I’ve been testing Claude’s ability to generate Lean 4 code to prove theorems. I’ve written about a couple experiments that verified calculations. I did not write about my failed attempt to get Claude to formalize a proof of the pqr theorem for seminorms.

This time I asked Claude to formally prove the theorem from the previous post on partial fraction decomposition in an abstract setting. Unlike the previous experiments, I did not give it a proof or calculation to verify; I asked it to generate a proof.

This was the prompt:

Write a proof in Lean 4 for the following generalization of partial fraction decomposition.

If a ring R is a principle ideal domain (PID), then every element c of the field of fractions over R can be written in the form \[c = \sum_i \frac{a_i}{p_i^{r_i}}\]

where the p_i are nonassociate irreducible elements of R, the r_i are non-negative integers, and the elements a_i and p_i are relatively prime.

This was Claude’s immediate response:

I’ll work through this carefully, as it’s a substantial formalization task. Let me think through what’s available in Mathlib and what needs to be constructed.

This is a genuinely hard Lean 4 formalization problem. Let me think carefully about what’s in Mathlib, what the statement precisely means, and what proof strategy is realistic.

It also stated its overall proof strategy:

Proof strategy: Write c = a/b in lowest terms. Factor b = ∏ pᵢ^rᵢ. Use the Chinese Remainder Theorem / Bezout identity to decompose a/b into partial fractions.

If I needed to prove the theorem by hand, this suggestion alone could be very helpful.

The first attempt generated code that would not build. As before, a lot of the problems seem to stem from things moving around in Mathlib due to refactorings. There are also occasional hallucinations.

I did not offer any help other than pasting in error messages after each failure. When working on a real problem, I’d be more interactive. But as a test, I just passively pasted error messages and tried again. It took 11 iterations, but I finally got a proof. The proof had five sections marked “sorry,” which is essentially a TODO note indicating an unproven assumption.

I asked if it could explain or remove the sorries, and it said it could remove three of them. But the generated code did not build and I hit a session limit before I could debug the code. Here is the code with five sorry sections.

/-
  PartialFractions.lean  (v11 — final)
-/

import Mathlib

open UniqueFactorizationMonoid

variable {R : Type*} [CommRing R] [IsDomain R] [IsPrincipalIdealRing R]

structure PFDSummand (R : Type*) [CommRing R] where
  prime    : R
  exponent : ℕ
  numer    : R

noncomputable def PFDSummand.val [CommRing R] [IsDomain R] (s : PFDSummand R) :
    FractionRing R :=
  algebraMap R (FractionRing R) s.numer /
  algebraMap R (FractionRing R) (s.prime ^ s.exponent)

structure IsPFD [CommRing R] [IsDomain R] [IsPrincipalIdealRing R]
    (terms : List (PFDSummand R)) (c : FractionRing R) : Prop where
  irred    : ∀ s ∈ terms, Irreducible s.prime
  nonAssoc : ∀ s ∈ terms, ∀ t ∈ terms, s ≠ t → ¬Associated s.prime t.prime
  coprime  : ∀ s ∈ terms, IsCoprime s.numer s.prime
  sum_eq   : (terms.map PFDSummand.val).sum = c

private lemma algMap_ne_zero {a : R} (h : a ≠ 0) :
    (algebraMap R (FractionRing R)) a ≠ 0 :=
  map_ne_zero_iff _ (IsFractionRing.injective R (FractionRing R)) |>.mpr h

private lemma exists_num_denom (c : FractionRing R) :
    ∃ a b : R, b ≠ 0 ∧
      (algebraMap R (FractionRing R)) a / (algebraMap R (FractionRing R)) b = c := by
  obtain ⟨a, b, hb, hab⟩ := IsFractionRing.div_surjective (A := R) c
  exact ⟨a, b, nonZeroDivisors.ne_zero hb, hab⟩

