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Misc fixes, 11 part 1

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Nathan Nguyen
2024-12-06 10:30:35 -06:00
parent 4d172dc503
commit 7befc2048c
2 changed files with 82 additions and 3 deletions
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39
docs/math/real-analysis/11-metric-spaces.md Normal file
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# Chapter 11 - Metric Spaces
## Section 11.4 - Netric Spaces
**Definition**. A *metric* on set $S$ is a function $d: S \otimes S \rightarrow \mathbb{R}$ that satifies the following properties for all $x, y, z \in S$,
- $d(x, y) \geq 0$
- $d(x, y) = 0 \; \text{ if and only if } x = y$
- $d(x, y) = d(y, x)$
- $d(x, y) \leq d(x, z) + d(z, y)$
**Definition**. A *metric space* $(S, d)$ is a set $S$, with elements called *points*, together with a metric $d$.
**Definition**. With metric space $(S, d)$, if $A \subset S$, then $(A, d)$ is a *subspace* of $(S, d)$.
**Definition**. The *discrete metric* is provided by
$$
d(x, y) = \begin{cases}
0 \; \text{ if } x = y \\
1 \; \text{ if } x \neq y
\end{cases}
$$
---
**Definition**. Let $(S, d)$ be a metric space. Then, for each $\epsilon > 0$, the *$\epsilon$-neighborhood* or *$\epsilon$-ball* of a point $a \in S$ is the set
$$
V_\epsilon(a) = {x \in S | d(a, x) < \epsilon}
$$
**Definition**. Let $(S, d)$ be a metric space. Then, a subset $G \subseteq S$ is *open* if for each $x \in G$, there exists some $\epsilon > 0$ so that $V_\epsilon(x) \subseteq G$.
**Definition**. Let $(S, d)$ be a metric space. Then, a subset $G \subseteq S$ is *closed* if its complement $C(G) = S - G = S \ F$ is closed.
**Definition**. Let $(S, d)$ be a metric space. A point $c \in S$ is a *cluster point$ of a set $A \subseteq S$ if every $\epsilon$-neighborhood of $c$ contains some point $a \in A$ such that $a \neq c$.
**Theorem**. Every $\epsilon$-neighborhood of a point is an open set.

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docs/math/real-analysis/4-limits.md
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**Definition**. Suppose $f: A \rightarrow \mathbb{R}$ is a function with domain $A \subseteq \mathbb{R}$, and let $c \in A$ be a cluster point of $A$. then, a real number $L$ is a *limit of $f$ at $c$* if goven any $\epsilon > 0$, there exists some $\delta > 0$ such that **Definition**. Suppose $f: A \rightarrow \mathbb{R}$ is a function with domain $A \subseteq \mathbb{R}$, and let $c \in A$ be a cluster point of $A$. then, a real number $L$ is a *limit of $f$ at $c$* if goven any $\epsilon > 0$, there exists some $\delta > 0$ such that
$$ $$
0 < |x-c| < \delta \Rightarrrow |f(x) - L| < \epsilon 0 < |x-c| < \delta \Rightarrow |f(x) - L| < \epsilon
$$ $$
**Therorem**. For a given function and cluster point, there can be at most one limit at said point. **Therorem**. For a given function and cluster point, there can be at most one limit at said point.
@@ -30,12 +30,52 @@ $$
--- ---
**Definition**. The *extended real numbers aree $\hat{\mathbb{R}} = \mathbb{R} \cup \{ \inftyy, -\infty \}$ are a totally-ordered set witth supremum and infimum. Note that this set is no longer a field. **Definition**. The *extended real numbers* are $\hat{\mathbb{R}} = \mathbb{R} \cup \{ \infty, -\infty \}$ are a totally-ordered set witth supremum and infimum. Note that this set is no longer a field.
**Definition**. At any point $c$, the limitt of $f$ at $c$ is infinite if given some $\alpha$, there exists some $V_\delta(c)$ such that forr all $x \in V_\epsilon(c)$, then $f(x) \in V_\alpha(\infty)$. **Definition**. At any point $c$, the limitt of $f$ at $c$ is infinite if given some $\alpha$, there exists some $V_\delta(c)$ such that forr all $x \in V_\epsilon(c)$, then $f(x) \in V_\alpha(\infty)$.
**Definition**. The limit of a function at infinity is defined if for a given $\epsilon$, there ixists some $\alpha$ so that there exists some $V_\delta(c)$ such that for all $x \in A$, **Definition**. The limit of a function at infinity is defined if for a given $\epsilon$, there exists some $\alpha$ so that there exists some $V_\delta(c)$ such that for all $x \in A$,
$$ $$
x > \alpha \Rightarrow |f(x) - L| < \epsilon x > \alpha \Rightarrow |f(x) - L| < \epsilon
$$ $$
## Section 4.2 - Limit Theorems
**Definition**. Let $A \subseteq \mathbb{R}$ and $c \in \mathbb{R}$ be a cluster point of $A$. Then, a function $f: A \rightarrow \mathbb{R}$ is *bounded on a neighborhood of $c$* if there exists some $\delta$-neighborhood $V_\delta(c)$ of $c$ and some constant $M > 0$ such that for all $x \in A \cap V_\delta(c)$, then $|f(x)| \leq M$.
**Theorem**. If $A \subseteq \mathbb{R}$ and $f: A \rightarrow \mathbb{R}$ has a finite limit at $c \in \mathbb{R}$, then $f$ is bounded on some neighborhood of $c$.
**Theorem**. With $A \subseteq \mathbb{R}$, and $f, g: A \rightarrow \mathbb{R}$, with $c \in \mathbb{R}$ a cluster point of $A$, then if $\lim_{x \rightarrow c} f(x) = L$ and $\lim_{x \rightarrow c} g(x) = M$, then:
$$\lim_{x \rightarrow c} (f(x) + g(x)) = L + M$$
$$\lim_{x \rightarrow c} (f(x)g(x)) = LM$$
Additionally, if $g(x) \neq 0$ for all $x \in A$, and $M \neq 0$, then
$$
\lim_{x \rightarrow c} \frac{f(x)}{g(x)} = \frac{L}{M}
$$
**Collary**. If $p, q \in \mathbb{R}[x]$, and $q(c) \neq 0$ for some $c \in \mathbb{R}$, then
$$
\lim_{x \rightarrow c} p(x) = p(c)
$$
$$
\lim_{x \rightarrow c} \frac{p(x)}{q(x)} = \frac{p(c)}{q(c)}
$$
**Theorem**. Squeeze Theorem. Let $A \subseteq \mathbb{R}$. Then, if $f, g, h: A \rightarrow \mathbb{R}$ and with $c \in \mathbb{R}$ being a cluster point of $A$, then if both
$$
\lim_{x \rightarrow c} f(x) = \lim_{x \rightarrow c} h(x) = L
$$
$$
f(x) \leq g(x) \leq h(x) \; \text{ for all } x \in A, x \neq c
$$
Then, $\lim_{x \rightarrow c} g(x) = L$.