: "feagi-bdu",
2620 "Registering memory area idx={} id={} upstream={} depth={}",
2621 dst_area.cortical_idx,
2622 dst_area_id.as_base_64(),
2623 upstream_areas.len(),
2624 mem_props.temporal_depth
2625 );
2626
2627 if let Some(ref npu_arc) = self.npu {
2630 if let Ok(mut npu) = npu_arc.lock() {
2631 let existing_configs = npu.get_all_fire_ledger_configs();
2632 for &upstream_idx in &upstream_areas {
2633 let existing = existing_configs
2634 .iter()
2635 .find(|(idx, _)| *idx == upstream_idx)
2636 .map(|(_, w)| *w)
2637 .unwrap_or(0);
2638
2639 let desired = mem_props.temporal_depth as usize;
2640 let resolved = existing.max(desired);
2641 if resolved != existing {
2642 if let Err(e) =
2643 npu.configure_fire_ledger_window(upstream_idx, resolved)
2644 {
2645 warn!(
2646 target: "feagi-bdu",
2647 "Failed to configure FireLedger window for upstream area idx={} (requested={}): {}",
2648 upstream_idx,
2649 resolved,
2650 e
2651 );
2652 }
2653 }
2654 }
2655 } else {
2656 warn!(target: "feagi-bdu", "Failed to lock NPU for FireLedger configuration");
2657 }
2658 }
2659
2660 if let Ok(exec) = executor.lock() {
2661 use feagi_npu_plasticity::{
2662 MemoryNeuronLifecycleConfig, PlasticityExecutor,
2663 };
2664
2665 let lifecycle_config = MemoryNeuronLifecycleConfig {
2666 initial_lifespan: mem_props.init_lifespan,
2667 lifespan_growth_rate: mem_props.lifespan_growth_rate,
2668 longterm_threshold: mem_props.longterm_threshold,
2669 max_reactivations: 1000,
2670 };
2671
2672 exec.register_memory_area(
2673 dst_area.cortical_idx,
2674 dst_area_id.as_base_64(),
2675 mem_props.temporal_depth,
2676 upstream_areas.clone(),
2677 Some(lifecycle_config),
2678 mem_props.mp_learning_enabled,
2679 );
2680 } else {
2681 warn!(target: "feagi-bdu", "Failed to lock PlasticityExecutor");
2682 }
2683 } else {
2684 debug!(
2685 target: "feagi-bdu",
2686 "Skipping plasticity registration: no memory properties for area {}",
2687 dst_area_id.as_base_64()
2688 );
2689 }
2690 } else {
2691 warn!(target: "feagi-bdu", "Destination area {} not found in cortical_areas", dst_area_id.as_base_64());
2692 }
2693 } else {
2694 warn!(
2695 target: "feagi-bdu",
2696 "PlasticityExecutor not available; memory area {} not registered",
2697 dst_area_id.as_base_64()
2698 );
2699 }
2700
2701 #[cfg(not(feature = "plasticity"))]
2702 {
2703 info!(target: "feagi-bdu", "Plasticity feature disabled at compile time");
2704 }
2705 } else {
2706 self.remove_upstream_area(dst_area_id, src_idx_for_upstream);
2708
2709 let destination_is_memory = self
2710 .cortical_areas
2711 .get(dst_area_id)
2712 .is_some_and(|area| matches!(area.cortical_type, CorticalAreaType::Memory(_)));
2713 if destination_is_memory {
2714 self.teardown_owned_memory_twin_for_mapping(dst_area_id, src_area_id)?;
2715 }
2716
2717 let mut npu = npu_arc.lock().unwrap();
2719 let _was_registered = npu.unregister_stdp_mapping(src_idx, dst_idx);
2720 }
2721
2722 debug!(
2723 target: "feagi-bdu",
2724 "Created {} new synapses: {} -> {}",
2725 synapse_count,
2726 src_area_id,
2727 dst_area_id
2728 );
2729
2730 if pruned_synapse_count > 0 || synapse_count == 0 {
2733 let mut npu = npu_arc.lock().unwrap();
2734 npu.rebuild_synapse_index();
2735 info!(
2736 target: "feagi-bdu",
2737 "Rebuilt synapse index after regenerating {} -> {} (pruned={}, created={})",
2738 src_area_id,
2739 dst_area_id,
2740 pruned_synapse_count,
2741 synapse_count
2742 );
2743 } else {
2744 debug!(
2745 target: "feagi-bdu",
2746 "Skipped synapse index rebuild for mapping {} -> {} (created={}, pruned=0; index rebuilt during synaptogenesis)",
2747 src_area_id,
2748 dst_area_id,
2749 synapse_count
2750 );
2751 }
2752
2753 {
2755 let npu = npu_arc.lock().unwrap();
2756 let fresh_count = npu.get_synapse_count();
2757 self.cached_synapse_count
2758 .store(fresh_count, Ordering::Relaxed);
2759 }
2760
2761 Ok(synapse_count)
2762 }
2763
2764 fn json_number_as_i64_for_stdp(v: &serde_json::Value) -> Option<i64> {
2766 v.as_i64().or_else(|| v.as_f64().map(|f| f as i64))
2767 }
2768
2769 fn json_number_as_usize_for_stdp(v: &serde_json::Value) -> Option<usize> {
2770 v.as_u64()
2771 .map(|n| n as usize)
2772 .or_else(|| v.as_f64().map(|f| f as usize))
2773 }
2774
2775 #[allow(clippy::too_many_arguments)]
2777 fn register_stdp_mapping_for_rule(
2778 npu: &Arc<feagi_npu_burst_engine::TracingMutex<feagi_npu_burst_engine::DynamicNPU>>,
2779 src_area_id: &CorticalID,
2780 dst_area_id: &CorticalID,
2781 src_cortical_idx: u32,
2782 dst_cortical_idx: u32,
2783 rule_obj: &serde_json::Map<String, serde_json::Value>,
2784 bidirectional_stdp: bool,
2785 synapse_psp: f32,
2786 synapse_type: feagi_npu_neural::SynapseType,
2787 ) -> BduResult<()> {
2788 let plasticity_window = rule_obj
2789 .get("plasticity_window")
2790 .and_then(Self::json_number_as_usize_for_stdp)
2791 .ok_or_else(|| {
2792 BduError::Internal(format!(
2793 "Missing plasticity_window in plastic mapping rule {} -> {}",
2794 src_area_id, dst_area_id
2795 ))
2796 })?;
2797 let plasticity_constant = rule_obj
2798 .get("plasticity_constant")
2799 .and_then(Self::json_number_as_i64_for_stdp)
2800 .ok_or_else(|| {
2801 BduError::Internal(format!(
2802 "Missing plasticity_constant in plastic mapping rule {} -> {}",
2803 src_area_id, dst_area_id
2804 ))
2805 })?;
2806 let ltp_i64 = rule_obj
2807 .get("ltp_multiplier")
2808 .and_then(Self::json_number_as_i64_for_stdp)
2809 .ok_or_else(|| {
2810 BduError::Internal(format!(
2811 "Missing ltp_multiplier in plastic mapping rule {} -> {}",
2812 src_area_id, dst_area_id
2813 ))
2814 })?;
2815 let ltp_multiplier = i8::try_from(ltp_i64).map_err(|_| {
2816 BduError::Internal(format!(
2817 "ltp_multiplier must fit in i8 range {}..={} (got {}) on mapping {} -> {}",
2818 i8::MIN,
2819 i8::MAX,
2820 ltp_i64,
2821 src_area_id,
2822 dst_area_id
2823 ))
2824 })?;
2825 let ltd_i64 = rule_obj
2826 .get("ltd_multiplier")
2827 .and_then(Self::json_number_as_i64_for_stdp)
2828 .ok_or_else(|| {
2829 BduError::Internal(format!(
2830 "Missing ltd_multiplier in plastic mapping rule {} -> {}",
2831 src_area_id, dst_area_id
2832 ))
2833 })?;
2834 let ltd_multiplier = i8::try_from(ltd_i64).map_err(|_| {
2835 BduError::Internal(format!(
2836 "ltd_multiplier must fit in i8 range {}..={} (got {}) on mapping {} -> {}",
2837 i8::MIN,
2838 i8::MAX,
2839 ltd_i64,
2840 src_area_id,
2841 dst_area_id
2842 ))
2843 })?;
2844
2845 let plasticity_mode = match rule_obj.get("plasticity_mode").and_then(|v| v.as_str()) {
2849 Some(s) if s.eq_ignore_ascii_case("rstdp") || s.eq_ignore_ascii_case("r-stdp") => {
2850 feagi_npu_burst_engine::npu::PlasticityMode::RStdp
2851 }
2852 Some(s) if s.eq_ignore_ascii_case("stdp") => {
2853 feagi_npu_burst_engine::npu::PlasticityMode::Stdp
2854 }
2855 Some(s) if s.eq_ignore_ascii_case("off") => {
2856 feagi_npu_burst_engine::npu::PlasticityMode::Off
2857 }
2858 Some(other) => {
2859 return Err(BduError::Internal(format!(
2860 "Unknown plasticity_mode '{}' in mapping rule {} -> {}",
2861 other, src_area_id, dst_area_id
2862 )));
2863 }
2864 None => feagi_npu_burst_engine::npu::PlasticityMode::Stdp,
2865 };
2866
2867 let eligibility_decay_bursts = rule_obj
2869 .get("eligibility_decay_bursts")
2870 .and_then(|v| v.as_u64())
2871 .map(|n| n as u32)
2872 .unwrap_or(0);
2873 let reward_source_area_id = rule_obj
2874 .get("reward_source_area")
2875 .and_then(|v| v.as_str())
2876 .map(str::to_string);
2877 let punishment_source_area_id = rule_obj
2878 .get("punishment_source_area")
2879 .and_then(|v| v.as_str())
2880 .map(str::to_string);
2881
2882 let max_weight_provided = rule_obj.get("max_weight").is_some()
2887 && !rule_obj
2888 .get("max_weight")
2889 .map(|v| v.is_null())
2890 .unwrap_or(true);
2891 let max_weight: f32 = if max_weight_provided {
2892 let raw = rule_obj
2893 .get("max_weight")
2894 .and_then(|v| v.as_f64())
2895 .ok_or_else(|| {
2896 BduError::Internal(format!(
2897 "max_weight must be a number on mapping {} -> {}",
2898 src_area_id, dst_area_id
2899 ))
2900 })?;
2901 if raw.is_nan() || raw <= 0.0 {
2902 return Err(BduError::Internal(format!(
2903 "max_weight must be strictly positive (got {}) on mapping {} -> {}",
2904 raw, src_area_id, dst_area_id
2905 )));
2906 }
2907 raw as f32
2908 } else {
2909 f32::INFINITY
2910 };
2911
2912 let plasticity_eta_provided = rule_obj.get("plasticity_eta").is_some()
2915 && !rule_obj
2916 .get("plasticity_eta")
2917 .map(|v| v.is_null())
2918 .unwrap_or(true);
2919 let plasticity_eta: f32 = if plasticity_eta_provided {
2920 let raw = rule_obj
2921 .get("plasticity_eta")
2922 .and_then(|v| v.as_f64())
2923 .ok_or_else(|| {
2924 BduError::Internal(format!(
2925 "plasticity_eta must be a number on mapping {} -> {}",
2926 src_area_id, dst_area_id
2927 ))
2928 })?;
2929 if raw.is_nan() || raw <= 0.0 || !raw.is_finite() {
2930 return Err(BduError::Internal(format!(
2931 "plasticity_eta must be finite and strictly positive (got {}) on mapping {} -> {}",
2932 raw, src_area_id, dst_area_id
2933 )));
2934 }
2935 raw as f32
2936 } else {
2937 1.0
2938 };
2939
2940 if !matches!(
2942 plasticity_mode,
2943 feagi_npu_burst_engine::npu::PlasticityMode::RStdp
2944 ) && (reward_source_area_id.is_some()
2945 || punishment_source_area_id.is_some()
2946 || eligibility_decay_bursts != 0)
2947 {
2948 return Err(BduError::Internal(format!(
2949 "R-STDP fields (reward_source_area / punishment_source_area / eligibility_decay_bursts) \
2950 only valid when plasticity_mode='rstdp' on mapping {} -> {}",
2951 src_area_id, dst_area_id
2952 )));
2953 }
2954
2955 if matches!(
2959 plasticity_mode,
2960 feagi_npu_burst_engine::npu::PlasticityMode::Off
2961 ) && max_weight_provided
2962 {
2963 return Err(BduError::Internal(format!(
2964 "max_weight is only valid when plasticity_mode is 'stdp' or 'rstdp' (got off) on mapping {} -> {}",
2965 src_area_id, dst_area_id
2966 )));
2967 }
2968
2969 if matches!(
2970 plasticity_mode,
2971 feagi_npu_burst_engine::npu::PlasticityMode::Off
2972 ) && plasticity_eta_provided
2973 {
2974 return Err(BduError::Internal(format!(
2975 "plasticity_eta is only valid when plasticity_mode is 'stdp' or 'rstdp' (got off) on mapping {} -> {}",
2976 src_area_id, dst_area_id
2977 )));
2978 }
2979
2980 trace!(target: "feagi-bdu", "[LOCK-TRACE] create_neurons_for_area: attempting NPU lock");
2981 let mut npu_lock = npu
2982 .lock()
2983 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
2984 trace!(target: "feagi-bdu", "[LOCK-TRACE] create_neurons_for_area: acquired NPU lock");
2985
2986 let resolve_optional_area =
2991 |label: &str, name_opt: &Option<String>| -> BduResult<Option<u32>> {
2992 let Some(name) = name_opt else {
2993 return Ok(None);
2994 };
2995 match npu_lock.get_cortical_area_id(name.as_str()) {
2996 Some(idx) => Ok(Some(idx)),
2997 None => Err(BduError::Internal(format!(
2998 "Unknown {} cortical area '{}' on R-STDP mapping {} -> {}",
2999 label, name, src_area_id, dst_area_id
3000 ))),
3001 }
3002 };
3003 let reward_source_area =
3004 resolve_optional_area("reward_source_area", &reward_source_area_id)?;
3005 let punishment_source_area =
3006 resolve_optional_area("punishment_source_area", &punishment_source_area_id)?;
3007
3008 if matches!(
3010 plasticity_mode,
3011 feagi_npu_burst_engine::npu::PlasticityMode::Off
3012 ) {
3013 return Ok(());
3014 }
3015
3016 let params = feagi_npu_burst_engine::npu::StdpMappingParams {
3017 plasticity_window,
3018 plasticity_constant,
3019 ltp_multiplier,
3020 ltd_multiplier,
3021 bidirectional_stdp,
3022 associative_memory_mapping: rule_obj
3023 .get("morphology_id")
3024 .and_then(|value| value.as_str())
3025 == Some("associative_memory"),
3026 synapse_psp,
3027 synapse_type,
3028 plasticity_mode,
3029 eligibility_decay_bursts,
3030 reward_source_area,
3031 punishment_source_area,
3032 max_weight,
3033 plasticity_eta,
3034 };
3035
3036 npu_lock
3037 .register_stdp_mapping(src_cortical_idx, dst_cortical_idx, params)
3038 .map_err(|e| {
3039 BduError::Internal(format!(
3040 "Failed to register STDP mapping {} -> {}: {}",
3041 src_area_id, dst_area_id, e
3042 ))
3043 })?;
3044
3045 let mut areas_to_track: Vec<(u32, usize)> = vec![
3049 (src_cortical_idx, plasticity_window),
3050 (dst_cortical_idx, plasticity_window),
3051 ];
3052 if let Some(area) = reward_source_area {
3053 areas_to_track.push((area, 1));
3054 }
3055 if let Some(area) = punishment_source_area {
3056 areas_to_track.push((area, 1));
3057 }
3058
3059 let existing_configs = npu_lock.get_all_fire_ledger_configs();
3060 for (area_idx, required_depth) in areas_to_track {
3061 let existing = existing_configs
3062 .iter()
3063 .find(|(idx, _)| *idx == area_idx)
3064 .map(|(_, w)| *w)
3065 .unwrap_or(0);
3066 let resolved = existing.max(required_depth);
3067 if resolved != existing {
3068 npu_lock
3069 .configure_fire_ledger_window(area_idx, resolved)
3070 .map_err(|e| {
3071 BduError::Internal(format!(
3072 "Failed to configure FireLedger window for area idx={} (requested={}): {}",
3073 area_idx, resolved, e
3074 ))
3075 })?;
3076 }
3077 }
3078
3079 Ok(())
3080 }
3081
3082 fn resolve_synapse_params_for_rule(
3084 &self,
3085 src_area_id: &CorticalID,
3086 rule: &serde_json::Value,
3087 ) -> BduResult<(f32, f32, feagi_npu_neural::SynapseType, u8)> {
3088 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3090 crate::types::BduError::InvalidArea(format!("Source area not found: {}", src_area_id))
3091 })?;
3092
3093 let (weight, synapse_type) = {
3095 let parse_f64 = |v: &serde_json::Value| -> Option<f64> {
3096 if let Some(i) = v.as_i64() {
3097 return Some(i as f64);
3098 }
3099 v.as_f64()
3100 };
3101
3102 let mult: f64 = if let Some(obj) = rule.as_object() {
3103 obj.get("postSynapticCurrent_multiplier")
3104 .and_then(parse_f64)
3105 .unwrap_or(1.0)
3106 } else if let Some(arr) = rule.as_array() {
3107 arr.get(2).and_then(parse_f64).unwrap_or(1.0)
3108 } else {
3109 128.0
3110 };
3111
3112 if mult < 0.0 {
3113 (mult.abs() as f32, feagi_npu_neural::SynapseType::Inhibitory)
3114 } else {
3115 (mult as f32, feagi_npu_neural::SynapseType::Excitatory)
3116 }
3117 };
3118
3119 use crate::models::cortical_area::CorticalAreaExt;
3121 let psp_f32 = src_area.postsynaptic_current();
3122
3123 let delay_bursts: u8 = if let Some(obj) = rule.as_object() {
3124 obj.get("synaptic_delay_bursts")
3125 .and_then(|v| v.as_u64())
3126 .map(|d| u8::try_from(d).unwrap_or(1))
3127 .unwrap_or(1)
3128 } else if let Some(arr) = rule.as_array() {
3129 arr.get(8)
3130 .and_then(|v| v.as_u64())
3131 .map(|d| u8::try_from(d).unwrap_or(1))
3132 .unwrap_or(1)
3133 } else {
3134 1
3135 };
3136 if delay_bursts < 1 {
3137 return Err(crate::types::BduError::Internal(format!(
3138 "synaptic_delay_bursts must be >= 1 (src area {})",
3139 src_area_id.as_base_64()
3140 )));
3141 }
3142
3143 tracing::debug!(
3144 target: "feagi-bdu",
3145 "Resolved synapse params src={} weight={} psp={} type={:?} delay_bursts={}",
3146 src_area_id.as_base_64(),
3147 weight,
3148 psp_f32,
3149 synapse_type,
3150 delay_bursts
3151 );
3152
3153 Ok((weight, psp_f32, synapse_type, delay_bursts))
3154 }
3155
3156 fn apply_cortical_mapping_for_pair(
3158 &mut self,
3159 src_area_id: &CorticalID,
3160 dst_area_id: &CorticalID,
3161 ) -> BduResult<usize> {
3162 let rules = {
3168 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3169 crate::types::BduError::InvalidArea(format!(
3170 "Source area not found: {}",
3171 src_area_id
3172 ))
3173 })?;
3174
3175 let Some(mapping_dst) = src_area
3176 .properties
3177 .get("cortical_mapping_dst")
3178 .and_then(|v| v.as_object())
3179 else {
3180 return Ok(0);
3181 };
3182
3183 let Some(rules) = Self::get_mapping_rules_for_destination(mapping_dst, dst_area_id)
3184 else {
3185 return Ok(0);
3186 };
3187
3188 rules.clone()
3189 }; if rules.is_empty() {
3192 return Ok(0);
3193 }
3194
3195 let src_cortical_idx = *self.cortical_id_to_idx.get(src_area_id).ok_or_else(|| {
3197 crate::types::BduError::InvalidArea(format!("No index for {}", src_area_id))
3198 })?;
3199 let dst_cortical_idx = *self.cortical_id_to_idx.get(dst_area_id).ok_or_else(|| {
3200 crate::types::BduError::InvalidArea(format!("No index for {}", dst_area_id))
3201 })?;
3202
3203 let npu_arc = self
3205 .npu
3206 .as_ref()
3207 .ok_or_else(|| crate::types::BduError::Internal("NPU not connected".to_string()))?
