1. 10
Real Numbers, Equations, and Inequalities

2. 10.2 More on Solving Linear Equations
Objectives
Solve more difficult linear equations.
Solve equations that have no solution or infinitely many solutions.
Solve equations by first clearing fractions and decimals.

3. Solve More Difficult Linear Equations

4. Solve More Difficult Linear Equations
Example 1
Solve this equation and check the solution: –2 + 3(2x + 7) = 7 + 3x
Step 1 Use the distributive property. –2 + 3(2x + 7) = 7 + 3x
Step 2 Combine like terms –2 + 6x + 21 = 7 + 3x
6x + 19 = 7 + 3x
Step 3 Subtract 19 from both sides –19 –19
6x + 0 = –12 + 3x
6x = –12 + 3x
Subtract 3x from both sides –3x –3x
3x = –12 + 0
Step 4 Divide both sides by 3.
The solution is –4. 4

5. Solve More Difficult Linear Equations
Step 5 Check the solution by replacing each x with –4 in the original equation.
–2 + 3(2x + 7) = 7 + 3x
–2 + 3[2(–4) + 7] = 7 + 3(–4)
–2 + 3[(–8) + 7] = 7 + –12
–2 + 3(–1) = –5
–2 + –3 = –5
–5 = –5 ✓ Balances
When x is replaced with –4, the equation balances, so 4 is the correct solution (not –5). 5

6. Solve More Difficult Linear Equations
Example 2
Solve this equation: 8a – (3 + 2a) = 3a + 1
Start by removing the parentheses on the left side of the equation. In this situation, the – sign acts like a factor of –1, changing the sign of every term inside the parentheses.
The solution is 4/3. You can check the solution by going back to the original equation and replacing each a with 4/3. 6

7. Solve More Difficult Linear Equations
Example 3
Solve: 4(8 – 3t) = 32 – 8(t + 2)
The solution is 4.
The check is left to you. 7

8. Solving Equations With Infinitely Many Solutions
Example 4
Solve: 5x – 15 = 5(x – 3)
When both sides of an equation are exactly the same, the equation is called an identity. An identity is true for all replacements of the variables.
The solution for 5x – 15 = 5(x – 3) is all real numbers. 8

9. Solving Equations With No Solution
Example 5
Solve: 2w – 7(w + 1) = –5w + 4
As in Example 4, the variable has “disappeared.” This time, however, we are left with a false statement. Whenever this happens in solving an equation, it is a signal that the equation has no solution. So, you write “no solution.” 9

10. Solve Equations with Fraction or Decimal Coefficients
Example 6 Solve the equation. 5 8 m 3 4 1 2
– = 5 8 m 3 4 1 2
– =
Multiply by LCD, 8. 5 8 m 3 4 1 2
– =
Distribute.
5m – = 6m + 4m
Multiply.
Now use the four steps to solve this equivalent equation.

11. Solve Equations with Fraction or Decimal Coefficients
Example 6 (continued) Solve the equation.
5m – = 6m + 4m
Step 1
5m – = 10m
Combine terms.
Step 2
5m – 80 – 5m = 10m – 5m
Subtract 5m.
– 80 = 5m
Combine terms.
Step 3
– m =
Divide by 5.
– 16 = m

12. Solve Equations with Fraction or Decimal Coefficients
Example 6 (continued) Solve the equation.
Step 4
Check by substituting –16 for m in the original equation. 5 8 m 3 4 1 2
– = 5 8
(–16) 3 4 1 2
– =
? Let m = –16.
–10 – = –12 – 8
? Multiply.
–20 = –20
True
The solution to the equation is –16.

13. Solve Equations with Fraction or Decimal Coefficients
Note
Multiplying by 10 is the same as moving the decimal point one place to the right. Example: 1.5 ( 10 ) = 15.
Multiplying by 100 is the same as moving the decimal point two places to the right. Example: 5.24 ( 100 ) =
Multiplying by 10,000 is the same as moving the decimal point how many places to the right?
Answer: 4 places.

14. Solve Equations with Fraction or Decimal Coefficients
Example 7 Solve the equation.
0.2v – ( v ) = – 0.06 ( 31 )
20v – 3 ( v ) = – 6 ( 31 )
Multiply by 100.
Step 1
20v – 33 – 3v = – 186
Distribute.
17v – = – 186
Combine terms.

15. Solve Equations with Fraction or Decimal Coefficients
Example 7 (continued) Solve the equation.
17v – = – 186
From Step 1
Step 2
17v – = –
Add 33.
17v = – 153
Combine terms.
17v – 153 =
Step 3
Divide by 17.
Check to confirm that – 9 is the solution.
v = – 9 15