How do you factor $6 x^{2} + 5 x y - 21 y^{2}$ $6x^2 +5xy -21y^2$ ?

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How do you factor $6 x^{2} + 5 x y - 21 y^{2}$ $6x^2 +5xy -21y^2$ ?

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Answer 1 · 2016-05-30T22:40:00

(2x - 3y)(3x + 7y)

Explanation:

Use the new AC Method (Socratic Search)
Consider x as a variable, y as a constant, and factor f(x).
$f (x) = 6 x^{2} + 5 y x - 21 y^{2} =$ $f(x) = 6x^2 + 5yx - 21 y^2 =$ 6(x + p)(x + q)
Converted trinomial $f'(x) = x^2 + 5yx - 126y^2 =$ (x + p')(x + q').
p' and q' have opposite signs because ac < 0.
Factor pairs of $(ac = 126y^2)$ -->...(-6y, 21y)(-9y, 14y). This last sum is (5y = b). Then p' = -9y and q' = 14y.
Back to f(x) --> $p = (p')/a = (-9y)/6 = -(3y)/2$ , and
$q = (q')/a = (14y)/6 = (7y)/3$
Factored form : $f(x) = 6(x - (3y)/2)(x + (7y)/3) = (2x - 3y)(3x + 7y)$

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How do you factor $6 x^{2} + 5 x y - 21 y^{2}$ $6x^2 +5xy -21y^2$ ?

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Explanation:

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