Chapter 7.3, Problem 26E

To determine

To find : the solution to the given system of linear equations

Answer to Problem 26E

The solutions to the given system of equation are $\left(5,-3,3\right)$

Explanation of Solution

Given information : The system of equation is $\{\begin{array}{l}2x+4y+z=1\\ x-2y-3z=2\\ x+y-z=-1\end{array}$

Concept Involved:

Solution of a system of equation is the point which makes both the equation TRUE.

Graphically the solution to the system of equation is the point where the two lines meet.

Method of Substitution:

1. Solve one of the equations for one variable in terms of the other.

2. Substitute the expression found in Step 1 into the other equation to obtain an equation in one variable.

3. Solve the equation obtained in Step 2.

4. Back-substitute the value obtained in Step 3 into the expression obtained in Step 1 to find the value of the other variable.

5. Check that the solution satisfies each of the original equations.

Method of Elimination:

To use the method of elimination to solve a system of two linear equations in x and y, perform the following steps.

1. Obtain coefficients for x (or y) that differ only in sign by multiplying all

terms of one or both equations by suitably chosen constants.

2. Add the equations to eliminate one variable.

3. Solve the equation obtained in Step 2.

4. Back-substitute the value obtained in Step 3 into either of the original

equations and solve for the other variable.

5. Check that the solution satisfies each of the original equations.

Calculation:

Description	Steps
Label the given equations	$2x+4y+z=1$	▶ 1st equation
	$x-2y-3z=2$	▶ 2nd equation
	$x+y-z=-1$	▶ 3rd equation
In order to eliminate z multiply 3 from the 1st equation and add the result to the 2nd equation	$\begin{array}{l}6x+12y+3z=3\\ \underset{\_}{x-2y-3z=2}\\ 7x+10y=5\end{array}$
Label the new equation as 4th equation	$7x+10y=5$	▶ 4th equation
In order to eliminate variable z we can add 1st and 3rd equation	$\begin{array}{l}2x+4y+z=1\\ \underset{\_}{x+y-z=-1}\\ 3x+5y=0\end{array}$
Label the new equation as 5th equation	$3x+5y=0$	▶ 5th equation
In order to eliminate y multiply -2 with the 5th equation and add the result with the 4th equation	$\begin{array}{l}-6x-10y=0\\ \underset{\_}{7x+10y=5}\\ x=5\end{array}$
Substituting 5 for x in the 5th equation and solve for y Simplifying left side of the equation Subtract 15 on both sides of the equation Dividing by 5 on both sides Simplify fraction on both sides	$\begin{array}{l}3\left(5\right)+5y=0\\ 15+5y=0\\ 15+5y-15=0-15\\ 5y=-15\\ \frac{5y}{5}=\frac{-15}{5}\\ y=-3\end{array}$
Substituting 5 for x, $-3$ for y in 1st equation Simplifying fraction in left side of the equation Combine like terms in left side Subtract 3 on both sides	$\begin{array}{l}2\left(5\right)+4\left(-3\right)+z=1\\ 10-12+z=1\\ -2+z=1\\ -2+z+2=1+2\\ z=3\end{array}$

Calculation (Continued):

Description	Steps
Checking the solution $\left(5,-3,3\right)$ by substituting in 1st equation $2x+4y+z=1$	$\begin{array}{l}2\left(5\right)+4\left(-3\right)+\left(3\right)=1\\ 10-12+3=1\\ 1=1\boxed{TRUE}\end{array}$
Checking the solution $\left(5,-3,3\right)$ by substituting in 2nd equation $x-2y-3z=2$	$\begin{array}{l}5-2\left(-3\right)-3\left(3\right)=2\\ 5+6-9=2\\ 2=2\boxed{TRUE}\end{array}$
Checking the solution $\left(5,-3,3\right)$ by substituting in 3rdequation $x+y-z=-1$	$\begin{array}{l}5+-3-3=-1\\ -1=-1\boxed{TRUE}\end{array}$

Conclusion:

The solution to the given system of equation is $\left(5,-3,3\right)$