3208 .clone();
3209
3210 tracing::debug!(
3211 target: "feagi-bdu",
3212 "Applying {} mapping rule(s) for {} -> {}",
3213 rules.len(),
3214 src_area_id,
3215 dst_area_id
3216 );
3217 let mut total_synapses = 0;
3219 for rule in &rules {
3220 let morphology_id = if let Some(rule_obj) = rule.as_object() {
3221 rule_obj
3222 .get("morphology_id")
3223 .and_then(|v| v.as_str())
3224 .unwrap_or("unknown")
3225 .to_string()
3226 } else if let Some(rule_arr) = rule.as_array() {
3227 rule_arr
3228 .first()
3229 .and_then(|v| v.as_str())
3230 .unwrap_or("unknown")
3231 .to_string()
3232 } else {
3233 "unknown".to_string()
3234 };
3235
3236 let rule_keys: Vec<String> = rule
3237 .as_object()
3238 .map(|obj| obj.keys().cloned().collect())
3239 .unwrap_or_default();
3240
3241 let mut plasticity_flag = rule
3243 .as_object()
3244 .and_then(|obj| obj.get("plasticity_flag"))
3245 .and_then(|v| v.as_bool())
3246 .unwrap_or(false);
3247 if morphology_id == "associative_memory" {
3248 plasticity_flag = true;
3249 }
3250 if plasticity_flag {
3251 let Some(rule_obj) = rule.as_object() else {
3252 return Err(crate::types::BduError::InvalidMorphology(
3253 "Plasticity mapping rule must be an object format".to_string(),
3254 ));
3255 };
3256 let (_weight, psp, synapse_type, _delay_bursts) =
3257 self.resolve_synapse_params_for_rule(src_area_id, rule)?;
3258 let bidirectional_stdp = false;
3261 if let Err(e) = Self::register_stdp_mapping_for_rule(
3262 &npu_arc,
3263 src_area_id,
3264 dst_area_id,
3265 src_cortical_idx,
3266 dst_cortical_idx,
3267 rule_obj,
3268 bidirectional_stdp,
3269 psp,
3270 synapse_type,
3271 ) {
3272 tracing::error!(
3273 target: "feagi-bdu",
3274 "STDP mapping registration failed for {} -> {} (morphology={}, keys={:?}): {}",
3275 src_area_id,
3276 dst_area_id,
3277 morphology_id,
3278 rule_keys,
3279 e
3280 );
3281 return Err(e);
3282 }
3283 }
3284
3285 if let Some(gate_area_str) = rule
3289 .as_object()
3290 .and_then(|obj| obj.get("gate_source_area"))
3291 .and_then(|v| v.as_str())
3292 {
3293 let gate_area_id = CorticalID::try_from_base_64(gate_area_str).map_err(|_| {
3294 crate::types::BduError::Internal(format!(
3295 "Invalid gate_source_area '{}' on mapping {} -> {}",
3296 gate_area_str, src_area_id, dst_area_id
3297 ))
3298 })?;
3299 let gate_cortical_idx =
3300 self.cortical_id_to_idx.get(&gate_area_id).ok_or_else(|| {
3301 crate::types::BduError::Internal(format!(
3302 "Unknown gate_source_area '{}' on mapping {} -> {}",
3303 gate_area_str, src_area_id, dst_area_id
3304 ))
3305 })?;
3306
3307 let mut npu_lock = npu_arc.lock().map_err(|_| {
3308 crate::types::BduError::Internal(
3309 "Failed to acquire NPU lock for gate registration".to_string(),
3310 )
3311 })?;
3312 if let Err(e) = npu_lock.register_gate_mapping(
3313 src_cortical_idx,
3314 dst_cortical_idx,
3315 *gate_cortical_idx,
3316 ) {
3317 tracing::error!(
3318 target: "feagi-bdu",
3319 "Gate mapping registration failed for {} -> {} (gate={}): {}",
3320 src_area_id,
3321 dst_area_id,
3322 gate_area_str,
3323 e
3324 );
3325 return Err(crate::types::BduError::Internal(format!(
3326 "Gate registration failed: {}",
3327 e
3328 )));
3329 }
3330 }
3331
3332 let synapse_count = match self.apply_single_morphology_rule(
3334 src_area_id,
3335 dst_area_id,
3336 rule,
3337 ) {
3338 Ok(count) => count,
3339 Err(e) => {
3340 tracing::error!(
3341 target: "feagi-bdu",
3342 "Mapping rule application failed for {} -> {} (morphology={}, keys={:?}): {}",
3343 src_area_id,
3344 dst_area_id,
3345 morphology_id,
3346 rule_keys,
3347 e
3348 );
3349 return Err(e);
3350 }
3351 };
3352 total_synapses += synapse_count;
3353 tracing::debug!(
3354 target: "feagi-bdu",
3355 "Rule {} created {} synapses for {} -> {}",
3356 morphology_id,
3357 synapse_count,
3358 src_area_id,
3359 dst_area_id
3360 );
3361 }
3362
3363 Ok(total_synapses)
3364 }
3365
3366 #[allow(clippy::too_many_arguments)]
3380 fn apply_function_morphology(
3381 &self,
3382 morphology_id: &str,
3383 rule: &serde_json::Value,
3384 npu_arc: &Arc<feagi_npu_burst_engine::TracingMutex<feagi_npu_burst_engine::DynamicNPU>>,
3385 npu: &mut feagi_npu_burst_engine::DynamicNPU,
3386 src_area_id: &CorticalID,
3387 dst_area_id: &CorticalID,
3388 src_idx: u32,
3389 dst_idx: u32,
3390 weight: f32,
3391 psp: f32,
3392 synapse_attractivity: u8,
3393 synapse_type: feagi_npu_neural::SynapseType,
3394 delay_bursts: u8,
3395 ) -> BduResult<usize> {
3396 match morphology_id {
3397 "projector" | "transpose_xy" | "transpose_yz" | "transpose_xz" => {
3398 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3400 crate::types::BduError::InvalidArea(format!(
3401 "Source area not found: {}",
3402 src_area_id
3403 ))
3404 })?;
3405 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3406 crate::types::BduError::InvalidArea(format!(
3407 "Destination area not found: {}",
3408 dst_area_id
3409 ))
3410 })?;
3411
3412 let src_dimensions = (
3413 src_area.dimensions.width as usize,
3414 src_area.dimensions.height as usize,
3415 src_area.dimensions.depth as usize,
3416 );
3417 let dst_dimensions = (
3418 dst_area.dimensions.width as usize,
3419 dst_area.dimensions.height as usize,
3420 dst_area.dimensions.depth as usize,
3421 );
3422
3423 let transpose = match morphology_id {
3426 "transpose_xy" => Some((1, 0, 2)),
3427 "transpose_yz" => Some((0, 2, 1)),
3428 "transpose_xz" => Some((2, 1, 0)),
3429 _ => None,
3430 };
3431
3432 use crate::connectivity::core_morphologies::apply_projector_morphology_with_dimensions;
3433 let count = apply_projector_morphology_with_dimensions(
3434 npu,
3435 src_idx,
3436 dst_idx,
3437 src_dimensions,
3438 dst_dimensions,
3439 transpose,
3440 None, weight,
3442 psp,
3443 synapse_attractivity,
3444 synapse_type,
3445 0,
3446 delay_bursts,
3447 )?;
3448 npu.rebuild_synapse_index();
3450 Ok(count as usize)
3451 }
3452 "centered_projector" => {
3453 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3454 crate::types::BduError::InvalidArea(format!(
3455 "Source area not found: {}",
3456 src_area_id
3457 ))
3458 })?;
3459 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3460 crate::types::BduError::InvalidArea(format!(
3461 "Destination area not found: {}",
3462 dst_area_id
3463 ))
3464 })?;
3465
3466 let src_dimensions = (
3467 src_area.dimensions.width as usize,
3468 src_area.dimensions.height as usize,
3469 src_area.dimensions.depth as usize,
3470 );
3471 let dst_dimensions = (
3472 dst_area.dimensions.width as usize,
3473 dst_area.dimensions.height as usize,
3474 dst_area.dimensions.depth as usize,
3475 );
3476
3477 let count = crate::connectivity::core_morphologies::apply_centered_projector_morphology_with_dimensions(
3478 npu,
3479 src_idx,
3480 dst_idx,
3481 src_dimensions,
3482 dst_dimensions,
3483 weight,
3484 psp,
3485 synapse_attractivity,
3486 synapse_type,
3487 delay_bursts,
3488 )?;
3489 if count > 0 {
3490 npu.rebuild_synapse_index();
3491 }
3492 Ok(count as usize)
3493 }
3494 "episodic_memory" => {
3495 use tracing::trace;
3498 trace!(
3499 target: "feagi-bdu",
3500 "Episodic memory morphology: {} -> {} (no physical synapses, plasticity-driven)",
3501 src_idx, dst_idx
3502 );
3503 Ok(0)
3504 }
3505 "memory_replay" => {
3506 use tracing::trace;
3508 trace!(
3509 target: "feagi-bdu",
3510 "Memory replay morphology: {} -> {} (no physical synapses)",
3511 src_idx, dst_idx
3512 );
3513 Ok(0)
3514 }
3515 "associative_memory" => {
3516 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3520 crate::types::BduError::InvalidArea(format!(
3521 "Source area not found: {}",
3522 src_area_id
3523 ))
3524 })?;
3525 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3526 crate::types::BduError::InvalidArea(format!(
3527 "Destination area not found: {}",
3528 dst_area_id
3529 ))
3530 })?;
3531
3532 if matches!(src_area.cortical_type, CorticalAreaType::Memory(_))
3533 && matches!(dst_area.cortical_type, CorticalAreaType::Memory(_))
3534 {
3535 let src_dimensions = (
3536 src_area.dimensions.width as usize,
3537 src_area.dimensions.height as usize,
3538 src_area.dimensions.depth as usize,
3539 );
3540 let dst_dimensions = (
3541 dst_area.dimensions.width as usize,
3542 dst_area.dimensions.height as usize,
3543 dst_area.dimensions.depth as usize,
3544 );
3545 use crate::connectivity::core_morphologies::apply_projector_morphology_with_dimensions;
3546 let count = apply_projector_morphology_with_dimensions(
3547 npu,
3548 src_idx,
3549 dst_idx,
3550 src_dimensions,
3551 dst_dimensions,
3552 None,
3553 None,
3554 weight,
3555 psp,
3556 synapse_attractivity,
3557 synapse_type,
3558 SYNAPSE_EDGE_ASSOCIATIVE_MEMORY,
3559 delay_bursts,
3560 )?;
3561 npu.rebuild_synapse_index();
3562 Ok(count as usize)
3563 } else {
3564 Ok(0)
3565 }
3566 }
3567 "block_to_block" => {
3568 tracing::warn!(
3569 target: "feagi-bdu",
3570 "🔍 DEBUG apply_function_morphology: block_to_block case reached with src_idx={}, dst_idx={}",
3571 src_idx, dst_idx
3572 );
3573 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3575 crate::types::BduError::InvalidArea(format!(
3576 "Source area not found: {}",
3577 src_area_id
3578 ))
3579 })?;
3580 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3581 crate::types::BduError::InvalidArea(format!(
3582 "Destination area not found: {}",
3583 dst_area_id
3584 ))
3585 })?;
3586
3587 let src_dimensions = (
3588 src_area.dimensions.width as usize,
3589 src_area.dimensions.height as usize,
3590 src_area.dimensions.depth as usize,
3591 );
3592 let dst_dimensions = (
3593 dst_area.dimensions.width as usize,
3594 dst_area.dimensions.height as usize,
3595 dst_area.dimensions.depth as usize,
3596 );
3597
3598 let scalar = if let Some(obj) = rule.as_object() {
3600 if let Some(scalar_arr) =
3602 obj.get("morphology_scalar").and_then(|v| v.as_array())
3603 {
3604 scalar_arr.first().and_then(|v| v.as_i64()).unwrap_or(1) as u32
3606 } else {
3607 1 }
3609 } else if let Some(arr) = rule.as_array() {
3610 arr.get(1).and_then(|v| v.as_i64()).unwrap_or(1) as u32
3612 } else {
3613 1 };
3615
3616 let estimated_neurons = src_dimensions.0 * src_dimensions.1 * src_dimensions.2;
3619 let count = if estimated_neurons > 100_000 {
3620 let _ = npu;
3622
3623 crate::connectivity::synaptogenesis::apply_block_connection_morphology_batched(
3624 npu_arc,
3625 src_idx,
3626 dst_idx,
3627 src_dimensions,
3628 dst_dimensions,
3629 scalar, weight,
3631 psp,
3632 synapse_attractivity,
3633 synapse_type,
3634 delay_bursts,
3635 )? as usize
3636 } else {
3637 tracing::warn!(
3639 target: "feagi-bdu",
3640 "🔍 DEBUG connectome_manager: Calling apply_block_connection_morphology with src_idx={}, dst_idx={}, src_dim={:?}, dst_dim={:?}",
3641 src_idx, dst_idx, src_dimensions, dst_dimensions
3642 );
3643 let count =
3644 crate::connectivity::synaptogenesis::apply_block_connection_morphology(
3645 npu,
3646 src_idx,
3647 dst_idx,
3648 src_dimensions,
3649 dst_dimensions,
3650 scalar, weight,
3652 psp,
3653 synapse_attractivity,
3654 synapse_type,
3655 delay_bursts,
3656 )? as usize;
3657 tracing::warn!(
3658 target: "feagi-bdu",
3659 "🔍 DEBUG connectome_manager: apply_block_connection_morphology returned count={}",
3660 count
3661 );
3662 if count > 0 {
3664 npu.rebuild_synapse_index();
3665 }
3666 count
3667 };
3668
3669 if count > 0 && estimated_neurons > 100_000 {
3671 let mut npu_lock = npu_arc.lock().unwrap();
3672 npu_lock.rebuild_synapse_index();
3673 }
3674
3675 Ok(count)
3676 }
3677 "bitmask_encoder_x" | "bitmask_encoder_y" | "bitmask_encoder_z"
3678 | "bitmask_decoder_x" | "bitmask_decoder_y" | "bitmask_decoder_z" => {
3679 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3680 crate::types::BduError::InvalidArea(format!(
3681 "Source area not found: {}",
3682 src_area_id
3683 ))
3684 })?;
3685 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3686 crate::types::BduError::InvalidArea(format!(
3687 "Destination area not found: {}",
3688 dst_area_id
3689 ))
3690 })?;
3691
3692 let src_dimensions = (
3693 src_area.dimensions.width as usize,
3694 src_area.dimensions.height as usize,
3695 src_area.dimensions.depth as usize,
3696 );
3697 let dst_dimensions = (
3698 dst_area.dimensions.width as usize,
3699 dst_area.dimensions.height as usize,
3700 dst_area.dimensions.depth as usize,
3701 );
3702
3703 let (axis, mode) = match morphology_id {
3704 "bitmask_encoder_x" => (
3705 crate::connectivity::core_morphologies::BitmaskAxis::X,
3706 crate::connectivity::core_morphologies::BitmaskMode::Encoder,
3707 ),
3708 "bitmask_encoder_y" => (
3709 crate::connectivity::core_morphologies::BitmaskAxis::Y,
3710 crate::connectivity::core_morphologies::BitmaskMode::Encoder,
3711 ),
3712 "bitmask_encoder_z" => (
3713 crate::connectivity::core_morphologies::BitmaskAxis::Z,
3714 crate::connectivity::core_morphologies::BitmaskMode::Encoder,
3715 ),
3716 "bitmask_decoder_x" => (
3717 crate::connectivity::core_morphologies::BitmaskAxis::X,
3718 crate::connectivity::core_morphologies::BitmaskMode::Decoder,
3719 ),
3720 "bitmask_decoder_y" => (
3721 crate::connectivity::core_morphologies::BitmaskAxis::Y,
3722 crate::connectivity::core_morphologies::BitmaskMode::Decoder,
3723 ),
3724 "bitmask_decoder_z" => (
3725 crate::connectivity::core_morphologies::BitmaskAxis::Z,
3726 crate::connectivity::core_morphologies::BitmaskMode::Decoder,
3727 ),
3728 _ => unreachable!("matched bitmask morphology above"),
3729 };
3730
3731 let count =
3732 crate::connectivity::core_morphologies::apply_bitmask_morphology_with_dimensions(
3733 npu,
3734 src_idx,
3735 dst_idx,
3736 src_dimensions,
3737 dst_dimensions,
3738 axis,
3739 mode,
3740 weight,
3741 psp,
3742 synapse_attractivity,
3743 synapse_type,
3744 delay_bursts,
3745 )?;
3746 if count > 0 {
3747 npu.rebuild_synapse_index();
3748 }
3749 Ok(count as usize)
3750 }
3751 "sweeper" => {
3752 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3753 crate::types::BduError::InvalidArea(format!(
3754 "Destination area not found: {}",
3755 dst_area_id
3756 ))
3757 })?;
3758 let dst_dimensions = (
3759 dst_area.dimensions.width as usize,
3760 dst_area.dimensions.height as usize,
3761 dst_area.dimensions.depth as usize,
3762 );
3763
3764 let count =
3765 crate::connectivity::core_morphologies::apply_sweeper_morphology_with_dimensions(
3766 npu,
3767 src_idx,
3768 dst_idx,
3769 dst_dimensions,
3770 weight,
3771 psp,
3772 synapse_attractivity,
3773 synapse_type,
3774 delay_bursts,
3775 )?;
3776 if count > 0 {
3777 npu.rebuild_synapse_index();
3778 }
3779 Ok(count as usize)
3780 }
3781 "last_to_first" => {
3782 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3783 crate::types::BduError::InvalidArea(format!(
3784 "Source area not found: {}",
3785 src_area_id
3786 ))
3787 })?;
3788 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3789 crate::types::BduError::InvalidArea(format!(
3790 "Destination area not found: {}",
3791 dst_area_id
3792 ))
3793 })?;
3794 let src_dimensions = (
3795 src_area.dimensions.width as usize,
3796 src_area.dimensions.height as usize,
3797 src_area.dimensions.depth as usize,
3798 );
3799 let dst_dimensions = (
3800 dst_area.dimensions.width as usize,
3801 dst_area.dimensions.height as usize,
3802 dst_area.dimensions.depth as usize,
3803 );
3804
3805 let count = crate::connectivity::core_morphologies::apply_last_to_first_morphology_with_dimensions(
3806 npu,
3807 src_idx,
3808 dst_idx,
3809 src_dimensions,
3810 dst_dimensions,
3811 weight,
3812 psp,
3813 synapse_attractivity,
3814 synapse_type,
3815 delay_bursts,
3816 )?;
3817 if count > 0 {
3818 npu.rebuild_synapse_index();
3819 }
3820 Ok(count as usize)
3821 }
3822 "first_to_last" => {
3823 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3824 crate::types::BduError::InvalidArea(format!(
3825 "Source area not found: {}",
3826 src_area_id
3827 ))
3828 })?;
3829 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3830 crate::types::BduError::InvalidArea(format!(
3831 "Destination area not found: {}",
3832 dst_area_id
3833 ))
3834 })?;
3835 let src_dimensions = (
3836 src_area.dimensions.width as usize,
3837 src_area.dimensions.height as usize,
3838 src_area.dimensions.depth as usize,
3839 );
3840 let dst_dimensions = (
3841 dst_area.dimensions.width as usize,
3842 dst_area.dimensions.height as usize,
3843 dst_area.dimensions.depth as usize,
3844 );
3845
3846 let count = crate::connectivity::core_morphologies::apply_first_to_last_morphology_with_dimensions(
3847 npu,
3848 src_idx,
3849 dst_idx,
3850 src_dimensions,
3851 dst_dimensions,
3852 weight,
3853 psp,
3854 synapse_attractivity,
3855 synapse_type,
3856 delay_bursts,
3857 )?;
3858 if count > 0 {
3859 npu.rebuild_synapse_index();
3860 }
3861 Ok(count as usize)
3862 }
3863 "rotator_z" => {
3864 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
3865 crate::types::BduError::InvalidArea(format!(
3866 "Source area not found: {}",
3867 src_area_id
3868 ))
3869 })?;
3870 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
3871 crate::types::BduError::InvalidArea(format!(
3872 "Destination area not found: {}",
3873 dst_area_id
3874 ))
3875 })?;
3876 let src_dimensions = (
3877 src_area.dimensions.width as usize,
3878 src_area.dimensions.height as usize,
3879 src_area.dimensions.depth as usize,
3880 );
3881 let dst_dimensions = (
3882 dst_area.dimensions.width as usize,
3883 dst_area.dimensions.height as usize,
3884 dst_area.dimensions.depth as usize,
3885 );
3886
3887 let count = crate::connectivity::core_morphologies::apply_rotator_z_morphology_with_dimensions(
3888 npu,
3889 src_idx,
3890 dst_idx,
3891 src_dimensions,
3892 dst_dimensions,
3893 weight,
3894 psp,
3895 synapse_attractivity,
3896 synapse_type,
3897 delay_bursts,
3898 )?;
3899 if count > 0 {
3900 npu.rebuild_synapse_index();
3901 }
3902 Ok(count as usize)
3903 }
3904 _ => {
3905 use tracing::debug;
3908 debug!(target: "feagi-bdu", "Function morphology {} not yet implemented", morphology_id);
3909 Ok(0)
3910 }
3911 }
3912 }
3913
3914 fn apply_single_morphology_rule(
3916 &mut self,
3917 src_area_id: &CorticalID,
3918 dst_area_id: &CorticalID,
3919 rule: &serde_json::Value,
3920 ) -> BduResult<usize> {
3921 let morphology_id = if let Some(arr) = rule.as_array() {
3923 arr.first().and_then(|v| v.as_str()).unwrap_or("")
3924 } else if let Some(obj) = rule.as_object() {
3925 obj.get("morphology_id")
3926 .and_then(|v| v.as_str())
3927 .unwrap_or("")
3928 } else {
3929 return Ok(0);
3930 };
3931
3932 if morphology_id.is_empty() {
3933 return Ok(0);
3934 }
3935
3936 let morphology = self.morphology_registry.get(morphology_id).ok_or_else(|| {
3938 crate::types::BduError::InvalidMorphology(format!(
3939 "Morphology not found: {}",
3940 morphology_id
3941 ))
3942 })?;
3943
3944 let src_idx = self.cortical_id_to_idx.get(src_area_id).ok_or_else(|| {
3946 crate::types::BduError::InvalidArea(format!(
3947 "Source area ID not found: {}",
3948 src_area_id
3949 ))
3950 })?;
3951 let dst_idx = self.cortical_id_to_idx.get(dst_area_id).ok_or_else(|| {
3952 crate::types::BduError::InvalidArea(format!(
3953 "Destination area ID not found: {}",
3954 dst_area_id
3955 ))
3956 })?;
3957
3958 if let Some(ref npu_arc) = self.npu {
3960 let lock_start = std::time::Instant::now();
3961 let mut npu = npu_arc.lock().unwrap();
3962 let lock_wait = lock_start.elapsed();
3963 tracing::debug!(
3964 target: "feagi-bdu",
3965 "[NPU-LOCK] synaptogenesis lock wait {:.2}ms for {} -> {} (morphology={})",
3966 lock_wait.as_secs_f64() * 1000.0,
3967 src_area_id,
3968 dst_area_id,
3969 morphology_id
3970 );
3971
3972 let (weight, psp, synapse_type, delay_bursts) =
3973 self.resolve_synapse_params_for_rule(src_area_id, rule)?;
3974
3975 let synapse_attractivity = if let Some(obj) = rule.as_object() {
3977 obj.get("synapse_attractivity")
3978 .and_then(|v| v.as_u64())
3979 .unwrap_or(100) as u8
3980 } else {
3981 100 };
3983
3984 match morphology.morphology_type {
3985 feagi_evolutionary::MorphologyType::Functions => {
3986 tracing::debug!(
3987 target: "feagi-bdu",
3988 "apply_single_morphology_rule: Functions type, morphology_id={}, calling apply_function_morphology",
3989 morphology_id
3990 );
3991 self.apply_function_morphology(
3994 morphology_id,
3995 rule,
3996 npu_arc,
3997 &mut npu,
3998 src_area_id,
3999 dst_area_id,
4000 *src_idx,
4001 *dst_idx,
4002 weight,
4003 psp,
4004 synapse_attractivity,
4005 synapse_type,
4006 delay_bursts,
4007 )
4008 }
4009 feagi_evolutionary::MorphologyType::Vectors => {
4010 use crate::connectivity::synaptogenesis::apply_vectors_morphology_with_dimensions;
4011
4012 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
4014 crate::types::BduError::InvalidArea(format!(
4015 "Destination area not found: {}",
4016 dst_area_id
4017 ))
4018 })?;
4019
4020 let dst_dimensions = (
4021 dst_area.dimensions.width as usize,
4022 dst_area.dimensions.height as usize,
4023 dst_area.dimensions.depth as usize,
4024 );
4025
4026 if let feagi_evolutionary::MorphologyParameters::Vectors { ref vectors } =
4027 morphology.parameters
4028 {
4029 let vectors_tuples: Vec<(i32, i32, i32)> =
4031 vectors.iter().map(|v| (v[0], v[1], v[2])).collect();
4032
4033 let count = apply_vectors_morphology_with_dimensions(
4034 &mut npu,
4035 *src_idx,
4036 *dst_idx,
4037 vectors_tuples,
4038 dst_dimensions,
4039 weight, psp, synapse_attractivity, synapse_type,
4043 delay_bursts,
4044 )?;
4045 npu.rebuild_synapse_index();
4048 Ok(count as usize)
4049 } else {
4050 Ok(0)
4051 }
4052 }
4053 feagi_evolutionary::MorphologyType::Patterns => {
4054 use crate::connectivity::core_morphologies::apply_patterns_morphology;
4055 use crate::connectivity::rules::patterns::{
4056 Pattern3D, PatternElement as RulePatternElement,
4057 };
4058 use feagi_evolutionary::PatternElement as EvoPatternElement;
4059
4060 let feagi_evolutionary::MorphologyParameters::Patterns { ref patterns } =
4061 morphology.parameters
4062 else {
4063 return Ok(0);
4064 };
4065
4066 let convert_element =
4067 |element: &EvoPatternElement|
4068 -> crate::types::BduResult<RulePatternElement> {
4069 match element {
4070 EvoPatternElement::Value(value) => {
4071 if *value < 0 {
4072 return Err(crate::types::BduError::InvalidMorphology(
4073 format!(
4074 "Pattern morphology {} contains negative voxel coordinate {}",
4075 morphology_id, value
4076 ),
4077 ));
4078 }
4079 Ok(RulePatternElement::Exact(*value))
4080 }
4081 EvoPatternElement::Wildcard => Ok(RulePatternElement::Wildcard),
4082 EvoPatternElement::Skip => Ok(RulePatternElement::Skip),
4083 EvoPatternElement::Exclude => Ok(RulePatternElement::Exclude),
4084 EvoPatternElement::DirectionPositive => {
4085 Ok(RulePatternElement::DirectionExclusive(
4086 crate::connectivity::rules::patterns::Direction::Positive,
4087 ))
4088 }
4089 EvoPatternElement::DirectionNegative => {
4090 Ok(RulePatternElement::DirectionExclusive(
4091 crate::connectivity::rules::patterns::Direction::Negative,
4092 ))
4093 }
4094 EvoPatternElement::DirectionPositiveInclusive => {
4095 Ok(RulePatternElement::DirectionInclusive(
4096 crate::connectivity::rules::patterns::Direction::Positive,
4097 ))
4098 }
4099 EvoPatternElement::DirectionNegativeInclusive => {
4100 Ok(RulePatternElement::DirectionInclusive(
4101 crate::connectivity::rules::patterns::Direction::Negative,
4102 ))
4103 }
4104 EvoPatternElement::Offset(off) => {
4105 Ok(RulePatternElement::Offset(*off))
4106 }
4107 EvoPatternElement::Range(lo, hi) => {
4108 Ok(RulePatternElement::Range(*lo, *hi))
4109 }
4110 }
4111 };
4112
4113 let mut converted_patterns = Vec::with_capacity(patterns.len());
4114 for pattern_pair in patterns {
4115 if pattern_pair.len() != 2 {
4116 return Err(crate::types::BduError::InvalidMorphology(format!(
4117 "Pattern morphology {} must contain [src, dst] pairs",
4118 morphology_id
4119 )));
4120 }
4121
4122 let src_pattern = &pattern_pair[0];
4123 let dst_pattern = &pattern_pair[1];
4124
4125 if src_pattern.len() != 3 || dst_pattern.len() != 3 {
4126 return Err(crate::types::BduError::InvalidMorphology(format!(
4127 "Pattern morphology {} requires 3-axis patterns",
4128 morphology_id
4129 )));
4130 }
4131
4132 let src: Pattern3D = (
4133 convert_element(&src_pattern[0])?,
4134 convert_element(&src_pattern[1])?,
4135 convert_element(&src_pattern[2])?,
4136 );
4137 let dst: Pattern3D = (
4138 convert_element(&dst_pattern[0])?,
4139 convert_element(&dst_pattern[1])?,
4140 convert_element(&dst_pattern[2])?,
4141 );
4142
4143 converted_patterns.push((src, dst));
4144 }
4145
4146 let count = apply_patterns_morphology(
4147 &mut npu,
4148 *src_idx,
4149 *dst_idx,
4150 converted_patterns,
4151 weight,
4152 psp,
4153 synapse_attractivity,
4154 synapse_type,
4155 delay_bursts,
