Update holomorphic.primitive.lean
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@ -131,3 +131,67 @@ theorem integral_divergence₅
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rw [intervalIntegral.integral_symm lowerLeft.im upperRight.im] at B
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simp at B
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exact B
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noncomputable def primitive
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{E : Type u} [NormedAddCommGroup E] [NormedSpace ℂ E] [CompleteSpace E] :
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ℂ → (ℂ → E) → (ℂ → E) := by
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intro z₀
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intro f
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exact fun z ↦ (∫ (x : ℝ) in z₀.re..z.re, f ⟨x, z₀.im⟩) + Complex.I • ∫ (x : ℝ) in z₀.im..z.im, f ⟨z.re, x⟩
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theorem primitive_zeroAtBasepoint
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{E : Type u} [NormedAddCommGroup E] [NormedSpace ℂ E] [CompleteSpace E]
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(f : ℂ → E)
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(z₀ : ℂ) :
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(primitive z₀ f) z₀ = 0 := by
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unfold primitive
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simp
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theorem primitive_lem1
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{E : Type u} [NormedAddCommGroup E] [NormedSpace ℂ E] [CompleteSpace E] [IsScalarTower ℝ ℂ E]
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(v : E) :
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HasDerivAt (primitive 0 (fun z ↦ v)) v 0 := by
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unfold primitive
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simp
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have : (fun (z : ℂ) => z.re • v + Complex.I • z.im • v) = (fun (z : ℂ) => z • v) := by
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funext z
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rw [smul_comm]
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rw [← smul_assoc]
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simp
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have : z.re • v = (z.re : ℂ) • v := by exact rfl
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rw [this, ← add_smul]
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simp
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rw [this]
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apply HasDerivAt.smul_const
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sorry
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theorem primitive_fderivAtBasepoint
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{E : Type u} [NormedAddCommGroup E] [NormedSpace ℂ E] [CompleteSpace E]
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(f : ℂ → E) :
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HasDerivAt (primitive 0 f) (f 0) 0 := by
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unfold primitive
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simp
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sorry
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theorem primitive_additivity
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{E : Type u} [NormedAddCommGroup E] [NormedSpace ℂ E] [CompleteSpace E]
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(f : ℂ → E)
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(hf : Differentiable ℂ f)
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(z₀ z₁ : ℂ) :
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(primitive z₁ f) = (primitive z₀ f) - (fun z ↦ primitive z₀ f z₁) := by
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sorry
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