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Interpreting and Visualizing Regression Models Using Stata

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出版日:2022/07/28 作者:A. Colin Cameron  出版社:STATA PR  裝訂:平裝
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出版日:2022/07/28 作者:A. Colin Cameron  出版社:STATA PR  裝訂:平裝
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出版日:2020/11/30 作者:Paul Hallwood  出版社:Palgrave Macmillan Ltd  裝訂:精裝
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出版日:2020/10/17 作者:Jim Frost  出版社:ANR PUB  裝訂:平裝
定價:1499 元
無庫存
出版日:2020/09/24 作者:Tamhane  出版社:John Wiley & Sons Inc  裝訂:精裝
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出版日:2015/12/02 作者:Xing Liu  出版社:SAGE Publications UK  裝訂:平裝
Categorical data are abundant in applied research (e.g. gender, ethnicity, socioeconomic status, educational attainment). Students and researchers are increasingly interested in performing statistical
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出版日:2014/09/10 作者:J. Scott Long; Jeremy Freese  出版社:Taylor & Francis  裝訂:平裝
Regression Models for Categorical Dependent Variables Using Stata, Third Edition shows how to use Stata to fit and interpret regression models for categorical data. The third edition is a complete rew
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出版日:2012/04/19 作者:Michael N. Mitchell  出版社:Taylor & Francis  裝訂:平裝
Michael Mitchell's Interpreting and Visualizing Regression Models Using Stata is a clear treatment of how to carefully present results from model-fitting in a wide variety of settings. It is a boon to
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Data Analysis Using Stata
90 折
出版日:2008/12/01 作者:Ulrich Kohler; Frauke Kreuter  出版社:Statacorp Lp  裝訂:平裝
Data Analysis Using Stata provides a comprehensive introduction to Stata with an emphasis on data management, linear regression, logistic modeling, and using programs to automate repetitive tasks. Thr
優惠價: 9 2752
無庫存
出版日:2008/01/30 作者:Sophia Rabe-Hesketh; Anders Skrondal  出版社:Statacorp Lp  裝訂:平裝
Multilevel and Longitudinal Modeling Using Stata, Second Edition discusses regression modeling of clustered or hierarchical data, such as data on students nested in schools, patients in hospitals, or
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出版日:2006/12/25 作者:Andrew Gelman  出版社:Cambridge Univ Pr  裝訂:精裝
Data Analysis Using Regression and Multilevel/Hierarchical Models, first published in 2007, is a comprehensive manual for the applied researcher who wants to perform data analysis using linear and nonlinear regression and multilevel models. The book introduces a wide variety of models, whilst at the same time instructing the reader in how to fit these models using available software packages. The book illustrates the concepts by working through scores of real data examples that have arisen from the authors' own applied research, with programming codes provided for each one. Topics covered include causal inference, including regression, poststratification, matching, regression discontinuity, and instrumental variables, as well as multilevel logistic regression and missing-data imputation. Practical tips regarding building, fitting, and understanding are provided throughout.
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Data Analysis Using Regression And Multilevel/Hierarchical Models
90 折
出版日:2006/12/18 作者:Andrew Gelman  出版社:Cambridge Univ Pr  裝訂:平裝
Data Analysis Using Regression and Multilevel/Hierarchical Models, first published in 2007, is a comprehensive manual for the applied researcher who wants to perform data analysis using linear and nonlinear regression and multilevel models. The book introduces a wide variety of models, whilst at the same time instructing the reader in how to fit these models using available software packages. The book illustrates the concepts by working through scores of real data examples that have arisen from the authors' own applied research, with programming codes provided for each one. Topics covered include causal inference, including regression, poststratification, matching, regression discontinuity, and instrumental variables, as well as multilevel logistic regression and missing-data imputation. Practical tips regarding building, fitting, and understanding are provided throughout.
