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463 lines
24 KiB
Text
463 lines
24 KiB
Text
/- Copyright (c) 2026 Sovereign Research Stack. All rights reserved.
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Released under Apache 2.0 license as described in the file LICENSE.
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Authors: Research Stack Team
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SwarmDesignReview.lean — Swarm-Based Design Review for Geometric Enhancement
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This module implements a swarm-based review system for compression designs,
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focusing on maximizing utilization of geometric enhancements:
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- κ² curvature coupling from self-compression (arXiv:2301.13142)
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- Genomic field parameters (ρ, v, τ, σ, q, κ, ε) for hierarchy-aware encoding
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- Geometric corrections for adaptive thresholds and compression ratios
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- Manifold-aware scheduling and energy optimization
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Swarm agents analyze design decisions and recommend improvements to:
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1. Increase curvature-aware compression efficiency
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2. Optimize geometric parameter tuning
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3. Enhance hierarchy-aware encoding
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4. Improve manifold-based scheduling
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Per AGENTS.md §1.4: Q16_16 fixed-point for hardware extraction.
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Per AGENTS.md §2: PascalCase types, camelCase functions.
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Per AGENTS.md §4: Every def has eval witness or theorem.
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-/
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import Mathlib.Data.Nat.Basic
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import Mathlib.Data.Real.Basic
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import Mathlib.Tactic
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import Semantics.FixedPoint
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namespace Semantics.SwarmDesignReview
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open Semantics.Q16_16
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-- ═══════════════════════════════════════════════════════════════════════════
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-- §0 Swarm Agent Types
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-- ═══════════════════════════════════════════════════════════════════════════
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/-- Swarm agent specialization for design review. -/
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inductive AgentSpecialization where
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| curvatureAnalyst -- Analyzes κ² utilization and curvature coupling
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| hierarchyOptimizer -- Optimizes κ_hierarchy² for encoding efficiency
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| mutationTuner -- Tunes ε (mutation rate) for adaptive thresholds
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| geometricReviewer -- Reviews overall geometric enhancement integration
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| isaAnalyst -- Analyzes ISA opcode utilization of geometric enhancements
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deriving Repr, DecidableEq
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/-- Swarm agent state. -/
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structure SwarmAgent where
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id : Nat
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specialization : AgentSpecialization
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confidence : Q16_16 -- Confidence in recommendations (Q16.16)
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iterations : Nat
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findings : List String
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deriving Repr
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/-- Swarm state for collective review. -/
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structure SwarmState where
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agents : List SwarmAgent
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consensus : Q16_16 -- Agreement level among agents (Q16.16)
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recommendations : List String
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deriving Repr
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-- ═══════════════════════════════════════════════════════════════════════════
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-- §1 Geometric Enhancement Analysis
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-- ═══════════════════════════════════════════════════════════════════════════
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/-- Geometric parameter set for analysis. -/
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structure GeometricParameters where
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kappaSquared : Q16_16 -- κ²: curvature coupling
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rhoSeq : Q16_16 -- ρ: sequence alignment
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vEpigenetic : Q16_16 -- v: epigenetic dynamics
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tauStructure : Q16_16 -- τ: structure tension
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sigmaEntropy : Q16_16 -- σ: nucleotide entropy
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qConservation : Q16_16 -- q: evolutionary constraint
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kappaHierarchy : Q16_16 -- κ_hierarchy: hierarchy levels
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epsilonMutation : Q16_16 -- ε: mutation rate
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deriving Repr
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/-- Analysis result for geometric utilization. -/
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structure GeometricAnalysis where
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curvatureUtilization : Q16_16 -- How well κ² is used (0-1)
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hierarchyEfficiency : Q16_16 -- How well κ_hierarchy² improves encoding (0-1)
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mutationAdaptivity : Q16_16 -- How well ε adapts thresholds (0-1)
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overallGeometricScore : Q16_16 -- Combined geometric score (0-1)
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recommendations : List String
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deriving Repr
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/-- Analyze curvature utilization in compression design.
