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Essentials of Modern Business Statistics with Microsoft® Excel®, 8th Edition

David R. Anderson, Dennis J. Sweeney, Thomas A. Williams, Jeffrey D. Camm, James J. Cochran, Michael J. Fry, Jeffrey W. Ohlmann

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Starting At £45.00 See pricing and ISBN options
Essentials of Modern Business Statistics with Microsoft® Excel® 8th Edition by David R. Anderson/Dennis J. Sweeney/Thomas A. Williams/Jeffrey D. Camm/James J. Cochran/Michael J. Fry/Jeffrey W. Ohlmann

Overview

Provide a balanced, conceptual understanding of statistics as Anderson/Sweeney/Williams/Camm/Cochran/Fry/Ohlmann's ESSENTIALS OF MODERN BUSINESS STATISTICS WITH MICROSOFT® EXCEL®, 8E emphasizes real applications and how to use the latest Microsoft® Excel® in statistics. This best-selling, essential solution develops each statistical technique in an application setting with integrated instruction for using Excel® 2019. Each clear presentation of each statistical procedure is followed by step-by-step instructions and screen images that demonstrate how to use Excel® to perform the procedure. Excel® Online and R are also covered.

Hundreds of new and interesting real business examples, application exercises, and the authors' signature problem-scenario approach demonstrate how statistics provide insights into business decisions and problems. Quality problems offer unwavering accuracy. New case problems check mastery and develop soft skills, while comprehensive online support with MindTap offers full course solutions.

David R. Anderson

David R. Anderson is a leading author and professor emeritus of quantitative analysis in the College of Business Administration at the University of Cincinnati. Dr. Anderson has served as head of the Department of Quantitative Analysis and Operations Management and as associate dean of the College of Business Administration. He was also coordinator of the college’s first executive program. In addition to introductory statistics for business students, Dr. Anderson taught graduate-level courses in regression analysis, multivariate analysis and management science. He also taught statistical courses at the Department of Labor in Washington, D.C. Dr. Anderson has received numerous honors for excellence in teaching and service to student organizations. He is the co-author of ten well-respected textbooks related to decision sciences and he actively consults with businesses in the areas of sampling and statistical methods. Born in Grand Forks, North Dakota, Dr. Anderson earned his B.S., M.S. and Ph.D. degrees from Purdue University.

Dennis J. Sweeney

Dennis J. Sweeney is professor emeritus of quantitative analysis and founder of the Center for Productivity Improvement at the University of Cincinnati. Born in Des Moines, Iowa, he earned a B.S.B.A. degree from Drake University and his M.B.A. and D.B.A. degrees from Indiana University, where he was an NDEA fellow. Dr. Sweeney has worked in the management science group at Procter & Gamble and has been a visiting professor at Duke University. He also served as head of the Department of Quantitative Analysis and served four years as associate dean of the College of Business Administration at the University of Cincinnati. Dr. Sweeney has published more than 30 articles and monographs in the area of management science and statistics. The National Science Foundation, IBM, Procter & Gamble, Federated Department Stores, Kroger and Cincinnati Gas & Electric have funded his research, which has been published in journals such as Management Science, Operations Research, Mathematical Programming and Decision Sciences. Dr. Sweeney has co-authored 10 textbooks in the areas of statistics, management science, linear programming and production and operations management.

Thomas A. Williams

N/A

Jeffrey D. Camm

Jeffrey D. Camm is the Inmar Presidential Chair of Analytics and Senior Associate Dean for Faculty in the School of Business at Wake Forest University. Born in Cincinnati, Ohio, he holds a B.S. from Xavier University (Ohio) and a Ph.D. from Clemson University. Prior to joining the faculty at Wake Forest, Dr. Camm served on the faculty of the University of Cincinnati. He has also been a visiting scholar at Stanford University and a visiting professor of business administration at the Tuck School of Business at Dartmouth College. Dr. Camm has published more than 45 papers in the general area of optimization applied to problems in operations management and marketing. He has published his research in Science, Management Science, Operations Research, The INFORMS Journal on Applied Analytics and other professional journals. Dr. Camm was named the Dornoff Fellow of Teaching Excellence at the University of Cincinnati and he was the recipient of the 2006 INFORMS Prize for the Teaching of Operations Research Practice. A firm believer in practicing what he preaches, he has served as a consultant to numerous companies and government agencies. Dr. Camm served as editor-in-chief of INFORMS Journal on Applied Analytics and is an INFORMS fellow.

