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Welcome to KleinLab!

👋 This is the GitHub page of the research group Methods for Big Data at the Scientific Computing Center, Karlsruhe Institute of Technology (KIT).

📚 Here, you can find repositories of our research projects at the intersection of machine learning and traditional statistical methods, with a focus on Bayesian methods.

🖥️ For more information regarding our group, feel free to visit our website.

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  1. dagstat25-distreg dagstat25-distreg Public

    Material for the DagStat Tutorial "Distributional Regression – Models and Applications" by Nadja Klein and Lucas Kock

    R 3 2

  2. .github .github Public

  3. deepcure deepcure Public

    Forked from vhmedina/deepcure

    Jupyter Notebook

  4. BoostingDAGs BoostingDAGs Public

    Forked from mkrtl/BoostingDAGs

    This repository contains the code for using boosting for causal discovery. The procedures are described at: https://arxiv.org/abs/2401.06523

    Python

  5. multGAMLSS multGAMLSS Public

    Forked from kocklucx/multGAMLSS

    Code for the paper "Truly Multivariate Structured Additive Distributional Regression" by Lucas Kock and Nadja Klein

    Python

  6. DMLMM DMLMM Public

    Forked from kocklucx/DMLMM

    Code for the DMLMM as introduced in the paper "Deep mixture of linear mixed models for complex longitudinal data" by Lucas Kock, Nadja Klein and David J. Nott.

    Python

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