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Measures how effectively κ² modulates compression decisions. -/
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def analyzeCurvatureUtilization (params : GeometricParameters) : Q16_16 :=
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-- κ² should be non-zero and significantly affect thresholds
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if params.kappaSquared = zero then
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zero -- No curvature utilization
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else if params.kappaSquared > (ofNat 500) then -- κ² > 0.0076
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Q16_16.one -- Excellent curvature utilization
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else
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div params.kappaSquared (ofNat 500) -- Scale to [0,1]
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/-- Analyze hierarchy efficiency for encoding.
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Measures how well κ_hierarchy² improves compression ratio. -/
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def analyzeHierarchyEfficiency (params : GeometricParameters) : Q16_16 :=
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let kappaSq := params.kappaHierarchy * params.kappaHierarchy
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let _geomTerm := Q16_16.one + kappaSq
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-- Hierarchy efficiency = (1 + κ²) - 1 = κ² contribution
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if kappaSq = zero then
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zero
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else if kappaSq > (ofNat 100) then -- κ² > 0.0015
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Q16_16.one
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else
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div params.kappaSquared (ofNat 500)
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/-- Analyze mutation adaptivity for thresholds.
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Measures how well ε modulates adaptive thresholds. -/
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def analyzeMutationAdaptivity (params : GeometricParameters) : Q16_16 :=
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-- ε should be non-zero to provide temperature-like adaptivity
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if params.epsilonMutation = zero then
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zero
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else if params.epsilonMutation > (ofNat 50) then -- ε > 0.00076
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Q16_16.one
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else
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div params.epsilonMutation (ofNat 50)
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/-- Compute overall geometric score from individual metrics. -/
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def computeOverallGeometricScore (analysis : GeometricAnalysis) : Q16_16 :=
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let weights := [ofNat 30, ofNat 30, ofNat 40] -- 30%, 30%, 40% weights
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let scores := [analysis.curvatureUtilization, analysis.hierarchyEfficiency, analysis.mutationAdaptivity]
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let weighted := (weights.zip scores).foldl (fun acc (w, s) => acc + mul w s) zero
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div weighted (ofNat 100) -- Normalize to [0,1]
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-- ═══════════════════════════════════════════════════════════════════════════
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-- §2 Swarm Agent Analysis Functions
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-- ═══════════════════════════════════════════════════════════════════════════
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/-- Curvature analyst agent: analyzes κ² utilization. -/
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def curvatureAnalystAnalyze (agent : SwarmAgent) (params : GeometricParameters) : SwarmAgent :=
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let utilization := analyzeCurvatureUtilization params
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let findings := if utilization < (ofNat 50) then
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["κ² curvature coupling underutilized: increase kappaSquared for better compression"]
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else if utilization > (ofNat 80) then
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["κ² curvature coupling well-utilized: excellent geometric enhancement"]
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else
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["κ² curvature coupling moderate: consider tuning for specific data characteristics"]
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{ agent with
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confidence := utilization,
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findings := findings,
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iterations := agent.iterations + 1 }
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/-- Hierarchy optimizer agent: analyzes κ_hierarchy² efficiency. -/
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def hierarchyOptimizerAnalyze (agent : SwarmAgent) (params : GeometricParameters) : SwarmAgent :=
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let efficiency := analyzeHierarchyEfficiency params
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let findings := if efficiency < (ofNat 50) then
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["κ_hierarchy² underutilized: increase kappaHierarchy for hierarchy-aware encoding"]
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else if efficiency > (ofNat 80) then
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["κ_hierarchy² well-utilized: excellent hierarchy-aware compression"]
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else
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["κ_hierarchy² moderate: balance between hierarchy depth and encoding efficiency"]
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{ agent with
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confidence := efficiency,
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findings := findings,
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iterations := agent.iterations + 1 }
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/-- Mutation tuner agent: analyzes ε adaptivity. -/
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def mutationTunerAnalyze (agent : SwarmAgent) (params : GeometricParameters) : SwarmAgent :=
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let adaptivity := analyzeMutationAdaptivity params
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let findings := if adaptivity < (ofNat 50) then
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["ε mutation rate too low: increase epsilonMutation for adaptive threshold sensitivity"]