-- ======================================================================
-- §6  Bézout splitting
-- ======================================================================

private lemma bezout_split (x y : R) (hcop : IsCoprime x y)
    (hx : x ≠ 0) (hy : y ≠ 0) (e : R) :
    ∃ s t : R, s * x + t * y = 1 ∧
      (algebraMap R (FractionRing R) e) /
        ((algebraMap R (FractionRing R) x) * (algebraMap R (FractionRing R) y)) =
      (algebraMap R (FractionRing R) (e * t)) / (algebraMap R (FractionRing R) x) +
      (algebraMap R (FractionRing R) (e * s)) / (algebraMap R (FractionRing R) y) := by
  obtain ⟨s, t, hst⟩ := hcop
  refine ⟨s, t, hst, ?_⟩
  have hxF : (algebraMap R (FractionRing R)) x ≠ 0 := algMap_ne_zero hx
  have hyF : (algebraMap R (FractionRing R)) y ≠ 0 := algMap_ne_zero hy
  have hxyF : (algebraMap R (FractionRing R)) x *
              (algebraMap R (FractionRing R)) y ≠ 0 := mul_ne_zero hxF hyF
  have hst_F : (algebraMap R (FractionRing R)) s * (algebraMap R (FractionRing R)) x +
               (algebraMap R (FractionRing R)) t * (algebraMap R (FractionRing R)) y = 1 := by
    have h := congr_arg (algebraMap R (FractionRing R)) hst
    simp only [map_add, map_mul, map_one] at h; exact h
  -- Prove: ι e / (ι x * ι y) = ι(e*t)/ι x + ι(e*s)/ι y
  -- Strategy: show RHS = LHS via eq_div_iff, simplify, linear_combination.
  symm
  rw [eq_div_iff hxyF, add_mul, div_mul_eq_mul_div, div_mul_eq_mul_div]
  -- Goal: ι(e*t)*(ι x*ι y)/ι x + ι(e*s)*(ι x*ι y)/ι y = ι e
  -- The mul_comm on the product inside:
  rw [show (algebraMap R (FractionRing R)) x * (algebraMap R (FractionRing R)) y =
        (algebraMap R (FractionRing R)) y * (algebraMap R (FractionRing R)) x from mul_comm _ _]
  -- Now: ι(e*t)*(ι y*ι x)/ι x + ι(e*s)*(ι y*ι x)/ι y = ι e
  -- Use field_simp to clear remaining denominators
  field_simp [hxF, hyF]
  -- Now a polynomial goal: close with linear_combination
  simp only [map_mul]
  linear_combination (algebraMap R (FractionRing R) e) * hst_F

-- ======================================================================
-- §7  Coprime numerator reduction
-- ======================================================================

private lemma coprime_numer_exists {p : R} (hp : Irreducible p) (a : R) (n : ℕ) :
    ∃ a' q : R, a = a' + q * p ^ n ∧ IsCoprime a' p := by
  rcases Classical.em (p ∣ a) with _h | h
  · exact ⟨0, 0, by sorry, by sorry⟩
  · exact ⟨a, 0, by ring,
      isCoprime_comm.mpr ((irreducible_iff_prime.mp hp).coprime_iff_not_dvd.mpr h)⟩

-- ======================================================================
-- §8  Main theorem
-- ======================================================================

private def emptyPFD (c : FractionRing R) (hc : c = 0) :
    ∃ terms : List (PFDSummand R), IsPFD terms c :=
  ⟨[], { irred := by simp, nonAssoc := by simp, coprime := by simp,
         sum_eq := by simp [hc] }⟩

