How do you solve #4x^2-8x+3<0#? Precalculus Solving Rational Inequalities Polynomial Inequalities 1 Answer Alan P. Aug 13, 2016 #color(green)(x in (1/2,3/2)# Explanation: #4x^2-8x+3 < 0# can be factored as #(2x-1)(2x-3) < 0# #{: (2x-1 < 0,color(white)("XXX"),2x-3 < 0), ("if " x < 1/2,,"if " x < 3/2) :}# #(2x-1)(2x-3)# will be less than zero if one but not both of the terms are less than zero. That is #(2x-1)(2x-3) < 0# #color(white)("XXXXXXXXXXXXXX")#if #1/2 < x < 3/2# Answer link Related questions What are common mistakes students make when solving polynomial inequalities? How do I solve a polynomial inequality? How do I solve the polynomial inequality #-2(m-3)<5(m+1)-12#? How do I solve the polynomial inequality #-6<=2(x-5)<7#? How do I solve the polynomial inequality #1<2x+3<11#? How do I solve the polynomial inequality #-12<-2(x+1)<=18#? How do you solve the inequality #6x^2-5x>6#? How do you solve #x^2 - 4x - 21<=0# A) [-3, 7] B) (-∞, -3] C) (-∞, -3] [7, ∞) D) [7, ∞)? How do you solve quadratic inequality, graph, and write in interval notation #x^2 - 8x + 15 >0#? How do you solve #-x^2 - x + 6 < 0#? See all questions in Polynomial Inequalities Impact of this question 1114 views around the world You can reuse this answer Creative Commons License