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Estimation methods for heterogeneous cell population models in systems biology

机译:系统生物学中异质细胞群体模型的估计方法

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摘要

Heterogeneity among individual cells is a characteristic and relevant feature of living systems. A range of experimental techniques to investigate this heterogeneity is available, and multiple modelling frameworks have been developed to describe and simulate the dynamics of heterogeneous populations. Measurement data are used to adjust computational models, which results in parameter and state estimation problems. Methods to solve these estimation problems need to take the specific properties of data and models into account. The aim of this review is to give an overview on the state of the art in estimation methods for heterogeneous cell population data and models. The focus is on models based on the population balance equation, but stochastic and individual-based models are also discussed. It starts with a brief discussion of common experimental approaches and types of measurement data that can be obtained in this context. The second part describes computational modelling frameworks for heterogeneous populations and the types of estimation problems occurring for these models. The third part starts with a discussion of observability and identifiability properties, after which the computational methods to solve the various estimation problems are described.
机译:单个细胞之间的异质性是生命系统的特征和相关特征。可以使用多种实验技术来研究这种异质性,并且已经开发出多种建模框架来描述和模拟异质种群的动态。测量数据用于调整计算模型,这会导致参数和状态估计问题。解决这些估计问题的方法需要考虑数据和模型的特定属性。这篇综述的目的是概述异种细胞群体数据和模型的估计方法的最新技术水平。重点是基于人口平衡方程的模型,但是也讨论了随机模型和基于个体的模型。首先简要讨论在这种情况下可以获得的常见实验方法和测量数据类型。第二部分描述了异构种群的计算建模框架以及这些模型中发生的估计问题的类型。第三部分从可观察性和可识别性的讨论开始,然后描述解决各种估计问题的计算方法。

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