We now want to understand how to measure the impact of the policy. If the policy is effective in reducing driving, then pollution should go down. In the model, we captured the effect of the choice of transportation on pollution with the function C(x₁, x₂). In practice, the actual reduction in pollution can only be known after the policy is imple- mented. 5 1. Explain carefully why running the regression above might suffer from endogeneity concerns: are their any unobservable variables that might confound the results? Should we be worried about reverse causality? What empirical methods could we use to address these concerns?

MATLAB: An Introduction with Applications
6th Edition
ISBN:9781119256830
Author:Amos Gilat
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Chapter1: Starting With Matlab
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We now want to understand how to measure the impact of the policy. If the policy is
effective in reducing driving, then pollution should go down. In the model, we captured
the effect of the choice of transportation on pollution with the function C(x₁, x₂). In
practice, the actual reduction in pollution can only be known after the policy is imple-
mented.
5
1. Explain carefully why running the regression above might suffer from endogeneity
concerns: are their any unobservable variables that might confound the results?
Should we be worried about reverse causality? What empirical methods could we
use to address these concerns?
Transcribed Image Text:We now want to understand how to measure the impact of the policy. If the policy is effective in reducing driving, then pollution should go down. In the model, we captured the effect of the choice of transportation on pollution with the function C(x₁, x₂). In practice, the actual reduction in pollution can only be known after the policy is imple- mented. 5 1. Explain carefully why running the regression above might suffer from endogeneity concerns: are their any unobservable variables that might confound the results? Should we be worried about reverse causality? What empirical methods could we use to address these concerns?
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