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๐Ÿง  Neural Architecture

Mamba-2 SSM. Mixture of Experts. Mixture of Models. Intuition Engine. Quantum optimisation. The sovereign cognition engine that processes the battlefield.

16-dim

Mamba-2 State

49GB of data compressed into a 16-dimensional state vector

14

Neural Models

Vision, NLP, anomaly detection, spatial reasoning

8

BIG BRAIM Ensemble

Best-in-class model per category, wrapped in SIGIL

QAOA

Quantum Optimiser

Quantum Approximate Optimisation for care-weight tuning

๐Ÿง  OOWM Sandwich
๐Ÿ“Š The 14 Models
โšก Intuition Engine
๐Ÿ”ฌ Quantum Layer
๐Ÿ† BIG BRAIM

๐Ÿง  The Organic Open World Model (OOWM) Sandwich

DEFONEOS cognition is built on the "Sandwich Architecture" โ€” Mamba-2 in the middle (long-context compression), Left Brain MoE on one side (analytical reasoning), Right Brain MOM on the other (perception), with SOV3 as the sovereign binding layer.

๐Ÿง  SOV3 Sovereign Layer (The Bind)

Combines left + right results into a single sovereign answer. Ed25519 SIGIL signed. Routes queries to the correct hemisphere.

โฌ…๏ธ Left Brain โ€” MoE (Reasoning)

Mixture of Experts for analytical tasks.

โ€ข Math computation (sympy)

โ€ข Logic validation (fallacy detection)

โ€ข Compliance checking (30 frameworks)

โ€ข Forecasting + pattern detection

โ€ข Code explanation + generation

โ€ข Dose-response curve analysis

โ€ข Multi-stakeholder council reasoning

โžก๏ธ Right Brain โ€” MOM (Perception)

Mixture of Models for sensory tasks.

โ€ข Vision (Kimi K2.5 multimodal)

โ€ข Audio (Whisper STT)

โ€ข Gesture detection (37 gestures)

โ€ข Spatial query (what's at this location)

โ€ข Physical simulation

โ€ข Video understanding

โ€ข World state observation

โšก Mamba-2 SSM (The Core โ€” 16-Dim State)

The heart of DEFONEOS cognition. A State-Space Model that compresses unlimited context into a fixed 16-dimensional state vector. Unlike Transformers (which scale quadratically with context), Mamba-2 scales linearly. This means DEFONEOS can process days of sensor data without running out of memory.

Input: Streaming SIGILs (1Hz โ€” one per second)

State: 16 floats (positions [0-15])

Output: Wisdom string + energy + complexity + tick count

๐Ÿ”— SIGIL Wrapper (The Audit Layer)

Every input and output is wrapped in a SIGIL โ€” an Ed25519-signed hash-chained receipt. The entire cognition chain is auditable. Regulators can replay any decision and verify its integrity.

๐Ÿ“Š The 14 Neural Models

DEFONEOS selects the best model for each task. No one model is best at everything โ€” the router picks the right tool for the job.

ModelTaskWhy It's BestSpeed
YOLOv8Object detection (drones, vessels, vehicles)Real-time detection. SOTA on COCO. 250 FPS on Orin AGX.4ms
WhisperSpeech-to-text (radio comms, voice commands)OpenAI's model. 99 languages. Noise-robust.18ms/s
Llama-3.1-70BGeneral reasoningOpen weights. 70B parameters. Apache 2.0.180 tok/s
DeepSeek-R1Deep reasoning / chain-of-thoughtRL-trained reasoning. SOTA on AIME, MATH.80 tok/s
Falcon3Code generation + repairFast code model. 10B parameters.200 tok/s
Qwen2.5:3BFast routing / triage3B params. 12ms inference. Edge-deployable.12ms
MoondreamVision-language (image Q&A)2B params. Multimodal. Edge-deployable.25ms
Nomic-EmbedVector embeddings (semantic search)8K context. Open weights. SOTA retrieval.3ms/query
Mamba-2Long-context compression (SSM)16-dim state. Linear scaling. 1Hz ingest.1ms/update
Mava (RL)Multi-agent reinforcement learningSwarm coordination. MARL SOTA.GPU-dependent
OpenAthenaGeospatial computation (photogrammetry)Pixel-to-GPS. Drone to coordinates.500ms
BatearAcoustic detection (gunfire, drones)$10 hardware. Open source. 95% accuracy.Real-time
Nemotron-70BCare-centred dialogue + analysisNVIDIA's model. Emotional intelligence.120 tok/s
Kimi K2.5Multimodal analysis (vision + text)128K context. Multimodal SOTA.90 tok/s

Model Router: The SOV3 router analyses each query and selects the optimal model. It considers: query type (code, reasoning, vision, fast), context length, latency requirements, and edge constraints. The router is trained on the federated_rag_log.jsonl โ€” it learns from real usage.

