What is B in Y a * b x?

What is B in Y a * b x?

What is B in Y a * b x?
What is B in Y a * b x?

Characteristics of Exponential Functions

What is B in Y a * b x?

Exponential functions are one-to-one functions.

Transformations on Exponentials

All 3 transformations combined:    y = ab(x - h) + k

The Intercepts of Exponentials

What is B in Y a * b x?

The End Behavior of Exponentials

What is B in Y a * b x?

What is B in Y a * b x?


What is B in Y a * b x?
What is B in Y a * b x?

What is B in Y a * b x?

Solving Algebraically for the Inverses shown above:

What is B in Y a * b x?
What is B in Y a * b x?

Alternate method of finding an inverse algebraically:

What is B in Y a * b x?
What is B in Y a * b x?

9,223,372,036,854,775,808

What is B in Y a * b x?

What is B in Y a * b x?

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In addition to linear, quadratic, rational, and radical functions, there are exponential functions. Exponential functions have the form f(x) = bx, where b > 0 and b ≠ 1. Just as in any exponential expression, b is called the base and x is called the exponent.

An example of an exponential function is the growth of bacteria. Some bacteria double every hour. If you start with 1 bacterium and it doubles every hour, you will have 2x bacteria after x hours. This can be written as f(x) = 2x.

Before you start,   f(0) = 20 = 1

After 1 hour           f(1) = 21 = 2

In 2 hours              f(2) = 22 = 4

In 3 hours              f(3) = 23 = 8

and so on.

With the definition f(x) = bx and the restrictions that b > 0 and that b ≠ 1, the domain of an exponential function is the set of all real numbers. The range is the set of all positive real numbers. The following graph shows f(x) = 2x.

What is B in Y a * b x?

As you can see above, this exponential function has a graph that gets very close to the x-axis as the graph extends to the left (as x becomes more negative), but never really touches the x-axis. Knowing the general shape of the graphs of exponential functions is helpful for graphing specific exponential equations or functions.

Making a table of values is also helpful, because you can use the table to place the curve of the graph more accurately. One thing to remember is that if a base has a negative exponent, then take the reciprocal of the base to make the exponent positive. For example,

What is B in Y a * b x?
.

Example

Problem

Make a table of values for f(x) = 3x.

Make a “T” to start the table with two columns. Label the columns x and f(x).

Choose several values for x and put them as separate rows in the x column.

Tip: It’s always good to include 0, positive values, and negative values, if you can.

Answer

Evaluate the function for each value of x, and write the result in the f(x) column next to the x value you used. For example, when

x = −2, f(x) = 3-2 =

What is B in Y a * b x?
 =, so goes in the f(x) column next to −2 in the x column. f(1) = 31 = 3, so 3 goes in the f(x) column next to 1 in the x column.

Note that your table of values may be different from someone else’s, if you chose different numbers for x.

Look at the table of values. Think about what happens as the x values increase—so do the function values (f(x) or y)!

Now that you have a table of values, you can use these values to help you draw both the shape and location of the function. Connect the points as best you can to make a smooth curve (not a series of straight lines). This shows that all of the points on the curve are part of this function.

Example

Problem

Graph f(x) = 3x.

Start with a table of values, like the one in the example above.

x

f(x)

point

−2

(−2,)

−1

(−1,)

0

1

(0, 1)

1

3

(1, 3)

2

9

(2, 9)

If you think of f(x) as y, each row forms an ordered pair that you can plot on a coordinate grid.

What is B in Y a * b x?

Plot the points.

Answer

What is B in Y a * b x?

Connect the points as best you can, using a smooth curve (not a series of straight lines). Use the shape of an exponential graph to help you: this graph gets very close to the

x- axis on the left, but never really touches the x-axis, and gets steeper and steeper on the right.

This is an example of exponential growth. As x increases, f(x) “grows” more quickly. Let’s try another one.

Example

Problem

Graph f(x) = 4x.

Start with a table of values. You can choose different values, but once again, it’s helpful to include 0, some positive values, and some negative values.

Remember,

4-2 =

What is B in Y a * b x?
 =.

If you think of f(x) as y, each row forms an ordered pair that you can plot on a coordinate grid.

What is B in Y a * b x?

