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aver/codegen/lean/
mod.rs

1/// Lean 4 backend for the Aver transpiler.
2///
3/// Transpiles only pure core logic: functions without effects, type definitions,
4/// verify blocks (as `example` proofs), and decision blocks (as comments).
5/// Effectful functions and `main` are skipped.
6mod builtins;
7mod expr;
8mod law_auto;
9mod pattern;
10mod recurrence;
11mod shared;
12mod toplevel;
13mod types;
14
15use std::collections::{HashMap, HashSet};
16
17use crate::ast::{
18    BinOp, Expr, FnBody, FnDef, MatchArm, Pattern, Stmt, TopLevel, TypeDef, VerifyKind,
19};
20use crate::call_graph;
21use crate::codegen::{CodegenContext, ProjectOutput};
22
23/// How verify blocks should be emitted in generated Lean.
24#[derive(Clone, Copy, Debug, Eq, PartialEq)]
25pub enum VerifyEmitMode {
26    /// `example : lhs = rhs := by native_decide`
27    NativeDecide,
28    /// `example : lhs = rhs := by sorry`
29    Sorry,
30    /// Named theorem stubs:
31    /// `theorem <fn>_verify_<n> : lhs = rhs := by`
32    /// `  sorry`
33    TheoremSkeleton,
34}
35
36/// Proof-mode recursion support class for emitted Lean definitions.
37#[derive(Clone, Debug, Eq, PartialEq)]
38pub enum RecursionPlan {
39    /// Single-function recursion where an `Int` parameter decreases by 1.
40    IntCountdown { param_index: usize },
41    /// Single-function recursion where an `Int` parameter increases by 1 up to a bound.
42    /// `bound_lean` is the Lean expression of the upper bound (e.g. `8` or `xs.length`).
43    IntAscending {
44        param_index: usize,
45        bound_lean: String,
46    },
47    /// Single-function recurrence with `n < 0` guard, `0/1` bases, and a linear
48    /// second-order recurrence over previous results, emitted through a private
49    /// Nat helper.
50    LinearRecurrence2,
51    /// Single-function structural recursion on a `List<_>` parameter.
52    ListStructural { param_index: usize },
53    /// Single-function structural recursion on a recursive user-defined type parameter.
54    SizeOfStructural,
55    /// Single-function recursion where first `String` stays the same and second `Int`
56    /// parameter strictly advances (`pos + k`, `k >= 1`).
57    StringPosAdvance,
58    /// Mutual recursion group where first `Int` parameter decreases by 1 across SCC calls.
59    MutualIntCountdown,
60    /// Mutual recursion group where first `String` is preserved and second `Int`
61    /// either stays the same across rank-decreasing edges, or strictly advances.
62    MutualStringPosAdvance { rank: usize },
63    /// Generic mutual recursion plan using `sizeOf` on structural parameters,
64    /// plus rank for same-measure edges.
65    MutualSizeOfRanked { rank: usize },
66}
67
68#[derive(Clone, Debug, Eq, PartialEq)]
69pub struct ProofModeIssue {
70    pub line: usize,
71    pub message: String,
72}
73
74const LEAN_PRELUDE_HEADER: &str = r#"-- Generated by the Aver → Lean 4 transpiler
75-- Pure core logic only (effectful functions are omitted)
76
77set_option linter.unusedVariables false
78
79-- Prelude: helper definitions for Aver builtins"#;
80
81const LEAN_PRELUDE_FLOAT_COE: &str = r#"instance : Coe Int Float := ⟨fun n => Float.ofInt n⟩
82
83def Float.fromInt (n : Int) : Float := Float.ofInt n"#;
84
85const LEAN_PRELUDE_FLOAT_DEC_EQ: &str = r#"private unsafe def Float.unsafeDecEq (a b : Float) : Decidable (a = b) :=
86  if a == b then isTrue (unsafeCast ()) else isFalse (unsafeCast ())
87@[implemented_by Float.unsafeDecEq]
88private opaque Float.compDecEq (a b : Float) : Decidable (a = b)
89instance : DecidableEq Float := Float.compDecEq"#;
90
91const LEAN_PRELUDE_EXCEPT_DEC_EQ: &str = r#"instance [DecidableEq ε] [DecidableEq α] : DecidableEq (Except ε α)
92  | .ok a, .ok b =>
93    if h : a = b then isTrue (h ▸ rfl) else isFalse (by intro h'; cases h'; exact h rfl)
94  | .error a, .error b =>
95    if h : a = b then isTrue (h ▸ rfl) else isFalse (by intro h'; cases h'; exact h rfl)
96  | .ok _, .error _ => isFalse (by intro h; cases h)
97  | .error _, .ok _ => isFalse (by intro h; cases h)"#;
98
99const LEAN_PRELUDE_EXCEPT_NS: &str = r#"namespace Except
100def withDefault (r : Except ε α) (d : α) : α :=
101  match r with
102  | .ok v => v
103  | .error _ => d
104end Except"#;
105
106const LEAN_PRELUDE_OPTION_TO_EXCEPT: &str = r#"def Option.toExcept (o : Option α) (e : ε) : Except ε α :=
107  match o with
108  | some v => .ok v
109  | none => .error e"#;
110
111const LEAN_PRELUDE_STRING_HADD: &str = r#"instance : HAdd String String String := ⟨String.append⟩"#;
112
113const LEAN_PRELUDE_PROOF_FUEL: &str = r#"def averStringPosFuel (s : String) (pos : Int) (rankBudget : Nat) : Nat :=
114  (((s.data.length) - pos.toNat) + 1) * rankBudget"#;
115
116const LEAN_PRELUDE_AVER_MEASURE: &str = r#"namespace AverMeasure
117def list (elemMeasure : α → Nat) : List α → Nat
118  | [] => 1
119  | x :: xs => elemMeasure x + list elemMeasure xs + 1
120def option (elemMeasure : α → Nat) : Option α → Nat
121  | none => 1
122  | some x => elemMeasure x + 1
123def except (errMeasure : ε → Nat) (okMeasure : α → Nat) : Except ε α → Nat
124  | .error e => errMeasure e + 1
125  | .ok v => okMeasure v + 1
126end AverMeasure"#;
127
128const AVER_MAP_PRELUDE_BASE: &str = r#"namespace AverMap
129def empty : List (α × β) := []
130def get [DecidableEq α] (m : List (α × β)) (k : α) : Option β :=
131  match m with
132  | [] => none
133  | (k', v) :: rest => if k = k' then some v else AverMap.get rest k
134def set [DecidableEq α] (m : List (α × β)) (k : α) (v : β) : List (α × β) :=
135  let rec go : List (α × β) → List (α × β)
136    | [] => [(k, v)]
137    | (k', v') :: rest => if k = k' then (k, v) :: rest else (k', v') :: go rest
138  go m
139def has [DecidableEq α] (m : List (α × β)) (k : α) : Bool :=
140  m.any (fun p => decide (k = p.1))
141def remove [DecidableEq α] (m : List (α × β)) (k : α) : List (α × β) :=
142  m.filter (fun p => !(decide (k = p.1)))
143def keys (m : List (α × β)) : List α := m.map Prod.fst
144def values (m : List (α × β)) : List β := m.map Prod.snd
145def entries (m : List (α × β)) : List (α × β) := m
146def len (m : List (α × β)) : Nat := m.length
147def fromList (entries : List (α × β)) : List (α × β) := entries"#;
148
149const AVER_MAP_PRELUDE_HAS_SET_SELF: &str = r#"private theorem any_set_go_self [DecidableEq α] (k : α) (v : β) :
150    ∀ (m : List (α × β)), List.any (AverMap.set.go k v m) (fun p => decide (k = p.1)) = true := by
151  intro m
152  induction m with
153  | nil =>
154      simp [AverMap.set.go, List.any]
155  | cons p tl ih =>
156      cases p with
157      | mk k' v' =>
158          by_cases h : k = k'
159          · simp [AverMap.set.go, List.any, h]
160          · simp [AverMap.set.go, List.any, h, ih]
161
162theorem has_set_self [DecidableEq α] (m : List (α × β)) (k : α) (v : β) :
163    AverMap.has (AverMap.set m k v) k = true := by
164  simpa [AverMap.has, AverMap.set] using any_set_go_self k v m"#;
165
166const AVER_MAP_PRELUDE_GET_SET_SELF: &str = r#"private theorem get_set_go_self [DecidableEq α] (k : α) (v : β) :
167    ∀ (m : List (α × β)), AverMap.get (AverMap.set.go k v m) k = some v := by
168  intro m
169  induction m with
170  | nil =>
171      simp [AverMap.set.go, AverMap.get]
172  | cons p tl ih =>
173      cases p with
174      | mk k' v' =>
175          by_cases h : k = k'
176          · simp [AverMap.set.go, AverMap.get, h]
177          · simp [AverMap.set.go, AverMap.get, h, ih]
178
179theorem get_set_self [DecidableEq α] (m : List (α × β)) (k : α) (v : β) :
180    AverMap.get (AverMap.set m k v) k = some v := by
181  simpa [AverMap.set] using get_set_go_self k v m"#;
182
183const AVER_MAP_PRELUDE_GET_SET_OTHER: &str = r#"private theorem get_set_go_other [DecidableEq α] (k key : α) (v : β) (h : key ≠ k) :
184    ∀ (m : List (α × β)), AverMap.get (AverMap.set.go k v m) key = AverMap.get m key := by
185  intro m
186  induction m with
187  | nil =>
188      simp [AverMap.set.go, AverMap.get, h]
189  | cons p tl ih =>
190      cases p with
191      | mk k' v' =>
192          by_cases hk : k = k'
193          · have hkey : key ≠ k' := by simpa [hk] using h
194            simp [AverMap.set.go, AverMap.get, hk, hkey]
195          · by_cases hkey : key = k'
196            · simp [AverMap.set.go, AverMap.get, hk, hkey]
197            · simp [AverMap.set.go, AverMap.get, hk, hkey, ih]
198
199theorem get_set_other [DecidableEq α] (m : List (α × β)) (k key : α) (v : β) (h : key ≠ k) :
200    AverMap.get (AverMap.set m k v) key = AverMap.get m key := by
201  simpa [AverMap.set] using get_set_go_other k key v h m"#;
202
203const AVER_MAP_PRELUDE_HAS_SET_OTHER: &str = r#"theorem has_eq_isSome_get [DecidableEq α] (m : List (α × β)) (k : α) :
204    AverMap.has m k = (AverMap.get m k).isSome := by
205  induction m with
206  | nil =>
207      simp [AverMap.has, AverMap.get]
208  | cons p tl ih =>
209      cases p with
210      | mk k' v' =>
211          by_cases h : k = k'
212          · simp [AverMap.has, AverMap.get, List.any, h]
213          · simpa [AverMap.has, AverMap.get, List.any, h] using ih
214
215theorem has_set_other [DecidableEq α] (m : List (α × β)) (k key : α) (v : β) (h : key ≠ k) :
216    AverMap.has (AverMap.set m k v) key = AverMap.has m key := by
217  rw [AverMap.has_eq_isSome_get, AverMap.has_eq_isSome_get]
218  simp [AverMap.get_set_other, h]"#;
219
220const AVER_MAP_PRELUDE_END: &str = r#"end AverMap"#;
221
222const LEAN_PRELUDE_AVER_LIST: &str = r#"namespace AverList
223def get (xs : List α) (i : Int) : Option α :=
224  if i < 0 then none else xs.get? i.toNat
225private def insertSorted [Ord α] (x : α) : List α → List α
226  | [] => [x]
227  | y :: ys =>
228    if compare x y == Ordering.lt || compare x y == Ordering.eq then
229      x :: y :: ys
230    else
231      y :: insertSorted x ys
232def sort [Ord α] (xs : List α) : List α :=
233  xs.foldl (fun acc x => insertSorted x acc) []
234end AverList"#;
235
236const LEAN_PRELUDE_HEADER_TYPE: &str = r#"structure Header where
237  name : String
238  value : String
239  deriving Repr, BEq, Inhabited, DecidableEq"#;
240
241const LEAN_PRELUDE_HTTP_RESPONSE_TYPE: &str = r#"structure HttpResponse where
242  status : Int
243  body : String
244  headers : List Header
245  deriving Repr, BEq, Inhabited, DecidableEq"#;
246
247const LEAN_PRELUDE_HTTP_REQUEST_TYPE: &str = r#"structure HttpRequest where
248  method : String
249  path : String
250  body : String
251  headers : List Header
252  deriving Repr, BEq, Inhabited, DecidableEq"#;
253
254const LEAN_PRELUDE_TCP_CONNECTION_TYPE: &str = r#"structure Tcp_Connection where
255  id : String
256  host : String
257  port : Int
258  deriving Repr, BEq, Inhabited, DecidableEq"#;
259
260const LEAN_PRELUDE_STRING_HELPERS: &str = r#"def String.charAt (s : String) (i : Int) : Option String :=
261  if i < 0 then none
262  else (s.toList.get? i.toNat).map Char.toString
263theorem String.charAt_length_none (s : String) : String.charAt s s.length = none := by
264  have hs : ¬ ((s.length : Int) < 0) := by omega
265  unfold String.charAt
266  simp [hs]
267  change s.data.length ≤ s.length
268  exact Nat.le_refl _
269def String.slice (s : String) (start stop : Int) : String :=
270  let startN := if start < 0 then 0 else start.toNat
271  let stopN := if stop < 0 then 0 else stop.toNat
272  let chars := s.toList
273  String.mk ((chars.drop startN).take (stopN - startN))
274private def trimFloatTrailingZerosChars (chars : List Char) : List Char :=
275  let noZeros := (chars.reverse.dropWhile (fun c => c == '0')).reverse
276  match noZeros.reverse with
277  | '.' :: rest => rest.reverse
278  | _ => noZeros
279private def normalizeFloatString (s : String) : String :=
280  if s.toList.any (fun c => c == '.') then
281    String.mk (trimFloatTrailingZerosChars s.toList)
282  else s
283def String.fromFloat (f : Float) : String := normalizeFloatString (toString f)
284def String.chars (s : String) : List String := s.toList.map Char.toString
285private theorem char_to_string_append_mk (c : Char) (chars : List Char) :
286    Char.toString c ++ String.mk chars = String.mk (c :: chars) := by
287  rfl
288private theorem string_intercalate_empty_char_strings_go (acc : String) (chars : List Char) :
289    String.intercalate.go acc "" (chars.map Char.toString) = acc ++ String.mk chars := by
290  induction chars generalizing acc with
291  | nil =>
292      simp [String.intercalate.go]
293  | cons c rest ih =>
294      calc
295        String.intercalate.go acc "" ((c :: rest).map Char.toString)
296            = String.intercalate.go (acc ++ Char.toString c) "" (rest.map Char.toString) := by
297                simp [String.intercalate.go]
298        _ = (acc ++ Char.toString c) ++ String.mk rest := by
299                simpa using ih (acc ++ Char.toString c)
300        _ = acc ++ String.mk (c :: rest) := by
301                simp [String.append_assoc, char_to_string_append_mk]
302private theorem string_intercalate_empty_char_strings (chars : List Char) :
303    String.intercalate "" (chars.map Char.toString) = String.mk chars := by
304  cases chars with
305  | nil =>
306      simp [String.intercalate]
307  | cons c rest =>
308      simpa [String.intercalate] using string_intercalate_empty_char_strings_go c.toString rest
309theorem String.intercalate_empty_chars (s : String) :
310    String.intercalate "" (String.chars s) = s := by
311  cases s with
312  | mk chars =>
313      simpa [String.chars] using string_intercalate_empty_char_strings chars
314namespace AverString
315def splitOnCharGo (currentRev : List Char) (sep : Char) : List Char → List String
316  | [] => [String.mk currentRev.reverse]
317  | c :: cs =>
318      if c == sep then
319        String.mk currentRev.reverse :: splitOnCharGo [] sep cs
320      else
321        splitOnCharGo (c :: currentRev) sep cs
322def splitOnChar (s : String) (sep : Char) : List String :=
323  splitOnCharGo [] sep s.toList
324def split (s delim : String) : List String :=
325  match delim.toList with
326  | [] => "" :: (s.toList.map Char.toString) ++ [""]
327  | [c] => splitOnChar s c
328  | _ => s.splitOn delim
329@[simp] private theorem char_toString_data (c : Char) : c.toString.data = [c] := by
330  rfl
331private theorem splitOnCharGo_until_sep
332    (prefixRev part tail : List Char) (sep : Char) :
333    part.all (fun c => c != sep) = true ->
334    splitOnCharGo prefixRev sep (part ++ sep :: tail) =
335      String.mk (prefixRev.reverse ++ part) :: splitOnCharGo [] sep tail := by
336  intro h_safe
337  induction part generalizing prefixRev with
338  | nil =>
339      simp [splitOnCharGo]
340  | cons c rest ih =>
341      simp at h_safe
342      have h_rest : (rest.all fun c => c != sep) = true := by
343        simpa using h_safe.2
344      simpa [splitOnCharGo, h_safe.1, List.reverse_cons, List.append_assoc] using
345        (ih (c :: prefixRev) h_rest)
346private theorem splitOnCharGo_no_sep
347    (prefixRev chars : List Char) (sep : Char) :
348    chars.all (fun c => c != sep) = true ->
349    splitOnCharGo prefixRev sep chars =
350      [String.mk (prefixRev.reverse ++ chars)] := by
351  intro h_safe
352  induction chars generalizing prefixRev with
353  | nil =>
354      simp [splitOnCharGo]
355  | cons c rest ih =>
356      simp at h_safe
357      have h_rest : (rest.all fun c => c != sep) = true := by
358        simpa using h_safe.2
359      simpa [splitOnCharGo, h_safe.1, List.reverse_cons, List.append_assoc] using
360        (ih (c :: prefixRev) h_rest)
361@[simp] theorem split_single_char_append
362    (head tail : String) (sep : Char) :
363    head.toList.all (fun c => c != sep) = true ->
364    split (head ++ Char.toString sep ++ tail) (Char.toString sep) =
365      head :: split tail (Char.toString sep) := by
366  intro h_safe
367  simpa [split, splitOnChar] using
368    (splitOnCharGo_until_sep [] head.data tail.data sep h_safe)
369@[simp] theorem split_single_char_no_sep
370    (s : String) (sep : Char) :
371    s.toList.all (fun c => c != sep) = true ->
372    split s (Char.toString sep) = [s] := by
373  intro h_safe
374  simpa [split, splitOnChar] using
375    (splitOnCharGo_no_sep [] s.data sep h_safe)
376private theorem intercalate_go_prefix
377    (pref acc sep : String) (rest : List String) :
378    String.intercalate.go (pref ++ sep ++ acc) sep rest =
379      pref ++ sep ++ String.intercalate.go acc sep rest := by
380  induction rest generalizing acc with
381  | nil =>
382      simp [String.intercalate.go, String.append_assoc]
383  | cons x xs ih =>
384      simpa [String.intercalate.go, String.append_assoc] using
385        (ih (acc ++ sep ++ x))
386@[simp] theorem split_intercalate_trailing_single_char
387    (parts : List String) (sep : Char) :
388    parts.all (fun part => part.toList.all (fun c => c != sep)) = true ->
389    split (String.intercalate (Char.toString sep) parts ++ Char.toString sep) (Char.toString sep) =
390      match parts with
391      | [] => ["", ""]
392      | _ => parts ++ [""] := by
393  intro h_safe
394  induction parts with
395  | nil =>
396      simp [split, splitOnChar, splitOnCharGo]
397  | cons part rest ih =>
398      simp at h_safe
399      have h_part : (part.toList.all fun c => c != sep) = true := by
400        simpa using h_safe.1
401      cases rest with
402      | nil =>
403          have h_empty : ("".toList.all fun c => c != sep) = true := by simp
404          calc
405            split (String.intercalate.go part (Char.toString sep) [] ++ Char.toString sep) (Char.toString sep)
406                = split (part ++ Char.toString sep) (Char.toString sep) := by
407                    simp [String.intercalate.go]
408            _ = part :: split "" (Char.toString sep) := by
409                    simpa using split_single_char_append part "" sep h_part
410            _ = [part, ""] := by
411                    simp [split_single_char_no_sep, h_empty]
412      | cons next rest' =>
413          have h_rest : ((next :: rest').all fun part => part.toList.all fun c => c != sep) = true := by
414            simpa using h_safe.2
415          calc
416            split
417                  (String.intercalate.go part (Char.toString sep) (next :: rest') ++ Char.toString sep)
418                  (Char.toString sep)
419                =
420                  split
421                    (part ++ Char.toString sep ++ (String.intercalate (Char.toString sep) (next :: rest') ++ Char.toString sep))
422                    (Char.toString sep) := by
423                    have h_join :
424                        String.intercalate.go part (Char.toString sep) (next :: rest') ++ Char.toString sep
425                          = part ++ Char.toString sep ++ (String.intercalate (Char.toString sep) (next :: rest') ++ Char.toString sep) := by
426                        calc
427                          String.intercalate.go part (Char.toString sep) (next :: rest') ++ Char.toString sep
428                              = String.intercalate.go (part ++ Char.toString sep ++ next) (Char.toString sep) rest' ++ Char.toString sep := by
429                                  simp [String.intercalate.go]
430                          _ = part ++ Char.toString sep ++ (String.intercalate.go next (Char.toString sep) rest' ++ Char.toString sep) := by
431                                  rw [intercalate_go_prefix part next (Char.toString sep) rest']
432                                  simp [String.append_assoc]
433                          _ = part ++ Char.toString sep ++ (String.intercalate (Char.toString sep) (next :: rest') ++ Char.toString sep) := by
434                                  simp [String.intercalate, String.intercalate.go]
435                    simpa using congrArg (fun s => split s (Char.toString sep)) h_join
436            _ = part :: split
437                    (String.intercalate (Char.toString sep) (next :: rest') ++ Char.toString sep)
438                    (Char.toString sep) := by
439                    simpa using split_single_char_append
440                      part
441                      (String.intercalate (Char.toString sep) (next :: rest') ++ Char.toString sep)
442                      sep
443                      h_part
444            _ = part :: (next :: rest' ++ [""]) := by
445                    simpa using ih h_rest
446end AverString"#;
447
448const LEAN_PRELUDE_NUMERIC_PARSE: &str = r#"namespace AverDigits
449def foldDigitsAcc (acc : Nat) : List Nat -> Nat
450  | [] => acc
451  | d :: ds => foldDigitsAcc (acc * 10 + d) ds
452
453def foldDigits (digits : List Nat) : Nat :=
454  foldDigitsAcc 0 digits
455
456private theorem foldDigitsAcc_append_singleton (acc : Nat) (xs : List Nat) (d : Nat) :
457    foldDigitsAcc acc (xs ++ [d]) = foldDigitsAcc acc xs * 10 + d := by
458  induction xs generalizing acc with
459  | nil =>
460      simp [foldDigitsAcc]
461  | cons x xs ih =>
462      simp [foldDigitsAcc, ih, Nat.left_distrib, Nat.add_assoc, Nat.add_left_comm]
463
464private theorem foldDigits_append_singleton (xs : List Nat) (d : Nat) :
465    foldDigits (xs ++ [d]) = foldDigits xs * 10 + d := by
466  simpa [foldDigits] using foldDigitsAcc_append_singleton 0 xs d
467
468def natDigits : Nat -> List Nat
469  | n =>
470      if n < 10 then
471        [n]
472      else
473        natDigits (n / 10) ++ [n % 10]
474termination_by
475  n => n
476
477theorem natDigits_nonempty (n : Nat) : natDigits n ≠ [] := by
478  by_cases h : n < 10
479  · rw [natDigits.eq_1]
480    simp [h]
481  · rw [natDigits.eq_1]
482    simp [h]
483
484theorem natDigits_digits_lt_ten : ∀ n : Nat, ∀ d ∈ natDigits n, d < 10 := by
485  intro n d hd
486  by_cases h : n < 10
487  · rw [natDigits.eq_1] at hd
488    simp [h] at hd
489    rcases hd with rfl
490    exact h
491  · rw [natDigits.eq_1] at hd
492    simp [h] at hd
493    rcases hd with hd | hd
494    · exact natDigits_digits_lt_ten (n / 10) d hd
495    · subst hd
496      exact Nat.mod_lt n (by omega)
497
498theorem foldDigits_natDigits : ∀ n : Nat, foldDigits (natDigits n) = n := by
499  intro n
500  by_cases h : n < 10
501  · rw [natDigits.eq_1]
502    simp [h, foldDigits, foldDigitsAcc]
503  · rw [natDigits.eq_1]
504    simp [h]
505    rw [foldDigits_append_singleton]
506    rw [foldDigits_natDigits (n / 10)]
507    omega
508
509def digitChar : Nat -> Char
510  | 0 => '0' | 1 => '1' | 2 => '2' | 3 => '3' | 4 => '4'
511  | 5 => '5' | 6 => '6' | 7 => '7' | 8 => '8' | 9 => '9'
512  | _ => '0'
513
514def charToDigit? : Char -> Option Nat
515  | '0' => some 0 | '1' => some 1 | '2' => some 2 | '3' => some 3 | '4' => some 4
516  | '5' => some 5 | '6' => some 6 | '7' => some 7 | '8' => some 8 | '9' => some 9
517  | _ => none
518
519theorem charToDigit_digitChar : ∀ d : Nat, d < 10 -> charToDigit? (digitChar d) = some d
520  | 0, _ => by simp [digitChar, charToDigit?]