James J. Cochran

James J. Cochran is Professor of Applied Statistics, the Mike and Cathy Mouron Research Chair and Associate Dean for Faculty and Research at the University of Alabama. Born in Dayton, Ohio, he earned his B.S., M.S. and M.B.A. degrees from Wright State University and his Ph.D. from the University of Cincinnati. Dr. Cochran has served at The University of Alabama since 2014 and has been a visiting scholar at Stanford University, Universidad de Talca, the University of South Africa and Pole Universitaire Leonard de Vinci. Dr. Cochran has published more than 50 papers in the development and application of operations research and statistical methods. He has published his research in Management Science, The American Statistician, Communications in Statistics-Theory and Methods, Annals of Operations Research, European Journal of Operational Research, Journal of Combinatorial Optimization, INFORMS Journal on Applied Analytics, BMJ Global Health and Statistics and Probability Letters. He was the 2008 recipient of the INFORMS Prize for the Teaching of Operations Research Practice and the 2010 recipient of the Mu Sigma Rho Statistical Education Award. He received the Founders Award in 2014 and the Karl E. Peace Award in 2015 from the American Statistical Association. In 2017 he received the American Statistical Association’s Waller Distinguished Teaching Career Award and in 2018 he received the INFORMS President’s Award. Dr. Cochran is an elected member of the International Statistics Institute, a fellow of the American Statistical Association and a fellow of INFORMS. A strong advocate for effective statistics and operations research education as a means of improving the quality of applications to real problems, Dr. Cochran has organized and chaired teaching workshops throughout the world.

Michael J. Fry

Michael J. Fry is Professor of Operations, Business Analytics and Information Systems, Lindner Research Fellow and Managing Director of the Center for Business Analytics in the Carl H. Lindner College of Business at the University of Cincinnati. Born in Killeen, Texas, he earned a B.S. from Texas A&M University and his M.S.E. and Ph.D. from the University of Michigan. He has been at the University of Cincinnati since 2002, where he was previously department head. He has also been a visiting professor at Cornell University and the University of British Columbia. Dr. Fry has published more than 25 research papers in journals such as Operations Research, M&SOM, Transportation Science, Naval Research Logistics, IISE Transactions, Critical Care Medicine and INFORMS Journal on Applied Analytics. His research interests are in applying quantitative management methods to the areas of supply chain analytics, sports analytics and public-policy operations. He has worked with many organizations for his research, including Dell, Inc., Starbucks Coffee Company, Great American Insurance Group, the Cincinnati Fire Department, the State of Ohio Election Commission, the Cincinnati Bengals and the Cincinnati Zoo and Botanical Garden. Dr. Fry was named a finalist for the Daniel H. Wagner Prize for Excellence in Operations Research Practice, and he has been recognized for both his research and teaching excellence at the University of Cincinnati.

