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Collective variable discovery and enhanced sampling using autoencoders: Innovations in network architecture and error function design

机译:使用AutoEncoders的集体变量发现和增强的采样:网络架构的创新和错误功能设计

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Auto-associative neural networks ("autoencoders") present a powerful nonlinear dimensionality reduction technique to mine data-driven collective variables from molecular simulation trajectories. This technique furnishes explicit and differentiable expressions for the nonlinear collective variables, making it ideally suited for integration with enhanced sampling techniques for accelerated exploration of configurational space. In this work, we describe a number of sophistications of the neural network architectures to improve and generalize the process of interleaved collective variable discovery and enhanced sampling. We employ circular network nodes to accommodate periodicities in the collective variables, hierarchical network architectures to rank-order the collective variables, and generalized encoder-decoder architectures to support bespoke error functions for network training to incorporate prior knowledge. We demonstrate our approach in blind collective variable discovery and enhanced sampling of the configurational free energy landscapes of alanine dipeptide and Trp-cage using an open-source plugin developed for the OpenMM molecular simulation package. Published by AIP Publishing.
机译:自动关联神经网络(“AutoEncoders”)呈现出强大的非线性维度降低技术,从分子模拟轨迹挖掘数据驱动的集体变量。该技术为非线性集体变量提供了明确和可微分的表达式,使其非常适合与增强的采样技术集成,以加速配置空间的探索。在这项工作中,我们描述了神经网络架构的许多复杂性,以改善和概括交错集体变量发现和增强的采样过程。我们采用圆形网络节点以适应集体变量中的周期性,分层网络架构来排序集体变量,以及广义编码器 - 解码器架构,以支持网络培训的定制错误功能,以结合先前知识。我们展示了我们在盲目集体变量发现和增强丙氨酸二肽和TRP-笼的采样的方法,使用为OpenMM分子模拟包装开发的开源插件。通过AIP发布发布。

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