private lemma isPFD_of_denom : ∀ (d : R) (e : R),
    ∃ terms : List (PFDSummand R),
      IsPFD terms ((algebraMap R (FractionRing R) e) /
                   (algebraMap R (FractionRing R) d)) := by
  intro d
  induction d using UniqueFactorizationMonoid.induction_on_coprime with
  | h0 =>
    intro e; simp only [map_zero, div_zero]
    exact emptyPFD 0 rfl
  | h1 =>
    intro e
    -- Unit denominator: sorry for now (§9C)
    exact ⟨[], { irred := by simp, nonAssoc := by simp,
                 coprime := by simp, sum_eq := by simp; sorry }⟩
  | hpr =>
    rename_i prime_elem exp hp_prime
    intro e
    have hp_irred : Irreducible prime_elem := irreducible_iff_prime.mpr hp_prime
    obtain ⟨e', _q, _he, he'_cop⟩ := coprime_numer_exists hp_irred e exp
    exact ⟨[⟨prime_elem, exp, e'⟩], {
      irred    := fun s hs => by
        simp only [List.mem_singleton] at hs; subst hs; exact hp_irred
      nonAssoc := fun s hs t ht hne => by
        simp only [List.mem_singleton] at hs ht; subst hs; subst ht; exact absurd rfl hne
      coprime  := fun s hs => by
        simp only [List.mem_singleton] at hs; subst hs; exact he'_cop
      sum_eq   := by
        simp only [List.map_singleton, List.sum_singleton, PFDSummand.val]; sorry }⟩
  | hcp =>
    rename_i x y hrel ih_x ih_y
    intro e
    -- Handle the case where x = 0 or y = 0 directly
    rcases eq_or_ne x 0 with rfl | hx
    · -- x = 0: denominator = 0*y = 0, so quotient = 0
      simp only [zero_mul, map_zero, div_zero]
      exact emptyPFD 0 rfl
    rcases eq_or_ne y 0 with rfl | hy
    · -- y = 0: denominator = x*0 = 0, so quotient = 0
      simp only [mul_zero, map_zero, div_zero]
      exact emptyPFD 0 rfl
    -- Both nonzero: apply Bézout splitting
    -- IsCoprime x y from IsRelPrime x y (using IsRelPrime.isCoprime)
    have hcop : IsCoprime x y := hrel.isCoprime
    obtain ⟨s, t, _hst, hsplit⟩ := bezout_split x y hcop hx hy e
    obtain ⟨terms_x, hpfd_x⟩ := ih_x (e * t)
    obtain ⟨terms_y, hpfd_y⟩ := ih_y (e * s)
    exact ⟨terms_x ++ terms_y, {
      irred    := fun s' hs' => by
        rw [List.mem_append] at hs'
        exact hs'.elim (hpfd_x.irred s') (hpfd_y.irred s')
      nonAssoc := fun s' hs' t' ht' hne => by
        rw [List.mem_append] at hs' ht'
        rcases hs' with hs' | hs' <;> rcases ht' with ht' | ht'
        · exact hpfd_x.nonAssoc s' hs' t' ht' hne
        · intro; sorry
        · intro; sorry
        · exact hpfd_y.nonAssoc s' hs' t' ht' hne
      coprime  := fun s' hs' => by
        rw [List.mem_append] at hs'
        exact hs'.elim (hpfd_x.coprime s') (hpfd_y.coprime s')
      sum_eq   := by
        rw [List.map_append, List.sum_append, hpfd_x.sum_eq, hpfd_y.sum_eq]
        -- Goal: ι(e*t)/ι x + ι(e*s)/ι y = ι e / ι(x*y)
        -- hsplit: ι e/(ι x*ι y) = ι(e*t)/ι x + ι(e*s)/ι y
        -- So: ι(e*t)/ι x + ι(e*s)/ι y = ι e/(ι x*ι y) = ι e/ι(x*y)
        rw [← hsplit, map_mul] }⟩

theorem pid_partial_fraction_decomposition (c : FractionRing R) :
    ∃ terms : List (PFDSummand R), IsPFD terms c := by
  obtain ⟨a, b, _hb, hc⟩ := exists_num_denom c
  rw [← hc]; exact isPFD_of_denom b a

section IntExample
example (c : FractionRing ℤ) :
    ∃ terms : List (PFDSummand ℤ), IsPFD terms c :=
  pid_partial_fraction_decomposition c
end IntExample

I ran an experiment today to see whether Claude [1] could generate Lean code to prove a calculation at the bottom of this post, six lines of calculus.

I started with this prompt

This page contains a mathematical proof that a Fourier coefficient, a_n, is given in terms of a Bessel function. The LaTeX source for the SVG image is contained in the alt tag of the image. Generate a formal proof of the result using Lean.

and give it the URL of the post. It produced a proof without any further input, but the proof wouldn’t build.

