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@ -334,10 +334,10 @@ 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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(z₀ : ℂ)
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(R : ℝ)
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(hf : DifferentiableOn ℂ f (Metric.ball z₀ R))
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(rx ry : ℝ)
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(hf : DifferentiableOn ℂ f (Metric.ball z₀.re rx ×ℂ Metric.ball z₀.im ry))
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(z₁ : ℂ)
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(hz₁ : z₁ ∈ Metric.ball z₀ R)
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(hz₁ : z₁ ∈ (Metric.ball z₀.re rx ×ℂ Metric.ball z₀.im ry))
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:
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∀ z ∈ Metric.ball z₁ (R - dist z₁ z₀), (primitive z₀ f z) - (primitive z₁ f z) - (primitive z₀ f z₁) = 0 := by
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intro z hz
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@ -345,19 +345,15 @@ theorem primitive_additivity
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have H : (Set.uIcc z₁.re z.re ×ℂ Set.uIcc z₀.im z₁.im) ⊆ Metric.ball z₀ R := by
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intro x hx
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have a₀ : x.re ∈ Set.uIcc z₁.re z.re := by exact (Complex.mem_reProdIm.1 hx).1
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have a₁ : x.im ∈ Set.uIcc z₀.im z₁.im := by exact (Complex.mem_reProdIm.1 hx).2
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have A₀ : dist x.re z₀.re ≤ dist x.re z₁.re + dist z₁.re z₀.re := by apply dist_triangle
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have A₁ : dist x.im z₀.im ≤ dist z₁.im z₀.im := by
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apply Real.dist_right_le_of_mem_uIcc
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rwa [Set.uIcc_comm]
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rw [Set.uIcc_comm]
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exact (Complex.mem_reProdIm.1 hx).2
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have A₂ : dist x.re z₁.re ≤ dist z.re z₁.re := by
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apply Real.dist_right_le_of_mem_uIcc
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rwa [Set.uIcc_comm]
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rw [Set.uIcc_comm]
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exact (Complex.mem_reProdIm.1 hx).1
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have A₃ : dist z.re z₁.re < R - dist z₁ z₀ := by
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have : ∀ x₀ x₁ : ℂ, dist x₀.re x₁.re ≤ dist x₀ x₁ := by
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@ -372,8 +368,6 @@ theorem primitive_additivity
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simp
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have B₀ : dist x z₀ ≤ dist x ⟨z₁.re, x.im⟩ + dist ⟨z₁.re, x.im⟩ z₀ := by apply dist_triangle
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have B₁ : dist ⟨z₁.re, x.im⟩ z₀ ≤ dist z₁ z₀ := by
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rw [Complex.dist_eq_re_im]
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rw [Complex.dist_eq_re_im]
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@ -474,6 +468,7 @@ theorem primitive_additivity
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intro w hw
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simp
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sorry --apply integrability₂ f hf
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sorry --apply integrability₂ f hf
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