※ 引述《gogoabc (小多愛喝養樂多)》之銘言： : √(x^2-9) : ∫-----------dx : x^3 : 答案是 1/6 sec^-1(x/3)-√(x^2-9)/(2x^2)+c set x = 3secu , dx = 3secu*tanudu √(x^2-9) (tanu)^2 ∫-------------dx = (1/3)*∫-----------du x^3 (secu)^2 = (1/3)*∫(sinu)^2du = (1/6)*∫(1-cos2u)du = u/6 - (sin2u)/12 + C = u/6 - (sinu*cosu)/6 + C (since x=3secu , sinu*cosu = 3√(x^2 -9) / (x^2) ) = (1/6)*sec^(-1)(x/3) - √(x^2-9)/(2x^2) + C -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 219.91.87.248