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DeepLearningCausal

Causal Inference with Super Learner and Deep Neural Networks

v0.0.107 · Oct 30, 2025 · GPL-3

Description

Functions for deep learning estimation of Conditional Average Treatment Effects (CATEs) from meta-learner models and Population Average Treatment Effects on the Treated (PATT) in settings with treatment noncompliance using reticulate, TensorFlow and Keras3. Functions in the package also implements the conformal prediction framework that enables computation and illustration of conformal prediction (CP) intervals for estimated individual treatment effects (ITEs) from meta-learner models. Additional functions in the package permit users to estimate the meta-learner CATEs and the PATT in settings with treatment noncompliance using weighted ensemble learning via the super learner approach and R neural networks.

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14 OK
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r-devel-linux-x86_64-debian-clang OK
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r-devel-linux-x86_64-fedora-gcc OK
r-devel-macos-arm64 OK
r-devel-windows-x86_64 OK
r-oldrel-macos-arm64 OK
r-oldrel-macos-x86_64 OK
r-oldrel-windows-x86_64 OK
r-patched-linux-x86_64 OK
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r-release-windows-x86_64 OK

Check History

OK 14 OK · 0 NOTE · 0 WARNING · 0 ERROR · 0 FAILURE Mar 10, 2026

Dependency Network

Dependencies Reverse dependencies ROCR caret neuralnet SuperLearner ggplot2 tidyr magrittr reticulate keras3 Hmisc DeepLearningCausal

Version History

new 0.0.107 Mar 10, 2026
updated 0.0.107 ← 0.0.106 diff Oct 29, 2025
updated 0.0.106 ← 0.0.104 diff Jun 10, 2025
updated 0.0.104 ← 0.0.103 diff Jul 29, 2024
updated 0.0.103 ← 0.0.102 diff Jun 30, 2024
new 0.0.102 Jun 17, 2024