What is the limit of #(x^2 + 1) / (2x^2 -3x -2)# as x goes to infinity? Calculus Limits Limits at Infinity and Horizontal Asymptotes 1 Answer GiĆ³ Oct 19, 2015 I found #1/2# Explanation: You can collect #x^2# to get: #lim_(x->oo)(x^2(1+1/x^2))/(x^2(2-3/x-2/x^2))=lim_(x->oo)(cancel(x^2)(1+1/x^2))/(cancel(x^2)(2-3/x-2/x^2))=lim_(x->oo)(1+1/x^2)/(2-3/x-2/x^2)=# as #x->oo# then #1/x^n->0# so: #=(1+0)/(2-0-0)=1/2# Answer link Related questions What kind of functions have horizontal asymptotes? How do you find horizontal asymptotes for #f(x) = arctan(x)# ? How do you find the horizontal asymptote of a curve? How do you find the horizontal asymptote of the graph of #y=(-2x^6+5x+8)/(8x^6+6x+5)# ? How do you find the horizontal asymptote of the graph of #y=(-4x^6+6x+3)/(8x^6+9x+3)# ? How do you find the horizontal asymptote of the graph of y=3x^6-7x+10/8x^5+9x+10? How do you find the horizontal asymptote of the graph of #y=6x^2# ? How can i find horizontal asymptote? How do you find horizontal asymptotes using limits? What are all horizontal asymptotes of the graph #y=(5+2^x)/(1-2^x)# ? See all questions in Limits at Infinity and Horizontal Asymptotes Impact of this question 4897 views around the world You can reuse this answer Creative Commons License