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8 December, 17:18

What are the real zeros of the function g (x) = x3 + 2x2 - x - 2?

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  1. 8 December, 18:32
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    Upon a slight rearrangement this problem gets a lot simpler to see.

    x^3-x+2x^2-2=0 now factor 1st and 2nd pair of terms ...

    x (x^2-1) + 2 (x^2-1) = 0

    (x+2) (x^2-1) = 0 now the second factor is a "difference of square" of the form:

    (a^2-b^2) which always factors to (a+b) (a-b), in this case:

    (x+2) (x+1) (x-1) = 0

    So g (x) has three real zero when x={-2, - 1, 1}
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