How to Solve Cubic Equation : ax³+ bx²+ cx+d= 0?
Learn to Solve Cubic Equations
In mathematical terms, all cubic equations have either one root or three real roots. The general cubic equation is,
ax3+ bx2+ cx+d= 0
The coefficients of a, b, c and d are real or complex numbers with a not equals to zero (a ≠ 0). It must have the term x3 in it, or else it will not be a cubic equation. But any or all of b, c and d can be zero.
The examples of cubic equations are,
No 1, x3+ 3a3+ 3 a2 + a3– b=0
No 2, 4x3+ 57=0
No 3, x3+ 9x=0
Strategy to solve cubic equation
Unlike quadratic equation which may have no real solution; a cubic equation always has at least one real root. The prior strategy of solving a cubic equation is to reduce it to a quadratic equation, and then solve the quadratic by usual means, either by factorizing or using a formula.
Always try to find the solution of cubic equations with the help of the general equation,
ax3+ bx2+ cx+d= 0
A cubic equation should, therefore, must be re-arranged into its standard form,
For example,
x2+ 4x-1 = 6/x
Step 1
You can see the equation is not written in standard form, you need to multiply the ‘x’ to eliminate the fraction and get cubic equation, after doing so, you will end up with
x3+ 4x2– x = 6
Step 2
Then you subtract 6 from both sides in order to get ‘0’ on the right side, so you will come up,
x3+ 4x2– x- 6 = 0
Solving cubic equations with the help of factor theorem
What is factor theorem? If you divide a polynomial p(x) by a factor x — a of that polynomial, then, you will end up with zero as the remainder,
p(x) = (x — a)q(x) + r(x)
If x — a is indeed a factor of p(x), then the remainder after division by x — a will be zero.
p(x) = (x — a)q (x)
Here is a problem,
x3– 5x2– 2x+24 = 0
With x= — 2 a solution.
Factor theorem says that if x = — 2 is a solution of this equation, then x+2 is a factor of this whole expression. So,
x3– 5x2– 2x+24 = 0
can be written in the form,
(x+2)( x2+ ax+b)=0
Where a and b are numbers,
You need to find out what are the values of a and b here by using synthetic division.
Step 1
First, you need to look at the coefficients of the original cubic equation, which are 1, -5, -2 and 24.
To the right of the vertical you need to write down the known root, x = -2
Step 2
Now multiply number (1) that just brought down, by the known root -2, as a result is -2, you mention the result in the other line, like
Step 3
The numbers in the second column are added, so giving us,
Step 4
Then recently written number 7 is multiplied by the known root, — 2,
As 14 comes as a result, you need to write it down on the second row over the line,
Step 5
Like previously the numbers in this column added, (14–2 = 12)
Step 6
And you need to go on with the process,
Step 7
When you have zero at the bottom row, it gives the confirmation that x = — 2 is a root of the original cubic. At this stage, you got the first three numbers in the bottom row as the coefficients in the quadratic,
x2– 7x+12
Hence, you reduced your cubic to,
(x+2)(x2–7x + 12) =0
Step 8
After applying the quadratic term, the equation comes like this,
(x +2) (x — 3) (x — 4) = 0
Resulting, you get the solution as x = -2 or 3 or 4.
Another Example:
The equation is,
x3– 7x-6=0
Step 1
You can simply try x = — 1, after putting the value of x, you will get,
(-1)3–7(-1) -6
The result comes as zero, so it is proved that x +1 is a factor and the cubic can be written in the form,
(x+1)(x2+ax+b)= 0
Step 2
After applying the synthetic division, like above example, you will take the coefficients of the original cubic equation, which are 1, 0, -7 and -6, you need to write down the know root x = -1 to the right of the vertical line, giving us,
Step 3
Multiply the brought down number 1 by the known root x = -1, and put down the result (-1) at the second row, like this,
Step 4
The numbers of the second column are added to the first column, giving us,
And continue the process adding numbers in this column, until you find ‘0’ as a result,
Step 5
As you add more numbers to the second column by following the synthetic division process, you will come with,
When you come up with zero, it is confirmation that x = -1,
Hence, you get the coefficients in the quadratic as the first three numbers in the bottom row, so the quadratic is,
x2 -x — 6
Step 6
Hence, the cubic reduced to quadratic,
(x+1)(x2-x- 6) =0
The factorized result is,
(x +1)(x — 3)(x + 2) = 0
You can get three solutions to the cubic equation are x = -2, -1 or 3
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