521  | 1, _ => by simp [digitChar, charToDigit?]
522  | 2, _ => by simp [digitChar, charToDigit?]
523  | 3, _ => by simp [digitChar, charToDigit?]
524  | 4, _ => by simp [digitChar, charToDigit?]
525  | 5, _ => by simp [digitChar, charToDigit?]
526  | 6, _ => by simp [digitChar, charToDigit?]
527  | 7, _ => by simp [digitChar, charToDigit?]
528  | 8, _ => by simp [digitChar, charToDigit?]
529  | 9, _ => by simp [digitChar, charToDigit?]
530  | Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ n))))))))), h => by
531      omega
532
533theorem digitChar_ne_minus : ∀ d : Nat, d < 10 -> digitChar d ≠ '-'
534  | 0, _ => by decide
535  | 1, _ => by decide
536  | 2, _ => by decide
537  | 3, _ => by decide
538  | 4, _ => by decide
539  | 5, _ => by decide
540  | 6, _ => by decide
541  | 7, _ => by decide
542  | 8, _ => by decide
543  | 9, _ => by decide
544  | Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ n))))))))), h => by
545      omega
546
547theorem digitChar_not_ws : ∀ d : Nat, d < 10 ->
548    Char.toString (digitChar d) ≠ " " ∧
549    Char.toString (digitChar d) ≠ "\t" ∧
550    Char.toString (digitChar d) ≠ "\n" ∧
551    Char.toString (digitChar d) ≠ "\r"
552  | 0, _ => by decide
553  | 1, _ => by decide
554  | 2, _ => by decide
555  | 3, _ => by decide
556  | 4, _ => by decide
557  | 5, _ => by decide
558  | 6, _ => by decide
559  | 7, _ => by decide
560  | 8, _ => by decide
561  | 9, _ => by decide
562  | Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ (Nat.succ n))))))))), h => by
563      omega
564
565theorem mapM_charToDigit_digits : ∀ ds : List Nat,
566    (∀ d ∈ ds, d < 10) -> List.mapM charToDigit? (ds.map digitChar) = some ds := by
567  intro ds hds
568  induction ds with
569  | nil =>
570      simp
571  | cons d ds ih =>
572      have hd : d < 10 := hds d (by simp)
573      have htail : ∀ x ∈ ds, x < 10 := by
574        intro x hx
575        exact hds x (by simp [hx])
576      simp [charToDigit_digitChar d hd, ih htail]
577
578def natDigitsChars (n : Nat) : List Char :=
579  (natDigits n).map digitChar
580
581def parseNatChars (chars : List Char) : Option Nat :=
582  match chars with
583  | [] => none
584  | _ => do
585      let digits <- List.mapM charToDigit? chars
586      pure (foldDigits digits)
587
588theorem parseNatChars_nat (n : Nat) :
589    parseNatChars (natDigitsChars n) = some n := by
590  unfold parseNatChars natDigitsChars
591  cases h : (natDigits n).map digitChar with
592  | nil =>
593      exfalso
594      exact natDigits_nonempty n (List.map_eq_nil_iff.mp h)
595  | cons hd tl =>
596      have hdigits : List.mapM charToDigit? (List.map digitChar (natDigits n)) = some (natDigits n) :=
597        mapM_charToDigit_digits (natDigits n) (fun d hd => natDigits_digits_lt_ten n d hd)
598      rw [h] at hdigits
599      simp [h, hdigits, foldDigits_natDigits]
600end AverDigits
601
602def String.fromInt (n : Int) : String :=
603  match n with
604  | .ofNat m => String.mk (AverDigits.natDigitsChars m)
605  | .negSucc m => String.mk ('-' :: AverDigits.natDigitsChars (m + 1))
606
607def Int.fromString (s : String) : Except String Int :=
608  match s.toList with
609  | [] => .error ("Cannot parse '" ++ s ++ "' as Int")
610  | '-' :: rest =>
611    match AverDigits.parseNatChars rest with
612    | some n => .ok (-Int.ofNat n)
613    | none => .error ("Cannot parse '" ++ s ++ "' as Int")
614  | chars =>
615    match AverDigits.parseNatChars chars with
616    | some n => .ok (Int.ofNat n)
617    | none => .error ("Cannot parse '" ++ s ++ "' as Int")
618
619theorem Int.fromString_fromInt : ∀ n : Int, Int.fromString (String.fromInt n) = .ok n
620  | .ofNat m => by
621      cases h : AverDigits.natDigits m with
622      | nil =>
623          exfalso
624          exact AverDigits.natDigits_nonempty m h
625      | cons d ds =>
626          have hd : d < 10 := AverDigits.natDigits_digits_lt_ten m d (by simp [h])
627          have hne : AverDigits.digitChar d ≠ '-' := AverDigits.digitChar_ne_minus d hd
628          have hparse : AverDigits.parseNatChars (AverDigits.digitChar d :: List.map AverDigits.digitChar ds) = some m := by
629            simpa [AverDigits.natDigitsChars, h] using AverDigits.parseNatChars_nat m
630          simp [String.fromInt, Int.fromString, AverDigits.natDigitsChars, h, hne, hparse]
631  | .negSucc m => by
632      simp [String.fromInt, Int.fromString, AverDigits.parseNatChars_nat]
633      rfl
634
635private def charDigitsToNat (cs : List Char) : Nat :=
636  cs.foldl (fun acc c => acc * 10 + (c.toNat - '0'.toNat)) 0
637
638private def parseExpPart : List Char → (Bool × List Char)
639  | '-' :: rest => (true, rest.takeWhile Char.isDigit)
640  | '+' :: rest => (false, rest.takeWhile Char.isDigit)
641  | rest => (false, rest.takeWhile Char.isDigit)
642
643def Float.fromString (s : String) : Except String Float :=
644  let chars := s.toList
645  let (neg, chars) := match chars with
646    | '-' :: rest => (true, rest)
647    | _ => (false, chars)
648  let intPart := chars.takeWhile Char.isDigit
649  let rest := chars.dropWhile Char.isDigit
650  let (fracPart, rest) := match rest with
651    | '.' :: rest => (rest.takeWhile Char.isDigit, rest.dropWhile Char.isDigit)
652    | _ => ([], rest)
653  let (expNeg, expDigits) := match rest with
654    | 'e' :: rest => parseExpPart rest
655    | 'E' :: rest => parseExpPart rest
656    | _ => (false, [])
657  if intPart.isEmpty && fracPart.isEmpty then .error ("Invalid float: " ++ s)
658  else
659    let mantissa := charDigitsToNat (intPart ++ fracPart)
660    let fracLen : Int := fracPart.length
661    let expVal : Int := charDigitsToNat expDigits
662    let shift : Int := (if expNeg then -expVal else expVal) - fracLen
663    let f := if shift >= 0 then Float.ofScientific mantissa false shift.toNat
664             else Float.ofScientific mantissa true ((-shift).toNat)
665    .ok (if neg then -f else f)"#;
666
667const LEAN_PRELUDE_CHAR_BYTE: &str = r#"def Char.toCode (s : String) : Int :=
668  match s.toList.head? with
669  | some c => (c.toNat : Int)
670  | none => panic! "Char.toCode: string is empty"
671def Char.fromCode (n : Int) : Option String :=
672  if n < 0 || n > 1114111 then none
673  else if n >= 55296 && n <= 57343 then none
674  else some (Char.toString (Char.ofNat n.toNat))
675
676def hexDigit (n : Int) : String :=
677  match n with
678  | 0 => "0" | 1 => "1" | 2 => "2" | 3 => "3"
679  | 4 => "4" | 5 => "5" | 6 => "6" | 7 => "7"
680  | 8 => "8" | 9 => "9" | 10 => "a" | 11 => "b"
681  | 12 => "c" | 13 => "d" | 14 => "e" | 15 => "f"
682  | _ => "?"
683
684def byteToHex (code : Int) : String :=
685  hexDigit (code / 16) ++ hexDigit (code % 16)
686
687namespace AverByte
688private def hexValue (c : Char) : Option Int :=
689  match c with
690  | '0' => some 0  | '1' => some 1  | '2' => some 2  | '3' => some 3
691  | '4' => some 4  | '5' => some 5  | '6' => some 6  | '7' => some 7
692  | '8' => some 8  | '9' => some 9  | 'a' => some 10 | 'b' => some 11
693  | 'c' => some 12 | 'd' => some 13 | 'e' => some 14 | 'f' => some 15
694  | 'A' => some 10 | 'B' => some 11 | 'C' => some 12 | 'D' => some 13
695  | 'E' => some 14 | 'F' => some 15
696  | _ => none
697def toHex (n : Int) : Except String String :=
698  if n < 0 || n > 255 then
699    .error ("Byte.toHex: " ++ toString n ++ " is out of range 0-255")
700  else
701    .ok (byteToHex n)
702def fromHex (s : String) : Except String Int :=
703  match s.toList with
704  | [hi, lo] =>
705    match hexValue hi, hexValue lo with
706    | some h, some l => .ok (h * 16 + l)
707    | _, _ => .error ("Byte.fromHex: invalid hex '" ++ s ++ "'")
708  | _ => .error ("Byte.fromHex: expected exactly 2 hex chars, got '" ++ s ++ "'")
709end AverByte"#;
710
711fn pure_fns(ctx: &CodegenContext) -> Vec<&FnDef> {
712    ctx.modules
713        .iter()
714        .flat_map(|m| m.fn_defs.iter())
715        .chain(ctx.fn_defs.iter())
716        .filter(|fd| toplevel::is_pure_fn(fd))
717        .collect()
718}
719
720fn recursive_type_names(ctx: &CodegenContext) -> HashSet<String> {
721    ctx.modules
722        .iter()
723        .flat_map(|m| m.type_defs.iter())
724        .chain(ctx.type_defs.iter())
725        .filter(|td| toplevel::is_recursive_type_def(td))
726        .map(|td| toplevel::type_def_name(td).to_string())
727        .collect()
728}
729
730fn recursive_pure_fn_names(ctx: &CodegenContext) -> HashSet<String> {
731    let pure_names: HashSet<String> = pure_fns(ctx)
732        .into_iter()
733        .map(|fd| fd.name.clone())
734        .collect();
735    let mut callgraph_items = ctx.items.clone();
736    for module in &ctx.modules {
737        for fd in &module.fn_defs {
738            callgraph_items.push(TopLevel::FnDef(fd.clone()));
739        }
740    }
741    call_graph::find_recursive_fns(&callgraph_items)
742        .into_iter()
743        .filter(|name| pure_names.contains(name))
744        .collect()
745}
746
747fn verify_counter_key(vb: &crate::ast::VerifyBlock) -> String {
748    match &vb.kind {
749        VerifyKind::Cases => format!("fn:{}", vb.fn_name),
750        VerifyKind::Law(law) => format!("law:{}::{}", vb.fn_name, law.name),
751    }
752}
753
754fn lean_project_name(ctx: &CodegenContext) -> String {
755    ctx.items
756        .iter()
757        .find_map(|item| match item {
758            TopLevel::Module(m) => Some(m.name.clone()),
759            _ => None,
760        })
761        .unwrap_or_else(|| capitalize_first(&ctx.project_name))
762}
763
764fn expr_to_dotted_name(expr: &Expr) -> Option<String> {
765    match expr {
766        Expr::Ident(name) => Some(name.clone()),
767        Expr::Attr(obj, field) => expr_to_dotted_name(obj).map(|p| format!("{}.{}", p, field)),
768        _ => None,
769    }
770}
771
772fn call_matches(name: &str, target: &str) -> bool {
773    name == target || name.rsplit('.').next() == Some(target)
774}
775
776fn call_is_in_set(name: &str, targets: &HashSet<String>) -> bool {
777    call_matches_any(name, targets)
778}
779
780fn canonical_callee_name(name: &str, targets: &HashSet<String>) -> Option<String> {
781    if targets.contains(name) {
782        return Some(name.to_string());
783    }
784    name.rsplit('.')
785        .next()
786        .filter(|last| targets.contains(*last))
787        .map(ToString::to_string)
788}
789
790fn call_matches_any(name: &str, targets: &HashSet<String>) -> bool {
791    if targets.contains(name) {
792        return true;
793    }
794    match name.rsplit('.').next() {
795        Some(last) => targets.contains(last),
796        None => false,
797    }
798}
799
800fn is_int_minus_positive(expr: &Expr, param_name: &str) -> bool {
801    match expr {
802        Expr::BinOp(BinOp::Sub, left, right) => {
803            matches!(left.as_ref(), Expr::Ident(id) if id == param_name)
804                && matches!(right.as_ref(), Expr::Literal(crate::ast::Literal::Int(n)) if *n >= 1)
805        }
806        Expr::FnCall(callee, args) => {
807            let Some(name) = expr_to_dotted_name(callee) else {
808                return false;
809            };
810            (name == "Int.sub" || name == "int.sub")
811                && args.len() == 2
812                && matches!(&args[0], Expr::Ident(id) if id == param_name)
813                && matches!(&args[1], Expr::Literal(crate::ast::Literal::Int(n)) if *n >= 1)
814        }
815        _ => false,
816    }
817}
818
819fn collect_calls_from_expr<'a>(expr: &'a Expr, out: &mut Vec<(String, Vec<&'a Expr>)>) {
820    match expr {
821        Expr::FnCall(callee, args) => {
822            if let Some(name) = expr_to_dotted_name(callee) {
823                out.push((name, args.iter().collect()));
824            }
825            collect_calls_from_expr(callee, out);
826            for arg in args {
827                collect_calls_from_expr(arg, out);
828            }
829        }
830        Expr::TailCall(boxed) => {
831            let (name, args) = boxed.as_ref();
832            out.push((name.clone(), args.iter().collect()));
833            for arg in args {
834                collect_calls_from_expr(arg, out);
835            }
836        }
837        Expr::Attr(obj, _) => collect_calls_from_expr(obj, out),
838        Expr::BinOp(_, left, right) => {
839            collect_calls_from_expr(left, out);
840            collect_calls_from_expr(right, out);
841        }
842        Expr::Match { subject, arms, .. } => {
843            collect_calls_from_expr(subject, out);
844            for arm in arms {
845                collect_calls_from_expr(&arm.body, out);
846            }
847        }
848        Expr::Constructor(_, inner) => {
849            if let Some(inner) = inner {
850                collect_calls_from_expr(inner, out);
851            }
852        }
853        Expr::ErrorProp(inner) => collect_calls_from_expr(inner, out),
854        Expr::InterpolatedStr(parts) => {
855            for p in parts {
856                if let crate::ast::StrPart::Parsed(e) = p {
857                    collect_calls_from_expr(e, out);
858                }
859            }
860        }
861        Expr::List(items) | Expr::Tuple(items) => {
862            for item in items {
863                collect_calls_from_expr(item, out);
864            }
865        }
866        Expr::MapLiteral(entries) => {
867            for (k, v) in entries {
868                collect_calls_from_expr(k, out);
869                collect_calls_from_expr(v, out);
870            }
871        }
872        Expr::RecordCreate { fields, .. } => {
873            for (_, v) in fields {
874                collect_calls_from_expr(v, out);
875            }
876        }
877        Expr::RecordUpdate { base, updates, .. } => {
878            collect_calls_from_expr(base, out);
879            for (_, v) in updates {
880                collect_calls_from_expr(v, out);
881            }
882        }
883        Expr::Literal(_) | Expr::Ident(_) | Expr::Resolved(_) => {}
884    }
885}
886
887fn collect_calls_from_body(body: &FnBody) -> Vec<(String, Vec<&Expr>)> {
888    let mut out = Vec::new();
889    for stmt in body.stmts() {
890        match stmt {
891            Stmt::Binding(_, _, expr) | Stmt::Expr(expr) => collect_calls_from_expr(expr, &mut out),
892        }
893    }
894    out
895}
896
897fn collect_list_tail_binders_from_expr(
898    expr: &Expr,
899    list_param_name: &str,
900    tails: &mut HashSet<String>,
901) {
902    match expr {
903        Expr::Match { subject, arms, .. } => {
904            if matches!(subject.as_ref(), Expr::Ident(id) if id == list_param_name) {
905                for MatchArm { pattern, .. } in arms {
906                    if let Pattern::Cons(_, tail) = pattern {
907                        tails.insert(tail.clone());
908                    }
909                }
910            }
911            for arm in arms {
912                collect_list_tail_binders_from_expr(&arm.body, list_param_name, tails);
913            }
914            collect_list_tail_binders_from_expr(subject, list_param_name, tails);
915        }
916        Expr::FnCall(callee, args) => {
917            collect_list_tail_binders_from_expr(callee, list_param_name, tails);
918            for arg in args {
919                collect_list_tail_binders_from_expr(arg, list_param_name, tails);
920            }
921        }
922        Expr::TailCall(boxed) => {
923            let (_, args) = boxed.as_ref();
924            for arg in args {
925                collect_list_tail_binders_from_expr(arg, list_param_name, tails);
926            }
927        }
928        Expr::Attr(obj, _) => collect_list_tail_binders_from_expr(obj, list_param_name, tails),
929        Expr::BinOp(_, left, right) => {
930            collect_list_tail_binders_from_expr(left, list_param_name, tails);
931            collect_list_tail_binders_from_expr(right, list_param_name, tails);
932        }
933        Expr::Constructor(_, inner) => {
934            if let Some(inner) = inner {
935                collect_list_tail_binders_from_expr(inner, list_param_name, tails);
936            }
937        }
938        Expr::ErrorProp(inner) => {
939            collect_list_tail_binders_from_expr(inner, list_param_name, tails)
940        }
941        Expr::InterpolatedStr(parts) => {
942            for p in parts {
943                if let crate::ast::StrPart::Parsed(e) = p {
944                    collect_list_tail_binders_from_expr(e, list_param_name, tails);
945                }
946            }
947        }
948        Expr::List(items) | Expr::Tuple(items) => {
949            for item in items {
950                collect_list_tail_binders_from_expr(item, list_param_name, tails);
951            }
952        }
953        Expr::MapLiteral(entries) => {
954            for (k, v) in entries {
955                collect_list_tail_binders_from_expr(k, list_param_name, tails);
956                collect_list_tail_binders_from_expr(v, list_param_name, tails);
957            }
958        }
959        Expr::RecordCreate { fields, .. } => {
960            for (_, v) in fields {
961                collect_list_tail_binders_from_expr(v, list_param_name, tails);
962            }
963        }
964        Expr::RecordUpdate { base, updates, .. } => {
965            collect_list_tail_binders_from_expr(base, list_param_name, tails);
966            for (_, v) in updates {
967                collect_list_tail_binders_from_expr(v, list_param_name, tails);
968            }
969        }
970        Expr::Literal(_) | Expr::Ident(_) | Expr::Resolved(_) => {}
971    }
972}
973
974fn collect_list_tail_binders(fd: &FnDef, list_param_name: &str) -> HashSet<String> {
975    let mut tails = HashSet::new();
976    for stmt in fd.body.stmts() {
977        match stmt {
978            Stmt::Binding(_, _, expr) | Stmt::Expr(expr) => {
979                collect_list_tail_binders_from_expr(expr, list_param_name, &mut tails)
980            }
981        }
982    }
983    tails
984}
985
986fn find_type_def<'a>(ctx: &'a CodegenContext, type_name: &str) -> Option<&'a TypeDef> {
987    ctx.modules
988        .iter()
989        .flat_map(|m| m.type_defs.iter())
990        .chain(ctx.type_defs.iter())
991        .find(|td| toplevel::type_def_name(td) == type_name)
992}
993
994fn recursive_constructor_binders(
995    td: &TypeDef,
996    variant_name: &str,
997    binders: &[String],
998) -> Vec<String> {
999    let variant_short = variant_name.rsplit('.').next().unwrap_or(variant_name);
1000    match td {
1001        TypeDef::Sum { name, variants, .. } => variants
1002            .iter()
1003            .find(|variant| variant.name == variant_short)
1004            .map(|variant| {
1005                variant
1006                    .fields
1007                    .iter()
1008                    .zip(binders.iter())
1009                    .filter_map(|(field_ty, binder)| {
1010                        (field_ty.trim() == name).then_some(binder.clone())
1011                    })
1012                    .collect()
1013            })
1014            .unwrap_or_default(),
1015        TypeDef::Product { .. } => Vec::new(),
1016    }
1017}
1018
1019fn grow_recursive_subterm_binders_from_expr(
1020    expr: &Expr,
1021    tracked: &HashSet<String>,
1022    td: &TypeDef,
1023    out: &mut HashSet<String>,
1024) {
1025    match expr {
1026        Expr::Match { subject, arms, .. } => {
1027            if let Expr::Ident(subject_name) = subject.as_ref()
1028                && tracked.contains(subject_name)
1029            {
1030                for arm in arms {
1031                    if let Pattern::Constructor(variant_name, binders) = &arm.pattern {
1032                        out.extend(recursive_constructor_binders(td, variant_name, binders));
1033                    }
1034                }
1035            }
1036            grow_recursive_subterm_binders_from_expr(subject, tracked, td, out);
1037            for arm in arms {
1038                grow_recursive_subterm_binders_from_expr(&arm.body, tracked, td, out);
1039            }
1040        }
1041        Expr::FnCall(callee, args) => {
1042            grow_recursive_subterm_binders_from_expr(callee, tracked, td, out);
1043            for arg in args {
1044                grow_recursive_subterm_binders_from_expr(arg, tracked, td, out);
1045            }
1046        }
1047        Expr::Attr(obj, _) => grow_recursive_subterm_binders_from_expr(obj, tracked, td, out),
1048        Expr::BinOp(_, left, right) => {
1049            grow_recursive_subterm_binders_from_expr(left, tracked, td, out);
1050            grow_recursive_subterm_binders_from_expr(right, tracked, td, out);
1051        }
1052        Expr::Constructor(_, Some(inner)) | Expr::ErrorProp(inner) => {
1053            grow_recursive_subterm_binders_from_expr(inner, tracked, td, out)
1054        }
1055        Expr::InterpolatedStr(parts) => {
1056            for part in parts {
1057                if let crate::ast::StrPart::Parsed(inner) = part {
1058                    grow_recursive_subterm_binders_from_expr(inner, tracked, td, out);
1059                }
1060            }
1061        }
1062        Expr::List(items) | Expr::Tuple(items) => {
1063            for item in items {
1064                grow_recursive_subterm_binders_from_expr(item, tracked, td, out);
1065            }
1066        }
1067        Expr::MapLiteral(entries) => {
1068            for (k, v) in entries {
1069                grow_recursive_subterm_binders_from_expr(k, tracked, td, out);
1070                grow_recursive_subterm_binders_from_expr(v, tracked, td, out);
1071            }
1072        }
1073        Expr::RecordCreate { fields, .. } => {
1074            for (_, v) in fields {
1075                grow_recursive_subterm_binders_from_expr(v, tracked, td, out);
1076            }
1077        }
1078        Expr::RecordUpdate { base, updates, .. } => {
1079            grow_recursive_subterm_binders_from_expr(base, tracked, td, out);
1080            for (_, v) in updates {
1081                grow_recursive_subterm_binders_from_expr(v, tracked, td, out);
1082            }
1083        }
1084        Expr::TailCall(boxed) => {
1085            for arg in &boxed.1 {
1086                grow_recursive_subterm_binders_from_expr(arg, tracked, td, out);
1087            }
1088        }
1089        Expr::Literal(_) | Expr::Ident(_) | Expr::Resolved(_) | Expr::Constructor(_, None) => {}
1090    }
1091}
1092
1093fn collect_recursive_subterm_binders(
1094    fd: &FnDef,
1095    param_name: &str,
1096    param_type: &str,
1097    ctx: &CodegenContext,
1098) -> HashSet<String> {
1099    let Some(td) = find_type_def(ctx, param_type) else {
1100        return HashSet::new();
1101    };
1102    let mut tracked: HashSet<String> = HashSet::from([param_name.to_string()]);
1103    loop {
1104        let mut discovered = HashSet::new();
1105        for stmt in fd.body.stmts() {
1106            match stmt {
1107                Stmt::Binding(_, _, expr) | Stmt::Expr(expr) => {
1108                    grow_recursive_subterm_binders_from_expr(expr, &tracked, td, &mut discovered);
1109                }
1110            }
1111        }
1112        let before = tracked.len();
1113        tracked.extend(discovered);
1114        if tracked.len() == before {
1115            break;
1116        }
1117    }
1118    tracked.remove(param_name);
1119    tracked
1120}
1121
1122fn single_int_countdown_param_index(fd: &FnDef) -> Option<usize> {
1123    let recursive_calls: Vec<Vec<&Expr>> = collect_calls_from_body(fd.body.as_ref())
1124        .into_iter()
1125        .filter(|(name, _)| call_matches(name, &fd.name))
1126        .map(|(_, args)| args)
1127        .collect();
1128    if recursive_calls.is_empty() {
1129        return None;
1130    }
1131
1132    fd.params
1133        .iter()
1134        .enumerate()
1135        .find_map(|(idx, (param_name, param_ty))| {
1136            if param_ty != "Int" {
1137                return None;
1138            }
1139            let countdown_ok = recursive_calls.iter().all(|args| {
1140                args.get(idx)
1141                    .cloned()
1142                    .is_some_and(|arg| is_int_minus_positive(arg, param_name))
1143            });
1144            if countdown_ok {
1145                return Some(idx);
1146            }
1147
1148            // Negative-guarded ascent (match n < 0) is handled as countdown
1149            // because the fuel is natAbs(n) which works for both directions.
