How do you find the vertex and the intercepts for #y=x^2-2x+6#?

1 Answer
Binayaka C.
Jan 22, 2017

Vertex is at #(1,5)# with y-intercept is at #(0,6)# and having no x-intercept.

Explanation:

#y= x^2-2x+6 or y = (x-1)^2+-1+6 or y = (x-1)^2+5# Comparing with standard equation of parabola #y=a(x-h)^2+k# we find vertex as #(h,k) or 1,5#

To find y intercept putting #x=0# in the equation we get #y=6#

To find x intercept putting #y=0# in the equation we get #x^2-2x+6=0 or (x-1)^2= -5 or (x-1)= +-sqrt(-5) or x=1+-sqrt(5) i :. x# has complex roots and there will be no x-intercept. graph{x^2-2x+6 [-45, 45, -22.5, 22.5]}[Ans]

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