Definition. Let $X$,$Y$ be metric spaces.Then a map $T:X\to Y$ is an homeomorphism if $T$ is continuous, open and bijective. I don't find a counterexample of such maps, may someone give me at least one example where I can understand how this is done to show $T$ is homeomorphic. Regards!
Example of a homeomorphic map $T:X→Y$
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0The question is unclear ... – 2012-04-14
3 Answers
How about $X = \mathbb R$ with the discrete topology (discrete metric) and $Y = \mathbb R$ with the usual topology (induced by the Euclidean metric)? Then take the identity map $id: X \to Y$. It's bijective and continuous but its inverse $id: Y \to X$ isn't: $id: Y \to X$ is open and bijective but not continuous.
As pointed out by Brian in the comment, if you take the absolute value map $|\cdot | : \mathbb Z \to \mathbb N $ and endow $\mathbb Z$ and $\mathbb N$ with the discrete topology then $|\cdot|$ is continuous and open but not bijective.
I hope I understood your question correctly. Otherwise ping me with a comment and I'll adjust my answer.
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0@BrianM.Scott Thank you very much! Added. : ) – 2012-04-15
Are you asking for an example of a homeomorphism between two metric spaces? Consider a function $f: X \rightarrow Y$, and consider $X$ and the graph of $f$ which is simply $ \{(x, f(x)) \in X \times Y\}$. Then $X$ is homeomorphic to the graph of $f$ under the usual projection map $\pi : X \times Y \longrightarrow X$.
$\textbf{Edit:}$ Please edit your question and make it clear what exactly you are asking. I can edit my answer to suit this.
Let $X$ be the discrete space of $N$ points, and let $Y$ be any finite space with $N$ points. Then any bijection between $X$ and $Y$ is homeomorphic.
Let $X$ be $\mathbb{R}$, and let $Y=(0,1)$. Then there are continuous bijective $T:X\to Y$ (such as $x\mapsto \tan \pi (x-0.5)$)