Answer:
- intercepts: (-3, 0), (5, 0)
- vertex: (1, -16)
Step-by-step explanation:
a. Compare the given equation to the standard form to see what the coefficients are:
ax^2 +bx +c = 0
x^2 -2x -15 = 0
Comparing these, we see that ...
a = 1, b = -2, c = -15
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b. Using the quadratic formula we find the intercepts to be ...
[tex]x=\dfrac{-b\pm\sqrt{b^2-4ac}}{2a}\\\\x=\dfrac{-(-2)\pm\sqrt{(-2)^2-4(1)(-15)}}{2(1)}\\\\=\dfrac{2\pm\sqrt{64}}{2}=1\pm4\\\\x=\{-3,5\}[/tex]
The x-intercepts of the function are (-3, 0) and (5, 0).
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c. The midpoint between the vertices is ...
x = (-3+5)/2
x = 1
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d. The value of the function for x=1 is ...
y = 1^2 -2(1) -15
y = -16
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e. The coordinates of the vertex are ...
(x, y) = (1, -16)