1150            let ascent_ok = recursive_calls.iter().all(|args| {
1151                args.get(idx)
1152                    .copied()
1153                    .is_some_and(|arg| is_int_plus_positive(arg, param_name))
1154            });
1155            (ascent_ok && has_negative_guarded_ascent(fd, param_name)).then_some(idx)
1156        })
1157}
1158
1159fn has_negative_guarded_ascent(fd: &FnDef, param_name: &str) -> bool {
1160    let Some(Expr::Match { subject, arms, .. }) = fd.body.tail_expr() else {
1161        return false;
1162    };
1163    let Expr::BinOp(BinOp::Lt, left, right) = subject.as_ref() else {
1164        return false;
1165    };
1166    if !is_ident(left, param_name)
1167        || !matches!(right.as_ref(), Expr::Literal(crate::ast::Literal::Int(0)))
1168    {
1169        return false;
1170    }
1171
1172    let mut true_arm = None;
1173    let mut false_arm = None;
1174    for arm in arms {
1175        match arm.pattern {
1176            Pattern::Literal(crate::ast::Literal::Bool(true)) => true_arm = Some(arm.body.as_ref()),
1177            Pattern::Literal(crate::ast::Literal::Bool(false)) => {
1178                false_arm = Some(arm.body.as_ref())
1179            }
1180            _ => return false,
1181        }
1182    }
1183
1184    let Some(true_arm) = true_arm else {
1185        return false;
1186    };
1187    let Some(false_arm) = false_arm else {
1188        return false;
1189    };
1190
1191    let mut true_calls = Vec::new();
1192    collect_calls_from_expr(true_arm, &mut true_calls);
1193    let mut false_calls = Vec::new();
1194    collect_calls_from_expr(false_arm, &mut false_calls);
1195
1196    true_calls
1197        .iter()
1198        .any(|(name, _)| call_matches(name, &fd.name))
1199        && false_calls
1200            .iter()
1201            .all(|(name, _)| !call_matches(name, &fd.name))
1202}
1203
1204/// Detect ascending-index recursion and extract the bound expression.
1205/// Returns (param_index, bound_lean_string) if found.
1206fn single_int_ascending_param(fd: &FnDef) -> Option<(usize, String)> {
1207    let recursive_calls: Vec<Vec<&Expr>> = collect_calls_from_body(fd.body.as_ref())
1208        .into_iter()
1209        .filter(|(name, _)| call_matches(name, &fd.name))
1210        .map(|(_, args)| args)
1211        .collect();
1212    if recursive_calls.is_empty() {
1213        return None;
1214    }
1215
1216    for (idx, (param_name, param_ty)) in fd.params.iter().enumerate() {
1217        if param_ty != "Int" {
1218            continue;
1219        }
1220        let ascent_ok = recursive_calls.iter().all(|args| {
1221            args.get(idx)
1222                .cloned()
1223                .is_some_and(|arg| is_int_plus_positive(arg, param_name))
1224        });
1225        if !ascent_ok {
1226            continue;
1227        }
1228        if let Some(bound_lean) = extract_equality_bound_lean(fd, param_name) {
1229            return Some((idx, bound_lean));
1230        }
1231    }
1232    None
1233}
1234
1235/// Extract the bound expression from `match param == BOUND` as a Lean string.
1236fn extract_equality_bound_lean(fd: &FnDef, param_name: &str) -> Option<String> {
1237    let Expr::Match { subject, arms, .. } = fd.body.tail_expr()? else {
1238        return None;
1239    };
1240    let Expr::BinOp(BinOp::Eq, left, right) = subject.as_ref() else {
1241        return None;
1242    };
1243    if !is_ident(left, param_name) {
1244        return None;
1245    }
1246    // Verify: true arm = base (no self-call), false arm = recursive (has self-call)
1247    let mut true_has_self = false;
1248    let mut false_has_self = false;
1249    for arm in arms {
1250        match arm.pattern {
1251            Pattern::Literal(crate::ast::Literal::Bool(true)) => {
1252                let mut calls = Vec::new();
1253                collect_calls_from_expr(&arm.body, &mut calls);
1254                true_has_self = calls.iter().any(|(n, _)| call_matches(n, &fd.name));
1255            }
1256            Pattern::Literal(crate::ast::Literal::Bool(false)) => {
1257                let mut calls = Vec::new();
1258                collect_calls_from_expr(&arm.body, &mut calls);
1259                false_has_self = calls.iter().any(|(n, _)| call_matches(n, &fd.name));
1260            }
1261            _ => return None,
1262        }
1263    }
1264    if true_has_self || !false_has_self {
1265        return None;
1266    }
1267    // Convert bound expr to Lean string — works for literals and simple expressions
1268    Some(bound_expr_to_lean(right))
1269}
1270
1271fn bound_expr_to_lean(expr: &Expr) -> String {
1272    match expr {
1273        Expr::Literal(crate::ast::Literal::Int(n)) => format!("{}", n),
1274        Expr::Ident(name) => expr::aver_name_to_lean(name),
1275        Expr::FnCall(f, args) => {
1276            if let Some(dotted) = crate::codegen::common::expr_to_dotted_name(f) {
1277                // List.len(xs) → xs.length in Lean
1278                if dotted == "List.len" && args.len() == 1 {
1279                    return format!("{}.length", bound_expr_to_lean(&args[0]));
1280                }
1281                let lean_args: Vec<String> = args.iter().map(bound_expr_to_lean).collect();
1282                format!(
1283                    "({} {})",
1284                    expr::aver_name_to_lean(&dotted),
1285                    lean_args.join(" ")
1286                )
1287            } else {
1288                "0".to_string()
1289            }
1290        }
1291        Expr::Attr(obj, field) => format!(
1292            "{}.{}",
1293            bound_expr_to_lean(obj),
1294            expr::aver_name_to_lean(field)
1295        ),
1296        _ => "0".to_string(),
1297    }
1298}
1299
1300fn supports_single_sizeof_structural(fd: &FnDef, ctx: &CodegenContext) -> bool {
1301    let recursive_calls: Vec<Vec<&Expr>> = collect_calls_from_body(fd.body.as_ref())
1302        .into_iter()
1303        .filter(|(name, _)| call_matches(name, &fd.name))
1304        .map(|(_, args)| args)
1305        .collect();
1306    if recursive_calls.is_empty() {
1307        return false;
1308    }
1309
1310    let metric_indices = sizeof_measure_param_indices(fd);
1311    if metric_indices.is_empty() {
1312        return false;
1313    }
1314
1315    let binder_sets: HashMap<usize, HashSet<String>> = metric_indices
1316        .iter()
1317        .filter_map(|idx| {
1318            let (param_name, param_type) = fd.params.get(*idx)?;
1319            recursive_type_names(ctx).contains(param_type).then(|| {
1320                (
1321                    *idx,
1322                    collect_recursive_subterm_binders(fd, param_name, param_type, ctx),
1323                )
1324            })
1325        })
1326        .collect();
1327
1328    if binder_sets.values().all(HashSet::is_empty) {
1329        return false;
1330    }
1331
1332    recursive_calls.iter().all(|args| {
1333        let mut strictly_smaller = false;
1334        for idx in &metric_indices {
1335            let Some((param_name, _)) = fd.params.get(*idx) else {
1336                return false;
1337            };
1338            let Some(arg) = args.get(*idx).cloned() else {
1339                return false;
1340            };
1341            if is_ident(arg, param_name) {
1342                continue;
1343            }
1344            let Some(binders) = binder_sets.get(idx) else {
1345                return false;
1346            };
1347            if matches!(arg, Expr::Ident(id) if binders.contains(id)) {
1348                strictly_smaller = true;
1349                continue;
1350            }
1351            return false;
1352        }
1353        strictly_smaller
1354    })
1355}
1356
1357fn single_list_structural_param_index(fd: &FnDef) -> Option<usize> {
1358    fd.params
1359        .iter()
1360        .enumerate()
1361        .find_map(|(param_index, (param_name, param_ty))| {
1362            if !(param_ty.starts_with("List<") || param_ty == "List") {
1363                return None;
1364            }
1365
1366            let tails = collect_list_tail_binders(fd, param_name);
1367            if tails.is_empty() {
1368                return None;
1369            }
1370
1371            let recursive_calls: Vec<Option<&Expr>> = collect_calls_from_body(fd.body.as_ref())
1372                .into_iter()
1373                .filter(|(name, _)| call_matches(name, &fd.name))
1374                .map(|(_, args)| args.get(param_index).cloned())
1375                .collect();
1376            if recursive_calls.is_empty() {
1377                return None;
1378            }
1379
1380            recursive_calls
1381                .into_iter()
1382                .all(|arg| {
1383                    matches!(
1384                        arg,
1385                        Some(Expr::Ident(id)) if tails.contains(id)
1386                    )
1387                })
1388                .then_some(param_index)
1389        })
1390}
1391
1392fn is_ident(expr: &Expr, name: &str) -> bool {
1393    matches!(expr, Expr::Ident(id) if id == name)
1394}
1395
1396fn is_int_plus_positive(expr: &Expr, param_name: &str) -> bool {
1397    match expr {
1398        Expr::BinOp(BinOp::Add, left, right) => {
1399            matches!(left.as_ref(), Expr::Ident(id) if id == param_name)
1400                && matches!(right.as_ref(), Expr::Literal(crate::ast::Literal::Int(n)) if *n >= 1)
1401        }
1402        Expr::FnCall(callee, args) => {
1403            let Some(name) = expr_to_dotted_name(callee) else {
1404                return false;
1405            };
1406            (name == "Int.add" || name == "int.add")
1407                && args.len() == 2
1408                && matches!(&args[0], Expr::Ident(id) if id == param_name)
1409                && matches!(&args[1], Expr::Literal(crate::ast::Literal::Int(n)) if *n >= 1)
1410        }
1411        _ => false,
1412    }
1413}
1414
1415fn is_skip_ws_advance(expr: &Expr, string_param: &str, pos_param: &str) -> bool {
1416    let Expr::FnCall(callee, args) = expr else {
1417        return false;
1418    };
1419    let Some(name) = expr_to_dotted_name(callee) else {
1420        return false;
1421    };
1422    if !call_matches(&name, "skipWs") || args.len() != 2 {
1423        return false;
1424    }
1425    is_ident(&args[0], string_param) && is_int_plus_positive(&args[1], pos_param)
1426}
1427
1428fn is_skip_ws_same(expr: &Expr, string_param: &str, pos_param: &str) -> bool {
1429    let Expr::FnCall(callee, args) = expr else {
1430        return false;
1431    };
1432    let Some(name) = expr_to_dotted_name(callee) else {
1433        return false;
1434    };
1435    if !call_matches(&name, "skipWs") || args.len() != 2 {
1436        return false;
1437    }
1438    is_ident(&args[0], string_param) && is_ident(&args[1], pos_param)
1439}
1440
1441fn is_string_pos_advance(expr: &Expr, string_param: &str, pos_param: &str) -> bool {
1442    is_int_plus_positive(expr, pos_param) || is_skip_ws_advance(expr, string_param, pos_param)
1443}
1444
1445#[derive(Clone, Copy, Debug, Eq, PartialEq)]
1446enum StringPosEdge {
1447    Same,
1448    Advance,
1449}
1450
1451fn classify_string_pos_edge(
1452    expr: &Expr,
1453    string_param: &str,
1454    pos_param: &str,
1455) -> Option<StringPosEdge> {
1456    if is_ident(expr, pos_param) || is_skip_ws_same(expr, string_param, pos_param) {
1457        return Some(StringPosEdge::Same);
1458    }
1459    if is_string_pos_advance(expr, string_param, pos_param) {
1460        return Some(StringPosEdge::Advance);
1461    }
1462    if let Expr::FnCall(callee, args) = expr {
1463        let name = expr_to_dotted_name(callee)?;
1464        if call_matches(&name, "skipWs")
1465            && args.len() == 2
1466            && is_ident(&args[0], string_param)
1467            && matches!(&args[1], Expr::Ident(id) if id != pos_param)
1468        {
1469            return Some(StringPosEdge::Advance);
1470        }
1471    }
1472    if matches!(expr, Expr::Ident(id) if id != pos_param) {
1473        return Some(StringPosEdge::Advance);
1474    }
1475    None
1476}
1477
1478fn ranks_from_same_edges(
1479    names: &HashSet<String>,
1480    same_edges: &HashMap<String, HashSet<String>>,
1481) -> Option<HashMap<String, usize>> {
1482    let mut indegree: HashMap<String, usize> = names.iter().map(|n| (n.clone(), 0)).collect();
1483    for outs in same_edges.values() {
1484        for to in outs {
1485            if let Some(entry) = indegree.get_mut(to) {
1486                *entry += 1;
1487            } else {
1488                return None;
1489            }
1490        }
1491    }
1492
1493    let mut queue: Vec<String> = indegree
1494        .iter()
1495        .filter_map(|(name, &deg)| (deg == 0).then_some(name.clone()))
1496        .collect();
1497    queue.sort();
1498    let mut topo = Vec::new();
1499    while let Some(node) = queue.pop() {
1500        topo.push(node.clone());
1501        let outs = same_edges.get(&node).cloned().unwrap_or_default();
1502        let mut newly_zero = Vec::new();
1503        for to in outs {
1504            if let Some(entry) = indegree.get_mut(&to) {
1505                *entry -= 1;
1506                if *entry == 0 {
1507                    newly_zero.push(to);
1508                }
1509            } else {
1510                return None;
1511            }
1512        }
1513        newly_zero.sort();
1514        queue.extend(newly_zero);
1515    }
1516
1517    if topo.len() != names.len() {
1518        return None;
1519    }
1520
1521    let n = topo.len();
1522    let mut ranks = HashMap::new();
1523    for (idx, name) in topo.into_iter().enumerate() {
1524        ranks.insert(name, n - idx);
1525    }
1526    Some(ranks)
1527}
1528
1529fn supports_single_string_pos_advance(fd: &FnDef) -> bool {
1530    let Some((string_param, string_ty)) = fd.params.first() else {
1531        return false;
1532    };
1533    let Some((pos_param, pos_ty)) = fd.params.get(1) else {
1534        return false;
1535    };
1536    if string_ty != "String" || pos_ty != "Int" {
1537        return false;
1538    }
1539
1540    let recursive_calls: Vec<(Option<&Expr>, Option<&Expr>)> =
1541        collect_calls_from_body(fd.body.as_ref())
1542            .into_iter()
1543            .filter(|(name, _)| call_matches(name, &fd.name))
1544            .map(|(_, args)| (args.first().cloned(), args.get(1).cloned()))
1545            .collect();
1546    if recursive_calls.is_empty() {
1547        return false;
1548    }
1549
1550    recursive_calls.into_iter().all(|(arg0, arg1)| {
1551        arg0.is_some_and(|e| is_ident(e, string_param))
1552            && arg1.is_some_and(|e| is_string_pos_advance(e, string_param, pos_param))
1553    })
1554}
1555
1556fn supports_mutual_int_countdown(component: &[&FnDef]) -> bool {
1557    if component.len() < 2 {
1558        return false;
1559    }
1560    if component
1561        .iter()
1562        .any(|fd| !matches!(fd.params.first(), Some((_, t)) if t == "Int"))
1563    {
1564        return false;
1565    }
1566    let names: HashSet<String> = component.iter().map(|fd| fd.name.clone()).collect();
1567    let mut any_intra = false;
1568    for fd in component {
1569        let param_name = &fd.params[0].0;
1570        for (callee, args) in collect_calls_from_body(fd.body.as_ref()) {
1571            if !call_is_in_set(&callee, &names) {
1572                continue;
1573            }
1574            any_intra = true;
1575            let Some(arg0) = args.first().cloned() else {
1576                return false;
1577            };
1578            if !is_int_minus_positive(arg0, param_name) {
1579                return false;
1580            }
1581        }
1582    }
1583    any_intra
1584}
1585
1586fn supports_mutual_string_pos_advance(component: &[&FnDef]) -> Option<HashMap<String, usize>> {
1587    if component.len() < 2 {
1588        return None;
1589    }
1590    if component.iter().any(|fd| {
1591        !matches!(fd.params.first(), Some((_, t)) if t == "String")
1592            || !matches!(fd.params.get(1), Some((_, t)) if t == "Int")
1593    }) {
1594        return None;
1595    }
1596
1597    let names: HashSet<String> = component.iter().map(|fd| fd.name.clone()).collect();
1598    let mut same_edges: HashMap<String, HashSet<String>> =
1599        names.iter().map(|n| (n.clone(), HashSet::new())).collect();
1600    let mut any_intra = false;
1601
1602    for fd in component {
1603        let string_param = &fd.params[0].0;
1604        let pos_param = &fd.params[1].0;
1605        for (callee_raw, args) in collect_calls_from_body(fd.body.as_ref()) {
1606            let Some(callee) = canonical_callee_name(&callee_raw, &names) else {
1607                continue;
1608            };
1609            any_intra = true;
1610
1611            let arg0 = args.first().cloned()?;
1612            let arg1 = args.get(1).cloned()?;
1613
1614            if !is_ident(arg0, string_param) {
1615                return None;
1616            }
1617
1618            match classify_string_pos_edge(arg1, string_param, pos_param) {
1619                Some(StringPosEdge::Same) => {
1620                    if let Some(edges) = same_edges.get_mut(&fd.name) {
1621                        edges.insert(callee);
1622                    } else {
1623                        return None;
1624                    }
1625                }
1626                Some(StringPosEdge::Advance) => {}
1627                None => return None,
1628            }
1629        }
1630    }
1631
1632    if !any_intra {
1633        return None;
1634    }
1635
1636    ranks_from_same_edges(&names, &same_edges)
1637}
1638
1639fn is_scalar_like_type(type_name: &str) -> bool {
1640    matches!(
1641        type_name,
1642        "Int" | "Float" | "Bool" | "String" | "Char" | "Byte" | "Unit"
1643    )
1644}
1645
1646pub(super) fn sizeof_measure_param_indices(fd: &FnDef) -> Vec<usize> {
1647    fd.params
1648        .iter()
1649        .enumerate()
1650        .filter_map(|(idx, (_, type_name))| (!is_scalar_like_type(type_name)).then_some(idx))
1651        .collect()
1652}
1653
1654fn supports_mutual_sizeof_ranked(component: &[&FnDef]) -> Option<HashMap<String, usize>> {
1655    if component.len() < 2 {
1656        return None;
1657    }
1658    let names: HashSet<String> = component.iter().map(|fd| fd.name.clone()).collect();
1659    let metric_indices: HashMap<String, Vec<usize>> = component
1660        .iter()
1661        .map(|fd| (fd.name.clone(), sizeof_measure_param_indices(fd)))
1662        .collect();
1663    if component.iter().any(|fd| {
1664        metric_indices
1665            .get(&fd.name)
1666            .is_none_or(|indices| indices.is_empty())
1667    }) {
1668        return None;
1669    }
1670
1671    let mut same_edges: HashMap<String, HashSet<String>> =
1672        names.iter().map(|n| (n.clone(), HashSet::new())).collect();
1673    let mut any_intra = false;
1674    for fd in component {
1675        let caller_metric_indices = metric_indices.get(&fd.name)?;
1676        let caller_metric_params: Vec<&str> = caller_metric_indices
1677            .iter()
1678            .filter_map(|idx| fd.params.get(*idx).map(|(name, _)| name.as_str()))
1679            .collect();
1680        for (callee_raw, args) in collect_calls_from_body(fd.body.as_ref()) {
1681            let Some(callee) = canonical_callee_name(&callee_raw, &names) else {
1682                continue;
1683            };
1684            any_intra = true;
1685            let callee_metric_indices = metric_indices.get(&callee)?;
1686            let is_same_edge = callee_metric_indices.len() == caller_metric_params.len()
1687                && callee_metric_indices
1688                    .iter()
1689                    .enumerate()
1690                    .all(|(pos, callee_idx)| {
1691                        let Some(arg) = args.get(*callee_idx).cloned() else {
1692                            return false;
1693                        };
1694                        is_ident(arg, caller_metric_params[pos])
1695                    });
1696            if is_same_edge {
1697                if let Some(edges) = same_edges.get_mut(&fd.name) {
1698                    edges.insert(callee);
1699                } else {
1700                    return None;
1701                }
1702            }
1703        }
1704    }
1705    if !any_intra {
1706        return None;
1707    }
1708
1709    let ranks = ranks_from_same_edges(&names, &same_edges)?;
1710    let mut out = HashMap::new();
1711    for fd in component {
1712        let rank = ranks.get(&fd.name).cloned()?;
1713        out.insert(fd.name.clone(), rank);
1714    }
1715    Some(out)
1716}
1717
1718fn proof_mode_recursion_analysis(
1719    ctx: &CodegenContext,
1720) -> (HashMap<String, RecursionPlan>, Vec<ProofModeIssue>) {
1721    let mut plans = HashMap::new();
1722    let mut issues = Vec::new();
1723
1724    let all_pure = pure_fns(ctx);
1725    let recursive_names = recursive_pure_fn_names(ctx);
1726    let components = call_graph::ordered_fn_components(&all_pure, &ctx.module_prefixes);
1727
1728    for component in components {
1729        if component.is_empty() {
1730            continue;
1731        }
1732        let is_recursive_component =
1733            component.len() > 1 || recursive_names.contains(&component[0].name);
1734        if !is_recursive_component {
1735            continue;
1736        }
1737
1738        if component.len() > 1 {
1739            if supports_mutual_int_countdown(&component) {
1740                for fd in &component {
1741                    plans.insert(fd.name.clone(), RecursionPlan::MutualIntCountdown);
1742                }
1743            } else if let Some(ranks) = supports_mutual_string_pos_advance(&component) {
1744                for fd in &component {
1745                    if let Some(rank) = ranks.get(&fd.name).cloned() {
1746                        plans.insert(
1747                            fd.name.clone(),
1748                            RecursionPlan::MutualStringPosAdvance { rank },
1749                        );
1750                    }
1751                }
1752            } else if let Some(rankings) = supports_mutual_sizeof_ranked(&component) {
1753                for fd in &component {
1754                    if let Some(rank) = rankings.get(&fd.name).cloned() {
1755                        plans.insert(fd.name.clone(), RecursionPlan::MutualSizeOfRanked { rank });
1756                    }
1757                }
1758            } else {
1759                let names = component
1760                    .iter()
1761                    .map(|fd| fd.name.clone())
1762                    .collect::<Vec<_>>()
1763                    .join(", ");
1764                let line = component.iter().map(|fd| fd.line).min().unwrap_or(1);
1765                issues.push(ProofModeIssue {
1766                    line,
1767                    message: format!(
1768                        "unsupported mutual recursion group (currently supported in proof mode: Int countdown on first param): {}",
1769                        names
1770                    ),
1771                });
1772            }
1773            continue;
1774        }
1775
1776        let fd = component[0];
1777        if recurrence::detect_second_order_int_linear_recurrence(fd).is_some() {
1778            plans.insert(fd.name.clone(), RecursionPlan::LinearRecurrence2);
1779        } else if let Some((param_index, bound_lean)) = single_int_ascending_param(fd) {
1780            plans.insert(
1781                fd.name.clone(),
1782                RecursionPlan::IntAscending {
1783                    param_index,
1784                    bound_lean,
1785                },
1786            );
1787        } else if let Some(param_index) = single_int_countdown_param_index(fd) {
1788            plans.insert(fd.name.clone(), RecursionPlan::IntCountdown { param_index });
1789        } else if supports_single_sizeof_structural(fd, ctx) {
1790            plans.insert(fd.name.clone(), RecursionPlan::SizeOfStructural);
1791        } else if let Some(param_index) = single_list_structural_param_index(fd) {
1792            plans.insert(
1793                fd.name.clone(),
1794                RecursionPlan::ListStructural { param_index },
1795            );
1796        } else if supports_single_string_pos_advance(fd) {
1797            plans.insert(fd.name.clone(), RecursionPlan::StringPosAdvance);
1798        } else {
1799            issues.push(ProofModeIssue {
1800                line: fd.line,
1801                message: format!(
1802                    "recursive function '{}' is outside proof subset (currently supported: Int countdown, second-order affine Int recurrences with pair-state worker, structural recursion on List/recursive ADTs, String+position, mutual Int countdown, mutual String+position, and ranked sizeOf recursion)",
1803                    fd.name
1804                ),
1805            });
1806        }
1807    }
1808
1809    (plans, issues)
1810}
1811
1812/// Proof-mode diagnostics for Lean transpilation.