優惠價: 9 2807
無庫存
出版日:2005/11/21 作者:J. Scott Long; Jeremy Freese  出版社:Statacorp Lp  裝訂:平裝
Although regression models for categorical dependent variables are common, few texts explain how to interpret such models. Regression Models for Categorical Dependent Variables Using Stata, Second Edi
若需訂購本書,請電洽客服 02-25006600[分機130、131]。
Interpreting and Using Regression
滿額折
出版日:1982/10/01 作者:Christopher H. Achen  出版社:SAGE Publications UK  裝訂:平裝
Interpreting and Using Regression sets out the actual procedures researchers employ, places them in the framework of statistical theory, and shows how good research takes account both of st
定價:2436 元
無庫存
出版日:2016/04/11 作者:Tim Flohr Sorensen; Mikkel Bille  出版社:Productivity Press  裝訂:精裝
This book helps public health practitioners and students gain expertise in applications of regression modeling in order to solve problems when data are collected in epidemiological studies. It covers
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出版日:2018/10/16 作者:Kaufman  出版社:SAGE Publications UK  裝訂:精裝
Offering a clear set of workable examples with data and explanations, Interaction Effects in Linear and Generalized Linear Models is a comprehensive and accessible text that provides a unified approac
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A Practitioner's Guide to Stochastic Frontier Analysis Using Stata
滿額折
出版日:2015/02/26 作者:Subal C. Kumbhakar  出版社:Cambridge Univ Pr  裝訂:平裝
A Practitioner's Guide to Stochastic Frontier Analysis Using Stata provides practitioners in academia and industry with a step-by-step guide on how to conduct efficiency analysis using the stochastic frontier approach. The authors explain in detail how to estimate production, cost, and profit efficiency and introduce the basic theory of each model in an accessible way, using empirical examples that demonstrate the interpretation and application of models. This book also provides computer code, allowing users to apply the models in their own work, and incorporates the most recent stochastic frontier models developed in academic literature. Such recent developments include models of heteroscedasticity and exogenous determinants of inefficiency, scaling models, panel models with time-varying inefficiency, growth models, and panel models that separate firm effects and persistent and transient inefficiency. Immensely helpful to applied researchers, this book bridges the chasm between theory
優惠價: 9 2398
無庫存
出版日:2014/12/31 作者:Subal C. Kumbhakar  出版社:Cambridge Univ Pr  裝訂:精裝
A Practitioner's Guide to Stochastic Frontier Analysis Using Stata provides practitioners in academia and industry with a step-by-step guide on how to conduct efficiency analysis using the stochastic frontier approach. The authors explain in detail how to estimate production, cost, and profit efficiency and introduce the basic theory of each model in an accessible way, using empirical examples that demonstrate the interpretation and application of models. This book also provides computer code, allowing users to apply the models in their own work, and incorporates the most recent stochastic frontier models developed in academic literature. Such recent developments include models of heteroscedasticity and exogenous determinants of inefficiency, scaling models, panel models with time-varying inefficiency, growth models, and panel models that separate firm effects and persistent and transient inefficiency. Immensely helpful to applied researchers, this book bridges the chasm between theory
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Fitting Models to Biological Data Using Linear and Nonlinear Regression ─ A Practical Guide to Curve Fitting
90 折
出版日:2004/05/27 作者:Harvey Motulsky; Arthur Christopoulos  出版社:Oxford Univ Press USA  裝訂:平裝
Introductory statistics texts do not consider non-linear regression, and textbooks that do are advanced treatments for mathematicians. So pharmacological researchers Motulsky (U. of California-San Die
優惠價: 9 3078
無庫存
Using Shiny to Teach Econometric Models
90 折
出版日:2020/12/31 作者:Shawna K. Metzger  出版社:Cambridge Univ Pr  裝訂:平裝
This Element discusses how shiny, an R package, can help instructors teach quantitative methods more effectively by way of interactive web apps. The interactivity increases instructors' effectiveness by making students more active participants in the learning process, allowing them to engage with otherwise complex material in an accessible, dynamic way. The Element offers four detailed apps that cover two fundamental linear regression topics: estimation methods (least squares, maximum likelihood) and the classic linear regression assumptions. It includes a summary of what the apps can be used to demonstrate, detailed descriptions of the apps' full capabilities, vignettes from actual class use, and example activities. Two other apps pertain to a more advanced topic (LASSO), with similar supporting material. For instructors interested in modifying the apps, the Element also documents the main apps' general code structure, highlights some of the more likely modifications, and goes through
優惠價: 9 972
無庫存
出版日:2020/08/31 作者:Andrew Gelman  出版社:Cambridge Univ Pr  裝訂:精裝
Most textbooks on regression focus on theory and the simplest of examples. Real statistical problems, however, are complex and subtle. This is not a book about the theory of regression. It is about using regression to solve real problems of comparison, estimation, prediction, and causal inference. Unlike other books, it focuses on practical issues such as sample size and missing data and a wide range of goals and techniques. It jumps right in to methods and computer code you can use immediately. Real examples, real stories from the authors' experience demonstrate what regression can do and its limitations, with practical advice for understanding assumptions and implementing methods for experiments and observational studies. They make a smooth transition to logistic regression and GLM. The emphasis is on computation in R and Stan rather than derivations, with code available online. Graphics and presentation aid understanding of the models and model fitting.
