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This is Problem 3.19.3 of Dieudonné's Foundations of Modern Analysis (in my words). For $x$ a rational number, let $E_x=\{x\}\times\left[-1,0\right[$, and for $x$ an irrational number, let $E_x=\{x\}\times[0,1]$. Let $E=\bigcup_{x\in\mathbf{R}}E_x$ with the subspace topology. Show that $E$ is connected.

There is the following hint: "Use (3.19.1) and (3.19.6) to study the structure of a subset of $E$ which is both open and closed."

(3.19.1) is the fact that the connected subspaces of $\mathbf{R}$ are intervals and that intervals are connected. (3.19.6) is the fact that any open set of $\mathbf{R}$ is a countable disjoint union of open intervals.

My thoughts: Let $A$ be a clopen subset of $E$. It is fairly obvious that, for any $x\in\mathbf{R}$, $A$ contains either all elements or no element of $E_x$. So we define a subset $B$ of the real line by $B=\{x\in\mathbf{R}:E_x\subset A\}$. Now I thought that $B$ has to be clopen as well (in $\mathbf{R}$). But I can't prove it. I have no problems showing that any irrational point of $B$ is an interior point, and that any irrational point of $\overline{B}$ is in $B$, but nothing about rational points. I was pretty sure that this is the way to go, since the hint is exclusively about subsets of $\mathbf{R}$.

Any (further) hint or comment is much appreciated.

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    I k$n$ow, but I'm interested in this space. I just couldn't find a better title.2011-02-07

2 Answers 2

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Building on what you have already proved for irrational points:

Assume that a rational point $b$ of $\overline{B}$ is not in $B$. Then $E_b$ is not in $A$. Since $b$ is in $\overline{B}$, there is a sequence in $B$ that converges to $b$. Each irrational point $x$ of this sequence is an interior point of $B$, and hence has a neighbourhood contained in $B$. This neighborhood contains a rational number that is closer to $b$ than $x$. Replace all irrational points in the sequence with the rational points thus chosen. This yields a sequence of rational numbers in $B$ converging to $b$, and hence corresponding sequences in $A$ converging to points in $E_b$, contradicting the fact that $A$ is clopen and $E_b$ is not in $A$. Hence all rational points of $\overline{B}$ lie in $B$, and $B$ is closed.

Analogously, assume that a rational point $b$ of $B$ is not an interior point. Then there is a sequence of points not in $B$ that converges to $b$. Each irrational point $x$ of this sequence has a neighbourhood that lies entirely outside $B$ (since otherwise it would be in $\overline{B}$, and hence in $B$). This neighbourhood contains a rational point $y$ that is closer to $b$ than $x$. Again, replace all irrational points in the sequence by the rational points thus chosen. This yields a sequence of rational numbers not in $B$ converging to $b$, and hence corresponding sequences not in $A$ converging to points in $E_b$, contradicting the fact that $A$ is clopen and $E_b$ is in $A$. Hence all rational points of $B$ are interior points, and $B$ is open.

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Consider the set $B$ as you have defined it. I claim that $B$ is an open subset of $\mathbb{R}$. If $x\in B$ and $x$ is irrational, then $(x,0)\in A$ and so $A$ contains a ball around $(x,0)$, and so $A$ contains points from $E_y$ for all $y$ sufficiently close to $x$. So $x$ is in the interior of $B$, as desired. If $x$ is rational, in contrast, then $A$ contains points from $E_y$ for all rational $y$ sufficiently close to $x$, and so $E_y\subset A$ for all rational $y$ sufficiently close to $x$. In this case, since the complement of $A$ is open, it means that the closure of such $E_y$ must be contained in $A$, but the closure of such $E_y$ includes all points of the form $(z,0)$ for irrational $z$ sufficiently close to $x$. Thus again, $x$ is in the interior of $B$, as desired.

It now follows by considering the complement of $A$ that $B$ is also clopen, which would be a contradiction unless $A$ and hence $B$ was either empty or the whole space.

(I see now that Joriki has answered while I was writing this...)

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    Thank you both for your answers. I had to choose, so I accepted Joriki's because he was a little faster.2011-02-07