4156 )?;
4157 if count > 0 {
4158 npu.rebuild_synapse_index();
4159 }
4160 Ok(count as usize)
4161 }
4162 feagi_evolutionary::MorphologyType::Composite => {
4163 let feagi_evolutionary::MorphologyParameters::Composite { .. } =
4164 morphology.parameters
4165 else {
4166 return Ok(0);
4167 };
4168
4169 if morphology_id != "tile" {
4170 use tracing::debug;
4171 debug!(
4172 target: "feagi-bdu",
4173 "Composite morphology {} not yet implemented",
4174 morphology_id
4175 );
4176 return Ok(0);
4177 }
4178
4179 let src_area = self.cortical_areas.get(src_area_id).ok_or_else(|| {
4180 crate::types::BduError::InvalidArea(format!(
4181 "Source area not found: {}",
4182 src_area_id
4183 ))
4184 })?;
4185 let dst_area = self.cortical_areas.get(dst_area_id).ok_or_else(|| {
4186 crate::types::BduError::InvalidArea(format!(
4187 "Destination area not found: {}",
4188 dst_area_id
4189 ))
4190 })?;
4191 let src_dimensions = (
4192 src_area.dimensions.width as usize,
4193 src_area.dimensions.height as usize,
4194 src_area.dimensions.depth as usize,
4195 );
4196 let dst_dimensions = (
4197 dst_area.dimensions.width as usize,
4198 dst_area.dimensions.height as usize,
4199 dst_area.dimensions.depth as usize,
4200 );
4201
4202 let count =
4203 crate::connectivity::core_morphologies::apply_tile_morphology_with_dimensions(
4204 &mut npu,
4205 *src_idx,
4206 *dst_idx,
4207 src_dimensions,
4208 dst_dimensions,
4209 weight,
4210 psp,
4211 synapse_attractivity,
4212 synapse_type,
4213 delay_bursts,
4214 )?;
4215 if count > 0 {
4216 npu.rebuild_synapse_index();
4217 }
4218 Ok(count as usize)
4219 }
4220 }
4221 } else {
4222 Ok(0) }
4224 }
4225
4226 pub fn set_npu(
4239 &mut self,
4240 npu: Arc<feagi_npu_burst_engine::TracingMutex<feagi_npu_burst_engine::DynamicNPU>>,
4241 ) {
4242 self.npu = Some(Arc::clone(&npu));
4243 info!(target: "feagi-bdu","🔗 ConnectomeManager: NPU reference set");
4244
4245 #[cfg(not(feature = "wasm"))]
4248 {
4249 use feagi_state_manager::StateManager;
4250 let state_manager = StateManager::instance();
4251 let state_manager = state_manager.read();
4252 let core_state = state_manager.get_core_state();
4253 core_state.set_neuron_capacity(self.config.max_neurons as u32);
4255 core_state.set_synapse_capacity(self.config.max_synapses as u32);
4256 info!(
4257 target: "feagi-bdu",
4258 "📊 Updated State Manager with capacity: {} neurons, {} synapses",
4259 self.config.max_neurons, self.config.max_synapses
4260 );
4261 }
4262
4263 let existing_area_count = self.cortical_id_to_idx.len();
4270 if existing_area_count > 0 {
4271 match npu.lock() {
4272 Ok(mut npu_lock) => {
4273 for (cortical_id, cortical_idx) in self.cortical_id_to_idx.iter() {
4274 npu_lock.register_cortical_area(*cortical_idx, cortical_id.as_base_64());
4275 }
4276 info!(
4277 target: "feagi-bdu",
4278 "🔁 Backfilled {} cortical area registrations into NPU",
4279 existing_area_count
4280 );
4281 }
4282 Err(e) => {
4283 warn!(
4284 target: "feagi-bdu",
4285 "⚠️ Failed to lock NPU for cortical area backfill registration: {}",
4286 e
4287 );
4288 }
4289 }
4290 }
4291
4292 self.update_all_cached_stats();
4294 info!(target: "feagi-bdu","📊 Initialized cached stats: {} neurons, {} synapses",
4295 self.get_neuron_count(), self.get_synapse_count());
4296 }
4297
4298 pub fn has_npu(&self) -> bool {
4300 self.npu.is_some()
4301 }
4302
4303 pub fn get_npu(
4310 &self,
4311 ) -> Option<&Arc<feagi_npu_burst_engine::TracingMutex<feagi_npu_burst_engine::DynamicNPU>>>
4312 {
4313 self.npu.as_ref()
4314 }
4315
4316 pub fn rebind_npu_runtime_after_connectome_apply(&mut self) -> BduResult<()> {
4322 self.refresh_all_upstream_cortical_areas_from_mappings();
4323 self.rebuild_memory_twin_mappings()?;
4324 self.rebind_memory_twin_mappings_to_npu()?;
4325 self.rebind_stdp_mappings_to_npu()?;
4326 #[cfg(feature = "plasticity")]
4327 self.reregister_memory_areas_with_plasticity()?;
4328 Ok(())
4329 }
4330
4331 pub fn refresh_all_upstream_cortical_areas_from_mappings(&mut self) {
4337 let area_ids: Vec<CorticalID> = self.cortical_areas.keys().copied().collect();
4338 for area_id in area_ids {
4339 self.refresh_upstream_cortical_areas_from_mappings(&area_id);
4340 }
4341 }
4342
4343 pub fn rebuild_memory_twin_mappings(&mut self) -> BduResult<usize> {
4353 let jobs = self.collect_memory_twin_rebuild_jobs()?;
4354 let mut restored = 0usize;
4355 for (memory_id, upstream_id, known_twin) in jobs {
4356 match known_twin {
4357 Some(twin_id) => {
4358 self.restore_memory_twin_index(&memory_id, &upstream_id, &twin_id)?;
4359 restored += 1;
4360 }
4361 None => {
4362 self.ensure_memory_twin_area(&memory_id, &upstream_id)?;
4363 restored += 1;
4364 }
4365 }
4366 }
4367 if restored > 0 {
4368 info!(
4369 target: "feagi-bdu",
4370 "Rebuilt {} memory twin mapping(s) after connectome apply",
4371 restored
4372 );
4373 self.refresh_cortical_mappings_hash();
4374 }
4375 Ok(restored)
4376 }
4377
4378 fn collect_memory_twin_rebuild_jobs(
4379 &self,
4380 ) -> BduResult<Vec<(CorticalID, CorticalID, Option<CorticalID>)>> {
4381 let mut jobs: Vec<(CorticalID, CorticalID, Option<CorticalID>)> = Vec::new();
4382 let mut seen: HashSet<(CorticalID, CorticalID)> = HashSet::new();
4383
4384 for (memory_id, memory_area) in &self.cortical_areas {
4385 if !Self::area_is_memory(memory_area) {
4386 continue;
4387 }
4388 let Some(dstmap) = memory_area
4389 .properties
4390 .get("cortical_mapping_dst")
4391 .and_then(|value| value.as_object())
4392 else {
4393 continue;
4394 };
4395 for (dst_b64, rules) in dstmap {
4396 if !Self::mapping_rules_use_morphology(rules, "memory_replay") {
4397 continue;
4398 }
4399 let twin_id = match CorticalID::try_from_base_64(dst_b64) {
4400 Ok(id) => id,
4401 Err(_) => continue,
4402 };
4403 let Some(twin_area) = self.cortical_areas.get(&twin_id) else {
4404 continue;
4405 };
4406 let Some(upstream_b64) = twin_area
4407 .properties
4408 .get("memory_twin_of")
4409 .and_then(|value| value.as_str())
4410 else {
4411 continue;
4412 };
4413 let upstream_id = CorticalID::try_from_base_64(upstream_b64).map_err(|error| {
4414 BduError::InvalidArea(format!(
4415 "Invalid memory_twin_of '{}' on {}: {}",
4416 upstream_b64,
4417 twin_id.as_base_64(),
4418 error
4419 ))
4420 })?;
4421 if seen.insert((*memory_id, upstream_id)) {
4422 jobs.push((*memory_id, upstream_id, Some(twin_id)));
4423 }
4424 }
4425 }
4426
4427 for (twin_id, twin_area) in &self.cortical_areas {
4428 let Some(upstream_b64) = twin_area
4429 .properties
4430 .get("memory_twin_of")
4431 .and_then(|value| value.as_str())
4432 else {
4433 continue;
4434 };
4435 let Some(memory_b64) = twin_area
4436 .properties
4437 .get("memory_twin_for")
4438 .and_then(|value| value.as_str())
4439 else {
4440 continue;
4441 };
4442 let upstream_id = CorticalID::try_from_base_64(upstream_b64).map_err(|error| {
4443 BduError::InvalidArea(format!(
4444 "Invalid memory_twin_of '{}' on {}: {}",
4445 upstream_b64,
4446 twin_id.as_base_64(),
4447 error
4448 ))
4449 })?;
4450 let memory_id = CorticalID::try_from_base_64(memory_b64).map_err(|error| {
4451 BduError::InvalidArea(format!(
4452 "Invalid memory_twin_for '{}' on {}: {}",
4453 memory_b64,
4454 twin_id.as_base_64(),
4455 error
4456 ))
4457 })?;
4458 if !self.cortical_areas.contains_key(&memory_id)
4459 || !self.cortical_areas.contains_key(&upstream_id)
4460 {
4461 continue;
4462 }
4463 if seen.insert((memory_id, upstream_id)) {
4464 jobs.push((memory_id, upstream_id, Some(*twin_id)));
4465 }
4466 }
4467
4468 let mut episodic_pairs: Vec<(CorticalID, CorticalID)> = Vec::new();
4469 for (src_id, src_area) in &self.cortical_areas {
4470 if Self::area_is_memory(src_area) {
4471 continue;
4472 }
4473 let Some(dstmap) = src_area
4474 .properties
4475 .get("cortical_mapping_dst")
4476 .and_then(|value| value.as_object())
4477 else {
4478 continue;
4479 };
4480 for (dst_b64, rules) in dstmap {
4481 if !Self::mapping_rules_use_morphology(rules, "episodic_memory") {
4482 continue;
4483 }
4484 let Ok(memory_id) = CorticalID::try_from_base_64(dst_b64) else {
4485 continue;
4486 };
4487 let Some(memory_area) = self.cortical_areas.get(&memory_id) else {
4488 continue;
4489 };
4490 if !Self::area_is_memory(memory_area) {
4491 continue;
4492 }
4493 episodic_pairs.push((memory_id, *src_id));
4494 }
4495 }
4496
4497 for (memory_id, upstream_id) in episodic_pairs {
4498 if !seen.insert((memory_id, upstream_id)) {
4499 continue;
4500 }
4501 let indexed_twin = self
4502 .cortical_areas
4503 .get(&memory_id)
4504 .and_then(|area| area.properties.get("memory_twin_areas"))
4505 .and_then(|value| value.as_object())
4506 .and_then(|map| map.get(&upstream_id.as_base_64()))
4507 .and_then(|value| value.as_str())
4508 .and_then(|twin_b64| CorticalID::try_from_base_64(twin_b64).ok());
4509 if let Some(twin_id) = indexed_twin {
4510 jobs.push((memory_id, upstream_id, Some(twin_id)));
4511 continue;
4512 }
4513 if let Ok(hash_twin_id) = self.build_memory_twin_id(&memory_id, &upstream_id) {
4514 if self.cortical_areas.contains_key(&hash_twin_id) {
4515 jobs.push((memory_id, upstream_id, Some(hash_twin_id)));
4516 continue;
4517 }
4518 }
4519 jobs.push((memory_id, upstream_id, None));
4520 }
4521
4522 Ok(jobs)
4523 }
4524
4525 fn restore_memory_twin_index(
4526 &mut self,
4527 memory_area_id: &CorticalID,
4528 upstream_area_id: &CorticalID,
4529 twin_id: &CorticalID,
4530 ) -> BduResult<()> {
4531 let expected_source = upstream_area_id.as_base_64();
4532 let expected_target = memory_area_id.as_base_64();
4533 let Some(existing) = self.cortical_areas.get_mut(twin_id) else {
4534 return Err(BduError::InvalidArea(format!(
4535 "Twin area {} not found while restoring memory twin index",
4536 twin_id.as_base_64()
4537 )));
4538 };
4539 let existing_source = existing
4540 .properties
4541 .get("memory_twin_of")
4542 .and_then(|value| value.as_str())
4543 .map(ToString::to_string);
4544 let existing_target = existing
4545 .properties
4546 .get("memory_twin_for")
4547 .and_then(|value| value.as_str())
4548 .map(ToString::to_string);
4549 if existing_source.as_deref() != Some(expected_source.as_str())
4550 || existing_target.as_deref() != Some(expected_target.as_str())
4551 {
4552 existing.properties.insert(
4553 "memory_twin_of".to_string(),
4554 serde_json::json!(expected_source),
4555 );
4556 existing.properties.insert(
4557 "memory_twin_for".to_string(),
4558 serde_json::json!(expected_target),
4559 );
4560 }
4561 self.set_memory_twin_mapping(memory_area_id, upstream_area_id, twin_id);
4562
4563 let has_replay = self
4564 .cortical_areas
4565 .get(memory_area_id)
4566 .and_then(|area| area.properties.get("cortical_mapping_dst"))
4567 .and_then(|value| value.as_object())
4568 .and_then(|map| map.get(&twin_id.as_base_64()))
4569 .is_some_and(|rules| Self::mapping_rules_use_morphology(rules, "memory_replay"));
4570 if !has_replay {
4571 self.ensure_memory_replay_mapping(memory_area_id, twin_id)?;
4572 }
4573 Ok(())
4574 }
4575
4576 fn area_is_memory(area: &CorticalArea) -> bool {
4577 matches!(area.cortical_type, CorticalAreaType::Memory(_))
4578 || area
4579 .properties
4580 .get("is_mem_type")
4581 .and_then(|value| value.as_bool())
4582 == Some(true)
4583 }
4584
4585 fn mapping_rules_use_morphology(rules: &serde_json::Value, morphology_id: &str) -> bool {
4586 rules.as_array().is_some_and(|arr| {
4587 arr.iter().any(|rule| {
4588 rule.as_object()
4589 .and_then(|obj| obj.get("morphology_id"))
4590 .and_then(|value| value.as_str())
4591 == Some(morphology_id)
4592 })
4593 })
4594 }
4595
4596 fn rebind_memory_twin_mappings_to_npu(&mut self) -> BduResult<()> {
4597 use crate::models::CorticalAreaExt;
4598
4599 let Some(npu_arc) = self.npu.clone() else {
4600 return Ok(());
4601 };
4602 let mut bindings: Vec<(u32, u32, u32, f32)> = Vec::new();
4603 for (memory_id, area) in &self.cortical_areas {
4604 if !matches!(area.cortical_type, CorticalAreaType::Memory(_)) {
4605 continue;
4606 }
4607 let Some(twins) = area
4608 .properties
4609 .get("memory_twin_areas")
4610 .and_then(|value| value.as_object())
4611 else {
4612 continue;
4613 };
4614 let Some(&memory_idx) = self.cortical_id_to_idx.get(memory_id) else {
4615 continue;
4616 };
4617 for (upstream_b64, twin_val) in twins {
4618 let Some(twin_b64) = twin_val.as_str() else {
4619 return Err(BduError::InvalidArea(format!(
4620 "memory_twin_areas entry for {} is not a string",
4621 upstream_b64
4622 )));
4623 };
4624 let upstream_id = CorticalID::try_from_base_64(upstream_b64).map_err(|error| {
4625 BduError::InvalidArea(format!(
4626 "Invalid upstream cortical ID {}: {}",
4627 upstream_b64, error
4628 ))
4629 })?;
4630 let twin_id = CorticalID::try_from_base_64(twin_b64).map_err(|error| {
4631 BduError::InvalidArea(format!(
4632 "Invalid twin cortical ID {}: {}",
4633 twin_b64, error
4634 ))
4635 })?;
4636 let Some(&upstream_idx) = self.cortical_id_to_idx.get(&upstream_id) else {
4637 continue;
4638 };
4639 let Some(&twin_idx) = self.cortical_id_to_idx.get(&twin_id) else {
4640 continue;
4641 };
4642 let Some(twin_area) = self.cortical_areas.get(&twin_id) else {
4643 continue;
4644 };
4645 let potential =
4646 twin_area.firing_threshold() + twin_area.firing_threshold_increment();
4647 bindings.push((memory_idx, upstream_idx, twin_idx, potential));
4648 }
4649 }
4650 let mut npu = npu_arc.lock().unwrap();
4651 for (memory_idx, upstream_idx, twin_idx, potential) in bindings {
4652 npu.register_memory_twin_mapping(memory_idx, upstream_idx, twin_idx, potential);
4653 }
4654 Ok(())
4655 }
4656
4657 fn rebind_stdp_mappings_to_npu(&mut self) -> BduResult<()> {
4658 let Some(npu_arc) = self.npu.clone() else {
4659 return Ok(());
4660 };
4661 let mut jobs: Vec<(CorticalID, CorticalID, u32, u32, Vec<serde_json::Value>)> = Vec::new();
4662 for (src_id, src_area) in &self.cortical_areas {
4663 let Some(dst_map) = src_area
4664 .properties
4665 .get("cortical_mapping_dst")
4666 .and_then(|value| value.as_object())
4667 else {
4668 continue;
4669 };
4670 let Some(&src_idx) = self.cortical_id_to_idx.get(src_id) else {
4671 continue;
4672 };
4673 for (dst_b64, rules) in dst_map {
4674 let dst_id = CorticalID::try_from_base_64(dst_b64).map_err(|error| {
4675 BduError::InvalidArea(format!(
4676 "Invalid destination cortical ID {}: {}",
4677 dst_b64, error
4678 ))
4679 })?;
4680 let Some(&dst_idx) = self.cortical_id_to_idx.get(&dst_id) else {
4681 continue;
4682 };
4683 let Some(rules_arr) = rules.as_array() else {
4684 continue;
4685 };
4686 jobs.push((*src_id, dst_id, src_idx, dst_idx, rules_arr.clone()));
4687 }
4688 }
4689
4690 for (src_id, dst_id, src_idx, dst_idx, rules) in jobs {
4691 for rule in &rules {
4692 let morphology_id = rule
4693 .as_object()
4694 .and_then(|obj| obj.get("morphology_id"))
4695 .and_then(|value| value.as_str())
4696 .unwrap_or("");
4697 let mut plasticity_flag = rule
4698 .as_object()
4699 .and_then(|obj| obj.get("plasticity_flag"))
4700 .and_then(|value| value.as_bool())
4701 .unwrap_or(false);
4702 if morphology_id == "associative_memory" {
4703 plasticity_flag = true;
4704 }
4705 if !plasticity_flag {
4706 continue;
4707 }
4708 let Some(rule_obj) = rule.as_object() else {
4709 return Err(BduError::InvalidMorphology(
4710 "Plasticity mapping rule must be an object format".to_string(),
4711 ));
4712 };
4713 let (_weight, psp, synapse_type, _delay) =
4714 self.resolve_synapse_params_for_rule(&src_id, rule)?;
4715 Self::register_stdp_mapping_for_rule(
4716 &npu_arc,
4717 &src_id,
4718 &dst_id,
4719 src_idx,
4720 dst_idx,
4721 rule_obj,
4722 false,
4723 psp,
4724 synapse_type,
4725 )?;
4726 }
4727 }
4728 Ok(())
4729 }
4730
4731 #[cfg(feature = "plasticity")]
4732 fn reregister_memory_areas_with_plasticity(&mut self) -> BduResult<()> {
4733 use feagi_evolutionary::extract_memory_properties;
4734 use feagi_npu_plasticity::{MemoryNeuronLifecycleConfig, PlasticityExecutor};
4735
4736 let Some(executor) = self.plasticity_executor.clone() else {
4737 return Ok(());
4738 };
4739 let memory_ids: Vec<CorticalID> = self
4740 .cortical_areas
4741 .iter()
4742 .filter(|(_, area)| matches!(area.cortical_type, CorticalAreaType::Memory(_)))
4743 .map(|(id, _)| *id)
4744 .collect();
4745
4746 for memory_id in memory_ids {
4747 let Some(area) = self.cortical_areas.get(&memory_id) else {
4748 continue;
4749 };
4750 let Some(mem_props) = extract_memory_properties(&area.properties) else {
4751 continue;
4752 };
4753 let Some(&area_idx) = self.cortical_id_to_idx.get(&memory_id) else {
4754 continue;
4755 };
4756 let area_name = memory_id.as_base_64();
4757 let upstream_areas = self.get_episodic_memory_upstream_cortical_areas(&memory_id);
4758 let lifecycle_config = MemoryNeuronLifecycleConfig {
4759 initial_lifespan: mem_props.init_lifespan,
4760 lifespan_growth_rate: mem_props.lifespan_growth_rate,
4761 longterm_threshold: mem_props.longterm_threshold,
4762 max_reactivations: 1000,
4763 };
4764 let exec = executor.lock().map_err(|_| {
4765 BduError::Internal(
4766 "Failed to lock PlasticityExecutor for memory-area rebind".to_string(),
4767 )
4768 })?;
4769 exec.register_memory_area(
4770 area_idx,
4771 area_name,
4772 mem_props.temporal_depth,
4773 upstream_areas,
4774 Some(lifecycle_config),
4775 mem_props.mp_learning_enabled,
4776 );
4777 }
4778 Ok(())
4779 }
4780
4781 #[cfg(feature = "plasticity")]
4784 pub fn set_plasticity_executor(
4785 &mut self,
4786 executor: Arc<std::sync::Mutex<feagi_npu_plasticity::AsyncPlasticityExecutor>>,
4787 ) {
4788 if let Ok(mut exec) = executor.lock() {
4789 use feagi_npu_plasticity::executor::PlasticityExecutor;
4790 if !exec.is_running() {
4791 exec.start();
4792 }
4793 } else {
4794 warn!(target: "feagi-bdu", "⚠️ Failed to lock PlasticityExecutor for startup");
4795 }
4796 self.plasticity_executor = Some(executor);
4797 info!(target: "feagi-bdu", "🔗 ConnectomeManager: PlasticityExecutor reference set");
4798 }
4799
4800 #[cfg(feature = "plasticity")]
4802 pub fn get_plasticity_executor(
4803 &self,
4804 ) -> Option<&Arc<std::sync::Mutex<feagi_npu_plasticity::AsyncPlasticityExecutor>>> {
4805 self.plasticity_executor.as_ref()
4806 }
4807
4808 pub fn get_neuron_capacity(&self) -> usize {
4820 self.config.max_neurons
4822 }
4823
4824 pub fn get_synapse_capacity(&self) -> usize {
4836 self.config.max_synapses
4838 }
4839
4840 pub fn update_fatigue_index(&self) -> Option<u8> {
4855 let mut last_calc = match self.last_fatigue_calculation.lock() {
4857 Ok(guard) => guard,
4858 Err(_) => return None, };
4860
4861 let now = std::time::Instant::now();
4862 if now.duration_since(*last_calc).as_secs() < 2 {
4863 return None; }
4865 *last_calc = now;
4866 drop(last_calc);
4867
4868 let regular_neuron_count = self.get_neuron_count();
4870 let regular_neuron_capacity = self.get_neuron_capacity();
4871 let regular_neuron_util = if regular_neuron_capacity > 0 {
4872 ((regular_neuron_count as f64 / regular_neuron_capacity as f64) * 100.0).round() as u8
4873 } else {
4874 0
4875 };
4876
4877 let memory_neuron_util = match StateManager::instance().try_read() {
4881 Some(state_manager) => state_manager.get_core_state().get_memory_neuron_util(),
4882 None => {
4883 return None;
4885 }
4886 };
4887
4888 let synapse_count = self.get_synapse_count();
4890 let synapse_capacity = self.get_synapse_capacity();
4891 let synapse_util = if synapse_capacity > 0 {
4892 ((synapse_count as f64 / synapse_capacity as f64) * 100.0).round() as u8
4893 } else {
4894 0
4895 };
4896
4897 let fatigue_index = regular_neuron_util
4899 .max(memory_neuron_util)
4900 .max(synapse_util);
4901
4902 let current_fatigue_active = {
4904 StateManager::instance()
4906 .try_read()
4907 .map(|m| m.get_core_state().is_fatigue_active())
4908 .unwrap_or(false)
4909 };
4910
4911 let new_fatigue_active = if fatigue_index >= 85 {
4912 true
4913 } else if fatigue_index < 80 {
4914 false
4915 } else {
4916 current_fatigue_active };
4918
4919 if let Some(state_manager) = StateManager::instance().try_write() {
4923 let core_state = state_manager.get_core_state();
4924 core_state.set_fatigue_index(fatigue_index);
4925 core_state.set_fatigue_active(new_fatigue_active);
4926 core_state.set_regular_neuron_util(regular_neuron_util);
4927 core_state.set_memory_neuron_util(memory_neuron_util);
4928 core_state.set_synapse_util(synapse_util);
4929 } else {
4930 trace!(target: "feagi-bdu", "[FATIGUE] StateManager unavailable, skipping update");
4932 }
4933
4934 if let Some(ref npu) = self.npu {
4936 if let Ok(mut npu_lock) = npu.lock() {
4937 npu_lock.set_fatigue_active(new_fatigue_active);
4938 }
4939 }
4940
4941 trace!(
4942 target: "feagi-bdu",
4943 "[FATIGUE] Index={}, Active={}, Regular={}%, Memory={}%, Synapse={}%",
4944 fatigue_index, new_fatigue_active, regular_neuron_util, memory_neuron_util, synapse_util
4945 );
4946
4947 Some(fatigue_index)
4948 }
4949
4950 pub fn create_neurons_for_area(&mut self, cortical_id: &CorticalID) -> BduResult<u32> {
4967 let area = self
4969 .cortical_areas
4970 .get(cortical_id)
4971 .ok_or_else(|| {
4972 BduError::InvalidArea(format!("Cortical area {} not found", cortical_id))
4973 })?
4974 .clone();
4975
4976 let cortical_idx = self.cortical_id_to_idx.get(cortical_id).ok_or_else(|| {
4978 BduError::InvalidArea(format!("No index for cortical area {}", cortical_id))
4979 })?;
4980
4981 let npu = self
4983 .npu
4984 .as_ref()
4985 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
4986
4987 use crate::models::CorticalAreaExt;
4990 let per_voxel_cnt = area.neurons_per_voxel();
4991 let firing_threshold = area.firing_threshold();
4992 let firing_threshold_increment_x = area.firing_threshold_increment_x();
4993 let firing_threshold_increment_y = area.firing_threshold_increment_y();
4994 let firing_threshold_increment_z = area.firing_threshold_increment_z();
4995 let firing_threshold_limit_raw = area.firing_threshold_limit();
4997 let firing_threshold_limit = if firing_threshold_limit_raw == 0.0 {
4998 f32::MAX } else {
5000 firing_threshold_limit_raw
5001 };
5002
5003 if firing_threshold_increment_x != 0.0
5005 || firing_threshold_increment_y != 0.0
5006 || firing_threshold_increment_z != 0.0
5007 {
5008 info!(
5009 target: "feagi-bdu",
5010 "🔍 [DEBUG] Area {}: firing_threshold_increment = [{}, {}, {}]",
5011 cortical_id.as_base_64(),
5012 firing_threshold_increment_x,
5013 firing_threshold_increment_y,
5014 firing_threshold_increment_z
5015 );
5016 } else {
5017 if area.properties.contains_key("firing_threshold_increment_x")
5019 || area.properties.contains_key("firing_threshold_increment_y")
5020 || area.properties.contains_key("firing_threshold_increment_z")
5021 {
5022 info!(
5023 target: "feagi-bdu",
5024 "🔍 [DEBUG] Area {}: INCREMENT PROPERTIES FOUND: x={:?}, y={:?}, z={:?}",
5025 cortical_id.as_base_64(),
5026 area.properties.get("firing_threshold_increment_x"),
5027 area.properties.get("firing_threshold_increment_y"),
5028 area.properties.get("firing_threshold_increment_z")
5029 );
5030 }
5031 }
5032
5033 let leak_coefficient = area.leak_coefficient();
5034 let excitability = area.neuron_excitability();
5035 let refractory_period = area.refractory_period();
5036 let consecutive_fire_limit_raw = area.consecutive_fire_count() as u16;
5038 let consecutive_fire_limit = if consecutive_fire_limit_raw == 0 {
5039 u16::MAX } else {
5041 consecutive_fire_limit_raw
5042 };
5043 let snooze_length = area.snooze_period();
5044 let mp_charge_accumulation = area.mp_charge_accumulation();
5045
5046 let voxels = area.dimensions.width as usize
5048 * area.dimensions.height as usize
5049 * area.dimensions.depth as usize;
5050 let expected_neurons = voxels * per_voxel_cnt as usize;
5051
5052 trace!(
5053 target: "feagi-bdu",
5054 "Creating neurons for area {}: {}x{}x{} voxels × {} neurons/voxel = {} total neurons",
5055 cortical_id.as_base_64(),
5056 area.dimensions.width,
5057 area.dimensions.height,
5058 area.dimensions.depth,
5059 per_voxel_cnt,
5060 expected_neurons
5061 );
5062
5063 let neuron_count: u32 = {
5068 let mut npu_lock = npu
5069 .lock()
5070 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
5071 npu_lock
5072 .create_cortical_area_neurons(
5073 *cortical_idx,
5074 area.dimensions.width,
5075 area.dimensions.height,
5076 area.dimensions.depth,
5077 per_voxel_cnt,
5078 firing_threshold,
5079 firing_threshold_increment_x,
5080 firing_threshold_increment_y,
5081 firing_threshold_increment_z,
5082 firing_threshold_limit,
5083 leak_coefficient,
5084 0.0, 0, refractory_period,
5087 excitability,
5088 consecutive_fire_limit,
5089 snooze_length,
5090 mp_charge_accumulation,
5091 )
5092 .map_err(|e| BduError::Internal(format!("NPU neuron creation failed: {}", e)))?