Plot the points.

Notice that the larger base in this problem made the function value skyrocket. Even with x as small as 2, the function value is too large for the axis scale you used before. You can change the scale, but then our other values are very close together. You could also try other points, such as when x =. Because you know the square root of 4, you can find that value in this case:

What is B in Y a * b x?
. The point
What is B in Y a * b x?
 is the blue point on this graph.

For other bases, you might need to use a calculator to help you find the function value.

Answer

What is B in Y a * b x?

Connect the points as best you can, using a smooth curve (not a series of straight lines). Use the shape of an exponential graph to help you: this graph gets very close to the x-axis on the left, but never really touches the

x- axis, and gets steeper and steeper on the right.

Let’s compare the three graphs you’ve seen. The functions f(x) = 2x, f(x) = 3x, and

f(x) = 4x are all graphed below.

What is B in Y a * b x?

Notice that a larger base makes the graph steeper. A larger base also makes the graph closer to the y-axis for x > 0 and closer to the x-axis for x < 0. All the graphs go through (0, 1)!

Remember that for exponential functions, b > 0, but b ≠ 1. In the examples above, b > 1. What happens when b is between 0 and 1, 0 < b < 1?

Example

Problem

Graph

What is B in Y a * b x?
.

Start with a table of values.

Be careful with the negative exponents! Remember to take the reciprocal of the base to make the exponent positive. In this case,

What is B in Y a * b x?
, and
What is B in Y a * b x?
.

What is B in Y a * b x?

Use the table as ordered pairs and plot the points.

Answer

What is B in Y a * b x?

Since the points are not on a line, you can’t use a straightedge. Connect the points as best you can using a smooth curve (not a series of straight lines).

Notice that the shape is similar to the shape when b > 1, but this time the graph gets closer to the x-axis when x > 0, rather than when x < 0. This is exponential decay. Instead of the function values “growing” as x values increase, as they did before, the function values “decay” or decrease as x values increase. They get closer and closer to 0.

Example

Problem

Graph

What is B in Y a * b x?
.

Create a table of values. Again, be careful with the negative exponents. Remember to take the reciprocal of the base to make the exponent positive.

What is B in Y a * b x?
.

Notice that in this table, the x values increase. The y values decrease.

What is B in Y a * b x?

Use the table pairs to plot points. You may want to include new points, especially when one of the points from the table, here (−2, 16) won’t fit on your graph. Because you know the square root of 4, try x =. You can find that value in this case:

What is B in Y a * b x?
.

The point (, 8) has been included in blue. You may feel it necessary to include additional points. You also may need to use a calculator, depending on the base.

Answer

What is B in Y a * b x?

Connect the points as best you can, using a smooth curve.

Which of the following is a graph for

What is B in Y a * b x?
?

A)

What is B in Y a * b x?

B)

What is B in Y a * b x?

C)

What is B in Y a * b x?

D)

What is B in Y a * b x?

Show/Hide Answer

A)

 

What is B in Y a * b x?

Incorrect. This graph is increasing, because the f(x) or y values increase as the x values increase. (Compare the values for x = 1 and x = 2.) This graph shows exponential growth, with a base greater than 1. The correct answer is Graph D.

B)

 

What is B in Y a * b x?

Incorrect. This graph is decreasing, but all the function values are negative. The range for an exponential function is always positive values. The correct answer is Graph D.

C)

 

What is B in Y a * b x?

Incorrect. This graph is increasing, but all the function values are negative. The correct graph must be decreasing with positive function values. The correct answer is Graph D.

D)

 

What is B in Y a * b x?

Correct. All the function values are positive, and the graph is decreasing (showing exponential decay).

Applying Exponential Functions

Exponential functions can be used in many contexts, such as compound interest (money), population growth, and radioactive decay. In most of these, however, the function is not exactly of the form f(x) = bx. Often, this is adjusted by adding or multiplying constants.

For example, the compound interest formula is

What is B in Y a * b x?
, where P is the principal (the initial investment that is gathering interest) and A is the amount of money you would have, with interest, at the end of t years, using an annual interest rate of r (expressed as a decimal) and m compounding periods per year. In this case the base is the value represented by the expression 1 + and the exponent is mt—a product of two values.

