Find roots of polynomial $$ p(x) = 2x^7+9x^6-75x^5-317x^4+705x^3+2700x^2 $$

The roots of polynomial $ p(x) $ are:

$$ \begin{aligned}x_1 &= 0\\[1 em]x_2 &= 4\\[1 em]x_3 &= -3\\[1 em]x_4 &= -5\\[1 em]x_5 &= \frac{ 9 }{ 2 }\\[1 em]x_6 &= -5 \end{aligned} $$

Step 1:

Factor out $ \color{blue}{ x^2 }$ from $ 2x^7+9x^6-75x^5-317x^4+705x^3+2700x^2 $ and solve two separate equations:

$$ \begin{aligned} 2x^7+9x^6-75x^5-317x^4+705x^3+2700x^2 & = 0\\[1 em] \color{blue}{ x^2 }\cdot ( 2x^5+9x^4-75x^3-317x^2+705x+2700 ) & = 0 \\[1 em] \color{blue}{ x^2 = 0} ~~ \text{or} ~~ 2x^5+9x^4-75x^3-317x^2+705x+2700 & = 0 \end{aligned} $$

One solution is $ \color{blue}{ x = 0 } $. Use second equation to find the remaining roots.

Step 2:

Use rational root test to find out that the $ \color{blue}{ x = 4 } $ is a root of polynomial $ 2x^5+9x^4-75x^3-317x^2+705x+2700 $.

The Rational Root Theorem tells us that if the polynomial has a rational zero then it must be a fraction $ \dfrac{ \color{blue}{p}}{ \color{red}{q} } $, where $ p $ is a factor of the constant term and $ q $ is a factor of the leading coefficient.

The constant term is $ \color{blue}{ 2700 } $, with factors of 1, 2, 3, 4, 5, 6, 9, 10, 12, 15, 18, 20, 25, 27, 30, 36, 45, 50, 54, 60, 75, 90, 100, 108, 135, 150, 180, 225, 270, 300, 450, 540, 675, 900, 1350 and 2700.

The leading coefficient is $ \color{red}{ 2 }$, with factors of 1 and 2.

The POSSIBLE zeroes are:

$$ \begin{aligned} \dfrac{\color{blue}{p}}{\color{red}{q}} = & \dfrac{ \text{ factors of 2700 }}{\text{ factors of 2 }} = \pm \dfrac{\text{ ( 1, 2, 3, 4, 5, 6, 9, 10, 12, 15, 18, 20, 25, 27, 30, 36, 45, 50, 54, 60, 75, 90, 100, 108, 135, 150, 180, 225, 270, 300, 450, 540, 675, 900, 1350, 2700 ) }}{\text{ ( 1, 2 ) }} = \\[1 em] = & \pm \frac{ 1}{ 1} \pm \frac{ 2}{ 1} \pm \frac{ 3}{ 1} \pm \frac{ 4}{ 1} \pm \frac{ 5}{ 1} \pm \frac{ 6}{ 1} \pm \frac{ 9}{ 1} \pm \frac{ 10}{ 1} \pm \frac{ 12}{ 1} \pm \frac{ 15}{ 1} \pm \frac{ 18}{ 1} \pm \frac{ 20}{ 1} \pm \frac{ 25}{ 1} \pm \frac{ 27}{ 1} \pm \frac{ 30}{ 1} \pm \frac{ 36}{ 1} \pm \frac{ 45}{ 1} \pm \frac{ 50}{ 1} \pm \frac{ 54}{ 1} \pm \frac{ 60}{ 1} \pm \frac{ 75}{ 1} \pm \frac{ 90}{ 1} \pm \frac{ 100}{ 1} \pm \frac{ 108}{ 1} \pm \frac{ 135}{ 1} \pm \frac{ 150}{ 1} \pm \frac{ 180}{ 1} \pm \frac{ 225}{ 1} \pm \frac{ 270}{ 1} \pm \frac{ 300}{ 1} \pm \frac{ 450}{ 1} \pm \frac{ 540}{ 1} \pm \frac{ 675}{ 1} \pm \frac{ 900}{ 1} \pm \frac{ 1350}{ 1} \pm \frac{ 2700}{ 1} ~~ \pm \frac{ 1}{ 2} \pm \frac{ 2}{ 2} \pm \frac{ 3}{ 2} \pm \frac{ 4}{ 2} \pm \frac{ 5}{ 2} \pm \frac{ 6}{ 2} \pm \frac{ 9}{ 2} \pm \frac{ 10}{ 2} \pm \frac{ 12}{ 2} \pm \frac{ 15}{ 2} \pm \frac{ 18}{ 2} \pm \frac{ 20}{ 2} \pm \frac{ 25}{ 2} \pm \frac{ 27}{ 2} \pm \frac{ 30}{ 2} \pm \frac{ 36}{ 2} \pm \frac{ 45}{ 2} \pm \frac{ 50}{ 2} \pm \frac{ 54}{ 2} \pm \frac{ 60}{ 2} \pm \frac{ 75}{ 2} \pm \frac{ 90}{ 2} \pm \frac{ 100}{ 2} \pm \frac{ 108}{ 2} \pm \frac{ 135}{ 2} \pm \frac{ 150}{ 2} \pm \frac{ 180}{ 2} \pm \frac{ 225}{ 2} \pm \frac{ 270}{ 2} \pm \frac{ 300}{ 2} \pm \frac{ 450}{ 2} \pm \frac{ 540}{ 2} \pm \frac{ 675}{ 2} \pm \frac{ 900}{ 2} \pm \frac{ 1350}{ 2} \pm \frac{ 2700}{ 2} ~~ \end{aligned} $$

Substitute the possible roots one by one into the polynomial to find the actual roots. Start first with the whole numbers.

We can see that $ p\left( 4 \right) = 0 $ so $ x = 4 $ is a root of a polynomial $ p(x) $.

To find remaining zeros we use Factor Theorem. This theorem states that if $ \dfrac{p}{q} $ is root of the polynomial then the polynomial can be divided by $ \color{blue}{qx − p} $. In this example we divide polynomial $ p $ by $ \color{blue}{ x-4 }$

$$ \frac{ 2x^5+9x^4-75x^3-317x^2+705x+2700}{ x-4} = 2x^4+17x^3-7x^2-345x-675 $$

Step 3:

The next rational root is $ x = 4 $

$$ \frac{ 2x^5+9x^4-75x^3-317x^2+705x+2700}{ x-4} = 2x^4+17x^3-7x^2-345x-675 $$

Step 4:

The next rational root is $ x = -3 $

$$ \frac{ 2x^4+17x^3-7x^2-345x-675}{ x+3} = 2x^3+11x^2-40x-225 $$

Step 5:

The next rational root is $ x = -5 $

$$ \frac{ 2x^3+11x^2-40x-225}{ x+5} = 2x^2+x-45 $$

Step 6:

The next rational root is $ x = \dfrac{ 9 }{ 2 } $

$$ \frac{ 2x^2+x-45}{ 2x-9} = x+5 $$

Step 7:

To find the last zero, solve equation $ x+5 = 0 $

$$ \begin{aligned} x+5 & = 0 \\[1 em] x & = -5 \end{aligned} $$

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