chore: 简化文档
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@ -311,42 +311,49 @@ $$
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#### sinⁿ 递推公式推导(分部积分法)
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#### sinⁿ 递推公式推导(分部积分法)
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设 $I_n = \int \sin^n x \, dx$,$n \ge 2$。
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设
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取 $u = \sin^{n-1}x$,$dv = \sin x \, dx$,则:
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$$
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$$
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du = (n-1)\sin^{n-2}x \cos x \, dx,\quad v = -\cos x
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I_n = \int \sin^n x \, dx, \quad n \ge 2.
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$$
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$$
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代入分部积分公式 $\int u \, dv = uv - \int v \, du$:
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取
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$$
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u = \sin^{n-1}x, \quad dv = \sin x \, dx,
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$$
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则
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$$
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du = (n-1)\sin^{n-2}x \cos x \, dx, \quad v = -\cos x.
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$$
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分部积分:
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$$
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$$
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\begin{aligned}
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\begin{aligned}
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I_n &= -\sin^{n-1}x \cos x - \int (-\cos x) \cdot (n-1)\sin^{n-2}x \cos x \, dx \\
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I_n &= uv - \int v \, du \\
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&= -\sin^{n-1}x \cos x + (n-1)\int \sin^{n-2}x \cos^2 x \, dx
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&= -\sin^{n-1}x \cos x + (n-1)\int \sin^{n-2}x \cos^2 x \, dx.
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\end{aligned}
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\end{aligned}
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$$
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$$
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利用 $\cos^2 x = 1 - \sin^2 x$:
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利用 $\cos^2 x = 1 - \sin^2 x$:
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$$
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$$
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\int \sin^{n-2}x \cos^2 x \, dx = \int \sin^{n-2}x \, dx - \int \sin^n x \, dx = I_{n-2} - I_n
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\int \sin^{n-2}x \cos^2 x \, dx = \int \sin^{n-2}x \, dx - \int \sin^n x \, dx = I_{n-2} - I_n.
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$$
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$$
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代入得:
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代入得
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$$
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$$
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I_n = -\sin^{n-1}x \cos x + (n-1)(I_{n-2} - I_n)
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I_n = -\sin^{n-1}x \cos x + (n-1)(I_{n-2} - I_n).
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$$
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$$
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移项合并 $I_n$ 项:
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整理含 $I_n$ 的项:
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$$
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$$
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I_n + (n-1)I_n = -\sin^{n-1}x \cos x + (n-1)I_{n-2}
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\begin{aligned}
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I_n + (n-1)I_n &= -\sin^{n-1}x \cos x + (n-1)I_{n-2}, \\
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n I_n &= -\sin^{n-1}x \cos x + (n-1)I_{n-2}.
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\end{aligned}
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$$
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$$
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于是
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$$
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$$
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n I_n = -\sin^{n-1}x \cos x + (n-1)I_{n-2}
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\boxed{I_n = -\frac{\sin^{n-1}x \cos x}{n} + \frac{n-1}{n} I_{n-2}},\quad n\ge 2.
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$$
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$$
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\boxed{I_n = -\frac{\sin^{n-1}x \cos x}{n} + \frac{n-1}{n} I_{n-2}},\quad n\ge 2
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$$
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$$
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需要两个初始条件:
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需要两个初始条件:
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@ -382,18 +389,6 @@ $$
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同理 $\displaystyle \int_0^{\pi/2} \cos^n x \, dx = J_n$(对称性)。
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同理 $\displaystyle \int_0^{\pi/2} \cos^n x \, dx = J_n$(对称性)。
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**点火链条**(初始条件 $J_0 = \frac{\pi}{2},\; J_1 = 1$):
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$$
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\begin{aligned}
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n \text{ 为偶数} &: \quad J_n = \frac{n-1}{n} \cdot \frac{n-3}{n-2} \cdots \frac{1}{2} \cdot J_0
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= \frac{(n-1)!!}{n!!} \cdot \frac{\pi}{2} \\[4pt]
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n \text{ 为奇数} &: \quad J_n = \frac{n-1}{n} \cdot \frac{n-3}{n-2} \cdots \frac{2}{3} \cdot J_1
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= \frac{(n-1)!!}{n!!}
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\end{aligned}
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$$
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**记忆口诀**:"点火公式"即链条式递推,偶数多一个 $\frac{\pi}{2}$(引信),奇数直接出结果(哑火)。
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常见值:
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常见值:
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$$
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$$
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J_2 = \frac{\pi}{4},\quad J_3 = \frac{2}{3},\quad J_4 = \frac{3\pi}{16},\quad J_5 = \frac{8}{15}
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J_2 = \frac{\pi}{4},\quad J_3 = \frac{2}{3},\quad J_4 = \frac{3\pi}{16},\quad J_5 = \frac{8}{15}
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