1813///
1814/// Returns human-readable notices for recursive shapes that still fall back to
1815/// regular `partial` Lean defs instead of total proof-mode emission.
1816pub fn proof_mode_findings(ctx: &CodegenContext) -> Vec<ProofModeIssue> {
1817    let (_plans, issues) = proof_mode_recursion_analysis(ctx);
1818    issues
1819}
1820
1821pub fn proof_mode_issues(ctx: &CodegenContext) -> Vec<String> {
1822    proof_mode_findings(ctx)
1823        .into_iter()
1824        .map(|issue| issue.message)
1825        .collect()
1826}
1827
1828/// Transpile an Aver program to a Lean 4 project.
1829pub fn transpile(ctx: &CodegenContext) -> ProjectOutput {
1830    transpile_with_verify_mode(ctx, VerifyEmitMode::NativeDecide)
1831}
1832
1833/// Proof-mode transpilation.
1834///
1835/// Uses recursion plans validated by `proof_mode_issues` and emits supported
1836/// recursive functions without `partial`, adding `termination_by` scaffolding.
1837pub fn transpile_for_proof_mode(
1838    ctx: &CodegenContext,
1839    verify_mode: VerifyEmitMode,
1840) -> ProjectOutput {
1841    let (plans, _issues) = proof_mode_recursion_analysis(ctx);
1842    let recursive_names = recursive_pure_fn_names(ctx);
1843    let recursive_types = recursive_type_names(ctx);
1844
1845    let mut sections = Vec::new();
1846
1847    // Reuse the same type emission as standard mode.
1848    for module in &ctx.modules {
1849        for td in &module.type_defs {
1850            sections.push(toplevel::emit_type_def(td));
1851            if toplevel::is_recursive_type_def(td) {
1852                sections.push(toplevel::emit_recursive_decidable_eq(
1853                    toplevel::type_def_name(td),
1854                ));
1855                if let Some(measure) = toplevel::emit_recursive_measure(td, &recursive_types) {
1856                    sections.push(measure);
1857                }
1858            }
1859            sections.push(String::new());
1860        }
1861    }
1862    for td in &ctx.type_defs {
1863        sections.push(toplevel::emit_type_def(td));
1864        if toplevel::is_recursive_type_def(td) {
1865            sections.push(toplevel::emit_recursive_decidable_eq(
1866                toplevel::type_def_name(td),
1867            ));
1868            if let Some(measure) = toplevel::emit_recursive_measure(td, &recursive_types) {
1869                sections.push(measure);
1870            }
1871        }
1872        sections.push(String::new());
1873    }
1874
1875    emit_pure_functions_proof(ctx, &plans, &recursive_names, &mut sections);
1876
1877    for item in &ctx.items {
1878        if let TopLevel::Decision(db) = item {
1879            sections.push(toplevel::emit_decision(db));
1880            sections.push(String::new());
1881        }
1882    }
1883
1884    let mut verify_case_counters: HashMap<String, usize> = HashMap::new();
1885    for item in &ctx.items {
1886        if let TopLevel::Verify(vb) = item {
1887            let key = verify_counter_key(vb);
1888            let start_idx = *verify_case_counters.get(&key).unwrap_or(&0);
1889            let (emitted, next_idx) = toplevel::emit_verify_block(vb, ctx, verify_mode, start_idx);
1890            verify_case_counters.insert(key, next_idx);
1891            sections.push(emitted);
1892            sections.push(String::new());
1893        }
1894    }
1895
1896    let lean_body = sections.join("\n");
1897    let prelude = generate_prelude_for_body(&lean_body, false);
1898    let lean_source = format!("{prelude}\n\n{lean_body}");
1899    let project_name = lean_project_name(ctx);
1900    let lakefile = generate_lakefile(&project_name);
1901    let toolchain = generate_toolchain();
1902    ProjectOutput {
1903        files: vec![
1904            ("lakefile.lean".to_string(), lakefile),
1905            ("lean-toolchain".to_string(), toolchain),
1906            (format!("{}.lean", project_name), lean_source),
1907        ],
1908    }
1909}
1910
1911/// Transpile an Aver program to a Lean 4 project with configurable verify proof mode.
1912///
1913/// - `NativeDecide` emits `example ... := by native_decide`
1914/// - `Sorry` emits `example ... := by sorry`
1915/// - `TheoremSkeleton` emits named theorem skeletons with `sorry`
1916pub fn transpile_with_verify_mode(
1917    ctx: &CodegenContext,
1918    verify_mode: VerifyEmitMode,
1919) -> ProjectOutput {
1920    let mut sections = Vec::new();
1921
1922    // Detect recursive functions for `partial` annotation
1923    let recursive_fns = call_graph::find_recursive_fns(&ctx.items);
1924
1925    // Module type definitions (from depends)
1926    for module in &ctx.modules {
1927        for td in &module.type_defs {
1928            sections.push(toplevel::emit_type_def(td));
1929            // #18: Recursive types need unsafe DecidableEq instance
1930            if toplevel::is_recursive_type_def(td) {
1931                sections.push(toplevel::emit_recursive_decidable_eq(
1932                    toplevel::type_def_name(td),
1933                ));
1934            }
1935            sections.push(String::new());
1936        }
1937    }
1938
1939    // Type definitions
1940    for td in &ctx.type_defs {
1941        sections.push(toplevel::emit_type_def(td));
1942        // #18: Recursive types need unsafe DecidableEq instance
1943        if toplevel::is_recursive_type_def(td) {
1944            sections.push(toplevel::emit_recursive_decidable_eq(
1945                toplevel::type_def_name(td),
1946            ));
1947        }
1948        sections.push(String::new());
1949    }
1950
1951    // Emit pure functions in SCC-topological order:
1952    // callees first, then callers; SCCs as `mutual` blocks.
1953    emit_pure_functions(ctx, &recursive_fns, &mut sections);
1954
1955    // Decision blocks (as comments)
1956    for item in &ctx.items {
1957        if let TopLevel::Decision(db) = item {
1958            sections.push(toplevel::emit_decision(db));
1959            sections.push(String::new());
1960        }
1961    }
1962
1963    // Verify blocks → proof items (`native_decide` by default, optional `sorry`/theorem stubs).
1964    let mut verify_case_counters: HashMap<String, usize> = HashMap::new();
1965    for item in &ctx.items {
1966        if let TopLevel::Verify(vb) = item {
1967            let key = verify_counter_key(vb);
1968            let start_idx = *verify_case_counters.get(&key).unwrap_or(&0);
1969            let (emitted, next_idx) = toplevel::emit_verify_block(vb, ctx, verify_mode, start_idx);
1970            verify_case_counters.insert(key, next_idx);
1971            sections.push(emitted);
1972            sections.push(String::new());
1973        }
1974    }
1975
1976    let lean_body = sections.join("\n");
1977    let prelude = generate_prelude_for_body(&lean_body, false);
1978    let lean_source = format!("{prelude}\n\n{lean_body}");
1979
1980    // Project files
1981    let project_name = lean_project_name(ctx);
1982    let lakefile = generate_lakefile(&project_name);
1983    let toolchain = generate_toolchain();
1984
1985    ProjectOutput {
1986        files: vec![
1987            ("lakefile.lean".to_string(), lakefile),
1988            ("lean-toolchain".to_string(), toolchain),
1989            (format!("{}.lean", project_name), lean_source),
1990        ],
1991    }
1992}
1993
1994fn emit_pure_functions(
1995    ctx: &CodegenContext,
1996    recursive_fns: &HashSet<String>,
1997    sections: &mut Vec<String>,
1998) {
1999    let all_fns: Vec<&FnDef> = ctx
2000        .modules
2001        .iter()
2002        .flat_map(|m| m.fn_defs.iter())
2003        .chain(ctx.fn_defs.iter())
2004        .filter(|fd| toplevel::is_pure_fn(fd))
2005        .collect();
2006    if all_fns.is_empty() {
2007        return;
2008    }
2009
2010    let components = call_graph::ordered_fn_components(&all_fns, &ctx.module_prefixes);
2011    for fns in components {
2012        if fns.is_empty() {
2013            continue;
2014        }
2015
2016        // Multi-node SCC => emit `mutual ... end`.
2017        if fns.len() > 1 {
2018            sections.push(toplevel::emit_mutual_group(&fns, ctx));
2019            sections.push(String::new());
2020            continue;
2021        }
2022
2023        // Singleton SCC => regular `def` (recursive singletons still get `partial`
2024        // via `recursive_fns` in emit_fn_def).
2025        if let Some(code) = toplevel::emit_fn_def(fns[0], recursive_fns, ctx) {
2026            sections.push(code);
2027            sections.push(String::new());
2028        }
2029    }
2030}
2031
2032fn emit_pure_functions_proof(
2033    ctx: &CodegenContext,
2034    plans: &HashMap<String, RecursionPlan>,
2035    recursive_names: &HashSet<String>,
2036    sections: &mut Vec<String>,
2037) {
2038    let all_fns: Vec<&FnDef> = pure_fns(ctx);
2039    if all_fns.is_empty() {
2040        return;
2041    }
2042
2043    let components = call_graph::ordered_fn_components(&all_fns, &ctx.module_prefixes);
2044    for fns in components {
2045        if fns.is_empty() {
2046            continue;
2047        }
2048        if fns.len() > 1 {
2049            let all_supported = fns.iter().all(|fd| plans.contains_key(&fd.name));
2050            if all_supported {
2051                sections.push(toplevel::emit_mutual_group_proof(&fns, ctx, plans));
2052            } else {
2053                sections.push(toplevel::emit_mutual_group(&fns, ctx));
2054            }
2055            sections.push(String::new());
2056            continue;
2057        }
2058
2059        let fd = fns[0];
2060        let is_recursive = recursive_names.contains(&fd.name);
2061        let emitted = if is_recursive && !plans.contains_key(&fd.name) {
2062            toplevel::emit_fn_def(fd, recursive_names, ctx)
2063        } else {
2064            toplevel::emit_fn_def_proof(fd, plans.get(&fd.name).cloned(), ctx)
2065        };
2066        if let Some(code) = emitted {
2067            sections.push(code);
2068            sections.push(String::new());
2069        }
2070    }
2071}
2072
2073#[cfg(test)]
2074fn generate_prelude() -> String {
2075    generate_prelude_for_body("", true)
2076}
2077
2078fn generate_prelude_for_body(body: &str, include_all_helpers: bool) -> String {
2079    let mut parts = vec![
2080        LEAN_PRELUDE_HEADER.to_string(),
2081        LEAN_PRELUDE_FLOAT_COE.to_string(),
2082        LEAN_PRELUDE_FLOAT_DEC_EQ.to_string(),
2083        LEAN_PRELUDE_EXCEPT_DEC_EQ.to_string(),
2084        LEAN_PRELUDE_EXCEPT_NS.to_string(),
2085        LEAN_PRELUDE_OPTION_TO_EXCEPT.to_string(),
2086        LEAN_PRELUDE_STRING_HADD.to_string(),
2087    ];
2088
2089    if include_all_helpers || needs_builtin_named_type(body, "Header") {
2090        parts.push(LEAN_PRELUDE_HEADER_TYPE.to_string());
2091    }
2092    if include_all_helpers || needs_builtin_named_type(body, "HttpResponse") {
2093        parts.push(LEAN_PRELUDE_HTTP_RESPONSE_TYPE.to_string());
2094    }
2095    if include_all_helpers || needs_builtin_named_type(body, "HttpRequest") {
2096        parts.push(LEAN_PRELUDE_HTTP_REQUEST_TYPE.to_string());
2097    }
2098    if include_all_helpers || needs_builtin_named_type(body, "Tcp_Connection") {
2099        parts.push(LEAN_PRELUDE_TCP_CONNECTION_TYPE.to_string());
2100    }
2101
2102    if include_all_helpers || body.contains("averStringPosFuel") {
2103        parts.push(LEAN_PRELUDE_PROOF_FUEL.to_string());
2104    }
2105
2106    if include_all_helpers || body.contains("AverMeasure.") {
2107        parts.push(LEAN_PRELUDE_AVER_MEASURE.to_string());
2108    }
2109
2110    if include_all_helpers || body.contains("AverMap.") {
2111        parts.push(generate_map_prelude(body, include_all_helpers));
2112    }
2113
2114    parts.extend([
2115        LEAN_PRELUDE_AVER_LIST.to_string(),
2116        LEAN_PRELUDE_STRING_HELPERS.to_string(),
2117        LEAN_PRELUDE_NUMERIC_PARSE.to_string(),
2118        LEAN_PRELUDE_CHAR_BYTE.to_string(),
2119    ]);
2120
2121    parts.join("\n\n")
2122}
2123
2124fn needs_builtin_named_type(body: &str, type_name: &str) -> bool {
2125    references_named_type(body, type_name) && !declares_named_type(body, type_name)
2126}
2127
2128fn references_named_type(body: &str, type_name: &str) -> bool {
2129    let mut token = String::new();
2130    for ch in body.chars() {
2131        if ch.is_ascii_alphanumeric() || ch == '_' || ch == '.' {
2132            token.push(ch);
2133            continue;
2134        }
2135        if token == type_name {
2136            return true;
2137        }
2138        token.clear();
2139    }
2140    token == type_name
2141}
2142
2143fn declares_named_type(body: &str, type_name: &str) -> bool {
2144    let structure_decl = format!("structure {} where", type_name);
2145    let inductive_decl = format!("inductive {} where", type_name);
2146    body.lines()
2147        .map(str::trim_start)
2148        .any(|line| line == structure_decl || line == inductive_decl)
2149}
2150
2151fn generate_map_prelude(body: &str, include_all_helpers: bool) -> String {
2152    let mut parts = vec![AVER_MAP_PRELUDE_BASE.to_string()];
2153
2154    let needs_has_set_self = include_all_helpers || body.contains("AverMap.has_set_self");
2155    let needs_get_set_self = include_all_helpers || body.contains("AverMap.get_set_self");
2156    let needs_get_set_other = include_all_helpers
2157        || body.contains("AverMap.get_set_other")
2158        || body.contains("AverMap.has_set_other");
2159    let needs_has_set_other = include_all_helpers || body.contains("AverMap.has_set_other");
2160
2161    if needs_has_set_self {
2162        parts.push(AVER_MAP_PRELUDE_HAS_SET_SELF.to_string());
2163    }
2164    if needs_get_set_self {
2165        parts.push(AVER_MAP_PRELUDE_GET_SET_SELF.to_string());
2166    }
2167    if needs_get_set_other {
2168        parts.push(AVER_MAP_PRELUDE_GET_SET_OTHER.to_string());
2169    }
2170    if needs_has_set_other {
2171        parts.push(AVER_MAP_PRELUDE_HAS_SET_OTHER.to_string());
2172    }
2173
2174    parts.push(AVER_MAP_PRELUDE_END.to_string());
2175    parts.join("\n\n")
2176}
2177
2178fn generate_lakefile(project_name: &str) -> String {
2179    format!(
2180        r#"import Lake
2181open Lake DSL
2182
2183package «{}» where
2184  version := v!"0.1.0"
2185
2186@[default_target]
2187lean_lib «{}» where
2188  srcDir := "."
2189"#,
2190        project_name.to_lowercase(),
2191        project_name
2192    )
2193}
2194
2195fn generate_toolchain() -> String {
2196    "leanprover/lean4:v4.15.0\n".to_string()
2197}
2198
2199fn capitalize_first(s: &str) -> String {
2200    let mut chars = s.chars();
2201    match chars.next() {
2202        None => String::new(),
2203        Some(c) => c.to_uppercase().to_string() + chars.as_str(),
2204    }
2205}
2206
2207#[cfg(test)]
2208mod tests {
2209    use super::{
2210        VerifyEmitMode, generate_prelude, proof_mode_issues, recurrence, transpile,
2211        transpile_for_proof_mode, transpile_with_verify_mode,
2212    };
2213    use crate::ast::{
2214        BinOp, Expr, FnBody, FnDef, Literal, MatchArm, Pattern, Stmt, TopLevel, TypeDef,
2215        TypeVariant, VerifyBlock, VerifyGiven, VerifyGivenDomain, VerifyKind, VerifyLaw,
2216    };
2217    use crate::codegen::{CodegenContext, build_context};
2218    use crate::source::parse_source;
2219    use crate::tco;
2220    use crate::types::checker::run_type_check_full;
2221    use std::collections::{HashMap, HashSet};
2222    use std::rc::Rc;
2223
2224    fn empty_ctx() -> CodegenContext {
2225        CodegenContext {
2226            items: vec![],
2227            fn_sigs: HashMap::new(),
2228            memo_fns: HashSet::new(),
2229            memo_safe_types: HashSet::new(),
2230            type_defs: vec![],
2231            fn_defs: vec![],
2232            project_name: "verify_mode".to_string(),
2233            modules: vec![],
2234            module_prefixes: HashSet::new(),
2235            policy: None,
2236            emit_replay_runtime: false,
2237            runtime_policy_from_env: false,
2238            guest_entry: None,
2239            emit_self_host_runtime: false,
2240        }
2241    }
2242
2243    fn ctx_from_source(source: &str, project_name: &str) -> CodegenContext {
2244        let mut items = parse_source(source).expect("source should parse");
2245        tco::transform_program(&mut items);
2246        let tc = run_type_check_full(&items, None);
2247        assert!(
2248            tc.errors.is_empty(),
2249            "source should typecheck without errors: {:?}",
2250            tc.errors
2251        );
2252        build_context(items, &tc, HashSet::new(), project_name.to_string(), vec![])
2253    }
2254
2255    fn generated_lean_file(out: &crate::codegen::ProjectOutput) -> &str {
2256        out.files
2257            .iter()
2258            .find_map(|(name, content)| {
2259                (name.ends_with(".lean") && name != "lakefile.lean").then_some(content.as_str())
2260            })
2261            .expect("expected generated Lean file")
2262    }
2263
2264    fn empty_ctx_with_verify_case() -> CodegenContext {
2265        let mut ctx = empty_ctx();
2266        ctx.items.push(TopLevel::Verify(VerifyBlock {
2267            fn_name: "f".to_string(),
2268            line: 1,
2269            cases: vec![(
2270                Expr::Literal(Literal::Int(1)),
2271                Expr::Literal(Literal::Int(1)),
2272            )],
2273            kind: VerifyKind::Cases,
2274        }));
2275        ctx
2276    }
2277
2278    fn empty_ctx_with_two_verify_blocks_same_fn() -> CodegenContext {
2279        let mut ctx = empty_ctx();
2280        ctx.items.push(TopLevel::Verify(VerifyBlock {
2281            fn_name: "f".to_string(),
2282            line: 1,
2283            cases: vec![(
2284                Expr::Literal(Literal::Int(1)),
2285                Expr::Literal(Literal::Int(1)),
2286            )],
2287            kind: VerifyKind::Cases,
2288        }));
2289        ctx.items.push(TopLevel::Verify(VerifyBlock {
2290            fn_name: "f".to_string(),
2291            line: 2,
2292            cases: vec![(
2293                Expr::Literal(Literal::Int(2)),
2294                Expr::Literal(Literal::Int(2)),
2295            )],
2296            kind: VerifyKind::Cases,
2297        }));
2298        ctx
2299    }
2300
2301    fn empty_ctx_with_verify_law() -> CodegenContext {
2302        let mut ctx = empty_ctx();
2303        let add = FnDef {
2304            name: "add".to_string(),
2305            line: 1,
2306            params: vec![
2307                ("a".to_string(), "Int".to_string()),
2308                ("b".to_string(), "Int".to_string()),
2309            ],
2310            return_type: "Int".to_string(),
2311            effects: vec![],
2312            desc: None,
2313            body: Rc::new(FnBody::from_expr(Expr::BinOp(
2314                BinOp::Add,
2315                Box::new(Expr::Ident("a".to_string())),
2316                Box::new(Expr::Ident("b".to_string())),
2317            ))),
2318            resolution: None,
2319        };
2320        ctx.fn_defs.push(add.clone());
2321        ctx.items.push(TopLevel::FnDef(add));
2322        ctx.items.push(TopLevel::Verify(VerifyBlock {
2323            fn_name: "add".to_string(),
2324            line: 1,
2325            cases: vec![
2326                (
2327                    Expr::FnCall(
2328                        Box::new(Expr::Ident("add".to_string())),
2329                        vec![
2330                            Expr::Literal(Literal::Int(1)),
2331                            Expr::Literal(Literal::Int(2)),
2332                        ],
2333                    ),
2334                    Expr::FnCall(
2335                        Box::new(Expr::Ident("add".to_string())),
2336                        vec![
2337                            Expr::Literal(Literal::Int(2)),
2338                            Expr::Literal(Literal::Int(1)),
2339                        ],
2340                    ),
2341                ),
2342                (
2343                    Expr::FnCall(
2344                        Box::new(Expr::Ident("add".to_string())),
2345                        vec![
2346                            Expr::Literal(Literal::Int(2)),
2347                            Expr::Literal(Literal::Int(3)),
2348                        ],
2349                    ),
2350                    Expr::FnCall(
2351                        Box::new(Expr::Ident("add".to_string())),
2352                        vec![
2353                            Expr::Literal(Literal::Int(3)),
2354                            Expr::Literal(Literal::Int(2)),
2355                        ],
2356                    ),
2357                ),
2358            ],
2359            kind: VerifyKind::Law(Box::new(VerifyLaw {
2360                name: "commutative".to_string(),
2361                givens: vec![
2362                    VerifyGiven {
2363                        name: "a".to_string(),
2364                        type_name: "Int".to_string(),
2365                        domain: VerifyGivenDomain::IntRange { start: 1, end: 2 },
2366                    },
2367                    VerifyGiven {
2368                        name: "b".to_string(),
2369                        type_name: "Int".to_string(),
2370                        domain: VerifyGivenDomain::Explicit(vec![
2371                            Expr::Literal(Literal::Int(2)),
2372                            Expr::Literal(Literal::Int(3)),
2373                        ]),
2374                    },
2375                ],
2376                when: None,
2377                lhs: Expr::FnCall(
2378                    Box::new(Expr::Ident("add".to_string())),
2379                    vec![Expr::Ident("a".to_string()), Expr::Ident("b".to_string())],
2380                ),
2381                rhs: Expr::FnCall(
2382                    Box::new(Expr::Ident("add".to_string())),
2383                    vec![Expr::Ident("b".to_string()), Expr::Ident("a".to_string())],
2384                ),
2385                sample_guards: vec![],
2386            })),
2387        }));
2388        ctx
2389    }
2390
2391    #[test]
2392    fn prelude_normalizes_float_string_format() {
2393        let prelude = generate_prelude();
2394        assert!(
2395            prelude.contains("private def normalizeFloatString (s : String) : String :="),
2396            "missing normalizeFloatString helper in prelude"
2397        );
2398        assert!(
2399            prelude.contains(
2400                "def String.fromFloat (f : Float) : String := normalizeFloatString (toString f)"
2401            ),
2402            "String.fromFloat should normalize Lean float formatting"
2403        );
2404    }
2405
2406    #[test]
2407    fn prelude_validates_char_from_code_unicode_bounds() {
2408        let prelude = generate_prelude();
2409        assert!(
2410            prelude.contains("if n < 0 || n > 1114111 then none"),
2411            "Char.fromCode should reject code points above Unicode max"
2412        );
2413        assert!(
2414            prelude.contains("else if n >= 55296 && n <= 57343 then none"),
2415            "Char.fromCode should reject surrogate code points"
2416        );
2417    }
2418
2419    #[test]
2420    fn prelude_includes_map_set_helper_lemmas() {
2421        let prelude = generate_prelude();
2422        assert!(
2423            prelude.contains("theorem has_set_self [DecidableEq α]"),
2424            "missing AverMap.has_set_self helper theorem"
2425        );
2426        assert!(
2427            prelude.contains("theorem get_set_self [DecidableEq α]"),
2428            "missing AverMap.get_set_self helper theorem"
2429        );
2430    }
2431
2432    #[test]
2433    fn lean_output_without_map_usage_omits_map_prelude() {
2434        let ctx = ctx_from_source(
2435            r#"
2436module NoMap
2437    intent = "Simple pure program without maps."
