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A Second Course in Statistics: Regression Analysis (7th Edition), by William Mendenhall, Terry T Sincich
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A Second Course in Statistics: Regression Analysis, Seventh Edition, focuses on building linear statistical models and developing skills for implementing regression analysis in real situations. This text offers applications for engineering, sociology, psychology, science, and business. The authors use real data and scenarios extracted from news articles, journals, and actual consulting problems to show how to apply the concepts. In addition, seven case studies, now located throughout the text after applicable chapters, invite readers to focus on specific problems.
- Sales Rank: #96074 in Books
- Published on: 2011-01-15
- Original language: English
- Number of items: 1
- Dimensions: 10.00" h x 1.50" w x 8.30" l, 3.30 pounds
- Binding: Hardcover
- 816 pages
From the Publisher
This text focuses on building linear statistical models and on developing skills for implementing regression analysis in real life situations. The fifth edition now includes applications for engineering, sociology, psychology, etc., as well as traditional business applications. The authors use material from news articles, magazines, professional journals, and actual consulting problems to illustrate real business problems and how to solve them by using the tools of regression analysis.
From the Back Cover
This reader-friendly book focuses on building linear statistical models and developing skills for implementing regression analysis in real-life situations. It includes applications for a range of fields including engineering, sociology, and psychology, as well as traditional business applications. The authors use the latest material available from news articles, magazines, professional journals, the Internet, and actual consulting problems to illustrate real business situations and how to solve them using the tools of regression analysis. In addition, this book emphasizes model building and multiple regression models and pays special attention to model validation and spline regression. For professionals in any number of fields, including engineering, sociology, and psychology, who would benefit from learning how to use regression analysis to solve problems.
Excerpt. © Reprinted by permission. All rights reserved.
OVERVIEW
This text is designed for two types of statistics courses. The early chapters, combined with a selection of the case study chapters, are designed for use in the second half of a two-semester (or two-quarter) introductory statistics sequence for undergraduates with statistics or non-statistics majors. Or, the text can be used for a course in applied regression analysis for masters or Ph.D. students in other fields.
At first glance, these two uses for the text may seem inconsistent. How could a text be appropriate for both undergraduate and graduate students? The answer lies in the content. In contrast to a course in statistical theory, the level of mathematical knowledge required for an applied regression analysis course is minimal. Consequently, the difficulty encountered in learning the mechanics is much the same for both undergraduate and graduate students. The challenge is in the application-diagnosing practical problems, deciding on the appropriate linear model for a given situation, and knowing which inferential technique will answer the researcher's practical question. This takes experience, and it explains why a student with a non-statistics major can take an undergraduate course in applied regression analysis and still benefit from covering the same ground in a graduate course.
Introductory Statistics CourseIt is difficult to identify the amount of material that should be included in the second semester of a two-semester sequence in introductory statistics. Optionally, a few lectures should be devoted to Chapter 1 (A Review of Basic Concepts) to make certain that all students possess a common background knowledge of the basic concepts covered in a first-semester (first-quarter) course. Chapter 2 (Introduction to Regression Analysis), Chapter 3 (Simple Linear Regression), Chapter 4 (Multiple Regression Models), Chapter 5 (Model Building), Chapter 6 (Variable Screening Methods), Chapter 7 (Some Regression Pitfalls), and Chapter 8 (Residual Analysis) provide the core for an applied regression analysis course. These chapters could be supplemented by the addition of Chapter 10 (Introduction to Time Series Modeling and Forecasting), Chapter 11 (Principles of Experimental Design), or Chapter 12 (The Analysis of Variance for Designed Experiments).
Applied Regression for GraduatesIn our opinion, the quality of an applied graduate course is not measured by the number of topics covered or the amount of material memorized by the students. The measure is how well they can apply the techniques covered in the course to the solution of real problems encountered in their field of study. Consequently, we advocate moving on to new topics only after the students have demonstrate ability (through testing) to apply the techniques under discussion. In-class consulting sessions, where a case study is presented and the students have the opportunity to diagnose the problem and recommend an appropriate method of analysis, are very helpful in teaching applied regression analysis. This approach is particularly useful in helping students master the difficult topic of model selection and model building (Chapters 4-8) and relating questions about the model to real-world questions. The case study chapters (Chapters 13-17) illustrate the type of material that might be useful for this purpose.
A course in applied regression analysis for graduate students would start in the same manner as the undergraduate course, but would move more rapidly over the review material and would more than likely be supplemented by Appendix A (The Mechanics of a Multiple Regression Analysis), one of the statistical software Windows tutorials in Appendices D, E, or F (SAS, SPSS, or MINITAB), Chapter 9 (Special Topics in Regression), and other chapters selected by the instructor. in the undergraduate course, we recommend the use of case studies and in-class consulting sessions to help students develop an ability to formulate appropriate statistical models and to interpret the results of their analyses.
FEATURESAlthough the scope and coverage remain the same, the sixth edition contains several substantial changes, additions, and enhancements:
Numerous less obvious changes in details have been made throughout the text in response to suggestions by current users of the earlier editions.
SUPPLEMENTSThe text is also accompanied by the following supplementary material:
Most helpful customer reviews
11 of 12 people found the following review helpful.
Well written and well presented materials
By L. Pedregosa
This book is the most well-written textbook in Regression Analysis that i've ever read. This book can be used with any stat software in the market today. The exercise in the text can be done with SAS, SPSS, Minitab, etc., to name a few. The book clearly explains the formulas and summarizes them in boxes which make it easier to look back. The level of presentation of the materials is written with a minimum background of Algebra. Knowledge of basic statistics is important of course to be able to understand some of the concepts pertaining to statistical test and confidence intervals. In the appendix, derivation of formulas, linear algebra background, and sample applications in several studies are well presented. I would surely recommend this book as textbook in both undergarduate statistics class, as well as graduate classes in applied statistics.
5 of 5 people found the following review helpful.
Very good explanations and awesome Case Studies
By Jaewoo Kim
I would give this book 4.5 stars.
If you are looking to improve your understanding and application of regression, then you should look no further.
The book successfully explains regression from the very basic statistics to complex non-linear regression models.
What sets this book apart, in my opinion are the 7 Case Studies. They are excellent in providing the type of questions regression can answer and the details in the answers are the best explanations of regression I have ever read.
The book comes with a CD that has all the data in the Cases and examples & problems.
All the data comes in SPSS, MINITAB, Text, SAS, RDATA, and CSV formats. The book's statistical outputs, however, are mostly written in MiniTab. So I doubly recommend this book who are familiar or wants to be familiar with Minitab.
I do not recommend this as the first book on statistics. But I highly recommend this book to anyone who wants to learn regression, which should be the vast majority of the science, engineering, and PhD students.
Pros:
1)Lucid explanations of basic to complex regression concepts.
2)Awesome Case Studies (7 of them).
3)Fairly comprehensive
Cons:
1)Some of the equations were non-standard. For example the author uses SSxx or SSxy. I interpreted those as Var(X) or Var(X+Y). It turns out, they were not.
2)The book hardly covers the confidence interval of the error term and how to obtain the probability of Y|X.
6 of 6 people found the following review helpful.
Old but good
By Manuel David Alvarez
The examples are old but the content is well organized and overall easy to understand. If you want to learn by yourself, this is the book for you
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