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@stat4reg

Stat4Reg Lab

Research lab: causal machine learning, missing data, large observational databases

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  1. DNNcausal DNNcausal Public

    An R-package to estimate average causal effects with AIPW using Deep Neural Networks, in particular Convolutional NN.

    R 7

  2. Causal_CNN Causal_CNN Public

    This repository includes supplementary material to the manuscript Ghasempour, Moosavi and de Luna (2023, Convolutional neural networks for valid and efficient causal inference).

    3

  3. SDRcausal SDRcausal Public

    SDRcausal is a R Package that provides semiparametric estimators of Average Causal Effects, using sufficient dimension reduction for nuisance model estimation.

    C 2 4

  4. COVID-19 COVID-19 Public

    Forked from CSSEGISandData/COVID-19

    Novel Coronavirus (COVID-19) Cases, provided by JHU CSSE

  5. hdim.ui hdim.ui Public

    hdim.ui - R package for sensitivity analysis in high-dimensional causal inference and missing outcome data contexts

    R

  6. ate-1-step-estimator ate-1-step-estimator Public

    Forked from fileds/ate-1-step-estimator

    R Shiny app for visualisation of the 1-step estimator for the Average Treatment Effect (ATE).

    R 1

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