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1.1 Advantages of Longitudinal Studies. |
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1.2 Challenges of Longitudinal Data Analysis. |
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1.3 Some General Notation. |
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1.5 Analysis Considerations. |
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1.7 The Simplest Longitudinal Analysis. |
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2. ANOVA Approaches to Longitudinal Data. |
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2.1Single-Sample Repeated Measures ANOVA. |
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2.2 Multiple-Sample Repeated Measures ANOVA. |
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3. MANOVA Approaches to Longitudinal Data. |
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3.1 Data Layout for ANOVA versus MANOVA. |
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3.2 MANOVA for Repeated Measurements. |
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3.3 MANOVA of Repeated Measures-s Sample Case. |
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4. Mixed-Effects Regression Models for Continuous Outcomes. |
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4.2 A Simple Linear Regression Model. |
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4.3 Random Intercept MRM. |
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4.4 Random Intercept and Trend MRM. |
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5. Mixed-Effects Polynomial Regression Models. |
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5.2 Curvilinear Trend Model. |
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5.3 Orthogonal Polynomials. |
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6. Covariance Pattern Models. |
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6.2 Covariance Pattern Models. |
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7. Mixed Regression Models with Autocorrelated Errors. |
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8. Generalized Estimating Equations (GEE) Models. |
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8.2 Generalized Linear Models (GLMs). |
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8.3 Generalized Estimating Equations (GEE) Models. |
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9. Mixed-Effects Regression Models for Binary Outcomes. |
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9.2 Logistic Regression Model. |
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9.3 Probit Regression Models. |
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9.5 Mixed-Effects Logistic Regression Model. |
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10. Mixed-Effects Regression Models for Ordinal Outcomes. |
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10.2 Mixed-Effects Proportional Odds Model. |
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10.3 Psychiatric Example. |
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10.4 Health Services Research Example. |
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11. Mixed-Effects Regression Models for Nominal Data. |
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11.1 Mixed-Effects Multinomial Regression Model. |
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11.2 Health Services Research Example. |
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1 1.3 Competing Risk Survival Models. |
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12. Mixed-effects Regression Models for Counts. |
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12.1 Poisson Regression Model. |
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12.2 Modified Poisson Models. |
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12.4 Mixed-Effects Models for Counts. |
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13. Mixed-Effects Regression Models for Three-Level Data. |
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13.1 Three-Level Mixed-Effects Linear Regression Model. |
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13.2 Three-Level Mixed-Effects Nonlinear Regression Models. |
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14. Missing Data in Longitudinal Studies. |
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14.2 Missing Data Mechanisms. |
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14.3 Models and Missing Data Mechanisms. |
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14.5 Models for Nonignorable Missingness. |
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