Who Cited It

Probabilistic programming in Python using PyMC3

2016 · PeerJ Computer Science · 2,569 citations · 3 from inside this corpus

John Salvatier, Thomas V. Wiecki low, Christopher Fonnesbeck

Probabilistic programming allows for automatic Bayesian inference on user-defined probabilistic models. Recent advances in Markov chain Monte Carlo (MCMC) sampling allow inference on increasingly complex models. This class of MCMC, known as Hamiltonian Monte Carlo, requires gradient information which is often not readily available. PyMC3 is a new open source probabilistic programming framework written in Python that uses Theano to compute gradients via automatic differentiation as well as compile probabilistic programs on-the-fly to C for increased speed. Contrary to other probabilistic programming languages, PyMC3 allows model specification directly in Python code. The lack of a domain specific language allows for great flexibility and direct interaction with the model. This paper is a tutorial-style introduction to this software package.

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Topics

Gaussian Processes and Bayesian InferenceComputer Science
Bayesian Modeling and Causal InferenceComputer Science
Computational Physics and Python ApplicationsComputer Science

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complete

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  • supports3 author record(s) attached.
  • supports22 reference(s) recorded.
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  • supportsA title is present.

Provenance

Everything above was read from one stored OpenAlex payload, fetched 2026-09-04T03:58:49+00:00.

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