C. Radhakrishna Rao(C.R.拉奥),是国际知名学者,在数学和物理学界享有盛誉。本书凝聚了作者多年科研和教学成果,适用于科研工作者、高校教师和研究生。
【目录】
Preface to the First Edition Preface to the Second Edition Preface to the Third Edition Introduction 1.1 Linear Models and Regression Analysis 1.2 Plan of the Book
2 The Simple Linear Regression Model 2.1 The Linear Model 2.2 Least Squares Estimat.ion 2.3 Direct Regression Method 2.4 Properties of the Direct Regression Estimators 2.5 Centered Model 2.6 No Intercept Term Model 2.7 Maximum Likelihood Estimation 2.8 Testing of Hypotheses and Confidence Interval Estimation 2.9 Analysis of Variance 2.10 Goodness of Fit of Regression 2.11 Reverse Regression Method 2.12 Orthogonal Regression Method 2.13 Reduced Major Axis Regression Method 2.14 Least Absolute Deviation Regression Method 2.15 Estimation of Parameters when X Is Stochastic
3 The Multiple Linear Regression Model and Its Extension 3.1 The Linear Model 3.2 The Principle of Ordinary Least Squares (OLS) 3.3 Geometric Properties of OLS 3.4 Best Linear Unbiased Estimation 3.4.1 Basic Theorems 3.4.2 Linear Estimators 3.4.3 Mean Dispersion Error 3.5 Estimation (Prediction) of the Error Term ε and σ2 3.6 Classical Regression under Normal Errors 3.6.1 The Maximum-Likelihood (ML) Principle 3.6.2 Maximum Likelihood Estimation in Classical Normal Regression 3.7 Consistency of Estimators 3.8 Testing Linear Hypotheses 3.9 Analysis of Variance 3.10 Goodness of Fit 3.11 Checking the Adequacy of Regression Analysis 3.11.1 Univariate Regression 3.11.2 Multiple Regression 3.11.3 A Complex Example 3.11.4 Graphical Presentation 3.12 Linear Regression with Stochastic Regressors 3.12.1 Regression and Multiple Correlation Coefficient 3.12.2 Heterogenous Linear Estimation without Normality 3.12.3 Heterogeneous Linear Estimation under Normality 3.13 The Canonical Form 3.14 Identification and Quantification of Multicollinearity 3.14.1 Principal Components Regression 3.14.2 Ridge Estimation 3.14.3 Shrinkage Estimates 3.14.4 Partial Least Squares 3.15 Tests of Parameter Constancy 3.15.1 The Chow Forecast Test 3.15.2 The Hansen Test 3.15.3 Tests with Recursive Estimation 3.15.4 Test for Structural Change 3.16 Total Least Squares 3.17 Minimax Estimation 3.17.1 Inequality Restrictions …… 4 The Generalized Linear Regression Model 5 Exact and Stochastic Linear Restrictions 6 Prediction in the Generalized Regression Model 7 Sensitivity Analysis 8 Analysis of Incomplete Data Sets 9 Robust Regression 10 Models for Categorical Response Variables References Index
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