Answer to Question #213036 in Functional Analysis for smi

First of all, let us remark that for all "n\\in \\mathbb{N}", "\\mathbb{C}^n" has the topology of "\\mathbb{R}^{2n}" (with the canonical homeomorphism "(z_1,...,z_n)\\to (\\Re z_1, \\Im z_1, ..., \\Re z_n, \\Im z_n)"), so we can just study the case of "\\mathbb{R}^n".

Let "x\\in \\mathbb{R}^n", we consider an open neighbourhood "x\\in B(x,1)" (an open ball of radius 1) and we shall prove that the unit cube "C_x =\\{y=(y_1,...,y_n)\\in \\mathbb{R}^n \\;|\\; \\max_{1\\leq i \\leq n} (|y_i-x_i| ) \\leq 1\\}" is compact. First we will remark that "B(x,1)\\subseteq C_x", as "y\\in B(x,1) \\Rightarrow \\sum (y_i-x_i)^2<1". Secondly we remark that a cube "C_x" is a product of "n" closed intervals "C_x=\\prod_{1\\leq i\\leq n} [x_i-1; x_i+1]". Closed bounded intervals are compact (by Bolzano-Weierstrass theorem and the equivalence between sequential compactness and compactness for metric spaces). From this we conclude that "C_x" is compact by using one of the following arguments :

• by Tychonoff's theorem, product of compact spaces is compact,
• as product is finite, we can apply a weaker result - we can just use Bolzano-Weierstrass theorem for each coordinate,
• we could have used a general result that closed bounded subsets of "\\mathbb{R}^n" are compact.

Therefore, "x" admits a compact neighbourhood and thus for all "n\\in \\mathbb{N}", "\\mathbb{R}^n" (and therefore "\\mathbb{C}^n") are locally compact.