How do you find the vertex and intercepts for #x=1+y-y^2#? Algebra Quadratic Equations and Functions Vertex Form of a Quadratic Equation 1 Answer Eddie Jun 23, 2016 vertex at #x = 5/4, y = 1/2# intercepts #x = 0, y = (1 pm sqrt(5))/(2)# Explanation: #x=1+y-y^2# #x=-(y^2 -y -1) # #x=-( (y- 1/2 )^2 - 1/4 -1) # #x=-( (y- 1/2 )^2 - 5/4) # #x= -(y- 1/2 )^2 + 5/4 # vertex at #x = 5/4, y = 1/2# #x = 0 \implies 1+y-y^2 = 0# #y^2 - y - 1 = 0# #y = (-(-1) pm sqrt((-1)^2 - 4(1)(-1) ))/(2*1)# # = (1 pm sqrt(5))/(2)# = intercepts Answer link Related questions What is the Vertex Form of a Quadratic Equation? How do you find the vertex form of a quadratic equation? How do you graph quadratic equations written in vertex form? How do you write #y+1=-2x^2-x# in the vertex form? How do you write the quadratic equation given #a=-2# and the vertex #(-5, 0)#? What is the quadratic equation containing (5, 2) and vertex (1, –2)? How do you find the vertex, x-intercept, y-intercept, and graph the equation #y=-4x^2+20x-24#? How do you write #y=9x^2+3x-10# in vertex form? What is the vertex of #y=-1/2(x-4)^2-7#? What is the vertex form of #y=x^2-6x+6#? See all questions in Vertex Form of a Quadratic Equation Impact of this question 1171 views around the world You can reuse this answer Creative Commons License