2438
2439fn addOne(n: Int) -> Int
2440    n + 1
2441
2442verify addOne
2443    addOne(1) => 2
2444"#,
2445            "nomap",
2446        );
2447        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
2448        let lean = generated_lean_file(&out);
2449
2450        assert!(
2451            !lean.contains("namespace AverMap"),
2452            "did not expect AverMap prelude in program without map usage:\n{}",
2453            lean
2454        );
2455    }
2456
2457    #[test]
2458    fn transpile_emits_native_decide_for_verify_by_default() {
2459        let out = transpile(&empty_ctx_with_verify_case());
2460        let lean = out
2461            .files
2462            .iter()
2463            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
2464            .expect("expected generated Lean file");
2465        assert!(lean.contains("example : 1 = 1 := by native_decide"));
2466    }
2467
2468    #[test]
2469    fn transpile_can_emit_sorry_for_verify_when_requested() {
2470        let out = transpile_with_verify_mode(&empty_ctx_with_verify_case(), VerifyEmitMode::Sorry);
2471        let lean = out
2472            .files
2473            .iter()
2474            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
2475            .expect("expected generated Lean file");
2476        assert!(lean.contains("example : 1 = 1 := by sorry"));
2477    }
2478
2479    #[test]
2480    fn transpile_can_emit_theorem_skeletons_for_verify() {
2481        let out = transpile_with_verify_mode(
2482            &empty_ctx_with_verify_case(),
2483            VerifyEmitMode::TheoremSkeleton,
2484        );
2485        let lean = out
2486            .files
2487            .iter()
2488            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
2489            .expect("expected generated Lean file");
2490        assert!(lean.contains("theorem f_verify_1 : 1 = 1 := by"));
2491        assert!(lean.contains("  sorry"));
2492    }
2493
2494    #[test]
2495    fn theorem_skeleton_numbering_is_global_per_function_across_verify_blocks() {
2496        let out = transpile_with_verify_mode(
2497            &empty_ctx_with_two_verify_blocks_same_fn(),
2498            VerifyEmitMode::TheoremSkeleton,
2499        );
2500        let lean = out
2501            .files
2502            .iter()
2503            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
2504            .expect("expected generated Lean file");
2505        assert!(lean.contains("theorem f_verify_1 : 1 = 1 := by"));
2506        assert!(lean.contains("theorem f_verify_2 : 2 = 2 := by"));
2507    }
2508
2509    #[test]
2510    fn transpile_emits_named_theorems_for_verify_law() {
2511        let out = transpile(&empty_ctx_with_verify_law());
2512        let lean = out
2513            .files
2514            .iter()
2515            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
2516            .expect("expected generated Lean file");
2517        assert!(lean.contains("-- verify law add.commutative (2 cases)"));
2518        assert!(lean.contains("-- given a: Int = 1..2"));
2519        assert!(lean.contains("-- given b: Int = [2, 3]"));
2520        assert!(lean.contains(
2521            "theorem add_law_commutative : ∀ (a : Int) (b : Int), add a b = add b a := by"
2522        ));
2523        assert!(lean.contains("  intro a b"));
2524        assert!(lean.contains("  simp [add, Int.add_comm]"));
2525        assert!(lean.contains(
2526            "theorem add_law_commutative_sample_1 : add 1 2 = add 2 1 := by native_decide"
2527        ));
2528        assert!(lean.contains(
2529            "theorem add_law_commutative_sample_2 : add 2 3 = add 3 2 := by native_decide"
2530        ));
2531    }
2532
2533    #[test]
2534    fn generate_prelude_emits_int_roundtrip_theorem() {
2535        let lean = generate_prelude();
2536        assert!(lean.contains(
2537            "theorem Int.fromString_fromInt : ∀ n : Int, Int.fromString (String.fromInt n) = .ok n"
2538        ));
2539        assert!(lean.contains("theorem String.intercalate_empty_chars (s : String) :"));
2540        assert!(lean.contains("def splitOnCharGo"));
2541        assert!(lean.contains("theorem split_single_char_append"));
2542        assert!(lean.contains("theorem split_intercalate_trailing_single_char"));
2543        assert!(lean.contains("namespace AverDigits"));
2544        assert!(lean.contains("theorem String.charAt_length_none (s : String)"));
2545        assert!(lean.contains("theorem digitChar_not_ws : ∀ d : Nat, d < 10 ->"));
2546    }
2547
2548    #[test]
2549    fn transpile_emits_guarded_theorems_for_verify_law_when_clause() {
2550        let ctx = ctx_from_source(
2551            r#"
2552module GuardedLaw
2553    intent =
2554        "verify law with precondition"
2555
2556fn pickGreater(a: Int, b: Int) -> Int
2557    match a > b
2558        true -> a
2559        false -> b
2560
2561verify pickGreater law ordered
2562    given a: Int = [1, 2]
2563    given b: Int = [1, 2]
2564    when a > b
2565    pickGreater(a, b) => a
2566"#,
2567            "guarded_law",
2568        );
2569        let out = transpile_with_verify_mode(&ctx, VerifyEmitMode::TheoremSkeleton);
2570        let lean = generated_lean_file(&out);
2571
2572        assert!(lean.contains("-- when (a > b)"));
2573        assert!(lean.contains(
2574            "theorem pickGreater_law_ordered : ∀ (a : Int) (b : Int), a = 1 ∨ a = 2 -> b = 1 ∨ b = 2 -> (a > b) = true -> pickGreater a b = a := by"
2575        ));
2576        assert!(lean.contains(
2577            "theorem pickGreater_law_ordered_sample_1 : (1 > 1) = true -> pickGreater 1 1 = 1 := by"
2578        ));
2579        assert!(lean.contains(
2580            "theorem pickGreater_law_ordered_sample_4 : (2 > 2) = true -> pickGreater 2 2 = 2 := by"
2581        ));
2582    }
2583
2584    #[test]
2585    fn transpile_uses_spec_theorem_names_for_declared_spec_laws() {
2586        let ctx = ctx_from_source(
2587            r#"
2588module SpecDemo
2589    intent =
2590        "spec demo"
2591
2592fn absVal(x: Int) -> Int
2593    match x < 0
2594        true -> 0 - x
2595        false -> x
2596
2597fn absValSpec(x: Int) -> Int
2598    match x < 0
2599        true -> 0 - x
2600        false -> x
2601
2602verify absVal law absValSpec
2603    given x: Int = [-2, -1, 0, 1, 2]
2604    absVal(x) => absValSpec(x)
2605"#,
2606            "spec_demo",
2607        );
2608        let out = transpile_with_verify_mode(&ctx, VerifyEmitMode::TheoremSkeleton);
2609        let lean = generated_lean_file(&out);
2610
2611        assert!(lean.contains("-- verify law absVal.spec absValSpec (5 cases)"));
2612        assert!(
2613            lean.contains(
2614                "theorem absVal_eq_absValSpec : ∀ (x : Int), absVal x = absValSpec x := by"
2615            )
2616        );
2617        assert!(lean.contains("theorem absVal_eq_absValSpec_checked_domain :"));
2618        assert!(lean.contains("theorem absVal_eq_absValSpec_sample_1 :"));
2619        assert!(!lean.contains("theorem absVal_law_absValSpec :"));
2620    }
2621
2622    #[test]
2623    fn transpile_keeps_noncanonical_spec_laws_as_regular_law_names() {
2624        let ctx = ctx_from_source(
2625            r#"
2626module SpecLawShape
2627    intent =
2628        "shape probe"
2629
2630fn foo(x: Int) -> Int
2631    x + 1
2632
2633fn fooSpec(seed: Int, x: Int) -> Int
2634    x + seed
2635
2636verify foo law fooSpec
2637    given x: Int = [1, 2]
2638    foo(x) => fooSpec(1, x)
2639"#,
2640            "spec_law_shape",
2641        );
2642        let out = transpile_with_verify_mode(&ctx, VerifyEmitMode::TheoremSkeleton);
2643        let lean = generated_lean_file(&out);
2644
2645        assert!(lean.contains("-- verify law foo.fooSpec (2 cases)"));
2646        assert!(lean.contains("theorem foo_law_fooSpec : ∀ (x : Int), foo x = fooSpec 1 x := by"));
2647        assert!(!lean.contains("theorem foo_eq_fooSpec :"));
2648    }
2649
2650    #[test]
2651    fn transpile_auto_proves_linear_int_canonical_spec_law_in_auto_mode() {
2652        let ctx = ctx_from_source(
2653            r#"
2654module SpecGap
2655    intent =
2656        "nontrivial canonical spec law"
2657
2658fn inc(x: Int) -> Int
2659    x + 1
2660
2661fn incSpec(x: Int) -> Int
2662    x + 2 - 1
2663
2664verify inc law incSpec
2665    given x: Int = [0, 1, 2]
2666    inc(x) => incSpec(x)
2667"#,
2668            "spec_gap",
2669        );
2670        let out = transpile(&ctx);
2671        let lean = generated_lean_file(&out);
2672
2673        assert!(lean.contains("-- verify law inc.spec incSpec (3 cases)"));
2674        assert!(lean.contains("theorem inc_eq_incSpec : ∀ (x : Int), inc x = incSpec x := by"));
2675        assert!(lean.contains("change (x + 1) = ((x + 2) - 1)"));
2676        assert!(lean.contains("omega"));
2677        assert!(!lean.contains(
2678            "-- universal theorem inc_eq_incSpec omitted: sampled law shape is not auto-proved yet"
2679        ));
2680        assert!(lean.contains("theorem inc_eq_incSpec_checked_domain :"));
2681    }
2682
2683    #[test]
2684    fn transpile_auto_proves_guarded_canonical_spec_law_in_auto_mode() {
2685        let ctx = ctx_from_source(
2686            r#"
2687module GuardedSpecGap
2688    intent =
2689        "guarded canonical spec law"
2690
2691fn clampNonNegative(x: Int) -> Int
2692    match x < 0
2693        true -> 0
2694        false -> x
2695
2696fn clampNonNegativeSpec(x: Int) -> Int
2697    match x < 0
2698        true -> 0
2699        false -> x
2700
2701verify clampNonNegative law clampNonNegativeSpec
2702    given x: Int = [-2, -1, 0, 1, 2]
2703    when x >= 0
2704    clampNonNegative(x) => clampNonNegativeSpec(x)
2705"#,
2706            "guarded_spec_gap",
2707        );
2708        let out = transpile(&ctx);
2709        let lean = generated_lean_file(&out);
2710
2711        assert!(lean.contains("-- when (x >= 0)"));
2712        assert!(lean.contains(
2713            "theorem clampNonNegative_eq_clampNonNegativeSpec : ∀ (x : Int), x = (-2) ∨ x = (-1) ∨ x = 0 ∨ x = 1 ∨ x = 2 -> (x >= 0) = true -> clampNonNegative x = clampNonNegativeSpec x := by"
2714        ));
2715        assert!(lean.contains("intro x h_x h_when"));
2716        assert!(lean.contains("simpa [clampNonNegative, clampNonNegativeSpec]"));
2717        assert!(!lean.contains(
2718            "-- universal theorem clampNonNegative_eq_clampNonNegativeSpec omitted: sampled law shape is not auto-proved yet"
2719        ));
2720        assert!(!lean.contains("cases h_x"));
2721    }
2722
2723    #[test]
2724    fn transpile_auto_proves_simp_normalized_canonical_spec_law_in_auto_mode() {
2725        let ctx = ctx_from_source(
2726            r#"
2727module SpecGapNonlinear
2728    intent =
2729        "nonlinear canonical spec law"
2730
2731fn square(x: Int) -> Int
2732    x * x
2733
2734fn squareSpec(x: Int) -> Int
2735    x * x + 0
2736
2737verify square law squareSpec
2738    given x: Int = [0, 1, 2]
2739    square(x) => squareSpec(x)
2740"#,
2741            "spec_gap_nonlinear",
2742        );
2743        let out = transpile(&ctx);
2744        let lean = generated_lean_file(&out);
2745
2746        assert!(lean.contains("-- verify law square.spec squareSpec (3 cases)"));
2747        assert!(
2748            lean.contains(
2749                "theorem square_eq_squareSpec : ∀ (x : Int), square x = squareSpec x := by"
2750            )
2751        );
2752        assert!(lean.contains("simp [square, squareSpec]"));
2753        assert!(!lean.contains(
2754            "-- universal theorem square_eq_squareSpec omitted: sampled law shape is not auto-proved yet"
2755        ));
2756        assert!(lean.contains("theorem square_eq_squareSpec_checked_domain :"));
2757        assert!(lean.contains("theorem square_eq_squareSpec_sample_1 :"));
2758    }
2759
2760    #[test]
2761    fn transpile_auto_proves_reflexive_law_with_rfl() {
2762        let mut ctx = empty_ctx();
2763        ctx.items.push(TopLevel::Verify(VerifyBlock {
2764            fn_name: "idLaw".to_string(),
2765            line: 1,
2766            cases: vec![(
2767                Expr::Literal(Literal::Int(1)),
2768                Expr::Literal(Literal::Int(1)),
2769            )],
2770            kind: VerifyKind::Law(Box::new(VerifyLaw {
2771                name: "reflexive".to_string(),
2772                givens: vec![VerifyGiven {
2773                    name: "x".to_string(),
2774                    type_name: "Int".to_string(),
2775                    domain: VerifyGivenDomain::IntRange { start: 1, end: 2 },
2776                }],
2777                when: None,
2778                lhs: Expr::Ident("x".to_string()),
2779                rhs: Expr::Ident("x".to_string()),
2780                sample_guards: vec![],
2781            })),
2782        }));
2783        let out = transpile(&ctx);
2784        let lean = out
2785            .files
2786            .iter()
2787            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
2788            .expect("expected generated Lean file");
2789        assert!(lean.contains("theorem idLaw_law_reflexive : ∀ (x : Int), x = x := by"));
2790        assert!(lean.contains("  intro x"));
2791        assert!(lean.contains("  rfl"));
2792    }
2793
2794    #[test]
2795    fn transpile_auto_proves_identity_law_for_int_add_wrapper() {
2796        let mut ctx = empty_ctx_with_verify_law();
2797        ctx.items.push(TopLevel::Verify(VerifyBlock {
2798            fn_name: "add".to_string(),
2799            line: 10,
2800            cases: vec![(
2801                Expr::FnCall(
2802                    Box::new(Expr::Ident("add".to_string())),
2803                    vec![
2804                        Expr::Literal(Literal::Int(1)),
2805                        Expr::Literal(Literal::Int(0)),
2806                    ],
2807                ),
2808                Expr::Literal(Literal::Int(1)),
2809            )],
2810            kind: VerifyKind::Law(Box::new(VerifyLaw {
2811                name: "identityZero".to_string(),
2812                givens: vec![VerifyGiven {
2813                    name: "a".to_string(),
2814                    type_name: "Int".to_string(),
2815                    domain: VerifyGivenDomain::Explicit(vec![
2816                        Expr::Literal(Literal::Int(0)),
2817                        Expr::Literal(Literal::Int(1)),
2818                    ]),
2819                }],
2820                when: None,
2821                lhs: Expr::FnCall(
2822                    Box::new(Expr::Ident("add".to_string())),
2823                    vec![Expr::Ident("a".to_string()), Expr::Literal(Literal::Int(0))],
2824                ),
2825                rhs: Expr::Ident("a".to_string()),
2826                sample_guards: vec![],
2827            })),
2828        }));
2829        let out = transpile(&ctx);
2830        let lean = out
2831            .files
2832            .iter()
2833            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
2834            .expect("expected generated Lean file");
2835        assert!(lean.contains("theorem add_law_identityZero : ∀ (a : Int), add a 0 = a := by"));
2836        assert!(lean.contains("  intro a"));
2837        assert!(lean.contains("  simp [add]"));
2838    }
2839
2840    #[test]
2841    fn transpile_auto_proves_associative_law_for_int_add_wrapper() {
2842        let mut ctx = empty_ctx_with_verify_law();
2843        ctx.items.push(TopLevel::Verify(VerifyBlock {
2844            fn_name: "add".to_string(),
2845            line: 20,
2846            cases: vec![(
2847                Expr::FnCall(
2848                    Box::new(Expr::Ident("add".to_string())),
2849                    vec![
2850                        Expr::FnCall(
2851                            Box::new(Expr::Ident("add".to_string())),
2852                            vec![
2853                                Expr::Literal(Literal::Int(1)),
2854                                Expr::Literal(Literal::Int(2)),
2855                            ],
2856                        ),
2857                        Expr::Literal(Literal::Int(3)),
2858                    ],
2859                ),
2860                Expr::FnCall(
2861                    Box::new(Expr::Ident("add".to_string())),
2862                    vec![
2863                        Expr::Literal(Literal::Int(1)),
2864                        Expr::FnCall(
2865                            Box::new(Expr::Ident("add".to_string())),
2866                            vec![
2867                                Expr::Literal(Literal::Int(2)),
2868                                Expr::Literal(Literal::Int(3)),
2869                            ],
2870                        ),
2871                    ],
2872                ),
2873            )],
2874            kind: VerifyKind::Law(Box::new(VerifyLaw {
2875                name: "associative".to_string(),
2876                givens: vec![
2877                    VerifyGiven {
2878                        name: "a".to_string(),
2879                        type_name: "Int".to_string(),
2880                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(1))]),
2881                    },
2882                    VerifyGiven {
2883                        name: "b".to_string(),
2884                        type_name: "Int".to_string(),
2885                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(2))]),
2886                    },
2887                    VerifyGiven {
2888                        name: "c".to_string(),
2889                        type_name: "Int".to_string(),
2890                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(3))]),
2891                    },
2892                ],
2893                when: None,
2894                lhs: Expr::FnCall(
2895                    Box::new(Expr::Ident("add".to_string())),
2896                    vec![
2897                        Expr::FnCall(
2898                            Box::new(Expr::Ident("add".to_string())),
2899                            vec![Expr::Ident("a".to_string()), Expr::Ident("b".to_string())],
2900                        ),
2901                        Expr::Ident("c".to_string()),
2902                    ],
2903                ),
2904                rhs: Expr::FnCall(
2905                    Box::new(Expr::Ident("add".to_string())),
2906                    vec![
2907                        Expr::Ident("a".to_string()),
2908                        Expr::FnCall(
2909                            Box::new(Expr::Ident("add".to_string())),
2910                            vec![Expr::Ident("b".to_string()), Expr::Ident("c".to_string())],
2911                        ),
2912                    ],
2913                ),
2914                sample_guards: vec![],
2915            })),
2916        }));
2917        let out = transpile(&ctx);
2918        let lean = out
2919            .files
2920            .iter()
2921            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
2922            .expect("expected generated Lean file");
2923        assert!(lean.contains(
2924            "theorem add_law_associative : ∀ (a : Int) (b : Int) (c : Int), add (add a b) c = add a (add b c) := by"
2925        ));
2926        assert!(lean.contains("  intro a b c"));
2927        assert!(lean.contains("  simp [add, Int.add_assoc]"));
2928    }
2929
2930    #[test]
2931    fn transpile_auto_proves_sub_laws() {
2932        let mut ctx = empty_ctx();
2933        let sub = FnDef {
2934            name: "sub".to_string(),
2935            line: 1,
2936            params: vec![
2937                ("a".to_string(), "Int".to_string()),
2938                ("b".to_string(), "Int".to_string()),
2939            ],
2940            return_type: "Int".to_string(),
2941            effects: vec![],
2942            desc: None,
2943            body: Rc::new(FnBody::from_expr(Expr::BinOp(
2944                BinOp::Sub,
2945                Box::new(Expr::Ident("a".to_string())),
2946                Box::new(Expr::Ident("b".to_string())),
2947            ))),
2948            resolution: None,
2949        };
2950        ctx.fn_defs.push(sub.clone());
2951        ctx.items.push(TopLevel::FnDef(sub));
2952
2953        ctx.items.push(TopLevel::Verify(VerifyBlock {
2954            fn_name: "sub".to_string(),
2955            line: 10,
2956            cases: vec![(
2957                Expr::FnCall(
2958                    Box::new(Expr::Ident("sub".to_string())),
2959                    vec![
2960                        Expr::Literal(Literal::Int(2)),
2961                        Expr::Literal(Literal::Int(0)),
2962                    ],
2963                ),
2964                Expr::Literal(Literal::Int(2)),
2965            )],
2966            kind: VerifyKind::Law(Box::new(VerifyLaw {
2967                name: "rightIdentity".to_string(),
2968                givens: vec![VerifyGiven {
2969                    name: "a".to_string(),
2970                    type_name: "Int".to_string(),
2971                    domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(2))]),
2972                }],
2973                when: None,
2974                lhs: Expr::FnCall(
2975                    Box::new(Expr::Ident("sub".to_string())),
2976                    vec![Expr::Ident("a".to_string()), Expr::Literal(Literal::Int(0))],
2977                ),
2978                rhs: Expr::Ident("a".to_string()),
2979                sample_guards: vec![],
2980            })),
2981        }));
2982        ctx.items.push(TopLevel::Verify(VerifyBlock {
2983            fn_name: "sub".to_string(),
2984            line: 20,
2985            cases: vec![(
2986                Expr::FnCall(
2987                    Box::new(Expr::Ident("sub".to_string())),
2988                    vec![
2989                        Expr::Literal(Literal::Int(2)),
2990                        Expr::Literal(Literal::Int(1)),
2991                    ],
2992                ),
2993                Expr::BinOp(
2994                    BinOp::Sub,
2995                    Box::new(Expr::Literal(Literal::Int(0))),
2996                    Box::new(Expr::FnCall(
2997                        Box::new(Expr::Ident("sub".to_string())),
2998                        vec![
2999                            Expr::Literal(Literal::Int(1)),
3000                            Expr::Literal(Literal::Int(2)),
3001                        ],
3002                    )),
3003                ),
3004            )],
3005            kind: VerifyKind::Law(Box::new(VerifyLaw {
3006                name: "antiCommutative".to_string(),
3007                givens: vec![
3008                    VerifyGiven {
3009                        name: "a".to_string(),
3010                        type_name: "Int".to_string(),
3011                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(2))]),
3012                    },
3013                    VerifyGiven {
3014                        name: "b".to_string(),
3015                        type_name: "Int".to_string(),
3016                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(1))]),
3017                    },
3018                ],
3019                when: None,
3020                lhs: Expr::FnCall(
3021                    Box::new(Expr::Ident("sub".to_string())),
3022                    vec![Expr::Ident("a".to_string()), Expr::Ident("b".to_string())],
3023                ),
3024                rhs: Expr::BinOp(
3025                    BinOp::Sub,
3026                    Box::new(Expr::Literal(Literal::Int(0))),
3027                    Box::new(Expr::FnCall(
3028                        Box::new(Expr::Ident("sub".to_string())),
3029                        vec![Expr::Ident("b".to_string()), Expr::Ident("a".to_string())],
3030                    )),
3031                ),
3032                sample_guards: vec![],
3033            })),
3034        }));
3035
3036        let out = transpile(&ctx);
3037        let lean = out
3038            .files
3039            .iter()
3040            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3041            .expect("expected generated Lean file");
3042        assert!(lean.contains("theorem sub_law_rightIdentity : ∀ (a : Int), sub a 0 = a := by"));
3043        assert!(lean.contains("  simp [sub]"));
3044        assert!(lean.contains(
3045            "theorem sub_law_antiCommutative : ∀ (a : Int) (b : Int), sub a b = (-sub b a) := by"
3046        ));
3047        assert!(lean.contains("  simpa [sub] using (Int.neg_sub b a).symm"));
3048    }
3049
3050    #[test]
3051    fn transpile_auto_proves_unary_wrapper_equivalence_law() {
3052        let mut ctx = empty_ctx();
3053        let add = FnDef {
3054            name: "add".to_string(),
3055            line: 1,
3056            params: vec![
3057                ("a".to_string(), "Int".to_string()),
3058                ("b".to_string(), "Int".to_string()),
3059            ],
3060            return_type: "Int".to_string(),
3061            effects: vec![],
3062            desc: None,
3063            body: Rc::new(FnBody::from_expr(Expr::BinOp(
