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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Graphics Processing Unit-Accelerated Semiempirical Born Oppenheimer Molecular Dynamics Using PyTorch
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Graphics Processing Unit-Accelerated Semiempirical Born Oppenheimer Molecular Dynamics Using PyTorch

机译:使用Pytorch处理单元加速的半透射oppeheimer分子动态

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摘要

A new open-source high-performance implementation of Born Oppenheimer molecular dynamics based on semiempirical quantum mechanics models using PyTorch called PYSEQM is presented. PYSEQM was designed to provide researchers in computational chemistry with an open-source, efficient, scalable, and stable quantum-based molecular dynamics engine. In particular, PYSEQM enables computation on modern graphics processing unit hardware and, through the use of automatic differentiation, supplies interfaces for model parameterization with machine learning techniques to perform multiobjective training and prediction. The implemented semiempirical quantum mechanical methods (MNDO, AM1, and PM3) are described. Additional algorithms include a recursive Fermi-operator expansion scheme (SP2) and extended Lagrangian Born Oppenheimer molecular dynamics allowing for rapid simulations. Finally, benchmark testing on the nanostar dendrimer and a series of polyethylene molecules provides a baseline of code efficiency, time cost, and scaling and stability of energy conservation, verifying that PYSEQM provides fast and accurate computations.
机译:介绍了使用Pytorch称为PySeqm的半透量子力学模型的新型开源高性能实施。 Pyseqm旨在为计算化学提供研究人员,具有开源,高效,可扩展性和稳定的基于量子的分子动力学发动机。特别是,PySeqm能够对现代图形处理单元硬件进行计算,并且通过使用自动差异化,为模型参数化提供与机器学习技术的界面,以执行多目标训练和预测。描述了所实施的半透镜量子机械方法(MNDO,AM1和PM3)。附加算法包括递归FERMI-Operator扩展方案(SP2)和扩展拉格朗日出生的oppenheimer分子动力学,允许快速模拟。最后,在纳米杆树枝状大分子和一系列聚乙烯分子上的基准测试提供了一种代码效率,时间成本和缩放和节能稳定性的基线,验证了PySeqm提供了快速准确的计算。

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