Section 3.5 Slope-Intercept Form
In this section, we will explore the most common way to write the equation of a line. Itās known as āslope-intercept formā.
Subsection 3.5.1 Slope-Intercept Definition
Recall ExampleĀ 3.4.5, where Yara started with \(\$50\) in her savings account, and from then on deposited \(\$20\) each week. In that example, we used \(x\) to represent how many weeks have passed. After \(x\) weeks, Yara has added \(20x\) dollars. Since she started with \(\$50\text{,}\) she now has
\begin{equation*}
y=20x+50\text{.}
\end{equation*}
In this example, there is a constant rate of change of \(20\) dollars per week, so we call that the slope. We also saw in FigureĀ 3.4.7 that plotting Yaraās balance over time makes a straight-line graph.
The graph of Yaraās savings has some things in common with almost every straight-line graph. There is a slope, and there is a place where the line crosses the \(y\)-axis. FigureĀ 3 illustrates this in the abstract.
We already have a symbol, \(m\text{,}\) for the slope of a line. That other feature, where the line crosses the \(y\)-intercept is of interest to us now. The \(y\)-intercept of a line is a point where the line crosses the \(y\)-axis. Since itās on the \(y\)-axis, the \(x\)-coordinate of this point is \(0\text{.}\) It is standard to call the point \((0,b)\) the \(y\)-intercept, and call the number \(b\) the ā\(y\)-coordinate of the \(y\)-interceptā. It is almost inevitable that people will find this too wordy, and will call \(b\) the \(y\)-intercept. But technically, the \(y\)-intercept is \((0,b)\text{.}\)
Checkpoint 3.5.4.
Use FigureĀ 3.4.7 to answer this question.
What was the value of \(b\) in the plot of Yaraās savings?
What is the \(y\)-intercept?
Explanation.
The line crosses the \(y\)-axis at \((0,50)\text{,}\) so the value of \(b\) is \(50\text{.}\) And the \(y\)-intercept is \((0,50)\text{.}\)
One way to write the equation for Yaraās savings was
\begin{equation*}
y=20x+50
\end{equation*}
where \(m=20\) and \(b=50\) are immediately visible in the equation. Now we generalize this.
Definition 3.5.5. Slope-Intercept Form.
When \(x\) and \(y\) have a linear relationship where \(m\) is the slope and \((0,b)\) is the \(y\)-intercept, one equation for this relationship is
\begin{equation}
y=mx+b\tag{3.5.1}
\end{equation}
and this equation is called the slope-intercept form of the line. It is called this because the slope and \(y\)-intercept are immediately discernible from the numbers in the equation.
Checkpoint 3.5.6.
What are the slope and \(y\)-intercept for each of the following line equations?
Equation | Slope | \(y\)-intercept |
\(y={3.1x+1.78}\) | ||
\(y={-17x+112}\) | ||
\(y={\frac{3}{7}x-\frac{2}{3}}\) | ||
\(y={13-8x}\) | ||
\(y={1-\frac{2x}{3}}\) | ||
\(y={2x}\) | ||
\(y={3}\) |
Explanation.
