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@mackelab

mackelab

Machine Learning in Science at University of Tübingen, Germany

Machine Learning in Science

Our goal is to accelerate scientific discovery using machine learning and artificial intelligence: We develop computational methods that help scientists interpret empirical data and use them to gain scientific insights.

We closely collaborate with experimental researchers from various disciplines. We are particularly interested in applications in the neurosciences: We build data-driven mechanistic models of neuronal functions in order to understand how neuronal networks in the brain process sensory information and control intelligent behaviour.

We are part of the Excellence Cluster Machine Learning Tübingen and the Tübingen AI Center. You can find out more about us on our lab website.

In addition to the repositories in this organization, (former) lab members have also developed the following toolboxes:

  • sbi, a toolbox for simulation-based inference,
  • DECODE, a deep learning tool for single molecule localization microscopy,
  • sbibm, a benchmark for simulation-based inference,
  • flyvis, a connectome constrained deep mechanistic network (DMN) model,
  • Jaxley, a differentiable simulator for biophysical neuron models.

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  1. mnle-for-ddms mnle-for-ddms Public

    Research code for Mixed Neural Likelihood Estimation (MNLE, Boelts et al. 2022)

    Jupyter Notebook 17 6

  2. phase-limit-cycle-RNNs phase-limit-cycle-RNNs Public

    Code for "Trained recurrent neural networks develop phase-locked limit cycles in a working memory task" - Matthijs Pals (@matthijspals) , Jakob Macke and Omri Barak.

    Python 5 3

  3. neural_timeseries_diffusion neural_timeseries_diffusion Public

    This repository contains research code for the paper "Generating realistic neurophysiological time series with denoising diffusion probabilistic models". @jsvetter

    Python 68 6

  4. sbi-ice sbi-ice Public

    Simulation-Based Inference of Surface Accumulation and Basal Melt Rates of an Antarctic Ice Shelf from Isochronal Layers

    Python 1

  5. STG_energy STG_energy Public

    Repo for STG energy paper. Michael (@michaeldeistler) and Pedro (@ppjgoncalves).

    Jupyter Notebook 1

  6. labproject labproject Public

    Labproject about comparing distributions metrics by @mackelab

    Python 3 1

Repositories

Showing 10 of 83 repositories
  • neuralgbi_diffusion Public Forked from mackelab/neuralgbi

    Richard @rdgao & Michael @michaeldeistler: using neural network-based regression and density estimation for Generalized Bayesian Inference

    mackelab/neuralgbi_diffusion’s past year of commit activity
    Jupyter Notebook 1 MIT 1 0 0 Updated Dec 25, 2024
  • sourcerer Public

    Code for "Sourcerer: Sample-based Maximum Entropy Source Distribution Estimation"

    mackelab/sourcerer’s past year of commit activity
    Python 1 MIT 3 0 0 Updated Dec 22, 2024
  • neonatal_apnea_prediction Public

    Neonatal apnea and hypopnea prediction in infants with Robin sequence with neural additive models for time series. @jsvetter

    mackelab/neonatal_apnea_prediction’s past year of commit activity
    Python 1 MIT 0 0 0 Updated Dec 22, 2024
  • data_literacy_notebooks Public

    Jupyter notebooks for the Data Literacy Lecture 2024/2025

    mackelab/data_literacy_notebooks’s past year of commit activity
    Jupyter Notebook 1 MIT 0 0 0 Updated Dec 19, 2024
  • LDNS Public
    mackelab/LDNS’s past year of commit activity
    Jupyter Notebook 4 MIT 1 0 0 Updated Dec 11, 2024
  • sourcerer-sequential Public Forked from mackelab/sourcerer

    A sequential variant of the "Sourcerer: Sample-based Maximum Entropy Source Distribution Estimation" algorithm @swag2198

    mackelab/sourcerer-sequential’s past year of commit activity
    Jupyter Notebook 1 MIT 3 0 0 Updated Nov 27, 2024
  • sequence_memory_NN Public

    Main Figure code and data accompanying paper

    mackelab/sequence_memory_NN’s past year of commit activity
    MATLAB 0 0 0 0 Updated Nov 26, 2024
  • jaxley_experiments Public

    Repository to reproduce results of `Differentiable simulation enables large-scale training of biophysical models of neural dynamics`.

    mackelab/jaxley_experiments’s past year of commit activity
    Jupyter Notebook 1 MIT 1 1 0 Updated Nov 25, 2024
  • automind Public

    Automated Model Inference from Neural Dynamics

    mackelab/automind’s past year of commit activity
    Jupyter Notebook 5 Apache-2.0 1 0 0 Updated Nov 22, 2024
  • smc_rnns Public

    Code accompanying Inferring stochastic low-rank RNNs from neural data. @Matthijspals

    mackelab/smc_rnns’s past year of commit activity
    Jupyter Notebook 13 Apache-2.0 2 0 0 Updated Nov 8, 2024

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