5093 };
5094
5095 trace!(
5096 target: "feagi-bdu",
5097 "Created {} neurons for area {} via NPU",
5098 neuron_count,
5099 cortical_id.as_base_64()
5100 );
5101
5102 {
5105 let mut cache = self.cached_neuron_counts_per_area.write();
5106 cache
5107 .entry(*cortical_id)
5108 .or_insert_with(|| AtomicUsize::new(0))
5109 .store(neuron_count as usize, Ordering::Relaxed);
5110 }
5111
5112 let state_manager = StateManager::instance();
5114 let state_manager = state_manager.read();
5115 state_manager
5116 .set_cortical_area_neuron_count(&cortical_id.as_base_64(), neuron_count as usize);
5117
5118 self.cached_neuron_count
5120 .fetch_add(neuron_count as usize, Ordering::Relaxed);
5121
5122 let state_manager = StateManager::instance();
5124 let state_manager = state_manager.read();
5125 let core_state = state_manager.get_core_state();
5126 core_state.add_neuron_count(neuron_count);
5127 core_state.add_regular_neuron_count(neuron_count);
5128
5129 if let Some(npu) = &self.npu {
5131 if let Ok(mut npl) = npu.lock() {
5132 if let Some(v) = area.properties.get("rate_modulated_leak") {
5133 use crate::models::CorticalAreaExt;
5134 let idxs: Vec<usize> = npl
5135 .get_neurons_in_cortical_area(*cortical_idx)
5136 .into_iter()
5137 .map(|id| id as usize)
5138 .collect();
5139 npl.sync_rate_modulated_leak_from_cortical_property(
5140 *cortical_idx,
5141 v,
5142 area.leak_coefficient(),
5143 idxs,
5144 );
5145 } else {
5146 npl.remove_rate_modulated_leak(*cortical_idx);
5147 }
5148 }
5149 }
5150
5151 Ok(neuron_count)
5159 }
5160
5161 #[allow(clippy::too_many_arguments)]
5185 pub fn add_neuron(
5186 &mut self,
5187 cortical_id: &CorticalID,
5188 x: u32,
5189 y: u32,
5190 z: u32,
5191 firing_threshold: f32,
5192 firing_threshold_limit: f32,
5193 leak_coefficient: f32,
5194 resting_potential: f32,
5195 neuron_type: u8,
5196 refractory_period: u16,
5197 excitability: f32,
5198 consecutive_fire_limit: u16,
5199 snooze_length: u16,
5200 mp_charge_accumulation: bool,
5201 ) -> BduResult<u64> {
5202 self.add_neuron_with_area_stats(
5203 cortical_id,
5204 x,
5205 y,
5206 z,
5207 firing_threshold,
5208 firing_threshold_limit,
5209 leak_coefficient,
5210 resting_potential,
5211 neuron_type,
5212 refractory_period,
5213 excitability,
5214 consecutive_fire_limit,
5215 snooze_length,
5216 mp_charge_accumulation,
5217 true,
5218 )
5219 }
5220
5221 #[allow(clippy::too_many_arguments)]
5227 pub fn add_auxiliary_neuron(
5228 &mut self,
5229 cortical_id: &CorticalID,
5230 x: u32,
5231 y: u32,
5232 z: u32,
5233 firing_threshold: f32,
5234 firing_threshold_limit: f32,
5235 leak_coefficient: f32,
5236 resting_potential: f32,
5237 neuron_type: u8,
5238 refractory_period: u16,
5239 excitability: f32,
5240 consecutive_fire_limit: u16,
5241 snooze_length: u16,
5242 mp_charge_accumulation: bool,
5243 ) -> BduResult<u64> {
5244 self.add_neuron_with_area_stats(
5245 cortical_id,
5246 x,
5247 y,
5248 z,
5249 firing_threshold,
5250 firing_threshold_limit,
5251 leak_coefficient,
5252 resting_potential,
5253 neuron_type,
5254 refractory_period,
5255 excitability,
5256 consecutive_fire_limit,
5257 snooze_length,
5258 mp_charge_accumulation,
5259 false,
5260 )
5261 }
5262
5263 #[allow(clippy::too_many_arguments)]
5264 fn add_neuron_with_area_stats(
5265 &mut self,
5266 cortical_id: &CorticalID,
5267 x: u32,
5268 y: u32,
5269 z: u32,
5270 firing_threshold: f32,
5271 firing_threshold_limit: f32,
5272 leak_coefficient: f32,
5273 resting_potential: f32,
5274 neuron_type: u8,
5275 refractory_period: u16,
5276 excitability: f32,
5277 consecutive_fire_limit: u16,
5278 snooze_length: u16,
5279 mp_charge_accumulation: bool,
5280 update_area_stats: bool,
5281 ) -> BduResult<u64> {
5282 if !self.cortical_areas.contains_key(cortical_id) {
5284 return Err(BduError::InvalidArea(format!(
5285 "Cortical area {} not found",
5286 cortical_id
5287 )));
5288 }
5289
5290 let cortical_idx = *self
5291 .cortical_id_to_idx
5292 .get(cortical_id)
5293 .ok_or_else(|| BduError::InvalidArea(format!("No index for {}", cortical_id)))?;
5294
5295 let npu = self
5297 .npu
5298 .as_ref()
5299 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
5300
5301 let mut npu_lock = npu
5302 .lock()
5303 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
5304
5305 let neuron_id = npu_lock
5307 .add_neuron(
5308 firing_threshold,
5309 firing_threshold_limit,
5310 leak_coefficient,
5311 resting_potential,
5312 neuron_type as i32,
5313 refractory_period,
5314 excitability,
5315 consecutive_fire_limit,
5316 snooze_length,
5317 mp_charge_accumulation,
5318 cortical_idx,
5319 x,
5320 y,
5321 z,
5322 )
5323 .map_err(|e| BduError::Internal(format!("Failed to add neuron: {}", e)))?;
5324
5325 trace!(
5326 target: "feagi-bdu",
5327 "Created neuron {} in area {} at ({}, {}, {})",
5328 neuron_id.0,
5329 cortical_id,
5330 x,
5331 y,
5332 z
5333 );
5334
5335 let state_manager = StateManager::instance();
5337 let state_manager = state_manager.read();
5338 let core_state = state_manager.get_core_state();
5339 core_state.add_neuron_count(1);
5340 core_state.add_regular_neuron_count(1);
5341 if update_area_stats {
5342 state_manager.add_cortical_area_neuron_count(&cortical_id.as_base_64(), 1);
5343 }
5344
5345 Ok(neuron_id.0 as u64)
5346 }
5347
5348 pub fn delete_neuron(&mut self, neuron_id: u64) -> BduResult<bool> {
5359 let npu = self
5361 .npu
5362 .as_ref()
5363 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
5364
5365 let mut npu_lock = npu
5366 .lock()
5367 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
5368
5369 let cortical_idx = npu_lock.get_neuron_cortical_area(neuron_id as u32);
5370 let cortical_id = cortical_idx.and_then(|idx| self.cortical_idx_to_id.get(&idx).cloned());
5371
5372 let deleted = npu_lock.delete_neuron(neuron_id as u32);
5373
5374 if deleted {
5375 trace!(target: "feagi-bdu", "Deleted neuron {}", neuron_id);
5376
5377 let state_manager = StateManager::instance();
5379 let state_manager = state_manager.read();
5380 let core_state = state_manager.get_core_state();
5381 core_state.subtract_neuron_count(1);
5382 core_state.subtract_regular_neuron_count(1);
5383 if let Some(cortical_id) = cortical_id {
5384 state_manager.subtract_cortical_area_neuron_count(&cortical_id.as_base_64(), 1);
5385 }
5386
5387 }
5391
5392 Ok(deleted)
5393 }
5394
5395 pub fn apply_cortical_mapping(&mut self, src_cortical_id: &CorticalID) -> BduResult<u32> {
5409 let src_area = self
5411 .cortical_areas
5412 .get(src_cortical_id)
5413 .ok_or_else(|| {
5414 BduError::InvalidArea(format!("Source area {} not found", src_cortical_id))
5415 })?
5416 .clone();
5417
5418 let dstmap = match src_area.properties.get("cortical_mapping_dst") {
5420 Some(serde_json::Value::Object(map)) if !map.is_empty() => map,
5421 _ => return Ok(0), };
5423
5424 let src_cortical_idx = *self
5425 .cortical_id_to_idx
5426 .get(src_cortical_id)
5427 .ok_or_else(|| BduError::InvalidArea(format!("No index for {}", src_cortical_id)))?;
5428
5429 let mut total_synapses = 0u32;
5430 let mut upstream_updates: Vec<(CorticalID, u32)> = Vec::new(); for (dst_cortical_id_str, _rules) in dstmap {
5434 let dst_cortical_id = match CorticalID::try_from_base_64(dst_cortical_id_str) {
5436 Ok(id) => id,
5437 Err(_) => {
5438 warn!(target: "feagi-bdu","Invalid cortical ID format: {}, skipping", dst_cortical_id_str);
5439 continue;
5440 }
5441 };
5442
5443 if !self.cortical_id_to_idx.contains_key(&dst_cortical_id) {
5445 warn!(target: "feagi-bdu","Destination area {} not found, skipping", dst_cortical_id);
5446 continue;
5447 }
5448
5449 let synapse_count =
5451 self.apply_cortical_mapping_for_pair(src_cortical_id, &dst_cortical_id)?;
5452 total_synapses += synapse_count as u32;
5453
5454 upstream_updates.push((dst_cortical_id, src_cortical_idx));
5457 }
5458
5459 for (dst_id, src_idx) in upstream_updates {
5461 self.add_upstream_area(&dst_id, src_idx);
5462 }
5463
5464 trace!(
5465 target: "feagi-bdu",
5466 "Created {} synapses for area {} via NPU",
5467 total_synapses,
5468 src_cortical_id
5469 );
5470
5471 if total_synapses > 0 {
5474 let mut cache = self.cached_synapse_counts_per_area.write();
5475 cache
5476 .entry(*src_cortical_id)
5477 .or_insert_with(|| AtomicUsize::new(0))
5478 .fetch_add(total_synapses as usize, Ordering::Relaxed);
5479 }
5480
5481 self.cached_synapse_count
5483 .fetch_add(total_synapses as usize, Ordering::Relaxed);
5484
5485 if total_synapses > 0 {
5487 let state_manager = StateManager::instance();
5488 let state_manager = state_manager.read();
5489 let core_state = state_manager.get_core_state();
5490 core_state.add_synapse_count(total_synapses);
5491 }
5492
5493 Ok(total_synapses)
5494 }
5495
5496 pub fn has_neuron(&self, neuron_id: u64) -> bool {
5515 if let Some(ref npu) = self.npu {
5516 if let Ok(npu_lock) = npu.lock() {
5517 npu_lock.is_neuron_valid(neuron_id as u32)
5519 } else {
5520 false
5521 }
5522 } else {
5523 false
5524 }
5525 }
5526
5527 pub fn get_neuron_count(&self) -> usize {
5539 if let Some(ref npu) = self.npu {
5541 if let Ok(npu_lock) = npu.try_lock() {
5542 let fresh_count = npu_lock.get_neuron_count();
5543 self.cached_neuron_count
5544 .store(fresh_count, Ordering::Relaxed);
5545 }
5546 }
5548
5549 self.cached_neuron_count.load(Ordering::Relaxed)
5551 }
5552
5553 pub fn update_cached_neuron_count(&self) {
5559 if let Some(ref npu) = self.npu {
5560 if let Ok(npu_lock) = npu.try_lock() {
5561 let count = npu_lock.get_neuron_count();
5562 self.cached_neuron_count.store(count, Ordering::Relaxed);
5563 }
5564 }
5565 }
5566
5567 pub fn refresh_neuron_count_for_area(&self, cortical_id: &CorticalID) -> Option<usize> {
5571 let npu = self.npu.as_ref()?;
5572 let cortical_idx = *self.cortical_id_to_idx.get(cortical_id)?;
5573 let npu_lock = npu.lock().ok()?;
5574 let count = npu_lock.get_neurons_in_cortical_area(cortical_idx).len();
5575 drop(npu_lock);
5576
5577 let mut cache = self.cached_neuron_counts_per_area.write();
5578 cache
5579 .entry(*cortical_id)
5580 .or_insert_with(|| AtomicUsize::new(0))
5581 .store(count, Ordering::Relaxed);
5582
5583 let state_manager = StateManager::instance();
5585 let state_manager = state_manager.read();
5586 state_manager.set_cortical_area_neuron_count(&cortical_id.as_base_64(), count);
5587
5588 self.update_cached_neuron_count();
5589
5590 Some(count)
5591 }
5592
5593 pub fn get_synapse_count(&self) -> usize {
5605 if let Some(ref npu) = self.npu {
5607 if let Ok(npu_lock) = npu.try_lock() {
5608 let fresh_count = npu_lock.get_synapse_count();
5609 self.cached_synapse_count
5610 .store(fresh_count, Ordering::Relaxed);
5611 }
5612 }
5614
5615 self.cached_synapse_count.load(Ordering::Relaxed)
5617 }
5618
5619 pub fn update_cached_synapse_count(&self) {
5625 if let Some(ref npu) = self.npu {
5626 if let Ok(npu_lock) = npu.try_lock() {
5627 let count = npu_lock.get_synapse_count();
5628 self.cached_synapse_count.store(count, Ordering::Relaxed);
5629 }
5630 }
5631 }
5632
5633 pub fn update_all_cached_stats(&self) {
5639 self.update_cached_neuron_count();
5640 self.update_cached_synapse_count();
5641 }
5642
5643 pub fn get_neuron_coordinates(&self, neuron_id: u64) -> (u32, u32, u32) {
5654 #[cfg(feature = "plasticity")]
5659 {
5660 if feagi_npu_plasticity::NeuronIdManager::is_memory_neuron_id(neuron_id as u32) {
5661 return (0, 0, 0);
5662 }
5663 }
5664 if let Some(ref npu) = self.npu {
5665 if let Ok(npu_lock) = npu.lock() {
5666 npu_lock
5667 .get_neuron_coordinates(neuron_id as u32)
5668 .unwrap_or((0, 0, 0))
5669 } else {
5670 (0, 0, 0)
5671 }
5672 } else {
5673 (0, 0, 0)
5674 }
5675 }
5676
5677 pub fn get_neuron_cortical_idx(&self, neuron_id: u64) -> u32 {
5688 self.get_neuron_cortical_idx_opt(neuron_id).unwrap_or(0)
5689 }
5690
5691 pub fn get_neuron_cortical_idx_opt(&self, neuron_id: u64) -> Option<u32> {
5697 #[cfg(feature = "plasticity")]
5698 {
5699 if feagi_npu_plasticity::NeuronIdManager::is_memory_neuron_id(neuron_id as u32) {
5700 return self.memory_neuron_cortical_idx_opt(neuron_id as u32);
5701 }
5702 }
5703 if let Some(ref npu) = self.npu {
5704 if let Ok(npu_lock) = npu.lock() {
5705 npu_lock.get_neuron_cortical_area(neuron_id as u32)
5706 } else {
5707 None
5708 }
5709 } else {
5710 None
5711 }
5712 }
5713
5714 #[cfg(feature = "plasticity")]
5716 fn memory_neuron_cortical_idx_opt(&self, neuron_id: u32) -> Option<u32> {
5717 let exec = self.get_plasticity_executor()?;
5718 let guard = exec.lock().ok()?;
5719 guard
5720 .memory_neuron_detail(neuron_id)
5721 .map(|d| d.cortical_area_idx)
5722 }
5723
5724 pub fn get_neurons_in_area(&self, cortical_id: &CorticalID) -> Vec<u64> {
5735 let cortical_idx = match self.cortical_id_to_idx.get(cortical_id) {
5737 Some(idx) => *idx,
5738 None => return Vec::new(),
5739 };
5740
5741 if let Some(ref npu) = self.npu {
5742 if let Ok(npu_lock) = npu.lock() {
5743 npu_lock
5745 .get_neurons_in_cortical_area(cortical_idx)
5746 .into_iter()
5747 .map(|id| id as u64)
5748 .collect()
5749 } else {
5750 Vec::new()
5751 }
5752 } else {
5753 Vec::new()
5754 }
5755 }
5756
5757 pub fn get_outgoing_synapses(&self, source_neuron_id: u64) -> Vec<(u32, f32, f32, u8)> {
5768 if let Some(ref npu) = self.npu {
5769 if let Ok(npu_lock) = npu.lock() {
5770 npu_lock.get_outgoing_synapses(source_neuron_id as u32)
5771 } else {
5772 Vec::new()
5773 }
5774 } else {
5775 Vec::new()
5776 }
5777 }
5778
5779 pub fn get_incoming_synapses(&self, target_neuron_id: u64) -> Vec<(u32, f32, f32, u8)> {
5790 if let Some(ref npu) = self.npu {
5791 if let Ok(npu_lock) = npu.lock() {
5792 npu_lock.get_incoming_synapses(target_neuron_id as u32)
5793 } else {
5794 Vec::new()
5795 }
5796 } else {
5797 Vec::new()
5798 }
5799 }
5800
5801 pub fn get_neuron_count_in_area(&self, cortical_id: &CorticalID) -> usize {
5827 let is_memory_area = self
5828 .cortical_areas
5829 .get(cortical_id)
5830 .and_then(|area| feagi_evolutionary::extract_memory_properties(&area.properties))
5831 .is_some();
5832
5833 if is_memory_area {
5834 #[cfg(feature = "plasticity")]
5838 if let Some(count) = self.active_memory_neuron_count_from_plasticity(cortical_id) {
5839 return count;
5840 }
5841
5842 return StateManager::instance()
5844 .try_read()
5845 .and_then(|state_manager| {
5846 state_manager
5847 .get_cortical_area_stats(&cortical_id.as_base_64())
5848 .map(|stats| stats.neuron_count)
5849 })
5850 .unwrap_or(0);
5851 }
5852
5853 let cache = self.cached_neuron_counts_per_area.read();
5855 cache
5856 .get(cortical_id)
5857 .map(|count| count.load(Ordering::Relaxed))
5858 .unwrap_or(0)
5859 }
5860
5861 #[cfg(feature = "plasticity")]
5863 fn active_memory_neuron_count_from_plasticity(
5864 &self,
5865 cortical_id: &CorticalID,
5866 ) -> Option<usize> {
5867 let cortical_idx = self.cortical_id_to_idx.get(cortical_id)?;
5868 let exec = self.get_plasticity_executor()?;
5869 let guard = exec.lock().ok()?;
5870 let runtime = guard.memory_cortical_area_runtime_info(*cortical_idx)?;
5871 Some(runtime.active_memory_neuron_count())
5872 }
5873
5874 pub fn get_populated_areas(&self) -> Vec<(String, usize)> {
5881 let mut result = Vec::new();
5882
5883 for cortical_id in self.cortical_areas.keys() {
5884 let count = self.get_neuron_count_in_area(cortical_id);
5885 if count > 0 {
5886 result.push((cortical_id.to_string(), count));
5887 }
5888 }
5889
5890 result
5891 }
5892
5893 pub fn is_area_populated(&self, cortical_id: &CorticalID) -> bool {
5904 self.get_neuron_count_in_area(cortical_id) > 0
5905 }
5906
5907 pub fn get_synapse_count_in_area(&self, cortical_id: &CorticalID) -> usize {
5923 let cache = self.cached_synapse_counts_per_area.read();
5925 cache
5926 .get(cortical_id)
5927 .map(|count| count.load(Ordering::Relaxed))
5928 .unwrap_or(0)
5929 }
5930
5931 pub fn get_incoming_synapse_count_in_area(&self, cortical_id: &CorticalID) -> usize {
5941 if !self.cortical_id_to_idx.contains_key(cortical_id) {
5942 return 0;
5943 }
5944
5945 if let Some(state_manager) = StateManager::instance().try_read() {
5946 if let Some(stats) = state_manager.get_cortical_area_stats(&cortical_id.as_base_64()) {
5947 return stats.incoming_synapse_count;
5948 }
5949 }
5950
5951 0
5952 }
5953
5954 pub fn get_outgoing_synapse_count_in_area(&self, cortical_id: &CorticalID) -> usize {
5964 if !self.cortical_id_to_idx.contains_key(cortical_id) {
5965 return 0;
5966 }
5967
5968 if let Some(state_manager) = StateManager::instance().try_read() {
5969 if let Some(stats) = state_manager.get_cortical_area_stats(&cortical_id.as_base_64()) {
5970 return stats.outgoing_synapse_count;
5971 }
5972 }
5973
5974 0
5975 }
5976
5977 pub fn are_neurons_connected(&self, source_neuron_id: u64, target_neuron_id: u64) -> bool {
5989 let synapses = self.get_outgoing_synapses(source_neuron_id);
5990 synapses
5991 .iter()
5992 .any(|(target, _, _, _)| *target == target_neuron_id as u32)
5993 }
5994
5995 pub fn get_connection_weight(
6007 &self,
6008 source_neuron_id: u64,
6009 target_neuron_id: u64,
6010 ) -> Option<f32> {
6011 let synapses = self.get_outgoing_synapses(source_neuron_id);
6012 synapses
6013 .iter()
6014 .find(|(target, _, _, _)| *target == target_neuron_id as u32)
6015 .map(|(_, weight, _, _)| *weight)
6016 }
6017
6018 pub fn get_area_connectivity_stats(&self, cortical_id: &CorticalID) -> (usize, usize, f32) {
6029 let neurons = self.get_neurons_in_area(cortical_id);
6030 let neuron_count = neurons.len();
6031
6032 if neuron_count == 0 {
6033 return (0, 0, 0.0);
6034 }
6035
6036 let mut total_synapses = 0;
6037 for neuron_id in neurons {
6038 total_synapses += self.get_outgoing_synapses(neuron_id).len();
6039 }
6040
6041 let avg_synapses = total_synapses as f32 / neuron_count as f32;
6042
6043 (neuron_count, total_synapses, avg_synapses)
6044 }
6045
6046 pub fn get_neuron_cortical_id(&self, neuron_id: u64) -> Option<CorticalID> {
6057 let cortical_idx = self.get_neuron_cortical_idx_opt(neuron_id)?;
6058 self.cortical_idx_to_id.get(&cortical_idx).copied()
6059 }
6060
6061 pub fn get_neuron_density(&self, cortical_id: &CorticalID) -> f32 {
6072 let area = match self.cortical_areas.get(cortical_id) {
6073 Some(a) => a,
6074 None => return 0.0,
6075 };
6076
6077 let neuron_count = self.get_neuron_count_in_area(cortical_id);
6078 let volume = area.dimensions.width * area.dimensions.height * area.dimensions.depth;
6079
6080 if volume == 0 {
6081 return 0.0;
6082 }
6083
6084 neuron_count as f32 / volume as f32
6085 }
6086
6087 pub fn get_all_area_stats(&self) -> Vec<(String, usize, usize, f32)> {
6094 let mut stats = Vec::new();
6095
6096 for cortical_id in self.cortical_areas.keys() {
6097 let neuron_count = self.get_neuron_count_in_area(cortical_id);
6098 let synapse_count = self.get_synapse_count_in_area(cortical_id);
6099 let density = self.get_neuron_density(cortical_id);
6100
6101 stats.push((
6102 cortical_id.to_string(),
6103 neuron_count,
6104 synapse_count,
6105 density,
6106 ));
6107 }
6108
6109 stats
6110 }
6111
6112 pub fn get_config(&self) -> &ConnectomeConfig {
6118 &self.config
6119 }
6120
6121 pub fn set_config(&mut self, config: ConnectomeConfig) {
6123 self.config = config;
6124 }
6125
6126 pub fn ensure_core_cortical_areas(&mut self) -> BduResult<()> {
6149 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Ensuring core cortical areas exist...");
6150
6151 use feagi_structures::genomic::cortical_area::{
6152 CoreCorticalType, CorticalArea, CorticalAreaDimensions, CorticalAreaType,
6153 };
6154
6155 let core_dimensions = CorticalAreaDimensions::new(1, 1, 1).map_err(|e| {
6157 BduError::Internal(format!("Failed to create core area dimensions: {}", e))
6158 })?;
6159
6160 let core_position = (0, 0, 0).into();
6162
6163 let death_id = CoreCorticalType::Death.to_cortical_id();
6165 if !self.cortical_areas.contains_key(&death_id) {
6166 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Creating missing _death area (cortical_idx=0)");
6167 let death_area = CorticalArea::new(
6168 death_id,
6169 0, "_death".to_string(),
6171 core_dimensions,
6172 core_position,
6173 CorticalAreaType::Core(CoreCorticalType::Death),
6174 )
6175 .map_err(|e| BduError::Internal(format!("Failed to create _death area: {}", e)))?;
6176 match self.add_cortical_area(death_area) {
6177 Ok(idx) => {
6178 info!(target: "feagi-bdu", " ✅ Created _death area with cortical_idx={}", idx);
6179 }
6180 Err(e) => {
6181 error!(target: "feagi-bdu", " ❌ Failed to add _death area: {}", e);
6182 return Err(e);
6183 }
6184 }
6185 } else {
6186 info!(target: "feagi-bdu", " ✓ _death area already exists");
6187 }
6188
6189 let power_id = CoreCorticalType::Power.to_cortical_id();
6191 if !self.cortical_areas.contains_key(&power_id) {
6192 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Creating missing _power area (cortical_idx=1)");
6193 let power_area = CorticalArea::new(
6194 power_id,
6195 1, "_power".to_string(),
6197 core_dimensions,
6198 core_position,
6199 CorticalAreaType::Core(CoreCorticalType::Power),
6200 )
6201 .map_err(|e| BduError::Internal(format!("Failed to create _power area: {}", e)))?;
6202 match self.add_cortical_area(power_area) {
6203 Ok(idx) => {
6204 info!(target: "feagi-bdu", " ✅ Created _power area with cortical_idx={}", idx);
6205 }
6206 Err(e) => {
6207 error!(target: "feagi-bdu", " ❌ Failed to add _power area: {}", e);
6208 return Err(e);
6209 }
6210 }
6211 } else {
6212 info!(target: "feagi-bdu", " ✓ _power area already exists");
6213 }
6214
6215 let fatigue_id = CoreCorticalType::Fatigue.to_cortical_id();
6217 let pain_id = CoreCorticalType::Pain.to_cortical_id();
6218 let pleasure_id = CoreCorticalType::Pleasure.to_cortical_id();
6219 let fear_id = CoreCorticalType::Fear.to_cortical_id();
6220 let hope_id = CoreCorticalType::Hope.to_cortical_id();
6221 if !self.cortical_areas.contains_key(&fatigue_id) {
6222 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Creating missing _fatigue area (cortical_idx=2)");
6223 let fatigue_area = CorticalArea::new(
6224 fatigue_id,
6225 2, "_fatigue".to_string(),
6227 core_dimensions,
6228 core_position,
6229 CorticalAreaType::Core(CoreCorticalType::Fatigue),
6230 )
6231 .map_err(|e| BduError::Internal(format!("Failed to create _fatigue area: {}", e)))?;
6232 match self.add_cortical_area(fatigue_area) {
6233 Ok(idx) => {
6234 info!(target: "feagi-bdu", " ✅ Created _fatigue area with cortical_idx={}", idx);
6235 }
6236 Err(e) => {
6237 error!(target: "feagi-bdu", " ❌ Failed to add _fatigue area: {}", e);
6238 return Err(e);
6239 }
6240 }
6241 } else {
6242 info!(target: "feagi-bdu", " ✓ _fatigue area already exists");
6243 }
6244
6245 if !self.cortical_areas.contains_key(&pain_id) {
6247 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Creating missing _pain area (cortical_idx=3)");
6248 let pain_area = CorticalArea::new(
6249 pain_id,
6250 3, "_pain".to_string(),
6252 core_dimensions,
6253 core_position,
6254 CorticalAreaType::Core(CoreCorticalType::Pain),
6255 )
6256 .map_err(|e| BduError::Internal(format!("Failed to create _pain area: {}", e)))?;
6257 match self.add_cortical_area(pain_area) {
6258 Ok(idx) => {
6259 info!(target: "feagi-bdu", " ✅ Created _pain area with cortical_idx={}", idx);
6260 }
6261 Err(e) => {
6262 error!(target: "feagi-bdu", " ❌ Failed to add _pain area: {}", e);
6263 return Err(e);
6264 }
6265 }
6266 } else {
6267 info!(target: "feagi-bdu", " ✓ _pain area already exists");
6268 }
6269
6270 if !self.cortical_areas.contains_key(&pleasure_id) {
6272 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Creating missing _pleasure area (cortical_idx=4)");
6273 let pleasure_area = CorticalArea::new(
6274 pleasure_id,
6275 4, "_pleasure".to_string(),
6277 core_dimensions,
6278 core_position,
6279 CorticalAreaType::Core(CoreCorticalType::Pleasure),
6280 )
6281 .map_err(|e| BduError::Internal(format!("Failed to create _pleasure area: {}", e)))?;
6282 match self.add_cortical_area(pleasure_area) {
6283 Ok(idx) => {
6284 info!(target: "feagi-bdu", " ✅ Created _pleasure area with cortical_idx={}", idx);
6285 }
6286 Err(e) => {
6287 error!(target: "feagi-bdu", " ❌ Failed to add _pleasure area: {}", e);
6288 return Err(e);
6289 }
6290 }
6291 } else {
6292 info!(target: "feagi-bdu", " ✓ _pleasure area already exists");
6293 }
6294
6295 if !self.cortical_areas.contains_key(&fear_id) {
6297 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Creating missing _fear area (cortical_idx=5)");
6298 let fear_area = CorticalArea::new(
6299 fear_id,
6300 5, "_fear".to_string(),
6302 core_dimensions,
6303 core_position,
6304 CorticalAreaType::Core(CoreCorticalType::Fear),
6305 )
6306 .map_err(|e| BduError::Internal(format!("Failed to create _fear area: {}", e)))?;
6307 match self.add_cortical_area(fear_area) {
6308 Ok(idx) => {
6309 info!(target: "feagi-bdu", " ✅ Created _fear area with cortical_idx={}", idx);
6310 }
6311 Err(e) => {
6312 error!(target: "feagi-bdu", " ❌ Failed to add _fear area: {}", e);
6313 return Err(e);
6314 }
6315 }
6316 } else {
6317 info!(target: "feagi-bdu", " ✓ _fear area already exists");
6318 }
6319
6320 if !self.cortical_areas.contains_key(&hope_id) {
6322 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Creating missing _hope area (cortical_idx=6)");
6323 let hope_area = CorticalArea::new(
6324 hope_id,
6325 6, "_hope".to_string(),
6327 core_dimensions,
6328 core_position,
6329 CorticalAreaType::Core(CoreCorticalType::Hope),
6330 )
6331 .map_err(|e| BduError::Internal(format!("Failed to create _hope area: {}", e)))?;
6332 match self.add_cortical_area(hope_area) {
6333 Ok(idx) => {
6334 info!(target: "feagi-bdu", " ✅ Created _hope area with cortical_idx={}", idx);
6335 }
6336 Err(e) => {
6337 error!(target: "feagi-bdu", " ❌ Failed to add _hope area: {}", e);
6338 return Err(e);
6339 }
6340 }
6341 } else {
6342 info!(target: "feagi-bdu", " ✓ _hope area already exists");
6343 }
6344
6345 info!(target: "feagi-bdu", "🔧 [CORE-AREA] Core area check complete");
6346 Ok(())
6347 }
6348
6349 #[deprecated(
6366 note = "Use GenomeService::save_genome() instead. This produces incomplete v2.1 format without morphologies/physiology."
