oysteikt-skolearbeid
/
MA0301
1
0
Fork 0
Code Issues Pull Requests Packages Projects Releases Wiki Activity
MA0301/exercise3/main.tex

283 lines
11 KiB
TeX
Raw Blame History

\documentclass[12pt]{article}
\usepackage{ntnu}
\usepackage{ntnu-math}
\author{Øystein Tveit}
\title{MA0301 Exercise 3}
\begin{document}
\ntnuTitle{}
\break{}
\begin{excs}
\exc{}
\begin{align*}
\neg ((\neg p \wedge q) \vee (\neg p \wedge \neg q)) &\vee (p \wedge q) && \\
\neg (\neg p \wedge (q \vee \neg q)) &\vee (p \wedge q) && \text{Distributive law} \\
\neg (\neg p \wedge T) &\vee (p \wedge q) && \text{Complement law} \\
\neg (\neg p) &\vee (p \wedge q) && \text{Identity law} \\
p &\vee (p \wedge q) && \text{Double negation law} \\
p & && \text{Absortion law} \\
\end{align*}
\exc{}
\begin{align*}
((p \wedge q) \vee (p \wedge \neg r) \vee \neg(\neg p \vee q)) &\vee ((r \vee s \vee \neg r) \wedge \neg q) && \\
((p \wedge q) \vee (p \wedge \neg r) \vee (\neg\neg p \wedge \neg q)) &\vee ((r \vee s \vee \neg r) \wedge \neg q) && \text{De Morgans's law} \\
((p \wedge q) \vee (p \wedge \neg r) \vee ( p \wedge \neg q)) &\vee ((r \vee s \vee \neg r) \wedge \neg q) && \text{Double negation law} \\
((p \wedge (q \vee \neg q)) \vee (p \wedge \neg r)) &\vee ((r \vee s \vee \neg r) \wedge \neg q) && \text{Distributive law} \\
((p \wedge T) \vee (p \wedge \neg r)) &\vee ((r \vee s \vee \neg r) \wedge \neg q) && \text{Complement law} \\
((p) \vee (p \wedge \neg r)) &\vee ((r \vee s \vee \neg r) \wedge \neg q) && \text{Identity law} \\
p &\vee ((r \vee s \vee \neg r) \wedge \neg q) && \text{Absortion law} \\
p &\vee ((\neg q \wedge r) \vee (\neg q \wedge s) \vee (\neg q \wedge \neg r)) && \text{Distributive law} \\
p &\vee (\neg q \wedge r) \vee (\neg q \wedge s) \vee (\neg q \wedge \neg r) && \text{Associative law}
\end{align*}
\exc{}
\renewcommand{\theenumii}{\roman{enumii})}
\renewcommand{\theenumiii}{\alph{enumiii})}
\begin{subexcs}
\subexc{}
\begin{ssubexcs}
\ssubexc{}
\begin{gather*}
\{\{2,3,5\} \cup \{6,4\}\} \cap \{4,6,8\} \\
\{\{2,4,6\}\} \cap \{4,6,8\} \\
\emptyset
\end{gather*}
\ssubexc{}
\begin{align*}
P(\{7,8,9\}) &- P(\{7,9\}) \\
\{\{7,8,9\}, \{7,8\}, \{8,9\}, \{7,9\}, \{7\}, \{8\}, \{9\}, \emptyset\} &- \{\{7,9\}, \{7\}, \{9\}, \emptyset\} \\
\{\{7,8,9\}, \{7,8\}, \{8,9\}, \{8\}\} & \\
\end{align*}
\ssubexc{}
\begin{gather*}
P(\emptyset) \\
\{\emptyset\}
\end{gather*}
\ssubexc{}
\begin{gather*}
\{1, 3, 5\} \times \{0\} \\
\{ \langle 1,0 \rangle, \langle 3,0 \rangle, \langle 5, 0 \rangle \}
\end{gather*}
\ssubexc{}
\begin{gather*}
\{2,4,6\} \times \emptyset \\
\emptyset
\end{gather*}
\ssubexc{}
\begin{gather*}
P(\{0\}) \times P(\{1\}) \\
\{\emptyset, \{0\}\} \times \{\emptyset, \{1\}\} \\
\{\langle\emptyset,\emptyset\rangle, \langle\emptyset,\{1\}\rangle, \langle\{0\},\emptyset\rangle, \langle\{0\},\{1\}\rangle\}
\end{gather*}
\ssubexc{}
\begin{gather*}
P(P(\{2\})) \\
P(\{\emptyset,\{2\}\}) \\
\{ \{\{\emptyset\}, \{2\}\}, \{\{\emptyset\}\}, \{\{2\}\}, \emptyset \}
\end{gather*}
\end{ssubexcs}
\subexc{}
Because the elements in a power set can be represented as a binary tree where every leaf node is a set that has the cardinality of $1$, and that $\{\{x\} : x \in A\}$ would make up all the leaf nodes, we can reason that
\[ |P(A) - \{\{x\} : x \in A\}| = \frac{n}{2} \]
\end{subexcs}