Jeffrey W. Ohlmann

Jeffrey W. Ohlmann is Associate Professor of Business Analytics and Huneke Research Fellow in the Tippie College of Business at the University of Iowa. Born in Valentine, Nebraska, he earned a B.S. from the University of Nebraska and his M.S. and Ph.D. from the University of Michigan. He has been at the University of Iowa since 2003. Dr. Ohlmann’s research on the modeling and solution of decision-making problems has produced more than two dozen research papers in journals such as Operations Research, Mathematics of Operations Research, INFORMS Journal on Computing, Transportation Science, the European Journal of Operational Research and INFORMS Journal on Applied Analytics (formerly Interfaces). He has collaborated with companies such as Transfreight, LeanCor, Cargill, the Hamilton County Board of Elections as well as three National Football League franchises. Because of the relevance of his work to industry, he was bestowed the George B. Dantzig Dissertation Award and was recognized as a finalist for the Daniel H. Wagner Prize for Excellence in Operations Research Practice.
  • NEW COVERAGE INTRODUCES THE LATEST STATISTICAL SOFTWARE TOOLS. This edition's proven step-by-step instructions and screen images demonstrate how to use the latest version of Excel to implement statistical procedures. Clear instructions in MindTap Reader also guide students in using Excel Online and R for statistical computing and graphics.
  • NEW EXAMPLES AND EXERCISES INCORPORATE THE LATEST REAL DATA. More than 140 new examples and exercises join hundreds of examples and exercises drawn from the today's most current real data and referenced sources of statistical information. The authors use data from The Wall Street Journal, USA Today, The Financial Times, and Forbes as well as from actual studies and applications to create explanations and exercises that demonstrate the use of statistics in business and economics with interest, relevant problems. All applications now clearly identify the skills each exercise reinforces.
  • NEW AND UPDATED CASE PROBLEMS ENCOURAGE STUDENTS TO APPLY SKILLS. This edition adds two new case problems for a total of 40 relevant, timely cases. An updated case on graphical display appears in Chapter 2, and an updated case on descriptive statistics appears in Chapter 3. The numerous case problems in this edition enable students to work on more complex problems, analyze larger data sets, and prepare managerial reports based on the results of their analyses.
  • CONTENT SEAMLESSLY INTEGRATES COVERAGE OF THE LATEST VERSION OF MICROSOFT EXCEL. Immediately following every statistical procedure, a sub-section discusses how to use Excel 2019 to perform that procedure. This approach clearly incorporates the use of Excel while keeping the primary emphasis on key statistical methodology. A consistent framework for applying Excel helps users focus on the statistical methodology without becoming distracted in the details of using Excel.
  • MINDTAP COMPLETE DIGITAL SOLUTION FEATURES EXCEL ONLINE INTEGRATION POWERED BY MICROSOFT®. Ideal for your business statistics course, MindTap takes students from learning basic statistical concepts to actively engaging in critical thinking applications, while learning valuable software skills for future careers. MindTap customizable course solution includes an interactive eBook and auto-graded, algorithmic exercises from the latest edition of the printed text. Students can easily access the latest statistical principles in application settings that enable them to truly master the materials.
  • AUTHORS' SIGNATURE PROVEN PROBLEM-SCENARIO APPROACH EMPHASIZES APPLICATIONS IN BUSINESS TODAY. Using a unique hands-on approach, the authors discuss and develop each technique in an applications setting while clearly demonstrating how statistical results provide insights into decisions and solutions to problems. The problem scenarios emphasize how to apply statistics in real business and economics practice, which increases student interest and motivation for learning statistics.
  • BOOK OFFERS UNMATCHED STUDENT READABILITY. For more than 30 years, student surveys and instructor feedback have shown that readability is a hallmark of this proven learning solution. In addition to clear explanations, this edition is packed with real-world examples, current illustrations, and step-by-step instructions that clarify and engage readers.
  • OUTSTANDING EXERCISES EMPHASIZE BOTH METHODS AND APPLICATIONS. Methods Exercises at the end of each section require students to use formulas and make necessary computations, while practical Application Exercises ask students to apply chapter material to address real-world problems. Many Applications Exercises incorporate recent data from referenced sources. This approach enables students to focus on computational "nuts and bolts" before advancing to the subtleties of statistical application and interpretation. Solutions for even-numbered exercises appear online in the eBook Appendix D.
  • ONLINE DATA FILES SAVE TIME AND ENSURE ACCURACY. Data files for case problems and for exercises with large amounts of data are available on the book's student companion website. Data appears in Excel to both save time and reduce the likelihood of errors in data entry. Helpful margin notes in the printed edition indicate when a data file is available and are clearly identified with the DATAfile logo and the name of the file.
  • MARGIN ANNOTATIONS AND NOTES AND COMMENTS ENSURE STUDENT UNDERSTANDING. This edition's margin annotations highlight key points and provide additional insights. Many sections end with Notes and Comments designed to give students more information about the statistical methodology and its application. Notes and Comments include warnings about or limitations of the methodology, recommendations for application, and brief descriptions of additional technical considerations.
1. Data and Statistics.
2. Descriptive Statistics: Tabular and Graphical Displays.
3. Descriptive Statistics: Numerical Measures.
4. Introduction to Probability.
5. Discrete Probability Distributions.
6. Continuous Probability Distributions.
7. Sampling and Sampling Distributions.
8. Interval Estimation.
9. Hypothesis Tests.
10. Inferences About Means and Proportions with Two Populations.
11. Inferences About Population Variances.
12. Test of Goodness of Fit, Independence, and Multiple Proportions.
13. Experimental Design and Analysis of Variance.
14. Simple Linear Regression.
15. Multiple Regression.
Appendix A: References and Bibliography.
Appendix B: Tables.
Appendix C: Summation Notation.
Appendix D: Self-Test Solutions and Answers to Even-Numbered Exercises (online).
Appendix E: Microsoft Excel 2016 and Tools for Statistical Analysis.
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ISBN: 9780357569528
International MindTap Instant Access for Anderson/Sweeney/Williams/Camm/Cochran/Fry/Ohlmann's Essentials of Modern Business Statistics with Microsoft® Excel®, is the digital learning solution that powers students from memorization to mastery. It gives you complete control of your course--to provide engaging content, to challenge every individual, and to build their confidence. Empower students to accelerate their progress with MindTap. MindTap: Powered by You. MindTap gives you complete ownership of your content and learning experience. Customize the interactive syllabi, emphasize the most important topics and add your own material or notes in the ebook. All online text media materials accessible through this access code are available in EMEA, Latin America, Asia, and India only.