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26 July, 13:17

Y=-16t^2+88t+12 How do I find the vertex of this equation?

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  1. 26 July, 13:23
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    The vertex is at (2.75, 133)

    Step-by-step explanation:

    y=-16t^2+88t+12

    The x coordinate for the vertex is at the axis of symmetry

    h = - b/2a

    where at^2 + bt+c

    a = - 16, b = 88 and c = 12

    h = - 88 / (2*-16)

    h = - 88/-32

    h = 2.75

    To find the y coordinate, we substitute this into the equation

    y = - 16 (2.75) ^2 + 88 (2.75) + 12

    y = - 121+242+12

    y = 133
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