$$$\frac{1}{4 - x^{2}}$$$ 的积分

求$$$\int \frac{1}{4 - x^{2}}\, dx$$$。

进行部分分式分解（步骤可见»）:

$${\color{red}{\int{\frac{1}{4 - x^{2}} d x}}} = {\color{red}{\int{\left(\frac{1}{4 \left(x + 2\right)} - \frac{1}{4 \left(x - 2\right)}\right)d x}}}$$

逐项积分：

$${\color{red}{\int{\left(\frac{1}{4 \left(x + 2\right)} - \frac{1}{4 \left(x - 2\right)}\right)d x}}} = {\color{red}{\left(- \int{\frac{1}{4 \left(x - 2\right)} d x} + \int{\frac{1}{4 \left(x + 2\right)} d x}\right)}}$$

对 $$$c=\frac{1}{4}$$$ 和 $$$f{\left(x \right)} = \frac{1}{x - 2}$$$ 应用常数倍法则 $$$\int c f{\left(x \right)}\, dx = c \int f{\left(x \right)}\, dx$$$：

$$\int{\frac{1}{4 \left(x + 2\right)} d x} - {\color{red}{\int{\frac{1}{4 \left(x - 2\right)} d x}}} = \int{\frac{1}{4 \left(x + 2\right)} d x} - {\color{red}{\left(\frac{\int{\frac{1}{x - 2} d x}}{4}\right)}}$$

设$$$u=x - 2$$$。

则$$$du=\left(x - 2\right)^{\prime }dx = 1 dx$$$ (步骤见»)，并有$$$dx = du$$$。

积分变为

$$\int{\frac{1}{4 \left(x + 2\right)} d x} - \frac{{\color{red}{\int{\frac{1}{x - 2} d x}}}}{4} = \int{\frac{1}{4 \left(x + 2\right)} d x} - \frac{{\color{red}{\int{\frac{1}{u} d u}}}}{4}$$

$$$\frac{1}{u}$$$ 的积分为 $$$\int{\frac{1}{u} d u} = \ln{\left(\left|{u}\right| \right)}$$$:

$$\int{\frac{1}{4 \left(x + 2\right)} d x} - \frac{{\color{red}{\int{\frac{1}{u} d u}}}}{4} = \int{\frac{1}{4 \left(x + 2\right)} d x} - \frac{{\color{red}{\ln{\left(\left|{u}\right| \right)}}}}{4}$$

回忆一下 $$$u=x - 2$$$:

$$- \frac{\ln{\left(\left|{{\color{red}{u}}}\right| \right)}}{4} + \int{\frac{1}{4 \left(x + 2\right)} d x} = - \frac{\ln{\left(\left|{{\color{red}{\left(x - 2\right)}}}\right| \right)}}{4} + \int{\frac{1}{4 \left(x + 2\right)} d x}$$

对 $$$c=\frac{1}{4}$$$ 和 $$$f{\left(x \right)} = \frac{1}{x + 2}$$$ 应用常数倍法则 $$$\int c f{\left(x \right)}\, dx = c \int f{\left(x \right)}\, dx$$$：

$$- \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + {\color{red}{\int{\frac{1}{4 \left(x + 2\right)} d x}}} = - \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + {\color{red}{\left(\frac{\int{\frac{1}{x + 2} d x}}{4}\right)}}$$

设$$$u=x + 2$$$。

则$$$du=\left(x + 2\right)^{\prime }dx = 1 dx$$$ (步骤见»)，并有$$$dx = du$$$。

所以，

$$- \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + \frac{{\color{red}{\int{\frac{1}{x + 2} d x}}}}{4} = - \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + \frac{{\color{red}{\int{\frac{1}{u} d u}}}}{4}$$

$$$\frac{1}{u}$$$ 的积分为 $$$\int{\frac{1}{u} d u} = \ln{\left(\left|{u}\right| \right)}$$$:

$$- \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + \frac{{\color{red}{\int{\frac{1}{u} d u}}}}{4} = - \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + \frac{{\color{red}{\ln{\left(\left|{u}\right| \right)}}}}{4}$$

回忆一下 $$$u=x + 2$$$:

$$- \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + \frac{\ln{\left(\left|{{\color{red}{u}}}\right| \right)}}{4} = - \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + \frac{\ln{\left(\left|{{\color{red}{\left(x + 2\right)}}}\right| \right)}}{4}$$

因此，

$$\int{\frac{1}{4 - x^{2}} d x} = - \frac{\ln{\left(\left|{x - 2}\right| \right)}}{4} + \frac{\ln{\left(\left|{x + 2}\right| \right)}}{4}$$

化简：

$$\int{\frac{1}{4 - x^{2}} d x} = \frac{- \ln{\left(\left|{x - 2}\right| \right)} + \ln{\left(\left|{x + 2}\right| \right)}}{4}$$

加上积分常数：

$$\int{\frac{1}{4 - x^{2}} d x} = \frac{- \ln{\left(\left|{x - 2}\right| \right)} + \ln{\left(\left|{x + 2}\right| \right)}}{4}+C$$

$$$\int \frac{1}{4 - x^{2}}\, dx = \frac{- \ln\left(\left|{x - 2}\right|\right) + \ln\left(\left|{x + 2}\right|\right)}{4} + C$$$A