In the first three equations, simply read the slope \(m\) according to slope-intercept form. The slopes are \(3.1\text{,}\) \(-17\text{,}\) and \({\frac{3}{7}}\text{.}\)
The fourth equation was written with the terms not in the slope-intercept form order. It could be written \(y=-8x+13\text{,}\) and then it is clear that its slope is \(-8\text{.}\) In any case, the slope is the coefficient of \(x\text{.}\)
The fifth equation is also written with the terms not in the slope-intercept form order. Changing the order of the terms, it could be written \(y=-\frac{2x}{3}+1\text{,}\) but this still does not match the pattern of slope-intercept form. Considering how fraction multiplication works, \(\frac{2x}{3}=\frac{2}{3}\cdot\frac{x}{1}=\frac{2}{3}x\text{.}\) So we can write this equation as \(y=-\frac{2}{3}x+1\text{,}\) and we see the slope is \(-\frac{2}{3}\text{.}\)
The last two equations could be written \(y=2x+0\) and \(y=0x+3\text{,}\) allowing us to read their slopes as \(2\) and \(0\text{.}\)
For the \(y\)-intercepts, remember that we are expected to answer using an ordered pair \((0,b)\text{,}\) not just a single number \(b\text{.}\) We can simply read that the first two \(y\)-intercepts are \({\left(0,1.78\right)}\) and \({\left(0,112\right)}\text{.}\)
The third equation does not exactly match the slope-intercept form, until you view it as \(y=\frac{3}{7}x+\left(-\frac{2}{3}\right)\text{,}\) and then you can see that its \(y\)-intercept is \(\left(0,-\frac{2}{3}\right)\text{.}\)
With the fourth equation, after rewriting it as \(y=-8x+13\text{,}\) we can see that its \(y\)-intercept is \((0,13)\text{.}\)
We already explored rewriting the fifth equation as \(y=-\frac{2}{3}x+1\text{,}\) where we can see that its \(y\)-intercept is \((0,1)\text{.}\)
The last two equations could be written \(y=2x+0\) and \(y=0x+3\text{,}\) allowing us to read their \(y\)-intercepts as \((0,0)\) and \((0,3)\text{.}\)
Alternatively, we know that \(y\)-intercepts happen where \(x=0\text{,}\) and substituting \(x=0\) into each equation gives you the \(y\)-value of the \(y\)-intercept.
Remark 3.5.7.
The number \(b\) is the \(y\)-value when \(x=0\text{.}\) Therefore it is common to refer to \(b\) as the initial value or starting value of a linear relationship.
Subsection 3.5.2 Graphing Slope-Intercept Equations
Example 3.5.8.
With a simple equation like \(y=2x+3\text{,}\) we can see that this is a line whose slope is \(2\) and which has initial value \(3\text{.}\) So starting at \(y=3\) on the \(y\)-axis, each time we increase the \(x\)-value by \(1\text{,}\) the \(y\)-value increases by \(2\text{.}\) With these basic observations, we can quickly produce a table and/or a graph.
\(x\) | \(y\) | ||
start on \(y\)-axis \(\longrightarrow\) |
\(0\) | \(3\) | initial \(\longleftarrow\) value |
increase by \(1\longrightarrow\) |
\(1\) | \(5\) | increase \(\longleftarrow\) by \(2\) |
increase by \(1\longrightarrow\) |
\(2\) | \(7\) | increase \(\longleftarrow\) by \(2\) |
increase by \(1\longrightarrow\) |
\(3\) | \(9\) | increase \(\longleftarrow\) by \(2\) |
increase by \(1\longrightarrow\) |
\(4\) | \(11\) | increase \(\longleftarrow\) by \(2\) |
Example 3.5.9.
The conversion formula for a Celsius temperature into Fahrenheit is \(F=\frac{9}{5}C+32\text{.}\) This appears to be in slope-intercept form, except that \(x\) and \(y\) are replaced with \(C\) and \(F\text{.}\) Suppose you are asked to graph this equation. How will you proceed? You could make a table of values as we did in ExampleĀ 8 but that takes time and effort. Since the equation is in slope-intercept form, there is a better way.
