mirror of
https://github.com/allaunthefox/Research-Stack.git
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193 lines
5.8 KiB
Text
193 lines
5.8 KiB
Text
/-
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BraidBracket.lean - Bracket Shell for Braid Strand Admissibility
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Brackets bound the flow. Each braid strand carries a bracket shell that
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encodes local admissibility geometry.
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Key rule: merge in linear space first, derive bracket afterward.
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-/
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import Semantics.DynamicCanal
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namespace Semantics.BraidBracket
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open DynamicCanal
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/-- PhaseVec: ℝ² accumulator for AMMR (Q16.16 fixed-point) -/
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structure PhaseVec where
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x : Fix16
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y : Fix16
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deriving Repr, DecidableEq, BEq
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namespace PhaseVec
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def zero : PhaseVec := { x := Fix16.zero, y := Fix16.zero }
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def add (p q : PhaseVec) : PhaseVec :=
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if p.x.raw == 0 && p.y.raw == 0 then q
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else if q.x.raw == 0 && q.y.raw == 0 then p
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else { x := Fix16.add p.x q.x, y := Fix16.add p.y q.y }
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def neg (p : PhaseVec) : PhaseVec :=
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{ x := Fix16.neg p.x, y := Fix16.neg p.y }
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def isZero (p : PhaseVec) : Bool :=
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p.x.raw == 0 && p.y.raw == 0
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/-- Octagonal norm approximation: κ ≈ max(|x|,|y|) + (3/8)·min(|x|,|y|) -/
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def normApprox (p : PhaseVec) : Fix16 :=
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let ax := if p.x.raw < 0x80000000 then p.x else Fix16.neg p.x
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let ay := if p.y.raw < 0x80000000 then p.y else Fix16.neg p.y
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let hi := if ax.raw > ay.raw then ax else ay
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let lo := if ax.raw > ay.raw then ay else ax
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-- 3/8 = 0x00006000 in Q16.16
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let lo38 := Fix16.mk ((lo.raw.toNat * 0x6000 / 0x10000).toUInt32)
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Fix16.add hi lo38
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end PhaseVec
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/-- BraidBracket: local admissibility geometry shell
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C(z, μ) where z is phase accumulation and μ is the slot/transport parameter.
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The bracket bounds the strand's accumulated state.
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-/
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structure BraidBracket where
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lower : Fix16
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upper : Fix16
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gap : Fix16
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kappa : Fix16
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phi : Fix16
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admissible : Bool
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deriving Repr, DecidableEq, BEq
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namespace BraidBracket
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/-- Zero bracket (initial state) -/
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def zero : BraidBracket :=
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{ lower := Fix16.zero
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, upper := Fix16.zero
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, gap := Fix16.zero
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, kappa := Fix16.zero
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, phi := Fix16.zero
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, admissible := true }
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/-- Compute bracket from PhaseVec accumulator and slot parameter μ
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C(z, μ): derive lower, upper, gap from accumulated phase state.
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This is the core bracket calculus operator.
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-/
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def fromPhaseVec (z : PhaseVec) (μ : Fix16) : BraidBracket :=
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let κ := z.normApprox
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-- φ = 0 when z = (0,0)
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let ϕ := if z.isZero then Fix16.zero else
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-- atan2 approximation placeholder (actual would use Cordic or table)
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Fix16.mk 0x00008000 -- π/4 placeholder
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let lo := Fix16.sub κ μ
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let up := Fix16.add κ μ
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let g := Fix16.sub up lo
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{ lower := lo
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, upper := up
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, gap := g
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, kappa := κ
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, phi := ϕ
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, admissible := lo.raw <= up.raw }
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/-- Check gap conservation (bracketed DIAT property) -/
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def gapConserved (b : BraidBracket) : Bool :=
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let expectedGap := Fix16.sub b.upper b.lower
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b.gap.raw == expectedGap.raw
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/-- Componentwise addition of bracket bounds (for residual calculation) -/
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def addComponentwise (x y : BraidBracket) : BraidBracket :=
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{ lower := Fix16.add x.lower y.lower
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, upper := Fix16.add x.upper y.upper
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, gap := Fix16.add x.gap y.gap
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, kappa := Fix16.add x.kappa y.kappa
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, phi := Fix16.add x.phi y.phi
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, admissible := x.admissible && y.admissible }
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/-- Crossing residual: Rᵢⱼ = Bᵢⱼ - (Bᵢ + Bⱼ)
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Measures the interaction energy between two merged strands.