\renewcommand{\theenumii}{\alph{enumii})}
\renewcommand{\theenumiii}{\roman{enumiii})}
\exc{}
\begin{subexcs}
\subexc{}
$\emptyset = \{\emptyset\}$ is {\color{red}False} because $|\emptyset| \neq |\{\emptyset\}|$
\subexc{}
$\emptyset = \{0\}$ is {\color{red}False} because $|\emptyset| \neq |\{0\}|$
\subexc{}
$|\emptyset| = 0$ is {\color{ForestGreen}True} because $\emptyset$ has $0$ elements
\subexc{}
$P(\emptyset)$ is {\color{red}False} because $P(\emptyset) = \{\{\emptyset\}\}$ has $1$ element
\subexc{}
$\emptyset = \{\}$ is {\color{ForestGreen}True} because the empty set is a subset of every possible set
\subexc{}
$\emptyset = \{x \in \mathbb{N} : x \leq 0 and x > 0\}$ is {\color{red}False} because $x \leq 0 \wedge x > 0 \equiv \F$, which means there are no such elements, and thus the set is empty
\end{subexcs}
\exc{}
\begin{subexcs}
\subexc{}
\begin{align*}
&A \cap (A \cup B) \\
&\{x : x \in A \wedge x \in (A \cup B)\} \\
&\{x : x \in A \wedge (x \in A \vee x \in B)\} \\
&\{x : x \in A\} \\
&A
\end{align*}
\subexc{}
\begin{align*}
&A-(B \cap C) \\
&\{x : x \in A \wedge x \notin (B \cap C)\} \\
&\{x : x \in A \wedge (x \notin B \wedge x \notin C)\} \\
&\{x : (x \in A \wedge x \notin B) \vee (x \in A \wedge x \notin C)\} \\
&\{x : x \in (A - B) \vee x \in (A - C)\} \\
&\{x : x \in (A - B) \cup (A - C)\} \\
&(A-B) \cup (A-C)
\end{align*}
\end{subexcs}
\exc{}
\renewcommand{\theenumii}{\roman{enumii})}
\begin{subexcs}
\subexc{}
\begin{align*}
&(A \cup B) \setminus (A \cap B) \\
&\{x: x \in (A \cup B) \setminus (A \cap B)\} \\
&\{x: x \in (A \cup B) \wedge x \notin (A \cap B)\} \\
&\{x: (x \in A \vee x \in B) \wedge (x \notin A \vee x \notin B)\} \\
&\{x: x \in A \wedge (x \notin A \vee x \notin B) \vee x \in B \wedge (x \notin A \vee x \notin B) \} \\
&\{x: ((x \in A \wedge x \notin A) \vee (x \in A \wedge x \notin B)) \vee ((x \in B \wedge x \notin A) \vee (x \in B \wedge x \notin B)) \} \\
&\{x: (F \vee (x \in A \wedge x \notin B)) \vee ((x \in B \wedge x \notin A) \vee F) \} \\
&\{x: (x \in A \wedge x \notin B) \vee (x \in B \wedge x \notin A) \} \\
&\{x: x \in (A - B) \vee x \in (B - A) \} \\
&\{x: x \in (A - B) \cup (B - A) \} \\
&(A - B) \cup (B - A) \\
\end{align*}
\subexc{}
For this exercise, I counted the elements which was in either set but not both
\[ A \Delta B = \{2, 4, 6, 7, 8\} \]
\end{subexcs}
\renewcommand{\theenumii}{\alph{enumii})}
\exc{}
\begin{align*}
X &= \{\{1,2,3\}, \{2,3\}, \{ef\}\} \cup \{\{e\}\} \\
&= \{\{1,2,3\}, \{2,3\}, \{ef\}, \{e\}\} \\
\end{align*}
\begin{align*}
P(x) = \{ \\
&\{\{1,2,3\}, \{2,3\}, \{ef\}, \{e\}\}, \\
&\{\{1,2,3\}, \{2,3\}, \{ef\}\}, \\
&\{\{1,2,3\}, \{2,3\}, \{e\}\}, \\
&\{\{1,2,3\}, \{ef\}, \{e\}\}, \\
&\{\{2,3\}, \{ef\}, \{e\}\}, \\
&\{\{1,2,3\}, \{2,3\}\}, \\
&\{\{1,2,3\}, \{e\}\}, \\
&\{\{1,2,3\}, \{ef\}\}, \\
&\{\{2,3\}, \{ef\}\}, \\
&\{\{2,3\}, \{e\}\}, \\
&\{\{ef\}, \{e\}\}, \\
&\{\{e\}\}, \\
&\{\{ef\}\}, \\
&\{\{2,3\}\}, \\
&\{\{1,2,3\}\} \\
\} \\
\end{align*}
\begin{align*}
P(X \cap Y) &= P(\{\{1,2,3\}, \{2,3\}, \{ef\}, \{e\}\} \cap \{\{1,2,3,e,f\}\}) \\
&= P(\emptyset) \\
&= \{\emptyset\}
\end{align*}
\exc{}
\begin{subexcs}
\subexc{}
Here, the exercise says ``[\ldots] four sets $A_1$, $A_2$, $A_3$''. I'm not sure if I'm supposed to do three or four, but I'll assume three sets $A_1$, $A_2$, $A_3$ was the intention.
