Answer to Question #159013 in Differential Geometry | Topology for Jasli

Definition:

A subset "S" of "\\R ^3" is a surface if , for every points "p \\in S," there is an open set "U" in "\\R ^2" and an open set "W" in "\\R ^3" containing "p" such that "S \\bigcap W" is homomorphic to "U".

Let "S" be an open disk in "xy-" plane. This implies that "S\\subset \\R^3" .

We basically need a map "f" from "\\R^2" to "\\R^3" , that has "S" as its range.

We can pick the (so called "canonical") map that is basically the identity, just mapping from "\\R^2" to "\\R^3". That is "f:(x,y)\u21a6(x,y,z|z=0)".

Now, suppose we pick a point "p\\in S". We need an open set "W" that contains "p". Take W"=S". We have that "S\\bigcap W=S=\\{(x,y,z)|z=0\\}". We can pick "U=f^{-1}(W)=f^{-1}(S)," which is the same open set in "\\R^2" and "\\R^3."

Since the function "f:(x,y)\u21a6(x,y,0)" is continuous and bijective. Then, "S\\bigcap W" is homomorphic to "U". Hence, "S" is a surface.