3064                BinOp::Add,
3065                Box::new(Expr::Ident("a".to_string())),
3066                Box::new(Expr::Ident("b".to_string())),
3067            ))),
3068            resolution: None,
3069        };
3070        let add_one = FnDef {
3071            name: "addOne".to_string(),
3072            line: 2,
3073            params: vec![("n".to_string(), "Int".to_string())],
3074            return_type: "Int".to_string(),
3075            effects: vec![],
3076            desc: None,
3077            body: Rc::new(FnBody::from_expr(Expr::BinOp(
3078                BinOp::Add,
3079                Box::new(Expr::Ident("n".to_string())),
3080                Box::new(Expr::Literal(Literal::Int(1))),
3081            ))),
3082            resolution: None,
3083        };
3084        ctx.fn_defs.push(add.clone());
3085        ctx.fn_defs.push(add_one.clone());
3086        ctx.items.push(TopLevel::FnDef(add));
3087        ctx.items.push(TopLevel::FnDef(add_one));
3088        ctx.items.push(TopLevel::Verify(VerifyBlock {
3089            fn_name: "addOne".to_string(),
3090            line: 3,
3091            cases: vec![(
3092                Expr::FnCall(
3093                    Box::new(Expr::Ident("addOne".to_string())),
3094                    vec![Expr::Literal(Literal::Int(2))],
3095                ),
3096                Expr::FnCall(
3097                    Box::new(Expr::Ident("add".to_string())),
3098                    vec![
3099                        Expr::Literal(Literal::Int(2)),
3100                        Expr::Literal(Literal::Int(1)),
3101                    ],
3102                ),
3103            )],
3104            kind: VerifyKind::Law(Box::new(VerifyLaw {
3105                name: "identityViaAdd".to_string(),
3106                givens: vec![VerifyGiven {
3107                    name: "n".to_string(),
3108                    type_name: "Int".to_string(),
3109                    domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(2))]),
3110                }],
3111                when: None,
3112                lhs: Expr::FnCall(
3113                    Box::new(Expr::Ident("addOne".to_string())),
3114                    vec![Expr::Ident("n".to_string())],
3115                ),
3116                rhs: Expr::FnCall(
3117                    Box::new(Expr::Ident("add".to_string())),
3118                    vec![Expr::Ident("n".to_string()), Expr::Literal(Literal::Int(1))],
3119                ),
3120                sample_guards: vec![],
3121            })),
3122        }));
3123        let out = transpile(&ctx);
3124        let lean = out
3125            .files
3126            .iter()
3127            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3128            .expect("expected generated Lean file");
3129        assert!(
3130            lean.contains(
3131                "theorem addOne_law_identityViaAdd : ∀ (n : Int), addOne n = add n 1 := by"
3132            )
3133        );
3134        assert!(lean.contains("  simp [addOne, add]"));
3135    }
3136
3137    #[test]
3138    fn transpile_auto_proves_direct_map_set_laws() {
3139        let mut ctx = empty_ctx();
3140
3141        let map_set = |m: Expr, k: Expr, v: Expr| {
3142            Expr::FnCall(
3143                Box::new(Expr::Attr(
3144                    Box::new(Expr::Ident("Map".to_string())),
3145                    "set".to_string(),
3146                )),
3147                vec![m, k, v],
3148            )
3149        };
3150        let map_has = |m: Expr, k: Expr| {
3151            Expr::FnCall(
3152                Box::new(Expr::Attr(
3153                    Box::new(Expr::Ident("Map".to_string())),
3154                    "has".to_string(),
3155                )),
3156                vec![m, k],
3157            )
3158        };
3159        let map_get = |m: Expr, k: Expr| {
3160            Expr::FnCall(
3161                Box::new(Expr::Attr(
3162                    Box::new(Expr::Ident("Map".to_string())),
3163                    "get".to_string(),
3164                )),
3165                vec![m, k],
3166            )
3167        };
3168        let some = |v: Expr| {
3169            Expr::FnCall(
3170                Box::new(Expr::Attr(
3171                    Box::new(Expr::Ident("Option".to_string())),
3172                    "Some".to_string(),
3173                )),
3174                vec![v],
3175            )
3176        };
3177
3178        ctx.items.push(TopLevel::Verify(VerifyBlock {
3179            fn_name: "map".to_string(),
3180            line: 1,
3181            cases: vec![(
3182                map_has(
3183                    map_set(
3184                        Expr::Ident("m".to_string()),
3185                        Expr::Ident("k".to_string()),
3186                        Expr::Ident("v".to_string()),
3187                    ),
3188                    Expr::Ident("k".to_string()),
3189                ),
3190                Expr::Literal(Literal::Bool(true)),
3191            )],
3192            kind: VerifyKind::Law(Box::new(VerifyLaw {
3193                name: "setHasKey".to_string(),
3194                givens: vec![
3195                    VerifyGiven {
3196                        name: "m".to_string(),
3197                        type_name: "Map<String, Int>".to_string(),
3198                        domain: VerifyGivenDomain::Explicit(vec![Expr::FnCall(
3199                            Box::new(Expr::Attr(
3200                                Box::new(Expr::Ident("Map".to_string())),
3201                                "empty".to_string(),
3202                            )),
3203                            vec![],
3204                        )]),
3205                    },
3206                    VerifyGiven {
3207                        name: "k".to_string(),
3208                        type_name: "String".to_string(),
3209                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Str(
3210                            "a".to_string(),
3211                        ))]),
3212                    },
3213                    VerifyGiven {
3214                        name: "v".to_string(),
3215                        type_name: "Int".to_string(),
3216                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(1))]),
3217                    },
3218                ],
3219                when: None,
3220                lhs: map_has(
3221                    map_set(
3222                        Expr::Ident("m".to_string()),
3223                        Expr::Ident("k".to_string()),
3224                        Expr::Ident("v".to_string()),
3225                    ),
3226                    Expr::Ident("k".to_string()),
3227                ),
3228                rhs: Expr::Literal(Literal::Bool(true)),
3229                sample_guards: vec![],
3230            })),
3231        }));
3232
3233        ctx.items.push(TopLevel::Verify(VerifyBlock {
3234            fn_name: "map".to_string(),
3235            line: 2,
3236            cases: vec![(
3237                map_get(
3238                    map_set(
3239                        Expr::Ident("m".to_string()),
3240                        Expr::Ident("k".to_string()),
3241                        Expr::Ident("v".to_string()),
3242                    ),
3243                    Expr::Ident("k".to_string()),
3244                ),
3245                some(Expr::Ident("v".to_string())),
3246            )],
3247            kind: VerifyKind::Law(Box::new(VerifyLaw {
3248                name: "setGetKey".to_string(),
3249                givens: vec![
3250                    VerifyGiven {
3251                        name: "m".to_string(),
3252                        type_name: "Map<String, Int>".to_string(),
3253                        domain: VerifyGivenDomain::Explicit(vec![Expr::FnCall(
3254                            Box::new(Expr::Attr(
3255                                Box::new(Expr::Ident("Map".to_string())),
3256                                "empty".to_string(),
3257                            )),
3258                            vec![],
3259                        )]),
3260                    },
3261                    VerifyGiven {
3262                        name: "k".to_string(),
3263                        type_name: "String".to_string(),
3264                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Str(
3265                            "a".to_string(),
3266                        ))]),
3267                    },
3268                    VerifyGiven {
3269                        name: "v".to_string(),
3270                        type_name: "Int".to_string(),
3271                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(1))]),
3272                    },
3273                ],
3274                when: None,
3275                lhs: map_get(
3276                    map_set(
3277                        Expr::Ident("m".to_string()),
3278                        Expr::Ident("k".to_string()),
3279                        Expr::Ident("v".to_string()),
3280                    ),
3281                    Expr::Ident("k".to_string()),
3282                ),
3283                rhs: some(Expr::Ident("v".to_string())),
3284                sample_guards: vec![],
3285            })),
3286        }));
3287
3288        let out = transpile(&ctx);
3289        let lean = out
3290            .files
3291            .iter()
3292            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3293            .expect("expected generated Lean file");
3294        assert!(lean.contains("simpa using AverMap.has_set_self m k v"));
3295        assert!(lean.contains("simpa using AverMap.get_set_self m k v"));
3296    }
3297
3298    #[test]
3299    fn transpile_auto_proves_direct_recursive_sum_law_by_structural_induction() {
3300        let ctx = ctx_from_source(
3301            r#"
3302module Mirror
3303    intent =
3304        "direct recursive sum induction probe"
3305
3306type Tree
3307    Leaf(Int)
3308    Node(Tree, Tree)
3309
3310fn mirror(t: Tree) -> Tree
3311    match t
3312        Tree.Leaf(v) -> Tree.Leaf(v)
3313        Tree.Node(left, right) -> Tree.Node(mirror(right), mirror(left))
3314
3315verify mirror law involutive
3316    given t: Tree = [Tree.Leaf(1), Tree.Node(Tree.Leaf(1), Tree.Leaf(2))]
3317    mirror(mirror(t)) => t
3318"#,
3319            "mirror",
3320        );
3321        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
3322        let lean = generated_lean_file(&out);
3323
3324        assert!(
3325            lean.contains(
3326                "theorem mirror_law_involutive : ∀ (t : Tree), mirror (mirror t) = t := by"
3327            )
3328        );
3329        assert!(lean.contains("  induction t with"));
3330        assert!(lean.contains("  | leaf f0 => simp [mirror]"));
3331        assert!(lean.contains("  | node f0 f1 ih0 ih1 => simp_all [mirror]"));
3332        assert!(!lean.contains(
3333            "-- universal theorem mirror_law_involutive omitted: sampled law shape is not auto-proved yet"
3334        ));
3335    }
3336
3337    #[test]
3338    fn transpile_auto_proves_map_update_laws() {
3339        let mut ctx = empty_ctx();
3340
3341        let map_get = |m: Expr, k: Expr| {
3342            Expr::FnCall(
3343                Box::new(Expr::Attr(
3344                    Box::new(Expr::Ident("Map".to_string())),
3345                    "get".to_string(),
3346                )),
3347                vec![m, k],
3348            )
3349        };
3350        let map_set = |m: Expr, k: Expr, v: Expr| {
3351            Expr::FnCall(
3352                Box::new(Expr::Attr(
3353                    Box::new(Expr::Ident("Map".to_string())),
3354                    "set".to_string(),
3355                )),
3356                vec![m, k, v],
3357            )
3358        };
3359        let map_has = |m: Expr, k: Expr| {
3360            Expr::FnCall(
3361                Box::new(Expr::Attr(
3362                    Box::new(Expr::Ident("Map".to_string())),
3363                    "has".to_string(),
3364                )),
3365                vec![m, k],
3366            )
3367        };
3368        let option_some = |v: Expr| {
3369            Expr::FnCall(
3370                Box::new(Expr::Attr(
3371                    Box::new(Expr::Ident("Option".to_string())),
3372                    "Some".to_string(),
3373                )),
3374                vec![v],
3375            )
3376        };
3377        let option_with_default = |opt: Expr, def: Expr| {
3378            Expr::FnCall(
3379                Box::new(Expr::Attr(
3380                    Box::new(Expr::Ident("Option".to_string())),
3381                    "withDefault".to_string(),
3382                )),
3383                vec![opt, def],
3384            )
3385        };
3386
3387        let add_one = FnDef {
3388            name: "addOne".to_string(),
3389            line: 1,
3390            params: vec![("n".to_string(), "Int".to_string())],
3391            return_type: "Int".to_string(),
3392            effects: vec![],
3393            desc: None,
3394            body: Rc::new(FnBody::from_expr(Expr::BinOp(
3395                BinOp::Add,
3396                Box::new(Expr::Ident("n".to_string())),
3397                Box::new(Expr::Literal(Literal::Int(1))),
3398            ))),
3399            resolution: None,
3400        };
3401        ctx.fn_defs.push(add_one.clone());
3402        ctx.items.push(TopLevel::FnDef(add_one));
3403
3404        let inc_count = FnDef {
3405            name: "incCount".to_string(),
3406            line: 2,
3407            params: vec![
3408                ("counts".to_string(), "Map<String, Int>".to_string()),
3409                ("word".to_string(), "String".to_string()),
3410            ],
3411            return_type: "Map<String, Int>".to_string(),
3412            effects: vec![],
3413            desc: None,
3414            body: Rc::new(FnBody::Block(vec![
3415                Stmt::Binding(
3416                    "current".to_string(),
3417                    None,
3418                    map_get(
3419                        Expr::Ident("counts".to_string()),
3420                        Expr::Ident("word".to_string()),
3421                    ),
3422                ),
3423                Stmt::Expr(Expr::Match {
3424                    subject: Box::new(Expr::Ident("current".to_string())),
3425                    arms: vec![
3426                        MatchArm {
3427                            pattern: Pattern::Constructor(
3428                                "Option.Some".to_string(),
3429                                vec!["n".to_string()],
3430                            ),
3431                            body: Box::new(map_set(
3432                                Expr::Ident("counts".to_string()),
3433                                Expr::Ident("word".to_string()),
3434                                Expr::BinOp(
3435                                    BinOp::Add,
3436                                    Box::new(Expr::Ident("n".to_string())),
3437                                    Box::new(Expr::Literal(Literal::Int(1))),
3438                                ),
3439                            )),
3440                        },
3441                        MatchArm {
3442                            pattern: Pattern::Constructor("Option.None".to_string(), vec![]),
3443                            body: Box::new(map_set(
3444                                Expr::Ident("counts".to_string()),
3445                                Expr::Ident("word".to_string()),
3446                                Expr::Literal(Literal::Int(1)),
3447                            )),
3448                        },
3449                    ],
3450                    line: 2,
3451                }),
3452            ])),
3453            resolution: None,
3454        };
3455        ctx.fn_defs.push(inc_count.clone());
3456        ctx.items.push(TopLevel::FnDef(inc_count));
3457
3458        ctx.items.push(TopLevel::Verify(VerifyBlock {
3459            fn_name: "incCount".to_string(),
3460            line: 10,
3461            cases: vec![(
3462                map_has(
3463                    Expr::FnCall(
3464                        Box::new(Expr::Ident("incCount".to_string())),
3465                        vec![
3466                            Expr::Ident("counts".to_string()),
3467                            Expr::Ident("word".to_string()),
3468                        ],
3469                    ),
3470                    Expr::Ident("word".to_string()),
3471                ),
3472                Expr::Literal(Literal::Bool(true)),
3473            )],
3474            kind: VerifyKind::Law(Box::new(VerifyLaw {
3475                name: "keyPresent".to_string(),
3476                givens: vec![
3477                    VerifyGiven {
3478                        name: "counts".to_string(),
3479                        type_name: "Map<String, Int>".to_string(),
3480                        domain: VerifyGivenDomain::Explicit(vec![Expr::FnCall(
3481                            Box::new(Expr::Attr(
3482                                Box::new(Expr::Ident("Map".to_string())),
3483                                "empty".to_string(),
3484                            )),
3485                            vec![],
3486                        )]),
3487                    },
3488                    VerifyGiven {
3489                        name: "word".to_string(),
3490                        type_name: "String".to_string(),
3491                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Str(
3492                            "a".to_string(),
3493                        ))]),
3494                    },
3495                ],
3496                when: None,
3497                lhs: map_has(
3498                    Expr::FnCall(
3499                        Box::new(Expr::Ident("incCount".to_string())),
3500                        vec![
3501                            Expr::Ident("counts".to_string()),
3502                            Expr::Ident("word".to_string()),
3503                        ],
3504                    ),
3505                    Expr::Ident("word".to_string()),
3506                ),
3507                rhs: Expr::Literal(Literal::Bool(true)),
3508                sample_guards: vec![],
3509            })),
3510        }));
3511
3512        ctx.items.push(TopLevel::Verify(VerifyBlock {
3513            fn_name: "incCount".to_string(),
3514            line: 20,
3515            cases: vec![(
3516                map_get(
3517                    Expr::FnCall(
3518                        Box::new(Expr::Ident("incCount".to_string())),
3519                        vec![
3520                            Expr::Ident("counts".to_string()),
3521                            Expr::Literal(Literal::Str("a".to_string())),
3522                        ],
3523                    ),
3524                    Expr::Literal(Literal::Str("a".to_string())),
3525                ),
3526                option_some(Expr::FnCall(
3527                    Box::new(Expr::Ident("addOne".to_string())),
3528                    vec![option_with_default(
3529                        map_get(
3530                            Expr::Ident("counts".to_string()),
3531                            Expr::Literal(Literal::Str("a".to_string())),
3532                        ),
3533                        Expr::Literal(Literal::Int(0)),
3534                    )],
3535                )),
3536            )],
3537            kind: VerifyKind::Law(Box::new(VerifyLaw {
3538                name: "existingKeyIncrements".to_string(),
3539                givens: vec![VerifyGiven {
3540                    name: "counts".to_string(),
3541                    type_name: "Map<String, Int>".to_string(),
3542                    domain: VerifyGivenDomain::Explicit(vec![Expr::FnCall(
3543                        Box::new(Expr::Attr(
3544                            Box::new(Expr::Ident("Map".to_string())),
3545                            "empty".to_string(),
3546                        )),
3547                        vec![],
3548                    )]),
3549                }],
3550                when: None,
3551                lhs: map_get(
3552                    Expr::FnCall(
3553                        Box::new(Expr::Ident("incCount".to_string())),
3554                        vec![
3555                            Expr::Ident("counts".to_string()),
3556                            Expr::Literal(Literal::Str("a".to_string())),
3557                        ],
3558                    ),
3559                    Expr::Literal(Literal::Str("a".to_string())),
3560                ),
3561                rhs: option_some(Expr::FnCall(
3562                    Box::new(Expr::Ident("addOne".to_string())),
3563                    vec![option_with_default(
3564                        map_get(
3565                            Expr::Ident("counts".to_string()),
3566                            Expr::Literal(Literal::Str("a".to_string())),
3567                        ),
3568                        Expr::Literal(Literal::Int(0)),
3569                    )],
3570                )),
3571                sample_guards: vec![],
3572            })),
3573        }));
3574
3575        let out = transpile(&ctx);
3576        let lean = out
3577            .files
3578            .iter()
3579            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3580            .expect("expected generated Lean file");
3581        assert!(
3582            lean.contains("cases h : AverMap.get counts word <;> simp [AverMap.has_set_self]"),
3583            "expected keyPresent auto-proof with has_set_self"
3584        );
3585        assert!(
3586            lean.contains("cases h : AverMap.get counts \"a\" <;> simp [AverMap.get_set_self, addOne, incCount]"),
3587            "expected existingKeyIncrements auto-proof with get_set_self"
3588        );
3589    }
3590
3591    #[test]
3592    fn transpile_parenthesizes_negative_int_call_args_in_law_samples() {
3593        let mut ctx = empty_ctx();
3594        let add = FnDef {
3595            name: "add".to_string(),
3596            line: 1,
3597            params: vec![
3598                ("a".to_string(), "Int".to_string()),
3599                ("b".to_string(), "Int".to_string()),
3600            ],
3601            return_type: "Int".to_string(),
3602            effects: vec![],
3603            desc: None,
3604            body: Rc::new(FnBody::from_expr(Expr::BinOp(
3605                BinOp::Add,
3606                Box::new(Expr::Ident("a".to_string())),
3607                Box::new(Expr::Ident("b".to_string())),
3608            ))),
3609            resolution: None,
3610        };
3611        ctx.fn_defs.push(add.clone());
3612        ctx.items.push(TopLevel::FnDef(add));
3613        ctx.items.push(TopLevel::Verify(VerifyBlock {
3614            fn_name: "add".to_string(),
3615            line: 1,
3616            cases: vec![(
3617                Expr::FnCall(
3618                    Box::new(Expr::Ident("add".to_string())),
3619                    vec![
3620                        Expr::Literal(Literal::Int(-2)),
3621                        Expr::Literal(Literal::Int(-1)),
3622                    ],
3623                ),
3624                Expr::FnCall(
3625                    Box::new(Expr::Ident("add".to_string())),
3626                    vec![
3627                        Expr::Literal(Literal::Int(-1)),
3628                        Expr::Literal(Literal::Int(-2)),
3629                    ],
3630                ),
3631            )],
3632            kind: VerifyKind::Law(Box::new(VerifyLaw {
3633                name: "commutative".to_string(),
3634                givens: vec![
3635                    VerifyGiven {
3636                        name: "a".to_string(),
3637                        type_name: "Int".to_string(),
3638                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(-2))]),
3639                    },
3640                    VerifyGiven {
3641                        name: "b".to_string(),
3642                        type_name: "Int".to_string(),
3643                        domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(-1))]),
3644                    },
3645                ],
3646                when: None,
3647                lhs: Expr::FnCall(
3648                    Box::new(Expr::Ident("add".to_string())),
3649                    vec![Expr::Ident("a".to_string()), Expr::Ident("b".to_string())],
3650                ),
3651                rhs: Expr::FnCall(
3652                    Box::new(Expr::Ident("add".to_string())),
3653                    vec![Expr::Ident("b".to_string()), Expr::Ident("a".to_string())],
3654                ),
3655                sample_guards: vec![],
3656            })),
3657        }));
3658
3659        let out = transpile(&ctx);
3660        let lean = out
3661            .files
3662            .iter()
3663            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3664            .expect("expected generated Lean file");