Since this equation is for converting a Celsius temperature to a Fahrenheit temperature, it makes sense to let \(C\) be the horizontal axis variable and \(F\) be the vertical axis variable. Note the slope is \(\frac{9}{5}\) and the vertical intercept (here, the \(F\)-intercept) is \((0,32)\text{.}\)
- Set up the axes using an appropriate window and labels. Considering the freezing temperature of water (\(0^{\circ}\) Celsius or \(32^{\circ}\) Fahrenheit), and the boiling temperature of water (\(100^{\circ}\) Celsius or \(212^{\circ}\) Fahrenheit), itās reasonable to let \(C\) run through at least \(0\) to \(100\) and \(F\) run through at least \(32\) to \(212\text{.}\)
- Plot the \(F\)-intercept, which is at \((0,32)\text{.}\)
- Starting at the \(F\)-intercept, use slope triangles to reach the next point. Since our slope is \(\frac{9}{5}\text{,}\) that suggests a ārunā of \(5\) and a āriseā of \(9\) might work. But as FigureĀ 10 indicates, such slope triangles are too tiny. You can actually use any fraction equivalent to \(\frac{9}{5}\) to plot using the slope, as in \(\frac{18}{10}\text{,}\) \(\frac{90}{50}\text{,}\) \(\frac{900}{50}\text{,}\) or \(\frac{45}{25}\) which all reduce to \(\frac{9}{5}\text{.}\) Given the size of our graph, we will use \(\frac{90}{50}\) to plot points, where we will try a ārunā of \(50\) and a āriseā of \(90\text{.}\)
- Connect your points with a straight line, use arrowheads, and label the equation.
Example 3.5.11.
Graph \(y=-\frac{2}{3}x+10\text{.}\)
Checkpoint 3.5.13.
Graph \(y=3x+5\text{.}\)
Explanation.
Mark the \(y\)-intercept at \((0,5)\text{,}\) and then use slope triangles that travel forward \(1\) unit and up \(3\text{.}\)
Subsection 3.5.3 Writing a Slope-Intercept Equation Given a Graph
We can write a linear equation in slope-intercept form based on its graph. We need to be able to calculate the lineās slope and see its \(y\)-intercept.
Checkpoint 3.5.14.
Use the graph to write an equation of the line in slope-intercept form.
Explanation.
On the line, pick two points with easy-to-read integer coordinates so that we can calculate slope. It doesnāt matter which two points we use; the slope will be the same.
Using the slope triangle, we can calculate the lineās slope:
\begin{equation*}
\text{slope}=\frac{\Delta y}{\Delta x}=\frac{-2}{4}=-\frac{1}{2}
\text{.}
\end{equation*}
Also, from the graph, we can see the \(y\)-intercept is \((0,6)\text{.}\)
With the slope and \(y\)-intercept found, we can write the lineās equation:
\begin{equation*}
y=-\frac{1}{2}x+6
\text{.}
\end{equation*}
Checkpoint 3.5.15.
The boiling temperature of water depends on what the surrounding air pressure is. Scientists measured the boiling point of water under various amounts of pressure and plotted the results below. Then they added a āline of best fitā.
Write an equation for this line in slope-intercept form.
Explanation.
Do your best to identify two points on the line.
We identify \((0,90)\) and\((3,130)\text{.}\) And then to find the slope:
\begin{equation*}
\frac{\Delta y}{\Delta x}=\frac{130-90}{3-0}=\frac{40}{3}\approx13.3
\end{equation*}
So the slope is about \(13.3\) degrees Celsius per bara. This is only an estimate since we are not certain the two points we chose are actually on the line.
Estimating the \(y\)-intercept to be at \((0,90)\text{,}\) we have \(y=13.3x+90\text{.}\)
Subsection 3.5.4 Writing a Slope-Intercept Equation Given Two Points
Any two points uniquely determine a line. Once you identify two points, there is a process to find the slope-intercept form of the equation of the line that connects them.
Example 3.5.16.
Find the slope-intercept form of an equation for the line that passes through the points \((0,5)\) and \((8,-5)\text{.}\)
Explanation.
