4. Caratheodory theorem

(待修改! ) Given a semi-algebra $\mathcal{S}\subset \Im (\Omega )$ over $\Omega$ and an additive function $\mu :\mathcal{S}⟶$${\mathbb{R}}_{+}$$\cup \left\{+\infty \right\}$, we prove that there exist a unique extension $\nu :\mathcal{A}(\mathcal{S})⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\}$ which is additive in the last note. In this note, our goal is that prove the following fact $$\begin{gathered} \sigma \text{-additive}\mu :\mathcal{S}⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\} \\ \Downarrow \downarrow \text{extension} \\ \sigma \text{-additive}\nu :\mathcal{A}\left(\mathcal{S}\right)⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\} \\ \Downarrow \downarrow \text{extension} \\ \sigma \text{-additive}\pi :\mathcal{F}\left(\mathcal{A}\right)⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\} \end{gathered}$$

##### Step 1

Definition

Given an algebra $\mathcal{A}\subset \Im (\Omega )$ over $\Omega$ and a function $\nu :\mathcal{A}⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\}$, we define $$\pi \ast :\Im (\Omega )A⟶R+\cup +\infty \mapsto Ei\in Ai⩾1coverAinfi⩾1\sum \nu (Ei)$$Definition

Given $\mathcal{C}\subset \Im (\Omega )$ where $\mathcal{C}$ contain the empty set $\varnothing$ and we say a function $$\mu :\mathcal{C}⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\}$$is an outer measure on $\mathcal{C}$ if

- $\mu (\varnothing )=0$ - $E\subset F$ and $E$, $F\in \mathcal{C}$ $⟹$ $\mu (E)⩽\mu (F)$ - $E\in \mathcal{C}$ and ${\left\{E_i\in \mathcal{C}\right\}}_{i⩾1}\stackrel{\text{cover}}{\to }E$ $⟹$ $\mu (E)⩽{\sum }_{i⩾1}\mu (E_i)$

Claim

${\pi }^{\ast }$ is an outer measure.

- Take ${\left\{E_i=\varnothing \right\}}_{i⩾1}$, then

$$\pi \ast (\varnothing )⩽bydef.i⩾1\sum \nu (Ei)=i⩾1\sum \nu (\varnothing )=0$$

Therefore ${\pi }^{\ast }(\varnothing )=0$ since the codomain of ${\pi }^{\ast }$ is nonnegative.

- Let $E\subset F$ and ${\left\{F_i\in \mathcal{A}\right\}}_{i⩾1}\stackrel{\text{cover}}{\to }F$, it is clear that ${\left\{F_i\in \mathcal{A}\right\}}_{i⩾1}\stackrel{\text{cover}}{\to }E$. Set $\tilde{F}=\{{\left\{F_i\in \mathcal{A}\right\}}_{i⩾1}|{\left\{F_i\in \mathcal{A}\right\}}_{i⩾1}$$\stackrel{\text{cover}}{\to }F\}$ and $\tilde{E}=\{{\left\{E_i\in \mathcal{A}\right\}}_{i⩾1}|\left\{E_i\in \mathcal{A}\right\}$${}_{i⩾1}$$\stackrel{\text{cover}}{\to }E\}$. It is clear that $\tilde{F}\subset \tilde{E}$, then

$$\pi \ast (E)=Ei\in Ai⩾1\in Einfi⩾1\sum \nu (Ei)⩽Fi\in Ai⩾1\in Finfi⩾1\sum \nu (Fi)=\pi \ast (F)$$

- Take a sequence ${\left\{E_i\in \mathcal{C}\right\}}_{i⩾1}\stackrel{\text{cover}}{\to }E$, we assume that ${\pi }^{\ast }(E_i)<+\infty$ for all $i$ (note that if ${\pi }^{\ast }(E_i)=+\infty$ for some $i$, then the inequality holds trivially), ${\pi }^{\ast }(E_i)=\underset{{\left\{H_k\in \mathcal{A}\right\}}_{k⩾1}\stackrel{\text{cover}}{\to }{E}_i}{\inf }{\sum }_{k⩾1}\nu \left(H_k\right)<+\infty$. Fix $ϵ>0$, there always exist a sequence ${\left\{H_{i,k}\in \mathcal{A}\right\}}_{i,k⩾1}\stackrel{\text{cover}}{\to }{E}_i$ such that

$$\begin{gathered} {\pi }^{\ast }(E_i)⩽\sum _{i⩾1}\nu (H_{i,k}) \\ ⩽{\pi }^{\ast }(E_i)+\frac{ϵ}{2^i} \end{gathered}$$