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-/
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def crossingResidual (bij bi bj : BraidBracket) : BraidBracket :=
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let sum := addComponentwise bi bj
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{ lower := Fix16.sub bij.lower sum.lower
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, upper := Fix16.sub bij.upper sum.upper
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, gap := Fix16.sub bij.gap sum.gap
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, kappa := Fix16.sub bij.kappa sum.kappa
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, phi := Fix16.sub bij.phi sum.phi
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, admissible := bij.admissible && bi.admissible && bj.admissible }
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end BraidBracket
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/-- AVMR (Append-Only Vector Magnitude Registry) hierarchy entry
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Stores the immutable history of braid operations for audit/attestation.
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-/
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structure AVMREntry where
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slot : UInt32
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phaseAcc : PhaseVec
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bracket : BraidBracket
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residual : Option BraidBracket -- Some if from crossing, None if leaf
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timestamp : UInt64
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deriving Repr, DecidableEq, BEq
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namespace AVMREntry
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def leafEntry (slot : UInt32) (z : PhaseVec) (μ : Fix16) (ts : UInt64) : AVMREntry :=
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{ slot := slot
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, phaseAcc := z
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, bracket := BraidBracket.fromPhaseVec z μ
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, residual := none
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, timestamp := ts }
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def crossingEntry (slot : UInt32) (z : PhaseVec) (μ : Fix16)
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(res : BraidBracket) (ts : UInt64) : AVMREntry :=
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{ slot := slot
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, phaseAcc := z
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, bracket := BraidBracket.fromPhaseVec z μ
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, residual := some res
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, timestamp := ts }
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end AVMREntry
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#eval (PhaseVec.zero).normApprox.raw
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#eval (BraidBracket.zero).admissible
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/-- Row 80: Cosine Similarity between two PhaseVec accumulators
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cos(θ) = (a·b) / (|a| · |b|) — using octagonal norm approximation
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-/
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def cosineSimilarity (a b : PhaseVec) : Fix16 :=
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let dot := Fix16.add (Fix16.mul a.x b.x) (Fix16.mul a.y b.y)
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let normA := a.normApprox
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let normB := b.normApprox
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let denom := Fix16.mul normA normB
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if denom.raw == 0 then Fix16.zero
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else Fix16.div dot denom
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/-- Row 81: Gradient Alignment — cosine of angle between gradient vectors
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alignment = ∇gᵢ · ∇gⱼ / (‖∇gᵢ‖ · ‖∇gⱼ‖)
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Reuses cosineSimilarity on gradient PhaseVecs.
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-/
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def gradientAlignment (gradI gradJ : PhaseVec) : Fix16 :=
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cosineSimilarity gradI gradJ
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/-- Row 82: Phase Accumulation — discrete line integral Σ y · dx
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phase += Σ y · dx along trajectory
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Inputs: parallel arrays of (y, dx) samples.
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-/
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def phaseAccumulation (ys dxs : Array Fix16) : Fix16 :=
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let n := Nat.min ys.size dxs.size
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(Array.range n).foldl (fun (acc : Fix16) (i : Nat) =>
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Fix16.add acc (Fix16.mul ys[i]! dxs[i]!)
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) Fix16.zero
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#eval cosineSimilarity { x := Fix16.mk 65536, y := Fix16.zero }
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{ x := Fix16.mk 65536, y := Fix16.zero } -- expect 1.0
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end Semantics.BraidBracket
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