SchoolWork-LaTeX/概率论/平时作业/单元作业1.tex
423A35C7 5906ac1efc 重构目录层次
0-课程笔记
1-平时作业
2-实验报告
3-期末大作业
2024-09-02 18:32:58 +08:00

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\documentclass[全部作业]{subfiles}
\begin{document}
\chapter{单元作业1}
\begin{enumerate}
\item 证明$P(AB)\ge P(A)+P(B)-1$
\begin{proof}
\begin{zhongwen}
$$
\begin{aligned}
&\Omega 表示全集则A \in \Omega, B \in \Omega \\
&\therefore A\cup B\in \Omega \\
&\therefore P(A\cup B)\le P(\Omega) \\
&\therefore P(A)+P(B)-P(AB)\le 1 \\
&\therefore P(AB)\ge P(A)+P(B)-1 \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item 一副标准扑克牌52张一张一张轮流分发给给4名游戏者求每人恰好得到1张A的概率。
\begin{proof}[解]
\begin{zhongwen}
$$
\begin{aligned}
&设A表示事件“每人恰好得到一张A”由盒子模型可知 \\
&P(A) = \frac{\mathrm{P}_{4}^{4}}{4^{4}} = \frac{4!}{256} = \frac{3}{32} \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item$P(A)=0.7,P(A-B)=0.3$,求概率$P(\overline{AB})$
\begin{proof}[解]
\begin{zhongwen}
$$
\begin{aligned}
P(\overline{AB})&=1-P(AB)=1-P(A-(A-B)) \\
&=1-(P(A)-P(A-B))=1-(0.7-0.3)=0.6 \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item$P(A)=a,P(B)=b,P(A\cup B)=c$,求概率$P(\overline{\bar{A}\cup \bar{B}})$
\begin{proof}[解]
\begin{zhongwen}
$$
\begin{aligned}
P(\overline{\bar{A}\cup \bar{B}})=P(A\cap B)=P(A)+P(B)-P(A\cup B)=a+b-c
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item$A,B\in \mathcal{F}$,证明$P(A)=P(AB)+P(A \bar{B}), \quad P(A\triangle B)=P(A)+P(B)-2P(AB)$
\begin{proof}
\begin{zhongwen}
$$
\begin{aligned}
&\Omega 表示全集 \\
P(A)&=P(A\cap \Omega)=P(A\cap (B\cup \bar{B})) \\
&=P(A(B+\bar{B}))=P(AB+A \bar{B})=P(AB)+P(A \bar{B}) \\
P(A \triangle B)&=P((A\backslash B)\cup (B\backslash A))=P((A-(AB))+(B-(AB))) \\
&=P(A)-P(AB)+P(B)-P(AB)=P(A)+P(B)-2P(AB) \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item$\Omega =(-\infty, \infty), A=\{ x\in \Omega: 1\le x\le 5 \}, B=\{ x\in \Omega:3<x<7 \},C=\{ x\in \Omega:x<0 \}$,求下列事件$\bar{A}, A\cup B,B \bar{C}, \bar{A}\cap \bar{B}\cap \bar{C}, (A\cup B)C$
\begin{proof}[解]
\begin{zhongwen}
$$
\begin{aligned}
&\bar{A}=\{ x\in \Omega: x < 1 或x>5 \} \\
&A\cup B=\{ x\in \Omega: 1\le x<7 \} \\
&B \bar{C}=\{ x\in \Omega:3<x<7 \} \\
&\bar{A}\cap \bar{B}\cap \bar{C}=\{ x\in \Omega:0\le x<1或x\ge 7 \} \\
&(A\cup B)C=\varnothing \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item\textit{I}是任意指标集,$\{ A_i, i\in I \}$是一事件类,证明$\overline{\displaystyle \bigcup_{i \in I} A_i}=\displaystyle \bigcap_{i \in I} \overline{A_i}$, \quad $\overline{\displaystyle \bigcap_{i \in I} A_i}=\displaystyle \bigcup_{i \in I} \overline{A_i}$
\begin{proof}
\begin{zhongwen}
$$
\begin{aligned}
&\forall x\in \overline{\bigcup_{i \in I} A_i},\ 即x \notin \bigcup_{i \in I} A_i, 即 \\
&\forall i \in I,x \notin A_i, \\
