I am having some trouble with the following problem:
Define a relation on the square $[0,1]\times[0,1]$ as follows: for every $x,y\in[0,1]$, let $(x,y)\sim(x,y)$, $(0,y)\sim(1,y)$, and $(x,0)\sim(x,1)$. Show that the quotient map $\pi:[0,1]\times[0,1]\to([0,1]\times[0,1])/\sim$ is not an open map.
My knowledge of the problem: I know that a mapping $f:(X,\tau_{X})\to (Y,\tau_{Y})$ is open if and only if for any open set $\mathcal{O}\in \tau_{X}$, we have $f(\mathcal{O})\in\tau_{Y}$. I also know that the map $\pi$ is just the map which sends $x\mapsto [x]$, where $[x]$ is the equivalence class of $x$ under $\sim$. Finally, I think (not entirely sure) that this quotient should give us the torus.
Where I'm Stuck: I am having difficulty figuring out how to show that a set is not open in the quotient space. I think I might have to start with an open ball in $[0,1]^{2}$ and then show that its image is not necessarily open in the quotient space. I'm not sure if this is right though.
Thanks in advance for any suggestions!
The set $\pi([0,1/2)\times [0,1/2))$ is not open in the quotient space (which is indeed a torus).