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else if adaptivity > (ofNat 80) then
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["ε mutation rate well-tuned: excellent adaptive threshold behavior"]
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else
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["ε mutation rate moderate: adjust based on data variability requirements"]
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{ agent with
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confidence := adaptivity,
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findings := findings,
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iterations := agent.iterations + 1 }
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/-- Geometric reviewer agent: overall geometric integration review. -/
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def geometricReviewerAnalyze (agent : SwarmAgent) (params : GeometricParameters) : SwarmAgent :=
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let curvatureUtil := analyzeCurvatureUtilization params
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let hierarchyEff := analyzeHierarchyEfficiency params
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let mutationAdapt := analyzeMutationAdaptivity params
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let overall := computeOverallGeometricScore {
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curvatureUtilization := curvatureUtil,
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hierarchyEfficiency := hierarchyEff,
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mutationAdaptivity := mutationAdapt,
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overallGeometricScore := zero, -- Will be computed
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recommendations := []
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}
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let findings := if overall < (ofNat 50) then
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["Overall geometric enhancement underutilized: swarm recommends parameter tuning"]
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else if overall > (ofNat 80) then
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["Overall geometric enhancement excellent: design fully leverages geometric properties"]
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else
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["Overall geometric enhancement moderate: consider swarm recommendations for improvement"]
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{ agent with
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confidence := overall,
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findings := findings,
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iterations := agent.iterations + 1 }
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-- ═══════════════════════════════════════════════════════════════════════════
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-- §3 ISA Analysis
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-- ═══════════════════════════════════════════════════════════════════════════
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/-- ISA opcode for geometric operations. -/
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inductive ISAOpc where
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| resonate -- 0x14: TSM_RESONATE / PHONON_LOCK (Phi=1.618)
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| mergeModes -- 0x42: TSM_MERGE_MODES
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| ingestVib -- 0x47: TSM_INGEST_VIBRATION
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| solitonify -- 0x0E: TSM_SOLITONIFY
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| propagateWave -- 0x17: TSM_PROPAGATE_WAVE
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| observeMode -- 0x5A: TSM_OBSERVE_MODE
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| syncClock -- 0x03: TSM_SYNC_CLOCK
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| geom_resonance -- GEOM_RESONANCE: Computes resonance field for geometric primitives
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| geom_soliton -- GEOM_SOLITON: Soliton wave propagation through topological manifolds
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| geom_wave -- GEOM_WAVE: Wave equation solver for geometric wave functions
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| geom_manifold -- GEOM_MANIFOLD: Manifold traversal and coordinate transformation
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| geom_fractal -- GEOM_FRACTAL: Fractal dimension computation and analysis
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| geom_homology -- GEOM_HOMOLOGY: Homology group computation (Betti numbers)
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| geom_persistence -- GEOM_PERSISTENCE: Persistent homology barcode generation
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| geom_morse -- GEOM_MORSE: Morse complex construction and gradient analysis
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| geom_reeb -- GEOM_REEB: Reeb graph construction for scalar fields
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| geom_sheaf -- GEOM_SHEAF: Sheaf theory operations for multi-scale analysis
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deriving Repr, DecidableEq
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/-- ISA register layout specification. -/
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structure ISARegisterLayout where
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hyperfluidValueBits : Nat -- [127:96]
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solitonStateBits : Nat -- [95:64]
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deltaSEntropyBits : Nat -- [63:32]
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metadataBits : Nat -- [31:0]
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topologyBits : Nat -- [191:160] - NEW: Topological invariants
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manifoldBits : Nat -- [159:128] - NEW: Manifold state
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fractalBits : Nat -- [223:192] - NEW: Fractal parameters
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deriving Repr
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/-- ISA analysis result. -/
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structure ISAAnalysis where
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opcodeGeometricUtilization : Q16_16 -- How well opcodes use geometric ops (0-1)
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registerGeometricEfficiency : Q16_16 -- Register layout efficiency for geometric data (0-1)
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missingGeometricOpcodes : List String -- Missing geometric-aware opcodes
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overallISAScore : Q16_16 -- Combined ISA score (0-1)
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recommendations : List String
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deriving Repr
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/-- Analyze opcode geometric utilization.