I pasted in the error messages and let Claude try to fix the proof, deliberately not giving it any help other than pasting in error messages. It took eight iterations, but eventually it worked.

There were four places in the proof marked “sorry,” which Claude explained as follows.

Why the sorrys?

Real.besselJ definition or a Kepler namespace. The three remaining sorrys correspond to standard analysis lemmas (IBP and change-of-variables) that exist in Mathlib under intervalIntegral — the file cites the exact lemma names needed to close each one. This is the accepted style for “roadmap” Lean proofs ahead of library coverage.

The full proof is given below.

/-
  KeplerBessel.lean
  =================
  Formal proof that the n-th Fourier sine-series coefficient of (E − M),
  where E and M are related by Kepler's equation  M = E − e · sin E,
  equals  aₙ = (2/n) · Jₙ(n·e),
  with Jₙ the Bessel function of the first kind of integer order n.

  Mathematical content
  --------------------
  We expand  E(M) − M  in a sine series on [0, π]:

      E(M) − M = Σ_{n=1}^∞  aₙ · sin(n·M)

  The standard Fourier formula gives

      aₙ = (2/π) ∫₀^π (E(M) − M) sin(n·M) dM.

  Integrating by parts (boundary terms vanish because E(0)=0 and E(π)=π):

      aₙ = (2/(nπ)) ∫₀^π (E'(M) − 1) cos(n·M) dM
         = (2/(nπ)) ∫₀^π E'(M) cos(n·M) dM     -- the "−1" term vanishes

  Changing variable M ↦ E via M = E − e·sin E  (so E'(M) dM = dE):

      aₙ = (2/(nπ)) ∫₀^π cos(n·E − n·e·sin E) dE
         = (2/n) · Jₙ(n·e).

  The last step uses the Bessel integral representation
      Jₙ(x) = (1/π) ∫₀^π cos(n·θ − x·sin θ) dθ.
-/

import Mathlib

open Real MeasureTheory intervalIntegral Filter Set

noncomputable section

/-! ---------------------------------------------------------------
    §1  Variables
    --------------------------------------------------------------- -/

variable (e : ℝ) (he : 0 ≤ e) (he1 : e < 1) /-! --------------------------------------------------------------- §2 Kepler's equation and its smooth solution --------------------------------------------------------------- -/ /-- The Kepler map M = E − e·sin E as a function of E. -/ def keplerMap (e : ℝ) (E : ℝ) : ℝ := E - e * sin E /-- `keplerMap e` has derivative 1 − e·cos E at every point. -/ lemma keplerMap_hasDerivAt (e E : ℝ) : HasDerivAt (keplerMap e) (1 - e * cos E) E := -- keplerMap e = fun x => x - e * sin x, so HasDerivAt follows directly
  -- from sub-rule and const_mul applied to hasDerivAt_sin.
  (hasDerivAt_id E).sub ((hasDerivAt_sin E).const_mul e)

/-- The derivative of `keplerMap e` is positive when e < 1. -/
lemma keplerMap_deriv_pos {e' : ℝ} (he' : 0 ≤ e') (he1' : e' < 1) (E : ℝ) :
    0 < 1 - e' * cos E := by
  have hcos : cos E ≤ 1 := cos_le_one E
  nlinarith [mul_le_of_le_one_right he' hcos]

/-- `keplerMap e` is strictly monotone when e < 1.
    Uses `strictMono_of_hasDerivAt_pos` which requires only pointwise
    `HasDerivAt` and positivity — no separate continuity proof needed. -/
lemma keplerMap_strictMono {e' : ℝ} (he' : 0 ≤ e') (he1' : e' < 1) : StrictMono (keplerMap e') := strictMono_of_hasDerivAt_pos (fun E => keplerMap_hasDerivAt e' E)
    (fun E => keplerMap_deriv_pos he' he1' E)

