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Let $X$ be a topological space and let $A\subseteq X$.

Supose that for each $x\in A$ there exists a neighbourhood of $x$, $V_x$, in $X$ such that $A\cap V_x$ is closed in $V_x$.

Prove that $\Bigl(\bigcup _{x \in A}int(V_x)\Bigr)\cap cl(A)\subseteq A$.

A few notes:

$A\cap V_x$ is closed in $V_x$ $\iff$ There exists a subset $F$ of $X$ which is closed in $X$ and $A\cap V_x=F\cap V_x$, by definition.

$int(A)$ is the interior of A.

$cl(A)$ is the closure of A.

Let $x\in \Bigl(\bigcup _{x \in A}int(V_x)\Bigr)\cap cl(A)$. Please proceed.

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    I think you mean $x \in \left(\bigcup_{x \in A} int(V_x)\right) \cap cl(A)$ at the end.2012-12-13

2 Answers 2