Our goal is to write \(y=mx+b\text{,}\) with specific numbers for \(m\) and \(b\text{.}\) The first step is to find the slope, \(m\text{.}\) To do this, recall the slope formula from SectionĀ 4. It says that if a line passes through the points \((x_1,y_1)\) and \((x_2,y_2)\text{,}\) then the slope is found by the formula \(m=\frac{y_2-y_1}{x_2-x_1}\text{.}\) Applying this to our two points \((\overset{x_1}{0},\overset{y_1}{5})\) and \((\overset{x_2}{8},\overset{y_2}{-5})\text{,}\) we see that the slope is:
\begin{align*}
m\amp=\frac{y_2-y_1}{x_2-x_1}\\
\amp=\frac{\substitute{-5}-\substitute{5}}{\substitute{8}-\substitute{0}}\\
\amp=\frac{-10}{8}=-\frac{5}{4}
\end{align*}
We are trying to write \(y=mx+b\text{.}\) Since we already found the slope, we know that we want to write \(y=-\frac{5}{4}x+b\) but we need a specific number for \(b\text{.}\) We happen to know that one point on this line is \((0,5)\text{,}\) which is on the \(y\)-axis because its \(x\)-value is \(0\text{.}\) So \((0,5)\) is this lineās \(y\)-intercept, and therefore \(b=5\text{.}\) So our equation is \(y=-\frac{5}{4}x+5\text{.}\)
Example 3.5.17.
Find the slope-intercept form of an equation for the line that passes through the points \((3,-8)\) and \((-6,1)\text{.}\)
Explanation.
We first find the slope between our two points: \((\overset{x_1}{3},\overset{y_1}{-8})\) and \((\overset{x_2}{-6},\overset{y_2}{1})\text{.}\) Using the slope formula again, we have:
\begin{align*}
m\amp=\frac{y_2-y_1}{x_2-x_1}\\
\amp=\frac{\substitute{1}-\substitute{(-8)}}{\substitute{{-}6}-\substitute{3}}\\
\amp=\frac{9}{-9}\\
\amp=-1
\end{align*}
Now that we have the slope, we can write \(y=-1x+b\text{,}\) or more simply: \(y=-x+b\text{.}\) Unlike in ExampleĀ 16, we are not given the value of \(b\) because neither of our two given points have an \(x\)-value of \(0\text{.}\) To find \(b\text{,}\) remember that we have two points that we already know should make the equation true! This means we can substitute either point into the equation (for the \(x\) and the \(y\)) and solve for \(b\text{.}\) Letās arbitrarily choose \((3,-8)\) to substitute in.
\begin{align*}
y\amp=-x+b\\
\substitute{-8}\amp=-(\substitute{3})+b\amp\text{(Now solve for }b\text{.)}\\
-8\amp=-3+b\\
-8\addright{3}\amp=-3+b\addright{3}\\
-5\amp=b
\end{align*}
We conclude that the slope-intercept line equation is \(y=-x-5\text{.}\)
Checkpoint 3.5.18.
Find the slope-intercept form of an equation for the line that passes through the points \((-3,150)\) and \((0,30)\text{.}\)
Explanation.
We first find the slope between our two points: \((\overset{x_1}{-3},\overset{y_1}{150})\) and \((\overset{x_2}{0},\overset{y_2}{30})\text{.}\) Using the slope formula, we have:
\begin{equation*}
\begin{aligned}
m\amp=\frac{y_2-y_1}{x_2-x_1}\\
\amp=\frac{\substitute{30}-\substitute{150}}{\substitute{0}-\substitute{(-3)}}\\
\amp=\frac{-120}{3}\\
\amp=-40
\end{aligned}
\end{equation*}
Now we can write \(y=-40x+b\) and to find \(b\) we need look no further than one of the given points: \((0,30)\text{.}\) The value of \(b\) is \(30\text{.}\) So, the slope-intercept form of the line is \(y=-40x+30\text{.}\)
Checkpoint 3.5.19.
Find the slope-intercept form of an equation for the line that passes through the points \(\left(-3,\frac{3}{4}\right)\) and \(\left(-6,-\frac{17}{4}\right)\text{.}\)
Explanation.