3665        assert!(lean.contains(
3666            "theorem add_law_commutative_sample_1 : add (-2) (-1) = add (-1) (-2) := by native_decide"
3667        ));
3668    }
3669
3670    #[test]
3671    fn verify_law_numbering_is_scoped_per_law_name() {
3672        let mut ctx = empty_ctx();
3673        let f = FnDef {
3674            name: "f".to_string(),
3675            line: 1,
3676            params: vec![("x".to_string(), "Int".to_string())],
3677            return_type: "Int".to_string(),
3678            effects: vec![],
3679            desc: None,
3680            body: Rc::new(FnBody::from_expr(Expr::Ident("x".to_string()))),
3681            resolution: None,
3682        };
3683        ctx.fn_defs.push(f.clone());
3684        ctx.items.push(TopLevel::FnDef(f));
3685        ctx.items.push(TopLevel::Verify(VerifyBlock {
3686            fn_name: "f".to_string(),
3687            line: 1,
3688            cases: vec![(
3689                Expr::Literal(Literal::Int(1)),
3690                Expr::Literal(Literal::Int(1)),
3691            )],
3692            kind: VerifyKind::Cases,
3693        }));
3694        ctx.items.push(TopLevel::Verify(VerifyBlock {
3695            fn_name: "f".to_string(),
3696            line: 2,
3697            cases: vec![(
3698                Expr::Literal(Literal::Int(2)),
3699                Expr::Literal(Literal::Int(2)),
3700            )],
3701            kind: VerifyKind::Law(Box::new(VerifyLaw {
3702                name: "identity".to_string(),
3703                givens: vec![VerifyGiven {
3704                    name: "x".to_string(),
3705                    type_name: "Int".to_string(),
3706                    domain: VerifyGivenDomain::Explicit(vec![Expr::Literal(Literal::Int(2))]),
3707                }],
3708                when: None,
3709                lhs: Expr::Ident("x".to_string()),
3710                rhs: Expr::Ident("x".to_string()),
3711                sample_guards: vec![],
3712            })),
3713        }));
3714        let out = transpile_with_verify_mode(&ctx, VerifyEmitMode::TheoremSkeleton);
3715        let lean = out
3716            .files
3717            .iter()
3718            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3719            .expect("expected generated Lean file");
3720        assert!(lean.contains("theorem f_verify_1 : 1 = 1 := by"));
3721        assert!(lean.contains("theorem f_law_identity : ∀ (x : Int), x = x := by"));
3722        assert!(lean.contains("theorem f_law_identity_sample_1 : 2 = 2 := by"));
3723        assert!(!lean.contains("theorem f_law_identity_sample_2 : 2 = 2 := by"));
3724    }
3725
3726    #[test]
3727    fn proof_mode_accepts_single_int_countdown_recursion() {
3728        let mut ctx = empty_ctx();
3729        let down = FnDef {
3730            name: "down".to_string(),
3731            line: 1,
3732            params: vec![("n".to_string(), "Int".to_string())],
3733            return_type: "Int".to_string(),
3734            effects: vec![],
3735            desc: None,
3736            body: Rc::new(FnBody::from_expr(Expr::Match {
3737                subject: Box::new(Expr::Ident("n".to_string())),
3738                arms: vec![
3739                    MatchArm {
3740                        pattern: Pattern::Literal(Literal::Int(0)),
3741                        body: Box::new(Expr::Literal(Literal::Int(0))),
3742                    },
3743                    MatchArm {
3744                        pattern: Pattern::Wildcard,
3745                        body: Box::new(Expr::TailCall(Box::new((
3746                            "down".to_string(),
3747                            vec![Expr::BinOp(
3748                                BinOp::Sub,
3749                                Box::new(Expr::Ident("n".to_string())),
3750                                Box::new(Expr::Literal(Literal::Int(1))),
3751                            )],
3752                        )))),
3753                    },
3754                ],
3755                line: 1,
3756            })),
3757            resolution: None,
3758        };
3759        ctx.items.push(TopLevel::FnDef(down.clone()));
3760        ctx.fn_defs.push(down);
3761
3762        let issues = proof_mode_issues(&ctx);
3763        assert!(
3764            issues.is_empty(),
3765            "expected Int countdown recursion to be accepted, got: {:?}",
3766            issues
3767        );
3768
3769        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
3770        let lean = out
3771            .files
3772            .iter()
3773            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3774            .expect("expected generated Lean file");
3775        assert!(lean.contains("def down__fuel"));
3776        assert!(lean.contains("def down (n : Int) : Int :="));
3777        assert!(lean.contains("down__fuel ((Int.natAbs n) + 1) n"));
3778    }
3779
3780    #[test]
3781    fn proof_mode_accepts_single_int_countdown_on_nonfirst_param() {
3782        let mut ctx = empty_ctx();
3783        let repeat_like = FnDef {
3784            name: "repeatLike".to_string(),
3785            line: 1,
3786            params: vec![
3787                ("char".to_string(), "String".to_string()),
3788                ("n".to_string(), "Int".to_string()),
3789            ],
3790            return_type: "List<String>".to_string(),
3791            effects: vec![],
3792            desc: None,
3793            body: Rc::new(FnBody::from_expr(Expr::Match {
3794                subject: Box::new(Expr::BinOp(
3795                    BinOp::Lte,
3796                    Box::new(Expr::Ident("n".to_string())),
3797                    Box::new(Expr::Literal(Literal::Int(0))),
3798                )),
3799                arms: vec![
3800                    MatchArm {
3801                        pattern: Pattern::Literal(Literal::Bool(true)),
3802                        body: Box::new(Expr::List(vec![])),
3803                    },
3804                    MatchArm {
3805                        pattern: Pattern::Literal(Literal::Bool(false)),
3806                        body: Box::new(Expr::TailCall(Box::new((
3807                            "repeatLike".to_string(),
3808                            vec![
3809                                Expr::Ident("char".to_string()),
3810                                Expr::BinOp(
3811                                    BinOp::Sub,
3812                                    Box::new(Expr::Ident("n".to_string())),
3813                                    Box::new(Expr::Literal(Literal::Int(1))),
3814                                ),
3815                            ],
3816                        )))),
3817                    },
3818                ],
3819                line: 1,
3820            })),
3821            resolution: None,
3822        };
3823        ctx.items.push(TopLevel::FnDef(repeat_like.clone()));
3824        ctx.fn_defs.push(repeat_like);
3825
3826        let issues = proof_mode_issues(&ctx);
3827        assert!(
3828            issues.is_empty(),
3829            "expected non-first Int countdown recursion to be accepted, got: {:?}",
3830            issues
3831        );
3832
3833        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
3834        let lean = out
3835            .files
3836            .iter()
3837            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3838            .expect("expected generated Lean file");
3839        assert!(lean.contains("def repeatLike__fuel"));
3840        assert!(lean.contains("def repeatLike (char : String) (n : Int) : List String :="));
3841        assert!(lean.contains("repeatLike__fuel ((Int.natAbs n) + 1) char n"));
3842    }
3843
3844    #[test]
3845    fn proof_mode_accepts_negative_guarded_int_ascent() {
3846        let mut ctx = empty_ctx();
3847        let normalize = FnDef {
3848            name: "normalize".to_string(),
3849            line: 1,
3850            params: vec![("angle".to_string(), "Int".to_string())],
3851            return_type: "Int".to_string(),
3852            effects: vec![],
3853            desc: None,
3854            body: Rc::new(FnBody::from_expr(Expr::Match {
3855                subject: Box::new(Expr::BinOp(
3856                    BinOp::Lt,
3857                    Box::new(Expr::Ident("angle".to_string())),
3858                    Box::new(Expr::Literal(Literal::Int(0))),
3859                )),
3860                arms: vec![
3861                    MatchArm {
3862                        pattern: Pattern::Literal(Literal::Bool(true)),
3863                        body: Box::new(Expr::TailCall(Box::new((
3864                            "normalize".to_string(),
3865                            vec![Expr::BinOp(
3866                                BinOp::Add,
3867                                Box::new(Expr::Ident("angle".to_string())),
3868                                Box::new(Expr::Literal(Literal::Int(360))),
3869                            )],
3870                        )))),
3871                    },
3872                    MatchArm {
3873                        pattern: Pattern::Literal(Literal::Bool(false)),
3874                        body: Box::new(Expr::Ident("angle".to_string())),
3875                    },
3876                ],
3877                line: 1,
3878            })),
3879            resolution: None,
3880        };
3881        ctx.items.push(TopLevel::FnDef(normalize.clone()));
3882        ctx.fn_defs.push(normalize);
3883
3884        let issues = proof_mode_issues(&ctx);
3885        assert!(
3886            issues.is_empty(),
3887            "expected negative-guarded Int ascent recursion to be accepted, got: {:?}",
3888            issues
3889        );
3890
3891        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
3892        let lean = out
3893            .files
3894            .iter()
3895            .find_map(|(name, content)| (name == "Verify_mode.lean").then_some(content))
3896            .expect("expected generated Lean file");
3897        assert!(lean.contains("def normalize__fuel"));
3898        assert!(lean.contains("normalize__fuel ((Int.natAbs angle) + 1) angle"));
3899    }
3900
3901    #[test]
3902    fn proof_mode_accepts_single_list_structural_recursion() {
3903        let mut ctx = empty_ctx();
3904        let len = FnDef {
3905            name: "len".to_string(),
3906            line: 1,
3907            params: vec![("xs".to_string(), "List<Int>".to_string())],
3908            return_type: "Int".to_string(),
3909            effects: vec![],
3910            desc: None,
3911            body: Rc::new(FnBody::from_expr(Expr::Match {
3912                subject: Box::new(Expr::Ident("xs".to_string())),
3913                arms: vec![
3914                    MatchArm {
3915                        pattern: Pattern::EmptyList,
3916                        body: Box::new(Expr::Literal(Literal::Int(0))),
3917                    },
3918                    MatchArm {
3919                        pattern: Pattern::Cons("h".to_string(), "t".to_string()),
3920                        body: Box::new(Expr::TailCall(Box::new((
3921                            "len".to_string(),
3922                            vec![Expr::Ident("t".to_string())],
3923                        )))),
3924                    },
3925                ],
3926                line: 1,
3927            })),
3928            resolution: None,
3929        };
3930        ctx.items.push(TopLevel::FnDef(len.clone()));
3931        ctx.fn_defs.push(len);
3932
3933        let issues = proof_mode_issues(&ctx);
3934        assert!(
3935            issues.is_empty(),
3936            "expected List structural recursion to be accepted, got: {:?}",
3937            issues
3938        );
3939    }
3940
3941    #[test]
3942    fn proof_mode_accepts_single_list_structural_recursion_on_nonfirst_param() {
3943        let mut ctx = empty_ctx();
3944        let len_from = FnDef {
3945            name: "lenFrom".to_string(),
3946            line: 1,
3947            params: vec![
3948                ("count".to_string(), "Int".to_string()),
3949                ("xs".to_string(), "List<Int>".to_string()),
3950            ],
3951            return_type: "Int".to_string(),
3952            effects: vec![],
3953            desc: None,
3954            body: Rc::new(FnBody::from_expr(Expr::Match {
3955                subject: Box::new(Expr::Ident("xs".to_string())),
3956                arms: vec![
3957                    MatchArm {
3958                        pattern: Pattern::EmptyList,
3959                        body: Box::new(Expr::Ident("count".to_string())),
3960                    },
3961                    MatchArm {
3962                        pattern: Pattern::Cons("h".to_string(), "t".to_string()),
3963                        body: Box::new(Expr::TailCall(Box::new((
3964                            "lenFrom".to_string(),
3965                            vec![
3966                                Expr::BinOp(
3967                                    BinOp::Add,
3968                                    Box::new(Expr::Ident("count".to_string())),
3969                                    Box::new(Expr::Literal(Literal::Int(1))),
3970                                ),
3971                                Expr::Ident("t".to_string()),
3972                            ],
3973                        )))),
3974                    },
3975                ],
3976                line: 1,
3977            })),
3978            resolution: None,
3979        };
3980        ctx.items.push(TopLevel::FnDef(len_from.clone()));
3981        ctx.fn_defs.push(len_from);
3982
3983        let issues = proof_mode_issues(&ctx);
3984        assert!(
3985            issues.is_empty(),
3986            "expected non-first List structural recursion to be accepted, got: {:?}",
3987            issues
3988        );
3989
3990        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
3991        let lean = generated_lean_file(&out);
3992        assert!(lean.contains("termination_by xs.length"));
3993        assert!(!lean.contains("partial def lenFrom"));
3994    }
3995
3996    #[test]
3997    fn proof_mode_accepts_single_string_pos_advance_recursion() {
3998        let mut ctx = empty_ctx();
3999        let skip_ws = FnDef {
4000            name: "skipWs".to_string(),
4001            line: 1,
4002            params: vec![
4003                ("s".to_string(), "String".to_string()),
4004                ("pos".to_string(), "Int".to_string()),
4005            ],
4006            return_type: "Int".to_string(),
4007            effects: vec![],
4008            desc: None,
4009            body: Rc::new(FnBody::from_expr(Expr::Match {
4010                subject: Box::new(Expr::FnCall(
4011                    Box::new(Expr::Attr(
4012                        Box::new(Expr::Ident("String".to_string())),
4013                        "charAt".to_string(),
4014                    )),
4015                    vec![Expr::Ident("s".to_string()), Expr::Ident("pos".to_string())],
4016                )),
4017                arms: vec![
4018                    MatchArm {
4019                        pattern: Pattern::Constructor("Option.None".to_string(), vec![]),
4020                        body: Box::new(Expr::Ident("pos".to_string())),
4021                    },
4022                    MatchArm {
4023                        pattern: Pattern::Wildcard,
4024                        body: Box::new(Expr::TailCall(Box::new((
4025                            "skipWs".to_string(),
4026                            vec![
4027                                Expr::Ident("s".to_string()),
4028                                Expr::BinOp(
4029                                    BinOp::Add,
4030                                    Box::new(Expr::Ident("pos".to_string())),
4031                                    Box::new(Expr::Literal(Literal::Int(1))),
4032                                ),
4033                            ],
4034                        )))),
4035                    },
4036                ],
4037                line: 1,
4038            })),
4039            resolution: None,
4040        };
4041        ctx.items.push(TopLevel::FnDef(skip_ws.clone()));
4042        ctx.fn_defs.push(skip_ws);
4043
4044        let issues = proof_mode_issues(&ctx);
4045        assert!(
4046            issues.is_empty(),
4047            "expected String+pos recursion to be accepted, got: {:?}",
4048            issues
4049        );
4050
4051        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4052        let lean = generated_lean_file(&out);
4053        assert!(lean.contains("def skipWs__fuel"));
4054        assert!(!lean.contains("partial def skipWs"));
4055    }
4056
4057    #[test]
4058    fn proof_mode_accepts_mutual_int_countdown_recursion() {
4059        let mut ctx = empty_ctx();
4060        let even = FnDef {
4061            name: "even".to_string(),
4062            line: 1,
4063            params: vec![("n".to_string(), "Int".to_string())],
4064            return_type: "Bool".to_string(),
4065            effects: vec![],
4066            desc: None,
4067            body: Rc::new(FnBody::from_expr(Expr::Match {
4068                subject: Box::new(Expr::Ident("n".to_string())),
4069                arms: vec![
4070                    MatchArm {
4071                        pattern: Pattern::Literal(Literal::Int(0)),
4072                        body: Box::new(Expr::Literal(Literal::Bool(true))),
4073                    },
4074                    MatchArm {
4075                        pattern: Pattern::Wildcard,
4076                        body: Box::new(Expr::TailCall(Box::new((
4077                            "odd".to_string(),
4078                            vec![Expr::BinOp(
4079                                BinOp::Sub,
4080                                Box::new(Expr::Ident("n".to_string())),
4081                                Box::new(Expr::Literal(Literal::Int(1))),
4082                            )],
4083                        )))),
4084                    },
4085                ],
4086                line: 1,
4087            })),
4088            resolution: None,
4089        };
4090        let odd = FnDef {
4091            name: "odd".to_string(),
4092            line: 2,
4093            params: vec![("n".to_string(), "Int".to_string())],
4094            return_type: "Bool".to_string(),
4095            effects: vec![],
4096            desc: None,
4097            body: Rc::new(FnBody::from_expr(Expr::Match {
4098                subject: Box::new(Expr::Ident("n".to_string())),
4099                arms: vec![
4100                    MatchArm {
4101                        pattern: Pattern::Literal(Literal::Int(0)),
4102                        body: Box::new(Expr::Literal(Literal::Bool(false))),
4103                    },
4104                    MatchArm {
4105                        pattern: Pattern::Wildcard,
4106                        body: Box::new(Expr::TailCall(Box::new((
4107                            "even".to_string(),
4108                            vec![Expr::BinOp(
4109                                BinOp::Sub,
4110                                Box::new(Expr::Ident("n".to_string())),
4111                                Box::new(Expr::Literal(Literal::Int(1))),
4112                            )],
4113                        )))),
4114                    },
4115                ],
4116                line: 2,
4117            })),
4118            resolution: None,
4119        };
4120        ctx.items.push(TopLevel::FnDef(even.clone()));
4121        ctx.items.push(TopLevel::FnDef(odd.clone()));
4122        ctx.fn_defs.push(even);
4123        ctx.fn_defs.push(odd);
4124
4125        let issues = proof_mode_issues(&ctx);
4126        assert!(
4127            issues.is_empty(),
4128            "expected mutual Int countdown recursion to be accepted, got: {:?}",
4129            issues
4130        );
4131
4132        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4133        let lean = generated_lean_file(&out);
4134        assert!(lean.contains("def even__fuel"));
4135        assert!(lean.contains("def odd__fuel"));
4136        assert!(lean.contains("def even (n : Int) : Bool :="));
4137        assert!(lean.contains("even__fuel ((Int.natAbs n) + 1) n"));
4138    }
4139
4140    #[test]
4141    fn proof_mode_accepts_mutual_string_pos_recursion_with_ranked_same_edges() {
4142        let mut ctx = empty_ctx();
4143        let f = FnDef {
4144            name: "f".to_string(),
4145            line: 1,
4146            params: vec![
4147                ("s".to_string(), "String".to_string()),
4148                ("pos".to_string(), "Int".to_string()),
4149            ],
4150            return_type: "Int".to_string(),
4151            effects: vec![],
4152            desc: None,
4153            body: Rc::new(FnBody::from_expr(Expr::Match {
4154                subject: Box::new(Expr::BinOp(
4155                    BinOp::Gte,
4156                    Box::new(Expr::Ident("pos".to_string())),
4157                    Box::new(Expr::Literal(Literal::Int(3))),
4158                )),
4159                arms: vec![
4160                    MatchArm {
4161                        pattern: Pattern::Literal(Literal::Bool(true)),
4162                        body: Box::new(Expr::Ident("pos".to_string())),
4163                    },
4164                    MatchArm {
4165                        pattern: Pattern::Wildcard,
4166                        body: Box::new(Expr::TailCall(Box::new((
4167                            "g".to_string(),
4168                            vec![Expr::Ident("s".to_string()), Expr::Ident("pos".to_string())],
4169                        )))),
4170                    },
4171                ],
4172                line: 1,
4173            })),
4174            resolution: None,
4175        };
4176        let g = FnDef {
4177            name: "g".to_string(),
4178            line: 2,
4179            params: vec![
4180                ("s".to_string(), "String".to_string()),
4181                ("pos".to_string(), "Int".to_string()),
4182            ],
4183            return_type: "Int".to_string(),
4184            effects: vec![],
4185            desc: None,
4186            body: Rc::new(FnBody::from_expr(Expr::Match {
4187                subject: Box::new(Expr::BinOp(
4188                    BinOp::Gte,
4189                    Box::new(Expr::Ident("pos".to_string())),
4190                    Box::new(Expr::Literal(Literal::Int(3))),
4191                )),
4192                arms: vec![
4193                    MatchArm {
4194                        pattern: Pattern::Literal(Literal::Bool(true)),
4195                        body: Box::new(Expr::Ident("pos".to_string())),
4196                    },
4197                    MatchArm {
4198                        pattern: Pattern::Wildcard,
4199                        body: Box::new(Expr::TailCall(Box::new((
4200                            "f".to_string(),
4201                            vec![
4202                                Expr::Ident("s".to_string()),
4203                                Expr::BinOp(
4204                                    BinOp::Add,
4205                                    Box::new(Expr::Ident("pos".to_string())),
4206                                    Box::new(Expr::Literal(Literal::Int(1))),
4207                                ),
4208                            ],
4209                        )))),
4210                    },
4211                ],
4212                line: 2,
4213            })),
4214            resolution: None,
4215        };
4216        ctx.items.push(TopLevel::FnDef(f.clone()));
4217        ctx.items.push(TopLevel::FnDef(g.clone()));
4218        ctx.fn_defs.push(f);
4219        ctx.fn_defs.push(g);
4220
4221        let issues = proof_mode_issues(&ctx);
4222        assert!(
4223            issues.is_empty(),
4224            "expected mutual String+pos recursion to be accepted, got: {:?}",
4225            issues
4226        );
4227
4228        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4229        let lean = generated_lean_file(&out);
4230        assert!(lean.contains("def f__fuel"));
4231        assert!(lean.contains("def g__fuel"));
4232        assert!(!lean.contains("partial def f"));
4233    }
4234
4235    #[test]
4236    fn proof_mode_accepts_mutual_ranked_sizeof_recursion() {
4237        let mut ctx = empty_ctx();
4238        let f = FnDef {
4239            name: "f".to_string(),
4240            line: 1,
4241            params: vec![("xs".to_string(), "List<Int>".to_string())],
4242            return_type: "Int".to_string(),
4243            effects: vec![],
4244            desc: None,
4245            body: Rc::new(FnBody::from_expr(Expr::TailCall(Box::new((
4246                "g".to_string(),
4247                vec![
4248                    Expr::Literal(Literal::Str("acc".to_string())),
4249                    Expr::Ident("xs".to_string()),
4250                ],
4251            ))))),
4252            resolution: None,
4253        };
