用公式∫(0.π)xf(sinx)dx=π/2∫(0.π)f(sinx)dx计算:∫(0,π)(xsinx)/[1+(cosx)^2]dx(0,π)中,0是下限,π是上限,答案是(π^2)/4,求详解
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![用公式∫(0.π)xf(sinx)dx=π/2∫(0.π)f(sinx)dx计算:∫(0,π)(xsinx)/[1+(cosx)^2]dx(0,π)中,0是下限,π是上限,答案是(π^2)/4,求详解](/uploads/image/z/3859363-19-3.jpg?t=%E7%94%A8%E5%85%AC%E5%BC%8F%E2%88%AB%280.%CF%80%29xf%28sinx%29dx%3D%CF%80%2F2%E2%88%AB%280.%CF%80%29f%28sinx%29dx%E8%AE%A1%E7%AE%97%EF%BC%9A%E2%88%AB%EF%BC%880%2C%CF%80%EF%BC%89%28xsinx%29%2F%5B1%2B%28cosx%29%5E2%5Ddx%280%2C%CF%80%29%E4%B8%AD%2C0%E6%98%AF%E4%B8%8B%E9%99%90%2C%CF%80%E6%98%AF%E4%B8%8A%E9%99%90%2C%E7%AD%94%E6%A1%88%E6%98%AF%28%CF%80%5E2%29%2F4%2C%E6%B1%82%E8%AF%A6%E8%A7%A3)
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用公式∫(0.π)xf(sinx)dx=π/2∫(0.π)f(sinx)dx计算:∫(0,π)(xsinx)/[1+(cosx)^2]dx(0,π)中,0是下限,π是上限,答案是(π^2)/4,求详解
用公式∫(0.π)xf(sinx)dx=π/2∫(0.π)f(sinx)dx计算:∫(0,π)(xsinx)/[1+(cosx)^2]dx
(0,π)中,0是下限,π是上限,答案是(π^2)/4,求详解
用公式∫(0.π)xf(sinx)dx=π/2∫(0.π)f(sinx)dx计算:∫(0,π)(xsinx)/[1+(cosx)^2]dx(0,π)中,0是下限,π是上限,答案是(π^2)/4,求详解
∫[0,π] (x sinx)/(1 + cos²x) dx
= ∫[0,π] (x sinx)/(2 - sin²x) dx,设f(x) = x/(2 - x²),则f(sinx) = sinx/(2 - sin²x)
= ∫[0,π] x f(sinx) dx
= (π/2)∫[0,π] f(sinx) dx
= (π/2)∫[0,π] sinx/(2 - sin²x) dx
= -(π/2)∫[0,π] 1/(1 + cos²x) d(cosx)
= -(π/2)arctan(cosx)_[0,π]
= -(π/2)[arctan(-1) - arctan(1)]
= -(π/2)(-π/4 - π/4)
= π²/4
之前应该还有个问题,证明这类型的积分适用于这条公式的.
确的常
用公式∫(0.π)xf(sinx)dx=π/2∫(0.π)f(sinx)dx计算:∫(0,π)(xsinx)/[1+(cosx)^2]dx(0,π)中,0是下限,π是上限,答案是(π^2)/4,求详解
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