What is the vertex form of #y= 8x^2+3x-2 #?

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Answer 1 · 2016-10-05T17:17:02

Vertex #(-3/16,-73/32)#

We will need to complete the square to solve this equation.

First move the constant to the other side of the equation by adding #2# to both sides.

#8x^2+3x=2#

Factor out the coefficient, #8#, from the x^2 term.

#8(x^2+3/8x)=2#

Take the coefficient of the #x# term and divide it by 2 and then square it.

#((3/8)/2)^2=(3/8*1/2)^2=(3/16)^2=9/256#

Add this value to the left hand side

#8(x^2+3/8x+9/256)=2#

Add #8(9/256)# to the right hand side because of the factoring we did earlier.

#8(x^2+3/8x+9/256)=2+8(9/256)#

You now have a perfect square trinomial

#8(x+3/16)^2=2+8(9/256)#

Simplify

#8(x+3/16)^2=2+cancel8(9/(cancel256 32))#

Convert #2# to an improper fraction

#8(x+3/16)^2=64/32+(9/(32))#

Simplify

#8(x+3/16)^2=73/32#

#y=8(x+3/16)^2-73/32#

Vertex form

#y=(x-h)^2+k# where #(h,k)# is the vertex

Vertex #(-3/16,-73/32)#

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