Example

Problem

If you invest $1,000 in an account paying 4% interest, compounded quarterly, how much money will you have after 3 years?

The money you will have after 3 years will be A.

P = $1,000

r = 0.04

m = 4

t = 3

First identify which of A, P, r, m, and t is being asked for, then determine values for the remaining variables.

The principal is $1,000.

The rate is 4% = 0.04.

The time in years is 3.

Compounded quarterly means 4 times a year.

What is B in Y a * b x?

To find the amount A, use the formula.

Answer

You will have $1,126.83 after 3 years.

Round the number to the nearest cent (hundredth).

Notice that this means the amount of interest earned after three years is $126.83. ($1,126.83, minus the principal, $1,000).

Radioactive decay is an example of exponential decay. Radioactive elements have a half-life. This is the amount of time it takes for half of a mass of the element to decay into another substance. For example, uranium-238 is a slowly decaying radioactive element with a half-life of about 4.47 billion years. That means it will take that long for 100 grams of uranium-238 to turn into 50 grams of uranium-238 (the other 50 grams will have turned into another element). That’s a long time! On the other extreme, radon-220 has a half-life of about 56 seconds. What does this mean? 100 grams of radon-220 will turn into 50 grams of radon-220 and 50 grams of something else in less than a minute!

Since the amount is halved each half-life, an exponential function can be used to describe the amount remaining over time. The formula

What is B in Y a * b x?
 gives the remaining amount R from an initial amount A, where h is the half-life of the element and t is the amount of time passed (using the same time unit as the half-life).

Example

Problem

Caesium-137 is a radioactive element used in medical applications. It has a half-life of about 30 years. Suppose a laboratory has 10 grams of caesium-137. If they don’t use it, how much will still be caesium-137 in 60 years?

R: This is the remaining value, what you are trying to find.

A: The initial amount was 10 grams.

h: The half-life is 30 years.

t: The amount of time passed is 60 years. (Note that this is in the same unit, years, as the half-life.)

Identify the values known in the formula.

What is B in Y a * b x?

Use the formula.

Answer

There will be 2.5 grams of caesium-137 in 60 years.

Billy’s mother put $100 into a bank account for him when he was born. The account gained interest at a rate of 3% per year, compounded monthly. Assuming no more money was deposited and none was withdrawn, how much money will be in the account when Billy turns 18?

A) $170.24

B) $171.49

C) $8561.76

D) $20,718.34

Show/Hide Answer

A) $170.24

Incorrect. This is the amount when the annual rate is compounded annually (m = 1). In this case we are compounding monthly, m = 12. The correct answer is $171.49.

B) $171.49

Correct. Using a rate r of 0.03 and 12 compounding periods per year (m = 12), the formula gives $171.49.

C) $8561.76

Incorrect. You may have used r = 3 rather than r = 0.03 for the annual rate, then misread the result from your calculator. The correct answer is $171.49.

D) $20,718.34

Incorrect. You may have used r = 0.3 rather than r = 0.03 for the annual rate. The correct answer is $171.49.

Exponential functions of the form f(x) = bx appear in different contexts, including finance and radioactive decay. The base b must be a positive number and cannot be 1. The graphs of these functions are curves that increase (from left to right) if b > 1, showing exponential growth, and decrease if 0 < b < 1, showing exponential decay.

What is B in exponential function?

Just as in any exponential expression, b is called the base and x is called the exponent. An example of an exponential function is the growth of bacteria. Some bacteria double every hour. If you start with 1 bacterium and it doubles every hour, you will have 2x bacteria after x hours.

What does B represent in exponential regression?

In exponential regression, coefficient b represents the base of the function (the number being raised to a power) and x represents the exponent of this base.

What type of function is y a/b x?

Exponential Functions This is an exponential function because the base is fixed and the exponent is a variable. An exponential function is a function with the general form y = abx, a ≠ 0, b is a positive real number and b ≠ 1.

What is the A in an exponential function?

An exponential function is a Mathematical function in the form f (x) = ax, where “x” is a variable and “a” is a constant which is called the base of the function and it should be greater than 0. The most commonly used exponential function base is the transcendental number e, which is approximately equal to 2.71828.