Metric induces topology

Statement

Suppose ${\displaystyle (X,d)}$ is a metric space. Then, the collection of subsets:

${\displaystyle B(x,r):=\{y\in X\mid d(x,y)<r\}}$

form a basis for a topology on ${\displaystyle X}$. These are often called the open balls of ${\displaystyle X}$.

Proof

To prove that the subsets form a basis for a topology, we need to prove the following fact: the intersection of two open balls is a union of open balls. Equivalently, given two open balls ${\displaystyle B(x,r)}$ and ${\displaystyle B(y,s)}$, and ${\displaystyle z\in B(x,r)\cap B(y,s)}$, then there exists some radius ${\displaystyle t}$ such that ${\displaystyle B(z,t)\subset B(x,r)\cap B(y,s)}$.

It turns out that the following works for ${\displaystyle t}$:

${\displaystyle t:=\min \left(r-d(x,z),r-d(y,z)\right)}$

This essentially follows from the triangle inequality.