Also, ${\left\{H_{i,k}\in \mathcal{A}\right\}}_{i,k⩾1}\stackrel{\text{cover}}{\to }E$ since $\left\{E_i\right\}\stackrel{\text{cover}}{\to }E$. Then $$\pi \ast (E)⩽i,k\sum \nu (Hi,k)⩽i⩾1\sum (\pi \ast (Ei)+2iϵ)⩽i⩾1\sum \pi \ast (Ei)+ϵ$$holds for any $ϵ>0$. So ${\pi }^{\ast }(E)⩽{\sum }_{i⩾1}{\pi }^{\ast }(E_i)$.

##### Step 2

We define a family of subsets $\mathcal{M}\subset \Im (\Omega )$, $A\in \mathcal{M}$ if $\forall$ $E\in \Omega$ satisfy $${\pi }^{\ast }(E)={\pi }^{\ast }(E\bigcap A)+{\pi }^{\ast }(E\bigcap A^c)$$We claim that

- $\mathcal{A}\subset \mathcal{M}$

- $\mathcal{M}$ is a $\sigma$-algebra

Observation ${\pi }^{\ast }(E)⩽{\pi }^{\ast }(E\bigcap A)+{\pi }^{\ast }(E\bigcap A^c)$ since $E\subset (E\bigcap A)\bigcup (E\bigcap A^c)$.

So, if we want to prove that $A\in \mathcal{M}$ where $A\in \mathcal{A}$, it sufficient to show that $${\pi }^{\ast }(E)⩾{\pi }^{\ast }(E\bigcap A)+{\pi }^{\ast }(E\bigcap A^c)$$for $\forall$ $E\in \Omega$. Not loss the generality, we may assume that ${\pi }^{\ast }(E)<+\infty$ since the inequality holds trivially while ${\pi }^{\ast }(E)=+\infty$. Given $ϵ>0$, we can find ${\left\{E_i\in \mathcal{A}\right\}}_{j⩾1}\stackrel{\text{cover}}{\to }E$ such that

$${\pi }^{\ast }(E)⩽\sum _{i⩾1}\nu (E_i)⩽{\pi }^{\ast }(E)+ϵ$$We obtain $${\pi }^{\ast }(E\bigcap A)⩽\sum _{i⩾1}\nu (E_j\bigcap A)$$since $E_i\bigcap A\in \mathcal{A}$ and $E\bigcap A\subset {\bigcup }_{i⩾1}(E_i\bigcap A)$. Similarly, we obtain $${\pi }^{\ast }(E\bigcap A^c)⩽\sum _{i⩾1}\nu (E_j\bigcap A^c)$$Therefore, $$\pi \ast (E\bigcap A)+\pi \ast (E\bigcap Ac)⩽i⩾1\sum (\nu (Ei\bigcap A)+\nu (Ei\bigcap Ac))=i⩾1\sum \nu (Ej)⩽\pi \ast (E)+ϵ$$holds for any $ϵ>0$. So we have ${\pi }^{\ast }(E)⩾{\pi }^{\ast }(E\bigcap A)+{\pi }^{\ast }(E\bigcap A^c)$ and hence $\mathcal{A}\subset \mathcal{M}$. It is clear that $\Omega \in \mathcal{M}$ since ${\pi }^{\ast }(E)={\pi }^{\ast }(E)+{\pi }^{\ast }(\varnothing )=$${\pi }^{\ast }(E\bigcap \Omega )+$${\pi }^{\ast }(E\bigcap {\Omega }^c)$.

Assume that $A\in \mathcal{M}$, then (by the definition of $\mathcal{M}$) we have ${\pi }^{\ast }(E)=$${\pi }^{\ast }(E\bigcap A)+{\pi }^{\ast }(E\bigcap A^c)$ holds for every $E$. By the symmetry of $A$ and $A^c$, $A^c\in \mathcal{M}$.

Given $(A_j{)}_{j⩾1}\in \mathcal{M}$, we need to show that $(A_j{)}_{j⩾1}\in \mathcal{M}$ $⟹$ ${\bigcup }_{j⩾1}{A}_j\in \mathcal{M}$.

