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 lecture: 15
 date: 2025-03-06
 ---
 # Lebesgue's Monotone Convergence Theorem
 Say $X$ has a [[Measure|measure]] $\mu$, and let $f_{n} : X \to [0, \infty]$ be [[Measurable|measurable]] and $f_{1} \leq f_{2} \leq f_{3} \leq \dots$. 
 Then $\int f_{m} \, d\mu \to \int \lim_{ n \to \infty } f_{n} \, d\mu$  as $m \to \infty$.
 > [!note]-
 > **Left Integral:**
 > $\int f \, d\mu = \sup_{0 \leq s \leq f} \int s \, d\mu$
 > 
 > **Right Integral:**
 > $\lim_{ m \to \infty } \int f_{m} \, d\mu = \int \lim_{ m \to \infty } f_{m} \, d\mu$
 ## Proof
 Note that $f \equiv \lim_{ n \to \infty }f_{n} : X \to [0, \infty]$ is a [[Measurable|measurable]] function as
 > [!note]-
 > - $\equiv$ is [[Pointwise|pointwise]]
 > - To make $[0, \infty]$, you can do "$[0, a\rangle, \langle a, b \rangle, \langle b, \infty]$"
 $f^{-1}([0, a\rangle) = \cap_{n=1}^{\infty} \underbrace{f_{n}^{-1}([0, a \rangle)}_{\text{Measurable}}$
 > [!note]- More on the right, measurable, function
 > $x \in X$ such that
 > $f(x) \lt a$
 > $\implies f_{n}(x) \leq f(x) < a\ \forall n$
 > $f_{n}(x) \lt a\ \forall n$
 > $\implies f(x) < a$
 Let $b \equiv \lim_{ n \to \infty } \int f_{n} \, d\mu \leq \int f \, d\mu$ as $f_{n} \leq f$.
 Let $0 \leq s \leq f$, $s$ [[Measure|measure]] simple, and $c \in \langle 0, 1 \rangle$.
 Let $A_{n} = \{ x \in X \, | \, c \times s(x) \leq f_{n}(x) \} = (\underbrace{f_{n} - cs}_{measurable function})^{-1}(\underbrace{[0, \infty]}_{open})$.
 Then $A_{1} \subset A_{2} \subset A_{3} \subset \dots$ [[Measurable|measurable]], and $\cup_{n} A_{n} \overbrace{=}^{\text{(*)}} X$
 > [!note] Continuing (\*)
 > Say $x \in X$.
 > If $f(x) = 0$, then $x \in A_{1}$.
 > If $f(x) \gt 0$, then $c \times s(x) \lt f(x)$, so $c \times s(x) \lt f_{n}(x)$ for some $n$, and $x \in A_{n}$.
 > 
 > By the previous two lemmas, we have
 > $b \geq \lim_{ n \to \infty } \int_{A_{n}} f_{n} \, d\mu \geq \lim_{ n \to \infty } c \times \int_{A_{n}} s \, d\mu$
 > > [!note]- Note on the $A_{n}$
 > > $$\int_{A} \subset \int_{X}$$
 > > $$A \subset X$$
 > 
 > $= c \lim_{ n \to \infty } \int_{A_{n}} s \, d\mu \overbrace{=}^{\text{2 lemmas}} c \times \int_{\cup A_{n}} s \, d\mu = c \times \int s \, d\mu$, so $b \geq c \times \int f \, d\mu$ and $b \geq \int f \, d\mu$
 > 
 > > [!info]- Reminder of the two lemmas
 > > 1. $A \mapsto \int_{A} s \, d\mu$ [[Measure|measure]] ($s = 1 \implies \int_{A} s \, d\mu = \mu(A)$)
 > > 2. For any measure $\nu$ and $A_{1} \subset A_{2} \subset \dots$ [[Measurable|measurable]] $\implies \nu(\cup A_{n}) = \lim_{ n \to \infty } \nu(A_{n})$
 QED.
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 # Measure Theory
 - [[Lecture 13 - Measure Theory]]
 - [[Lecture 14]]
 - [[Lecture 15]]