Solving System of Nonlinear Equations

Solving Systems of Nonlinear Equations

A system of equations where at least one equation is not linear is called a nonlinear system. There are several ways to solve systems of nonlinear equations:

Substitution
Elimination
Using a Combination of methods
Using absolute value

By Substitution

Solve the following nonlinear equations:

x² + y = 6

x − y = 14

To solve this system we first need to isolate one of the variables. In this example, we can use the second equation to solve for y,

x − y = 14

y = x − 14

Now we can substitute this value of y in the second equation:

x² + y = 6

x² + (x − 14) = 6

x² + x − 14 − 6 = 0

x² + x − 20 = 0

By factoring we find two possible values of x:

(x + 5)(x − 4) = 0

x = −5 or x = 4

From the first equation, we can use the value of x to find a value for y:

For x = −5; y = x − 14 = −19

For x = 4; y = x − 14 = −10

As a result, the solution set for the nonlinear system is {(4, −10), (−5, −19)}

By Elimination

Solve the following nonlinear equations:

x² + y² = 34

x² − 2y² = 7

To solve this system we multiply the first equation by 2

(x² + y² = 34) × 2

2x² + 2y² = 68

We then add that product to the second equation

2x² + 2y² = 68

+ (x² − 2y² = 7)

3x² = 75

Now we can solve for x

3x² = 75

x² = 25

x = ±5

We can substitute this value of x into the first equation to find all possible values for y. Since we are substituting into a square, x = 5 and x = −5 will give us the same value:

y² = 34 − x²

y² = 34 − 25

y² = 9

y = ±3

The solution set for the nonlinear system is {(5, 3), (5, −3), (−5, 3), (−5, −3)}

Using a Combination of Methods

Solve the following nonlinear equations:

x² − 2xy + y² = 3

x² + xy + y² = 12

First we use the elimination method to find a value for y. We can multiply the first equation by −1:

−x² + 2xy − y² = −3

Then we can add both equations

−x² + 2xy − y² = −3

x² + xy + y² = 12

3xy = 12

y = ⁴/_x

Now substitute this value of y in the first equation:

x² + x(⁴/_x) + (⁴/_x)² = 12

x² + 4 + 16/x² = 12

Multiply both sides by x²:

(x²)² + 4x² + 16 = 12x²

(x²)² − 8x² + 16 = 0

Using the quadratic equation, we can solve for x:

(x² − 4)(x² − 4) = 0

x² = 4

x = ±2

We can then use that result to find the value for y:

y = ⁴/_x

y = ±2

The solution set for the nonlinear system is {(2, 2), (−2, −2)}.

Using absolute value

Solve the following nonlinear equations:

x² + y² = 25

|x| + y = 5

First we use the substitution method and solve for the absolute value of x:

|x| + y = 5

|x| = 5 − y

We know from the definition of absolute value that |x| ≥ 0. So for all x, 5 − y > 0, and that can be rewritten as 5 > y. In the first equation |x|² is the same as x²; therefore, we can use substitution:

x² + y² = 25

(5 − y)² + y² = 25

(25 − 10y + y²) + y² = 25

2y² − 10y = 0

2y(y − 5) = 0

We can now solve for y:

y = 0 or y = 5

We can use both of these values of y in the first equation:

For y = 0

x² + (0)² = 25

x² = 25
x = ±5

For y = 5

x² + (5)² = 25

x² + 25 = 25

x = 0

The solution set for the nonlinear system is {(5, 0), (0, 5), (−5, 0)}.

Practice

1. Solve the following system:

x² + y² = 8
y − x = 4

2. Solve the following system:

2x + 3y + xy = 16
xy − 5 = 0

Answers

1. (−2, 2)

2. {(, 2), (3, )}