How do you convert #y=x^2+18x+95# in vertex form?

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Answer 1 · 2018-03-15T15:22:27

#y=(x+9)^2+14#

First find the vertex using the formula
#x=(-b)/"2a"#

#a=1#
#b=18#
#c=95#

#x=(-(18))/"2(1)"# This simplifies to #x=-18/"2"# which is #-9#.
so #x=-9#

So on now that we have #x# we can find #y#.

#y=x^2+18x+95#
#y=(-9)^2+18(-9)+95#
#y=14#

Vertex = #(-9,14)# where #h=-9# and #k=14#

We now finally enter this into vertex form which is,
#y=a(x-h)^2+k#

#x# and #y# in the "vertex form" are not associated with the values we found earlier.

#y=1(x-(-9))^2+14#
#y=(x+9)^2+14#

Answer 2 · 2018-03-15T15:25:36

#(x+9)^2+14#

Firstly, you have to find the vertex point. Use the formula #x_v=-b/(2a)#. You get #(h) x_v=-9# and #(k)y_v=14#

Since there's an imaginary 1 in front of x, the a value is 1.
Now just plug everything into the equation #y=a(x-h)^2+k#