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Multiple Regression Analysis Bernhard Kittel Center for Social Science Methodology University of Oldenburg
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The Art of Summarizing Relationships
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The Straight Line 1998 G. Meixner
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The Straight Line
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The Art of Summarizing Relationships
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Regression Analysis: Issues E(b) = → Case selection Var(b) → Number of cases Y = + X + (s.e.) Measurement Error Model Specification Ontological Assumptions
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The Art of Summarizing Relationships Assumptions Diagnostics Residual structures Modeling Issues Categorical variables Time series
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Day 1 & 2: The Model and its Assumptions Linearity Identifiability Independent variables exogenous Identically, independently, and normally distributed errors
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Day 3 & 4: Diagnostics Do the assumptions hold? –Multicollinearity –Residual analysis Outlying & influential data –Heteroskedasticity
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Day 5 & 6: Modeling Issues Beyond linear models? –Functional forms Squares, roots, inverses, logarithms –Categorical factors Dummy variables –Conditional effects Interactive models
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Day 7: Binary response variables How should we deal with dichotomous dependent variables? –Probability models: Logit –Maximum likelihood estimation –Interpretation
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Day 8 & 9 Longitudinal data How should we deal with repeated observations? –Autocorrelation –Time series analysis –Panel data analysis
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Day 10: Potentials & Limits of Multiple Regression Equilibrium analysis Statistical sophistication vs. measurement precision Temporality in variables and effects Levels of aggregation
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The Art of Summarizing Relationships
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