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Back to stfc/janus-core

Open-source alternatives to Janus Core

30 open-source projects similar to stfc/janus-core, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best Janus Core alternative.

  • lammps/lammpslammps avatar

    lammps/lammps

    2,783View on GitHub↗

    This project is a parallel simulation engine and molecular dynamics simulator designed to model the physical movements of atoms and molecules. It functions as an interatomic potential framework for calculating forces between particles and a materials analysis tool for computing thermodynamic, structural, and transport properties of solids and fluids. The engine is distinguished by its high-performance computing capabilities, utilizing spatial-domain decomposition and message-passing interface communication to distribute workloads across processors. It supports multi-backend GPU acceleration v

    C++kokkoslammpsmolecular-dynamics
    View on GitHub↗2,783
  • acesuit/ace1.jlACEsuit avatar

    ACEsuit/ACE1.jl

    23View on GitHub↗

    Notes: This is currently a development branch of ACE (though we are still tagging versions regularly). For the latest stable version see DEV-v0.8.x Preliminary Documentation, WIP.

    Julia
    View on GitHub↗23
  • acesuit/acefit.jlACEsuit avatar

    ACEsuit/ACEfit.jl

    8View on GitHub↗

    Generic Codes for Fitting ACE models

    Julia
    View on GitHub↗8
  • acesuit/maceACEsuit avatar

    ACEsuit/mace

    1,253View on GitHub↗

    MACE - Table of contents - About MACE - Documentation - Installation - pip installation - pip installation from source - Usage - Training - Evaluation - Tutorials - CUDA acceleration with cuEquivariance - Weights and Biases for experiment tracking - Pretrained Foundation Models - MACE-MP:…

    Python
    View on GitHub↗1,253
  • aiqm/torchaniaiqm avatar

    aiqm/torchani

    548View on GitHub↗

    TorchANI 2.0 is an open-source library that supports training, development, and research of ANI-style neural network interatomic potentials. It was originally developed and is currently maintained by the Roitberg group.

    Python
    View on GitHub↗548

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  • apax-hub/apaxapax-hub avatar

    apax-hub/apax

    37View on GitHub↗

    apax^1^2 is a high-performance, extendable package for training of and inference with atomistic neural networks. It implements the Gaussian Moment Neural Network model ^3^4. It is based on JAX and uses JaxMD as a molecular dynamics engine.

    Python
    View on GitHub↗37
  • autoatml/autoplexautoatml avatar

    autoatml/autoplex

    151View on GitHub↗

    autoplex is still under very active development and larger modifications to the source code should be expected.

    Python
    View on GitHub↗151
  • basf/mlipxbasf avatar

    basf/mlipx

    105View on GitHub↗

    📘Documentation | 🛠️Installation | 📜Recipes | 🚀Quickstart

    Python
    View on GitHub↗105
  • bigd4/pynepbigd4 avatar

    bigd4/PyNEP

    71View on GitHub↗

    PyNEP is a python interface of the machine learning potential NEP used in GPUMD.

    C++
    View on GitHub↗71
  • compphysvienna/n2p2CompPhysVienna avatar

    CompPhysVienna/n2p2

    245View on GitHub↗

    n2p2 - A neural network potential package

    C++
    View on GitHub↗245
  • deepmodeling/deepmd-gnndeepmodeling avatar

    deepmodeling/deepmd-gnn

    55View on GitHub↗

    deepmd-gnn is a DeePMD-kit plugin for various graph neural network (GNN) models, which connects DeePMD-kit and atomistic GNN packages by enabling GNN models in DeePMD-kit.

    Python
    View on GitHub↗55
  • deepmodeling/deepmd-kitdeepmodeling avatar

    deepmodeling/deepmd-kit

    1,970View on GitHub↗

    A deep learning package for many-body potential energy representation and molecular dynamics

    Python
    View on GitHub↗1,970
  • elliottkasoar/aiida-mlipElliottKasoar avatar

    ElliottKasoar/aiida-mlip

    1View on GitHub↗

    machine learning interatomic potentials aiida plugin

    Python
    View on GitHub↗1
  • facebookresearch/fairchemfacebookresearch avatar

    facebookresearch/fairchem

    2,164View on GitHub↗

    ocp is the Open Catalyst Project's library of state-of-the-art machine learning algorithms for catalysis.

