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Causal Inference with Survey Data

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Franz Buscha and Madecraft

2:08:34

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  • 01 - Causality unlocked A primer for data analysts.mp4
    00:40
  • 02 - What you can learn.mp4
    01:46
  • 03 - What you should know.mp4
    01:45
  • 01 - Why causal inference matters.mp4
    05:24
  • 02 - The gold standard Experimental data.mp4
    03:44
  • 03 - What is different about survey data.mp4
    05:36
  • 04 - Observables vs. unobservables causes.mp4
    06:58
  • 05 - What are treatment effects.mp4
    05:25
  • 06 - An applied example The LaLonde debate.mp4
    04:11
  • 01 - Setting up a randomized controlled trial.mp4
    06:07
  • 02 - Analyzing a randomized controlled trial.mp4
    05:32
  • 01 - Surveys with cross-sectional data.mp4
    03:44
  • 02 - Regression analysis.mp4
    07:12
  • 03 - Propensity score matching.mp4
    06:45
  • 04 - Regression discontinuity designs.mp4
    08:16
  • 05 - Instrumental variable models.mp4
    08:15
  • 01 - Surveys with longitudinal data.mp4
    04:40
  • 02 - Regression models with time effects.mp4
    06:36
  • 03 - Fixed effects regression models.mp4
    07:53
  • 04 - Difference-in-difference estimation.mp4
    07:03
  • 05 - Synthetic control methods.mp4
    06:21
  • 01 - How to evaluate causal robustness.mp4
    05:22
  • 02 - How to present causal statistics.mp4
    05:53
  • 01 - Next steps and additional resources.mp4
    03:26
  • Description


    Is y really equal to 0.5x? Is education really good for you? Is taxation policy really changing spending behavior? To answer such questions, you often need to infer causality from survey data. To do that, you need to understand the empirical tools available to data analysts.

    In this course, professor of economics Franz Buscha explains the fundamentals of causal inference; strategies for overcoming common pitfalls in survey data analysis; and concepts around experimental, quasi-experimental, and non-experimental estimators. Franz delves into the methodologies for drawing causal inference from survey data. He accomplishes this over three chapters focusing on: experimental and randomized control trials, cross-sectional survey data and how to draw out causal relationships, and longitudinal surveys and methods for causal inference. Plus, Franz presents a brief overview of the methods to evaluate the robustness of empirical findings and techniques to communicate them effectively.

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    Franz Buscha and Madecraft
    Franz Buscha and Madecraft
    Instructor's Courses
    Franz is a labour economist with more than 15 years of research experience. Research interests include education economics, labour economics and econometrics. Franz has published in leading journals such as the European Economic Review, Economics of Education Review, the Oxford Bulletin of Economics and Statistics, the British Journal of Political Science and the British Journal of Sociology and contributed to numerous policy reports for UK government departments (including DFE, HMRC, BIS, MOD, and HMT). His research has been covered by various media outlets such as the BBC News, BBC Radio 4, The Economist, The Guardian, The Times and the Huffington Post. Franz has held various academic roles and is currently the faculty director of research for the Westminster Business School. In this role he is responsible for the faculty's research strategy and oversees the research activities of 200 members of staff.
    LinkedIn Learning is an American online learning provider. It provides video courses taught by industry experts in software, creative, and business skills. It is a subsidiary of LinkedIn. All the courses on LinkedIn fall into four categories: Business, Creative, Technology and Certifications. It was founded in 1995 by Lynda Weinman as Lynda.com before being acquired by LinkedIn in 2015. Microsoft acquired LinkedIn in December 2016.
    • language english
    • Training sessions 24
    • duration 2:08:34
    • English subtitles has
    • Release Date 2024/06/20