6367 )]
6368 #[allow(deprecated)]
6369 pub fn save_genome_to_json(
6370 &self,
6371 genome_id: Option<String>,
6372 genome_title: Option<String>,
6373 ) -> BduResult<String> {
6374 let mut brain_regions_with_parents = std::collections::HashMap::new();
6376
6377 for region_id in self.brain_regions.get_all_region_ids() {
6378 if let Some(region) = self.brain_regions.get_region(region_id) {
6379 let parent_id = self
6380 .brain_regions
6381 .get_parent(region_id)
6382 .map(|s| s.to_string());
6383 brain_regions_with_parents
6384 .insert(region_id.to_string(), (region.clone(), parent_id));
6385 }
6386 }
6387
6388 Ok(feagi_evolutionary::GenomeSaver::save_to_json(
6390 &self.cortical_areas,
6391 &brain_regions_with_parents,
6392 genome_id,
6393 genome_title,
6394 )?)
6395 }
6396
6397 pub fn prepare_for_new_genome(&mut self) -> BduResult<()> {
6428 info!(target: "feagi-bdu","Preparing for new genome (clearing existing state)");
6429
6430 self.cortical_areas.clear();
6432 self.cortical_id_to_idx.clear();
6433 self.cortical_idx_to_id.clear();
6434 self.next_cortical_idx = 7;
6436 info!("🔧 [BRAIN-RESET] Cortical mapping cleared, next_cortical_idx reset to 7 (reserves 0=_death, 1=_power, 2=_fatigue, 3=_pain, 4=_pleasure, 5=_fear, 6=_hope)");
6437
6438 self.brain_regions = BrainRegionHierarchy::new();
6440
6441 if let Some(ref npu) = self.npu {
6443 let mut npu_lock = npu
6444 .lock()
6445 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
6446 npu_lock
6447 .reset_for_new_genome()
6448 .map_err(|e| BduError::Internal(format!("Failed to reset NPU: {}", e)))?;
6449 }
6450
6451 info!(target: "feagi-bdu","✅ Connectome cleared and ready for new genome");
6452 Ok(())
6453 }
6454
6455 pub fn resize_for_genome(
6465 &mut self,
6466 genome: &feagi_evolutionary::RuntimeGenome,
6467 ) -> BduResult<()> {
6468 self.morphology_registry = genome.morphologies.clone();
6470 info!(target: "feagi-bdu", "Stored {} morphologies from genome", self.morphology_registry.count());
6471
6472 let required_neurons = genome.stats.innate_neuron_count;
6474 let required_synapses = genome.stats.innate_synapse_count;
6475
6476 info!(target: "feagi-bdu",
6477 "Genome requires: {} neurons, {} synapses",
6478 required_neurons,
6479 required_synapses
6480 );
6481
6482 let mut total_voxels = 0;
6484 for area in genome.cortical_areas.values() {
6485 total_voxels += area.dimensions.width * area.dimensions.height * area.dimensions.depth;
6486 }
6487
6488 info!(target: "feagi-bdu",
6489 "Genome has {} cortical areas with {} total voxels",
6490 genome.cortical_areas.len(),
6491 total_voxels
6492 );
6493
6494 Ok(())
6499 }
6500
6501 pub fn create_synapse(
6520 &mut self,
6521 source_neuron_id: u64,
6522 target_neuron_id: u64,
6523 weight: f32,
6524 psp: f32,
6525 synapse_type: u8,
6526 ) -> BduResult<()> {
6527 let npu = self
6529 .npu
6530 .as_ref()
6531 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
6532
6533 let mut npu_lock = npu
6534 .lock()
6535 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
6536
6537 let source_exists = (source_neuron_id as u32) < npu_lock.get_neuron_count() as u32;
6539 let target_exists = (target_neuron_id as u32) < npu_lock.get_neuron_count() as u32;
6540
6541 if !source_exists {
6542 return Err(BduError::InvalidNeuron(format!(
6543 "Source neuron {} not found",
6544 source_neuron_id
6545 )));
6546 }
6547 if !target_exists {
6548 return Err(BduError::InvalidNeuron(format!(
6549 "Target neuron {} not found",
6550 target_neuron_id
6551 )));
6552 }
6553
6554 let syn_type = if synapse_type == 0 {
6556 feagi_npu_neural::synapse::SynapseType::Excitatory
6557 } else {
6558 feagi_npu_neural::synapse::SynapseType::Inhibitory
6559 };
6560
6561 let synapse_idx = npu_lock
6562 .add_synapse(
6563 NeuronId(source_neuron_id as u32),
6564 NeuronId(target_neuron_id as u32),
6565 feagi_npu_neural::types::SynapticWeight(weight),
6566 feagi_npu_neural::types::SynapticPsp(psp),
6567 syn_type,
6568 0,
6569 1,
6570 )
6571 .map_err(|e| BduError::Internal(format!("Failed to create synapse: {}", e)))?;
6572
6573 debug!(target: "feagi-bdu", "Created synapse: {} -> {} (weight: {}, psp: {}, type: {}, idx: {})",
6574 source_neuron_id, target_neuron_id, weight, psp, synapse_type, synapse_idx);
6575
6576 let source_cortical_idx = npu_lock.get_neuron_cortical_area(source_neuron_id as u32);
6577 let target_cortical_idx = npu_lock.get_neuron_cortical_area(target_neuron_id as u32);
6578 let source_cortical_id =
6579 source_cortical_idx.and_then(|idx| self.cortical_idx_to_id.get(&idx).cloned());
6580 let target_cortical_id =
6581 target_cortical_idx.and_then(|idx| self.cortical_idx_to_id.get(&idx).cloned());
6582
6583 let state_manager = StateManager::instance();
6584 let state_manager = state_manager.read();
6585 let core_state = state_manager.get_core_state();
6586 core_state.add_synapse_count(1);
6587 if let Some(cortical_id) = source_cortical_id {
6588 state_manager.add_cortical_area_outgoing_synapses(&cortical_id.as_base_64(), 1);
6589 }
6590 if let Some(cortical_id) = target_cortical_id {
6591 state_manager.add_cortical_area_incoming_synapses(&cortical_id.as_base_64(), 1);
6592 }
6593
6594 Ok(())
6599 }
6600
6601 fn sync_cortical_area_flags_to_npu(&mut self) -> BduResult<()> {
6604 if let Some(ref npu) = self.npu {
6605 if let Ok(mut npu_lock) = npu.lock() {
6606 let mut psp_uniform_flags = ahash::AHashMap::new();
6608 let mut mp_driven_psp_flags = ahash::AHashMap::new();
6609 let mut postsynaptic_current_flags = ahash::AHashMap::new();
6610 let mut degeneration_flags = ahash::AHashMap::new();
6611
6612 for (cortical_id, area) in &self.cortical_areas {
6613 let default_psp_uniform = *cortical_id
6616 == CoreCorticalType::Power.to_cortical_id()
6617 || matches!(area.cortical_type, CorticalAreaType::Memory(_));
6618 let psp_uniform = area
6619 .get_property("psp_uniform_distribution")
6620 .and_then(|v| v.as_bool())
6621 .unwrap_or(default_psp_uniform);
6622 psp_uniform_flags.insert(*cortical_id, psp_uniform);
6623
6624 let mp_driven_psp = area
6626 .get_property("mp_driven_psp")
6627 .and_then(|v| v.as_bool())
6628 .unwrap_or(false);
6629 mp_driven_psp_flags.insert(*cortical_id, mp_driven_psp);
6630
6631 let postsynaptic_current = area
6633 .get_property("postsynaptic_current")
6634 .and_then(|v| v.as_f64())
6635 .unwrap_or(1.0) as f32;
6636 postsynaptic_current_flags.insert(*cortical_id, postsynaptic_current);
6637
6638 let degeneration = area
6640 .get_property("degeneration")
6641 .and_then(|v| v.as_f64())
6642 .unwrap_or(0.0) as f32;
6643 if degeneration > 0.0 {
6644 degeneration_flags.insert(*cortical_id, degeneration);
6645 }
6646 }
6647
6648 npu_lock.set_psp_uniform_distribution_flags(psp_uniform_flags);
6650 npu_lock.set_mp_driven_psp_flags(mp_driven_psp_flags);
6651 npu_lock.set_postsynaptic_current_flags(postsynaptic_current_flags);
6652 npu_lock.set_degeneration_flags(degeneration_flags);
6653
6654 trace!(
6655 target: "feagi-bdu",
6656 "Synchronized cortical area flags to NPU ({} areas)",
6657 self.cortical_areas.len()
6658 );
6659 }
6660 }
6661
6662 Ok(())
6663 }
6664
6665 pub fn get_synapse(
6677 &self,
6678 source_neuron_id: u64,
6679 target_neuron_id: u64,
6680 ) -> Option<(f32, f32, u8)> {
6681 let npu = self.npu.as_ref()?;
6683 let npu_lock = npu.lock().ok()?;
6684
6685 let incoming = npu_lock.get_incoming_synapses(target_neuron_id as u32);
6688
6689 for (source_id, weight, psp, synapse_type) in incoming {
6691 if source_id == source_neuron_id as u32 {
6692 return Some((weight, psp, synapse_type));
6693 }
6694 }
6695
6696 None
6697 }
6698
6699 pub fn update_synapse_weight(
6712 &mut self,
6713 source_neuron_id: u64,
6714 target_neuron_id: u64,
6715 new_weight: f32,
6716 ) -> BduResult<()> {
6717 let npu = self
6719 .npu
6720 .as_ref()
6721 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
6722
6723 let mut npu_lock = npu
6724 .lock()
6725 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
6726
6727 let updated = npu_lock.update_synapse_weight(
6729 NeuronId(source_neuron_id as u32),
6730 NeuronId(target_neuron_id as u32),
6731 feagi_npu_neural::types::SynapticWeight(new_weight),
6732 );
6733
6734 if updated {
6735 debug!(target: "feagi-bdu","Updated synapse weight: {} -> {} = {}", source_neuron_id, target_neuron_id, new_weight);
6736 Ok(())
6737 } else {
6738 Err(BduError::InvalidSynapse(format!(
6739 "Synapse {} -> {} not found",
6740 source_neuron_id, target_neuron_id
6741 )))
6742 }
6743 }
6744
6745 pub fn remove_synapse(
6757 &mut self,
6758 source_neuron_id: u64,
6759 target_neuron_id: u64,
6760 ) -> BduResult<bool> {
6761 let npu = self
6763 .npu
6764 .as_ref()
6765 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
6766
6767 let mut npu_lock = npu
6768 .lock()
6769 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
6770
6771 let source_cortical_idx = npu_lock.get_neuron_cortical_area(source_neuron_id as u32);
6772 let target_cortical_idx = npu_lock.get_neuron_cortical_area(target_neuron_id as u32);
6773 let source_cortical_id =
6774 source_cortical_idx.and_then(|idx| self.cortical_idx_to_id.get(&idx).cloned());
6775 let target_cortical_id =
6776 target_cortical_idx.and_then(|idx| self.cortical_idx_to_id.get(&idx).cloned());
6777
6778 let removed = npu_lock.remove_synapse(
6780 NeuronId(source_neuron_id as u32),
6781 NeuronId(target_neuron_id as u32),
6782 );
6783
6784 if removed {
6785 debug!(target: "feagi-bdu","Removed synapse: {} -> {}", source_neuron_id, target_neuron_id);
6786
6787 let state_manager = StateManager::instance();
6789 let state_manager = state_manager.read();
6790 let core_state = state_manager.get_core_state();
6791 core_state.subtract_synapse_count(1);
6792 if let Some(cortical_id) = source_cortical_id {
6793 state_manager
6794 .subtract_cortical_area_outgoing_synapses(&cortical_id.as_base_64(), 1);
6795 }
6796 if let Some(cortical_id) = target_cortical_id {
6797 state_manager
6798 .subtract_cortical_area_incoming_synapses(&cortical_id.as_base_64(), 1);
6799 }
6800 }
6801
6802 Ok(removed)
6803 }
6804
6805 pub fn batch_create_neurons(
6823 &mut self,
6824 cortical_id: &CorticalID,
6825 neurons: Vec<NeuronData>,
6826 ) -> BduResult<Vec<u64>> {
6827 let npu = self
6829 .npu
6830 .as_ref()
6831 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
6832
6833 let mut npu_lock = npu
6834 .lock()
6835 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
6836
6837 let area = self.get_cortical_area(cortical_id).ok_or_else(|| {
6839 BduError::InvalidArea(format!("Cortical area {} not found", cortical_id))
6840 })?;
6841 let cortical_idx = area.cortical_idx;
6842
6843 let count = neurons.len();
6844
6845 let mut x_coords = Vec::with_capacity(count);
6847 let mut y_coords = Vec::with_capacity(count);
6848 let mut z_coords = Vec::with_capacity(count);
6849 let mut firing_thresholds = Vec::with_capacity(count);
6850 let mut threshold_limits = Vec::with_capacity(count);
6851 let mut leak_coeffs = Vec::with_capacity(count);
6852 let mut resting_potentials = Vec::with_capacity(count);
6853 let mut neuron_types = Vec::with_capacity(count);
6854 let mut refractory_periods = Vec::with_capacity(count);
6855 let mut excitabilities = Vec::with_capacity(count);
6856 let mut consec_fire_limits = Vec::with_capacity(count);
6857 let mut snooze_lengths = Vec::with_capacity(count);
6858 let mut mp_accums = Vec::with_capacity(count);
6859 let mut cortical_areas = Vec::with_capacity(count);
6860
6861 for (
6862 x,
6863 y,
6864 z,
6865 threshold,
6866 threshold_limit,
6867 leak,
6868 resting,
6869 ntype,
6870 refract,
6871 excit,
6872 consec_limit,
6873 snooze,
6874 mp_accum,
6875 ) in neurons
6876 {
6877 x_coords.push(x);
6878 y_coords.push(y);
6879 z_coords.push(z);
6880 firing_thresholds.push(threshold);
6881 threshold_limits.push(threshold_limit);
6882 leak_coeffs.push(leak);
6883 resting_potentials.push(resting);
6884 neuron_types.push(ntype);
6885 refractory_periods.push(refract);
6886 excitabilities.push(excit);
6887 consec_fire_limits.push(consec_limit);
6888 snooze_lengths.push(snooze);
6889 mp_accums.push(mp_accum);
6890 cortical_areas.push(cortical_idx);
6891 }
6892
6893 let first_neuron_id = npu_lock.get_neuron_count() as u32;
6895
6896 let firing_thresholds_t = firing_thresholds;
6901 let threshold_limits_t = threshold_limits;
6902 let resting_potentials_t = resting_potentials;
6903 let (neurons_created, _indices) = npu_lock.add_neurons_batch(
6904 firing_thresholds_t,
6905 threshold_limits_t,
6906 leak_coeffs,
6907 resting_potentials_t,
6908 neuron_types,
6909 refractory_periods,
6910 excitabilities,
6911 consec_fire_limits,
6912 snooze_lengths,
6913 mp_accums,
6914 cortical_areas,
6915 x_coords,
6916 y_coords,
6917 z_coords,
6918 );
6919
6920 let mut neuron_ids = Vec::with_capacity(count);
6922 for i in 0..neurons_created {
6923 neuron_ids.push((first_neuron_id + i) as u64);
6924 }
6925
6926 info!(target: "feagi-bdu","Batch created {} neurons in cortical area {}", count, cortical_id);
6927
6928 let state_manager = StateManager::instance();
6930 let state_manager = state_manager.read();
6931 let core_state = state_manager.get_core_state();
6932 core_state.add_neuron_count(neurons_created);
6933 core_state.add_regular_neuron_count(neurons_created);
6934 state_manager.add_cortical_area_neuron_count(&cortical_id.as_base_64(), count);
6935
6936 {
6938 let mut cache = self.cached_neuron_counts_per_area.write();
6939 cache
6940 .entry(*cortical_id)
6941 .or_insert_with(|| AtomicUsize::new(0))
6942 .fetch_add(count, Ordering::Relaxed);
6943 }
6944
6945 Ok(neuron_ids)
6946 }
6947
6948 pub fn delete_neurons_batch(&mut self, neuron_ids: Vec<u64>) -> BduResult<usize> {
6959 let npu = self
6961 .npu
6962 .as_ref()
6963 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
6964
6965 let mut npu_lock = npu
6966 .lock()
6967 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
6968
6969 let mut deleted_count = 0;
6970 let mut per_area_deleted: std::collections::HashMap<String, usize> =
6971 std::collections::HashMap::new();
6972
6973 for neuron_id in neuron_ids {
6976 let cortical_idx = npu_lock.get_neuron_cortical_area(neuron_id as u32);
6977 let cortical_id =
6978 cortical_idx.and_then(|idx| self.cortical_idx_to_id.get(&idx).cloned());
6979
6980 if npu_lock.delete_neuron(neuron_id as u32) {
6981 deleted_count += 1;
6982 if let Some(cortical_id) = cortical_id {
6983 let key = cortical_id.as_base_64();
6984 *per_area_deleted.entry(key).or_insert(0) += 1;
6985 }
6986 }
6987 }
6988
6989 info!(target: "feagi-bdu","Batch deleted {} neurons", deleted_count);
6990
6991 if deleted_count > 0 {
6993 let state_manager = StateManager::instance();
6994 let state_manager = state_manager.read();
6995 let core_state = state_manager.get_core_state();
6996 core_state.subtract_neuron_count(deleted_count as u32);
6997 core_state.subtract_regular_neuron_count(deleted_count as u32);
6998 for (cortical_id, count) in per_area_deleted {
6999 state_manager.subtract_cortical_area_neuron_count(&cortical_id, count);
7000 }
7001 }
7002
7003 Ok(deleted_count)
7010 }
7011
7012 pub fn update_neuron_properties(
7031 &mut self,
7032 neuron_id: u64,
7033 firing_threshold: Option<f32>,
7034 leak_coefficient: Option<f32>,
7035 resting_potential: Option<f32>,
7036 excitability: Option<f32>,
7037 ) -> BduResult<()> {
7038 let npu = self
7040 .npu
7041 .as_ref()
7042 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
7043
7044 let mut npu_lock = npu
7045 .lock()
7046 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
7047
7048 let neuron_id_u32 = neuron_id as u32;
7049
7050 let mut updated = false;
7052
7053 if let Some(threshold) = firing_threshold {
7055 if npu_lock.update_neuron_threshold(neuron_id_u32, threshold) {
7056 updated = true;
7057 debug!(target: "feagi-bdu","Updated neuron {} firing_threshold = {}", neuron_id, threshold);
7058 } else if !updated {
7059 return Err(BduError::InvalidNeuron(format!(
7060 "Neuron {} not found",
7061 neuron_id
7062 )));
7063 }
7064 }
7065
7066 if let Some(leak) = leak_coefficient {
7067 if npu_lock.update_neuron_leak(neuron_id_u32, leak) {
7068 updated = true;
7069 debug!(target: "feagi-bdu","Updated neuron {} leak_coefficient = {}", neuron_id, leak);
7070 } else if !updated {
7071 return Err(BduError::InvalidNeuron(format!(
7072 "Neuron {} not found",
7073 neuron_id
7074 )));
7075 }
7076 }
7077
7078 if let Some(resting) = resting_potential {
7079 if npu_lock.update_neuron_resting_potential(neuron_id_u32, resting) {
7080 updated = true;
7081 debug!(target: "feagi-bdu","Updated neuron {} resting_potential = {}", neuron_id, resting);
7082 } else if !updated {
7083 return Err(BduError::InvalidNeuron(format!(
7084 "Neuron {} not found",
7085 neuron_id
7086 )));
7087 }
7088 }
7089
7090 if let Some(excit) = excitability {
7091 if npu_lock.update_neuron_excitability(neuron_id_u32, excit) {
7092 updated = true;
7093 debug!(target: "feagi-bdu","Updated neuron {} excitability = {}", neuron_id, excit);
7094 } else if !updated {
7095 return Err(BduError::InvalidNeuron(format!(
7096 "Neuron {} not found",
7097 neuron_id
7098 )));
7099 }
7100 }
7101
7102 if !updated {
7103 return Err(BduError::Internal(
7104 "No properties provided for update".to_string(),
7105 ));
7106 }
7107
7108 info!(target: "feagi-bdu","Updated properties for neuron {}", neuron_id);
7109
7110 Ok(())
7111 }
7112
7113 pub fn set_neuron_firing_threshold(
7125 &mut self,
7126 neuron_id: u64,
7127 new_threshold: f32,
7128 ) -> BduResult<()> {
7129 let npu = self
7131 .npu
7132 .as_ref()
7133 .ok_or_else(|| BduError::Internal("NPU not connected".to_string()))?;
7134
7135 let mut npu_lock = npu
7136 .lock()
7137 .map_err(|e| BduError::Internal(format!("Failed to lock NPU: {}", e)))?;
7138
7139 if npu_lock.update_neuron_threshold(neuron_id as u32, new_threshold) {
7141 debug!(target: "feagi-bdu","Set neuron {} firing threshold = {}", neuron_id, new_threshold);
7142 Ok(())
7143 } else {
7144 Err(BduError::InvalidNeuron(format!(
7145 "Neuron {} not found",
7146 neuron_id
7147 )))
7148 }
7149 }
7150
7151 pub fn get_cortical_area_by_name(&self, name: &str) -> Option<CorticalArea> {
7166 self.cortical_areas
7167 .values()
7168 .find(|area| area.name == name)
7169 .cloned()
7170 }
7171
7172 pub fn resize_cortical_area(
7189 &mut self,
7190 cortical_id: &CorticalID,
7191 new_dimensions: CorticalAreaDimensions,
7192 ) -> BduResult<()> {
7193 if new_dimensions.width == 0 || new_dimensions.height == 0 || new_dimensions.depth == 0 {
7195 return Err(BduError::InvalidArea(format!(
7196 "Invalid dimensions: {:?} (all must be > 0)",
7197 new_dimensions
7198 )));
7199 }
7200
7201 let area = self.cortical_areas.get_mut(cortical_id).ok_or_else(|| {
7203 BduError::InvalidArea(format!("Cortical area {} not found", cortical_id))
7204 })?;
7205
7206 let old_dimensions = area.dimensions;
7207 area.dimensions = new_dimensions;
7208
7209 info!(target: "feagi-bdu",
7213 "Resized cortical area {} from {:?} to {:?}",
7214 cortical_id,
7215 old_dimensions,
7216 new_dimensions
7217 );
7218
7219 self.refresh_cortical_area_hashes(false, true);
7220
7221 Ok(())
7222 }
7223
7224 pub fn get_areas_in_region(&self, region_id: &str) -> BduResult<Vec<String>> {
7235 let region = self.brain_regions.get_region(region_id).ok_or_else(|| {
7236 BduError::InvalidArea(format!("Brain region {} not found", region_id))
7237 })?;
7238
7239 Ok(region
7241 .cortical_areas
7242 .iter()
7243 .map(|id| id.as_base_64())
7244 .collect())
7245 }
7246
7247 pub fn update_brain_region(
7260 &mut self,
7261 region_id: &str,
7262 new_name: Option<String>,
7263 new_description: Option<String>,
7264 ) -> BduResult<()> {
7265 let region = self
7266 .brain_regions
7267 .get_region_mut(region_id)
7268 .ok_or_else(|| {
7269 BduError::InvalidArea(format!("Brain region {} not found", region_id))
7270 })?;
7271
7272 if let Some(name) = new_name {
7273 region.name = name;
7274 debug!(target: "feagi-bdu","Updated brain region {} name", region_id);
7275 }
7276
7277 if let Some(desc) = new_description {
7278 region
7280 .properties
7281 .insert("description".to_string(), serde_json::json!(desc));
7282 debug!(target: "feagi-bdu","Updated brain region {} description", region_id);
7283 }
7284
7285 info!(target: "feagi-bdu","Updated brain region {}", region_id);
7286
7287 self.refresh_brain_regions_hash();
7288
7289 Ok(())
7290 }
7291
7292 pub fn update_brain_region_properties(
7306 &mut self,
7307 region_id: &str,
7308 properties: std::collections::HashMap<String, serde_json::Value>,
7309 ) -> BduResult<Option<BrainRegionIoRegistry>> {
7310 use tracing::{debug, info};
7311
7312 let should_recompute_io = properties
7313 .contains_key(crate::region_io_designation::DESIGNATED_INPUTS_KEY)
7314 || properties.contains_key(crate::region_io_designation::DESIGNATED_OUTPUTS_KEY);
7315
7316 if properties.contains_key(crate::region_io_designation::DESIGNATED_INPUTS_KEY)
7317 || properties.contains_key(crate::region_io_designation::DESIGNATED_OUTPUTS_KEY)
7318 {
7319 let region_snapshot = self
7320 .brain_regions
7321 .get_region(region_id)
7322 .ok_or_else(|| {
7323 BduError::InvalidArea(format!("Brain region {} not found", region_id))
7324 })?