Remark The property $(A_j{)}_{j⩾1}$$\in \mathcal{M}$ $⟹$ ${\bigcap }_{j⩾1}{A}_j\in \mathcal{M}$ is equal to $(A_j{)}_{j⩾1}$$\in$$\mathcal{M}$ $⟹$ ${\bigcup }_{j⩾1}{A}_j\in \mathcal{M}$.

First, we show that $A$, $B\in \mathcal{M}$ $⟹$ $A\bigcup B\in \mathcal{M}$. It sufficient to show the in-equality $${\pi }^{\ast }(E)⩾{\pi }^{\ast }(E\bigcap (A\bigcup B))+{\pi }^{\ast }(E\bigcap (A\bigcup B{)}^c)$$holds for $\forall$ $E\in \Omega$. Since $A$, $B\in \mathcal{M}$, we have $${\pi }^{\ast }(E)={\pi }^{\ast }(E\bigcap A)+{\pi }^{\ast }(E\backslash A)$$and $${\pi }^{\ast }(E\backslash A)={\pi }^{\ast }((E\backslash A)\bigcap B)+{\pi }^{\ast }((E\backslash A)\backslash B)$$Take the second formula into the first one we obtain π∗(E)​=π∗(E⋂A)+π∗((E\A)⋂B)+π∗((E\A)\B)=π∗(E⋂A)+π∗((E\A)⋂B)+π∗(E\(A⋃B))=π∗(E⋂A)+π∗((E\A)⋂B)+π∗(E⋂(A⋃B)c)​ Then it sufficient to show that $${\pi }^{\ast }(E\bigcap A)+{\pi }^{\ast }((E\backslash A)\bigcap B)⩾{\pi }^{\ast }(E\bigcap (A\bigcup B))$$By the property of ${\pi }^{\ast }$, it sufficient to show that $$E\bigcap (A\bigcup B)\subset (E\bigcap A)\bigcup ((E\backslash A)\bigcap B)$$Actually,

Next, we show that $\mathcal{M}$ is closed by countable union (i.e. $A_j\in \mathcal{M}$ $⟹$ $A$$=$${\bigcup }_{j⩾1}{A}_j\in \mathcal{M}$).

It sufficient to show the following inequality $${\pi }^{\ast }(E)⩾{\pi }^{\ast }(E\bigcap A)+{\pi }^{\ast }(E\backslash A)$$But we know that $\mathcal{M}$ is closed by finite union $$\pi \ast (E)=\pi \ast (E\bigcap (j=1\bigcup nAj))+\pi \ast (E\text{A}\bigcup E\text{j}=1\bigcup nAj)⩾\pi \ast (E\bigcap (j=1\bigcup nAj))+\pi \ast (E\text{A})$$We take F1​F2​Fn​​=A1​=A2​\A1​⋮=An​\(A1​⋃⋯⋃An−1​)​ Then ${\bigcup }_{j=1}^n{A}_j={\bigcup }_{j=1}^n{F}_j$ and it is clear that $F_j\bigcap F_k=\varnothing$ for any $j$ and $k$ where $j\ne k$ and Fj​(M is closed by ( )c and finite union)​=Aj​\(A1​⋃⋯⋃Aj−1​)=Aj​⋂(A1​⋃⋯⋃Aj−1​)c∈M​ Therefore, $${\pi }^{\ast }(E)⩾{\pi }^{\ast }(E\bigcap \sum _{j=1}^n{F}_j)+{\pi }^{\ast }(E\backslash A)$$Claim $${\pi }^{\ast }(E\bigcap \sum _{j=1}^n{F}_j)=\sum _{j=1}^n{\pi }^{\ast }(E\bigcap F_j)$$By induction

$1⟩$ $n=1$, the equality holds trivially

$2⟩$ Assume that the equality holds for $n>1$

$3⟩$ for $n+1$, we have $$\pi \ast (E\bigcap j=1\sum n+1Fj)=\pi \ast ((E\bigcap j=1\sum n+1Fj)\bigcap Fn+1)+\pi \ast ((E\bigcap j=1\sum n+1Fj)\bigcap Fn+1c)=\pi \ast (E\bigcap Fn+1)+\pi \ast (E\bigcap j=1\sum nFj)=\pi \ast (E\bigcap Fn+1)+j=1\sum n\pi \ast (E\bigcap Fj)=j=1\sum n+1\pi \ast (E\bigcap Fj)$$

