※ 引述《kevin70636 (Bryan)》之銘言： : y'=((2x+y-1)/(x-2))^2 : 要怎麼解?? : 想了好久~"~ dy y+3 2 ---- = (2 + -----) dx x-2 y+3 令 ----- = u => y = ux - 2u - 3 => dy = udx + xdu - 2du x-2 2 u dx + 4udx + 4dx = udx + xdu - 2du 2 (u + 3u + 4)dx = (x-2)du du dx ---------------- = ----- 2 x-2 (u+1.5) + 1.25 2 √5 令 ---(u+1.5) = v => du = ----dv √5 2 2 dv dx --- -------- = ----- √5 v^2 + 1 x-2 2 -1 => --- tan v = ㏑(x-2) + ㏑c √5 2 ---(u+1.5) = tan{㏑[c(x-2)]^(√5/2)} √5 √5 => y = (x-2){---{tan{㏑[c(x-2)]^(√5/2)}}-1.5} - 3 2 -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 114.34.133.34