Let $Q,Q^c$ denotes be the set of all rational and irrational numbers in $\mathbb {R}$. $Y=\mathbb {R^2}\setminus(Q×Q^C )$ with the usual subspace topology of $\mathbb {R^2}$.find Number of connected components of $Y$?
My answer : i thinks $Y = \mathbb{R} \times \mathbb{R} \cup \mathbb{R} \times \mathbb{R}$. Since $Y$ is covered by lines in both coordinate directions, it is path connected. so $Y$ has one connected component.
is its correct/incorrect ??
Pliz tell me
Notice that
$Y =\mathbb{R}^2\backslash(\mathbb{Q}\times\mathbb{Q}^c) = (\mathbb{R}\times (\mathbb{R}\backslash \mathbb{Q}^c))\cup((\mathbb{R}\backslash \mathbb{Q})\times \mathbb{Q}^c) = (\mathbb{R}\times\mathbb{Q})\cup(\mathbb{Q}^c\times\mathbb{Q}^c).$
So, if $y=(a,b)\in Y$ and $b\in \mathbb{Q}^c$, then $a\in\mathbb{Q}^c$ and $\{y\}$ is the connected component of $y$.
If, $y'= (a,b)\in Y$ and $b\in\mathbb{Q}$, then $a$ can be any real number, so $\{(t,b),\ t\in \mathbb{R}\}$ is the connected componet of $y'$.