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Advanced data analysis in public policy evaluation

[4 half days] - [English]

Would you like to be able to assess the causal effect of a public policy on a variable of interest?


Treatment-effect estimators quantify the causal effect of a treatment/policy on an outcome, based on observational or quasi-experimental data. For example, a treatment could be a new drug and the outcome blood pressure or it could be a job training program with employment or wages as outcome, etc.
Causal inference requires the estimation of the outcomes for each treatment level. But one only observes the outcome of each subject (individual, firm, region…) conditional on the received treatment. Experiments may help but can be expensive and sometimes unethical. Fortunately, many things can be done with observational data. But one needs some statistical machinery.


Training aims
Equip the participants with the most commonly used methods available in Stata to estimate treatment effects from observational data.

Prerequisites

By registering for this training, you commit to a level of knowledge equivalent to a course of intermediate econometrics or biostatistics and to the following training(s):

Content

Rate
This training course is recognized by the IABE, enabling participants to earn CPD points.
(Note that this is true for all SMCS courses.)
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Methods and method families discussed


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