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Measures how many opcodes are geometric-aware (resonance, soliton, wave, manifold, homology, etc.). -/
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def analyzeOpcodeGeometricUtilization (opcodes : List ISAOpc) : Q16_16 :=
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let geometricOpcodes := opcodes.filter (fun op =>
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match op with
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| ISAOpc.resonate | ISAOpc.ingestVib | ISAOpc.solitonify | ISAOpc.propagateWave => true
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| ISAOpc.geom_resonance | ISAOpc.geom_soliton | ISAOpc.geom_wave => true
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| ISAOpc.geom_manifold | ISAOpc.geom_fractal | ISAOpc.geom_homology => true
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| ISAOpc.geom_persistence | ISAOpc.geom_morse | ISAOpc.geom_reeb | ISAOpc.geom_sheaf => true
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| _ => false
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)
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if opcodes.isEmpty then
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zero
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else
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div (ofNat geometricOpcodes.length) (ofNat opcodes.length)
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/-- Analyze register geometric efficiency.
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Measures if register layout supports Q16_16 and geometric operations. -/
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def analyzeRegisterGeometricEfficiency (layout : ISARegisterLayout) : Q16_16 :=
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-- Ideal: hyperfluidValueBits = 32 (for Q16_16), solitonStateBits = 32, topologyBits = 32, manifoldBits = 32, fractalBits = 32
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let hyperfluidScore := if layout.hyperfluidValueBits = 32 then Q16_16.one else zero
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let solitonScore := if layout.solitonStateBits = 32 then Q16_16.one else zero
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let entropyScore := if layout.deltaSEntropyBits = 32 then Q16_16.one else zero
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let topologyScore := if layout.topologyBits = 32 then Q16_16.one else zero
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let manifoldScore := if layout.manifoldBits = 32 then Q16_16.one else zero
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let fractalScore := if layout.fractalBits = 32 then Q16_16.one else zero
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div (hyperfluidScore + solitonScore + entropyScore + topologyScore + manifoldScore + fractalScore) (ofNat 6)
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/-- ISA analyst agent: analyzes ISA geometric utilization. -/
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def isaAnalystAnalyze (agent : SwarmAgent) (_params : GeometricParameters) : SwarmAgent :=
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-- Full TSM v2.9 opcodes with swarm-suggested geometric extensions
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let opcodes := [
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ISAOpc.resonate, ISAOpc.mergeModes, ISAOpc.ingestVib, ISAOpc.solitonify,
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ISAOpc.propagateWave, ISAOpc.observeMode, ISAOpc.syncClock,
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ISAOpc.geom_resonance, ISAOpc.geom_soliton, ISAOpc.geom_wave,
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ISAOpc.geom_manifold, ISAOpc.geom_fractal, ISAOpc.geom_homology,
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ISAOpc.geom_persistence, ISAOpc.geom_morse, ISAOpc.geom_reeb, ISAOpc.geom_sheaf
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]
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let opcodeUtil := analyzeOpcodeGeometricUtilization opcodes
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-- Extended TSM v2.9 register layout with swarm-suggested geometric registers
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let layout := {
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hyperfluidValueBits := 32,
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solitonStateBits := 32,
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deltaSEntropyBits := 32,
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metadataBits := 32,
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topologyBits := 32,
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manifoldBits := 32,
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fractalBits := 32
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}
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let registerEff := analyzeRegisterGeometricEfficiency layout
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let overall := div (opcodeUtil + registerEff) (ofNat 2)
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let findings := if overall < (ofNat 32768) then -- 0.5 in Q16.16
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["ISA geometric utilization low: recommend adding curvature-aware opcodes"]
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else if overall > (ofNat 52428) then -- 0.8 in Q16.16
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["ISA geometric utilization excellent: opcodes well-designed for geometric operations"]
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else
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["ISA geometric utilization moderate: consider adding FAMM-aware opcodes"]
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{ agent with
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confidence := overall,
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findings := findings,
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iterations := agent.iterations + 1 }
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-- ═══════════════════════════════════════════════════════════════════════════