    Python
    View on GitHub↗2,164
  • lanl/alflanl avatar

    lanl/ALF

    43View on GitHub↗

    This code automates the construction of datasets for machine learned interatomic potentials (MLIPs) through active learning. By automating job execution utilizing the Parsl framework, the active learning process can run for many iterations without human intervention. ALF breaks the process down…

    Python
    View on GitHub↗43
  • learningmatter-mit/neuralforcefieldlearningmatter-mit avatar

    learningmatter-mit/NeuralForceField

    293View on GitHub↗

    The Neural Force Field (NFF) code is an API based on SchNet 1-4, DimeNet 5, PaiNN 6-7 and DANN 8. It provides an interface to train and evaluate neural networks for force fields. It can also be used as a property predictor that uses both 3D geometries and 2D graph information 9.

    Jupyter Notebook
    View on GitHub↗293
  • libatoms/gaplibAtoms avatar

    libAtoms/GAP

    48View on GitHub↗

    This package is part of QUIP (but with a different license!). In order to use it, you should clone QUIP with the --recursive option. QUIP is released under a GPL license , whereas GAP uses ASL (Academic Software License).

    Fortran
    View on GitHub↗48
  • libatoms/workflowlibAtoms avatar

    libAtoms/workflow

    43View on GitHub↗

    Workflow is a Python toolkit for building interatomic potential creation and atomistic simulation workflows.

    Python
    View on GitHub↗43
  • materialyzeai/matcalcmaterialyzeai avatar

    materialyzeai/matcalc

    146View on GitHub↗

    A python library for calculating materials properties from the PES

    Python
    View on GitHub↗146
  • mcaroba/turbogapmcaroba avatar

    mcaroba/turbogap

    21View on GitHub↗

    TurboGAP (c) 2018-2023 by Miguel A. Caro and others (see "contributors" below for detailed authorship info).

    Fortran
    View on GitHub↗21
  • metatensor/metatrainmetatensor avatar

    metatensor/metatrain

    74View on GitHub↗

    Train, fine-tune, and manipulate machine learning models for atomistic systems

    Python
    View on GitHub↗74
  • mir-group/allegromir-group avatar

    mir-group/allegro

    488View on GitHub↗

    This package implements the Allegro E(3)-equivariant machine learning interatomic potential.

    Python
    View on GitHub↗488
  • mir-group/nequipmir-group avatar

    mir-group/nequip

    931View on GitHub↗

    NequIP is an open-source code for building E(3)-equivariant interatomic potentials.

    Python
    View on GitHub↗931
  • mmunibas/asparagusMMunibas avatar

    MMunibas/Asparagus

    12View on GitHub↗

    Authors: K. Toepfer, L.I. Vazquez-Salazar

    Python
    View on GitHub↗12
  • openkim/kliffopenkim avatar

    openkim/kliff

    40View on GitHub↗

    KLIFF is an interatomic potential fitting package that can be used to fit physics-motivated (PM) potentials, as well as machine learning potentials such as the neural network (NN) models.

    Python
    View on GitHub↗40
  • openmm/nnpopsopenmm avatar

    openmm/NNPOps

    102View on GitHub↗

    The goal of this project is to promote the use of neural network potentials (NNPs) by providing highly optimized, open source implementations of bottleneck operations that appear in popular potentials. These are the core design principles.

    C++
    View on GitHub↗102
  • rowleygroup/mlxdmRowleyGroup avatar

    RowleyGroup/MLXDM

    9View on GitHub↗

    1. Overview 2. Repo Contents 3. System Requirements 4. Installation Guide 5. Demos and Expected Results 6. License 7. Citation

    Python
    View on GitHub↗9
  • spozdn/petspozdn avatar

    spozdn/pet

    35View on GitHub↗

    .. inclusion-marker-preambule-start-first

    Python
    View on GitHub↗35
  • stefanch/sgdmlstefanch avatar

    stefanch/sGDML

    168View on GitHub↗

    For more details visit: sgdml.org Documentation can be found here: docs.sgdml.org

    Python
    View on GitHub↗168
  • teoroo-cmc/pinnTeoroo-CMC avatar

    Teoroo-CMC/PiNN

    127View on GitHub↗

    PiNN 1 is a Python library built on top of TensorFlow for building atomic neural network potentials. The PiNN library also provides elemental layers and abstractions to implement various atomic neural networks.

    Python
    View on GitHub↗127