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赵鑫 2022-08-18 18:15:37 +08:00
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知识点/除法.md
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# 除法
$\forall (a,b,x,y)\in\mathbb{Z} \land x\neq0, y={a}{x}+b \iff {y}\div{x}={a}\cdots{b}$
$\forall (a,b,y)\in\mathbb{N}, x\in \Bbb{Z^+}, {y}\div{x}={a}\cdots{b} \iff y={a}{x}+b$
$y$称为<u>被除数</u>$x$称为<u>除数</u>$a$称为<u></u>$b$称为<u>余数</u>
当$b=0$时称$y$整除$x$,或称$y$是$x$的倍数。此时有$y\div{x}=a \Longrightarrow y\div{a}=x$。
**如何实现MathJax输入除法竖式**

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问题/均贫富.md
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$
\begin{aligned}
a - x &= b + x &({a}\in\Bbb{N},{b}\in\Bbb{N},a>b) \\\\
2x &= a - b &(移项并交换等式两侧) \\\\
a - x + x &= b + 2x &(等式两侧同加x) \\\\
a &= b + 2x \\\\
a - b &= b -b+ 2x &(等式两侧同减b) \\\\
a -b &= 2x \\\\
2x &= a - b &(交换等式两侧) \\\\
x &= \dfrac{a-b}{2} &(等式两侧同除以2)
\end{aligned}
$
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## 解法2
$ x = \dfrac{a+b}{2} - b $
## 其实两个解法的结果是一样的
$\dfrac{a+b}{2} - b= \dfrac{a+b}{2}-\dfrac{2b}{2} = \dfrac{a+b-2b}{2} = \dfrac{a-b}{2}$