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- Six layers (added Evidence between Observation and Finding): 1. Reality 2. Observation 3. Evidence (linked observations with context) 4. Finding 5. Decision 6. Business Impact - Decision Object restructured: 1. Decision — what should user decide? 2. Why — why system recommends this 3. Evidence — what observations support this 4. Confidence — how certain (3 dimensions) 5. Consequence — what if nothing done 6. Action — next step 7. Business Impact — economic/operational meaning - Confidence Model (3 dimensions): - Observation Confidence: how certain is detection? - Evidence Strength: how strongly supported? - Recommendation Confidence: how certain is recommendation? - Explainability Principle: - Every Decision Card must be explorable - User can click: Decision → Finding → Evidence → Observations → Reality - Competitive advantage: traceability to source material - Business Impact Model (4 dimensions): - Risk, Cost, Time, Opportunity - Three validation scenarios: 1. Road Crack — simple, common 2. Damaged Facade — complex, critical 3. Broken Road Sign — simple, regulatory - Pass criteria: Same Decision Object works for all three Rationale: Decision Intelligence, not BI. Evidence-backed decisions are the core product. Explainability is competitive advantage. Validation against real scenarios before freezing.