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(1)sin(x²-1)~x²-1,除以x-1之后就得到x+1=2了呀
(3)底数化为1-2/(x+1),指数化为-(x+1)/2*(-4)-3
于是[1-2/(x+1)]^[-(x+1)/2*(-4)-3]
={[1-2/(x+1)]^[-(x+1)/2}^(-4)÷[1-2/(x+1)]^(-3)
=e^(-4)÷1^(-3)
=e^(-4)
(3)底数化为1-2/(x+1),指数化为-(x+1)/2*(-4)-3
于是[1-2/(x+1)]^[-(x+1)/2*(-4)-3]
={[1-2/(x+1)]^[-(x+1)/2}^(-4)÷[1-2/(x+1)]^(-3)
=e^(-4)÷1^(-3)
=e^(-4)
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(1)
lim(x->1) sin(x^2-1)/(x-1) (0/0)
=lim(x->1) 2x.cos(x^2-1)
=2
(3)
(x-1)/(x+1) = 1 - 2/(x+1)
let
1/y = 2/(x+1)
2y = x+1
x->∞ , y->∞
lim(x->∞) [(x-1)/(x+1)]^(2x-1)
=lim(x->∞) [1 - 2/(x+1) ]^(2x-1)
=lim(y->∞) [1 - 1/y ]^(4y-2)
=lim(y->∞) [1 - 1/y ]^(4y)
=e^(-4)
lim(x->1) sin(x^2-1)/(x-1) (0/0)
=lim(x->1) 2x.cos(x^2-1)
=2
(3)
(x-1)/(x+1) = 1 - 2/(x+1)
let
1/y = 2/(x+1)
2y = x+1
x->∞ , y->∞
lim(x->∞) [(x-1)/(x+1)]^(2x-1)
=lim(x->∞) [1 - 2/(x+1) ]^(2x-1)
=lim(y->∞) [1 - 1/y ]^(4y-2)
=lim(y->∞) [1 - 1/y ]^(4y)
=e^(-4)
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