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The code enables to perform Bayesian inference in an efficient manner through the use of Hamiltonian Neural Networks (HNNs), Deep Neural Networks (DNNs), Neural ODEs, and Symplectic Neural Networks (SympNets) used with state-of-the-art sampling schemes like Hamiltonian Monte Carlo (HMC) and the No-U-Turn-Sampler (NUTS).
PinNUTS🥜 is dynamic Hamiltonian Monte Carlo algorithm implemented in Python
An efficient Python implementation for Bayesian inference in binary stars based on Stan.
Package to do Bayesian inference with Gibbs sampler
JAX-powered Hi-Fi mocks
Bayesian inference using the No-U-Turn sampler.
Bayesian Conditional Transformation Models by Manuel Carlan, Thomas Kneib and Nadja Klein
Java and Processing implementations for visualising various MCMC methods.