7325 .clone();
7326 let (merged_in, merged_out) = crate::region_io_designation::merged_designated_lists(
7327 ®ion_snapshot,
7328 &properties,
7329 )?;
7330 crate::region_io_designation::validate_merged_designations_against_connectivity(
7331 self,
7332 ®ion_snapshot,
7333 &merged_in,
7334 &merged_out,
7335 )?;
7336 }
7337
7338 let region = self
7339 .brain_regions
7340 .get_region_mut(region_id)
7341 .ok_or_else(|| {
7342 BduError::InvalidArea(format!("Brain region {} not found", region_id))
7343 })?;
7344
7345 for (key, value) in properties {
7346 match key.as_str() {
7347 "title" | "name" | "region_title" => {
7349 if let Some(name) = value.as_str() {
7350 region.name = name.to_string();
7351 debug!(target: "feagi-bdu", "Updated brain region {} name = {}", region_id, name);
7352 }
7353 }
7354 "coordinate_3d" | "coordinates_3d" => {
7355 region
7356 .properties
7357 .insert("coordinate_3d".to_string(), value.clone());
7358 debug!(target: "feagi-bdu", "Updated brain region {} coordinate_3d = {:?}", region_id, value);
7359 }
7360 "coordinate_2d" | "coordinates_2d" => {
7361 region
7362 .properties
7363 .insert("coordinate_2d".to_string(), value.clone());
7364 debug!(target: "feagi-bdu", "Updated brain region {} coordinate_2d = {:?}", region_id, value);
7365 }
7366 "description" => {
7367 region
7368 .properties
7369 .insert("description".to_string(), value.clone());
7370 debug!(target: "feagi-bdu", "Updated brain region {} description", region_id);
7371 }
7372 "region_type" => {
7373 if let Some(type_str) = value.as_str() {
7374 region.region_type = feagi_structures::genomic::RegionType::Undefined;
7377 debug!(target: "feagi-bdu", "Updated brain region {} type = {}", region_id, type_str);
7378 }
7379 }
7380 _ => {
7382 region.properties.insert(key.clone(), value.clone());
7383 debug!(target: "feagi-bdu", "Updated brain region {} property {} = {:?}", region_id, key, value);
7384 }
7385 }
7386 }
7387
7388 info!(target: "feagi-bdu", "Updated brain region {} properties", region_id);
7389
7390 if should_recompute_io {
7393 let registry = self.recompute_brain_region_io_registry()?;
7394 return Ok(Some(registry));
7395 }
7396
7397 self.refresh_brain_regions_hash();
7401
7402 Ok(None)
7403 }
7404
7405 pub fn get_neuron_by_coordinates(
7423 &self,
7424 cortical_id: &CorticalID,
7425 x: u32,
7426 y: u32,
7427 z: u32,
7428 ) -> Option<u64> {
7429 let area = self.get_cortical_area(cortical_id)?;
7431 let cortical_idx = area.cortical_idx;
7432
7433 let npu = self.npu.as_ref()?;
7435 let npu_lock = npu.lock().ok()?;
7436
7437 npu_lock
7438 .get_neuron_id_at_coordinate(cortical_idx, x, y, z)
7439 .map(|id| id as u64)
7440 }
7441
7442 pub fn get_neuron_position(&self, neuron_id: u64) -> Option<(u32, u32, u32)> {
7453 let npu = self.npu.as_ref()?;
7454 let npu_lock = npu.lock().ok()?;
7455
7456 let neuron_count = npu_lock.get_neuron_count();
7458 if (neuron_id as usize) >= neuron_count {
7459 return None;
7460 }
7461
7462 Some(
7463 npu_lock
7464 .get_neuron_coordinates(neuron_id as u32)
7465 .unwrap_or((0, 0, 0)),
7466 )
7467 }
7468
7469 pub fn get_cortical_area_for_neuron(&self, neuron_id: u64) -> Option<CorticalID> {
7480 let npu = self.npu.as_ref()?;
7481 let npu_lock = npu.lock().ok()?;
7482
7483 let neuron_count = npu_lock.get_neuron_count();
7485 if (neuron_id as usize) >= neuron_count {
7486 return None;
7487 }
7488
7489 let cortical_idx = npu_lock.get_neuron_cortical_area(neuron_id as u32)?;
7490
7491 self.cortical_areas
7493 .values()
7494 .find(|area| area.cortical_idx == cortical_idx)
7495 .map(|area| area.cortical_id)
7496 }
7497
7498 pub fn get_neuron_properties(
7509 &self,
7510 neuron_id: u64,
7511 ) -> Option<std::collections::HashMap<String, serde_json::Value>> {
7512 let npu = self.npu.as_ref()?;
7513 let npu_lock = npu.lock().ok()?;
7514
7515 let neuron_id_u32 = neuron_id as u32;
7516 let idx = neuron_id as usize;
7517
7518 let neuron_count = npu_lock.get_neuron_count();
7520 if idx >= neuron_count {
7521 return None;
7522 }
7523
7524 let mut properties = std::collections::HashMap::new();
7525
7526 properties.insert("neuron_id".to_string(), serde_json::json!(neuron_id));
7528
7529 let (x, y, z) = npu_lock.get_neuron_coordinates(neuron_id_u32)?;
7531 properties.insert("x".to_string(), serde_json::json!(x));
7532 properties.insert("y".to_string(), serde_json::json!(y));
7533 properties.insert("z".to_string(), serde_json::json!(z));
7534
7535 let cortical_idx = npu_lock.get_neuron_cortical_area(neuron_id_u32)?;
7537 properties.insert("cortical_area".to_string(), serde_json::json!(cortical_idx));
7538
7539 properties.insert(
7541 "mp_charge_accumulation".to_string(),
7542 serde_json::json!(npu_lock.get_mp_charge_accumulation_at(idx).unwrap_or(false)),
7543 );
7544 properties.insert(
7545 "neuron_type".to_string(),
7546 serde_json::json!(npu_lock.get_neuron_type_at(idx).unwrap_or(0)),
7547 );
7548 let (mp_drv, psp_uni) = self
7549 .cortical_idx_to_id
7550 .get(&cortical_idx)
7551 .map(|cid| {
7552 (
7553 npu_lock.get_mp_driven_psp_for_cortical(cid),
7554 npu_lock.get_psp_uniform_distribution_for_cortical(cid),
7555 )
7556 })
7557 .unwrap_or((false, false));
7558 properties.insert("mp_driven_psp".to_string(), serde_json::json!(mp_drv));
7559 properties.insert(
7560 "psp_uniform_distribution".to_string(),
7561 serde_json::json!(psp_uni),
7562 );
7563
7564 let (consec_count, consec_limit, snooze, mp, threshold, refract_countdown) = npu_lock
7567 .get_neuron_state(NeuronId(neuron_id_u32))
7568 .unwrap_or((0u16, 0u16, 0u16, 0.0f32, 0.0f32, 0u16));
7569 properties.insert(
7570 "consecutive_fire_count".to_string(),
7571 serde_json::json!(consec_count),
7572 );
7573 properties.insert(
7574 "consecutive_fire_limit".to_string(),
7575 serde_json::json!(consec_limit),
7576 );
7577 properties.insert("snooze_period".to_string(), serde_json::json!(snooze));
7578 properties.insert("membrane_potential".to_string(), serde_json::json!(mp));
7579 properties.insert("threshold".to_string(), serde_json::json!(threshold));
7580 properties.insert(
7581 "refractory_countdown".to_string(),
7582 serde_json::json!(refract_countdown),
7583 );
7584
7585 properties.insert(
7587 "leak_coefficient".to_string(),
7588 serde_json::json!(npu_lock
7589 .get_neuron_property_by_index(idx, "leak_coefficient")
7590 .unwrap_or(0.0)),
7591 );
7592 properties.insert(
7593 "resting_potential".to_string(),
7594 serde_json::json!(npu_lock
7595 .get_neuron_property_by_index(idx, "resting_potential")
7596 .unwrap_or(0.0)),
7597 );
7598 properties.insert(
7599 "excitability".to_string(),
7600 serde_json::json!(npu_lock
7601 .get_neuron_property_by_index(idx, "excitability")
7602 .unwrap_or(0.0)),
7603 );
7604 properties.insert(
7605 "threshold_limit".to_string(),
7606 serde_json::json!(npu_lock
7607 .get_neuron_property_by_index(idx, "threshold_limit")
7608 .unwrap_or(0.0)),
7609 );
7610 properties.insert(
7611 "refractory_period".to_string(),
7612 serde_json::json!(npu_lock
7613 .get_neuron_property_u16_by_index(idx, "refractory_period")
7614 .unwrap_or(0)),
7615 );
7616
7617 Some(properties)
7618 }
7619
7620 pub fn get_neuron_property(
7632 &self,
7633 neuron_id: u64,
7634 property_name: &str,
7635 ) -> Option<serde_json::Value> {
7636 self.get_neuron_properties(neuron_id)?
7637 .get(property_name)
7638 .cloned()
7639 }
7640
7641 pub fn get_all_cortical_ids(&self) -> Vec<CorticalID> {
7652 self.cortical_areas.keys().copied().collect()
7653 }
7654
7655 pub fn get_all_cortical_indices(&self) -> Vec<u32> {
7662 self.cortical_areas
7663 .values()
7664 .map(|area| area.cortical_idx)
7665 .collect()
7666 }
7667
7668 pub fn get_cortical_area_names(&self) -> Vec<String> {
7675 self.cortical_areas
7676 .values()
7677 .map(|area| area.name.clone())
7678 .collect()
7679 }
7680
7681 pub fn list_ipu_areas(&self) -> Vec<CorticalID> {
7688 use crate::models::CorticalAreaExt;
7689 self.cortical_areas
7690 .values()
7691 .filter(|area| area.is_input_area())
7692 .map(|area| area.cortical_id)
7693 .collect()
7694 }
7695
7696 pub fn list_opu_areas(&self) -> Vec<CorticalID> {
7703 use crate::models::CorticalAreaExt;
7704 self.cortical_areas
7705 .values()
7706 .filter(|area| area.is_output_area())
7707 .map(|area| area.cortical_id)
7708 .collect()
7709 }
7710
7711 pub fn get_max_cortical_area_dimensions(&self) -> (usize, usize, usize) {
7718 self.cortical_areas
7719 .values()
7720 .fold((0, 0, 0), |(max_w, max_h, max_d), area| {
7721 (
7722 max_w.max(area.dimensions.width as usize),
7723 max_h.max(area.dimensions.height as usize),
7724 max_d.max(area.dimensions.depth as usize),
7725 )
7726 })
7727 }
7728
7729 pub fn get_cortical_area_properties(
7740 &self,
7741 cortical_id: &CorticalID,
7742 ) -> Option<std::collections::HashMap<String, serde_json::Value>> {
7743 let area = self.get_cortical_area(cortical_id)?;
7744
7745 let mut properties = std::collections::HashMap::new();
7746 properties.insert(
7747 "cortical_id".to_string(),
7748 serde_json::json!(area.cortical_id),
7749 );
7750 properties.insert(
7751 "cortical_id_s".to_string(),
7752 serde_json::json!(area.cortical_id.to_string()),
7753 );
7754 properties.insert(
7755 "cortical_idx".to_string(),
7756 serde_json::json!(area.cortical_idx),
7757 );
7758 properties.insert("name".to_string(), serde_json::json!(area.name));
7759 use crate::models::CorticalAreaExt;
7760 properties.insert(
7761 "area_type".to_string(),
7762 serde_json::json!(area.get_cortical_group()),
7763 );
7764 properties.insert(
7765 "dimensions".to_string(),
7766 serde_json::json!({
7767 "width": area.dimensions.width,
7768 "height": area.dimensions.height,
7769 "depth": area.dimensions.depth,
7770 }),
7771 );
7772 properties.insert("position".to_string(), serde_json::json!(area.position));
7773
7774 for (key, value) in &area.properties {
7776 properties.insert(key.clone(), value.clone());
7777 }
7778
7779 properties.extend(area.properties.clone());
7781
7782 Some(properties)
7783 }
7784
7785 pub fn get_all_cortical_area_properties(
7792 &self,
7793 ) -> Vec<std::collections::HashMap<String, serde_json::Value>> {
7794 self.cortical_areas
7795 .keys()
7796 .filter_map(|id| self.get_cortical_area_properties(id))
7797 .collect()
7798 }
7799
7800 pub fn get_all_brain_region_ids(&self) -> Vec<String> {
7811 self.brain_regions
7812 .get_all_region_ids()
7813 .into_iter()
7814 .cloned()
7815 .collect()
7816 }
7817
7818 pub fn get_brain_region_names(&self) -> Vec<String> {
7825 self.brain_regions
7826 .get_all_region_ids()
7827 .iter()
7828 .filter_map(|id| {
7829 self.brain_regions
7830 .get_region(id)
7831 .map(|region| region.name.clone())
7832 })
7833 .collect()
7834 }
7835
7836 pub fn get_brain_region_properties(
7847 &self,
7848 region_id: &str,
7849 ) -> Option<std::collections::HashMap<String, serde_json::Value>> {
7850 let region = self.brain_regions.get_region(region_id)?;
7851
7852 let mut properties = std::collections::HashMap::new();
7853 properties.insert("region_id".to_string(), serde_json::json!(region.region_id));
7854 properties.insert("name".to_string(), serde_json::json!(region.name));
7855 properties.insert(
7856 "region_type".to_string(),
7857 serde_json::json!(format!("{:?}", region.region_type)),
7858 );
7859 properties.insert(
7860 "cortical_areas".to_string(),
7861 serde_json::json!(region.cortical_areas.iter().collect::<Vec<_>>()),
7862 );
7863
7864 properties.extend(region.properties.clone());
7866
7867 Some(properties)
7868 }
7869
7870 pub fn cortical_area_exists(&self, cortical_id: &CorticalID) -> bool {
7881 self.cortical_areas.contains_key(cortical_id)
7882 }
7883
7884 pub fn brain_region_exists(&self, region_id: &str) -> bool {
7895 self.brain_regions.get_region(region_id).is_some()
7896 }
7897
7898 pub fn get_brain_region_count(&self) -> usize {
7905 self.brain_regions.region_count()
7906 }
7907
7908 pub fn get_neurons_by_cortical_area(&self, cortical_id: &CorticalID) -> Vec<u64> {
7919 self.get_neurons_in_area(cortical_id)
7923 }
7924}
7925
7926impl std::fmt::Debug for ConnectomeManager {
7928 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
7929 f.debug_struct("ConnectomeManager")
7930 .field("cortical_areas", &self.cortical_areas.len())
7931 .field("next_cortical_idx", &self.next_cortical_idx)
7932 .field("brain_regions", &self.brain_regions)
7933 .field(
7934 "npu",
7935 &if self.npu.is_some() {
7936 "Connected"
7937 } else {
7938 "Not connected"
7939 },
7940 )
7941 .field("initialized", &self.initialized)
7942 .finish()
7943 }
7944}
7945
7946#[cfg(test)]
7947mod tests {
7948 use super::*;
7949 use feagi_structures::genomic::cortical_area::CoreCorticalType;
7950
7951 #[test]
7952 fn test_singleton_instance() {
7953 let instance1 = ConnectomeManager::instance();
7954 let instance2 = ConnectomeManager::instance();
7955
7956 assert_eq!(Arc::strong_count(&instance1), Arc::strong_count(&instance2));
7958 }
7959
7960 #[test]
7961 fn test_add_cortical_area() {
7962 ConnectomeManager::reset_for_testing();
7963
7964 let instance = ConnectomeManager::instance();
7965 let mut manager = instance.write();
7966
7967 use feagi_structures::genomic::cortical_area::{
7968 CorticalAreaType, IOCorticalAreaConfigurationFlag,
7969 };
7970 let cortical_id = CorticalID::try_from_bytes(b"cst_add_").unwrap(); let cortical_type = CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean);
7972 let area = CorticalArea::new(
7973 cortical_id,
7974 0,
7975 "Visual Input".to_string(),
7976 CorticalAreaDimensions::new(128, 128, 20).unwrap(),
7977 (0, 0, 0).into(),
7978 cortical_type,
7979 )
7980 .unwrap();
7981
7982 let initial_count = manager.get_cortical_area_count();
7983 let _cortical_idx = manager.add_cortical_area(area).unwrap();
7984
7985 assert_eq!(manager.get_cortical_area_count(), initial_count + 1);
7986 assert!(manager.has_cortical_area(&cortical_id));
7987 assert!(manager.is_initialized());
7988 }
7989
7990 #[test]
7991 fn refresh_all_connectome_hashes_publishes_mappings() {
7992 use feagi_structures::genomic::cortical_area::{
7993 CorticalArea, CorticalAreaDimensions, CorticalAreaType, CustomCorticalType,
7994 };
7995
7996 let src_id = CorticalID::try_from_bytes(b"chashsrc").unwrap();
7997 let dst_id = CorticalID::try_from_bytes(b"chashdst").unwrap();
7998 let mut src = CorticalArea::new(
7999 src_id,
8000 1,
8001 "src".to_string(),
8002 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
8003 (0, 0, 0).into(),
8004 CorticalAreaType::Custom(CustomCorticalType::LeakyIntegrateFire),
8005 )
8006 .unwrap();
8007 src.properties.insert(
8008 "cortical_mapping_dst".to_string(),
8009 serde_json::json!({
8010 dst_id.as_base_64(): [{ "morphology_id": "projector" }]
8011 }),
8012 );
8013 let mut manager = ConnectomeManager::new_for_testing();
8014 manager.add_cortical_area(src).unwrap();
8015 manager.refresh_all_connectome_hashes();
8016 let mappings_hash = feagi_state_manager::StateManager::instance()
8017 .read()
8018 .get_cortical_mappings_hash();
8019 assert_ne!(
8020 mappings_hash, 0,
8021 "refresh_all_connectome_hashes must publish cortical_mappings_hash"
8022 );
8023 }
8024
8025 #[test]
8026 fn test_cortical_area_lookups() {
8027 ConnectomeManager::reset_for_testing();
8028
8029 let instance = ConnectomeManager::instance();
8030 let mut manager = instance.write();
8031
8032 use feagi_structures::genomic::cortical_area::{
8033 CorticalAreaType, IOCorticalAreaConfigurationFlag,
8034 };
8035 let cortical_id = CorticalID::try_from_bytes(b"cst_look").unwrap(); let cortical_type = CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean);
8037 let area = CorticalArea::new(
8038 cortical_id,
8039 0,
8040 "Test Area".to_string(),
8041 CorticalAreaDimensions::new(10, 10, 10).unwrap(),
8042 (0, 0, 0).into(),
8043 cortical_type,
8044 )
8045 .unwrap();
8046
8047 let cortical_idx = manager.add_cortical_area(area).unwrap();
8048
8049 assert_eq!(manager.get_cortical_idx(&cortical_id), Some(cortical_idx));
8051
8052 assert_eq!(manager.get_cortical_id(cortical_idx), Some(&cortical_id));
8054
8055 let retrieved_area = manager.get_cortical_area(&cortical_id).unwrap();
8057 assert_eq!(retrieved_area.name, "Test Area");
8058 }
8059
8060 #[test]
8061 fn test_remove_cortical_area() {
8062 ConnectomeManager::reset_for_testing();
8063
8064 let instance = ConnectomeManager::instance();
8065 let mut manager = instance.write();
8066
8067 use feagi_structures::genomic::cortical_area::{
8068 CorticalAreaType, IOCorticalAreaConfigurationFlag,
8069 };
8070 let cortical_id = CoreCorticalType::Power.to_cortical_id();
8071
8072 if manager.has_cortical_area(&cortical_id) {
8074 manager.remove_cortical_area(&cortical_id).unwrap();
8075 }
8076
8077 let cortical_type = CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean);
8078 let area = CorticalArea::new(
8079 cortical_id,
8080 0,
8081 "Test".to_string(),
8082 CorticalAreaDimensions::new(10, 10, 10).unwrap(),
8083 (0, 0, 0).into(),
8084 cortical_type,
8085 )
8086 .unwrap();
8087
8088 let initial_count = manager.get_cortical_area_count();
8089 manager.add_cortical_area(area).unwrap();
8090 assert_eq!(manager.get_cortical_area_count(), initial_count + 1);
8091
8092 manager.remove_cortical_area(&cortical_id).unwrap();
8093 assert_eq!(manager.get_cortical_area_count(), initial_count);
8094 assert!(!manager.has_cortical_area(&cortical_id));
8095 }
8096
8097 #[test]
8098 fn test_duplicate_area_error() {
8099 ConnectomeManager::reset_for_testing();
8100
8101 let instance = ConnectomeManager::instance();
8102 let mut manager = instance.write();
8103
8104 use feagi_structures::genomic::cortical_area::{
8105 CorticalAreaType, IOCorticalAreaConfigurationFlag,
8106 };
8107 let cortical_id = CorticalID::try_from_bytes(b"cst_dup1").unwrap();
8110 let cortical_type = CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean);
8111 let area1 = CorticalArea::new(
8112 cortical_id,
8113 0,
8114 "First".to_string(),
8115 CorticalAreaDimensions::new(10, 10, 10).unwrap(),
8116 (0, 0, 0).into(),
8117 cortical_type,
8118 )
8119 .unwrap();
8120
8121 let area2 = CorticalArea::new(
8122 cortical_id, 1,
8124 "Second".to_string(),
8125 CorticalAreaDimensions::new(10, 10, 10).unwrap(),
8126 (0, 0, 0).into(),
8127 cortical_type,
8128 )
8129 .unwrap();
8130
8131 manager.add_cortical_area(area1).unwrap();
8132 let result = manager.add_cortical_area(area2);
8133
8134 assert!(result.is_err());
8135 }
8136
8137 #[test]
8138 fn test_brain_region_management() {
8139 ConnectomeManager::reset_for_testing();
8140
8141 let instance = ConnectomeManager::instance();
8142 let mut manager = instance.write();
8143
8144 let region_id = feagi_structures::genomic::brain_regions::RegionID::new();
8145 let region_id_str = region_id.to_string();
8146 let root = BrainRegion::new(
8147 region_id,
8148 "Root".to_string(),
8149 feagi_structures::genomic::brain_regions::RegionType::Undefined,
8150 )
8151 .unwrap();
8152
8153 let initial_count = manager.get_brain_region_ids().len();
8154 manager.add_brain_region(root, None).unwrap();
8155
8156 assert_eq!(manager.get_brain_region_ids().len(), initial_count + 1);
8157 assert!(manager.get_brain_region(®ion_id_str).is_some());
8158 }
8159
8160 #[test]
8161 fn test_synapse_operations() {
8162 use feagi_npu_burst_engine::npu::RustNPU;
8163 use feagi_npu_burst_engine::TracingMutex;
8164 use std::sync::Arc;
8165
8166 use feagi_npu_burst_engine::backend::CPUBackend;
8168 use feagi_npu_burst_engine::DynamicNPU;
8169 use feagi_npu_runtime::StdRuntime;
8170
8171 let runtime = StdRuntime;
8172 let backend = CPUBackend::new();
8173 let npu_result =
8174 RustNPU::new(runtime, backend, 100, 1000, 10).expect("Failed to create NPU");
8175 let npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu_result), "TestNPU"));
8176 let mut manager = ConnectomeManager::new_for_testing_with_npu(npu.clone());
8177
8178 use feagi_structures::genomic::cortical_area::{
8180 CorticalAreaType, IOCorticalAreaConfigurationFlag,
8181 };
8182 let cortical_id = CorticalID::try_from_bytes(b"cst_syn_").unwrap(); let cortical_type = CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean);
8184 let area = CorticalArea::new(
8185 cortical_id,
8186 0, "Test Area".to_string(),
8188 CorticalAreaDimensions::new(10, 10, 1).unwrap(),
8189 (0, 0, 0).into(), cortical_type,
8191 )
8192 .unwrap();
8193 let cortical_idx = manager.add_cortical_area(area).unwrap();
8194
8195 if let Some(npu_arc) = manager.get_npu() {
8197 if let Ok(mut npu_guard) = npu_arc.try_lock() {
8198 if let DynamicNPU::F32(ref mut npu) = *npu_guard {
8199 npu.register_cortical_area(cortical_idx, cortical_id.as_base_64());
8200 }
8201 }
8202 }
8203
8204 let neuron1_id = manager
8206 .add_neuron(
8207 &cortical_id,
8208 0,
8209 0,
8210 0, 100.0, 0.0, 0.1, -60.0, 0, 2, 1.0, 5, 10, false, )
8222 .unwrap();
8223
8224 let neuron2_id = manager
8225 .add_neuron(
8226 &cortical_id,
8227 1,
8228 0,
8229 0, 100.0,
8231 f32::MAX, 0.1,
8233 -60.0,
8234 0,
8235 2,
8236 1.0,
8237 5,
8238 10,
8239 false,
8240 )
8241 .unwrap();
8242
8243 manager
8245 .create_synapse(
8246 neuron1_id, neuron2_id, 128.0, 64.0, 0, )
8250 .unwrap();
8251
8252 println!("✅ Synapse creation test passed");
8255 }
8256
8257 #[test]
8258 fn test_apply_cortical_mapping_missing_rules_is_ok() {
8259 let mut manager = ConnectomeManager::new_for_testing();
8262
8263 use feagi_structures::genomic::cortical_area::{
8264 CorticalAreaType, IOCorticalAreaConfigurationFlag,
8265 };
8266
8267 let src_id = CorticalID::try_from_bytes(b"map_src_").unwrap();
8268 let dst_id = CorticalID::try_from_bytes(b"map_dst_").unwrap();
8269
8270 let src_area = CorticalArea::new(
8271 src_id,
8272 0,
8273 "src".to_string(),
8274 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8275 (0, 0, 0).into(),
8276 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
8277 )
8278 .unwrap();
8279
8280 let dst_area = CorticalArea::new(
8281 dst_id,
8282 1,
8283 "dst".to_string(),
8284 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8285 (0, 0, 0).into(),
8286 CorticalAreaType::BrainOutput(IOCorticalAreaConfigurationFlag::Boolean),
8287 )
8288 .unwrap();
8289
8290 manager.add_cortical_area(src_area).unwrap();
8291 manager.add_cortical_area(dst_area).unwrap();
8292
8293 let count = manager
8295 .apply_cortical_mapping_for_pair(&src_id, &dst_id)
8296 .unwrap();
8297 assert_eq!(count, 0);
8298
8299 manager
8301 .update_cortical_mapping(
8302 &src_id,
8303 &dst_id,
8304 vec![serde_json::json!({"morphology_id":"m1"})],
8305 )
8306 .unwrap();
8307 manager
8308 .update_cortical_mapping(&src_id, &dst_id, vec![])
8309 .unwrap();
8310
8311 let count2 = manager
8312 .apply_cortical_mapping_for_pair(&src_id, &dst_id)
8313 .unwrap();
8314 assert_eq!(count2, 0);
8315 }
8316
8317 #[test]
8318 fn test_get_mapping_rules_for_destination_supports_legacy_key() {
8319 let dst_id = CorticalID::try_from_bytes(b"csrc0002").unwrap();
8320 let mapping_dst = serde_json::json!({
8321 "csrc0002": [
8322 {"morphology_id": "m1"}
8323 ]
8324 });
8325 let mapping_obj = mapping_dst.as_object().expect("mapping must be an object");
8326
8327 let rules = ConnectomeManager::get_mapping_rules_for_destination(mapping_obj, &dst_id)
8328 .expect("legacy destination key should resolve");
8329 assert_eq!(rules.len(), 1);
8330 assert_eq!(
8331 rules[0].get("morphology_id").and_then(|v| v.as_str()),
8332 Some("m1")
8333 );
8334 }
8335
8336 #[test]
8337 fn test_get_neuron_properties_always_includes_neuron_state_keys() {
8338 use feagi_npu_burst_engine::backend::CPUBackend;
8339 use feagi_npu_burst_engine::RustNPU;
8340 use feagi_npu_burst_engine::TracingMutex;
8341 use feagi_npu_runtime::StdRuntime;
8342 use feagi_structures::genomic::cortical_area::{
8343 CorticalAreaDimensions, CorticalAreaType, IOCorticalAreaConfigurationFlag,
8344 };
8345 use std::sync::Arc;
8346
8347 let runtime = StdRuntime;
8348 let backend = CPUBackend::new();
8349 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
8350 let dyn_npu = Arc::new(TracingMutex::new(
8351 feagi_npu_burst_engine::DynamicNPU::F32(npu),
8352 "TestNPU",
8353 ));
8354 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
8355
8356 let area_id = CorticalID::try_from_bytes(b"cst_nsp_").unwrap();
8357 let area = CorticalArea::new(
8358 area_id,
8359 0,
8360 "n".to_string(),
8361 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8362 (0, 0, 0).into(),
8363 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
8364 )
8365 .unwrap();
8366
8367 manager.add_cortical_area(area).unwrap();
8368 let nid = manager
8369 .add_neuron(
8370 &area_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false,
8371 )
8372 .unwrap();
8373
8374 let props = manager
8375 .get_neuron_properties(nid)
8376 .expect("neuron properties");
8377 for key in [
