Caratheodory's Theorem: Difference between revisions

Statement

Consider an out measure ${\displaystyle \mu }$ on ${\displaystyle X}$. Define

${\displaystyle {\mathcal {M}}=\{A\subseteq X:A\ {\text{is}}\ \mu -{\text{measurable}}\}}$.

Then ${\displaystyle {\mathcal {M}}}$ is a ${\displaystyle \sigma }$-algebra and ${\displaystyle \mu ^{*}}$ is a measure on ${\displaystyle {\mathcal {M}}}$.

Proof

First, observe that ${\displaystyle {\mathcal {M}}}$ is closed under complements due to symmetry in the meaning of ${\displaystyle \mu }$-measurability. Now, we show if ${\displaystyle A,B}$ then ${\displaystyle A\cup B\in {\mathcal {M}}}$.

Suppose ${\displaystyle E\subseteq X}$. Then

${\displaystyle \mu ^{*}(E)=\mu ^{*}(E\cap A)=\mu ^{*}(E\cap A^{c})}$

${\displaystyle =\mu ^{*}(E\cap A\cap B)+\mu ^{*}(E\cap A\cap B^{c})+\mu ^{*}(E\cap A^{c}\cap B)+\mu ^{*}(E\cap A^{c}\cap B^{c})}$

and by subadditivity

${\displaystyle \geq \mu ^{*}(E\cap A^{c}\cap B^{c})+\mu ^{*}(E\cap (A\cup B))=\mu ^{*}(E\cap (A\cup B)^{c})+\mu ^{*}(E\cap (A\cup B))}$

But certainly, since ${\displaystyle E\subseteq (E\cap (A\cup B)^{c})\cup (E\cap (A\cup B)}$ the inequality in the other direction also holds, and we conclude

${\displaystyle E=\mu ^{*}(E\cap (A\cup B)^{c})+\mu ^{*}(E\cap (A\cup B)}$

hence ${\displaystyle A\cup B\in {\mathcal {M}}}$ and we have ${\displaystyle {\mathcal {M}}}$ is an algebra.

Now, suppose ${\displaystyle A,B\in {\mathcal {M}}}$ and ${\displaystyle A,B\in M}$ are disjoint. Then

${\displaystyle \mu ^{*}(A\cup B)=\mu ^{*}((A\cup B)\cap A)+\mu ^{*}((A\cup B)\cap A^{c})=\mu ^{*}(A)+\mu ^{*}(B)}$

so ${\displaystyle \mu ^{*}}$ is finitely additive.

Next, we show ${\displaystyle {\mathcal {M}}}$ is closed under countable disjoint unions. Given a disjoint sequence of sets ${\displaystyle \{B_{i}\}_{i=1}^{\infty }\subseteq {\mathcal {M}}}$, for all ${\displaystyle A\subseteq X}$, by countable subadditivity,

${\displaystyle \mu ^{*}(A)\leq \sum _{i=1}^{\infty }\mu ^{*}(A\cup B_{i})+\mu ^{*}(A\cap (\cup _{i=1}^{\infty }B_{i})^{c}).}$

It remains to show the other inequality direction. Since ${\displaystyle {\mathcal {M}}}$ is closed under finite unions, ${\displaystyle \cup _{i=1}^{\infty }B_{i}\in {\mathcal {M}}}$. By using the definition of ${\displaystyle \mu }$-measurability,

${\displaystyle \mu ^{*}(A)=\mu ^{*}(A\cup (\cup _{i=1}^{\infty }B_{i}))+\mu ^{*}(A\cap (\cup _{i=1}^{\infty }B_{i})^{c})}$

and by monotonicity,

${\displaystyle =\sum _{i=1}^{n}\mu ^{*}(A\cap B_{i})+\mu ^{*}(A\cap (\cup _{i=1}^{\infty }B_{i})^{c}).}$

Since this holds for all ${\displaystyle n}$,

${\displaystyle \mu ^{*}(A)\geq \sum _{i=1}^{\infty }\mu ^{*}(A\cap B_{i})+\mu ^{*}(A\cap (\cup _{i=1}^{\infty }B_{i})^{c})}$

which proves

${\displaystyle \mu ^{*}(A)=\sum _{i=1}^{\infty }\mu ^{*}(A\cap B_{i})+\mu ^{*}(A\cap (\cup _{i=1}^{\infty }B_{i})^{c})}$

${\displaystyle \geq \mu ^{*}(\cup _{i=1}^{\infty }(A\cap B_{i}))+\mu ^{*}(A\cap (\cup _{i=1}^{\infty }B_{i})^{c})}$

${\displaystyle =\mu ^{*}(A\cap (\cup _{i=1}^{\infty }B_{i}))+\mu ^{*}(A\cap (\cup _{i=1}^{\infty }B_{i})^{c}).}$

Similarly as before, the other inequality direction is proved by monotonicity, so we conclude equality and we have that ${\displaystyle \cup _{i=1}^{\infty }B_{i}\in {\mathcal {M}}}$.