We rewrite the inequality ${\pi }^{\ast }(E)⩾{\pi }^{\ast }(E\bigcap {\sum }_{j=1}^n{F}_j)+{\pi }^{\ast }(E\backslash A)$ to $${\pi }^{\ast }(E)⩾\sum _{j=1}^n{\pi }^{\ast }(E\bigcap F_j)+{\pi }^{\ast }(E\backslash A)$$

$${\pi }^{\ast }(E)⩾\sum _{j⩾1}{\pi }^{\ast }(E\bigcap F_j)+{\pi }^{\ast }(E\backslash A)$$

Since the inequality is correct for any $n$, the following inequality can be hold. Therefore, $$\pi \ast (E)(bythepropertyof\pi \ast )⩾j⩾1\sum \pi \ast (E\bigcap Fj)+\pi \ast (E\text{A})⩾\pi \ast (E\bigcap (j⩾1\bigcup Fj))+\pi \ast (E\text{A})=\pi \ast (E\bigcap A)+\pi \ast (E\text{A})$$It completed the proof that $\mathcal{M}$ is a $\sigma$-algebra.

We now know that

- $\mathcal{A}\subset \mathcal{M}$ - $\mathcal{M}$ is a $\sigma$-algebra

Then we obtain the fact $\mathcal{F}(\mathcal{A})\subset \mathcal{M}$.

##### Step 3

The restriction $${\pi }^{\ast }{\mid }_{\mathcal{M}}:\mathcal{M}⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\}$$is a extension of $\nu$ which define on the algebra $\mathcal{A}$ and is $\sigma$-additive.

- ${\pi }^{\ast }(A)⩽\nu (A)$ where $A\in \mathcal{A}$

Set ${\left\{E_j\right\}}_{j⩾1}=\left\{A,\varnothing ,\varnothing ,...\right\}\stackrel{\text{cover}}{\to }A$, then ${\pi }^{\ast }(A)⩽{\sum }_{j⩾1}\nu (E_j)=\nu (A)$.

- $\nu (A)⩽{\sum }_{j⩾1}\nu (E_j)$ where ${\left\{E_j\in \mathcal{A}\right\}}_{j⩾1}\stackrel{\text{cover}}{\to }A$ and $A\in \mathcal{A}$

We take F1​F2​Fn​​=E1​=E2​\E1​⋮=En​\(E1​⋃⋯⋃En−1​)​ It is clear that $(F_j{)}_{j⩾1}\in \mathcal{A}$ and ${\bigcup }_{j⩾1}{F}_j={\bigcup }_{j⩾1}{E}_j$, $F_j\bigcap F_k=\varnothing$ for any $j$ and $k$ where $j\ne k$. Therefore, ${\left\{F_j\in \mathcal{A}\right\}}_{j⩾1}\stackrel{\text{cover}}{\to }A$. We conclude $$\nu (A)(\nu is\sigma -additive)(Fj\bigcap A\subset Ej)=\nu (j⩾1\sum Fj\bigcap A)=j⩾1\sum \nu (Fj\bigcap A)⩽j⩾1\sum \nu (Ej)$$This inequality holds for all covering of $A$, so $$\nu (A)⩽Ej\in Aj⩾1coverAinfj⩾1\sum \nu (Ej)=\pi \ast (A)$$

- ${\pi }^{\ast }{\mid }_{\mathcal{M}}$ is $\sigma$-additive

Take $(A_j{)}_{j⩾1}\in \mathcal{M}$ such that $A_j\bigcap A_k=\varnothing$ for all $j$ and $k$ where $j\ne k$. we conclude that $${\pi }^{\ast }(\sum _{j⩾1}{A}_j)⩽\sum _{j⩾1}{\pi }^{\ast }(A_j)(\text{is clear})$$and $${\pi }^{\ast }(\sum _{j⩾1}{A}_j)⩾{\pi }^{\ast }(\sum _{j=1}^n{A}_j)=\sum _{j=1}^n{\pi }^{\ast }(A_j)(\text{is clear})$$Then we can take $n$ to be $+\infty$, and we get the inequality $${\pi }^{\ast }(\sum _{j⩾1}{A}_j)⩾\sum _{j⩾1}{\pi }^{\ast }(A_j)$$Consequently, ${\pi }^{\ast }{\mid }_{\mathcal{M}}$ is an extension of $\nu$ and is $\sigma$-additive.