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Regression and Other Stories
滿額折
出版日:2020/08/31 作者:Andrew Gelman  出版社:Cambridge Univ Pr  裝訂:平裝
Most textbooks on regression focus on theory and the simplest of examples. Real statistical problems, however, are complex and subtle. This is not a book about the theory of regression. It is about using regression to solve real problems of comparison, estimation, prediction, and causal inference. Unlike other books, it focuses on practical issues such as sample size and missing data and a wide range of goals and techniques. It jumps right in to methods and computer code you can use immediately. Real examples, real stories from the authors' experience demonstrate what regression can do and its limitations, with practical advice for understanding assumptions and implementing methods for experiments and observational studies. They make a smooth transition to logistic regression and GLM. The emphasis is on computation in R and Stan rather than derivations, with code available online. Graphics and presentation aid understanding of the models and model fitting.
優惠價: 9 2047
無庫存
出版日:2013/11/25 作者:Thomas Cleff  出版社:Springer-Verlag New York Inc  裝訂:平裝
In a world in which we are constantly surrounded by data, figures, and statistics, it is imperative to understand and to be able to use quantitative methods. Statistical models and methods are among t
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出版日:2011/08/04 作者:Patrick Royston and Paul C. Lambert  出版社:Statacorp Lp  裝訂:平裝
Through real-world case studies, this book shows how to use Stata to estimate a class of flexible parametric survival models. It discusses the modeling of time-dependent and continuous covariates and
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出版日:2019/01/29 作者:Daniels  出版社:SAGE Publications UK  裝訂:平裝
Providing information from data preparation and mean, median and mode, to regression, Lisa Daniels and Nicholas Minot use concise descriptions to help students understand the concepts behind statistic
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出版日:2017/06/30 作者:Joseph M. Hilbe  出版社:Cambridge Univ Pr  裝訂:精裝
This comprehensive guide to Bayesian methods in astronomy enables hands-on work by supplying complete R, JAGS, Python, and Stan code, to use directly or to adapt. It begins by examining the normal model from both frequentist and Bayesian perspectives and then progresses to a full range of Bayesian generalized linear and mixed or hierarchical models, as well as additional types of models such as ABC and INLA. The book provides code that is largely unavailable elsewhere and includes details on interpreting and evaluating Bayesian models. Initial discussions offer models in synthetic form so that readers can easily adapt them to their own data; later the models are applied to real astronomical data. The consistent focus is on hands-on modeling, analysis of data, and interpretations that address scientific questions. A must-have for astronomers, its concrete approach will also be attractive to researchers in the sciences more generally.
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出版日:2015/09/30 作者:Michael N. Mitchell  出版社:Taylor & Francis  裝訂:平裝
Stata for the Behavioral Sciences, by Michael Mitchell, is the ideal reference for researchers using Stata to fit ANOVA models and other models commonly applied to behavioral science
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出版日:2011/04/25 作者:Joseph M. Hilbe  出版社:Cambridge Univ Pr  裝訂:精裝
This second edition of Hilbe's Negative Binomial Regression is a substantial enhancement to the popular first edition. The only text devoted entirely to the negative binomial model and its many variations, nearly every model discussed in the literature is addressed. The theoretical and distributional background of each model is discussed, together with examples of their construction, application, interpretation and evaluation. Complete Stata and R codes are provided throughout the text, with additional code (plus SAS), derivations and data provided on the book's website. Written for the practising researcher, the text begins with an examination of risk and rate ratios, and of the estimating algorithms used to model count data. The book then gives an in-depth analysis of Poisson regression and an evaluation of the meaning and nature of overdispersion, followed by a comprehensive analysis of the negative binomial distribution and of its parameterizations into various models for evaluatin
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出版日:2020/12/18 作者:Michael N. Mitchell  出版社:STATA PR  裝訂:平裝
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出版日:2016/03/30 作者:T. M. V. Suryanarayana; P. B. Mistry  出版社:Springer Verlag  裝訂:平裝
This book highlights the estimation of crop yield in Central Gujarat, especially with regard to the development of Multiple Regression Models and Principal Component Regression (PCR) models using clim
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出版日:2015/02/23 作者:Rachel A. Gordon  出版社:Taylor & Francis  裝訂:平裝
"This book provides graduate students in the social sciences with the basic skills that they need in order to estimate, interpret, present, and publish basic regression models using contemporary stand
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出版日:2015/02/23 作者:Rachel A. Gordon  出版社:Taylor & Francis  裝訂:精裝
"This book provides graduate students in the social sciences with the basic skills that they need in order to estimate, interpret, present, and publish basic regression models using contemporary stand
若需訂購本書,請電洽客服 02-25006600[分機130、131]。
出版日:2009/09/30 作者:Simon J. Sheather  出版社:Springer Verlag  裝訂:精裝
This book focuses on tools and techniques for building valid regression models using real-world data. A key theme throughout the book is that it only makes sense to base inferences or conclusions on v
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A Modern Approach to Regression With R.