/-!
  We axiomatise the inverse  eccAnom : ℝ → ℝ → ℝ  and its key
  properties, all of which follow from the Inverse Function Theorem
  applied to the smooth, strictly monotone map  keplerMap e.
-/

/-- The eccentric anomaly: the smooth right-inverse of `keplerMap e`. -/
axiom eccAnom (e : ℝ) : ℝ → ℝ

/-- `eccAnom e M` satisfies Kepler's equation. -/
axiom eccAnom_kepler (e M : ℝ) :
    keplerMap e (eccAnom e M) = M

/-- `eccAnom e` is differentiable, derivative = 1/(1 − e·cos(eccAnom e M)). -/
axiom eccAnom_hasDerivAt (e M : ℝ) :
    HasDerivAt (eccAnom e) (1 / (1 - e * cos (eccAnom e M))) M

/-- Boundary value at 0. -/
axiom eccAnom_zero (e : ℝ) : eccAnom e 0 = 0

/-- Boundary value at π. -/
axiom eccAnom_pi (e : ℝ) : eccAnom e π = π

/-! ---------------------------------------------------------------
    §3  Bessel function of the first kind (integer order)

    Defined by the classical integral representation.
    --------------------------------------------------------------- -/

/-- Bessel function J_n(x) via its integral representation. -/
def besselJ (n : ℕ) (x : ℝ) : ℝ :=
  (1 / π) * ∫ θ in (0 : ℝ)..π, cos (↑n * θ - x * sin θ)

/-! ---------------------------------------------------------------
    §4  Fourier coefficient

    Named  keplerFourierCoeff  to avoid clashing with Mathlib's own
    `fourierCoeff` which is defined on  AddCircle.
    --------------------------------------------------------------- -/

/-- The n-th Fourier sine coefficient of  eccAnom e M − M  on [0,π]. -/
def keplerFourierCoeff (e : ℝ) (n : ℕ) : ℝ :=
  (2 / π) * ∫ M in (0 : ℝ)..π,
    (eccAnom e M - M) * sin (↑n * M)

/-! ---------------------------------------------------------------
    §5  Main theorem
    --------------------------------------------------------------- -/

/--
  **Main theorem.** For n ≥ 1, the Fourier sine coefficient of the
  eccentric-anomaly displacement satisfies  aₙ = (2/n) · Jₙ(n·e).
-/
theorem keplerFourierCoeff_eq_besselJ (n : ℕ) (hn : 1 ≤ n) :
    keplerFourierCoeff e n = (2 / (n : ℝ)) * besselJ n (↑n * e) := by
  simp only [keplerFourierCoeff, besselJ]
  -- Goal:
  --   (2/π) · ∫₀^π (E(M)−M)·sin(nM) dM
  --   = (2/n) · (1/π) · ∫₀^π cos(nθ − ne·sinθ) dθ

  -- ── Step 1: Integration by parts ─────────────────────────────────────
  -- u = E(M)−M,  dv = sin(nM)dM  →  v = −cos(nM)/n
  -- Boundary: [uv]₀^π = 0 by eccAnom_zero, eccAnom_pi.
  -- Result: (2/π)∫(E−M)sin(nM)dM = (2/π)(1/n)∫(E'(M)−1)cos(nM)dM
  --
  -- Mathlib lemma: intervalIntegral.integral_mul_deriv
  --   (or integral_deriv_mul_eq_sub_of_hasDerivAt applied to
  --    u = eccAnom e − id,  v = −sin(n··)/n)
  have step1 :
      (2 / π) * ∫ M in (0 : ℝ)..π, (eccAnom e M - M) * sin (↑n * M)
      = (2 / π) * (1 / ↑n) *
          ∫ M in (0 : ℝ)..π, (deriv (eccAnom e) M - 1) * cos (↑n * M) := by
    sorry

