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30 May, 01:11

9x^4 + 20x^2 + 12 in quadratic form

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  1. 30 May, 03:04
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    A "pure" quadratic has the form:

    ax^2 + bx + c

    To put this in broad, general (and crude) terms, a quadratic is:

    "Some number, 'a', times a perfect square plus some number. 'b', times whatever-is being squared-next to-the-a (x) plus some other number, 'c'"

    So can we make 9x^4+20x^2+12 fit this pattern? Let's look at this expression term-by-term:

    9x^4

    Can this be expressed as "Some number, 'a', times a perfect square"? Answer: Yes, in two ways:

    9x^4 = 9 * (x^2) ^2

    or

    1 * (3x^2) ^2

    Next

    10x^2

    Can this be expressed as "some number. 'b', times whatever-is being squared-next to-the-a"? The answer depends on which of the expressions we use for 9x^4.

    If we use 9 * (x^2) ^2 then "whatever-is being squared-next to-the-a" would be x^2. Can we express 20x^2 as some number times x^2? Obviously yes: 20*x^2.

    If we try to use 1 * (3x^2) ^2 for the 9x^4 then "whatever-is being squared-next to-the-a" would be 3x^2. Can we express 20x^2 as some number times 3x^2? Although not very obvious, the answer is yes: 20x^2 = (20/3) * 3x^2

    And of course 12 can be our 'c'. So there are two ways to express 9x^4+20x^2+12 in quadratic form:

    9x^4+20x^2+12 = 9 * (x^2) ^2 + 20*x^2 + 12 with the a = 9, b = 20 and the c = 12

    or

    9x^4+20x^2+12 = 1 * (3x^2) ^2 + (20/3) * 3x^2 + 12 with the a = 1, b = 20/3 and the c = 12.

    If you really want these to look like a quadratic, then you can use a temporary variable. Make the temporary variable equal to "whatever-is being squared-next to-the-a". So for 9 * (x^2) ^2 + 20*x^2 + 12, let q = x^2. This makes the expression: 9q^2 + 20q + 12. For 1 * (3x^2) ^2 + (20/3) * 3x^2 + 12, let q = 3x^2. This m
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