X = t/(1+t) Y = ㏑(1+t) ,t屬於[0,2]間之弧長 = ? dx/dt = 1/(1+t)^2 dy/dt = 1/(1+t) ∫√{ 1/(1+t)^4 + 1/(1+t)^2 } dt, t = 0 to 2 = ∫√[(1+t)^2+1] / (1+t)^2 dt , t = 0 to 2 我令1+t = tanw , dt = (secw)^2 dw => ∫[secw / (tanw)^2] * (secw)^2 dw , w = arctan1 to arctan3 感覺變得很複雜… 接下來不知道怎麼做了^^" -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 125.229.68.137