Complex Analysis/Appendix/Proofs/Theorem 1.1: Difference between revisions

We prove that a set ${\displaystyle 𝔊\subset ℂ}$ is closed if and only if it contains all of its limit points.

We assume that ${\displaystyle 𝔊}$ contains all of its limit points and we show that its complement is open. Let ${\displaystyle z_0\in ℂ-𝔊}$. Then, since ${\displaystyle z_0}$ is not a limit point of ${\displaystyle 𝔊}$, there is a ball ${\displaystyle B_{\delta }(z_0)}$ that contains no point of ${\displaystyle 𝔊}$, that is ${\displaystyle B_{\delta }(z_0)\subset ℂ-𝔊}$. Since this is true for all ${\displaystyle z_0\in ℂ-𝔊}$, it follows that ${\displaystyle 𝔊}$ is closed.

We now assume that there is a limit point of ${\displaystyle 𝔊}$ in ${\displaystyle ℂ-𝔊}$ and show that ${\displaystyle 𝔊}$ is not closed. Let ${\displaystyle z_0\in ℂ-𝔊}$ be a limit point of ${\displaystyle 𝔊}$. Then There is no neighborhood of ${\displaystyle z_0}$ that is contained in the complement of ${\displaystyle 𝔊}$, and therefore ${\displaystyle 𝔊}$ is not closed.

Template:BookCat