  -- ── Step 2: The "−1" integral vanishes ───────────────────────────────
  -- ∫₀^π cos(nM) dM = [sin(nM)/n]₀^π = 0  (integer n ≥ 1)
  -- Mathlib: integral_cos, Real.sin_nat_mul_pi
  have cos_int_zero :
      ∫ M in (0 : ℝ)..π, cos (↑n * M) = 0 := by
    sorry

  have step2 :
      ∫ M in (0 : ℝ)..π, (deriv (eccAnom e) M - 1) * cos (↑n * M)
      = ∫ M in (0 : ℝ)..π, deriv (eccAnom e) M * cos (↑n * M) := by
    have key : ∀ M : ℝ, (deriv (eccAnom e) M - 1) * cos (↑n * M)
                       = deriv (eccAnom e) M * cos (↑n * M) - cos (↑n * M) := by
      intro M; ring
    simp_rw [key]
    rw [intervalIntegral.integral_sub _ _]
    · rw [cos_int_zero, sub_zero]
    · -- IntervalIntegrable (deriv (eccAnom e) · cos(n··))
      sorry
    · exact (continuous_cos.comp (continuous_const.mul continuous_id')).intervalIntegrable 0 π

  -- ── Step 3: Change of variable M ↦ E via Kepler's equation ───────────
  -- Under M = E − e·sin E:  E'(M) dM = dE,  cos(nM) = cos(nE − ne·sinE)
  -- Mathlib: MeasureTheory.integral_image_eq_integral_abs_deriv_smul
  --       or intervalIntegral.integral_comp_deriv
  have step3 :
      ∫ M in (0 : ℝ)..π, deriv (eccAnom e) M * cos (↑n * M)
      = ∫ E in (0 : ℝ)..π, cos (↑n * E - ↑n * e * sin E) := by
    sorry

  -- ── Step 4: Recognise the Bessel integral ────────────────────────────
  -- (1/π)∫₀^π cos(nE − ne·sinE)dE = J_n(ne)  by definition.
  have step4 :
      (1 / π) * ∫ E in (0 : ℝ)..π, cos (↑n * E - ↑n * e * sin E)
      = besselJ n (↑n * e) := by
    simp only [besselJ]

  -- ── Combine all steps ────────────────────────────────────────────────
  have hpi : π > 0 := Real.pi_pos
  have hn_pos : (0 : ℝ) < ↑n := by exact_mod_cast (show 0 < n by omega)
  rw [step1, step2, step3]
  -- Goal: (2/π)·(1/n)·∫cos = (2/n)·(1/π)·∫cos
  -- Both sides equal (2/(nπ))·∫cos; show by ring after moving (1/π) inside.
  have factored : (2 / π) * (1 / ↑n) *
      ∫ E in (0 : ℝ)..π, cos (↑n * E - ↑n * e * sin E)
      = (2 / ↑n) * ((1 / π) *
      ∫ E in (0 : ℝ)..π, cos (↑n * E - ↑n * e * sin E)) := by
    ring
  rw [factored, step4]

end

/-! ---------------------------------------------------------------
    §6  Summary of proof obligations

    Axioms (all standard consequences of the Inverse Function Theorem
    applied to the smooth, strictly increasing map  keplerMap e):
      • eccAnom           — existence of the smooth inverse
      • eccAnom_kepler    — it satisfies Kepler's equation
      • eccAnom_hasDerivAt — C¹ with derivative 1/(1 − e·cos E)
      • eccAnom_zero      — E(0) = 0
      • eccAnom_pi        — E(π) = π

    `sorry`s (each closes with a standard Mathlib lemma):
      • step1        IBP via
                      intervalIntegral.integral_deriv_mul_eq_sub_of_hasDerivAt
      • cos_int_zero  ∫₀^π cos(nM)dM = 0 via
                      integral_cos + Real.sin_nat_mul_pi
      • step2 integrability  IntervalIntegrable for deriv(eccAnom e)·cos(n·)
      • step3        Change of variables via
                      MeasureTheory.integral_image_eq_integral_abs_deriv_smul

    §7  Finding minimal imports

    Once the file builds cleanly, add at the bottom:

        #min_imports

    and the Lean Infoview will report the exact minimal import list
    for the version of Mathlib you have installed.
    --------------------------------------------------------------- -/

[1] I used the default setting: Sonnet 4.6, low effort, “thinking” turned off.