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Course Schedule

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Full course syllabus is here.

Class Date Topics to Cover Pre-class reading Due
1 Tue Aug 24 Course Intro/Productivity/Computational Tools Julia reference slides
2 Thu Aug 26 In-class practice with Julia and GitHub
3 Tue Aug 30 What is structural modeling? Lewbel (2019 ) Sections 1, beginning of Section 5, and 5.1 Reading Quiz
4 Thu Sep 2 Structural modeling process Keane YouTube talk PS 1
5 Tue Sep 7 Random Utility Models & Logit Train, Ch. 1-2, 3.1-3.3, 3.7-3.8 Reading Quiz
6 Thu Sep 9 Coding Day - go over PS 2 PS 2
7 Tue Sep 14 GEV Train, 4.1-4.2 Reading Quiz
8 Thu Sep 16 Coding Day - go over PS 3 PS 3
9 Tue Sep 21 Mixed Logit, Finite mixture models, EM algorithm Train, 6.1-6.3, Ch. 14 Reading Quiz
10 Thu Sep 23 Coding Day - go over PS 4 PS 4
11 Tue Sep 28 Dynamic choice models Rust (1987) Reading Quiz
12 Thu Sep 30 Estimating dynamic models without solving Hotz & Miller (1993); Arcidiacono & Miller (2011) Reading Quiz
13 Tue Oct 5 Coding Day - go over PS 5 PS 5
14 Thu Oct 7 Coding Day - go over PS 6 PS 6
15 Tue Oct 12 Simulated Method of Moments Train, 10.1-10.2; Smith, p. 1 Reading Quiz
16 Thu Oct 14 Coding Day - go over PS 7 PS 7
17 Tue Oct 19 Model Fit, Counterfactuals, Model validation Fu, Grau and Rivera (2020), Lang and Palacios (2018) Reading Quiz
18 Thu Oct 21 Subjective Expectations, Stated Preference and Choice Experiments Train, 7.2-7.3; Koşar, Ransom and van der Klaauw (2021), section 3.3 Reading Quiz
19 Tue Oct 26 Measurement Error & Factor Models Heckman, Stixrud and Urzua (2006) Reading Quiz
20 Thu Oct 28 Coding Day - go over PS 8 PS 8
21 Tue Nov 2 Learning models Miller (1984) Take-home Midterm
22 Thu Nov 4 Constrained optimization and equilibrium models Start finding a paper for presentation/referee report
23 Tue Nov 9 Obtaining causal effects without an "identification strategy" Altonji, Elder & Taber (2005) Reading Quiz
24 Thu Nov 11 DAGs and do-Calculus Mixtape, pp. 67-80 Reading Quiz
25 Tue Nov 16 Potential Outcomes, ATE, LATE, and Control Functions; Heckman Selection basics Mixtape, pp. 85-93 Reading Quiz
26 Thu Nov 18 Marginal and Distributional Treatment Effects Work on Referee Report & Presentation
--- Tue Nov 23 No class
--- Thu Nov 25 No class (Thanksgiving)
27 Tue Nov 30 Intro to Machine Learning James et al., section 2.1 (pp. 15-29) Reading Quiz
28 Thu Dec 2 Machine Learning for Causal Modeling Work on Referee Report & Presentation
29 Tue Dec 7 Presentations or Time Series Intro (depending on time) Presentation
30 Thu Dec 9 Presentations Presentation, Referee Report
--- Mon Dec 13 Final Exam (Referee Report due) Research Proposal

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