Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 1 Homework, page 317 Assuming x and y are positive, use properties.

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Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 1 Homework, page 317 Assuming x and y are positive, use properties of logarithms to write the expression as a sum or difference of logarithms or multiples of logarithms. 1.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 2 Homework, page 317 Assuming x and y are positive, use properties of logarithms to write the expression as a sum or difference of logarithms or multiples of logarithms. 5.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 3 Homework, page 317 Assuming x and y are positive, use properties of logarithms to write the expression as a sum or difference of logarithms or multiples of logarithms. 9.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 4 Homework, page 317 Assuming x and y are positive, use properties of logarithms to write the expression as a single logarithm. 13.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 5 Homework, page 317 Assuming x and y are positive, use properties of logarithms to write the expression as a single logarithm. 17.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 6 Homework, page 317 Assuming x and y are positive, use properties of logarithms to write the expression as a single logarithm. 21.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 7 Homework, page 317 Use the change of base formula and your calculator to evaluate the logarithm. 25.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 8 Homework, page 317 Write the expression using only natural logarithms. 29.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide 3- 9 Homework, page 317 Write the expression using only common logarithms. 33.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page 317 Write the expression using only common logarithms. 37. Prove the quotient rule of logarithms.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page 317 Describe how to transform the graph g (x) = ln x in the graph of the given function. Sketch the graph and support with a grapher. 41. To transform g (x) into f (x), reflect about the x-axis and apply a stretch of

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page 317 Match the function with its graph. Identify the window dimensions, Xscl, and Yscl of the graph. 45. d. Window [-2, 8] by [-3. 3] Xscl = 1 and Yscl = 1.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page 317 Graph the function and analyze it for domain, range, continuity, increasing or decreasing behavior, asymptotes, and end behavior. 49.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page The relationship between intensity I of light (in lumens) at a depth in Lake Erie is given by. What is the intensity at a depth of 40 ft?

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page The logarithm of the product of two positive numbers is the sum of the logarithms of the number. Justify your answer. True. This is the definition of the Product Rule for Logarithms.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page a. b. c. d. e.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page Scientists have found that the pulse rate r of mammals to be a power function of their body weight w. a.Re-express the data in Table 3.22 in terms of their common logarithms and make a scatter plot of

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page b. Compute the linear regression model c.Superimpose the regression curve on the scatter plot.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page d. Use the regression equation to predict the pulse rate of a 450-kg horse. Is the result close to 38 beats per minute? The result is close to 38 beats per minute.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework, page e. Why can we use either common or natural logarithms to re-express data that fit a power regression model? There is a linear relationship between common and natural logarithms, so either may be used for the re- expression of data.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley 3.5 Equation Solving and Modeling

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Quick Review

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Quick Review Solutions

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide What you’ll learn about Solving Exponential Equations Solving Logarithmic Equations Orders of Magnitude and Logarithmic Models Newton’s Law of Cooling Logarithmic Re-expression … and why The Richter scale, pH, and Newton’s Law of Cooling, are among the most important uses of logarithmic and exponential functions.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Leading Questions If b u = b v, must u = v? If log b u = log b v, must u = v? If A is twice as big as B, do we say A is an order of magnitude larger than B? Slide 3- 25

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide One-to-One Properties

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Solving an Exponential Equation Algebraically

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Solving an Exponential Equation Graphically

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Solving a Logarithmic Equation Algebraically

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Solving a Logarithmic Equation Graphically

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Orders of Magnitude The common logarithm of a positive quantity is its order of magnitude. Orders of magnitude can be used to compare any like quantities: A kilometer is 3 orders of magnitude longer than a meter. A dollar is 2 orders of magnitude greater than a penny. New York City with 8 million people is 6 orders of magnitude bigger than Earmuff Junction with a population of 8.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Richter Scale

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Comparing Magnitudes of Earthquakes Measured on the Richter Scale

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide pH In chemistry, the acidity of a water-based solution is measured by the concentration of hydrogen ions in the solution (in moles per liter). The hydrogen-ion concentration is written [H + ]. The measure of acidity used is pH, the opposite of the common log of the hydrogen-ion concentration: pH = – log [H + ] More acidic solutions have higher hydrogen-ion concentrations and lower pH values.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Using pH Measurements to Compare Hydrogen Ion concentrations Compare the hydrogen ion concentrations of vinegar, with a pH of 2.4 and salt water with a pH of 7.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Newton’s Law of Cooling

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Newton’s Law of Cooling A hard-boiled egg at temperature 100 º C is placed in 15 º C water to cool. Five minutes later the temperature of the egg is 55 º C. When will the egg be 25 º C?

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Regression Models Related by Logarithmic Re-Expression Linear regression:y = ax + b Natural logarithmic regression:y = a + b·ln x Exponential regression:y = a·b x Power regression:y = a·x b

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Three Types of Logarithmic Re-Expression

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Three Types of Logarithmic Re-Expression (cont’d)

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Three Types of Logarithmic Re-Expression (cont’d)

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Following Questions Does the amount in a savings account grow more quickly if the interest is compounded quarterly than if it is compounded annually? Do we use future value to determine how much we must make in monthly payments to accumulate some future amount? Do we use present value to determine the monthly payment necessary to pay off a home or car loan? Slide 3- 42

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Homework Review Section 3.5 Page 331, Exercises: 1 – 61 (EOO), 73, 77

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley 3.6 Mathematics of Finance

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Quick Review

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Quick Review Solutions

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide What you’ll learn about Interest Compounded Annually Interest Compounded k Times per Year Interest Compounded Continuously … and why The mathematics of finance is the science of letting your money work for you – valuable information indeed!

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Interest Compounded Annually

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Interest Compounded k Times per Year

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Compounding Monthly Suppose Paul invests $400 at 8% annual interest compounded monthly. Find the value of the investment after 5 years.

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Compound Interest – Value of an Investment

Copyright © 2007 Pearson Education, Inc. Publishing as Pearson Addison-Wesley Slide Example Compounding Continuously Suppose Paul invests $400 at 8% annual interest compounded continuously. Find the value of his investment after 5 years.