Answer to Question #213037 in Functional Analysis for smi

Let "X" be a compact metric space, "x\\in X" a point and "x\\in U" an open neighbourhood of "x". As "U" is open, there is a certain "r>0" such that the open ball "B(x,r)\\subseteq U". Now by considering the closed ball "F:=B_{closed}(x,r\/2)" we have "x\\in F\\subseteq B(x,r)\\subseteq U". Finally, "F" is closed and thus is compact, because "X" is a compact metric space.