Statistical Analysis for Public and Nonprofit Managers
Autor Leanna Stiefelen Limba Engleză Hardback – 28 feb 1990
Following a chapter that introduces the concept of multivariate analysis, Stiefel explains simple and multiple regression models in detail. Later chapters discuss other techniques that are becoming widely used in not-for-profit organizations: logit and probit analysis, time-series models, and simultaneous equation models. Two types of examples are used to make the material immediately relevant to the not-for-profit manager: real-world examples culled from professional journals and reports in a variety of fields including health care, education, finance, budgeting, and administrative science; and examples of results obtained using statistical programs run on a personal computer. Thus the book enables the reader to understand and interpret both the statistics used in professional articles and statistical results as they appear on computer printouts. Four appendixes review basic statistical methods such as simple summation operators, the Pearson Correlation Coefficient, and hypothesis testing for the sample mean.
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Specificații
ISBN-13: 9780275933012
ISBN-10: 0275933016
Pagini: 223
Dimensiuni: 156 x 235 x 19 mm
Greutate: 0.43 kg
Ediția:New.
Editura: Bloomsbury Publishing
Colecția Praeger
Locul publicării:New York, United States
ISBN-10: 0275933016
Pagini: 223
Dimensiuni: 156 x 235 x 19 mm
Greutate: 0.43 kg
Ediția:New.
Editura: Bloomsbury Publishing
Colecția Praeger
Locul publicării:New York, United States
Cuprins
Preface
Introduction
The Bivariate or Simple Regression Model
The Multiple Regression Model, Part I--Estimators, Statistical Properties, and Significance Tests
The Multiple Regression Model, Part II--Importance of Variables, Model Building, and Forecasting
Dummy Variables and Nonlinear and Nonadditive Relationships
Basic Assumptions and Common Problems in Regression Models
Qualitative Dependent Variables
Some Advanced Topics: Pooled Time-Series and Cross-Section Analysis, Lagged Variables, Missing Data, Time-Series Analysis, and Multiequation Systems
An Overview
Appendices
Bibliographical Essay
Index
Introduction
The Bivariate or Simple Regression Model
The Multiple Regression Model, Part I--Estimators, Statistical Properties, and Significance Tests
The Multiple Regression Model, Part II--Importance of Variables, Model Building, and Forecasting
Dummy Variables and Nonlinear and Nonadditive Relationships
Basic Assumptions and Common Problems in Regression Models
Qualitative Dependent Variables
Some Advanced Topics: Pooled Time-Series and Cross-Section Analysis, Lagged Variables, Missing Data, Time-Series Analysis, and Multiequation Systems
An Overview
Appendices
Bibliographical Essay
Index