8378 "consecutive_fire_count",
8379 "consecutive_fire_limit",
8380 "snooze_period",
8381 "membrane_potential",
8382 "threshold",
8383 "refractory_countdown",
8384 "mp_charge_accumulation",
8385 "neuron_type",
8386 "mp_driven_psp",
8387 "psp_uniform_distribution",
8388 "leak_coefficient",
8389 "resting_potential",
8390 "excitability",
8391 "threshold_limit",
8392 "refractory_period",
8393 ] {
8394 assert!(props.contains_key(key), "missing neuron state key: {key}");
8395 }
8396 }
8397
8398 #[test]
8399 fn test_mapping_deletion_prunes_synapses_between_areas() {
8400 use feagi_npu_burst_engine::backend::CPUBackend;
8401 use feagi_npu_burst_engine::RustNPU;
8402 use feagi_npu_burst_engine::TracingMutex;
8403 use feagi_npu_runtime::StdRuntime;
8404 use feagi_structures::genomic::cortical_area::{
8405 CorticalAreaDimensions, CorticalAreaType, IOCorticalAreaConfigurationFlag,
8406 };
8407 use std::sync::Arc;
8408
8409 let runtime = StdRuntime;
8411 let backend = CPUBackend::new();
8412 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
8413 let dyn_npu = Arc::new(TracingMutex::new(
8414 feagi_npu_burst_engine::DynamicNPU::F32(npu),
8415 "TestNPU",
8416 ));
8417 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
8418
8419 let src_id = CorticalID::try_from_bytes(b"cst_src_").unwrap();
8421 let dst_id = CorticalID::try_from_bytes(b"cst_dst_").unwrap();
8422
8423 let src_area = CorticalArea::new(
8424 src_id,
8425 0,
8426 "src".to_string(),
8427 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8428 (0, 0, 0).into(),
8429 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
8430 )
8431 .unwrap();
8432 let dst_area = CorticalArea::new(
8433 dst_id,
8434 1,
8435 "dst".to_string(),
8436 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8437 (0, 0, 0).into(),
8438 CorticalAreaType::BrainOutput(IOCorticalAreaConfigurationFlag::Boolean),
8439 )
8440 .unwrap();
8441
8442 manager.add_cortical_area(src_area).unwrap();
8443 manager.add_cortical_area(dst_area).unwrap();
8444
8445 let s0 = manager
8447 .add_neuron(&src_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8448 .unwrap();
8449 let s1 = manager
8450 .add_neuron(&src_id, 1, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8451 .unwrap();
8452 let t0 = manager
8453 .add_neuron(&dst_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8454 .unwrap();
8455 let t1 = manager
8456 .add_neuron(&dst_id, 1, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8457 .unwrap();
8458
8459 manager.create_synapse(s0, t0, 128.0, 200.0, 0).unwrap();
8461 manager.create_synapse(s1, t1, 128.0, 200.0, 0).unwrap();
8462
8463 {
8465 let mut npu = dyn_npu.lock().unwrap();
8466 npu.rebuild_synapse_index();
8467 assert_eq!(npu.get_synapse_count(), 2);
8468 }
8469
8470 manager
8472 .update_cortical_mapping(&src_id, &dst_id, vec![])
8473 .unwrap();
8474 let created = manager
8475 .regenerate_synapses_for_mapping(&src_id, &dst_id)
8476 .unwrap();
8477 assert_eq!(created, 0);
8478
8479 {
8481 let mut npu = dyn_npu.lock().unwrap();
8482 npu.rebuild_synapse_index();
8484 assert_eq!(npu.get_synapse_count(), 0);
8485 assert!(npu.get_outgoing_synapses(s0 as u32).is_empty());
8486 assert!(npu.get_outgoing_synapses(s1 as u32).is_empty());
8487 }
8488 }
8489
8490 #[test]
8491 fn test_mapping_update_prunes_synapses_between_areas() {
8492 use feagi_npu_burst_engine::backend::CPUBackend;
8493 use feagi_npu_burst_engine::RustNPU;
8494 use feagi_npu_burst_engine::TracingMutex;
8495 use feagi_npu_runtime::StdRuntime;
8496 use feagi_structures::genomic::cortical_area::{
8497 CorticalAreaDimensions, CorticalAreaType, IOCorticalAreaConfigurationFlag,
8498 };
8499 use std::sync::Arc;
8500
8501 let runtime = StdRuntime;
8503 let backend = CPUBackend::new();
8504 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
8505 let dyn_npu = Arc::new(TracingMutex::new(
8506 feagi_npu_burst_engine::DynamicNPU::F32(npu),
8507 "TestNPU",
8508 ));
8509 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
8510
8511 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
8513
8514 let src_id = CorticalID::try_from_bytes(b"cstupds1").unwrap();
8517 let dst_id = CorticalID::try_from_bytes(b"cstupdt1").unwrap();
8518
8519 let src_area = CorticalArea::new(
8520 src_id,
8521 0,
8522 "src".to_string(),
8523 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8524 (0, 0, 0).into(),
8525 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
8526 )
8527 .unwrap();
8528 let dst_area = CorticalArea::new(
8529 dst_id,
8530 0,
8531 "dst".to_string(),
8532 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8533 (0, 0, 0).into(),
8534 CorticalAreaType::BrainOutput(IOCorticalAreaConfigurationFlag::Boolean),
8535 )
8536 .unwrap();
8537
8538 manager.add_cortical_area(src_area).unwrap();
8539 manager.add_cortical_area(dst_area).unwrap();
8540
8541 let s0 = manager
8543 .add_neuron(&src_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8544 .unwrap();
8545 let s1 = manager
8546 .add_neuron(&src_id, 1, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8547 .unwrap();
8548 let t0 = manager
8549 .add_neuron(&dst_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8550 .unwrap();
8551 let t1 = manager
8552 .add_neuron(&dst_id, 1, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8553 .unwrap();
8554
8555 manager.create_synapse(s0, t0, 128.0, 200.0, 0).unwrap();
8557 manager.create_synapse(s1, t1, 128.0, 200.0, 0).unwrap();
8558
8559 {
8561 let mut npu = dyn_npu.lock().unwrap();
8562 npu.rebuild_synapse_index();
8563 assert_eq!(npu.get_synapse_count(), 2);
8564 }
8565
8566 manager
8572 .update_cortical_mapping(
8573 &src_id,
8574 &dst_id,
8575 vec![serde_json::json!({
8576 "morphology_id": "episodic_memory",
8577 "morphology_scalar": [1],
8578 "postSynapticCurrent_multiplier": 1,
8579 "plasticity_flag": false,
8580 "plasticity_constant": 0,
8581 "ltp_multiplier": 0,
8582 "ltd_multiplier": 0,
8583 "plasticity_window": 0,
8584 })],
8585 )
8586 .unwrap();
8587 let created = manager
8588 .regenerate_synapses_for_mapping(&src_id, &dst_id)
8589 .unwrap();
8590 assert_eq!(created, 0);
8591
8592 {
8594 let mut npu = dyn_npu.lock().unwrap();
8595 npu.rebuild_synapse_index();
8597 assert_eq!(npu.get_synapse_count(), 0);
8598 assert!(npu.get_outgoing_synapses(s0 as u32).is_empty());
8599 assert!(npu.get_outgoing_synapses(s1 as u32).is_empty());
8600 }
8601 }
8602
8603 #[test]
8604 fn test_upstream_area_tracking() {
8605 use crate::models::cortical_area::CorticalArea;
8607 use feagi_npu_burst_engine::backend::CPUBackend;
8608 use feagi_npu_burst_engine::TracingMutex;
8609 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
8610 use feagi_npu_runtime::StdRuntime;
8611 use feagi_structures::genomic::cortical_area::{
8612 CorticalAreaDimensions, CorticalAreaType, CorticalID,
8613 };
8614
8615 let runtime = StdRuntime;
8617 let backend = CPUBackend::new();
8618 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
8619 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
8620 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
8621
8622 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
8625
8626 let src_id = CorticalID::try_from_bytes(b"csrc0000").unwrap();
8628 let src_area = CorticalArea::new(
8629 src_id,
8630 0,
8631 "Source Area".to_string(),
8632 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8633 (0, 0, 0).into(),
8634 CorticalAreaType::Custom(
8635 feagi_structures::genomic::cortical_area::CustomCorticalType::LeakyIntegrateFire,
8636 ),
8637 )
8638 .unwrap();
8639 let src_idx = manager.add_cortical_area(src_area).unwrap();
8640
8641 let dst_id = CorticalID::try_from_bytes(b"cdst0000").unwrap();
8643 let dst_area = CorticalArea::new(
8644 dst_id,
8645 0,
8646 "Dest Area".to_string(),
8647 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8648 (0, 0, 0).into(),
8649 CorticalAreaType::Custom(
8650 feagi_structures::genomic::cortical_area::CustomCorticalType::LeakyIntegrateFire,
8651 ),
8652 )
8653 .unwrap();
8654 manager.add_cortical_area(dst_area).unwrap();
8655
8656 {
8658 let dst_area = manager.get_cortical_area(&dst_id).unwrap();
8659 let upstream = dst_area.properties.get("upstream_cortical_areas").unwrap();
8660 assert!(
8661 upstream.as_array().unwrap().is_empty(),
8662 "Upstream areas should be empty initially"
8663 );
8664 }
8665
8666 let mapping_data = vec![serde_json::json!({
8668 "morphology_id": "episodic_memory",
8669 "morphology_scalar": 1,
8670 "postSynapticCurrent_multiplier": 1.0,
8671 })];
8672 manager
8673 .update_cortical_mapping(&src_id, &dst_id, mapping_data)
8674 .unwrap();
8675 manager
8676 .regenerate_synapses_for_mapping(&src_id, &dst_id)
8677 .unwrap();
8678
8679 {
8681 let upstream_areas = manager.get_upstream_cortical_areas(&dst_id);
8682 assert_eq!(upstream_areas.len(), 1, "Should have 1 upstream area");
8683 assert_eq!(
8684 upstream_areas[0], src_idx,
8685 "Upstream area should be src_idx"
8686 );
8687 }
8688
8689 manager
8691 .update_cortical_mapping(&src_id, &dst_id, vec![])
8692 .unwrap();
8693 manager
8694 .regenerate_synapses_for_mapping(&src_id, &dst_id)
8695 .unwrap();
8696
8697 {
8699 let upstream_areas = manager.get_upstream_cortical_areas(&dst_id);
8700 assert_eq!(
8701 upstream_areas.len(),
8702 0,
8703 "Should have 0 upstream areas after deletion"
8704 );
8705 }
8706 }
8707
8708 #[test]
8709 fn test_refresh_upstream_areas_for_associative_memory_pairs() {
8710 use crate::models::cortical_area::CorticalArea;
8711 use feagi_npu_burst_engine::backend::CPUBackend;
8712 use feagi_npu_burst_engine::TracingMutex;
8713 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
8714 use feagi_npu_runtime::StdRuntime;
8715 use feagi_structures::genomic::cortical_area::{
8716 CorticalAreaDimensions, CorticalAreaType, CorticalID, MemoryCorticalType,
8717 };
8718 use std::sync::Arc;
8719
8720 let runtime = StdRuntime;
8721 let backend = CPUBackend::new();
8722 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
8723 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
8724 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
8725 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
8726
8727 let a1_id = CorticalID::try_from_bytes(b"csrc0002").unwrap();
8728 let a2_id = CorticalID::try_from_bytes(b"csrc0003").unwrap();
8729 let m1_id = CorticalID::try_from_bytes(b"mmem0002").unwrap();
8730 let m2_id = CorticalID::try_from_bytes(b"mmem0003").unwrap();
8731
8732 let a1_area = CorticalArea::new(
8733 a1_id,
8734 0,
8735 "A1".to_string(),
8736 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
8737 (0, 0, 0).into(),
8738 CorticalAreaType::Custom(
8739 feagi_structures::genomic::cortical_area::CustomCorticalType::LeakyIntegrateFire,
8740 ),
8741 )
8742 .unwrap();
8743 let a2_area = CorticalArea::new(
8744 a2_id,
8745 0,
8746 "A2".to_string(),
8747 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
8748 (0, 0, 0).into(),
8749 CorticalAreaType::Custom(
8750 feagi_structures::genomic::cortical_area::CustomCorticalType::LeakyIntegrateFire,
8751 ),
8752 )
8753 .unwrap();
8754
8755 let mut m1_area = CorticalArea::new(
8756 m1_id,
8757 0,
8758 "M1".to_string(),
8759 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
8760 (0, 0, 0).into(),
8761 CorticalAreaType::Memory(MemoryCorticalType::Memory),
8762 )
8763 .unwrap();
8764 m1_area
8765 .properties
8766 .insert("is_mem_type".to_string(), serde_json::json!(true));
8767 m1_area
8768 .properties
8769 .insert("temporal_depth".to_string(), serde_json::json!(1));
8770
8771 let mut m2_area = CorticalArea::new(
8772 m2_id,
8773 0,
8774 "M2".to_string(),
8775 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
8776 (0, 0, 0).into(),
8777 CorticalAreaType::Memory(MemoryCorticalType::Memory),
8778 )
8779 .unwrap();
8780 m2_area
8781 .properties
8782 .insert("is_mem_type".to_string(), serde_json::json!(true));
8783 m2_area
8784 .properties
8785 .insert("temporal_depth".to_string(), serde_json::json!(1));
8786
8787 let a1_idx = manager.add_cortical_area(a1_area).unwrap();
8788 let a2_idx = manager.add_cortical_area(a2_area).unwrap();
8789 let m1_idx = manager.add_cortical_area(m1_area).unwrap();
8790 let m2_idx = manager.add_cortical_area(m2_area).unwrap();
8791
8792 manager
8793 .add_neuron(&a1_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8794 .unwrap();
8795 manager
8796 .add_neuron(&a2_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
8797 .unwrap();
8798
8799 let episodic_mapping = vec![serde_json::json!({
8800 "morphology_id": "episodic_memory",
8801 "morphology_scalar": 1,
8802 "postSynapticCurrent_multiplier": 1.0,
8803 })];
8804 manager
8805 .update_cortical_mapping(&a1_id, &m1_id, episodic_mapping.clone())
8806 .unwrap();
8807 manager
8808 .regenerate_synapses_for_mapping(&a1_id, &m1_id)
8809 .unwrap();
8810 manager
8811 .update_cortical_mapping(&a2_id, &m2_id, episodic_mapping)
8812 .unwrap();
8813 manager
8814 .regenerate_synapses_for_mapping(&a2_id, &m2_id)
8815 .unwrap();
8816
8817 let assoc_mapping = vec![serde_json::json!({
8818 "morphology_id": "associative_memory",
8819 "morphology_scalar": 1,
8820 "postSynapticCurrent_multiplier": 1.0,
8821 "plasticity_flag": true,
8822 "plasticity_constant": 1,
8823 "ltp_multiplier": 1,
8824 "ltd_multiplier": 1,
8825 "plasticity_window": 5,
8826 })];
8827 manager
8828 .update_cortical_mapping(&m1_id, &m2_id, assoc_mapping.clone())
8829 .unwrap();
8830 manager
8831 .regenerate_synapses_for_mapping(&m1_id, &m2_id)
8832 .unwrap();
8833 manager
8835 .update_cortical_mapping(&m2_id, &m1_id, assoc_mapping)
8836 .unwrap();
8837 manager
8838 .regenerate_synapses_for_mapping(&m2_id, &m1_id)
8839 .unwrap();
8840
8841 let upstream_m1 = manager.get_upstream_cortical_areas(&m1_id);
8842 let upstream_m2 = manager.get_upstream_cortical_areas(&m2_id);
8843 assert_eq!(
8844 upstream_m1.len(),
8845 2,
8846 "M1 should have A1 and M2 as upstreams once both directed associative edges exist"
8847 );
8848 assert_eq!(
8849 upstream_m2.len(),
8850 2,
8851 "M2 should have A2 and M1 as upstreams"
8852 );
8853
8854 manager.refresh_upstream_cortical_areas_from_mappings(&m1_id);
8855 manager.refresh_upstream_cortical_areas_from_mappings(&m2_id);
8856
8857 let upstream_m1 = manager.get_upstream_cortical_areas(&m1_id);
8858 let upstream_m2 = manager.get_upstream_cortical_areas(&m2_id);
8859 assert_eq!(upstream_m1.len(), 2, "M1 upstreams unchanged after refresh");
8860 assert_eq!(upstream_m2.len(), 2, "M2 upstreams unchanged after refresh");
8861 assert!(upstream_m1.contains(&a1_idx));
8862 assert!(upstream_m1.contains(&m2_idx));
8863 assert!(upstream_m2.contains(&a2_idx));
8864 assert!(upstream_m2.contains(&m1_idx));
8865
8866 {
8868 let mut npu_lock = dyn_npu.lock().unwrap();
8869 let injected_a1 = npu_lock.inject_sensory_xyzp_by_id(&a1_id, &[(0, 0, 0, 1.0)]);
8870 let injected_a2 = npu_lock.inject_sensory_xyzp_by_id(&a2_id, &[(0, 0, 0, 1.0)]);
8871 assert_eq!(injected_a1, 1, "Expected A1 injection to match one neuron");
8872 assert_eq!(injected_a2, 1, "Expected A2 injection to match one neuron");
8873 npu_lock.process_burst().expect("Burst processing failed");
8874 }
8875
8876 let upstream_m1 = manager.get_upstream_cortical_areas(&m1_id);
8877 let upstream_m2 = manager.get_upstream_cortical_areas(&m2_id);
8878 assert_eq!(
8879 upstream_m1.len(),
8880 2,
8881 "M1 should keep 2 upstreams after firing"
8882 );
8883 assert_eq!(
8884 upstream_m2.len(),
8885 2,
8886 "M2 should keep 2 upstreams after firing"
8887 );
8888
8889 let episodic_upstream_m1 = manager.get_episodic_memory_upstream_cortical_areas(&m1_id);
8890 let episodic_upstream_m2 = manager.get_episodic_memory_upstream_cortical_areas(&m2_id);
8891 assert_eq!(
8892 episodic_upstream_m1,
8893 vec![a1_idx],
8894 "Episodic upstream list for M1 should exclude associative-only memory source M2"
8895 );
8896 assert_eq!(
8897 episodic_upstream_m2,
8898 vec![a2_idx],
8899 "Episodic upstream list for M2 should exclude associative-only memory source M1"
8900 );
8901 }
8902
8903 #[test]
8904 fn test_memory_to_non_memory_requires_associative_morphology() {
8905 use crate::models::cortical_area::CorticalArea;
8906 use feagi_structures::genomic::cortical_area::{
8907 CorticalAreaDimensions, CorticalAreaType, CorticalID, IOCorticalAreaConfigurationFlag,
8908 MemoryCorticalType,
8909 };
8910
8911 let mut manager = ConnectomeManager::new_for_testing();
8912 let memory_id = CorticalID::try_from_bytes(b"mmem0001").unwrap();
8913 let destination_id = CorticalID::try_from_bytes(b"csrc0001").unwrap();
8914 let memory_area = CorticalArea::new(
8915 memory_id,
8916 0,
8917 "Memory Area".to_string(),
8918 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
8919 (0, 0, 0).into(),
8920 CorticalAreaType::Memory(MemoryCorticalType::Memory),
8921 )
8922 .unwrap();
8923 let destination_area = CorticalArea::new(
8924 destination_id,
8925 0,
8926 "Destination Area".to_string(),
8927 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
8928 (1, 0, 0).into(),
8929 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
8930 )
8931 .unwrap();
8932 manager.add_cortical_area(memory_area).unwrap();
8933 manager.add_cortical_area(destination_area).unwrap();
8934
8935 let invalid = manager.update_cortical_mapping(
8936 &memory_id,
8937 &destination_id,
8938 vec![serde_json::json!({"morphology_id": "episodic_memory"})],
8939 );
8940 assert!(matches!(invalid, Err(BduError::InvalidMorphology(_))));
8941
8942 manager
8943 .update_cortical_mapping(
8944 &memory_id,
8945 &destination_id,
8946 vec![serde_json::json!({"morphology_id": "associative_memory"})],
8947 )
8948 .unwrap();
8949 }
8950
8951 #[test]
8952 fn test_memory_twin_created_for_memory_mapping() {
8953 use crate::models::cortical_area::CorticalArea;
8954 use feagi_npu_burst_engine::backend::CPUBackend;
8955 use feagi_npu_burst_engine::TracingMutex;
8956 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
8957 use feagi_npu_runtime::StdRuntime;
8958 use feagi_structures::genomic::cortical_area::{
8959 CorticalAreaDimensions, CorticalAreaType, CorticalID, IOCorticalAreaConfigurationFlag,
8960 MemoryCorticalType,
8961 };
8962 use std::sync::Arc;
8963
8964 let runtime = StdRuntime;
8965 let backend = CPUBackend::new();
8966 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
8967 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
8968 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
8969 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
8970
8971 let src_id = CorticalID::try_from_bytes(b"csrc0001").unwrap();
8972 let dst_id = CorticalID::try_from_bytes(b"mmem0001").unwrap();
8973
8974 let src_area = CorticalArea::new(
8975 src_id,
8976 0,
8977 "Source Area".to_string(),
8978 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8979 (0, 0, 0).into(),
8980 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
8981 )
8982 .unwrap();
8983 let mut dst_area = CorticalArea::new(
8984 dst_id,
8985 0,
8986 "Memory Area".to_string(),
8987 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
8988 (0, 0, 0).into(),
8989 CorticalAreaType::Memory(MemoryCorticalType::Memory),
8990 )
8991 .unwrap();
8992 dst_area
8993 .properties
8994 .insert("is_mem_type".to_string(), serde_json::json!(true));
8995 dst_area
8996 .properties
8997 .insert("temporal_depth".to_string(), serde_json::json!(1));
8998
8999 manager.add_cortical_area(src_area).unwrap();
9000 manager.add_cortical_area(dst_area).unwrap();
9001
9002 let mapping_data = vec![serde_json::json!({
9003 "morphology_id": "episodic_memory",
9004 "morphology_scalar": 1,
9005 "postSynapticCurrent_multiplier": 1.0,
9006 })];
9007 manager
9008 .update_cortical_mapping(&src_id, &dst_id, mapping_data)
9009 .unwrap();
9010 manager
9011 .regenerate_synapses_for_mapping(&src_id, &dst_id)
9012 .unwrap();
9013
9014 let memory_area = manager.get_cortical_area(&dst_id).unwrap();
9015 let twin_map = memory_area
9016 .properties
9017 .get("memory_twin_areas")
9018 .and_then(|v| v.as_object())
9019 .expect("memory_twin_areas should be set");
9020 let twin_id_str = twin_map
9021 .get(&src_id.as_base_64())
9022 .and_then(|v| v.as_str())
9023 .expect("Missing twin entry for upstream area");
9024 let twin_id = CorticalID::try_from_base_64(twin_id_str).unwrap();
9025 let mapping = memory_area
9026 .properties
9027 .get("cortical_mapping_dst")
9028 .and_then(|v| v.as_object())
9029 .and_then(|map| map.get(&twin_id.as_base_64()))
9030 .and_then(|v| v.as_array())
9031 .expect("Missing memory replay mapping for twin area");
9032 let uses_replay = mapping.iter().any(|rule| {
9033 rule.get("morphology_id")
9034 .and_then(|v| v.as_str())
9035 .is_some_and(|id| id == "memory_replay")
9036 });
9037 assert!(uses_replay, "Expected memory_replay mapping for twin area");
9038
9039 let twin_area = manager.get_cortical_area(&twin_id).unwrap();
9040 assert!(matches!(
9041 twin_area.cortical_type,
9042 CorticalAreaType::Custom(_)
9043 ));
9044 assert_eq!(
9045 twin_area
9046 .properties
9047 .get("memory_twin_of")
9048 .and_then(|v| v.as_str()),
9049 Some(src_id.as_base_64().as_str())
9050 );
9051 assert_eq!(
9052 twin_area
9053 .properties
9054 .get("memory_twin_for")
9055 .and_then(|v| v.as_str()),
9056 Some(dst_id.as_base_64().as_str())
9057 );
9058 }
9059
9060 #[test]
9061 fn test_associative_memory_between_memory_areas_creates_synapses() {
9062 use crate::models::cortical_area::CorticalArea;
9063 use feagi_npu_burst_engine::backend::CPUBackend;
9064 use feagi_npu_burst_engine::TracingMutex;
9065 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
9066 use feagi_npu_runtime::StdRuntime;
9067 use feagi_structures::genomic::cortical_area::{
9068 CorticalAreaDimensions, CorticalAreaType, CorticalID, MemoryCorticalType,
9069 };
9070 use std::sync::Arc;
9071
9072 let runtime = StdRuntime;
9073 let backend = CPUBackend::new();
9074 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
9075 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
9076 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
9077 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
9078
9079 let m1_id = CorticalID::try_from_bytes(b"mmem0402").unwrap();
9080 let m2_id = CorticalID::try_from_bytes(b"mmem0403").unwrap();
9081
9082 let mut m1_area = CorticalArea::new(
9083 m1_id,
9084 0,
9085 "Memory M1".to_string(),
9086 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
9087 (0, 0, 0).into(),
9088 CorticalAreaType::Memory(MemoryCorticalType::Memory),
9089 )
9090 .unwrap();
9091 m1_area
9092 .properties
9093 .insert("is_mem_type".to_string(), serde_json::json!(true));
9094 m1_area
9095 .properties
9096 .insert("temporal_depth".to_string(), serde_json::json!(1));
9097
9098 let mut m2_area = CorticalArea::new(
9099 m2_id,
9100 0,
9101 "Memory M2".to_string(),
9102 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
9103 (0, 0, 0).into(),
9104 CorticalAreaType::Memory(MemoryCorticalType::Memory),
9105 )
9106 .unwrap();
9107 m2_area
9108 .properties
9109 .insert("is_mem_type".to_string(), serde_json::json!(true));
9110 m2_area
9111 .properties
9112 .insert("temporal_depth".to_string(), serde_json::json!(1));
9113
9114 manager.add_cortical_area(m1_area).unwrap();
9115 manager.add_cortical_area(m2_area).unwrap();
9116
9117 manager
9118 .add_neuron(&m1_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
9119 .unwrap();
9120 manager
9121 .add_neuron(&m2_id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
9122 .unwrap();
9123
9124 let mapping_data = vec![serde_json::json!({
9125 "morphology_id": "associative_memory",
9126 "morphology_scalar": 1,
9127 "postSynapticCurrent_multiplier": 1.0,
9128 "plasticity_flag": true,
9129 "plasticity_constant": 1,
9130 "ltp_multiplier": 1,
9131 "ltd_multiplier": 1,
9132 "plasticity_window": 5,
9133 })];
9134 manager
9135 .update_cortical_mapping(&m1_id, &m2_id, mapping_data)
9136 .unwrap();
9137 let created = manager
9138 .regenerate_synapses_for_mapping(&m1_id, &m2_id)
9139 .unwrap();
9140 assert!(
9141 created > 0,
9142 "Expected associative memory mapping between memory areas to create synapses"
9143 );
9144 let npu_guard = dyn_npu.lock().unwrap();
9145 let assoc_tagged =
9146 npu_guard.count_synapses_with_edge_flag_bits(SYNAPSE_EDGE_ASSOCIATIVE_MEMORY);
9147 assert!(
9148 assoc_tagged >= 1,
9149 "associative_memory connectome path should stamp SYNAPSE_EDGE_ASSOCIATIVE_MEMORY on created synapses"
9150 );
9151 }
9152
9153 #[test]
9154 fn test_memory_twin_repair_on_load_preserves_replay_mapping() {
9155 use crate::models::cortical_area::CorticalArea;
9156 use feagi_npu_burst_engine::backend::CPUBackend;
9157 use feagi_npu_burst_engine::TracingMutex;
9158 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
9159 use feagi_npu_runtime::StdRuntime;
9160 use feagi_structures::genomic::cortical_area::{
