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Public Policy Analytics Final
This project was completed as part of the Public Policy Analytics course at UPENN. Emil City is considering a more proactive approach for targeting homeowners who qualify for a home repair tax credit program. This analysis aimed to train the best classifier to predict which homeowners are most likely to accept the credit and use the results to inform a cost/benefit analysis. By leveraging historical campaign data, we developed models to predict homeowners' likelihood of accepting the subsidy and conducted a comprehensive cost-benefit analysis. The goal was to optimize resource allocation and increase participation in the credit program.
ILAA Tutorial
Tutorial for the use of ILAA
Cleansing2.v2
The new version of Cleansing2 report
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Mapa Material Particulado PM2.5 2018 -2023
Red Metropolitana de Monitoreo Atmosférico de Quito
Secretaria de Ambiente de Distrito Metropolitano de Quito