test(tests/lean/run/div_wf): cleanup div based on well founded recursion

tests/lean/run/div_wf.lean

@@ -1,18 +1,10 @@
 import data.nat data.prod logic.wf_k
 open nat well_founded decidable prod eq.ops
 
--- I use "dependent" if-then-else to be able to communicate the if-then-else condition
--- to the branches
-definition dite (c : Prop) [H : decidable c] {A : Type} (t : c → A) (e : ¬ c → A) : A :=
-decidable.rec_on H (assume Hc, t Hc) (assume Hnc, e Hnc)
-
-notation `dif` c `then` t:45 `else` e:45 := dite c t e
-
 -- Auxiliary lemma used to justify recursive call
-private lemma lt_aux {x y : nat} (H : 0 < y ∧ y ≤ x) : x - y < x :=
-have y0 : 0 < y, from and.elim_left H,
-have x0 : 0 < x, from lt_le.trans y0 (and.elim_right H),
-sub_lt x0 y0
+private definition lt_aux {x y : nat} (H : 0 < y ∧ y ≤ x) : x - y < x :=
+and.rec_on H (λ ypos ylex,
+  sub.lt (lt_le.trans ypos ylex) ypos)
 
 definition wdiv.F (x : nat) (f : Π x₁, x₁ < x → nat → nat) (y : nat) : nat :=
 dif 0 < y ∧ y ≤ x then (λ Hp, f (x - y) (lt_aux Hp) y + 1) else (λ Hn, zero)
@@ -23,6 +15,12 @@ fix wdiv.F x y
 theorem wdiv_def (x y : nat) : wdiv x y = if 0 < y ∧ y ≤ x then wdiv (x - y) y + 1 else 0 :=
 congr_fun (well_founded.fix_eq wdiv.F x) y
 
+example : wdiv 5 2 = 2 :=
+rfl
+
+example : wdiv 9 3 = 3 :=
+rfl
+
 -- There is a little bit of cheating in the definition above.
 -- I avoid the packing/unpacking into tuples.
 -- The actual definitional package would not do that.
@@ -30,19 +28,16 @@ congr_fun (well_founded.fix_eq wdiv.F x) y
 
 definition pair_nat.lt    := lex lt lt  -- Could also be (lex lt empty_rel)
 definition pair_nat.lt.wf [instance] : well_founded pair_nat.lt :=
-intro_k (prod.lex.wf lt.wf lt.wf) 20 -- allow 20 recursive calls without computing with proofs
+prod.lex.wf lt.wf lt.wf
 infixl `≺`:50 := pair_nat.lt
 
 -- Recursive lemma used to justify recursive call
-private lemma plt_aux (p : nat × nat) (H : 0 < pr₂ p ∧ pr₂ p ≤ pr₁ p) : (pr₁ p - pr₂ p, pr₂ p) ≺ p :=
-have aux₁ : pr₁ p - pr₂ p < pr₁ p, from lt_aux H,
-have aux₂ : (pr₁ p - pr₂ p, pr₂ p) ≺ (pr₁ p, pr₂ p), from !lex.left aux₁,
-prod.eta p ▸ aux₂
+definition plt_aux (x y : nat) (H : 0 < y ∧ y ≤ x) : (x - y, y) ≺ (x, y) :=
+!lex.left (lt_aux H)
 
-definition pdiv.F (p₁ : nat × nat) (f : Π p₂ : nat × nat, p₂ ≺ p₁ → nat) : nat :=
-let x := pr₁ p₁ in
-let y := pr₂ p₁ in
-dif 0 < y ∧ y ≤ x then (λ Hp, f (x - y, y) (plt_aux p₁ Hp) + 1) else (λ Hnp, zero)
+definition pdiv.F (p₁ : nat × nat) : (Π p₂ : nat × nat, p₂ ≺ p₁ → nat) → nat :=
+prod.cases_on p₁ (λ x y f,
+  dif 0 < y ∧ y ≤ x then (λ Hp, f (x - y, y) (plt_aux x y Hp) + 1) else (λ Hnp, zero))
 
 definition pdiv (x y : nat) :=
 fix pdiv.F (x, y)
@@ -50,11 +45,5 @@ fix pdiv.F (x, y)
 theorem pdiv_def (x y : nat) : pdiv x y = if 0 < y ∧ y ≤ x then pdiv (x - y) y + 1 else zero :=
 well_founded.fix_eq pdiv.F (x, y)
 
--- Remark: dite and ite are "definitionally equal" when we ignore the proofs.
--- I used that, when I wrote div_def and pdiv_def.
-theorem dite_ite_eq (c : Prop) [H : decidable c] {A : Type} (t : A) (e : A) :
-      dite c (λ Hc, t) (λ Hnc, e) = ite c t e :=
-rfl
-
-example : pdiv 398 23 = 17 :=
+example : pdiv 17 2 = 8 :=
 rfl