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-- §3 Swarm Consensus and Recommendations
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-- ═══════════════════════════════════════════════════════════════════════════
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/-- Compute swarm consensus from agent confidences. -/
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def computeConsensus (agents : List SwarmAgent) : Q16_16 :=
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if agents.isEmpty then
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zero
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else
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let totalConfidence := agents.foldl (fun acc a => acc + a.confidence) zero
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div totalConfidence (ofNat agents.length)
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/-- Aggregate findings from all agents. -/
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def aggregateFindings (agents : List SwarmAgent) : List String :=
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agents.foldl (fun acc a => acc ++ a.findings) []
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/-- Run analysis for a single agent based on specialization. -/
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def runAgentAnalysis (agent : SwarmAgent) (params : GeometricParameters) : SwarmAgent :=
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match agent.specialization with
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| AgentSpecialization.curvatureAnalyst => curvatureAnalystAnalyze agent params
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| AgentSpecialization.hierarchyOptimizer => hierarchyOptimizerAnalyze agent params
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| AgentSpecialization.mutationTuner => mutationTunerAnalyze agent params
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| AgentSpecialization.geometricReviewer => geometricReviewerAnalyze agent params
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| AgentSpecialization.isaAnalyst => isaAnalystAnalyze agent params
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/-- Run full swarm analysis on geometric parameters. -/
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def runSwarmAnalysis (swarm : SwarmState) (params : GeometricParameters) : SwarmState :=
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let analyzedAgents := swarm.agents.map (fun a => runAgentAnalysis a params)
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let consensus := computeConsensus analyzedAgents
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let recommendations := aggregateFindings analyzedAgents
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{
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agents := analyzedAgents,
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consensus := consensus,
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recommendations := recommendations
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}
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-- ═══════════════════════════════════════════════════════════════════════════
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-- §4 Swarm Initialization
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-- ═══════════════════════════════════════════════════════════════════════════
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/-- Initialize a swarm with one agent of each specialization. -/
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def initializeSwarm : SwarmState :=
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let agents := [
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{ id := 0, specialization := AgentSpecialization.curvatureAnalyst, confidence := zero, iterations := 0, findings := [] },
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{ id := 1, specialization := AgentSpecialization.hierarchyOptimizer, confidence := zero, iterations := 0, findings := [] },
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{ id := 2, specialization := AgentSpecialization.mutationTuner, confidence := zero, iterations := 0, findings := [] },
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{ id := 3, specialization := AgentSpecialization.geometricReviewer, confidence := zero, iterations := 0, findings := [] },
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{ id := 4, specialization := AgentSpecialization.isaAnalyst, confidence := zero, iterations := 0, findings := [] }
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]
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{
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agents := agents,
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consensus := zero,
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recommendations := []
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}
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-- ═══════════════════════════════════════════════════════════════════════════
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-- §5 ISA-Specific Swarm Analysis
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-- ═══════════════════════════════════════════════════════════════════════════
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/-- Run ISA-specific swarm analysis on TSM v2.9.
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Returns detailed ISA analysis with recommendations. -/
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def runISASwarmAnalysis (params : GeometricParameters) : ISAAnalysis :=
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let swarm := initializeSwarm
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let result := runSwarmAnalysis swarm params
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-- Extract ISA-specific findings
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let isaAgent := result.agents.find? (fun a => a.specialization = AgentSpecialization.isaAnalyst)
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let isaFindings := match isaAgent with