##### Step 4

**Goal** Given two functions ${\mu }_1$, ${\mu }_2:\mathcal{F}(\mathcal{A})⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\}$ such that ${\mu }_1{\mid }_{\mathcal{A}}={\mu }_2{\mid }_{\mathcal{A}}$. If $\Omega$ is $\sigma$-finite with respect to ${\mu }_1$ and ${\mu }_2$, then ${\mu }_1={\mu }_2$.

Remark Given a set $\Omega$, we say that $\Omega$ is $\sigma$-finite with respect to ${\nu }_1{\mid }_{\mathcal{A}}:$$\mathcal{A}⟶{\mathbb{R}}_{+}\cup \left\{+\infty \right\}$ if for any increasing converges sequence ${\left\{E_j\in \mathcal{A}\right\}}_{j⩾1}⟶\Omega$, ${\mu }_1(E_j)<+\infty$ for all $j$.

Definition

Given a set $\Omega$ and $\mathcal{G}\subset \Im (\Omega )$, we say that $\mathcal{G}$ is a monotone class if

- ${\left\{A_j\in \mathcal{G}\right\}}_{j⩾1}⟶A$ is an increasing converges sequence $⟹$ $A\in \mathcal{G}$ - ${\left\{A_j\in \mathcal{G}\right\}}_{j⩾1}⟶A$ is an decreasing converges sequence $⟹$ $A\in \mathcal{G}$

Assertion If $({\mathcal{G}}_{\alpha }{)}_{\alpha \in I}\subset \Im (\Omega )$ is a family of monotone classes where $I$ is an index set. Then ${\bigcap }_{\alpha \in I}{\mathcal{G}}_{\alpha }$ is a monotone class (is easy to see).

Given a class $\mathcal{C}\subset \Im (\Omega )$, we define $$\mathcal{M}(\mathcal{C}):=\bigcap _{\alpha }{\mathcal{G}}_{\alpha },\mathcal{C}\subset {\mathcal{G}}_{\alpha }\text{ for all }\alpha$$and $\mathcal{M}(\mathcal{C})$ is the smallest monotone class which contain $\mathcal{C}$.

Remark $\mathcal{M}(\mathcal{C})\ne \varnothing$ since $\Im (\Omega )$ is a monotone class itself ,so this definition make sense.

<a id="lemma">Lemma</a> Given an algebra $\mathcal{A}\subset \Im (\Omega )$, we have the equality $$\mathcal{M}(\mathcal{A})=\mathcal{F}(\mathcal{A})$$Given an increasing converges sequence ${\left\{E_j\in \mathcal{A}\right\}}_{j⩾1}⟶\Omega$ and fix $E_n$, we define $${\mathcal{B}}_n:=\left\{E\in \mathcal{F}(\mathcal{A})|{\mu }_1(E\bigcap E_n)={\mu }_2(E\bigcap E_n)\right\}$$$1⟩$ $\mathcal{A}\subset {\mathcal{B}}_n$

Take an element $A\in \mathcal{A}$, ${\mu }_1(A\bigcap E_n)={\mu }_2(A\bigcap E_n)$ since $A\bigcap E_n\in \mathcal{A}$.

$2⟩$ ${\mathcal{B}}_n$ is a monotone class

Given ${\left\{A_j\in {\mathcal{B}}_n\right\}}_{j⩾1}⟶A$ an increasing converges sequence, then

$A\in \mathcal{F}(\mathcal{A})$ since $A={\bigcup }_{j⩾1}{A}_j$, then we have $A\in {\mathcal{B}}_n$.

Similarly, Given ${\left\{A_j\in {\mathcal{B}}_n\right\}}_{j⩾1}⟶A$ an decreasing converges sequence, then

So ${\mathcal{B}}_n$ is a monotone class.

Therefore, $\mathcal{M}\subset {\mathcal{B}}_n$. By using [the lemma](#lemma) we have $\mathcal{F}(\mathcal{A})\subset {\mathcal{B}}_n$, but, by the construction of ${\mathcal{B}}_n$, ${\mathcal{B}}_n\subset \mathcal{F}(\mathcal{A})$. Consequently, $${\mathcal{B}}_n=\mathcal{F}(\mathcal{A})$$Given $A\in \mathcal{F}(\mathcal{A})$, then $A\in {\mathcal{B}}_n$, we have the following diagram