First find the slope through our points: \(\left(-3,\frac{3}{4}\right)\) and \(\left(-6,-\frac{17}{4}\right)\text{.}\)
\begin{equation*}
\begin{aligned}
m\amp=\frac{y_2-y_1}{x_2-x_1}\\
\amp=\frac{\substitute{-\frac{17}{4}}-\substitute{\frac{3}{4}}}{\substitute{-6}-\substitute{(-3)}}\\
\amp=\frac{\frac{-20}{4}}{-3}\\
\amp=\frac{-5}{-3}=\frac{5}{3}
\end{aligned}
\end{equation*}
At this point we have \(y=\frac{5}{3}x+b\text{.}\) Now we need to solve for \(b\) since neither of the points given to us were the vertical intercept. To do this, we choose one of the two points and plug it into our equation. We choose \(\left(-3,\frac{3}{4}\right)\text{.}\)
\begin{equation*}
\begin{aligned}
y\amp=\frac{5}{3}x+b\\
\substitute{\frac{3}{4}}\amp=\frac{5}{3}(\substitute{-3})+b\\
\frac{3}{4}\amp=-5+b\\
\frac{3}{4}\addright{5}\amp=-5+b\addright{5}\\
\frac{3}{4}+\frac{20}{4}\amp=b\\
\frac{23}{4}\amp=b
\end{aligned}
\end{equation*}
So we have \(y=\frac{5}{3}x+\frac{23}{4}\text{.}\)
Subsection 3.5.5 Modeling with Slope-Intercept Form
We can model many relationships using slope-intercept form, and then solve related questions using algebra. Here are a few examples.
Example 3.5.20.
Uber is a ride-sharing company. Its pricing in Portland factors in how much time and how many miles a trip takes. But if you assume that rides average out at a speed of 30 mph, then their pricing scheme boils down to a base of \(\$7.35\) for the trip, plus \(\$3.85\) per mile. Use a slope-intercept equation and algebra to answer these questions.
- How much is the fare if a trip is \(5.3\) miles long?
- With \(\$100\) available to you, how long of a trip can you afford?
Explanation.
The rate of change (slope) is \(\$3.85\) per mile, and the starting value is \(\$7.35\text{.}\) So the slope-intercept equation is
\begin{equation*}
y=3.85x+7.35\text{.}
\end{equation*}
In this equation, \(x\) stands for the number of miles in a trip, and \(y\) stands for the amount of money to be charged.
If a trip is \(5.3\) miles long, we substitute \(x=5.3\) into the equation and we have:
\begin{align*}
y\amp=3.85x+7.35\\
\amp=3.85(\substitute{5.3})+7.35\\
\amp=20.405+7.35\\
\amp=27.755
\end{align*}
And the \(5.3\)-mile ride will cost you about \(\$27.76\text{.}\) (We say āaboutā, because this was all assuming you average 30 mph.)
Next, to find how long of a trip would cost \(\$100\text{,}\) we substitute \(y=100\) into the equation and solve for \(x\text{:}\)
\begin{align*}
y\amp=3.85x+7.35\\
\substitute{100}\amp=3.85x+7.35\\
100\subtractright{7.35}\amp=3.85x\\
92.65\amp=3.85x\\
\divideunder{92.65}{3.85}\amp=x\\
24.06\amp\approx x
\end{align*}
So with \(\$100\) you could afford a little more than a \(24\)-mile trip.
Checkpoint 3.5.21.
In a certain wildlife reservation in Africa, there are approximately \(2400\) elephants. Sadly, the population has been decreasing by \(30\) elephants per year. Use a slope-intercept equation and algebra to answer these questions.
- If the trend continues, what would the elephant population be \(15\) years from now?
- If the trend continues, how many years will it be until the elephant population dwindles to \(1200\text{?}\)
Explanation.
The rate of change (slope) is \(-30\) elephants per year. Notice that since we are losing elephants, the slope is a negative number. The starting value is \(2400\) elephants. So the slope-intercept equation is
\begin{equation*}
y=-30x+2400
\text{.}
\end{equation*}
In this equation, \(x\) stands for a number of years into the future, and \(y\) stands for the elephant population. To estimate the elephant population \(15\) years later, we substitute \(x\) in the equation with \(15\text{,}\) and we have:
\begin{equation*}
\begin{aligned}
y\amp=-30x+2400\\
\amp=-30(\substitute{15})+2400\\
\amp=-450+2400\\
\amp=1950
\end{aligned}
\end{equation*}
So if the trend continues, there would be \(1950\) elephants on this reservation 15 years later.
