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#lim_(x->oo)((x+1)/(x-2))^(2x-1)=# ?

1 Answer

Nov 10, 2016

#e^6#

Explanation:

#((x+1)/(x-2))=((x-2)+3)/(x-2)=1+3/(x-2)# now calling #y = (x-2)/3# we have

#((x+1)/(x-2))^(2x-1)=(1+1/y)^(6y+3)# so

#lim_(x->oo)((x+1)/(x-2))^(2x-1)=lim_(y->oo)(1+1/y)^(6y)lim_(y->oo)(1+1/y)^3 = (lim_(y->oo)(1+1/y)^y)^6 (1+lim_(y->oo)1/y)^3=e^6#

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