忘采纳,谢谢~
令x=sinθ,则:dx=cosθdθ,θ=arcsinx,
∴当x=1时,θ=π/2, 当x=1/√2时,θ=π/4。
∴原式=∫(π/4, π/2) √[1-(sinθ)^2]/(sinθ)^2 cosθdθ
=∫(π/4, π/2)[(cosθ)^2/(sinθ)^2]dθ
=∫(π/4, π/2) [1-(sinθ)^2]/(sinθ)^2 dθ
=∫(π/4, π/2)[1/(sinθ)^2]dθ-∫(π/4, π/2)dθ
=-cotθ(π/4, π/2)-θ(π/4, π/2)
=-cot(π/2)+cot(π/4)-π/2+π/4
=0+1-π/4
=1-π/4
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