Next, to find when the elephant population would decrease to \(1200\text{,}\) we substitute \(y\) in the equation with \(1200\text{,}\) and solve for \(x\text{:}\)
\begin{equation*}
\begin{aligned}
y\amp=-30x+2400\\
\substitute{1200}\amp=-30x+2400\\
1200\subtractright{2400}\amp=-30x\\
-1200\amp=-30x\\
\divideunder{-1200}{-30}\amp=x\\
40\amp=x
\end{aligned}
\end{equation*}
So if the trend continues, \(40\) years later, the elephant population would dwindle to \(1200\text{.}\)
Reading Questions 3.5.6 Reading Questions
1.
How does āslope-intercept formā get its name?
2.
What are two phrases you can use for ā\(b\)ā in a slope-intercept form line equation?
3.
Explain the two basic steps to graphing a line when you have the equation in slope-intercept form. (Not counting the step where you draw and label the axes and ticks.)
Exercises 3.5.7 Exercises
Skills Practice
Identifying Slope and \(y\)-Intercept.
Find the lineās slope and \(y\)-intercept.
1.
\(y={2x+7}\)
2.
\(y={3x+4}\)
3.
\(y={-7x-2}\)
4.
\(y={-6x-5}\)
5.
\(y={x+1}\)
6.
\(y={x+3}\)
7.
\(y={-x+5}\)
8.
\(y={-x+7}\)
9.
\(y={{\frac{8}{5}}x+9}\)
10.
\(y={{\frac{5}{3}}x-8}\)
11.
\(y={-6.2x-6}\)
12.
\(y={5.2x-3}\)
13.
\(y={6+5x}\)
14.
\(y={2+6x}\)
15.
\(y={8-7x}\)
16.
\(y={4-8x}\)
Graphs and Slope-Intercept Form.
In the given graph, what is the lineās slope-intercept equation?
17.
18.
19.
20.
21.
22.
23.
24.
25.
26.
27.
28.
Graph Equations.
Graph the equation.
29.
\({y = 2x+5}\)
30.
\({y = 3x-4}\)
31.
\({y = -3x+2}\)
32.
\({y = -4x-5}\)
33.
\({y = -{\frac{1}{4}}x-3}\)
34.
\({y = -{\frac{1}{5}}x+2}\)
35.
\({y = {\frac{1}{5}}x-4}\)
36.
\({y = {\frac{1}{5}}x+3}\)
37.
\({y = {\frac{2}{9}}x}\)
38.
\({y = {\frac{3}{7}}x}\)
39.
\({y = {\frac{4}{7}}x-1}\)
40.
\({y = {\frac{5}{4}}x-5}\)
41.
\({y = x+1}\)
42.
\({y = x+3}\)
43.
\({y = -x+5}\)
44.
\({y = -x+7}\)
45.
\({y = -{\frac{9}{7}}x-2}\)
46.
\({y = -{\frac{2}{9}}x+5}\)
47.
\({y = -0.6x+2}\)
48.
\({y = -0.4x-3}\)
Writing a Slope-Intercept Equation Given Two Points.
A line passes through the two given points. Find the lineās equation in slope-intercept form.
49.
\({\left(3,25\right)}\) and \({\left(6,52\right)}\)
50.
\({\left(1,7\right)}\) and \({\left(2,13\right)}\)
51.
\({\left(5,-12\right)}\) and \({\left(7,-18\right)}\)
52.
\({\left(4,-31\right)}\) and \({\left(8,-67\right)}\)
53.
\({\left(-2,-5\right)}\) and \({\left(3,25\right)}\)
54.
