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@@ -75,4 +75,46 @@ So $I\to 0$ as $\zeta_1\to\zeta$.
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Therefore, $g'(\zeta_1)=f(\zeta_1)$ for all $\zeta_1\in U$.
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EOP
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EOP
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### Cauchy's Theorem for a disk
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Let $U$ be the open set, $f\in O(U)$. Let $C$ be a circle inside $U$ and $\zeta$ be a point inside $C$.
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Then
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$$
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f(\zeta)=\frac{1}{2\pi i}\int_C\frac{f(\xi)d\xi}{\xi-\zeta} d\xi
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$$
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Proof:
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Let $C_\epsilon$ be a circle with center $\zeta$ and radius $\epsilon$ inside $C$.
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Claim:
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$$
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\int_{C_\epsilon}\frac{f(\xi)d\xi}{\xi-\zeta}=\int_{C}\frac{f(\xi)d\xi}{\xi-\zeta}
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$$
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We divide the integral into four parts:
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Notice that $\frac{f(\xi)}{\xi-\zeta}$ is holomorphic whenever $f(\xi)\in U$ and $\xi\in \mathbb{C}\setminus\{\zeta\}$.
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So we can apply Cauchy's theorem to the integral on the inside square.
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$$
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\int_{C_\epsilon}\frac{f(\xi)d\xi}{\xi-\zeta}=0
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$$
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Since $\frac{1}{2\pi i}\int_{C_\epsilon}\frac{1}{\xi-\zeta}d\xi=1$, $\sigma=\epsilon e^{it}+\zeta_0$ and $\sigma'=\epsilon e^{it}$, we have
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/* TRACK LOST*/
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$$
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\int_{C_\epsilon}\frac{f(\xi)d\xi}{\xi-\zeta}=\int_0^{2\pi}\frac{f(\sigma)d\sigma}{\sigma-\zeta}=2\pi i f(\zeta)
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$$
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EOP
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