PyTorch version of Stable Baselines, reliable implementations of reinforcement learning algorithms.
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Updated
Dec 21, 2024 - Python
PyTorch version of Stable Baselines, reliable implementations of reinforcement learning algorithms.
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Multi-language suite for high-performance solvers of differential equations and scientific machine learning (SciML) components. Ordinary differential equations (ODEs), stochastic differential equations (SDEs), delay differential equations (DDEs), differential-algebraic equations (DAEs), and more in Julia.
A training framework for Stable Baselines3 reinforcement learning agents, with hyperparameter optimization and pre-trained agents included.
Diffusion Models in Medical Imaging (Published in Medical Image Analysis Journal)
An acausal modeling framework for automatically parallelized scientific machine learning (SciML) in Julia. A computer algebra system for integrated symbolics for physics-informed machine learning and automated transformations of differential equations
Tutorials for doing scientific machine learning (SciML) and high-performance differential equation solving with open source software.
Solving differential equations in Python using DifferentialEquations.jl and the SciML Scientific Machine Learning organization
Contrib package for Stable-Baselines3 - Experimental reinforcement learning (RL) code
Chemical reaction network and systems biology interface for scientific machine learning (SciML). High performance, GPU-parallelized, and O(1) solvers in open source software.
A component of the DiffEq ecosystem for enabling sensitivity analysis for scientific machine learning (SciML). Optimize-then-discretize, discretize-then-optimize, adjoint methods, and more for ODEs, SDEs, DDEs, DAEs, etc.
The lightweight Base library for shared types and functionality for defining differential equation and scientific machine learning (SciML) problems
Scientific machine learning (SciML) benchmarks, AI for science, and (differential) equation solvers. Covers Julia, Python (PyTorch, Jax), MATLAB, R
GPU-acceleration routines for DifferentialEquations.jl and the broader SciML scientific machine learning ecosystem
Linear operators for discretizations of differential equations and scientific machine learning (SciML)
Documentation for the DiffEq differential equations and scientific machine learning (SciML) ecosystem
Solvers for stochastic differential equations which connect with the scientific machine learning (SciML) ecosystem
New home of Swift Development Environment for VS Code
Solving differential equations in R using DifferentialEquations.jl and the SciML Scientific Machine Learning ecosystem
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