$$$4 \tan^{3}{\left(x \right)}$$$ 的积分

该计算器将求出$$$4 \tan^{3}{\left(x \right)}$$$的积分/原函数,并显示步骤。

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您的输入

$$$\int 4 \tan^{3}{\left(x \right)}\, dx$$$

解答

$$$c=4$$$$$$f{\left(x \right)} = \tan^{3}{\left(x \right)}$$$ 应用常数倍法则 $$$\int c f{\left(x \right)}\, dx = c \int f{\left(x \right)}\, dx$$$

$${\color{red}{\int{4 \tan^{3}{\left(x \right)} d x}}} = {\color{red}{\left(4 \int{\tan^{3}{\left(x \right)} d x}\right)}}$$

$$$u=\tan{\left(x \right)}$$$

$$$x=\operatorname{atan}{\left(u \right)}$$$$$$dx=\left(\operatorname{atan}{\left(u \right)}\right)^{\prime }du = \frac{du}{u^{2} + 1}$$$(步骤见»)。

因此,

$$4 {\color{red}{\int{\tan^{3}{\left(x \right)} d x}}} = 4 {\color{red}{\int{\frac{u^{3}}{u^{2} + 1} d u}}}$$

由于分子次数不小于分母次数,进行多项式长除法(步骤见»):

$$4 {\color{red}{\int{\frac{u^{3}}{u^{2} + 1} d u}}} = 4 {\color{red}{\int{\left(u - \frac{u}{u^{2} + 1}\right)d u}}}$$

逐项积分:

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

应用幂法则 $$$\int u^{n}\, du = \frac{u^{n + 1}}{n + 1}$$$ $$$\left(n \neq -1 \right)$$$,其中 $$$n=1$$$

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

$$$v=u^{2} + 1$$$

$$$dv=\left(u^{2} + 1\right)^{\prime }du = 2 u du$$$ (步骤见»),并有$$$u du = \frac{dv}{2}$$$

积分变为

$$2 u^{2} - 4 {\color{red}{\int{\frac{u}{u^{2} + 1} d u}}} = 2 u^{2} - 4 {\color{red}{\int{\frac{1}{2 v} d v}}}$$

$$$c=\frac{1}{2}$$$$$$f{\left(v \right)} = \frac{1}{v}$$$ 应用常数倍法则 $$$\int c f{\left(v \right)}\, dv = c \int f{\left(v \right)}\, dv$$$

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

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

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

回忆一下 $$$v=u^{2} + 1$$$:

$$2 u^{2} - 2 \ln{\left(\left|{{\color{red}{v}}}\right| \right)} = 2 u^{2} - 2 \ln{\left(\left|{{\color{red}{\left(u^{2} + 1\right)}}}\right| \right)}$$

回忆一下 $$$u=\tan{\left(x \right)}$$$:

$$- 2 \ln{\left(1 + {\color{red}{u}}^{2} \right)} + 2 {\color{red}{u}}^{2} = - 2 \ln{\left(1 + {\color{red}{\tan{\left(x \right)}}}^{2} \right)} + 2 {\color{red}{\tan{\left(x \right)}}}^{2}$$

因此,

$$\int{4 \tan^{3}{\left(x \right)} d x} = - 2 \ln{\left(\tan^{2}{\left(x \right)} + 1 \right)} + 2 \tan^{2}{\left(x \right)}$$

加上积分常数:

$$\int{4 \tan^{3}{\left(x \right)} d x} = - 2 \ln{\left(\tan^{2}{\left(x \right)} + 1 \right)} + 2 \tan^{2}{\left(x \right)}+C$$

答案

$$$\int 4 \tan^{3}{\left(x \right)}\, dx = \left(- 2 \ln\left(\tan^{2}{\left(x \right)} + 1\right) + 2 \tan^{2}{\left(x \right)}\right) + C$$$A


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