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6 February, 07:23

Find the relative extrema of f (x) = 1+8x - 3x^2

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  1. 6 February, 08:36
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    F (x) = 1+8x-3x²

    1) we have to calculate the first derived

    f' (x) = 8-6x

    2) we have to equalizate the first derived to "0", and find out the value of "x".

    8-6x=0

    -6x=-8

    x=-8/-6=4/3

    3) we have to calculate the second derived

    f'' (X) = - 6<0 ⇒ at x=4/3 we have a maximum.

    4) we find the value of "y"

    f (4/3) = 1+8 (4/3) - 3 (4/3) ²=1 + (32/3) - (48/9) = 57/9

    Therefore:

    at (4/3, 57/9) have a maximum
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