\({\left(-7,-12\right)}\) and \({\left(9,36\right)}\)
55.
\({\left(14,8\right)}\) and \({\left(42,40\right)}\)
56.
\({\left(24,9\right)}\) and \({\left(40,19\right)}\)
57.
\({\left(-36,23\right)}\) and \({\left(-4,-1\right)}\)
58.
\({\left(-30,46\right)}\) and \({\left(-10,14\right)}\)
59.
\({\left(-19,48\right)}\) and \({\left(114,146\right)}\)
60.
\({\left(-84,5\right)}\) and \({\left(-56,27\right)}\)
61.
\({\left(2.7,16.55\right)}\) and \({\left(9.2,45.8\right)}\)
62.
\({\left(-9,22.6\right)}\) and \({\left(3.7,-0.26\right)}\)
Applications
63.
A gym charges members \({\$40}\) for a registration fee, and then \({\$20}\) per month. You became a member some time ago, and now you have paid a total of \({\$320}\) to the gym. How many months have passed since you joined the gym?
months have passed since you joined the gym.
64.
Your cell phone company charges a \({\$11}\) monthly fee, plus \({\$0.17}\) per minute of talk time. One month your cell phone bill was \({\$92.60}\text{.}\) How many minutes did you spend talking on the phone that month?
You spent talking on the phone that month.
65.
A school purchased a batch of T-shirts from a company. The company charged \({\$4}\) per T-shirt, and gave the school a \({\$65}\) rebate. If the school had a net expense of \({\$1{,}375}\) from the purchase, how many T-shirts did the school buy?
The school purchased T-shirts.
66.
Perlia hired a face-painter for a birthday party. The painter charged a flat fee of \({\$65}\text{,}\) and then charged \({\$2.50}\) per person. In the end, Perlia paid a total of \({\$127.50}\text{.}\) How many people used the face-painterās service?
people used the face-painterās service.
67.
A certain country has \(351.12\) million acres of forest. Every year, the country loses \(4.62\) million acres of forest mainly due to deforestation for farming purposes. If this situation continues at this pace, how many years later will the country have only \(143.22\) million acres of forest left? (Use an equation to solve this problem.)
After years, this country would have \(143.22\) million acres of forest left.
68.
Izabelle has \({\$80}\) in her piggy bank. She plans to purchase some Pokemon cards, which costs \({\$1.55}\) each. She plans to save \({\$72.25}\) to purchase another toy. At most how many Pokemon cards can he purchase?
Write an equation to solve this problem.
Izabelle can purchase at most Pokemon cards.
69.
By your cell phone contract, you pay a monthly fee plus \({\$0.06}\) for each minute you spend on the phone. In one month, you spent \(300\) minutes over the phone, and had a bill totaling \({\$37.00}\text{.}\)
Let \(x\) be the number of minutes you spend on the phone in a month, and let \(y\) be your total cell phone bill for that month, in dollars. Use a linear equation to model your monthly bill based on the number of minutes you spend on the phone.
- This lineās slope-intercept equation is .
- If you spend \(170\) minutes on the phone in a month, you would be billed .
- If your bill was \({\$48.40}\) one month, you must have spent minutes on the phone in that month.
70.
A company set aside a certain amount of money in the year 2000. The company spent exactly \({\$42{,}000}\) from that fund each year on perks for its employees. In \(2003\text{,}\) there was still \({\$722{,}000}\) left in the fund.
Let \(x\) be the number of years since 2000, and let \(y\) be the amount of money, in dollars, left in the fund that year. Use a linear equation to model the amount of money left in the fund after so many years.
- The linear modelās slope-intercept equation is .
- In the year \(2011\text{,}\) there was left in the fund.
- In the year , the fund will be empty.
71.
A biologist has been observing a treeās height. This type of tree typically grows by \(0.27\) feet each month. Fourteen months into the observation, the tree was \(16.98\) feet tall.
Let \(x\) be the number of months passed since the observations started, and let \(y\) be the treeās height at that time, in feet. Use a linear equation to model the treeās height as the number of months pass.
