A parabola has a vertex at (5, 4) and passes through (6, 13/4). What are the x-intercepts?

1 Answer
Noah G
Mar 2, 2017

The x-intercepts are given by

x = 5 +- (4sqrt(3))/3

Explanation:

Start by finding the equation of the parabola. The vertex form of a parabola, with vertex (p, q), is given by

y = a(x- p)^2 + q

We know an x-value, a y-value and the vertex. We can therefore set up an equation and solve for a.

13/4 = a(6 - 5)^2 + 4

13/4 = a(1)^2 + 4

-3/4 = a

The equation is therefore

y = -3/4(x - 5)^2 + 4

We can solve for the x-intercepts by taking the square root. Set y to 0.

0 = -3/4(x - 5)^2 + 4

-4 = -3/4(x - 5)^2

-4/(-3/4) = (x - 5)^2

16/3 = (x - 5)^2

+-4/sqrt(3) = x - 5

x = 5 +- 4/sqrt(3)

x = 5 +- (4sqrt(3))/3

A graphical depiction of the parabola confirms our findings.

graph{y = -3/4(x - 5)^2 + 4 [-10, 10, -5, 5]}

Hopefully this helps!

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