滿額折
出版日:2009/09/30 作者:Simon Sheather  出版社:Springer Verlag  裝訂:平裝
This book focuses on tools and techniques for building regression models using real-world data and assessing their validity. A key theme throughout the book is that it makes sense to base inferences o
定價:3999 元
無庫存
出版日:2010/06/07 作者:John Maindonald  出版社:Cambridge Univ Pr  裝訂:精裝
Discover what you can do with R! Introducing the R system, covering standard regression methods, then tackling more advanced topics, this book guides users through the practical, powerful tools that the R system provides. The emphasis is on hands-on analysis, graphical display, and interpretation of data. The many worked examples, from real-world research, are accompanied by commentary on what is done and why. The companion website has code and datasets, allowing readers to reproduce all analyses, along with solutions to selected exercises and updates. Assuming basic statistical knowledge and some experience with data analysis (but not R), the book is ideal for research scientists, final-year undergraduate or graduate-level students of applied statistics, and practising statisticians. It is both for learning and for reference. This third edition expands upon topics such as Bayesian inference for regression, errors in variables, generalized linear mixed models, and random forests.
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出版日:2010/05/10 作者:Daniel Zelterman  出版社:Cambridge Univ Pr  裝訂:精裝
This textbook for a second course in basic statistics for undergraduates or first-year graduate students introduces linear regression models and describes other linear models including Poisson regression, logistic regression, proportional hazards regression, and nonparametric regression. Numerous examples drawn from the news and current events with an emphasis on health issues illustrate these concepts. Assuming only a pre-calculus background, the author keeps equations to a minimum and demonstrates all computations using SAS. Most of the programs and output are displayed in a self-contained way, with an emphasis on the interpretation of the output in terms of how it relates to the motivating example. Plenty of exercises conclude every chapter. All of the datasets and SAS programs are available from the book's website, along with other ancillary material.
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Generalized Linear Models (GLMs) and Generalized Additive Models (GAMs) are very popular statistical tools, but, they have been shown to break down for large complex datasets, which are increasingly p
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出版日:2005/11/18 作者:Geoff Der; Brian S. Everitt  出版社:CRC Press UK  裝訂:精裝
Statistical analysis is ubiquitous in modern medical research. Logistic regression, generalized linear models, random effects models, and Cox's regression all have become commonplace in the medical li
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出版日:2004/05/27 作者:Harvey Motulsky; Arthur Christopoulos  出版社:Oxford Univ Pr on Demand  裝訂:精裝
Most biologists use nonlinear regression more than any other statistical technique, but there are very few places to learn about curve-fitting. This book, by the author of the very successfulIntuitive
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出版日:2021/04/30 作者:Gábor Békés  出版社:Cambridge Univ Pr  裝訂:精裝
This textbook provides future data analysts with the tools, methods, and skills needed to answer data-focused, real-life questions; to carry out data analysis; and to visualize and interpret results to support better decisions in business, economics, and public policy. Data wrangling and exploration, regression analysis, machine learning, and causal analysis are comprehensively covered, as well as when, why, and how the methods work, and how they relate to each other. As the most effective way to communicate data analysis, running case studies play a central role in this textbook. Each case starts with an industry-relevant question and answers it by using real-world data and applying the tools and methods covered in the textbook. Learning is then consolidated by 360 practice questions and 120 data exercises. Extensive online resources, including raw and cleaned data and codes for all analysis in Stata, R, and Python, can be found at www.gabors-data-analysis.com.
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