- This lineās slope-intercept equation is .
- \(29\) months after the observations started, the tree would be feet in height.
- months after the observation started, the tree would be \(29.13\) feet tall.
72.
Scientists are conducting an experiment with a gas in a sealed container. The mass of the gas is measured, and the scientists realize that the gas is leaking over time in a linear way. Each minute, they lose \(9.3\) grams. Six minutes since the experiment started, the remaining gas had a mass of \(409.2\) grams.
Let \(x\) be the number of minutes that have passed since the experiment started, and let \(y\) be the mass of the gas in grams at that moment. Use a linear equation to model the weight of the gas over time.
- This lineās slope-intercept equation is .
- \(37\) minutes after the experiment started, there would be grams of gas left.
- If a linear model continues to be accurate, minutes since the experiment started, all gas in the container will be gone.
73.
A company set aside a certain amount of money in the year 2000. The company spent exactly the same amount from that fund each year on perks for its employees. In \(2003\text{,}\) there was still \({\$765{,}000}\) left in the fund. In \(2006\text{,}\) there was \({\$699{,}000}\) left.
Let \(x\) be the number of years since 2000, and let \(y\) be the amount of money, in dollars, left in the fund that year. Use a linear equation to model the amount of money left in the fund after so many years.
- The linear modelās slope-intercept equation is .
- In the year \(2010\text{,}\) there was left in the fund.
- In the year , the fund will be empty.
74.
By your cell phone contract, you pay a monthly fee plus some money for each minute you use the phone during the month. In one month, you spent \(210\) minutes on the phone, and paid \({\$18.25}\text{.}\) In another month, you spent \(340\) minutes on the phone, and paid \({\$21.50}\text{.}\)
Let \(x\) be the number of minutes you talk over the phone in a month, and let \(y\) be your cell phone bill, in dollars, for that month. Use a linear equation to model your monthly bill based on the number of minutes you talk over the phone.
- This linear modelās slope-intercept equation is .
- If you spent \(170\) minutes over the phone in a month, you would pay .
- If in a month, you paid \({\$24.00}\) of cell phone bill, you must have spent minutes on the phone in that month.
75.
Scientists are conducting an experiment with a gas in a sealed container. The mass of the gas is measured, and the scientists realize that the gas is leaking over time in a linear way.
Seven minutes since the experiment started, the gas had a mass of \(320.4\) grams.
Eleven minutes since the experiment started, the gas had a mass of \(284.8\) grams.
Let \(x\) be the number of minutes that have passed since the experiment started, and let \(y\) be the mass of the gas in grams at that moment. Use a linear equation to model the weight of the gas over time.
- This lineās slope-intercept equation is .
- \(36\) minutes after the experiment started, there would be grams of gas left.
- If a linear model continues to be accurate, minutes since the experiment started, all gas in the container will be gone.
76.
A biologist has been observing a treeās height. \(15\) months into the observation, the tree was \(18\) feet tall. \(20\) months into the observation, the tree was \(18.9\) feet tall.
Let \(x\) be the number of months passed since the observations started, and let \(y\) be the treeās height at that time, in feet. Use a linear equation to model the treeās height as the number of months pass.
- This lineās slope-intercept equation is .
- \(28\) months after the observations started, the tree would be feet in height.
- months after the observation started, the tree would be \(24.84\) feet tall.
Challenge
77.
Line \(S\) has the equation \(y = ax + b\) and Line \(T\) has the equation \(y = cx + d\text{.}\) Suppose \(a\gt b\gt c\gt d\gt 0\text{.}\)
- What can you say about Line \(S\) and Line \(T\text{,}\) given that \(a\gt c\text{?}\) Give as much information about Line \(S\) and Line \(T\) as possible.
- What can you say about Line \(S\) and Line \(T\text{,}\) given that \(b\gt d\text{?}\) Give as much information about Line \(S\) and Line \(T\) as possible.