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5x^{2}+6x+7=100
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.
5x^{2}+6x+7-100=100-100
Subtract 100 from both sides of the equation.
5x^{2}+6x+7-100=0
Subtracting 100 from itself leaves 0.
5x^{2}+6x-93=0
Subtract 100 from 7.
x=\frac{-6±\sqrt{6^{2}-4\times 5\left(-93\right)}}{2\times 5}
This equation is in standard form: ax^{2}+bx+c=0. Substitute 5 for a, 6 for b, and -93 for c in the quadratic formula, \frac{-b±\sqrt{b^{2}-4ac}}{2a}.
x=\frac{-6±\sqrt{36-4\times 5\left(-93\right)}}{2\times 5}
Square 6.
x=\frac{-6±\sqrt{36-20\left(-93\right)}}{2\times 5}
Multiply -4 times 5.
x=\frac{-6±\sqrt{36+1860}}{2\times 5}
Multiply -20 times -93.
x=\frac{-6±\sqrt{1896}}{2\times 5}
Add 36 to 1860.
x=\frac{-6±2\sqrt{474}}{2\times 5}
Take the square root of 1896.
x=\frac{-6±2\sqrt{474}}{10}
Multiply 2 times 5.
x=\frac{2\sqrt{474}-6}{10}
Now solve the equation x=\frac{-6±2\sqrt{474}}{10} when ± is plus. Add -6 to 2\sqrt{474}.
x=\frac{\sqrt{474}-3}{5}
Divide -6+2\sqrt{474} by 10.
x=\frac{-2\sqrt{474}-6}{10}
Now solve the equation x=\frac{-6±2\sqrt{474}}{10} when ± is minus. Subtract 2\sqrt{474} from -6.
x=\frac{-\sqrt{474}-3}{5}
Divide -6-2\sqrt{474} by 10.
x=\frac{\sqrt{474}-3}{5} x=\frac{-\sqrt{474}-3}{5}
The equation is now solved.
5x^{2}+6x+7=100
Quadratic equations such as this one can be solved by completing the square. In order to complete the square, the equation must first be in the form x^{2}+bx=c.
5x^{2}+6x+7-7=100-7
Subtract 7 from both sides of the equation.
5x^{2}+6x=100-7
Subtracting 7 from itself leaves 0.
5x^{2}+6x=93
Subtract 7 from 100.
\frac{5x^{2}+6x}{5}=\frac{93}{5}
Divide both sides by 5.
x^{2}+\frac{6}{5}x=\frac{93}{5}
Dividing by 5 undoes the multiplication by 5.
x^{2}+\frac{6}{5}x+\left(\frac{3}{5}\right)^{2}=\frac{93}{5}+\left(\frac{3}{5}\right)^{2}
Divide \frac{6}{5}, the coefficient of the x term, by 2 to get \frac{3}{5}. Then add the square of \frac{3}{5} to both sides of the equation. This step makes the left hand side of the equation a perfect square.
x^{2}+\frac{6}{5}x+\frac{9}{25}=\frac{93}{5}+\frac{9}{25}
Square \frac{3}{5} by squaring both the numerator and the denominator of the fraction.
x^{2}+\frac{6}{5}x+\frac{9}{25}=\frac{474}{25}
Add \frac{93}{5} to \frac{9}{25} by finding a common denominator and adding the numerators. Then reduce the fraction to lowest terms if possible.
\left(x+\frac{3}{5}\right)^{2}=\frac{474}{25}
Factor x^{2}+\frac{6}{5}x+\frac{9}{25}. In general, when x^{2}+bx+c is a perfect square, it can always be factored as \left(x+\frac{b}{2}\right)^{2}.
\sqrt{\left(x+\frac{3}{5}\right)^{2}}=\sqrt{\frac{474}{25}}
Take the square root of both sides of the equation.
x+\frac{3}{5}=\frac{\sqrt{474}}{5} x+\frac{3}{5}=-\frac{\sqrt{474}}{5}
Simplify.
x=\frac{\sqrt{474}-3}{5} x=\frac{-\sqrt{474}-3}{5}
Subtract \frac{3}{5} from both sides of the equation.