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部分洛特卡-沃尔泰拉模型的数据驱动校正

Data-Driven Corrections of Partial Lotka-Volterra Models.

作者信息

Morrison Rebecca E

机构信息

Department of Computer Science, University of Colorado Boulder, 1111 Engineering Drive, Boulder, CO 80309, USA.

出版信息

Entropy (Basel). 2020 Nov 18;22(11):1313. doi: 10.3390/e22111313.

Abstract

In many applications of interacting systems, we are only interested in the dynamic behavior of a subset of all possible active species. For example, this is true in combustion models (many transient chemical species are not of interest in a given reaction) and in epidemiological models (only certain subpopulations are consequential). Thus, it is common to use greatly reduced or partial models in which only the interactions among the species of interest are known. In this work, we explore the use of an embedded, sparse, and data-driven discrepancy operator to augment these partial interaction models. Preliminary results show that the model error caused by severe reductions-e.g., elimination of hundreds of terms-can be captured with sparse operators, built with only a small fraction of that number. The operator is embedded within the differential equations of the model, which allows the action of the operator to be interpretable. Moreover, it is constrained by available physical information and calibrated over many scenarios. These qualities of the discrepancy model-interpretability, physical consistency, and robustness to different scenarios-are intended to support reliable predictions under extrapolative conditions.

摘要

在相互作用系统的许多应用中,我们只对所有可能的活性物种的一个子集的动态行为感兴趣。例如,在燃烧模型中(许多瞬态化学物种在给定反应中并不重要)以及在流行病学模型中(只有某些亚群体是有影响的)都是如此。因此,通常使用大幅简化或部分模型,其中只知道感兴趣物种之间的相互作用。在这项工作中,我们探索使用嵌入式、稀疏且数据驱动的差异算子来扩充这些部分相互作用模型。初步结果表明,由大幅简化(例如消除数百项)导致的模型误差可以用稀疏算子捕获,而构建这些算子只需要该数量的一小部分。该算子嵌入在模型的微分方程中,这使得算子的作用具有可解释性。此外,它受到可用物理信息的约束,并在许多情况下进行校准。差异模型的这些特性——可解释性、物理一致性以及对不同情况的鲁棒性——旨在支持在外推条件下进行可靠预测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b686/7712089/fa726dc3adc1/entropy-22-01313-g001.jpg

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