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aiqm/torchani

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aiqm.github.io/torchani↗

Torchani

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.

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  • Interatomic Potentials - Library for training and research of neural network potentials.
  • Data and Graph Processing - Neural network potentials for chemistry.
  • Herramientas de desarrollo - Neural network potentials for chemistry.
  • To be Classified - Listed in the “To be Classified” section of the The Incredible Pytorch awesome list.
  • 548 estrellas·139 forks·Python·MIT·5 vistas

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    Preguntas frecuentes

    ¿Qué hace aiqm/torchani?

    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.

    ¿Cuáles son las características principales de aiqm/torchani?

    Las características principales de aiqm/torchani son: Interatomic Potentials, Data and Graph Processing, Herramientas de desarrollo, To be Classified.

    ¿Qué alternativas de código abierto existen para aiqm/torchani?

    Las alternativas de código abierto para aiqm/torchani incluyen: cornellius-gp/gpytorch — GPyTorch is a GPU-accelerated probabilistic framework and PyTorch library for implementing scalable Gaussian process… dmlc/dgl — DGL is a Python library for building and training graph neural networks. It functions as a graph message passing… bachili/redner — Differentiable rendering without approximation. bharathgs/nalu. cvxgrp/cvxpylayers — CVXPYlayers is a Python library for constructing differentiable convex optimization layers in PyTorch, JAX, and MLX… ferrine/geoopt — Riemannian Adaptive Optimization Methods with pytorch optim.