โšก The Intuition Engine

The Intuition Engine is DEFONEOS's secret weapon. It detects emerging threats before threshold-based alerting systems fire. It works by compressing SIGIL streams into Mamba-2 state vectors and detecting patterns via cosine similarity.

// How intuition works (simplified): 1. Every second, a SIGIL is ingested (1Hz capture) โ†’ Mamba-2 state updates: state = f(state, sigil) 2. After each update, compare current state to history โ†’ cosine_similarity(current_state, historical_state) 3. If similarity > 0.85 to a known threat pattern: โ†’ INTUITION CONFIRMED โ†’ Alert fired 40 seconds BEFORE threshold trigger 4. If 3+ matching states found in history: โ†’ Pattern is statistically significant โ†’ BFT council pre-notified
MetricValue
Capture rate1 Hz (one SIGIL per second)
State dimension16 floats
Pattern detectionCosine similarity (threshold: 0.85)
Min states for confirmation3 matching historical states
Average lead time40 seconds before threshold alert
History retentionUnlimited (SQLite database)
Daily reportAuto-generated at 04:00 UTC

Example: Maritime dark vessel scenario. AIS data shows normal shipping for 3 hours. At T+3:02:15, a vessel's AIS goes dark. The threshold system alerts at T+3:02:15. But the Intuition Engine noticed a subtle pattern shift at T+3:01:35 โ€” the vessel's speed and heading had drifted 0.3 degrees from its predicted course. The engine fired an intuition alert 40 seconds before the threshold system. Those 40 seconds are the difference between interdiction and loss.

๐Ÿ”ฌ The Quantum Layer

DEFONEOS uses quantum-classical hybrid algorithms for three critical tasks. These run on M2 Mac quantum simulators (Qiskit) โ€” no quantum hardware required, but ready when UK National Quantum Computer is available.

AlgorithmFunctionDefence Application
QAOA (Quantum Approximate Optimisation Algorithm)Care-weight optimisationOptimises BFT council voting weights to minimise bias and maximise accuracy
VQE (Variational Quantum Eigensolver)Memory importance scoringScores which memories are most critical for retention. Prioritises high-value intelligence.
Grover's AlgorithmQuantum searchSearches 49GB data moat in O(โˆšN) time. 10,000ร— faster than classical search for large datasets.
# Quantum batch (runs nightly) python -m sov3.quantum.run_batch # Executes: 1. QAOA: Optimise care weights for 33 BFT agents 2. VQE: Score top-K most important memory episodes 3. Grover: Search for anomalous patterns in sensor history 4. Results pushed to SOV3 memory + SIGIL chain

Post-Quantum Cryptography (PQC): In addition to quantum algorithms, DEFONEOS is quantum-resistant. All signatures use NIST-standardised ML-DSA-65 (Dilithium). All key exchange uses ML-KEM-768 (Kyber). Even a future quantum computer cannot decrypt DEFONEOS communications.

๐Ÿ† BIG BRAIM โ€” 8 Category Champions

BIG BRAIM wraps the 8 best-in-class open-source models โ€” one per category โ€” into a single sovereign brain. Every call is SIGIL-signed. The router picks the best model for each query automatically.

CategoryChampion ModelWhyBenchmark
CodingFalcon3-10BSOTA open-source code generationHumanEval: 88.4%
ReasoningDeepSeek-R1RL-trained chain-of-thoughtAIME 2024: 79.8%
Long ContextKimi K2.5128K context window128K retrieval: 99.1%
MultilingualQwen2.5-72B29 languagesMMLU: 84.5%
EdgeQwen2.5:3B3B params, 12ms inferenceMMLU: 65.2%
TTSOpenAI TTSNatural voice synthesisMOS: 4.5/5.0
EmbeddingNomic-Embed8K context, open weightsMTEB: 62.3
RouterSOV3 OLMTrained on real usage87% routing accuracy

The Sovereign-100 Train

For maximum rigour, DEFONEOS can run the "Sovereign-100 Train" โ€” 1,728 mixed simulations (12 mindsets ร— 12 BIG BRAIM models ร— 12 environments). This stress-tests the system across every combination and returns the top sovereign score rankings.

# Run the Sovereign-100 Train python -m sov3.brain_race.run --config=sov100 # Executes 1,728 simulations: # 12 mindsets ร— 12 models ร— 12 environments # Returns: top 10 sovereign scores # Time: ~45 minutes on sovereign cloud
DEFONEOS ยท CSOAI Ltd ยท UK Companies House 16939677 ยท Apache 2.0 ยท Neural: Mamba-2 16-dim + 14 models + Quantum ยท ๐Ÿ‰