How do you solve $3x^2 + 19x -14 = 0$ ?

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How do you solve $3x^2 + 19x -14 = 0$ ?

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Answer 1 · 2015-08-11T01:40:13

Solve $y = 3x^2 + 19x - 14 = 0$ (1)

Ans: $2/3$ and -7.

Explanation:

I use the new Transforming Method (Google, Yahoo)
Transformed equation: $y' = x^2 + 19x - 52 = 0$ (2) Roots have opposite signs (Rule of Signs).
Factor pairs of (-42) --> (-2, 21). This sum is 19 = b. Then the 2 real roots of (2) are the opposite. They are: y1 = 2 and y2 = - 21.
Back to original equation (1). The 2 real roots are: $x1 = (y1)/a = 2/3$ , and $x2 = (y2)/a = -21/3 = -7.$

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How do you solve $3x^2 + 19x -14 = 0$ ?

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