Applied Regression Analysis

Applied Regression Analysis

Doing, Interpreting and Reporting

Thrane, Christer

Taylor & Francis Ltd

10/2019

192

Mole

Inglês

9781138335486

15 a 20 dias

370

Descrição não disponível.
Part 1: The Basics 1. What is regression analysis? 2. Linear regression with a single independent variable 3. Linear regression with several independent variables: Multiple regression Part 2: The Foundations 4. Samples and populations, statistical uncertainty and testing of statistical significance 5. The assumptions of regression analysis Part 3: The Extensions 6. Beyond linear regression: Non-additivity, non-linearity and mediation 7. A categorical dependent variable: Logistic (logit) regression and related methods 8. An ordered (ordinal) dependent variable: Logistic (logit) regression 9. The quest for a causal effect: Instrumental variable (IV) regression Part 4: Regression Purposes, Academic Regression Projects and the Way Ahead 10. Regression purposes in various academic settings and how to perform them 11. The way ahead: Related techniques
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Count Data Regression Models;research methods;Multinomial Logistic Regression;multiple regression;Smoking Status Variable;variables;GPA;R;Quantile Regression;Stata;Regression Models;statistics;Data Set;econometrics;House Sale Prices;linear regression;Relevant Control Variables;regression model;Proportional Odds Assumption;non-linearity;Exercise Hours;Applied Regression Analysis;Iv Regression;statistics programs;Dummy Variables;significance testing;Iv Probit Regression;Iv Probit Estimate;Grade Point Average;Multi-level Regression Models;NB Coefficient;Iv Probit;Panel Data Regression;Ordinal Regression Model;LPM;Sample Regression Coefficient;NB;Iv Coefficient