What is the vertex form of y=1/8x^2+3/4x +25/8y=18x2+34x+258?

1 Answer
mason m
Jan 17, 2016

y=1/8(x-3)^2+2y=18(x3)2+2

Explanation:

Vertex form of a parabola:

y=a(x-h)^2+ky=a(xh)2+k

In order to make the equation resemble vertex form, factor 1/818 from the first and second terms on the right hand side.

y=1/8(x^2+6x)+25/8y=18(x2+6x)+258

Note: you may have trouble factoring 1/818 from 3/4x34x. The trick here is that factoring is essentially dividing, and (3/4)/(1/8)=3/4*8=63418=348=6.

Now, complete the square in the parenthesized terms.

y=1/8(x^2+6x+9)+28/5+?y=18(x2+6x+9)+285+?

We know that we will have to balance the equation since a 99 cannot be added within the parentheses without it being counterbalanced. However, the 99 is being multiplied by 1/818, so the addition of the 99 is actualy an addition of 9/898 to the equation. To undo this, subtract 9/898 from the same side of the equation.

y=1/8(x^2-6x+9)+25/8-9/8y=18(x26x+9)+25898

Which simplifies to be

y=1/8(x-3)^2+16/8y=18(x3)2+168

y=1/8(x-3)^2+2y=18(x3)2+2

Since the vertex of a parabola in vertex form is (h,k)(h,k), the vertex of this parabola should be (3,2)(3,2). We can confirm with a graph:

graph{1/8x^2+3/4x +25/8 [-16.98, 11.5, -3.98, 10.26]}

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