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To start with, let me just state this theorem:

THEOREM 1 Let $(X_i,d_i)$,$(Y_i,d_i^{\,\prime})$ be metric spaces for $i=1,\dots,n$. Let $f_i:X_i\to Y_i$ be continuous for each $i$ as functions from the metric spaces $X_i$ to $Y_i$. Define the metric spaces $(X,d)$ and $(Y,d^{\,\prime})$ by setting $X=\prod_{i=1}^n X_i$ and $Y=\prod_{i=1}^n Y_i$, $d=\max{d_i}$ and $d^{\,\prime}=\max \{d_i^{ \,\prime}\}$. Then the function $f:X\to Y$ is continuous, where $f(x)=(f_1(x_1),\dots,f_n(x_n))$.

Now I am facing this seemingly simple exercise:

For each pair of points $a,b\in \Bbb R^n$ prove that there is a topological equivalence between $(\Bbb R^n,d)$ and itself defined by the inverse functions $f:\Bbb R^n\to\Bbb R^n$ and $g:\Bbb R^n\to\Bbb R^n$ such that $f(a)=b$. Hint: If $a=(a_1,\dots,a_n)$,$b=(b_1,\dots,b_n)$ define $f$ by $f(x)=(x_1+b_1-a_1,\dots,x_n+b_n-a_n)$.

... where $d$ is the $\max$ metric, that is $d(x,y)=\max\limits_{1\leq i \leq n}\{|x_i-y_i|\}$.

By the theorem it is evident $f$ is continuous. Setting $g(x)=(x_1+a_1-b_1,\dots,x_n+a_n-b_n)$ gives the desired inverse, which by the theorem is again continuous.

Could someone explain to me the motivation of this, give an insight of what this is telling us? What is the interpretation of setting $f(a)=b$? Are we setting $f(a)=b$ for each pair (in a one-one onto fashion), or just for a fixed pair $(a,b)\in \Bbb R^n\times \Bbb R^n$? Could you give another example of $f:\Bbb R^n\to \Bbb R^n \,/\,f(a)=b$?

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    @BrianM.Scott =D. Odd no one "answered" this but rather answered in the comments. Is it not worth an answer?2012-07-20

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The theorem tells us that $\Bbb R^n$ is homogeneous: for any points $a,b\in\Bbb R^n$ there is a surjective homeomorphism $h_{a,b}:\Bbb R^n\to\Bbb R^n$ carrying $a$ to $b$, i.e., such that $h_{a,b}(a)=b$. In general $h_{a,b}\ne h_{c,d}$ if $\langle a,b\rangle\ne\langle c,d\rangle$.

Intuitively speaking, a homogeneous space is one in which all points look the same: there is no topological property that distinguishes one point from another. The circle $S^1$ is another homogeneous space: for any $a,b\in S^1$ we can take $h_{a,b}$ to be any map that rotates the circle about its centre through an angle that takes $a$ to $b$.

A less obvious example of a homogeneous space is the middle-thirds Cantor set $C$. Fix $a,b\in C$; $a$ and $b$ have ternary expansions containing no $1$s, so we can write

$a=\sum_{n\ge 1}\frac{a_n}{3^n}\quad\text{ and }\quad b=\sum_{n\ge 1}\frac{b_n}{3^n}\;,$

where $a_n,b_n\in\{0,2\}$ for $n\in\Bbb Z^+$. Define $h_{a,b}:C\to C$ as follows. If $c=\sum_{n\ge 1}\frac{c_n}{3^n}$ with $c_n\in\{0,2\}$ for $n\in\Bbb Z^+$, let

$\widehat{c_n}=\begin{cases}c_n,&\text{if }a_n=b_n\\2-c_n,&\text{if }a_n\ne b_n\;,\end{cases}$

and let $h_{a,b}(c)=\sum_{n\ge 1}\frac{\widehat{c_n}}{3^n}\;.$

Clearly $h_{a,b}(a)=b$, and it’s a nice little exercise to verify that $h_{a,b}$ is a surjective homeomorphism. (You might find this a little surprising, since at first glance it might appear that the endpoints of the deleted middle thirds are somehow different from the other points of $C$.)

On the other hand, the closed unit interval $[0,1]$ is not homogeneous: there is no surjective homeomorphism $h:[0,1]\to[0,1]$ taking either of the endpoints to a point in $(0,1)$. This is because the endpoints are distinguished from the other points by the following topological property: if $x\in(0,1)$, then $[0,1]\setminus\{x\}$ is not connected, but if $x\in\{0,1\}$, then $[0,1]\setminus\{x\}$ is connected. (The points of $(0,1)$ are said to be cut points of $[0,1]$.) As another exercise you might try to show that the property of being a cut point is preserved by homeomorphisms.

Even more extreme types of inhomogeneity are possible. Let $X_0$ be a closed line segment in $\Bbb R^2$ of length $1$, and let $x_0$ be its midpoint. Form $X_1$ by attaching a segment of length $1/2$ to $x_0$ that meets $X_0$ only at $x_0$. Let $x_1,x_2$, and $x_3$ be the midpoints of the ‘arms’ of $X_1$. Form $X_2$ by attaching two segments to $x_1$, three to $x_2$, and four to $x_3$ in such a way that the new ‘arms’ have length $\le1/4$, are pairwise disjoint, and do not intersect $X_1$ except at their points of attachment. Continue in this fashion: given $X_n$ with last point of attachment $x_m$ and $k$ ‘arms’, let $x_{m+1},\dots,x_{m+k}$ be the midpoints of those arms, and for $i=1,\dots,k$ attach $m+i+1$ segments of length $\le 2^{-k}$ to $x_{m+i}$ in such a way that the new ‘arms’ are pairwise disjoint and meet $X_n$ only at their respective points of attachment. The resulting set is $X_{n+1}$.

Now let $X=\bigcup_{n\in\Bbb N}X_n$, and let $D=\{x_n:n\in\Bbb N\}$. $X$ inherits its topology and metric from $\Bbb R^2$, and it’s not hard to check that $D$ is a dense subset of $X$. For each $n\in\Bbb N$, $X\setminus\{x_n\}$ has $n+2$ components. The number of connected components of $X\setminus\{x\}$ is a topological property of $x$: it’s preserved by homeomorphisms. Thus, no homeomorphism $h:X\to X$ can take $x_m$ to $x_n$ if $m\ne n$. Moreover, if $x\in X\setminus D$, then $X\setminus\{x\}$ has two components, so no homeomorphism $h:X\to X$ can take any point of $D$ to a point of $X\setminus D$. Thus, if $h:X\to X$ is a homeomorphism, $h(x_n)=x_n$ for every $n\in\Bbb N$. Now use the fact that $h$ is continuous and $D$ is dense in $X$ to show that $h(x)=x$ for every $x\in X$. In other words, the identity map is the only homeomorphism of $X$ to itself: no two distinct points of $X$ ‘look alike’ in a topological sense.

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    @Peter: Yes. And in case it’s not clear, ‘arms’ should be understood to include the segments between midpoints as well as the new ‘stickers’ attached to midpoints. That is, there’s are new midpoints between $x_0$ and each of $x_1,x_2$, and $x_3$ as well as new midpoints between $x_1,x_2$, and $x_3$ and the ends of the true ‘stickers’.2012-07-23