9161 CorticalAreaDimensions, CorticalAreaType, CorticalID, IOCorticalAreaConfigurationFlag,
9162 MemoryCorticalType,
9163 };
9164 use std::sync::Arc;
9165
9166 let runtime = StdRuntime;
9167 let backend = CPUBackend::new();
9168 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
9169 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
9170 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
9171 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
9172
9173 let src_id = CorticalID::try_from_bytes(b"csrc0002").unwrap();
9174 let mem_id = CorticalID::try_from_bytes(b"mmem0002").unwrap();
9175
9176 let src_area = CorticalArea::new(
9177 src_id,
9178 0,
9179 "Source Area".to_string(),
9180 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
9181 (0, 0, 0).into(),
9182 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
9183 )
9184 .unwrap();
9185 let mut mem_area = CorticalArea::new(
9186 mem_id,
9187 0,
9188 "Memory Area".to_string(),
9189 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
9190 (0, 0, 0).into(),
9191 CorticalAreaType::Memory(MemoryCorticalType::Memory),
9192 )
9193 .unwrap();
9194 mem_area
9195 .properties
9196 .insert("is_mem_type".to_string(), serde_json::json!(true));
9197 mem_area
9198 .properties
9199 .insert("temporal_depth".to_string(), serde_json::json!(1));
9200
9201 manager.add_cortical_area(src_area).unwrap();
9202 manager.add_cortical_area(mem_area).unwrap();
9203
9204 let twin_id = manager
9205 .build_memory_twin_id(&mem_id, &src_id)
9206 .expect("Failed to build twin id");
9207 let twin_area = CorticalArea::new(
9208 twin_id,
9209 0,
9210 "Source Area_twin".to_string(),
9211 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
9212 (0, 0, 0).into(),
9213 CorticalAreaType::Custom(
9214 feagi_structures::genomic::cortical_area::CustomCorticalType::LeakyIntegrateFire,
9215 ),
9216 )
9217 .unwrap();
9218 manager.add_cortical_area(twin_area).unwrap();
9219
9220 let repaired = manager
9221 .ensure_memory_twin_area(&mem_id, &src_id)
9222 .expect("Failed to repair twin");
9223 assert_eq!(repaired, twin_id);
9224
9225 let mem_area = manager.get_cortical_area(&mem_id).unwrap();
9226 let twin_map = mem_area
9227 .properties
9228 .get("memory_twin_areas")
9229 .and_then(|v| v.as_object())
9230 .expect("memory_twin_areas should be set");
9231 let twin_id_str = twin_map
9232 .get(&src_id.as_base_64())
9233 .and_then(|v| v.as_str())
9234 .expect("Missing twin entry for upstream area");
9235 assert_eq!(twin_id_str, twin_id.as_base_64());
9236
9237 let replay_map = mem_area
9238 .properties
9239 .get("cortical_mapping_dst")
9240 .and_then(|v| v.as_object())
9241 .and_then(|map| map.get(&twin_id.as_base_64()))
9242 .and_then(|v| v.as_array())
9243 .expect("Missing memory replay mapping for twin area");
9244 let uses_replay = replay_map.iter().any(|rule| {
9245 rule.get("morphology_id")
9246 .and_then(|v| v.as_str())
9247 .is_some_and(|id| id == "memory_replay")
9248 });
9249 assert!(uses_replay, "Expected memory_replay mapping for twin area");
9250
9251 let twin_area = manager.get_cortical_area(&twin_id).unwrap();
9252 assert_eq!(
9253 twin_area
9254 .properties
9255 .get("memory_twin_of")
9256 .and_then(|v| v.as_str()),
9257 Some(src_id.as_base_64().as_str())
9258 );
9259 assert_eq!(
9260 twin_area
9261 .properties
9262 .get("memory_twin_for")
9263 .and_then(|v| v.as_str()),
9264 Some(mem_id.as_base_64().as_str())
9265 );
9266 }
9267
9268 #[test]
9269 fn test_rebuild_memory_twin_index_from_replay_without_hash_map() {
9270 use crate::models::cortical_area::CorticalArea;
9271 use feagi_npu_burst_engine::backend::CPUBackend;
9272 use feagi_npu_burst_engine::TracingMutex;
9273 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
9274 use feagi_npu_runtime::StdRuntime;
9275 use feagi_structures::genomic::cortical_area::{
9276 CorticalAreaDimensions, CorticalAreaType, CorticalID, CustomCorticalType,
9277 IOCorticalAreaConfigurationFlag, MemoryCorticalType,
9278 };
9279 use std::sync::Arc;
9280
9281 let runtime = StdRuntime;
9282 let backend = CPUBackend::new();
9283 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
9284 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
9285 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
9286 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
9287
9288 let src_id = CorticalID::try_from_bytes(b"csrc0003").unwrap();
9289 let mem_id = CorticalID::try_from_bytes(b"mmem0003").unwrap();
9290 let twin_id = CorticalID::try_from_bytes(b"ctwin003").unwrap();
9291
9292 let mut src_area = CorticalArea::new(
9293 src_id,
9294 0,
9295 "Source Area".to_string(),
9296 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
9297 (0, 0, 0).into(),
9298 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
9299 )
9300 .unwrap();
9301 src_area.properties.insert(
9302 "cortical_mapping_dst".to_string(),
9303 serde_json::json!({
9304 mem_id.as_base_64(): [{
9305 "morphology_id": "episodic_memory",
9306 "morphology_scalar": [1, 1, 1],
9307 "postSynapticCurrent_multiplier": 1
9308 }]
9309 }),
9310 );
9311
9312 let mut mem_area = CorticalArea::new(
9313 mem_id,
9314 0,
9315 "Memory Area".to_string(),
9316 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
9317 (0, 0, 0).into(),
9318 CorticalAreaType::Memory(MemoryCorticalType::Memory),
9319 )
9320 .unwrap();
9321 mem_area
9322 .properties
9323 .insert("is_mem_type".to_string(), serde_json::json!(true));
9324 mem_area
9325 .properties
9326 .insert("temporal_depth".to_string(), serde_json::json!(1));
9327 mem_area.properties.insert(
9328 "cortical_mapping_dst".to_string(),
9329 serde_json::json!({
9330 twin_id.as_base_64(): [{
9331 "morphology_id": "memory_replay",
9332 "morphology_scalar": [1, 1, 1],
9333 "postSynapticCurrent_multiplier": 1,
9334 "plasticity_flag": false
9335 }]
9336 }),
9337 );
9338
9339 let mut twin_area = CorticalArea::new(
9340 twin_id,
9341 0,
9342 "Source Area_twin".to_string(),
9343 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
9344 (0, 0, 0).into(),
9345 CorticalAreaType::Custom(CustomCorticalType::LeakyIntegrateFire),
9346 )
9347 .unwrap();
9348 twin_area.properties.insert(
9349 "memory_twin_of".to_string(),
9350 serde_json::json!(src_id.as_base_64()),
9351 );
9352
9353 manager.add_cortical_area(src_area).unwrap();
9354 manager.add_cortical_area(mem_area).unwrap();
9355 manager.add_cortical_area(twin_area).unwrap();
9356
9357 let diagnostic_before = manager
9358 .diagnose_memory_twin_for_mapping(&src_id, &mem_id)
9359 .expect("diagnostic before rebuild");
9360 assert!(diagnostic_before.twin_expected);
9361 assert!(!diagnostic_before.twin_present);
9362
9363 manager
9364 .rebind_npu_runtime_after_connectome_apply()
9365 .expect("rebind should rebuild twin index");
9366
9367 let diagnostic_after = manager
9368 .diagnose_memory_twin_for_mapping(&src_id, &mem_id)
9369 .expect("diagnostic after rebuild");
9370 assert!(diagnostic_after.twin_present);
9371 assert_eq!(
9372 diagnostic_after.twin_cortical_area.as_deref(),
9373 Some(twin_id.as_base_64().as_str())
9374 );
9375
9376 let mem_area = manager.get_cortical_area(&mem_id).unwrap();
9377 let twin_map = mem_area
9378 .properties
9379 .get("memory_twin_areas")
9380 .and_then(|v| v.as_object())
9381 .expect("memory_twin_areas should be restored");
9382 assert_eq!(
9383 twin_map.get(&src_id.as_base_64()).and_then(|v| v.as_str()),
9384 Some(twin_id.as_base_64().as_str())
9385 );
9386
9387 let twin_area = manager.get_cortical_area(&twin_id).unwrap();
9388 assert_eq!(
9389 twin_area
9390 .properties
9391 .get("memory_twin_for")
9392 .and_then(|v| v.as_str()),
9393 Some(mem_id.as_base_64().as_str())
9394 );
9395
9396 let memory_idx = manager.get_cortical_idx(&mem_id).expect("memory idx");
9397 let upstream_idx = manager.get_cortical_idx(&src_id).expect("src idx");
9398 let twin_idx = manager.get_cortical_idx(&twin_id).expect("twin idx");
9399 let npu = dyn_npu.lock().unwrap();
9400 let (bound_twin, _) = npu
9401 .get_memory_twin_mapping(memory_idx, upstream_idx)
9402 .expect("NPU twin route restored");
9403 assert_eq!(bound_twin, twin_idx);
9404 }
9405
9406 #[test]
9407 fn test_episodic_upstream_reads_mapping_when_cache_empty() {
9408 use crate::models::cortical_area::CorticalArea;
9409 use feagi_structures::genomic::cortical_area::{
9410 CorticalAreaDimensions, CorticalAreaType, CorticalID, CustomCorticalType,
9411 MemoryCorticalType,
9412 };
9413
9414 let mut manager = ConnectomeManager::new_for_testing();
9415 let src_id = CorticalID::try_from_bytes(b"csrc0004").unwrap();
9416 let mem_id = CorticalID::try_from_bytes(b"mmem0004").unwrap();
9417
9418 let mut src_area = CorticalArea::new(
9419 src_id,
9420 0,
9421 "pattern in".to_string(),
9422 CorticalAreaDimensions::new(10, 1, 1).unwrap(),
9423 (0, 0, 0).into(),
9424 CorticalAreaType::Custom(CustomCorticalType::LeakyIntegrateFire),
9425 )
9426 .unwrap();
9427 src_area.properties.insert(
9428 "cortical_mapping_dst".to_string(),
9429 serde_json::json!({
9430 mem_id.as_base_64(): [{
9431 "morphology_id": "episodic_memory",
9432 "postSynapticCurrent_multiplier": 1
9433 }]
9434 }),
9435 );
9436 let mut mem_area = CorticalArea::new(
9437 mem_id,
9438 0,
9439 "pattern mem".to_string(),
9440 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
9441 (1, 0, 0).into(),
9442 CorticalAreaType::Memory(MemoryCorticalType::Memory),
9443 )
9444 .unwrap();
9445 mem_area
9446 .properties
9447 .insert("is_mem_type".to_string(), serde_json::json!(true));
9448 mem_area
9449 .properties
9450 .insert("upstream_cortical_areas".to_string(), serde_json::json!([]));
9451
9452 let src_idx = manager.add_cortical_area(src_area).unwrap();
9453 manager.add_cortical_area(mem_area).unwrap();
9454
9455 assert!(
9456 manager.get_upstream_cortical_areas(&mem_id).is_empty(),
9457 "cache stays empty until refresh"
9458 );
9459 assert_eq!(
9460 manager.get_episodic_memory_upstream_cortical_areas(&mem_id),
9461 vec![src_idx],
9462 "episodic upstream must come from the mapping rule, not the cache"
9463 );
9464
9465 manager.refresh_all_upstream_cortical_areas_from_mappings();
9466 assert_eq!(manager.get_upstream_cortical_areas(&mem_id), vec![src_idx]);
9467 }
9468
9469 #[test]
9470 fn test_memory_twin_inherits_upstream_parent_region() {
9471 use crate::models::cortical_area::CorticalArea;
9472 use crate::models::BrainRegion;
9473 use feagi_npu_burst_engine::backend::CPUBackend;
9474 use feagi_npu_burst_engine::TracingMutex;
9475 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
9476 use feagi_npu_runtime::StdRuntime;
9477 use feagi_structures::genomic::brain_regions::{RegionID, RegionType};
9478 use feagi_structures::genomic::cortical_area::{
9479 CorticalAreaDimensions, CorticalAreaType, CorticalID, IOCorticalAreaConfigurationFlag,
9480 MemoryCorticalType,
9481 };
9482 use std::sync::Arc;
9483
9484 let runtime = StdRuntime;
9485 let backend = CPUBackend::new();
9486 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
9487 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
9488 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
9489 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
9490 let src_region_id = RegionID::new();
9491 let src_region_id_str = src_region_id.to_string();
9492 manager
9493 .add_brain_region(
9494 BrainRegion::new(
9495 src_region_id,
9496 "Src Region".to_string(),
9497 RegionType::Undefined,
9498 )
9499 .unwrap(),
9500 None,
9501 )
9502 .unwrap();
9503 let mem_region_id = RegionID::new();
9504 let mem_region_id_str = mem_region_id.to_string();
9505 manager
9506 .add_brain_region(
9507 BrainRegion::new(
9508 mem_region_id,
9509 "Mem Region".to_string(),
9510 RegionType::Undefined,
9511 )
9512 .unwrap(),
9513 None,
9514 )
9515 .unwrap();
9516
9517 let src_id = CorticalID::try_from_bytes(b"csrc1001").unwrap();
9518 let mem_id = CorticalID::try_from_bytes(b"mmem1001").unwrap();
9519
9520 let mut src_area = CorticalArea::new(
9521 src_id,
9522 0,
9523 "Origin".to_string(),
9524 CorticalAreaDimensions::new(4, 4, 1).unwrap(),
9525 (10, 20, 0).into(),
9526 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
9527 )
9528 .unwrap();
9529 src_area.properties.insert(
9530 "parent_region_id".to_string(),
9531 serde_json::json!(src_region_id_str.clone()),
9532 );
9533
9534 let mut mem_area = CorticalArea::new(
9535 mem_id,
9536 0,
9537 "Memory".to_string(),
9538 CorticalAreaDimensions::new(2, 2, 1).unwrap(),
9539 (200, 300, 0).into(),
9540 CorticalAreaType::Memory(MemoryCorticalType::Memory),
9541 )
9542 .unwrap();
9543 mem_area
9544 .properties
9545 .insert("is_mem_type".to_string(), serde_json::json!(true));
9546 mem_area
9547 .properties
9548 .insert("temporal_depth".to_string(), serde_json::json!(1));
9549 mem_area.properties.insert(
9550 "parent_region_id".to_string(),
9551 serde_json::json!(mem_region_id_str.clone()),
9552 );
9553
9554 manager.add_cortical_area(src_area).unwrap();
9555 manager.add_cortical_area(mem_area).unwrap();
9556
9557 let mapping_data = vec![serde_json::json!({
9558 "morphology_id": "episodic_memory",
9559 "morphology_scalar": 1,
9560 "postSynapticCurrent_multiplier": 1.0,
9561 })];
9562 manager
9563 .update_cortical_mapping(&src_id, &mem_id, mapping_data)
9564 .unwrap();
9565 manager
9566 .regenerate_synapses_for_mapping(&src_id, &mem_id)
9567 .unwrap();
9568
9569 let memory_area = manager.get_cortical_area(&mem_id).unwrap();
9570 let twin_map = memory_area
9571 .properties
9572 .get("memory_twin_areas")
9573 .and_then(|v| v.as_object())
9574 .expect("memory_twin_areas should be set");
9575 let twin_id = CorticalID::try_from_base_64(
9576 twin_map
9577 .get(&src_id.as_base_64())
9578 .and_then(|v| v.as_str())
9579 .expect("missing twin for source"),
9580 )
9581 .unwrap();
9582 let twin_area = manager.get_cortical_area(&twin_id).unwrap();
9583
9584 assert_eq!(
9585 twin_area
9586 .properties
9587 .get("parent_region_id")
9588 .and_then(|v| v.as_str()),
9589 Some(src_region_id_str.as_str()),
9590 "Twin should inherit upstream/source parent region"
9591 );
9592 assert_ne!(
9593 twin_area
9594 .properties
9595 .get("parent_region_id")
9596 .and_then(|v| v.as_str()),
9597 Some(mem_region_id_str.as_str()),
9598 "Twin must not inherit memory area's parent region"
9599 );
9600 }
9601
9602 #[test]
9603 fn test_memory_twin_diagnostic_explains_memory_upstream_blocker() {
9604 use crate::models::cortical_area::CorticalArea;
9605 use feagi_npu_burst_engine::backend::CPUBackend;
9606 use feagi_npu_burst_engine::TracingMutex;
9607 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
9608 use feagi_npu_runtime::StdRuntime;
9609 use feagi_structures::genomic::cortical_area::{
9610 CorticalAreaDimensions, CorticalAreaType, CorticalID, MemoryCorticalType,
9611 };
9612 use std::sync::Arc;
9613
9614 let runtime = StdRuntime;
9615 let backend = CPUBackend::new();
9616 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("Failed to create NPU");
9617 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
9618 let mut manager = ConnectomeManager::new_for_testing_with_npu(dyn_npu.clone());
9619 feagi_evolutionary::templates::add_core_morphologies(&mut manager.morphology_registry);
9620
9621 let m1_id = CorticalID::try_from_bytes(b"mmem2001").unwrap();
9622 let m2_id = CorticalID::try_from_bytes(b"mmem2002").unwrap();
9623
9624 let mut m1_area = CorticalArea::new(
9625 m1_id,
9626 0,
9627 "Memory A".to_string(),
9628 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
9629 (0, 0, 0).into(),
9630 CorticalAreaType::Memory(MemoryCorticalType::Memory),
9631 )
9632 .unwrap();
9633 m1_area
9634 .properties
9635 .insert("is_mem_type".to_string(), serde_json::json!(true));
9636 m1_area
9637 .properties
9638 .insert("temporal_depth".to_string(), serde_json::json!(1));
9639
9640 let mut m2_area = CorticalArea::new(
9641 m2_id,
9642 0,
9643 "Memory B".to_string(),
9644 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
9645 (0, 0, 0).into(),
9646 CorticalAreaType::Memory(MemoryCorticalType::Memory),
9647 )
9648 .unwrap();
9649 m2_area
9650 .properties
9651 .insert("is_mem_type".to_string(), serde_json::json!(true));
9652 m2_area
9653 .properties
9654 .insert("temporal_depth".to_string(), serde_json::json!(1));
9655
9656 manager.add_cortical_area(m1_area).unwrap();
9657 manager.add_cortical_area(m2_area).unwrap();
9658
9659 let mapping_data = vec![serde_json::json!({
9660 "morphology_id": "episodic_memory",
9661 "morphology_scalar": 1,
9662 "postSynapticCurrent_multiplier": 1.0,
9663 })];
9664 manager
9665 .update_cortical_mapping(&m1_id, &m2_id, mapping_data)
9666 .unwrap();
9667 manager
9668 .regenerate_synapses_for_mapping(&m1_id, &m2_id)
9669 .unwrap();
9670
9671 let diagnostic = manager
9672 .diagnose_memory_twin_for_mapping(&m1_id, &m2_id)
9673 .expect("diagnostic should succeed");
9674 assert!(diagnostic.mapping_exists);
9675 assert_eq!(diagnostic.episodic_rule_count, 1);
9676 assert!(!diagnostic.twin_expected);
9677 assert!(!diagnostic.twin_present);
9678 assert_eq!(
9679 diagnostic.reason.as_deref(),
9680 Some("upstream_is_memory_area_twin_not_supported")
9681 );
9682 }
9683
9684 fn build_max_weight_test_manager() -> (
9689 ConnectomeManager,
9690 CorticalID,
9691 CorticalID,
9692 CorticalID,
9693 CorticalID,
9694 ) {
9695 use feagi_npu_burst_engine::backend::CPUBackend;
9696 use feagi_npu_burst_engine::TracingMutex;
9697 use feagi_npu_burst_engine::{DynamicNPU, RustNPU};
9698 use feagi_npu_runtime::StdRuntime;
9699 use feagi_structures::genomic::cortical_area::{
9700 CorticalAreaType, IOCorticalAreaConfigurationFlag,
9701 };
9702
9703 let runtime = StdRuntime;
9704 let backend = CPUBackend::new();
9705 let npu = RustNPU::new(runtime, backend, 10_000, 10_000, 10).expect("npu");
9706 let dyn_npu = Arc::new(TracingMutex::new(DynamicNPU::F32(npu), "TestNPU"));
9707 let mut mgr = ConnectomeManager::new_for_testing_with_npu(dyn_npu);
9708 feagi_evolutionary::templates::add_core_morphologies(&mut mgr.morphology_registry);
9712
9713 let src = CorticalID::try_from_bytes(b"cstmwsrc").unwrap();
9714 let dst = CorticalID::try_from_bytes(b"cstmwdst").unwrap();
9715 let reward = CorticalID::try_from_bytes(b"cstmwrwd").unwrap();
9716 let pain = CorticalID::try_from_bytes(b"cstmwpan").unwrap();
9717
9718 for (id, label, kind) in [
9719 (
9720 src,
9721 "src",
9722 CorticalAreaType::BrainInput(IOCorticalAreaConfigurationFlag::Boolean),
9723 ),
9724 (
9725 dst,
9726 "dst",
9727 CorticalAreaType::BrainOutput(IOCorticalAreaConfigurationFlag::Boolean),
9728 ),
9729 (
9730 reward,
9731 "reward",
9732 CorticalAreaType::Custom(
9733 feagi_structures::genomic::cortical_area::CustomCorticalType::LeakyIntegrateFire,
9734 ),
9735 ),
9736 (
9737 pain,
9738 "pain",
9739 CorticalAreaType::Custom(
9740 feagi_structures::genomic::cortical_area::CustomCorticalType::LeakyIntegrateFire,
9741 ),
9742 ),
9743 ] {
9744 mgr.add_cortical_area(
9745 CorticalArea::new(
9746 id,
9747 0,
9748 label.to_string(),
9749 CorticalAreaDimensions::new(1, 1, 1).unwrap(),
9750 (0, 0, 0).into(),
9751 kind,
9752 )
9753 .unwrap(),
9754 )
9755 .unwrap();
9756 mgr.add_neuron(&id, 0, 0, 0, 1.0, 0.0, 0.1, 0.0, 0, 1, 1.0, 3, 1, false)
9757 .unwrap();
9758 }
9759 (mgr, src, dst, reward, pain)
9760 }
9761
9762 fn write_and_regenerate_mapping(
9767 mgr: &mut ConnectomeManager,
9768 src: &CorticalID,
9769 dst: &CorticalID,
9770 rule: serde_json::Value,
9771 ) -> BduResult<usize> {
9772 mgr.update_cortical_mapping(src, dst, vec![rule])?;
9773 mgr.regenerate_synapses_for_mapping(src, dst)
9774 }
9775
9776 #[test]
9780 fn test_max_weight_finite_positive_accepted_on_rstdp_rule() {
9781 let (mut mgr, src, dst, reward, pain) = build_max_weight_test_manager();
9782
9783 let result = write_and_regenerate_mapping(
9784 &mut mgr,
9785 &src,
9786 &dst,
9787 serde_json::json!({
9788 "morphology_id": "block_to_block",
9789 "morphology_scalar": [1, 1, 1],
9790 "postSynapticCurrent_multiplier": 1,
9791 "plasticity_flag": true,
9792 "plasticity_constant": 1,
9793 "ltp_multiplier": 1,
9794 "ltd_multiplier": 1,
9795 "plasticity_window": 10,
9796 "synaptic_delay_bursts": 1,
9797 "plasticity_mode": "rstdp",
9798 "eligibility_decay_bursts": 50,
9799 "reward_source_area": reward.as_base_64(),
9800 "punishment_source_area": pain.as_base_64(),
9801 "max_weight": 12.5,
9802 }),
9803 );
9804 assert!(
9805 result.is_ok(),
9806 "valid max_weight=12.5 must be accepted, got {:?}",
9807 result
9808 );
9809 }
9810
9811 #[test]
9816 fn test_max_weight_invalid_values_rejected() {
9817 for bad in &[
9818 serde_json::json!(0.0),
9819 serde_json::json!(-1.5),
9820 serde_json::json!("not_a_number"),
9821 ] {
9822 let (mut mgr, src, dst, reward, pain) = build_max_weight_test_manager();
9823 let result = write_and_regenerate_mapping(
9824 &mut mgr,
9825 &src,
9826 &dst,
9827 serde_json::json!({
9828 "morphology_id": "block_to_block",
9829 "morphology_scalar": [1, 1, 1],
9830 "postSynapticCurrent_multiplier": 1,
9831 "plasticity_flag": true,
9832 "plasticity_constant": 1,
9833 "ltp_multiplier": 1,
9834 "ltd_multiplier": 1,
9835 "plasticity_window": 10,
9836 "synaptic_delay_bursts": 1,
9837 "plasticity_mode": "rstdp",
9838 "eligibility_decay_bursts": 50,
9839 "reward_source_area": reward.as_base_64(),
9840 "punishment_source_area": pain.as_base_64(),
9841 "max_weight": bad,
9842 }),
9843 );
9844 assert!(
9845 result.is_err(),
9846 "max_weight={:?} should have been rejected, got {:?}",
9847 bad,
9848 result
9849 );
9850 }
9851 }
9852
9853 #[test]
9856 fn test_ltp_ltd_multiplier_out_of_i8_range_rejected() {
9857 let (mut mgr, src, dst, reward, pain) = build_max_weight_test_manager();
9858 let result = write_and_regenerate_mapping(
9859 &mut mgr,
9860 &src,
9861 &dst,
9862 serde_json::json!({
9863 "morphology_id": "block_to_block",
9864 "morphology_scalar": [1, 1, 1],
9865 "postSynapticCurrent_multiplier": 1,
9866 "plasticity_flag": true,
9867 "plasticity_constant": 1,
9868 "ltp_multiplier": 200,
9869 "ltd_multiplier": 1,
9870 "plasticity_window": 10,
9871 "synaptic_delay_bursts": 1,
9872 "plasticity_mode": "rstdp",
9873 "eligibility_decay_bursts": 50,
9874 "reward_source_area": reward.as_base_64(),
9875 "punishment_source_area": pain.as_base_64(),
9876 }),
9877 );
9878 assert!(
9879 result.is_err(),
9880 "ltp_multiplier=200 must be rejected (i8 range); got {:?}",
9881 result
9882 );
9883 }
9884
9885 #[test]
9888 fn test_max_weight_rejected_when_plasticity_off() {
9889 let (mut mgr, src, dst, _reward, _pain) = build_max_weight_test_manager();
9890
9891 let result = write_and_regenerate_mapping(
9892 &mut mgr,
9893 &src,
9894 &dst,
9895 serde_json::json!({
9896 "morphology_id": "block_to_block",
9897 "morphology_scalar": [1, 1, 1],
9898 "postSynapticCurrent_multiplier": 1,
9899 "plasticity_flag": true,
9904 "plasticity_constant": 0,
9905 "ltp_multiplier": 0,
9906 "ltd_multiplier": 0,
9907 "plasticity_window": 0,
9908 "synaptic_delay_bursts": 1,
9909 "plasticity_mode": "off",
9910 "max_weight": 10.0,
9911 }),
9912 );
9913 assert!(
9914 result.is_err(),
9915 "max_weight on off-mode rule must be rejected; got {:?}",
9916 result
9917 );
9918 }
9919
9920 #[test]
9921 fn test_plasticity_eta_rejected_when_plasticity_off() {
9922 let (mut mgr, src, dst, _reward, _pain) = build_max_weight_test_manager();
9923
9924 let result = write_and_regenerate_mapping(
9925 &mut mgr,
9926 &src,
9927 &dst,
9928 serde_json::json!({
9929 "morphology_id": "block_to_block",
9930 "morphology_scalar": [1, 1, 1],
9931 "postSynapticCurrent_multiplier": 1,
9932 "plasticity_flag": true,
9933 "plasticity_constant": 0,
9934 "ltp_multiplier": 0,
9935 "ltd_multiplier": 0,
9936 "plasticity_window": 0,
9937 "synaptic_delay_bursts": 1,
9938 "plasticity_mode": "off",
9939 "plasticity_eta": 0.5,
9940 }),
9941 );
9942 assert!(
9943 result.is_err(),
9944 "plasticity_eta on off-mode rule must be rejected; got {:?}",
9945 result
9946 );
9947 }
9948
9949 #[test]
9950 fn test_plasticity_eta_non_positive_rejected() {
9951 let (mut mgr, src, dst, reward, pain) = build_max_weight_test_manager();
9952
9953 let result = write_and_regenerate_mapping(
9954 &mut mgr,
9955 &src,
9956 &dst,
9957 serde_json::json!({
9958 "morphology_id": "block_to_block",
9959 "morphology_scalar": [1, 1, 1],
9960 "postSynapticCurrent_multiplier": 1,
9961 "plasticity_flag": true,
9962 "plasticity_constant": 1,
9963 "ltp_multiplier": 1,
9964 "ltd_multiplier": 1,
9965 "plasticity_window": 10,
9966 "synaptic_delay_bursts": 1,
9967 "plasticity_mode": "rstdp",
9968 "eligibility_decay_bursts": 50,
9969 "reward_source_area": reward.as_base_64(),
9970 "punishment_source_area": pain.as_base_64(),
9971 "plasticity_eta": 0.0,
9972 }),
9973 );
9974 assert!(
9975 result.is_err(),
9976 "plasticity_eta=0 must be rejected; got {:?}",
9977 result
9978 );
9979 }
9980}