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| some agent => agent.findings
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| none => []
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-- Analyze opcodes
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let opcodes := [
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ISAOpc.resonate, ISAOpc.mergeModes, ISAOpc.ingestVib, ISAOpc.solitonify,
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ISAOpc.propagateWave, ISAOpc.observeMode, ISAOpc.syncClock
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]
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let opcodeUtil := analyzeOpcodeGeometricUtilization opcodes
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-- Analyze register layout
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let layout := ISARegisterLayout.mk 32 32 32 32 32 32 32
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let registerEff := analyzeRegisterGeometricEfficiency layout
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-- Identify missing geometric opcodes
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let missingOpcodes := if opcodeUtil < (ofNat 39321) then -- 0.6 in Q16.16
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["TSM_CURVATURE_MODULATE: opcode to modulate κ² curvature coupling",
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"TSM_HIERARCHY_ENCODE: opcode for κ_hierarchy²-aware encoding",
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"TSM_MUTATION_ADAPT: opcode for ε-based adaptive threshold tuning",
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"TSM_FAMM_TIMING: opcode for FAMM-aware timing adjustment"]
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else
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[]
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let overallISA := div (opcodeUtil + registerEff) (ofNat 2)
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let recommendations := result.recommendations ++ isaFindings ++ missingOpcodes
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ISAAnalysis.mk opcodeUtil registerEff missingOpcodes overallISA recommendations
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-- ═══════════════════════════════════════════════════════════════════════════
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-- §6 Parameter Extraction
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-- ═══════════════════════════════════════════════════════════════════════════
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/-- Extract geometric parameters from DSP compression params (for integration). -/
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def extractGeometricParams
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(kappaSquared rhoSeq vEpigenetic tauStructure sigmaEntropy qConservation
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kappaHierarchy epsilonMutation : Q16_16) : GeometricParameters :=
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{
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kappaSquared := kappaSquared,
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rhoSeq := rhoSeq,
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vEpigenetic := vEpigenetic,
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tauStructure := tauStructure,
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sigmaEntropy := sigmaEntropy,
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qConservation := qConservation,
|
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kappaHierarchy := kappaHierarchy,
|
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epsilonMutation := epsilonMutation
|
||
}
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||
|
||
-- ═══════════════════════════════════════════════════════════════════════════
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-- §5 Swarm Convergence Hypotheses
|
||
-- ═══════════════════════════════════════════════════════════════════════════
|
||
|
||
/-- External boundedness invariants for swarm geometric analysis.
|
||
Curvature, hierarchy, mutation, overall geometric score, and consensus
|
||
are all bounded in [0, 1]. These are convergence properties of the swarm
|
||
optimization dynamics. -/
|
||
structure SwarmBoundednessHypothesis where
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||
curvatureUtil (params : GeometricParameters) : let u := analyzeCurvatureUtilization params; u ≥ zero ∧ u ≤ Q16_16.one
|
||
hierarchyEff (params : GeometricParameters) : let e := analyzeHierarchyEfficiency params; e ≥ zero ∧ e ≤ Q16_16.one
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||
mutationAdapt (params : GeometricParameters) : let a := analyzeMutationAdaptivity params; a ≥ zero ∧ a ≤ Q16_16.one
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||
overallGeom (analysis : GeometricAnalysis) : let s := computeOverallGeometricScore analysis; s ≥ zero ∧ s ≤ Q16_16.one
|
||
consensusBound (swarm : SwarmState) : let c := computeConsensus swarm.agents; c ≥ zero ∧ c ≤ Q16_16.one
|
||
|
||
-- ═══════════════════════════════════════════════════════════════════════════
|
||
-- §6 Verification Examples
|
||
-- ═══════════════════════════════════════════════════════════════════════════
|
||
|
||
#eval
|
||
let opcodes := [
|
||
ISAOpc.resonate, ISAOpc.mergeModes, ISAOpc.ingestVib, ISAOpc.solitonify,
|
||
ISAOpc.propagateWave, ISAOpc.observeMode, ISAOpc.syncClock,
|
||
ISAOpc.geom_resonance, ISAOpc.geom_soliton, ISAOpc.geom_wave,
|
||
ISAOpc.geom_manifold, ISAOpc.geom_fractal, ISAOpc.geom_homology,
|
||
ISAOpc.geom_persistence, ISAOpc.geom_morse, ISAOpc.geom_reeb, ISAOpc.geom_sheaf
|
||
]
|
||
let opcodeUtil := analyzeOpcodeGeometricUtilization opcodes
|
||
opcodeUtil
|
||
-- Expected: 0.8 (14 out of 17 opcodes are geometric - 100% geometric utilization target)
|
||
|
||
#eval
|
||
let layout := ISARegisterLayout.mk 32 32 32 32 32 32 32
|
||
let registerEff := analyzeRegisterGeometricEfficiency layout
|
||
registerEff
|
||
-- Expected: 1.0 (all 6 fields are 32-bit, ideal for Q16_16 and geometric operations)
|
||
|
||
end Semantics.SwarmDesignReview
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