&\therefore \forall i \in I, x\in \overline{A_i} \\
&\therefore x\in \bigcap_{i \in I} \overline{A_i} \\
\end{aligned}
$$
\begin{equation}
\therefore \overline{\bigcup_{i \in I} A_i} \subseteq \bigcap_{i \in I} \overline{A_i} \tag{1}\label{eq:7.1}
\end{equation}
$$
\begin{aligned}
&\forall x\in \bigcap_{i \in I} \overline{A_i}, 即 \\
&\forall i \in I,x\in \overline{A_i} \\
&\therefore \forall i\in I,x \notin A_i \\
&\therefore x\notin \bigcup_{i \in I} A_i \\
&\therefore x\in \overline{\bigcup_{i \in I} A_i} \\
\end{aligned}
$$
\begin{equation}
\therefore \bigcap_{i \in I} \overline{A_i} \subseteq \overline{\bigcup_{i \in I} A_i} \tag{2}\label{eq:7.2}
\end{equation}
$$
\begin{aligned}
&\eqref{eq:7.1}\eqref{eq:7.2}可知,\overline{\bigcup_{i \in I} A_i}=\bigcap_{i \in I} \overline{A_i} \\
&由对偶公式可知, \overline{\overline{\bigcup_{i \in I} A_i}}=\overline{\bigcap_{i \in I} \overline{A_i}} \\
&\therefore \overline{\bigcap_{i \in I} \overline{A_i}}=\bigcup_{i \in I} A_i \\
&\because \{ \overline{A_i}|i\in I \}也是一事件类 \\
&\therefore\overline{A_i}替换为A_i后可得 \\
&\overline{\bigcap_{i \in I} A_i}=\bigcup_{i \in I} \overline{A_i} \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item 从装有10双不同尺码或不同样式的皮鞋的箱子中, 任取4只, 求恰能成1双的概率。
\begin{proof}[解]
\begin{zhongwen}
$$
\begin{aligned}
&设A表示事件“恰能成1双”B表示事件“恰能成2双”C表示事件“不能成双” \\
&则由不返回抽样模型可知: \\
P(A)&=1-P(B)-P(C)=1-\frac{\mathrm{C}_{10}^{2}}{\mathrm{C}_{20}^{4}}-\frac{\mathrm{C}_{20}^{1}\mathrm{C}_{18}^{1}\mathrm{C}_{16}^{1}\mathrm{C}_{14}^{1}}{\mathrm{P}_{20}^{4}} \\
&=1-\frac{\binom{10}{2}}{\binom{20}{4}}-\frac{\binom{20}{1}\binom{18}{1}\binom{16}{1}\binom{14}{1}}{\binom{20}{4}\times 4!} = \frac{96}{323} \approx 0.297213622291022 \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item 现从有15名男生和30名女生的班级中随机挑选10名同学参加某项课外活动, 求在被挑选的同学中恰好有3名男生的概率。
\begin{proof}[解]
\begin{zhongwen}
$$
\begin{aligned}
&设A表示事件“在被挑选的同学中恰好有3名男生”,则 \\
&P(A)=\frac{\mathrm{C}_{15}^{3}\mathrm{C}_{30}^{7}}{\mathrm{C}_{45}^{10}}=\frac{\binom{15}{3}\binom{30}{7}}{\binom{45}{10}} = \frac{3958500}{13633279} \approx 0.290355680390609 \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\item$\mathcal{F}$$\Omega$上的事件域,$A,B\in \mathcal{F}$,证明$A\cup B,AB\in \mathcal{F}$
\begin{proof}
\begin{zhongwen}
$$
\begin{aligned}
&设A_1=A,A_2=B,\forall n>2,A_n=\varnothing \\
&\because \mathcal{F}\Omega上的事件域,\forall n\geqslant 1,A_n\in \mathcal{F} \\
&\therefore \bigcup_{n=1}^{\infty}A_n=A\cup B\in \mathcal{F} \\
&\because A,B\in \mathcal{F} \\
&\therefore \bar{A},\bar{B}\in \mathcal{F} \\
&同理,\bar{A}\cup \bar{B}\in \mathcal{F} \\
&\therefore \overline{\bar{A}\cup \bar{B}}=AB\in \mathcal{F} \\
\end{aligned}
$$
\end{zhongwen}
\end{proof}
\end{enumerate}
\end{document}