4254        let g = FnDef {
4255            name: "g".to_string(),
4256            line: 2,
4257            params: vec![
4258                ("acc".to_string(), "String".to_string()),
4259                ("xs".to_string(), "List<Int>".to_string()),
4260            ],
4261            return_type: "Int".to_string(),
4262            effects: vec![],
4263            desc: None,
4264            body: Rc::new(FnBody::from_expr(Expr::Match {
4265                subject: Box::new(Expr::Ident("xs".to_string())),
4266                arms: vec![
4267                    MatchArm {
4268                        pattern: Pattern::EmptyList,
4269                        body: Box::new(Expr::Literal(Literal::Int(0))),
4270                    },
4271                    MatchArm {
4272                        pattern: Pattern::Cons("h".to_string(), "t".to_string()),
4273                        body: Box::new(Expr::TailCall(Box::new((
4274                            "f".to_string(),
4275                            vec![Expr::Ident("t".to_string())],
4276                        )))),
4277                    },
4278                ],
4279                line: 2,
4280            })),
4281            resolution: None,
4282        };
4283        ctx.items.push(TopLevel::FnDef(f.clone()));
4284        ctx.items.push(TopLevel::FnDef(g.clone()));
4285        ctx.fn_defs.push(f);
4286        ctx.fn_defs.push(g);
4287
4288        let issues = proof_mode_issues(&ctx);
4289        assert!(
4290            issues.is_empty(),
4291            "expected mutual ranked-sizeOf recursion to be accepted, got: {:?}",
4292            issues
4293        );
4294
4295        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4296        let lean = generated_lean_file(&out);
4297        assert!(lean.contains("mutual"));
4298        assert!(lean.contains("def f__fuel"));
4299        assert!(lean.contains("def g__fuel"));
4300        assert!(!lean.contains("partial def f"));
4301        assert!(!lean.contains("partial def g"));
4302    }
4303
4304    #[test]
4305    fn proof_mode_rejects_recursive_pure_functions() {
4306        let mut ctx = empty_ctx();
4307        let recursive_fn = FnDef {
4308            name: "loop".to_string(),
4309            line: 1,
4310            params: vec![("n".to_string(), "Int".to_string())],
4311            return_type: "Int".to_string(),
4312            effects: vec![],
4313            desc: None,
4314            body: Rc::new(FnBody::from_expr(Expr::FnCall(
4315                Box::new(Expr::Ident("loop".to_string())),
4316                vec![Expr::Ident("n".to_string())],
4317            ))),
4318            resolution: None,
4319        };
4320        ctx.items.push(TopLevel::FnDef(recursive_fn.clone()));
4321        ctx.fn_defs.push(recursive_fn);
4322
4323        let issues = proof_mode_issues(&ctx);
4324        assert!(
4325            issues.iter().any(|i| i.contains("outside proof subset")),
4326            "expected recursive function blocker, got: {:?}",
4327            issues
4328        );
4329    }
4330
4331    #[test]
4332    fn proof_mode_allows_recursive_types() {
4333        let mut ctx = empty_ctx();
4334        let recursive_type = TypeDef::Sum {
4335            name: "Node".to_string(),
4336            variants: vec![TypeVariant {
4337                name: "Cons".to_string(),
4338                fields: vec!["Node".to_string()],
4339            }],
4340            line: 1,
4341        };
4342        ctx.items.push(TopLevel::TypeDef(recursive_type.clone()));
4343        ctx.type_defs.push(recursive_type);
4344
4345        let issues = proof_mode_issues(&ctx);
4346        assert!(
4347            issues
4348                .iter()
4349                .all(|i| !i.contains("recursive types require unsafe DecidableEq shim")),
4350            "did not expect recursive type blocker, got: {:?}",
4351            issues
4352        );
4353    }
4354
4355    #[test]
4356    fn law_auto_example_exports_real_proof_artifacts() {
4357        let ctx = ctx_from_source(
4358            include_str!("../../../examples/formal/law_auto.av"),
4359            "law_auto",
4360        );
4361        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4362        let lean = generated_lean_file(&out);
4363
4364        assert!(lean.contains("theorem add_law_commutative :"));
4365        assert!(lean.contains("theorem id'_law_reflexive : ∀ (x : Int), x = x := by"));
4366        assert!(lean.contains("theorem incCount_law_keyPresent :"));
4367        assert!(lean.contains("AverMap.has_set_self"));
4368        assert!(lean.contains("theorem add_law_commutative_sample_1 :"));
4369        assert!(lean.contains(":= by native_decide"));
4370    }
4371
4372    #[test]
4373    fn json_example_stays_inside_proof_subset() {
4374        let ctx = ctx_from_source(include_str!("../../../examples/data/json.av"), "json");
4375        let issues = proof_mode_issues(&ctx);
4376        assert!(
4377            issues.is_empty(),
4378            "expected json example to stay inside proof subset, got: {:?}",
4379            issues
4380        );
4381    }
4382
4383    #[test]
4384    fn json_example_uses_total_defs_and_domain_guarded_laws_in_proof_mode() {
4385        let ctx = ctx_from_source(include_str!("../../../examples/data/json.av"), "json");
4386        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4387        let lean = generated_lean_file(&out);
4388
4389        assert!(!lean.contains("partial def"));
4390        assert!(lean.contains("def skipWs__fuel"));
4391        assert!(lean.contains("def parseValue__fuel"));
4392        assert!(lean.contains("def toString' (j : Json) : String :="));
4393        assert!(
4394            lean.contains(
4395                "def averMeasureJsonEntries_String (items : List (String × Json)) : Nat :="
4396            )
4397        );
4398        assert!(lean.contains(
4399            "| .jsonObject x0 => (averMeasureJsonEntries_String (AverMap.entries x0)) + 1"
4400        ));
4401        assert!(lean.contains("-- when jsonRoundtripSafe j"));
4402        assert!(!lean.contains("-- hint: verify law '"));
4403        assert!(!lean.contains("private theorem toString'_law_parseRoundtrip_aux"));
4404        assert!(
4405            lean.contains(
4406                "theorem toString'_law_parseRoundtrip : ∀ (j : Json), j = Json.jsonNull ∨"
4407            )
4408        );
4409        assert!(lean.contains(
4410            "jsonRoundtripSafe j = true -> fromString (toString' j) = Except.ok j := by"
4411        ));
4412        assert!(
4413            lean.contains("theorem finishFloat_law_fromCanonicalFloat : ∀ (f : Float), f = 3.5 ∨")
4414        );
4415        assert!(lean.contains("theorem finishInt_law_fromCanonicalInt_checked_domain :"));
4416        assert!(lean.contains(
4417            "theorem toString'_law_parseValueRoundtrip : ∀ (j : Json), j = Json.jsonNull ∨"
4418        ));
4419        assert!(lean.contains("theorem toString'_law_parseRoundtrip_sample_1 :"));
4420        assert!(lean.contains(
4421            "example : fromString \"null\" = Except.ok Json.jsonNull := by native_decide"
4422        ));
4423    }
4424
4425    #[test]
4426    fn transpile_injects_builtin_network_types_and_vector_get_support() {
4427        let ctx = ctx_from_source(
4428            r#"
4429fn firstOrMissing(xs: Vector<String>) -> Result<String, String>
4430    Option.toResult(Vector.get(xs, 0), "missing")
4431
4432fn defaultHeader() -> Header
4433    Header(name = "Content-Type", value = "application/json")
4434
4435fn mkResponse(body: String) -> HttpResponse
4436    HttpResponse(status = 200, body = body, headers = [defaultHeader()])
4437
4438fn requestPath(req: HttpRequest) -> String
4439    req.path
4440
4441fn connPort(conn: Tcp.Connection) -> Int
4442    conn.port
4443"#,
4444            "network_helpers",
4445        );
4446        let out = transpile(&ctx);
4447        let lean = generated_lean_file(&out);
4448
4449        assert!(lean.contains("structure Header where"));
4450        assert!(lean.contains("structure HttpResponse where"));
4451        assert!(lean.contains("structure HttpRequest where"));
4452        assert!(lean.contains("structure Tcp_Connection where"));
4453        assert!(lean.contains("port : Int"));
4454    }
4455
4456    #[test]
4457    fn law_auto_example_has_no_sorry_in_proof_mode() {
4458        let ctx = ctx_from_source(
4459            include_str!("../../../examples/formal/law_auto.av"),
4460            "law_auto",
4461        );
4462        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4463        let lean = generated_lean_file(&out);
4464        assert!(
4465            !lean.contains("sorry"),
4466            "expected law_auto proof export to avoid sorry, got:\n{}",
4467            lean
4468        );
4469    }
4470
4471    #[test]
4472    fn map_example_has_no_sorry_in_proof_mode() {
4473        let ctx = ctx_from_source(include_str!("../../../examples/data/map.av"), "map");
4474        let issues = proof_mode_issues(&ctx);
4475        assert!(
4476            issues.is_empty(),
4477            "expected map example to stay inside proof subset, got: {:?}",
4478            issues
4479        );
4480
4481        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4482        let lean = generated_lean_file(&out);
4483        // After codegen change: universal theorems that can't be auto-proved get sorry
4484        assert!(lean.contains("theorem incCount_law_trackedCountStepsByOne :"));
4485        assert!(lean.contains("sorry"));
4486        // Universal theorems that can't be auto-proved now get sorry instead of being omitted
4487        assert!(lean.contains("theorem countWords_law_presenceMatchesContains_sample_1 :"));
4488        assert!(lean.contains("theorem countWords_law_trackedWordCount_sample_1 :"));
4489        assert!(lean.contains("AverMap.has_set_self"));
4490        assert!(lean.contains("AverMap.get_set_self"));
4491    }
4492
4493    #[test]
4494    fn spec_laws_example_has_no_sorry_in_proof_mode() {
4495        let ctx = ctx_from_source(
4496            include_str!("../../../examples/formal/spec_laws.av"),
4497            "spec_laws",
4498        );
4499        let issues = proof_mode_issues(&ctx);
4500        assert!(
4501            issues.is_empty(),
4502            "expected spec_laws example to stay inside proof subset, got: {:?}",
4503            issues
4504        );
4505
4506        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4507        let lean = generated_lean_file(&out);
4508        assert!(
4509            !lean.contains("sorry"),
4510            "expected spec_laws proof export to avoid sorry, got:\n{}",
4511            lean
4512        );
4513        assert!(lean.contains("theorem absVal_eq_absValSpec :"));
4514        assert!(lean.contains("theorem clampNonNegative_eq_clampNonNegativeSpec :"));
4515    }
4516
4517    #[test]
4518    fn rle_example_exports_sampled_roundtrip_laws_without_sorry() {
4519        let ctx = ctx_from_source(include_str!("../../../examples/data/rle.av"), "rle");
4520        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4521        let lean = generated_lean_file(&out);
4522
4523        assert!(
4524            lean.contains("sorry"),
4525            "expected rle proof export to contain sorry for unproved universal theorems"
4526        );
4527        assert!(lean.contains(
4528            "theorem encode_law_roundtrip_sample_1 : decode (encode []) = [] := by native_decide"
4529        ));
4530        assert!(lean.contains(
4531            "theorem encodeString_law_string_roundtrip_sample_1 : decodeString (encodeString \"\") = \"\" := by native_decide"
4532        ));
4533    }
4534
4535    #[test]
4536    fn fibonacci_example_uses_fuelized_int_countdown_in_proof_mode() {
4537        let ctx = ctx_from_source(
4538            include_str!("../../../examples/data/fibonacci.av"),
4539            "fibonacci",
4540        );
4541        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4542        let lean = generated_lean_file(&out);
4543
4544        assert!(lean.contains("def fibTR__fuel"));
4545        assert!(lean.contains("def fibTR (n : Int) (a : Int) (b : Int) : Int :="));
4546        assert!(lean.contains("fibTR__fuel ((Int.natAbs n) + 1) n a b"));
4547        assert!(!lean.contains("partial def fibTR"));
4548    }
4549
4550    #[test]
4551    fn fibonacci_example_stays_inside_proof_subset() {
4552        let ctx = ctx_from_source(
4553            include_str!("../../../examples/data/fibonacci.av"),
4554            "fibonacci",
4555        );
4556        let issues = proof_mode_issues(&ctx);
4557        assert!(
4558            issues.is_empty(),
4559            "expected fibonacci example to stay inside proof subset, got: {:?}",
4560            issues
4561        );
4562    }
4563
4564    #[test]
4565    fn fibonacci_example_matches_general_linear_recurrence_shapes() {
4566        let ctx = ctx_from_source(
4567            include_str!("../../../examples/data/fibonacci.av"),
4568            "fibonacci",
4569        );
4570        let fib = ctx.fn_defs.iter().find(|fd| fd.name == "fib").unwrap();
4571        let fib_tr = ctx.fn_defs.iter().find(|fd| fd.name == "fibTR").unwrap();
4572        let fib_spec = ctx.fn_defs.iter().find(|fd| fd.name == "fibSpec").unwrap();
4573
4574        assert!(recurrence::detect_tailrec_int_linear_pair_wrapper(fib).is_some());
4575        assert!(recurrence::detect_tailrec_int_linear_pair_worker(fib_tr).is_some());
4576        assert!(recurrence::detect_second_order_int_linear_recurrence(fib_spec).is_some());
4577    }
4578
4579    #[test]
4580    fn fibonacci_example_auto_proves_general_linear_recurrence_spec_law() {
4581        let ctx = ctx_from_source(
4582            include_str!("../../../examples/data/fibonacci.av"),
4583            "fibonacci",
4584        );
4585        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4586        let lean = generated_lean_file(&out);
4587
4588        assert!(lean.contains("private def fibSpec__nat : Nat -> Int"));
4589        assert!(!lean.contains("partial def fibSpec"));
4590        assert!(lean.contains("private theorem fib_eq_fibSpec__worker_nat_shift"));
4591        assert!(lean.contains("private theorem fib_eq_fibSpec__helper_nat"));
4592        assert!(lean.contains("private theorem fib_eq_fibSpec__helper_seed"));
4593        assert!(lean.contains("theorem fib_eq_fibSpec : ∀ (n : Int), fib n = fibSpec n := by"));
4594        assert!(!lean.contains(
4595            "-- universal theorem fib_eq_fibSpec omitted: sampled law shape is not auto-proved yet"
4596        ));
4597    }
4598
4599    #[test]
4600    fn pell_like_example_auto_proves_same_general_shape() {
4601        let ctx = ctx_from_source(
4602            r#"
4603module Pell
4604    intent =
4605        "linear recurrence probe"
4606
4607fn pellTR(n: Int, a: Int, b: Int) -> Int
4608    match n
4609        0 -> a
4610        _ -> pellTR(n - 1, b, a + 2 * b)
4611
4612fn pell(n: Int) -> Int
4613    match n < 0
4614        true -> 0
4615        false -> pellTR(n, 0, 1)
4616
4617fn pellSpec(n: Int) -> Int
4618    match n < 0
4619        true -> 0
4620        false -> match n
4621            0 -> 0
4622            1 -> 1
4623            _ -> pellSpec(n - 2) + 2 * pellSpec(n - 1)
4624
4625verify pell law pellSpec
4626    given n: Int = [0, 1, 2, 3]
4627    pell(n) => pellSpec(n)
4628"#,
4629            "pell",
4630        );
4631        let issues = proof_mode_issues(&ctx);
4632        assert!(
4633            issues.is_empty(),
4634            "expected pell example to stay inside proof subset, got: {:?}",
4635            issues
4636        );
4637
4638        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4639        let lean = generated_lean_file(&out);
4640        assert!(lean.contains("private def pellSpec__nat : Nat -> Int"));
4641        assert!(lean.contains("private theorem pell_eq_pellSpec__worker_nat_shift"));
4642        assert!(lean.contains("theorem pell_eq_pellSpec : ∀ (n : Int), pell n = pellSpec n := by"));
4643        assert!(!lean.contains(
4644            "-- universal theorem pell_eq_pellSpec omitted: sampled law shape is not auto-proved yet"
4645        ));
4646    }
4647
4648    #[test]
4649    fn nonlinear_pair_state_recurrence_is_not_auto_proved_as_linear_shape() {
4650        let ctx = ctx_from_source(
4651            r#"
4652module WeirdRec
4653    intent =
4654        "reject nonlinear pair-state recurrence from linear recurrence prover"
4655
4656fn weirdTR(n: Int, a: Int, b: Int) -> Int
4657    match n
4658        0 -> a
4659        _ -> weirdTR(n - 1, b, a * b)
4660
4661fn weird(n: Int) -> Int
4662    match n < 0
4663        true -> 0
4664        false -> weirdTR(n, 0, 1)
4665
4666fn weirdSpec(n: Int) -> Int
4667    match n < 0
4668        true -> 0
4669        false -> match n
4670            0 -> 0
4671            1 -> 1
4672            _ -> weirdSpec(n - 1) * weirdSpec(n - 2)
4673
4674verify weird law weirdSpec
4675    given n: Int = [0, 1, 2, 3]
4676    weird(n) => weirdSpec(n)
4677"#,
4678            "weirdrec",
4679        );
4680        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4681        let lean = generated_lean_file(&out);
4682
4683        // After codegen change: emit sorry instead of omitting universal theorems
4684        assert!(lean.contains("sorry"));
4685        assert!(!lean.contains("private theorem weird_eq_weirdSpec__worker_nat_shift"));
4686        assert!(lean.contains("theorem weird_eq_weirdSpec_sample_1 :"));
4687    }
4688
4689    #[test]
4690    fn date_example_stays_inside_proof_subset() {
4691        let ctx = ctx_from_source(include_str!("../../../examples/data/date.av"), "date");
4692        let issues = proof_mode_issues(&ctx);
4693        assert!(
4694            issues.is_empty(),
4695            "expected date example to stay inside proof subset, got: {:?}",
4696            issues
4697        );
4698
4699        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4700        let lean = generated_lean_file(&out);
4701        assert!(!lean.contains("partial def"));
4702        assert!(lean.contains("def parseIntSlice (s : String) (from' : Int) (to : Int) : Int :="));
4703    }
4704
4705    #[test]
4706    fn temperature_example_stays_inside_proof_subset() {
4707        let ctx = ctx_from_source(
4708            include_str!("../../../examples/core/temperature.av"),
4709            "temperature",
4710        );
4711        let issues = proof_mode_issues(&ctx);
4712        assert!(
4713            issues.is_empty(),
4714            "expected temperature example to stay inside proof subset, got: {:?}",
4715            issues
4716        );
4717
4718        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4719        let lean = generated_lean_file(&out);
4720        assert!(!lean.contains("partial def"));
4721        assert!(
4722            lean.contains("example : celsiusToFahr 0.0 = 32.0 := by native_decide"),
4723            "expected verify examples to survive proof export, got:\n{}",
4724            lean
4725        );
4726    }
4727
4728    #[test]
4729    fn quicksort_example_stays_inside_proof_subset() {
4730        let ctx = ctx_from_source(
4731            include_str!("../../../examples/data/quicksort.av"),
4732            "quicksort",
4733        );
4734        let issues = proof_mode_issues(&ctx);
4735        assert!(
4736            issues.is_empty(),
4737            "expected quicksort example to stay inside proof subset, got: {:?}",
4738            issues
4739        );
4740
4741        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4742        let lean = generated_lean_file(&out);
4743        assert!(lean.contains("def isOrderedFrom"));
4744        assert!(!lean.contains("partial def isOrderedFrom"));
4745        assert!(lean.contains("termination_by xs.length"));
4746    }
4747
4748    #[test]
4749    fn grok_s_language_example_uses_total_ranked_sizeof_mutual_recursion() {
4750        let ctx = ctx_from_source(
4751            include_str!("../../../examples/core/grok_s_language.av"),
4752            "grok_s_language",
4753        );
4754        let issues = proof_mode_issues(&ctx);
4755        assert!(
4756            issues.is_empty(),
4757            "expected grok_s_language example to stay inside proof subset, got: {:?}",
4758            issues
4759        );
4760
4761        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4762        let lean = generated_lean_file(&out);
4763        assert!(lean.contains("mutual"));
4764        assert!(lean.contains("def eval__fuel"));
4765        assert!(lean.contains("def parseListItems__fuel"));
4766        assert!(!lean.contains("partial def eval"));
4767        assert!(!lean.contains("termination_by (sizeOf e,"));
4768        assert!(lean.contains("-- when validSymbolNames e"));
4769        assert!(!lean.contains("private theorem toString'_law_parseRoundtrip_aux"));
4770        assert!(lean.contains(
4771            "theorem toString'_law_parseRoundtrip : ∀ (e : Sexpr), e = Sexpr.atomNum 42 ∨"
4772        ));
4773        assert!(
4774            lean.contains("validSymbolNames e = true -> parse (toString' e) = Except.ok e := by")
4775        );
4776        assert!(lean.contains("theorem toString'_law_parseSexprRoundtrip :"));
4777        assert!(lean.contains("theorem toString'_law_parseRoundtrip_sample_1 :"));
4778    }
4779
4780    #[test]
4781    fn lambda_example_keeps_only_eval_outside_proof_subset() {
4782        let ctx = ctx_from_source(include_str!("../../../examples/core/lambda.av"), "lambda");
4783        let issues = proof_mode_issues(&ctx);
4784        assert_eq!(
4785            issues,
4786            vec!["recursive function 'eval' is outside proof subset (currently supported: Int countdown, second-order affine Int recurrences with pair-state worker, structural recursion on List/recursive ADTs, String+position, mutual Int countdown, mutual String+position, and ranked sizeOf recursion)".to_string()]
4787        );
4788
4789        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4790        let lean = generated_lean_file(&out);
4791        assert!(lean.contains("def termToString__fuel"));
4792        assert!(lean.contains("def subst__fuel"));
4793        assert!(lean.contains("def countS__fuel"));
4794        assert!(!lean.contains("partial def termToString"));
4795        assert!(!lean.contains("partial def subst"));
4796        assert!(!lean.contains("partial def countS"));
4797        assert!(lean.contains("partial def eval"));
4798    }
4799
4800    #[test]
4801    fn mission_control_example_stays_inside_proof_subset() {
4802        let ctx = ctx_from_source(
4803            include_str!("../../../examples/apps/mission_control.av"),
4804            "mission_control",
4805        );
4806        let issues = proof_mode_issues(&ctx);
4807        assert!(
4808            issues.is_empty(),
4809            "expected mission_control example to stay inside proof subset, got: {:?}",
4810            issues
4811        );
4812
4813        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4814        let lean = generated_lean_file(&out);
4815        assert!(!lean.contains("partial def normalizeAngle"));
4816        assert!(lean.contains("def normalizeAngle__fuel"));
4817    }
4818
4819    #[test]
4820    fn notepad_store_example_stays_inside_proof_subset() {
4821        let ctx = ctx_from_source(
4822            include_str!("../../../examples/apps/notepad/store.av"),
4823            "notepad_store",
4824        );
4825        let issues = proof_mode_issues(&ctx);
4826        assert!(
4827            issues.is_empty(),
4828            "expected notepad/store example to stay inside proof subset, got: {:?}",
4829            issues
4830        );
4831
4832        let out = transpile_for_proof_mode(&ctx, VerifyEmitMode::NativeDecide);
4833        let lean = generated_lean_file(&out);
4834        assert!(lean.contains("def deserializeLine (line : String) : Except String Note :="));
4835        assert!(lean.contains("Except String (List Note)"));
4836        assert!(!lean.contains("partial def deserializeLine"));
4837        assert!(lean.contains("-- when noteRoundtripSafe note"));
4838        assert!(lean.contains("-- when notesRoundtripSafe notes"));
4839        assert!(lean.contains(
4840            "theorem serializeLine_law_lineRoundtrip : ∀ (note : Note), note = { id' := 1, title := \"Hello\", body := \"World\" : Note } ∨"
4841        ));
4842        assert!(lean.contains(
4843            "theorem serializeLines_law_notesRoundtrip : ∀ (notes : List Note), notes = [] ∨"
4844        ));
4845        assert!(lean.contains("notesRoundtripSafe notes = true ->"));
4846        assert!(lean.contains("parseNotes (s!\"{String.intercalate \"\\n\" (serializeLines notes)}\\n\") = Except.ok notes"));
4847        assert!(lean.contains("theorem serializeLine_law_lineRoundtrip_sample_1 :"));
4848        assert!(lean.contains("theorem serializeLines_law_notesRoundtrip_sample_1 :"));
4849    }
4850}