Measure Theory/Countable Additivity

We can finally achieve what has been elusive for so long: a measure of sets of real numbers, which is countably additive.

In this lesson, we prove that the ${\displaystyle \lambda }$ which we just constructed is countably additive. Template:Robelbox ${\displaystyle \lambda }$ is countably additive. Template:Robelbox/close

As a warmup to countable additivity, let's prove the easier claim of pairwise additivity. Let ${\displaystyle E,F\in ℳ}$ be two measurable sets which are disjoint, ${\displaystyle E\cap F=\mathrm{\varnothing }}$.

We would like to show that ${\displaystyle \lambda (E\bigsqcup F)=\lambda (E)+\lambda (F)}$. Template:Robelbox Prove the desired result by applying the measurability of F to ${\displaystyle E\bigsqcup F}$. Don't forget to use the fact that E and F are disjoint. Template:Robelbox/close Template:Robelbox Notice that the proof did not actually require E to also be measurable. Therefore state a generalization of the above result.

Template:Robelbox/close Template:Robelbox Prove by induction that ${\displaystyle \lambda }$ is therefore finitely additive. As part of the exercise, state what "finitely additive" should mean.

Template:Robelbox/close Template:Robelbox Let ${\displaystyle E_1,E_2,\dots \in ℳ}$ be any countable collection of disjoint measurable sets. We would like to show

${\displaystyle \lambda \left({\displaystyle \underset{i=1}{\overset{\mathrm{\infty }}{⨆}}}{E}_i\right)={\displaystyle \sum _{i=1}^{\mathrm{\infty }}}\lambda (E_i)}$

To do so, state the result which you just proved for finite additivity. Then apply monotonicity and then take the limit as ${\displaystyle n\to \mathrm{\infty }}$.

Finally, use the above to prove countable additivity. Template:Robelbox/close Template:Robelbox Find ${\displaystyle \lambda ((0,1)\bigsqcup (2,3))}$ and then find ${\displaystyle \lambda (\underset{i=1}{⨆}(i,i+1))}$.

Also find ${\displaystyle \lambda ({\displaystyle \bigcup _{k=1}^{\mathrm{\infty }}}(k,k+1/2^k))}$.

Template:Robelbox/close

We have additivity results, and one would hope that we have something like results which resemble subtraction.

Template:Definition Template:Robelbox Prove that ${\displaystyle \lambda }$ satisfies excision.

Template:Robelbox/close

Recall that, roughly stated, if a function f is continuous then ${\displaystyle \underset{x\to x_0}{\lim }f(x)=f\left(\underset{x\to x_0}{\lim }x\right)=f(x)}$. Effectively, continuity of f means that the limit passes into the function.

There is a similar property for length measure. If ${\displaystyle E_1,E_2,\dots }$ is an ascending sequence of measurable sets (i.e. ${\displaystyle E_i\subseteq E_{i+1}}$ for ${\displaystyle 1\le i}$) then

${\displaystyle \underset{n\to \mathrm{\infty }}{\lim }\lambda \left({\displaystyle \bigcup _{i=1}^n}{E}_i\right)=\lambda \left(\underset{n\to \mathrm{\infty }}{\lim }{\displaystyle \bigcup _{i=1}^n}{E}_i\right)}$

One small problem with the statement above is that the expression ${\displaystyle \underset{n\to \mathrm{\infty }}{\lim }{\displaystyle \bigcup _{i=1}^n}{E}_n}$ is ... not even defined, actually.

But of course it makes good sense to identify this as ${\displaystyle {\displaystyle \bigcup _{i=1}^{\mathrm{\infty }}}{E}_i}$.

(Also note that ${\displaystyle {\displaystyle \bigcup _{i=1}^n}{E}_i}$ is superfluous because the sequence is ascending. This is just the same thing as ${\displaystyle E_n}$.)

Template:Definition

A sequence of sets ${\displaystyle E_1,E_2,\dots \subseteq ℝ}$ is called "descending" if ${\displaystyle E_i\supseteq E_{i+1}}$ for ${\displaystyle 1\le i}$.

Template:Definition

We now set for ourselves the proof of the theorem. Template:Robelbox ${\displaystyle \lambda }$ satisfies both upward and downward continuity of measure. Template:Robelbox/close Template:Robelbox

To prove the upward continuity of measure, define the sequence of disjoint measurable sets,

${\displaystyle F_1=E_1,F_2=E_2\setminus E_1,F_n=E_n\setminus E_{n-1}\text{ for }2\le n}$

Show that ${\displaystyle {\displaystyle \bigcup _{i=1}^{\mathrm{\infty }}}{E}_i={\displaystyle \underset{i=1}{\overset{\mathrm{\infty }}{⨆}}}{F}_i}$.

Next apply countable additivity.

Finally, justify and then use the fact that ${\displaystyle {\displaystyle \sum _{i=1}^n}\lambda (F_i)=\lambda (E_n)}$ for each ${\displaystyle 1\le n}$.

Template:Robelbox/close Template:Robelbox To prove the downward continuity of measure, let ${\displaystyle E_1,E_2,\dots }$ be as in the statement of the definition.

Define the ascending sequence of sets ${\displaystyle F_1=E_1\setminus E_2,F_n=E_1\setminus E_{n+1}\text{ for }1\le n}$.

1. Prove that this sequence is ascending, and then apply the upward continuity of measure.

2. Infer downward continuity of measure.

Template:Robelbox/close Template:Robelbox Give an example descending countable sequence of measurable sets, ${\displaystyle E_1,E_2,\dots }$, such that ${\displaystyle \underset{n\to \mathrm{\infty }}{\lim }\lambda (E_n)\ne \lambda \left({\displaystyle \bigcap _{n=1}^{\mathrm{\infty }}}{E}_n\right)}$.

Template:Robelbox/close

Template:CourseCat