\begin{align*}
A_1 \cap A_2 \cap A_3 \\
A_1 \cap A_2 \cap \overline{A_3} \\
A_1 \cap \overline{A_2} \cap A_3 \\
A_1 \cap \overline{A_2} \cap \overline{A_3} \\
\overline{A_1} \cap A_2 \cap A_3 \\
\overline{A_1} \cap A_2 \cap \overline{A_3} \\
\overline{A_1} \cap \overline{A_2} \cap A_3 \\
\overline{A_1} \cap \overline{A_2} \cap \overline{A_3} \\
\end{align*}
\subexc{}
For each set, the amount of fundamental products is multiplied by $2$. Therefore, the amount of fundamental sets of $n$ sets is $2^n$
\end{subexcs}
\exc{}
\begin{gather*}
A \overline{( B \overline{C} )} \overline{( (A \overline{B}) \overline{C})} \\
A ( \overline{B} + \overline{\overline{C}} ) \overline{(A \overline{B}\ \overline{C})} \\
A ( \overline{B} + C ) \overline{(A \overline{B}\ \overline{C})} \\
A ( \overline{B} + C ) \overline{(A \overline{B}\ \overline{C})} \\
A ( \overline{B} + C ) (\overline{A} + \overline{\overline{B}} + \overline{\overline{C}}) \\
A ( \overline{B} + C ) (\overline{A} + B + C) \\
( A\overline{B} + AC ) (\overline{A} + B + C) \\
A\overline{B}(\overline{A} + B + C) + AC(\overline{A} + B + C)\\
(A\overline{B}\ \overline{A} + A\overline{B}B + A\overline{B}C) + (AC\overline{A} + ACB + ACC)\\
(0 + 0 + A\overline{B}C) + (0 + ACB + AC)\\
A\overline{B}C + ACB + AC\\
ACB + AC\\
AC
\end{gather*}
\exc{}
LHS
\begin{gather*}
((A+B)+(A+C)) \overline{((A+B)(A+C))} \overline{A} \\
(A+B+A+C) \overline{(A+B)(A+C)} \overline{A} \\
(A+B+C) (\overline{(A+B)} + \overline{(A+C)}) \overline{A} \\
(A+B+C) (\overline{A}\ \overline{B} + \overline{A}\ \overline{C}) \overline{A} \\
(\overline{A}A + \overline{A}B + \overline{A}C) (\overline{A}\ \overline{B} + \overline{A}\ \overline{C}) \\
(0 + \overline{A}B + \overline{A}C) (\overline{A}\ \overline{B} + \overline{A}\ \overline{C}) \\
(\overline{A}B + \overline{A}C) (\overline{A}\ \overline{B} + \overline{A}\ \overline{C}) \\
\overline{A}B \overline{A}\ \overline{B} +
\overline{A}B \overline{A}\ \overline{C} +
\overline{A}C \overline{A}\ \overline{B} +
\overline{A}C \overline{A}\ \overline{C} \\
0 +
\overline{A}B \overline{A}\ \overline{C} +
\overline{A}C \overline{A}\ \overline{B} +
0 \\
\overline{A}B \overline{C} + \overline{A}C \overline{B} \\
\end{gather*}
RHS
\begin{gather*}
(B+C) \overline{(BC)} \overline{A} \\
(B+C) (\overline{B} + \overline{C}) \overline{A} \\
(\overline{A}B + \overline{A}C) (\overline{B} + \overline{C}) \\
\overline{A}B\overline{B} + \overline{A}B\overline{C} + \overline{A}C\overline{B} + \overline{A}C\overline{C} \\
0 + \overline{A}B\overline{C} + \overline{A}C\overline{B} + 0 \\
\overline{A}B\overline{C} + \overline{A}C\overline{B} \\
\end{gather*}
$LHS = RHS$
\end{excs}
\end{document}
Reference in New Issue View Git Blame Copy Permalink