※ 引述《ytyt5239 (ytyt)》之銘言： : 1.(跟定理沒關係)find the vertical and horizantal asymptotes. : f(x)=ln(1-ln x) : 我是想 t=ln x →無限 as x→0+ : lim x→0:ln(1-ln x)=lim t→無限:ln(1-t) : 然後就不知怎辦了～ (1)1-ln x >0 x<e x→e+ f(x)→-∞ (2)x→0+ f(x)→+∞ : 2.evalute lim x→無限 [x-x^2‧ln(1+x/x)] : 我只想只ln as the same factor ,and then i dont know how to resolve this : question , help me out!!! lim(x→∞) [x-x^2 ln(1+1/x)] = lim(x→∞) x[1-xln(1+1/x)] let t=1/x = lim(t→0+) [1-(ln(1+t))/t]/t = lim(t→0+) [t-ln(1+t)]/t^2 L'Hospital's Rule (0/0) = lim(t→0+) [1-1/(1+t)]/2t = lim(t→0+) [1+t-1]/2t(t+1) =0.5 -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 140.112.212.153