※ 引述《king911015 (早已放棄愛上你)》之銘言： : ∫x sin^-1(x)dx = sin^-1 x* (1/2)x^2 -∫(1/2)x^2 * 1/(1-x^2)^(1/2)dx set (1-x^2)^(1/2)=u 感謝糾正 1-u^2=x^2 2xdx = -2udu = sin^-1 x* (1/2)x^2 -(1/2)∫(1-u^2)^(-1/2)du set u=sinθ du=cosθ = sin^-1 x* (1/2)x^2 -(1/2)∫ cos^2θdu = sin^-1 x* (1/2)x^2 -(1/4)∫1+cos2θ du = sin^-1 x* (1/2)x^2 -(1/4)(θ+sin2θ/2) = sin^-1 x* (1/2)x^2 -(1/4)(sin^-1 u + 2u(1-u^2)^(1/2)) ^^^^^^^^^^^^^ sin2θ=2 sinθ cosθ = sin^-1 x* (1/2)x^2 -(1/4)(sin^-1[(1-x^2)^(1/2)]+x(1-x^2)^(1/2))+c -- 用我看得見的指尖 將你一身的華麗褪去 -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 140.112.128.81 ※ 編輯: ek0519 來自: 220.135.70.14 (02/13 23:49)