w23-logic-2/inputs/lecture_04.tex

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\lecture{04}{}{ZFC}
% Model-theoretic concepts and ultraproducts
\section{$\ZFC$}
% 1900, Russel's paradox
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\todo{Russel's Paradox}
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$\ZFC$ stands for
\begin{itemize}
\item \textsc{Zermelo}s axioms (1905), % crises around 19000
\item \vocab{Fraenkel}'s axioms,
\item the axiom of choice.
\end{itemize}
\begin{notation}
We write $x \subseteq y$ as a shorthand
for $\forall z.~(z \in x \implies z \in y)$.
We write $x = \emptyset$ for $\lnot \exists y . y \in x$
and $x \cap y = \emptyset$ for $\lnot \exists z . ~(z \in x \land z \in y)$.
We use $x = \{y,z\}$
for
\[
y \in x \land z \in x \land \forall a .~(a \in x \implies a = y \lor a = z).
\]
Let $x = \bigcup y$ denote
\[
\forall z.~(z \in x \iff \exists v.(v \in y \land z \in v)).
\]
\end{notation}
$\ZFC$ consists of the following axioms:
\begin{axiom}[\vocab{Extensionality}]
\[
\forall x.~\forall y.~(x = y \iff \forall z.~(z \in x \iff z \in y)).
\]
Equivalent statements using $\subseteq$:
\[
\forall x.~\forall y.~(x = y \iff (x \subseteq y \land y \subseteq x)).
\]
\end{axiom}
\begin{axiom}[\vocab{Foundation}]
Every set has an $\in$-minimal member:
\[
\forall x .~ \left(\exists a .~(a\in x) \implies
\exists y .~ y \in x \land \lnot \exists z.~(z \in y \land z \in x)\right).
\]
Shorter:
\[
\forall x.~(x \neq \emptyset \implies \exists y \in x .~ x \cap y = \emptyset).
\]
\end{axiom}
\begin{axiom}[\vocab{Pairing}]
\[
\forall x .~\forall y.~ \exists z.~(z = \{x,y\}).
\]
\end{axiom}
\begin{remark}
Together with the axiom of pairing,
the axiom of foundation implies
that there can not be a set $x$ such that
$x \in x$:
Suppose that $x \in x$.
Then $x$ is the only element of $\{x\}$,
but $x \cap \{x\} \neq \emptyset$.
A similar argument shows that chains like
$x_0 \in x_1 \in x_2 \in x_0$
are ruled out as well.
\end{remark}
\begin{axiom}[\vocab{Union}]
\[
\forall x.~\exists y.~(y = \bigcup x).
\]
\end{axiom}
\begin{axiom}[\vocab{Powerset}]
We write $x = \cP(y)$
for
$\forall z.~(z \in x \iff x \subseteq z)$.
The powerset axiom (PWA) states
\[
\forall x.~\exists y.~y=\cP(x).
\]
\end{axiom}
\begin{axiom}[\vocab{Infinity}]
A set $x$ is called \vocab{inductive},
iff $\emptyset \in x \land \forall y.~(y \in x \implies y \cup \{y\} \in x)$.
The axiom of infinity says that there exists and inductive set.
\end{axiom}
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\begin{axiomschema}[\vocab{Separation}]
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% TODO :(Aus)
Let $\phi$ be some fixed
fist order formula in $\cL_\in$.
Then $\text{(Aus)}_{\phi}$
states
\[
\forall v_1 .~\forall v_p .~\forall a .~\exists b .~\forall x.~
(x \in b \implies x \in a \land \phi(x,v_1,v_p))
\]
Let us write $b = \{x \in a | \phi(x)\}$
for $\forall x.~(x \in b \iff x \in a \land f(x))$.
Then (Aus) can be formulated as
\[
\forall a.~\exists b.~(b = \{x \in a; \phi(x)\}).
\]
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\end{axiomschema}
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\begin{notation}
\todo{$\cap, \setminus, \bigcap$}
% We write $z = x \cap y$ for $\forall u.~((u \in z) \implies u \in x \land u \in y)$,
% $Z = x \setminus y$ for ...
% $x = \bigcap y$ for ...
\end{notation}
\begin{remark}
(Aus) proves that
\begin{itemize}
\item $\forall a.~\forall b.~\exists c.~(c = a \cap b)$,
\item $\forall a.~\forall b.~\exists c.~(c = a \setminus b)$,
\item $\forall a.~\exists b.~(b = \bigcap a)$.
\end{itemize}
\end{remark}
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\begin{axiomschema}[\vocab{Replacement} (Fraenkel)]
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Let $\phi$ be some $\cL_{\in }$ formula.
Then
\[
\forall v_1 .~\exists b.~\forall y.~(y \in b \iff \exists x .~(x \in a \land \phi(x,y,v_1,v_p))).
\]
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\end{axiomschema}
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\begin{axiom}[\vocab{Choice}]
Every family of non-empty sets has a \vocab{choice set}:
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\begin{IEEEeqnarray*}{rCl}
\forall x .~&(&\\
&& ((\forall y \in x.~y \neq \emptyset) \land (\forall y \in x .~\forall y' \in x .~(y \neq y' \implies y \cap y' = \emptyset))\\
&& \implies\exists z.~\forall y \in x.~\exists u.~(z \cap y = \{u\})\\
&)&
\end{IEEEeqnarray*}
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\end{axiom}
% TODO Hier weiter