How do you find the vertex and intercepts for $y=x^2-6x+15$ ?

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How do you find the vertex and intercepts for $y=x^2-6x+15$ ?

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Answer 1 · 2018-03-29T16:59:35

Vertex (3, 6)
No x-intercepts.

Explanation:

$y = x^2 - 6x + 15$
x-coordinate of vertex:
$x = -b/(2a) = 6/2 = 3$
y-coordinate of vertex:
$y(3) = 9 - 18 + 15 = 6$
Vertex (3, 6)
To find the x-intercepts, make y = 0, and solve the quadratic equation by the improved quadratic formula.
$x^2 - 6x + 15 = 0$
$D = b^2 - 4ac = 36 - 60 = - 24 < 0$ .
There are no x-intercepts (no real roots). The upward parabola
doesn't intersect the x-axis. It is completely above the x-axis.

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How do you find the vertex and intercepts for $y=x^2-6x+15$ ?

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How do you find the vertex and intercepts for $y=x^2-6x+15$ ?