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8 July, 07:17

Factor completely: 2x^4+14x^3-88x^2

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Answers (2)
  1. 8 July, 07:47
    0
    So first factor out the 2 in the whole equation

    (2) (x^4+7x^3-44x^2)

    factor out the x^2

    (2) (x^2) (x^2+7x-44)

    factor

    x^2+7x-44

    find what 2 numbers multiply to get - 44 and add to get 7

    factor - 44

    -44=-1 times 2 times 2 times 11

    2 times 2=4

    4 times 11=44

    11-4=7

    the numbers are 11 and - 4

    (2) (x^2) [ (x^2+7x-44) ]

    (2) (x^2) [ (x+11) (x-4) ]

    the factored form is

    (2) (x^2) (x+11) (x-4)
  2. 8 July, 08:12
    0
    First / whole equation by 2x^2 leaving 2x^2 (x^2+7x-44) then xtreme method

    /-44/

    / / 2 factors that multiply to get - 44 and then add to get 7

    -11 / / 4

    / 7 / making ur final equation 2x^2 (x-11) (x+4)
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