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trappmartin/README.md

Hi there

I am an Academy of Finland postdoctoral research at Aalto University working on probabilistic machine learning. My research focuses on the intersection of flexible Bayesian modelling families (e.g., Gaussian processes, Bayesian neural networks, Polya trees, ...) and probabilistic circuits aka deep tractable models. I am particularly interested in modelling families that are flexible (nonparametric), but allow certain qunatities (e.g., marginal, posterior) to be computed tractably or ways to obtain tractable surrogates that are approximatly equal to the model of interest.

For details, see my website and my Google scholar profile.

In addition to my research, I am part of the open-source project Turing.jl and a keen supporter of dynamic and probabilistic programming.

Pinned

  1. TuringLang/Turing.jl TuringLang/Turing.jl Public

    Bayesian inference with probabilistic programming.

    Julia 2k 214

  2. SumProductNetworks.jl SumProductNetworks.jl Public

    Sum-product networks in Julia.

    Julia 38 4

  3. BayesianSumProductNetworks BayesianSumProductNetworks Public

    Implementation of Bayesian Sum-Product Networks

    Julia 12 6

  4. DeepStructuredMixtures DeepStructuredMixtures Public

    Code for Deep Structured Mixtures of Gaussian Processes (DSMGPs)

    Julia 11 5