LINEAR EQUATIONS
Objectives: To recall how to solve linear equations in one variable.
Recall 1: A linear
equation in one variable x
is an equation that contains
x, but not x^2 or x^3 or x to any other
exponent.
For example, the following are
linear equations
in one variable:
(-5)(x - 4)/3 + x = 2 - 3x,
6(x - 5) = 3x - 6,
4.23x + 1.3 = 2.23 - 3.3(1 - 2x).
Recall 2: The equality
sign of an equation divides the equation
into two expressions--a
left-hand side and a right-hand
side.
A solution to an equation is a
number that
can be substituted for x making the value of the
left-hand
side equal to the value of the right hand side.
For example, x = -2, x = 8 and x = 1 are the
respective
solutions to the three equations above.
Recall 3: Two equations are considered to be mathematically the same or equivalent if they have the same solution. So,
(-5)(x - 4)/3 + x =
2 - 3x,
and
(-5)(x - 4) + 3x = 6 - 9x,
are equivalent, since they both have the solution x = -2.
Recall 4: Linear equations in one variable are occasionally disguised in unnecessarily complicated form. For example
(-5)(x - 4)/3 + x = 2 -
3x
and
7x + 14 = 0
are equivalent linear equations, since they both have the solution x = -2.
Recall 5: Any
linear equation is mathematically
equivalent to an equation of the
form
| ax + b = 0 |
where a and b are fixed real numbers.
We call this the standard form of a linear equation of one variable x.
For example, the first equation of Recall 4 is equivalent to the second; and the second is in standard form, where a = 7 and b = 14.
Recall 6: Aside from the
usual associative,
commutative and distributive laws of
arithmetic the following
three laws may be used to obtain
equivalent equations.
| If a,
b and c are any real numbers with a=b, then
1. a + c = b +
c,
|
It is generally easy to find the solution to a linear equation in one variable. Simply use the rules of arithmetic, together with the three rules above, to gather all terms involving the unknown x to one side and all the known numbers to the other side.
Examples
Example 1.
Find a solution to 4x + 5 = 6 -
7x.
Solution: Write a sequence of equivalent equations, using the rules of arithmetic and the rules of Recall 6.
7x + 4x + 5 = 7x + 6 - 7x, rule 1
11x + 5 = 6, collecting x's
11x + 5 + -5 = 6 + -5, rule 1
11x = 1, arithmetic
11 / 11 x = 1 / 11 , rule 3
x = 1 / 11 arithmetic.
10x + 3x - 21 = 10x + 2 - 10x, rule 1
13x - 21 = 2, collecting x's
13x - 21 + 21 = 2 + 21, rule 1
13x = 23, arithmetic
13x / 13= 23 / 13 , rule 3
x =23 / 13 , arithmetic.
3(x - 7) = 2 - 10x,
you find that the left-hand side has the value - 204 /13 , and the right-hand side has the same value, since 2 - 10( 23 / 13) = - 204 / 13 .
Solution: We shall use the three rules of Recall 6, together with the rules of arithmetic to find the standard form of the equation. The idea is to gather all terms involving the unknown x to one side and all the known numbers to the other side.
(-5)(x - 4)/3 + x + (-x) = 2 - 3x + (-x), from rule 1
(-5)(x - 4)/3 = 2 - 4x, collecting x's
3(-5)(x - 4)/3 = 3(2 - 4*x), from rule 2
-5(x - 4) = 6 - 12x, distributive law and simplification
-5x + 20 = 6 - 12x, distributive law
12x - 5x + 20 = 12x + 6 - 12x, from rule 1
7x + 20 = 6, col lecting x's
7x + 20 + -20 = 6 + -20, from rule 1
7x = -14, ; arithmetic
7x / 7 = -14 / 7 , from rule 3
x = -2, arithmetic.
The examples that you encountered had unique solutions. Not every equation that you write will have a unique solution. We must distinguish between equations and -- what we generally call -- identities. For example,
3x + 5 = 2x + x + 5
is an identity. That means that the left-hand side always has the same value as the right-hand side, no matter what value you give x. If you attempt to find a solution, you will eventually come to the equation x = x. Any equation that is equivalent to x = x is called an identity. Any equation that is not equivalent to x = x has a unique solution, or no solution. For example, the equation 2(x+2) = 3(x+2) has no solution because you can rewrite it as 3=4, which is never true.
Solution: Multiply both sides by 2 to get
5(x + 3) - x +15 = 2(3(x + 5) - x).
Use the distributive law to get
5x + 15 - x +15= 6x + 30 - 2x.
Collect the x's and use arithmetic to get
4x + 30 = 4x + 30.
You can now see that this means that x = x. So the original equation was an identity and there is no unique solution -- any value of x will be valid in this equation.
Warning 2: Your biggest frustrations will occur when you work out an exercise with haste and carelessness. It does not take many mistakes to shake your self confidence; that is a human condition. Studies show that most students find math difficult because of a lack of self confidence rather than a lack of ability. So take your time and check your results.
In the examples above, we were dealing with linear equations in the variable x. A linear equation in one variable could involve any single letter. For example,
3t - 2 = 5,
(2 - 4y) / 5 = y,
and
3b / 5 - 6b = 1,
are linear equations in t, y and b respectively.
Solve the following
equations:
1. x + 5 = 9
2. 4 = b
- 12
3. x - 3.45 =
2.67
4. 4y - 8 =
10
5. -3x - 5 / 6 = x /
3
6. 2z / 3 -5 =
3z
7. (x + 2.3)/ 3.2 =
4.5
8. 4x - 8 = 7x +
3
9. 3(y - 3) + (y - 3) = (y - 3)
10. 3(t - 7) = 2 - 10t
11. 2(4x - 5) + 3x = 5(x -
1)
12. 7(3x - 5) + 3(x - 1) =
0
13. (x + 3) / 4 + x /
6 = 5
14. (2R - 1) / 6 - (3R - 4) / 3 =
3/4
15. (2x + 4) / 3 - (x - 1)/ 2 = 1 - x / 6
16. [7(3x - 5) + 3(x -
1)] / 3= 1 - x / 6
17. (x + 4)/ 3 + x / 2 = 3(3 -
2x)
18 [2(4x - 5) + 3x] / 4 - (4x - 5) / 3 + 3x = 5(x - 1)
ANSWERS
1. x = 4
2. b = 16
3.
x = 6.12
4. y = 9 /
2
5. x = -1 / 4
6. x = -15 / 7
7.
x = 12.1
8. x = -11 /
3
9. y = 3
10. t = 23 / 13
11. x = 5 /
6
12. x = 38 / 24 or 19 / 12
13. x =
102 / 10
14. R = 15 / 24 or 5 /
8
15,. x = -5 / 2
16. x = 82 / 49
17. x = 46 / 41
18. x = -25