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基于深度学习替代模型的集成潜在同化:在微流控装置中滴流相互作用的应用。

Ensemble latent assimilation with deep learning surrogate model: application to drop interaction in a microfluidics device.

机构信息

Department of Chemical Engineering Imperial College London, UK.

Data Science Institute, Department of Computing, Imperial College London, UK.

出版信息

Lab Chip. 2022 Aug 23;22(17):3187-3202. doi: 10.1039/d2lc00303a.

Abstract

A major challenge in the field of microfluidics is to predict and control drop interactions. This work develops an image-based data-driven model to forecast drop dynamics based on experiments performed on a microfluidics device. Reduced-order modelling techniques are applied to compress the recorded images into low-dimensional spaces and alleviate the computational cost. Recurrent neural networks are then employed to build a surrogate model of drop interactions by learning the dynamics of compressed variables in the reduced-order space. The surrogate model is integrated with real-time observations using data assimilation. In this paper we developed an ensemble-based latent assimilation algorithm scheme which shows an improvement in terms of accuracy with respect to the previous approaches. This work demonstrates the possibility to create a reliable data-driven model enabling a high fidelity prediction of drop interactions in microfluidics device. The performance of the developed system is evaluated against experimental data (, recorded videos), which are excluded from the training of the surrogate model. The developed scheme is general and can be applied to other dynamical systems.

摘要

微流控领域的一个主要挑战是预测和控制液滴相互作用。本工作基于在微流控装置上进行的实验,开发了一种基于图像的数据驱动模型来预测液滴动力学。降阶建模技术被应用于将记录的图像压缩到低维空间,以减轻计算成本。然后,通过学习降阶空间中压缩变量的动力学,递归神经网络被用于建立液滴相互作用的替代模型。替代模型通过数据同化与实时观测相结合。在本文中,我们开发了一种基于集合的潜在同化算法方案,与之前的方法相比,该方案在准确性方面有所提高。本工作证明了创建一个可靠的数据驱动模型的可能性,该模型能够对微流控装置中的液滴相互作用进行高保真预测。所开发系统的性能是针对实验数据(,记录的视频)进行评估的,这些数据不包括在替代模型的训练中。所开发的方案是通用的,可以应用于其他动力系统。

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