How do you express #(x-1)/(x^3 +x)# in partial fractions? Precalculus Matrix Row Operations Partial Fraction Decomposition (Linear Denominators) 1 Answer Euan S. Aug 14, 2016 #(x-1)/(x^3+x) = (x+1)/(x^2+1) - 1/x# Explanation: #(x-1)/(x^3+x) = (x-1)/(x(x^2+1))# #(x-1)/(x(x^2+1)) = A/x + (Bx+C)/(x^2+1)# #x-1 = A(x^2+1) + x(Bx+C)# #x-1 = Ax^2 + A + Bx^2 + Cx# Comparing coefficients: #0 = A + B# #1 = C# #-1 = A implies B = 1# #(x-1)/(x^3+x) = (x+1)/(x^2+1) - 1/x# Answer link Related questions What does partial-fraction decomposition mean? What is the partial-fraction decomposition of #(5x+7)/(x^2+4x-5)#? What is the partial-fraction decomposition of #(x+11)/((x+3)(x-5))#? What is the partial-fraction decomposition of #(x^2+2x+7)/(x(x-1)^2)#? How do you write #2/(x^3-x^2) # as a partial fraction decomposition? How do you write #x^4/(x-1)^3# as a partial fraction decomposition? How do you write #(3x)/((x + 2)(x - 1))# as a partial fraction decomposition? How do you write the partial fraction decomposition of the rational expression #x^2/ (x^2+x+4)#? How do you write the partial fraction decomposition of the rational expression # (3x^2 + 12x -... How do you write the partial fraction decomposition of the rational expression # 1/((x+6)(x^2+3))#? See all questions in Partial Fraction Decomposition (Linear Denominators) Impact of this question 3915 views around the world You can reuse this answer Creative Commons License