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r / packages / r-dtrlearn2

We provide a comprehensive software to estimate general K-stage DTRs from SMARTs with Q-learning and a variety of outcome-weighted learning methods. Penalizations are allowed for variable selection and model regularization. With the outcome-weighted learning scheme, different loss functions - SVM hinge loss, SVM ramp loss, binomial deviance loss, and L2 loss - are adopted to solve the weighted classification problem at each stage; augmentation in the outcomes is allowed to improve efficiency. The estimated DTR can be easily applied to a new sample for individualized treatment recommendations or DTR evaluation.

Type Size Name Uploaded Downloads Labels
conda 136.5 kB | noarch/r-dtrlearn2-1.1-r43h142f84f_0.tar.bz2  11 months and 27 days ago 17 main
conda 135.8 kB | noarch/r-dtrlearn2-1.1-r42h142f84f_0.tar.bz2  2 years and 6 months ago 49 main
conda 135.8 kB | noarch/r-dtrlearn2-1.0-r36h6115d3f_0.tar.bz2  4 years and 10 months ago 117 main

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