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17 July, 20:48

Find the zeros of y=x^2-8x-3 by completing the square

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  1. 17 July, 23:43
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    Zeroes are where it equals 0

    0=x^2-8x-3

    group x terms

    0 = (x^2-8x) - 3

    take 1/2 of linear coefient and square it

    -8/2=-4, (-4) ^2=16

    add that to both sides

    16 = (x^2-8x+16) - 3

    factor

    16 = (x-4) ^2-3

    add 3 to both sides

    19 = (x-4) ^2

    sqrt both sides

    +/-√19=x-4

    add 4

    4+/-√19=x

    the zeroes are at x=4+√19 and 4-√19
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