3x^{2}+6x-2=0

Quadratic polynomial can be factored using the transformation ax^{2}+bx+c=a\left(x-x_{1}\right)\left(x-x_{2}\right), where x_{1} and x_{2} are the solutions of the quadratic equation ax^{2}+bx+c=0.

x=\frac{-6±\sqrt{6^{2}-4\times 3\left(-2\right)}}{2\times 3}

All equations of the form ax^{2}+bx+c=0 can be solved using the quadratic formula: \frac{-b±\sqrt{b^{2}-4ac}}{2a}. The quadratic formula gives two solutions, one when ± is addition and one when it is subtraction.

x=\frac{-6±\sqrt{36-4\times 3\left(-2\right)}}{2\times 3}

Square 6.

x=\frac{-6±\sqrt{36-12\left(-2\right)}}{2\times 3}

Multiply -4 times 3.

x=\frac{-6±\sqrt{36+24}}{2\times 3}

Multiply -12 times -2.

x=\frac{-6±\sqrt{60}}{2\times 3}

Add 36 to 24.

x=\frac{-6±2\sqrt{15}}{2\times 3}

Take the square root of 60.

x=\frac{-6±2\sqrt{15}}{6}

Multiply 2 times 3.

x=\frac{2\sqrt{15}-6}{6}

Now solve the equation x=\frac{-6±2\sqrt{15}}{6} when ± is plus. Add -6 to 2\sqrt{15}.

x=\frac{\sqrt{15}}{3}-1

Divide -6+2\sqrt{15} by 6.

x=\frac{-2\sqrt{15}-6}{6}

Now solve the equation x=\frac{-6±2\sqrt{15}}{6} when ± is minus. Subtract 2\sqrt{15} from -6.

x=-\frac{\sqrt{15}}{3}-1

Divide -6-2\sqrt{15} by 6.

3x^{2}+6x-2=3\left(x-\left(\frac{\sqrt{15}}{3}-1\right)\right)\left(x-\left(-\frac{\sqrt{15}}{3}-1\right)\right)

Factor the original expression using ax^{2}+bx+c=a\left(x-x_{1}\right)\left(x-x_{2}\right). Substitute -1+\frac{\sqrt{15}}{3} for x_{1} and -1-\frac{\sqrt{15}}{3} for x_{2}.

x ^ 2 +2x -\frac{2}{3} = 0

Quadratic equations such as this one can be solved by a new direct factoring method that does not require guess work. To use the direct factoring method, the equation must be in the form x^2+Bx+C=0.This is achieved by dividing both sides of the equation by 3

r + s = -2 rs = -\frac{2}{3}

Let r and s be the factors for the quadratic equation such that x^2+Bx+C=(x−r)(x−s) where sum of factors (r+s)=−B and the product of factors rs = C

r = -1 - u s = -1 + u

Two numbers r and s sum up to -2 exactly when the average of the two numbers is \frac{1}{2}*-2 = -1. You can also see that the midpoint of r and s corresponds to the axis of symmetry of the parabola represented by the quadratic equation y=x^2+Bx+C. The values of r and s are equidistant from the center by an unknown quantity u. Express r and s with respect to variable u. <div style='padding: 8px'><img src='https://opalmath.azureedge.net/customsolver/quadraticgraph.png' style='width: 100%;max-width: 700px' /></div>

(-1 - u) (-1 + u) = -\frac{2}{3}

To solve for unknown quantity u, substitute these in the product equation rs = -\frac{2}{3}

1 - u^2 = -\frac{2}{3}

Simplify by expanding (a -b) (a + b) = a^2 – b^2

-u^2 = -\frac{2}{3}-1 = -\frac{5}{3}

Simplify the expression by subtracting 1 on both sides

u^2 = \frac{5}{3} u = \pm\sqrt{\frac{5}{3}} = \pm \frac{\sqrt{5}}{\sqrt{3}}

Simplify the expression by multiplying -1 on both sides and take the square root to obtain the value of unknown variable u

r =-1 - \frac{\sqrt{5}}{\sqrt{3}} = -2.291 s = -1 + \frac{\sqrt{5}}{\sqrt{3}} = 0.291

The factors r and s are the solutions to the quadratic equation. Substitute the value of u to compute the r and s.