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An Excursion Through Quantitative Model Refinement

机译:通过定量模型改进的游览

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There is growing interest in creating large-scale computational models for biological process. One of the challenges in such a project is to fit and validate larger and larger models, a process that requires more high-quality experimental data and more computational effort as the size of the model grows. Quantitative model refinement is a recently proposed model construction technique addressing this challenge. It proposes to create a model in an iterative fashion by adding details to its species, and to fix the numerical setup in a way that guarantees to preserve the fit and validation of the model. In this survey we make an excursion through quantitative model refinement - this includes introducing the concept of quantitative model refinement for reaction-based models, for rule-based models, for Petri nets and for guarded command language models, and to illustrate it on three case studies (the heat shock response, the ErbB signaling pathway, and the self-assembly of intermediate filaments).
机译:对生物过程创造大规模计算模型而越来越兴趣。这样一个项目中的一个挑战是适合和验证更大且较大的模型,这一过程需要更高质量的实验数据和更多计算工作量,随着模型的规模增长。定量模型改进是最近提出的模型施工技术,解决了这一挑战。它建议通过将详细信息添加到其物种,并以保证符合模型的拟合和验证的方式来修复数值设置以迭代方式创建模型。在这项调查中,我们通过定量模型改进进行游览 - 这包括为基于规则的模型,用于Petri网和被保护的命令语言模型来介绍基于反应的模型的定量模型细化的概念,并在三种情况下说明它研究(热休克反应,ERBB信号通路和中间细丝的自组装)。

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